drm/tests: hdmi: Fix memory leaks in drm_display_mode_from_cea_vic()
[drm/drm-misc.git] / drivers / scsi / lpfc / lpfc_sli.c
blob2ec6e55771b45ab70320a9ad1934d5ead2371d4c
1 /*******************************************************************
2 * This file is part of the Emulex Linux Device Driver for *
3 * Fibre Channel Host Bus Adapters. *
4 * Copyright (C) 2017-2024 Broadcom. All Rights Reserved. The term *
5 * “Broadcom” refers to Broadcom Inc. and/or its subsidiaries. *
6 * Copyright (C) 2004-2016 Emulex. All rights reserved. *
7 * EMULEX and SLI are trademarks of Emulex. *
8 * www.broadcom.com *
9 * Portions Copyright (C) 2004-2005 Christoph Hellwig *
10 * *
11 * This program is free software; you can redistribute it and/or *
12 * modify it under the terms of version 2 of the GNU General *
13 * Public License as published by the Free Software Foundation. *
14 * This program is distributed in the hope that it will be useful. *
15 * ALL EXPRESS OR IMPLIED CONDITIONS, REPRESENTATIONS AND *
16 * WARRANTIES, INCLUDING ANY IMPLIED WARRANTY OF MERCHANTABILITY, *
17 * FITNESS FOR A PARTICULAR PURPOSE, OR NON-INFRINGEMENT, ARE *
18 * DISCLAIMED, EXCEPT TO THE EXTENT THAT SUCH DISCLAIMERS ARE HELD *
19 * TO BE LEGALLY INVALID. See the GNU General Public License for *
20 * more details, a copy of which can be found in the file COPYING *
21 * included with this package. *
22 *******************************************************************/
24 #include <linux/blkdev.h>
25 #include <linux/pci.h>
26 #include <linux/interrupt.h>
27 #include <linux/delay.h>
28 #include <linux/slab.h>
29 #include <linux/lockdep.h>
31 #include <scsi/scsi.h>
32 #include <scsi/scsi_cmnd.h>
33 #include <scsi/scsi_device.h>
34 #include <scsi/scsi_host.h>
35 #include <scsi/scsi_transport_fc.h>
36 #include <scsi/fc/fc_fs.h>
37 #include <linux/crash_dump.h>
38 #ifdef CONFIG_X86
39 #include <asm/set_memory.h>
40 #endif
42 #include "lpfc_hw4.h"
43 #include "lpfc_hw.h"
44 #include "lpfc_sli.h"
45 #include "lpfc_sli4.h"
46 #include "lpfc_nl.h"
47 #include "lpfc_disc.h"
48 #include "lpfc.h"
49 #include "lpfc_scsi.h"
50 #include "lpfc_nvme.h"
51 #include "lpfc_crtn.h"
52 #include "lpfc_logmsg.h"
53 #include "lpfc_compat.h"
54 #include "lpfc_debugfs.h"
55 #include "lpfc_vport.h"
56 #include "lpfc_version.h"
58 /* There are only four IOCB completion types. */
59 typedef enum _lpfc_iocb_type {
60 LPFC_UNKNOWN_IOCB,
61 LPFC_UNSOL_IOCB,
62 LPFC_SOL_IOCB,
63 LPFC_ABORT_IOCB
64 } lpfc_iocb_type;
67 /* Provide function prototypes local to this module. */
68 static int lpfc_sli_issue_mbox_s4(struct lpfc_hba *, LPFC_MBOXQ_t *,
69 uint32_t);
70 static int lpfc_sli4_read_rev(struct lpfc_hba *, LPFC_MBOXQ_t *,
71 uint8_t *, uint32_t *);
72 static struct lpfc_iocbq *
73 lpfc_sli4_els_preprocess_rspiocbq(struct lpfc_hba *phba,
74 struct lpfc_iocbq *rspiocbq);
75 static void lpfc_sli4_send_seq_to_ulp(struct lpfc_vport *,
76 struct hbq_dmabuf *);
77 static void lpfc_sli4_handle_mds_loopback(struct lpfc_vport *vport,
78 struct hbq_dmabuf *dmabuf);
79 static bool lpfc_sli4_fp_handle_cqe(struct lpfc_hba *phba,
80 struct lpfc_queue *cq, struct lpfc_cqe *cqe);
81 static int lpfc_sli4_post_sgl_list(struct lpfc_hba *, struct list_head *,
82 int);
83 static void lpfc_sli4_hba_handle_eqe(struct lpfc_hba *phba,
84 struct lpfc_queue *eq,
85 struct lpfc_eqe *eqe,
86 enum lpfc_poll_mode poll_mode);
87 static bool lpfc_sli4_mbox_completions_pending(struct lpfc_hba *phba);
88 static bool lpfc_sli4_process_missed_mbox_completions(struct lpfc_hba *phba);
89 static struct lpfc_cqe *lpfc_sli4_cq_get(struct lpfc_queue *q);
90 static void __lpfc_sli4_consume_cqe(struct lpfc_hba *phba,
91 struct lpfc_queue *cq,
92 struct lpfc_cqe *cqe);
93 static uint16_t lpfc_wqe_bpl2sgl(struct lpfc_hba *phba,
94 struct lpfc_iocbq *pwqeq,
95 struct lpfc_sglq *sglq);
97 union lpfc_wqe128 lpfc_iread_cmd_template;
98 union lpfc_wqe128 lpfc_iwrite_cmd_template;
99 union lpfc_wqe128 lpfc_icmnd_cmd_template;
101 /* Setup WQE templates for IOs */
102 void lpfc_wqe_cmd_template(void)
104 union lpfc_wqe128 *wqe;
106 /* IREAD template */
107 wqe = &lpfc_iread_cmd_template;
108 memset(wqe, 0, sizeof(union lpfc_wqe128));
110 /* Word 0, 1, 2 - BDE is variable */
112 /* Word 3 - cmd_buff_len, payload_offset_len is zero */
114 /* Word 4 - total_xfer_len is variable */
116 /* Word 5 - is zero */
118 /* Word 6 - ctxt_tag, xri_tag is variable */
120 /* Word 7 */
121 bf_set(wqe_cmnd, &wqe->fcp_iread.wqe_com, CMD_FCP_IREAD64_WQE);
122 bf_set(wqe_pu, &wqe->fcp_iread.wqe_com, PARM_READ_CHECK);
123 bf_set(wqe_class, &wqe->fcp_iread.wqe_com, CLASS3);
124 bf_set(wqe_ct, &wqe->fcp_iread.wqe_com, SLI4_CT_RPI);
126 /* Word 8 - abort_tag is variable */
128 /* Word 9 - reqtag is variable */
130 /* Word 10 - dbde, wqes is variable */
131 bf_set(wqe_qosd, &wqe->fcp_iread.wqe_com, 0);
132 bf_set(wqe_iod, &wqe->fcp_iread.wqe_com, LPFC_WQE_IOD_READ);
133 bf_set(wqe_lenloc, &wqe->fcp_iread.wqe_com, LPFC_WQE_LENLOC_WORD4);
134 bf_set(wqe_dbde, &wqe->fcp_iread.wqe_com, 0);
135 bf_set(wqe_wqes, &wqe->fcp_iread.wqe_com, 1);
137 /* Word 11 - pbde is variable */
138 bf_set(wqe_cmd_type, &wqe->fcp_iread.wqe_com, COMMAND_DATA_IN);
139 bf_set(wqe_cqid, &wqe->fcp_iread.wqe_com, LPFC_WQE_CQ_ID_DEFAULT);
140 bf_set(wqe_pbde, &wqe->fcp_iread.wqe_com, 0);
142 /* Word 12 - is zero */
144 /* Word 13, 14, 15 - PBDE is variable */
146 /* IWRITE template */
147 wqe = &lpfc_iwrite_cmd_template;
148 memset(wqe, 0, sizeof(union lpfc_wqe128));
150 /* Word 0, 1, 2 - BDE is variable */
152 /* Word 3 - cmd_buff_len, payload_offset_len is zero */
154 /* Word 4 - total_xfer_len is variable */
156 /* Word 5 - initial_xfer_len is variable */
158 /* Word 6 - ctxt_tag, xri_tag is variable */
160 /* Word 7 */
161 bf_set(wqe_cmnd, &wqe->fcp_iwrite.wqe_com, CMD_FCP_IWRITE64_WQE);
162 bf_set(wqe_pu, &wqe->fcp_iwrite.wqe_com, PARM_READ_CHECK);
163 bf_set(wqe_class, &wqe->fcp_iwrite.wqe_com, CLASS3);
164 bf_set(wqe_ct, &wqe->fcp_iwrite.wqe_com, SLI4_CT_RPI);
166 /* Word 8 - abort_tag is variable */
168 /* Word 9 - reqtag is variable */
170 /* Word 10 - dbde, wqes is variable */
171 bf_set(wqe_qosd, &wqe->fcp_iwrite.wqe_com, 0);
172 bf_set(wqe_iod, &wqe->fcp_iwrite.wqe_com, LPFC_WQE_IOD_WRITE);
173 bf_set(wqe_lenloc, &wqe->fcp_iwrite.wqe_com, LPFC_WQE_LENLOC_WORD4);
174 bf_set(wqe_dbde, &wqe->fcp_iwrite.wqe_com, 0);
175 bf_set(wqe_wqes, &wqe->fcp_iwrite.wqe_com, 1);
177 /* Word 11 - pbde is variable */
178 bf_set(wqe_cmd_type, &wqe->fcp_iwrite.wqe_com, COMMAND_DATA_OUT);
179 bf_set(wqe_cqid, &wqe->fcp_iwrite.wqe_com, LPFC_WQE_CQ_ID_DEFAULT);
180 bf_set(wqe_pbde, &wqe->fcp_iwrite.wqe_com, 0);
182 /* Word 12 - is zero */
184 /* Word 13, 14, 15 - PBDE is variable */
186 /* ICMND template */
187 wqe = &lpfc_icmnd_cmd_template;
188 memset(wqe, 0, sizeof(union lpfc_wqe128));
190 /* Word 0, 1, 2 - BDE is variable */
192 /* Word 3 - payload_offset_len is variable */
194 /* Word 4, 5 - is zero */
196 /* Word 6 - ctxt_tag, xri_tag is variable */
198 /* Word 7 */
199 bf_set(wqe_cmnd, &wqe->fcp_icmd.wqe_com, CMD_FCP_ICMND64_WQE);
200 bf_set(wqe_pu, &wqe->fcp_icmd.wqe_com, 0);
201 bf_set(wqe_class, &wqe->fcp_icmd.wqe_com, CLASS3);
202 bf_set(wqe_ct, &wqe->fcp_icmd.wqe_com, SLI4_CT_RPI);
204 /* Word 8 - abort_tag is variable */
206 /* Word 9 - reqtag is variable */
208 /* Word 10 - dbde, wqes is variable */
209 bf_set(wqe_qosd, &wqe->fcp_icmd.wqe_com, 1);
210 bf_set(wqe_iod, &wqe->fcp_icmd.wqe_com, LPFC_WQE_IOD_NONE);
211 bf_set(wqe_lenloc, &wqe->fcp_icmd.wqe_com, LPFC_WQE_LENLOC_NONE);
212 bf_set(wqe_dbde, &wqe->fcp_icmd.wqe_com, 0);
213 bf_set(wqe_wqes, &wqe->fcp_icmd.wqe_com, 1);
215 /* Word 11 */
216 bf_set(wqe_cmd_type, &wqe->fcp_icmd.wqe_com, COMMAND_DATA_IN);
217 bf_set(wqe_cqid, &wqe->fcp_icmd.wqe_com, LPFC_WQE_CQ_ID_DEFAULT);
218 bf_set(wqe_pbde, &wqe->fcp_icmd.wqe_com, 0);
220 /* Word 12, 13, 14, 15 - is zero */
223 #if defined(CONFIG_64BIT) && defined(__LITTLE_ENDIAN)
225 * lpfc_sli4_pcimem_bcopy - SLI4 memory copy function
226 * @srcp: Source memory pointer.
227 * @destp: Destination memory pointer.
228 * @cnt: Number of words required to be copied.
229 * Must be a multiple of sizeof(uint64_t)
231 * This function is used for copying data between driver memory
232 * and the SLI WQ. This function also changes the endianness
233 * of each word if native endianness is different from SLI
234 * endianness. This function can be called with or without
235 * lock.
237 static void
238 lpfc_sli4_pcimem_bcopy(void *srcp, void *destp, uint32_t cnt)
240 uint64_t *src = srcp;
241 uint64_t *dest = destp;
242 int i;
244 for (i = 0; i < (int)cnt; i += sizeof(uint64_t))
245 *dest++ = *src++;
247 #else
248 #define lpfc_sli4_pcimem_bcopy(a, b, c) lpfc_sli_pcimem_bcopy(a, b, c)
249 #endif
252 * lpfc_sli4_wq_put - Put a Work Queue Entry on an Work Queue
253 * @q: The Work Queue to operate on.
254 * @wqe: The work Queue Entry to put on the Work queue.
256 * This routine will copy the contents of @wqe to the next available entry on
257 * the @q. This function will then ring the Work Queue Doorbell to signal the
258 * HBA to start processing the Work Queue Entry. This function returns 0 if
259 * successful. If no entries are available on @q then this function will return
260 * -ENOMEM.
261 * The caller is expected to hold the hbalock when calling this routine.
263 static int
264 lpfc_sli4_wq_put(struct lpfc_queue *q, union lpfc_wqe128 *wqe)
266 union lpfc_wqe *temp_wqe;
267 struct lpfc_register doorbell;
268 uint32_t host_index;
269 uint32_t idx;
270 uint32_t i = 0;
271 uint8_t *tmp;
272 u32 if_type;
274 /* sanity check on queue memory */
275 if (unlikely(!q))
276 return -ENOMEM;
278 temp_wqe = lpfc_sli4_qe(q, q->host_index);
280 /* If the host has not yet processed the next entry then we are done */
281 idx = ((q->host_index + 1) % q->entry_count);
282 if (idx == q->hba_index) {
283 q->WQ_overflow++;
284 return -EBUSY;
286 q->WQ_posted++;
287 /* set consumption flag every once in a while */
288 if (!((q->host_index + 1) % q->notify_interval))
289 bf_set(wqe_wqec, &wqe->generic.wqe_com, 1);
290 else
291 bf_set(wqe_wqec, &wqe->generic.wqe_com, 0);
292 if (q->phba->sli3_options & LPFC_SLI4_PHWQ_ENABLED)
293 bf_set(wqe_wqid, &wqe->generic.wqe_com, q->queue_id);
294 lpfc_sli4_pcimem_bcopy(wqe, temp_wqe, q->entry_size);
295 if (q->dpp_enable && q->phba->cfg_enable_dpp) {
296 /* write to DPP aperture taking advatage of Combined Writes */
297 tmp = (uint8_t *)temp_wqe;
298 #ifdef __raw_writeq
299 for (i = 0; i < q->entry_size; i += sizeof(uint64_t))
300 __raw_writeq(*((uint64_t *)(tmp + i)),
301 q->dpp_regaddr + i);
302 #else
303 for (i = 0; i < q->entry_size; i += sizeof(uint32_t))
304 __raw_writel(*((uint32_t *)(tmp + i)),
305 q->dpp_regaddr + i);
306 #endif
308 /* ensure WQE bcopy and DPP flushed before doorbell write */
309 wmb();
311 /* Update the host index before invoking device */
312 host_index = q->host_index;
314 q->host_index = idx;
316 /* Ring Doorbell */
317 doorbell.word0 = 0;
318 if (q->db_format == LPFC_DB_LIST_FORMAT) {
319 if (q->dpp_enable && q->phba->cfg_enable_dpp) {
320 bf_set(lpfc_if6_wq_db_list_fm_num_posted, &doorbell, 1);
321 bf_set(lpfc_if6_wq_db_list_fm_dpp, &doorbell, 1);
322 bf_set(lpfc_if6_wq_db_list_fm_dpp_id, &doorbell,
323 q->dpp_id);
324 bf_set(lpfc_if6_wq_db_list_fm_id, &doorbell,
325 q->queue_id);
326 } else {
327 bf_set(lpfc_wq_db_list_fm_num_posted, &doorbell, 1);
328 bf_set(lpfc_wq_db_list_fm_id, &doorbell, q->queue_id);
330 /* Leave bits <23:16> clear for if_type 6 dpp */
331 if_type = bf_get(lpfc_sli_intf_if_type,
332 &q->phba->sli4_hba.sli_intf);
333 if (if_type != LPFC_SLI_INTF_IF_TYPE_6)
334 bf_set(lpfc_wq_db_list_fm_index, &doorbell,
335 host_index);
337 } else if (q->db_format == LPFC_DB_RING_FORMAT) {
338 bf_set(lpfc_wq_db_ring_fm_num_posted, &doorbell, 1);
339 bf_set(lpfc_wq_db_ring_fm_id, &doorbell, q->queue_id);
340 } else {
341 return -EINVAL;
343 writel(doorbell.word0, q->db_regaddr);
345 return 0;
349 * lpfc_sli4_wq_release - Updates internal hba index for WQ
350 * @q: The Work Queue to operate on.
351 * @index: The index to advance the hba index to.
353 * This routine will update the HBA index of a queue to reflect consumption of
354 * Work Queue Entries by the HBA. When the HBA indicates that it has consumed
355 * an entry the host calls this function to update the queue's internal
356 * pointers.
358 static void
359 lpfc_sli4_wq_release(struct lpfc_queue *q, uint32_t index)
361 /* sanity check on queue memory */
362 if (unlikely(!q))
363 return;
365 q->hba_index = index;
369 * lpfc_sli4_mq_put - Put a Mailbox Queue Entry on an Mailbox Queue
370 * @q: The Mailbox Queue to operate on.
371 * @mqe: The Mailbox Queue Entry to put on the Work queue.
373 * This routine will copy the contents of @mqe to the next available entry on
374 * the @q. This function will then ring the Work Queue Doorbell to signal the
375 * HBA to start processing the Work Queue Entry. This function returns 0 if
376 * successful. If no entries are available on @q then this function will return
377 * -ENOMEM.
378 * The caller is expected to hold the hbalock when calling this routine.
380 static uint32_t
381 lpfc_sli4_mq_put(struct lpfc_queue *q, struct lpfc_mqe *mqe)
383 struct lpfc_mqe *temp_mqe;
384 struct lpfc_register doorbell;
386 /* sanity check on queue memory */
387 if (unlikely(!q))
388 return -ENOMEM;
389 temp_mqe = lpfc_sli4_qe(q, q->host_index);
391 /* If the host has not yet processed the next entry then we are done */
392 if (((q->host_index + 1) % q->entry_count) == q->hba_index)
393 return -ENOMEM;
394 lpfc_sli4_pcimem_bcopy(mqe, temp_mqe, q->entry_size);
395 /* Save off the mailbox pointer for completion */
396 q->phba->mbox = (MAILBOX_t *)temp_mqe;
398 /* Update the host index before invoking device */
399 q->host_index = ((q->host_index + 1) % q->entry_count);
401 /* Ring Doorbell */
402 doorbell.word0 = 0;
403 bf_set(lpfc_mq_doorbell_num_posted, &doorbell, 1);
404 bf_set(lpfc_mq_doorbell_id, &doorbell, q->queue_id);
405 writel(doorbell.word0, q->phba->sli4_hba.MQDBregaddr);
406 return 0;
410 * lpfc_sli4_mq_release - Updates internal hba index for MQ
411 * @q: The Mailbox Queue to operate on.
413 * This routine will update the HBA index of a queue to reflect consumption of
414 * a Mailbox Queue Entry by the HBA. When the HBA indicates that it has consumed
415 * an entry the host calls this function to update the queue's internal
416 * pointers. This routine returns the number of entries that were consumed by
417 * the HBA.
419 static uint32_t
420 lpfc_sli4_mq_release(struct lpfc_queue *q)
422 /* sanity check on queue memory */
423 if (unlikely(!q))
424 return 0;
426 /* Clear the mailbox pointer for completion */
427 q->phba->mbox = NULL;
428 q->hba_index = ((q->hba_index + 1) % q->entry_count);
429 return 1;
433 * lpfc_sli4_eq_get - Gets the next valid EQE from a EQ
434 * @q: The Event Queue to get the first valid EQE from
436 * This routine will get the first valid Event Queue Entry from @q, update
437 * the queue's internal hba index, and return the EQE. If no valid EQEs are in
438 * the Queue (no more work to do), or the Queue is full of EQEs that have been
439 * processed, but not popped back to the HBA then this routine will return NULL.
441 static struct lpfc_eqe *
442 lpfc_sli4_eq_get(struct lpfc_queue *q)
444 struct lpfc_eqe *eqe;
446 /* sanity check on queue memory */
447 if (unlikely(!q))
448 return NULL;
449 eqe = lpfc_sli4_qe(q, q->host_index);
451 /* If the next EQE is not valid then we are done */
452 if (bf_get_le32(lpfc_eqe_valid, eqe) != q->qe_valid)
453 return NULL;
456 * insert barrier for instruction interlock : data from the hardware
457 * must have the valid bit checked before it can be copied and acted
458 * upon. Speculative instructions were allowing a bcopy at the start
459 * of lpfc_sli4_fp_handle_wcqe(), which is called immediately
460 * after our return, to copy data before the valid bit check above
461 * was done. As such, some of the copied data was stale. The barrier
462 * ensures the check is before any data is copied.
464 mb();
465 return eqe;
469 * lpfc_sli4_eq_clr_intr - Turn off interrupts from this EQ
470 * @q: The Event Queue to disable interrupts
473 void
474 lpfc_sli4_eq_clr_intr(struct lpfc_queue *q)
476 struct lpfc_register doorbell;
478 doorbell.word0 = 0;
479 bf_set(lpfc_eqcq_doorbell_eqci, &doorbell, 1);
480 bf_set(lpfc_eqcq_doorbell_qt, &doorbell, LPFC_QUEUE_TYPE_EVENT);
481 bf_set(lpfc_eqcq_doorbell_eqid_hi, &doorbell,
482 (q->queue_id >> LPFC_EQID_HI_FIELD_SHIFT));
483 bf_set(lpfc_eqcq_doorbell_eqid_lo, &doorbell, q->queue_id);
484 writel(doorbell.word0, q->phba->sli4_hba.EQDBregaddr);
488 * lpfc_sli4_if6_eq_clr_intr - Turn off interrupts from this EQ
489 * @q: The Event Queue to disable interrupts
492 void
493 lpfc_sli4_if6_eq_clr_intr(struct lpfc_queue *q)
495 struct lpfc_register doorbell;
497 doorbell.word0 = 0;
498 bf_set(lpfc_if6_eq_doorbell_eqid, &doorbell, q->queue_id);
499 writel(doorbell.word0, q->phba->sli4_hba.EQDBregaddr);
503 * lpfc_sli4_write_eq_db - write EQ DB for eqe's consumed or arm state
504 * @phba: adapter with EQ
505 * @q: The Event Queue that the host has completed processing for.
506 * @count: Number of elements that have been consumed
507 * @arm: Indicates whether the host wants to arms this CQ.
509 * This routine will notify the HBA, by ringing the doorbell, that count
510 * number of EQEs have been processed. The @arm parameter indicates whether
511 * the queue should be rearmed when ringing the doorbell.
513 void
514 lpfc_sli4_write_eq_db(struct lpfc_hba *phba, struct lpfc_queue *q,
515 uint32_t count, bool arm)
517 struct lpfc_register doorbell;
519 /* sanity check on queue memory */
520 if (unlikely(!q || (count == 0 && !arm)))
521 return;
523 /* ring doorbell for number popped */
524 doorbell.word0 = 0;
525 if (arm) {
526 bf_set(lpfc_eqcq_doorbell_arm, &doorbell, 1);
527 bf_set(lpfc_eqcq_doorbell_eqci, &doorbell, 1);
529 bf_set(lpfc_eqcq_doorbell_num_released, &doorbell, count);
530 bf_set(lpfc_eqcq_doorbell_qt, &doorbell, LPFC_QUEUE_TYPE_EVENT);
531 bf_set(lpfc_eqcq_doorbell_eqid_hi, &doorbell,
532 (q->queue_id >> LPFC_EQID_HI_FIELD_SHIFT));
533 bf_set(lpfc_eqcq_doorbell_eqid_lo, &doorbell, q->queue_id);
534 writel(doorbell.word0, q->phba->sli4_hba.EQDBregaddr);
535 /* PCI read to flush PCI pipeline on re-arming for INTx mode */
536 if ((q->phba->intr_type == INTx) && (arm == LPFC_QUEUE_REARM))
537 readl(q->phba->sli4_hba.EQDBregaddr);
541 * lpfc_sli4_if6_write_eq_db - write EQ DB for eqe's consumed or arm state
542 * @phba: adapter with EQ
543 * @q: The Event Queue that the host has completed processing for.
544 * @count: Number of elements that have been consumed
545 * @arm: Indicates whether the host wants to arms this CQ.
547 * This routine will notify the HBA, by ringing the doorbell, that count
548 * number of EQEs have been processed. The @arm parameter indicates whether
549 * the queue should be rearmed when ringing the doorbell.
551 void
552 lpfc_sli4_if6_write_eq_db(struct lpfc_hba *phba, struct lpfc_queue *q,
553 uint32_t count, bool arm)
555 struct lpfc_register doorbell;
557 /* sanity check on queue memory */
558 if (unlikely(!q || (count == 0 && !arm)))
559 return;
561 /* ring doorbell for number popped */
562 doorbell.word0 = 0;
563 if (arm)
564 bf_set(lpfc_if6_eq_doorbell_arm, &doorbell, 1);
565 bf_set(lpfc_if6_eq_doorbell_num_released, &doorbell, count);
566 bf_set(lpfc_if6_eq_doorbell_eqid, &doorbell, q->queue_id);
567 writel(doorbell.word0, q->phba->sli4_hba.EQDBregaddr);
568 /* PCI read to flush PCI pipeline on re-arming for INTx mode */
569 if ((q->phba->intr_type == INTx) && (arm == LPFC_QUEUE_REARM))
570 readl(q->phba->sli4_hba.EQDBregaddr);
573 static void
574 __lpfc_sli4_consume_eqe(struct lpfc_hba *phba, struct lpfc_queue *eq,
575 struct lpfc_eqe *eqe)
577 if (!phba->sli4_hba.pc_sli4_params.eqav)
578 bf_set_le32(lpfc_eqe_valid, eqe, 0);
580 eq->host_index = ((eq->host_index + 1) % eq->entry_count);
582 /* if the index wrapped around, toggle the valid bit */
583 if (phba->sli4_hba.pc_sli4_params.eqav && !eq->host_index)
584 eq->qe_valid = (eq->qe_valid) ? 0 : 1;
587 static void
588 lpfc_sli4_eqcq_flush(struct lpfc_hba *phba, struct lpfc_queue *eq)
590 struct lpfc_eqe *eqe = NULL;
591 u32 eq_count = 0, cq_count = 0;
592 struct lpfc_cqe *cqe = NULL;
593 struct lpfc_queue *cq = NULL, *childq = NULL;
594 int cqid = 0;
596 /* walk all the EQ entries and drop on the floor */
597 eqe = lpfc_sli4_eq_get(eq);
598 while (eqe) {
599 /* Get the reference to the corresponding CQ */
600 cqid = bf_get_le32(lpfc_eqe_resource_id, eqe);
601 cq = NULL;
603 list_for_each_entry(childq, &eq->child_list, list) {
604 if (childq->queue_id == cqid) {
605 cq = childq;
606 break;
609 /* If CQ is valid, iterate through it and drop all the CQEs */
610 if (cq) {
611 cqe = lpfc_sli4_cq_get(cq);
612 while (cqe) {
613 __lpfc_sli4_consume_cqe(phba, cq, cqe);
614 cq_count++;
615 cqe = lpfc_sli4_cq_get(cq);
617 /* Clear and re-arm the CQ */
618 phba->sli4_hba.sli4_write_cq_db(phba, cq, cq_count,
619 LPFC_QUEUE_REARM);
620 cq_count = 0;
622 __lpfc_sli4_consume_eqe(phba, eq, eqe);
623 eq_count++;
624 eqe = lpfc_sli4_eq_get(eq);
627 /* Clear and re-arm the EQ */
628 phba->sli4_hba.sli4_write_eq_db(phba, eq, eq_count, LPFC_QUEUE_REARM);
631 static int
632 lpfc_sli4_process_eq(struct lpfc_hba *phba, struct lpfc_queue *eq,
633 u8 rearm, enum lpfc_poll_mode poll_mode)
635 struct lpfc_eqe *eqe;
636 int count = 0, consumed = 0;
638 if (cmpxchg(&eq->queue_claimed, 0, 1) != 0)
639 goto rearm_and_exit;
641 eqe = lpfc_sli4_eq_get(eq);
642 while (eqe) {
643 lpfc_sli4_hba_handle_eqe(phba, eq, eqe, poll_mode);
644 __lpfc_sli4_consume_eqe(phba, eq, eqe);
646 consumed++;
647 if (!(++count % eq->max_proc_limit))
648 break;
650 if (!(count % eq->notify_interval)) {
651 phba->sli4_hba.sli4_write_eq_db(phba, eq, consumed,
652 LPFC_QUEUE_NOARM);
653 consumed = 0;
656 eqe = lpfc_sli4_eq_get(eq);
658 eq->EQ_processed += count;
660 /* Track the max number of EQEs processed in 1 intr */
661 if (count > eq->EQ_max_eqe)
662 eq->EQ_max_eqe = count;
664 xchg(&eq->queue_claimed, 0);
666 rearm_and_exit:
667 /* Always clear the EQ. */
668 phba->sli4_hba.sli4_write_eq_db(phba, eq, consumed, rearm);
670 return count;
674 * lpfc_sli4_cq_get - Gets the next valid CQE from a CQ
675 * @q: The Completion Queue to get the first valid CQE from
677 * This routine will get the first valid Completion Queue Entry from @q, update
678 * the queue's internal hba index, and return the CQE. If no valid CQEs are in
679 * the Queue (no more work to do), or the Queue is full of CQEs that have been
680 * processed, but not popped back to the HBA then this routine will return NULL.
682 static struct lpfc_cqe *
683 lpfc_sli4_cq_get(struct lpfc_queue *q)
685 struct lpfc_cqe *cqe;
687 /* sanity check on queue memory */
688 if (unlikely(!q))
689 return NULL;
690 cqe = lpfc_sli4_qe(q, q->host_index);
692 /* If the next CQE is not valid then we are done */
693 if (bf_get_le32(lpfc_cqe_valid, cqe) != q->qe_valid)
694 return NULL;
697 * insert barrier for instruction interlock : data from the hardware
698 * must have the valid bit checked before it can be copied and acted
699 * upon. Given what was seen in lpfc_sli4_cq_get() of speculative
700 * instructions allowing action on content before valid bit checked,
701 * add barrier here as well. May not be needed as "content" is a
702 * single 32-bit entity here (vs multi word structure for cq's).
704 mb();
705 return cqe;
708 static void
709 __lpfc_sli4_consume_cqe(struct lpfc_hba *phba, struct lpfc_queue *cq,
710 struct lpfc_cqe *cqe)
712 if (!phba->sli4_hba.pc_sli4_params.cqav)
713 bf_set_le32(lpfc_cqe_valid, cqe, 0);
715 cq->host_index = ((cq->host_index + 1) % cq->entry_count);
717 /* if the index wrapped around, toggle the valid bit */
718 if (phba->sli4_hba.pc_sli4_params.cqav && !cq->host_index)
719 cq->qe_valid = (cq->qe_valid) ? 0 : 1;
723 * lpfc_sli4_write_cq_db - write cq DB for entries consumed or arm state.
724 * @phba: the adapter with the CQ
725 * @q: The Completion Queue that the host has completed processing for.
726 * @count: the number of elements that were consumed
727 * @arm: Indicates whether the host wants to arms this CQ.
729 * This routine will notify the HBA, by ringing the doorbell, that the
730 * CQEs have been processed. The @arm parameter specifies whether the
731 * queue should be rearmed when ringing the doorbell.
733 void
734 lpfc_sli4_write_cq_db(struct lpfc_hba *phba, struct lpfc_queue *q,
735 uint32_t count, bool arm)
737 struct lpfc_register doorbell;
739 /* sanity check on queue memory */
740 if (unlikely(!q || (count == 0 && !arm)))
741 return;
743 /* ring doorbell for number popped */
744 doorbell.word0 = 0;
745 if (arm)
746 bf_set(lpfc_eqcq_doorbell_arm, &doorbell, 1);
747 bf_set(lpfc_eqcq_doorbell_num_released, &doorbell, count);
748 bf_set(lpfc_eqcq_doorbell_qt, &doorbell, LPFC_QUEUE_TYPE_COMPLETION);
749 bf_set(lpfc_eqcq_doorbell_cqid_hi, &doorbell,
750 (q->queue_id >> LPFC_CQID_HI_FIELD_SHIFT));
751 bf_set(lpfc_eqcq_doorbell_cqid_lo, &doorbell, q->queue_id);
752 writel(doorbell.word0, q->phba->sli4_hba.CQDBregaddr);
756 * lpfc_sli4_if6_write_cq_db - write cq DB for entries consumed or arm state.
757 * @phba: the adapter with the CQ
758 * @q: The Completion Queue that the host has completed processing for.
759 * @count: the number of elements that were consumed
760 * @arm: Indicates whether the host wants to arms this CQ.
762 * This routine will notify the HBA, by ringing the doorbell, that the
763 * CQEs have been processed. The @arm parameter specifies whether the
764 * queue should be rearmed when ringing the doorbell.
766 void
767 lpfc_sli4_if6_write_cq_db(struct lpfc_hba *phba, struct lpfc_queue *q,
768 uint32_t count, bool arm)
770 struct lpfc_register doorbell;
772 /* sanity check on queue memory */
773 if (unlikely(!q || (count == 0 && !arm)))
774 return;
776 /* ring doorbell for number popped */
777 doorbell.word0 = 0;
778 if (arm)
779 bf_set(lpfc_if6_cq_doorbell_arm, &doorbell, 1);
780 bf_set(lpfc_if6_cq_doorbell_num_released, &doorbell, count);
781 bf_set(lpfc_if6_cq_doorbell_cqid, &doorbell, q->queue_id);
782 writel(doorbell.word0, q->phba->sli4_hba.CQDBregaddr);
786 * lpfc_sli4_rq_put - Put a Receive Buffer Queue Entry on a Receive Queue
788 * This routine will copy the contents of @wqe to the next available entry on
789 * the @q. This function will then ring the Receive Queue Doorbell to signal the
790 * HBA to start processing the Receive Queue Entry. This function returns the
791 * index that the rqe was copied to if successful. If no entries are available
792 * on @q then this function will return -ENOMEM.
793 * The caller is expected to hold the hbalock when calling this routine.
796 lpfc_sli4_rq_put(struct lpfc_queue *hq, struct lpfc_queue *dq,
797 struct lpfc_rqe *hrqe, struct lpfc_rqe *drqe)
799 struct lpfc_rqe *temp_hrqe;
800 struct lpfc_rqe *temp_drqe;
801 struct lpfc_register doorbell;
802 int hq_put_index;
803 int dq_put_index;
805 /* sanity check on queue memory */
806 if (unlikely(!hq) || unlikely(!dq))
807 return -ENOMEM;
808 hq_put_index = hq->host_index;
809 dq_put_index = dq->host_index;
810 temp_hrqe = lpfc_sli4_qe(hq, hq_put_index);
811 temp_drqe = lpfc_sli4_qe(dq, dq_put_index);
813 if (hq->type != LPFC_HRQ || dq->type != LPFC_DRQ)
814 return -EINVAL;
815 if (hq_put_index != dq_put_index)
816 return -EINVAL;
817 /* If the host has not yet processed the next entry then we are done */
818 if (((hq_put_index + 1) % hq->entry_count) == hq->hba_index)
819 return -EBUSY;
820 lpfc_sli4_pcimem_bcopy(hrqe, temp_hrqe, hq->entry_size);
821 lpfc_sli4_pcimem_bcopy(drqe, temp_drqe, dq->entry_size);
823 /* Update the host index to point to the next slot */
824 hq->host_index = ((hq_put_index + 1) % hq->entry_count);
825 dq->host_index = ((dq_put_index + 1) % dq->entry_count);
826 hq->RQ_buf_posted++;
828 /* Ring The Header Receive Queue Doorbell */
829 if (!(hq->host_index % hq->notify_interval)) {
830 doorbell.word0 = 0;
831 if (hq->db_format == LPFC_DB_RING_FORMAT) {
832 bf_set(lpfc_rq_db_ring_fm_num_posted, &doorbell,
833 hq->notify_interval);
834 bf_set(lpfc_rq_db_ring_fm_id, &doorbell, hq->queue_id);
835 } else if (hq->db_format == LPFC_DB_LIST_FORMAT) {
836 bf_set(lpfc_rq_db_list_fm_num_posted, &doorbell,
837 hq->notify_interval);
838 bf_set(lpfc_rq_db_list_fm_index, &doorbell,
839 hq->host_index);
840 bf_set(lpfc_rq_db_list_fm_id, &doorbell, hq->queue_id);
841 } else {
842 return -EINVAL;
844 writel(doorbell.word0, hq->db_regaddr);
846 return hq_put_index;
850 * lpfc_sli4_rq_release - Updates internal hba index for RQ
852 * This routine will update the HBA index of a queue to reflect consumption of
853 * one Receive Queue Entry by the HBA. When the HBA indicates that it has
854 * consumed an entry the host calls this function to update the queue's
855 * internal pointers. This routine returns the number of entries that were
856 * consumed by the HBA.
858 static uint32_t
859 lpfc_sli4_rq_release(struct lpfc_queue *hq, struct lpfc_queue *dq)
861 /* sanity check on queue memory */
862 if (unlikely(!hq) || unlikely(!dq))
863 return 0;
865 if ((hq->type != LPFC_HRQ) || (dq->type != LPFC_DRQ))
866 return 0;
867 hq->hba_index = ((hq->hba_index + 1) % hq->entry_count);
868 dq->hba_index = ((dq->hba_index + 1) % dq->entry_count);
869 return 1;
873 * lpfc_cmd_iocb - Get next command iocb entry in the ring
874 * @phba: Pointer to HBA context object.
875 * @pring: Pointer to driver SLI ring object.
877 * This function returns pointer to next command iocb entry
878 * in the command ring. The caller must hold hbalock to prevent
879 * other threads consume the next command iocb.
880 * SLI-2/SLI-3 provide different sized iocbs.
882 static inline IOCB_t *
883 lpfc_cmd_iocb(struct lpfc_hba *phba, struct lpfc_sli_ring *pring)
885 return (IOCB_t *) (((char *) pring->sli.sli3.cmdringaddr) +
886 pring->sli.sli3.cmdidx * phba->iocb_cmd_size);
890 * lpfc_resp_iocb - Get next response iocb entry in the ring
891 * @phba: Pointer to HBA context object.
892 * @pring: Pointer to driver SLI ring object.
894 * This function returns pointer to next response iocb entry
895 * in the response ring. The caller must hold hbalock to make sure
896 * that no other thread consume the next response iocb.
897 * SLI-2/SLI-3 provide different sized iocbs.
899 static inline IOCB_t *
900 lpfc_resp_iocb(struct lpfc_hba *phba, struct lpfc_sli_ring *pring)
902 return (IOCB_t *) (((char *) pring->sli.sli3.rspringaddr) +
903 pring->sli.sli3.rspidx * phba->iocb_rsp_size);
907 * __lpfc_sli_get_iocbq - Allocates an iocb object from iocb pool
908 * @phba: Pointer to HBA context object.
910 * This function is called with hbalock held. This function
911 * allocates a new driver iocb object from the iocb pool. If the
912 * allocation is successful, it returns pointer to the newly
913 * allocated iocb object else it returns NULL.
915 struct lpfc_iocbq *
916 __lpfc_sli_get_iocbq(struct lpfc_hba *phba)
918 struct list_head *lpfc_iocb_list = &phba->lpfc_iocb_list;
919 struct lpfc_iocbq * iocbq = NULL;
921 lockdep_assert_held(&phba->hbalock);
923 list_remove_head(lpfc_iocb_list, iocbq, struct lpfc_iocbq, list);
924 if (iocbq)
925 phba->iocb_cnt++;
926 if (phba->iocb_cnt > phba->iocb_max)
927 phba->iocb_max = phba->iocb_cnt;
928 return iocbq;
932 * __lpfc_clear_active_sglq - Remove the active sglq for this XRI.
933 * @phba: Pointer to HBA context object.
934 * @xritag: XRI value.
936 * This function clears the sglq pointer from the array of active
937 * sglq's. The xritag that is passed in is used to index into the
938 * array. Before the xritag can be used it needs to be adjusted
939 * by subtracting the xribase.
941 * Returns sglq ponter = success, NULL = Failure.
943 struct lpfc_sglq *
944 __lpfc_clear_active_sglq(struct lpfc_hba *phba, uint16_t xritag)
946 struct lpfc_sglq *sglq;
948 sglq = phba->sli4_hba.lpfc_sglq_active_list[xritag];
949 phba->sli4_hba.lpfc_sglq_active_list[xritag] = NULL;
950 return sglq;
954 * __lpfc_get_active_sglq - Get the active sglq for this XRI.
955 * @phba: Pointer to HBA context object.
956 * @xritag: XRI value.
958 * This function returns the sglq pointer from the array of active
959 * sglq's. The xritag that is passed in is used to index into the
960 * array. Before the xritag can be used it needs to be adjusted
961 * by subtracting the xribase.
963 * Returns sglq ponter = success, NULL = Failure.
965 struct lpfc_sglq *
966 __lpfc_get_active_sglq(struct lpfc_hba *phba, uint16_t xritag)
968 struct lpfc_sglq *sglq;
970 sglq = phba->sli4_hba.lpfc_sglq_active_list[xritag];
971 return sglq;
975 * lpfc_clr_rrq_active - Clears RRQ active bit in xri_bitmap.
976 * @phba: Pointer to HBA context object.
977 * @xritag: xri used in this exchange.
978 * @rrq: The RRQ to be cleared.
981 void
982 lpfc_clr_rrq_active(struct lpfc_hba *phba,
983 uint16_t xritag,
984 struct lpfc_node_rrq *rrq)
986 struct lpfc_nodelist *ndlp = NULL;
988 /* Lookup did to verify if did is still active on this vport */
989 if (rrq->vport)
990 ndlp = lpfc_findnode_did(rrq->vport, rrq->nlp_DID);
992 if (!ndlp)
993 goto out;
995 if (test_and_clear_bit(xritag, ndlp->active_rrqs_xri_bitmap)) {
996 rrq->send_rrq = 0;
997 rrq->xritag = 0;
998 rrq->rrq_stop_time = 0;
1000 out:
1001 mempool_free(rrq, phba->rrq_pool);
1005 * lpfc_handle_rrq_active - Checks if RRQ has waithed RATOV.
1006 * @phba: Pointer to HBA context object.
1008 * This function is called with hbalock held. This function
1009 * Checks if stop_time (ratov from setting rrq active) has
1010 * been reached, if it has and the send_rrq flag is set then
1011 * it will call lpfc_send_rrq. If the send_rrq flag is not set
1012 * then it will just call the routine to clear the rrq and
1013 * free the rrq resource.
1014 * The timer is set to the next rrq that is going to expire before
1015 * leaving the routine.
1018 void
1019 lpfc_handle_rrq_active(struct lpfc_hba *phba)
1021 struct lpfc_node_rrq *rrq;
1022 struct lpfc_node_rrq *nextrrq;
1023 unsigned long next_time;
1024 unsigned long iflags;
1025 LIST_HEAD(send_rrq);
1027 clear_bit(HBA_RRQ_ACTIVE, &phba->hba_flag);
1028 next_time = jiffies + msecs_to_jiffies(1000 * (phba->fc_ratov + 1));
1029 spin_lock_irqsave(&phba->rrq_list_lock, iflags);
1030 list_for_each_entry_safe(rrq, nextrrq,
1031 &phba->active_rrq_list, list) {
1032 if (time_after(jiffies, rrq->rrq_stop_time))
1033 list_move(&rrq->list, &send_rrq);
1034 else if (time_before(rrq->rrq_stop_time, next_time))
1035 next_time = rrq->rrq_stop_time;
1037 spin_unlock_irqrestore(&phba->rrq_list_lock, iflags);
1038 if ((!list_empty(&phba->active_rrq_list)) &&
1039 (!test_bit(FC_UNLOADING, &phba->pport->load_flag)))
1040 mod_timer(&phba->rrq_tmr, next_time);
1041 list_for_each_entry_safe(rrq, nextrrq, &send_rrq, list) {
1042 list_del(&rrq->list);
1043 if (!rrq->send_rrq) {
1044 /* this call will free the rrq */
1045 lpfc_clr_rrq_active(phba, rrq->xritag, rrq);
1046 } else if (lpfc_send_rrq(phba, rrq)) {
1047 /* if we send the rrq then the completion handler
1048 * will clear the bit in the xribitmap.
1050 lpfc_clr_rrq_active(phba, rrq->xritag,
1051 rrq);
1057 * lpfc_get_active_rrq - Get the active RRQ for this exchange.
1058 * @vport: Pointer to vport context object.
1059 * @xri: The xri used in the exchange.
1060 * @did: The targets DID for this exchange.
1062 * returns NULL = rrq not found in the phba->active_rrq_list.
1063 * rrq = rrq for this xri and target.
1065 struct lpfc_node_rrq *
1066 lpfc_get_active_rrq(struct lpfc_vport *vport, uint16_t xri, uint32_t did)
1068 struct lpfc_hba *phba = vport->phba;
1069 struct lpfc_node_rrq *rrq;
1070 struct lpfc_node_rrq *nextrrq;
1071 unsigned long iflags;
1073 if (phba->sli_rev != LPFC_SLI_REV4)
1074 return NULL;
1075 spin_lock_irqsave(&phba->rrq_list_lock, iflags);
1076 list_for_each_entry_safe(rrq, nextrrq, &phba->active_rrq_list, list) {
1077 if (rrq->vport == vport && rrq->xritag == xri &&
1078 rrq->nlp_DID == did){
1079 list_del(&rrq->list);
1080 spin_unlock_irqrestore(&phba->rrq_list_lock, iflags);
1081 return rrq;
1084 spin_unlock_irqrestore(&phba->rrq_list_lock, iflags);
1085 return NULL;
1089 * lpfc_cleanup_vports_rrqs - Remove and clear the active RRQ for this vport.
1090 * @vport: Pointer to vport context object.
1091 * @ndlp: Pointer to the lpfc_node_list structure.
1092 * If ndlp is NULL Remove all active RRQs for this vport from the
1093 * phba->active_rrq_list and clear the rrq.
1094 * If ndlp is not NULL then only remove rrqs for this vport & this ndlp.
1096 void
1097 lpfc_cleanup_vports_rrqs(struct lpfc_vport *vport, struct lpfc_nodelist *ndlp)
1100 struct lpfc_hba *phba = vport->phba;
1101 struct lpfc_node_rrq *rrq;
1102 struct lpfc_node_rrq *nextrrq;
1103 unsigned long iflags;
1104 LIST_HEAD(rrq_list);
1106 if (phba->sli_rev != LPFC_SLI_REV4)
1107 return;
1108 if (!ndlp) {
1109 lpfc_sli4_vport_delete_els_xri_aborted(vport);
1110 lpfc_sli4_vport_delete_fcp_xri_aborted(vport);
1112 spin_lock_irqsave(&phba->rrq_list_lock, iflags);
1113 list_for_each_entry_safe(rrq, nextrrq, &phba->active_rrq_list, list) {
1114 if (rrq->vport != vport)
1115 continue;
1117 if (!ndlp || ndlp == lpfc_findnode_did(vport, rrq->nlp_DID))
1118 list_move(&rrq->list, &rrq_list);
1121 spin_unlock_irqrestore(&phba->rrq_list_lock, iflags);
1123 list_for_each_entry_safe(rrq, nextrrq, &rrq_list, list) {
1124 list_del(&rrq->list);
1125 lpfc_clr_rrq_active(phba, rrq->xritag, rrq);
1130 * lpfc_test_rrq_active - Test RRQ bit in xri_bitmap.
1131 * @phba: Pointer to HBA context object.
1132 * @ndlp: Targets nodelist pointer for this exchange.
1133 * @xritag: the xri in the bitmap to test.
1135 * This function returns:
1136 * 0 = rrq not active for this xri
1137 * 1 = rrq is valid for this xri.
1140 lpfc_test_rrq_active(struct lpfc_hba *phba, struct lpfc_nodelist *ndlp,
1141 uint16_t xritag)
1143 if (!ndlp)
1144 return 0;
1145 if (!ndlp->active_rrqs_xri_bitmap)
1146 return 0;
1147 if (test_bit(xritag, ndlp->active_rrqs_xri_bitmap))
1148 return 1;
1149 else
1150 return 0;
1154 * lpfc_set_rrq_active - set RRQ active bit in xri_bitmap.
1155 * @phba: Pointer to HBA context object.
1156 * @ndlp: nodelist pointer for this target.
1157 * @xritag: xri used in this exchange.
1158 * @rxid: Remote Exchange ID.
1159 * @send_rrq: Flag used to determine if we should send rrq els cmd.
1161 * This function takes the hbalock.
1162 * The active bit is always set in the active rrq xri_bitmap even
1163 * if there is no slot avaiable for the other rrq information.
1165 * returns 0 rrq actived for this xri
1166 * < 0 No memory or invalid ndlp.
1169 lpfc_set_rrq_active(struct lpfc_hba *phba, struct lpfc_nodelist *ndlp,
1170 uint16_t xritag, uint16_t rxid, uint16_t send_rrq)
1172 unsigned long iflags;
1173 struct lpfc_node_rrq *rrq;
1174 int empty;
1176 if (!ndlp)
1177 return -EINVAL;
1179 if (!phba->cfg_enable_rrq)
1180 return -EINVAL;
1182 if (test_bit(FC_UNLOADING, &phba->pport->load_flag)) {
1183 clear_bit(HBA_RRQ_ACTIVE, &phba->hba_flag);
1184 goto outnl;
1187 spin_lock_irqsave(&phba->hbalock, iflags);
1188 if (ndlp->vport && test_bit(FC_UNLOADING, &ndlp->vport->load_flag))
1189 goto out;
1191 if (!ndlp->active_rrqs_xri_bitmap)
1192 goto out;
1194 if (test_and_set_bit(xritag, ndlp->active_rrqs_xri_bitmap))
1195 goto out;
1197 spin_unlock_irqrestore(&phba->hbalock, iflags);
1198 rrq = mempool_alloc(phba->rrq_pool, GFP_ATOMIC);
1199 if (!rrq) {
1200 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
1201 "3155 Unable to allocate RRQ xri:0x%x rxid:0x%x"
1202 " DID:0x%x Send:%d\n",
1203 xritag, rxid, ndlp->nlp_DID, send_rrq);
1204 return -EINVAL;
1206 if (phba->cfg_enable_rrq == 1)
1207 rrq->send_rrq = send_rrq;
1208 else
1209 rrq->send_rrq = 0;
1210 rrq->xritag = xritag;
1211 rrq->rrq_stop_time = jiffies +
1212 msecs_to_jiffies(1000 * (phba->fc_ratov + 1));
1213 rrq->nlp_DID = ndlp->nlp_DID;
1214 rrq->vport = ndlp->vport;
1215 rrq->rxid = rxid;
1217 spin_lock_irqsave(&phba->rrq_list_lock, iflags);
1218 empty = list_empty(&phba->active_rrq_list);
1219 list_add_tail(&rrq->list, &phba->active_rrq_list);
1220 spin_unlock_irqrestore(&phba->rrq_list_lock, iflags);
1221 set_bit(HBA_RRQ_ACTIVE, &phba->hba_flag);
1222 if (empty)
1223 lpfc_worker_wake_up(phba);
1224 return 0;
1225 out:
1226 spin_unlock_irqrestore(&phba->hbalock, iflags);
1227 outnl:
1228 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
1229 "2921 Can't set rrq active xri:0x%x rxid:0x%x"
1230 " DID:0x%x Send:%d\n",
1231 xritag, rxid, ndlp->nlp_DID, send_rrq);
1232 return -EINVAL;
1236 * __lpfc_sli_get_els_sglq - Allocates an iocb object from sgl pool
1237 * @phba: Pointer to HBA context object.
1238 * @piocbq: Pointer to the iocbq.
1240 * The driver calls this function with either the nvme ls ring lock
1241 * or the fc els ring lock held depending on the iocb usage. This function
1242 * gets a new driver sglq object from the sglq list. If the list is not empty
1243 * then it is successful, it returns pointer to the newly allocated sglq
1244 * object else it returns NULL.
1246 static struct lpfc_sglq *
1247 __lpfc_sli_get_els_sglq(struct lpfc_hba *phba, struct lpfc_iocbq *piocbq)
1249 struct list_head *lpfc_els_sgl_list = &phba->sli4_hba.lpfc_els_sgl_list;
1250 struct lpfc_sglq *sglq = NULL;
1251 struct lpfc_sglq *start_sglq = NULL;
1252 struct lpfc_io_buf *lpfc_cmd;
1253 struct lpfc_nodelist *ndlp;
1254 int found = 0;
1255 u8 cmnd;
1257 cmnd = get_job_cmnd(phba, piocbq);
1259 if (piocbq->cmd_flag & LPFC_IO_FCP) {
1260 lpfc_cmd = piocbq->io_buf;
1261 ndlp = lpfc_cmd->rdata->pnode;
1262 } else if ((cmnd == CMD_GEN_REQUEST64_CR) &&
1263 !(piocbq->cmd_flag & LPFC_IO_LIBDFC)) {
1264 ndlp = piocbq->ndlp;
1265 } else if (piocbq->cmd_flag & LPFC_IO_LIBDFC) {
1266 if (piocbq->cmd_flag & LPFC_IO_LOOPBACK)
1267 ndlp = NULL;
1268 else
1269 ndlp = piocbq->ndlp;
1270 } else {
1271 ndlp = piocbq->ndlp;
1274 spin_lock(&phba->sli4_hba.sgl_list_lock);
1275 list_remove_head(lpfc_els_sgl_list, sglq, struct lpfc_sglq, list);
1276 start_sglq = sglq;
1277 while (!found) {
1278 if (!sglq)
1279 break;
1280 if (ndlp && ndlp->active_rrqs_xri_bitmap &&
1281 test_bit(sglq->sli4_lxritag,
1282 ndlp->active_rrqs_xri_bitmap)) {
1283 /* This xri has an rrq outstanding for this DID.
1284 * put it back in the list and get another xri.
1286 list_add_tail(&sglq->list, lpfc_els_sgl_list);
1287 sglq = NULL;
1288 list_remove_head(lpfc_els_sgl_list, sglq,
1289 struct lpfc_sglq, list);
1290 if (sglq == start_sglq) {
1291 list_add_tail(&sglq->list, lpfc_els_sgl_list);
1292 sglq = NULL;
1293 break;
1294 } else
1295 continue;
1297 sglq->ndlp = ndlp;
1298 found = 1;
1299 phba->sli4_hba.lpfc_sglq_active_list[sglq->sli4_lxritag] = sglq;
1300 sglq->state = SGL_ALLOCATED;
1302 spin_unlock(&phba->sli4_hba.sgl_list_lock);
1303 return sglq;
1307 * __lpfc_sli_get_nvmet_sglq - Allocates an iocb object from sgl pool
1308 * @phba: Pointer to HBA context object.
1309 * @piocbq: Pointer to the iocbq.
1311 * This function is called with the sgl_list lock held. This function
1312 * gets a new driver sglq object from the sglq list. If the
1313 * list is not empty then it is successful, it returns pointer to the newly
1314 * allocated sglq object else it returns NULL.
1316 struct lpfc_sglq *
1317 __lpfc_sli_get_nvmet_sglq(struct lpfc_hba *phba, struct lpfc_iocbq *piocbq)
1319 struct list_head *lpfc_nvmet_sgl_list;
1320 struct lpfc_sglq *sglq = NULL;
1322 lpfc_nvmet_sgl_list = &phba->sli4_hba.lpfc_nvmet_sgl_list;
1324 lockdep_assert_held(&phba->sli4_hba.sgl_list_lock);
1326 list_remove_head(lpfc_nvmet_sgl_list, sglq, struct lpfc_sglq, list);
1327 if (!sglq)
1328 return NULL;
1329 phba->sli4_hba.lpfc_sglq_active_list[sglq->sli4_lxritag] = sglq;
1330 sglq->state = SGL_ALLOCATED;
1331 return sglq;
1335 * lpfc_sli_get_iocbq - Allocates an iocb object from iocb pool
1336 * @phba: Pointer to HBA context object.
1338 * This function is called with no lock held. This function
1339 * allocates a new driver iocb object from the iocb pool. If the
1340 * allocation is successful, it returns pointer to the newly
1341 * allocated iocb object else it returns NULL.
1343 struct lpfc_iocbq *
1344 lpfc_sli_get_iocbq(struct lpfc_hba *phba)
1346 struct lpfc_iocbq * iocbq = NULL;
1347 unsigned long iflags;
1349 spin_lock_irqsave(&phba->hbalock, iflags);
1350 iocbq = __lpfc_sli_get_iocbq(phba);
1351 spin_unlock_irqrestore(&phba->hbalock, iflags);
1352 return iocbq;
1356 * __lpfc_sli_release_iocbq_s4 - Release iocb to the iocb pool
1357 * @phba: Pointer to HBA context object.
1358 * @iocbq: Pointer to driver iocb object.
1360 * This function is called to release the driver iocb object
1361 * to the iocb pool. The iotag in the iocb object
1362 * does not change for each use of the iocb object. This function
1363 * clears all other fields of the iocb object when it is freed.
1364 * The sqlq structure that holds the xritag and phys and virtual
1365 * mappings for the scatter gather list is retrieved from the
1366 * active array of sglq. The get of the sglq pointer also clears
1367 * the entry in the array. If the status of the IO indiactes that
1368 * this IO was aborted then the sglq entry it put on the
1369 * lpfc_abts_els_sgl_list until the CQ_ABORTED_XRI is received. If the
1370 * IO has good status or fails for any other reason then the sglq
1371 * entry is added to the free list (lpfc_els_sgl_list). The hbalock is
1372 * asserted held in the code path calling this routine.
1374 static void
1375 __lpfc_sli_release_iocbq_s4(struct lpfc_hba *phba, struct lpfc_iocbq *iocbq)
1377 struct lpfc_sglq *sglq;
1378 unsigned long iflag = 0;
1379 struct lpfc_sli_ring *pring;
1381 if (iocbq->sli4_xritag == NO_XRI)
1382 sglq = NULL;
1383 else
1384 sglq = __lpfc_clear_active_sglq(phba, iocbq->sli4_lxritag);
1387 if (sglq) {
1388 if (iocbq->cmd_flag & LPFC_IO_NVMET) {
1389 spin_lock_irqsave(&phba->sli4_hba.sgl_list_lock,
1390 iflag);
1391 sglq->state = SGL_FREED;
1392 sglq->ndlp = NULL;
1393 list_add_tail(&sglq->list,
1394 &phba->sli4_hba.lpfc_nvmet_sgl_list);
1395 spin_unlock_irqrestore(
1396 &phba->sli4_hba.sgl_list_lock, iflag);
1397 goto out;
1400 if ((iocbq->cmd_flag & LPFC_EXCHANGE_BUSY) &&
1401 (!(unlikely(pci_channel_offline(phba->pcidev)))) &&
1402 sglq->state != SGL_XRI_ABORTED) {
1403 spin_lock_irqsave(&phba->sli4_hba.sgl_list_lock,
1404 iflag);
1406 /* Check if we can get a reference on ndlp */
1407 if (sglq->ndlp && !lpfc_nlp_get(sglq->ndlp))
1408 sglq->ndlp = NULL;
1410 list_add(&sglq->list,
1411 &phba->sli4_hba.lpfc_abts_els_sgl_list);
1412 spin_unlock_irqrestore(
1413 &phba->sli4_hba.sgl_list_lock, iflag);
1414 } else {
1415 spin_lock_irqsave(&phba->sli4_hba.sgl_list_lock,
1416 iflag);
1417 sglq->state = SGL_FREED;
1418 sglq->ndlp = NULL;
1419 list_add_tail(&sglq->list,
1420 &phba->sli4_hba.lpfc_els_sgl_list);
1421 spin_unlock_irqrestore(
1422 &phba->sli4_hba.sgl_list_lock, iflag);
1423 pring = lpfc_phba_elsring(phba);
1424 /* Check if TXQ queue needs to be serviced */
1425 if (pring && (!list_empty(&pring->txq)))
1426 lpfc_worker_wake_up(phba);
1430 out:
1432 * Clean all volatile data fields, preserve iotag and node struct.
1434 memset_startat(iocbq, 0, wqe);
1435 iocbq->sli4_lxritag = NO_XRI;
1436 iocbq->sli4_xritag = NO_XRI;
1437 iocbq->cmd_flag &= ~(LPFC_IO_NVME | LPFC_IO_NVMET | LPFC_IO_CMF |
1438 LPFC_IO_NVME_LS);
1439 list_add_tail(&iocbq->list, &phba->lpfc_iocb_list);
1444 * __lpfc_sli_release_iocbq_s3 - Release iocb to the iocb pool
1445 * @phba: Pointer to HBA context object.
1446 * @iocbq: Pointer to driver iocb object.
1448 * This function is called to release the driver iocb object to the
1449 * iocb pool. The iotag in the iocb object does not change for each
1450 * use of the iocb object. This function clears all other fields of
1451 * the iocb object when it is freed. The hbalock is asserted held in
1452 * the code path calling this routine.
1454 static void
1455 __lpfc_sli_release_iocbq_s3(struct lpfc_hba *phba, struct lpfc_iocbq *iocbq)
1459 * Clean all volatile data fields, preserve iotag and node struct.
1461 memset_startat(iocbq, 0, iocb);
1462 iocbq->sli4_xritag = NO_XRI;
1463 list_add_tail(&iocbq->list, &phba->lpfc_iocb_list);
1467 * __lpfc_sli_release_iocbq - Release iocb to the iocb pool
1468 * @phba: Pointer to HBA context object.
1469 * @iocbq: Pointer to driver iocb object.
1471 * This function is called with hbalock held to release driver
1472 * iocb object to the iocb pool. The iotag in the iocb object
1473 * does not change for each use of the iocb object. This function
1474 * clears all other fields of the iocb object when it is freed.
1476 static void
1477 __lpfc_sli_release_iocbq(struct lpfc_hba *phba, struct lpfc_iocbq *iocbq)
1479 lockdep_assert_held(&phba->hbalock);
1481 phba->__lpfc_sli_release_iocbq(phba, iocbq);
1482 phba->iocb_cnt--;
1486 * lpfc_sli_release_iocbq - Release iocb to the iocb pool
1487 * @phba: Pointer to HBA context object.
1488 * @iocbq: Pointer to driver iocb object.
1490 * This function is called with no lock held to release the iocb to
1491 * iocb pool.
1493 void
1494 lpfc_sli_release_iocbq(struct lpfc_hba *phba, struct lpfc_iocbq *iocbq)
1496 unsigned long iflags;
1499 * Clean all volatile data fields, preserve iotag and node struct.
1501 spin_lock_irqsave(&phba->hbalock, iflags);
1502 __lpfc_sli_release_iocbq(phba, iocbq);
1503 spin_unlock_irqrestore(&phba->hbalock, iflags);
1507 * lpfc_sli_cancel_iocbs - Cancel all iocbs from a list.
1508 * @phba: Pointer to HBA context object.
1509 * @iocblist: List of IOCBs.
1510 * @ulpstatus: ULP status in IOCB command field.
1511 * @ulpWord4: ULP word-4 in IOCB command field.
1513 * This function is called with a list of IOCBs to cancel. It cancels the IOCB
1514 * on the list by invoking the complete callback function associated with the
1515 * IOCB with the provided @ulpstatus and @ulpword4 set to the IOCB commond
1516 * fields.
1518 void
1519 lpfc_sli_cancel_iocbs(struct lpfc_hba *phba, struct list_head *iocblist,
1520 uint32_t ulpstatus, uint32_t ulpWord4)
1522 struct lpfc_iocbq *piocb;
1524 while (!list_empty(iocblist)) {
1525 list_remove_head(iocblist, piocb, struct lpfc_iocbq, list);
1526 if (piocb->cmd_cmpl) {
1527 if (piocb->cmd_flag & LPFC_IO_NVME) {
1528 lpfc_nvme_cancel_iocb(phba, piocb,
1529 ulpstatus, ulpWord4);
1530 } else {
1531 if (phba->sli_rev == LPFC_SLI_REV4) {
1532 bf_set(lpfc_wcqe_c_status,
1533 &piocb->wcqe_cmpl, ulpstatus);
1534 piocb->wcqe_cmpl.parameter = ulpWord4;
1535 } else {
1536 piocb->iocb.ulpStatus = ulpstatus;
1537 piocb->iocb.un.ulpWord[4] = ulpWord4;
1539 (piocb->cmd_cmpl) (phba, piocb, piocb);
1541 } else {
1542 lpfc_sli_release_iocbq(phba, piocb);
1545 return;
1549 * lpfc_sli_iocb_cmd_type - Get the iocb type
1550 * @iocb_cmnd: iocb command code.
1552 * This function is called by ring event handler function to get the iocb type.
1553 * This function translates the iocb command to an iocb command type used to
1554 * decide the final disposition of each completed IOCB.
1555 * The function returns
1556 * LPFC_UNKNOWN_IOCB if it is an unsupported iocb
1557 * LPFC_SOL_IOCB if it is a solicited iocb completion
1558 * LPFC_ABORT_IOCB if it is an abort iocb
1559 * LPFC_UNSOL_IOCB if it is an unsolicited iocb
1561 * The caller is not required to hold any lock.
1563 static lpfc_iocb_type
1564 lpfc_sli_iocb_cmd_type(uint8_t iocb_cmnd)
1566 lpfc_iocb_type type = LPFC_UNKNOWN_IOCB;
1568 if (iocb_cmnd > CMD_MAX_IOCB_CMD)
1569 return 0;
1571 switch (iocb_cmnd) {
1572 case CMD_XMIT_SEQUENCE_CR:
1573 case CMD_XMIT_SEQUENCE_CX:
1574 case CMD_XMIT_BCAST_CN:
1575 case CMD_XMIT_BCAST_CX:
1576 case CMD_ELS_REQUEST_CR:
1577 case CMD_ELS_REQUEST_CX:
1578 case CMD_CREATE_XRI_CR:
1579 case CMD_CREATE_XRI_CX:
1580 case CMD_GET_RPI_CN:
1581 case CMD_XMIT_ELS_RSP_CX:
1582 case CMD_GET_RPI_CR:
1583 case CMD_FCP_IWRITE_CR:
1584 case CMD_FCP_IWRITE_CX:
1585 case CMD_FCP_IREAD_CR:
1586 case CMD_FCP_IREAD_CX:
1587 case CMD_FCP_ICMND_CR:
1588 case CMD_FCP_ICMND_CX:
1589 case CMD_FCP_TSEND_CX:
1590 case CMD_FCP_TRSP_CX:
1591 case CMD_FCP_TRECEIVE_CX:
1592 case CMD_FCP_AUTO_TRSP_CX:
1593 case CMD_ADAPTER_MSG:
1594 case CMD_ADAPTER_DUMP:
1595 case CMD_XMIT_SEQUENCE64_CR:
1596 case CMD_XMIT_SEQUENCE64_CX:
1597 case CMD_XMIT_BCAST64_CN:
1598 case CMD_XMIT_BCAST64_CX:
1599 case CMD_ELS_REQUEST64_CR:
1600 case CMD_ELS_REQUEST64_CX:
1601 case CMD_FCP_IWRITE64_CR:
1602 case CMD_FCP_IWRITE64_CX:
1603 case CMD_FCP_IREAD64_CR:
1604 case CMD_FCP_IREAD64_CX:
1605 case CMD_FCP_ICMND64_CR:
1606 case CMD_FCP_ICMND64_CX:
1607 case CMD_FCP_TSEND64_CX:
1608 case CMD_FCP_TRSP64_CX:
1609 case CMD_FCP_TRECEIVE64_CX:
1610 case CMD_GEN_REQUEST64_CR:
1611 case CMD_GEN_REQUEST64_CX:
1612 case CMD_XMIT_ELS_RSP64_CX:
1613 case DSSCMD_IWRITE64_CR:
1614 case DSSCMD_IWRITE64_CX:
1615 case DSSCMD_IREAD64_CR:
1616 case DSSCMD_IREAD64_CX:
1617 case CMD_SEND_FRAME:
1618 type = LPFC_SOL_IOCB;
1619 break;
1620 case CMD_ABORT_XRI_CN:
1621 case CMD_ABORT_XRI_CX:
1622 case CMD_CLOSE_XRI_CN:
1623 case CMD_CLOSE_XRI_CX:
1624 case CMD_XRI_ABORTED_CX:
1625 case CMD_ABORT_MXRI64_CN:
1626 case CMD_XMIT_BLS_RSP64_CX:
1627 type = LPFC_ABORT_IOCB;
1628 break;
1629 case CMD_RCV_SEQUENCE_CX:
1630 case CMD_RCV_ELS_REQ_CX:
1631 case CMD_RCV_SEQUENCE64_CX:
1632 case CMD_RCV_ELS_REQ64_CX:
1633 case CMD_ASYNC_STATUS:
1634 case CMD_IOCB_RCV_SEQ64_CX:
1635 case CMD_IOCB_RCV_ELS64_CX:
1636 case CMD_IOCB_RCV_CONT64_CX:
1637 case CMD_IOCB_RET_XRI64_CX:
1638 type = LPFC_UNSOL_IOCB;
1639 break;
1640 case CMD_IOCB_XMIT_MSEQ64_CR:
1641 case CMD_IOCB_XMIT_MSEQ64_CX:
1642 case CMD_IOCB_RCV_SEQ_LIST64_CX:
1643 case CMD_IOCB_RCV_ELS_LIST64_CX:
1644 case CMD_IOCB_CLOSE_EXTENDED_CN:
1645 case CMD_IOCB_ABORT_EXTENDED_CN:
1646 case CMD_IOCB_RET_HBQE64_CN:
1647 case CMD_IOCB_FCP_IBIDIR64_CR:
1648 case CMD_IOCB_FCP_IBIDIR64_CX:
1649 case CMD_IOCB_FCP_ITASKMGT64_CX:
1650 case CMD_IOCB_LOGENTRY_CN:
1651 case CMD_IOCB_LOGENTRY_ASYNC_CN:
1652 printk("%s - Unhandled SLI-3 Command x%x\n",
1653 __func__, iocb_cmnd);
1654 type = LPFC_UNKNOWN_IOCB;
1655 break;
1656 default:
1657 type = LPFC_UNKNOWN_IOCB;
1658 break;
1661 return type;
1665 * lpfc_sli_ring_map - Issue config_ring mbox for all rings
1666 * @phba: Pointer to HBA context object.
1668 * This function is called from SLI initialization code
1669 * to configure every ring of the HBA's SLI interface. The
1670 * caller is not required to hold any lock. This function issues
1671 * a config_ring mailbox command for each ring.
1672 * This function returns zero if successful else returns a negative
1673 * error code.
1675 static int
1676 lpfc_sli_ring_map(struct lpfc_hba *phba)
1678 struct lpfc_sli *psli = &phba->sli;
1679 LPFC_MBOXQ_t *pmb;
1680 MAILBOX_t *pmbox;
1681 int i, rc, ret = 0;
1683 pmb = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
1684 if (!pmb)
1685 return -ENOMEM;
1686 pmbox = &pmb->u.mb;
1687 phba->link_state = LPFC_INIT_MBX_CMDS;
1688 for (i = 0; i < psli->num_rings; i++) {
1689 lpfc_config_ring(phba, i, pmb);
1690 rc = lpfc_sli_issue_mbox(phba, pmb, MBX_POLL);
1691 if (rc != MBX_SUCCESS) {
1692 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
1693 "0446 Adapter failed to init (%d), "
1694 "mbxCmd x%x CFG_RING, mbxStatus x%x, "
1695 "ring %d\n",
1696 rc, pmbox->mbxCommand,
1697 pmbox->mbxStatus, i);
1698 phba->link_state = LPFC_HBA_ERROR;
1699 ret = -ENXIO;
1700 break;
1703 mempool_free(pmb, phba->mbox_mem_pool);
1704 return ret;
1708 * lpfc_sli_ringtxcmpl_put - Adds new iocb to the txcmplq
1709 * @phba: Pointer to HBA context object.
1710 * @pring: Pointer to driver SLI ring object.
1711 * @piocb: Pointer to the driver iocb object.
1713 * The driver calls this function with the hbalock held for SLI3 ports or
1714 * the ring lock held for SLI4 ports. The function adds the
1715 * new iocb to txcmplq of the given ring. This function always returns
1716 * 0. If this function is called for ELS ring, this function checks if
1717 * there is a vport associated with the ELS command. This function also
1718 * starts els_tmofunc timer if this is an ELS command.
1720 static int
1721 lpfc_sli_ringtxcmpl_put(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
1722 struct lpfc_iocbq *piocb)
1724 u32 ulp_command = 0;
1726 BUG_ON(!piocb);
1727 ulp_command = get_job_cmnd(phba, piocb);
1729 list_add_tail(&piocb->list, &pring->txcmplq);
1730 piocb->cmd_flag |= LPFC_IO_ON_TXCMPLQ;
1731 pring->txcmplq_cnt++;
1732 if ((unlikely(pring->ringno == LPFC_ELS_RING)) &&
1733 (ulp_command != CMD_ABORT_XRI_WQE) &&
1734 (ulp_command != CMD_ABORT_XRI_CN) &&
1735 (ulp_command != CMD_CLOSE_XRI_CN)) {
1736 BUG_ON(!piocb->vport);
1737 if (!test_bit(FC_UNLOADING, &piocb->vport->load_flag))
1738 mod_timer(&piocb->vport->els_tmofunc,
1739 jiffies +
1740 msecs_to_jiffies(1000 * (phba->fc_ratov << 1)));
1743 return 0;
1747 * lpfc_sli_ringtx_get - Get first element of the txq
1748 * @phba: Pointer to HBA context object.
1749 * @pring: Pointer to driver SLI ring object.
1751 * This function is called with hbalock held to get next
1752 * iocb in txq of the given ring. If there is any iocb in
1753 * the txq, the function returns first iocb in the list after
1754 * removing the iocb from the list, else it returns NULL.
1756 struct lpfc_iocbq *
1757 lpfc_sli_ringtx_get(struct lpfc_hba *phba, struct lpfc_sli_ring *pring)
1759 struct lpfc_iocbq *cmd_iocb;
1761 lockdep_assert_held(&phba->hbalock);
1763 list_remove_head((&pring->txq), cmd_iocb, struct lpfc_iocbq, list);
1764 return cmd_iocb;
1768 * lpfc_cmf_sync_cmpl - Process a CMF_SYNC_WQE cmpl
1769 * @phba: Pointer to HBA context object.
1770 * @cmdiocb: Pointer to driver command iocb object.
1771 * @rspiocb: Pointer to driver response iocb object.
1773 * This routine will inform the driver of any BW adjustments we need
1774 * to make. These changes will be picked up during the next CMF
1775 * timer interrupt. In addition, any BW changes will be logged
1776 * with LOG_CGN_MGMT.
1778 static void
1779 lpfc_cmf_sync_cmpl(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocb,
1780 struct lpfc_iocbq *rspiocb)
1782 union lpfc_wqe128 *wqe;
1783 uint32_t status, info;
1784 struct lpfc_wcqe_complete *wcqe = &rspiocb->wcqe_cmpl;
1785 uint64_t bw, bwdif, slop;
1786 uint64_t pcent, bwpcent;
1787 int asig, afpin, sigcnt, fpincnt;
1788 int wsigmax, wfpinmax, cg, tdp;
1789 char *s;
1791 /* First check for error */
1792 status = bf_get(lpfc_wcqe_c_status, wcqe);
1793 if (status) {
1794 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1795 "6211 CMF_SYNC_WQE Error "
1796 "req_tag x%x status x%x hwstatus x%x "
1797 "tdatap x%x parm x%x\n",
1798 bf_get(lpfc_wcqe_c_request_tag, wcqe),
1799 bf_get(lpfc_wcqe_c_status, wcqe),
1800 bf_get(lpfc_wcqe_c_hw_status, wcqe),
1801 wcqe->total_data_placed,
1802 wcqe->parameter);
1803 goto out;
1806 /* Gather congestion information on a successful cmpl */
1807 info = wcqe->parameter;
1808 phba->cmf_active_info = info;
1810 /* See if firmware info count is valid or has changed */
1811 if (info > LPFC_MAX_CMF_INFO || phba->cmf_info_per_interval == info)
1812 info = 0;
1813 else
1814 phba->cmf_info_per_interval = info;
1816 tdp = bf_get(lpfc_wcqe_c_cmf_bw, wcqe);
1817 cg = bf_get(lpfc_wcqe_c_cmf_cg, wcqe);
1819 /* Get BW requirement from firmware */
1820 bw = (uint64_t)tdp * LPFC_CMF_BLK_SIZE;
1821 if (!bw) {
1822 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1823 "6212 CMF_SYNC_WQE x%x: NULL bw\n",
1824 bf_get(lpfc_wcqe_c_request_tag, wcqe));
1825 goto out;
1828 /* Gather information needed for logging if a BW change is required */
1829 wqe = &cmdiocb->wqe;
1830 asig = bf_get(cmf_sync_asig, &wqe->cmf_sync);
1831 afpin = bf_get(cmf_sync_afpin, &wqe->cmf_sync);
1832 fpincnt = bf_get(cmf_sync_wfpincnt, &wqe->cmf_sync);
1833 sigcnt = bf_get(cmf_sync_wsigcnt, &wqe->cmf_sync);
1834 if (phba->cmf_max_bytes_per_interval != bw ||
1835 (asig || afpin || sigcnt || fpincnt)) {
1836 /* Are we increasing or decreasing BW */
1837 if (phba->cmf_max_bytes_per_interval < bw) {
1838 bwdif = bw - phba->cmf_max_bytes_per_interval;
1839 s = "Increase";
1840 } else {
1841 bwdif = phba->cmf_max_bytes_per_interval - bw;
1842 s = "Decrease";
1845 /* What is the change percentage */
1846 slop = div_u64(phba->cmf_link_byte_count, 200); /*For rounding*/
1847 pcent = div64_u64(bwdif * 100 + slop,
1848 phba->cmf_link_byte_count);
1849 bwpcent = div64_u64(bw * 100 + slop,
1850 phba->cmf_link_byte_count);
1851 /* Because of bytes adjustment due to shorter timer in
1852 * lpfc_cmf_timer() the cmf_link_byte_count can be shorter and
1853 * may seem like BW is above 100%.
1855 if (bwpcent > 100)
1856 bwpcent = 100;
1858 if (phba->cmf_max_bytes_per_interval < bw &&
1859 bwpcent > 95)
1860 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1861 "6208 Congestion bandwidth "
1862 "limits removed\n");
1863 else if ((phba->cmf_max_bytes_per_interval > bw) &&
1864 ((bwpcent + pcent) <= 100) && ((bwpcent + pcent) > 95))
1865 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1866 "6209 Congestion bandwidth "
1867 "limits in effect\n");
1869 if (asig) {
1870 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1871 "6237 BW Threshold %lld%% (%lld): "
1872 "%lld%% %s: Signal Alarm: cg:%d "
1873 "Info:%u\n",
1874 bwpcent, bw, pcent, s, cg,
1875 phba->cmf_active_info);
1876 } else if (afpin) {
1877 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1878 "6238 BW Threshold %lld%% (%lld): "
1879 "%lld%% %s: FPIN Alarm: cg:%d "
1880 "Info:%u\n",
1881 bwpcent, bw, pcent, s, cg,
1882 phba->cmf_active_info);
1883 } else if (sigcnt) {
1884 wsigmax = bf_get(cmf_sync_wsigmax, &wqe->cmf_sync);
1885 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1886 "6239 BW Threshold %lld%% (%lld): "
1887 "%lld%% %s: Signal Warning: "
1888 "Cnt %d Max %d: cg:%d Info:%u\n",
1889 bwpcent, bw, pcent, s, sigcnt,
1890 wsigmax, cg, phba->cmf_active_info);
1891 } else if (fpincnt) {
1892 wfpinmax = bf_get(cmf_sync_wfpinmax, &wqe->cmf_sync);
1893 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1894 "6240 BW Threshold %lld%% (%lld): "
1895 "%lld%% %s: FPIN Warning: "
1896 "Cnt %d Max %d: cg:%d Info:%u\n",
1897 bwpcent, bw, pcent, s, fpincnt,
1898 wfpinmax, cg, phba->cmf_active_info);
1899 } else {
1900 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1901 "6241 BW Threshold %lld%% (%lld): "
1902 "CMF %lld%% %s: cg:%d Info:%u\n",
1903 bwpcent, bw, pcent, s, cg,
1904 phba->cmf_active_info);
1906 } else if (info) {
1907 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1908 "6246 Info Threshold %u\n", info);
1911 /* Save BW change to be picked up during next timer interrupt */
1912 phba->cmf_last_sync_bw = bw;
1913 out:
1914 lpfc_sli_release_iocbq(phba, cmdiocb);
1918 * lpfc_issue_cmf_sync_wqe - Issue a CMF_SYNC_WQE
1919 * @phba: Pointer to HBA context object.
1920 * @ms: ms to set in WQE interval, 0 means use init op
1921 * @total: Total rcv bytes for this interval
1923 * This routine is called every CMF timer interrupt. Its purpose is
1924 * to issue a CMF_SYNC_WQE to the firmware to inform it of any events
1925 * that may indicate we have congestion (FPINs or Signals). Upon
1926 * completion, the firmware will indicate any BW restrictions the
1927 * driver may need to take.
1930 lpfc_issue_cmf_sync_wqe(struct lpfc_hba *phba, u32 ms, u64 total)
1932 union lpfc_wqe128 *wqe;
1933 struct lpfc_iocbq *sync_buf;
1934 unsigned long iflags;
1935 u32 ret_val;
1936 u32 atot, wtot, max;
1937 u8 warn_sync_period = 0;
1939 /* First address any alarm / warning activity */
1940 atot = atomic_xchg(&phba->cgn_sync_alarm_cnt, 0);
1941 wtot = atomic_xchg(&phba->cgn_sync_warn_cnt, 0);
1943 spin_lock_irqsave(&phba->hbalock, iflags);
1945 /* ONLY Managed mode will send the CMF_SYNC_WQE to the HBA */
1946 if (phba->cmf_active_mode != LPFC_CFG_MANAGED ||
1947 phba->link_state < LPFC_LINK_UP) {
1948 ret_val = 0;
1949 goto out_unlock;
1952 sync_buf = __lpfc_sli_get_iocbq(phba);
1953 if (!sync_buf) {
1954 lpfc_printf_log(phba, KERN_ERR, LOG_CGN_MGMT,
1955 "6244 No available WQEs for CMF_SYNC_WQE\n");
1956 ret_val = ENOMEM;
1957 goto out_unlock;
1960 wqe = &sync_buf->wqe;
1962 /* WQEs are reused. Clear stale data and set key fields to zero */
1963 memset(wqe, 0, sizeof(*wqe));
1965 /* If this is the very first CMF_SYNC_WQE, issue an init operation */
1966 if (!ms) {
1967 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
1968 "6441 CMF Init %d - CMF_SYNC_WQE\n",
1969 phba->fc_eventTag);
1970 bf_set(cmf_sync_op, &wqe->cmf_sync, 1); /* 1=init */
1971 bf_set(cmf_sync_interval, &wqe->cmf_sync, LPFC_CMF_INTERVAL);
1972 goto initpath;
1975 bf_set(cmf_sync_op, &wqe->cmf_sync, 0); /* 0=recalc */
1976 bf_set(cmf_sync_interval, &wqe->cmf_sync, ms);
1978 /* Check for alarms / warnings */
1979 if (atot) {
1980 if (phba->cgn_reg_signal == EDC_CG_SIG_WARN_ALARM) {
1981 /* We hit an Signal alarm condition */
1982 bf_set(cmf_sync_asig, &wqe->cmf_sync, 1);
1983 } else {
1984 /* We hit a FPIN alarm condition */
1985 bf_set(cmf_sync_afpin, &wqe->cmf_sync, 1);
1987 } else if (wtot) {
1988 if (phba->cgn_reg_signal == EDC_CG_SIG_WARN_ONLY ||
1989 phba->cgn_reg_signal == EDC_CG_SIG_WARN_ALARM) {
1990 /* We hit an Signal warning condition */
1991 max = LPFC_SEC_TO_MSEC / lpfc_fabric_cgn_frequency *
1992 lpfc_acqe_cgn_frequency;
1993 bf_set(cmf_sync_wsigmax, &wqe->cmf_sync, max);
1994 bf_set(cmf_sync_wsigcnt, &wqe->cmf_sync, wtot);
1995 warn_sync_period = lpfc_acqe_cgn_frequency;
1996 } else {
1997 /* We hit a FPIN warning condition */
1998 bf_set(cmf_sync_wfpinmax, &wqe->cmf_sync, 1);
1999 bf_set(cmf_sync_wfpincnt, &wqe->cmf_sync, 1);
2000 if (phba->cgn_fpin_frequency != LPFC_FPIN_INIT_FREQ)
2001 warn_sync_period =
2002 LPFC_MSECS_TO_SECS(phba->cgn_fpin_frequency);
2006 /* Update total read blocks during previous timer interval */
2007 wqe->cmf_sync.read_bytes = (u32)(total / LPFC_CMF_BLK_SIZE);
2009 initpath:
2010 bf_set(cmf_sync_ver, &wqe->cmf_sync, LPFC_CMF_SYNC_VER);
2011 wqe->cmf_sync.event_tag = phba->fc_eventTag;
2012 bf_set(cmf_sync_cmnd, &wqe->cmf_sync, CMD_CMF_SYNC_WQE);
2014 /* Setup reqtag to match the wqe completion. */
2015 bf_set(cmf_sync_reqtag, &wqe->cmf_sync, sync_buf->iotag);
2017 bf_set(cmf_sync_qosd, &wqe->cmf_sync, 1);
2018 bf_set(cmf_sync_period, &wqe->cmf_sync, warn_sync_period);
2020 bf_set(cmf_sync_cmd_type, &wqe->cmf_sync, CMF_SYNC_COMMAND);
2021 bf_set(cmf_sync_wqec, &wqe->cmf_sync, 1);
2022 bf_set(cmf_sync_cqid, &wqe->cmf_sync, LPFC_WQE_CQ_ID_DEFAULT);
2024 sync_buf->vport = phba->pport;
2025 sync_buf->cmd_cmpl = lpfc_cmf_sync_cmpl;
2026 sync_buf->cmd_dmabuf = NULL;
2027 sync_buf->rsp_dmabuf = NULL;
2028 sync_buf->bpl_dmabuf = NULL;
2029 sync_buf->sli4_xritag = NO_XRI;
2031 sync_buf->cmd_flag |= LPFC_IO_CMF;
2032 ret_val = lpfc_sli4_issue_wqe(phba, &phba->sli4_hba.hdwq[0], sync_buf);
2033 if (ret_val) {
2034 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
2035 "6214 Cannot issue CMF_SYNC_WQE: x%x\n",
2036 ret_val);
2037 __lpfc_sli_release_iocbq(phba, sync_buf);
2039 out_unlock:
2040 spin_unlock_irqrestore(&phba->hbalock, iflags);
2041 return ret_val;
2045 * lpfc_sli_next_iocb_slot - Get next iocb slot in the ring
2046 * @phba: Pointer to HBA context object.
2047 * @pring: Pointer to driver SLI ring object.
2049 * This function is called with hbalock held and the caller must post the
2050 * iocb without releasing the lock. If the caller releases the lock,
2051 * iocb slot returned by the function is not guaranteed to be available.
2052 * The function returns pointer to the next available iocb slot if there
2053 * is available slot in the ring, else it returns NULL.
2054 * If the get index of the ring is ahead of the put index, the function
2055 * will post an error attention event to the worker thread to take the
2056 * HBA to offline state.
2058 static IOCB_t *
2059 lpfc_sli_next_iocb_slot (struct lpfc_hba *phba, struct lpfc_sli_ring *pring)
2061 struct lpfc_pgp *pgp = &phba->port_gp[pring->ringno];
2062 uint32_t max_cmd_idx = pring->sli.sli3.numCiocb;
2064 lockdep_assert_held(&phba->hbalock);
2066 if ((pring->sli.sli3.next_cmdidx == pring->sli.sli3.cmdidx) &&
2067 (++pring->sli.sli3.next_cmdidx >= max_cmd_idx))
2068 pring->sli.sli3.next_cmdidx = 0;
2070 if (unlikely(pring->sli.sli3.local_getidx ==
2071 pring->sli.sli3.next_cmdidx)) {
2073 pring->sli.sli3.local_getidx = le32_to_cpu(pgp->cmdGetInx);
2075 if (unlikely(pring->sli.sli3.local_getidx >= max_cmd_idx)) {
2076 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
2077 "0315 Ring %d issue: portCmdGet %d "
2078 "is bigger than cmd ring %d\n",
2079 pring->ringno,
2080 pring->sli.sli3.local_getidx,
2081 max_cmd_idx);
2083 phba->link_state = LPFC_HBA_ERROR;
2085 * All error attention handlers are posted to
2086 * worker thread
2088 phba->work_ha |= HA_ERATT;
2089 phba->work_hs = HS_FFER3;
2091 lpfc_worker_wake_up(phba);
2093 return NULL;
2096 if (pring->sli.sli3.local_getidx == pring->sli.sli3.next_cmdidx)
2097 return NULL;
2100 return lpfc_cmd_iocb(phba, pring);
2104 * lpfc_sli_next_iotag - Get an iotag for the iocb
2105 * @phba: Pointer to HBA context object.
2106 * @iocbq: Pointer to driver iocb object.
2108 * This function gets an iotag for the iocb. If there is no unused iotag and
2109 * the iocbq_lookup_len < 0xffff, this function allocates a bigger iotag_lookup
2110 * array and assigns a new iotag.
2111 * The function returns the allocated iotag if successful, else returns zero.
2112 * Zero is not a valid iotag.
2113 * The caller is not required to hold any lock.
2115 uint16_t
2116 lpfc_sli_next_iotag(struct lpfc_hba *phba, struct lpfc_iocbq *iocbq)
2118 struct lpfc_iocbq **new_arr;
2119 struct lpfc_iocbq **old_arr;
2120 size_t new_len;
2121 struct lpfc_sli *psli = &phba->sli;
2122 uint16_t iotag;
2124 spin_lock_irq(&phba->hbalock);
2125 iotag = psli->last_iotag;
2126 if(++iotag < psli->iocbq_lookup_len) {
2127 psli->last_iotag = iotag;
2128 psli->iocbq_lookup[iotag] = iocbq;
2129 spin_unlock_irq(&phba->hbalock);
2130 iocbq->iotag = iotag;
2131 return iotag;
2132 } else if (psli->iocbq_lookup_len < (0xffff
2133 - LPFC_IOCBQ_LOOKUP_INCREMENT)) {
2134 new_len = psli->iocbq_lookup_len + LPFC_IOCBQ_LOOKUP_INCREMENT;
2135 spin_unlock_irq(&phba->hbalock);
2136 new_arr = kcalloc(new_len, sizeof(struct lpfc_iocbq *),
2137 GFP_KERNEL);
2138 if (new_arr) {
2139 spin_lock_irq(&phba->hbalock);
2140 old_arr = psli->iocbq_lookup;
2141 if (new_len <= psli->iocbq_lookup_len) {
2142 /* highly unprobable case */
2143 kfree(new_arr);
2144 iotag = psli->last_iotag;
2145 if(++iotag < psli->iocbq_lookup_len) {
2146 psli->last_iotag = iotag;
2147 psli->iocbq_lookup[iotag] = iocbq;
2148 spin_unlock_irq(&phba->hbalock);
2149 iocbq->iotag = iotag;
2150 return iotag;
2152 spin_unlock_irq(&phba->hbalock);
2153 return 0;
2155 if (psli->iocbq_lookup)
2156 memcpy(new_arr, old_arr,
2157 ((psli->last_iotag + 1) *
2158 sizeof (struct lpfc_iocbq *)));
2159 psli->iocbq_lookup = new_arr;
2160 psli->iocbq_lookup_len = new_len;
2161 psli->last_iotag = iotag;
2162 psli->iocbq_lookup[iotag] = iocbq;
2163 spin_unlock_irq(&phba->hbalock);
2164 iocbq->iotag = iotag;
2165 kfree(old_arr);
2166 return iotag;
2168 } else
2169 spin_unlock_irq(&phba->hbalock);
2171 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
2172 "0318 Failed to allocate IOTAG.last IOTAG is %d\n",
2173 psli->last_iotag);
2175 return 0;
2179 * lpfc_sli_submit_iocb - Submit an iocb to the firmware
2180 * @phba: Pointer to HBA context object.
2181 * @pring: Pointer to driver SLI ring object.
2182 * @iocb: Pointer to iocb slot in the ring.
2183 * @nextiocb: Pointer to driver iocb object which need to be
2184 * posted to firmware.
2186 * This function is called to post a new iocb to the firmware. This
2187 * function copies the new iocb to ring iocb slot and updates the
2188 * ring pointers. It adds the new iocb to txcmplq if there is
2189 * a completion call back for this iocb else the function will free the
2190 * iocb object. The hbalock is asserted held in the code path calling
2191 * this routine.
2193 static void
2194 lpfc_sli_submit_iocb(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
2195 IOCB_t *iocb, struct lpfc_iocbq *nextiocb)
2198 * Set up an iotag
2200 nextiocb->iocb.ulpIoTag = (nextiocb->cmd_cmpl) ? nextiocb->iotag : 0;
2203 if (pring->ringno == LPFC_ELS_RING) {
2204 lpfc_debugfs_slow_ring_trc(phba,
2205 "IOCB cmd ring: wd4:x%08x wd6:x%08x wd7:x%08x",
2206 *(((uint32_t *) &nextiocb->iocb) + 4),
2207 *(((uint32_t *) &nextiocb->iocb) + 6),
2208 *(((uint32_t *) &nextiocb->iocb) + 7));
2212 * Issue iocb command to adapter
2214 lpfc_sli_pcimem_bcopy(&nextiocb->iocb, iocb, phba->iocb_cmd_size);
2215 wmb();
2216 pring->stats.iocb_cmd++;
2219 * If there is no completion routine to call, we can release the
2220 * IOCB buffer back right now. For IOCBs, like QUE_RING_BUF,
2221 * that have no rsp ring completion, cmd_cmpl MUST be NULL.
2223 if (nextiocb->cmd_cmpl)
2224 lpfc_sli_ringtxcmpl_put(phba, pring, nextiocb);
2225 else
2226 __lpfc_sli_release_iocbq(phba, nextiocb);
2229 * Let the HBA know what IOCB slot will be the next one the
2230 * driver will put a command into.
2232 pring->sli.sli3.cmdidx = pring->sli.sli3.next_cmdidx;
2233 writel(pring->sli.sli3.cmdidx, &phba->host_gp[pring->ringno].cmdPutInx);
2237 * lpfc_sli_update_full_ring - Update the chip attention register
2238 * @phba: Pointer to HBA context object.
2239 * @pring: Pointer to driver SLI ring object.
2241 * The caller is not required to hold any lock for calling this function.
2242 * This function updates the chip attention bits for the ring to inform firmware
2243 * that there are pending work to be done for this ring and requests an
2244 * interrupt when there is space available in the ring. This function is
2245 * called when the driver is unable to post more iocbs to the ring due
2246 * to unavailability of space in the ring.
2248 static void
2249 lpfc_sli_update_full_ring(struct lpfc_hba *phba, struct lpfc_sli_ring *pring)
2251 int ringno = pring->ringno;
2253 pring->flag |= LPFC_CALL_RING_AVAILABLE;
2255 wmb();
2258 * Set ring 'ringno' to SET R0CE_REQ in Chip Att register.
2259 * The HBA will tell us when an IOCB entry is available.
2261 writel((CA_R0ATT|CA_R0CE_REQ) << (ringno*4), phba->CAregaddr);
2262 readl(phba->CAregaddr); /* flush */
2264 pring->stats.iocb_cmd_full++;
2268 * lpfc_sli_update_ring - Update chip attention register
2269 * @phba: Pointer to HBA context object.
2270 * @pring: Pointer to driver SLI ring object.
2272 * This function updates the chip attention register bit for the
2273 * given ring to inform HBA that there is more work to be done
2274 * in this ring. The caller is not required to hold any lock.
2276 static void
2277 lpfc_sli_update_ring(struct lpfc_hba *phba, struct lpfc_sli_ring *pring)
2279 int ringno = pring->ringno;
2282 * Tell the HBA that there is work to do in this ring.
2284 if (!(phba->sli3_options & LPFC_SLI3_CRP_ENABLED)) {
2285 wmb();
2286 writel(CA_R0ATT << (ringno * 4), phba->CAregaddr);
2287 readl(phba->CAregaddr); /* flush */
2292 * lpfc_sli_resume_iocb - Process iocbs in the txq
2293 * @phba: Pointer to HBA context object.
2294 * @pring: Pointer to driver SLI ring object.
2296 * This function is called with hbalock held to post pending iocbs
2297 * in the txq to the firmware. This function is called when driver
2298 * detects space available in the ring.
2300 static void
2301 lpfc_sli_resume_iocb(struct lpfc_hba *phba, struct lpfc_sli_ring *pring)
2303 IOCB_t *iocb;
2304 struct lpfc_iocbq *nextiocb;
2306 lockdep_assert_held(&phba->hbalock);
2309 * Check to see if:
2310 * (a) there is anything on the txq to send
2311 * (b) link is up
2312 * (c) link attention events can be processed (fcp ring only)
2313 * (d) IOCB processing is not blocked by the outstanding mbox command.
2316 if (lpfc_is_link_up(phba) &&
2317 (!list_empty(&pring->txq)) &&
2318 (pring->ringno != LPFC_FCP_RING ||
2319 phba->sli.sli_flag & LPFC_PROCESS_LA)) {
2321 while ((iocb = lpfc_sli_next_iocb_slot(phba, pring)) &&
2322 (nextiocb = lpfc_sli_ringtx_get(phba, pring)))
2323 lpfc_sli_submit_iocb(phba, pring, iocb, nextiocb);
2325 if (iocb)
2326 lpfc_sli_update_ring(phba, pring);
2327 else
2328 lpfc_sli_update_full_ring(phba, pring);
2331 return;
2335 * lpfc_sli_next_hbq_slot - Get next hbq entry for the HBQ
2336 * @phba: Pointer to HBA context object.
2337 * @hbqno: HBQ number.
2339 * This function is called with hbalock held to get the next
2340 * available slot for the given HBQ. If there is free slot
2341 * available for the HBQ it will return pointer to the next available
2342 * HBQ entry else it will return NULL.
2344 static struct lpfc_hbq_entry *
2345 lpfc_sli_next_hbq_slot(struct lpfc_hba *phba, uint32_t hbqno)
2347 struct hbq_s *hbqp = &phba->hbqs[hbqno];
2349 lockdep_assert_held(&phba->hbalock);
2351 if (hbqp->next_hbqPutIdx == hbqp->hbqPutIdx &&
2352 ++hbqp->next_hbqPutIdx >= hbqp->entry_count)
2353 hbqp->next_hbqPutIdx = 0;
2355 if (unlikely(hbqp->local_hbqGetIdx == hbqp->next_hbqPutIdx)) {
2356 uint32_t raw_index = phba->hbq_get[hbqno];
2357 uint32_t getidx = le32_to_cpu(raw_index);
2359 hbqp->local_hbqGetIdx = getidx;
2361 if (unlikely(hbqp->local_hbqGetIdx >= hbqp->entry_count)) {
2362 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
2363 "1802 HBQ %d: local_hbqGetIdx "
2364 "%u is > than hbqp->entry_count %u\n",
2365 hbqno, hbqp->local_hbqGetIdx,
2366 hbqp->entry_count);
2368 phba->link_state = LPFC_HBA_ERROR;
2369 return NULL;
2372 if (hbqp->local_hbqGetIdx == hbqp->next_hbqPutIdx)
2373 return NULL;
2376 return (struct lpfc_hbq_entry *) phba->hbqs[hbqno].hbq_virt +
2377 hbqp->hbqPutIdx;
2381 * lpfc_sli_hbqbuf_free_all - Free all the hbq buffers
2382 * @phba: Pointer to HBA context object.
2384 * This function is called with no lock held to free all the
2385 * hbq buffers while uninitializing the SLI interface. It also
2386 * frees the HBQ buffers returned by the firmware but not yet
2387 * processed by the upper layers.
2389 void
2390 lpfc_sli_hbqbuf_free_all(struct lpfc_hba *phba)
2392 struct lpfc_dmabuf *dmabuf, *next_dmabuf;
2393 struct hbq_dmabuf *hbq_buf;
2394 unsigned long flags;
2395 int i, hbq_count;
2397 hbq_count = lpfc_sli_hbq_count();
2398 /* Return all memory used by all HBQs */
2399 spin_lock_irqsave(&phba->hbalock, flags);
2400 for (i = 0; i < hbq_count; ++i) {
2401 list_for_each_entry_safe(dmabuf, next_dmabuf,
2402 &phba->hbqs[i].hbq_buffer_list, list) {
2403 hbq_buf = container_of(dmabuf, struct hbq_dmabuf, dbuf);
2404 list_del(&hbq_buf->dbuf.list);
2405 (phba->hbqs[i].hbq_free_buffer)(phba, hbq_buf);
2407 phba->hbqs[i].buffer_count = 0;
2410 /* Mark the HBQs not in use */
2411 phba->hbq_in_use = 0;
2412 spin_unlock_irqrestore(&phba->hbalock, flags);
2416 * lpfc_sli_hbq_to_firmware - Post the hbq buffer to firmware
2417 * @phba: Pointer to HBA context object.
2418 * @hbqno: HBQ number.
2419 * @hbq_buf: Pointer to HBQ buffer.
2421 * This function is called with the hbalock held to post a
2422 * hbq buffer to the firmware. If the function finds an empty
2423 * slot in the HBQ, it will post the buffer. The function will return
2424 * pointer to the hbq entry if it successfully post the buffer
2425 * else it will return NULL.
2427 static int
2428 lpfc_sli_hbq_to_firmware(struct lpfc_hba *phba, uint32_t hbqno,
2429 struct hbq_dmabuf *hbq_buf)
2431 lockdep_assert_held(&phba->hbalock);
2432 return phba->lpfc_sli_hbq_to_firmware(phba, hbqno, hbq_buf);
2436 * lpfc_sli_hbq_to_firmware_s3 - Post the hbq buffer to SLI3 firmware
2437 * @phba: Pointer to HBA context object.
2438 * @hbqno: HBQ number.
2439 * @hbq_buf: Pointer to HBQ buffer.
2441 * This function is called with the hbalock held to post a hbq buffer to the
2442 * firmware. If the function finds an empty slot in the HBQ, it will post the
2443 * buffer and place it on the hbq_buffer_list. The function will return zero if
2444 * it successfully post the buffer else it will return an error.
2446 static int
2447 lpfc_sli_hbq_to_firmware_s3(struct lpfc_hba *phba, uint32_t hbqno,
2448 struct hbq_dmabuf *hbq_buf)
2450 struct lpfc_hbq_entry *hbqe;
2451 dma_addr_t physaddr = hbq_buf->dbuf.phys;
2453 lockdep_assert_held(&phba->hbalock);
2454 /* Get next HBQ entry slot to use */
2455 hbqe = lpfc_sli_next_hbq_slot(phba, hbqno);
2456 if (hbqe) {
2457 struct hbq_s *hbqp = &phba->hbqs[hbqno];
2459 hbqe->bde.addrHigh = le32_to_cpu(putPaddrHigh(physaddr));
2460 hbqe->bde.addrLow = le32_to_cpu(putPaddrLow(physaddr));
2461 hbqe->bde.tus.f.bdeSize = hbq_buf->total_size;
2462 hbqe->bde.tus.f.bdeFlags = 0;
2463 hbqe->bde.tus.w = le32_to_cpu(hbqe->bde.tus.w);
2464 hbqe->buffer_tag = le32_to_cpu(hbq_buf->tag);
2465 /* Sync SLIM */
2466 hbqp->hbqPutIdx = hbqp->next_hbqPutIdx;
2467 writel(hbqp->hbqPutIdx, phba->hbq_put + hbqno);
2468 /* flush */
2469 readl(phba->hbq_put + hbqno);
2470 list_add_tail(&hbq_buf->dbuf.list, &hbqp->hbq_buffer_list);
2471 return 0;
2472 } else
2473 return -ENOMEM;
2477 * lpfc_sli_hbq_to_firmware_s4 - Post the hbq buffer to SLI4 firmware
2478 * @phba: Pointer to HBA context object.
2479 * @hbqno: HBQ number.
2480 * @hbq_buf: Pointer to HBQ buffer.
2482 * This function is called with the hbalock held to post an RQE to the SLI4
2483 * firmware. If able to post the RQE to the RQ it will queue the hbq entry to
2484 * the hbq_buffer_list and return zero, otherwise it will return an error.
2486 static int
2487 lpfc_sli_hbq_to_firmware_s4(struct lpfc_hba *phba, uint32_t hbqno,
2488 struct hbq_dmabuf *hbq_buf)
2490 int rc;
2491 struct lpfc_rqe hrqe;
2492 struct lpfc_rqe drqe;
2493 struct lpfc_queue *hrq;
2494 struct lpfc_queue *drq;
2496 if (hbqno != LPFC_ELS_HBQ)
2497 return 1;
2498 hrq = phba->sli4_hba.hdr_rq;
2499 drq = phba->sli4_hba.dat_rq;
2501 lockdep_assert_held(&phba->hbalock);
2502 hrqe.address_lo = putPaddrLow(hbq_buf->hbuf.phys);
2503 hrqe.address_hi = putPaddrHigh(hbq_buf->hbuf.phys);
2504 drqe.address_lo = putPaddrLow(hbq_buf->dbuf.phys);
2505 drqe.address_hi = putPaddrHigh(hbq_buf->dbuf.phys);
2506 rc = lpfc_sli4_rq_put(hrq, drq, &hrqe, &drqe);
2507 if (rc < 0)
2508 return rc;
2509 hbq_buf->tag = (rc | (hbqno << 16));
2510 list_add_tail(&hbq_buf->dbuf.list, &phba->hbqs[hbqno].hbq_buffer_list);
2511 return 0;
2514 /* HBQ for ELS and CT traffic. */
2515 static struct lpfc_hbq_init lpfc_els_hbq = {
2516 .rn = 1,
2517 .entry_count = 256,
2518 .mask_count = 0,
2519 .profile = 0,
2520 .ring_mask = (1 << LPFC_ELS_RING),
2521 .buffer_count = 0,
2522 .init_count = 40,
2523 .add_count = 40,
2526 /* Array of HBQs */
2527 struct lpfc_hbq_init *lpfc_hbq_defs[] = {
2528 &lpfc_els_hbq,
2532 * lpfc_sli_hbqbuf_fill_hbqs - Post more hbq buffers to HBQ
2533 * @phba: Pointer to HBA context object.
2534 * @hbqno: HBQ number.
2535 * @count: Number of HBQ buffers to be posted.
2537 * This function is called with no lock held to post more hbq buffers to the
2538 * given HBQ. The function returns the number of HBQ buffers successfully
2539 * posted.
2541 static int
2542 lpfc_sli_hbqbuf_fill_hbqs(struct lpfc_hba *phba, uint32_t hbqno, uint32_t count)
2544 uint32_t i, posted = 0;
2545 unsigned long flags;
2546 struct hbq_dmabuf *hbq_buffer;
2547 LIST_HEAD(hbq_buf_list);
2548 if (!phba->hbqs[hbqno].hbq_alloc_buffer)
2549 return 0;
2551 if ((phba->hbqs[hbqno].buffer_count + count) >
2552 lpfc_hbq_defs[hbqno]->entry_count)
2553 count = lpfc_hbq_defs[hbqno]->entry_count -
2554 phba->hbqs[hbqno].buffer_count;
2555 if (!count)
2556 return 0;
2557 /* Allocate HBQ entries */
2558 for (i = 0; i < count; i++) {
2559 hbq_buffer = (phba->hbqs[hbqno].hbq_alloc_buffer)(phba);
2560 if (!hbq_buffer)
2561 break;
2562 list_add_tail(&hbq_buffer->dbuf.list, &hbq_buf_list);
2564 /* Check whether HBQ is still in use */
2565 spin_lock_irqsave(&phba->hbalock, flags);
2566 if (!phba->hbq_in_use)
2567 goto err;
2568 while (!list_empty(&hbq_buf_list)) {
2569 list_remove_head(&hbq_buf_list, hbq_buffer, struct hbq_dmabuf,
2570 dbuf.list);
2571 hbq_buffer->tag = (phba->hbqs[hbqno].buffer_count |
2572 (hbqno << 16));
2573 if (!lpfc_sli_hbq_to_firmware(phba, hbqno, hbq_buffer)) {
2574 phba->hbqs[hbqno].buffer_count++;
2575 posted++;
2576 } else
2577 (phba->hbqs[hbqno].hbq_free_buffer)(phba, hbq_buffer);
2579 spin_unlock_irqrestore(&phba->hbalock, flags);
2580 return posted;
2581 err:
2582 spin_unlock_irqrestore(&phba->hbalock, flags);
2583 while (!list_empty(&hbq_buf_list)) {
2584 list_remove_head(&hbq_buf_list, hbq_buffer, struct hbq_dmabuf,
2585 dbuf.list);
2586 (phba->hbqs[hbqno].hbq_free_buffer)(phba, hbq_buffer);
2588 return 0;
2592 * lpfc_sli_hbqbuf_add_hbqs - Post more HBQ buffers to firmware
2593 * @phba: Pointer to HBA context object.
2594 * @qno: HBQ number.
2596 * This function posts more buffers to the HBQ. This function
2597 * is called with no lock held. The function returns the number of HBQ entries
2598 * successfully allocated.
2601 lpfc_sli_hbqbuf_add_hbqs(struct lpfc_hba *phba, uint32_t qno)
2603 if (phba->sli_rev == LPFC_SLI_REV4)
2604 return 0;
2605 else
2606 return lpfc_sli_hbqbuf_fill_hbqs(phba, qno,
2607 lpfc_hbq_defs[qno]->add_count);
2611 * lpfc_sli_hbqbuf_init_hbqs - Post initial buffers to the HBQ
2612 * @phba: Pointer to HBA context object.
2613 * @qno: HBQ queue number.
2615 * This function is called from SLI initialization code path with
2616 * no lock held to post initial HBQ buffers to firmware. The
2617 * function returns the number of HBQ entries successfully allocated.
2619 static int
2620 lpfc_sli_hbqbuf_init_hbqs(struct lpfc_hba *phba, uint32_t qno)
2622 if (phba->sli_rev == LPFC_SLI_REV4)
2623 return lpfc_sli_hbqbuf_fill_hbqs(phba, qno,
2624 lpfc_hbq_defs[qno]->entry_count);
2625 else
2626 return lpfc_sli_hbqbuf_fill_hbqs(phba, qno,
2627 lpfc_hbq_defs[qno]->init_count);
2631 * lpfc_sli_hbqbuf_get - Remove the first hbq off of an hbq list
2633 * This function removes the first hbq buffer on an hbq list and returns a
2634 * pointer to that buffer. If it finds no buffers on the list it returns NULL.
2636 static struct hbq_dmabuf *
2637 lpfc_sli_hbqbuf_get(struct list_head *rb_list)
2639 struct lpfc_dmabuf *d_buf;
2641 list_remove_head(rb_list, d_buf, struct lpfc_dmabuf, list);
2642 if (!d_buf)
2643 return NULL;
2644 return container_of(d_buf, struct hbq_dmabuf, dbuf);
2648 * lpfc_sli_rqbuf_get - Remove the first dma buffer off of an RQ list
2649 * @phba: Pointer to HBA context object.
2650 * @hrq: HBQ number.
2652 * This function removes the first RQ buffer on an RQ buffer list and returns a
2653 * pointer to that buffer. If it finds no buffers on the list it returns NULL.
2655 static struct rqb_dmabuf *
2656 lpfc_sli_rqbuf_get(struct lpfc_hba *phba, struct lpfc_queue *hrq)
2658 struct lpfc_dmabuf *h_buf;
2659 struct lpfc_rqb *rqbp;
2661 rqbp = hrq->rqbp;
2662 list_remove_head(&rqbp->rqb_buffer_list, h_buf,
2663 struct lpfc_dmabuf, list);
2664 if (!h_buf)
2665 return NULL;
2666 rqbp->buffer_count--;
2667 return container_of(h_buf, struct rqb_dmabuf, hbuf);
2671 * lpfc_sli_hbqbuf_find - Find the hbq buffer associated with a tag
2672 * @phba: Pointer to HBA context object.
2673 * @tag: Tag of the hbq buffer.
2675 * This function searches for the hbq buffer associated with the given tag in
2676 * the hbq buffer list. If it finds the hbq buffer, it returns the hbq_buffer
2677 * otherwise it returns NULL.
2679 static struct hbq_dmabuf *
2680 lpfc_sli_hbqbuf_find(struct lpfc_hba *phba, uint32_t tag)
2682 struct lpfc_dmabuf *d_buf;
2683 struct hbq_dmabuf *hbq_buf;
2684 uint32_t hbqno;
2686 hbqno = tag >> 16;
2687 if (hbqno >= LPFC_MAX_HBQS)
2688 return NULL;
2690 spin_lock_irq(&phba->hbalock);
2691 list_for_each_entry(d_buf, &phba->hbqs[hbqno].hbq_buffer_list, list) {
2692 hbq_buf = container_of(d_buf, struct hbq_dmabuf, dbuf);
2693 if (hbq_buf->tag == tag) {
2694 spin_unlock_irq(&phba->hbalock);
2695 return hbq_buf;
2698 spin_unlock_irq(&phba->hbalock);
2699 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
2700 "1803 Bad hbq tag. Data: x%x x%x\n",
2701 tag, phba->hbqs[tag >> 16].buffer_count);
2702 return NULL;
2706 * lpfc_sli_free_hbq - Give back the hbq buffer to firmware
2707 * @phba: Pointer to HBA context object.
2708 * @hbq_buffer: Pointer to HBQ buffer.
2710 * This function is called with hbalock. This function gives back
2711 * the hbq buffer to firmware. If the HBQ does not have space to
2712 * post the buffer, it will free the buffer.
2714 void
2715 lpfc_sli_free_hbq(struct lpfc_hba *phba, struct hbq_dmabuf *hbq_buffer)
2717 uint32_t hbqno;
2719 if (hbq_buffer) {
2720 hbqno = hbq_buffer->tag >> 16;
2721 if (lpfc_sli_hbq_to_firmware(phba, hbqno, hbq_buffer))
2722 (phba->hbqs[hbqno].hbq_free_buffer)(phba, hbq_buffer);
2727 * lpfc_sli_chk_mbx_command - Check if the mailbox is a legitimate mailbox
2728 * @mbxCommand: mailbox command code.
2730 * This function is called by the mailbox event handler function to verify
2731 * that the completed mailbox command is a legitimate mailbox command. If the
2732 * completed mailbox is not known to the function, it will return MBX_SHUTDOWN
2733 * and the mailbox event handler will take the HBA offline.
2735 static int
2736 lpfc_sli_chk_mbx_command(uint8_t mbxCommand)
2738 uint8_t ret;
2740 switch (mbxCommand) {
2741 case MBX_LOAD_SM:
2742 case MBX_READ_NV:
2743 case MBX_WRITE_NV:
2744 case MBX_WRITE_VPARMS:
2745 case MBX_RUN_BIU_DIAG:
2746 case MBX_INIT_LINK:
2747 case MBX_DOWN_LINK:
2748 case MBX_CONFIG_LINK:
2749 case MBX_CONFIG_RING:
2750 case MBX_RESET_RING:
2751 case MBX_READ_CONFIG:
2752 case MBX_READ_RCONFIG:
2753 case MBX_READ_SPARM:
2754 case MBX_READ_STATUS:
2755 case MBX_READ_RPI:
2756 case MBX_READ_XRI:
2757 case MBX_READ_REV:
2758 case MBX_READ_LNK_STAT:
2759 case MBX_REG_LOGIN:
2760 case MBX_UNREG_LOGIN:
2761 case MBX_CLEAR_LA:
2762 case MBX_DUMP_MEMORY:
2763 case MBX_DUMP_CONTEXT:
2764 case MBX_RUN_DIAGS:
2765 case MBX_RESTART:
2766 case MBX_UPDATE_CFG:
2767 case MBX_DOWN_LOAD:
2768 case MBX_DEL_LD_ENTRY:
2769 case MBX_RUN_PROGRAM:
2770 case MBX_SET_MASK:
2771 case MBX_SET_VARIABLE:
2772 case MBX_UNREG_D_ID:
2773 case MBX_KILL_BOARD:
2774 case MBX_CONFIG_FARP:
2775 case MBX_BEACON:
2776 case MBX_LOAD_AREA:
2777 case MBX_RUN_BIU_DIAG64:
2778 case MBX_CONFIG_PORT:
2779 case MBX_READ_SPARM64:
2780 case MBX_READ_RPI64:
2781 case MBX_REG_LOGIN64:
2782 case MBX_READ_TOPOLOGY:
2783 case MBX_WRITE_WWN:
2784 case MBX_SET_DEBUG:
2785 case MBX_LOAD_EXP_ROM:
2786 case MBX_ASYNCEVT_ENABLE:
2787 case MBX_REG_VPI:
2788 case MBX_UNREG_VPI:
2789 case MBX_HEARTBEAT:
2790 case MBX_PORT_CAPABILITIES:
2791 case MBX_PORT_IOV_CONTROL:
2792 case MBX_SLI4_CONFIG:
2793 case MBX_SLI4_REQ_FTRS:
2794 case MBX_REG_FCFI:
2795 case MBX_UNREG_FCFI:
2796 case MBX_REG_VFI:
2797 case MBX_UNREG_VFI:
2798 case MBX_INIT_VPI:
2799 case MBX_INIT_VFI:
2800 case MBX_RESUME_RPI:
2801 case MBX_READ_EVENT_LOG_STATUS:
2802 case MBX_READ_EVENT_LOG:
2803 case MBX_SECURITY_MGMT:
2804 case MBX_AUTH_PORT:
2805 case MBX_ACCESS_VDATA:
2806 ret = mbxCommand;
2807 break;
2808 default:
2809 ret = MBX_SHUTDOWN;
2810 break;
2812 return ret;
2816 * lpfc_sli_wake_mbox_wait - lpfc_sli_issue_mbox_wait mbox completion handler
2817 * @phba: Pointer to HBA context object.
2818 * @pmboxq: Pointer to mailbox command.
2820 * This is completion handler function for mailbox commands issued from
2821 * lpfc_sli_issue_mbox_wait function. This function is called by the
2822 * mailbox event handler function with no lock held. This function
2823 * will wake up thread waiting on the wait queue pointed by context1
2824 * of the mailbox.
2826 void
2827 lpfc_sli_wake_mbox_wait(struct lpfc_hba *phba, LPFC_MBOXQ_t *pmboxq)
2829 unsigned long drvr_flag;
2830 struct completion *pmbox_done;
2833 * If pmbox_done is empty, the driver thread gave up waiting and
2834 * continued running.
2836 pmboxq->mbox_flag |= LPFC_MBX_WAKE;
2837 spin_lock_irqsave(&phba->hbalock, drvr_flag);
2838 pmbox_done = pmboxq->ctx_u.mbox_wait;
2839 if (pmbox_done)
2840 complete(pmbox_done);
2841 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
2842 return;
2845 static void
2846 __lpfc_sli_rpi_release(struct lpfc_vport *vport, struct lpfc_nodelist *ndlp)
2848 unsigned long iflags;
2850 if (ndlp->nlp_flag & NLP_RELEASE_RPI) {
2851 lpfc_sli4_free_rpi(vport->phba, ndlp->nlp_rpi);
2852 spin_lock_irqsave(&ndlp->lock, iflags);
2853 ndlp->nlp_flag &= ~NLP_RELEASE_RPI;
2854 ndlp->nlp_rpi = LPFC_RPI_ALLOC_ERROR;
2855 spin_unlock_irqrestore(&ndlp->lock, iflags);
2857 ndlp->nlp_flag &= ~NLP_UNREG_INP;
2860 void
2861 lpfc_sli_rpi_release(struct lpfc_vport *vport, struct lpfc_nodelist *ndlp)
2863 __lpfc_sli_rpi_release(vport, ndlp);
2867 * lpfc_sli_def_mbox_cmpl - Default mailbox completion handler
2868 * @phba: Pointer to HBA context object.
2869 * @pmb: Pointer to mailbox object.
2871 * This function is the default mailbox completion handler. It
2872 * frees the memory resources associated with the completed mailbox
2873 * command. If the completed command is a REG_LOGIN mailbox command,
2874 * this function will issue a UREG_LOGIN to re-claim the RPI.
2876 void
2877 lpfc_sli_def_mbox_cmpl(struct lpfc_hba *phba, LPFC_MBOXQ_t *pmb)
2879 struct lpfc_vport *vport = pmb->vport;
2880 struct lpfc_dmabuf *mp;
2881 struct lpfc_nodelist *ndlp;
2882 struct Scsi_Host *shost;
2883 uint16_t rpi, vpi;
2884 int rc;
2887 * If a REG_LOGIN succeeded after node is destroyed or node
2888 * is in re-discovery driver need to cleanup the RPI.
2890 if (!test_bit(FC_UNLOADING, &phba->pport->load_flag) &&
2891 pmb->u.mb.mbxCommand == MBX_REG_LOGIN64 &&
2892 !pmb->u.mb.mbxStatus) {
2893 mp = pmb->ctx_buf;
2894 if (mp) {
2895 pmb->ctx_buf = NULL;
2896 lpfc_mbuf_free(phba, mp->virt, mp->phys);
2897 kfree(mp);
2899 rpi = pmb->u.mb.un.varWords[0];
2900 vpi = pmb->u.mb.un.varRegLogin.vpi;
2901 if (phba->sli_rev == LPFC_SLI_REV4)
2902 vpi -= phba->sli4_hba.max_cfg_param.vpi_base;
2903 lpfc_unreg_login(phba, vpi, rpi, pmb);
2904 pmb->vport = vport;
2905 pmb->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
2906 rc = lpfc_sli_issue_mbox(phba, pmb, MBX_NOWAIT);
2907 if (rc != MBX_NOT_FINISHED)
2908 return;
2911 if ((pmb->u.mb.mbxCommand == MBX_REG_VPI) &&
2912 !test_bit(FC_UNLOADING, &phba->pport->load_flag) &&
2913 !pmb->u.mb.mbxStatus) {
2914 shost = lpfc_shost_from_vport(vport);
2915 spin_lock_irq(shost->host_lock);
2916 vport->vpi_state |= LPFC_VPI_REGISTERED;
2917 spin_unlock_irq(shost->host_lock);
2918 clear_bit(FC_VPORT_NEEDS_REG_VPI, &vport->fc_flag);
2921 if (pmb->u.mb.mbxCommand == MBX_REG_LOGIN64) {
2922 ndlp = pmb->ctx_ndlp;
2923 lpfc_nlp_put(ndlp);
2926 if (pmb->u.mb.mbxCommand == MBX_UNREG_LOGIN) {
2927 ndlp = pmb->ctx_ndlp;
2929 /* Check to see if there are any deferred events to process */
2930 if (ndlp) {
2931 lpfc_printf_vlog(
2932 vport,
2933 KERN_INFO, LOG_MBOX | LOG_DISCOVERY,
2934 "1438 UNREG cmpl deferred mbox x%x "
2935 "on NPort x%x Data: x%x x%x x%px x%lx x%x\n",
2936 ndlp->nlp_rpi, ndlp->nlp_DID,
2937 ndlp->nlp_flag, ndlp->nlp_defer_did,
2938 ndlp, vport->load_flag, kref_read(&ndlp->kref));
2940 if ((ndlp->nlp_flag & NLP_UNREG_INP) &&
2941 (ndlp->nlp_defer_did != NLP_EVT_NOTHING_PENDING)) {
2942 ndlp->nlp_flag &= ~NLP_UNREG_INP;
2943 ndlp->nlp_defer_did = NLP_EVT_NOTHING_PENDING;
2944 lpfc_issue_els_plogi(vport, ndlp->nlp_DID, 0);
2945 } else {
2946 __lpfc_sli_rpi_release(vport, ndlp);
2949 /* The unreg_login mailbox is complete and had a
2950 * reference that has to be released. The PLOGI
2951 * got its own ref.
2953 lpfc_nlp_put(ndlp);
2954 pmb->ctx_ndlp = NULL;
2958 /* This nlp_put pairs with lpfc_sli4_resume_rpi */
2959 if (pmb->u.mb.mbxCommand == MBX_RESUME_RPI) {
2960 ndlp = pmb->ctx_ndlp;
2961 lpfc_nlp_put(ndlp);
2964 /* Check security permission status on INIT_LINK mailbox command */
2965 if ((pmb->u.mb.mbxCommand == MBX_INIT_LINK) &&
2966 (pmb->u.mb.mbxStatus == MBXERR_SEC_NO_PERMISSION))
2967 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
2968 "2860 SLI authentication is required "
2969 "for INIT_LINK but has not done yet\n");
2971 if (bf_get(lpfc_mqe_command, &pmb->u.mqe) == MBX_SLI4_CONFIG)
2972 lpfc_sli4_mbox_cmd_free(phba, pmb);
2973 else
2974 lpfc_mbox_rsrc_cleanup(phba, pmb, MBOX_THD_UNLOCKED);
2977 * lpfc_sli4_unreg_rpi_cmpl_clr - mailbox completion handler
2978 * @phba: Pointer to HBA context object.
2979 * @pmb: Pointer to mailbox object.
2981 * This function is the unreg rpi mailbox completion handler. It
2982 * frees the memory resources associated with the completed mailbox
2983 * command. An additional reference is put on the ndlp to prevent
2984 * lpfc_nlp_release from freeing the rpi bit in the bitmask before
2985 * the unreg mailbox command completes, this routine puts the
2986 * reference back.
2989 void
2990 lpfc_sli4_unreg_rpi_cmpl_clr(struct lpfc_hba *phba, LPFC_MBOXQ_t *pmb)
2992 struct lpfc_vport *vport = pmb->vport;
2993 struct lpfc_nodelist *ndlp;
2995 ndlp = pmb->ctx_ndlp;
2996 if (pmb->u.mb.mbxCommand == MBX_UNREG_LOGIN) {
2997 if (phba->sli_rev == LPFC_SLI_REV4 &&
2998 (bf_get(lpfc_sli_intf_if_type,
2999 &phba->sli4_hba.sli_intf) >=
3000 LPFC_SLI_INTF_IF_TYPE_2)) {
3001 if (ndlp) {
3002 lpfc_printf_vlog(
3003 vport, KERN_INFO,
3004 LOG_MBOX | LOG_SLI | LOG_NODE,
3005 "0010 UNREG_LOGIN vpi:x%x "
3006 "rpi:%x DID:%x defer x%x flg x%x "
3007 "x%px\n",
3008 vport->vpi, ndlp->nlp_rpi,
3009 ndlp->nlp_DID, ndlp->nlp_defer_did,
3010 ndlp->nlp_flag,
3011 ndlp);
3012 ndlp->nlp_flag &= ~NLP_LOGO_ACC;
3014 /* Check to see if there are any deferred
3015 * events to process
3017 if ((ndlp->nlp_flag & NLP_UNREG_INP) &&
3018 (ndlp->nlp_defer_did !=
3019 NLP_EVT_NOTHING_PENDING)) {
3020 lpfc_printf_vlog(
3021 vport, KERN_INFO,
3022 LOG_MBOX | LOG_SLI | LOG_NODE,
3023 "4111 UNREG cmpl deferred "
3024 "clr x%x on "
3025 "NPort x%x Data: x%x x%px\n",
3026 ndlp->nlp_rpi, ndlp->nlp_DID,
3027 ndlp->nlp_defer_did, ndlp);
3028 ndlp->nlp_flag &= ~NLP_UNREG_INP;
3029 ndlp->nlp_defer_did =
3030 NLP_EVT_NOTHING_PENDING;
3031 lpfc_issue_els_plogi(
3032 vport, ndlp->nlp_DID, 0);
3033 } else {
3034 __lpfc_sli_rpi_release(vport, ndlp);
3036 lpfc_nlp_put(ndlp);
3041 mempool_free(pmb, phba->mbox_mem_pool);
3045 * lpfc_sli_handle_mb_event - Handle mailbox completions from firmware
3046 * @phba: Pointer to HBA context object.
3048 * This function is called with no lock held. This function processes all
3049 * the completed mailbox commands and gives it to upper layers. The interrupt
3050 * service routine processes mailbox completion interrupt and adds completed
3051 * mailbox commands to the mboxq_cmpl queue and signals the worker thread.
3052 * Worker thread call lpfc_sli_handle_mb_event, which will return the
3053 * completed mailbox commands in mboxq_cmpl queue to the upper layers. This
3054 * function returns the mailbox commands to the upper layer by calling the
3055 * completion handler function of each mailbox.
3058 lpfc_sli_handle_mb_event(struct lpfc_hba *phba)
3060 MAILBOX_t *pmbox;
3061 LPFC_MBOXQ_t *pmb;
3062 int rc;
3063 LIST_HEAD(cmplq);
3065 phba->sli.slistat.mbox_event++;
3067 /* Get all completed mailboxe buffers into the cmplq */
3068 spin_lock_irq(&phba->hbalock);
3069 list_splice_init(&phba->sli.mboxq_cmpl, &cmplq);
3070 spin_unlock_irq(&phba->hbalock);
3072 /* Get a Mailbox buffer to setup mailbox commands for callback */
3073 do {
3074 list_remove_head(&cmplq, pmb, LPFC_MBOXQ_t, list);
3075 if (pmb == NULL)
3076 break;
3078 pmbox = &pmb->u.mb;
3080 if (pmbox->mbxCommand != MBX_HEARTBEAT) {
3081 if (pmb->vport) {
3082 lpfc_debugfs_disc_trc(pmb->vport,
3083 LPFC_DISC_TRC_MBOX_VPORT,
3084 "MBOX cmpl vport: cmd:x%x mb:x%x x%x",
3085 (uint32_t)pmbox->mbxCommand,
3086 pmbox->un.varWords[0],
3087 pmbox->un.varWords[1]);
3089 else {
3090 lpfc_debugfs_disc_trc(phba->pport,
3091 LPFC_DISC_TRC_MBOX,
3092 "MBOX cmpl: cmd:x%x mb:x%x x%x",
3093 (uint32_t)pmbox->mbxCommand,
3094 pmbox->un.varWords[0],
3095 pmbox->un.varWords[1]);
3100 * It is a fatal error if unknown mbox command completion.
3102 if (lpfc_sli_chk_mbx_command(pmbox->mbxCommand) ==
3103 MBX_SHUTDOWN) {
3104 /* Unknown mailbox command compl */
3105 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
3106 "(%d):0323 Unknown Mailbox command "
3107 "x%x (x%x/x%x) Cmpl\n",
3108 pmb->vport ? pmb->vport->vpi :
3109 LPFC_VPORT_UNKNOWN,
3110 pmbox->mbxCommand,
3111 lpfc_sli_config_mbox_subsys_get(phba,
3112 pmb),
3113 lpfc_sli_config_mbox_opcode_get(phba,
3114 pmb));
3115 phba->link_state = LPFC_HBA_ERROR;
3116 phba->work_hs = HS_FFER3;
3117 lpfc_handle_eratt(phba);
3118 continue;
3121 if (pmbox->mbxStatus) {
3122 phba->sli.slistat.mbox_stat_err++;
3123 if (pmbox->mbxStatus == MBXERR_NO_RESOURCES) {
3124 /* Mbox cmd cmpl error - RETRYing */
3125 lpfc_printf_log(phba, KERN_INFO,
3126 LOG_MBOX | LOG_SLI,
3127 "(%d):0305 Mbox cmd cmpl "
3128 "error - RETRYing Data: x%x "
3129 "(x%x/x%x) x%x x%x x%x\n",
3130 pmb->vport ? pmb->vport->vpi :
3131 LPFC_VPORT_UNKNOWN,
3132 pmbox->mbxCommand,
3133 lpfc_sli_config_mbox_subsys_get(phba,
3134 pmb),
3135 lpfc_sli_config_mbox_opcode_get(phba,
3136 pmb),
3137 pmbox->mbxStatus,
3138 pmbox->un.varWords[0],
3139 pmb->vport ? pmb->vport->port_state :
3140 LPFC_VPORT_UNKNOWN);
3141 pmbox->mbxStatus = 0;
3142 pmbox->mbxOwner = OWN_HOST;
3143 rc = lpfc_sli_issue_mbox(phba, pmb, MBX_NOWAIT);
3144 if (rc != MBX_NOT_FINISHED)
3145 continue;
3149 /* Mailbox cmd <cmd> Cmpl <cmpl> */
3150 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
3151 "(%d):0307 Mailbox cmd x%x (x%x/x%x) Cmpl %ps "
3152 "Data: x%x x%x x%x x%x x%x x%x x%x x%x x%x "
3153 "x%x x%x x%x\n",
3154 pmb->vport ? pmb->vport->vpi : 0,
3155 pmbox->mbxCommand,
3156 lpfc_sli_config_mbox_subsys_get(phba, pmb),
3157 lpfc_sli_config_mbox_opcode_get(phba, pmb),
3158 pmb->mbox_cmpl,
3159 *((uint32_t *) pmbox),
3160 pmbox->un.varWords[0],
3161 pmbox->un.varWords[1],
3162 pmbox->un.varWords[2],
3163 pmbox->un.varWords[3],
3164 pmbox->un.varWords[4],
3165 pmbox->un.varWords[5],
3166 pmbox->un.varWords[6],
3167 pmbox->un.varWords[7],
3168 pmbox->un.varWords[8],
3169 pmbox->un.varWords[9],
3170 pmbox->un.varWords[10]);
3172 if (pmb->mbox_cmpl)
3173 pmb->mbox_cmpl(phba,pmb);
3174 } while (1);
3175 return 0;
3179 * lpfc_sli_get_buff - Get the buffer associated with the buffer tag
3180 * @phba: Pointer to HBA context object.
3181 * @pring: Pointer to driver SLI ring object.
3182 * @tag: buffer tag.
3184 * This function is called with no lock held. When QUE_BUFTAG_BIT bit
3185 * is set in the tag the buffer is posted for a particular exchange,
3186 * the function will return the buffer without replacing the buffer.
3187 * If the buffer is for unsolicited ELS or CT traffic, this function
3188 * returns the buffer and also posts another buffer to the firmware.
3190 static struct lpfc_dmabuf *
3191 lpfc_sli_get_buff(struct lpfc_hba *phba,
3192 struct lpfc_sli_ring *pring,
3193 uint32_t tag)
3195 struct hbq_dmabuf *hbq_entry;
3197 if (tag & QUE_BUFTAG_BIT)
3198 return lpfc_sli_ring_taggedbuf_get(phba, pring, tag);
3199 hbq_entry = lpfc_sli_hbqbuf_find(phba, tag);
3200 if (!hbq_entry)
3201 return NULL;
3202 return &hbq_entry->dbuf;
3206 * lpfc_nvme_unsol_ls_handler - Process an unsolicited event data buffer
3207 * containing a NVME LS request.
3208 * @phba: pointer to lpfc hba data structure.
3209 * @piocb: pointer to the iocbq struct representing the sequence starting
3210 * frame.
3212 * This routine initially validates the NVME LS, validates there is a login
3213 * with the port that sent the LS, and then calls the appropriate nvme host
3214 * or target LS request handler.
3216 static void
3217 lpfc_nvme_unsol_ls_handler(struct lpfc_hba *phba, struct lpfc_iocbq *piocb)
3219 struct lpfc_nodelist *ndlp;
3220 struct lpfc_dmabuf *d_buf;
3221 struct hbq_dmabuf *nvmebuf;
3222 struct fc_frame_header *fc_hdr;
3223 struct lpfc_async_xchg_ctx *axchg = NULL;
3224 char *failwhy = NULL;
3225 uint32_t oxid, sid, did, fctl, size;
3226 int ret = 1;
3228 d_buf = piocb->cmd_dmabuf;
3230 nvmebuf = container_of(d_buf, struct hbq_dmabuf, dbuf);
3231 fc_hdr = nvmebuf->hbuf.virt;
3232 oxid = be16_to_cpu(fc_hdr->fh_ox_id);
3233 sid = sli4_sid_from_fc_hdr(fc_hdr);
3234 did = sli4_did_from_fc_hdr(fc_hdr);
3235 fctl = (fc_hdr->fh_f_ctl[0] << 16 |
3236 fc_hdr->fh_f_ctl[1] << 8 |
3237 fc_hdr->fh_f_ctl[2]);
3238 size = bf_get(lpfc_rcqe_length, &nvmebuf->cq_event.cqe.rcqe_cmpl);
3240 lpfc_nvmeio_data(phba, "NVME LS RCV: xri x%x sz %d from %06x\n",
3241 oxid, size, sid);
3243 if (test_bit(FC_UNLOADING, &phba->pport->load_flag)) {
3244 failwhy = "Driver Unloading";
3245 } else if (!(phba->cfg_enable_fc4_type & LPFC_ENABLE_NVME)) {
3246 failwhy = "NVME FC4 Disabled";
3247 } else if (!phba->nvmet_support && !phba->pport->localport) {
3248 failwhy = "No Localport";
3249 } else if (phba->nvmet_support && !phba->targetport) {
3250 failwhy = "No Targetport";
3251 } else if (unlikely(fc_hdr->fh_r_ctl != FC_RCTL_ELS4_REQ)) {
3252 failwhy = "Bad NVME LS R_CTL";
3253 } else if (unlikely((fctl & 0x00FF0000) !=
3254 (FC_FC_FIRST_SEQ | FC_FC_END_SEQ | FC_FC_SEQ_INIT))) {
3255 failwhy = "Bad NVME LS F_CTL";
3256 } else {
3257 axchg = kzalloc(sizeof(*axchg), GFP_ATOMIC);
3258 if (!axchg)
3259 failwhy = "No CTX memory";
3262 if (unlikely(failwhy)) {
3263 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
3264 "6154 Drop NVME LS: SID %06X OXID x%X: %s\n",
3265 sid, oxid, failwhy);
3266 goto out_fail;
3269 /* validate the source of the LS is logged in */
3270 ndlp = lpfc_findnode_did(phba->pport, sid);
3271 if (!ndlp ||
3272 ((ndlp->nlp_state != NLP_STE_UNMAPPED_NODE) &&
3273 (ndlp->nlp_state != NLP_STE_MAPPED_NODE))) {
3274 lpfc_printf_log(phba, KERN_ERR, LOG_NVME_DISC,
3275 "6216 NVME Unsol rcv: No ndlp: "
3276 "NPort_ID x%x oxid x%x\n",
3277 sid, oxid);
3278 goto out_fail;
3281 axchg->phba = phba;
3282 axchg->ndlp = ndlp;
3283 axchg->size = size;
3284 axchg->oxid = oxid;
3285 axchg->sid = sid;
3286 axchg->wqeq = NULL;
3287 axchg->state = LPFC_NVME_STE_LS_RCV;
3288 axchg->entry_cnt = 1;
3289 axchg->rqb_buffer = (void *)nvmebuf;
3290 axchg->hdwq = &phba->sli4_hba.hdwq[0];
3291 axchg->payload = nvmebuf->dbuf.virt;
3292 INIT_LIST_HEAD(&axchg->list);
3294 if (phba->nvmet_support) {
3295 ret = lpfc_nvmet_handle_lsreq(phba, axchg);
3296 spin_lock_irq(&ndlp->lock);
3297 if (!ret && !(ndlp->fc4_xpt_flags & NLP_XPT_HAS_HH)) {
3298 ndlp->fc4_xpt_flags |= NLP_XPT_HAS_HH;
3299 spin_unlock_irq(&ndlp->lock);
3301 /* This reference is a single occurrence to hold the
3302 * node valid until the nvmet transport calls
3303 * host_release.
3305 if (!lpfc_nlp_get(ndlp))
3306 goto out_fail;
3308 lpfc_printf_log(phba, KERN_ERR, LOG_NODE,
3309 "6206 NVMET unsol ls_req ndlp x%px "
3310 "DID x%x xflags x%x refcnt %d\n",
3311 ndlp, ndlp->nlp_DID,
3312 ndlp->fc4_xpt_flags,
3313 kref_read(&ndlp->kref));
3314 } else {
3315 spin_unlock_irq(&ndlp->lock);
3317 } else {
3318 ret = lpfc_nvme_handle_lsreq(phba, axchg);
3321 /* if zero, LS was successfully handled. If non-zero, LS not handled */
3322 if (!ret)
3323 return;
3325 out_fail:
3326 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
3327 "6155 Drop NVME LS from DID %06X: SID %06X OXID x%X "
3328 "NVMe%s handler failed %d\n",
3329 did, sid, oxid,
3330 (phba->nvmet_support) ? "T" : "I", ret);
3332 /* recycle receive buffer */
3333 lpfc_in_buf_free(phba, &nvmebuf->dbuf);
3335 /* If start of new exchange, abort it */
3336 if (axchg && (fctl & FC_FC_FIRST_SEQ && !(fctl & FC_FC_EX_CTX)))
3337 ret = lpfc_nvme_unsol_ls_issue_abort(phba, axchg, sid, oxid);
3339 if (ret)
3340 kfree(axchg);
3344 * lpfc_complete_unsol_iocb - Complete an unsolicited sequence
3345 * @phba: Pointer to HBA context object.
3346 * @pring: Pointer to driver SLI ring object.
3347 * @saveq: Pointer to the iocbq struct representing the sequence starting frame.
3348 * @fch_r_ctl: the r_ctl for the first frame of the sequence.
3349 * @fch_type: the type for the first frame of the sequence.
3351 * This function is called with no lock held. This function uses the r_ctl and
3352 * type of the received sequence to find the correct callback function to call
3353 * to process the sequence.
3355 static int
3356 lpfc_complete_unsol_iocb(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
3357 struct lpfc_iocbq *saveq, uint32_t fch_r_ctl,
3358 uint32_t fch_type)
3360 int i;
3362 switch (fch_type) {
3363 case FC_TYPE_NVME:
3364 lpfc_nvme_unsol_ls_handler(phba, saveq);
3365 return 1;
3366 default:
3367 break;
3370 /* unSolicited Responses */
3371 if (pring->prt[0].profile) {
3372 if (pring->prt[0].lpfc_sli_rcv_unsol_event)
3373 (pring->prt[0].lpfc_sli_rcv_unsol_event) (phba, pring,
3374 saveq);
3375 return 1;
3377 /* We must search, based on rctl / type
3378 for the right routine */
3379 for (i = 0; i < pring->num_mask; i++) {
3380 if ((pring->prt[i].rctl == fch_r_ctl) &&
3381 (pring->prt[i].type == fch_type)) {
3382 if (pring->prt[i].lpfc_sli_rcv_unsol_event)
3383 (pring->prt[i].lpfc_sli_rcv_unsol_event)
3384 (phba, pring, saveq);
3385 return 1;
3388 return 0;
3391 static void
3392 lpfc_sli_prep_unsol_wqe(struct lpfc_hba *phba,
3393 struct lpfc_iocbq *saveq)
3395 IOCB_t *irsp;
3396 union lpfc_wqe128 *wqe;
3397 u16 i = 0;
3399 irsp = &saveq->iocb;
3400 wqe = &saveq->wqe;
3402 /* Fill wcqe with the IOCB status fields */
3403 bf_set(lpfc_wcqe_c_status, &saveq->wcqe_cmpl, irsp->ulpStatus);
3404 saveq->wcqe_cmpl.word3 = irsp->ulpBdeCount;
3405 saveq->wcqe_cmpl.parameter = irsp->un.ulpWord[4];
3406 saveq->wcqe_cmpl.total_data_placed = irsp->unsli3.rcvsli3.acc_len;
3408 /* Source ID */
3409 bf_set(els_rsp64_sid, &wqe->xmit_els_rsp, irsp->un.rcvels.parmRo);
3411 /* rx-id of the response frame */
3412 bf_set(wqe_ctxt_tag, &wqe->xmit_els_rsp.wqe_com, irsp->ulpContext);
3414 /* ox-id of the frame */
3415 bf_set(wqe_rcvoxid, &wqe->xmit_els_rsp.wqe_com,
3416 irsp->unsli3.rcvsli3.ox_id);
3418 /* DID */
3419 bf_set(wqe_els_did, &wqe->xmit_els_rsp.wqe_dest,
3420 irsp->un.rcvels.remoteID);
3422 /* unsol data len */
3423 for (i = 0; i < irsp->ulpBdeCount; i++) {
3424 struct lpfc_hbq_entry *hbqe = NULL;
3426 if (phba->sli3_options & LPFC_SLI3_HBQ_ENABLED) {
3427 if (i == 0) {
3428 hbqe = (struct lpfc_hbq_entry *)
3429 &irsp->un.ulpWord[0];
3430 saveq->wqe.gen_req.bde.tus.f.bdeSize =
3431 hbqe->bde.tus.f.bdeSize;
3432 } else if (i == 1) {
3433 hbqe = (struct lpfc_hbq_entry *)
3434 &irsp->unsli3.sli3Words[4];
3435 saveq->unsol_rcv_len = hbqe->bde.tus.f.bdeSize;
3442 * lpfc_sli_process_unsol_iocb - Unsolicited iocb handler
3443 * @phba: Pointer to HBA context object.
3444 * @pring: Pointer to driver SLI ring object.
3445 * @saveq: Pointer to the unsolicited iocb.
3447 * This function is called with no lock held by the ring event handler
3448 * when there is an unsolicited iocb posted to the response ring by the
3449 * firmware. This function gets the buffer associated with the iocbs
3450 * and calls the event handler for the ring. This function handles both
3451 * qring buffers and hbq buffers.
3452 * When the function returns 1 the caller can free the iocb object otherwise
3453 * upper layer functions will free the iocb objects.
3455 static int
3456 lpfc_sli_process_unsol_iocb(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
3457 struct lpfc_iocbq *saveq)
3459 IOCB_t * irsp;
3460 WORD5 * w5p;
3461 dma_addr_t paddr;
3462 uint32_t Rctl, Type;
3463 struct lpfc_iocbq *iocbq;
3464 struct lpfc_dmabuf *dmzbuf;
3466 irsp = &saveq->iocb;
3467 saveq->vport = phba->pport;
3469 if (irsp->ulpCommand == CMD_ASYNC_STATUS) {
3470 if (pring->lpfc_sli_rcv_async_status)
3471 pring->lpfc_sli_rcv_async_status(phba, pring, saveq);
3472 else
3473 lpfc_printf_log(phba,
3474 KERN_WARNING,
3475 LOG_SLI,
3476 "0316 Ring %d handler: unexpected "
3477 "ASYNC_STATUS iocb received evt_code "
3478 "0x%x\n",
3479 pring->ringno,
3480 irsp->un.asyncstat.evt_code);
3481 return 1;
3484 if ((irsp->ulpCommand == CMD_IOCB_RET_XRI64_CX) &&
3485 (phba->sli3_options & LPFC_SLI3_HBQ_ENABLED)) {
3486 if (irsp->ulpBdeCount > 0) {
3487 dmzbuf = lpfc_sli_get_buff(phba, pring,
3488 irsp->un.ulpWord[3]);
3489 lpfc_in_buf_free(phba, dmzbuf);
3492 if (irsp->ulpBdeCount > 1) {
3493 dmzbuf = lpfc_sli_get_buff(phba, pring,
3494 irsp->unsli3.sli3Words[3]);
3495 lpfc_in_buf_free(phba, dmzbuf);
3498 if (irsp->ulpBdeCount > 2) {
3499 dmzbuf = lpfc_sli_get_buff(phba, pring,
3500 irsp->unsli3.sli3Words[7]);
3501 lpfc_in_buf_free(phba, dmzbuf);
3504 return 1;
3507 if (phba->sli3_options & LPFC_SLI3_HBQ_ENABLED) {
3508 if (irsp->ulpBdeCount != 0) {
3509 saveq->cmd_dmabuf = lpfc_sli_get_buff(phba, pring,
3510 irsp->un.ulpWord[3]);
3511 if (!saveq->cmd_dmabuf)
3512 lpfc_printf_log(phba,
3513 KERN_ERR,
3514 LOG_SLI,
3515 "0341 Ring %d Cannot find buffer for "
3516 "an unsolicited iocb. tag 0x%x\n",
3517 pring->ringno,
3518 irsp->un.ulpWord[3]);
3520 if (irsp->ulpBdeCount == 2) {
3521 saveq->bpl_dmabuf = lpfc_sli_get_buff(phba, pring,
3522 irsp->unsli3.sli3Words[7]);
3523 if (!saveq->bpl_dmabuf)
3524 lpfc_printf_log(phba,
3525 KERN_ERR,
3526 LOG_SLI,
3527 "0342 Ring %d Cannot find buffer for an"
3528 " unsolicited iocb. tag 0x%x\n",
3529 pring->ringno,
3530 irsp->unsli3.sli3Words[7]);
3532 list_for_each_entry(iocbq, &saveq->list, list) {
3533 irsp = &iocbq->iocb;
3534 if (irsp->ulpBdeCount != 0) {
3535 iocbq->cmd_dmabuf = lpfc_sli_get_buff(phba,
3536 pring,
3537 irsp->un.ulpWord[3]);
3538 if (!iocbq->cmd_dmabuf)
3539 lpfc_printf_log(phba,
3540 KERN_ERR,
3541 LOG_SLI,
3542 "0343 Ring %d Cannot find "
3543 "buffer for an unsolicited iocb"
3544 ". tag 0x%x\n", pring->ringno,
3545 irsp->un.ulpWord[3]);
3547 if (irsp->ulpBdeCount == 2) {
3548 iocbq->bpl_dmabuf = lpfc_sli_get_buff(phba,
3549 pring,
3550 irsp->unsli3.sli3Words[7]);
3551 if (!iocbq->bpl_dmabuf)
3552 lpfc_printf_log(phba,
3553 KERN_ERR,
3554 LOG_SLI,
3555 "0344 Ring %d Cannot find "
3556 "buffer for an unsolicited "
3557 "iocb. tag 0x%x\n",
3558 pring->ringno,
3559 irsp->unsli3.sli3Words[7]);
3562 } else {
3563 paddr = getPaddr(irsp->un.cont64[0].addrHigh,
3564 irsp->un.cont64[0].addrLow);
3565 saveq->cmd_dmabuf = lpfc_sli_ringpostbuf_get(phba, pring,
3566 paddr);
3567 if (irsp->ulpBdeCount == 2) {
3568 paddr = getPaddr(irsp->un.cont64[1].addrHigh,
3569 irsp->un.cont64[1].addrLow);
3570 saveq->bpl_dmabuf = lpfc_sli_ringpostbuf_get(phba,
3571 pring,
3572 paddr);
3576 if (irsp->ulpBdeCount != 0 &&
3577 (irsp->ulpCommand == CMD_IOCB_RCV_CONT64_CX ||
3578 irsp->ulpStatus == IOSTAT_INTERMED_RSP)) {
3579 int found = 0;
3581 /* search continue save q for same XRI */
3582 list_for_each_entry(iocbq, &pring->iocb_continue_saveq, clist) {
3583 if (iocbq->iocb.unsli3.rcvsli3.ox_id ==
3584 saveq->iocb.unsli3.rcvsli3.ox_id) {
3585 list_add_tail(&saveq->list, &iocbq->list);
3586 found = 1;
3587 break;
3590 if (!found)
3591 list_add_tail(&saveq->clist,
3592 &pring->iocb_continue_saveq);
3594 if (saveq->iocb.ulpStatus != IOSTAT_INTERMED_RSP) {
3595 list_del_init(&iocbq->clist);
3596 saveq = iocbq;
3597 irsp = &saveq->iocb;
3598 } else {
3599 return 0;
3602 if ((irsp->ulpCommand == CMD_RCV_ELS_REQ64_CX) ||
3603 (irsp->ulpCommand == CMD_RCV_ELS_REQ_CX) ||
3604 (irsp->ulpCommand == CMD_IOCB_RCV_ELS64_CX)) {
3605 Rctl = FC_RCTL_ELS_REQ;
3606 Type = FC_TYPE_ELS;
3607 } else {
3608 w5p = (WORD5 *)&(saveq->iocb.un.ulpWord[5]);
3609 Rctl = w5p->hcsw.Rctl;
3610 Type = w5p->hcsw.Type;
3612 /* Firmware Workaround */
3613 if ((Rctl == 0) && (pring->ringno == LPFC_ELS_RING) &&
3614 (irsp->ulpCommand == CMD_RCV_SEQUENCE64_CX ||
3615 irsp->ulpCommand == CMD_IOCB_RCV_SEQ64_CX)) {
3616 Rctl = FC_RCTL_ELS_REQ;
3617 Type = FC_TYPE_ELS;
3618 w5p->hcsw.Rctl = Rctl;
3619 w5p->hcsw.Type = Type;
3623 if ((phba->sli3_options & LPFC_SLI3_NPIV_ENABLED) &&
3624 (irsp->ulpCommand == CMD_IOCB_RCV_ELS64_CX ||
3625 irsp->ulpCommand == CMD_IOCB_RCV_SEQ64_CX)) {
3626 if (irsp->unsli3.rcvsli3.vpi == 0xffff)
3627 saveq->vport = phba->pport;
3628 else
3629 saveq->vport = lpfc_find_vport_by_vpid(phba,
3630 irsp->unsli3.rcvsli3.vpi);
3633 /* Prepare WQE with Unsol frame */
3634 lpfc_sli_prep_unsol_wqe(phba, saveq);
3636 if (!lpfc_complete_unsol_iocb(phba, pring, saveq, Rctl, Type))
3637 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
3638 "0313 Ring %d handler: unexpected Rctl x%x "
3639 "Type x%x received\n",
3640 pring->ringno, Rctl, Type);
3642 return 1;
3646 * lpfc_sli_iocbq_lookup - Find command iocb for the given response iocb
3647 * @phba: Pointer to HBA context object.
3648 * @pring: Pointer to driver SLI ring object.
3649 * @prspiocb: Pointer to response iocb object.
3651 * This function looks up the iocb_lookup table to get the command iocb
3652 * corresponding to the given response iocb using the iotag of the
3653 * response iocb. The driver calls this function with the hbalock held
3654 * for SLI3 ports or the ring lock held for SLI4 ports.
3655 * This function returns the command iocb object if it finds the command
3656 * iocb else returns NULL.
3658 static struct lpfc_iocbq *
3659 lpfc_sli_iocbq_lookup(struct lpfc_hba *phba,
3660 struct lpfc_sli_ring *pring,
3661 struct lpfc_iocbq *prspiocb)
3663 struct lpfc_iocbq *cmd_iocb = NULL;
3664 u16 iotag;
3666 if (phba->sli_rev == LPFC_SLI_REV4)
3667 iotag = get_wqe_reqtag(prspiocb);
3668 else
3669 iotag = prspiocb->iocb.ulpIoTag;
3671 if (iotag != 0 && iotag <= phba->sli.last_iotag) {
3672 cmd_iocb = phba->sli.iocbq_lookup[iotag];
3673 if (cmd_iocb->cmd_flag & LPFC_IO_ON_TXCMPLQ) {
3674 /* remove from txcmpl queue list */
3675 list_del_init(&cmd_iocb->list);
3676 cmd_iocb->cmd_flag &= ~LPFC_IO_ON_TXCMPLQ;
3677 pring->txcmplq_cnt--;
3678 return cmd_iocb;
3682 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
3683 "0317 iotag x%x is out of "
3684 "range: max iotag x%x\n",
3685 iotag, phba->sli.last_iotag);
3686 return NULL;
3690 * lpfc_sli_iocbq_lookup_by_tag - Find command iocb for the iotag
3691 * @phba: Pointer to HBA context object.
3692 * @pring: Pointer to driver SLI ring object.
3693 * @iotag: IOCB tag.
3695 * This function looks up the iocb_lookup table to get the command iocb
3696 * corresponding to the given iotag. The driver calls this function with
3697 * the ring lock held because this function is an SLI4 port only helper.
3698 * This function returns the command iocb object if it finds the command
3699 * iocb else returns NULL.
3701 static struct lpfc_iocbq *
3702 lpfc_sli_iocbq_lookup_by_tag(struct lpfc_hba *phba,
3703 struct lpfc_sli_ring *pring, uint16_t iotag)
3705 struct lpfc_iocbq *cmd_iocb = NULL;
3707 if (iotag != 0 && iotag <= phba->sli.last_iotag) {
3708 cmd_iocb = phba->sli.iocbq_lookup[iotag];
3709 if (cmd_iocb->cmd_flag & LPFC_IO_ON_TXCMPLQ) {
3710 /* remove from txcmpl queue list */
3711 list_del_init(&cmd_iocb->list);
3712 cmd_iocb->cmd_flag &= ~LPFC_IO_ON_TXCMPLQ;
3713 pring->txcmplq_cnt--;
3714 return cmd_iocb;
3718 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
3719 "0372 iotag x%x lookup error: max iotag (x%x) "
3720 "cmd_flag x%x\n",
3721 iotag, phba->sli.last_iotag,
3722 cmd_iocb ? cmd_iocb->cmd_flag : 0xffff);
3723 return NULL;
3727 * lpfc_sli_process_sol_iocb - process solicited iocb completion
3728 * @phba: Pointer to HBA context object.
3729 * @pring: Pointer to driver SLI ring object.
3730 * @saveq: Pointer to the response iocb to be processed.
3732 * This function is called by the ring event handler for non-fcp
3733 * rings when there is a new response iocb in the response ring.
3734 * The caller is not required to hold any locks. This function
3735 * gets the command iocb associated with the response iocb and
3736 * calls the completion handler for the command iocb. If there
3737 * is no completion handler, the function will free the resources
3738 * associated with command iocb. If the response iocb is for
3739 * an already aborted command iocb, the status of the completion
3740 * is changed to IOSTAT_LOCAL_REJECT/IOERR_SLI_ABORTED.
3741 * This function always returns 1.
3743 static int
3744 lpfc_sli_process_sol_iocb(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
3745 struct lpfc_iocbq *saveq)
3747 struct lpfc_iocbq *cmdiocbp;
3748 unsigned long iflag;
3749 u32 ulp_command, ulp_status, ulp_word4, ulp_context, iotag;
3751 if (phba->sli_rev == LPFC_SLI_REV4)
3752 spin_lock_irqsave(&pring->ring_lock, iflag);
3753 else
3754 spin_lock_irqsave(&phba->hbalock, iflag);
3755 cmdiocbp = lpfc_sli_iocbq_lookup(phba, pring, saveq);
3756 if (phba->sli_rev == LPFC_SLI_REV4)
3757 spin_unlock_irqrestore(&pring->ring_lock, iflag);
3758 else
3759 spin_unlock_irqrestore(&phba->hbalock, iflag);
3761 ulp_command = get_job_cmnd(phba, saveq);
3762 ulp_status = get_job_ulpstatus(phba, saveq);
3763 ulp_word4 = get_job_word4(phba, saveq);
3764 ulp_context = get_job_ulpcontext(phba, saveq);
3765 if (phba->sli_rev == LPFC_SLI_REV4)
3766 iotag = get_wqe_reqtag(saveq);
3767 else
3768 iotag = saveq->iocb.ulpIoTag;
3770 if (cmdiocbp) {
3771 ulp_command = get_job_cmnd(phba, cmdiocbp);
3772 if (cmdiocbp->cmd_cmpl) {
3774 * If an ELS command failed send an event to mgmt
3775 * application.
3777 if (ulp_status &&
3778 (pring->ringno == LPFC_ELS_RING) &&
3779 (ulp_command == CMD_ELS_REQUEST64_CR))
3780 lpfc_send_els_failure_event(phba,
3781 cmdiocbp, saveq);
3784 * Post all ELS completions to the worker thread.
3785 * All other are passed to the completion callback.
3787 if (pring->ringno == LPFC_ELS_RING) {
3788 if ((phba->sli_rev < LPFC_SLI_REV4) &&
3789 (cmdiocbp->cmd_flag &
3790 LPFC_DRIVER_ABORTED)) {
3791 spin_lock_irqsave(&phba->hbalock,
3792 iflag);
3793 cmdiocbp->cmd_flag &=
3794 ~LPFC_DRIVER_ABORTED;
3795 spin_unlock_irqrestore(&phba->hbalock,
3796 iflag);
3797 saveq->iocb.ulpStatus =
3798 IOSTAT_LOCAL_REJECT;
3799 saveq->iocb.un.ulpWord[4] =
3800 IOERR_SLI_ABORTED;
3802 /* Firmware could still be in progress
3803 * of DMAing payload, so don't free data
3804 * buffer till after a hbeat.
3806 spin_lock_irqsave(&phba->hbalock,
3807 iflag);
3808 saveq->cmd_flag |= LPFC_DELAY_MEM_FREE;
3809 spin_unlock_irqrestore(&phba->hbalock,
3810 iflag);
3812 if (phba->sli_rev == LPFC_SLI_REV4) {
3813 if (saveq->cmd_flag &
3814 LPFC_EXCHANGE_BUSY) {
3815 /* Set cmdiocb flag for the
3816 * exchange busy so sgl (xri)
3817 * will not be released until
3818 * the abort xri is received
3819 * from hba.
3821 spin_lock_irqsave(
3822 &phba->hbalock, iflag);
3823 cmdiocbp->cmd_flag |=
3824 LPFC_EXCHANGE_BUSY;
3825 spin_unlock_irqrestore(
3826 &phba->hbalock, iflag);
3828 if (cmdiocbp->cmd_flag &
3829 LPFC_DRIVER_ABORTED) {
3831 * Clear LPFC_DRIVER_ABORTED
3832 * bit in case it was driver
3833 * initiated abort.
3835 spin_lock_irqsave(
3836 &phba->hbalock, iflag);
3837 cmdiocbp->cmd_flag &=
3838 ~LPFC_DRIVER_ABORTED;
3839 spin_unlock_irqrestore(
3840 &phba->hbalock, iflag);
3841 set_job_ulpstatus(cmdiocbp,
3842 IOSTAT_LOCAL_REJECT);
3843 set_job_ulpword4(cmdiocbp,
3844 IOERR_ABORT_REQUESTED);
3846 * For SLI4, irspiocb contains
3847 * NO_XRI in sli_xritag, it
3848 * shall not affect releasing
3849 * sgl (xri) process.
3851 set_job_ulpstatus(saveq,
3852 IOSTAT_LOCAL_REJECT);
3853 set_job_ulpword4(saveq,
3854 IOERR_SLI_ABORTED);
3855 spin_lock_irqsave(
3856 &phba->hbalock, iflag);
3857 saveq->cmd_flag |=
3858 LPFC_DELAY_MEM_FREE;
3859 spin_unlock_irqrestore(
3860 &phba->hbalock, iflag);
3864 cmdiocbp->cmd_cmpl(phba, cmdiocbp, saveq);
3865 } else
3866 lpfc_sli_release_iocbq(phba, cmdiocbp);
3867 } else {
3869 * Unknown initiating command based on the response iotag.
3870 * This could be the case on the ELS ring because of
3871 * lpfc_els_abort().
3873 if (pring->ringno != LPFC_ELS_RING) {
3875 * Ring <ringno> handler: unexpected completion IoTag
3876 * <IoTag>
3878 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
3879 "0322 Ring %d handler: "
3880 "unexpected completion IoTag x%x "
3881 "Data: x%x x%x x%x x%x\n",
3882 pring->ringno, iotag, ulp_status,
3883 ulp_word4, ulp_command, ulp_context);
3887 return 1;
3891 * lpfc_sli_rsp_pointers_error - Response ring pointer error handler
3892 * @phba: Pointer to HBA context object.
3893 * @pring: Pointer to driver SLI ring object.
3895 * This function is called from the iocb ring event handlers when
3896 * put pointer is ahead of the get pointer for a ring. This function signal
3897 * an error attention condition to the worker thread and the worker
3898 * thread will transition the HBA to offline state.
3900 static void
3901 lpfc_sli_rsp_pointers_error(struct lpfc_hba *phba, struct lpfc_sli_ring *pring)
3903 struct lpfc_pgp *pgp = &phba->port_gp[pring->ringno];
3905 * Ring <ringno> handler: portRspPut <portRspPut> is bigger than
3906 * rsp ring <portRspMax>
3908 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
3909 "0312 Ring %d handler: portRspPut %d "
3910 "is bigger than rsp ring %d\n",
3911 pring->ringno, le32_to_cpu(pgp->rspPutInx),
3912 pring->sli.sli3.numRiocb);
3914 phba->link_state = LPFC_HBA_ERROR;
3917 * All error attention handlers are posted to
3918 * worker thread
3920 phba->work_ha |= HA_ERATT;
3921 phba->work_hs = HS_FFER3;
3923 lpfc_worker_wake_up(phba);
3925 return;
3929 * lpfc_poll_eratt - Error attention polling timer timeout handler
3930 * @t: Context to fetch pointer to address of HBA context object from.
3932 * This function is invoked by the Error Attention polling timer when the
3933 * timer times out. It will check the SLI Error Attention register for
3934 * possible attention events. If so, it will post an Error Attention event
3935 * and wake up worker thread to process it. Otherwise, it will set up the
3936 * Error Attention polling timer for the next poll.
3938 void lpfc_poll_eratt(struct timer_list *t)
3940 struct lpfc_hba *phba;
3941 uint32_t eratt = 0;
3942 uint64_t sli_intr, cnt;
3944 phba = from_timer(phba, t, eratt_poll);
3945 if (!test_bit(HBA_SETUP, &phba->hba_flag))
3946 return;
3948 if (test_bit(FC_UNLOADING, &phba->pport->load_flag))
3949 return;
3951 /* Here we will also keep track of interrupts per sec of the hba */
3952 sli_intr = phba->sli.slistat.sli_intr;
3954 if (phba->sli.slistat.sli_prev_intr > sli_intr)
3955 cnt = (((uint64_t)(-1) - phba->sli.slistat.sli_prev_intr) +
3956 sli_intr);
3957 else
3958 cnt = (sli_intr - phba->sli.slistat.sli_prev_intr);
3960 /* 64-bit integer division not supported on 32-bit x86 - use do_div */
3961 do_div(cnt, phba->eratt_poll_interval);
3962 phba->sli.slistat.sli_ips = cnt;
3964 phba->sli.slistat.sli_prev_intr = sli_intr;
3966 /* Check chip HA register for error event */
3967 eratt = lpfc_sli_check_eratt(phba);
3969 if (eratt)
3970 /* Tell the worker thread there is work to do */
3971 lpfc_worker_wake_up(phba);
3972 else
3973 /* Restart the timer for next eratt poll */
3974 mod_timer(&phba->eratt_poll,
3975 jiffies +
3976 msecs_to_jiffies(1000 * phba->eratt_poll_interval));
3977 return;
3982 * lpfc_sli_handle_fast_ring_event - Handle ring events on FCP ring
3983 * @phba: Pointer to HBA context object.
3984 * @pring: Pointer to driver SLI ring object.
3985 * @mask: Host attention register mask for this ring.
3987 * This function is called from the interrupt context when there is a ring
3988 * event for the fcp ring. The caller does not hold any lock.
3989 * The function processes each response iocb in the response ring until it
3990 * finds an iocb with LE bit set and chains all the iocbs up to the iocb with
3991 * LE bit set. The function will call the completion handler of the command iocb
3992 * if the response iocb indicates a completion for a command iocb or it is
3993 * an abort completion. The function will call lpfc_sli_process_unsol_iocb
3994 * function if this is an unsolicited iocb.
3995 * This routine presumes LPFC_FCP_RING handling and doesn't bother
3996 * to check it explicitly.
3999 lpfc_sli_handle_fast_ring_event(struct lpfc_hba *phba,
4000 struct lpfc_sli_ring *pring, uint32_t mask)
4002 struct lpfc_pgp *pgp = &phba->port_gp[pring->ringno];
4003 IOCB_t *irsp = NULL;
4004 IOCB_t *entry = NULL;
4005 struct lpfc_iocbq *cmdiocbq = NULL;
4006 struct lpfc_iocbq rspiocbq;
4007 uint32_t status;
4008 uint32_t portRspPut, portRspMax;
4009 int rc = 1;
4010 lpfc_iocb_type type;
4011 unsigned long iflag;
4012 uint32_t rsp_cmpl = 0;
4014 spin_lock_irqsave(&phba->hbalock, iflag);
4015 pring->stats.iocb_event++;
4018 * The next available response entry should never exceed the maximum
4019 * entries. If it does, treat it as an adapter hardware error.
4021 portRspMax = pring->sli.sli3.numRiocb;
4022 portRspPut = le32_to_cpu(pgp->rspPutInx);
4023 if (unlikely(portRspPut >= portRspMax)) {
4024 lpfc_sli_rsp_pointers_error(phba, pring);
4025 spin_unlock_irqrestore(&phba->hbalock, iflag);
4026 return 1;
4028 if (phba->fcp_ring_in_use) {
4029 spin_unlock_irqrestore(&phba->hbalock, iflag);
4030 return 1;
4031 } else
4032 phba->fcp_ring_in_use = 1;
4034 rmb();
4035 while (pring->sli.sli3.rspidx != portRspPut) {
4037 * Fetch an entry off the ring and copy it into a local data
4038 * structure. The copy involves a byte-swap since the
4039 * network byte order and pci byte orders are different.
4041 entry = lpfc_resp_iocb(phba, pring);
4042 phba->last_completion_time = jiffies;
4044 if (++pring->sli.sli3.rspidx >= portRspMax)
4045 pring->sli.sli3.rspidx = 0;
4047 lpfc_sli_pcimem_bcopy((uint32_t *) entry,
4048 (uint32_t *) &rspiocbq.iocb,
4049 phba->iocb_rsp_size);
4050 INIT_LIST_HEAD(&(rspiocbq.list));
4051 irsp = &rspiocbq.iocb;
4053 type = lpfc_sli_iocb_cmd_type(irsp->ulpCommand & CMD_IOCB_MASK);
4054 pring->stats.iocb_rsp++;
4055 rsp_cmpl++;
4057 if (unlikely(irsp->ulpStatus)) {
4059 * If resource errors reported from HBA, reduce
4060 * queuedepths of the SCSI device.
4062 if ((irsp->ulpStatus == IOSTAT_LOCAL_REJECT) &&
4063 ((irsp->un.ulpWord[4] & IOERR_PARAM_MASK) ==
4064 IOERR_NO_RESOURCES)) {
4065 spin_unlock_irqrestore(&phba->hbalock, iflag);
4066 phba->lpfc_rampdown_queue_depth(phba);
4067 spin_lock_irqsave(&phba->hbalock, iflag);
4070 /* Rsp ring <ringno> error: IOCB */
4071 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
4072 "0336 Rsp Ring %d error: IOCB Data: "
4073 "x%x x%x x%x x%x x%x x%x x%x x%x\n",
4074 pring->ringno,
4075 irsp->un.ulpWord[0],
4076 irsp->un.ulpWord[1],
4077 irsp->un.ulpWord[2],
4078 irsp->un.ulpWord[3],
4079 irsp->un.ulpWord[4],
4080 irsp->un.ulpWord[5],
4081 *(uint32_t *)&irsp->un1,
4082 *((uint32_t *)&irsp->un1 + 1));
4085 switch (type) {
4086 case LPFC_ABORT_IOCB:
4087 case LPFC_SOL_IOCB:
4089 * Idle exchange closed via ABTS from port. No iocb
4090 * resources need to be recovered.
4092 if (unlikely(irsp->ulpCommand == CMD_XRI_ABORTED_CX)) {
4093 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
4094 "0333 IOCB cmd 0x%x"
4095 " processed. Skipping"
4096 " completion\n",
4097 irsp->ulpCommand);
4098 break;
4101 cmdiocbq = lpfc_sli_iocbq_lookup(phba, pring,
4102 &rspiocbq);
4103 if (unlikely(!cmdiocbq))
4104 break;
4105 if (cmdiocbq->cmd_flag & LPFC_DRIVER_ABORTED)
4106 cmdiocbq->cmd_flag &= ~LPFC_DRIVER_ABORTED;
4107 if (cmdiocbq->cmd_cmpl) {
4108 spin_unlock_irqrestore(&phba->hbalock, iflag);
4109 cmdiocbq->cmd_cmpl(phba, cmdiocbq, &rspiocbq);
4110 spin_lock_irqsave(&phba->hbalock, iflag);
4112 break;
4113 case LPFC_UNSOL_IOCB:
4114 spin_unlock_irqrestore(&phba->hbalock, iflag);
4115 lpfc_sli_process_unsol_iocb(phba, pring, &rspiocbq);
4116 spin_lock_irqsave(&phba->hbalock, iflag);
4117 break;
4118 default:
4119 if (irsp->ulpCommand == CMD_ADAPTER_MSG) {
4120 char adaptermsg[LPFC_MAX_ADPTMSG];
4121 memset(adaptermsg, 0, LPFC_MAX_ADPTMSG);
4122 memcpy(&adaptermsg[0], (uint8_t *) irsp,
4123 MAX_MSG_DATA);
4124 dev_warn(&((phba->pcidev)->dev),
4125 "lpfc%d: %s\n",
4126 phba->brd_no, adaptermsg);
4127 } else {
4128 /* Unknown IOCB command */
4129 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
4130 "0334 Unknown IOCB command "
4131 "Data: x%x, x%x x%x x%x x%x\n",
4132 type, irsp->ulpCommand,
4133 irsp->ulpStatus,
4134 irsp->ulpIoTag,
4135 irsp->ulpContext);
4137 break;
4141 * The response IOCB has been processed. Update the ring
4142 * pointer in SLIM. If the port response put pointer has not
4143 * been updated, sync the pgp->rspPutInx and fetch the new port
4144 * response put pointer.
4146 writel(pring->sli.sli3.rspidx,
4147 &phba->host_gp[pring->ringno].rspGetInx);
4149 if (pring->sli.sli3.rspidx == portRspPut)
4150 portRspPut = le32_to_cpu(pgp->rspPutInx);
4153 if ((rsp_cmpl > 0) && (mask & HA_R0RE_REQ)) {
4154 pring->stats.iocb_rsp_full++;
4155 status = ((CA_R0ATT | CA_R0RE_RSP) << (pring->ringno * 4));
4156 writel(status, phba->CAregaddr);
4157 readl(phba->CAregaddr);
4159 if ((mask & HA_R0CE_RSP) && (pring->flag & LPFC_CALL_RING_AVAILABLE)) {
4160 pring->flag &= ~LPFC_CALL_RING_AVAILABLE;
4161 pring->stats.iocb_cmd_empty++;
4163 /* Force update of the local copy of cmdGetInx */
4164 pring->sli.sli3.local_getidx = le32_to_cpu(pgp->cmdGetInx);
4165 lpfc_sli_resume_iocb(phba, pring);
4167 if ((pring->lpfc_sli_cmd_available))
4168 (pring->lpfc_sli_cmd_available) (phba, pring);
4172 phba->fcp_ring_in_use = 0;
4173 spin_unlock_irqrestore(&phba->hbalock, iflag);
4174 return rc;
4178 * lpfc_sli_sp_handle_rspiocb - Handle slow-path response iocb
4179 * @phba: Pointer to HBA context object.
4180 * @pring: Pointer to driver SLI ring object.
4181 * @rspiocbp: Pointer to driver response IOCB object.
4183 * This function is called from the worker thread when there is a slow-path
4184 * response IOCB to process. This function chains all the response iocbs until
4185 * seeing the iocb with the LE bit set. The function will call
4186 * lpfc_sli_process_sol_iocb function if the response iocb indicates a
4187 * completion of a command iocb. The function will call the
4188 * lpfc_sli_process_unsol_iocb function if this is an unsolicited iocb.
4189 * The function frees the resources or calls the completion handler if this
4190 * iocb is an abort completion. The function returns NULL when the response
4191 * iocb has the LE bit set and all the chained iocbs are processed, otherwise
4192 * this function shall chain the iocb on to the iocb_continueq and return the
4193 * response iocb passed in.
4195 static struct lpfc_iocbq *
4196 lpfc_sli_sp_handle_rspiocb(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
4197 struct lpfc_iocbq *rspiocbp)
4199 struct lpfc_iocbq *saveq;
4200 struct lpfc_iocbq *cmdiocb;
4201 struct lpfc_iocbq *next_iocb;
4202 IOCB_t *irsp;
4203 uint32_t free_saveq;
4204 u8 cmd_type;
4205 lpfc_iocb_type type;
4206 unsigned long iflag;
4207 u32 ulp_status = get_job_ulpstatus(phba, rspiocbp);
4208 u32 ulp_word4 = get_job_word4(phba, rspiocbp);
4209 u32 ulp_command = get_job_cmnd(phba, rspiocbp);
4210 int rc;
4212 spin_lock_irqsave(&phba->hbalock, iflag);
4213 /* First add the response iocb to the countinueq list */
4214 list_add_tail(&rspiocbp->list, &pring->iocb_continueq);
4215 pring->iocb_continueq_cnt++;
4218 * By default, the driver expects to free all resources
4219 * associated with this iocb completion.
4221 free_saveq = 1;
4222 saveq = list_get_first(&pring->iocb_continueq,
4223 struct lpfc_iocbq, list);
4224 list_del_init(&pring->iocb_continueq);
4225 pring->iocb_continueq_cnt = 0;
4227 pring->stats.iocb_rsp++;
4230 * If resource errors reported from HBA, reduce
4231 * queuedepths of the SCSI device.
4233 if (ulp_status == IOSTAT_LOCAL_REJECT &&
4234 ((ulp_word4 & IOERR_PARAM_MASK) ==
4235 IOERR_NO_RESOURCES)) {
4236 spin_unlock_irqrestore(&phba->hbalock, iflag);
4237 phba->lpfc_rampdown_queue_depth(phba);
4238 spin_lock_irqsave(&phba->hbalock, iflag);
4241 if (ulp_status) {
4242 /* Rsp ring <ringno> error: IOCB */
4243 if (phba->sli_rev < LPFC_SLI_REV4) {
4244 irsp = &rspiocbp->iocb;
4245 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
4246 "0328 Rsp Ring %d error: ulp_status x%x "
4247 "IOCB Data: "
4248 "x%08x x%08x x%08x x%08x "
4249 "x%08x x%08x x%08x x%08x "
4250 "x%08x x%08x x%08x x%08x "
4251 "x%08x x%08x x%08x x%08x\n",
4252 pring->ringno, ulp_status,
4253 get_job_ulpword(rspiocbp, 0),
4254 get_job_ulpword(rspiocbp, 1),
4255 get_job_ulpword(rspiocbp, 2),
4256 get_job_ulpword(rspiocbp, 3),
4257 get_job_ulpword(rspiocbp, 4),
4258 get_job_ulpword(rspiocbp, 5),
4259 *(((uint32_t *)irsp) + 6),
4260 *(((uint32_t *)irsp) + 7),
4261 *(((uint32_t *)irsp) + 8),
4262 *(((uint32_t *)irsp) + 9),
4263 *(((uint32_t *)irsp) + 10),
4264 *(((uint32_t *)irsp) + 11),
4265 *(((uint32_t *)irsp) + 12),
4266 *(((uint32_t *)irsp) + 13),
4267 *(((uint32_t *)irsp) + 14),
4268 *(((uint32_t *)irsp) + 15));
4269 } else {
4270 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
4271 "0321 Rsp Ring %d error: "
4272 "IOCB Data: "
4273 "x%x x%x x%x x%x\n",
4274 pring->ringno,
4275 rspiocbp->wcqe_cmpl.word0,
4276 rspiocbp->wcqe_cmpl.total_data_placed,
4277 rspiocbp->wcqe_cmpl.parameter,
4278 rspiocbp->wcqe_cmpl.word3);
4284 * Fetch the iocb command type and call the correct completion
4285 * routine. Solicited and Unsolicited IOCBs on the ELS ring
4286 * get freed back to the lpfc_iocb_list by the discovery
4287 * kernel thread.
4289 cmd_type = ulp_command & CMD_IOCB_MASK;
4290 type = lpfc_sli_iocb_cmd_type(cmd_type);
4291 switch (type) {
4292 case LPFC_SOL_IOCB:
4293 spin_unlock_irqrestore(&phba->hbalock, iflag);
4294 rc = lpfc_sli_process_sol_iocb(phba, pring, saveq);
4295 spin_lock_irqsave(&phba->hbalock, iflag);
4296 break;
4297 case LPFC_UNSOL_IOCB:
4298 spin_unlock_irqrestore(&phba->hbalock, iflag);
4299 rc = lpfc_sli_process_unsol_iocb(phba, pring, saveq);
4300 spin_lock_irqsave(&phba->hbalock, iflag);
4301 if (!rc)
4302 free_saveq = 0;
4303 break;
4304 case LPFC_ABORT_IOCB:
4305 cmdiocb = NULL;
4306 if (ulp_command != CMD_XRI_ABORTED_CX)
4307 cmdiocb = lpfc_sli_iocbq_lookup(phba, pring,
4308 saveq);
4309 if (cmdiocb) {
4310 /* Call the specified completion routine */
4311 if (cmdiocb->cmd_cmpl) {
4312 spin_unlock_irqrestore(&phba->hbalock, iflag);
4313 cmdiocb->cmd_cmpl(phba, cmdiocb, saveq);
4314 spin_lock_irqsave(&phba->hbalock, iflag);
4315 } else {
4316 __lpfc_sli_release_iocbq(phba, cmdiocb);
4319 break;
4320 case LPFC_UNKNOWN_IOCB:
4321 if (ulp_command == CMD_ADAPTER_MSG) {
4322 char adaptermsg[LPFC_MAX_ADPTMSG];
4324 memset(adaptermsg, 0, LPFC_MAX_ADPTMSG);
4325 memcpy(&adaptermsg[0], (uint8_t *)&rspiocbp->wqe,
4326 MAX_MSG_DATA);
4327 dev_warn(&((phba->pcidev)->dev),
4328 "lpfc%d: %s\n",
4329 phba->brd_no, adaptermsg);
4330 } else {
4331 /* Unknown command */
4332 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
4333 "0335 Unknown IOCB "
4334 "command Data: x%x "
4335 "x%x x%x x%x\n",
4336 ulp_command,
4337 ulp_status,
4338 get_wqe_reqtag(rspiocbp),
4339 get_job_ulpcontext(phba, rspiocbp));
4341 break;
4344 if (free_saveq) {
4345 list_for_each_entry_safe(rspiocbp, next_iocb,
4346 &saveq->list, list) {
4347 list_del_init(&rspiocbp->list);
4348 __lpfc_sli_release_iocbq(phba, rspiocbp);
4350 __lpfc_sli_release_iocbq(phba, saveq);
4352 rspiocbp = NULL;
4353 spin_unlock_irqrestore(&phba->hbalock, iflag);
4354 return rspiocbp;
4358 * lpfc_sli_handle_slow_ring_event - Wrapper func for handling slow-path iocbs
4359 * @phba: Pointer to HBA context object.
4360 * @pring: Pointer to driver SLI ring object.
4361 * @mask: Host attention register mask for this ring.
4363 * This routine wraps the actual slow_ring event process routine from the
4364 * API jump table function pointer from the lpfc_hba struct.
4366 void
4367 lpfc_sli_handle_slow_ring_event(struct lpfc_hba *phba,
4368 struct lpfc_sli_ring *pring, uint32_t mask)
4370 phba->lpfc_sli_handle_slow_ring_event(phba, pring, mask);
4374 * lpfc_sli_handle_slow_ring_event_s3 - Handle SLI3 ring event for non-FCP rings
4375 * @phba: Pointer to HBA context object.
4376 * @pring: Pointer to driver SLI ring object.
4377 * @mask: Host attention register mask for this ring.
4379 * This function is called from the worker thread when there is a ring event
4380 * for non-fcp rings. The caller does not hold any lock. The function will
4381 * remove each response iocb in the response ring and calls the handle
4382 * response iocb routine (lpfc_sli_sp_handle_rspiocb) to process it.
4384 static void
4385 lpfc_sli_handle_slow_ring_event_s3(struct lpfc_hba *phba,
4386 struct lpfc_sli_ring *pring, uint32_t mask)
4388 struct lpfc_pgp *pgp;
4389 IOCB_t *entry;
4390 IOCB_t *irsp = NULL;
4391 struct lpfc_iocbq *rspiocbp = NULL;
4392 uint32_t portRspPut, portRspMax;
4393 unsigned long iflag;
4394 uint32_t status;
4396 pgp = &phba->port_gp[pring->ringno];
4397 spin_lock_irqsave(&phba->hbalock, iflag);
4398 pring->stats.iocb_event++;
4401 * The next available response entry should never exceed the maximum
4402 * entries. If it does, treat it as an adapter hardware error.
4404 portRspMax = pring->sli.sli3.numRiocb;
4405 portRspPut = le32_to_cpu(pgp->rspPutInx);
4406 if (portRspPut >= portRspMax) {
4408 * Ring <ringno> handler: portRspPut <portRspPut> is bigger than
4409 * rsp ring <portRspMax>
4411 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
4412 "0303 Ring %d handler: portRspPut %d "
4413 "is bigger than rsp ring %d\n",
4414 pring->ringno, portRspPut, portRspMax);
4416 phba->link_state = LPFC_HBA_ERROR;
4417 spin_unlock_irqrestore(&phba->hbalock, iflag);
4419 phba->work_hs = HS_FFER3;
4420 lpfc_handle_eratt(phba);
4422 return;
4425 rmb();
4426 while (pring->sli.sli3.rspidx != portRspPut) {
4428 * Build a completion list and call the appropriate handler.
4429 * The process is to get the next available response iocb, get
4430 * a free iocb from the list, copy the response data into the
4431 * free iocb, insert to the continuation list, and update the
4432 * next response index to slim. This process makes response
4433 * iocb's in the ring available to DMA as fast as possible but
4434 * pays a penalty for a copy operation. Since the iocb is
4435 * only 32 bytes, this penalty is considered small relative to
4436 * the PCI reads for register values and a slim write. When
4437 * the ulpLe field is set, the entire Command has been
4438 * received.
4440 entry = lpfc_resp_iocb(phba, pring);
4442 phba->last_completion_time = jiffies;
4443 rspiocbp = __lpfc_sli_get_iocbq(phba);
4444 if (rspiocbp == NULL) {
4445 printk(KERN_ERR "%s: out of buffers! Failing "
4446 "completion.\n", __func__);
4447 break;
4450 lpfc_sli_pcimem_bcopy(entry, &rspiocbp->iocb,
4451 phba->iocb_rsp_size);
4452 irsp = &rspiocbp->iocb;
4454 if (++pring->sli.sli3.rspidx >= portRspMax)
4455 pring->sli.sli3.rspidx = 0;
4457 if (pring->ringno == LPFC_ELS_RING) {
4458 lpfc_debugfs_slow_ring_trc(phba,
4459 "IOCB rsp ring: wd4:x%08x wd6:x%08x wd7:x%08x",
4460 *(((uint32_t *) irsp) + 4),
4461 *(((uint32_t *) irsp) + 6),
4462 *(((uint32_t *) irsp) + 7));
4465 writel(pring->sli.sli3.rspidx,
4466 &phba->host_gp[pring->ringno].rspGetInx);
4468 spin_unlock_irqrestore(&phba->hbalock, iflag);
4469 /* Handle the response IOCB */
4470 rspiocbp = lpfc_sli_sp_handle_rspiocb(phba, pring, rspiocbp);
4471 spin_lock_irqsave(&phba->hbalock, iflag);
4474 * If the port response put pointer has not been updated, sync
4475 * the pgp->rspPutInx in the MAILBOX_tand fetch the new port
4476 * response put pointer.
4478 if (pring->sli.sli3.rspidx == portRspPut) {
4479 portRspPut = le32_to_cpu(pgp->rspPutInx);
4481 } /* while (pring->sli.sli3.rspidx != portRspPut) */
4483 if ((rspiocbp != NULL) && (mask & HA_R0RE_REQ)) {
4484 /* At least one response entry has been freed */
4485 pring->stats.iocb_rsp_full++;
4486 /* SET RxRE_RSP in Chip Att register */
4487 status = ((CA_R0ATT | CA_R0RE_RSP) << (pring->ringno * 4));
4488 writel(status, phba->CAregaddr);
4489 readl(phba->CAregaddr); /* flush */
4491 if ((mask & HA_R0CE_RSP) && (pring->flag & LPFC_CALL_RING_AVAILABLE)) {
4492 pring->flag &= ~LPFC_CALL_RING_AVAILABLE;
4493 pring->stats.iocb_cmd_empty++;
4495 /* Force update of the local copy of cmdGetInx */
4496 pring->sli.sli3.local_getidx = le32_to_cpu(pgp->cmdGetInx);
4497 lpfc_sli_resume_iocb(phba, pring);
4499 if ((pring->lpfc_sli_cmd_available))
4500 (pring->lpfc_sli_cmd_available) (phba, pring);
4504 spin_unlock_irqrestore(&phba->hbalock, iflag);
4505 return;
4509 * lpfc_sli_handle_slow_ring_event_s4 - Handle SLI4 slow-path els events
4510 * @phba: Pointer to HBA context object.
4511 * @pring: Pointer to driver SLI ring object.
4512 * @mask: Host attention register mask for this ring.
4514 * This function is called from the worker thread when there is a pending
4515 * ELS response iocb on the driver internal slow-path response iocb worker
4516 * queue. The caller does not hold any lock. The function will remove each
4517 * response iocb from the response worker queue and calls the handle
4518 * response iocb routine (lpfc_sli_sp_handle_rspiocb) to process it.
4520 static void
4521 lpfc_sli_handle_slow_ring_event_s4(struct lpfc_hba *phba,
4522 struct lpfc_sli_ring *pring, uint32_t mask)
4524 struct lpfc_iocbq *irspiocbq;
4525 struct hbq_dmabuf *dmabuf;
4526 struct lpfc_cq_event *cq_event;
4527 unsigned long iflag;
4528 int count = 0;
4530 clear_bit(HBA_SP_QUEUE_EVT, &phba->hba_flag);
4531 while (!list_empty(&phba->sli4_hba.sp_queue_event)) {
4532 /* Get the response iocb from the head of work queue */
4533 spin_lock_irqsave(&phba->hbalock, iflag);
4534 list_remove_head(&phba->sli4_hba.sp_queue_event,
4535 cq_event, struct lpfc_cq_event, list);
4536 spin_unlock_irqrestore(&phba->hbalock, iflag);
4538 switch (bf_get(lpfc_wcqe_c_code, &cq_event->cqe.wcqe_cmpl)) {
4539 case CQE_CODE_COMPL_WQE:
4540 irspiocbq = container_of(cq_event, struct lpfc_iocbq,
4541 cq_event);
4542 /* Translate ELS WCQE to response IOCBQ */
4543 irspiocbq = lpfc_sli4_els_preprocess_rspiocbq(phba,
4544 irspiocbq);
4545 if (irspiocbq)
4546 lpfc_sli_sp_handle_rspiocb(phba, pring,
4547 irspiocbq);
4548 count++;
4549 break;
4550 case CQE_CODE_RECEIVE:
4551 case CQE_CODE_RECEIVE_V1:
4552 dmabuf = container_of(cq_event, struct hbq_dmabuf,
4553 cq_event);
4554 lpfc_sli4_handle_received_buffer(phba, dmabuf);
4555 count++;
4556 break;
4557 default:
4558 break;
4561 /* Limit the number of events to 64 to avoid soft lockups */
4562 if (count == 64)
4563 break;
4568 * lpfc_sli_abort_iocb_ring - Abort all iocbs in the ring
4569 * @phba: Pointer to HBA context object.
4570 * @pring: Pointer to driver SLI ring object.
4572 * This function aborts all iocbs in the given ring and frees all the iocb
4573 * objects in txq. This function issues an abort iocb for all the iocb commands
4574 * in txcmplq. The iocbs in the txcmplq is not guaranteed to complete before
4575 * the return of this function. The caller is not required to hold any locks.
4577 void
4578 lpfc_sli_abort_iocb_ring(struct lpfc_hba *phba, struct lpfc_sli_ring *pring)
4580 LIST_HEAD(tx_completions);
4581 LIST_HEAD(txcmplq_completions);
4582 struct lpfc_iocbq *iocb, *next_iocb;
4583 int offline;
4585 if (pring->ringno == LPFC_ELS_RING) {
4586 lpfc_fabric_abort_hba(phba);
4588 offline = pci_channel_offline(phba->pcidev);
4590 /* Error everything on txq and txcmplq
4591 * First do the txq.
4593 if (phba->sli_rev >= LPFC_SLI_REV4) {
4594 spin_lock_irq(&pring->ring_lock);
4595 list_splice_init(&pring->txq, &tx_completions);
4596 pring->txq_cnt = 0;
4598 if (offline) {
4599 list_splice_init(&pring->txcmplq,
4600 &txcmplq_completions);
4601 } else {
4602 /* Next issue ABTS for everything on the txcmplq */
4603 list_for_each_entry_safe(iocb, next_iocb,
4604 &pring->txcmplq, list)
4605 lpfc_sli_issue_abort_iotag(phba, pring,
4606 iocb, NULL);
4608 spin_unlock_irq(&pring->ring_lock);
4609 } else {
4610 spin_lock_irq(&phba->hbalock);
4611 list_splice_init(&pring->txq, &tx_completions);
4612 pring->txq_cnt = 0;
4614 if (offline) {
4615 list_splice_init(&pring->txcmplq, &txcmplq_completions);
4616 } else {
4617 /* Next issue ABTS for everything on the txcmplq */
4618 list_for_each_entry_safe(iocb, next_iocb,
4619 &pring->txcmplq, list)
4620 lpfc_sli_issue_abort_iotag(phba, pring,
4621 iocb, NULL);
4623 spin_unlock_irq(&phba->hbalock);
4626 if (offline) {
4627 /* Cancel all the IOCBs from the completions list */
4628 lpfc_sli_cancel_iocbs(phba, &txcmplq_completions,
4629 IOSTAT_LOCAL_REJECT, IOERR_SLI_ABORTED);
4630 } else {
4631 /* Make sure HBA is alive */
4632 lpfc_issue_hb_tmo(phba);
4634 /* Cancel all the IOCBs from the completions list */
4635 lpfc_sli_cancel_iocbs(phba, &tx_completions, IOSTAT_LOCAL_REJECT,
4636 IOERR_SLI_ABORTED);
4640 * lpfc_sli_abort_fcp_rings - Abort all iocbs in all FCP rings
4641 * @phba: Pointer to HBA context object.
4643 * This function aborts all iocbs in FCP rings and frees all the iocb
4644 * objects in txq. This function issues an abort iocb for all the iocb commands
4645 * in txcmplq. The iocbs in the txcmplq is not guaranteed to complete before
4646 * the return of this function. The caller is not required to hold any locks.
4648 void
4649 lpfc_sli_abort_fcp_rings(struct lpfc_hba *phba)
4651 struct lpfc_sli *psli = &phba->sli;
4652 struct lpfc_sli_ring *pring;
4653 uint32_t i;
4655 /* Look on all the FCP Rings for the iotag */
4656 if (phba->sli_rev >= LPFC_SLI_REV4) {
4657 for (i = 0; i < phba->cfg_hdw_queue; i++) {
4658 pring = phba->sli4_hba.hdwq[i].io_wq->pring;
4659 lpfc_sli_abort_iocb_ring(phba, pring);
4661 } else {
4662 pring = &psli->sli3_ring[LPFC_FCP_RING];
4663 lpfc_sli_abort_iocb_ring(phba, pring);
4668 * lpfc_sli_flush_io_rings - flush all iocbs in the IO ring
4669 * @phba: Pointer to HBA context object.
4671 * This function flushes all iocbs in the IO ring and frees all the iocb
4672 * objects in txq and txcmplq. This function will not issue abort iocbs
4673 * for all the iocb commands in txcmplq, they will just be returned with
4674 * IOERR_SLI_DOWN. This function is invoked with EEH when device's PCI
4675 * slot has been permanently disabled.
4677 void
4678 lpfc_sli_flush_io_rings(struct lpfc_hba *phba)
4680 LIST_HEAD(txq);
4681 LIST_HEAD(txcmplq);
4682 struct lpfc_sli *psli = &phba->sli;
4683 struct lpfc_sli_ring *pring;
4684 uint32_t i;
4685 struct lpfc_iocbq *piocb, *next_iocb;
4687 /* Indicate the I/O queues are flushed */
4688 set_bit(HBA_IOQ_FLUSH, &phba->hba_flag);
4690 /* Look on all the FCP Rings for the iotag */
4691 if (phba->sli_rev >= LPFC_SLI_REV4) {
4692 for (i = 0; i < phba->cfg_hdw_queue; i++) {
4693 if (!phba->sli4_hba.hdwq ||
4694 !phba->sli4_hba.hdwq[i].io_wq) {
4695 lpfc_printf_log(phba, KERN_ERR, LOG_SLI,
4696 "7777 hdwq's deleted %lx "
4697 "%lx %x %x\n",
4698 phba->pport->load_flag,
4699 phba->hba_flag,
4700 phba->link_state,
4701 phba->sli.sli_flag);
4702 return;
4704 pring = phba->sli4_hba.hdwq[i].io_wq->pring;
4706 spin_lock_irq(&pring->ring_lock);
4707 /* Retrieve everything on txq */
4708 list_splice_init(&pring->txq, &txq);
4709 list_for_each_entry_safe(piocb, next_iocb,
4710 &pring->txcmplq, list)
4711 piocb->cmd_flag &= ~LPFC_IO_ON_TXCMPLQ;
4712 /* Retrieve everything on the txcmplq */
4713 list_splice_init(&pring->txcmplq, &txcmplq);
4714 pring->txq_cnt = 0;
4715 pring->txcmplq_cnt = 0;
4716 spin_unlock_irq(&pring->ring_lock);
4718 /* Flush the txq */
4719 lpfc_sli_cancel_iocbs(phba, &txq,
4720 IOSTAT_LOCAL_REJECT,
4721 IOERR_SLI_DOWN);
4722 /* Flush the txcmplq */
4723 lpfc_sli_cancel_iocbs(phba, &txcmplq,
4724 IOSTAT_LOCAL_REJECT,
4725 IOERR_SLI_DOWN);
4726 if (unlikely(pci_channel_offline(phba->pcidev)))
4727 lpfc_sli4_io_xri_aborted(phba, NULL, 0);
4729 } else {
4730 pring = &psli->sli3_ring[LPFC_FCP_RING];
4732 spin_lock_irq(&phba->hbalock);
4733 /* Retrieve everything on txq */
4734 list_splice_init(&pring->txq, &txq);
4735 list_for_each_entry_safe(piocb, next_iocb,
4736 &pring->txcmplq, list)
4737 piocb->cmd_flag &= ~LPFC_IO_ON_TXCMPLQ;
4738 /* Retrieve everything on the txcmplq */
4739 list_splice_init(&pring->txcmplq, &txcmplq);
4740 pring->txq_cnt = 0;
4741 pring->txcmplq_cnt = 0;
4742 spin_unlock_irq(&phba->hbalock);
4744 /* Flush the txq */
4745 lpfc_sli_cancel_iocbs(phba, &txq, IOSTAT_LOCAL_REJECT,
4746 IOERR_SLI_DOWN);
4747 /* Flush the txcmpq */
4748 lpfc_sli_cancel_iocbs(phba, &txcmplq, IOSTAT_LOCAL_REJECT,
4749 IOERR_SLI_DOWN);
4754 * lpfc_sli_brdready_s3 - Check for sli3 host ready status
4755 * @phba: Pointer to HBA context object.
4756 * @mask: Bit mask to be checked.
4758 * This function reads the host status register and compares
4759 * with the provided bit mask to check if HBA completed
4760 * the restart. This function will wait in a loop for the
4761 * HBA to complete restart. If the HBA does not restart within
4762 * 15 iterations, the function will reset the HBA again. The
4763 * function returns 1 when HBA fail to restart otherwise returns
4764 * zero.
4766 static int
4767 lpfc_sli_brdready_s3(struct lpfc_hba *phba, uint32_t mask)
4769 uint32_t status;
4770 int i = 0;
4771 int retval = 0;
4773 /* Read the HBA Host Status Register */
4774 if (lpfc_readl(phba->HSregaddr, &status))
4775 return 1;
4777 set_bit(HBA_NEEDS_CFG_PORT, &phba->hba_flag);
4780 * Check status register every 100ms for 5 retries, then every
4781 * 500ms for 5, then every 2.5 sec for 5, then reset board and
4782 * every 2.5 sec for 4.
4783 * Break our of the loop if errors occurred during init.
4785 while (((status & mask) != mask) &&
4786 !(status & HS_FFERM) &&
4787 i++ < 20) {
4789 if (i <= 5)
4790 msleep(10);
4791 else if (i <= 10)
4792 msleep(500);
4793 else
4794 msleep(2500);
4796 if (i == 15) {
4797 /* Do post */
4798 phba->pport->port_state = LPFC_VPORT_UNKNOWN;
4799 lpfc_sli_brdrestart(phba);
4801 /* Read the HBA Host Status Register */
4802 if (lpfc_readl(phba->HSregaddr, &status)) {
4803 retval = 1;
4804 break;
4808 /* Check to see if any errors occurred during init */
4809 if ((status & HS_FFERM) || (i >= 20)) {
4810 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
4811 "2751 Adapter failed to restart, "
4812 "status reg x%x, FW Data: A8 x%x AC x%x\n",
4813 status,
4814 readl(phba->MBslimaddr + 0xa8),
4815 readl(phba->MBslimaddr + 0xac));
4816 phba->link_state = LPFC_HBA_ERROR;
4817 retval = 1;
4820 return retval;
4824 * lpfc_sli_brdready_s4 - Check for sli4 host ready status
4825 * @phba: Pointer to HBA context object.
4826 * @mask: Bit mask to be checked.
4828 * This function checks the host status register to check if HBA is
4829 * ready. This function will wait in a loop for the HBA to be ready
4830 * If the HBA is not ready , the function will will reset the HBA PCI
4831 * function again. The function returns 1 when HBA fail to be ready
4832 * otherwise returns zero.
4834 static int
4835 lpfc_sli_brdready_s4(struct lpfc_hba *phba, uint32_t mask)
4837 uint32_t status;
4838 int retval = 0;
4840 /* Read the HBA Host Status Register */
4841 status = lpfc_sli4_post_status_check(phba);
4843 if (status) {
4844 phba->pport->port_state = LPFC_VPORT_UNKNOWN;
4845 lpfc_sli_brdrestart(phba);
4846 status = lpfc_sli4_post_status_check(phba);
4849 /* Check to see if any errors occurred during init */
4850 if (status) {
4851 phba->link_state = LPFC_HBA_ERROR;
4852 retval = 1;
4853 } else
4854 phba->sli4_hba.intr_enable = 0;
4856 clear_bit(HBA_SETUP, &phba->hba_flag);
4857 return retval;
4861 * lpfc_sli_brdready - Wrapper func for checking the hba readyness
4862 * @phba: Pointer to HBA context object.
4863 * @mask: Bit mask to be checked.
4865 * This routine wraps the actual SLI3 or SLI4 hba readyness check routine
4866 * from the API jump table function pointer from the lpfc_hba struct.
4869 lpfc_sli_brdready(struct lpfc_hba *phba, uint32_t mask)
4871 return phba->lpfc_sli_brdready(phba, mask);
4874 #define BARRIER_TEST_PATTERN (0xdeadbeef)
4877 * lpfc_reset_barrier - Make HBA ready for HBA reset
4878 * @phba: Pointer to HBA context object.
4880 * This function is called before resetting an HBA. This function is called
4881 * with hbalock held and requests HBA to quiesce DMAs before a reset.
4883 void lpfc_reset_barrier(struct lpfc_hba *phba)
4885 uint32_t __iomem *resp_buf;
4886 uint32_t __iomem *mbox_buf;
4887 volatile struct MAILBOX_word0 mbox;
4888 uint32_t hc_copy, ha_copy, resp_data;
4889 int i;
4890 uint8_t hdrtype;
4892 lockdep_assert_held(&phba->hbalock);
4894 pci_read_config_byte(phba->pcidev, PCI_HEADER_TYPE, &hdrtype);
4895 if (hdrtype != PCI_HEADER_TYPE_MFD ||
4896 (FC_JEDEC_ID(phba->vpd.rev.biuRev) != HELIOS_JEDEC_ID &&
4897 FC_JEDEC_ID(phba->vpd.rev.biuRev) != THOR_JEDEC_ID))
4898 return;
4901 * Tell the other part of the chip to suspend temporarily all
4902 * its DMA activity.
4904 resp_buf = phba->MBslimaddr;
4906 /* Disable the error attention */
4907 if (lpfc_readl(phba->HCregaddr, &hc_copy))
4908 return;
4909 writel((hc_copy & ~HC_ERINT_ENA), phba->HCregaddr);
4910 readl(phba->HCregaddr); /* flush */
4911 phba->link_flag |= LS_IGNORE_ERATT;
4913 if (lpfc_readl(phba->HAregaddr, &ha_copy))
4914 return;
4915 if (ha_copy & HA_ERATT) {
4916 /* Clear Chip error bit */
4917 writel(HA_ERATT, phba->HAregaddr);
4918 phba->pport->stopped = 1;
4921 mbox.word0 = 0;
4922 mbox.mbxCommand = MBX_KILL_BOARD;
4923 mbox.mbxOwner = OWN_CHIP;
4925 writel(BARRIER_TEST_PATTERN, (resp_buf + 1));
4926 mbox_buf = phba->MBslimaddr;
4927 writel(mbox.word0, mbox_buf);
4929 for (i = 0; i < 50; i++) {
4930 if (lpfc_readl((resp_buf + 1), &resp_data))
4931 return;
4932 if (resp_data != ~(BARRIER_TEST_PATTERN))
4933 mdelay(1);
4934 else
4935 break;
4937 resp_data = 0;
4938 if (lpfc_readl((resp_buf + 1), &resp_data))
4939 return;
4940 if (resp_data != ~(BARRIER_TEST_PATTERN)) {
4941 if (phba->sli.sli_flag & LPFC_SLI_ACTIVE ||
4942 phba->pport->stopped)
4943 goto restore_hc;
4944 else
4945 goto clear_errat;
4948 mbox.mbxOwner = OWN_HOST;
4949 resp_data = 0;
4950 for (i = 0; i < 500; i++) {
4951 if (lpfc_readl(resp_buf, &resp_data))
4952 return;
4953 if (resp_data != mbox.word0)
4954 mdelay(1);
4955 else
4956 break;
4959 clear_errat:
4961 while (++i < 500) {
4962 if (lpfc_readl(phba->HAregaddr, &ha_copy))
4963 return;
4964 if (!(ha_copy & HA_ERATT))
4965 mdelay(1);
4966 else
4967 break;
4970 if (readl(phba->HAregaddr) & HA_ERATT) {
4971 writel(HA_ERATT, phba->HAregaddr);
4972 phba->pport->stopped = 1;
4975 restore_hc:
4976 phba->link_flag &= ~LS_IGNORE_ERATT;
4977 writel(hc_copy, phba->HCregaddr);
4978 readl(phba->HCregaddr); /* flush */
4982 * lpfc_sli_brdkill - Issue a kill_board mailbox command
4983 * @phba: Pointer to HBA context object.
4985 * This function issues a kill_board mailbox command and waits for
4986 * the error attention interrupt. This function is called for stopping
4987 * the firmware processing. The caller is not required to hold any
4988 * locks. This function calls lpfc_hba_down_post function to free
4989 * any pending commands after the kill. The function will return 1 when it
4990 * fails to kill the board else will return 0.
4993 lpfc_sli_brdkill(struct lpfc_hba *phba)
4995 struct lpfc_sli *psli;
4996 LPFC_MBOXQ_t *pmb;
4997 uint32_t status;
4998 uint32_t ha_copy;
4999 int retval;
5000 int i = 0;
5002 psli = &phba->sli;
5004 /* Kill HBA */
5005 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
5006 "0329 Kill HBA Data: x%x x%x\n",
5007 phba->pport->port_state, psli->sli_flag);
5009 pmb = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
5010 if (!pmb)
5011 return 1;
5013 /* Disable the error attention */
5014 spin_lock_irq(&phba->hbalock);
5015 if (lpfc_readl(phba->HCregaddr, &status)) {
5016 spin_unlock_irq(&phba->hbalock);
5017 mempool_free(pmb, phba->mbox_mem_pool);
5018 return 1;
5020 status &= ~HC_ERINT_ENA;
5021 writel(status, phba->HCregaddr);
5022 readl(phba->HCregaddr); /* flush */
5023 phba->link_flag |= LS_IGNORE_ERATT;
5024 spin_unlock_irq(&phba->hbalock);
5026 lpfc_kill_board(phba, pmb);
5027 pmb->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
5028 retval = lpfc_sli_issue_mbox(phba, pmb, MBX_NOWAIT);
5030 if (retval != MBX_SUCCESS) {
5031 if (retval != MBX_BUSY)
5032 mempool_free(pmb, phba->mbox_mem_pool);
5033 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
5034 "2752 KILL_BOARD command failed retval %d\n",
5035 retval);
5036 spin_lock_irq(&phba->hbalock);
5037 phba->link_flag &= ~LS_IGNORE_ERATT;
5038 spin_unlock_irq(&phba->hbalock);
5039 return 1;
5042 spin_lock_irq(&phba->hbalock);
5043 psli->sli_flag &= ~LPFC_SLI_ACTIVE;
5044 spin_unlock_irq(&phba->hbalock);
5046 mempool_free(pmb, phba->mbox_mem_pool);
5048 /* There is no completion for a KILL_BOARD mbox cmd. Check for an error
5049 * attention every 100ms for 3 seconds. If we don't get ERATT after
5050 * 3 seconds we still set HBA_ERROR state because the status of the
5051 * board is now undefined.
5053 if (lpfc_readl(phba->HAregaddr, &ha_copy))
5054 return 1;
5055 while ((i++ < 30) && !(ha_copy & HA_ERATT)) {
5056 mdelay(100);
5057 if (lpfc_readl(phba->HAregaddr, &ha_copy))
5058 return 1;
5061 del_timer_sync(&psli->mbox_tmo);
5062 if (ha_copy & HA_ERATT) {
5063 writel(HA_ERATT, phba->HAregaddr);
5064 phba->pport->stopped = 1;
5066 spin_lock_irq(&phba->hbalock);
5067 psli->sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
5068 psli->mbox_active = NULL;
5069 phba->link_flag &= ~LS_IGNORE_ERATT;
5070 spin_unlock_irq(&phba->hbalock);
5072 lpfc_hba_down_post(phba);
5073 phba->link_state = LPFC_HBA_ERROR;
5075 return ha_copy & HA_ERATT ? 0 : 1;
5079 * lpfc_sli_brdreset - Reset a sli-2 or sli-3 HBA
5080 * @phba: Pointer to HBA context object.
5082 * This function resets the HBA by writing HC_INITFF to the control
5083 * register. After the HBA resets, this function resets all the iocb ring
5084 * indices. This function disables PCI layer parity checking during
5085 * the reset.
5086 * This function returns 0 always.
5087 * The caller is not required to hold any locks.
5090 lpfc_sli_brdreset(struct lpfc_hba *phba)
5092 struct lpfc_sli *psli;
5093 struct lpfc_sli_ring *pring;
5094 uint16_t cfg_value;
5095 int i;
5097 psli = &phba->sli;
5099 /* Reset HBA */
5100 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
5101 "0325 Reset HBA Data: x%x x%x\n",
5102 (phba->pport) ? phba->pport->port_state : 0,
5103 psli->sli_flag);
5105 /* perform board reset */
5106 phba->fc_eventTag = 0;
5107 phba->link_events = 0;
5108 set_bit(HBA_NEEDS_CFG_PORT, &phba->hba_flag);
5109 if (phba->pport) {
5110 phba->pport->fc_myDID = 0;
5111 phba->pport->fc_prevDID = 0;
5114 /* Turn off parity checking and serr during the physical reset */
5115 if (pci_read_config_word(phba->pcidev, PCI_COMMAND, &cfg_value))
5116 return -EIO;
5118 pci_write_config_word(phba->pcidev, PCI_COMMAND,
5119 (cfg_value &
5120 ~(PCI_COMMAND_PARITY | PCI_COMMAND_SERR)));
5122 psli->sli_flag &= ~(LPFC_SLI_ACTIVE | LPFC_PROCESS_LA);
5124 /* Now toggle INITFF bit in the Host Control Register */
5125 writel(HC_INITFF, phba->HCregaddr);
5126 mdelay(1);
5127 readl(phba->HCregaddr); /* flush */
5128 writel(0, phba->HCregaddr);
5129 readl(phba->HCregaddr); /* flush */
5131 /* Restore PCI cmd register */
5132 pci_write_config_word(phba->pcidev, PCI_COMMAND, cfg_value);
5134 /* Initialize relevant SLI info */
5135 for (i = 0; i < psli->num_rings; i++) {
5136 pring = &psli->sli3_ring[i];
5137 pring->flag = 0;
5138 pring->sli.sli3.rspidx = 0;
5139 pring->sli.sli3.next_cmdidx = 0;
5140 pring->sli.sli3.local_getidx = 0;
5141 pring->sli.sli3.cmdidx = 0;
5142 pring->missbufcnt = 0;
5145 phba->link_state = LPFC_WARM_START;
5146 return 0;
5150 * lpfc_sli4_brdreset - Reset a sli-4 HBA
5151 * @phba: Pointer to HBA context object.
5153 * This function resets a SLI4 HBA. This function disables PCI layer parity
5154 * checking during resets the device. The caller is not required to hold
5155 * any locks.
5157 * This function returns 0 on success else returns negative error code.
5160 lpfc_sli4_brdreset(struct lpfc_hba *phba)
5162 struct lpfc_sli *psli = &phba->sli;
5163 uint16_t cfg_value;
5164 int rc = 0;
5166 /* Reset HBA */
5167 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
5168 "0295 Reset HBA Data: x%x x%x x%lx\n",
5169 phba->pport->port_state, psli->sli_flag,
5170 phba->hba_flag);
5172 /* perform board reset */
5173 phba->fc_eventTag = 0;
5174 phba->link_events = 0;
5175 phba->pport->fc_myDID = 0;
5176 phba->pport->fc_prevDID = 0;
5177 clear_bit(HBA_SETUP, &phba->hba_flag);
5179 spin_lock_irq(&phba->hbalock);
5180 psli->sli_flag &= ~(LPFC_PROCESS_LA);
5181 phba->fcf.fcf_flag = 0;
5182 spin_unlock_irq(&phba->hbalock);
5184 /* Now physically reset the device */
5185 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
5186 "0389 Performing PCI function reset!\n");
5188 /* Turn off parity checking and serr during the physical reset */
5189 if (pci_read_config_word(phba->pcidev, PCI_COMMAND, &cfg_value)) {
5190 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
5191 "3205 PCI read Config failed\n");
5192 return -EIO;
5195 pci_write_config_word(phba->pcidev, PCI_COMMAND, (cfg_value &
5196 ~(PCI_COMMAND_PARITY | PCI_COMMAND_SERR)));
5198 /* Perform FCoE PCI function reset before freeing queue memory */
5199 rc = lpfc_pci_function_reset(phba);
5201 /* Restore PCI cmd register */
5202 pci_write_config_word(phba->pcidev, PCI_COMMAND, cfg_value);
5204 return rc;
5208 * lpfc_sli_brdrestart_s3 - Restart a sli-3 hba
5209 * @phba: Pointer to HBA context object.
5211 * This function is called in the SLI initialization code path to
5212 * restart the HBA. The caller is not required to hold any lock.
5213 * This function writes MBX_RESTART mailbox command to the SLIM and
5214 * resets the HBA. At the end of the function, it calls lpfc_hba_down_post
5215 * function to free any pending commands. The function enables
5216 * POST only during the first initialization. The function returns zero.
5217 * The function does not guarantee completion of MBX_RESTART mailbox
5218 * command before the return of this function.
5220 static int
5221 lpfc_sli_brdrestart_s3(struct lpfc_hba *phba)
5223 volatile struct MAILBOX_word0 mb;
5224 struct lpfc_sli *psli;
5225 void __iomem *to_slim;
5227 spin_lock_irq(&phba->hbalock);
5229 psli = &phba->sli;
5231 /* Restart HBA */
5232 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
5233 "0337 Restart HBA Data: x%x x%x\n",
5234 (phba->pport) ? phba->pport->port_state : 0,
5235 psli->sli_flag);
5237 mb.word0 = 0;
5238 mb.mbxCommand = MBX_RESTART;
5239 mb.mbxHc = 1;
5241 lpfc_reset_barrier(phba);
5243 to_slim = phba->MBslimaddr;
5244 writel(mb.word0, to_slim);
5245 readl(to_slim); /* flush */
5247 /* Only skip post after fc_ffinit is completed */
5248 if (phba->pport && phba->pport->port_state)
5249 mb.word0 = 1; /* This is really setting up word1 */
5250 else
5251 mb.word0 = 0; /* This is really setting up word1 */
5252 to_slim = phba->MBslimaddr + sizeof (uint32_t);
5253 writel(mb.word0, to_slim);
5254 readl(to_slim); /* flush */
5256 lpfc_sli_brdreset(phba);
5257 if (phba->pport)
5258 phba->pport->stopped = 0;
5259 phba->link_state = LPFC_INIT_START;
5260 phba->hba_flag = 0;
5261 spin_unlock_irq(&phba->hbalock);
5263 memset(&psli->lnk_stat_offsets, 0, sizeof(psli->lnk_stat_offsets));
5264 psli->stats_start = ktime_get_seconds();
5266 /* Give the INITFF and Post time to settle. */
5267 mdelay(100);
5269 lpfc_hba_down_post(phba);
5271 return 0;
5275 * lpfc_sli_brdrestart_s4 - Restart the sli-4 hba
5276 * @phba: Pointer to HBA context object.
5278 * This function is called in the SLI initialization code path to restart
5279 * a SLI4 HBA. The caller is not required to hold any lock.
5280 * At the end of the function, it calls lpfc_hba_down_post function to
5281 * free any pending commands.
5283 static int
5284 lpfc_sli_brdrestart_s4(struct lpfc_hba *phba)
5286 struct lpfc_sli *psli = &phba->sli;
5287 int rc;
5289 /* Restart HBA */
5290 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
5291 "0296 Restart HBA Data: x%x x%x\n",
5292 phba->pport->port_state, psli->sli_flag);
5294 rc = lpfc_sli4_brdreset(phba);
5295 if (rc) {
5296 phba->link_state = LPFC_HBA_ERROR;
5297 goto hba_down_queue;
5300 spin_lock_irq(&phba->hbalock);
5301 phba->pport->stopped = 0;
5302 phba->link_state = LPFC_INIT_START;
5303 phba->hba_flag = 0;
5304 /* Preserve FA-PWWN expectation */
5305 phba->sli4_hba.fawwpn_flag &= LPFC_FAWWPN_FABRIC;
5306 spin_unlock_irq(&phba->hbalock);
5308 memset(&psli->lnk_stat_offsets, 0, sizeof(psli->lnk_stat_offsets));
5309 psli->stats_start = ktime_get_seconds();
5311 hba_down_queue:
5312 lpfc_hba_down_post(phba);
5313 lpfc_sli4_queue_destroy(phba);
5315 return rc;
5319 * lpfc_sli_brdrestart - Wrapper func for restarting hba
5320 * @phba: Pointer to HBA context object.
5322 * This routine wraps the actual SLI3 or SLI4 hba restart routine from the
5323 * API jump table function pointer from the lpfc_hba struct.
5326 lpfc_sli_brdrestart(struct lpfc_hba *phba)
5328 return phba->lpfc_sli_brdrestart(phba);
5332 * lpfc_sli_chipset_init - Wait for the restart of the HBA after a restart
5333 * @phba: Pointer to HBA context object.
5335 * This function is called after a HBA restart to wait for successful
5336 * restart of the HBA. Successful restart of the HBA is indicated by
5337 * HS_FFRDY and HS_MBRDY bits. If the HBA fails to restart even after 15
5338 * iteration, the function will restart the HBA again. The function returns
5339 * zero if HBA successfully restarted else returns negative error code.
5342 lpfc_sli_chipset_init(struct lpfc_hba *phba)
5344 uint32_t status, i = 0;
5346 /* Read the HBA Host Status Register */
5347 if (lpfc_readl(phba->HSregaddr, &status))
5348 return -EIO;
5350 /* Check status register to see what current state is */
5351 i = 0;
5352 while ((status & (HS_FFRDY | HS_MBRDY)) != (HS_FFRDY | HS_MBRDY)) {
5354 /* Check every 10ms for 10 retries, then every 100ms for 90
5355 * retries, then every 1 sec for 50 retires for a total of
5356 * ~60 seconds before reset the board again and check every
5357 * 1 sec for 50 retries. The up to 60 seconds before the
5358 * board ready is required by the Falcon FIPS zeroization
5359 * complete, and any reset the board in between shall cause
5360 * restart of zeroization, further delay the board ready.
5362 if (i++ >= 200) {
5363 /* Adapter failed to init, timeout, status reg
5364 <status> */
5365 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
5366 "0436 Adapter failed to init, "
5367 "timeout, status reg x%x, "
5368 "FW Data: A8 x%x AC x%x\n", status,
5369 readl(phba->MBslimaddr + 0xa8),
5370 readl(phba->MBslimaddr + 0xac));
5371 phba->link_state = LPFC_HBA_ERROR;
5372 return -ETIMEDOUT;
5375 /* Check to see if any errors occurred during init */
5376 if (status & HS_FFERM) {
5377 /* ERROR: During chipset initialization */
5378 /* Adapter failed to init, chipset, status reg
5379 <status> */
5380 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
5381 "0437 Adapter failed to init, "
5382 "chipset, status reg x%x, "
5383 "FW Data: A8 x%x AC x%x\n", status,
5384 readl(phba->MBslimaddr + 0xa8),
5385 readl(phba->MBslimaddr + 0xac));
5386 phba->link_state = LPFC_HBA_ERROR;
5387 return -EIO;
5390 if (i <= 10)
5391 msleep(10);
5392 else if (i <= 100)
5393 msleep(100);
5394 else
5395 msleep(1000);
5397 if (i == 150) {
5398 /* Do post */
5399 phba->pport->port_state = LPFC_VPORT_UNKNOWN;
5400 lpfc_sli_brdrestart(phba);
5402 /* Read the HBA Host Status Register */
5403 if (lpfc_readl(phba->HSregaddr, &status))
5404 return -EIO;
5407 /* Check to see if any errors occurred during init */
5408 if (status & HS_FFERM) {
5409 /* ERROR: During chipset initialization */
5410 /* Adapter failed to init, chipset, status reg <status> */
5411 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
5412 "0438 Adapter failed to init, chipset, "
5413 "status reg x%x, "
5414 "FW Data: A8 x%x AC x%x\n", status,
5415 readl(phba->MBslimaddr + 0xa8),
5416 readl(phba->MBslimaddr + 0xac));
5417 phba->link_state = LPFC_HBA_ERROR;
5418 return -EIO;
5421 set_bit(HBA_NEEDS_CFG_PORT, &phba->hba_flag);
5423 /* Clear all interrupt enable conditions */
5424 writel(0, phba->HCregaddr);
5425 readl(phba->HCregaddr); /* flush */
5427 /* setup host attn register */
5428 writel(0xffffffff, phba->HAregaddr);
5429 readl(phba->HAregaddr); /* flush */
5430 return 0;
5434 * lpfc_sli_hbq_count - Get the number of HBQs to be configured
5436 * This function calculates and returns the number of HBQs required to be
5437 * configured.
5440 lpfc_sli_hbq_count(void)
5442 return ARRAY_SIZE(lpfc_hbq_defs);
5446 * lpfc_sli_hbq_entry_count - Calculate total number of hbq entries
5448 * This function adds the number of hbq entries in every HBQ to get
5449 * the total number of hbq entries required for the HBA and returns
5450 * the total count.
5452 static int
5453 lpfc_sli_hbq_entry_count(void)
5455 int hbq_count = lpfc_sli_hbq_count();
5456 int count = 0;
5457 int i;
5459 for (i = 0; i < hbq_count; ++i)
5460 count += lpfc_hbq_defs[i]->entry_count;
5461 return count;
5465 * lpfc_sli_hbq_size - Calculate memory required for all hbq entries
5467 * This function calculates amount of memory required for all hbq entries
5468 * to be configured and returns the total memory required.
5471 lpfc_sli_hbq_size(void)
5473 return lpfc_sli_hbq_entry_count() * sizeof(struct lpfc_hbq_entry);
5477 * lpfc_sli_hbq_setup - configure and initialize HBQs
5478 * @phba: Pointer to HBA context object.
5480 * This function is called during the SLI initialization to configure
5481 * all the HBQs and post buffers to the HBQ. The caller is not
5482 * required to hold any locks. This function will return zero if successful
5483 * else it will return negative error code.
5485 static int
5486 lpfc_sli_hbq_setup(struct lpfc_hba *phba)
5488 int hbq_count = lpfc_sli_hbq_count();
5489 LPFC_MBOXQ_t *pmb;
5490 MAILBOX_t *pmbox;
5491 uint32_t hbqno;
5492 uint32_t hbq_entry_index;
5494 /* Get a Mailbox buffer to setup mailbox
5495 * commands for HBA initialization
5497 pmb = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
5499 if (!pmb)
5500 return -ENOMEM;
5502 pmbox = &pmb->u.mb;
5504 /* Initialize the struct lpfc_sli_hbq structure for each hbq */
5505 phba->link_state = LPFC_INIT_MBX_CMDS;
5506 phba->hbq_in_use = 1;
5508 hbq_entry_index = 0;
5509 for (hbqno = 0; hbqno < hbq_count; ++hbqno) {
5510 phba->hbqs[hbqno].next_hbqPutIdx = 0;
5511 phba->hbqs[hbqno].hbqPutIdx = 0;
5512 phba->hbqs[hbqno].local_hbqGetIdx = 0;
5513 phba->hbqs[hbqno].entry_count =
5514 lpfc_hbq_defs[hbqno]->entry_count;
5515 lpfc_config_hbq(phba, hbqno, lpfc_hbq_defs[hbqno],
5516 hbq_entry_index, pmb);
5517 hbq_entry_index += phba->hbqs[hbqno].entry_count;
5519 if (lpfc_sli_issue_mbox(phba, pmb, MBX_POLL) != MBX_SUCCESS) {
5520 /* Adapter failed to init, mbxCmd <cmd> CFG_RING,
5521 mbxStatus <status>, ring <num> */
5523 lpfc_printf_log(phba, KERN_ERR,
5524 LOG_SLI | LOG_VPORT,
5525 "1805 Adapter failed to init. "
5526 "Data: x%x x%x x%x\n",
5527 pmbox->mbxCommand,
5528 pmbox->mbxStatus, hbqno);
5530 phba->link_state = LPFC_HBA_ERROR;
5531 mempool_free(pmb, phba->mbox_mem_pool);
5532 return -ENXIO;
5535 phba->hbq_count = hbq_count;
5537 mempool_free(pmb, phba->mbox_mem_pool);
5539 /* Initially populate or replenish the HBQs */
5540 for (hbqno = 0; hbqno < hbq_count; ++hbqno)
5541 lpfc_sli_hbqbuf_init_hbqs(phba, hbqno);
5542 return 0;
5546 * lpfc_sli4_rb_setup - Initialize and post RBs to HBA
5547 * @phba: Pointer to HBA context object.
5549 * This function is called during the SLI initialization to configure
5550 * all the HBQs and post buffers to the HBQ. The caller is not
5551 * required to hold any locks. This function will return zero if successful
5552 * else it will return negative error code.
5554 static int
5555 lpfc_sli4_rb_setup(struct lpfc_hba *phba)
5557 phba->hbq_in_use = 1;
5559 * Specific case when the MDS diagnostics is enabled and supported.
5560 * The receive buffer count is truncated to manage the incoming
5561 * traffic.
5563 if (phba->cfg_enable_mds_diags && phba->mds_diags_support)
5564 phba->hbqs[LPFC_ELS_HBQ].entry_count =
5565 lpfc_hbq_defs[LPFC_ELS_HBQ]->entry_count >> 1;
5566 else
5567 phba->hbqs[LPFC_ELS_HBQ].entry_count =
5568 lpfc_hbq_defs[LPFC_ELS_HBQ]->entry_count;
5569 phba->hbq_count = 1;
5570 lpfc_sli_hbqbuf_init_hbqs(phba, LPFC_ELS_HBQ);
5571 /* Initially populate or replenish the HBQs */
5572 return 0;
5576 * lpfc_sli_config_port - Issue config port mailbox command
5577 * @phba: Pointer to HBA context object.
5578 * @sli_mode: sli mode - 2/3
5580 * This function is called by the sli initialization code path
5581 * to issue config_port mailbox command. This function restarts the
5582 * HBA firmware and issues a config_port mailbox command to configure
5583 * the SLI interface in the sli mode specified by sli_mode
5584 * variable. The caller is not required to hold any locks.
5585 * The function returns 0 if successful, else returns negative error
5586 * code.
5589 lpfc_sli_config_port(struct lpfc_hba *phba, int sli_mode)
5591 LPFC_MBOXQ_t *pmb;
5592 uint32_t resetcount = 0, rc = 0, done = 0;
5594 pmb = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
5595 if (!pmb) {
5596 phba->link_state = LPFC_HBA_ERROR;
5597 return -ENOMEM;
5600 phba->sli_rev = sli_mode;
5601 while (resetcount < 2 && !done) {
5602 spin_lock_irq(&phba->hbalock);
5603 phba->sli.sli_flag |= LPFC_SLI_MBOX_ACTIVE;
5604 spin_unlock_irq(&phba->hbalock);
5605 phba->pport->port_state = LPFC_VPORT_UNKNOWN;
5606 lpfc_sli_brdrestart(phba);
5607 rc = lpfc_sli_chipset_init(phba);
5608 if (rc)
5609 break;
5611 spin_lock_irq(&phba->hbalock);
5612 phba->sli.sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
5613 spin_unlock_irq(&phba->hbalock);
5614 resetcount++;
5616 /* Call pre CONFIG_PORT mailbox command initialization. A
5617 * value of 0 means the call was successful. Any other
5618 * nonzero value is a failure, but if ERESTART is returned,
5619 * the driver may reset the HBA and try again.
5621 rc = lpfc_config_port_prep(phba);
5622 if (rc == -ERESTART) {
5623 phba->link_state = LPFC_LINK_UNKNOWN;
5624 continue;
5625 } else if (rc)
5626 break;
5628 phba->link_state = LPFC_INIT_MBX_CMDS;
5629 lpfc_config_port(phba, pmb);
5630 rc = lpfc_sli_issue_mbox(phba, pmb, MBX_POLL);
5631 phba->sli3_options &= ~(LPFC_SLI3_NPIV_ENABLED |
5632 LPFC_SLI3_HBQ_ENABLED |
5633 LPFC_SLI3_CRP_ENABLED |
5634 LPFC_SLI3_DSS_ENABLED);
5635 if (rc != MBX_SUCCESS) {
5636 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
5637 "0442 Adapter failed to init, mbxCmd x%x "
5638 "CONFIG_PORT, mbxStatus x%x Data: x%x\n",
5639 pmb->u.mb.mbxCommand, pmb->u.mb.mbxStatus, 0);
5640 spin_lock_irq(&phba->hbalock);
5641 phba->sli.sli_flag &= ~LPFC_SLI_ACTIVE;
5642 spin_unlock_irq(&phba->hbalock);
5643 rc = -ENXIO;
5644 } else {
5645 /* Allow asynchronous mailbox command to go through */
5646 spin_lock_irq(&phba->hbalock);
5647 phba->sli.sli_flag &= ~LPFC_SLI_ASYNC_MBX_BLK;
5648 spin_unlock_irq(&phba->hbalock);
5649 done = 1;
5651 if ((pmb->u.mb.un.varCfgPort.casabt == 1) &&
5652 (pmb->u.mb.un.varCfgPort.gasabt == 0))
5653 lpfc_printf_log(phba, KERN_WARNING, LOG_INIT,
5654 "3110 Port did not grant ASABT\n");
5657 if (!done) {
5658 rc = -EINVAL;
5659 goto do_prep_failed;
5661 if (pmb->u.mb.un.varCfgPort.sli_mode == 3) {
5662 if (!pmb->u.mb.un.varCfgPort.cMA) {
5663 rc = -ENXIO;
5664 goto do_prep_failed;
5666 if (phba->max_vpi && pmb->u.mb.un.varCfgPort.gmv) {
5667 phba->sli3_options |= LPFC_SLI3_NPIV_ENABLED;
5668 phba->max_vpi = pmb->u.mb.un.varCfgPort.max_vpi;
5669 phba->max_vports = (phba->max_vpi > phba->max_vports) ?
5670 phba->max_vpi : phba->max_vports;
5672 } else
5673 phba->max_vpi = 0;
5674 if (pmb->u.mb.un.varCfgPort.gerbm)
5675 phba->sli3_options |= LPFC_SLI3_HBQ_ENABLED;
5676 if (pmb->u.mb.un.varCfgPort.gcrp)
5677 phba->sli3_options |= LPFC_SLI3_CRP_ENABLED;
5679 phba->hbq_get = phba->mbox->us.s3_pgp.hbq_get;
5680 phba->port_gp = phba->mbox->us.s3_pgp.port;
5682 if (phba->sli3_options & LPFC_SLI3_BG_ENABLED) {
5683 if (pmb->u.mb.un.varCfgPort.gbg == 0) {
5684 phba->cfg_enable_bg = 0;
5685 phba->sli3_options &= ~LPFC_SLI3_BG_ENABLED;
5686 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
5687 "0443 Adapter did not grant "
5688 "BlockGuard\n");
5691 } else {
5692 phba->hbq_get = NULL;
5693 phba->port_gp = phba->mbox->us.s2.port;
5694 phba->max_vpi = 0;
5696 do_prep_failed:
5697 mempool_free(pmb, phba->mbox_mem_pool);
5698 return rc;
5703 * lpfc_sli_hba_setup - SLI initialization function
5704 * @phba: Pointer to HBA context object.
5706 * This function is the main SLI initialization function. This function
5707 * is called by the HBA initialization code, HBA reset code and HBA
5708 * error attention handler code. Caller is not required to hold any
5709 * locks. This function issues config_port mailbox command to configure
5710 * the SLI, setup iocb rings and HBQ rings. In the end the function
5711 * calls the config_port_post function to issue init_link mailbox
5712 * command and to start the discovery. The function will return zero
5713 * if successful, else it will return negative error code.
5716 lpfc_sli_hba_setup(struct lpfc_hba *phba)
5718 uint32_t rc;
5719 int i;
5720 int longs;
5722 /* Enable ISR already does config_port because of config_msi mbx */
5723 if (test_bit(HBA_NEEDS_CFG_PORT, &phba->hba_flag)) {
5724 rc = lpfc_sli_config_port(phba, LPFC_SLI_REV3);
5725 if (rc)
5726 return -EIO;
5727 clear_bit(HBA_NEEDS_CFG_PORT, &phba->hba_flag);
5729 phba->fcp_embed_io = 0; /* SLI4 FC support only */
5731 if (phba->sli_rev == 3) {
5732 phba->iocb_cmd_size = SLI3_IOCB_CMD_SIZE;
5733 phba->iocb_rsp_size = SLI3_IOCB_RSP_SIZE;
5734 } else {
5735 phba->iocb_cmd_size = SLI2_IOCB_CMD_SIZE;
5736 phba->iocb_rsp_size = SLI2_IOCB_RSP_SIZE;
5737 phba->sli3_options = 0;
5740 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
5741 "0444 Firmware in SLI %x mode. Max_vpi %d\n",
5742 phba->sli_rev, phba->max_vpi);
5743 rc = lpfc_sli_ring_map(phba);
5745 if (rc)
5746 goto lpfc_sli_hba_setup_error;
5748 /* Initialize VPIs. */
5749 if (phba->sli_rev == LPFC_SLI_REV3) {
5751 * The VPI bitmask and physical ID array are allocated
5752 * and initialized once only - at driver load. A port
5753 * reset doesn't need to reinitialize this memory.
5755 if ((phba->vpi_bmask == NULL) && (phba->vpi_ids == NULL)) {
5756 longs = (phba->max_vpi + BITS_PER_LONG) / BITS_PER_LONG;
5757 phba->vpi_bmask = kcalloc(longs,
5758 sizeof(unsigned long),
5759 GFP_KERNEL);
5760 if (!phba->vpi_bmask) {
5761 rc = -ENOMEM;
5762 goto lpfc_sli_hba_setup_error;
5765 phba->vpi_ids = kcalloc(phba->max_vpi + 1,
5766 sizeof(uint16_t),
5767 GFP_KERNEL);
5768 if (!phba->vpi_ids) {
5769 kfree(phba->vpi_bmask);
5770 rc = -ENOMEM;
5771 goto lpfc_sli_hba_setup_error;
5773 for (i = 0; i < phba->max_vpi; i++)
5774 phba->vpi_ids[i] = i;
5778 /* Init HBQs */
5779 if (phba->sli3_options & LPFC_SLI3_HBQ_ENABLED) {
5780 rc = lpfc_sli_hbq_setup(phba);
5781 if (rc)
5782 goto lpfc_sli_hba_setup_error;
5784 spin_lock_irq(&phba->hbalock);
5785 phba->sli.sli_flag |= LPFC_PROCESS_LA;
5786 spin_unlock_irq(&phba->hbalock);
5788 rc = lpfc_config_port_post(phba);
5789 if (rc)
5790 goto lpfc_sli_hba_setup_error;
5792 return rc;
5794 lpfc_sli_hba_setup_error:
5795 phba->link_state = LPFC_HBA_ERROR;
5796 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
5797 "0445 Firmware initialization failed\n");
5798 return rc;
5802 * lpfc_sli4_read_fcoe_params - Read fcoe params from conf region
5803 * @phba: Pointer to HBA context object.
5805 * This function issue a dump mailbox command to read config region
5806 * 23 and parse the records in the region and populate driver
5807 * data structure.
5809 static int
5810 lpfc_sli4_read_fcoe_params(struct lpfc_hba *phba)
5812 LPFC_MBOXQ_t *mboxq;
5813 struct lpfc_dmabuf *mp;
5814 struct lpfc_mqe *mqe;
5815 uint32_t data_length;
5816 int rc;
5818 /* Program the default value of vlan_id and fc_map */
5819 phba->valid_vlan = 0;
5820 phba->fc_map[0] = LPFC_FCOE_FCF_MAP0;
5821 phba->fc_map[1] = LPFC_FCOE_FCF_MAP1;
5822 phba->fc_map[2] = LPFC_FCOE_FCF_MAP2;
5824 mboxq = (LPFC_MBOXQ_t *)mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
5825 if (!mboxq)
5826 return -ENOMEM;
5828 mqe = &mboxq->u.mqe;
5829 if (lpfc_sli4_dump_cfg_rg23(phba, mboxq)) {
5830 rc = -ENOMEM;
5831 goto out_free_mboxq;
5834 mp = mboxq->ctx_buf;
5835 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
5837 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
5838 "(%d):2571 Mailbox cmd x%x Status x%x "
5839 "Data: x%x x%x x%x x%x x%x x%x x%x x%x x%x "
5840 "x%x x%x x%x x%x x%x x%x x%x x%x x%x "
5841 "CQ: x%x x%x x%x x%x\n",
5842 mboxq->vport ? mboxq->vport->vpi : 0,
5843 bf_get(lpfc_mqe_command, mqe),
5844 bf_get(lpfc_mqe_status, mqe),
5845 mqe->un.mb_words[0], mqe->un.mb_words[1],
5846 mqe->un.mb_words[2], mqe->un.mb_words[3],
5847 mqe->un.mb_words[4], mqe->un.mb_words[5],
5848 mqe->un.mb_words[6], mqe->un.mb_words[7],
5849 mqe->un.mb_words[8], mqe->un.mb_words[9],
5850 mqe->un.mb_words[10], mqe->un.mb_words[11],
5851 mqe->un.mb_words[12], mqe->un.mb_words[13],
5852 mqe->un.mb_words[14], mqe->un.mb_words[15],
5853 mqe->un.mb_words[16], mqe->un.mb_words[50],
5854 mboxq->mcqe.word0,
5855 mboxq->mcqe.mcqe_tag0, mboxq->mcqe.mcqe_tag1,
5856 mboxq->mcqe.trailer);
5858 if (rc) {
5859 rc = -EIO;
5860 goto out_free_mboxq;
5862 data_length = mqe->un.mb_words[5];
5863 if (data_length > DMP_RGN23_SIZE) {
5864 rc = -EIO;
5865 goto out_free_mboxq;
5868 lpfc_parse_fcoe_conf(phba, mp->virt, data_length);
5869 rc = 0;
5871 out_free_mboxq:
5872 lpfc_mbox_rsrc_cleanup(phba, mboxq, MBOX_THD_UNLOCKED);
5873 return rc;
5877 * lpfc_sli4_read_rev - Issue READ_REV and collect vpd data
5878 * @phba: pointer to lpfc hba data structure.
5879 * @mboxq: pointer to the LPFC_MBOXQ_t structure.
5880 * @vpd: pointer to the memory to hold resulting port vpd data.
5881 * @vpd_size: On input, the number of bytes allocated to @vpd.
5882 * On output, the number of data bytes in @vpd.
5884 * This routine executes a READ_REV SLI4 mailbox command. In
5885 * addition, this routine gets the port vpd data.
5887 * Return codes
5888 * 0 - successful
5889 * -ENOMEM - could not allocated memory.
5891 static int
5892 lpfc_sli4_read_rev(struct lpfc_hba *phba, LPFC_MBOXQ_t *mboxq,
5893 uint8_t *vpd, uint32_t *vpd_size)
5895 int rc = 0;
5896 uint32_t dma_size;
5897 struct lpfc_dmabuf *dmabuf;
5898 struct lpfc_mqe *mqe;
5900 dmabuf = kzalloc(sizeof(struct lpfc_dmabuf), GFP_KERNEL);
5901 if (!dmabuf)
5902 return -ENOMEM;
5905 * Get a DMA buffer for the vpd data resulting from the READ_REV
5906 * mailbox command.
5908 dma_size = *vpd_size;
5909 dmabuf->virt = dma_alloc_coherent(&phba->pcidev->dev, dma_size,
5910 &dmabuf->phys, GFP_KERNEL);
5911 if (!dmabuf->virt) {
5912 kfree(dmabuf);
5913 return -ENOMEM;
5917 * The SLI4 implementation of READ_REV conflicts at word1,
5918 * bits 31:16 and SLI4 adds vpd functionality not present
5919 * in SLI3. This code corrects the conflicts.
5921 lpfc_read_rev(phba, mboxq);
5922 mqe = &mboxq->u.mqe;
5923 mqe->un.read_rev.vpd_paddr_high = putPaddrHigh(dmabuf->phys);
5924 mqe->un.read_rev.vpd_paddr_low = putPaddrLow(dmabuf->phys);
5925 mqe->un.read_rev.word1 &= 0x0000FFFF;
5926 bf_set(lpfc_mbx_rd_rev_vpd, &mqe->un.read_rev, 1);
5927 bf_set(lpfc_mbx_rd_rev_avail_len, &mqe->un.read_rev, dma_size);
5929 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
5930 if (rc) {
5931 dma_free_coherent(&phba->pcidev->dev, dma_size,
5932 dmabuf->virt, dmabuf->phys);
5933 kfree(dmabuf);
5934 return -EIO;
5938 * The available vpd length cannot be bigger than the
5939 * DMA buffer passed to the port. Catch the less than
5940 * case and update the caller's size.
5942 if (mqe->un.read_rev.avail_vpd_len < *vpd_size)
5943 *vpd_size = mqe->un.read_rev.avail_vpd_len;
5945 memcpy(vpd, dmabuf->virt, *vpd_size);
5947 dma_free_coherent(&phba->pcidev->dev, dma_size,
5948 dmabuf->virt, dmabuf->phys);
5949 kfree(dmabuf);
5950 return 0;
5954 * lpfc_sli4_get_ctl_attr - Retrieve SLI4 device controller attributes
5955 * @phba: pointer to lpfc hba data structure.
5957 * This routine retrieves SLI4 device physical port name this PCI function
5958 * is attached to.
5960 * Return codes
5961 * 0 - successful
5962 * otherwise - failed to retrieve controller attributes
5964 static int
5965 lpfc_sli4_get_ctl_attr(struct lpfc_hba *phba)
5967 LPFC_MBOXQ_t *mboxq;
5968 struct lpfc_mbx_get_cntl_attributes *mbx_cntl_attr;
5969 struct lpfc_controller_attribute *cntl_attr;
5970 void *virtaddr = NULL;
5971 uint32_t alloclen, reqlen;
5972 uint32_t shdr_status, shdr_add_status;
5973 union lpfc_sli4_cfg_shdr *shdr;
5974 int rc;
5976 mboxq = (LPFC_MBOXQ_t *)mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
5977 if (!mboxq)
5978 return -ENOMEM;
5980 /* Send COMMON_GET_CNTL_ATTRIBUTES mbox cmd */
5981 reqlen = sizeof(struct lpfc_mbx_get_cntl_attributes);
5982 alloclen = lpfc_sli4_config(phba, mboxq, LPFC_MBOX_SUBSYSTEM_COMMON,
5983 LPFC_MBOX_OPCODE_GET_CNTL_ATTRIBUTES, reqlen,
5984 LPFC_SLI4_MBX_NEMBED);
5986 if (alloclen < reqlen) {
5987 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
5988 "3084 Allocated DMA memory size (%d) is "
5989 "less than the requested DMA memory size "
5990 "(%d)\n", alloclen, reqlen);
5991 rc = -ENOMEM;
5992 goto out_free_mboxq;
5994 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
5995 virtaddr = mboxq->sge_array->addr[0];
5996 mbx_cntl_attr = (struct lpfc_mbx_get_cntl_attributes *)virtaddr;
5997 shdr = &mbx_cntl_attr->cfg_shdr;
5998 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
5999 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
6000 if (shdr_status || shdr_add_status || rc) {
6001 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
6002 "3085 Mailbox x%x (x%x/x%x) failed, "
6003 "rc:x%x, status:x%x, add_status:x%x\n",
6004 bf_get(lpfc_mqe_command, &mboxq->u.mqe),
6005 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
6006 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
6007 rc, shdr_status, shdr_add_status);
6008 rc = -ENXIO;
6009 goto out_free_mboxq;
6012 cntl_attr = &mbx_cntl_attr->cntl_attr;
6013 phba->sli4_hba.lnk_info.lnk_dv = LPFC_LNK_DAT_VAL;
6014 phba->sli4_hba.lnk_info.lnk_tp =
6015 bf_get(lpfc_cntl_attr_lnk_type, cntl_attr);
6016 phba->sli4_hba.lnk_info.lnk_no =
6017 bf_get(lpfc_cntl_attr_lnk_numb, cntl_attr);
6018 phba->sli4_hba.flash_id = bf_get(lpfc_cntl_attr_flash_id, cntl_attr);
6019 phba->sli4_hba.asic_rev = bf_get(lpfc_cntl_attr_asic_rev, cntl_attr);
6021 memset(phba->BIOSVersion, 0, sizeof(phba->BIOSVersion));
6022 strlcat(phba->BIOSVersion, (char *)cntl_attr->bios_ver_str,
6023 sizeof(phba->BIOSVersion));
6025 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
6026 "3086 lnk_type:%d, lnk_numb:%d, bios_ver:%s, "
6027 "flash_id: x%02x, asic_rev: x%02x\n",
6028 phba->sli4_hba.lnk_info.lnk_tp,
6029 phba->sli4_hba.lnk_info.lnk_no,
6030 phba->BIOSVersion, phba->sli4_hba.flash_id,
6031 phba->sli4_hba.asic_rev);
6032 out_free_mboxq:
6033 if (bf_get(lpfc_mqe_command, &mboxq->u.mqe) == MBX_SLI4_CONFIG)
6034 lpfc_sli4_mbox_cmd_free(phba, mboxq);
6035 else
6036 mempool_free(mboxq, phba->mbox_mem_pool);
6037 return rc;
6041 * lpfc_sli4_retrieve_pport_name - Retrieve SLI4 device physical port name
6042 * @phba: pointer to lpfc hba data structure.
6044 * This routine retrieves SLI4 device physical port name this PCI function
6045 * is attached to.
6047 * Return codes
6048 * 0 - successful
6049 * otherwise - failed to retrieve physical port name
6051 static int
6052 lpfc_sli4_retrieve_pport_name(struct lpfc_hba *phba)
6054 LPFC_MBOXQ_t *mboxq;
6055 struct lpfc_mbx_get_port_name *get_port_name;
6056 uint32_t shdr_status, shdr_add_status;
6057 union lpfc_sli4_cfg_shdr *shdr;
6058 char cport_name = 0;
6059 int rc;
6061 /* We assume nothing at this point */
6062 phba->sli4_hba.lnk_info.lnk_dv = LPFC_LNK_DAT_INVAL;
6063 phba->sli4_hba.pport_name_sta = LPFC_SLI4_PPNAME_NON;
6065 mboxq = (LPFC_MBOXQ_t *)mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
6066 if (!mboxq)
6067 return -ENOMEM;
6068 /* obtain link type and link number via READ_CONFIG */
6069 phba->sli4_hba.lnk_info.lnk_dv = LPFC_LNK_DAT_INVAL;
6070 lpfc_sli4_read_config(phba);
6072 if (phba->sli4_hba.fawwpn_flag & LPFC_FAWWPN_CONFIG)
6073 phba->sli4_hba.fawwpn_flag |= LPFC_FAWWPN_FABRIC;
6075 if (phba->sli4_hba.lnk_info.lnk_dv == LPFC_LNK_DAT_VAL)
6076 goto retrieve_ppname;
6078 /* obtain link type and link number via COMMON_GET_CNTL_ATTRIBUTES */
6079 rc = lpfc_sli4_get_ctl_attr(phba);
6080 if (rc)
6081 goto out_free_mboxq;
6083 retrieve_ppname:
6084 lpfc_sli4_config(phba, mboxq, LPFC_MBOX_SUBSYSTEM_COMMON,
6085 LPFC_MBOX_OPCODE_GET_PORT_NAME,
6086 sizeof(struct lpfc_mbx_get_port_name) -
6087 sizeof(struct lpfc_sli4_cfg_mhdr),
6088 LPFC_SLI4_MBX_EMBED);
6089 get_port_name = &mboxq->u.mqe.un.get_port_name;
6090 shdr = (union lpfc_sli4_cfg_shdr *)&get_port_name->header.cfg_shdr;
6091 bf_set(lpfc_mbox_hdr_version, &shdr->request, LPFC_OPCODE_VERSION_1);
6092 bf_set(lpfc_mbx_get_port_name_lnk_type, &get_port_name->u.request,
6093 phba->sli4_hba.lnk_info.lnk_tp);
6094 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
6095 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
6096 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
6097 if (shdr_status || shdr_add_status || rc) {
6098 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
6099 "3087 Mailbox x%x (x%x/x%x) failed: "
6100 "rc:x%x, status:x%x, add_status:x%x\n",
6101 bf_get(lpfc_mqe_command, &mboxq->u.mqe),
6102 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
6103 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
6104 rc, shdr_status, shdr_add_status);
6105 rc = -ENXIO;
6106 goto out_free_mboxq;
6108 switch (phba->sli4_hba.lnk_info.lnk_no) {
6109 case LPFC_LINK_NUMBER_0:
6110 cport_name = bf_get(lpfc_mbx_get_port_name_name0,
6111 &get_port_name->u.response);
6112 phba->sli4_hba.pport_name_sta = LPFC_SLI4_PPNAME_GET;
6113 break;
6114 case LPFC_LINK_NUMBER_1:
6115 cport_name = bf_get(lpfc_mbx_get_port_name_name1,
6116 &get_port_name->u.response);
6117 phba->sli4_hba.pport_name_sta = LPFC_SLI4_PPNAME_GET;
6118 break;
6119 case LPFC_LINK_NUMBER_2:
6120 cport_name = bf_get(lpfc_mbx_get_port_name_name2,
6121 &get_port_name->u.response);
6122 phba->sli4_hba.pport_name_sta = LPFC_SLI4_PPNAME_GET;
6123 break;
6124 case LPFC_LINK_NUMBER_3:
6125 cport_name = bf_get(lpfc_mbx_get_port_name_name3,
6126 &get_port_name->u.response);
6127 phba->sli4_hba.pport_name_sta = LPFC_SLI4_PPNAME_GET;
6128 break;
6129 default:
6130 break;
6133 if (phba->sli4_hba.pport_name_sta == LPFC_SLI4_PPNAME_GET) {
6134 phba->Port[0] = cport_name;
6135 phba->Port[1] = '\0';
6136 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
6137 "3091 SLI get port name: %s\n", phba->Port);
6140 out_free_mboxq:
6141 if (bf_get(lpfc_mqe_command, &mboxq->u.mqe) == MBX_SLI4_CONFIG)
6142 lpfc_sli4_mbox_cmd_free(phba, mboxq);
6143 else
6144 mempool_free(mboxq, phba->mbox_mem_pool);
6145 return rc;
6149 * lpfc_sli4_arm_cqeq_intr - Arm sli-4 device completion and event queues
6150 * @phba: pointer to lpfc hba data structure.
6152 * This routine is called to explicitly arm the SLI4 device's completion and
6153 * event queues
6155 static void
6156 lpfc_sli4_arm_cqeq_intr(struct lpfc_hba *phba)
6158 int qidx;
6159 struct lpfc_sli4_hba *sli4_hba = &phba->sli4_hba;
6160 struct lpfc_sli4_hdw_queue *qp;
6161 struct lpfc_queue *eq;
6163 sli4_hba->sli4_write_cq_db(phba, sli4_hba->mbx_cq, 0, LPFC_QUEUE_REARM);
6164 sli4_hba->sli4_write_cq_db(phba, sli4_hba->els_cq, 0, LPFC_QUEUE_REARM);
6165 if (sli4_hba->nvmels_cq)
6166 sli4_hba->sli4_write_cq_db(phba, sli4_hba->nvmels_cq, 0,
6167 LPFC_QUEUE_REARM);
6169 if (sli4_hba->hdwq) {
6170 /* Loop thru all Hardware Queues */
6171 for (qidx = 0; qidx < phba->cfg_hdw_queue; qidx++) {
6172 qp = &sli4_hba->hdwq[qidx];
6173 /* ARM the corresponding CQ */
6174 sli4_hba->sli4_write_cq_db(phba, qp->io_cq, 0,
6175 LPFC_QUEUE_REARM);
6178 /* Loop thru all IRQ vectors */
6179 for (qidx = 0; qidx < phba->cfg_irq_chann; qidx++) {
6180 eq = sli4_hba->hba_eq_hdl[qidx].eq;
6181 /* ARM the corresponding EQ */
6182 sli4_hba->sli4_write_eq_db(phba, eq,
6183 0, LPFC_QUEUE_REARM);
6187 if (phba->nvmet_support) {
6188 for (qidx = 0; qidx < phba->cfg_nvmet_mrq; qidx++) {
6189 sli4_hba->sli4_write_cq_db(phba,
6190 sli4_hba->nvmet_cqset[qidx], 0,
6191 LPFC_QUEUE_REARM);
6197 * lpfc_sli4_get_avail_extnt_rsrc - Get available resource extent count.
6198 * @phba: Pointer to HBA context object.
6199 * @type: The resource extent type.
6200 * @extnt_count: buffer to hold port available extent count.
6201 * @extnt_size: buffer to hold element count per extent.
6203 * This function calls the port and retrievs the number of available
6204 * extents and their size for a particular extent type.
6206 * Returns: 0 if successful. Nonzero otherwise.
6209 lpfc_sli4_get_avail_extnt_rsrc(struct lpfc_hba *phba, uint16_t type,
6210 uint16_t *extnt_count, uint16_t *extnt_size)
6212 int rc = 0;
6213 uint32_t length;
6214 uint32_t mbox_tmo;
6215 struct lpfc_mbx_get_rsrc_extent_info *rsrc_info;
6216 LPFC_MBOXQ_t *mbox;
6218 *extnt_count = 0;
6219 *extnt_size = 0;
6221 mbox = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
6222 if (!mbox)
6223 return -ENOMEM;
6225 /* Find out how many extents are available for this resource type */
6226 length = (sizeof(struct lpfc_mbx_get_rsrc_extent_info) -
6227 sizeof(struct lpfc_sli4_cfg_mhdr));
6228 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
6229 LPFC_MBOX_OPCODE_GET_RSRC_EXTENT_INFO,
6230 length, LPFC_SLI4_MBX_EMBED);
6232 /* Send an extents count of 0 - the GET doesn't use it. */
6233 rc = lpfc_sli4_mbox_rsrc_extent(phba, mbox, 0, type,
6234 LPFC_SLI4_MBX_EMBED);
6235 if (unlikely(rc)) {
6236 rc = -EIO;
6237 goto err_exit;
6240 if (!phba->sli4_hba.intr_enable)
6241 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
6242 else {
6243 mbox_tmo = lpfc_mbox_tmo_val(phba, mbox);
6244 rc = lpfc_sli_issue_mbox_wait(phba, mbox, mbox_tmo);
6246 if (unlikely(rc)) {
6247 rc = -EIO;
6248 goto err_exit;
6251 rsrc_info = &mbox->u.mqe.un.rsrc_extent_info;
6252 if (bf_get(lpfc_mbox_hdr_status,
6253 &rsrc_info->header.cfg_shdr.response)) {
6254 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
6255 "2930 Failed to get resource extents "
6256 "Status 0x%x Add'l Status 0x%x\n",
6257 bf_get(lpfc_mbox_hdr_status,
6258 &rsrc_info->header.cfg_shdr.response),
6259 bf_get(lpfc_mbox_hdr_add_status,
6260 &rsrc_info->header.cfg_shdr.response));
6261 rc = -EIO;
6262 goto err_exit;
6265 *extnt_count = bf_get(lpfc_mbx_get_rsrc_extent_info_cnt,
6266 &rsrc_info->u.rsp);
6267 *extnt_size = bf_get(lpfc_mbx_get_rsrc_extent_info_size,
6268 &rsrc_info->u.rsp);
6270 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
6271 "3162 Retrieved extents type-%d from port: count:%d, "
6272 "size:%d\n", type, *extnt_count, *extnt_size);
6274 err_exit:
6275 mempool_free(mbox, phba->mbox_mem_pool);
6276 return rc;
6280 * lpfc_sli4_chk_avail_extnt_rsrc - Check for available SLI4 resource extents.
6281 * @phba: Pointer to HBA context object.
6282 * @type: The extent type to check.
6284 * This function reads the current available extents from the port and checks
6285 * if the extent count or extent size has changed since the last access.
6286 * Callers use this routine post port reset to understand if there is a
6287 * extent reprovisioning requirement.
6289 * Returns:
6290 * -Error: error indicates problem.
6291 * 1: Extent count or size has changed.
6292 * 0: No changes.
6294 static int
6295 lpfc_sli4_chk_avail_extnt_rsrc(struct lpfc_hba *phba, uint16_t type)
6297 uint16_t curr_ext_cnt, rsrc_ext_cnt;
6298 uint16_t size_diff, rsrc_ext_size;
6299 int rc = 0;
6300 struct lpfc_rsrc_blks *rsrc_entry;
6301 struct list_head *rsrc_blk_list = NULL;
6303 size_diff = 0;
6304 curr_ext_cnt = 0;
6305 rc = lpfc_sli4_get_avail_extnt_rsrc(phba, type,
6306 &rsrc_ext_cnt,
6307 &rsrc_ext_size);
6308 if (unlikely(rc))
6309 return -EIO;
6311 switch (type) {
6312 case LPFC_RSC_TYPE_FCOE_RPI:
6313 rsrc_blk_list = &phba->sli4_hba.lpfc_rpi_blk_list;
6314 break;
6315 case LPFC_RSC_TYPE_FCOE_VPI:
6316 rsrc_blk_list = &phba->lpfc_vpi_blk_list;
6317 break;
6318 case LPFC_RSC_TYPE_FCOE_XRI:
6319 rsrc_blk_list = &phba->sli4_hba.lpfc_xri_blk_list;
6320 break;
6321 case LPFC_RSC_TYPE_FCOE_VFI:
6322 rsrc_blk_list = &phba->sli4_hba.lpfc_vfi_blk_list;
6323 break;
6324 default:
6325 break;
6328 list_for_each_entry(rsrc_entry, rsrc_blk_list, list) {
6329 curr_ext_cnt++;
6330 if (rsrc_entry->rsrc_size != rsrc_ext_size)
6331 size_diff++;
6334 if (curr_ext_cnt != rsrc_ext_cnt || size_diff != 0)
6335 rc = 1;
6337 return rc;
6341 * lpfc_sli4_cfg_post_extnts -
6342 * @phba: Pointer to HBA context object.
6343 * @extnt_cnt: number of available extents.
6344 * @type: the extent type (rpi, xri, vfi, vpi).
6345 * @emb: buffer to hold either MBX_EMBED or MBX_NEMBED operation.
6346 * @mbox: pointer to the caller's allocated mailbox structure.
6348 * This function executes the extents allocation request. It also
6349 * takes care of the amount of memory needed to allocate or get the
6350 * allocated extents. It is the caller's responsibility to evaluate
6351 * the response.
6353 * Returns:
6354 * -Error: Error value describes the condition found.
6355 * 0: if successful
6357 static int
6358 lpfc_sli4_cfg_post_extnts(struct lpfc_hba *phba, uint16_t extnt_cnt,
6359 uint16_t type, bool *emb, LPFC_MBOXQ_t *mbox)
6361 int rc = 0;
6362 uint32_t req_len;
6363 uint32_t emb_len;
6364 uint32_t alloc_len, mbox_tmo;
6366 /* Calculate the total requested length of the dma memory */
6367 req_len = extnt_cnt * sizeof(uint16_t);
6370 * Calculate the size of an embedded mailbox. The uint32_t
6371 * accounts for extents-specific word.
6373 emb_len = sizeof(MAILBOX_t) - sizeof(struct mbox_header) -
6374 sizeof(uint32_t);
6377 * Presume the allocation and response will fit into an embedded
6378 * mailbox. If not true, reconfigure to a non-embedded mailbox.
6380 *emb = LPFC_SLI4_MBX_EMBED;
6381 if (req_len > emb_len) {
6382 req_len = extnt_cnt * sizeof(uint16_t) +
6383 sizeof(union lpfc_sli4_cfg_shdr) +
6384 sizeof(uint32_t);
6385 *emb = LPFC_SLI4_MBX_NEMBED;
6388 alloc_len = lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
6389 LPFC_MBOX_OPCODE_ALLOC_RSRC_EXTENT,
6390 req_len, *emb);
6391 if (alloc_len < req_len) {
6392 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
6393 "2982 Allocated DMA memory size (x%x) is "
6394 "less than the requested DMA memory "
6395 "size (x%x)\n", alloc_len, req_len);
6396 return -ENOMEM;
6398 rc = lpfc_sli4_mbox_rsrc_extent(phba, mbox, extnt_cnt, type, *emb);
6399 if (unlikely(rc))
6400 return -EIO;
6402 if (!phba->sli4_hba.intr_enable)
6403 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
6404 else {
6405 mbox_tmo = lpfc_mbox_tmo_val(phba, mbox);
6406 rc = lpfc_sli_issue_mbox_wait(phba, mbox, mbox_tmo);
6409 if (unlikely(rc))
6410 rc = -EIO;
6411 return rc;
6415 * lpfc_sli4_alloc_extent - Allocate an SLI4 resource extent.
6416 * @phba: Pointer to HBA context object.
6417 * @type: The resource extent type to allocate.
6419 * This function allocates the number of elements for the specified
6420 * resource type.
6422 static int
6423 lpfc_sli4_alloc_extent(struct lpfc_hba *phba, uint16_t type)
6425 bool emb = false;
6426 uint16_t rsrc_id_cnt, rsrc_cnt, rsrc_size;
6427 uint16_t rsrc_id, rsrc_start, j, k;
6428 uint16_t *ids;
6429 int i, rc;
6430 unsigned long longs;
6431 unsigned long *bmask;
6432 struct lpfc_rsrc_blks *rsrc_blks;
6433 LPFC_MBOXQ_t *mbox;
6434 uint32_t length;
6435 struct lpfc_id_range *id_array = NULL;
6436 void *virtaddr = NULL;
6437 struct lpfc_mbx_nembed_rsrc_extent *n_rsrc;
6438 struct lpfc_mbx_alloc_rsrc_extents *rsrc_ext;
6439 struct list_head *ext_blk_list;
6441 rc = lpfc_sli4_get_avail_extnt_rsrc(phba, type,
6442 &rsrc_cnt,
6443 &rsrc_size);
6444 if (unlikely(rc))
6445 return -EIO;
6447 if ((rsrc_cnt == 0) || (rsrc_size == 0)) {
6448 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
6449 "3009 No available Resource Extents "
6450 "for resource type 0x%x: Count: 0x%x, "
6451 "Size 0x%x\n", type, rsrc_cnt,
6452 rsrc_size);
6453 return -ENOMEM;
6456 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_INIT | LOG_SLI,
6457 "2903 Post resource extents type-0x%x: "
6458 "count:%d, size %d\n", type, rsrc_cnt, rsrc_size);
6460 mbox = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
6461 if (!mbox)
6462 return -ENOMEM;
6464 rc = lpfc_sli4_cfg_post_extnts(phba, rsrc_cnt, type, &emb, mbox);
6465 if (unlikely(rc)) {
6466 rc = -EIO;
6467 goto err_exit;
6471 * Figure out where the response is located. Then get local pointers
6472 * to the response data. The port does not guarantee to respond to
6473 * all extents counts request so update the local variable with the
6474 * allocated count from the port.
6476 if (emb == LPFC_SLI4_MBX_EMBED) {
6477 rsrc_ext = &mbox->u.mqe.un.alloc_rsrc_extents;
6478 id_array = &rsrc_ext->u.rsp.id[0];
6479 rsrc_cnt = bf_get(lpfc_mbx_rsrc_cnt, &rsrc_ext->u.rsp);
6480 } else {
6481 virtaddr = mbox->sge_array->addr[0];
6482 n_rsrc = (struct lpfc_mbx_nembed_rsrc_extent *) virtaddr;
6483 rsrc_cnt = bf_get(lpfc_mbx_rsrc_cnt, n_rsrc);
6484 id_array = &n_rsrc->id;
6487 longs = ((rsrc_cnt * rsrc_size) + BITS_PER_LONG - 1) / BITS_PER_LONG;
6488 rsrc_id_cnt = rsrc_cnt * rsrc_size;
6491 * Based on the resource size and count, correct the base and max
6492 * resource values.
6494 length = sizeof(struct lpfc_rsrc_blks);
6495 switch (type) {
6496 case LPFC_RSC_TYPE_FCOE_RPI:
6497 phba->sli4_hba.rpi_bmask = kcalloc(longs,
6498 sizeof(unsigned long),
6499 GFP_KERNEL);
6500 if (unlikely(!phba->sli4_hba.rpi_bmask)) {
6501 rc = -ENOMEM;
6502 goto err_exit;
6504 phba->sli4_hba.rpi_ids = kcalloc(rsrc_id_cnt,
6505 sizeof(uint16_t),
6506 GFP_KERNEL);
6507 if (unlikely(!phba->sli4_hba.rpi_ids)) {
6508 kfree(phba->sli4_hba.rpi_bmask);
6509 rc = -ENOMEM;
6510 goto err_exit;
6514 * The next_rpi was initialized with the maximum available
6515 * count but the port may allocate a smaller number. Catch
6516 * that case and update the next_rpi.
6518 phba->sli4_hba.next_rpi = rsrc_id_cnt;
6520 /* Initialize local ptrs for common extent processing later. */
6521 bmask = phba->sli4_hba.rpi_bmask;
6522 ids = phba->sli4_hba.rpi_ids;
6523 ext_blk_list = &phba->sli4_hba.lpfc_rpi_blk_list;
6524 break;
6525 case LPFC_RSC_TYPE_FCOE_VPI:
6526 phba->vpi_bmask = kcalloc(longs, sizeof(unsigned long),
6527 GFP_KERNEL);
6528 if (unlikely(!phba->vpi_bmask)) {
6529 rc = -ENOMEM;
6530 goto err_exit;
6532 phba->vpi_ids = kcalloc(rsrc_id_cnt, sizeof(uint16_t),
6533 GFP_KERNEL);
6534 if (unlikely(!phba->vpi_ids)) {
6535 kfree(phba->vpi_bmask);
6536 rc = -ENOMEM;
6537 goto err_exit;
6540 /* Initialize local ptrs for common extent processing later. */
6541 bmask = phba->vpi_bmask;
6542 ids = phba->vpi_ids;
6543 ext_blk_list = &phba->lpfc_vpi_blk_list;
6544 break;
6545 case LPFC_RSC_TYPE_FCOE_XRI:
6546 phba->sli4_hba.xri_bmask = kcalloc(longs,
6547 sizeof(unsigned long),
6548 GFP_KERNEL);
6549 if (unlikely(!phba->sli4_hba.xri_bmask)) {
6550 rc = -ENOMEM;
6551 goto err_exit;
6553 phba->sli4_hba.max_cfg_param.xri_used = 0;
6554 phba->sli4_hba.xri_ids = kcalloc(rsrc_id_cnt,
6555 sizeof(uint16_t),
6556 GFP_KERNEL);
6557 if (unlikely(!phba->sli4_hba.xri_ids)) {
6558 kfree(phba->sli4_hba.xri_bmask);
6559 rc = -ENOMEM;
6560 goto err_exit;
6563 /* Initialize local ptrs for common extent processing later. */
6564 bmask = phba->sli4_hba.xri_bmask;
6565 ids = phba->sli4_hba.xri_ids;
6566 ext_blk_list = &phba->sli4_hba.lpfc_xri_blk_list;
6567 break;
6568 case LPFC_RSC_TYPE_FCOE_VFI:
6569 phba->sli4_hba.vfi_bmask = kcalloc(longs,
6570 sizeof(unsigned long),
6571 GFP_KERNEL);
6572 if (unlikely(!phba->sli4_hba.vfi_bmask)) {
6573 rc = -ENOMEM;
6574 goto err_exit;
6576 phba->sli4_hba.vfi_ids = kcalloc(rsrc_id_cnt,
6577 sizeof(uint16_t),
6578 GFP_KERNEL);
6579 if (unlikely(!phba->sli4_hba.vfi_ids)) {
6580 kfree(phba->sli4_hba.vfi_bmask);
6581 rc = -ENOMEM;
6582 goto err_exit;
6585 /* Initialize local ptrs for common extent processing later. */
6586 bmask = phba->sli4_hba.vfi_bmask;
6587 ids = phba->sli4_hba.vfi_ids;
6588 ext_blk_list = &phba->sli4_hba.lpfc_vfi_blk_list;
6589 break;
6590 default:
6591 /* Unsupported Opcode. Fail call. */
6592 id_array = NULL;
6593 bmask = NULL;
6594 ids = NULL;
6595 ext_blk_list = NULL;
6596 goto err_exit;
6600 * Complete initializing the extent configuration with the
6601 * allocated ids assigned to this function. The bitmask serves
6602 * as an index into the array and manages the available ids. The
6603 * array just stores the ids communicated to the port via the wqes.
6605 for (i = 0, j = 0, k = 0; i < rsrc_cnt; i++) {
6606 if ((i % 2) == 0)
6607 rsrc_id = bf_get(lpfc_mbx_rsrc_id_word4_0,
6608 &id_array[k]);
6609 else
6610 rsrc_id = bf_get(lpfc_mbx_rsrc_id_word4_1,
6611 &id_array[k]);
6613 rsrc_blks = kzalloc(length, GFP_KERNEL);
6614 if (unlikely(!rsrc_blks)) {
6615 rc = -ENOMEM;
6616 kfree(bmask);
6617 kfree(ids);
6618 goto err_exit;
6620 rsrc_blks->rsrc_start = rsrc_id;
6621 rsrc_blks->rsrc_size = rsrc_size;
6622 list_add_tail(&rsrc_blks->list, ext_blk_list);
6623 rsrc_start = rsrc_id;
6624 if ((type == LPFC_RSC_TYPE_FCOE_XRI) && (j == 0)) {
6625 phba->sli4_hba.io_xri_start = rsrc_start +
6626 lpfc_sli4_get_iocb_cnt(phba);
6629 while (rsrc_id < (rsrc_start + rsrc_size)) {
6630 ids[j] = rsrc_id;
6631 rsrc_id++;
6632 j++;
6634 /* Entire word processed. Get next word.*/
6635 if ((i % 2) == 1)
6636 k++;
6638 err_exit:
6639 lpfc_sli4_mbox_cmd_free(phba, mbox);
6640 return rc;
6646 * lpfc_sli4_dealloc_extent - Deallocate an SLI4 resource extent.
6647 * @phba: Pointer to HBA context object.
6648 * @type: the extent's type.
6650 * This function deallocates all extents of a particular resource type.
6651 * SLI4 does not allow for deallocating a particular extent range. It
6652 * is the caller's responsibility to release all kernel memory resources.
6654 static int
6655 lpfc_sli4_dealloc_extent(struct lpfc_hba *phba, uint16_t type)
6657 int rc;
6658 uint32_t length, mbox_tmo = 0;
6659 LPFC_MBOXQ_t *mbox;
6660 struct lpfc_mbx_dealloc_rsrc_extents *dealloc_rsrc;
6661 struct lpfc_rsrc_blks *rsrc_blk, *rsrc_blk_next;
6663 mbox = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
6664 if (!mbox)
6665 return -ENOMEM;
6668 * This function sends an embedded mailbox because it only sends the
6669 * the resource type. All extents of this type are released by the
6670 * port.
6672 length = (sizeof(struct lpfc_mbx_dealloc_rsrc_extents) -
6673 sizeof(struct lpfc_sli4_cfg_mhdr));
6674 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
6675 LPFC_MBOX_OPCODE_DEALLOC_RSRC_EXTENT,
6676 length, LPFC_SLI4_MBX_EMBED);
6678 /* Send an extents count of 0 - the dealloc doesn't use it. */
6679 rc = lpfc_sli4_mbox_rsrc_extent(phba, mbox, 0, type,
6680 LPFC_SLI4_MBX_EMBED);
6681 if (unlikely(rc)) {
6682 rc = -EIO;
6683 goto out_free_mbox;
6685 if (!phba->sli4_hba.intr_enable)
6686 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
6687 else {
6688 mbox_tmo = lpfc_mbox_tmo_val(phba, mbox);
6689 rc = lpfc_sli_issue_mbox_wait(phba, mbox, mbox_tmo);
6691 if (unlikely(rc)) {
6692 rc = -EIO;
6693 goto out_free_mbox;
6696 dealloc_rsrc = &mbox->u.mqe.un.dealloc_rsrc_extents;
6697 if (bf_get(lpfc_mbox_hdr_status,
6698 &dealloc_rsrc->header.cfg_shdr.response)) {
6699 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
6700 "2919 Failed to release resource extents "
6701 "for type %d - Status 0x%x Add'l Status 0x%x. "
6702 "Resource memory not released.\n",
6703 type,
6704 bf_get(lpfc_mbox_hdr_status,
6705 &dealloc_rsrc->header.cfg_shdr.response),
6706 bf_get(lpfc_mbox_hdr_add_status,
6707 &dealloc_rsrc->header.cfg_shdr.response));
6708 rc = -EIO;
6709 goto out_free_mbox;
6712 /* Release kernel memory resources for the specific type. */
6713 switch (type) {
6714 case LPFC_RSC_TYPE_FCOE_VPI:
6715 kfree(phba->vpi_bmask);
6716 kfree(phba->vpi_ids);
6717 bf_set(lpfc_vpi_rsrc_rdy, &phba->sli4_hba.sli4_flags, 0);
6718 list_for_each_entry_safe(rsrc_blk, rsrc_blk_next,
6719 &phba->lpfc_vpi_blk_list, list) {
6720 list_del_init(&rsrc_blk->list);
6721 kfree(rsrc_blk);
6723 phba->sli4_hba.max_cfg_param.vpi_used = 0;
6724 break;
6725 case LPFC_RSC_TYPE_FCOE_XRI:
6726 kfree(phba->sli4_hba.xri_bmask);
6727 kfree(phba->sli4_hba.xri_ids);
6728 list_for_each_entry_safe(rsrc_blk, rsrc_blk_next,
6729 &phba->sli4_hba.lpfc_xri_blk_list, list) {
6730 list_del_init(&rsrc_blk->list);
6731 kfree(rsrc_blk);
6733 break;
6734 case LPFC_RSC_TYPE_FCOE_VFI:
6735 kfree(phba->sli4_hba.vfi_bmask);
6736 kfree(phba->sli4_hba.vfi_ids);
6737 bf_set(lpfc_vfi_rsrc_rdy, &phba->sli4_hba.sli4_flags, 0);
6738 list_for_each_entry_safe(rsrc_blk, rsrc_blk_next,
6739 &phba->sli4_hba.lpfc_vfi_blk_list, list) {
6740 list_del_init(&rsrc_blk->list);
6741 kfree(rsrc_blk);
6743 break;
6744 case LPFC_RSC_TYPE_FCOE_RPI:
6745 /* RPI bitmask and physical id array are cleaned up earlier. */
6746 list_for_each_entry_safe(rsrc_blk, rsrc_blk_next,
6747 &phba->sli4_hba.lpfc_rpi_blk_list, list) {
6748 list_del_init(&rsrc_blk->list);
6749 kfree(rsrc_blk);
6751 break;
6752 default:
6753 break;
6756 bf_set(lpfc_idx_rsrc_rdy, &phba->sli4_hba.sli4_flags, 0);
6758 out_free_mbox:
6759 mempool_free(mbox, phba->mbox_mem_pool);
6760 return rc;
6763 static void
6764 lpfc_set_features(struct lpfc_hba *phba, LPFC_MBOXQ_t *mbox,
6765 uint32_t feature)
6767 uint32_t len;
6768 u32 sig_freq = 0;
6770 len = sizeof(struct lpfc_mbx_set_feature) -
6771 sizeof(struct lpfc_sli4_cfg_mhdr);
6772 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
6773 LPFC_MBOX_OPCODE_SET_FEATURES, len,
6774 LPFC_SLI4_MBX_EMBED);
6776 switch (feature) {
6777 case LPFC_SET_UE_RECOVERY:
6778 bf_set(lpfc_mbx_set_feature_UER,
6779 &mbox->u.mqe.un.set_feature, 1);
6780 mbox->u.mqe.un.set_feature.feature = LPFC_SET_UE_RECOVERY;
6781 mbox->u.mqe.un.set_feature.param_len = 8;
6782 break;
6783 case LPFC_SET_MDS_DIAGS:
6784 bf_set(lpfc_mbx_set_feature_mds,
6785 &mbox->u.mqe.un.set_feature, 1);
6786 bf_set(lpfc_mbx_set_feature_mds_deep_loopbk,
6787 &mbox->u.mqe.un.set_feature, 1);
6788 mbox->u.mqe.un.set_feature.feature = LPFC_SET_MDS_DIAGS;
6789 mbox->u.mqe.un.set_feature.param_len = 8;
6790 break;
6791 case LPFC_SET_CGN_SIGNAL:
6792 if (phba->cmf_active_mode == LPFC_CFG_OFF)
6793 sig_freq = 0;
6794 else
6795 sig_freq = phba->cgn_sig_freq;
6797 if (phba->cgn_reg_signal == EDC_CG_SIG_WARN_ALARM) {
6798 bf_set(lpfc_mbx_set_feature_CGN_alarm_freq,
6799 &mbox->u.mqe.un.set_feature, sig_freq);
6800 bf_set(lpfc_mbx_set_feature_CGN_warn_freq,
6801 &mbox->u.mqe.un.set_feature, sig_freq);
6804 if (phba->cgn_reg_signal == EDC_CG_SIG_WARN_ONLY)
6805 bf_set(lpfc_mbx_set_feature_CGN_warn_freq,
6806 &mbox->u.mqe.un.set_feature, sig_freq);
6808 if (phba->cmf_active_mode == LPFC_CFG_OFF ||
6809 phba->cgn_reg_signal == EDC_CG_SIG_NOTSUPPORTED)
6810 sig_freq = 0;
6811 else
6812 sig_freq = lpfc_acqe_cgn_frequency;
6814 bf_set(lpfc_mbx_set_feature_CGN_acqe_freq,
6815 &mbox->u.mqe.un.set_feature, sig_freq);
6817 mbox->u.mqe.un.set_feature.feature = LPFC_SET_CGN_SIGNAL;
6818 mbox->u.mqe.un.set_feature.param_len = 12;
6819 break;
6820 case LPFC_SET_DUAL_DUMP:
6821 bf_set(lpfc_mbx_set_feature_dd,
6822 &mbox->u.mqe.un.set_feature, LPFC_ENABLE_DUAL_DUMP);
6823 bf_set(lpfc_mbx_set_feature_ddquery,
6824 &mbox->u.mqe.un.set_feature, 0);
6825 mbox->u.mqe.un.set_feature.feature = LPFC_SET_DUAL_DUMP;
6826 mbox->u.mqe.un.set_feature.param_len = 4;
6827 break;
6828 case LPFC_SET_ENABLE_MI:
6829 mbox->u.mqe.un.set_feature.feature = LPFC_SET_ENABLE_MI;
6830 mbox->u.mqe.un.set_feature.param_len = 4;
6831 bf_set(lpfc_mbx_set_feature_milunq, &mbox->u.mqe.un.set_feature,
6832 phba->pport->cfg_lun_queue_depth);
6833 bf_set(lpfc_mbx_set_feature_mi, &mbox->u.mqe.un.set_feature,
6834 phba->sli4_hba.pc_sli4_params.mi_ver);
6835 break;
6836 case LPFC_SET_LD_SIGNAL:
6837 mbox->u.mqe.un.set_feature.feature = LPFC_SET_LD_SIGNAL;
6838 mbox->u.mqe.un.set_feature.param_len = 16;
6839 bf_set(lpfc_mbx_set_feature_lds_qry,
6840 &mbox->u.mqe.un.set_feature, LPFC_QUERY_LDS_OP);
6841 break;
6842 case LPFC_SET_ENABLE_CMF:
6843 mbox->u.mqe.un.set_feature.feature = LPFC_SET_ENABLE_CMF;
6844 mbox->u.mqe.un.set_feature.param_len = 4;
6845 bf_set(lpfc_mbx_set_feature_cmf,
6846 &mbox->u.mqe.un.set_feature, 1);
6847 break;
6849 return;
6853 * lpfc_ras_stop_fwlog: Disable FW logging by the adapter
6854 * @phba: Pointer to HBA context object.
6856 * Disable FW logging into host memory on the adapter. To
6857 * be done before reading logs from the host memory.
6859 void
6860 lpfc_ras_stop_fwlog(struct lpfc_hba *phba)
6862 struct lpfc_ras_fwlog *ras_fwlog = &phba->ras_fwlog;
6864 spin_lock_irq(&phba->ras_fwlog_lock);
6865 ras_fwlog->state = INACTIVE;
6866 spin_unlock_irq(&phba->ras_fwlog_lock);
6868 /* Disable FW logging to host memory */
6869 writel(LPFC_CTL_PDEV_CTL_DDL_RAS,
6870 phba->sli4_hba.conf_regs_memmap_p + LPFC_CTL_PDEV_CTL_OFFSET);
6872 /* Wait 10ms for firmware to stop using DMA buffer */
6873 usleep_range(10 * 1000, 20 * 1000);
6877 * lpfc_sli4_ras_dma_free - Free memory allocated for FW logging.
6878 * @phba: Pointer to HBA context object.
6880 * This function is called to free memory allocated for RAS FW logging
6881 * support in the driver.
6883 void
6884 lpfc_sli4_ras_dma_free(struct lpfc_hba *phba)
6886 struct lpfc_ras_fwlog *ras_fwlog = &phba->ras_fwlog;
6887 struct lpfc_dmabuf *dmabuf, *next;
6889 if (!list_empty(&ras_fwlog->fwlog_buff_list)) {
6890 list_for_each_entry_safe(dmabuf, next,
6891 &ras_fwlog->fwlog_buff_list,
6892 list) {
6893 list_del(&dmabuf->list);
6894 dma_free_coherent(&phba->pcidev->dev,
6895 LPFC_RAS_MAX_ENTRY_SIZE,
6896 dmabuf->virt, dmabuf->phys);
6897 kfree(dmabuf);
6901 if (ras_fwlog->lwpd.virt) {
6902 dma_free_coherent(&phba->pcidev->dev,
6903 sizeof(uint32_t) * 2,
6904 ras_fwlog->lwpd.virt,
6905 ras_fwlog->lwpd.phys);
6906 ras_fwlog->lwpd.virt = NULL;
6909 spin_lock_irq(&phba->ras_fwlog_lock);
6910 ras_fwlog->state = INACTIVE;
6911 spin_unlock_irq(&phba->ras_fwlog_lock);
6915 * lpfc_sli4_ras_dma_alloc: Allocate memory for FW support
6916 * @phba: Pointer to HBA context object.
6917 * @fwlog_buff_count: Count of buffers to be created.
6919 * This routine DMA memory for Log Write Position Data[LPWD] and buffer
6920 * to update FW log is posted to the adapter.
6921 * Buffer count is calculated based on module param ras_fwlog_buffsize
6922 * Size of each buffer posted to FW is 64K.
6925 static int
6926 lpfc_sli4_ras_dma_alloc(struct lpfc_hba *phba,
6927 uint32_t fwlog_buff_count)
6929 struct lpfc_ras_fwlog *ras_fwlog = &phba->ras_fwlog;
6930 struct lpfc_dmabuf *dmabuf;
6931 int rc = 0, i = 0;
6933 /* Initialize List */
6934 INIT_LIST_HEAD(&ras_fwlog->fwlog_buff_list);
6936 /* Allocate memory for the LWPD */
6937 ras_fwlog->lwpd.virt = dma_alloc_coherent(&phba->pcidev->dev,
6938 sizeof(uint32_t) * 2,
6939 &ras_fwlog->lwpd.phys,
6940 GFP_KERNEL);
6941 if (!ras_fwlog->lwpd.virt) {
6942 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
6943 "6185 LWPD Memory Alloc Failed\n");
6945 return -ENOMEM;
6948 ras_fwlog->fw_buffcount = fwlog_buff_count;
6949 for (i = 0; i < ras_fwlog->fw_buffcount; i++) {
6950 dmabuf = kzalloc(sizeof(struct lpfc_dmabuf),
6951 GFP_KERNEL);
6952 if (!dmabuf) {
6953 rc = -ENOMEM;
6954 lpfc_printf_log(phba, KERN_WARNING, LOG_INIT,
6955 "6186 Memory Alloc failed FW logging");
6956 goto free_mem;
6959 dmabuf->virt = dma_alloc_coherent(&phba->pcidev->dev,
6960 LPFC_RAS_MAX_ENTRY_SIZE,
6961 &dmabuf->phys, GFP_KERNEL);
6962 if (!dmabuf->virt) {
6963 kfree(dmabuf);
6964 rc = -ENOMEM;
6965 lpfc_printf_log(phba, KERN_WARNING, LOG_INIT,
6966 "6187 DMA Alloc Failed FW logging");
6967 goto free_mem;
6969 dmabuf->buffer_tag = i;
6970 list_add_tail(&dmabuf->list, &ras_fwlog->fwlog_buff_list);
6973 free_mem:
6974 if (rc)
6975 lpfc_sli4_ras_dma_free(phba);
6977 return rc;
6981 * lpfc_sli4_ras_mbox_cmpl: Completion handler for RAS MBX command
6982 * @phba: pointer to lpfc hba data structure.
6983 * @pmb: pointer to the driver internal queue element for mailbox command.
6985 * Completion handler for driver's RAS MBX command to the device.
6987 static void
6988 lpfc_sli4_ras_mbox_cmpl(struct lpfc_hba *phba, LPFC_MBOXQ_t *pmb)
6990 MAILBOX_t *mb;
6991 union lpfc_sli4_cfg_shdr *shdr;
6992 uint32_t shdr_status, shdr_add_status;
6993 struct lpfc_ras_fwlog *ras_fwlog = &phba->ras_fwlog;
6995 mb = &pmb->u.mb;
6997 shdr = (union lpfc_sli4_cfg_shdr *)
6998 &pmb->u.mqe.un.ras_fwlog.header.cfg_shdr;
6999 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
7000 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
7002 if (mb->mbxStatus != MBX_SUCCESS || shdr_status) {
7003 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7004 "6188 FW LOG mailbox "
7005 "completed with status x%x add_status x%x,"
7006 " mbx status x%x\n",
7007 shdr_status, shdr_add_status, mb->mbxStatus);
7009 ras_fwlog->ras_hwsupport = false;
7010 goto disable_ras;
7013 spin_lock_irq(&phba->ras_fwlog_lock);
7014 ras_fwlog->state = ACTIVE;
7015 spin_unlock_irq(&phba->ras_fwlog_lock);
7016 mempool_free(pmb, phba->mbox_mem_pool);
7018 return;
7020 disable_ras:
7021 /* Free RAS DMA memory */
7022 lpfc_sli4_ras_dma_free(phba);
7023 mempool_free(pmb, phba->mbox_mem_pool);
7027 * lpfc_sli4_ras_fwlog_init: Initialize memory and post RAS MBX command
7028 * @phba: pointer to lpfc hba data structure.
7029 * @fwlog_level: Logging verbosity level.
7030 * @fwlog_enable: Enable/Disable logging.
7032 * Initialize memory and post mailbox command to enable FW logging in host
7033 * memory.
7036 lpfc_sli4_ras_fwlog_init(struct lpfc_hba *phba,
7037 uint32_t fwlog_level,
7038 uint32_t fwlog_enable)
7040 struct lpfc_ras_fwlog *ras_fwlog = &phba->ras_fwlog;
7041 struct lpfc_mbx_set_ras_fwlog *mbx_fwlog = NULL;
7042 struct lpfc_dmabuf *dmabuf;
7043 LPFC_MBOXQ_t *mbox;
7044 uint32_t len = 0, fwlog_buffsize, fwlog_entry_count;
7045 int rc = 0;
7047 spin_lock_irq(&phba->ras_fwlog_lock);
7048 ras_fwlog->state = INACTIVE;
7049 spin_unlock_irq(&phba->ras_fwlog_lock);
7051 fwlog_buffsize = (LPFC_RAS_MIN_BUFF_POST_SIZE *
7052 phba->cfg_ras_fwlog_buffsize);
7053 fwlog_entry_count = (fwlog_buffsize/LPFC_RAS_MAX_ENTRY_SIZE);
7056 * If re-enabling FW logging support use earlier allocated
7057 * DMA buffers while posting MBX command.
7059 if (!ras_fwlog->lwpd.virt) {
7060 rc = lpfc_sli4_ras_dma_alloc(phba, fwlog_entry_count);
7061 if (rc) {
7062 lpfc_printf_log(phba, KERN_WARNING, LOG_INIT,
7063 "6189 FW Log Memory Allocation Failed");
7064 return rc;
7068 /* Setup Mailbox command */
7069 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
7070 if (!mbox) {
7071 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7072 "6190 RAS MBX Alloc Failed");
7073 rc = -ENOMEM;
7074 goto mem_free;
7077 ras_fwlog->fw_loglevel = fwlog_level;
7078 len = (sizeof(struct lpfc_mbx_set_ras_fwlog) -
7079 sizeof(struct lpfc_sli4_cfg_mhdr));
7081 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_LOWLEVEL,
7082 LPFC_MBOX_OPCODE_SET_DIAG_LOG_OPTION,
7083 len, LPFC_SLI4_MBX_EMBED);
7085 mbx_fwlog = (struct lpfc_mbx_set_ras_fwlog *)&mbox->u.mqe.un.ras_fwlog;
7086 bf_set(lpfc_fwlog_enable, &mbx_fwlog->u.request,
7087 fwlog_enable);
7088 bf_set(lpfc_fwlog_loglvl, &mbx_fwlog->u.request,
7089 ras_fwlog->fw_loglevel);
7090 bf_set(lpfc_fwlog_buffcnt, &mbx_fwlog->u.request,
7091 ras_fwlog->fw_buffcount);
7092 bf_set(lpfc_fwlog_buffsz, &mbx_fwlog->u.request,
7093 LPFC_RAS_MAX_ENTRY_SIZE/SLI4_PAGE_SIZE);
7095 /* Update DMA buffer address */
7096 list_for_each_entry(dmabuf, &ras_fwlog->fwlog_buff_list, list) {
7097 memset(dmabuf->virt, 0, LPFC_RAS_MAX_ENTRY_SIZE);
7099 mbx_fwlog->u.request.buff_fwlog[dmabuf->buffer_tag].addr_lo =
7100 putPaddrLow(dmabuf->phys);
7102 mbx_fwlog->u.request.buff_fwlog[dmabuf->buffer_tag].addr_hi =
7103 putPaddrHigh(dmabuf->phys);
7106 /* Update LPWD address */
7107 mbx_fwlog->u.request.lwpd.addr_lo = putPaddrLow(ras_fwlog->lwpd.phys);
7108 mbx_fwlog->u.request.lwpd.addr_hi = putPaddrHigh(ras_fwlog->lwpd.phys);
7110 spin_lock_irq(&phba->ras_fwlog_lock);
7111 ras_fwlog->state = REG_INPROGRESS;
7112 spin_unlock_irq(&phba->ras_fwlog_lock);
7113 mbox->vport = phba->pport;
7114 mbox->mbox_cmpl = lpfc_sli4_ras_mbox_cmpl;
7116 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_NOWAIT);
7118 if (rc == MBX_NOT_FINISHED) {
7119 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7120 "6191 FW-Log Mailbox failed. "
7121 "status %d mbxStatus : x%x", rc,
7122 bf_get(lpfc_mqe_status, &mbox->u.mqe));
7123 mempool_free(mbox, phba->mbox_mem_pool);
7124 rc = -EIO;
7125 goto mem_free;
7126 } else
7127 rc = 0;
7128 mem_free:
7129 if (rc)
7130 lpfc_sli4_ras_dma_free(phba);
7132 return rc;
7136 * lpfc_sli4_ras_setup - Check if RAS supported on the adapter
7137 * @phba: Pointer to HBA context object.
7139 * Check if RAS is supported on the adapter and initialize it.
7141 void
7142 lpfc_sli4_ras_setup(struct lpfc_hba *phba)
7144 /* Check RAS FW Log needs to be enabled or not */
7145 if (lpfc_check_fwlog_support(phba))
7146 return;
7148 lpfc_sli4_ras_fwlog_init(phba, phba->cfg_ras_fwlog_level,
7149 LPFC_RAS_ENABLE_LOGGING);
7153 * lpfc_sli4_alloc_resource_identifiers - Allocate all SLI4 resource extents.
7154 * @phba: Pointer to HBA context object.
7156 * This function allocates all SLI4 resource identifiers.
7159 lpfc_sli4_alloc_resource_identifiers(struct lpfc_hba *phba)
7161 int i, rc, error = 0;
7162 uint16_t count, base;
7163 unsigned long longs;
7165 if (!phba->sli4_hba.rpi_hdrs_in_use)
7166 phba->sli4_hba.next_rpi = phba->sli4_hba.max_cfg_param.max_rpi;
7167 if (phba->sli4_hba.extents_in_use) {
7169 * The port supports resource extents. The XRI, VPI, VFI, RPI
7170 * resource extent count must be read and allocated before
7171 * provisioning the resource id arrays.
7173 if (bf_get(lpfc_idx_rsrc_rdy, &phba->sli4_hba.sli4_flags) ==
7174 LPFC_IDX_RSRC_RDY) {
7176 * Extent-based resources are set - the driver could
7177 * be in a port reset. Figure out if any corrective
7178 * actions need to be taken.
7180 rc = lpfc_sli4_chk_avail_extnt_rsrc(phba,
7181 LPFC_RSC_TYPE_FCOE_VFI);
7182 if (rc != 0)
7183 error++;
7184 rc = lpfc_sli4_chk_avail_extnt_rsrc(phba,
7185 LPFC_RSC_TYPE_FCOE_VPI);
7186 if (rc != 0)
7187 error++;
7188 rc = lpfc_sli4_chk_avail_extnt_rsrc(phba,
7189 LPFC_RSC_TYPE_FCOE_XRI);
7190 if (rc != 0)
7191 error++;
7192 rc = lpfc_sli4_chk_avail_extnt_rsrc(phba,
7193 LPFC_RSC_TYPE_FCOE_RPI);
7194 if (rc != 0)
7195 error++;
7198 * It's possible that the number of resources
7199 * provided to this port instance changed between
7200 * resets. Detect this condition and reallocate
7201 * resources. Otherwise, there is no action.
7203 if (error) {
7204 lpfc_printf_log(phba, KERN_INFO,
7205 LOG_MBOX | LOG_INIT,
7206 "2931 Detected extent resource "
7207 "change. Reallocating all "
7208 "extents.\n");
7209 rc = lpfc_sli4_dealloc_extent(phba,
7210 LPFC_RSC_TYPE_FCOE_VFI);
7211 rc = lpfc_sli4_dealloc_extent(phba,
7212 LPFC_RSC_TYPE_FCOE_VPI);
7213 rc = lpfc_sli4_dealloc_extent(phba,
7214 LPFC_RSC_TYPE_FCOE_XRI);
7215 rc = lpfc_sli4_dealloc_extent(phba,
7216 LPFC_RSC_TYPE_FCOE_RPI);
7217 } else
7218 return 0;
7221 rc = lpfc_sli4_alloc_extent(phba, LPFC_RSC_TYPE_FCOE_VFI);
7222 if (unlikely(rc))
7223 goto err_exit;
7225 rc = lpfc_sli4_alloc_extent(phba, LPFC_RSC_TYPE_FCOE_VPI);
7226 if (unlikely(rc))
7227 goto err_exit;
7229 rc = lpfc_sli4_alloc_extent(phba, LPFC_RSC_TYPE_FCOE_RPI);
7230 if (unlikely(rc))
7231 goto err_exit;
7233 rc = lpfc_sli4_alloc_extent(phba, LPFC_RSC_TYPE_FCOE_XRI);
7234 if (unlikely(rc))
7235 goto err_exit;
7236 bf_set(lpfc_idx_rsrc_rdy, &phba->sli4_hba.sli4_flags,
7237 LPFC_IDX_RSRC_RDY);
7238 return rc;
7239 } else {
7241 * The port does not support resource extents. The XRI, VPI,
7242 * VFI, RPI resource ids were determined from READ_CONFIG.
7243 * Just allocate the bitmasks and provision the resource id
7244 * arrays. If a port reset is active, the resources don't
7245 * need any action - just exit.
7247 if (bf_get(lpfc_idx_rsrc_rdy, &phba->sli4_hba.sli4_flags) ==
7248 LPFC_IDX_RSRC_RDY) {
7249 lpfc_sli4_dealloc_resource_identifiers(phba);
7250 lpfc_sli4_remove_rpis(phba);
7252 /* RPIs. */
7253 count = phba->sli4_hba.max_cfg_param.max_rpi;
7254 if (count <= 0) {
7255 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7256 "3279 Invalid provisioning of "
7257 "rpi:%d\n", count);
7258 rc = -EINVAL;
7259 goto err_exit;
7261 base = phba->sli4_hba.max_cfg_param.rpi_base;
7262 longs = (count + BITS_PER_LONG - 1) / BITS_PER_LONG;
7263 phba->sli4_hba.rpi_bmask = kcalloc(longs,
7264 sizeof(unsigned long),
7265 GFP_KERNEL);
7266 if (unlikely(!phba->sli4_hba.rpi_bmask)) {
7267 rc = -ENOMEM;
7268 goto err_exit;
7270 phba->sli4_hba.rpi_ids = kcalloc(count, sizeof(uint16_t),
7271 GFP_KERNEL);
7272 if (unlikely(!phba->sli4_hba.rpi_ids)) {
7273 rc = -ENOMEM;
7274 goto free_rpi_bmask;
7277 for (i = 0; i < count; i++)
7278 phba->sli4_hba.rpi_ids[i] = base + i;
7280 /* VPIs. */
7281 count = phba->sli4_hba.max_cfg_param.max_vpi;
7282 if (count <= 0) {
7283 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7284 "3280 Invalid provisioning of "
7285 "vpi:%d\n", count);
7286 rc = -EINVAL;
7287 goto free_rpi_ids;
7289 base = phba->sli4_hba.max_cfg_param.vpi_base;
7290 longs = (count + BITS_PER_LONG - 1) / BITS_PER_LONG;
7291 phba->vpi_bmask = kcalloc(longs, sizeof(unsigned long),
7292 GFP_KERNEL);
7293 if (unlikely(!phba->vpi_bmask)) {
7294 rc = -ENOMEM;
7295 goto free_rpi_ids;
7297 phba->vpi_ids = kcalloc(count, sizeof(uint16_t),
7298 GFP_KERNEL);
7299 if (unlikely(!phba->vpi_ids)) {
7300 rc = -ENOMEM;
7301 goto free_vpi_bmask;
7304 for (i = 0; i < count; i++)
7305 phba->vpi_ids[i] = base + i;
7307 /* XRIs. */
7308 count = phba->sli4_hba.max_cfg_param.max_xri;
7309 if (count <= 0) {
7310 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7311 "3281 Invalid provisioning of "
7312 "xri:%d\n", count);
7313 rc = -EINVAL;
7314 goto free_vpi_ids;
7316 base = phba->sli4_hba.max_cfg_param.xri_base;
7317 longs = (count + BITS_PER_LONG - 1) / BITS_PER_LONG;
7318 phba->sli4_hba.xri_bmask = kcalloc(longs,
7319 sizeof(unsigned long),
7320 GFP_KERNEL);
7321 if (unlikely(!phba->sli4_hba.xri_bmask)) {
7322 rc = -ENOMEM;
7323 goto free_vpi_ids;
7325 phba->sli4_hba.max_cfg_param.xri_used = 0;
7326 phba->sli4_hba.xri_ids = kcalloc(count, sizeof(uint16_t),
7327 GFP_KERNEL);
7328 if (unlikely(!phba->sli4_hba.xri_ids)) {
7329 rc = -ENOMEM;
7330 goto free_xri_bmask;
7333 for (i = 0; i < count; i++)
7334 phba->sli4_hba.xri_ids[i] = base + i;
7336 /* VFIs. */
7337 count = phba->sli4_hba.max_cfg_param.max_vfi;
7338 if (count <= 0) {
7339 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7340 "3282 Invalid provisioning of "
7341 "vfi:%d\n", count);
7342 rc = -EINVAL;
7343 goto free_xri_ids;
7345 base = phba->sli4_hba.max_cfg_param.vfi_base;
7346 longs = (count + BITS_PER_LONG - 1) / BITS_PER_LONG;
7347 phba->sli4_hba.vfi_bmask = kcalloc(longs,
7348 sizeof(unsigned long),
7349 GFP_KERNEL);
7350 if (unlikely(!phba->sli4_hba.vfi_bmask)) {
7351 rc = -ENOMEM;
7352 goto free_xri_ids;
7354 phba->sli4_hba.vfi_ids = kcalloc(count, sizeof(uint16_t),
7355 GFP_KERNEL);
7356 if (unlikely(!phba->sli4_hba.vfi_ids)) {
7357 rc = -ENOMEM;
7358 goto free_vfi_bmask;
7361 for (i = 0; i < count; i++)
7362 phba->sli4_hba.vfi_ids[i] = base + i;
7365 * Mark all resources ready. An HBA reset doesn't need
7366 * to reset the initialization.
7368 bf_set(lpfc_idx_rsrc_rdy, &phba->sli4_hba.sli4_flags,
7369 LPFC_IDX_RSRC_RDY);
7370 return 0;
7373 free_vfi_bmask:
7374 kfree(phba->sli4_hba.vfi_bmask);
7375 phba->sli4_hba.vfi_bmask = NULL;
7376 free_xri_ids:
7377 kfree(phba->sli4_hba.xri_ids);
7378 phba->sli4_hba.xri_ids = NULL;
7379 free_xri_bmask:
7380 kfree(phba->sli4_hba.xri_bmask);
7381 phba->sli4_hba.xri_bmask = NULL;
7382 free_vpi_ids:
7383 kfree(phba->vpi_ids);
7384 phba->vpi_ids = NULL;
7385 free_vpi_bmask:
7386 kfree(phba->vpi_bmask);
7387 phba->vpi_bmask = NULL;
7388 free_rpi_ids:
7389 kfree(phba->sli4_hba.rpi_ids);
7390 phba->sli4_hba.rpi_ids = NULL;
7391 free_rpi_bmask:
7392 kfree(phba->sli4_hba.rpi_bmask);
7393 phba->sli4_hba.rpi_bmask = NULL;
7394 err_exit:
7395 return rc;
7399 * lpfc_sli4_dealloc_resource_identifiers - Deallocate all SLI4 resource extents.
7400 * @phba: Pointer to HBA context object.
7402 * This function allocates the number of elements for the specified
7403 * resource type.
7406 lpfc_sli4_dealloc_resource_identifiers(struct lpfc_hba *phba)
7408 if (phba->sli4_hba.extents_in_use) {
7409 lpfc_sli4_dealloc_extent(phba, LPFC_RSC_TYPE_FCOE_VPI);
7410 lpfc_sli4_dealloc_extent(phba, LPFC_RSC_TYPE_FCOE_RPI);
7411 lpfc_sli4_dealloc_extent(phba, LPFC_RSC_TYPE_FCOE_XRI);
7412 lpfc_sli4_dealloc_extent(phba, LPFC_RSC_TYPE_FCOE_VFI);
7413 } else {
7414 kfree(phba->vpi_bmask);
7415 phba->sli4_hba.max_cfg_param.vpi_used = 0;
7416 kfree(phba->vpi_ids);
7417 bf_set(lpfc_vpi_rsrc_rdy, &phba->sli4_hba.sli4_flags, 0);
7418 kfree(phba->sli4_hba.xri_bmask);
7419 kfree(phba->sli4_hba.xri_ids);
7420 kfree(phba->sli4_hba.vfi_bmask);
7421 kfree(phba->sli4_hba.vfi_ids);
7422 bf_set(lpfc_vfi_rsrc_rdy, &phba->sli4_hba.sli4_flags, 0);
7423 bf_set(lpfc_idx_rsrc_rdy, &phba->sli4_hba.sli4_flags, 0);
7426 return 0;
7430 * lpfc_sli4_get_allocated_extnts - Get the port's allocated extents.
7431 * @phba: Pointer to HBA context object.
7432 * @type: The resource extent type.
7433 * @extnt_cnt: buffer to hold port extent count response
7434 * @extnt_size: buffer to hold port extent size response.
7436 * This function calls the port to read the host allocated extents
7437 * for a particular type.
7440 lpfc_sli4_get_allocated_extnts(struct lpfc_hba *phba, uint16_t type,
7441 uint16_t *extnt_cnt, uint16_t *extnt_size)
7443 bool emb;
7444 int rc = 0;
7445 uint16_t curr_blks = 0;
7446 uint32_t req_len, emb_len;
7447 uint32_t alloc_len, mbox_tmo;
7448 struct list_head *blk_list_head;
7449 struct lpfc_rsrc_blks *rsrc_blk;
7450 LPFC_MBOXQ_t *mbox;
7451 void *virtaddr = NULL;
7452 struct lpfc_mbx_nembed_rsrc_extent *n_rsrc;
7453 struct lpfc_mbx_alloc_rsrc_extents *rsrc_ext;
7454 union lpfc_sli4_cfg_shdr *shdr;
7456 switch (type) {
7457 case LPFC_RSC_TYPE_FCOE_VPI:
7458 blk_list_head = &phba->lpfc_vpi_blk_list;
7459 break;
7460 case LPFC_RSC_TYPE_FCOE_XRI:
7461 blk_list_head = &phba->sli4_hba.lpfc_xri_blk_list;
7462 break;
7463 case LPFC_RSC_TYPE_FCOE_VFI:
7464 blk_list_head = &phba->sli4_hba.lpfc_vfi_blk_list;
7465 break;
7466 case LPFC_RSC_TYPE_FCOE_RPI:
7467 blk_list_head = &phba->sli4_hba.lpfc_rpi_blk_list;
7468 break;
7469 default:
7470 return -EIO;
7473 /* Count the number of extents currently allocatd for this type. */
7474 list_for_each_entry(rsrc_blk, blk_list_head, list) {
7475 if (curr_blks == 0) {
7477 * The GET_ALLOCATED mailbox does not return the size,
7478 * just the count. The size should be just the size
7479 * stored in the current allocated block and all sizes
7480 * for an extent type are the same so set the return
7481 * value now.
7483 *extnt_size = rsrc_blk->rsrc_size;
7485 curr_blks++;
7489 * Calculate the size of an embedded mailbox. The uint32_t
7490 * accounts for extents-specific word.
7492 emb_len = sizeof(MAILBOX_t) - sizeof(struct mbox_header) -
7493 sizeof(uint32_t);
7496 * Presume the allocation and response will fit into an embedded
7497 * mailbox. If not true, reconfigure to a non-embedded mailbox.
7499 emb = LPFC_SLI4_MBX_EMBED;
7500 req_len = emb_len;
7501 if (req_len > emb_len) {
7502 req_len = curr_blks * sizeof(uint16_t) +
7503 sizeof(union lpfc_sli4_cfg_shdr) +
7504 sizeof(uint32_t);
7505 emb = LPFC_SLI4_MBX_NEMBED;
7508 mbox = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
7509 if (!mbox)
7510 return -ENOMEM;
7511 memset(mbox, 0, sizeof(LPFC_MBOXQ_t));
7513 alloc_len = lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
7514 LPFC_MBOX_OPCODE_GET_ALLOC_RSRC_EXTENT,
7515 req_len, emb);
7516 if (alloc_len < req_len) {
7517 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7518 "2983 Allocated DMA memory size (x%x) is "
7519 "less than the requested DMA memory "
7520 "size (x%x)\n", alloc_len, req_len);
7521 rc = -ENOMEM;
7522 goto err_exit;
7524 rc = lpfc_sli4_mbox_rsrc_extent(phba, mbox, curr_blks, type, emb);
7525 if (unlikely(rc)) {
7526 rc = -EIO;
7527 goto err_exit;
7530 if (!phba->sli4_hba.intr_enable)
7531 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
7532 else {
7533 mbox_tmo = lpfc_mbox_tmo_val(phba, mbox);
7534 rc = lpfc_sli_issue_mbox_wait(phba, mbox, mbox_tmo);
7537 if (unlikely(rc)) {
7538 rc = -EIO;
7539 goto err_exit;
7543 * Figure out where the response is located. Then get local pointers
7544 * to the response data. The port does not guarantee to respond to
7545 * all extents counts request so update the local variable with the
7546 * allocated count from the port.
7548 if (emb == LPFC_SLI4_MBX_EMBED) {
7549 rsrc_ext = &mbox->u.mqe.un.alloc_rsrc_extents;
7550 shdr = &rsrc_ext->header.cfg_shdr;
7551 *extnt_cnt = bf_get(lpfc_mbx_rsrc_cnt, &rsrc_ext->u.rsp);
7552 } else {
7553 virtaddr = mbox->sge_array->addr[0];
7554 n_rsrc = (struct lpfc_mbx_nembed_rsrc_extent *) virtaddr;
7555 shdr = &n_rsrc->cfg_shdr;
7556 *extnt_cnt = bf_get(lpfc_mbx_rsrc_cnt, n_rsrc);
7559 if (bf_get(lpfc_mbox_hdr_status, &shdr->response)) {
7560 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7561 "2984 Failed to read allocated resources "
7562 "for type %d - Status 0x%x Add'l Status 0x%x.\n",
7563 type,
7564 bf_get(lpfc_mbox_hdr_status, &shdr->response),
7565 bf_get(lpfc_mbox_hdr_add_status, &shdr->response));
7566 rc = -EIO;
7567 goto err_exit;
7569 err_exit:
7570 lpfc_sli4_mbox_cmd_free(phba, mbox);
7571 return rc;
7575 * lpfc_sli4_repost_sgl_list - Repost the buffers sgl pages as block
7576 * @phba: pointer to lpfc hba data structure.
7577 * @sgl_list: linked link of sgl buffers to post
7578 * @cnt: number of linked list buffers
7580 * This routine walks the list of buffers that have been allocated and
7581 * repost them to the port by using SGL block post. This is needed after a
7582 * pci_function_reset/warm_start or start. It attempts to construct blocks
7583 * of buffer sgls which contains contiguous xris and uses the non-embedded
7584 * SGL block post mailbox commands to post them to the port. For single
7585 * buffer sgl with non-contiguous xri, if any, it shall use embedded SGL post
7586 * mailbox command for posting.
7588 * Returns: 0 = success, non-zero failure.
7590 static int
7591 lpfc_sli4_repost_sgl_list(struct lpfc_hba *phba,
7592 struct list_head *sgl_list, int cnt)
7594 struct lpfc_sglq *sglq_entry = NULL;
7595 struct lpfc_sglq *sglq_entry_next = NULL;
7596 struct lpfc_sglq *sglq_entry_first = NULL;
7597 int status = 0, total_cnt;
7598 int post_cnt = 0, num_posted = 0, block_cnt = 0;
7599 int last_xritag = NO_XRI;
7600 LIST_HEAD(prep_sgl_list);
7601 LIST_HEAD(blck_sgl_list);
7602 LIST_HEAD(allc_sgl_list);
7603 LIST_HEAD(post_sgl_list);
7604 LIST_HEAD(free_sgl_list);
7606 spin_lock_irq(&phba->hbalock);
7607 spin_lock(&phba->sli4_hba.sgl_list_lock);
7608 list_splice_init(sgl_list, &allc_sgl_list);
7609 spin_unlock(&phba->sli4_hba.sgl_list_lock);
7610 spin_unlock_irq(&phba->hbalock);
7612 total_cnt = cnt;
7613 list_for_each_entry_safe(sglq_entry, sglq_entry_next,
7614 &allc_sgl_list, list) {
7615 list_del_init(&sglq_entry->list);
7616 block_cnt++;
7617 if ((last_xritag != NO_XRI) &&
7618 (sglq_entry->sli4_xritag != last_xritag + 1)) {
7619 /* a hole in xri block, form a sgl posting block */
7620 list_splice_init(&prep_sgl_list, &blck_sgl_list);
7621 post_cnt = block_cnt - 1;
7622 /* prepare list for next posting block */
7623 list_add_tail(&sglq_entry->list, &prep_sgl_list);
7624 block_cnt = 1;
7625 } else {
7626 /* prepare list for next posting block */
7627 list_add_tail(&sglq_entry->list, &prep_sgl_list);
7628 /* enough sgls for non-embed sgl mbox command */
7629 if (block_cnt == LPFC_NEMBED_MBOX_SGL_CNT) {
7630 list_splice_init(&prep_sgl_list,
7631 &blck_sgl_list);
7632 post_cnt = block_cnt;
7633 block_cnt = 0;
7636 num_posted++;
7638 /* keep track of last sgl's xritag */
7639 last_xritag = sglq_entry->sli4_xritag;
7641 /* end of repost sgl list condition for buffers */
7642 if (num_posted == total_cnt) {
7643 if (post_cnt == 0) {
7644 list_splice_init(&prep_sgl_list,
7645 &blck_sgl_list);
7646 post_cnt = block_cnt;
7647 } else if (block_cnt == 1) {
7648 status = lpfc_sli4_post_sgl(phba,
7649 sglq_entry->phys, 0,
7650 sglq_entry->sli4_xritag);
7651 if (!status) {
7652 /* successful, put sgl to posted list */
7653 list_add_tail(&sglq_entry->list,
7654 &post_sgl_list);
7655 } else {
7656 /* Failure, put sgl to free list */
7657 lpfc_printf_log(phba, KERN_WARNING,
7658 LOG_SLI,
7659 "3159 Failed to post "
7660 "sgl, xritag:x%x\n",
7661 sglq_entry->sli4_xritag);
7662 list_add_tail(&sglq_entry->list,
7663 &free_sgl_list);
7664 total_cnt--;
7669 /* continue until a nembed page worth of sgls */
7670 if (post_cnt == 0)
7671 continue;
7673 /* post the buffer list sgls as a block */
7674 status = lpfc_sli4_post_sgl_list(phba, &blck_sgl_list,
7675 post_cnt);
7677 if (!status) {
7678 /* success, put sgl list to posted sgl list */
7679 list_splice_init(&blck_sgl_list, &post_sgl_list);
7680 } else {
7681 /* Failure, put sgl list to free sgl list */
7682 sglq_entry_first = list_first_entry(&blck_sgl_list,
7683 struct lpfc_sglq,
7684 list);
7685 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
7686 "3160 Failed to post sgl-list, "
7687 "xritag:x%x-x%x\n",
7688 sglq_entry_first->sli4_xritag,
7689 (sglq_entry_first->sli4_xritag +
7690 post_cnt - 1));
7691 list_splice_init(&blck_sgl_list, &free_sgl_list);
7692 total_cnt -= post_cnt;
7695 /* don't reset xirtag due to hole in xri block */
7696 if (block_cnt == 0)
7697 last_xritag = NO_XRI;
7699 /* reset sgl post count for next round of posting */
7700 post_cnt = 0;
7703 /* free the sgls failed to post */
7704 lpfc_free_sgl_list(phba, &free_sgl_list);
7706 /* push sgls posted to the available list */
7707 if (!list_empty(&post_sgl_list)) {
7708 spin_lock_irq(&phba->hbalock);
7709 spin_lock(&phba->sli4_hba.sgl_list_lock);
7710 list_splice_init(&post_sgl_list, sgl_list);
7711 spin_unlock(&phba->sli4_hba.sgl_list_lock);
7712 spin_unlock_irq(&phba->hbalock);
7713 } else {
7714 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7715 "3161 Failure to post sgl to port,status %x "
7716 "blkcnt %d totalcnt %d postcnt %d\n",
7717 status, block_cnt, total_cnt, post_cnt);
7718 return -EIO;
7721 /* return the number of XRIs actually posted */
7722 return total_cnt;
7726 * lpfc_sli4_repost_io_sgl_list - Repost all the allocated nvme buffer sgls
7727 * @phba: pointer to lpfc hba data structure.
7729 * This routine walks the list of nvme buffers that have been allocated and
7730 * repost them to the port by using SGL block post. This is needed after a
7731 * pci_function_reset/warm_start or start. The lpfc_hba_down_post_s4 routine
7732 * is responsible for moving all nvme buffers on the lpfc_abts_nvme_sgl_list
7733 * to the lpfc_io_buf_list. If the repost fails, reject all nvme buffers.
7735 * Returns: 0 = success, non-zero failure.
7737 static int
7738 lpfc_sli4_repost_io_sgl_list(struct lpfc_hba *phba)
7740 LIST_HEAD(post_nblist);
7741 int num_posted, rc = 0;
7743 /* get all NVME buffers need to repost to a local list */
7744 lpfc_io_buf_flush(phba, &post_nblist);
7746 /* post the list of nvme buffer sgls to port if available */
7747 if (!list_empty(&post_nblist)) {
7748 num_posted = lpfc_sli4_post_io_sgl_list(
7749 phba, &post_nblist, phba->sli4_hba.io_xri_cnt);
7750 /* failed to post any nvme buffer, return error */
7751 if (num_posted == 0)
7752 rc = -EIO;
7754 return rc;
7757 static void
7758 lpfc_set_host_data(struct lpfc_hba *phba, LPFC_MBOXQ_t *mbox)
7760 uint32_t len;
7762 len = sizeof(struct lpfc_mbx_set_host_data) -
7763 sizeof(struct lpfc_sli4_cfg_mhdr);
7764 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
7765 LPFC_MBOX_OPCODE_SET_HOST_DATA, len,
7766 LPFC_SLI4_MBX_EMBED);
7768 mbox->u.mqe.un.set_host_data.param_id = LPFC_SET_HOST_OS_DRIVER_VERSION;
7769 mbox->u.mqe.un.set_host_data.param_len =
7770 LPFC_HOST_OS_DRIVER_VERSION_SIZE;
7771 snprintf(mbox->u.mqe.un.set_host_data.un.data,
7772 LPFC_HOST_OS_DRIVER_VERSION_SIZE,
7773 "Linux %s v"LPFC_DRIVER_VERSION,
7774 test_bit(HBA_FCOE_MODE, &phba->hba_flag) ? "FCoE" : "FC");
7778 lpfc_post_rq_buffer(struct lpfc_hba *phba, struct lpfc_queue *hrq,
7779 struct lpfc_queue *drq, int count, int idx)
7781 int rc, i;
7782 struct lpfc_rqe hrqe;
7783 struct lpfc_rqe drqe;
7784 struct lpfc_rqb *rqbp;
7785 unsigned long flags;
7786 struct rqb_dmabuf *rqb_buffer;
7787 LIST_HEAD(rqb_buf_list);
7789 rqbp = hrq->rqbp;
7790 for (i = 0; i < count; i++) {
7791 spin_lock_irqsave(&phba->hbalock, flags);
7792 /* IF RQ is already full, don't bother */
7793 if (rqbp->buffer_count + i >= rqbp->entry_count - 1) {
7794 spin_unlock_irqrestore(&phba->hbalock, flags);
7795 break;
7797 spin_unlock_irqrestore(&phba->hbalock, flags);
7799 rqb_buffer = rqbp->rqb_alloc_buffer(phba);
7800 if (!rqb_buffer)
7801 break;
7802 rqb_buffer->hrq = hrq;
7803 rqb_buffer->drq = drq;
7804 rqb_buffer->idx = idx;
7805 list_add_tail(&rqb_buffer->hbuf.list, &rqb_buf_list);
7808 spin_lock_irqsave(&phba->hbalock, flags);
7809 while (!list_empty(&rqb_buf_list)) {
7810 list_remove_head(&rqb_buf_list, rqb_buffer, struct rqb_dmabuf,
7811 hbuf.list);
7813 hrqe.address_lo = putPaddrLow(rqb_buffer->hbuf.phys);
7814 hrqe.address_hi = putPaddrHigh(rqb_buffer->hbuf.phys);
7815 drqe.address_lo = putPaddrLow(rqb_buffer->dbuf.phys);
7816 drqe.address_hi = putPaddrHigh(rqb_buffer->dbuf.phys);
7817 rc = lpfc_sli4_rq_put(hrq, drq, &hrqe, &drqe);
7818 if (rc < 0) {
7819 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
7820 "6421 Cannot post to HRQ %d: %x %x %x "
7821 "DRQ %x %x\n",
7822 hrq->queue_id,
7823 hrq->host_index,
7824 hrq->hba_index,
7825 hrq->entry_count,
7826 drq->host_index,
7827 drq->hba_index);
7828 rqbp->rqb_free_buffer(phba, rqb_buffer);
7829 } else {
7830 list_add_tail(&rqb_buffer->hbuf.list,
7831 &rqbp->rqb_buffer_list);
7832 rqbp->buffer_count++;
7835 spin_unlock_irqrestore(&phba->hbalock, flags);
7836 return 1;
7839 static void
7840 lpfc_mbx_cmpl_read_lds_params(struct lpfc_hba *phba, LPFC_MBOXQ_t *pmb)
7842 union lpfc_sli4_cfg_shdr *shdr;
7843 u32 shdr_status, shdr_add_status;
7845 shdr = (union lpfc_sli4_cfg_shdr *)
7846 &pmb->u.mqe.un.sli4_config.header.cfg_shdr;
7847 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
7848 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
7849 if (shdr_status || shdr_add_status || pmb->u.mb.mbxStatus) {
7850 lpfc_printf_log(phba, KERN_INFO, LOG_LDS_EVENT | LOG_MBOX,
7851 "4622 SET_FEATURE (x%x) mbox failed, "
7852 "status x%x add_status x%x, mbx status x%x\n",
7853 LPFC_SET_LD_SIGNAL, shdr_status,
7854 shdr_add_status, pmb->u.mb.mbxStatus);
7855 phba->degrade_activate_threshold = 0;
7856 phba->degrade_deactivate_threshold = 0;
7857 phba->fec_degrade_interval = 0;
7858 goto out;
7861 phba->degrade_activate_threshold = pmb->u.mqe.un.set_feature.word7;
7862 phba->degrade_deactivate_threshold = pmb->u.mqe.un.set_feature.word8;
7863 phba->fec_degrade_interval = pmb->u.mqe.un.set_feature.word10;
7865 lpfc_printf_log(phba, KERN_INFO, LOG_LDS_EVENT,
7866 "4624 Success: da x%x dd x%x interval x%x\n",
7867 phba->degrade_activate_threshold,
7868 phba->degrade_deactivate_threshold,
7869 phba->fec_degrade_interval);
7870 out:
7871 mempool_free(pmb, phba->mbox_mem_pool);
7875 lpfc_read_lds_params(struct lpfc_hba *phba)
7877 LPFC_MBOXQ_t *mboxq;
7878 int rc;
7880 mboxq = (LPFC_MBOXQ_t *)mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
7881 if (!mboxq)
7882 return -ENOMEM;
7884 lpfc_set_features(phba, mboxq, LPFC_SET_LD_SIGNAL);
7885 mboxq->vport = phba->pport;
7886 mboxq->mbox_cmpl = lpfc_mbx_cmpl_read_lds_params;
7887 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_NOWAIT);
7888 if (rc == MBX_NOT_FINISHED) {
7889 mempool_free(mboxq, phba->mbox_mem_pool);
7890 return -EIO;
7892 return 0;
7895 static void
7896 lpfc_mbx_cmpl_cgn_set_ftrs(struct lpfc_hba *phba, LPFC_MBOXQ_t *pmb)
7898 struct lpfc_vport *vport = pmb->vport;
7899 union lpfc_sli4_cfg_shdr *shdr;
7900 u32 shdr_status, shdr_add_status;
7901 u32 sig, acqe;
7903 /* Two outcomes. (1) Set featurs was successul and EDC negotiation
7904 * is done. (2) Mailbox failed and send FPIN support only.
7906 shdr = (union lpfc_sli4_cfg_shdr *)
7907 &pmb->u.mqe.un.sli4_config.header.cfg_shdr;
7908 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
7909 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
7910 if (shdr_status || shdr_add_status || pmb->u.mb.mbxStatus) {
7911 lpfc_printf_log(phba, KERN_ERR, LOG_INIT | LOG_CGN_MGMT,
7912 "2516 CGN SET_FEATURE mbox failed with "
7913 "status x%x add_status x%x, mbx status x%x "
7914 "Reset Congestion to FPINs only\n",
7915 shdr_status, shdr_add_status,
7916 pmb->u.mb.mbxStatus);
7917 /* If there is a mbox error, move on to RDF */
7918 phba->cgn_reg_signal = EDC_CG_SIG_NOTSUPPORTED;
7919 phba->cgn_reg_fpin = LPFC_CGN_FPIN_WARN | LPFC_CGN_FPIN_ALARM;
7920 goto out;
7923 /* Zero out Congestion Signal ACQE counter */
7924 phba->cgn_acqe_cnt = 0;
7926 acqe = bf_get(lpfc_mbx_set_feature_CGN_acqe_freq,
7927 &pmb->u.mqe.un.set_feature);
7928 sig = bf_get(lpfc_mbx_set_feature_CGN_warn_freq,
7929 &pmb->u.mqe.un.set_feature);
7930 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
7931 "4620 SET_FEATURES Success: Freq: %ds %dms "
7932 " Reg: x%x x%x\n", acqe, sig,
7933 phba->cgn_reg_signal, phba->cgn_reg_fpin);
7934 out:
7935 mempool_free(pmb, phba->mbox_mem_pool);
7937 /* Register for FPIN events from the fabric now that the
7938 * EDC common_set_features has completed.
7940 lpfc_issue_els_rdf(vport, 0);
7944 lpfc_config_cgn_signal(struct lpfc_hba *phba)
7946 LPFC_MBOXQ_t *mboxq;
7947 u32 rc;
7949 mboxq = (LPFC_MBOXQ_t *)mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
7950 if (!mboxq)
7951 goto out_rdf;
7953 lpfc_set_features(phba, mboxq, LPFC_SET_CGN_SIGNAL);
7954 mboxq->vport = phba->pport;
7955 mboxq->mbox_cmpl = lpfc_mbx_cmpl_cgn_set_ftrs;
7957 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
7958 "4621 SET_FEATURES: FREQ sig x%x acqe x%x: "
7959 "Reg: x%x x%x\n",
7960 phba->cgn_sig_freq, lpfc_acqe_cgn_frequency,
7961 phba->cgn_reg_signal, phba->cgn_reg_fpin);
7963 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_NOWAIT);
7964 if (rc == MBX_NOT_FINISHED)
7965 goto out;
7966 return 0;
7968 out:
7969 mempool_free(mboxq, phba->mbox_mem_pool);
7970 out_rdf:
7971 /* If there is a mbox error, move on to RDF */
7972 phba->cgn_reg_fpin = LPFC_CGN_FPIN_WARN | LPFC_CGN_FPIN_ALARM;
7973 phba->cgn_reg_signal = EDC_CG_SIG_NOTSUPPORTED;
7974 lpfc_issue_els_rdf(phba->pport, 0);
7975 return -EIO;
7979 * lpfc_init_idle_stat_hb - Initialize idle_stat tracking
7980 * @phba: pointer to lpfc hba data structure.
7982 * This routine initializes the per-eq idle_stat to dynamically dictate
7983 * polling decisions.
7985 * Return codes:
7986 * None
7988 static void lpfc_init_idle_stat_hb(struct lpfc_hba *phba)
7990 int i;
7991 struct lpfc_sli4_hdw_queue *hdwq;
7992 struct lpfc_queue *eq;
7993 struct lpfc_idle_stat *idle_stat;
7994 u64 wall;
7996 for_each_present_cpu(i) {
7997 hdwq = &phba->sli4_hba.hdwq[phba->sli4_hba.cpu_map[i].hdwq];
7998 eq = hdwq->hba_eq;
8000 /* Skip if we've already handled this eq's primary CPU */
8001 if (eq->chann != i)
8002 continue;
8004 idle_stat = &phba->sli4_hba.idle_stat[i];
8006 idle_stat->prev_idle = get_cpu_idle_time(i, &wall, 1);
8007 idle_stat->prev_wall = wall;
8009 if (phba->nvmet_support ||
8010 phba->cmf_active_mode != LPFC_CFG_OFF ||
8011 phba->intr_type != MSIX)
8012 eq->poll_mode = LPFC_QUEUE_WORK;
8013 else
8014 eq->poll_mode = LPFC_THREADED_IRQ;
8017 if (!phba->nvmet_support && phba->intr_type == MSIX)
8018 schedule_delayed_work(&phba->idle_stat_delay_work,
8019 msecs_to_jiffies(LPFC_IDLE_STAT_DELAY));
8022 static void lpfc_sli4_dip(struct lpfc_hba *phba)
8024 uint32_t if_type;
8026 if_type = bf_get(lpfc_sli_intf_if_type, &phba->sli4_hba.sli_intf);
8027 if (if_type == LPFC_SLI_INTF_IF_TYPE_2 ||
8028 if_type == LPFC_SLI_INTF_IF_TYPE_6) {
8029 struct lpfc_register reg_data;
8031 if (lpfc_readl(phba->sli4_hba.u.if_type2.STATUSregaddr,
8032 &reg_data.word0))
8033 return;
8035 if (bf_get(lpfc_sliport_status_dip, &reg_data))
8036 lpfc_printf_log(phba, KERN_ERR, LOG_SLI,
8037 "2904 Firmware Dump Image Present"
8038 " on Adapter");
8043 * lpfc_rx_monitor_create_ring - Initialize ring buffer for rx_monitor
8044 * @rx_monitor: Pointer to lpfc_rx_info_monitor object
8045 * @entries: Number of rx_info_entry objects to allocate in ring
8047 * Return:
8048 * 0 - Success
8049 * ENOMEM - Failure to kmalloc
8051 int lpfc_rx_monitor_create_ring(struct lpfc_rx_info_monitor *rx_monitor,
8052 u32 entries)
8054 rx_monitor->ring = kmalloc_array(entries, sizeof(struct rx_info_entry),
8055 GFP_KERNEL);
8056 if (!rx_monitor->ring)
8057 return -ENOMEM;
8059 rx_monitor->head_idx = 0;
8060 rx_monitor->tail_idx = 0;
8061 spin_lock_init(&rx_monitor->lock);
8062 rx_monitor->entries = entries;
8064 return 0;
8068 * lpfc_rx_monitor_destroy_ring - Free ring buffer for rx_monitor
8069 * @rx_monitor: Pointer to lpfc_rx_info_monitor object
8071 * Called after cancellation of cmf_timer.
8073 void lpfc_rx_monitor_destroy_ring(struct lpfc_rx_info_monitor *rx_monitor)
8075 kfree(rx_monitor->ring);
8076 rx_monitor->ring = NULL;
8077 rx_monitor->entries = 0;
8078 rx_monitor->head_idx = 0;
8079 rx_monitor->tail_idx = 0;
8083 * lpfc_rx_monitor_record - Insert an entry into rx_monitor's ring
8084 * @rx_monitor: Pointer to lpfc_rx_info_monitor object
8085 * @entry: Pointer to rx_info_entry
8087 * Used to insert an rx_info_entry into rx_monitor's ring. Note that this is a
8088 * deep copy of rx_info_entry not a shallow copy of the rx_info_entry ptr.
8090 * This is called from lpfc_cmf_timer, which is in timer/softirq context.
8092 * In cases of old data overflow, we do a best effort of FIFO order.
8094 void lpfc_rx_monitor_record(struct lpfc_rx_info_monitor *rx_monitor,
8095 struct rx_info_entry *entry)
8097 struct rx_info_entry *ring = rx_monitor->ring;
8098 u32 *head_idx = &rx_monitor->head_idx;
8099 u32 *tail_idx = &rx_monitor->tail_idx;
8100 spinlock_t *ring_lock = &rx_monitor->lock;
8101 u32 ring_size = rx_monitor->entries;
8103 spin_lock(ring_lock);
8104 memcpy(&ring[*tail_idx], entry, sizeof(*entry));
8105 *tail_idx = (*tail_idx + 1) % ring_size;
8107 /* Best effort of FIFO saved data */
8108 if (*tail_idx == *head_idx)
8109 *head_idx = (*head_idx + 1) % ring_size;
8111 spin_unlock(ring_lock);
8115 * lpfc_rx_monitor_report - Read out rx_monitor's ring
8116 * @phba: Pointer to lpfc_hba object
8117 * @rx_monitor: Pointer to lpfc_rx_info_monitor object
8118 * @buf: Pointer to char buffer that will contain rx monitor info data
8119 * @buf_len: Length buf including null char
8120 * @max_read_entries: Maximum number of entries to read out of ring
8122 * Used to dump/read what's in rx_monitor's ring buffer.
8124 * If buf is NULL || buf_len == 0, then it is implied that we want to log the
8125 * information to kmsg instead of filling out buf.
8127 * Return:
8128 * Number of entries read out of the ring
8130 u32 lpfc_rx_monitor_report(struct lpfc_hba *phba,
8131 struct lpfc_rx_info_monitor *rx_monitor, char *buf,
8132 u32 buf_len, u32 max_read_entries)
8134 struct rx_info_entry *ring = rx_monitor->ring;
8135 struct rx_info_entry *entry;
8136 u32 *head_idx = &rx_monitor->head_idx;
8137 u32 *tail_idx = &rx_monitor->tail_idx;
8138 spinlock_t *ring_lock = &rx_monitor->lock;
8139 u32 ring_size = rx_monitor->entries;
8140 u32 cnt = 0;
8141 char tmp[DBG_LOG_STR_SZ] = {0};
8142 bool log_to_kmsg = (!buf || !buf_len) ? true : false;
8144 if (!log_to_kmsg) {
8145 /* clear the buffer to be sure */
8146 memset(buf, 0, buf_len);
8148 scnprintf(buf, buf_len, "\t%-16s%-16s%-16s%-16s%-8s%-8s%-8s"
8149 "%-8s%-8s%-8s%-16s\n",
8150 "MaxBPI", "Tot_Data_CMF",
8151 "Tot_Data_Cmd", "Tot_Data_Cmpl",
8152 "Lat(us)", "Avg_IO", "Max_IO", "Bsy",
8153 "IO_cnt", "Info", "BWutil(ms)");
8156 /* Needs to be _irq because record is called from timer interrupt
8157 * context
8159 spin_lock_irq(ring_lock);
8160 while (*head_idx != *tail_idx) {
8161 entry = &ring[*head_idx];
8163 /* Read out this entry's data. */
8164 if (!log_to_kmsg) {
8165 /* If !log_to_kmsg, then store to buf. */
8166 scnprintf(tmp, sizeof(tmp),
8167 "%03d:\t%-16llu%-16llu%-16llu%-16llu%-8llu"
8168 "%-8llu%-8llu%-8u%-8u%-8u%u(%u)\n",
8169 *head_idx, entry->max_bytes_per_interval,
8170 entry->cmf_bytes, entry->total_bytes,
8171 entry->rcv_bytes, entry->avg_io_latency,
8172 entry->avg_io_size, entry->max_read_cnt,
8173 entry->cmf_busy, entry->io_cnt,
8174 entry->cmf_info, entry->timer_utilization,
8175 entry->timer_interval);
8177 /* Check for buffer overflow */
8178 if ((strlen(buf) + strlen(tmp)) >= buf_len)
8179 break;
8181 /* Append entry's data to buffer */
8182 strlcat(buf, tmp, buf_len);
8183 } else {
8184 lpfc_printf_log(phba, KERN_INFO, LOG_CGN_MGMT,
8185 "4410 %02u: MBPI %llu Xmit %llu "
8186 "Cmpl %llu Lat %llu ASz %llu Info %02u "
8187 "BWUtil %u Int %u slot %u\n",
8188 cnt, entry->max_bytes_per_interval,
8189 entry->total_bytes, entry->rcv_bytes,
8190 entry->avg_io_latency,
8191 entry->avg_io_size, entry->cmf_info,
8192 entry->timer_utilization,
8193 entry->timer_interval, *head_idx);
8196 *head_idx = (*head_idx + 1) % ring_size;
8198 /* Don't feed more than max_read_entries */
8199 cnt++;
8200 if (cnt >= max_read_entries)
8201 break;
8203 spin_unlock_irq(ring_lock);
8205 return cnt;
8209 * lpfc_cmf_setup - Initialize idle_stat tracking
8210 * @phba: Pointer to HBA context object.
8212 * This is called from HBA setup during driver load or when the HBA
8213 * comes online. this does all the initialization to support CMF and MI.
8215 static int
8216 lpfc_cmf_setup(struct lpfc_hba *phba)
8218 LPFC_MBOXQ_t *mboxq;
8219 struct lpfc_dmabuf *mp;
8220 struct lpfc_pc_sli4_params *sli4_params;
8221 int rc, cmf, mi_ver;
8223 rc = lpfc_sli4_refresh_params(phba);
8224 if (unlikely(rc))
8225 return rc;
8227 mboxq = (LPFC_MBOXQ_t *)mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
8228 if (!mboxq)
8229 return -ENOMEM;
8231 sli4_params = &phba->sli4_hba.pc_sli4_params;
8233 /* Always try to enable MI feature if we can */
8234 if (sli4_params->mi_ver) {
8235 lpfc_set_features(phba, mboxq, LPFC_SET_ENABLE_MI);
8236 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8237 mi_ver = bf_get(lpfc_mbx_set_feature_mi,
8238 &mboxq->u.mqe.un.set_feature);
8240 if (rc == MBX_SUCCESS) {
8241 if (mi_ver) {
8242 lpfc_printf_log(phba,
8243 KERN_WARNING, LOG_CGN_MGMT,
8244 "6215 MI is enabled\n");
8245 sli4_params->mi_ver = mi_ver;
8246 } else {
8247 lpfc_printf_log(phba,
8248 KERN_WARNING, LOG_CGN_MGMT,
8249 "6338 MI is disabled\n");
8250 sli4_params->mi_ver = 0;
8252 } else {
8253 /* mi_ver is already set from GET_SLI4_PARAMETERS */
8254 lpfc_printf_log(phba, KERN_INFO,
8255 LOG_CGN_MGMT | LOG_INIT,
8256 "6245 Enable MI Mailbox x%x (x%x/x%x) "
8257 "failed, rc:x%x mi:x%x\n",
8258 bf_get(lpfc_mqe_command, &mboxq->u.mqe),
8259 lpfc_sli_config_mbox_subsys_get
8260 (phba, mboxq),
8261 lpfc_sli_config_mbox_opcode_get
8262 (phba, mboxq),
8263 rc, sli4_params->mi_ver);
8265 } else {
8266 lpfc_printf_log(phba, KERN_WARNING, LOG_CGN_MGMT,
8267 "6217 MI is disabled\n");
8270 /* Ensure FDMI is enabled for MI if enable_mi is set */
8271 if (sli4_params->mi_ver)
8272 phba->cfg_fdmi_on = LPFC_FDMI_SUPPORT;
8274 /* Always try to enable CMF feature if we can */
8275 if (sli4_params->cmf) {
8276 lpfc_set_features(phba, mboxq, LPFC_SET_ENABLE_CMF);
8277 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8278 cmf = bf_get(lpfc_mbx_set_feature_cmf,
8279 &mboxq->u.mqe.un.set_feature);
8280 if (rc == MBX_SUCCESS && cmf) {
8281 lpfc_printf_log(phba, KERN_WARNING, LOG_CGN_MGMT,
8282 "6218 CMF is enabled: mode %d\n",
8283 phba->cmf_active_mode);
8284 } else {
8285 lpfc_printf_log(phba, KERN_WARNING,
8286 LOG_CGN_MGMT | LOG_INIT,
8287 "6219 Enable CMF Mailbox x%x (x%x/x%x) "
8288 "failed, rc:x%x dd:x%x\n",
8289 bf_get(lpfc_mqe_command, &mboxq->u.mqe),
8290 lpfc_sli_config_mbox_subsys_get
8291 (phba, mboxq),
8292 lpfc_sli_config_mbox_opcode_get
8293 (phba, mboxq),
8294 rc, cmf);
8295 sli4_params->cmf = 0;
8296 phba->cmf_active_mode = LPFC_CFG_OFF;
8297 goto no_cmf;
8300 /* Allocate Congestion Information Buffer */
8301 if (!phba->cgn_i) {
8302 mp = kmalloc(sizeof(*mp), GFP_KERNEL);
8303 if (mp)
8304 mp->virt = dma_alloc_coherent
8305 (&phba->pcidev->dev,
8306 sizeof(struct lpfc_cgn_info),
8307 &mp->phys, GFP_KERNEL);
8308 if (!mp || !mp->virt) {
8309 lpfc_printf_log(phba, KERN_ERR, LOG_INIT,
8310 "2640 Failed to alloc memory "
8311 "for Congestion Info\n");
8312 kfree(mp);
8313 sli4_params->cmf = 0;
8314 phba->cmf_active_mode = LPFC_CFG_OFF;
8315 goto no_cmf;
8317 phba->cgn_i = mp;
8319 /* initialize congestion buffer info */
8320 lpfc_init_congestion_buf(phba);
8321 lpfc_init_congestion_stat(phba);
8323 /* Zero out Congestion Signal counters */
8324 atomic64_set(&phba->cgn_acqe_stat.alarm, 0);
8325 atomic64_set(&phba->cgn_acqe_stat.warn, 0);
8328 rc = lpfc_sli4_cgn_params_read(phba);
8329 if (rc < 0) {
8330 lpfc_printf_log(phba, KERN_ERR, LOG_CGN_MGMT | LOG_INIT,
8331 "6242 Error reading Cgn Params (%d)\n",
8332 rc);
8333 /* Ensure CGN Mode is off */
8334 sli4_params->cmf = 0;
8335 } else if (!rc) {
8336 lpfc_printf_log(phba, KERN_ERR, LOG_CGN_MGMT | LOG_INIT,
8337 "6243 CGN Event empty object.\n");
8338 /* Ensure CGN Mode is off */
8339 sli4_params->cmf = 0;
8341 } else {
8342 no_cmf:
8343 lpfc_printf_log(phba, KERN_WARNING, LOG_CGN_MGMT,
8344 "6220 CMF is disabled\n");
8347 /* Only register congestion buffer with firmware if BOTH
8348 * CMF and E2E are enabled.
8350 if (sli4_params->cmf && sli4_params->mi_ver) {
8351 rc = lpfc_reg_congestion_buf(phba);
8352 if (rc) {
8353 dma_free_coherent(&phba->pcidev->dev,
8354 sizeof(struct lpfc_cgn_info),
8355 phba->cgn_i->virt, phba->cgn_i->phys);
8356 kfree(phba->cgn_i);
8357 phba->cgn_i = NULL;
8358 /* Ensure CGN Mode is off */
8359 phba->cmf_active_mode = LPFC_CFG_OFF;
8360 sli4_params->cmf = 0;
8361 return 0;
8364 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
8365 "6470 Setup MI version %d CMF %d mode %d\n",
8366 sli4_params->mi_ver, sli4_params->cmf,
8367 phba->cmf_active_mode);
8369 mempool_free(mboxq, phba->mbox_mem_pool);
8371 /* Initialize atomic counters */
8372 atomic_set(&phba->cgn_fabric_warn_cnt, 0);
8373 atomic_set(&phba->cgn_fabric_alarm_cnt, 0);
8374 atomic_set(&phba->cgn_sync_alarm_cnt, 0);
8375 atomic_set(&phba->cgn_sync_warn_cnt, 0);
8376 atomic_set(&phba->cgn_driver_evt_cnt, 0);
8377 atomic_set(&phba->cgn_latency_evt_cnt, 0);
8378 atomic64_set(&phba->cgn_latency_evt, 0);
8380 phba->cmf_interval_rate = LPFC_CMF_INTERVAL;
8382 /* Allocate RX Monitor Buffer */
8383 if (!phba->rx_monitor) {
8384 phba->rx_monitor = kzalloc(sizeof(*phba->rx_monitor),
8385 GFP_KERNEL);
8387 if (!phba->rx_monitor) {
8388 lpfc_printf_log(phba, KERN_ERR, LOG_INIT,
8389 "2644 Failed to alloc memory "
8390 "for RX Monitor Buffer\n");
8391 return -ENOMEM;
8394 /* Instruct the rx_monitor object to instantiate its ring */
8395 if (lpfc_rx_monitor_create_ring(phba->rx_monitor,
8396 LPFC_MAX_RXMONITOR_ENTRY)) {
8397 kfree(phba->rx_monitor);
8398 phba->rx_monitor = NULL;
8399 lpfc_printf_log(phba, KERN_ERR, LOG_INIT,
8400 "2645 Failed to alloc memory "
8401 "for RX Monitor's Ring\n");
8402 return -ENOMEM;
8406 return 0;
8409 static int
8410 lpfc_set_host_tm(struct lpfc_hba *phba)
8412 LPFC_MBOXQ_t *mboxq;
8413 uint32_t len, rc;
8414 struct timespec64 cur_time;
8415 struct tm broken;
8416 uint32_t month, day, year;
8417 uint32_t hour, minute, second;
8418 struct lpfc_mbx_set_host_date_time *tm;
8420 mboxq = (LPFC_MBOXQ_t *)mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
8421 if (!mboxq)
8422 return -ENOMEM;
8424 len = sizeof(struct lpfc_mbx_set_host_data) -
8425 sizeof(struct lpfc_sli4_cfg_mhdr);
8426 lpfc_sli4_config(phba, mboxq, LPFC_MBOX_SUBSYSTEM_COMMON,
8427 LPFC_MBOX_OPCODE_SET_HOST_DATA, len,
8428 LPFC_SLI4_MBX_EMBED);
8430 mboxq->u.mqe.un.set_host_data.param_id = LPFC_SET_HOST_DATE_TIME;
8431 mboxq->u.mqe.un.set_host_data.param_len =
8432 sizeof(struct lpfc_mbx_set_host_date_time);
8433 tm = &mboxq->u.mqe.un.set_host_data.un.tm;
8434 ktime_get_real_ts64(&cur_time);
8435 time64_to_tm(cur_time.tv_sec, 0, &broken);
8436 month = broken.tm_mon + 1;
8437 day = broken.tm_mday;
8438 year = broken.tm_year - 100;
8439 hour = broken.tm_hour;
8440 minute = broken.tm_min;
8441 second = broken.tm_sec;
8442 bf_set(lpfc_mbx_set_host_month, tm, month);
8443 bf_set(lpfc_mbx_set_host_day, tm, day);
8444 bf_set(lpfc_mbx_set_host_year, tm, year);
8445 bf_set(lpfc_mbx_set_host_hour, tm, hour);
8446 bf_set(lpfc_mbx_set_host_min, tm, minute);
8447 bf_set(lpfc_mbx_set_host_sec, tm, second);
8449 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8450 mempool_free(mboxq, phba->mbox_mem_pool);
8451 return rc;
8455 * lpfc_sli4_hba_setup - SLI4 device initialization PCI function
8456 * @phba: Pointer to HBA context object.
8458 * This function is the main SLI4 device initialization PCI function. This
8459 * function is called by the HBA initialization code, HBA reset code and
8460 * HBA error attention handler code. Caller is not required to hold any
8461 * locks.
8464 lpfc_sli4_hba_setup(struct lpfc_hba *phba)
8466 int rc, i, cnt, len, dd;
8467 LPFC_MBOXQ_t *mboxq;
8468 struct lpfc_mqe *mqe;
8469 uint8_t *vpd;
8470 uint32_t vpd_size;
8471 uint32_t ftr_rsp = 0;
8472 struct Scsi_Host *shost = lpfc_shost_from_vport(phba->pport);
8473 struct lpfc_vport *vport = phba->pport;
8474 struct lpfc_dmabuf *mp;
8475 struct lpfc_rqb *rqbp;
8476 u32 flg;
8478 /* Perform a PCI function reset to start from clean */
8479 rc = lpfc_pci_function_reset(phba);
8480 if (unlikely(rc))
8481 return -ENODEV;
8483 /* Check the HBA Host Status Register for readyness */
8484 rc = lpfc_sli4_post_status_check(phba);
8485 if (unlikely(rc))
8486 return -ENODEV;
8487 else {
8488 spin_lock_irq(&phba->hbalock);
8489 phba->sli.sli_flag |= LPFC_SLI_ACTIVE;
8490 flg = phba->sli.sli_flag;
8491 spin_unlock_irq(&phba->hbalock);
8492 /* Allow a little time after setting SLI_ACTIVE for any polled
8493 * MBX commands to complete via BSG.
8495 for (i = 0; i < 50 && (flg & LPFC_SLI_MBOX_ACTIVE); i++) {
8496 msleep(20);
8497 spin_lock_irq(&phba->hbalock);
8498 flg = phba->sli.sli_flag;
8499 spin_unlock_irq(&phba->hbalock);
8502 clear_bit(HBA_SETUP, &phba->hba_flag);
8504 lpfc_sli4_dip(phba);
8507 * Allocate a single mailbox container for initializing the
8508 * port.
8510 mboxq = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
8511 if (!mboxq)
8512 return -ENOMEM;
8514 /* Issue READ_REV to collect vpd and FW information. */
8515 vpd_size = SLI4_PAGE_SIZE;
8516 vpd = kzalloc(vpd_size, GFP_KERNEL);
8517 if (!vpd) {
8518 rc = -ENOMEM;
8519 goto out_free_mbox;
8522 rc = lpfc_sli4_read_rev(phba, mboxq, vpd, &vpd_size);
8523 if (unlikely(rc)) {
8524 kfree(vpd);
8525 goto out_free_mbox;
8528 mqe = &mboxq->u.mqe;
8529 phba->sli_rev = bf_get(lpfc_mbx_rd_rev_sli_lvl, &mqe->un.read_rev);
8530 if (bf_get(lpfc_mbx_rd_rev_fcoe, &mqe->un.read_rev)) {
8531 set_bit(HBA_FCOE_MODE, &phba->hba_flag);
8532 phba->fcp_embed_io = 0; /* SLI4 FC support only */
8533 } else {
8534 clear_bit(HBA_FCOE_MODE, &phba->hba_flag);
8537 if (bf_get(lpfc_mbx_rd_rev_cee_ver, &mqe->un.read_rev) ==
8538 LPFC_DCBX_CEE_MODE)
8539 set_bit(HBA_FIP_SUPPORT, &phba->hba_flag);
8540 else
8541 clear_bit(HBA_FIP_SUPPORT, &phba->hba_flag);
8543 clear_bit(HBA_IOQ_FLUSH, &phba->hba_flag);
8545 if (phba->sli_rev != LPFC_SLI_REV4) {
8546 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8547 "0376 READ_REV Error. SLI Level %d "
8548 "FCoE enabled %d\n",
8549 phba->sli_rev,
8550 test_bit(HBA_FCOE_MODE, &phba->hba_flag) ? 1 : 0);
8551 rc = -EIO;
8552 kfree(vpd);
8553 goto out_free_mbox;
8556 rc = lpfc_set_host_tm(phba);
8557 lpfc_printf_log(phba, KERN_ERR, LOG_MBOX | LOG_INIT,
8558 "6468 Set host date / time: Status x%x:\n", rc);
8561 * Continue initialization with default values even if driver failed
8562 * to read FCoE param config regions, only read parameters if the
8563 * board is FCoE
8565 if (test_bit(HBA_FCOE_MODE, &phba->hba_flag) &&
8566 lpfc_sli4_read_fcoe_params(phba))
8567 lpfc_printf_log(phba, KERN_WARNING, LOG_MBOX | LOG_INIT,
8568 "2570 Failed to read FCoE parameters\n");
8571 * Retrieve sli4 device physical port name, failure of doing it
8572 * is considered as non-fatal.
8574 rc = lpfc_sli4_retrieve_pport_name(phba);
8575 if (!rc)
8576 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
8577 "3080 Successful retrieving SLI4 device "
8578 "physical port name: %s.\n", phba->Port);
8580 rc = lpfc_sli4_get_ctl_attr(phba);
8581 if (!rc)
8582 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
8583 "8351 Successful retrieving SLI4 device "
8584 "CTL ATTR\n");
8587 * Evaluate the read rev and vpd data. Populate the driver
8588 * state with the results. If this routine fails, the failure
8589 * is not fatal as the driver will use generic values.
8591 rc = lpfc_parse_vpd(phba, vpd, vpd_size);
8592 if (unlikely(!rc))
8593 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8594 "0377 Error %d parsing vpd. "
8595 "Using defaults.\n", rc);
8596 kfree(vpd);
8598 /* Save information as VPD data */
8599 phba->vpd.rev.biuRev = mqe->un.read_rev.first_hw_rev;
8600 phba->vpd.rev.smRev = mqe->un.read_rev.second_hw_rev;
8603 * This is because first G7 ASIC doesn't support the standard
8604 * 0x5a NVME cmd descriptor type/subtype
8606 if ((bf_get(lpfc_sli_intf_if_type, &phba->sli4_hba.sli_intf) ==
8607 LPFC_SLI_INTF_IF_TYPE_6) &&
8608 (phba->vpd.rev.biuRev == LPFC_G7_ASIC_1) &&
8609 (phba->vpd.rev.smRev == 0) &&
8610 (phba->cfg_nvme_embed_cmd == 1))
8611 phba->cfg_nvme_embed_cmd = 0;
8613 phba->vpd.rev.endecRev = mqe->un.read_rev.third_hw_rev;
8614 phba->vpd.rev.fcphHigh = bf_get(lpfc_mbx_rd_rev_fcph_high,
8615 &mqe->un.read_rev);
8616 phba->vpd.rev.fcphLow = bf_get(lpfc_mbx_rd_rev_fcph_low,
8617 &mqe->un.read_rev);
8618 phba->vpd.rev.feaLevelHigh = bf_get(lpfc_mbx_rd_rev_ftr_lvl_high,
8619 &mqe->un.read_rev);
8620 phba->vpd.rev.feaLevelLow = bf_get(lpfc_mbx_rd_rev_ftr_lvl_low,
8621 &mqe->un.read_rev);
8622 phba->vpd.rev.sli1FwRev = mqe->un.read_rev.fw_id_rev;
8623 memcpy(phba->vpd.rev.sli1FwName, mqe->un.read_rev.fw_name, 16);
8624 phba->vpd.rev.sli2FwRev = mqe->un.read_rev.ulp_fw_id_rev;
8625 memcpy(phba->vpd.rev.sli2FwName, mqe->un.read_rev.ulp_fw_name, 16);
8626 phba->vpd.rev.opFwRev = mqe->un.read_rev.fw_id_rev;
8627 memcpy(phba->vpd.rev.opFwName, mqe->un.read_rev.fw_name, 16);
8628 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
8629 "(%d):0380 READ_REV Status x%x "
8630 "fw_rev:%s fcphHi:%x fcphLo:%x flHi:%x flLo:%x\n",
8631 mboxq->vport ? mboxq->vport->vpi : 0,
8632 bf_get(lpfc_mqe_status, mqe),
8633 phba->vpd.rev.opFwName,
8634 phba->vpd.rev.fcphHigh, phba->vpd.rev.fcphLow,
8635 phba->vpd.rev.feaLevelHigh, phba->vpd.rev.feaLevelLow);
8637 if (bf_get(lpfc_sli_intf_if_type, &phba->sli4_hba.sli_intf) ==
8638 LPFC_SLI_INTF_IF_TYPE_0) {
8639 lpfc_set_features(phba, mboxq, LPFC_SET_UE_RECOVERY);
8640 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8641 if (rc == MBX_SUCCESS) {
8642 set_bit(HBA_RECOVERABLE_UE, &phba->hba_flag);
8643 /* Set 1Sec interval to detect UE */
8644 phba->eratt_poll_interval = 1;
8645 phba->sli4_hba.ue_to_sr = bf_get(
8646 lpfc_mbx_set_feature_UESR,
8647 &mboxq->u.mqe.un.set_feature);
8648 phba->sli4_hba.ue_to_rp = bf_get(
8649 lpfc_mbx_set_feature_UERP,
8650 &mboxq->u.mqe.un.set_feature);
8654 if (phba->cfg_enable_mds_diags && phba->mds_diags_support) {
8655 /* Enable MDS Diagnostics only if the SLI Port supports it */
8656 lpfc_set_features(phba, mboxq, LPFC_SET_MDS_DIAGS);
8657 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8658 if (rc != MBX_SUCCESS)
8659 phba->mds_diags_support = 0;
8663 * Discover the port's supported feature set and match it against the
8664 * hosts requests.
8666 lpfc_request_features(phba, mboxq);
8667 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8668 if (unlikely(rc)) {
8669 rc = -EIO;
8670 goto out_free_mbox;
8673 /* Disable VMID if app header is not supported */
8674 if (phba->cfg_vmid_app_header && !(bf_get(lpfc_mbx_rq_ftr_rsp_ashdr,
8675 &mqe->un.req_ftrs))) {
8676 bf_set(lpfc_ftr_ashdr, &phba->sli4_hba.sli4_flags, 0);
8677 phba->cfg_vmid_app_header = 0;
8678 lpfc_printf_log(phba, KERN_DEBUG, LOG_SLI,
8679 "1242 vmid feature not supported\n");
8683 * The port must support FCP initiator mode as this is the
8684 * only mode running in the host.
8686 if (!(bf_get(lpfc_mbx_rq_ftr_rsp_fcpi, &mqe->un.req_ftrs))) {
8687 lpfc_printf_log(phba, KERN_WARNING, LOG_MBOX | LOG_SLI,
8688 "0378 No support for fcpi mode.\n");
8689 ftr_rsp++;
8692 /* Performance Hints are ONLY for FCoE */
8693 if (test_bit(HBA_FCOE_MODE, &phba->hba_flag)) {
8694 if (bf_get(lpfc_mbx_rq_ftr_rsp_perfh, &mqe->un.req_ftrs))
8695 phba->sli3_options |= LPFC_SLI4_PERFH_ENABLED;
8696 else
8697 phba->sli3_options &= ~LPFC_SLI4_PERFH_ENABLED;
8701 * If the port cannot support the host's requested features
8702 * then turn off the global config parameters to disable the
8703 * feature in the driver. This is not a fatal error.
8705 if (phba->sli3_options & LPFC_SLI3_BG_ENABLED) {
8706 if (!(bf_get(lpfc_mbx_rq_ftr_rsp_dif, &mqe->un.req_ftrs))) {
8707 phba->cfg_enable_bg = 0;
8708 phba->sli3_options &= ~LPFC_SLI3_BG_ENABLED;
8709 ftr_rsp++;
8713 if (phba->max_vpi && phba->cfg_enable_npiv &&
8714 !(bf_get(lpfc_mbx_rq_ftr_rsp_npiv, &mqe->un.req_ftrs)))
8715 ftr_rsp++;
8717 if (ftr_rsp) {
8718 lpfc_printf_log(phba, KERN_WARNING, LOG_MBOX | LOG_SLI,
8719 "0379 Feature Mismatch Data: x%08x %08x "
8720 "x%x x%x x%x\n", mqe->un.req_ftrs.word2,
8721 mqe->un.req_ftrs.word3, phba->cfg_enable_bg,
8722 phba->cfg_enable_npiv, phba->max_vpi);
8723 if (!(bf_get(lpfc_mbx_rq_ftr_rsp_dif, &mqe->un.req_ftrs)))
8724 phba->cfg_enable_bg = 0;
8725 if (!(bf_get(lpfc_mbx_rq_ftr_rsp_npiv, &mqe->un.req_ftrs)))
8726 phba->cfg_enable_npiv = 0;
8729 /* These SLI3 features are assumed in SLI4 */
8730 spin_lock_irq(&phba->hbalock);
8731 phba->sli3_options |= (LPFC_SLI3_NPIV_ENABLED | LPFC_SLI3_HBQ_ENABLED);
8732 spin_unlock_irq(&phba->hbalock);
8734 /* Always try to enable dual dump feature if we can */
8735 lpfc_set_features(phba, mboxq, LPFC_SET_DUAL_DUMP);
8736 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8737 dd = bf_get(lpfc_mbx_set_feature_dd, &mboxq->u.mqe.un.set_feature);
8738 if ((rc == MBX_SUCCESS) && (dd == LPFC_ENABLE_DUAL_DUMP))
8739 lpfc_printf_log(phba, KERN_ERR, LOG_SLI,
8740 "6448 Dual Dump is enabled\n");
8741 else
8742 lpfc_printf_log(phba, KERN_INFO, LOG_SLI | LOG_INIT,
8743 "6447 Dual Dump Mailbox x%x (x%x/x%x) failed, "
8744 "rc:x%x dd:x%x\n",
8745 bf_get(lpfc_mqe_command, &mboxq->u.mqe),
8746 lpfc_sli_config_mbox_subsys_get(
8747 phba, mboxq),
8748 lpfc_sli_config_mbox_opcode_get(
8749 phba, mboxq),
8750 rc, dd);
8752 * Allocate all resources (xri,rpi,vpi,vfi) now. Subsequent
8753 * calls depends on these resources to complete port setup.
8755 rc = lpfc_sli4_alloc_resource_identifiers(phba);
8756 if (rc) {
8757 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8758 "2920 Failed to alloc Resource IDs "
8759 "rc = x%x\n", rc);
8760 goto out_free_mbox;
8763 lpfc_set_host_data(phba, mboxq);
8765 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8766 if (rc) {
8767 lpfc_printf_log(phba, KERN_WARNING, LOG_MBOX | LOG_SLI,
8768 "2134 Failed to set host os driver version %x",
8769 rc);
8772 /* Read the port's service parameters. */
8773 rc = lpfc_read_sparam(phba, mboxq, vport->vpi);
8774 if (rc) {
8775 phba->link_state = LPFC_HBA_ERROR;
8776 rc = -ENOMEM;
8777 goto out_free_mbox;
8780 mboxq->vport = vport;
8781 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8782 mp = mboxq->ctx_buf;
8783 if (rc == MBX_SUCCESS) {
8784 memcpy(&vport->fc_sparam, mp->virt, sizeof(struct serv_parm));
8785 rc = 0;
8789 * This memory was allocated by the lpfc_read_sparam routine but is
8790 * no longer needed. It is released and ctx_buf NULLed to prevent
8791 * unintended pointer access as the mbox is reused.
8793 lpfc_mbuf_free(phba, mp->virt, mp->phys);
8794 kfree(mp);
8795 mboxq->ctx_buf = NULL;
8796 if (unlikely(rc)) {
8797 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8798 "0382 READ_SPARAM command failed "
8799 "status %d, mbxStatus x%x\n",
8800 rc, bf_get(lpfc_mqe_status, mqe));
8801 phba->link_state = LPFC_HBA_ERROR;
8802 rc = -EIO;
8803 goto out_free_mbox;
8806 lpfc_update_vport_wwn(vport);
8808 /* Update the fc_host data structures with new wwn. */
8809 fc_host_node_name(shost) = wwn_to_u64(vport->fc_nodename.u.wwn);
8810 fc_host_port_name(shost) = wwn_to_u64(vport->fc_portname.u.wwn);
8812 /* Create all the SLI4 queues */
8813 rc = lpfc_sli4_queue_create(phba);
8814 if (rc) {
8815 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8816 "3089 Failed to allocate queues\n");
8817 rc = -ENODEV;
8818 goto out_free_mbox;
8820 /* Set up all the queues to the device */
8821 rc = lpfc_sli4_queue_setup(phba);
8822 if (unlikely(rc)) {
8823 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8824 "0381 Error %d during queue setup.\n", rc);
8825 goto out_stop_timers;
8827 /* Initialize the driver internal SLI layer lists. */
8828 lpfc_sli4_setup(phba);
8829 lpfc_sli4_queue_init(phba);
8831 /* update host els xri-sgl sizes and mappings */
8832 rc = lpfc_sli4_els_sgl_update(phba);
8833 if (unlikely(rc)) {
8834 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8835 "1400 Failed to update xri-sgl size and "
8836 "mapping: %d\n", rc);
8837 goto out_destroy_queue;
8840 /* register the els sgl pool to the port */
8841 rc = lpfc_sli4_repost_sgl_list(phba, &phba->sli4_hba.lpfc_els_sgl_list,
8842 phba->sli4_hba.els_xri_cnt);
8843 if (unlikely(rc < 0)) {
8844 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8845 "0582 Error %d during els sgl post "
8846 "operation\n", rc);
8847 rc = -ENODEV;
8848 goto out_destroy_queue;
8850 phba->sli4_hba.els_xri_cnt = rc;
8852 if (phba->nvmet_support) {
8853 /* update host nvmet xri-sgl sizes and mappings */
8854 rc = lpfc_sli4_nvmet_sgl_update(phba);
8855 if (unlikely(rc)) {
8856 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8857 "6308 Failed to update nvmet-sgl size "
8858 "and mapping: %d\n", rc);
8859 goto out_destroy_queue;
8862 /* register the nvmet sgl pool to the port */
8863 rc = lpfc_sli4_repost_sgl_list(
8864 phba,
8865 &phba->sli4_hba.lpfc_nvmet_sgl_list,
8866 phba->sli4_hba.nvmet_xri_cnt);
8867 if (unlikely(rc < 0)) {
8868 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8869 "3117 Error %d during nvmet "
8870 "sgl post\n", rc);
8871 rc = -ENODEV;
8872 goto out_destroy_queue;
8874 phba->sli4_hba.nvmet_xri_cnt = rc;
8876 /* We allocate an iocbq for every receive context SGL.
8877 * The additional allocation is for abort and ls handling.
8879 cnt = phba->sli4_hba.nvmet_xri_cnt +
8880 phba->sli4_hba.max_cfg_param.max_xri;
8881 } else {
8882 /* update host common xri-sgl sizes and mappings */
8883 rc = lpfc_sli4_io_sgl_update(phba);
8884 if (unlikely(rc)) {
8885 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8886 "6082 Failed to update nvme-sgl size "
8887 "and mapping: %d\n", rc);
8888 goto out_destroy_queue;
8891 /* register the allocated common sgl pool to the port */
8892 rc = lpfc_sli4_repost_io_sgl_list(phba);
8893 if (unlikely(rc)) {
8894 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8895 "6116 Error %d during nvme sgl post "
8896 "operation\n", rc);
8897 /* Some NVME buffers were moved to abort nvme list */
8898 /* A pci function reset will repost them */
8899 rc = -ENODEV;
8900 goto out_destroy_queue;
8902 /* Each lpfc_io_buf job structure has an iocbq element.
8903 * This cnt provides for abort, els, ct and ls requests.
8905 cnt = phba->sli4_hba.max_cfg_param.max_xri;
8908 if (!phba->sli.iocbq_lookup) {
8909 /* Initialize and populate the iocb list per host */
8910 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
8911 "2821 initialize iocb list with %d entries\n",
8912 cnt);
8913 rc = lpfc_init_iocb_list(phba, cnt);
8914 if (rc) {
8915 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8916 "1413 Failed to init iocb list.\n");
8917 goto out_destroy_queue;
8921 if (phba->nvmet_support)
8922 lpfc_nvmet_create_targetport(phba);
8924 if (phba->nvmet_support && phba->cfg_nvmet_mrq) {
8925 /* Post initial buffers to all RQs created */
8926 for (i = 0; i < phba->cfg_nvmet_mrq; i++) {
8927 rqbp = phba->sli4_hba.nvmet_mrq_hdr[i]->rqbp;
8928 INIT_LIST_HEAD(&rqbp->rqb_buffer_list);
8929 rqbp->rqb_alloc_buffer = lpfc_sli4_nvmet_alloc;
8930 rqbp->rqb_free_buffer = lpfc_sli4_nvmet_free;
8931 rqbp->entry_count = LPFC_NVMET_RQE_DEF_COUNT;
8932 rqbp->buffer_count = 0;
8934 lpfc_post_rq_buffer(
8935 phba, phba->sli4_hba.nvmet_mrq_hdr[i],
8936 phba->sli4_hba.nvmet_mrq_data[i],
8937 phba->cfg_nvmet_mrq_post, i);
8941 /* Post the rpi header region to the device. */
8942 rc = lpfc_sli4_post_all_rpi_hdrs(phba);
8943 if (unlikely(rc)) {
8944 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
8945 "0393 Error %d during rpi post operation\n",
8946 rc);
8947 rc = -ENODEV;
8948 goto out_free_iocblist;
8950 lpfc_sli4_node_prep(phba);
8952 if (!test_bit(HBA_FCOE_MODE, &phba->hba_flag)) {
8953 if ((phba->nvmet_support == 0) || (phba->cfg_nvmet_mrq == 1)) {
8955 * The FC Port needs to register FCFI (index 0)
8957 lpfc_reg_fcfi(phba, mboxq);
8958 mboxq->vport = phba->pport;
8959 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8960 if (rc != MBX_SUCCESS)
8961 goto out_unset_queue;
8962 rc = 0;
8963 phba->fcf.fcfi = bf_get(lpfc_reg_fcfi_fcfi,
8964 &mboxq->u.mqe.un.reg_fcfi);
8965 } else {
8966 /* We are a NVME Target mode with MRQ > 1 */
8968 /* First register the FCFI */
8969 lpfc_reg_fcfi_mrq(phba, mboxq, 0);
8970 mboxq->vport = phba->pport;
8971 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8972 if (rc != MBX_SUCCESS)
8973 goto out_unset_queue;
8974 rc = 0;
8975 phba->fcf.fcfi = bf_get(lpfc_reg_fcfi_mrq_fcfi,
8976 &mboxq->u.mqe.un.reg_fcfi_mrq);
8978 /* Next register the MRQs */
8979 lpfc_reg_fcfi_mrq(phba, mboxq, 1);
8980 mboxq->vport = phba->pport;
8981 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
8982 if (rc != MBX_SUCCESS)
8983 goto out_unset_queue;
8984 rc = 0;
8986 /* Check if the port is configured to be disabled */
8987 lpfc_sli_read_link_ste(phba);
8990 /* Don't post more new bufs if repost already recovered
8991 * the nvme sgls.
8993 if (phba->nvmet_support == 0) {
8994 if (phba->sli4_hba.io_xri_cnt == 0) {
8995 len = lpfc_new_io_buf(
8996 phba, phba->sli4_hba.io_xri_max);
8997 if (len == 0) {
8998 rc = -ENOMEM;
8999 goto out_unset_queue;
9002 if (phba->cfg_xri_rebalancing)
9003 lpfc_create_multixri_pools(phba);
9005 } else {
9006 phba->cfg_xri_rebalancing = 0;
9009 /* Allow asynchronous mailbox command to go through */
9010 spin_lock_irq(&phba->hbalock);
9011 phba->sli.sli_flag &= ~LPFC_SLI_ASYNC_MBX_BLK;
9012 spin_unlock_irq(&phba->hbalock);
9014 /* Post receive buffers to the device */
9015 lpfc_sli4_rb_setup(phba);
9017 /* Reset HBA FCF states after HBA reset */
9018 phba->fcf.fcf_flag = 0;
9019 phba->fcf.current_rec.flag = 0;
9021 /* Start the ELS watchdog timer */
9022 mod_timer(&vport->els_tmofunc,
9023 jiffies + msecs_to_jiffies(1000 * (phba->fc_ratov * 2)));
9025 /* Start heart beat timer */
9026 mod_timer(&phba->hb_tmofunc,
9027 jiffies + msecs_to_jiffies(1000 * LPFC_HB_MBOX_INTERVAL));
9028 clear_bit(HBA_HBEAT_INP, &phba->hba_flag);
9029 clear_bit(HBA_HBEAT_TMO, &phba->hba_flag);
9030 phba->last_completion_time = jiffies;
9032 /* start eq_delay heartbeat */
9033 if (phba->cfg_auto_imax)
9034 queue_delayed_work(phba->wq, &phba->eq_delay_work,
9035 msecs_to_jiffies(LPFC_EQ_DELAY_MSECS));
9037 /* start per phba idle_stat_delay heartbeat */
9038 lpfc_init_idle_stat_hb(phba);
9040 /* Start error attention (ERATT) polling timer */
9041 mod_timer(&phba->eratt_poll,
9042 jiffies + msecs_to_jiffies(1000 * phba->eratt_poll_interval));
9045 * The port is ready, set the host's link state to LINK_DOWN
9046 * in preparation for link interrupts.
9048 spin_lock_irq(&phba->hbalock);
9049 phba->link_state = LPFC_LINK_DOWN;
9051 /* Check if physical ports are trunked */
9052 if (bf_get(lpfc_conf_trunk_port0, &phba->sli4_hba))
9053 phba->trunk_link.link0.state = LPFC_LINK_DOWN;
9054 if (bf_get(lpfc_conf_trunk_port1, &phba->sli4_hba))
9055 phba->trunk_link.link1.state = LPFC_LINK_DOWN;
9056 if (bf_get(lpfc_conf_trunk_port2, &phba->sli4_hba))
9057 phba->trunk_link.link2.state = LPFC_LINK_DOWN;
9058 if (bf_get(lpfc_conf_trunk_port3, &phba->sli4_hba))
9059 phba->trunk_link.link3.state = LPFC_LINK_DOWN;
9060 spin_unlock_irq(&phba->hbalock);
9062 /* Arm the CQs and then EQs on device */
9063 lpfc_sli4_arm_cqeq_intr(phba);
9065 /* Indicate device interrupt mode */
9066 phba->sli4_hba.intr_enable = 1;
9068 /* Setup CMF after HBA is initialized */
9069 lpfc_cmf_setup(phba);
9071 if (!test_bit(HBA_FCOE_MODE, &phba->hba_flag) &&
9072 test_bit(LINK_DISABLED, &phba->hba_flag)) {
9073 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9074 "3103 Adapter Link is disabled.\n");
9075 lpfc_down_link(phba, mboxq);
9076 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
9077 if (rc != MBX_SUCCESS) {
9078 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9079 "3104 Adapter failed to issue "
9080 "DOWN_LINK mbox cmd, rc:x%x\n", rc);
9081 goto out_io_buff_free;
9083 } else if (phba->cfg_suppress_link_up == LPFC_INITIALIZE_LINK) {
9084 /* don't perform init_link on SLI4 FC port loopback test */
9085 if (!(phba->link_flag & LS_LOOPBACK_MODE)) {
9086 rc = phba->lpfc_hba_init_link(phba, MBX_NOWAIT);
9087 if (rc)
9088 goto out_io_buff_free;
9091 mempool_free(mboxq, phba->mbox_mem_pool);
9093 /* Enable RAS FW log support */
9094 lpfc_sli4_ras_setup(phba);
9096 set_bit(HBA_SETUP, &phba->hba_flag);
9097 return rc;
9099 out_io_buff_free:
9100 /* Free allocated IO Buffers */
9101 lpfc_io_free(phba);
9102 out_unset_queue:
9103 /* Unset all the queues set up in this routine when error out */
9104 lpfc_sli4_queue_unset(phba);
9105 out_free_iocblist:
9106 lpfc_free_iocb_list(phba);
9107 out_destroy_queue:
9108 lpfc_sli4_queue_destroy(phba);
9109 out_stop_timers:
9110 lpfc_stop_hba_timers(phba);
9111 out_free_mbox:
9112 mempool_free(mboxq, phba->mbox_mem_pool);
9113 return rc;
9117 * lpfc_mbox_timeout - Timeout call back function for mbox timer
9118 * @t: Context to fetch pointer to hba structure from.
9120 * This is the callback function for mailbox timer. The mailbox
9121 * timer is armed when a new mailbox command is issued and the timer
9122 * is deleted when the mailbox complete. The function is called by
9123 * the kernel timer code when a mailbox does not complete within
9124 * expected time. This function wakes up the worker thread to
9125 * process the mailbox timeout and returns. All the processing is
9126 * done by the worker thread function lpfc_mbox_timeout_handler.
9128 void
9129 lpfc_mbox_timeout(struct timer_list *t)
9131 struct lpfc_hba *phba = from_timer(phba, t, sli.mbox_tmo);
9132 unsigned long iflag;
9133 uint32_t tmo_posted;
9135 spin_lock_irqsave(&phba->pport->work_port_lock, iflag);
9136 tmo_posted = phba->pport->work_port_events & WORKER_MBOX_TMO;
9137 if (!tmo_posted)
9138 phba->pport->work_port_events |= WORKER_MBOX_TMO;
9139 spin_unlock_irqrestore(&phba->pport->work_port_lock, iflag);
9141 if (!tmo_posted)
9142 lpfc_worker_wake_up(phba);
9143 return;
9147 * lpfc_sli4_mbox_completions_pending - check to see if any mailbox completions
9148 * are pending
9149 * @phba: Pointer to HBA context object.
9151 * This function checks if any mailbox completions are present on the mailbox
9152 * completion queue.
9154 static bool
9155 lpfc_sli4_mbox_completions_pending(struct lpfc_hba *phba)
9158 uint32_t idx;
9159 struct lpfc_queue *mcq;
9160 struct lpfc_mcqe *mcqe;
9161 bool pending_completions = false;
9162 uint8_t qe_valid;
9164 if (unlikely(!phba) || (phba->sli_rev != LPFC_SLI_REV4))
9165 return false;
9167 /* Check for completions on mailbox completion queue */
9169 mcq = phba->sli4_hba.mbx_cq;
9170 idx = mcq->hba_index;
9171 qe_valid = mcq->qe_valid;
9172 while (bf_get_le32(lpfc_cqe_valid,
9173 (struct lpfc_cqe *)lpfc_sli4_qe(mcq, idx)) == qe_valid) {
9174 mcqe = (struct lpfc_mcqe *)(lpfc_sli4_qe(mcq, idx));
9175 if (bf_get_le32(lpfc_trailer_completed, mcqe) &&
9176 (!bf_get_le32(lpfc_trailer_async, mcqe))) {
9177 pending_completions = true;
9178 break;
9180 idx = (idx + 1) % mcq->entry_count;
9181 if (mcq->hba_index == idx)
9182 break;
9184 /* if the index wrapped around, toggle the valid bit */
9185 if (phba->sli4_hba.pc_sli4_params.cqav && !idx)
9186 qe_valid = (qe_valid) ? 0 : 1;
9188 return pending_completions;
9193 * lpfc_sli4_process_missed_mbox_completions - process mbox completions
9194 * that were missed.
9195 * @phba: Pointer to HBA context object.
9197 * For sli4, it is possible to miss an interrupt. As such mbox completions
9198 * maybe missed causing erroneous mailbox timeouts to occur. This function
9199 * checks to see if mbox completions are on the mailbox completion queue
9200 * and will process all the completions associated with the eq for the
9201 * mailbox completion queue.
9203 static bool
9204 lpfc_sli4_process_missed_mbox_completions(struct lpfc_hba *phba)
9206 struct lpfc_sli4_hba *sli4_hba = &phba->sli4_hba;
9207 uint32_t eqidx;
9208 struct lpfc_queue *fpeq = NULL;
9209 struct lpfc_queue *eq;
9210 bool mbox_pending;
9212 if (unlikely(!phba) || (phba->sli_rev != LPFC_SLI_REV4))
9213 return false;
9215 /* Find the EQ associated with the mbox CQ */
9216 if (sli4_hba->hdwq) {
9217 for (eqidx = 0; eqidx < phba->cfg_irq_chann; eqidx++) {
9218 eq = phba->sli4_hba.hba_eq_hdl[eqidx].eq;
9219 if (eq && eq->queue_id == sli4_hba->mbx_cq->assoc_qid) {
9220 fpeq = eq;
9221 break;
9225 if (!fpeq)
9226 return false;
9228 /* Turn off interrupts from this EQ */
9230 sli4_hba->sli4_eq_clr_intr(fpeq);
9232 /* Check to see if a mbox completion is pending */
9234 mbox_pending = lpfc_sli4_mbox_completions_pending(phba);
9237 * If a mbox completion is pending, process all the events on EQ
9238 * associated with the mbox completion queue (this could include
9239 * mailbox commands, async events, els commands, receive queue data
9240 * and fcp commands)
9243 if (mbox_pending)
9244 /* process and rearm the EQ */
9245 lpfc_sli4_process_eq(phba, fpeq, LPFC_QUEUE_REARM,
9246 LPFC_QUEUE_WORK);
9247 else
9248 /* Always clear and re-arm the EQ */
9249 sli4_hba->sli4_write_eq_db(phba, fpeq, 0, LPFC_QUEUE_REARM);
9251 return mbox_pending;
9256 * lpfc_mbox_timeout_handler - Worker thread function to handle mailbox timeout
9257 * @phba: Pointer to HBA context object.
9259 * This function is called from worker thread when a mailbox command times out.
9260 * The caller is not required to hold any locks. This function will reset the
9261 * HBA and recover all the pending commands.
9263 void
9264 lpfc_mbox_timeout_handler(struct lpfc_hba *phba)
9266 LPFC_MBOXQ_t *pmbox = phba->sli.mbox_active;
9267 MAILBOX_t *mb = NULL;
9269 struct lpfc_sli *psli = &phba->sli;
9271 /* If the mailbox completed, process the completion */
9272 lpfc_sli4_process_missed_mbox_completions(phba);
9274 if (!(psli->sli_flag & LPFC_SLI_ACTIVE))
9275 return;
9277 if (pmbox != NULL)
9278 mb = &pmbox->u.mb;
9279 /* Check the pmbox pointer first. There is a race condition
9280 * between the mbox timeout handler getting executed in the
9281 * worklist and the mailbox actually completing. When this
9282 * race condition occurs, the mbox_active will be NULL.
9284 spin_lock_irq(&phba->hbalock);
9285 if (pmbox == NULL) {
9286 lpfc_printf_log(phba, KERN_WARNING,
9287 LOG_MBOX | LOG_SLI,
9288 "0353 Active Mailbox cleared - mailbox timeout "
9289 "exiting\n");
9290 spin_unlock_irq(&phba->hbalock);
9291 return;
9294 /* Mbox cmd <mbxCommand> timeout */
9295 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9296 "0310 Mailbox command x%x timeout Data: x%x x%x x%px\n",
9297 mb->mbxCommand,
9298 phba->pport->port_state,
9299 phba->sli.sli_flag,
9300 phba->sli.mbox_active);
9301 spin_unlock_irq(&phba->hbalock);
9303 /* Setting state unknown so lpfc_sli_abort_iocb_ring
9304 * would get IOCB_ERROR from lpfc_sli_issue_iocb, allowing
9305 * it to fail all outstanding SCSI IO.
9307 set_bit(MBX_TMO_ERR, &phba->bit_flags);
9308 spin_lock_irq(&phba->pport->work_port_lock);
9309 phba->pport->work_port_events &= ~WORKER_MBOX_TMO;
9310 spin_unlock_irq(&phba->pport->work_port_lock);
9311 spin_lock_irq(&phba->hbalock);
9312 phba->link_state = LPFC_LINK_UNKNOWN;
9313 psli->sli_flag &= ~LPFC_SLI_ACTIVE;
9314 spin_unlock_irq(&phba->hbalock);
9316 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9317 "0345 Resetting board due to mailbox timeout\n");
9319 /* Reset the HBA device */
9320 lpfc_reset_hba(phba);
9324 * lpfc_sli_issue_mbox_s3 - Issue an SLI3 mailbox command to firmware
9325 * @phba: Pointer to HBA context object.
9326 * @pmbox: Pointer to mailbox object.
9327 * @flag: Flag indicating how the mailbox need to be processed.
9329 * This function is called by discovery code and HBA management code
9330 * to submit a mailbox command to firmware with SLI-3 interface spec. This
9331 * function gets the hbalock to protect the data structures.
9332 * The mailbox command can be submitted in polling mode, in which case
9333 * this function will wait in a polling loop for the completion of the
9334 * mailbox.
9335 * If the mailbox is submitted in no_wait mode (not polling) the
9336 * function will submit the command and returns immediately without waiting
9337 * for the mailbox completion. The no_wait is supported only when HBA
9338 * is in SLI2/SLI3 mode - interrupts are enabled.
9339 * The SLI interface allows only one mailbox pending at a time. If the
9340 * mailbox is issued in polling mode and there is already a mailbox
9341 * pending, then the function will return an error. If the mailbox is issued
9342 * in NO_WAIT mode and there is a mailbox pending already, the function
9343 * will return MBX_BUSY after queuing the mailbox into mailbox queue.
9344 * The sli layer owns the mailbox object until the completion of mailbox
9345 * command if this function return MBX_BUSY or MBX_SUCCESS. For all other
9346 * return codes the caller owns the mailbox command after the return of
9347 * the function.
9349 static int
9350 lpfc_sli_issue_mbox_s3(struct lpfc_hba *phba, LPFC_MBOXQ_t *pmbox,
9351 uint32_t flag)
9353 MAILBOX_t *mbx;
9354 struct lpfc_sli *psli = &phba->sli;
9355 uint32_t status, evtctr;
9356 uint32_t ha_copy, hc_copy;
9357 int i;
9358 unsigned long timeout;
9359 unsigned long drvr_flag = 0;
9360 uint32_t word0, ldata;
9361 void __iomem *to_slim;
9362 int processing_queue = 0;
9364 spin_lock_irqsave(&phba->hbalock, drvr_flag);
9365 if (!pmbox) {
9366 phba->sli.sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
9367 /* processing mbox queue from intr_handler */
9368 if (unlikely(psli->sli_flag & LPFC_SLI_ASYNC_MBX_BLK)) {
9369 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9370 return MBX_SUCCESS;
9372 processing_queue = 1;
9373 pmbox = lpfc_mbox_get(phba);
9374 if (!pmbox) {
9375 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9376 return MBX_SUCCESS;
9380 if (pmbox->mbox_cmpl && pmbox->mbox_cmpl != lpfc_sli_def_mbox_cmpl &&
9381 pmbox->mbox_cmpl != lpfc_sli_wake_mbox_wait) {
9382 if(!pmbox->vport) {
9383 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9384 lpfc_printf_log(phba, KERN_ERR,
9385 LOG_MBOX | LOG_VPORT,
9386 "1806 Mbox x%x failed. No vport\n",
9387 pmbox->u.mb.mbxCommand);
9388 dump_stack();
9389 goto out_not_finished;
9393 /* If the PCI channel is in offline state, do not post mbox. */
9394 if (unlikely(pci_channel_offline(phba->pcidev))) {
9395 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9396 goto out_not_finished;
9399 /* If HBA has a deferred error attention, fail the iocb. */
9400 if (unlikely(test_bit(DEFER_ERATT, &phba->hba_flag))) {
9401 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9402 goto out_not_finished;
9405 psli = &phba->sli;
9407 mbx = &pmbox->u.mb;
9408 status = MBX_SUCCESS;
9410 if (phba->link_state == LPFC_HBA_ERROR) {
9411 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9413 /* Mbox command <mbxCommand> cannot issue */
9414 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9415 "(%d):0311 Mailbox command x%x cannot "
9416 "issue Data: x%x x%x\n",
9417 pmbox->vport ? pmbox->vport->vpi : 0,
9418 pmbox->u.mb.mbxCommand, psli->sli_flag, flag);
9419 goto out_not_finished;
9422 if (mbx->mbxCommand != MBX_KILL_BOARD && flag & MBX_NOWAIT) {
9423 if (lpfc_readl(phba->HCregaddr, &hc_copy) ||
9424 !(hc_copy & HC_MBINT_ENA)) {
9425 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9426 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9427 "(%d):2528 Mailbox command x%x cannot "
9428 "issue Data: x%x x%x\n",
9429 pmbox->vport ? pmbox->vport->vpi : 0,
9430 pmbox->u.mb.mbxCommand, psli->sli_flag, flag);
9431 goto out_not_finished;
9435 if (psli->sli_flag & LPFC_SLI_MBOX_ACTIVE) {
9436 /* Polling for a mbox command when another one is already active
9437 * is not allowed in SLI. Also, the driver must have established
9438 * SLI2 mode to queue and process multiple mbox commands.
9441 if (flag & MBX_POLL) {
9442 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9444 /* Mbox command <mbxCommand> cannot issue */
9445 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9446 "(%d):2529 Mailbox command x%x "
9447 "cannot issue Data: x%x x%x\n",
9448 pmbox->vport ? pmbox->vport->vpi : 0,
9449 pmbox->u.mb.mbxCommand,
9450 psli->sli_flag, flag);
9451 goto out_not_finished;
9454 if (!(psli->sli_flag & LPFC_SLI_ACTIVE)) {
9455 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9456 /* Mbox command <mbxCommand> cannot issue */
9457 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9458 "(%d):2530 Mailbox command x%x "
9459 "cannot issue Data: x%x x%x\n",
9460 pmbox->vport ? pmbox->vport->vpi : 0,
9461 pmbox->u.mb.mbxCommand,
9462 psli->sli_flag, flag);
9463 goto out_not_finished;
9466 /* Another mailbox command is still being processed, queue this
9467 * command to be processed later.
9469 lpfc_mbox_put(phba, pmbox);
9471 /* Mbox cmd issue - BUSY */
9472 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
9473 "(%d):0308 Mbox cmd issue - BUSY Data: "
9474 "x%x x%x x%x x%x\n",
9475 pmbox->vport ? pmbox->vport->vpi : 0xffffff,
9476 mbx->mbxCommand,
9477 phba->pport ? phba->pport->port_state : 0xff,
9478 psli->sli_flag, flag);
9480 psli->slistat.mbox_busy++;
9481 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9483 if (pmbox->vport) {
9484 lpfc_debugfs_disc_trc(pmbox->vport,
9485 LPFC_DISC_TRC_MBOX_VPORT,
9486 "MBOX Bsy vport: cmd:x%x mb:x%x x%x",
9487 (uint32_t)mbx->mbxCommand,
9488 mbx->un.varWords[0], mbx->un.varWords[1]);
9490 else {
9491 lpfc_debugfs_disc_trc(phba->pport,
9492 LPFC_DISC_TRC_MBOX,
9493 "MBOX Bsy: cmd:x%x mb:x%x x%x",
9494 (uint32_t)mbx->mbxCommand,
9495 mbx->un.varWords[0], mbx->un.varWords[1]);
9498 return MBX_BUSY;
9501 psli->sli_flag |= LPFC_SLI_MBOX_ACTIVE;
9503 /* If we are not polling, we MUST be in SLI2 mode */
9504 if (flag != MBX_POLL) {
9505 if (!(psli->sli_flag & LPFC_SLI_ACTIVE) &&
9506 (mbx->mbxCommand != MBX_KILL_BOARD)) {
9507 psli->sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
9508 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9509 /* Mbox command <mbxCommand> cannot issue */
9510 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9511 "(%d):2531 Mailbox command x%x "
9512 "cannot issue Data: x%x x%x\n",
9513 pmbox->vport ? pmbox->vport->vpi : 0,
9514 pmbox->u.mb.mbxCommand,
9515 psli->sli_flag, flag);
9516 goto out_not_finished;
9518 /* timeout active mbox command */
9519 timeout = msecs_to_jiffies(lpfc_mbox_tmo_val(phba, pmbox) *
9520 1000);
9521 mod_timer(&psli->mbox_tmo, jiffies + timeout);
9524 /* Mailbox cmd <cmd> issue */
9525 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
9526 "(%d):0309 Mailbox cmd x%x issue Data: x%x x%x "
9527 "x%x\n",
9528 pmbox->vport ? pmbox->vport->vpi : 0,
9529 mbx->mbxCommand,
9530 phba->pport ? phba->pport->port_state : 0xff,
9531 psli->sli_flag, flag);
9533 if (mbx->mbxCommand != MBX_HEARTBEAT) {
9534 if (pmbox->vport) {
9535 lpfc_debugfs_disc_trc(pmbox->vport,
9536 LPFC_DISC_TRC_MBOX_VPORT,
9537 "MBOX Send vport: cmd:x%x mb:x%x x%x",
9538 (uint32_t)mbx->mbxCommand,
9539 mbx->un.varWords[0], mbx->un.varWords[1]);
9541 else {
9542 lpfc_debugfs_disc_trc(phba->pport,
9543 LPFC_DISC_TRC_MBOX,
9544 "MBOX Send: cmd:x%x mb:x%x x%x",
9545 (uint32_t)mbx->mbxCommand,
9546 mbx->un.varWords[0], mbx->un.varWords[1]);
9550 psli->slistat.mbox_cmd++;
9551 evtctr = psli->slistat.mbox_event;
9553 /* next set own bit for the adapter and copy over command word */
9554 mbx->mbxOwner = OWN_CHIP;
9556 if (psli->sli_flag & LPFC_SLI_ACTIVE) {
9557 /* Populate mbox extension offset word. */
9558 if (pmbox->in_ext_byte_len || pmbox->out_ext_byte_len) {
9559 *(((uint32_t *)mbx) + pmbox->mbox_offset_word)
9560 = (uint8_t *)phba->mbox_ext
9561 - (uint8_t *)phba->mbox;
9564 /* Copy the mailbox extension data */
9565 if (pmbox->in_ext_byte_len && pmbox->ext_buf) {
9566 lpfc_sli_pcimem_bcopy(pmbox->ext_buf,
9567 (uint8_t *)phba->mbox_ext,
9568 pmbox->in_ext_byte_len);
9570 /* Copy command data to host SLIM area */
9571 lpfc_sli_pcimem_bcopy(mbx, phba->mbox, MAILBOX_CMD_SIZE);
9572 } else {
9573 /* Populate mbox extension offset word. */
9574 if (pmbox->in_ext_byte_len || pmbox->out_ext_byte_len)
9575 *(((uint32_t *)mbx) + pmbox->mbox_offset_word)
9576 = MAILBOX_HBA_EXT_OFFSET;
9578 /* Copy the mailbox extension data */
9579 if (pmbox->in_ext_byte_len && pmbox->ext_buf)
9580 lpfc_memcpy_to_slim(phba->MBslimaddr +
9581 MAILBOX_HBA_EXT_OFFSET,
9582 pmbox->ext_buf, pmbox->in_ext_byte_len);
9584 if (mbx->mbxCommand == MBX_CONFIG_PORT)
9585 /* copy command data into host mbox for cmpl */
9586 lpfc_sli_pcimem_bcopy(mbx, phba->mbox,
9587 MAILBOX_CMD_SIZE);
9589 /* First copy mbox command data to HBA SLIM, skip past first
9590 word */
9591 to_slim = phba->MBslimaddr + sizeof (uint32_t);
9592 lpfc_memcpy_to_slim(to_slim, &mbx->un.varWords[0],
9593 MAILBOX_CMD_SIZE - sizeof (uint32_t));
9595 /* Next copy over first word, with mbxOwner set */
9596 ldata = *((uint32_t *)mbx);
9597 to_slim = phba->MBslimaddr;
9598 writel(ldata, to_slim);
9599 readl(to_slim); /* flush */
9601 if (mbx->mbxCommand == MBX_CONFIG_PORT)
9602 /* switch over to host mailbox */
9603 psli->sli_flag |= LPFC_SLI_ACTIVE;
9606 wmb();
9608 switch (flag) {
9609 case MBX_NOWAIT:
9610 /* Set up reference to mailbox command */
9611 psli->mbox_active = pmbox;
9612 /* Interrupt board to do it */
9613 writel(CA_MBATT, phba->CAregaddr);
9614 readl(phba->CAregaddr); /* flush */
9615 /* Don't wait for it to finish, just return */
9616 break;
9618 case MBX_POLL:
9619 /* Set up null reference to mailbox command */
9620 psli->mbox_active = NULL;
9621 /* Interrupt board to do it */
9622 writel(CA_MBATT, phba->CAregaddr);
9623 readl(phba->CAregaddr); /* flush */
9625 if (psli->sli_flag & LPFC_SLI_ACTIVE) {
9626 /* First read mbox status word */
9627 word0 = *((uint32_t *)phba->mbox);
9628 word0 = le32_to_cpu(word0);
9629 } else {
9630 /* First read mbox status word */
9631 if (lpfc_readl(phba->MBslimaddr, &word0)) {
9632 spin_unlock_irqrestore(&phba->hbalock,
9633 drvr_flag);
9634 goto out_not_finished;
9638 /* Read the HBA Host Attention Register */
9639 if (lpfc_readl(phba->HAregaddr, &ha_copy)) {
9640 spin_unlock_irqrestore(&phba->hbalock,
9641 drvr_flag);
9642 goto out_not_finished;
9644 timeout = msecs_to_jiffies(lpfc_mbox_tmo_val(phba, pmbox) *
9645 1000) + jiffies;
9646 i = 0;
9647 /* Wait for command to complete */
9648 while (((word0 & OWN_CHIP) == OWN_CHIP) ||
9649 (!(ha_copy & HA_MBATT) &&
9650 (phba->link_state > LPFC_WARM_START))) {
9651 if (time_after(jiffies, timeout)) {
9652 psli->sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
9653 spin_unlock_irqrestore(&phba->hbalock,
9654 drvr_flag);
9655 goto out_not_finished;
9658 /* Check if we took a mbox interrupt while we were
9659 polling */
9660 if (((word0 & OWN_CHIP) != OWN_CHIP)
9661 && (evtctr != psli->slistat.mbox_event))
9662 break;
9664 if (i++ > 10) {
9665 spin_unlock_irqrestore(&phba->hbalock,
9666 drvr_flag);
9667 msleep(1);
9668 spin_lock_irqsave(&phba->hbalock, drvr_flag);
9671 if (psli->sli_flag & LPFC_SLI_ACTIVE) {
9672 /* First copy command data */
9673 word0 = *((uint32_t *)phba->mbox);
9674 word0 = le32_to_cpu(word0);
9675 if (mbx->mbxCommand == MBX_CONFIG_PORT) {
9676 MAILBOX_t *slimmb;
9677 uint32_t slimword0;
9678 /* Check real SLIM for any errors */
9679 slimword0 = readl(phba->MBslimaddr);
9680 slimmb = (MAILBOX_t *) & slimword0;
9681 if (((slimword0 & OWN_CHIP) != OWN_CHIP)
9682 && slimmb->mbxStatus) {
9683 psli->sli_flag &=
9684 ~LPFC_SLI_ACTIVE;
9685 word0 = slimword0;
9688 } else {
9689 /* First copy command data */
9690 word0 = readl(phba->MBslimaddr);
9692 /* Read the HBA Host Attention Register */
9693 if (lpfc_readl(phba->HAregaddr, &ha_copy)) {
9694 spin_unlock_irqrestore(&phba->hbalock,
9695 drvr_flag);
9696 goto out_not_finished;
9700 if (psli->sli_flag & LPFC_SLI_ACTIVE) {
9701 /* copy results back to user */
9702 lpfc_sli_pcimem_bcopy(phba->mbox, mbx,
9703 MAILBOX_CMD_SIZE);
9704 /* Copy the mailbox extension data */
9705 if (pmbox->out_ext_byte_len && pmbox->ext_buf) {
9706 lpfc_sli_pcimem_bcopy(phba->mbox_ext,
9707 pmbox->ext_buf,
9708 pmbox->out_ext_byte_len);
9710 } else {
9711 /* First copy command data */
9712 lpfc_memcpy_from_slim(mbx, phba->MBslimaddr,
9713 MAILBOX_CMD_SIZE);
9714 /* Copy the mailbox extension data */
9715 if (pmbox->out_ext_byte_len && pmbox->ext_buf) {
9716 lpfc_memcpy_from_slim(
9717 pmbox->ext_buf,
9718 phba->MBslimaddr +
9719 MAILBOX_HBA_EXT_OFFSET,
9720 pmbox->out_ext_byte_len);
9724 writel(HA_MBATT, phba->HAregaddr);
9725 readl(phba->HAregaddr); /* flush */
9727 psli->sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
9728 status = mbx->mbxStatus;
9731 spin_unlock_irqrestore(&phba->hbalock, drvr_flag);
9732 return status;
9734 out_not_finished:
9735 if (processing_queue) {
9736 pmbox->u.mb.mbxStatus = MBX_NOT_FINISHED;
9737 lpfc_mbox_cmpl_put(phba, pmbox);
9739 return MBX_NOT_FINISHED;
9743 * lpfc_sli4_async_mbox_block - Block posting SLI4 asynchronous mailbox command
9744 * @phba: Pointer to HBA context object.
9746 * The function blocks the posting of SLI4 asynchronous mailbox commands from
9747 * the driver internal pending mailbox queue. It will then try to wait out the
9748 * possible outstanding mailbox command before return.
9750 * Returns:
9751 * 0 - the outstanding mailbox command completed; otherwise, the wait for
9752 * the outstanding mailbox command timed out.
9754 static int
9755 lpfc_sli4_async_mbox_block(struct lpfc_hba *phba)
9757 struct lpfc_sli *psli = &phba->sli;
9758 LPFC_MBOXQ_t *mboxq;
9759 int rc = 0;
9760 unsigned long timeout = 0;
9761 u32 sli_flag;
9762 u8 cmd, subsys, opcode;
9764 /* Mark the asynchronous mailbox command posting as blocked */
9765 spin_lock_irq(&phba->hbalock);
9766 psli->sli_flag |= LPFC_SLI_ASYNC_MBX_BLK;
9767 /* Determine how long we might wait for the active mailbox
9768 * command to be gracefully completed by firmware.
9770 if (phba->sli.mbox_active)
9771 timeout = msecs_to_jiffies(lpfc_mbox_tmo_val(phba,
9772 phba->sli.mbox_active) *
9773 1000) + jiffies;
9774 spin_unlock_irq(&phba->hbalock);
9776 /* Make sure the mailbox is really active */
9777 if (timeout)
9778 lpfc_sli4_process_missed_mbox_completions(phba);
9780 /* Wait for the outstanding mailbox command to complete */
9781 while (phba->sli.mbox_active) {
9782 /* Check active mailbox complete status every 2ms */
9783 msleep(2);
9784 if (time_after(jiffies, timeout)) {
9785 /* Timeout, mark the outstanding cmd not complete */
9787 /* Sanity check sli.mbox_active has not completed or
9788 * cancelled from another context during last 2ms sleep,
9789 * so take hbalock to be sure before logging.
9791 spin_lock_irq(&phba->hbalock);
9792 if (phba->sli.mbox_active) {
9793 mboxq = phba->sli.mbox_active;
9794 cmd = mboxq->u.mb.mbxCommand;
9795 subsys = lpfc_sli_config_mbox_subsys_get(phba,
9796 mboxq);
9797 opcode = lpfc_sli_config_mbox_opcode_get(phba,
9798 mboxq);
9799 sli_flag = psli->sli_flag;
9800 spin_unlock_irq(&phba->hbalock);
9801 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9802 "2352 Mailbox command x%x "
9803 "(x%x/x%x) sli_flag x%x could "
9804 "not complete\n",
9805 cmd, subsys, opcode,
9806 sli_flag);
9807 } else {
9808 spin_unlock_irq(&phba->hbalock);
9811 rc = 1;
9812 break;
9816 /* Can not cleanly block async mailbox command, fails it */
9817 if (rc) {
9818 spin_lock_irq(&phba->hbalock);
9819 psli->sli_flag &= ~LPFC_SLI_ASYNC_MBX_BLK;
9820 spin_unlock_irq(&phba->hbalock);
9822 return rc;
9826 * lpfc_sli4_async_mbox_unblock - Block posting SLI4 async mailbox command
9827 * @phba: Pointer to HBA context object.
9829 * The function unblocks and resume posting of SLI4 asynchronous mailbox
9830 * commands from the driver internal pending mailbox queue. It makes sure
9831 * that there is no outstanding mailbox command before resuming posting
9832 * asynchronous mailbox commands. If, for any reason, there is outstanding
9833 * mailbox command, it will try to wait it out before resuming asynchronous
9834 * mailbox command posting.
9836 static void
9837 lpfc_sli4_async_mbox_unblock(struct lpfc_hba *phba)
9839 struct lpfc_sli *psli = &phba->sli;
9841 spin_lock_irq(&phba->hbalock);
9842 if (!(psli->sli_flag & LPFC_SLI_ASYNC_MBX_BLK)) {
9843 /* Asynchronous mailbox posting is not blocked, do nothing */
9844 spin_unlock_irq(&phba->hbalock);
9845 return;
9848 /* Outstanding synchronous mailbox command is guaranteed to be done,
9849 * successful or timeout, after timing-out the outstanding mailbox
9850 * command shall always be removed, so just unblock posting async
9851 * mailbox command and resume
9853 psli->sli_flag &= ~LPFC_SLI_ASYNC_MBX_BLK;
9854 spin_unlock_irq(&phba->hbalock);
9856 /* wake up worker thread to post asynchronous mailbox command */
9857 lpfc_worker_wake_up(phba);
9861 * lpfc_sli4_wait_bmbx_ready - Wait for bootstrap mailbox register ready
9862 * @phba: Pointer to HBA context object.
9863 * @mboxq: Pointer to mailbox object.
9865 * The function waits for the bootstrap mailbox register ready bit from
9866 * port for twice the regular mailbox command timeout value.
9868 * 0 - no timeout on waiting for bootstrap mailbox register ready.
9869 * MBXERR_ERROR - wait for bootstrap mailbox register timed out or port
9870 * is in an unrecoverable state.
9872 static int
9873 lpfc_sli4_wait_bmbx_ready(struct lpfc_hba *phba, LPFC_MBOXQ_t *mboxq)
9875 uint32_t db_ready;
9876 unsigned long timeout;
9877 struct lpfc_register bmbx_reg;
9878 struct lpfc_register portstat_reg = {-1};
9880 /* Sanity check - there is no point to wait if the port is in an
9881 * unrecoverable state.
9883 if (bf_get(lpfc_sli_intf_if_type, &phba->sli4_hba.sli_intf) >=
9884 LPFC_SLI_INTF_IF_TYPE_2) {
9885 if (lpfc_readl(phba->sli4_hba.u.if_type2.STATUSregaddr,
9886 &portstat_reg.word0) ||
9887 lpfc_sli4_unrecoverable_port(&portstat_reg)) {
9888 lpfc_printf_log(phba, KERN_ERR, LOG_INIT,
9889 "3858 Skipping bmbx ready because "
9890 "Port Status x%x\n",
9891 portstat_reg.word0);
9892 return MBXERR_ERROR;
9896 timeout = msecs_to_jiffies(lpfc_mbox_tmo_val(phba, mboxq)
9897 * 1000) + jiffies;
9899 do {
9900 bmbx_reg.word0 = readl(phba->sli4_hba.BMBXregaddr);
9901 db_ready = bf_get(lpfc_bmbx_rdy, &bmbx_reg);
9902 if (!db_ready)
9903 mdelay(2);
9905 if (time_after(jiffies, timeout))
9906 return MBXERR_ERROR;
9907 } while (!db_ready);
9909 return 0;
9913 * lpfc_sli4_post_sync_mbox - Post an SLI4 mailbox to the bootstrap mailbox
9914 * @phba: Pointer to HBA context object.
9915 * @mboxq: Pointer to mailbox object.
9917 * The function posts a mailbox to the port. The mailbox is expected
9918 * to be comletely filled in and ready for the port to operate on it.
9919 * This routine executes a synchronous completion operation on the
9920 * mailbox by polling for its completion.
9922 * The caller must not be holding any locks when calling this routine.
9924 * Returns:
9925 * MBX_SUCCESS - mailbox posted successfully
9926 * Any of the MBX error values.
9928 static int
9929 lpfc_sli4_post_sync_mbox(struct lpfc_hba *phba, LPFC_MBOXQ_t *mboxq)
9931 int rc = MBX_SUCCESS;
9932 unsigned long iflag;
9933 uint32_t mcqe_status;
9934 uint32_t mbx_cmnd;
9935 struct lpfc_sli *psli = &phba->sli;
9936 struct lpfc_mqe *mb = &mboxq->u.mqe;
9937 struct lpfc_bmbx_create *mbox_rgn;
9938 struct dma_address *dma_address;
9941 * Only one mailbox can be active to the bootstrap mailbox region
9942 * at a time and there is no queueing provided.
9944 spin_lock_irqsave(&phba->hbalock, iflag);
9945 if (psli->sli_flag & LPFC_SLI_MBOX_ACTIVE) {
9946 spin_unlock_irqrestore(&phba->hbalock, iflag);
9947 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
9948 "(%d):2532 Mailbox command x%x (x%x/x%x) "
9949 "cannot issue Data: x%x x%x\n",
9950 mboxq->vport ? mboxq->vport->vpi : 0,
9951 mboxq->u.mb.mbxCommand,
9952 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
9953 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
9954 psli->sli_flag, MBX_POLL);
9955 return MBXERR_ERROR;
9957 /* The server grabs the token and owns it until release */
9958 psli->sli_flag |= LPFC_SLI_MBOX_ACTIVE;
9959 phba->sli.mbox_active = mboxq;
9960 spin_unlock_irqrestore(&phba->hbalock, iflag);
9962 /* wait for bootstrap mbox register for readyness */
9963 rc = lpfc_sli4_wait_bmbx_ready(phba, mboxq);
9964 if (rc)
9965 goto exit;
9967 * Initialize the bootstrap memory region to avoid stale data areas
9968 * in the mailbox post. Then copy the caller's mailbox contents to
9969 * the bmbx mailbox region.
9971 mbx_cmnd = bf_get(lpfc_mqe_command, mb);
9972 memset(phba->sli4_hba.bmbx.avirt, 0, sizeof(struct lpfc_bmbx_create));
9973 lpfc_sli4_pcimem_bcopy(mb, phba->sli4_hba.bmbx.avirt,
9974 sizeof(struct lpfc_mqe));
9976 /* Post the high mailbox dma address to the port and wait for ready. */
9977 dma_address = &phba->sli4_hba.bmbx.dma_address;
9978 writel(dma_address->addr_hi, phba->sli4_hba.BMBXregaddr);
9980 /* wait for bootstrap mbox register for hi-address write done */
9981 rc = lpfc_sli4_wait_bmbx_ready(phba, mboxq);
9982 if (rc)
9983 goto exit;
9985 /* Post the low mailbox dma address to the port. */
9986 writel(dma_address->addr_lo, phba->sli4_hba.BMBXregaddr);
9988 /* wait for bootstrap mbox register for low address write done */
9989 rc = lpfc_sli4_wait_bmbx_ready(phba, mboxq);
9990 if (rc)
9991 goto exit;
9994 * Read the CQ to ensure the mailbox has completed.
9995 * If so, update the mailbox status so that the upper layers
9996 * can complete the request normally.
9998 lpfc_sli4_pcimem_bcopy(phba->sli4_hba.bmbx.avirt, mb,
9999 sizeof(struct lpfc_mqe));
10000 mbox_rgn = (struct lpfc_bmbx_create *) phba->sli4_hba.bmbx.avirt;
10001 lpfc_sli4_pcimem_bcopy(&mbox_rgn->mcqe, &mboxq->mcqe,
10002 sizeof(struct lpfc_mcqe));
10003 mcqe_status = bf_get(lpfc_mcqe_status, &mbox_rgn->mcqe);
10005 * When the CQE status indicates a failure and the mailbox status
10006 * indicates success then copy the CQE status into the mailbox status
10007 * (and prefix it with x4000).
10009 if (mcqe_status != MB_CQE_STATUS_SUCCESS) {
10010 if (bf_get(lpfc_mqe_status, mb) == MBX_SUCCESS)
10011 bf_set(lpfc_mqe_status, mb,
10012 (LPFC_MBX_ERROR_RANGE | mcqe_status));
10013 rc = MBXERR_ERROR;
10014 } else
10015 lpfc_sli4_swap_str(phba, mboxq);
10017 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
10018 "(%d):0356 Mailbox cmd x%x (x%x/x%x) Status x%x "
10019 "Data: x%x x%x x%x x%x x%x x%x x%x x%x x%x x%x x%x"
10020 " x%x x%x CQ: x%x x%x x%x x%x\n",
10021 mboxq->vport ? mboxq->vport->vpi : 0, mbx_cmnd,
10022 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
10023 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
10024 bf_get(lpfc_mqe_status, mb),
10025 mb->un.mb_words[0], mb->un.mb_words[1],
10026 mb->un.mb_words[2], mb->un.mb_words[3],
10027 mb->un.mb_words[4], mb->un.mb_words[5],
10028 mb->un.mb_words[6], mb->un.mb_words[7],
10029 mb->un.mb_words[8], mb->un.mb_words[9],
10030 mb->un.mb_words[10], mb->un.mb_words[11],
10031 mb->un.mb_words[12], mboxq->mcqe.word0,
10032 mboxq->mcqe.mcqe_tag0, mboxq->mcqe.mcqe_tag1,
10033 mboxq->mcqe.trailer);
10034 exit:
10035 /* We are holding the token, no needed for lock when release */
10036 spin_lock_irqsave(&phba->hbalock, iflag);
10037 psli->sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
10038 phba->sli.mbox_active = NULL;
10039 spin_unlock_irqrestore(&phba->hbalock, iflag);
10040 return rc;
10044 * lpfc_sli_issue_mbox_s4 - Issue an SLI4 mailbox command to firmware
10045 * @phba: Pointer to HBA context object.
10046 * @mboxq: Pointer to mailbox object.
10047 * @flag: Flag indicating how the mailbox need to be processed.
10049 * This function is called by discovery code and HBA management code to submit
10050 * a mailbox command to firmware with SLI-4 interface spec.
10052 * Return codes the caller owns the mailbox command after the return of the
10053 * function.
10055 static int
10056 lpfc_sli_issue_mbox_s4(struct lpfc_hba *phba, LPFC_MBOXQ_t *mboxq,
10057 uint32_t flag)
10059 struct lpfc_sli *psli = &phba->sli;
10060 unsigned long iflags;
10061 int rc;
10063 /* dump from issue mailbox command if setup */
10064 lpfc_idiag_mbxacc_dump_issue_mbox(phba, &mboxq->u.mb);
10066 rc = lpfc_mbox_dev_check(phba);
10067 if (unlikely(rc)) {
10068 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
10069 "(%d):2544 Mailbox command x%x (x%x/x%x) "
10070 "cannot issue Data: x%x x%x\n",
10071 mboxq->vport ? mboxq->vport->vpi : 0,
10072 mboxq->u.mb.mbxCommand,
10073 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
10074 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
10075 psli->sli_flag, flag);
10076 goto out_not_finished;
10079 /* Detect polling mode and jump to a handler */
10080 if (!phba->sli4_hba.intr_enable) {
10081 if (flag == MBX_POLL)
10082 rc = lpfc_sli4_post_sync_mbox(phba, mboxq);
10083 else
10084 rc = -EIO;
10085 if (rc != MBX_SUCCESS)
10086 lpfc_printf_log(phba, KERN_WARNING, LOG_MBOX | LOG_SLI,
10087 "(%d):2541 Mailbox command x%x "
10088 "(x%x/x%x) failure: "
10089 "mqe_sta: x%x mcqe_sta: x%x/x%x "
10090 "Data: x%x x%x\n",
10091 mboxq->vport ? mboxq->vport->vpi : 0,
10092 mboxq->u.mb.mbxCommand,
10093 lpfc_sli_config_mbox_subsys_get(phba,
10094 mboxq),
10095 lpfc_sli_config_mbox_opcode_get(phba,
10096 mboxq),
10097 bf_get(lpfc_mqe_status, &mboxq->u.mqe),
10098 bf_get(lpfc_mcqe_status, &mboxq->mcqe),
10099 bf_get(lpfc_mcqe_ext_status,
10100 &mboxq->mcqe),
10101 psli->sli_flag, flag);
10102 return rc;
10103 } else if (flag == MBX_POLL) {
10104 lpfc_printf_log(phba, KERN_WARNING, LOG_MBOX | LOG_SLI,
10105 "(%d):2542 Try to issue mailbox command "
10106 "x%x (x%x/x%x) synchronously ahead of async "
10107 "mailbox command queue: x%x x%x\n",
10108 mboxq->vport ? mboxq->vport->vpi : 0,
10109 mboxq->u.mb.mbxCommand,
10110 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
10111 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
10112 psli->sli_flag, flag);
10113 /* Try to block the asynchronous mailbox posting */
10114 rc = lpfc_sli4_async_mbox_block(phba);
10115 if (!rc) {
10116 /* Successfully blocked, now issue sync mbox cmd */
10117 rc = lpfc_sli4_post_sync_mbox(phba, mboxq);
10118 if (rc != MBX_SUCCESS)
10119 lpfc_printf_log(phba, KERN_WARNING,
10120 LOG_MBOX | LOG_SLI,
10121 "(%d):2597 Sync Mailbox command "
10122 "x%x (x%x/x%x) failure: "
10123 "mqe_sta: x%x mcqe_sta: x%x/x%x "
10124 "Data: x%x x%x\n",
10125 mboxq->vport ? mboxq->vport->vpi : 0,
10126 mboxq->u.mb.mbxCommand,
10127 lpfc_sli_config_mbox_subsys_get(phba,
10128 mboxq),
10129 lpfc_sli_config_mbox_opcode_get(phba,
10130 mboxq),
10131 bf_get(lpfc_mqe_status, &mboxq->u.mqe),
10132 bf_get(lpfc_mcqe_status, &mboxq->mcqe),
10133 bf_get(lpfc_mcqe_ext_status,
10134 &mboxq->mcqe),
10135 psli->sli_flag, flag);
10136 /* Unblock the async mailbox posting afterward */
10137 lpfc_sli4_async_mbox_unblock(phba);
10139 return rc;
10142 /* Now, interrupt mode asynchronous mailbox command */
10143 rc = lpfc_mbox_cmd_check(phba, mboxq);
10144 if (rc) {
10145 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
10146 "(%d):2543 Mailbox command x%x (x%x/x%x) "
10147 "cannot issue Data: x%x x%x\n",
10148 mboxq->vport ? mboxq->vport->vpi : 0,
10149 mboxq->u.mb.mbxCommand,
10150 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
10151 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
10152 psli->sli_flag, flag);
10153 goto out_not_finished;
10156 /* Put the mailbox command to the driver internal FIFO */
10157 psli->slistat.mbox_busy++;
10158 spin_lock_irqsave(&phba->hbalock, iflags);
10159 lpfc_mbox_put(phba, mboxq);
10160 spin_unlock_irqrestore(&phba->hbalock, iflags);
10161 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
10162 "(%d):0354 Mbox cmd issue - Enqueue Data: "
10163 "x%x (x%x/x%x) x%x x%x x%x x%x\n",
10164 mboxq->vport ? mboxq->vport->vpi : 0xffffff,
10165 bf_get(lpfc_mqe_command, &mboxq->u.mqe),
10166 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
10167 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
10168 mboxq->u.mb.un.varUnregLogin.rpi,
10169 phba->pport->port_state,
10170 psli->sli_flag, MBX_NOWAIT);
10171 /* Wake up worker thread to transport mailbox command from head */
10172 lpfc_worker_wake_up(phba);
10174 return MBX_BUSY;
10176 out_not_finished:
10177 return MBX_NOT_FINISHED;
10181 * lpfc_sli4_post_async_mbox - Post an SLI4 mailbox command to device
10182 * @phba: Pointer to HBA context object.
10184 * This function is called by worker thread to send a mailbox command to
10185 * SLI4 HBA firmware.
10189 lpfc_sli4_post_async_mbox(struct lpfc_hba *phba)
10191 struct lpfc_sli *psli = &phba->sli;
10192 LPFC_MBOXQ_t *mboxq;
10193 int rc = MBX_SUCCESS;
10194 unsigned long iflags;
10195 struct lpfc_mqe *mqe;
10196 uint32_t mbx_cmnd;
10198 /* Check interrupt mode before post async mailbox command */
10199 if (unlikely(!phba->sli4_hba.intr_enable))
10200 return MBX_NOT_FINISHED;
10202 /* Check for mailbox command service token */
10203 spin_lock_irqsave(&phba->hbalock, iflags);
10204 if (unlikely(psli->sli_flag & LPFC_SLI_ASYNC_MBX_BLK)) {
10205 spin_unlock_irqrestore(&phba->hbalock, iflags);
10206 return MBX_NOT_FINISHED;
10208 if (psli->sli_flag & LPFC_SLI_MBOX_ACTIVE) {
10209 spin_unlock_irqrestore(&phba->hbalock, iflags);
10210 return MBX_NOT_FINISHED;
10212 if (unlikely(phba->sli.mbox_active)) {
10213 spin_unlock_irqrestore(&phba->hbalock, iflags);
10214 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
10215 "0384 There is pending active mailbox cmd\n");
10216 return MBX_NOT_FINISHED;
10218 /* Take the mailbox command service token */
10219 psli->sli_flag |= LPFC_SLI_MBOX_ACTIVE;
10221 /* Get the next mailbox command from head of queue */
10222 mboxq = lpfc_mbox_get(phba);
10224 /* If no more mailbox command waiting for post, we're done */
10225 if (!mboxq) {
10226 psli->sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
10227 spin_unlock_irqrestore(&phba->hbalock, iflags);
10228 return MBX_SUCCESS;
10230 phba->sli.mbox_active = mboxq;
10231 spin_unlock_irqrestore(&phba->hbalock, iflags);
10233 /* Check device readiness for posting mailbox command */
10234 rc = lpfc_mbox_dev_check(phba);
10235 if (unlikely(rc))
10236 /* Driver clean routine will clean up pending mailbox */
10237 goto out_not_finished;
10239 /* Prepare the mbox command to be posted */
10240 mqe = &mboxq->u.mqe;
10241 mbx_cmnd = bf_get(lpfc_mqe_command, mqe);
10243 /* Start timer for the mbox_tmo and log some mailbox post messages */
10244 mod_timer(&psli->mbox_tmo, (jiffies +
10245 msecs_to_jiffies(1000 * lpfc_mbox_tmo_val(phba, mboxq))));
10247 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
10248 "(%d):0355 Mailbox cmd x%x (x%x/x%x) issue Data: "
10249 "x%x x%x\n",
10250 mboxq->vport ? mboxq->vport->vpi : 0, mbx_cmnd,
10251 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
10252 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
10253 phba->pport->port_state, psli->sli_flag);
10255 if (mbx_cmnd != MBX_HEARTBEAT) {
10256 if (mboxq->vport) {
10257 lpfc_debugfs_disc_trc(mboxq->vport,
10258 LPFC_DISC_TRC_MBOX_VPORT,
10259 "MBOX Send vport: cmd:x%x mb:x%x x%x",
10260 mbx_cmnd, mqe->un.mb_words[0],
10261 mqe->un.mb_words[1]);
10262 } else {
10263 lpfc_debugfs_disc_trc(phba->pport,
10264 LPFC_DISC_TRC_MBOX,
10265 "MBOX Send: cmd:x%x mb:x%x x%x",
10266 mbx_cmnd, mqe->un.mb_words[0],
10267 mqe->un.mb_words[1]);
10270 psli->slistat.mbox_cmd++;
10272 /* Post the mailbox command to the port */
10273 rc = lpfc_sli4_mq_put(phba->sli4_hba.mbx_wq, mqe);
10274 if (rc != MBX_SUCCESS) {
10275 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
10276 "(%d):2533 Mailbox command x%x (x%x/x%x) "
10277 "cannot issue Data: x%x x%x\n",
10278 mboxq->vport ? mboxq->vport->vpi : 0,
10279 mboxq->u.mb.mbxCommand,
10280 lpfc_sli_config_mbox_subsys_get(phba, mboxq),
10281 lpfc_sli_config_mbox_opcode_get(phba, mboxq),
10282 psli->sli_flag, MBX_NOWAIT);
10283 goto out_not_finished;
10286 return rc;
10288 out_not_finished:
10289 spin_lock_irqsave(&phba->hbalock, iflags);
10290 if (phba->sli.mbox_active) {
10291 mboxq->u.mb.mbxStatus = MBX_NOT_FINISHED;
10292 __lpfc_mbox_cmpl_put(phba, mboxq);
10293 /* Release the token */
10294 psli->sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
10295 phba->sli.mbox_active = NULL;
10297 spin_unlock_irqrestore(&phba->hbalock, iflags);
10299 return MBX_NOT_FINISHED;
10303 * lpfc_sli_issue_mbox - Wrapper func for issuing mailbox command
10304 * @phba: Pointer to HBA context object.
10305 * @pmbox: Pointer to mailbox object.
10306 * @flag: Flag indicating how the mailbox need to be processed.
10308 * This routine wraps the actual SLI3 or SLI4 mailbox issuing routine from
10309 * the API jump table function pointer from the lpfc_hba struct.
10311 * Return codes the caller owns the mailbox command after the return of the
10312 * function.
10315 lpfc_sli_issue_mbox(struct lpfc_hba *phba, LPFC_MBOXQ_t *pmbox, uint32_t flag)
10317 return phba->lpfc_sli_issue_mbox(phba, pmbox, flag);
10321 * lpfc_mbox_api_table_setup - Set up mbox api function jump table
10322 * @phba: The hba struct for which this call is being executed.
10323 * @dev_grp: The HBA PCI-Device group number.
10325 * This routine sets up the mbox interface API function jump table in @phba
10326 * struct.
10327 * Returns: 0 - success, -ENODEV - failure.
10330 lpfc_mbox_api_table_setup(struct lpfc_hba *phba, uint8_t dev_grp)
10333 switch (dev_grp) {
10334 case LPFC_PCI_DEV_LP:
10335 phba->lpfc_sli_issue_mbox = lpfc_sli_issue_mbox_s3;
10336 phba->lpfc_sli_handle_slow_ring_event =
10337 lpfc_sli_handle_slow_ring_event_s3;
10338 phba->lpfc_sli_hbq_to_firmware = lpfc_sli_hbq_to_firmware_s3;
10339 phba->lpfc_sli_brdrestart = lpfc_sli_brdrestart_s3;
10340 phba->lpfc_sli_brdready = lpfc_sli_brdready_s3;
10341 break;
10342 case LPFC_PCI_DEV_OC:
10343 phba->lpfc_sli_issue_mbox = lpfc_sli_issue_mbox_s4;
10344 phba->lpfc_sli_handle_slow_ring_event =
10345 lpfc_sli_handle_slow_ring_event_s4;
10346 phba->lpfc_sli_hbq_to_firmware = lpfc_sli_hbq_to_firmware_s4;
10347 phba->lpfc_sli_brdrestart = lpfc_sli_brdrestart_s4;
10348 phba->lpfc_sli_brdready = lpfc_sli_brdready_s4;
10349 break;
10350 default:
10351 lpfc_printf_log(phba, KERN_ERR, LOG_INIT,
10352 "1420 Invalid HBA PCI-device group: 0x%x\n",
10353 dev_grp);
10354 return -ENODEV;
10356 return 0;
10360 * __lpfc_sli_ringtx_put - Add an iocb to the txq
10361 * @phba: Pointer to HBA context object.
10362 * @pring: Pointer to driver SLI ring object.
10363 * @piocb: Pointer to address of newly added command iocb.
10365 * This function is called with hbalock held for SLI3 ports or
10366 * the ring lock held for SLI4 ports to add a command
10367 * iocb to the txq when SLI layer cannot submit the command iocb
10368 * to the ring.
10370 void
10371 __lpfc_sli_ringtx_put(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
10372 struct lpfc_iocbq *piocb)
10374 if (phba->sli_rev == LPFC_SLI_REV4)
10375 lockdep_assert_held(&pring->ring_lock);
10376 else
10377 lockdep_assert_held(&phba->hbalock);
10378 /* Insert the caller's iocb in the txq tail for later processing. */
10379 list_add_tail(&piocb->list, &pring->txq);
10383 * lpfc_sli_next_iocb - Get the next iocb in the txq
10384 * @phba: Pointer to HBA context object.
10385 * @pring: Pointer to driver SLI ring object.
10386 * @piocb: Pointer to address of newly added command iocb.
10388 * This function is called with hbalock held before a new
10389 * iocb is submitted to the firmware. This function checks
10390 * txq to flush the iocbs in txq to Firmware before
10391 * submitting new iocbs to the Firmware.
10392 * If there are iocbs in the txq which need to be submitted
10393 * to firmware, lpfc_sli_next_iocb returns the first element
10394 * of the txq after dequeuing it from txq.
10395 * If there is no iocb in the txq then the function will return
10396 * *piocb and *piocb is set to NULL. Caller needs to check
10397 * *piocb to find if there are more commands in the txq.
10399 static struct lpfc_iocbq *
10400 lpfc_sli_next_iocb(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
10401 struct lpfc_iocbq **piocb)
10403 struct lpfc_iocbq * nextiocb;
10405 lockdep_assert_held(&phba->hbalock);
10407 nextiocb = lpfc_sli_ringtx_get(phba, pring);
10408 if (!nextiocb) {
10409 nextiocb = *piocb;
10410 *piocb = NULL;
10413 return nextiocb;
10417 * __lpfc_sli_issue_iocb_s3 - SLI3 device lockless ver of lpfc_sli_issue_iocb
10418 * @phba: Pointer to HBA context object.
10419 * @ring_number: SLI ring number to issue iocb on.
10420 * @piocb: Pointer to command iocb.
10421 * @flag: Flag indicating if this command can be put into txq.
10423 * __lpfc_sli_issue_iocb_s3 is used by other functions in the driver to issue
10424 * an iocb command to an HBA with SLI-3 interface spec. If the PCI slot is
10425 * recovering from error state, if HBA is resetting or if LPFC_STOP_IOCB_EVENT
10426 * flag is turned on, the function returns IOCB_ERROR. When the link is down,
10427 * this function allows only iocbs for posting buffers. This function finds
10428 * next available slot in the command ring and posts the command to the
10429 * available slot and writes the port attention register to request HBA start
10430 * processing new iocb. If there is no slot available in the ring and
10431 * flag & SLI_IOCB_RET_IOCB is set, the new iocb is added to the txq, otherwise
10432 * the function returns IOCB_BUSY.
10434 * This function is called with hbalock held. The function will return success
10435 * after it successfully submit the iocb to firmware or after adding to the
10436 * txq.
10438 static int
10439 __lpfc_sli_issue_iocb_s3(struct lpfc_hba *phba, uint32_t ring_number,
10440 struct lpfc_iocbq *piocb, uint32_t flag)
10442 struct lpfc_iocbq *nextiocb;
10443 IOCB_t *iocb;
10444 struct lpfc_sli_ring *pring = &phba->sli.sli3_ring[ring_number];
10446 lockdep_assert_held(&phba->hbalock);
10448 if (piocb->cmd_cmpl && (!piocb->vport) &&
10449 (piocb->iocb.ulpCommand != CMD_ABORT_XRI_CN) &&
10450 (piocb->iocb.ulpCommand != CMD_CLOSE_XRI_CN)) {
10451 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
10452 "1807 IOCB x%x failed. No vport\n",
10453 piocb->iocb.ulpCommand);
10454 dump_stack();
10455 return IOCB_ERROR;
10459 /* If the PCI channel is in offline state, do not post iocbs. */
10460 if (unlikely(pci_channel_offline(phba->pcidev)))
10461 return IOCB_ERROR;
10463 /* If HBA has a deferred error attention, fail the iocb. */
10464 if (unlikely(test_bit(DEFER_ERATT, &phba->hba_flag)))
10465 return IOCB_ERROR;
10468 * We should never get an IOCB if we are in a < LINK_DOWN state
10470 if (unlikely(phba->link_state < LPFC_LINK_DOWN))
10471 return IOCB_ERROR;
10474 * Check to see if we are blocking IOCB processing because of a
10475 * outstanding event.
10477 if (unlikely(pring->flag & LPFC_STOP_IOCB_EVENT))
10478 goto iocb_busy;
10480 if (unlikely(phba->link_state == LPFC_LINK_DOWN)) {
10482 * Only CREATE_XRI, CLOSE_XRI, and QUE_RING_BUF
10483 * can be issued if the link is not up.
10485 switch (piocb->iocb.ulpCommand) {
10486 case CMD_QUE_RING_BUF_CN:
10487 case CMD_QUE_RING_BUF64_CN:
10489 * For IOCBs, like QUE_RING_BUF, that have no rsp ring
10490 * completion, cmd_cmpl MUST be 0.
10492 if (piocb->cmd_cmpl)
10493 piocb->cmd_cmpl = NULL;
10494 fallthrough;
10495 case CMD_CREATE_XRI_CR:
10496 case CMD_CLOSE_XRI_CN:
10497 case CMD_CLOSE_XRI_CX:
10498 break;
10499 default:
10500 goto iocb_busy;
10504 * For FCP commands, we must be in a state where we can process link
10505 * attention events.
10507 } else if (unlikely(pring->ringno == LPFC_FCP_RING &&
10508 !(phba->sli.sli_flag & LPFC_PROCESS_LA))) {
10509 goto iocb_busy;
10512 while ((iocb = lpfc_sli_next_iocb_slot(phba, pring)) &&
10513 (nextiocb = lpfc_sli_next_iocb(phba, pring, &piocb)))
10514 lpfc_sli_submit_iocb(phba, pring, iocb, nextiocb);
10516 if (iocb)
10517 lpfc_sli_update_ring(phba, pring);
10518 else
10519 lpfc_sli_update_full_ring(phba, pring);
10521 if (!piocb)
10522 return IOCB_SUCCESS;
10524 goto out_busy;
10526 iocb_busy:
10527 pring->stats.iocb_cmd_delay++;
10529 out_busy:
10531 if (!(flag & SLI_IOCB_RET_IOCB)) {
10532 __lpfc_sli_ringtx_put(phba, pring, piocb);
10533 return IOCB_SUCCESS;
10536 return IOCB_BUSY;
10540 * __lpfc_sli_issue_fcp_io_s3 - SLI3 device for sending fcp io iocb
10541 * @phba: Pointer to HBA context object.
10542 * @ring_number: SLI ring number to issue wqe on.
10543 * @piocb: Pointer to command iocb.
10544 * @flag: Flag indicating if this command can be put into txq.
10546 * __lpfc_sli_issue_fcp_io_s3 is wrapper function to invoke lockless func to
10547 * send an iocb command to an HBA with SLI-3 interface spec.
10549 * This function takes the hbalock before invoking the lockless version.
10550 * The function will return success after it successfully submit the wqe to
10551 * firmware or after adding to the txq.
10553 static int
10554 __lpfc_sli_issue_fcp_io_s3(struct lpfc_hba *phba, uint32_t ring_number,
10555 struct lpfc_iocbq *piocb, uint32_t flag)
10557 unsigned long iflags;
10558 int rc;
10560 spin_lock_irqsave(&phba->hbalock, iflags);
10561 rc = __lpfc_sli_issue_iocb_s3(phba, ring_number, piocb, flag);
10562 spin_unlock_irqrestore(&phba->hbalock, iflags);
10564 return rc;
10568 * __lpfc_sli_issue_fcp_io_s4 - SLI4 device for sending fcp io wqe
10569 * @phba: Pointer to HBA context object.
10570 * @ring_number: SLI ring number to issue wqe on.
10571 * @piocb: Pointer to command iocb.
10572 * @flag: Flag indicating if this command can be put into txq.
10574 * __lpfc_sli_issue_fcp_io_s4 is used by other functions in the driver to issue
10575 * an wqe command to an HBA with SLI-4 interface spec.
10577 * This function is a lockless version. The function will return success
10578 * after it successfully submit the wqe to firmware or after adding to the
10579 * txq.
10581 static int
10582 __lpfc_sli_issue_fcp_io_s4(struct lpfc_hba *phba, uint32_t ring_number,
10583 struct lpfc_iocbq *piocb, uint32_t flag)
10585 struct lpfc_io_buf *lpfc_cmd = piocb->io_buf;
10587 lpfc_prep_embed_io(phba, lpfc_cmd);
10588 return lpfc_sli4_issue_wqe(phba, lpfc_cmd->hdwq, piocb);
10591 void
10592 lpfc_prep_embed_io(struct lpfc_hba *phba, struct lpfc_io_buf *lpfc_cmd)
10594 struct lpfc_iocbq *piocb = &lpfc_cmd->cur_iocbq;
10595 union lpfc_wqe128 *wqe = &lpfc_cmd->cur_iocbq.wqe;
10596 struct sli4_sge_le *sgl;
10597 u32 type_size;
10599 /* 128 byte wqe support here */
10600 sgl = (struct sli4_sge_le *)lpfc_cmd->dma_sgl;
10602 if (phba->fcp_embed_io) {
10603 struct fcp_cmnd *fcp_cmnd;
10604 u32 *ptr;
10606 fcp_cmnd = lpfc_cmd->fcp_cmnd;
10608 /* Word 0-2 - FCP_CMND */
10609 type_size = le32_to_cpu(sgl->sge_len);
10610 type_size |= ULP_BDE64_TYPE_BDE_IMMED;
10611 wqe->generic.bde.tus.w = type_size;
10612 wqe->generic.bde.addrHigh = 0;
10613 wqe->generic.bde.addrLow = 72; /* Word 18 */
10615 bf_set(wqe_wqes, &wqe->fcp_iwrite.wqe_com, 1);
10616 bf_set(wqe_dbde, &wqe->fcp_iwrite.wqe_com, 0);
10618 /* Word 18-29 FCP CMND Payload */
10619 ptr = &wqe->words[18];
10620 lpfc_sli_pcimem_bcopy(fcp_cmnd, ptr, le32_to_cpu(sgl->sge_len));
10621 } else {
10622 /* Word 0-2 - Inline BDE */
10623 wqe->generic.bde.tus.f.bdeFlags = BUFF_TYPE_BDE_64;
10624 wqe->generic.bde.tus.f.bdeSize = le32_to_cpu(sgl->sge_len);
10625 wqe->generic.bde.addrHigh = le32_to_cpu(sgl->addr_hi);
10626 wqe->generic.bde.addrLow = le32_to_cpu(sgl->addr_lo);
10628 /* Word 10 */
10629 bf_set(wqe_dbde, &wqe->generic.wqe_com, 1);
10630 bf_set(wqe_wqes, &wqe->generic.wqe_com, 0);
10633 /* add the VMID tags as per switch response */
10634 if (unlikely(piocb->cmd_flag & LPFC_IO_VMID)) {
10635 if (phba->pport->vmid_flag & LPFC_VMID_TYPE_PRIO) {
10636 bf_set(wqe_ccpe, &wqe->fcp_iwrite.wqe_com, 1);
10637 bf_set(wqe_ccp, &wqe->fcp_iwrite.wqe_com,
10638 (piocb->vmid_tag.cs_ctl_vmid));
10639 } else if (phba->cfg_vmid_app_header) {
10640 bf_set(wqe_appid, &wqe->fcp_iwrite.wqe_com, 1);
10641 bf_set(wqe_wqes, &wqe->fcp_iwrite.wqe_com, 1);
10642 wqe->words[31] = piocb->vmid_tag.app_id;
10648 * __lpfc_sli_issue_iocb_s4 - SLI4 device lockless ver of lpfc_sli_issue_iocb
10649 * @phba: Pointer to HBA context object.
10650 * @ring_number: SLI ring number to issue iocb on.
10651 * @piocb: Pointer to command iocb.
10652 * @flag: Flag indicating if this command can be put into txq.
10654 * __lpfc_sli_issue_iocb_s4 is used by other functions in the driver to issue
10655 * an iocb command to an HBA with SLI-4 interface spec.
10657 * This function is called with ringlock held. The function will return success
10658 * after it successfully submit the iocb to firmware or after adding to the
10659 * txq.
10661 static int
10662 __lpfc_sli_issue_iocb_s4(struct lpfc_hba *phba, uint32_t ring_number,
10663 struct lpfc_iocbq *piocb, uint32_t flag)
10665 struct lpfc_sglq *sglq;
10666 union lpfc_wqe128 *wqe;
10667 struct lpfc_queue *wq;
10668 struct lpfc_sli_ring *pring;
10669 u32 ulp_command = get_job_cmnd(phba, piocb);
10671 /* Get the WQ */
10672 if ((piocb->cmd_flag & LPFC_IO_FCP) ||
10673 (piocb->cmd_flag & LPFC_USE_FCPWQIDX)) {
10674 wq = phba->sli4_hba.hdwq[piocb->hba_wqidx].io_wq;
10675 } else {
10676 wq = phba->sli4_hba.els_wq;
10679 /* Get corresponding ring */
10680 pring = wq->pring;
10683 * The WQE can be either 64 or 128 bytes,
10686 lockdep_assert_held(&pring->ring_lock);
10687 wqe = &piocb->wqe;
10688 if (piocb->sli4_xritag == NO_XRI) {
10689 if (ulp_command == CMD_ABORT_XRI_CX)
10690 sglq = NULL;
10691 else {
10692 sglq = __lpfc_sli_get_els_sglq(phba, piocb);
10693 if (!sglq) {
10694 if (!(flag & SLI_IOCB_RET_IOCB)) {
10695 __lpfc_sli_ringtx_put(phba,
10696 pring,
10697 piocb);
10698 return IOCB_SUCCESS;
10699 } else {
10700 return IOCB_BUSY;
10704 } else if (piocb->cmd_flag & LPFC_IO_FCP) {
10705 /* These IO's already have an XRI and a mapped sgl. */
10706 sglq = NULL;
10708 else {
10710 * This is a continuation of a commandi,(CX) so this
10711 * sglq is on the active list
10713 sglq = __lpfc_get_active_sglq(phba, piocb->sli4_lxritag);
10714 if (!sglq)
10715 return IOCB_ERROR;
10718 if (sglq) {
10719 piocb->sli4_lxritag = sglq->sli4_lxritag;
10720 piocb->sli4_xritag = sglq->sli4_xritag;
10722 /* ABTS sent by initiator to CT exchange, the
10723 * RX_ID field will be filled with the newly
10724 * allocated responder XRI.
10726 if (ulp_command == CMD_XMIT_BLS_RSP64_CX &&
10727 piocb->abort_bls == LPFC_ABTS_UNSOL_INT)
10728 bf_set(xmit_bls_rsp64_rxid, &wqe->xmit_bls_rsp,
10729 piocb->sli4_xritag);
10731 bf_set(wqe_xri_tag, &wqe->generic.wqe_com,
10732 piocb->sli4_xritag);
10734 if (lpfc_wqe_bpl2sgl(phba, piocb, sglq) == NO_XRI)
10735 return IOCB_ERROR;
10738 if (lpfc_sli4_wq_put(wq, wqe))
10739 return IOCB_ERROR;
10741 lpfc_sli_ringtxcmpl_put(phba, pring, piocb);
10743 return 0;
10747 * lpfc_sli_issue_fcp_io - Wrapper func for issuing fcp i/o
10749 * This routine wraps the actual fcp i/o function for issusing WQE for sli-4
10750 * or IOCB for sli-3 function.
10751 * pointer from the lpfc_hba struct.
10753 * Return codes:
10754 * IOCB_ERROR - Error
10755 * IOCB_SUCCESS - Success
10756 * IOCB_BUSY - Busy
10759 lpfc_sli_issue_fcp_io(struct lpfc_hba *phba, uint32_t ring_number,
10760 struct lpfc_iocbq *piocb, uint32_t flag)
10762 return phba->__lpfc_sli_issue_fcp_io(phba, ring_number, piocb, flag);
10766 * __lpfc_sli_issue_iocb - Wrapper func of lockless version for issuing iocb
10768 * This routine wraps the actual lockless version for issusing IOCB function
10769 * pointer from the lpfc_hba struct.
10771 * Return codes:
10772 * IOCB_ERROR - Error
10773 * IOCB_SUCCESS - Success
10774 * IOCB_BUSY - Busy
10777 __lpfc_sli_issue_iocb(struct lpfc_hba *phba, uint32_t ring_number,
10778 struct lpfc_iocbq *piocb, uint32_t flag)
10780 return phba->__lpfc_sli_issue_iocb(phba, ring_number, piocb, flag);
10783 static void
10784 __lpfc_sli_prep_els_req_rsp_s3(struct lpfc_iocbq *cmdiocbq,
10785 struct lpfc_vport *vport,
10786 struct lpfc_dmabuf *bmp, u16 cmd_size, u32 did,
10787 u32 elscmd, u8 tmo, u8 expect_rsp)
10789 struct lpfc_hba *phba = vport->phba;
10790 IOCB_t *cmd;
10792 cmd = &cmdiocbq->iocb;
10793 memset(cmd, 0, sizeof(*cmd));
10795 cmd->un.elsreq64.bdl.addrHigh = putPaddrHigh(bmp->phys);
10796 cmd->un.elsreq64.bdl.addrLow = putPaddrLow(bmp->phys);
10797 cmd->un.elsreq64.bdl.bdeFlags = BUFF_TYPE_BLP_64;
10799 if (expect_rsp) {
10800 cmd->un.elsreq64.bdl.bdeSize = (2 * sizeof(struct ulp_bde64));
10801 cmd->un.elsreq64.remoteID = did; /* DID */
10802 cmd->ulpCommand = CMD_ELS_REQUEST64_CR;
10803 cmd->ulpTimeout = tmo;
10804 } else {
10805 cmd->un.elsreq64.bdl.bdeSize = sizeof(struct ulp_bde64);
10806 cmd->un.genreq64.xmit_els_remoteID = did; /* DID */
10807 cmd->ulpCommand = CMD_XMIT_ELS_RSP64_CX;
10808 cmd->ulpPU = PARM_NPIV_DID;
10810 cmd->ulpBdeCount = 1;
10811 cmd->ulpLe = 1;
10812 cmd->ulpClass = CLASS3;
10814 /* If we have NPIV enabled, we want to send ELS traffic by VPI. */
10815 if (phba->sli3_options & LPFC_SLI3_NPIV_ENABLED) {
10816 if (expect_rsp) {
10817 cmd->un.elsreq64.myID = vport->fc_myDID;
10819 /* For ELS_REQUEST64_CR, use the VPI by default */
10820 cmd->ulpContext = phba->vpi_ids[vport->vpi];
10823 cmd->ulpCt_h = 0;
10824 /* The CT field must be 0=INVALID_RPI for the ECHO cmd */
10825 if (elscmd == ELS_CMD_ECHO)
10826 cmd->ulpCt_l = 0; /* context = invalid RPI */
10827 else
10828 cmd->ulpCt_l = 1; /* context = VPI */
10832 static void
10833 __lpfc_sli_prep_els_req_rsp_s4(struct lpfc_iocbq *cmdiocbq,
10834 struct lpfc_vport *vport,
10835 struct lpfc_dmabuf *bmp, u16 cmd_size, u32 did,
10836 u32 elscmd, u8 tmo, u8 expect_rsp)
10838 struct lpfc_hba *phba = vport->phba;
10839 union lpfc_wqe128 *wqe;
10840 struct ulp_bde64_le *bde;
10841 u8 els_id;
10843 wqe = &cmdiocbq->wqe;
10844 memset(wqe, 0, sizeof(*wqe));
10846 /* Word 0 - 2 BDE */
10847 bde = (struct ulp_bde64_le *)&wqe->generic.bde;
10848 bde->addr_low = cpu_to_le32(putPaddrLow(bmp->phys));
10849 bde->addr_high = cpu_to_le32(putPaddrHigh(bmp->phys));
10850 bde->type_size = cpu_to_le32(cmd_size);
10851 bde->type_size |= cpu_to_le32(ULP_BDE64_TYPE_BDE_64);
10853 if (expect_rsp) {
10854 bf_set(wqe_cmnd, &wqe->els_req.wqe_com, CMD_ELS_REQUEST64_WQE);
10856 /* Transfer length */
10857 wqe->els_req.payload_len = cmd_size;
10858 wqe->els_req.max_response_payload_len = FCELSSIZE;
10860 /* DID */
10861 bf_set(wqe_els_did, &wqe->els_req.wqe_dest, did);
10863 /* Word 11 - ELS_ID */
10864 switch (elscmd) {
10865 case ELS_CMD_PLOGI:
10866 els_id = LPFC_ELS_ID_PLOGI;
10867 break;
10868 case ELS_CMD_FLOGI:
10869 els_id = LPFC_ELS_ID_FLOGI;
10870 break;
10871 case ELS_CMD_LOGO:
10872 els_id = LPFC_ELS_ID_LOGO;
10873 break;
10874 case ELS_CMD_FDISC:
10875 if (!vport->fc_myDID) {
10876 els_id = LPFC_ELS_ID_FDISC;
10877 break;
10879 fallthrough;
10880 default:
10881 els_id = LPFC_ELS_ID_DEFAULT;
10882 break;
10885 bf_set(wqe_els_id, &wqe->els_req.wqe_com, els_id);
10886 } else {
10887 /* DID */
10888 bf_set(wqe_els_did, &wqe->xmit_els_rsp.wqe_dest, did);
10890 /* Transfer length */
10891 wqe->xmit_els_rsp.response_payload_len = cmd_size;
10893 bf_set(wqe_cmnd, &wqe->xmit_els_rsp.wqe_com,
10894 CMD_XMIT_ELS_RSP64_WQE);
10897 bf_set(wqe_tmo, &wqe->generic.wqe_com, tmo);
10898 bf_set(wqe_reqtag, &wqe->generic.wqe_com, cmdiocbq->iotag);
10899 bf_set(wqe_class, &wqe->generic.wqe_com, CLASS3);
10901 /* If we have NPIV enabled, we want to send ELS traffic by VPI.
10902 * For SLI4, since the driver controls VPIs we also want to include
10903 * all ELS pt2pt protocol traffic as well.
10905 if ((phba->sli3_options & LPFC_SLI3_NPIV_ENABLED) ||
10906 test_bit(FC_PT2PT, &vport->fc_flag)) {
10907 if (expect_rsp) {
10908 bf_set(els_req64_sid, &wqe->els_req, vport->fc_myDID);
10910 /* For ELS_REQUEST64_WQE, use the VPI by default */
10911 bf_set(wqe_ctxt_tag, &wqe->els_req.wqe_com,
10912 phba->vpi_ids[vport->vpi]);
10915 /* The CT field must be 0=INVALID_RPI for the ECHO cmd */
10916 if (elscmd == ELS_CMD_ECHO)
10917 bf_set(wqe_ct, &wqe->generic.wqe_com, 0);
10918 else
10919 bf_set(wqe_ct, &wqe->generic.wqe_com, 1);
10923 void
10924 lpfc_sli_prep_els_req_rsp(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocbq,
10925 struct lpfc_vport *vport, struct lpfc_dmabuf *bmp,
10926 u16 cmd_size, u32 did, u32 elscmd, u8 tmo,
10927 u8 expect_rsp)
10929 phba->__lpfc_sli_prep_els_req_rsp(cmdiocbq, vport, bmp, cmd_size, did,
10930 elscmd, tmo, expect_rsp);
10933 static void
10934 __lpfc_sli_prep_gen_req_s3(struct lpfc_iocbq *cmdiocbq, struct lpfc_dmabuf *bmp,
10935 u16 rpi, u32 num_entry, u8 tmo)
10937 IOCB_t *cmd;
10939 cmd = &cmdiocbq->iocb;
10940 memset(cmd, 0, sizeof(*cmd));
10942 cmd->un.genreq64.bdl.addrHigh = putPaddrHigh(bmp->phys);
10943 cmd->un.genreq64.bdl.addrLow = putPaddrLow(bmp->phys);
10944 cmd->un.genreq64.bdl.bdeFlags = BUFF_TYPE_BLP_64;
10945 cmd->un.genreq64.bdl.bdeSize = num_entry * sizeof(struct ulp_bde64);
10947 cmd->un.genreq64.w5.hcsw.Rctl = FC_RCTL_DD_UNSOL_CTL;
10948 cmd->un.genreq64.w5.hcsw.Type = FC_TYPE_CT;
10949 cmd->un.genreq64.w5.hcsw.Fctl = (SI | LA);
10951 cmd->ulpContext = rpi;
10952 cmd->ulpClass = CLASS3;
10953 cmd->ulpCommand = CMD_GEN_REQUEST64_CR;
10954 cmd->ulpBdeCount = 1;
10955 cmd->ulpLe = 1;
10956 cmd->ulpOwner = OWN_CHIP;
10957 cmd->ulpTimeout = tmo;
10960 static void
10961 __lpfc_sli_prep_gen_req_s4(struct lpfc_iocbq *cmdiocbq, struct lpfc_dmabuf *bmp,
10962 u16 rpi, u32 num_entry, u8 tmo)
10964 union lpfc_wqe128 *cmdwqe;
10965 struct ulp_bde64_le *bde, *bpl;
10966 u32 xmit_len = 0, total_len = 0, size, type, i;
10968 cmdwqe = &cmdiocbq->wqe;
10969 memset(cmdwqe, 0, sizeof(*cmdwqe));
10971 /* Calculate total_len and xmit_len */
10972 bpl = (struct ulp_bde64_le *)bmp->virt;
10973 for (i = 0; i < num_entry; i++) {
10974 size = le32_to_cpu(bpl[i].type_size) & ULP_BDE64_SIZE_MASK;
10975 total_len += size;
10977 for (i = 0; i < num_entry; i++) {
10978 size = le32_to_cpu(bpl[i].type_size) & ULP_BDE64_SIZE_MASK;
10979 type = le32_to_cpu(bpl[i].type_size) & ULP_BDE64_TYPE_MASK;
10980 if (type != ULP_BDE64_TYPE_BDE_64)
10981 break;
10982 xmit_len += size;
10985 /* Words 0 - 2 */
10986 bde = (struct ulp_bde64_le *)&cmdwqe->generic.bde;
10987 bde->addr_low = bpl->addr_low;
10988 bde->addr_high = bpl->addr_high;
10989 bde->type_size = cpu_to_le32(xmit_len);
10990 bde->type_size |= cpu_to_le32(ULP_BDE64_TYPE_BDE_64);
10992 /* Word 3 */
10993 cmdwqe->gen_req.request_payload_len = xmit_len;
10995 /* Word 5 */
10996 bf_set(wqe_type, &cmdwqe->gen_req.wge_ctl, FC_TYPE_CT);
10997 bf_set(wqe_rctl, &cmdwqe->gen_req.wge_ctl, FC_RCTL_DD_UNSOL_CTL);
10998 bf_set(wqe_si, &cmdwqe->gen_req.wge_ctl, 1);
10999 bf_set(wqe_la, &cmdwqe->gen_req.wge_ctl, 1);
11001 /* Word 6 */
11002 bf_set(wqe_ctxt_tag, &cmdwqe->gen_req.wqe_com, rpi);
11004 /* Word 7 */
11005 bf_set(wqe_tmo, &cmdwqe->gen_req.wqe_com, tmo);
11006 bf_set(wqe_class, &cmdwqe->gen_req.wqe_com, CLASS3);
11007 bf_set(wqe_cmnd, &cmdwqe->gen_req.wqe_com, CMD_GEN_REQUEST64_CR);
11008 bf_set(wqe_ct, &cmdwqe->gen_req.wqe_com, SLI4_CT_RPI);
11010 /* Word 12 */
11011 cmdwqe->gen_req.max_response_payload_len = total_len - xmit_len;
11014 void
11015 lpfc_sli_prep_gen_req(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocbq,
11016 struct lpfc_dmabuf *bmp, u16 rpi, u32 num_entry, u8 tmo)
11018 phba->__lpfc_sli_prep_gen_req(cmdiocbq, bmp, rpi, num_entry, tmo);
11021 static void
11022 __lpfc_sli_prep_xmit_seq64_s3(struct lpfc_iocbq *cmdiocbq,
11023 struct lpfc_dmabuf *bmp, u16 rpi, u16 ox_id,
11024 u32 num_entry, u8 rctl, u8 last_seq, u8 cr_cx_cmd)
11026 IOCB_t *icmd;
11028 icmd = &cmdiocbq->iocb;
11029 memset(icmd, 0, sizeof(*icmd));
11031 icmd->un.xseq64.bdl.addrHigh = putPaddrHigh(bmp->phys);
11032 icmd->un.xseq64.bdl.addrLow = putPaddrLow(bmp->phys);
11033 icmd->un.xseq64.bdl.bdeFlags = BUFF_TYPE_BLP_64;
11034 icmd->un.xseq64.bdl.bdeSize = (num_entry * sizeof(struct ulp_bde64));
11035 icmd->un.xseq64.w5.hcsw.Fctl = LA;
11036 if (last_seq)
11037 icmd->un.xseq64.w5.hcsw.Fctl |= LS;
11038 icmd->un.xseq64.w5.hcsw.Dfctl = 0;
11039 icmd->un.xseq64.w5.hcsw.Rctl = rctl;
11040 icmd->un.xseq64.w5.hcsw.Type = FC_TYPE_CT;
11042 icmd->ulpBdeCount = 1;
11043 icmd->ulpLe = 1;
11044 icmd->ulpClass = CLASS3;
11046 switch (cr_cx_cmd) {
11047 case CMD_XMIT_SEQUENCE64_CR:
11048 icmd->ulpContext = rpi;
11049 icmd->ulpCommand = CMD_XMIT_SEQUENCE64_CR;
11050 break;
11051 case CMD_XMIT_SEQUENCE64_CX:
11052 icmd->ulpContext = ox_id;
11053 icmd->ulpCommand = CMD_XMIT_SEQUENCE64_CX;
11054 break;
11055 default:
11056 break;
11060 static void
11061 __lpfc_sli_prep_xmit_seq64_s4(struct lpfc_iocbq *cmdiocbq,
11062 struct lpfc_dmabuf *bmp, u16 rpi, u16 ox_id,
11063 u32 full_size, u8 rctl, u8 last_seq, u8 cr_cx_cmd)
11065 union lpfc_wqe128 *wqe;
11066 struct ulp_bde64 *bpl;
11068 wqe = &cmdiocbq->wqe;
11069 memset(wqe, 0, sizeof(*wqe));
11071 /* Words 0 - 2 */
11072 bpl = (struct ulp_bde64 *)bmp->virt;
11073 wqe->xmit_sequence.bde.addrHigh = bpl->addrHigh;
11074 wqe->xmit_sequence.bde.addrLow = bpl->addrLow;
11075 wqe->xmit_sequence.bde.tus.w = bpl->tus.w;
11077 /* Word 5 */
11078 bf_set(wqe_ls, &wqe->xmit_sequence.wge_ctl, last_seq);
11079 bf_set(wqe_la, &wqe->xmit_sequence.wge_ctl, 1);
11080 bf_set(wqe_dfctl, &wqe->xmit_sequence.wge_ctl, 0);
11081 bf_set(wqe_rctl, &wqe->xmit_sequence.wge_ctl, rctl);
11082 bf_set(wqe_type, &wqe->xmit_sequence.wge_ctl, FC_TYPE_CT);
11084 /* Word 6 */
11085 bf_set(wqe_ctxt_tag, &wqe->xmit_sequence.wqe_com, rpi);
11087 bf_set(wqe_cmnd, &wqe->xmit_sequence.wqe_com,
11088 CMD_XMIT_SEQUENCE64_WQE);
11090 /* Word 7 */
11091 bf_set(wqe_class, &wqe->xmit_sequence.wqe_com, CLASS3);
11093 /* Word 9 */
11094 bf_set(wqe_rcvoxid, &wqe->xmit_sequence.wqe_com, ox_id);
11096 if (cmdiocbq->cmd_flag & (LPFC_IO_LIBDFC | LPFC_IO_LOOPBACK)) {
11097 /* Word 10 */
11098 if (cmdiocbq->cmd_flag & LPFC_IO_VMID) {
11099 bf_set(wqe_appid, &wqe->xmit_sequence.wqe_com, 1);
11100 bf_set(wqe_wqes, &wqe->xmit_sequence.wqe_com, 1);
11101 wqe->words[31] = LOOPBACK_SRC_APPID;
11104 /* Word 12 */
11105 wqe->xmit_sequence.xmit_len = full_size;
11107 else
11108 wqe->xmit_sequence.xmit_len =
11109 wqe->xmit_sequence.bde.tus.f.bdeSize;
11112 void
11113 lpfc_sli_prep_xmit_seq64(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocbq,
11114 struct lpfc_dmabuf *bmp, u16 rpi, u16 ox_id,
11115 u32 num_entry, u8 rctl, u8 last_seq, u8 cr_cx_cmd)
11117 phba->__lpfc_sli_prep_xmit_seq64(cmdiocbq, bmp, rpi, ox_id, num_entry,
11118 rctl, last_seq, cr_cx_cmd);
11121 static void
11122 __lpfc_sli_prep_abort_xri_s3(struct lpfc_iocbq *cmdiocbq, u16 ulp_context,
11123 u16 iotag, u8 ulp_class, u16 cqid, bool ia,
11124 bool wqec)
11126 IOCB_t *icmd = NULL;
11128 icmd = &cmdiocbq->iocb;
11129 memset(icmd, 0, sizeof(*icmd));
11131 /* Word 5 */
11132 icmd->un.acxri.abortContextTag = ulp_context;
11133 icmd->un.acxri.abortIoTag = iotag;
11135 if (ia) {
11136 /* Word 7 */
11137 icmd->ulpCommand = CMD_CLOSE_XRI_CN;
11138 } else {
11139 /* Word 3 */
11140 icmd->un.acxri.abortType = ABORT_TYPE_ABTS;
11142 /* Word 7 */
11143 icmd->ulpClass = ulp_class;
11144 icmd->ulpCommand = CMD_ABORT_XRI_CN;
11147 /* Word 7 */
11148 icmd->ulpLe = 1;
11151 static void
11152 __lpfc_sli_prep_abort_xri_s4(struct lpfc_iocbq *cmdiocbq, u16 ulp_context,
11153 u16 iotag, u8 ulp_class, u16 cqid, bool ia,
11154 bool wqec)
11156 union lpfc_wqe128 *wqe;
11158 wqe = &cmdiocbq->wqe;
11159 memset(wqe, 0, sizeof(*wqe));
11161 /* Word 3 */
11162 bf_set(abort_cmd_criteria, &wqe->abort_cmd, T_XRI_TAG);
11163 if (ia)
11164 bf_set(abort_cmd_ia, &wqe->abort_cmd, 1);
11165 else
11166 bf_set(abort_cmd_ia, &wqe->abort_cmd, 0);
11168 /* Word 7 */
11169 bf_set(wqe_cmnd, &wqe->abort_cmd.wqe_com, CMD_ABORT_XRI_WQE);
11171 /* Word 8 */
11172 wqe->abort_cmd.wqe_com.abort_tag = ulp_context;
11174 /* Word 9 */
11175 bf_set(wqe_reqtag, &wqe->abort_cmd.wqe_com, iotag);
11177 /* Word 10 */
11178 bf_set(wqe_qosd, &wqe->abort_cmd.wqe_com, 1);
11180 /* Word 11 */
11181 if (wqec)
11182 bf_set(wqe_wqec, &wqe->abort_cmd.wqe_com, 1);
11183 bf_set(wqe_cqid, &wqe->abort_cmd.wqe_com, cqid);
11184 bf_set(wqe_cmd_type, &wqe->abort_cmd.wqe_com, OTHER_COMMAND);
11187 void
11188 lpfc_sli_prep_abort_xri(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocbq,
11189 u16 ulp_context, u16 iotag, u8 ulp_class, u16 cqid,
11190 bool ia, bool wqec)
11192 phba->__lpfc_sli_prep_abort_xri(cmdiocbq, ulp_context, iotag, ulp_class,
11193 cqid, ia, wqec);
11197 * lpfc_sli_api_table_setup - Set up sli api function jump table
11198 * @phba: The hba struct for which this call is being executed.
11199 * @dev_grp: The HBA PCI-Device group number.
11201 * This routine sets up the SLI interface API function jump table in @phba
11202 * struct.
11203 * Returns: 0 - success, -ENODEV - failure.
11206 lpfc_sli_api_table_setup(struct lpfc_hba *phba, uint8_t dev_grp)
11209 switch (dev_grp) {
11210 case LPFC_PCI_DEV_LP:
11211 phba->__lpfc_sli_issue_iocb = __lpfc_sli_issue_iocb_s3;
11212 phba->__lpfc_sli_release_iocbq = __lpfc_sli_release_iocbq_s3;
11213 phba->__lpfc_sli_issue_fcp_io = __lpfc_sli_issue_fcp_io_s3;
11214 phba->__lpfc_sli_prep_els_req_rsp = __lpfc_sli_prep_els_req_rsp_s3;
11215 phba->__lpfc_sli_prep_gen_req = __lpfc_sli_prep_gen_req_s3;
11216 phba->__lpfc_sli_prep_xmit_seq64 = __lpfc_sli_prep_xmit_seq64_s3;
11217 phba->__lpfc_sli_prep_abort_xri = __lpfc_sli_prep_abort_xri_s3;
11218 break;
11219 case LPFC_PCI_DEV_OC:
11220 phba->__lpfc_sli_issue_iocb = __lpfc_sli_issue_iocb_s4;
11221 phba->__lpfc_sli_release_iocbq = __lpfc_sli_release_iocbq_s4;
11222 phba->__lpfc_sli_issue_fcp_io = __lpfc_sli_issue_fcp_io_s4;
11223 phba->__lpfc_sli_prep_els_req_rsp = __lpfc_sli_prep_els_req_rsp_s4;
11224 phba->__lpfc_sli_prep_gen_req = __lpfc_sli_prep_gen_req_s4;
11225 phba->__lpfc_sli_prep_xmit_seq64 = __lpfc_sli_prep_xmit_seq64_s4;
11226 phba->__lpfc_sli_prep_abort_xri = __lpfc_sli_prep_abort_xri_s4;
11227 break;
11228 default:
11229 lpfc_printf_log(phba, KERN_ERR, LOG_INIT,
11230 "1419 Invalid HBA PCI-device group: 0x%x\n",
11231 dev_grp);
11232 return -ENODEV;
11234 return 0;
11238 * lpfc_sli4_calc_ring - Calculates which ring to use
11239 * @phba: Pointer to HBA context object.
11240 * @piocb: Pointer to command iocb.
11242 * For SLI4 only, FCP IO can deferred to one fo many WQs, based on
11243 * hba_wqidx, thus we need to calculate the corresponding ring.
11244 * Since ABORTS must go on the same WQ of the command they are
11245 * aborting, we use command's hba_wqidx.
11247 struct lpfc_sli_ring *
11248 lpfc_sli4_calc_ring(struct lpfc_hba *phba, struct lpfc_iocbq *piocb)
11250 struct lpfc_io_buf *lpfc_cmd;
11252 if (piocb->cmd_flag & (LPFC_IO_FCP | LPFC_USE_FCPWQIDX)) {
11253 if (unlikely(!phba->sli4_hba.hdwq))
11254 return NULL;
11256 * for abort iocb hba_wqidx should already
11257 * be setup based on what work queue we used.
11259 if (!(piocb->cmd_flag & LPFC_USE_FCPWQIDX)) {
11260 lpfc_cmd = piocb->io_buf;
11261 piocb->hba_wqidx = lpfc_cmd->hdwq_no;
11263 return phba->sli4_hba.hdwq[piocb->hba_wqidx].io_wq->pring;
11264 } else {
11265 if (unlikely(!phba->sli4_hba.els_wq))
11266 return NULL;
11267 piocb->hba_wqidx = 0;
11268 return phba->sli4_hba.els_wq->pring;
11272 inline void lpfc_sli4_poll_eq(struct lpfc_queue *eq)
11274 struct lpfc_hba *phba = eq->phba;
11277 * Unlocking an irq is one of the entry point to check
11278 * for re-schedule, but we are good for io submission
11279 * path as midlayer does a get_cpu to glue us in. Flush
11280 * out the invalidate queue so we can see the updated
11281 * value for flag.
11283 smp_rmb();
11285 if (READ_ONCE(eq->mode) == LPFC_EQ_POLL)
11286 /* We will not likely get the completion for the caller
11287 * during this iteration but i guess that's fine.
11288 * Future io's coming on this eq should be able to
11289 * pick it up. As for the case of single io's, they
11290 * will be handled through a sched from polling timer
11291 * function which is currently triggered every 1msec.
11293 lpfc_sli4_process_eq(phba, eq, LPFC_QUEUE_NOARM,
11294 LPFC_QUEUE_WORK);
11298 * lpfc_sli_issue_iocb - Wrapper function for __lpfc_sli_issue_iocb
11299 * @phba: Pointer to HBA context object.
11300 * @ring_number: Ring number
11301 * @piocb: Pointer to command iocb.
11302 * @flag: Flag indicating if this command can be put into txq.
11304 * lpfc_sli_issue_iocb is a wrapper around __lpfc_sli_issue_iocb
11305 * function. This function gets the hbalock and calls
11306 * __lpfc_sli_issue_iocb function and will return the error returned
11307 * by __lpfc_sli_issue_iocb function. This wrapper is used by
11308 * functions which do not hold hbalock.
11311 lpfc_sli_issue_iocb(struct lpfc_hba *phba, uint32_t ring_number,
11312 struct lpfc_iocbq *piocb, uint32_t flag)
11314 struct lpfc_sli_ring *pring;
11315 struct lpfc_queue *eq;
11316 unsigned long iflags;
11317 int rc;
11319 /* If the PCI channel is in offline state, do not post iocbs. */
11320 if (unlikely(pci_channel_offline(phba->pcidev)))
11321 return IOCB_ERROR;
11323 if (phba->sli_rev == LPFC_SLI_REV4) {
11324 lpfc_sli_prep_wqe(phba, piocb);
11326 eq = phba->sli4_hba.hdwq[piocb->hba_wqidx].hba_eq;
11328 pring = lpfc_sli4_calc_ring(phba, piocb);
11329 if (unlikely(pring == NULL))
11330 return IOCB_ERROR;
11332 spin_lock_irqsave(&pring->ring_lock, iflags);
11333 rc = __lpfc_sli_issue_iocb(phba, ring_number, piocb, flag);
11334 spin_unlock_irqrestore(&pring->ring_lock, iflags);
11336 lpfc_sli4_poll_eq(eq);
11337 } else {
11338 /* For now, SLI2/3 will still use hbalock */
11339 spin_lock_irqsave(&phba->hbalock, iflags);
11340 rc = __lpfc_sli_issue_iocb(phba, ring_number, piocb, flag);
11341 spin_unlock_irqrestore(&phba->hbalock, iflags);
11343 return rc;
11347 * lpfc_extra_ring_setup - Extra ring setup function
11348 * @phba: Pointer to HBA context object.
11350 * This function is called while driver attaches with the
11351 * HBA to setup the extra ring. The extra ring is used
11352 * only when driver needs to support target mode functionality
11353 * or IP over FC functionalities.
11355 * This function is called with no lock held. SLI3 only.
11357 static int
11358 lpfc_extra_ring_setup( struct lpfc_hba *phba)
11360 struct lpfc_sli *psli;
11361 struct lpfc_sli_ring *pring;
11363 psli = &phba->sli;
11365 /* Adjust cmd/rsp ring iocb entries more evenly */
11367 /* Take some away from the FCP ring */
11368 pring = &psli->sli3_ring[LPFC_FCP_RING];
11369 pring->sli.sli3.numCiocb -= SLI2_IOCB_CMD_R1XTRA_ENTRIES;
11370 pring->sli.sli3.numRiocb -= SLI2_IOCB_RSP_R1XTRA_ENTRIES;
11371 pring->sli.sli3.numCiocb -= SLI2_IOCB_CMD_R3XTRA_ENTRIES;
11372 pring->sli.sli3.numRiocb -= SLI2_IOCB_RSP_R3XTRA_ENTRIES;
11374 /* and give them to the extra ring */
11375 pring = &psli->sli3_ring[LPFC_EXTRA_RING];
11377 pring->sli.sli3.numCiocb += SLI2_IOCB_CMD_R1XTRA_ENTRIES;
11378 pring->sli.sli3.numRiocb += SLI2_IOCB_RSP_R1XTRA_ENTRIES;
11379 pring->sli.sli3.numCiocb += SLI2_IOCB_CMD_R3XTRA_ENTRIES;
11380 pring->sli.sli3.numRiocb += SLI2_IOCB_RSP_R3XTRA_ENTRIES;
11382 /* Setup default profile for this ring */
11383 pring->iotag_max = 4096;
11384 pring->num_mask = 1;
11385 pring->prt[0].profile = 0; /* Mask 0 */
11386 pring->prt[0].rctl = phba->cfg_multi_ring_rctl;
11387 pring->prt[0].type = phba->cfg_multi_ring_type;
11388 pring->prt[0].lpfc_sli_rcv_unsol_event = NULL;
11389 return 0;
11392 static void
11393 lpfc_sli_post_recovery_event(struct lpfc_hba *phba,
11394 struct lpfc_nodelist *ndlp)
11396 unsigned long iflags;
11397 struct lpfc_work_evt *evtp = &ndlp->recovery_evt;
11399 /* Hold a node reference for outstanding queued work */
11400 if (!lpfc_nlp_get(ndlp))
11401 return;
11403 spin_lock_irqsave(&phba->hbalock, iflags);
11404 if (!list_empty(&evtp->evt_listp)) {
11405 spin_unlock_irqrestore(&phba->hbalock, iflags);
11406 lpfc_nlp_put(ndlp);
11407 return;
11410 evtp->evt_arg1 = ndlp;
11411 evtp->evt = LPFC_EVT_RECOVER_PORT;
11412 list_add_tail(&evtp->evt_listp, &phba->work_list);
11413 spin_unlock_irqrestore(&phba->hbalock, iflags);
11415 lpfc_worker_wake_up(phba);
11418 /* lpfc_sli_abts_err_handler - handle a failed ABTS request from an SLI3 port.
11419 * @phba: Pointer to HBA context object.
11420 * @iocbq: Pointer to iocb object.
11422 * The async_event handler calls this routine when it receives
11423 * an ASYNC_STATUS_CN event from the port. The port generates
11424 * this event when an Abort Sequence request to an rport fails
11425 * twice in succession. The abort could be originated by the
11426 * driver or by the port. The ABTS could have been for an ELS
11427 * or FCP IO. The port only generates this event when an ABTS
11428 * fails to complete after one retry.
11430 static void
11431 lpfc_sli_abts_err_handler(struct lpfc_hba *phba,
11432 struct lpfc_iocbq *iocbq)
11434 struct lpfc_nodelist *ndlp = NULL;
11435 uint16_t rpi = 0, vpi = 0;
11436 struct lpfc_vport *vport = NULL;
11438 /* The rpi in the ulpContext is vport-sensitive. */
11439 vpi = iocbq->iocb.un.asyncstat.sub_ctxt_tag;
11440 rpi = iocbq->iocb.ulpContext;
11442 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
11443 "3092 Port generated ABTS async event "
11444 "on vpi %d rpi %d status 0x%x\n",
11445 vpi, rpi, iocbq->iocb.ulpStatus);
11447 vport = lpfc_find_vport_by_vpid(phba, vpi);
11448 if (!vport)
11449 goto err_exit;
11450 ndlp = lpfc_findnode_rpi(vport, rpi);
11451 if (!ndlp)
11452 goto err_exit;
11454 if (iocbq->iocb.ulpStatus == IOSTAT_LOCAL_REJECT)
11455 lpfc_sli_abts_recover_port(vport, ndlp);
11456 return;
11458 err_exit:
11459 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
11460 "3095 Event Context not found, no "
11461 "action on vpi %d rpi %d status 0x%x, reason 0x%x\n",
11462 vpi, rpi, iocbq->iocb.ulpStatus,
11463 iocbq->iocb.ulpContext);
11466 /* lpfc_sli4_abts_err_handler - handle a failed ABTS request from an SLI4 port.
11467 * @phba: pointer to HBA context object.
11468 * @ndlp: nodelist pointer for the impacted rport.
11469 * @axri: pointer to the wcqe containing the failed exchange.
11471 * The driver calls this routine when it receives an ABORT_XRI_FCP CQE from the
11472 * port. The port generates this event when an abort exchange request to an
11473 * rport fails twice in succession with no reply. The abort could be originated
11474 * by the driver or by the port. The ABTS could have been for an ELS or FCP IO.
11476 void
11477 lpfc_sli4_abts_err_handler(struct lpfc_hba *phba,
11478 struct lpfc_nodelist *ndlp,
11479 struct sli4_wcqe_xri_aborted *axri)
11481 uint32_t ext_status = 0;
11483 if (!ndlp) {
11484 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
11485 "3115 Node Context not found, driver "
11486 "ignoring abts err event\n");
11487 return;
11490 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
11491 "3116 Port generated FCP XRI ABORT event on "
11492 "vpi %d rpi %d xri x%x status 0x%x parameter x%x\n",
11493 ndlp->vport->vpi, phba->sli4_hba.rpi_ids[ndlp->nlp_rpi],
11494 bf_get(lpfc_wcqe_xa_xri, axri),
11495 bf_get(lpfc_wcqe_xa_status, axri),
11496 axri->parameter);
11499 * Catch the ABTS protocol failure case. Older OCe FW releases returned
11500 * LOCAL_REJECT and 0 for a failed ABTS exchange and later OCe and
11501 * LPe FW releases returned LOCAL_REJECT and SEQUENCE_TIMEOUT.
11503 ext_status = axri->parameter & IOERR_PARAM_MASK;
11504 if ((bf_get(lpfc_wcqe_xa_status, axri) == IOSTAT_LOCAL_REJECT) &&
11505 ((ext_status == IOERR_SEQUENCE_TIMEOUT) || (ext_status == 0)))
11506 lpfc_sli_post_recovery_event(phba, ndlp);
11510 * lpfc_sli_async_event_handler - ASYNC iocb handler function
11511 * @phba: Pointer to HBA context object.
11512 * @pring: Pointer to driver SLI ring object.
11513 * @iocbq: Pointer to iocb object.
11515 * This function is called by the slow ring event handler
11516 * function when there is an ASYNC event iocb in the ring.
11517 * This function is called with no lock held.
11518 * Currently this function handles only temperature related
11519 * ASYNC events. The function decodes the temperature sensor
11520 * event message and posts events for the management applications.
11522 static void
11523 lpfc_sli_async_event_handler(struct lpfc_hba * phba,
11524 struct lpfc_sli_ring * pring, struct lpfc_iocbq * iocbq)
11526 IOCB_t *icmd;
11527 uint16_t evt_code;
11528 struct temp_event temp_event_data;
11529 struct Scsi_Host *shost;
11530 uint32_t *iocb_w;
11532 icmd = &iocbq->iocb;
11533 evt_code = icmd->un.asyncstat.evt_code;
11535 switch (evt_code) {
11536 case ASYNC_TEMP_WARN:
11537 case ASYNC_TEMP_SAFE:
11538 temp_event_data.data = (uint32_t) icmd->ulpContext;
11539 temp_event_data.event_type = FC_REG_TEMPERATURE_EVENT;
11540 if (evt_code == ASYNC_TEMP_WARN) {
11541 temp_event_data.event_code = LPFC_THRESHOLD_TEMP;
11542 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
11543 "0347 Adapter is very hot, please take "
11544 "corrective action. temperature : %d Celsius\n",
11545 (uint32_t) icmd->ulpContext);
11546 } else {
11547 temp_event_data.event_code = LPFC_NORMAL_TEMP;
11548 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
11549 "0340 Adapter temperature is OK now. "
11550 "temperature : %d Celsius\n",
11551 (uint32_t) icmd->ulpContext);
11554 /* Send temperature change event to applications */
11555 shost = lpfc_shost_from_vport(phba->pport);
11556 fc_host_post_vendor_event(shost, fc_get_event_number(),
11557 sizeof(temp_event_data), (char *) &temp_event_data,
11558 LPFC_NL_VENDOR_ID);
11559 break;
11560 case ASYNC_STATUS_CN:
11561 lpfc_sli_abts_err_handler(phba, iocbq);
11562 break;
11563 default:
11564 iocb_w = (uint32_t *) icmd;
11565 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
11566 "0346 Ring %d handler: unexpected ASYNC_STATUS"
11567 " evt_code 0x%x\n"
11568 "W0 0x%08x W1 0x%08x W2 0x%08x W3 0x%08x\n"
11569 "W4 0x%08x W5 0x%08x W6 0x%08x W7 0x%08x\n"
11570 "W8 0x%08x W9 0x%08x W10 0x%08x W11 0x%08x\n"
11571 "W12 0x%08x W13 0x%08x W14 0x%08x W15 0x%08x\n",
11572 pring->ringno, icmd->un.asyncstat.evt_code,
11573 iocb_w[0], iocb_w[1], iocb_w[2], iocb_w[3],
11574 iocb_w[4], iocb_w[5], iocb_w[6], iocb_w[7],
11575 iocb_w[8], iocb_w[9], iocb_w[10], iocb_w[11],
11576 iocb_w[12], iocb_w[13], iocb_w[14], iocb_w[15]);
11578 break;
11584 * lpfc_sli4_setup - SLI ring setup function
11585 * @phba: Pointer to HBA context object.
11587 * lpfc_sli_setup sets up rings of the SLI interface with
11588 * number of iocbs per ring and iotags. This function is
11589 * called while driver attach to the HBA and before the
11590 * interrupts are enabled. So there is no need for locking.
11592 * This function always returns 0.
11595 lpfc_sli4_setup(struct lpfc_hba *phba)
11597 struct lpfc_sli_ring *pring;
11599 pring = phba->sli4_hba.els_wq->pring;
11600 pring->num_mask = LPFC_MAX_RING_MASK;
11601 pring->prt[0].profile = 0; /* Mask 0 */
11602 pring->prt[0].rctl = FC_RCTL_ELS_REQ;
11603 pring->prt[0].type = FC_TYPE_ELS;
11604 pring->prt[0].lpfc_sli_rcv_unsol_event =
11605 lpfc_els_unsol_event;
11606 pring->prt[1].profile = 0; /* Mask 1 */
11607 pring->prt[1].rctl = FC_RCTL_ELS_REP;
11608 pring->prt[1].type = FC_TYPE_ELS;
11609 pring->prt[1].lpfc_sli_rcv_unsol_event =
11610 lpfc_els_unsol_event;
11611 pring->prt[2].profile = 0; /* Mask 2 */
11612 /* NameServer Inquiry */
11613 pring->prt[2].rctl = FC_RCTL_DD_UNSOL_CTL;
11614 /* NameServer */
11615 pring->prt[2].type = FC_TYPE_CT;
11616 pring->prt[2].lpfc_sli_rcv_unsol_event =
11617 lpfc_ct_unsol_event;
11618 pring->prt[3].profile = 0; /* Mask 3 */
11619 /* NameServer response */
11620 pring->prt[3].rctl = FC_RCTL_DD_SOL_CTL;
11621 /* NameServer */
11622 pring->prt[3].type = FC_TYPE_CT;
11623 pring->prt[3].lpfc_sli_rcv_unsol_event =
11624 lpfc_ct_unsol_event;
11625 return 0;
11629 * lpfc_sli_setup - SLI ring setup function
11630 * @phba: Pointer to HBA context object.
11632 * lpfc_sli_setup sets up rings of the SLI interface with
11633 * number of iocbs per ring and iotags. This function is
11634 * called while driver attach to the HBA and before the
11635 * interrupts are enabled. So there is no need for locking.
11637 * This function always returns 0. SLI3 only.
11640 lpfc_sli_setup(struct lpfc_hba *phba)
11642 int i, totiocbsize = 0;
11643 struct lpfc_sli *psli = &phba->sli;
11644 struct lpfc_sli_ring *pring;
11646 psli->num_rings = MAX_SLI3_CONFIGURED_RINGS;
11647 psli->sli_flag = 0;
11649 psli->iocbq_lookup = NULL;
11650 psli->iocbq_lookup_len = 0;
11651 psli->last_iotag = 0;
11653 for (i = 0; i < psli->num_rings; i++) {
11654 pring = &psli->sli3_ring[i];
11655 switch (i) {
11656 case LPFC_FCP_RING: /* ring 0 - FCP */
11657 /* numCiocb and numRiocb are used in config_port */
11658 pring->sli.sli3.numCiocb = SLI2_IOCB_CMD_R0_ENTRIES;
11659 pring->sli.sli3.numRiocb = SLI2_IOCB_RSP_R0_ENTRIES;
11660 pring->sli.sli3.numCiocb +=
11661 SLI2_IOCB_CMD_R1XTRA_ENTRIES;
11662 pring->sli.sli3.numRiocb +=
11663 SLI2_IOCB_RSP_R1XTRA_ENTRIES;
11664 pring->sli.sli3.numCiocb +=
11665 SLI2_IOCB_CMD_R3XTRA_ENTRIES;
11666 pring->sli.sli3.numRiocb +=
11667 SLI2_IOCB_RSP_R3XTRA_ENTRIES;
11668 pring->sli.sli3.sizeCiocb = (phba->sli_rev == 3) ?
11669 SLI3_IOCB_CMD_SIZE :
11670 SLI2_IOCB_CMD_SIZE;
11671 pring->sli.sli3.sizeRiocb = (phba->sli_rev == 3) ?
11672 SLI3_IOCB_RSP_SIZE :
11673 SLI2_IOCB_RSP_SIZE;
11674 pring->iotag_ctr = 0;
11675 pring->iotag_max =
11676 (phba->cfg_hba_queue_depth * 2);
11677 pring->fast_iotag = pring->iotag_max;
11678 pring->num_mask = 0;
11679 break;
11680 case LPFC_EXTRA_RING: /* ring 1 - EXTRA */
11681 /* numCiocb and numRiocb are used in config_port */
11682 pring->sli.sli3.numCiocb = SLI2_IOCB_CMD_R1_ENTRIES;
11683 pring->sli.sli3.numRiocb = SLI2_IOCB_RSP_R1_ENTRIES;
11684 pring->sli.sli3.sizeCiocb = (phba->sli_rev == 3) ?
11685 SLI3_IOCB_CMD_SIZE :
11686 SLI2_IOCB_CMD_SIZE;
11687 pring->sli.sli3.sizeRiocb = (phba->sli_rev == 3) ?
11688 SLI3_IOCB_RSP_SIZE :
11689 SLI2_IOCB_RSP_SIZE;
11690 pring->iotag_max = phba->cfg_hba_queue_depth;
11691 pring->num_mask = 0;
11692 break;
11693 case LPFC_ELS_RING: /* ring 2 - ELS / CT */
11694 /* numCiocb and numRiocb are used in config_port */
11695 pring->sli.sli3.numCiocb = SLI2_IOCB_CMD_R2_ENTRIES;
11696 pring->sli.sli3.numRiocb = SLI2_IOCB_RSP_R2_ENTRIES;
11697 pring->sli.sli3.sizeCiocb = (phba->sli_rev == 3) ?
11698 SLI3_IOCB_CMD_SIZE :
11699 SLI2_IOCB_CMD_SIZE;
11700 pring->sli.sli3.sizeRiocb = (phba->sli_rev == 3) ?
11701 SLI3_IOCB_RSP_SIZE :
11702 SLI2_IOCB_RSP_SIZE;
11703 pring->fast_iotag = 0;
11704 pring->iotag_ctr = 0;
11705 pring->iotag_max = 4096;
11706 pring->lpfc_sli_rcv_async_status =
11707 lpfc_sli_async_event_handler;
11708 pring->num_mask = LPFC_MAX_RING_MASK;
11709 pring->prt[0].profile = 0; /* Mask 0 */
11710 pring->prt[0].rctl = FC_RCTL_ELS_REQ;
11711 pring->prt[0].type = FC_TYPE_ELS;
11712 pring->prt[0].lpfc_sli_rcv_unsol_event =
11713 lpfc_els_unsol_event;
11714 pring->prt[1].profile = 0; /* Mask 1 */
11715 pring->prt[1].rctl = FC_RCTL_ELS_REP;
11716 pring->prt[1].type = FC_TYPE_ELS;
11717 pring->prt[1].lpfc_sli_rcv_unsol_event =
11718 lpfc_els_unsol_event;
11719 pring->prt[2].profile = 0; /* Mask 2 */
11720 /* NameServer Inquiry */
11721 pring->prt[2].rctl = FC_RCTL_DD_UNSOL_CTL;
11722 /* NameServer */
11723 pring->prt[2].type = FC_TYPE_CT;
11724 pring->prt[2].lpfc_sli_rcv_unsol_event =
11725 lpfc_ct_unsol_event;
11726 pring->prt[3].profile = 0; /* Mask 3 */
11727 /* NameServer response */
11728 pring->prt[3].rctl = FC_RCTL_DD_SOL_CTL;
11729 /* NameServer */
11730 pring->prt[3].type = FC_TYPE_CT;
11731 pring->prt[3].lpfc_sli_rcv_unsol_event =
11732 lpfc_ct_unsol_event;
11733 break;
11735 totiocbsize += (pring->sli.sli3.numCiocb *
11736 pring->sli.sli3.sizeCiocb) +
11737 (pring->sli.sli3.numRiocb * pring->sli.sli3.sizeRiocb);
11739 if (totiocbsize > MAX_SLIM_IOCB_SIZE) {
11740 /* Too many cmd / rsp ring entries in SLI2 SLIM */
11741 printk(KERN_ERR "%d:0462 Too many cmd / rsp ring entries in "
11742 "SLI2 SLIM Data: x%x x%lx\n",
11743 phba->brd_no, totiocbsize,
11744 (unsigned long) MAX_SLIM_IOCB_SIZE);
11746 if (phba->cfg_multi_ring_support == 2)
11747 lpfc_extra_ring_setup(phba);
11749 return 0;
11753 * lpfc_sli4_queue_init - Queue initialization function
11754 * @phba: Pointer to HBA context object.
11756 * lpfc_sli4_queue_init sets up mailbox queues and iocb queues for each
11757 * ring. This function also initializes ring indices of each ring.
11758 * This function is called during the initialization of the SLI
11759 * interface of an HBA.
11760 * This function is called with no lock held and always returns
11761 * 1.
11763 void
11764 lpfc_sli4_queue_init(struct lpfc_hba *phba)
11766 struct lpfc_sli *psli;
11767 struct lpfc_sli_ring *pring;
11768 int i;
11770 psli = &phba->sli;
11771 spin_lock_irq(&phba->hbalock);
11772 INIT_LIST_HEAD(&psli->mboxq);
11773 INIT_LIST_HEAD(&psli->mboxq_cmpl);
11774 /* Initialize list headers for txq and txcmplq as double linked lists */
11775 for (i = 0; i < phba->cfg_hdw_queue; i++) {
11776 pring = phba->sli4_hba.hdwq[i].io_wq->pring;
11777 pring->flag = 0;
11778 pring->ringno = LPFC_FCP_RING;
11779 pring->txcmplq_cnt = 0;
11780 INIT_LIST_HEAD(&pring->txq);
11781 INIT_LIST_HEAD(&pring->txcmplq);
11782 INIT_LIST_HEAD(&pring->iocb_continueq);
11783 spin_lock_init(&pring->ring_lock);
11785 pring = phba->sli4_hba.els_wq->pring;
11786 pring->flag = 0;
11787 pring->ringno = LPFC_ELS_RING;
11788 pring->txcmplq_cnt = 0;
11789 INIT_LIST_HEAD(&pring->txq);
11790 INIT_LIST_HEAD(&pring->txcmplq);
11791 INIT_LIST_HEAD(&pring->iocb_continueq);
11792 spin_lock_init(&pring->ring_lock);
11794 if (phba->cfg_enable_fc4_type & LPFC_ENABLE_NVME) {
11795 pring = phba->sli4_hba.nvmels_wq->pring;
11796 pring->flag = 0;
11797 pring->ringno = LPFC_ELS_RING;
11798 pring->txcmplq_cnt = 0;
11799 INIT_LIST_HEAD(&pring->txq);
11800 INIT_LIST_HEAD(&pring->txcmplq);
11801 INIT_LIST_HEAD(&pring->iocb_continueq);
11802 spin_lock_init(&pring->ring_lock);
11805 spin_unlock_irq(&phba->hbalock);
11809 * lpfc_sli_queue_init - Queue initialization function
11810 * @phba: Pointer to HBA context object.
11812 * lpfc_sli_queue_init sets up mailbox queues and iocb queues for each
11813 * ring. This function also initializes ring indices of each ring.
11814 * This function is called during the initialization of the SLI
11815 * interface of an HBA.
11816 * This function is called with no lock held and always returns
11817 * 1.
11819 void
11820 lpfc_sli_queue_init(struct lpfc_hba *phba)
11822 struct lpfc_sli *psli;
11823 struct lpfc_sli_ring *pring;
11824 int i;
11826 psli = &phba->sli;
11827 spin_lock_irq(&phba->hbalock);
11828 INIT_LIST_HEAD(&psli->mboxq);
11829 INIT_LIST_HEAD(&psli->mboxq_cmpl);
11830 /* Initialize list headers for txq and txcmplq as double linked lists */
11831 for (i = 0; i < psli->num_rings; i++) {
11832 pring = &psli->sli3_ring[i];
11833 pring->ringno = i;
11834 pring->sli.sli3.next_cmdidx = 0;
11835 pring->sli.sli3.local_getidx = 0;
11836 pring->sli.sli3.cmdidx = 0;
11837 INIT_LIST_HEAD(&pring->iocb_continueq);
11838 INIT_LIST_HEAD(&pring->iocb_continue_saveq);
11839 INIT_LIST_HEAD(&pring->postbufq);
11840 pring->flag = 0;
11841 INIT_LIST_HEAD(&pring->txq);
11842 INIT_LIST_HEAD(&pring->txcmplq);
11843 spin_lock_init(&pring->ring_lock);
11845 spin_unlock_irq(&phba->hbalock);
11849 * lpfc_sli_mbox_sys_flush - Flush mailbox command sub-system
11850 * @phba: Pointer to HBA context object.
11852 * This routine flushes the mailbox command subsystem. It will unconditionally
11853 * flush all the mailbox commands in the three possible stages in the mailbox
11854 * command sub-system: pending mailbox command queue; the outstanding mailbox
11855 * command; and completed mailbox command queue. It is caller's responsibility
11856 * to make sure that the driver is in the proper state to flush the mailbox
11857 * command sub-system. Namely, the posting of mailbox commands into the
11858 * pending mailbox command queue from the various clients must be stopped;
11859 * either the HBA is in a state that it will never works on the outstanding
11860 * mailbox command (such as in EEH or ERATT conditions) or the outstanding
11861 * mailbox command has been completed.
11863 static void
11864 lpfc_sli_mbox_sys_flush(struct lpfc_hba *phba)
11866 LIST_HEAD(completions);
11867 struct lpfc_sli *psli = &phba->sli;
11868 LPFC_MBOXQ_t *pmb;
11869 unsigned long iflag;
11871 /* Disable softirqs, including timers from obtaining phba->hbalock */
11872 local_bh_disable();
11874 /* Flush all the mailbox commands in the mbox system */
11875 spin_lock_irqsave(&phba->hbalock, iflag);
11877 /* The pending mailbox command queue */
11878 list_splice_init(&phba->sli.mboxq, &completions);
11879 /* The outstanding active mailbox command */
11880 if (psli->mbox_active) {
11881 list_add_tail(&psli->mbox_active->list, &completions);
11882 psli->mbox_active = NULL;
11883 psli->sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
11885 /* The completed mailbox command queue */
11886 list_splice_init(&phba->sli.mboxq_cmpl, &completions);
11887 spin_unlock_irqrestore(&phba->hbalock, iflag);
11889 /* Enable softirqs again, done with phba->hbalock */
11890 local_bh_enable();
11892 /* Return all flushed mailbox commands with MBX_NOT_FINISHED status */
11893 while (!list_empty(&completions)) {
11894 list_remove_head(&completions, pmb, LPFC_MBOXQ_t, list);
11895 pmb->u.mb.mbxStatus = MBX_NOT_FINISHED;
11896 if (pmb->mbox_cmpl)
11897 pmb->mbox_cmpl(phba, pmb);
11902 * lpfc_sli_host_down - Vport cleanup function
11903 * @vport: Pointer to virtual port object.
11905 * lpfc_sli_host_down is called to clean up the resources
11906 * associated with a vport before destroying virtual
11907 * port data structures.
11908 * This function does following operations:
11909 * - Free discovery resources associated with this virtual
11910 * port.
11911 * - Free iocbs associated with this virtual port in
11912 * the txq.
11913 * - Send abort for all iocb commands associated with this
11914 * vport in txcmplq.
11916 * This function is called with no lock held and always returns 1.
11919 lpfc_sli_host_down(struct lpfc_vport *vport)
11921 LIST_HEAD(completions);
11922 struct lpfc_hba *phba = vport->phba;
11923 struct lpfc_sli *psli = &phba->sli;
11924 struct lpfc_queue *qp = NULL;
11925 struct lpfc_sli_ring *pring;
11926 struct lpfc_iocbq *iocb, *next_iocb;
11927 int i;
11928 unsigned long flags = 0;
11929 uint16_t prev_pring_flag;
11931 lpfc_cleanup_discovery_resources(vport);
11933 spin_lock_irqsave(&phba->hbalock, flags);
11936 * Error everything on the txq since these iocbs
11937 * have not been given to the FW yet.
11938 * Also issue ABTS for everything on the txcmplq
11940 if (phba->sli_rev != LPFC_SLI_REV4) {
11941 for (i = 0; i < psli->num_rings; i++) {
11942 pring = &psli->sli3_ring[i];
11943 prev_pring_flag = pring->flag;
11944 /* Only slow rings */
11945 if (pring->ringno == LPFC_ELS_RING) {
11946 pring->flag |= LPFC_DEFERRED_RING_EVENT;
11947 /* Set the lpfc data pending flag */
11948 set_bit(LPFC_DATA_READY, &phba->data_flags);
11950 list_for_each_entry_safe(iocb, next_iocb,
11951 &pring->txq, list) {
11952 if (iocb->vport != vport)
11953 continue;
11954 list_move_tail(&iocb->list, &completions);
11956 list_for_each_entry_safe(iocb, next_iocb,
11957 &pring->txcmplq, list) {
11958 if (iocb->vport != vport)
11959 continue;
11960 lpfc_sli_issue_abort_iotag(phba, pring, iocb,
11961 NULL);
11963 pring->flag = prev_pring_flag;
11965 } else {
11966 list_for_each_entry(qp, &phba->sli4_hba.lpfc_wq_list, wq_list) {
11967 pring = qp->pring;
11968 if (!pring)
11969 continue;
11970 if (pring == phba->sli4_hba.els_wq->pring) {
11971 pring->flag |= LPFC_DEFERRED_RING_EVENT;
11972 /* Set the lpfc data pending flag */
11973 set_bit(LPFC_DATA_READY, &phba->data_flags);
11975 prev_pring_flag = pring->flag;
11976 spin_lock(&pring->ring_lock);
11977 list_for_each_entry_safe(iocb, next_iocb,
11978 &pring->txq, list) {
11979 if (iocb->vport != vport)
11980 continue;
11981 list_move_tail(&iocb->list, &completions);
11983 spin_unlock(&pring->ring_lock);
11984 list_for_each_entry_safe(iocb, next_iocb,
11985 &pring->txcmplq, list) {
11986 if (iocb->vport != vport)
11987 continue;
11988 lpfc_sli_issue_abort_iotag(phba, pring, iocb,
11989 NULL);
11991 pring->flag = prev_pring_flag;
11994 spin_unlock_irqrestore(&phba->hbalock, flags);
11996 /* Make sure HBA is alive */
11997 lpfc_issue_hb_tmo(phba);
11999 /* Cancel all the IOCBs from the completions list */
12000 lpfc_sli_cancel_iocbs(phba, &completions, IOSTAT_LOCAL_REJECT,
12001 IOERR_SLI_DOWN);
12002 return 1;
12006 * lpfc_sli_hba_down - Resource cleanup function for the HBA
12007 * @phba: Pointer to HBA context object.
12009 * This function cleans up all iocb, buffers, mailbox commands
12010 * while shutting down the HBA. This function is called with no
12011 * lock held and always returns 1.
12012 * This function does the following to cleanup driver resources:
12013 * - Free discovery resources for each virtual port
12014 * - Cleanup any pending fabric iocbs
12015 * - Iterate through the iocb txq and free each entry
12016 * in the list.
12017 * - Free up any buffer posted to the HBA
12018 * - Free mailbox commands in the mailbox queue.
12021 lpfc_sli_hba_down(struct lpfc_hba *phba)
12023 LIST_HEAD(completions);
12024 struct lpfc_sli *psli = &phba->sli;
12025 struct lpfc_queue *qp = NULL;
12026 struct lpfc_sli_ring *pring;
12027 struct lpfc_dmabuf *buf_ptr;
12028 unsigned long flags = 0;
12029 int i;
12031 /* Shutdown the mailbox command sub-system */
12032 lpfc_sli_mbox_sys_shutdown(phba, LPFC_MBX_WAIT);
12034 lpfc_hba_down_prep(phba);
12036 /* Disable softirqs, including timers from obtaining phba->hbalock */
12037 local_bh_disable();
12039 lpfc_fabric_abort_hba(phba);
12041 spin_lock_irqsave(&phba->hbalock, flags);
12044 * Error everything on the txq since these iocbs
12045 * have not been given to the FW yet.
12047 if (phba->sli_rev != LPFC_SLI_REV4) {
12048 for (i = 0; i < psli->num_rings; i++) {
12049 pring = &psli->sli3_ring[i];
12050 /* Only slow rings */
12051 if (pring->ringno == LPFC_ELS_RING) {
12052 pring->flag |= LPFC_DEFERRED_RING_EVENT;
12053 /* Set the lpfc data pending flag */
12054 set_bit(LPFC_DATA_READY, &phba->data_flags);
12056 list_splice_init(&pring->txq, &completions);
12058 } else {
12059 list_for_each_entry(qp, &phba->sli4_hba.lpfc_wq_list, wq_list) {
12060 pring = qp->pring;
12061 if (!pring)
12062 continue;
12063 spin_lock(&pring->ring_lock);
12064 list_splice_init(&pring->txq, &completions);
12065 spin_unlock(&pring->ring_lock);
12066 if (pring == phba->sli4_hba.els_wq->pring) {
12067 pring->flag |= LPFC_DEFERRED_RING_EVENT;
12068 /* Set the lpfc data pending flag */
12069 set_bit(LPFC_DATA_READY, &phba->data_flags);
12073 spin_unlock_irqrestore(&phba->hbalock, flags);
12075 /* Cancel all the IOCBs from the completions list */
12076 lpfc_sli_cancel_iocbs(phba, &completions, IOSTAT_LOCAL_REJECT,
12077 IOERR_SLI_DOWN);
12079 spin_lock_irqsave(&phba->hbalock, flags);
12080 list_splice_init(&phba->elsbuf, &completions);
12081 phba->elsbuf_cnt = 0;
12082 phba->elsbuf_prev_cnt = 0;
12083 spin_unlock_irqrestore(&phba->hbalock, flags);
12085 while (!list_empty(&completions)) {
12086 list_remove_head(&completions, buf_ptr,
12087 struct lpfc_dmabuf, list);
12088 lpfc_mbuf_free(phba, buf_ptr->virt, buf_ptr->phys);
12089 kfree(buf_ptr);
12092 /* Enable softirqs again, done with phba->hbalock */
12093 local_bh_enable();
12095 /* Return any active mbox cmds */
12096 del_timer_sync(&psli->mbox_tmo);
12098 spin_lock_irqsave(&phba->pport->work_port_lock, flags);
12099 phba->pport->work_port_events &= ~WORKER_MBOX_TMO;
12100 spin_unlock_irqrestore(&phba->pport->work_port_lock, flags);
12102 return 1;
12106 * lpfc_sli_pcimem_bcopy - SLI memory copy function
12107 * @srcp: Source memory pointer.
12108 * @destp: Destination memory pointer.
12109 * @cnt: Number of words required to be copied.
12111 * This function is used for copying data between driver memory
12112 * and the SLI memory. This function also changes the endianness
12113 * of each word if native endianness is different from SLI
12114 * endianness. This function can be called with or without
12115 * lock.
12117 void
12118 lpfc_sli_pcimem_bcopy(void *srcp, void *destp, uint32_t cnt)
12120 uint32_t *src = srcp;
12121 uint32_t *dest = destp;
12122 uint32_t ldata;
12123 int i;
12125 for (i = 0; i < (int)cnt; i += sizeof (uint32_t)) {
12126 ldata = *src;
12127 ldata = le32_to_cpu(ldata);
12128 *dest = ldata;
12129 src++;
12130 dest++;
12136 * lpfc_sli_bemem_bcopy - SLI memory copy function
12137 * @srcp: Source memory pointer.
12138 * @destp: Destination memory pointer.
12139 * @cnt: Number of words required to be copied.
12141 * This function is used for copying data between a data structure
12142 * with big endian representation to local endianness.
12143 * This function can be called with or without lock.
12145 void
12146 lpfc_sli_bemem_bcopy(void *srcp, void *destp, uint32_t cnt)
12148 uint32_t *src = srcp;
12149 uint32_t *dest = destp;
12150 uint32_t ldata;
12151 int i;
12153 for (i = 0; i < (int)cnt; i += sizeof(uint32_t)) {
12154 ldata = *src;
12155 ldata = be32_to_cpu(ldata);
12156 *dest = ldata;
12157 src++;
12158 dest++;
12163 * lpfc_sli_ringpostbuf_put - Function to add a buffer to postbufq
12164 * @phba: Pointer to HBA context object.
12165 * @pring: Pointer to driver SLI ring object.
12166 * @mp: Pointer to driver buffer object.
12168 * This function is called with no lock held.
12169 * It always return zero after adding the buffer to the postbufq
12170 * buffer list.
12173 lpfc_sli_ringpostbuf_put(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
12174 struct lpfc_dmabuf *mp)
12176 /* Stick struct lpfc_dmabuf at end of postbufq so driver can look it up
12177 later */
12178 spin_lock_irq(&phba->hbalock);
12179 list_add_tail(&mp->list, &pring->postbufq);
12180 pring->postbufq_cnt++;
12181 spin_unlock_irq(&phba->hbalock);
12182 return 0;
12186 * lpfc_sli_get_buffer_tag - allocates a tag for a CMD_QUE_XRI64_CX buffer
12187 * @phba: Pointer to HBA context object.
12189 * When HBQ is enabled, buffers are searched based on tags. This function
12190 * allocates a tag for buffer posted using CMD_QUE_XRI64_CX iocb. The
12191 * tag is bit wise or-ed with QUE_BUFTAG_BIT to make sure that the tag
12192 * does not conflict with tags of buffer posted for unsolicited events.
12193 * The function returns the allocated tag. The function is called with
12194 * no locks held.
12196 uint32_t
12197 lpfc_sli_get_buffer_tag(struct lpfc_hba *phba)
12199 spin_lock_irq(&phba->hbalock);
12200 phba->buffer_tag_count++;
12202 * Always set the QUE_BUFTAG_BIT to distiguish between
12203 * a tag assigned by HBQ.
12205 phba->buffer_tag_count |= QUE_BUFTAG_BIT;
12206 spin_unlock_irq(&phba->hbalock);
12207 return phba->buffer_tag_count;
12211 * lpfc_sli_ring_taggedbuf_get - find HBQ buffer associated with given tag
12212 * @phba: Pointer to HBA context object.
12213 * @pring: Pointer to driver SLI ring object.
12214 * @tag: Buffer tag.
12216 * Buffers posted using CMD_QUE_XRI64_CX iocb are in pring->postbufq
12217 * list. After HBA DMA data to these buffers, CMD_IOCB_RET_XRI64_CX
12218 * iocb is posted to the response ring with the tag of the buffer.
12219 * This function searches the pring->postbufq list using the tag
12220 * to find buffer associated with CMD_IOCB_RET_XRI64_CX
12221 * iocb. If the buffer is found then lpfc_dmabuf object of the
12222 * buffer is returned to the caller else NULL is returned.
12223 * This function is called with no lock held.
12225 struct lpfc_dmabuf *
12226 lpfc_sli_ring_taggedbuf_get(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
12227 uint32_t tag)
12229 struct lpfc_dmabuf *mp, *next_mp;
12230 struct list_head *slp = &pring->postbufq;
12232 /* Search postbufq, from the beginning, looking for a match on tag */
12233 spin_lock_irq(&phba->hbalock);
12234 list_for_each_entry_safe(mp, next_mp, &pring->postbufq, list) {
12235 if (mp->buffer_tag == tag) {
12236 list_del_init(&mp->list);
12237 pring->postbufq_cnt--;
12238 spin_unlock_irq(&phba->hbalock);
12239 return mp;
12243 spin_unlock_irq(&phba->hbalock);
12244 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
12245 "0402 Cannot find virtual addr for buffer tag on "
12246 "ring %d Data x%lx x%px x%px x%x\n",
12247 pring->ringno, (unsigned long) tag,
12248 slp->next, slp->prev, pring->postbufq_cnt);
12250 return NULL;
12254 * lpfc_sli_ringpostbuf_get - search buffers for unsolicited CT and ELS events
12255 * @phba: Pointer to HBA context object.
12256 * @pring: Pointer to driver SLI ring object.
12257 * @phys: DMA address of the buffer.
12259 * This function searches the buffer list using the dma_address
12260 * of unsolicited event to find the driver's lpfc_dmabuf object
12261 * corresponding to the dma_address. The function returns the
12262 * lpfc_dmabuf object if a buffer is found else it returns NULL.
12263 * This function is called by the ct and els unsolicited event
12264 * handlers to get the buffer associated with the unsolicited
12265 * event.
12267 * This function is called with no lock held.
12269 struct lpfc_dmabuf *
12270 lpfc_sli_ringpostbuf_get(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
12271 dma_addr_t phys)
12273 struct lpfc_dmabuf *mp, *next_mp;
12274 struct list_head *slp = &pring->postbufq;
12276 /* Search postbufq, from the beginning, looking for a match on phys */
12277 spin_lock_irq(&phba->hbalock);
12278 list_for_each_entry_safe(mp, next_mp, &pring->postbufq, list) {
12279 if (mp->phys == phys) {
12280 list_del_init(&mp->list);
12281 pring->postbufq_cnt--;
12282 spin_unlock_irq(&phba->hbalock);
12283 return mp;
12287 spin_unlock_irq(&phba->hbalock);
12288 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
12289 "0410 Cannot find virtual addr for mapped buf on "
12290 "ring %d Data x%llx x%px x%px x%x\n",
12291 pring->ringno, (unsigned long long)phys,
12292 slp->next, slp->prev, pring->postbufq_cnt);
12293 return NULL;
12297 * lpfc_sli_abort_els_cmpl - Completion handler for the els abort iocbs
12298 * @phba: Pointer to HBA context object.
12299 * @cmdiocb: Pointer to driver command iocb object.
12300 * @rspiocb: Pointer to driver response iocb object.
12302 * This function is the completion handler for the abort iocbs for
12303 * ELS commands. This function is called from the ELS ring event
12304 * handler with no lock held. This function frees memory resources
12305 * associated with the abort iocb.
12307 static void
12308 lpfc_sli_abort_els_cmpl(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocb,
12309 struct lpfc_iocbq *rspiocb)
12311 u32 ulp_status = get_job_ulpstatus(phba, rspiocb);
12312 u32 ulp_word4 = get_job_word4(phba, rspiocb);
12313 u8 cmnd = get_job_cmnd(phba, cmdiocb);
12315 if (ulp_status) {
12317 * Assume that the port already completed and returned, or
12318 * will return the iocb. Just Log the message.
12320 if (phba->sli_rev < LPFC_SLI_REV4) {
12321 if (cmnd == CMD_ABORT_XRI_CX &&
12322 ulp_status == IOSTAT_LOCAL_REJECT &&
12323 ulp_word4 == IOERR_ABORT_REQUESTED) {
12324 goto release_iocb;
12329 lpfc_printf_log(phba, KERN_INFO, LOG_ELS | LOG_SLI,
12330 "0327 Abort els iocb complete x%px with io cmd xri %x "
12331 "abort tag x%x abort status %x abort code %x\n",
12332 cmdiocb, get_job_abtsiotag(phba, cmdiocb),
12333 (phba->sli_rev == LPFC_SLI_REV4) ?
12334 get_wqe_reqtag(cmdiocb) :
12335 cmdiocb->iocb.ulpIoTag,
12336 ulp_status, ulp_word4);
12337 release_iocb:
12338 lpfc_sli_release_iocbq(phba, cmdiocb);
12339 return;
12343 * lpfc_ignore_els_cmpl - Completion handler for aborted ELS command
12344 * @phba: Pointer to HBA context object.
12345 * @cmdiocb: Pointer to driver command iocb object.
12346 * @rspiocb: Pointer to driver response iocb object.
12348 * The function is called from SLI ring event handler with no
12349 * lock held. This function is the completion handler for ELS commands
12350 * which are aborted. The function frees memory resources used for
12351 * the aborted ELS commands.
12353 void
12354 lpfc_ignore_els_cmpl(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocb,
12355 struct lpfc_iocbq *rspiocb)
12357 struct lpfc_nodelist *ndlp = cmdiocb->ndlp;
12358 IOCB_t *irsp;
12359 LPFC_MBOXQ_t *mbox;
12360 u32 ulp_command, ulp_status, ulp_word4, iotag;
12362 ulp_command = get_job_cmnd(phba, cmdiocb);
12363 ulp_status = get_job_ulpstatus(phba, rspiocb);
12364 ulp_word4 = get_job_word4(phba, rspiocb);
12366 if (phba->sli_rev == LPFC_SLI_REV4) {
12367 iotag = get_wqe_reqtag(cmdiocb);
12368 } else {
12369 irsp = &rspiocb->iocb;
12370 iotag = irsp->ulpIoTag;
12372 /* It is possible a PLOGI_RJT for NPIV ports to get aborted.
12373 * The MBX_REG_LOGIN64 mbox command is freed back to the
12374 * mbox_mem_pool here.
12376 if (cmdiocb->context_un.mbox) {
12377 mbox = cmdiocb->context_un.mbox;
12378 lpfc_mbox_rsrc_cleanup(phba, mbox, MBOX_THD_UNLOCKED);
12379 cmdiocb->context_un.mbox = NULL;
12383 /* ELS cmd tag <ulpIoTag> completes */
12384 lpfc_printf_log(phba, KERN_INFO, LOG_ELS,
12385 "0139 Ignoring ELS cmd code x%x ref cnt x%x Data: "
12386 "x%x x%x x%x x%px\n",
12387 ulp_command, kref_read(&cmdiocb->ndlp->kref),
12388 ulp_status, ulp_word4, iotag, cmdiocb->ndlp);
12390 * Deref the ndlp after free_iocb. sli_release_iocb will access the ndlp
12391 * if exchange is busy.
12393 if (ulp_command == CMD_GEN_REQUEST64_CR)
12394 lpfc_ct_free_iocb(phba, cmdiocb);
12395 else
12396 lpfc_els_free_iocb(phba, cmdiocb);
12398 lpfc_nlp_put(ndlp);
12402 * lpfc_sli_issue_abort_iotag - Abort function for a command iocb
12403 * @phba: Pointer to HBA context object.
12404 * @pring: Pointer to driver SLI ring object.
12405 * @cmdiocb: Pointer to driver command iocb object.
12406 * @cmpl: completion function.
12408 * This function issues an abort iocb for the provided command iocb. In case
12409 * of unloading, the abort iocb will not be issued to commands on the ELS
12410 * ring. Instead, the callback function shall be changed to those commands
12411 * so that nothing happens when them finishes. This function is called with
12412 * hbalock held andno ring_lock held (SLI4). The function returns IOCB_SUCCESS
12413 * when the command iocb is an abort request.
12417 lpfc_sli_issue_abort_iotag(struct lpfc_hba *phba, struct lpfc_sli_ring *pring,
12418 struct lpfc_iocbq *cmdiocb, void *cmpl)
12420 struct lpfc_vport *vport = cmdiocb->vport;
12421 struct lpfc_iocbq *abtsiocbp;
12422 int retval = IOCB_ERROR;
12423 unsigned long iflags;
12424 struct lpfc_nodelist *ndlp = NULL;
12425 u32 ulp_command = get_job_cmnd(phba, cmdiocb);
12426 u16 ulp_context, iotag;
12427 bool ia;
12430 * There are certain command types we don't want to abort. And we
12431 * don't want to abort commands that are already in the process of
12432 * being aborted.
12434 if (ulp_command == CMD_ABORT_XRI_WQE ||
12435 ulp_command == CMD_ABORT_XRI_CN ||
12436 ulp_command == CMD_CLOSE_XRI_CN ||
12437 cmdiocb->cmd_flag & LPFC_DRIVER_ABORTED)
12438 return IOCB_ABORTING;
12440 if (!pring) {
12441 if (cmdiocb->cmd_flag & LPFC_IO_FABRIC)
12442 cmdiocb->fabric_cmd_cmpl = lpfc_ignore_els_cmpl;
12443 else
12444 cmdiocb->cmd_cmpl = lpfc_ignore_els_cmpl;
12445 return retval;
12449 * If we're unloading, don't abort iocb on the ELS ring, but change
12450 * the callback so that nothing happens when it finishes.
12452 if (test_bit(FC_UNLOADING, &vport->load_flag) &&
12453 pring->ringno == LPFC_ELS_RING) {
12454 if (cmdiocb->cmd_flag & LPFC_IO_FABRIC)
12455 cmdiocb->fabric_cmd_cmpl = lpfc_ignore_els_cmpl;
12456 else
12457 cmdiocb->cmd_cmpl = lpfc_ignore_els_cmpl;
12458 return retval;
12461 /* issue ABTS for this IOCB based on iotag */
12462 abtsiocbp = __lpfc_sli_get_iocbq(phba);
12463 if (abtsiocbp == NULL)
12464 return IOCB_NORESOURCE;
12466 /* This signals the response to set the correct status
12467 * before calling the completion handler
12469 cmdiocb->cmd_flag |= LPFC_DRIVER_ABORTED;
12471 if (phba->sli_rev == LPFC_SLI_REV4) {
12472 ulp_context = cmdiocb->sli4_xritag;
12473 iotag = abtsiocbp->iotag;
12474 } else {
12475 iotag = cmdiocb->iocb.ulpIoTag;
12476 if (pring->ringno == LPFC_ELS_RING) {
12477 ndlp = cmdiocb->ndlp;
12478 ulp_context = ndlp->nlp_rpi;
12479 } else {
12480 ulp_context = cmdiocb->iocb.ulpContext;
12484 /* Just close the exchange under certain conditions. */
12485 if (test_bit(FC_UNLOADING, &vport->load_flag) ||
12486 phba->link_state < LPFC_LINK_UP ||
12487 (phba->sli_rev == LPFC_SLI_REV4 &&
12488 phba->sli4_hba.link_state.status == LPFC_FC_LA_TYPE_LINK_DOWN) ||
12489 (phba->link_flag & LS_EXTERNAL_LOOPBACK))
12490 ia = true;
12491 else
12492 ia = false;
12494 lpfc_sli_prep_abort_xri(phba, abtsiocbp, ulp_context, iotag,
12495 cmdiocb->iocb.ulpClass,
12496 LPFC_WQE_CQ_ID_DEFAULT, ia, false);
12498 /* ABTS WQE must go to the same WQ as the WQE to be aborted */
12499 abtsiocbp->hba_wqidx = cmdiocb->hba_wqidx;
12500 if (cmdiocb->cmd_flag & LPFC_IO_FCP)
12501 abtsiocbp->cmd_flag |= (LPFC_IO_FCP | LPFC_USE_FCPWQIDX);
12503 if (cmdiocb->cmd_flag & LPFC_IO_FOF)
12504 abtsiocbp->cmd_flag |= LPFC_IO_FOF;
12506 if (cmpl)
12507 abtsiocbp->cmd_cmpl = cmpl;
12508 else
12509 abtsiocbp->cmd_cmpl = lpfc_sli_abort_els_cmpl;
12510 abtsiocbp->vport = vport;
12512 if (phba->sli_rev == LPFC_SLI_REV4) {
12513 pring = lpfc_sli4_calc_ring(phba, abtsiocbp);
12514 if (unlikely(pring == NULL))
12515 goto abort_iotag_exit;
12516 /* Note: both hbalock and ring_lock need to be set here */
12517 spin_lock_irqsave(&pring->ring_lock, iflags);
12518 retval = __lpfc_sli_issue_iocb(phba, pring->ringno,
12519 abtsiocbp, 0);
12520 spin_unlock_irqrestore(&pring->ring_lock, iflags);
12521 } else {
12522 retval = __lpfc_sli_issue_iocb(phba, pring->ringno,
12523 abtsiocbp, 0);
12526 abort_iotag_exit:
12528 lpfc_printf_vlog(vport, KERN_INFO, LOG_SLI,
12529 "0339 Abort IO XRI x%x, Original iotag x%x, "
12530 "abort tag x%x Cmdjob : x%px Abortjob : x%px "
12531 "retval x%x : IA %d cmd_cmpl %ps\n",
12532 ulp_context, (phba->sli_rev == LPFC_SLI_REV4) ?
12533 cmdiocb->iotag : iotag, iotag, cmdiocb, abtsiocbp,
12534 retval, ia, abtsiocbp->cmd_cmpl);
12535 if (retval) {
12536 cmdiocb->cmd_flag &= ~LPFC_DRIVER_ABORTED;
12537 __lpfc_sli_release_iocbq(phba, abtsiocbp);
12541 * Caller to this routine should check for IOCB_ERROR
12542 * and handle it properly. This routine no longer removes
12543 * iocb off txcmplq and call compl in case of IOCB_ERROR.
12545 return retval;
12549 * lpfc_sli_hba_iocb_abort - Abort all iocbs to an hba.
12550 * @phba: pointer to lpfc HBA data structure.
12552 * This routine will abort all pending and outstanding iocbs to an HBA.
12554 void
12555 lpfc_sli_hba_iocb_abort(struct lpfc_hba *phba)
12557 struct lpfc_sli *psli = &phba->sli;
12558 struct lpfc_sli_ring *pring;
12559 struct lpfc_queue *qp = NULL;
12560 int i;
12562 if (phba->sli_rev != LPFC_SLI_REV4) {
12563 for (i = 0; i < psli->num_rings; i++) {
12564 pring = &psli->sli3_ring[i];
12565 lpfc_sli_abort_iocb_ring(phba, pring);
12567 return;
12569 list_for_each_entry(qp, &phba->sli4_hba.lpfc_wq_list, wq_list) {
12570 pring = qp->pring;
12571 if (!pring)
12572 continue;
12573 lpfc_sli_abort_iocb_ring(phba, pring);
12578 * lpfc_sli_validate_fcp_iocb_for_abort - filter iocbs appropriate for FCP aborts
12579 * @iocbq: Pointer to iocb object.
12580 * @vport: Pointer to driver virtual port object.
12582 * This function acts as an iocb filter for functions which abort FCP iocbs.
12584 * Return values
12585 * -ENODEV, if a null iocb or vport ptr is encountered
12586 * -EINVAL, if the iocb is not an FCP I/O, not on the TX cmpl queue, premarked as
12587 * driver already started the abort process, or is an abort iocb itself
12588 * 0, passes criteria for aborting the FCP I/O iocb
12590 static int
12591 lpfc_sli_validate_fcp_iocb_for_abort(struct lpfc_iocbq *iocbq,
12592 struct lpfc_vport *vport)
12594 u8 ulp_command;
12596 /* No null ptr vports */
12597 if (!iocbq || iocbq->vport != vport)
12598 return -ENODEV;
12600 /* iocb must be for FCP IO, already exists on the TX cmpl queue,
12601 * can't be premarked as driver aborted, nor be an ABORT iocb itself
12603 ulp_command = get_job_cmnd(vport->phba, iocbq);
12604 if (!(iocbq->cmd_flag & LPFC_IO_FCP) ||
12605 !(iocbq->cmd_flag & LPFC_IO_ON_TXCMPLQ) ||
12606 (iocbq->cmd_flag & LPFC_DRIVER_ABORTED) ||
12607 (ulp_command == CMD_ABORT_XRI_CN ||
12608 ulp_command == CMD_CLOSE_XRI_CN ||
12609 ulp_command == CMD_ABORT_XRI_WQE))
12610 return -EINVAL;
12612 return 0;
12616 * lpfc_sli_validate_fcp_iocb - validate commands associated with a SCSI target
12617 * @iocbq: Pointer to driver iocb object.
12618 * @vport: Pointer to driver virtual port object.
12619 * @tgt_id: SCSI ID of the target.
12620 * @lun_id: LUN ID of the scsi device.
12621 * @ctx_cmd: LPFC_CTX_LUN/LPFC_CTX_TGT/LPFC_CTX_HOST
12623 * This function acts as an iocb filter for validating a lun/SCSI target/SCSI
12624 * host.
12626 * It will return
12627 * 0 if the filtering criteria is met for the given iocb and will return
12628 * 1 if the filtering criteria is not met.
12629 * If ctx_cmd == LPFC_CTX_LUN, the function returns 0 only if the
12630 * given iocb is for the SCSI device specified by vport, tgt_id and
12631 * lun_id parameter.
12632 * If ctx_cmd == LPFC_CTX_TGT, the function returns 0 only if the
12633 * given iocb is for the SCSI target specified by vport and tgt_id
12634 * parameters.
12635 * If ctx_cmd == LPFC_CTX_HOST, the function returns 0 only if the
12636 * given iocb is for the SCSI host associated with the given vport.
12637 * This function is called with no locks held.
12639 static int
12640 lpfc_sli_validate_fcp_iocb(struct lpfc_iocbq *iocbq, struct lpfc_vport *vport,
12641 uint16_t tgt_id, uint64_t lun_id,
12642 lpfc_ctx_cmd ctx_cmd)
12644 struct lpfc_io_buf *lpfc_cmd;
12645 int rc = 1;
12647 lpfc_cmd = container_of(iocbq, struct lpfc_io_buf, cur_iocbq);
12649 if (lpfc_cmd->pCmd == NULL)
12650 return rc;
12652 switch (ctx_cmd) {
12653 case LPFC_CTX_LUN:
12654 if ((lpfc_cmd->rdata) && (lpfc_cmd->rdata->pnode) &&
12655 (lpfc_cmd->rdata->pnode->nlp_sid == tgt_id) &&
12656 (scsilun_to_int(&lpfc_cmd->fcp_cmnd->fcp_lun) == lun_id))
12657 rc = 0;
12658 break;
12659 case LPFC_CTX_TGT:
12660 if ((lpfc_cmd->rdata) && (lpfc_cmd->rdata->pnode) &&
12661 (lpfc_cmd->rdata->pnode->nlp_sid == tgt_id))
12662 rc = 0;
12663 break;
12664 case LPFC_CTX_HOST:
12665 rc = 0;
12666 break;
12667 default:
12668 printk(KERN_ERR "%s: Unknown context cmd type, value %d\n",
12669 __func__, ctx_cmd);
12670 break;
12673 return rc;
12677 * lpfc_sli_sum_iocb - Function to count the number of FCP iocbs pending
12678 * @vport: Pointer to virtual port.
12679 * @tgt_id: SCSI ID of the target.
12680 * @lun_id: LUN ID of the scsi device.
12681 * @ctx_cmd: LPFC_CTX_LUN/LPFC_CTX_TGT/LPFC_CTX_HOST.
12683 * This function returns number of FCP commands pending for the vport.
12684 * When ctx_cmd == LPFC_CTX_LUN, the function returns number of FCP
12685 * commands pending on the vport associated with SCSI device specified
12686 * by tgt_id and lun_id parameters.
12687 * When ctx_cmd == LPFC_CTX_TGT, the function returns number of FCP
12688 * commands pending on the vport associated with SCSI target specified
12689 * by tgt_id parameter.
12690 * When ctx_cmd == LPFC_CTX_HOST, the function returns number of FCP
12691 * commands pending on the vport.
12692 * This function returns the number of iocbs which satisfy the filter.
12693 * This function is called without any lock held.
12696 lpfc_sli_sum_iocb(struct lpfc_vport *vport, uint16_t tgt_id, uint64_t lun_id,
12697 lpfc_ctx_cmd ctx_cmd)
12699 struct lpfc_hba *phba = vport->phba;
12700 struct lpfc_iocbq *iocbq;
12701 int sum, i;
12702 unsigned long iflags;
12703 u8 ulp_command;
12705 spin_lock_irqsave(&phba->hbalock, iflags);
12706 for (i = 1, sum = 0; i <= phba->sli.last_iotag; i++) {
12707 iocbq = phba->sli.iocbq_lookup[i];
12709 if (!iocbq || iocbq->vport != vport)
12710 continue;
12711 if (!(iocbq->cmd_flag & LPFC_IO_FCP) ||
12712 !(iocbq->cmd_flag & LPFC_IO_ON_TXCMPLQ))
12713 continue;
12715 /* Include counting outstanding aborts */
12716 ulp_command = get_job_cmnd(phba, iocbq);
12717 if (ulp_command == CMD_ABORT_XRI_CN ||
12718 ulp_command == CMD_CLOSE_XRI_CN ||
12719 ulp_command == CMD_ABORT_XRI_WQE) {
12720 sum++;
12721 continue;
12724 if (lpfc_sli_validate_fcp_iocb(iocbq, vport, tgt_id, lun_id,
12725 ctx_cmd) == 0)
12726 sum++;
12728 spin_unlock_irqrestore(&phba->hbalock, iflags);
12730 return sum;
12734 * lpfc_sli_abort_fcp_cmpl - Completion handler function for aborted FCP IOCBs
12735 * @phba: Pointer to HBA context object
12736 * @cmdiocb: Pointer to command iocb object.
12737 * @rspiocb: Pointer to response iocb object.
12739 * This function is called when an aborted FCP iocb completes. This
12740 * function is called by the ring event handler with no lock held.
12741 * This function frees the iocb.
12743 void
12744 lpfc_sli_abort_fcp_cmpl(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocb,
12745 struct lpfc_iocbq *rspiocb)
12747 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
12748 "3096 ABORT_XRI_CX completing on rpi x%x "
12749 "original iotag x%x, abort cmd iotag x%x "
12750 "status 0x%x, reason 0x%x\n",
12751 (phba->sli_rev == LPFC_SLI_REV4) ?
12752 cmdiocb->sli4_xritag :
12753 cmdiocb->iocb.un.acxri.abortContextTag,
12754 get_job_abtsiotag(phba, cmdiocb),
12755 cmdiocb->iotag, get_job_ulpstatus(phba, rspiocb),
12756 get_job_word4(phba, rspiocb));
12757 lpfc_sli_release_iocbq(phba, cmdiocb);
12758 return;
12762 * lpfc_sli_abort_iocb - issue abort for all commands on a host/target/LUN
12763 * @vport: Pointer to virtual port.
12764 * @tgt_id: SCSI ID of the target.
12765 * @lun_id: LUN ID of the scsi device.
12766 * @abort_cmd: LPFC_CTX_LUN/LPFC_CTX_TGT/LPFC_CTX_HOST.
12768 * This function sends an abort command for every SCSI command
12769 * associated with the given virtual port pending on the ring
12770 * filtered by lpfc_sli_validate_fcp_iocb_for_abort and then
12771 * lpfc_sli_validate_fcp_iocb function. The ordering for validation before
12772 * submitting abort iocbs must be lpfc_sli_validate_fcp_iocb_for_abort
12773 * followed by lpfc_sli_validate_fcp_iocb.
12775 * When abort_cmd == LPFC_CTX_LUN, the function sends abort only to the
12776 * FCP iocbs associated with lun specified by tgt_id and lun_id
12777 * parameters
12778 * When abort_cmd == LPFC_CTX_TGT, the function sends abort only to the
12779 * FCP iocbs associated with SCSI target specified by tgt_id parameter.
12780 * When abort_cmd == LPFC_CTX_HOST, the function sends abort to all
12781 * FCP iocbs associated with virtual port.
12782 * The pring used for SLI3 is sli3_ring[LPFC_FCP_RING], for SLI4
12783 * lpfc_sli4_calc_ring is used.
12784 * This function returns number of iocbs it failed to abort.
12785 * This function is called with no locks held.
12788 lpfc_sli_abort_iocb(struct lpfc_vport *vport, u16 tgt_id, u64 lun_id,
12789 lpfc_ctx_cmd abort_cmd)
12791 struct lpfc_hba *phba = vport->phba;
12792 struct lpfc_sli_ring *pring = NULL;
12793 struct lpfc_iocbq *iocbq;
12794 int errcnt = 0, ret_val = 0;
12795 unsigned long iflags;
12796 int i;
12798 /* all I/Os are in process of being flushed */
12799 if (test_bit(HBA_IOQ_FLUSH, &phba->hba_flag))
12800 return errcnt;
12802 for (i = 1; i <= phba->sli.last_iotag; i++) {
12803 iocbq = phba->sli.iocbq_lookup[i];
12805 if (lpfc_sli_validate_fcp_iocb_for_abort(iocbq, vport))
12806 continue;
12808 if (lpfc_sli_validate_fcp_iocb(iocbq, vport, tgt_id, lun_id,
12809 abort_cmd) != 0)
12810 continue;
12812 spin_lock_irqsave(&phba->hbalock, iflags);
12813 if (phba->sli_rev == LPFC_SLI_REV3) {
12814 pring = &phba->sli.sli3_ring[LPFC_FCP_RING];
12815 } else if (phba->sli_rev == LPFC_SLI_REV4) {
12816 pring = lpfc_sli4_calc_ring(phba, iocbq);
12818 ret_val = lpfc_sli_issue_abort_iotag(phba, pring, iocbq,
12819 lpfc_sli_abort_fcp_cmpl);
12820 spin_unlock_irqrestore(&phba->hbalock, iflags);
12821 if (ret_val != IOCB_SUCCESS)
12822 errcnt++;
12825 return errcnt;
12829 * lpfc_sli_abort_taskmgmt - issue abort for all commands on a host/target/LUN
12830 * @vport: Pointer to virtual port.
12831 * @pring: Pointer to driver SLI ring object.
12832 * @tgt_id: SCSI ID of the target.
12833 * @lun_id: LUN ID of the scsi device.
12834 * @cmd: LPFC_CTX_LUN/LPFC_CTX_TGT/LPFC_CTX_HOST.
12836 * This function sends an abort command for every SCSI command
12837 * associated with the given virtual port pending on the ring
12838 * filtered by lpfc_sli_validate_fcp_iocb_for_abort and then
12839 * lpfc_sli_validate_fcp_iocb function. The ordering for validation before
12840 * submitting abort iocbs must be lpfc_sli_validate_fcp_iocb_for_abort
12841 * followed by lpfc_sli_validate_fcp_iocb.
12843 * When taskmgmt_cmd == LPFC_CTX_LUN, the function sends abort only to the
12844 * FCP iocbs associated with lun specified by tgt_id and lun_id
12845 * parameters
12846 * When taskmgmt_cmd == LPFC_CTX_TGT, the function sends abort only to the
12847 * FCP iocbs associated with SCSI target specified by tgt_id parameter.
12848 * When taskmgmt_cmd == LPFC_CTX_HOST, the function sends abort to all
12849 * FCP iocbs associated with virtual port.
12850 * This function returns number of iocbs it aborted .
12851 * This function is called with no locks held right after a taskmgmt
12852 * command is sent.
12855 lpfc_sli_abort_taskmgmt(struct lpfc_vport *vport, struct lpfc_sli_ring *pring,
12856 uint16_t tgt_id, uint64_t lun_id, lpfc_ctx_cmd cmd)
12858 struct lpfc_hba *phba = vport->phba;
12859 struct lpfc_io_buf *lpfc_cmd;
12860 struct lpfc_iocbq *abtsiocbq;
12861 struct lpfc_nodelist *ndlp = NULL;
12862 struct lpfc_iocbq *iocbq;
12863 int sum, i, ret_val;
12864 unsigned long iflags;
12865 struct lpfc_sli_ring *pring_s4 = NULL;
12866 u16 ulp_context, iotag, cqid = LPFC_WQE_CQ_ID_DEFAULT;
12867 bool ia;
12869 /* all I/Os are in process of being flushed */
12870 if (test_bit(HBA_IOQ_FLUSH, &phba->hba_flag))
12871 return 0;
12873 sum = 0;
12875 spin_lock_irqsave(&phba->hbalock, iflags);
12876 for (i = 1; i <= phba->sli.last_iotag; i++) {
12877 iocbq = phba->sli.iocbq_lookup[i];
12879 if (lpfc_sli_validate_fcp_iocb_for_abort(iocbq, vport))
12880 continue;
12882 if (lpfc_sli_validate_fcp_iocb(iocbq, vport, tgt_id, lun_id,
12883 cmd) != 0)
12884 continue;
12886 /* Guard against IO completion being called at same time */
12887 lpfc_cmd = container_of(iocbq, struct lpfc_io_buf, cur_iocbq);
12888 spin_lock(&lpfc_cmd->buf_lock);
12890 if (!lpfc_cmd->pCmd) {
12891 spin_unlock(&lpfc_cmd->buf_lock);
12892 continue;
12895 if (phba->sli_rev == LPFC_SLI_REV4) {
12896 pring_s4 =
12897 phba->sli4_hba.hdwq[iocbq->hba_wqidx].io_wq->pring;
12898 if (!pring_s4) {
12899 spin_unlock(&lpfc_cmd->buf_lock);
12900 continue;
12902 /* Note: both hbalock and ring_lock must be set here */
12903 spin_lock(&pring_s4->ring_lock);
12907 * If the iocbq is already being aborted, don't take a second
12908 * action, but do count it.
12910 if ((iocbq->cmd_flag & LPFC_DRIVER_ABORTED) ||
12911 !(iocbq->cmd_flag & LPFC_IO_ON_TXCMPLQ)) {
12912 if (phba->sli_rev == LPFC_SLI_REV4)
12913 spin_unlock(&pring_s4->ring_lock);
12914 spin_unlock(&lpfc_cmd->buf_lock);
12915 continue;
12918 /* issue ABTS for this IOCB based on iotag */
12919 abtsiocbq = __lpfc_sli_get_iocbq(phba);
12920 if (!abtsiocbq) {
12921 if (phba->sli_rev == LPFC_SLI_REV4)
12922 spin_unlock(&pring_s4->ring_lock);
12923 spin_unlock(&lpfc_cmd->buf_lock);
12924 continue;
12927 if (phba->sli_rev == LPFC_SLI_REV4) {
12928 iotag = abtsiocbq->iotag;
12929 ulp_context = iocbq->sli4_xritag;
12930 cqid = lpfc_cmd->hdwq->io_cq_map;
12931 } else {
12932 iotag = iocbq->iocb.ulpIoTag;
12933 if (pring->ringno == LPFC_ELS_RING) {
12934 ndlp = iocbq->ndlp;
12935 ulp_context = ndlp->nlp_rpi;
12936 } else {
12937 ulp_context = iocbq->iocb.ulpContext;
12941 ndlp = lpfc_cmd->rdata->pnode;
12943 if (lpfc_is_link_up(phba) &&
12944 (ndlp && ndlp->nlp_state == NLP_STE_MAPPED_NODE) &&
12945 !(phba->link_flag & LS_EXTERNAL_LOOPBACK))
12946 ia = false;
12947 else
12948 ia = true;
12950 lpfc_sli_prep_abort_xri(phba, abtsiocbq, ulp_context, iotag,
12951 iocbq->iocb.ulpClass, cqid,
12952 ia, false);
12954 abtsiocbq->vport = vport;
12956 /* ABTS WQE must go to the same WQ as the WQE to be aborted */
12957 abtsiocbq->hba_wqidx = iocbq->hba_wqidx;
12958 if (iocbq->cmd_flag & LPFC_IO_FCP)
12959 abtsiocbq->cmd_flag |= LPFC_USE_FCPWQIDX;
12960 if (iocbq->cmd_flag & LPFC_IO_FOF)
12961 abtsiocbq->cmd_flag |= LPFC_IO_FOF;
12963 /* Setup callback routine and issue the command. */
12964 abtsiocbq->cmd_cmpl = lpfc_sli_abort_fcp_cmpl;
12967 * Indicate the IO is being aborted by the driver and set
12968 * the caller's flag into the aborted IO.
12970 iocbq->cmd_flag |= LPFC_DRIVER_ABORTED;
12972 if (phba->sli_rev == LPFC_SLI_REV4) {
12973 ret_val = __lpfc_sli_issue_iocb(phba, pring_s4->ringno,
12974 abtsiocbq, 0);
12975 spin_unlock(&pring_s4->ring_lock);
12976 } else {
12977 ret_val = __lpfc_sli_issue_iocb(phba, pring->ringno,
12978 abtsiocbq, 0);
12981 spin_unlock(&lpfc_cmd->buf_lock);
12983 if (ret_val == IOCB_ERROR)
12984 __lpfc_sli_release_iocbq(phba, abtsiocbq);
12985 else
12986 sum++;
12988 spin_unlock_irqrestore(&phba->hbalock, iflags);
12989 return sum;
12993 * lpfc_sli_wake_iocb_wait - lpfc_sli_issue_iocb_wait's completion handler
12994 * @phba: Pointer to HBA context object.
12995 * @cmdiocbq: Pointer to command iocb.
12996 * @rspiocbq: Pointer to response iocb.
12998 * This function is the completion handler for iocbs issued using
12999 * lpfc_sli_issue_iocb_wait function. This function is called by the
13000 * ring event handler function without any lock held. This function
13001 * can be called from both worker thread context and interrupt
13002 * context. This function also can be called from other thread which
13003 * cleans up the SLI layer objects.
13004 * This function copy the contents of the response iocb to the
13005 * response iocb memory object provided by the caller of
13006 * lpfc_sli_issue_iocb_wait and then wakes up the thread which
13007 * sleeps for the iocb completion.
13009 static void
13010 lpfc_sli_wake_iocb_wait(struct lpfc_hba *phba,
13011 struct lpfc_iocbq *cmdiocbq,
13012 struct lpfc_iocbq *rspiocbq)
13014 wait_queue_head_t *pdone_q;
13015 unsigned long iflags;
13016 struct lpfc_io_buf *lpfc_cmd;
13017 size_t offset = offsetof(struct lpfc_iocbq, wqe);
13019 spin_lock_irqsave(&phba->hbalock, iflags);
13020 if (cmdiocbq->cmd_flag & LPFC_IO_WAKE_TMO) {
13023 * A time out has occurred for the iocb. If a time out
13024 * completion handler has been supplied, call it. Otherwise,
13025 * just free the iocbq.
13028 spin_unlock_irqrestore(&phba->hbalock, iflags);
13029 cmdiocbq->cmd_cmpl = cmdiocbq->wait_cmd_cmpl;
13030 cmdiocbq->wait_cmd_cmpl = NULL;
13031 if (cmdiocbq->cmd_cmpl)
13032 cmdiocbq->cmd_cmpl(phba, cmdiocbq, NULL);
13033 else
13034 lpfc_sli_release_iocbq(phba, cmdiocbq);
13035 return;
13038 /* Copy the contents of the local rspiocb into the caller's buffer. */
13039 cmdiocbq->cmd_flag |= LPFC_IO_WAKE;
13040 if (cmdiocbq->rsp_iocb && rspiocbq)
13041 memcpy((char *)cmdiocbq->rsp_iocb + offset,
13042 (char *)rspiocbq + offset, sizeof(*rspiocbq) - offset);
13044 /* Set the exchange busy flag for task management commands */
13045 if ((cmdiocbq->cmd_flag & LPFC_IO_FCP) &&
13046 !(cmdiocbq->cmd_flag & LPFC_IO_LIBDFC)) {
13047 lpfc_cmd = container_of(cmdiocbq, struct lpfc_io_buf,
13048 cur_iocbq);
13049 if (rspiocbq && (rspiocbq->cmd_flag & LPFC_EXCHANGE_BUSY))
13050 lpfc_cmd->flags |= LPFC_SBUF_XBUSY;
13051 else
13052 lpfc_cmd->flags &= ~LPFC_SBUF_XBUSY;
13055 pdone_q = cmdiocbq->context_un.wait_queue;
13056 if (pdone_q)
13057 wake_up(pdone_q);
13058 spin_unlock_irqrestore(&phba->hbalock, iflags);
13059 return;
13063 * lpfc_chk_iocb_flg - Test IOCB flag with lock held.
13064 * @phba: Pointer to HBA context object..
13065 * @piocbq: Pointer to command iocb.
13066 * @flag: Flag to test.
13068 * This routine grabs the hbalock and then test the cmd_flag to
13069 * see if the passed in flag is set.
13070 * Returns:
13071 * 1 if flag is set.
13072 * 0 if flag is not set.
13074 static int
13075 lpfc_chk_iocb_flg(struct lpfc_hba *phba,
13076 struct lpfc_iocbq *piocbq, uint32_t flag)
13078 unsigned long iflags;
13079 int ret;
13081 spin_lock_irqsave(&phba->hbalock, iflags);
13082 ret = piocbq->cmd_flag & flag;
13083 spin_unlock_irqrestore(&phba->hbalock, iflags);
13084 return ret;
13089 * lpfc_sli_issue_iocb_wait - Synchronous function to issue iocb commands
13090 * @phba: Pointer to HBA context object..
13091 * @ring_number: Ring number
13092 * @piocb: Pointer to command iocb.
13093 * @prspiocbq: Pointer to response iocb.
13094 * @timeout: Timeout in number of seconds.
13096 * This function issues the iocb to firmware and waits for the
13097 * iocb to complete. The cmd_cmpl field of the shall be used
13098 * to handle iocbs which time out. If the field is NULL, the
13099 * function shall free the iocbq structure. If more clean up is
13100 * needed, the caller is expected to provide a completion function
13101 * that will provide the needed clean up. If the iocb command is
13102 * not completed within timeout seconds, the function will either
13103 * free the iocbq structure (if cmd_cmpl == NULL) or execute the
13104 * completion function set in the cmd_cmpl field and then return
13105 * a status of IOCB_TIMEDOUT. The caller should not free the iocb
13106 * resources if this function returns IOCB_TIMEDOUT.
13107 * The function waits for the iocb completion using an
13108 * non-interruptible wait.
13109 * This function will sleep while waiting for iocb completion.
13110 * So, this function should not be called from any context which
13111 * does not allow sleeping. Due to the same reason, this function
13112 * cannot be called with interrupt disabled.
13113 * This function assumes that the iocb completions occur while
13114 * this function sleep. So, this function cannot be called from
13115 * the thread which process iocb completion for this ring.
13116 * This function clears the cmd_flag of the iocb object before
13117 * issuing the iocb and the iocb completion handler sets this
13118 * flag and wakes this thread when the iocb completes.
13119 * The contents of the response iocb will be copied to prspiocbq
13120 * by the completion handler when the command completes.
13121 * This function returns IOCB_SUCCESS when success.
13122 * This function is called with no lock held.
13125 lpfc_sli_issue_iocb_wait(struct lpfc_hba *phba,
13126 uint32_t ring_number,
13127 struct lpfc_iocbq *piocb,
13128 struct lpfc_iocbq *prspiocbq,
13129 uint32_t timeout)
13131 DECLARE_WAIT_QUEUE_HEAD_ONSTACK(done_q);
13132 long timeleft, timeout_req = 0;
13133 int retval = IOCB_SUCCESS;
13134 uint32_t creg_val;
13135 struct lpfc_iocbq *iocb;
13136 int txq_cnt = 0;
13137 int txcmplq_cnt = 0;
13138 struct lpfc_sli_ring *pring;
13139 unsigned long iflags;
13140 bool iocb_completed = true;
13142 if (phba->sli_rev >= LPFC_SLI_REV4) {
13143 lpfc_sli_prep_wqe(phba, piocb);
13145 pring = lpfc_sli4_calc_ring(phba, piocb);
13146 } else
13147 pring = &phba->sli.sli3_ring[ring_number];
13149 * If the caller has provided a response iocbq buffer, then rsp_iocb
13150 * is NULL or its an error.
13152 if (prspiocbq) {
13153 if (piocb->rsp_iocb)
13154 return IOCB_ERROR;
13155 piocb->rsp_iocb = prspiocbq;
13158 piocb->wait_cmd_cmpl = piocb->cmd_cmpl;
13159 piocb->cmd_cmpl = lpfc_sli_wake_iocb_wait;
13160 piocb->context_un.wait_queue = &done_q;
13161 piocb->cmd_flag &= ~(LPFC_IO_WAKE | LPFC_IO_WAKE_TMO);
13163 if (phba->cfg_poll & DISABLE_FCP_RING_INT) {
13164 if (lpfc_readl(phba->HCregaddr, &creg_val))
13165 return IOCB_ERROR;
13166 creg_val |= (HC_R0INT_ENA << LPFC_FCP_RING);
13167 writel(creg_val, phba->HCregaddr);
13168 readl(phba->HCregaddr); /* flush */
13171 retval = lpfc_sli_issue_iocb(phba, ring_number, piocb,
13172 SLI_IOCB_RET_IOCB);
13173 if (retval == IOCB_SUCCESS) {
13174 timeout_req = msecs_to_jiffies(timeout * 1000);
13175 timeleft = wait_event_timeout(done_q,
13176 lpfc_chk_iocb_flg(phba, piocb, LPFC_IO_WAKE),
13177 timeout_req);
13178 spin_lock_irqsave(&phba->hbalock, iflags);
13179 if (!(piocb->cmd_flag & LPFC_IO_WAKE)) {
13182 * IOCB timed out. Inform the wake iocb wait
13183 * completion function and set local status
13186 iocb_completed = false;
13187 piocb->cmd_flag |= LPFC_IO_WAKE_TMO;
13189 spin_unlock_irqrestore(&phba->hbalock, iflags);
13190 if (iocb_completed) {
13191 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
13192 "0331 IOCB wake signaled\n");
13193 /* Note: we are not indicating if the IOCB has a success
13194 * status or not - that's for the caller to check.
13195 * IOCB_SUCCESS means just that the command was sent and
13196 * completed. Not that it completed successfully.
13197 * */
13198 } else if (timeleft == 0) {
13199 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
13200 "0338 IOCB wait timeout error - no "
13201 "wake response Data x%x\n", timeout);
13202 retval = IOCB_TIMEDOUT;
13203 } else {
13204 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
13205 "0330 IOCB wake NOT set, "
13206 "Data x%x x%lx\n",
13207 timeout, (timeleft / jiffies));
13208 retval = IOCB_TIMEDOUT;
13210 } else if (retval == IOCB_BUSY) {
13211 if (phba->cfg_log_verbose & LOG_SLI) {
13212 list_for_each_entry(iocb, &pring->txq, list) {
13213 txq_cnt++;
13215 list_for_each_entry(iocb, &pring->txcmplq, list) {
13216 txcmplq_cnt++;
13218 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
13219 "2818 Max IOCBs %d txq cnt %d txcmplq cnt %d\n",
13220 phba->iocb_cnt, txq_cnt, txcmplq_cnt);
13222 return retval;
13223 } else {
13224 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
13225 "0332 IOCB wait issue failed, Data x%x\n",
13226 retval);
13227 retval = IOCB_ERROR;
13230 if (phba->cfg_poll & DISABLE_FCP_RING_INT) {
13231 if (lpfc_readl(phba->HCregaddr, &creg_val))
13232 return IOCB_ERROR;
13233 creg_val &= ~(HC_R0INT_ENA << LPFC_FCP_RING);
13234 writel(creg_val, phba->HCregaddr);
13235 readl(phba->HCregaddr); /* flush */
13238 if (prspiocbq)
13239 piocb->rsp_iocb = NULL;
13241 piocb->context_un.wait_queue = NULL;
13242 piocb->cmd_cmpl = NULL;
13243 return retval;
13247 * lpfc_sli_issue_mbox_wait - Synchronous function to issue mailbox
13248 * @phba: Pointer to HBA context object.
13249 * @pmboxq: Pointer to driver mailbox object.
13250 * @timeout: Timeout in number of seconds.
13252 * This function issues the mailbox to firmware and waits for the
13253 * mailbox command to complete. If the mailbox command is not
13254 * completed within timeout seconds, it returns MBX_TIMEOUT.
13255 * The function waits for the mailbox completion using an
13256 * interruptible wait. If the thread is woken up due to a
13257 * signal, MBX_TIMEOUT error is returned to the caller. Caller
13258 * should not free the mailbox resources, if this function returns
13259 * MBX_TIMEOUT.
13260 * This function will sleep while waiting for mailbox completion.
13261 * So, this function should not be called from any context which
13262 * does not allow sleeping. Due to the same reason, this function
13263 * cannot be called with interrupt disabled.
13264 * This function assumes that the mailbox completion occurs while
13265 * this function sleep. So, this function cannot be called from
13266 * the worker thread which processes mailbox completion.
13267 * This function is called in the context of HBA management
13268 * applications.
13269 * This function returns MBX_SUCCESS when successful.
13270 * This function is called with no lock held.
13273 lpfc_sli_issue_mbox_wait(struct lpfc_hba *phba, LPFC_MBOXQ_t *pmboxq,
13274 uint32_t timeout)
13276 struct completion mbox_done;
13277 int retval;
13278 unsigned long flag;
13280 pmboxq->mbox_flag &= ~LPFC_MBX_WAKE;
13281 /* setup wake call as IOCB callback */
13282 pmboxq->mbox_cmpl = lpfc_sli_wake_mbox_wait;
13284 /* setup ctx_u field to pass wait_queue pointer to wake function */
13285 init_completion(&mbox_done);
13286 pmboxq->ctx_u.mbox_wait = &mbox_done;
13287 /* now issue the command */
13288 retval = lpfc_sli_issue_mbox(phba, pmboxq, MBX_NOWAIT);
13289 if (retval == MBX_BUSY || retval == MBX_SUCCESS) {
13290 wait_for_completion_timeout(&mbox_done,
13291 msecs_to_jiffies(timeout * 1000));
13293 spin_lock_irqsave(&phba->hbalock, flag);
13294 pmboxq->ctx_u.mbox_wait = NULL;
13296 * if LPFC_MBX_WAKE flag is set the mailbox is completed
13297 * else do not free the resources.
13299 if (pmboxq->mbox_flag & LPFC_MBX_WAKE) {
13300 retval = MBX_SUCCESS;
13301 } else {
13302 retval = MBX_TIMEOUT;
13303 pmboxq->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
13305 spin_unlock_irqrestore(&phba->hbalock, flag);
13307 return retval;
13311 * lpfc_sli_mbox_sys_shutdown - shutdown mailbox command sub-system
13312 * @phba: Pointer to HBA context.
13313 * @mbx_action: Mailbox shutdown options.
13315 * This function is called to shutdown the driver's mailbox sub-system.
13316 * It first marks the mailbox sub-system is in a block state to prevent
13317 * the asynchronous mailbox command from issued off the pending mailbox
13318 * command queue. If the mailbox command sub-system shutdown is due to
13319 * HBA error conditions such as EEH or ERATT, this routine shall invoke
13320 * the mailbox sub-system flush routine to forcefully bring down the
13321 * mailbox sub-system. Otherwise, if it is due to normal condition (such
13322 * as with offline or HBA function reset), this routine will wait for the
13323 * outstanding mailbox command to complete before invoking the mailbox
13324 * sub-system flush routine to gracefully bring down mailbox sub-system.
13326 void
13327 lpfc_sli_mbox_sys_shutdown(struct lpfc_hba *phba, int mbx_action)
13329 struct lpfc_sli *psli = &phba->sli;
13330 unsigned long timeout;
13332 if (mbx_action == LPFC_MBX_NO_WAIT) {
13333 /* delay 100ms for port state */
13334 msleep(100);
13335 lpfc_sli_mbox_sys_flush(phba);
13336 return;
13338 timeout = msecs_to_jiffies(LPFC_MBOX_TMO * 1000) + jiffies;
13340 /* Disable softirqs, including timers from obtaining phba->hbalock */
13341 local_bh_disable();
13343 spin_lock_irq(&phba->hbalock);
13344 psli->sli_flag |= LPFC_SLI_ASYNC_MBX_BLK;
13346 if (psli->sli_flag & LPFC_SLI_ACTIVE) {
13347 /* Determine how long we might wait for the active mailbox
13348 * command to be gracefully completed by firmware.
13350 if (phba->sli.mbox_active)
13351 timeout = msecs_to_jiffies(lpfc_mbox_tmo_val(phba,
13352 phba->sli.mbox_active) *
13353 1000) + jiffies;
13354 spin_unlock_irq(&phba->hbalock);
13356 /* Enable softirqs again, done with phba->hbalock */
13357 local_bh_enable();
13359 while (phba->sli.mbox_active) {
13360 /* Check active mailbox complete status every 2ms */
13361 msleep(2);
13362 if (time_after(jiffies, timeout))
13363 /* Timeout, let the mailbox flush routine to
13364 * forcefully release active mailbox command
13366 break;
13368 } else {
13369 spin_unlock_irq(&phba->hbalock);
13371 /* Enable softirqs again, done with phba->hbalock */
13372 local_bh_enable();
13375 lpfc_sli_mbox_sys_flush(phba);
13379 * lpfc_sli_eratt_read - read sli-3 error attention events
13380 * @phba: Pointer to HBA context.
13382 * This function is called to read the SLI3 device error attention registers
13383 * for possible error attention events. The caller must hold the hostlock
13384 * with spin_lock_irq().
13386 * This function returns 1 when there is Error Attention in the Host Attention
13387 * Register and returns 0 otherwise.
13389 static int
13390 lpfc_sli_eratt_read(struct lpfc_hba *phba)
13392 uint32_t ha_copy;
13394 /* Read chip Host Attention (HA) register */
13395 if (lpfc_readl(phba->HAregaddr, &ha_copy))
13396 goto unplug_err;
13398 if (ha_copy & HA_ERATT) {
13399 /* Read host status register to retrieve error event */
13400 if (lpfc_sli_read_hs(phba))
13401 goto unplug_err;
13403 /* Check if there is a deferred error condition is active */
13404 if ((HS_FFER1 & phba->work_hs) &&
13405 ((HS_FFER2 | HS_FFER3 | HS_FFER4 | HS_FFER5 |
13406 HS_FFER6 | HS_FFER7 | HS_FFER8) & phba->work_hs)) {
13407 set_bit(DEFER_ERATT, &phba->hba_flag);
13408 /* Clear all interrupt enable conditions */
13409 writel(0, phba->HCregaddr);
13410 readl(phba->HCregaddr);
13413 /* Set the driver HA work bitmap */
13414 phba->work_ha |= HA_ERATT;
13415 /* Indicate polling handles this ERATT */
13416 set_bit(HBA_ERATT_HANDLED, &phba->hba_flag);
13417 return 1;
13419 return 0;
13421 unplug_err:
13422 /* Set the driver HS work bitmap */
13423 phba->work_hs |= UNPLUG_ERR;
13424 /* Set the driver HA work bitmap */
13425 phba->work_ha |= HA_ERATT;
13426 /* Indicate polling handles this ERATT */
13427 set_bit(HBA_ERATT_HANDLED, &phba->hba_flag);
13428 return 1;
13432 * lpfc_sli4_eratt_read - read sli-4 error attention events
13433 * @phba: Pointer to HBA context.
13435 * This function is called to read the SLI4 device error attention registers
13436 * for possible error attention events. The caller must hold the hostlock
13437 * with spin_lock_irq().
13439 * This function returns 1 when there is Error Attention in the Host Attention
13440 * Register and returns 0 otherwise.
13442 static int
13443 lpfc_sli4_eratt_read(struct lpfc_hba *phba)
13445 uint32_t uerr_sta_hi, uerr_sta_lo;
13446 uint32_t if_type, portsmphr;
13447 struct lpfc_register portstat_reg;
13448 u32 logmask;
13451 * For now, use the SLI4 device internal unrecoverable error
13452 * registers for error attention. This can be changed later.
13454 if_type = bf_get(lpfc_sli_intf_if_type, &phba->sli4_hba.sli_intf);
13455 switch (if_type) {
13456 case LPFC_SLI_INTF_IF_TYPE_0:
13457 if (lpfc_readl(phba->sli4_hba.u.if_type0.UERRLOregaddr,
13458 &uerr_sta_lo) ||
13459 lpfc_readl(phba->sli4_hba.u.if_type0.UERRHIregaddr,
13460 &uerr_sta_hi)) {
13461 phba->work_hs |= UNPLUG_ERR;
13462 phba->work_ha |= HA_ERATT;
13463 set_bit(HBA_ERATT_HANDLED, &phba->hba_flag);
13464 return 1;
13466 if ((~phba->sli4_hba.ue_mask_lo & uerr_sta_lo) ||
13467 (~phba->sli4_hba.ue_mask_hi & uerr_sta_hi)) {
13468 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
13469 "1423 HBA Unrecoverable error: "
13470 "uerr_lo_reg=0x%x, uerr_hi_reg=0x%x, "
13471 "ue_mask_lo_reg=0x%x, "
13472 "ue_mask_hi_reg=0x%x\n",
13473 uerr_sta_lo, uerr_sta_hi,
13474 phba->sli4_hba.ue_mask_lo,
13475 phba->sli4_hba.ue_mask_hi);
13476 phba->work_status[0] = uerr_sta_lo;
13477 phba->work_status[1] = uerr_sta_hi;
13478 phba->work_ha |= HA_ERATT;
13479 set_bit(HBA_ERATT_HANDLED, &phba->hba_flag);
13480 return 1;
13482 break;
13483 case LPFC_SLI_INTF_IF_TYPE_2:
13484 case LPFC_SLI_INTF_IF_TYPE_6:
13485 if (lpfc_readl(phba->sli4_hba.u.if_type2.STATUSregaddr,
13486 &portstat_reg.word0) ||
13487 lpfc_readl(phba->sli4_hba.PSMPHRregaddr,
13488 &portsmphr)){
13489 phba->work_hs |= UNPLUG_ERR;
13490 phba->work_ha |= HA_ERATT;
13491 set_bit(HBA_ERATT_HANDLED, &phba->hba_flag);
13492 return 1;
13494 if (bf_get(lpfc_sliport_status_err, &portstat_reg)) {
13495 phba->work_status[0] =
13496 readl(phba->sli4_hba.u.if_type2.ERR1regaddr);
13497 phba->work_status[1] =
13498 readl(phba->sli4_hba.u.if_type2.ERR2regaddr);
13499 logmask = LOG_TRACE_EVENT;
13500 if (phba->work_status[0] ==
13501 SLIPORT_ERR1_REG_ERR_CODE_2 &&
13502 phba->work_status[1] == SLIPORT_ERR2_REG_FW_RESTART)
13503 logmask = LOG_SLI;
13504 lpfc_printf_log(phba, KERN_ERR, logmask,
13505 "2885 Port Status Event: "
13506 "port status reg 0x%x, "
13507 "port smphr reg 0x%x, "
13508 "error 1=0x%x, error 2=0x%x\n",
13509 portstat_reg.word0,
13510 portsmphr,
13511 phba->work_status[0],
13512 phba->work_status[1]);
13513 phba->work_ha |= HA_ERATT;
13514 set_bit(HBA_ERATT_HANDLED, &phba->hba_flag);
13515 return 1;
13517 break;
13518 case LPFC_SLI_INTF_IF_TYPE_1:
13519 default:
13520 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
13521 "2886 HBA Error Attention on unsupported "
13522 "if type %d.", if_type);
13523 return 1;
13526 return 0;
13530 * lpfc_sli_check_eratt - check error attention events
13531 * @phba: Pointer to HBA context.
13533 * This function is called from timer soft interrupt context to check HBA's
13534 * error attention register bit for error attention events.
13536 * This function returns 1 when there is Error Attention in the Host Attention
13537 * Register and returns 0 otherwise.
13540 lpfc_sli_check_eratt(struct lpfc_hba *phba)
13542 uint32_t ha_copy;
13544 /* If somebody is waiting to handle an eratt, don't process it
13545 * here. The brdkill function will do this.
13547 if (phba->link_flag & LS_IGNORE_ERATT)
13548 return 0;
13550 /* Check if interrupt handler handles this ERATT */
13551 if (test_bit(HBA_ERATT_HANDLED, &phba->hba_flag))
13552 /* Interrupt handler has handled ERATT */
13553 return 0;
13556 * If there is deferred error attention, do not check for error
13557 * attention
13559 if (unlikely(test_bit(DEFER_ERATT, &phba->hba_flag)))
13560 return 0;
13562 spin_lock_irq(&phba->hbalock);
13563 /* If PCI channel is offline, don't process it */
13564 if (unlikely(pci_channel_offline(phba->pcidev))) {
13565 spin_unlock_irq(&phba->hbalock);
13566 return 0;
13569 switch (phba->sli_rev) {
13570 case LPFC_SLI_REV2:
13571 case LPFC_SLI_REV3:
13572 /* Read chip Host Attention (HA) register */
13573 ha_copy = lpfc_sli_eratt_read(phba);
13574 break;
13575 case LPFC_SLI_REV4:
13576 /* Read device Uncoverable Error (UERR) registers */
13577 ha_copy = lpfc_sli4_eratt_read(phba);
13578 break;
13579 default:
13580 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
13581 "0299 Invalid SLI revision (%d)\n",
13582 phba->sli_rev);
13583 ha_copy = 0;
13584 break;
13586 spin_unlock_irq(&phba->hbalock);
13588 return ha_copy;
13592 * lpfc_intr_state_check - Check device state for interrupt handling
13593 * @phba: Pointer to HBA context.
13595 * This inline routine checks whether a device or its PCI slot is in a state
13596 * that the interrupt should be handled.
13598 * This function returns 0 if the device or the PCI slot is in a state that
13599 * interrupt should be handled, otherwise -EIO.
13601 static inline int
13602 lpfc_intr_state_check(struct lpfc_hba *phba)
13604 /* If the pci channel is offline, ignore all the interrupts */
13605 if (unlikely(pci_channel_offline(phba->pcidev)))
13606 return -EIO;
13608 /* Update device level interrupt statistics */
13609 phba->sli.slistat.sli_intr++;
13611 /* Ignore all interrupts during initialization. */
13612 if (unlikely(phba->link_state < LPFC_LINK_DOWN))
13613 return -EIO;
13615 return 0;
13619 * lpfc_sli_sp_intr_handler - Slow-path interrupt handler to SLI-3 device
13620 * @irq: Interrupt number.
13621 * @dev_id: The device context pointer.
13623 * This function is directly called from the PCI layer as an interrupt
13624 * service routine when device with SLI-3 interface spec is enabled with
13625 * MSI-X multi-message interrupt mode and there are slow-path events in
13626 * the HBA. However, when the device is enabled with either MSI or Pin-IRQ
13627 * interrupt mode, this function is called as part of the device-level
13628 * interrupt handler. When the PCI slot is in error recovery or the HBA
13629 * is undergoing initialization, the interrupt handler will not process
13630 * the interrupt. The link attention and ELS ring attention events are
13631 * handled by the worker thread. The interrupt handler signals the worker
13632 * thread and returns for these events. This function is called without
13633 * any lock held. It gets the hbalock to access and update SLI data
13634 * structures.
13636 * This function returns IRQ_HANDLED when interrupt is handled else it
13637 * returns IRQ_NONE.
13639 irqreturn_t
13640 lpfc_sli_sp_intr_handler(int irq, void *dev_id)
13642 struct lpfc_hba *phba;
13643 uint32_t ha_copy, hc_copy;
13644 uint32_t work_ha_copy;
13645 unsigned long status;
13646 unsigned long iflag;
13647 uint32_t control;
13649 MAILBOX_t *mbox, *pmbox;
13650 struct lpfc_vport *vport;
13651 struct lpfc_nodelist *ndlp;
13652 struct lpfc_dmabuf *mp;
13653 LPFC_MBOXQ_t *pmb;
13654 int rc;
13657 * Get the driver's phba structure from the dev_id and
13658 * assume the HBA is not interrupting.
13660 phba = (struct lpfc_hba *)dev_id;
13662 if (unlikely(!phba))
13663 return IRQ_NONE;
13666 * Stuff needs to be attented to when this function is invoked as an
13667 * individual interrupt handler in MSI-X multi-message interrupt mode
13669 if (phba->intr_type == MSIX) {
13670 /* Check device state for handling interrupt */
13671 if (lpfc_intr_state_check(phba))
13672 return IRQ_NONE;
13673 /* Need to read HA REG for slow-path events */
13674 spin_lock_irqsave(&phba->hbalock, iflag);
13675 if (lpfc_readl(phba->HAregaddr, &ha_copy))
13676 goto unplug_error;
13677 /* If somebody is waiting to handle an eratt don't process it
13678 * here. The brdkill function will do this.
13680 if (phba->link_flag & LS_IGNORE_ERATT)
13681 ha_copy &= ~HA_ERATT;
13682 /* Check the need for handling ERATT in interrupt handler */
13683 if (ha_copy & HA_ERATT) {
13684 if (test_and_set_bit(HBA_ERATT_HANDLED,
13685 &phba->hba_flag))
13686 /* ERATT polling has handled ERATT */
13687 ha_copy &= ~HA_ERATT;
13691 * If there is deferred error attention, do not check for any
13692 * interrupt.
13694 if (unlikely(test_bit(DEFER_ERATT, &phba->hba_flag))) {
13695 spin_unlock_irqrestore(&phba->hbalock, iflag);
13696 return IRQ_NONE;
13699 /* Clear up only attention source related to slow-path */
13700 if (lpfc_readl(phba->HCregaddr, &hc_copy))
13701 goto unplug_error;
13703 writel(hc_copy & ~(HC_MBINT_ENA | HC_R2INT_ENA |
13704 HC_LAINT_ENA | HC_ERINT_ENA),
13705 phba->HCregaddr);
13706 writel((ha_copy & (HA_MBATT | HA_R2_CLR_MSK)),
13707 phba->HAregaddr);
13708 writel(hc_copy, phba->HCregaddr);
13709 readl(phba->HAregaddr); /* flush */
13710 spin_unlock_irqrestore(&phba->hbalock, iflag);
13711 } else
13712 ha_copy = phba->ha_copy;
13714 work_ha_copy = ha_copy & phba->work_ha_mask;
13716 if (work_ha_copy) {
13717 if (work_ha_copy & HA_LATT) {
13718 if (phba->sli.sli_flag & LPFC_PROCESS_LA) {
13720 * Turn off Link Attention interrupts
13721 * until CLEAR_LA done
13723 spin_lock_irqsave(&phba->hbalock, iflag);
13724 phba->sli.sli_flag &= ~LPFC_PROCESS_LA;
13725 if (lpfc_readl(phba->HCregaddr, &control))
13726 goto unplug_error;
13727 control &= ~HC_LAINT_ENA;
13728 writel(control, phba->HCregaddr);
13729 readl(phba->HCregaddr); /* flush */
13730 spin_unlock_irqrestore(&phba->hbalock, iflag);
13732 else
13733 work_ha_copy &= ~HA_LATT;
13736 if (work_ha_copy & ~(HA_ERATT | HA_MBATT | HA_LATT)) {
13738 * Turn off Slow Rings interrupts, LPFC_ELS_RING is
13739 * the only slow ring.
13741 status = (work_ha_copy &
13742 (HA_RXMASK << (4*LPFC_ELS_RING)));
13743 status >>= (4*LPFC_ELS_RING);
13744 if (status & HA_RXMASK) {
13745 spin_lock_irqsave(&phba->hbalock, iflag);
13746 if (lpfc_readl(phba->HCregaddr, &control))
13747 goto unplug_error;
13749 lpfc_debugfs_slow_ring_trc(phba,
13750 "ISR slow ring: ctl:x%x stat:x%x isrcnt:x%x",
13751 control, status,
13752 (uint32_t)phba->sli.slistat.sli_intr);
13754 if (control & (HC_R0INT_ENA << LPFC_ELS_RING)) {
13755 lpfc_debugfs_slow_ring_trc(phba,
13756 "ISR Disable ring:"
13757 "pwork:x%x hawork:x%x wait:x%x",
13758 phba->work_ha, work_ha_copy,
13759 (uint32_t)((unsigned long)
13760 &phba->work_waitq));
13762 control &=
13763 ~(HC_R0INT_ENA << LPFC_ELS_RING);
13764 writel(control, phba->HCregaddr);
13765 readl(phba->HCregaddr); /* flush */
13767 else {
13768 lpfc_debugfs_slow_ring_trc(phba,
13769 "ISR slow ring: pwork:"
13770 "x%x hawork:x%x wait:x%x",
13771 phba->work_ha, work_ha_copy,
13772 (uint32_t)((unsigned long)
13773 &phba->work_waitq));
13775 spin_unlock_irqrestore(&phba->hbalock, iflag);
13778 spin_lock_irqsave(&phba->hbalock, iflag);
13779 if (work_ha_copy & HA_ERATT) {
13780 if (lpfc_sli_read_hs(phba))
13781 goto unplug_error;
13783 * Check if there is a deferred error condition
13784 * is active
13786 if ((HS_FFER1 & phba->work_hs) &&
13787 ((HS_FFER2 | HS_FFER3 | HS_FFER4 | HS_FFER5 |
13788 HS_FFER6 | HS_FFER7 | HS_FFER8) &
13789 phba->work_hs)) {
13790 set_bit(DEFER_ERATT, &phba->hba_flag);
13791 /* Clear all interrupt enable conditions */
13792 writel(0, phba->HCregaddr);
13793 readl(phba->HCregaddr);
13797 if ((work_ha_copy & HA_MBATT) && (phba->sli.mbox_active)) {
13798 pmb = phba->sli.mbox_active;
13799 pmbox = &pmb->u.mb;
13800 mbox = phba->mbox;
13801 vport = pmb->vport;
13803 /* First check out the status word */
13804 lpfc_sli_pcimem_bcopy(mbox, pmbox, sizeof(uint32_t));
13805 if (pmbox->mbxOwner != OWN_HOST) {
13806 spin_unlock_irqrestore(&phba->hbalock, iflag);
13808 * Stray Mailbox Interrupt, mbxCommand <cmd>
13809 * mbxStatus <status>
13811 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
13812 "(%d):0304 Stray Mailbox "
13813 "Interrupt mbxCommand x%x "
13814 "mbxStatus x%x\n",
13815 (vport ? vport->vpi : 0),
13816 pmbox->mbxCommand,
13817 pmbox->mbxStatus);
13818 /* clear mailbox attention bit */
13819 work_ha_copy &= ~HA_MBATT;
13820 } else {
13821 phba->sli.mbox_active = NULL;
13822 spin_unlock_irqrestore(&phba->hbalock, iflag);
13823 phba->last_completion_time = jiffies;
13824 del_timer(&phba->sli.mbox_tmo);
13825 if (pmb->mbox_cmpl) {
13826 lpfc_sli_pcimem_bcopy(mbox, pmbox,
13827 MAILBOX_CMD_SIZE);
13828 if (pmb->out_ext_byte_len &&
13829 pmb->ext_buf)
13830 lpfc_sli_pcimem_bcopy(
13831 phba->mbox_ext,
13832 pmb->ext_buf,
13833 pmb->out_ext_byte_len);
13835 if (pmb->mbox_flag & LPFC_MBX_IMED_UNREG) {
13836 pmb->mbox_flag &= ~LPFC_MBX_IMED_UNREG;
13838 lpfc_debugfs_disc_trc(vport,
13839 LPFC_DISC_TRC_MBOX_VPORT,
13840 "MBOX dflt rpi: : "
13841 "status:x%x rpi:x%x",
13842 (uint32_t)pmbox->mbxStatus,
13843 pmbox->un.varWords[0], 0);
13845 if (!pmbox->mbxStatus) {
13846 mp = pmb->ctx_buf;
13847 ndlp = pmb->ctx_ndlp;
13849 /* Reg_LOGIN of dflt RPI was
13850 * successful. new lets get
13851 * rid of the RPI using the
13852 * same mbox buffer.
13854 lpfc_unreg_login(phba,
13855 vport->vpi,
13856 pmbox->un.varWords[0],
13857 pmb);
13858 pmb->mbox_cmpl =
13859 lpfc_mbx_cmpl_dflt_rpi;
13860 pmb->ctx_buf = mp;
13861 pmb->ctx_ndlp = ndlp;
13862 pmb->vport = vport;
13863 rc = lpfc_sli_issue_mbox(phba,
13864 pmb,
13865 MBX_NOWAIT);
13866 if (rc != MBX_BUSY)
13867 lpfc_printf_log(phba,
13868 KERN_ERR,
13869 LOG_TRACE_EVENT,
13870 "0350 rc should have"
13871 "been MBX_BUSY\n");
13872 if (rc != MBX_NOT_FINISHED)
13873 goto send_current_mbox;
13876 spin_lock_irqsave(
13877 &phba->pport->work_port_lock,
13878 iflag);
13879 phba->pport->work_port_events &=
13880 ~WORKER_MBOX_TMO;
13881 spin_unlock_irqrestore(
13882 &phba->pport->work_port_lock,
13883 iflag);
13885 /* Do NOT queue MBX_HEARTBEAT to the worker
13886 * thread for processing.
13888 if (pmbox->mbxCommand == MBX_HEARTBEAT) {
13889 /* Process mbox now */
13890 phba->sli.mbox_active = NULL;
13891 phba->sli.sli_flag &=
13892 ~LPFC_SLI_MBOX_ACTIVE;
13893 if (pmb->mbox_cmpl)
13894 pmb->mbox_cmpl(phba, pmb);
13895 } else {
13896 /* Queue to worker thread to process */
13897 lpfc_mbox_cmpl_put(phba, pmb);
13900 } else
13901 spin_unlock_irqrestore(&phba->hbalock, iflag);
13903 if ((work_ha_copy & HA_MBATT) &&
13904 (phba->sli.mbox_active == NULL)) {
13905 send_current_mbox:
13906 /* Process next mailbox command if there is one */
13907 do {
13908 rc = lpfc_sli_issue_mbox(phba, NULL,
13909 MBX_NOWAIT);
13910 } while (rc == MBX_NOT_FINISHED);
13911 if (rc != MBX_SUCCESS)
13912 lpfc_printf_log(phba, KERN_ERR,
13913 LOG_TRACE_EVENT,
13914 "0349 rc should be "
13915 "MBX_SUCCESS\n");
13918 spin_lock_irqsave(&phba->hbalock, iflag);
13919 phba->work_ha |= work_ha_copy;
13920 spin_unlock_irqrestore(&phba->hbalock, iflag);
13921 lpfc_worker_wake_up(phba);
13923 return IRQ_HANDLED;
13924 unplug_error:
13925 spin_unlock_irqrestore(&phba->hbalock, iflag);
13926 return IRQ_HANDLED;
13928 } /* lpfc_sli_sp_intr_handler */
13931 * lpfc_sli_fp_intr_handler - Fast-path interrupt handler to SLI-3 device.
13932 * @irq: Interrupt number.
13933 * @dev_id: The device context pointer.
13935 * This function is directly called from the PCI layer as an interrupt
13936 * service routine when device with SLI-3 interface spec is enabled with
13937 * MSI-X multi-message interrupt mode and there is a fast-path FCP IOCB
13938 * ring event in the HBA. However, when the device is enabled with either
13939 * MSI or Pin-IRQ interrupt mode, this function is called as part of the
13940 * device-level interrupt handler. When the PCI slot is in error recovery
13941 * or the HBA is undergoing initialization, the interrupt handler will not
13942 * process the interrupt. The SCSI FCP fast-path ring event are handled in
13943 * the intrrupt context. This function is called without any lock held.
13944 * It gets the hbalock to access and update SLI data structures.
13946 * This function returns IRQ_HANDLED when interrupt is handled else it
13947 * returns IRQ_NONE.
13949 irqreturn_t
13950 lpfc_sli_fp_intr_handler(int irq, void *dev_id)
13952 struct lpfc_hba *phba;
13953 uint32_t ha_copy;
13954 unsigned long status;
13955 unsigned long iflag;
13956 struct lpfc_sli_ring *pring;
13958 /* Get the driver's phba structure from the dev_id and
13959 * assume the HBA is not interrupting.
13961 phba = (struct lpfc_hba *) dev_id;
13963 if (unlikely(!phba))
13964 return IRQ_NONE;
13967 * Stuff needs to be attented to when this function is invoked as an
13968 * individual interrupt handler in MSI-X multi-message interrupt mode
13970 if (phba->intr_type == MSIX) {
13971 /* Check device state for handling interrupt */
13972 if (lpfc_intr_state_check(phba))
13973 return IRQ_NONE;
13974 /* Need to read HA REG for FCP ring and other ring events */
13975 if (lpfc_readl(phba->HAregaddr, &ha_copy))
13976 return IRQ_HANDLED;
13979 * If there is deferred error attention, do not check for
13980 * any interrupt.
13982 if (unlikely(test_bit(DEFER_ERATT, &phba->hba_flag)))
13983 return IRQ_NONE;
13985 /* Clear up only attention source related to fast-path */
13986 spin_lock_irqsave(&phba->hbalock, iflag);
13987 writel((ha_copy & (HA_R0_CLR_MSK | HA_R1_CLR_MSK)),
13988 phba->HAregaddr);
13989 readl(phba->HAregaddr); /* flush */
13990 spin_unlock_irqrestore(&phba->hbalock, iflag);
13991 } else
13992 ha_copy = phba->ha_copy;
13995 * Process all events on FCP ring. Take the optimized path for FCP IO.
13997 ha_copy &= ~(phba->work_ha_mask);
13999 status = (ha_copy & (HA_RXMASK << (4*LPFC_FCP_RING)));
14000 status >>= (4*LPFC_FCP_RING);
14001 pring = &phba->sli.sli3_ring[LPFC_FCP_RING];
14002 if (status & HA_RXMASK)
14003 lpfc_sli_handle_fast_ring_event(phba, pring, status);
14005 if (phba->cfg_multi_ring_support == 2) {
14007 * Process all events on extra ring. Take the optimized path
14008 * for extra ring IO.
14010 status = (ha_copy & (HA_RXMASK << (4*LPFC_EXTRA_RING)));
14011 status >>= (4*LPFC_EXTRA_RING);
14012 if (status & HA_RXMASK) {
14013 lpfc_sli_handle_fast_ring_event(phba,
14014 &phba->sli.sli3_ring[LPFC_EXTRA_RING],
14015 status);
14018 return IRQ_HANDLED;
14019 } /* lpfc_sli_fp_intr_handler */
14022 * lpfc_sli_intr_handler - Device-level interrupt handler to SLI-3 device
14023 * @irq: Interrupt number.
14024 * @dev_id: The device context pointer.
14026 * This function is the HBA device-level interrupt handler to device with
14027 * SLI-3 interface spec, called from the PCI layer when either MSI or
14028 * Pin-IRQ interrupt mode is enabled and there is an event in the HBA which
14029 * requires driver attention. This function invokes the slow-path interrupt
14030 * attention handling function and fast-path interrupt attention handling
14031 * function in turn to process the relevant HBA attention events. This
14032 * function is called without any lock held. It gets the hbalock to access
14033 * and update SLI data structures.
14035 * This function returns IRQ_HANDLED when interrupt is handled, else it
14036 * returns IRQ_NONE.
14038 irqreturn_t
14039 lpfc_sli_intr_handler(int irq, void *dev_id)
14041 struct lpfc_hba *phba;
14042 irqreturn_t sp_irq_rc, fp_irq_rc;
14043 unsigned long status1, status2;
14044 uint32_t hc_copy;
14047 * Get the driver's phba structure from the dev_id and
14048 * assume the HBA is not interrupting.
14050 phba = (struct lpfc_hba *) dev_id;
14052 if (unlikely(!phba))
14053 return IRQ_NONE;
14055 /* Check device state for handling interrupt */
14056 if (lpfc_intr_state_check(phba))
14057 return IRQ_NONE;
14059 spin_lock(&phba->hbalock);
14060 if (lpfc_readl(phba->HAregaddr, &phba->ha_copy)) {
14061 spin_unlock(&phba->hbalock);
14062 return IRQ_HANDLED;
14065 if (unlikely(!phba->ha_copy)) {
14066 spin_unlock(&phba->hbalock);
14067 return IRQ_NONE;
14068 } else if (phba->ha_copy & HA_ERATT) {
14069 if (test_and_set_bit(HBA_ERATT_HANDLED, &phba->hba_flag))
14070 /* ERATT polling has handled ERATT */
14071 phba->ha_copy &= ~HA_ERATT;
14075 * If there is deferred error attention, do not check for any interrupt.
14077 if (unlikely(test_bit(DEFER_ERATT, &phba->hba_flag))) {
14078 spin_unlock(&phba->hbalock);
14079 return IRQ_NONE;
14082 /* Clear attention sources except link and error attentions */
14083 if (lpfc_readl(phba->HCregaddr, &hc_copy)) {
14084 spin_unlock(&phba->hbalock);
14085 return IRQ_HANDLED;
14087 writel(hc_copy & ~(HC_MBINT_ENA | HC_R0INT_ENA | HC_R1INT_ENA
14088 | HC_R2INT_ENA | HC_LAINT_ENA | HC_ERINT_ENA),
14089 phba->HCregaddr);
14090 writel((phba->ha_copy & ~(HA_LATT | HA_ERATT)), phba->HAregaddr);
14091 writel(hc_copy, phba->HCregaddr);
14092 readl(phba->HAregaddr); /* flush */
14093 spin_unlock(&phba->hbalock);
14096 * Invokes slow-path host attention interrupt handling as appropriate.
14099 /* status of events with mailbox and link attention */
14100 status1 = phba->ha_copy & (HA_MBATT | HA_LATT | HA_ERATT);
14102 /* status of events with ELS ring */
14103 status2 = (phba->ha_copy & (HA_RXMASK << (4*LPFC_ELS_RING)));
14104 status2 >>= (4*LPFC_ELS_RING);
14106 if (status1 || (status2 & HA_RXMASK))
14107 sp_irq_rc = lpfc_sli_sp_intr_handler(irq, dev_id);
14108 else
14109 sp_irq_rc = IRQ_NONE;
14112 * Invoke fast-path host attention interrupt handling as appropriate.
14115 /* status of events with FCP ring */
14116 status1 = (phba->ha_copy & (HA_RXMASK << (4*LPFC_FCP_RING)));
14117 status1 >>= (4*LPFC_FCP_RING);
14119 /* status of events with extra ring */
14120 if (phba->cfg_multi_ring_support == 2) {
14121 status2 = (phba->ha_copy & (HA_RXMASK << (4*LPFC_EXTRA_RING)));
14122 status2 >>= (4*LPFC_EXTRA_RING);
14123 } else
14124 status2 = 0;
14126 if ((status1 & HA_RXMASK) || (status2 & HA_RXMASK))
14127 fp_irq_rc = lpfc_sli_fp_intr_handler(irq, dev_id);
14128 else
14129 fp_irq_rc = IRQ_NONE;
14131 /* Return device-level interrupt handling status */
14132 return (sp_irq_rc == IRQ_HANDLED) ? sp_irq_rc : fp_irq_rc;
14133 } /* lpfc_sli_intr_handler */
14136 * lpfc_sli4_els_xri_abort_event_proc - Process els xri abort event
14137 * @phba: pointer to lpfc hba data structure.
14139 * This routine is invoked by the worker thread to process all the pending
14140 * SLI4 els abort xri events.
14142 void lpfc_sli4_els_xri_abort_event_proc(struct lpfc_hba *phba)
14144 struct lpfc_cq_event *cq_event;
14145 unsigned long iflags;
14147 /* First, declare the els xri abort event has been handled */
14148 clear_bit(ELS_XRI_ABORT_EVENT, &phba->hba_flag);
14150 /* Now, handle all the els xri abort events */
14151 spin_lock_irqsave(&phba->sli4_hba.els_xri_abrt_list_lock, iflags);
14152 while (!list_empty(&phba->sli4_hba.sp_els_xri_aborted_work_queue)) {
14153 /* Get the first event from the head of the event queue */
14154 list_remove_head(&phba->sli4_hba.sp_els_xri_aborted_work_queue,
14155 cq_event, struct lpfc_cq_event, list);
14156 spin_unlock_irqrestore(&phba->sli4_hba.els_xri_abrt_list_lock,
14157 iflags);
14158 /* Notify aborted XRI for ELS work queue */
14159 lpfc_sli4_els_xri_aborted(phba, &cq_event->cqe.wcqe_axri);
14161 /* Free the event processed back to the free pool */
14162 lpfc_sli4_cq_event_release(phba, cq_event);
14163 spin_lock_irqsave(&phba->sli4_hba.els_xri_abrt_list_lock,
14164 iflags);
14166 spin_unlock_irqrestore(&phba->sli4_hba.els_xri_abrt_list_lock, iflags);
14170 * lpfc_sli4_els_preprocess_rspiocbq - Get response iocbq from els wcqe
14171 * @phba: Pointer to HBA context object.
14172 * @irspiocbq: Pointer to work-queue completion queue entry.
14174 * This routine handles an ELS work-queue completion event and construct
14175 * a pseudo response ELS IOCBQ from the SLI4 ELS WCQE for the common
14176 * discovery engine to handle.
14178 * Return: Pointer to the receive IOCBQ, NULL otherwise.
14180 static struct lpfc_iocbq *
14181 lpfc_sli4_els_preprocess_rspiocbq(struct lpfc_hba *phba,
14182 struct lpfc_iocbq *irspiocbq)
14184 struct lpfc_sli_ring *pring;
14185 struct lpfc_iocbq *cmdiocbq;
14186 struct lpfc_wcqe_complete *wcqe;
14187 unsigned long iflags;
14189 pring = lpfc_phba_elsring(phba);
14190 if (unlikely(!pring))
14191 return NULL;
14193 wcqe = &irspiocbq->cq_event.cqe.wcqe_cmpl;
14194 spin_lock_irqsave(&pring->ring_lock, iflags);
14195 pring->stats.iocb_event++;
14196 /* Look up the ELS command IOCB and create pseudo response IOCB */
14197 cmdiocbq = lpfc_sli_iocbq_lookup_by_tag(phba, pring,
14198 bf_get(lpfc_wcqe_c_request_tag, wcqe));
14199 if (unlikely(!cmdiocbq)) {
14200 spin_unlock_irqrestore(&pring->ring_lock, iflags);
14201 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
14202 "0386 ELS complete with no corresponding "
14203 "cmdiocb: 0x%x 0x%x 0x%x 0x%x\n",
14204 wcqe->word0, wcqe->total_data_placed,
14205 wcqe->parameter, wcqe->word3);
14206 lpfc_sli_release_iocbq(phba, irspiocbq);
14207 return NULL;
14210 memcpy(&irspiocbq->wqe, &cmdiocbq->wqe, sizeof(union lpfc_wqe128));
14211 memcpy(&irspiocbq->wcqe_cmpl, wcqe, sizeof(*wcqe));
14213 /* Put the iocb back on the txcmplq */
14214 lpfc_sli_ringtxcmpl_put(phba, pring, cmdiocbq);
14215 spin_unlock_irqrestore(&pring->ring_lock, iflags);
14217 if (bf_get(lpfc_wcqe_c_xb, wcqe)) {
14218 spin_lock_irqsave(&phba->hbalock, iflags);
14219 irspiocbq->cmd_flag |= LPFC_EXCHANGE_BUSY;
14220 spin_unlock_irqrestore(&phba->hbalock, iflags);
14223 return irspiocbq;
14226 inline struct lpfc_cq_event *
14227 lpfc_cq_event_setup(struct lpfc_hba *phba, void *entry, int size)
14229 struct lpfc_cq_event *cq_event;
14231 /* Allocate a new internal CQ_EVENT entry */
14232 cq_event = lpfc_sli4_cq_event_alloc(phba);
14233 if (!cq_event) {
14234 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14235 "0602 Failed to alloc CQ_EVENT entry\n");
14236 return NULL;
14239 /* Move the CQE into the event */
14240 memcpy(&cq_event->cqe, entry, size);
14241 return cq_event;
14245 * lpfc_sli4_sp_handle_async_event - Handle an asynchronous event
14246 * @phba: Pointer to HBA context object.
14247 * @mcqe: Pointer to mailbox completion queue entry.
14249 * This routine process a mailbox completion queue entry with asynchronous
14250 * event.
14252 * Return: true if work posted to worker thread, otherwise false.
14254 static bool
14255 lpfc_sli4_sp_handle_async_event(struct lpfc_hba *phba, struct lpfc_mcqe *mcqe)
14257 struct lpfc_cq_event *cq_event;
14258 unsigned long iflags;
14260 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
14261 "0392 Async Event: word0:x%x, word1:x%x, "
14262 "word2:x%x, word3:x%x\n", mcqe->word0,
14263 mcqe->mcqe_tag0, mcqe->mcqe_tag1, mcqe->trailer);
14265 cq_event = lpfc_cq_event_setup(phba, mcqe, sizeof(struct lpfc_mcqe));
14266 if (!cq_event)
14267 return false;
14269 spin_lock_irqsave(&phba->sli4_hba.asynce_list_lock, iflags);
14270 list_add_tail(&cq_event->list, &phba->sli4_hba.sp_asynce_work_queue);
14271 spin_unlock_irqrestore(&phba->sli4_hba.asynce_list_lock, iflags);
14273 /* Set the async event flag */
14274 set_bit(ASYNC_EVENT, &phba->hba_flag);
14276 return true;
14280 * lpfc_sli4_sp_handle_mbox_event - Handle a mailbox completion event
14281 * @phba: Pointer to HBA context object.
14282 * @mcqe: Pointer to mailbox completion queue entry.
14284 * This routine process a mailbox completion queue entry with mailbox
14285 * completion event.
14287 * Return: true if work posted to worker thread, otherwise false.
14289 static bool
14290 lpfc_sli4_sp_handle_mbox_event(struct lpfc_hba *phba, struct lpfc_mcqe *mcqe)
14292 uint32_t mcqe_status;
14293 MAILBOX_t *mbox, *pmbox;
14294 struct lpfc_mqe *mqe;
14295 struct lpfc_vport *vport;
14296 struct lpfc_nodelist *ndlp;
14297 struct lpfc_dmabuf *mp;
14298 unsigned long iflags;
14299 LPFC_MBOXQ_t *pmb;
14300 bool workposted = false;
14301 int rc;
14303 /* If not a mailbox complete MCQE, out by checking mailbox consume */
14304 if (!bf_get(lpfc_trailer_completed, mcqe))
14305 goto out_no_mqe_complete;
14307 /* Get the reference to the active mbox command */
14308 spin_lock_irqsave(&phba->hbalock, iflags);
14309 pmb = phba->sli.mbox_active;
14310 if (unlikely(!pmb)) {
14311 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14312 "1832 No pending MBOX command to handle\n");
14313 spin_unlock_irqrestore(&phba->hbalock, iflags);
14314 goto out_no_mqe_complete;
14316 spin_unlock_irqrestore(&phba->hbalock, iflags);
14317 mqe = &pmb->u.mqe;
14318 pmbox = (MAILBOX_t *)&pmb->u.mqe;
14319 mbox = phba->mbox;
14320 vport = pmb->vport;
14322 /* Reset heartbeat timer */
14323 phba->last_completion_time = jiffies;
14324 del_timer(&phba->sli.mbox_tmo);
14326 /* Move mbox data to caller's mailbox region, do endian swapping */
14327 if (pmb->mbox_cmpl && mbox)
14328 lpfc_sli4_pcimem_bcopy(mbox, mqe, sizeof(struct lpfc_mqe));
14331 * For mcqe errors, conditionally move a modified error code to
14332 * the mbox so that the error will not be missed.
14334 mcqe_status = bf_get(lpfc_mcqe_status, mcqe);
14335 if (mcqe_status != MB_CQE_STATUS_SUCCESS) {
14336 if (bf_get(lpfc_mqe_status, mqe) == MBX_SUCCESS)
14337 bf_set(lpfc_mqe_status, mqe,
14338 (LPFC_MBX_ERROR_RANGE | mcqe_status));
14340 if (pmb->mbox_flag & LPFC_MBX_IMED_UNREG) {
14341 pmb->mbox_flag &= ~LPFC_MBX_IMED_UNREG;
14342 lpfc_debugfs_disc_trc(vport, LPFC_DISC_TRC_MBOX_VPORT,
14343 "MBOX dflt rpi: status:x%x rpi:x%x",
14344 mcqe_status,
14345 pmbox->un.varWords[0], 0);
14346 if (mcqe_status == MB_CQE_STATUS_SUCCESS) {
14347 mp = pmb->ctx_buf;
14348 ndlp = pmb->ctx_ndlp;
14350 /* Reg_LOGIN of dflt RPI was successful. Mark the
14351 * node as having an UNREG_LOGIN in progress to stop
14352 * an unsolicited PLOGI from the same NPortId from
14353 * starting another mailbox transaction.
14355 spin_lock_irqsave(&ndlp->lock, iflags);
14356 ndlp->nlp_flag |= NLP_UNREG_INP;
14357 spin_unlock_irqrestore(&ndlp->lock, iflags);
14358 lpfc_unreg_login(phba, vport->vpi,
14359 pmbox->un.varWords[0], pmb);
14360 pmb->mbox_cmpl = lpfc_mbx_cmpl_dflt_rpi;
14361 pmb->ctx_buf = mp;
14363 /* No reference taken here. This is a default
14364 * RPI reg/immediate unreg cycle. The reference was
14365 * taken in the reg rpi path and is released when
14366 * this mailbox completes.
14368 pmb->ctx_ndlp = ndlp;
14369 pmb->vport = vport;
14370 rc = lpfc_sli_issue_mbox(phba, pmb, MBX_NOWAIT);
14371 if (rc != MBX_BUSY)
14372 lpfc_printf_log(phba, KERN_ERR,
14373 LOG_TRACE_EVENT,
14374 "0385 rc should "
14375 "have been MBX_BUSY\n");
14376 if (rc != MBX_NOT_FINISHED)
14377 goto send_current_mbox;
14380 spin_lock_irqsave(&phba->pport->work_port_lock, iflags);
14381 phba->pport->work_port_events &= ~WORKER_MBOX_TMO;
14382 spin_unlock_irqrestore(&phba->pport->work_port_lock, iflags);
14384 /* Do NOT queue MBX_HEARTBEAT to the worker thread for processing. */
14385 if (pmbox->mbxCommand == MBX_HEARTBEAT) {
14386 spin_lock_irqsave(&phba->hbalock, iflags);
14387 /* Release the mailbox command posting token */
14388 phba->sli.sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
14389 phba->sli.mbox_active = NULL;
14390 if (bf_get(lpfc_trailer_consumed, mcqe))
14391 lpfc_sli4_mq_release(phba->sli4_hba.mbx_wq);
14392 spin_unlock_irqrestore(&phba->hbalock, iflags);
14394 /* Post the next mbox command, if there is one */
14395 lpfc_sli4_post_async_mbox(phba);
14397 /* Process cmpl now */
14398 if (pmb->mbox_cmpl)
14399 pmb->mbox_cmpl(phba, pmb);
14400 return false;
14403 /* There is mailbox completion work to queue to the worker thread */
14404 spin_lock_irqsave(&phba->hbalock, iflags);
14405 __lpfc_mbox_cmpl_put(phba, pmb);
14406 phba->work_ha |= HA_MBATT;
14407 spin_unlock_irqrestore(&phba->hbalock, iflags);
14408 workposted = true;
14410 send_current_mbox:
14411 spin_lock_irqsave(&phba->hbalock, iflags);
14412 /* Release the mailbox command posting token */
14413 phba->sli.sli_flag &= ~LPFC_SLI_MBOX_ACTIVE;
14414 /* Setting active mailbox pointer need to be in sync to flag clear */
14415 phba->sli.mbox_active = NULL;
14416 if (bf_get(lpfc_trailer_consumed, mcqe))
14417 lpfc_sli4_mq_release(phba->sli4_hba.mbx_wq);
14418 spin_unlock_irqrestore(&phba->hbalock, iflags);
14419 /* Wake up worker thread to post the next pending mailbox command */
14420 lpfc_worker_wake_up(phba);
14421 return workposted;
14423 out_no_mqe_complete:
14424 spin_lock_irqsave(&phba->hbalock, iflags);
14425 if (bf_get(lpfc_trailer_consumed, mcqe))
14426 lpfc_sli4_mq_release(phba->sli4_hba.mbx_wq);
14427 spin_unlock_irqrestore(&phba->hbalock, iflags);
14428 return false;
14432 * lpfc_sli4_sp_handle_mcqe - Process a mailbox completion queue entry
14433 * @phba: Pointer to HBA context object.
14434 * @cq: Pointer to associated CQ
14435 * @cqe: Pointer to mailbox completion queue entry.
14437 * This routine process a mailbox completion queue entry, it invokes the
14438 * proper mailbox complete handling or asynchronous event handling routine
14439 * according to the MCQE's async bit.
14441 * Return: true if work posted to worker thread, otherwise false.
14443 static bool
14444 lpfc_sli4_sp_handle_mcqe(struct lpfc_hba *phba, struct lpfc_queue *cq,
14445 struct lpfc_cqe *cqe)
14447 struct lpfc_mcqe mcqe;
14448 bool workposted;
14450 cq->CQ_mbox++;
14452 /* Copy the mailbox MCQE and convert endian order as needed */
14453 lpfc_sli4_pcimem_bcopy(cqe, &mcqe, sizeof(struct lpfc_mcqe));
14455 /* Invoke the proper event handling routine */
14456 if (!bf_get(lpfc_trailer_async, &mcqe))
14457 workposted = lpfc_sli4_sp_handle_mbox_event(phba, &mcqe);
14458 else
14459 workposted = lpfc_sli4_sp_handle_async_event(phba, &mcqe);
14460 return workposted;
14464 * lpfc_sli4_sp_handle_els_wcqe - Handle els work-queue completion event
14465 * @phba: Pointer to HBA context object.
14466 * @cq: Pointer to associated CQ
14467 * @wcqe: Pointer to work-queue completion queue entry.
14469 * This routine handles an ELS work-queue completion event.
14471 * Return: true if work posted to worker thread, otherwise false.
14473 static bool
14474 lpfc_sli4_sp_handle_els_wcqe(struct lpfc_hba *phba, struct lpfc_queue *cq,
14475 struct lpfc_wcqe_complete *wcqe)
14477 struct lpfc_iocbq *irspiocbq;
14478 unsigned long iflags;
14479 struct lpfc_sli_ring *pring = cq->pring;
14480 int txq_cnt = 0;
14481 int txcmplq_cnt = 0;
14483 /* Check for response status */
14484 if (unlikely(bf_get(lpfc_wcqe_c_status, wcqe))) {
14485 /* Log the error status */
14486 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
14487 "0357 ELS CQE error: status=x%x: "
14488 "CQE: %08x %08x %08x %08x\n",
14489 bf_get(lpfc_wcqe_c_status, wcqe),
14490 wcqe->word0, wcqe->total_data_placed,
14491 wcqe->parameter, wcqe->word3);
14494 /* Get an irspiocbq for later ELS response processing use */
14495 irspiocbq = lpfc_sli_get_iocbq(phba);
14496 if (!irspiocbq) {
14497 if (!list_empty(&pring->txq))
14498 txq_cnt++;
14499 if (!list_empty(&pring->txcmplq))
14500 txcmplq_cnt++;
14501 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14502 "0387 NO IOCBQ data: txq_cnt=%d iocb_cnt=%d "
14503 "els_txcmplq_cnt=%d\n",
14504 txq_cnt, phba->iocb_cnt,
14505 txcmplq_cnt);
14506 return false;
14509 /* Save off the slow-path queue event for work thread to process */
14510 memcpy(&irspiocbq->cq_event.cqe.wcqe_cmpl, wcqe, sizeof(*wcqe));
14511 spin_lock_irqsave(&phba->hbalock, iflags);
14512 list_add_tail(&irspiocbq->cq_event.list,
14513 &phba->sli4_hba.sp_queue_event);
14514 spin_unlock_irqrestore(&phba->hbalock, iflags);
14515 set_bit(HBA_SP_QUEUE_EVT, &phba->hba_flag);
14517 return true;
14521 * lpfc_sli4_sp_handle_rel_wcqe - Handle slow-path WQ entry consumed event
14522 * @phba: Pointer to HBA context object.
14523 * @wcqe: Pointer to work-queue completion queue entry.
14525 * This routine handles slow-path WQ entry consumed event by invoking the
14526 * proper WQ release routine to the slow-path WQ.
14528 static void
14529 lpfc_sli4_sp_handle_rel_wcqe(struct lpfc_hba *phba,
14530 struct lpfc_wcqe_release *wcqe)
14532 /* sanity check on queue memory */
14533 if (unlikely(!phba->sli4_hba.els_wq))
14534 return;
14535 /* Check for the slow-path ELS work queue */
14536 if (bf_get(lpfc_wcqe_r_wq_id, wcqe) == phba->sli4_hba.els_wq->queue_id)
14537 lpfc_sli4_wq_release(phba->sli4_hba.els_wq,
14538 bf_get(lpfc_wcqe_r_wqe_index, wcqe));
14539 else
14540 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
14541 "2579 Slow-path wqe consume event carries "
14542 "miss-matched qid: wcqe-qid=x%x, sp-qid=x%x\n",
14543 bf_get(lpfc_wcqe_r_wqe_index, wcqe),
14544 phba->sli4_hba.els_wq->queue_id);
14548 * lpfc_sli4_sp_handle_abort_xri_wcqe - Handle a xri abort event
14549 * @phba: Pointer to HBA context object.
14550 * @cq: Pointer to a WQ completion queue.
14551 * @wcqe: Pointer to work-queue completion queue entry.
14553 * This routine handles an XRI abort event.
14555 * Return: true if work posted to worker thread, otherwise false.
14557 static bool
14558 lpfc_sli4_sp_handle_abort_xri_wcqe(struct lpfc_hba *phba,
14559 struct lpfc_queue *cq,
14560 struct sli4_wcqe_xri_aborted *wcqe)
14562 bool workposted = false;
14563 struct lpfc_cq_event *cq_event;
14564 unsigned long iflags;
14566 switch (cq->subtype) {
14567 case LPFC_IO:
14568 lpfc_sli4_io_xri_aborted(phba, wcqe, cq->hdwq);
14569 if (phba->cfg_enable_fc4_type & LPFC_ENABLE_NVME) {
14570 /* Notify aborted XRI for NVME work queue */
14571 if (phba->nvmet_support)
14572 lpfc_sli4_nvmet_xri_aborted(phba, wcqe);
14574 workposted = false;
14575 break;
14576 case LPFC_NVME_LS: /* NVME LS uses ELS resources */
14577 case LPFC_ELS:
14578 cq_event = lpfc_cq_event_setup(phba, wcqe, sizeof(*wcqe));
14579 if (!cq_event) {
14580 workposted = false;
14581 break;
14583 cq_event->hdwq = cq->hdwq;
14584 spin_lock_irqsave(&phba->sli4_hba.els_xri_abrt_list_lock,
14585 iflags);
14586 list_add_tail(&cq_event->list,
14587 &phba->sli4_hba.sp_els_xri_aborted_work_queue);
14588 /* Set the els xri abort event flag */
14589 set_bit(ELS_XRI_ABORT_EVENT, &phba->hba_flag);
14590 spin_unlock_irqrestore(&phba->sli4_hba.els_xri_abrt_list_lock,
14591 iflags);
14592 workposted = true;
14593 break;
14594 default:
14595 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14596 "0603 Invalid CQ subtype %d: "
14597 "%08x %08x %08x %08x\n",
14598 cq->subtype, wcqe->word0, wcqe->parameter,
14599 wcqe->word2, wcqe->word3);
14600 workposted = false;
14601 break;
14603 return workposted;
14606 #define FC_RCTL_MDS_DIAGS 0xF4
14609 * lpfc_sli4_sp_handle_rcqe - Process a receive-queue completion queue entry
14610 * @phba: Pointer to HBA context object.
14611 * @rcqe: Pointer to receive-queue completion queue entry.
14613 * This routine process a receive-queue completion queue entry.
14615 * Return: true if work posted to worker thread, otherwise false.
14617 static bool
14618 lpfc_sli4_sp_handle_rcqe(struct lpfc_hba *phba, struct lpfc_rcqe *rcqe)
14620 bool workposted = false;
14621 struct fc_frame_header *fc_hdr;
14622 struct lpfc_queue *hrq = phba->sli4_hba.hdr_rq;
14623 struct lpfc_queue *drq = phba->sli4_hba.dat_rq;
14624 struct lpfc_nvmet_tgtport *tgtp;
14625 struct hbq_dmabuf *dma_buf;
14626 uint32_t status, rq_id;
14627 unsigned long iflags;
14629 /* sanity check on queue memory */
14630 if (unlikely(!hrq) || unlikely(!drq))
14631 return workposted;
14633 if (bf_get(lpfc_cqe_code, rcqe) == CQE_CODE_RECEIVE_V1)
14634 rq_id = bf_get(lpfc_rcqe_rq_id_v1, rcqe);
14635 else
14636 rq_id = bf_get(lpfc_rcqe_rq_id, rcqe);
14637 if (rq_id != hrq->queue_id)
14638 goto out;
14640 status = bf_get(lpfc_rcqe_status, rcqe);
14641 switch (status) {
14642 case FC_STATUS_RQ_BUF_LEN_EXCEEDED:
14643 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14644 "2537 Receive Frame Truncated!!\n");
14645 fallthrough;
14646 case FC_STATUS_RQ_SUCCESS:
14647 spin_lock_irqsave(&phba->hbalock, iflags);
14648 lpfc_sli4_rq_release(hrq, drq);
14649 dma_buf = lpfc_sli_hbqbuf_get(&phba->hbqs[0].hbq_buffer_list);
14650 if (!dma_buf) {
14651 hrq->RQ_no_buf_found++;
14652 spin_unlock_irqrestore(&phba->hbalock, iflags);
14653 goto out;
14655 hrq->RQ_rcv_buf++;
14656 hrq->RQ_buf_posted--;
14657 memcpy(&dma_buf->cq_event.cqe.rcqe_cmpl, rcqe, sizeof(*rcqe));
14659 fc_hdr = (struct fc_frame_header *)dma_buf->hbuf.virt;
14661 if (fc_hdr->fh_r_ctl == FC_RCTL_MDS_DIAGS ||
14662 fc_hdr->fh_r_ctl == FC_RCTL_DD_UNSOL_DATA) {
14663 spin_unlock_irqrestore(&phba->hbalock, iflags);
14664 /* Handle MDS Loopback frames */
14665 if (!test_bit(FC_UNLOADING, &phba->pport->load_flag))
14666 lpfc_sli4_handle_mds_loopback(phba->pport,
14667 dma_buf);
14668 else
14669 lpfc_in_buf_free(phba, &dma_buf->dbuf);
14670 break;
14673 /* save off the frame for the work thread to process */
14674 list_add_tail(&dma_buf->cq_event.list,
14675 &phba->sli4_hba.sp_queue_event);
14676 spin_unlock_irqrestore(&phba->hbalock, iflags);
14677 /* Frame received */
14678 set_bit(HBA_SP_QUEUE_EVT, &phba->hba_flag);
14679 workposted = true;
14680 break;
14681 case FC_STATUS_INSUFF_BUF_FRM_DISC:
14682 if (phba->nvmet_support) {
14683 tgtp = phba->targetport->private;
14684 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14685 "6402 RQE Error x%x, posted %d err_cnt "
14686 "%d: %x %x %x\n",
14687 status, hrq->RQ_buf_posted,
14688 hrq->RQ_no_posted_buf,
14689 atomic_read(&tgtp->rcv_fcp_cmd_in),
14690 atomic_read(&tgtp->rcv_fcp_cmd_out),
14691 atomic_read(&tgtp->xmt_fcp_release));
14693 fallthrough;
14695 case FC_STATUS_INSUFF_BUF_NEED_BUF:
14696 hrq->RQ_no_posted_buf++;
14697 /* Post more buffers if possible */
14698 set_bit(HBA_POST_RECEIVE_BUFFER, &phba->hba_flag);
14699 workposted = true;
14700 break;
14701 case FC_STATUS_RQ_DMA_FAILURE:
14702 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14703 "2564 RQE DMA Error x%x, x%08x x%08x x%08x "
14704 "x%08x\n",
14705 status, rcqe->word0, rcqe->word1,
14706 rcqe->word2, rcqe->word3);
14708 /* If IV set, no further recovery */
14709 if (bf_get(lpfc_rcqe_iv, rcqe))
14710 break;
14712 /* recycle consumed resource */
14713 spin_lock_irqsave(&phba->hbalock, iflags);
14714 lpfc_sli4_rq_release(hrq, drq);
14715 dma_buf = lpfc_sli_hbqbuf_get(&phba->hbqs[0].hbq_buffer_list);
14716 if (!dma_buf) {
14717 hrq->RQ_no_buf_found++;
14718 spin_unlock_irqrestore(&phba->hbalock, iflags);
14719 break;
14721 hrq->RQ_rcv_buf++;
14722 hrq->RQ_buf_posted--;
14723 spin_unlock_irqrestore(&phba->hbalock, iflags);
14724 lpfc_in_buf_free(phba, &dma_buf->dbuf);
14725 break;
14726 default:
14727 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14728 "2565 Unexpected RQE Status x%x, w0-3 x%08x "
14729 "x%08x x%08x x%08x\n",
14730 status, rcqe->word0, rcqe->word1,
14731 rcqe->word2, rcqe->word3);
14732 break;
14734 out:
14735 return workposted;
14739 * lpfc_sli4_sp_handle_cqe - Process a slow path completion queue entry
14740 * @phba: Pointer to HBA context object.
14741 * @cq: Pointer to the completion queue.
14742 * @cqe: Pointer to a completion queue entry.
14744 * This routine process a slow-path work-queue or receive queue completion queue
14745 * entry.
14747 * Return: true if work posted to worker thread, otherwise false.
14749 static bool
14750 lpfc_sli4_sp_handle_cqe(struct lpfc_hba *phba, struct lpfc_queue *cq,
14751 struct lpfc_cqe *cqe)
14753 struct lpfc_cqe cqevt;
14754 bool workposted = false;
14756 /* Copy the work queue CQE and convert endian order if needed */
14757 lpfc_sli4_pcimem_bcopy(cqe, &cqevt, sizeof(struct lpfc_cqe));
14759 /* Check and process for different type of WCQE and dispatch */
14760 switch (bf_get(lpfc_cqe_code, &cqevt)) {
14761 case CQE_CODE_COMPL_WQE:
14762 /* Process the WQ/RQ complete event */
14763 phba->last_completion_time = jiffies;
14764 workposted = lpfc_sli4_sp_handle_els_wcqe(phba, cq,
14765 (struct lpfc_wcqe_complete *)&cqevt);
14766 break;
14767 case CQE_CODE_RELEASE_WQE:
14768 /* Process the WQ release event */
14769 lpfc_sli4_sp_handle_rel_wcqe(phba,
14770 (struct lpfc_wcqe_release *)&cqevt);
14771 break;
14772 case CQE_CODE_XRI_ABORTED:
14773 /* Process the WQ XRI abort event */
14774 phba->last_completion_time = jiffies;
14775 workposted = lpfc_sli4_sp_handle_abort_xri_wcqe(phba, cq,
14776 (struct sli4_wcqe_xri_aborted *)&cqevt);
14777 break;
14778 case CQE_CODE_RECEIVE:
14779 case CQE_CODE_RECEIVE_V1:
14780 /* Process the RQ event */
14781 phba->last_completion_time = jiffies;
14782 workposted = lpfc_sli4_sp_handle_rcqe(phba,
14783 (struct lpfc_rcqe *)&cqevt);
14784 break;
14785 default:
14786 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14787 "0388 Not a valid WCQE code: x%x\n",
14788 bf_get(lpfc_cqe_code, &cqevt));
14789 break;
14791 return workposted;
14795 * lpfc_sli4_sp_handle_eqe - Process a slow-path event queue entry
14796 * @phba: Pointer to HBA context object.
14797 * @eqe: Pointer to fast-path event queue entry.
14798 * @speq: Pointer to slow-path event queue.
14800 * This routine process a event queue entry from the slow-path event queue.
14801 * It will check the MajorCode and MinorCode to determine this is for a
14802 * completion event on a completion queue, if not, an error shall be logged
14803 * and just return. Otherwise, it will get to the corresponding completion
14804 * queue and process all the entries on that completion queue, rearm the
14805 * completion queue, and then return.
14808 static void
14809 lpfc_sli4_sp_handle_eqe(struct lpfc_hba *phba, struct lpfc_eqe *eqe,
14810 struct lpfc_queue *speq)
14812 struct lpfc_queue *cq = NULL, *childq;
14813 uint16_t cqid;
14814 int ret = 0;
14816 /* Get the reference to the corresponding CQ */
14817 cqid = bf_get_le32(lpfc_eqe_resource_id, eqe);
14819 list_for_each_entry(childq, &speq->child_list, list) {
14820 if (childq->queue_id == cqid) {
14821 cq = childq;
14822 break;
14825 if (unlikely(!cq)) {
14826 if (phba->sli.sli_flag & LPFC_SLI_ACTIVE)
14827 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14828 "0365 Slow-path CQ identifier "
14829 "(%d) does not exist\n", cqid);
14830 return;
14833 /* Save EQ associated with this CQ */
14834 cq->assoc_qp = speq;
14836 if (is_kdump_kernel())
14837 ret = queue_work(phba->wq, &cq->spwork);
14838 else
14839 ret = queue_work_on(cq->chann, phba->wq, &cq->spwork);
14841 if (!ret)
14842 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14843 "0390 Cannot schedule queue work "
14844 "for CQ eqcqid=%d, cqid=%d on CPU %d\n",
14845 cqid, cq->queue_id, raw_smp_processor_id());
14849 * __lpfc_sli4_process_cq - Process elements of a CQ
14850 * @phba: Pointer to HBA context object.
14851 * @cq: Pointer to CQ to be processed
14852 * @handler: Routine to process each cqe
14853 * @delay: Pointer to usdelay to set in case of rescheduling of the handler
14855 * This routine processes completion queue entries in a CQ. While a valid
14856 * queue element is found, the handler is called. During processing checks
14857 * are made for periodic doorbell writes to let the hardware know of
14858 * element consumption.
14860 * If the max limit on cqes to process is hit, or there are no more valid
14861 * entries, the loop stops. If we processed a sufficient number of elements,
14862 * meaning there is sufficient load, rather than rearming and generating
14863 * another interrupt, a cq rescheduling delay will be set. A delay of 0
14864 * indicates no rescheduling.
14866 * Returns True if work scheduled, False otherwise.
14868 static bool
14869 __lpfc_sli4_process_cq(struct lpfc_hba *phba, struct lpfc_queue *cq,
14870 bool (*handler)(struct lpfc_hba *, struct lpfc_queue *,
14871 struct lpfc_cqe *), unsigned long *delay)
14873 struct lpfc_cqe *cqe;
14874 bool workposted = false;
14875 int count = 0, consumed = 0;
14876 bool arm = true;
14878 /* default - no reschedule */
14879 *delay = 0;
14881 if (cmpxchg(&cq->queue_claimed, 0, 1) != 0)
14882 goto rearm_and_exit;
14884 /* Process all the entries to the CQ */
14885 cq->q_flag = 0;
14886 cqe = lpfc_sli4_cq_get(cq);
14887 while (cqe) {
14888 workposted |= handler(phba, cq, cqe);
14889 __lpfc_sli4_consume_cqe(phba, cq, cqe);
14891 consumed++;
14892 if (!(++count % cq->max_proc_limit))
14893 break;
14895 if (!(count % cq->notify_interval)) {
14896 phba->sli4_hba.sli4_write_cq_db(phba, cq, consumed,
14897 LPFC_QUEUE_NOARM);
14898 consumed = 0;
14899 cq->assoc_qp->q_flag |= HBA_EQ_DELAY_CHK;
14902 if (count == LPFC_NVMET_CQ_NOTIFY)
14903 cq->q_flag |= HBA_NVMET_CQ_NOTIFY;
14905 cqe = lpfc_sli4_cq_get(cq);
14907 if (count >= phba->cfg_cq_poll_threshold) {
14908 *delay = 1;
14909 arm = false;
14912 /* Track the max number of CQEs processed in 1 EQ */
14913 if (count > cq->CQ_max_cqe)
14914 cq->CQ_max_cqe = count;
14916 cq->assoc_qp->EQ_cqe_cnt += count;
14918 /* Catch the no cq entry condition */
14919 if (unlikely(count == 0))
14920 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
14921 "0369 No entry from completion queue "
14922 "qid=%d\n", cq->queue_id);
14924 xchg(&cq->queue_claimed, 0);
14926 rearm_and_exit:
14927 phba->sli4_hba.sli4_write_cq_db(phba, cq, consumed,
14928 arm ? LPFC_QUEUE_REARM : LPFC_QUEUE_NOARM);
14930 return workposted;
14934 * __lpfc_sli4_sp_process_cq - Process a slow-path event queue entry
14935 * @cq: pointer to CQ to process
14937 * This routine calls the cq processing routine with a handler specific
14938 * to the type of queue bound to it.
14940 * The CQ routine returns two values: the first is the calling status,
14941 * which indicates whether work was queued to the background discovery
14942 * thread. If true, the routine should wakeup the discovery thread;
14943 * the second is the delay parameter. If non-zero, rather than rearming
14944 * the CQ and yet another interrupt, the CQ handler should be queued so
14945 * that it is processed in a subsequent polling action. The value of
14946 * the delay indicates when to reschedule it.
14948 static void
14949 __lpfc_sli4_sp_process_cq(struct lpfc_queue *cq)
14951 struct lpfc_hba *phba = cq->phba;
14952 unsigned long delay;
14953 bool workposted = false;
14954 int ret = 0;
14956 /* Process and rearm the CQ */
14957 switch (cq->type) {
14958 case LPFC_MCQ:
14959 workposted |= __lpfc_sli4_process_cq(phba, cq,
14960 lpfc_sli4_sp_handle_mcqe,
14961 &delay);
14962 break;
14963 case LPFC_WCQ:
14964 if (cq->subtype == LPFC_IO)
14965 workposted |= __lpfc_sli4_process_cq(phba, cq,
14966 lpfc_sli4_fp_handle_cqe,
14967 &delay);
14968 else
14969 workposted |= __lpfc_sli4_process_cq(phba, cq,
14970 lpfc_sli4_sp_handle_cqe,
14971 &delay);
14972 break;
14973 default:
14974 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14975 "0370 Invalid completion queue type (%d)\n",
14976 cq->type);
14977 return;
14980 if (delay) {
14981 if (is_kdump_kernel())
14982 ret = queue_delayed_work(phba->wq, &cq->sched_spwork,
14983 delay);
14984 else
14985 ret = queue_delayed_work_on(cq->chann, phba->wq,
14986 &cq->sched_spwork, delay);
14987 if (!ret)
14988 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
14989 "0394 Cannot schedule queue work "
14990 "for cqid=%d on CPU %d\n",
14991 cq->queue_id, cq->chann);
14994 /* wake up worker thread if there are works to be done */
14995 if (workposted)
14996 lpfc_worker_wake_up(phba);
15000 * lpfc_sli4_sp_process_cq - slow-path work handler when started by
15001 * interrupt
15002 * @work: pointer to work element
15004 * translates from the work handler and calls the slow-path handler.
15006 static void
15007 lpfc_sli4_sp_process_cq(struct work_struct *work)
15009 struct lpfc_queue *cq = container_of(work, struct lpfc_queue, spwork);
15011 __lpfc_sli4_sp_process_cq(cq);
15015 * lpfc_sli4_dly_sp_process_cq - slow-path work handler when started by timer
15016 * @work: pointer to work element
15018 * translates from the work handler and calls the slow-path handler.
15020 static void
15021 lpfc_sli4_dly_sp_process_cq(struct work_struct *work)
15023 struct lpfc_queue *cq = container_of(to_delayed_work(work),
15024 struct lpfc_queue, sched_spwork);
15026 __lpfc_sli4_sp_process_cq(cq);
15030 * lpfc_sli4_fp_handle_fcp_wcqe - Process fast-path work queue completion entry
15031 * @phba: Pointer to HBA context object.
15032 * @cq: Pointer to associated CQ
15033 * @wcqe: Pointer to work-queue completion queue entry.
15035 * This routine process a fast-path work queue completion entry from fast-path
15036 * event queue for FCP command response completion.
15038 static void
15039 lpfc_sli4_fp_handle_fcp_wcqe(struct lpfc_hba *phba, struct lpfc_queue *cq,
15040 struct lpfc_wcqe_complete *wcqe)
15042 struct lpfc_sli_ring *pring = cq->pring;
15043 struct lpfc_iocbq *cmdiocbq;
15044 unsigned long iflags;
15046 /* Check for response status */
15047 if (unlikely(bf_get(lpfc_wcqe_c_status, wcqe))) {
15048 /* If resource errors reported from HBA, reduce queue
15049 * depth of the SCSI device.
15051 if (((bf_get(lpfc_wcqe_c_status, wcqe) ==
15052 IOSTAT_LOCAL_REJECT)) &&
15053 ((wcqe->parameter & IOERR_PARAM_MASK) ==
15054 IOERR_NO_RESOURCES))
15055 phba->lpfc_rampdown_queue_depth(phba);
15057 /* Log the cmpl status */
15058 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
15059 "0373 FCP CQE cmpl: status=x%x: "
15060 "CQE: %08x %08x %08x %08x\n",
15061 bf_get(lpfc_wcqe_c_status, wcqe),
15062 wcqe->word0, wcqe->total_data_placed,
15063 wcqe->parameter, wcqe->word3);
15066 /* Look up the FCP command IOCB and create pseudo response IOCB */
15067 spin_lock_irqsave(&pring->ring_lock, iflags);
15068 pring->stats.iocb_event++;
15069 cmdiocbq = lpfc_sli_iocbq_lookup_by_tag(phba, pring,
15070 bf_get(lpfc_wcqe_c_request_tag, wcqe));
15071 spin_unlock_irqrestore(&pring->ring_lock, iflags);
15072 if (unlikely(!cmdiocbq)) {
15073 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
15074 "0374 FCP complete with no corresponding "
15075 "cmdiocb: iotag (%d)\n",
15076 bf_get(lpfc_wcqe_c_request_tag, wcqe));
15077 return;
15079 #ifdef CONFIG_SCSI_LPFC_DEBUG_FS
15080 cmdiocbq->isr_timestamp = cq->isr_timestamp;
15081 #endif
15082 if (bf_get(lpfc_wcqe_c_xb, wcqe)) {
15083 spin_lock_irqsave(&phba->hbalock, iflags);
15084 cmdiocbq->cmd_flag |= LPFC_EXCHANGE_BUSY;
15085 spin_unlock_irqrestore(&phba->hbalock, iflags);
15088 if (cmdiocbq->cmd_cmpl) {
15089 /* For FCP the flag is cleared in cmd_cmpl */
15090 if (!(cmdiocbq->cmd_flag & LPFC_IO_FCP) &&
15091 cmdiocbq->cmd_flag & LPFC_DRIVER_ABORTED) {
15092 spin_lock_irqsave(&phba->hbalock, iflags);
15093 cmdiocbq->cmd_flag &= ~LPFC_DRIVER_ABORTED;
15094 spin_unlock_irqrestore(&phba->hbalock, iflags);
15097 /* Pass the cmd_iocb and the wcqe to the upper layer */
15098 memcpy(&cmdiocbq->wcqe_cmpl, wcqe,
15099 sizeof(struct lpfc_wcqe_complete));
15100 cmdiocbq->cmd_cmpl(phba, cmdiocbq, cmdiocbq);
15101 } else {
15102 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
15103 "0375 FCP cmdiocb not callback function "
15104 "iotag: (%d)\n",
15105 bf_get(lpfc_wcqe_c_request_tag, wcqe));
15110 * lpfc_sli4_fp_handle_rel_wcqe - Handle fast-path WQ entry consumed event
15111 * @phba: Pointer to HBA context object.
15112 * @cq: Pointer to completion queue.
15113 * @wcqe: Pointer to work-queue completion queue entry.
15115 * This routine handles an fast-path WQ entry consumed event by invoking the
15116 * proper WQ release routine to the slow-path WQ.
15118 static void
15119 lpfc_sli4_fp_handle_rel_wcqe(struct lpfc_hba *phba, struct lpfc_queue *cq,
15120 struct lpfc_wcqe_release *wcqe)
15122 struct lpfc_queue *childwq;
15123 bool wqid_matched = false;
15124 uint16_t hba_wqid;
15126 /* Check for fast-path FCP work queue release */
15127 hba_wqid = bf_get(lpfc_wcqe_r_wq_id, wcqe);
15128 list_for_each_entry(childwq, &cq->child_list, list) {
15129 if (childwq->queue_id == hba_wqid) {
15130 lpfc_sli4_wq_release(childwq,
15131 bf_get(lpfc_wcqe_r_wqe_index, wcqe));
15132 if (childwq->q_flag & HBA_NVMET_WQFULL)
15133 lpfc_nvmet_wqfull_process(phba, childwq);
15134 wqid_matched = true;
15135 break;
15138 /* Report warning log message if no match found */
15139 if (wqid_matched != true)
15140 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
15141 "2580 Fast-path wqe consume event carries "
15142 "miss-matched qid: wcqe-qid=x%x\n", hba_wqid);
15146 * lpfc_sli4_nvmet_handle_rcqe - Process a receive-queue completion queue entry
15147 * @phba: Pointer to HBA context object.
15148 * @cq: Pointer to completion queue.
15149 * @rcqe: Pointer to receive-queue completion queue entry.
15151 * This routine process a receive-queue completion queue entry.
15153 * Return: true if work posted to worker thread, otherwise false.
15155 static bool
15156 lpfc_sli4_nvmet_handle_rcqe(struct lpfc_hba *phba, struct lpfc_queue *cq,
15157 struct lpfc_rcqe *rcqe)
15159 bool workposted = false;
15160 struct lpfc_queue *hrq;
15161 struct lpfc_queue *drq;
15162 struct rqb_dmabuf *dma_buf;
15163 struct fc_frame_header *fc_hdr;
15164 struct lpfc_nvmet_tgtport *tgtp;
15165 uint32_t status, rq_id;
15166 unsigned long iflags;
15167 uint32_t fctl, idx;
15169 if ((phba->nvmet_support == 0) ||
15170 (phba->sli4_hba.nvmet_cqset == NULL))
15171 return workposted;
15173 idx = cq->queue_id - phba->sli4_hba.nvmet_cqset[0]->queue_id;
15174 hrq = phba->sli4_hba.nvmet_mrq_hdr[idx];
15175 drq = phba->sli4_hba.nvmet_mrq_data[idx];
15177 /* sanity check on queue memory */
15178 if (unlikely(!hrq) || unlikely(!drq))
15179 return workposted;
15181 if (bf_get(lpfc_cqe_code, rcqe) == CQE_CODE_RECEIVE_V1)
15182 rq_id = bf_get(lpfc_rcqe_rq_id_v1, rcqe);
15183 else
15184 rq_id = bf_get(lpfc_rcqe_rq_id, rcqe);
15186 if ((phba->nvmet_support == 0) ||
15187 (rq_id != hrq->queue_id))
15188 return workposted;
15190 status = bf_get(lpfc_rcqe_status, rcqe);
15191 switch (status) {
15192 case FC_STATUS_RQ_BUF_LEN_EXCEEDED:
15193 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
15194 "6126 Receive Frame Truncated!!\n");
15195 fallthrough;
15196 case FC_STATUS_RQ_SUCCESS:
15197 spin_lock_irqsave(&phba->hbalock, iflags);
15198 lpfc_sli4_rq_release(hrq, drq);
15199 dma_buf = lpfc_sli_rqbuf_get(phba, hrq);
15200 if (!dma_buf) {
15201 hrq->RQ_no_buf_found++;
15202 spin_unlock_irqrestore(&phba->hbalock, iflags);
15203 goto out;
15205 spin_unlock_irqrestore(&phba->hbalock, iflags);
15206 hrq->RQ_rcv_buf++;
15207 hrq->RQ_buf_posted--;
15208 fc_hdr = (struct fc_frame_header *)dma_buf->hbuf.virt;
15210 /* Just some basic sanity checks on FCP Command frame */
15211 fctl = (fc_hdr->fh_f_ctl[0] << 16 |
15212 fc_hdr->fh_f_ctl[1] << 8 |
15213 fc_hdr->fh_f_ctl[2]);
15214 if (((fctl &
15215 (FC_FC_FIRST_SEQ | FC_FC_END_SEQ | FC_FC_SEQ_INIT)) !=
15216 (FC_FC_FIRST_SEQ | FC_FC_END_SEQ | FC_FC_SEQ_INIT)) ||
15217 (fc_hdr->fh_seq_cnt != 0)) /* 0 byte swapped is still 0 */
15218 goto drop;
15220 if (fc_hdr->fh_type == FC_TYPE_FCP) {
15221 dma_buf->bytes_recv = bf_get(lpfc_rcqe_length, rcqe);
15222 lpfc_nvmet_unsol_fcp_event(
15223 phba, idx, dma_buf, cq->isr_timestamp,
15224 cq->q_flag & HBA_NVMET_CQ_NOTIFY);
15225 return false;
15227 drop:
15228 lpfc_rq_buf_free(phba, &dma_buf->hbuf);
15229 break;
15230 case FC_STATUS_INSUFF_BUF_FRM_DISC:
15231 if (phba->nvmet_support) {
15232 tgtp = phba->targetport->private;
15233 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
15234 "6401 RQE Error x%x, posted %d err_cnt "
15235 "%d: %x %x %x\n",
15236 status, hrq->RQ_buf_posted,
15237 hrq->RQ_no_posted_buf,
15238 atomic_read(&tgtp->rcv_fcp_cmd_in),
15239 atomic_read(&tgtp->rcv_fcp_cmd_out),
15240 atomic_read(&tgtp->xmt_fcp_release));
15242 fallthrough;
15244 case FC_STATUS_INSUFF_BUF_NEED_BUF:
15245 hrq->RQ_no_posted_buf++;
15246 /* Post more buffers if possible */
15247 break;
15248 case FC_STATUS_RQ_DMA_FAILURE:
15249 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
15250 "2575 RQE DMA Error x%x, x%08x x%08x x%08x "
15251 "x%08x\n",
15252 status, rcqe->word0, rcqe->word1,
15253 rcqe->word2, rcqe->word3);
15255 /* If IV set, no further recovery */
15256 if (bf_get(lpfc_rcqe_iv, rcqe))
15257 break;
15259 /* recycle consumed resource */
15260 spin_lock_irqsave(&phba->hbalock, iflags);
15261 lpfc_sli4_rq_release(hrq, drq);
15262 dma_buf = lpfc_sli_rqbuf_get(phba, hrq);
15263 if (!dma_buf) {
15264 hrq->RQ_no_buf_found++;
15265 spin_unlock_irqrestore(&phba->hbalock, iflags);
15266 break;
15268 hrq->RQ_rcv_buf++;
15269 hrq->RQ_buf_posted--;
15270 spin_unlock_irqrestore(&phba->hbalock, iflags);
15271 lpfc_rq_buf_free(phba, &dma_buf->hbuf);
15272 break;
15273 default:
15274 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
15275 "2576 Unexpected RQE Status x%x, w0-3 x%08x "
15276 "x%08x x%08x x%08x\n",
15277 status, rcqe->word0, rcqe->word1,
15278 rcqe->word2, rcqe->word3);
15279 break;
15281 out:
15282 return workposted;
15286 * lpfc_sli4_fp_handle_cqe - Process fast-path work queue completion entry
15287 * @phba: adapter with cq
15288 * @cq: Pointer to the completion queue.
15289 * @cqe: Pointer to fast-path completion queue entry.
15291 * This routine process a fast-path work queue completion entry from fast-path
15292 * event queue for FCP command response completion.
15294 * Return: true if work posted to worker thread, otherwise false.
15296 static bool
15297 lpfc_sli4_fp_handle_cqe(struct lpfc_hba *phba, struct lpfc_queue *cq,
15298 struct lpfc_cqe *cqe)
15300 struct lpfc_wcqe_release wcqe;
15301 bool workposted = false;
15303 /* Copy the work queue CQE and convert endian order if needed */
15304 lpfc_sli4_pcimem_bcopy(cqe, &wcqe, sizeof(struct lpfc_cqe));
15306 /* Check and process for different type of WCQE and dispatch */
15307 switch (bf_get(lpfc_wcqe_c_code, &wcqe)) {
15308 case CQE_CODE_COMPL_WQE:
15309 case CQE_CODE_NVME_ERSP:
15310 cq->CQ_wq++;
15311 /* Process the WQ complete event */
15312 phba->last_completion_time = jiffies;
15313 if (cq->subtype == LPFC_IO || cq->subtype == LPFC_NVME_LS)
15314 lpfc_sli4_fp_handle_fcp_wcqe(phba, cq,
15315 (struct lpfc_wcqe_complete *)&wcqe);
15316 break;
15317 case CQE_CODE_RELEASE_WQE:
15318 cq->CQ_release_wqe++;
15319 /* Process the WQ release event */
15320 lpfc_sli4_fp_handle_rel_wcqe(phba, cq,
15321 (struct lpfc_wcqe_release *)&wcqe);
15322 break;
15323 case CQE_CODE_XRI_ABORTED:
15324 cq->CQ_xri_aborted++;
15325 /* Process the WQ XRI abort event */
15326 phba->last_completion_time = jiffies;
15327 workposted = lpfc_sli4_sp_handle_abort_xri_wcqe(phba, cq,
15328 (struct sli4_wcqe_xri_aborted *)&wcqe);
15329 break;
15330 case CQE_CODE_RECEIVE_V1:
15331 case CQE_CODE_RECEIVE:
15332 phba->last_completion_time = jiffies;
15333 if (cq->subtype == LPFC_NVMET) {
15334 workposted = lpfc_sli4_nvmet_handle_rcqe(
15335 phba, cq, (struct lpfc_rcqe *)&wcqe);
15337 break;
15338 default:
15339 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
15340 "0144 Not a valid CQE code: x%x\n",
15341 bf_get(lpfc_wcqe_c_code, &wcqe));
15342 break;
15344 return workposted;
15348 * __lpfc_sli4_hba_process_cq - Process a fast-path event queue entry
15349 * @cq: Pointer to CQ to be processed
15351 * This routine calls the cq processing routine with the handler for
15352 * fast path CQEs.
15354 * The CQ routine returns two values: the first is the calling status,
15355 * which indicates whether work was queued to the background discovery
15356 * thread. If true, the routine should wakeup the discovery thread;
15357 * the second is the delay parameter. If non-zero, rather than rearming
15358 * the CQ and yet another interrupt, the CQ handler should be queued so
15359 * that it is processed in a subsequent polling action. The value of
15360 * the delay indicates when to reschedule it.
15362 static void
15363 __lpfc_sli4_hba_process_cq(struct lpfc_queue *cq)
15365 struct lpfc_hba *phba = cq->phba;
15366 unsigned long delay;
15367 bool workposted = false;
15368 int ret;
15370 /* process and rearm the CQ */
15371 workposted |= __lpfc_sli4_process_cq(phba, cq, lpfc_sli4_fp_handle_cqe,
15372 &delay);
15374 if (delay) {
15375 if (is_kdump_kernel())
15376 ret = queue_delayed_work(phba->wq, &cq->sched_irqwork,
15377 delay);
15378 else
15379 ret = queue_delayed_work_on(cq->chann, phba->wq,
15380 &cq->sched_irqwork, delay);
15381 if (!ret)
15382 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
15383 "0367 Cannot schedule queue work "
15384 "for cqid=%d on CPU %d\n",
15385 cq->queue_id, cq->chann);
15388 /* wake up worker thread if there are works to be done */
15389 if (workposted)
15390 lpfc_worker_wake_up(phba);
15394 * lpfc_sli4_hba_process_cq - fast-path work handler when started by
15395 * interrupt
15396 * @work: pointer to work element
15398 * translates from the work handler and calls the fast-path handler.
15400 static void
15401 lpfc_sli4_hba_process_cq(struct work_struct *work)
15403 struct lpfc_queue *cq = container_of(work, struct lpfc_queue, irqwork);
15405 __lpfc_sli4_hba_process_cq(cq);
15409 * lpfc_sli4_hba_handle_eqe - Process a fast-path event queue entry
15410 * @phba: Pointer to HBA context object.
15411 * @eq: Pointer to the queue structure.
15412 * @eqe: Pointer to fast-path event queue entry.
15413 * @poll_mode: poll_mode to execute processing the cq.
15415 * This routine process a event queue entry from the fast-path event queue.
15416 * It will check the MajorCode and MinorCode to determine this is for a
15417 * completion event on a completion queue, if not, an error shall be logged
15418 * and just return. Otherwise, it will get to the corresponding completion
15419 * queue and process all the entries on the completion queue, rearm the
15420 * completion queue, and then return.
15422 static void
15423 lpfc_sli4_hba_handle_eqe(struct lpfc_hba *phba, struct lpfc_queue *eq,
15424 struct lpfc_eqe *eqe, enum lpfc_poll_mode poll_mode)
15426 struct lpfc_queue *cq = NULL;
15427 uint32_t qidx = eq->hdwq;
15428 uint16_t cqid, id;
15429 int ret;
15431 if (unlikely(bf_get_le32(lpfc_eqe_major_code, eqe) != 0)) {
15432 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
15433 "0366 Not a valid completion "
15434 "event: majorcode=x%x, minorcode=x%x\n",
15435 bf_get_le32(lpfc_eqe_major_code, eqe),
15436 bf_get_le32(lpfc_eqe_minor_code, eqe));
15437 return;
15440 /* Get the reference to the corresponding CQ */
15441 cqid = bf_get_le32(lpfc_eqe_resource_id, eqe);
15443 /* Use the fast lookup method first */
15444 if (cqid <= phba->sli4_hba.cq_max) {
15445 cq = phba->sli4_hba.cq_lookup[cqid];
15446 if (cq)
15447 goto work_cq;
15450 /* Next check for NVMET completion */
15451 if (phba->cfg_nvmet_mrq && phba->sli4_hba.nvmet_cqset) {
15452 id = phba->sli4_hba.nvmet_cqset[0]->queue_id;
15453 if ((cqid >= id) && (cqid < (id + phba->cfg_nvmet_mrq))) {
15454 /* Process NVMET unsol rcv */
15455 cq = phba->sli4_hba.nvmet_cqset[cqid - id];
15456 goto process_cq;
15460 if (phba->sli4_hba.nvmels_cq &&
15461 (cqid == phba->sli4_hba.nvmels_cq->queue_id)) {
15462 /* Process NVME unsol rcv */
15463 cq = phba->sli4_hba.nvmels_cq;
15466 /* Otherwise this is a Slow path event */
15467 if (cq == NULL) {
15468 lpfc_sli4_sp_handle_eqe(phba, eqe,
15469 phba->sli4_hba.hdwq[qidx].hba_eq);
15470 return;
15473 process_cq:
15474 if (unlikely(cqid != cq->queue_id)) {
15475 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
15476 "0368 Miss-matched fast-path completion "
15477 "queue identifier: eqcqid=%d, fcpcqid=%d\n",
15478 cqid, cq->queue_id);
15479 return;
15482 work_cq:
15483 #if defined(CONFIG_SCSI_LPFC_DEBUG_FS)
15484 if (phba->ktime_on)
15485 cq->isr_timestamp = ktime_get_ns();
15486 else
15487 cq->isr_timestamp = 0;
15488 #endif
15490 switch (poll_mode) {
15491 case LPFC_THREADED_IRQ:
15492 __lpfc_sli4_hba_process_cq(cq);
15493 break;
15494 case LPFC_QUEUE_WORK:
15495 default:
15496 if (is_kdump_kernel())
15497 ret = queue_work(phba->wq, &cq->irqwork);
15498 else
15499 ret = queue_work_on(cq->chann, phba->wq, &cq->irqwork);
15500 if (!ret)
15501 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
15502 "0383 Cannot schedule queue work "
15503 "for CQ eqcqid=%d, cqid=%d on CPU %d\n",
15504 cqid, cq->queue_id,
15505 raw_smp_processor_id());
15506 break;
15511 * lpfc_sli4_dly_hba_process_cq - fast-path work handler when started by timer
15512 * @work: pointer to work element
15514 * translates from the work handler and calls the fast-path handler.
15516 static void
15517 lpfc_sli4_dly_hba_process_cq(struct work_struct *work)
15519 struct lpfc_queue *cq = container_of(to_delayed_work(work),
15520 struct lpfc_queue, sched_irqwork);
15522 __lpfc_sli4_hba_process_cq(cq);
15526 * lpfc_sli4_hba_intr_handler - HBA interrupt handler to SLI-4 device
15527 * @irq: Interrupt number.
15528 * @dev_id: The device context pointer.
15530 * This function is directly called from the PCI layer as an interrupt
15531 * service routine when device with SLI-4 interface spec is enabled with
15532 * MSI-X multi-message interrupt mode and there is a fast-path FCP IOCB
15533 * ring event in the HBA. However, when the device is enabled with either
15534 * MSI or Pin-IRQ interrupt mode, this function is called as part of the
15535 * device-level interrupt handler. When the PCI slot is in error recovery
15536 * or the HBA is undergoing initialization, the interrupt handler will not
15537 * process the interrupt. The SCSI FCP fast-path ring event are handled in
15538 * the intrrupt context. This function is called without any lock held.
15539 * It gets the hbalock to access and update SLI data structures. Note that,
15540 * the FCP EQ to FCP CQ are one-to-one map such that the FCP EQ index is
15541 * equal to that of FCP CQ index.
15543 * The link attention and ELS ring attention events are handled
15544 * by the worker thread. The interrupt handler signals the worker thread
15545 * and returns for these events. This function is called without any lock
15546 * held. It gets the hbalock to access and update SLI data structures.
15548 * This function returns IRQ_HANDLED when interrupt is handled, IRQ_WAKE_THREAD
15549 * when interrupt is scheduled to be handled from a threaded irq context, or
15550 * else returns IRQ_NONE.
15552 irqreturn_t
15553 lpfc_sli4_hba_intr_handler(int irq, void *dev_id)
15555 struct lpfc_hba *phba;
15556 struct lpfc_hba_eq_hdl *hba_eq_hdl;
15557 struct lpfc_queue *fpeq;
15558 unsigned long iflag;
15559 int hba_eqidx;
15560 int ecount = 0;
15561 struct lpfc_eq_intr_info *eqi;
15563 /* Get the driver's phba structure from the dev_id */
15564 hba_eq_hdl = (struct lpfc_hba_eq_hdl *)dev_id;
15565 phba = hba_eq_hdl->phba;
15566 hba_eqidx = hba_eq_hdl->idx;
15568 if (unlikely(!phba))
15569 return IRQ_NONE;
15570 if (unlikely(!phba->sli4_hba.hdwq))
15571 return IRQ_NONE;
15573 /* Get to the EQ struct associated with this vector */
15574 fpeq = phba->sli4_hba.hba_eq_hdl[hba_eqidx].eq;
15575 if (unlikely(!fpeq))
15576 return IRQ_NONE;
15578 /* Check device state for handling interrupt */
15579 if (unlikely(lpfc_intr_state_check(phba))) {
15580 /* Check again for link_state with lock held */
15581 spin_lock_irqsave(&phba->hbalock, iflag);
15582 if (phba->link_state < LPFC_LINK_DOWN)
15583 /* Flush, clear interrupt, and rearm the EQ */
15584 lpfc_sli4_eqcq_flush(phba, fpeq);
15585 spin_unlock_irqrestore(&phba->hbalock, iflag);
15586 return IRQ_NONE;
15589 switch (fpeq->poll_mode) {
15590 case LPFC_THREADED_IRQ:
15591 /* CGN mgmt is mutually exclusive from irq processing */
15592 if (phba->cmf_active_mode == LPFC_CFG_OFF)
15593 return IRQ_WAKE_THREAD;
15594 fallthrough;
15595 case LPFC_QUEUE_WORK:
15596 default:
15597 eqi = this_cpu_ptr(phba->sli4_hba.eq_info);
15598 eqi->icnt++;
15600 fpeq->last_cpu = raw_smp_processor_id();
15602 if (eqi->icnt > LPFC_EQD_ISR_TRIGGER &&
15603 fpeq->q_flag & HBA_EQ_DELAY_CHK &&
15604 phba->cfg_auto_imax &&
15605 fpeq->q_mode != LPFC_MAX_AUTO_EQ_DELAY &&
15606 phba->sli.sli_flag & LPFC_SLI_USE_EQDR)
15607 lpfc_sli4_mod_hba_eq_delay(phba, fpeq,
15608 LPFC_MAX_AUTO_EQ_DELAY);
15610 /* process and rearm the EQ */
15611 ecount = lpfc_sli4_process_eq(phba, fpeq, LPFC_QUEUE_REARM,
15612 LPFC_QUEUE_WORK);
15614 if (unlikely(ecount == 0)) {
15615 fpeq->EQ_no_entry++;
15616 if (phba->intr_type == MSIX)
15617 /* MSI-X treated interrupt served as no EQ share INT */
15618 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
15619 "0358 MSI-X interrupt with no EQE\n");
15620 else
15621 /* Non MSI-X treated on interrupt as EQ share INT */
15622 return IRQ_NONE;
15626 return IRQ_HANDLED;
15627 } /* lpfc_sli4_hba_intr_handler */
15630 * lpfc_sli4_intr_handler - Device-level interrupt handler for SLI-4 device
15631 * @irq: Interrupt number.
15632 * @dev_id: The device context pointer.
15634 * This function is the device-level interrupt handler to device with SLI-4
15635 * interface spec, called from the PCI layer when either MSI or Pin-IRQ
15636 * interrupt mode is enabled and there is an event in the HBA which requires
15637 * driver attention. This function invokes the slow-path interrupt attention
15638 * handling function and fast-path interrupt attention handling function in
15639 * turn to process the relevant HBA attention events. This function is called
15640 * without any lock held. It gets the hbalock to access and update SLI data
15641 * structures.
15643 * This function returns IRQ_HANDLED when interrupt is handled, else it
15644 * returns IRQ_NONE.
15646 irqreturn_t
15647 lpfc_sli4_intr_handler(int irq, void *dev_id)
15649 struct lpfc_hba *phba;
15650 irqreturn_t hba_irq_rc;
15651 bool hba_handled = false;
15652 int qidx;
15654 /* Get the driver's phba structure from the dev_id */
15655 phba = (struct lpfc_hba *)dev_id;
15657 if (unlikely(!phba))
15658 return IRQ_NONE;
15661 * Invoke fast-path host attention interrupt handling as appropriate.
15663 for (qidx = 0; qidx < phba->cfg_irq_chann; qidx++) {
15664 hba_irq_rc = lpfc_sli4_hba_intr_handler(irq,
15665 &phba->sli4_hba.hba_eq_hdl[qidx]);
15666 if (hba_irq_rc == IRQ_HANDLED)
15667 hba_handled |= true;
15670 return (hba_handled == true) ? IRQ_HANDLED : IRQ_NONE;
15671 } /* lpfc_sli4_intr_handler */
15673 void lpfc_sli4_poll_hbtimer(struct timer_list *t)
15675 struct lpfc_hba *phba = from_timer(phba, t, cpuhp_poll_timer);
15676 struct lpfc_queue *eq;
15678 rcu_read_lock();
15680 list_for_each_entry_rcu(eq, &phba->poll_list, _poll_list)
15681 lpfc_sli4_poll_eq(eq);
15682 if (!list_empty(&phba->poll_list))
15683 mod_timer(&phba->cpuhp_poll_timer,
15684 jiffies + msecs_to_jiffies(LPFC_POLL_HB));
15686 rcu_read_unlock();
15689 static inline void lpfc_sli4_add_to_poll_list(struct lpfc_queue *eq)
15691 struct lpfc_hba *phba = eq->phba;
15693 /* kickstart slowpath processing if needed */
15694 if (list_empty(&phba->poll_list))
15695 mod_timer(&phba->cpuhp_poll_timer,
15696 jiffies + msecs_to_jiffies(LPFC_POLL_HB));
15698 list_add_rcu(&eq->_poll_list, &phba->poll_list);
15699 synchronize_rcu();
15702 static inline void lpfc_sli4_remove_from_poll_list(struct lpfc_queue *eq)
15704 struct lpfc_hba *phba = eq->phba;
15706 /* Disable slowpath processing for this eq. Kick start the eq
15707 * by RE-ARMING the eq's ASAP
15709 list_del_rcu(&eq->_poll_list);
15710 synchronize_rcu();
15712 if (list_empty(&phba->poll_list))
15713 del_timer_sync(&phba->cpuhp_poll_timer);
15716 void lpfc_sli4_cleanup_poll_list(struct lpfc_hba *phba)
15718 struct lpfc_queue *eq, *next;
15720 list_for_each_entry_safe(eq, next, &phba->poll_list, _poll_list)
15721 list_del(&eq->_poll_list);
15723 INIT_LIST_HEAD(&phba->poll_list);
15724 synchronize_rcu();
15727 static inline void
15728 __lpfc_sli4_switch_eqmode(struct lpfc_queue *eq, uint8_t mode)
15730 if (mode == eq->mode)
15731 return;
15733 * currently this function is only called during a hotplug
15734 * event and the cpu on which this function is executing
15735 * is going offline. By now the hotplug has instructed
15736 * the scheduler to remove this cpu from cpu active mask.
15737 * So we don't need to work about being put aside by the
15738 * scheduler for a high priority process. Yes, the inte-
15739 * rrupts could come but they are known to retire ASAP.
15742 /* Disable polling in the fastpath */
15743 WRITE_ONCE(eq->mode, mode);
15744 /* flush out the store buffer */
15745 smp_wmb();
15748 * Add this eq to the polling list and start polling. For
15749 * a grace period both interrupt handler and poller will
15750 * try to process the eq _but_ that's fine. We have a
15751 * synchronization mechanism in place (queue_claimed) to
15752 * deal with it. This is just a draining phase for int-
15753 * errupt handler (not eq's) as we have guranteed through
15754 * barrier that all the CPUs have seen the new CQ_POLLED
15755 * state. which will effectively disable the REARMING of
15756 * the EQ. The whole idea is eq's die off eventually as
15757 * we are not rearming EQ's anymore.
15759 mode ? lpfc_sli4_add_to_poll_list(eq) :
15760 lpfc_sli4_remove_from_poll_list(eq);
15763 void lpfc_sli4_start_polling(struct lpfc_queue *eq)
15765 __lpfc_sli4_switch_eqmode(eq, LPFC_EQ_POLL);
15768 void lpfc_sli4_stop_polling(struct lpfc_queue *eq)
15770 struct lpfc_hba *phba = eq->phba;
15772 __lpfc_sli4_switch_eqmode(eq, LPFC_EQ_INTERRUPT);
15774 /* Kick start for the pending io's in h/w.
15775 * Once we switch back to interrupt processing on a eq
15776 * the io path completion will only arm eq's when it
15777 * receives a completion. But since eq's are in disa-
15778 * rmed state it doesn't receive a completion. This
15779 * creates a deadlock scenaro.
15781 phba->sli4_hba.sli4_write_eq_db(phba, eq, 0, LPFC_QUEUE_REARM);
15785 * lpfc_sli4_queue_free - free a queue structure and associated memory
15786 * @queue: The queue structure to free.
15788 * This function frees a queue structure and the DMAable memory used for
15789 * the host resident queue. This function must be called after destroying the
15790 * queue on the HBA.
15792 void
15793 lpfc_sli4_queue_free(struct lpfc_queue *queue)
15795 struct lpfc_dmabuf *dmabuf;
15797 if (!queue)
15798 return;
15800 if (!list_empty(&queue->wq_list))
15801 list_del(&queue->wq_list);
15803 while (!list_empty(&queue->page_list)) {
15804 list_remove_head(&queue->page_list, dmabuf, struct lpfc_dmabuf,
15805 list);
15806 dma_free_coherent(&queue->phba->pcidev->dev, queue->page_size,
15807 dmabuf->virt, dmabuf->phys);
15808 kfree(dmabuf);
15810 if (queue->rqbp) {
15811 lpfc_free_rq_buffer(queue->phba, queue);
15812 kfree(queue->rqbp);
15815 if (!list_empty(&queue->cpu_list))
15816 list_del(&queue->cpu_list);
15818 kfree(queue);
15819 return;
15823 * lpfc_sli4_queue_alloc - Allocate and initialize a queue structure
15824 * @phba: The HBA that this queue is being created on.
15825 * @page_size: The size of a queue page
15826 * @entry_size: The size of each queue entry for this queue.
15827 * @entry_count: The number of entries that this queue will handle.
15828 * @cpu: The cpu that will primarily utilize this queue.
15830 * This function allocates a queue structure and the DMAable memory used for
15831 * the host resident queue. This function must be called before creating the
15832 * queue on the HBA.
15834 struct lpfc_queue *
15835 lpfc_sli4_queue_alloc(struct lpfc_hba *phba, uint32_t page_size,
15836 uint32_t entry_size, uint32_t entry_count, int cpu)
15838 struct lpfc_queue *queue;
15839 struct lpfc_dmabuf *dmabuf;
15840 uint32_t hw_page_size = phba->sli4_hba.pc_sli4_params.if_page_sz;
15841 uint16_t x, pgcnt;
15843 if (!phba->sli4_hba.pc_sli4_params.supported)
15844 hw_page_size = page_size;
15846 pgcnt = ALIGN(entry_size * entry_count, hw_page_size) / hw_page_size;
15848 /* If needed, Adjust page count to match the max the adapter supports */
15849 if (pgcnt > phba->sli4_hba.pc_sli4_params.wqpcnt)
15850 pgcnt = phba->sli4_hba.pc_sli4_params.wqpcnt;
15852 queue = kzalloc_node(sizeof(*queue) + (sizeof(void *) * pgcnt),
15853 GFP_KERNEL, cpu_to_node(cpu));
15854 if (!queue)
15855 return NULL;
15857 INIT_LIST_HEAD(&queue->list);
15858 INIT_LIST_HEAD(&queue->_poll_list);
15859 INIT_LIST_HEAD(&queue->wq_list);
15860 INIT_LIST_HEAD(&queue->wqfull_list);
15861 INIT_LIST_HEAD(&queue->page_list);
15862 INIT_LIST_HEAD(&queue->child_list);
15863 INIT_LIST_HEAD(&queue->cpu_list);
15865 /* Set queue parameters now. If the system cannot provide memory
15866 * resources, the free routine needs to know what was allocated.
15868 queue->page_count = pgcnt;
15869 queue->q_pgs = (void **)&queue[1];
15870 queue->entry_cnt_per_pg = hw_page_size / entry_size;
15871 queue->entry_size = entry_size;
15872 queue->entry_count = entry_count;
15873 queue->page_size = hw_page_size;
15874 queue->phba = phba;
15876 for (x = 0; x < queue->page_count; x++) {
15877 dmabuf = kzalloc_node(sizeof(*dmabuf), GFP_KERNEL,
15878 dev_to_node(&phba->pcidev->dev));
15879 if (!dmabuf)
15880 goto out_fail;
15881 dmabuf->virt = dma_alloc_coherent(&phba->pcidev->dev,
15882 hw_page_size, &dmabuf->phys,
15883 GFP_KERNEL);
15884 if (!dmabuf->virt) {
15885 kfree(dmabuf);
15886 goto out_fail;
15888 dmabuf->buffer_tag = x;
15889 list_add_tail(&dmabuf->list, &queue->page_list);
15890 /* use lpfc_sli4_qe to index a paritcular entry in this page */
15891 queue->q_pgs[x] = dmabuf->virt;
15893 INIT_WORK(&queue->irqwork, lpfc_sli4_hba_process_cq);
15894 INIT_WORK(&queue->spwork, lpfc_sli4_sp_process_cq);
15895 INIT_DELAYED_WORK(&queue->sched_irqwork, lpfc_sli4_dly_hba_process_cq);
15896 INIT_DELAYED_WORK(&queue->sched_spwork, lpfc_sli4_dly_sp_process_cq);
15898 /* notify_interval will be set during q creation */
15900 return queue;
15901 out_fail:
15902 lpfc_sli4_queue_free(queue);
15903 return NULL;
15907 * lpfc_dual_chute_pci_bar_map - Map pci base address register to host memory
15908 * @phba: HBA structure that indicates port to create a queue on.
15909 * @pci_barset: PCI BAR set flag.
15911 * This function shall perform iomap of the specified PCI BAR address to host
15912 * memory address if not already done so and return it. The returned host
15913 * memory address can be NULL.
15915 static void __iomem *
15916 lpfc_dual_chute_pci_bar_map(struct lpfc_hba *phba, uint16_t pci_barset)
15918 if (!phba->pcidev)
15919 return NULL;
15921 switch (pci_barset) {
15922 case WQ_PCI_BAR_0_AND_1:
15923 return phba->pci_bar0_memmap_p;
15924 case WQ_PCI_BAR_2_AND_3:
15925 return phba->pci_bar2_memmap_p;
15926 case WQ_PCI_BAR_4_AND_5:
15927 return phba->pci_bar4_memmap_p;
15928 default:
15929 break;
15931 return NULL;
15935 * lpfc_modify_hba_eq_delay - Modify Delay Multiplier on EQs
15936 * @phba: HBA structure that EQs are on.
15937 * @startq: The starting EQ index to modify
15938 * @numq: The number of EQs (consecutive indexes) to modify
15939 * @usdelay: amount of delay
15941 * This function revises the EQ delay on 1 or more EQs. The EQ delay
15942 * is set either by writing to a register (if supported by the SLI Port)
15943 * or by mailbox command. The mailbox command allows several EQs to be
15944 * updated at once.
15946 * The @phba struct is used to send a mailbox command to HBA. The @startq
15947 * is used to get the starting EQ index to change. The @numq value is
15948 * used to specify how many consecutive EQ indexes, starting at EQ index,
15949 * are to be changed. This function is asynchronous and will wait for any
15950 * mailbox commands to finish before returning.
15952 * On success this function will return a zero. If unable to allocate
15953 * enough memory this function will return -ENOMEM. If a mailbox command
15954 * fails this function will return -ENXIO. Note: on ENXIO, some EQs may
15955 * have had their delay multipler changed.
15957 void
15958 lpfc_modify_hba_eq_delay(struct lpfc_hba *phba, uint32_t startq,
15959 uint32_t numq, uint32_t usdelay)
15961 struct lpfc_mbx_modify_eq_delay *eq_delay;
15962 LPFC_MBOXQ_t *mbox;
15963 struct lpfc_queue *eq;
15964 int cnt = 0, rc, length;
15965 uint32_t shdr_status, shdr_add_status;
15966 uint32_t dmult;
15967 int qidx;
15968 union lpfc_sli4_cfg_shdr *shdr;
15970 if (startq >= phba->cfg_irq_chann)
15971 return;
15973 if (usdelay > 0xFFFF) {
15974 lpfc_printf_log(phba, KERN_INFO, LOG_INIT | LOG_FCP | LOG_NVME,
15975 "6429 usdelay %d too large. Scaled down to "
15976 "0xFFFF.\n", usdelay);
15977 usdelay = 0xFFFF;
15980 /* set values by EQ_DELAY register if supported */
15981 if (phba->sli.sli_flag & LPFC_SLI_USE_EQDR) {
15982 for (qidx = startq; qidx < phba->cfg_irq_chann; qidx++) {
15983 eq = phba->sli4_hba.hba_eq_hdl[qidx].eq;
15984 if (!eq)
15985 continue;
15987 lpfc_sli4_mod_hba_eq_delay(phba, eq, usdelay);
15989 if (++cnt >= numq)
15990 break;
15992 return;
15995 /* Otherwise, set values by mailbox cmd */
15997 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
15998 if (!mbox) {
15999 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16000 "6428 Failed allocating mailbox cmd buffer."
16001 " EQ delay was not set.\n");
16002 return;
16004 length = (sizeof(struct lpfc_mbx_modify_eq_delay) -
16005 sizeof(struct lpfc_sli4_cfg_mhdr));
16006 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
16007 LPFC_MBOX_OPCODE_MODIFY_EQ_DELAY,
16008 length, LPFC_SLI4_MBX_EMBED);
16009 eq_delay = &mbox->u.mqe.un.eq_delay;
16011 /* Calculate delay multiper from maximum interrupt per second */
16012 dmult = (usdelay * LPFC_DMULT_CONST) / LPFC_SEC_TO_USEC;
16013 if (dmult)
16014 dmult--;
16015 if (dmult > LPFC_DMULT_MAX)
16016 dmult = LPFC_DMULT_MAX;
16018 for (qidx = startq; qidx < phba->cfg_irq_chann; qidx++) {
16019 eq = phba->sli4_hba.hba_eq_hdl[qidx].eq;
16020 if (!eq)
16021 continue;
16022 eq->q_mode = usdelay;
16023 eq_delay->u.request.eq[cnt].eq_id = eq->queue_id;
16024 eq_delay->u.request.eq[cnt].phase = 0;
16025 eq_delay->u.request.eq[cnt].delay_multi = dmult;
16027 if (++cnt >= numq)
16028 break;
16030 eq_delay->u.request.num_eq = cnt;
16032 mbox->vport = phba->pport;
16033 mbox->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
16034 mbox->ctx_ndlp = NULL;
16035 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
16036 shdr = (union lpfc_sli4_cfg_shdr *) &eq_delay->header.cfg_shdr;
16037 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
16038 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
16039 if (shdr_status || shdr_add_status || rc) {
16040 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16041 "2512 MODIFY_EQ_DELAY mailbox failed with "
16042 "status x%x add_status x%x, mbx status x%x\n",
16043 shdr_status, shdr_add_status, rc);
16045 mempool_free(mbox, phba->mbox_mem_pool);
16046 return;
16050 * lpfc_eq_create - Create an Event Queue on the HBA
16051 * @phba: HBA structure that indicates port to create a queue on.
16052 * @eq: The queue structure to use to create the event queue.
16053 * @imax: The maximum interrupt per second limit.
16055 * This function creates an event queue, as detailed in @eq, on a port,
16056 * described by @phba by sending an EQ_CREATE mailbox command to the HBA.
16058 * The @phba struct is used to send mailbox command to HBA. The @eq struct
16059 * is used to get the entry count and entry size that are necessary to
16060 * determine the number of pages to allocate and use for this queue. This
16061 * function will send the EQ_CREATE mailbox command to the HBA to setup the
16062 * event queue. This function is asynchronous and will wait for the mailbox
16063 * command to finish before continuing.
16065 * On success this function will return a zero. If unable to allocate enough
16066 * memory this function will return -ENOMEM. If the queue create mailbox command
16067 * fails this function will return -ENXIO.
16070 lpfc_eq_create(struct lpfc_hba *phba, struct lpfc_queue *eq, uint32_t imax)
16072 struct lpfc_mbx_eq_create *eq_create;
16073 LPFC_MBOXQ_t *mbox;
16074 int rc, length, status = 0;
16075 struct lpfc_dmabuf *dmabuf;
16076 uint32_t shdr_status, shdr_add_status;
16077 union lpfc_sli4_cfg_shdr *shdr;
16078 uint16_t dmult;
16079 uint32_t hw_page_size = phba->sli4_hba.pc_sli4_params.if_page_sz;
16081 /* sanity check on queue memory */
16082 if (!eq)
16083 return -ENODEV;
16084 if (!phba->sli4_hba.pc_sli4_params.supported)
16085 hw_page_size = SLI4_PAGE_SIZE;
16087 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
16088 if (!mbox)
16089 return -ENOMEM;
16090 length = (sizeof(struct lpfc_mbx_eq_create) -
16091 sizeof(struct lpfc_sli4_cfg_mhdr));
16092 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
16093 LPFC_MBOX_OPCODE_EQ_CREATE,
16094 length, LPFC_SLI4_MBX_EMBED);
16095 eq_create = &mbox->u.mqe.un.eq_create;
16096 shdr = (union lpfc_sli4_cfg_shdr *) &eq_create->header.cfg_shdr;
16097 bf_set(lpfc_mbx_eq_create_num_pages, &eq_create->u.request,
16098 eq->page_count);
16099 bf_set(lpfc_eq_context_size, &eq_create->u.request.context,
16100 LPFC_EQE_SIZE);
16101 bf_set(lpfc_eq_context_valid, &eq_create->u.request.context, 1);
16103 /* Use version 2 of CREATE_EQ if eqav is set */
16104 if (phba->sli4_hba.pc_sli4_params.eqav) {
16105 bf_set(lpfc_mbox_hdr_version, &shdr->request,
16106 LPFC_Q_CREATE_VERSION_2);
16107 bf_set(lpfc_eq_context_autovalid, &eq_create->u.request.context,
16108 phba->sli4_hba.pc_sli4_params.eqav);
16111 /* don't setup delay multiplier using EQ_CREATE */
16112 dmult = 0;
16113 bf_set(lpfc_eq_context_delay_multi, &eq_create->u.request.context,
16114 dmult);
16115 switch (eq->entry_count) {
16116 default:
16117 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16118 "0360 Unsupported EQ count. (%d)\n",
16119 eq->entry_count);
16120 if (eq->entry_count < 256) {
16121 status = -EINVAL;
16122 goto out;
16124 fallthrough; /* otherwise default to smallest count */
16125 case 256:
16126 bf_set(lpfc_eq_context_count, &eq_create->u.request.context,
16127 LPFC_EQ_CNT_256);
16128 break;
16129 case 512:
16130 bf_set(lpfc_eq_context_count, &eq_create->u.request.context,
16131 LPFC_EQ_CNT_512);
16132 break;
16133 case 1024:
16134 bf_set(lpfc_eq_context_count, &eq_create->u.request.context,
16135 LPFC_EQ_CNT_1024);
16136 break;
16137 case 2048:
16138 bf_set(lpfc_eq_context_count, &eq_create->u.request.context,
16139 LPFC_EQ_CNT_2048);
16140 break;
16141 case 4096:
16142 bf_set(lpfc_eq_context_count, &eq_create->u.request.context,
16143 LPFC_EQ_CNT_4096);
16144 break;
16146 list_for_each_entry(dmabuf, &eq->page_list, list) {
16147 memset(dmabuf->virt, 0, hw_page_size);
16148 eq_create->u.request.page[dmabuf->buffer_tag].addr_lo =
16149 putPaddrLow(dmabuf->phys);
16150 eq_create->u.request.page[dmabuf->buffer_tag].addr_hi =
16151 putPaddrHigh(dmabuf->phys);
16153 mbox->vport = phba->pport;
16154 mbox->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
16155 mbox->ctx_buf = NULL;
16156 mbox->ctx_ndlp = NULL;
16157 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
16158 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
16159 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
16160 if (shdr_status || shdr_add_status || rc) {
16161 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16162 "2500 EQ_CREATE mailbox failed with "
16163 "status x%x add_status x%x, mbx status x%x\n",
16164 shdr_status, shdr_add_status, rc);
16165 status = -ENXIO;
16167 eq->type = LPFC_EQ;
16168 eq->subtype = LPFC_NONE;
16169 eq->queue_id = bf_get(lpfc_mbx_eq_create_q_id, &eq_create->u.response);
16170 if (eq->queue_id == 0xFFFF)
16171 status = -ENXIO;
16172 eq->host_index = 0;
16173 eq->notify_interval = LPFC_EQ_NOTIFY_INTRVL;
16174 eq->max_proc_limit = LPFC_EQ_MAX_PROC_LIMIT;
16175 out:
16176 mempool_free(mbox, phba->mbox_mem_pool);
16177 return status;
16181 * lpfc_sli4_hba_intr_handler_th - SLI4 HBA threaded interrupt handler
16182 * @irq: Interrupt number.
16183 * @dev_id: The device context pointer.
16185 * This routine is a mirror of lpfc_sli4_hba_intr_handler, but executed within
16186 * threaded irq context.
16188 * Returns
16189 * IRQ_HANDLED - interrupt is handled
16190 * IRQ_NONE - otherwise
16192 irqreturn_t lpfc_sli4_hba_intr_handler_th(int irq, void *dev_id)
16194 struct lpfc_hba *phba;
16195 struct lpfc_hba_eq_hdl *hba_eq_hdl;
16196 struct lpfc_queue *fpeq;
16197 int ecount = 0;
16198 int hba_eqidx;
16199 struct lpfc_eq_intr_info *eqi;
16201 /* Get the driver's phba structure from the dev_id */
16202 hba_eq_hdl = (struct lpfc_hba_eq_hdl *)dev_id;
16203 phba = hba_eq_hdl->phba;
16204 hba_eqidx = hba_eq_hdl->idx;
16206 if (unlikely(!phba))
16207 return IRQ_NONE;
16208 if (unlikely(!phba->sli4_hba.hdwq))
16209 return IRQ_NONE;
16211 /* Get to the EQ struct associated with this vector */
16212 fpeq = phba->sli4_hba.hba_eq_hdl[hba_eqidx].eq;
16213 if (unlikely(!fpeq))
16214 return IRQ_NONE;
16216 eqi = per_cpu_ptr(phba->sli4_hba.eq_info, raw_smp_processor_id());
16217 eqi->icnt++;
16219 fpeq->last_cpu = raw_smp_processor_id();
16221 if (eqi->icnt > LPFC_EQD_ISR_TRIGGER &&
16222 fpeq->q_flag & HBA_EQ_DELAY_CHK &&
16223 phba->cfg_auto_imax &&
16224 fpeq->q_mode != LPFC_MAX_AUTO_EQ_DELAY &&
16225 phba->sli.sli_flag & LPFC_SLI_USE_EQDR)
16226 lpfc_sli4_mod_hba_eq_delay(phba, fpeq, LPFC_MAX_AUTO_EQ_DELAY);
16228 /* process and rearm the EQ */
16229 ecount = lpfc_sli4_process_eq(phba, fpeq, LPFC_QUEUE_REARM,
16230 LPFC_THREADED_IRQ);
16232 if (unlikely(ecount == 0)) {
16233 fpeq->EQ_no_entry++;
16234 if (phba->intr_type == MSIX)
16235 /* MSI-X treated interrupt served as no EQ share INT */
16236 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
16237 "3358 MSI-X interrupt with no EQE\n");
16238 else
16239 /* Non MSI-X treated on interrupt as EQ share INT */
16240 return IRQ_NONE;
16242 return IRQ_HANDLED;
16246 * lpfc_cq_create - Create a Completion Queue on the HBA
16247 * @phba: HBA structure that indicates port to create a queue on.
16248 * @cq: The queue structure to use to create the completion queue.
16249 * @eq: The event queue to bind this completion queue to.
16250 * @type: Type of queue (EQ, GCQ, MCQ, WCQ, etc).
16251 * @subtype: Functional purpose of the queue (MBOX, IO, ELS, NVMET, etc).
16253 * This function creates a completion queue, as detailed in @wq, on a port,
16254 * described by @phba by sending a CQ_CREATE mailbox command to the HBA.
16256 * The @phba struct is used to send mailbox command to HBA. The @cq struct
16257 * is used to get the entry count and entry size that are necessary to
16258 * determine the number of pages to allocate and use for this queue. The @eq
16259 * is used to indicate which event queue to bind this completion queue to. This
16260 * function will send the CQ_CREATE mailbox command to the HBA to setup the
16261 * completion queue. This function is asynchronous and will wait for the mailbox
16262 * command to finish before continuing.
16264 * On success this function will return a zero. If unable to allocate enough
16265 * memory this function will return -ENOMEM. If the queue create mailbox command
16266 * fails this function will return -ENXIO.
16269 lpfc_cq_create(struct lpfc_hba *phba, struct lpfc_queue *cq,
16270 struct lpfc_queue *eq, uint32_t type, uint32_t subtype)
16272 struct lpfc_mbx_cq_create *cq_create;
16273 struct lpfc_dmabuf *dmabuf;
16274 LPFC_MBOXQ_t *mbox;
16275 int rc, length, status = 0;
16276 uint32_t shdr_status, shdr_add_status;
16277 union lpfc_sli4_cfg_shdr *shdr;
16279 /* sanity check on queue memory */
16280 if (!cq || !eq)
16281 return -ENODEV;
16283 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
16284 if (!mbox)
16285 return -ENOMEM;
16286 length = (sizeof(struct lpfc_mbx_cq_create) -
16287 sizeof(struct lpfc_sli4_cfg_mhdr));
16288 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
16289 LPFC_MBOX_OPCODE_CQ_CREATE,
16290 length, LPFC_SLI4_MBX_EMBED);
16291 cq_create = &mbox->u.mqe.un.cq_create;
16292 shdr = (union lpfc_sli4_cfg_shdr *) &cq_create->header.cfg_shdr;
16293 bf_set(lpfc_mbx_cq_create_num_pages, &cq_create->u.request,
16294 cq->page_count);
16295 bf_set(lpfc_cq_context_event, &cq_create->u.request.context, 1);
16296 bf_set(lpfc_cq_context_valid, &cq_create->u.request.context, 1);
16297 bf_set(lpfc_mbox_hdr_version, &shdr->request,
16298 phba->sli4_hba.pc_sli4_params.cqv);
16299 if (phba->sli4_hba.pc_sli4_params.cqv == LPFC_Q_CREATE_VERSION_2) {
16300 bf_set(lpfc_mbx_cq_create_page_size, &cq_create->u.request,
16301 (cq->page_size / SLI4_PAGE_SIZE));
16302 bf_set(lpfc_cq_eq_id_2, &cq_create->u.request.context,
16303 eq->queue_id);
16304 bf_set(lpfc_cq_context_autovalid, &cq_create->u.request.context,
16305 phba->sli4_hba.pc_sli4_params.cqav);
16306 } else {
16307 bf_set(lpfc_cq_eq_id, &cq_create->u.request.context,
16308 eq->queue_id);
16310 switch (cq->entry_count) {
16311 case 2048:
16312 case 4096:
16313 if (phba->sli4_hba.pc_sli4_params.cqv ==
16314 LPFC_Q_CREATE_VERSION_2) {
16315 cq_create->u.request.context.lpfc_cq_context_count =
16316 cq->entry_count;
16317 bf_set(lpfc_cq_context_count,
16318 &cq_create->u.request.context,
16319 LPFC_CQ_CNT_WORD7);
16320 break;
16322 fallthrough;
16323 default:
16324 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16325 "0361 Unsupported CQ count: "
16326 "entry cnt %d sz %d pg cnt %d\n",
16327 cq->entry_count, cq->entry_size,
16328 cq->page_count);
16329 if (cq->entry_count < 256) {
16330 status = -EINVAL;
16331 goto out;
16333 fallthrough; /* otherwise default to smallest count */
16334 case 256:
16335 bf_set(lpfc_cq_context_count, &cq_create->u.request.context,
16336 LPFC_CQ_CNT_256);
16337 break;
16338 case 512:
16339 bf_set(lpfc_cq_context_count, &cq_create->u.request.context,
16340 LPFC_CQ_CNT_512);
16341 break;
16342 case 1024:
16343 bf_set(lpfc_cq_context_count, &cq_create->u.request.context,
16344 LPFC_CQ_CNT_1024);
16345 break;
16347 list_for_each_entry(dmabuf, &cq->page_list, list) {
16348 memset(dmabuf->virt, 0, cq->page_size);
16349 cq_create->u.request.page[dmabuf->buffer_tag].addr_lo =
16350 putPaddrLow(dmabuf->phys);
16351 cq_create->u.request.page[dmabuf->buffer_tag].addr_hi =
16352 putPaddrHigh(dmabuf->phys);
16354 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
16356 /* The IOCTL status is embedded in the mailbox subheader. */
16357 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
16358 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
16359 if (shdr_status || shdr_add_status || rc) {
16360 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16361 "2501 CQ_CREATE mailbox failed with "
16362 "status x%x add_status x%x, mbx status x%x\n",
16363 shdr_status, shdr_add_status, rc);
16364 status = -ENXIO;
16365 goto out;
16367 cq->queue_id = bf_get(lpfc_mbx_cq_create_q_id, &cq_create->u.response);
16368 if (cq->queue_id == 0xFFFF) {
16369 status = -ENXIO;
16370 goto out;
16372 /* link the cq onto the parent eq child list */
16373 list_add_tail(&cq->list, &eq->child_list);
16374 /* Set up completion queue's type and subtype */
16375 cq->type = type;
16376 cq->subtype = subtype;
16377 cq->queue_id = bf_get(lpfc_mbx_cq_create_q_id, &cq_create->u.response);
16378 cq->assoc_qid = eq->queue_id;
16379 cq->assoc_qp = eq;
16380 cq->host_index = 0;
16381 cq->notify_interval = LPFC_CQ_NOTIFY_INTRVL;
16382 cq->max_proc_limit = min(phba->cfg_cq_max_proc_limit, cq->entry_count);
16384 if (cq->queue_id > phba->sli4_hba.cq_max)
16385 phba->sli4_hba.cq_max = cq->queue_id;
16386 out:
16387 mempool_free(mbox, phba->mbox_mem_pool);
16388 return status;
16392 * lpfc_cq_create_set - Create a set of Completion Queues on the HBA for MRQ
16393 * @phba: HBA structure that indicates port to create a queue on.
16394 * @cqp: The queue structure array to use to create the completion queues.
16395 * @hdwq: The hardware queue array with the EQ to bind completion queues to.
16396 * @type: Type of queue (EQ, GCQ, MCQ, WCQ, etc).
16397 * @subtype: Functional purpose of the queue (MBOX, IO, ELS, NVMET, etc).
16399 * This function creates a set of completion queue, s to support MRQ
16400 * as detailed in @cqp, on a port,
16401 * described by @phba by sending a CREATE_CQ_SET mailbox command to the HBA.
16403 * The @phba struct is used to send mailbox command to HBA. The @cq struct
16404 * is used to get the entry count and entry size that are necessary to
16405 * determine the number of pages to allocate and use for this queue. The @eq
16406 * is used to indicate which event queue to bind this completion queue to. This
16407 * function will send the CREATE_CQ_SET mailbox command to the HBA to setup the
16408 * completion queue. This function is asynchronous and will wait for the mailbox
16409 * command to finish before continuing.
16411 * On success this function will return a zero. If unable to allocate enough
16412 * memory this function will return -ENOMEM. If the queue create mailbox command
16413 * fails this function will return -ENXIO.
16416 lpfc_cq_create_set(struct lpfc_hba *phba, struct lpfc_queue **cqp,
16417 struct lpfc_sli4_hdw_queue *hdwq, uint32_t type,
16418 uint32_t subtype)
16420 struct lpfc_queue *cq;
16421 struct lpfc_queue *eq;
16422 struct lpfc_mbx_cq_create_set *cq_set;
16423 struct lpfc_dmabuf *dmabuf;
16424 LPFC_MBOXQ_t *mbox;
16425 int rc, length, alloclen, status = 0;
16426 int cnt, idx, numcq, page_idx = 0;
16427 uint32_t shdr_status, shdr_add_status;
16428 union lpfc_sli4_cfg_shdr *shdr;
16429 uint32_t hw_page_size = phba->sli4_hba.pc_sli4_params.if_page_sz;
16431 /* sanity check on queue memory */
16432 numcq = phba->cfg_nvmet_mrq;
16433 if (!cqp || !hdwq || !numcq)
16434 return -ENODEV;
16436 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
16437 if (!mbox)
16438 return -ENOMEM;
16440 length = sizeof(struct lpfc_mbx_cq_create_set);
16441 length += ((numcq * cqp[0]->page_count) *
16442 sizeof(struct dma_address));
16443 alloclen = lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
16444 LPFC_MBOX_OPCODE_FCOE_CQ_CREATE_SET, length,
16445 LPFC_SLI4_MBX_NEMBED);
16446 if (alloclen < length) {
16447 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16448 "3098 Allocated DMA memory size (%d) is "
16449 "less than the requested DMA memory size "
16450 "(%d)\n", alloclen, length);
16451 status = -ENOMEM;
16452 goto out;
16454 cq_set = mbox->sge_array->addr[0];
16455 shdr = (union lpfc_sli4_cfg_shdr *)&cq_set->cfg_shdr;
16456 bf_set(lpfc_mbox_hdr_version, &shdr->request, 0);
16458 for (idx = 0; idx < numcq; idx++) {
16459 cq = cqp[idx];
16460 eq = hdwq[idx].hba_eq;
16461 if (!cq || !eq) {
16462 status = -ENOMEM;
16463 goto out;
16465 if (!phba->sli4_hba.pc_sli4_params.supported)
16466 hw_page_size = cq->page_size;
16468 switch (idx) {
16469 case 0:
16470 bf_set(lpfc_mbx_cq_create_set_page_size,
16471 &cq_set->u.request,
16472 (hw_page_size / SLI4_PAGE_SIZE));
16473 bf_set(lpfc_mbx_cq_create_set_num_pages,
16474 &cq_set->u.request, cq->page_count);
16475 bf_set(lpfc_mbx_cq_create_set_evt,
16476 &cq_set->u.request, 1);
16477 bf_set(lpfc_mbx_cq_create_set_valid,
16478 &cq_set->u.request, 1);
16479 bf_set(lpfc_mbx_cq_create_set_cqe_size,
16480 &cq_set->u.request, 0);
16481 bf_set(lpfc_mbx_cq_create_set_num_cq,
16482 &cq_set->u.request, numcq);
16483 bf_set(lpfc_mbx_cq_create_set_autovalid,
16484 &cq_set->u.request,
16485 phba->sli4_hba.pc_sli4_params.cqav);
16486 switch (cq->entry_count) {
16487 case 2048:
16488 case 4096:
16489 if (phba->sli4_hba.pc_sli4_params.cqv ==
16490 LPFC_Q_CREATE_VERSION_2) {
16491 bf_set(lpfc_mbx_cq_create_set_cqe_cnt,
16492 &cq_set->u.request,
16493 cq->entry_count);
16494 bf_set(lpfc_mbx_cq_create_set_cqe_cnt,
16495 &cq_set->u.request,
16496 LPFC_CQ_CNT_WORD7);
16497 break;
16499 fallthrough;
16500 default:
16501 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16502 "3118 Bad CQ count. (%d)\n",
16503 cq->entry_count);
16504 if (cq->entry_count < 256) {
16505 status = -EINVAL;
16506 goto out;
16508 fallthrough; /* otherwise default to smallest */
16509 case 256:
16510 bf_set(lpfc_mbx_cq_create_set_cqe_cnt,
16511 &cq_set->u.request, LPFC_CQ_CNT_256);
16512 break;
16513 case 512:
16514 bf_set(lpfc_mbx_cq_create_set_cqe_cnt,
16515 &cq_set->u.request, LPFC_CQ_CNT_512);
16516 break;
16517 case 1024:
16518 bf_set(lpfc_mbx_cq_create_set_cqe_cnt,
16519 &cq_set->u.request, LPFC_CQ_CNT_1024);
16520 break;
16522 bf_set(lpfc_mbx_cq_create_set_eq_id0,
16523 &cq_set->u.request, eq->queue_id);
16524 break;
16525 case 1:
16526 bf_set(lpfc_mbx_cq_create_set_eq_id1,
16527 &cq_set->u.request, eq->queue_id);
16528 break;
16529 case 2:
16530 bf_set(lpfc_mbx_cq_create_set_eq_id2,
16531 &cq_set->u.request, eq->queue_id);
16532 break;
16533 case 3:
16534 bf_set(lpfc_mbx_cq_create_set_eq_id3,
16535 &cq_set->u.request, eq->queue_id);
16536 break;
16537 case 4:
16538 bf_set(lpfc_mbx_cq_create_set_eq_id4,
16539 &cq_set->u.request, eq->queue_id);
16540 break;
16541 case 5:
16542 bf_set(lpfc_mbx_cq_create_set_eq_id5,
16543 &cq_set->u.request, eq->queue_id);
16544 break;
16545 case 6:
16546 bf_set(lpfc_mbx_cq_create_set_eq_id6,
16547 &cq_set->u.request, eq->queue_id);
16548 break;
16549 case 7:
16550 bf_set(lpfc_mbx_cq_create_set_eq_id7,
16551 &cq_set->u.request, eq->queue_id);
16552 break;
16553 case 8:
16554 bf_set(lpfc_mbx_cq_create_set_eq_id8,
16555 &cq_set->u.request, eq->queue_id);
16556 break;
16557 case 9:
16558 bf_set(lpfc_mbx_cq_create_set_eq_id9,
16559 &cq_set->u.request, eq->queue_id);
16560 break;
16561 case 10:
16562 bf_set(lpfc_mbx_cq_create_set_eq_id10,
16563 &cq_set->u.request, eq->queue_id);
16564 break;
16565 case 11:
16566 bf_set(lpfc_mbx_cq_create_set_eq_id11,
16567 &cq_set->u.request, eq->queue_id);
16568 break;
16569 case 12:
16570 bf_set(lpfc_mbx_cq_create_set_eq_id12,
16571 &cq_set->u.request, eq->queue_id);
16572 break;
16573 case 13:
16574 bf_set(lpfc_mbx_cq_create_set_eq_id13,
16575 &cq_set->u.request, eq->queue_id);
16576 break;
16577 case 14:
16578 bf_set(lpfc_mbx_cq_create_set_eq_id14,
16579 &cq_set->u.request, eq->queue_id);
16580 break;
16581 case 15:
16582 bf_set(lpfc_mbx_cq_create_set_eq_id15,
16583 &cq_set->u.request, eq->queue_id);
16584 break;
16587 /* link the cq onto the parent eq child list */
16588 list_add_tail(&cq->list, &eq->child_list);
16589 /* Set up completion queue's type and subtype */
16590 cq->type = type;
16591 cq->subtype = subtype;
16592 cq->assoc_qid = eq->queue_id;
16593 cq->assoc_qp = eq;
16594 cq->host_index = 0;
16595 cq->notify_interval = LPFC_CQ_NOTIFY_INTRVL;
16596 cq->max_proc_limit = min(phba->cfg_cq_max_proc_limit,
16597 cq->entry_count);
16598 cq->chann = idx;
16600 rc = 0;
16601 list_for_each_entry(dmabuf, &cq->page_list, list) {
16602 memset(dmabuf->virt, 0, hw_page_size);
16603 cnt = page_idx + dmabuf->buffer_tag;
16604 cq_set->u.request.page[cnt].addr_lo =
16605 putPaddrLow(dmabuf->phys);
16606 cq_set->u.request.page[cnt].addr_hi =
16607 putPaddrHigh(dmabuf->phys);
16608 rc++;
16610 page_idx += rc;
16613 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
16615 /* The IOCTL status is embedded in the mailbox subheader. */
16616 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
16617 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
16618 if (shdr_status || shdr_add_status || rc) {
16619 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16620 "3119 CQ_CREATE_SET mailbox failed with "
16621 "status x%x add_status x%x, mbx status x%x\n",
16622 shdr_status, shdr_add_status, rc);
16623 status = -ENXIO;
16624 goto out;
16626 rc = bf_get(lpfc_mbx_cq_create_set_base_id, &cq_set->u.response);
16627 if (rc == 0xFFFF) {
16628 status = -ENXIO;
16629 goto out;
16632 for (idx = 0; idx < numcq; idx++) {
16633 cq = cqp[idx];
16634 cq->queue_id = rc + idx;
16635 if (cq->queue_id > phba->sli4_hba.cq_max)
16636 phba->sli4_hba.cq_max = cq->queue_id;
16639 out:
16640 lpfc_sli4_mbox_cmd_free(phba, mbox);
16641 return status;
16645 * lpfc_mq_create_fb_init - Send MCC_CREATE without async events registration
16646 * @phba: HBA structure that indicates port to create a queue on.
16647 * @mq: The queue structure to use to create the mailbox queue.
16648 * @mbox: An allocated pointer to type LPFC_MBOXQ_t
16649 * @cq: The completion queue to associate with this cq.
16651 * This function provides failback (fb) functionality when the
16652 * mq_create_ext fails on older FW generations. It's purpose is identical
16653 * to mq_create_ext otherwise.
16655 * This routine cannot fail as all attributes were previously accessed and
16656 * initialized in mq_create_ext.
16658 static void
16659 lpfc_mq_create_fb_init(struct lpfc_hba *phba, struct lpfc_queue *mq,
16660 LPFC_MBOXQ_t *mbox, struct lpfc_queue *cq)
16662 struct lpfc_mbx_mq_create *mq_create;
16663 struct lpfc_dmabuf *dmabuf;
16664 int length;
16666 length = (sizeof(struct lpfc_mbx_mq_create) -
16667 sizeof(struct lpfc_sli4_cfg_mhdr));
16668 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
16669 LPFC_MBOX_OPCODE_MQ_CREATE,
16670 length, LPFC_SLI4_MBX_EMBED);
16671 mq_create = &mbox->u.mqe.un.mq_create;
16672 bf_set(lpfc_mbx_mq_create_num_pages, &mq_create->u.request,
16673 mq->page_count);
16674 bf_set(lpfc_mq_context_cq_id, &mq_create->u.request.context,
16675 cq->queue_id);
16676 bf_set(lpfc_mq_context_valid, &mq_create->u.request.context, 1);
16677 switch (mq->entry_count) {
16678 case 16:
16679 bf_set(lpfc_mq_context_ring_size, &mq_create->u.request.context,
16680 LPFC_MQ_RING_SIZE_16);
16681 break;
16682 case 32:
16683 bf_set(lpfc_mq_context_ring_size, &mq_create->u.request.context,
16684 LPFC_MQ_RING_SIZE_32);
16685 break;
16686 case 64:
16687 bf_set(lpfc_mq_context_ring_size, &mq_create->u.request.context,
16688 LPFC_MQ_RING_SIZE_64);
16689 break;
16690 case 128:
16691 bf_set(lpfc_mq_context_ring_size, &mq_create->u.request.context,
16692 LPFC_MQ_RING_SIZE_128);
16693 break;
16695 list_for_each_entry(dmabuf, &mq->page_list, list) {
16696 mq_create->u.request.page[dmabuf->buffer_tag].addr_lo =
16697 putPaddrLow(dmabuf->phys);
16698 mq_create->u.request.page[dmabuf->buffer_tag].addr_hi =
16699 putPaddrHigh(dmabuf->phys);
16704 * lpfc_mq_create - Create a mailbox Queue on the HBA
16705 * @phba: HBA structure that indicates port to create a queue on.
16706 * @mq: The queue structure to use to create the mailbox queue.
16707 * @cq: The completion queue to associate with this cq.
16708 * @subtype: The queue's subtype.
16710 * This function creates a mailbox queue, as detailed in @mq, on a port,
16711 * described by @phba by sending a MQ_CREATE mailbox command to the HBA.
16713 * The @phba struct is used to send mailbox command to HBA. The @cq struct
16714 * is used to get the entry count and entry size that are necessary to
16715 * determine the number of pages to allocate and use for this queue. This
16716 * function will send the MQ_CREATE mailbox command to the HBA to setup the
16717 * mailbox queue. This function is asynchronous and will wait for the mailbox
16718 * command to finish before continuing.
16720 * On success this function will return a zero. If unable to allocate enough
16721 * memory this function will return -ENOMEM. If the queue create mailbox command
16722 * fails this function will return -ENXIO.
16724 int32_t
16725 lpfc_mq_create(struct lpfc_hba *phba, struct lpfc_queue *mq,
16726 struct lpfc_queue *cq, uint32_t subtype)
16728 struct lpfc_mbx_mq_create *mq_create;
16729 struct lpfc_mbx_mq_create_ext *mq_create_ext;
16730 struct lpfc_dmabuf *dmabuf;
16731 LPFC_MBOXQ_t *mbox;
16732 int rc, length, status = 0;
16733 uint32_t shdr_status, shdr_add_status;
16734 union lpfc_sli4_cfg_shdr *shdr;
16735 uint32_t hw_page_size = phba->sli4_hba.pc_sli4_params.if_page_sz;
16737 /* sanity check on queue memory */
16738 if (!mq || !cq)
16739 return -ENODEV;
16740 if (!phba->sli4_hba.pc_sli4_params.supported)
16741 hw_page_size = SLI4_PAGE_SIZE;
16743 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
16744 if (!mbox)
16745 return -ENOMEM;
16746 length = (sizeof(struct lpfc_mbx_mq_create_ext) -
16747 sizeof(struct lpfc_sli4_cfg_mhdr));
16748 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
16749 LPFC_MBOX_OPCODE_MQ_CREATE_EXT,
16750 length, LPFC_SLI4_MBX_EMBED);
16752 mq_create_ext = &mbox->u.mqe.un.mq_create_ext;
16753 shdr = (union lpfc_sli4_cfg_shdr *) &mq_create_ext->header.cfg_shdr;
16754 bf_set(lpfc_mbx_mq_create_ext_num_pages,
16755 &mq_create_ext->u.request, mq->page_count);
16756 bf_set(lpfc_mbx_mq_create_ext_async_evt_link,
16757 &mq_create_ext->u.request, 1);
16758 bf_set(lpfc_mbx_mq_create_ext_async_evt_fip,
16759 &mq_create_ext->u.request, 1);
16760 bf_set(lpfc_mbx_mq_create_ext_async_evt_group5,
16761 &mq_create_ext->u.request, 1);
16762 bf_set(lpfc_mbx_mq_create_ext_async_evt_fc,
16763 &mq_create_ext->u.request, 1);
16764 bf_set(lpfc_mbx_mq_create_ext_async_evt_sli,
16765 &mq_create_ext->u.request, 1);
16766 bf_set(lpfc_mq_context_valid, &mq_create_ext->u.request.context, 1);
16767 bf_set(lpfc_mbox_hdr_version, &shdr->request,
16768 phba->sli4_hba.pc_sli4_params.mqv);
16769 if (phba->sli4_hba.pc_sli4_params.mqv == LPFC_Q_CREATE_VERSION_1)
16770 bf_set(lpfc_mbx_mq_create_ext_cq_id, &mq_create_ext->u.request,
16771 cq->queue_id);
16772 else
16773 bf_set(lpfc_mq_context_cq_id, &mq_create_ext->u.request.context,
16774 cq->queue_id);
16775 switch (mq->entry_count) {
16776 default:
16777 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16778 "0362 Unsupported MQ count. (%d)\n",
16779 mq->entry_count);
16780 if (mq->entry_count < 16) {
16781 status = -EINVAL;
16782 goto out;
16784 fallthrough; /* otherwise default to smallest count */
16785 case 16:
16786 bf_set(lpfc_mq_context_ring_size,
16787 &mq_create_ext->u.request.context,
16788 LPFC_MQ_RING_SIZE_16);
16789 break;
16790 case 32:
16791 bf_set(lpfc_mq_context_ring_size,
16792 &mq_create_ext->u.request.context,
16793 LPFC_MQ_RING_SIZE_32);
16794 break;
16795 case 64:
16796 bf_set(lpfc_mq_context_ring_size,
16797 &mq_create_ext->u.request.context,
16798 LPFC_MQ_RING_SIZE_64);
16799 break;
16800 case 128:
16801 bf_set(lpfc_mq_context_ring_size,
16802 &mq_create_ext->u.request.context,
16803 LPFC_MQ_RING_SIZE_128);
16804 break;
16806 list_for_each_entry(dmabuf, &mq->page_list, list) {
16807 memset(dmabuf->virt, 0, hw_page_size);
16808 mq_create_ext->u.request.page[dmabuf->buffer_tag].addr_lo =
16809 putPaddrLow(dmabuf->phys);
16810 mq_create_ext->u.request.page[dmabuf->buffer_tag].addr_hi =
16811 putPaddrHigh(dmabuf->phys);
16813 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
16814 mq->queue_id = bf_get(lpfc_mbx_mq_create_q_id,
16815 &mq_create_ext->u.response);
16816 if (rc != MBX_SUCCESS) {
16817 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
16818 "2795 MQ_CREATE_EXT failed with "
16819 "status x%x. Failback to MQ_CREATE.\n",
16820 rc);
16821 lpfc_mq_create_fb_init(phba, mq, mbox, cq);
16822 mq_create = &mbox->u.mqe.un.mq_create;
16823 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
16824 shdr = (union lpfc_sli4_cfg_shdr *) &mq_create->header.cfg_shdr;
16825 mq->queue_id = bf_get(lpfc_mbx_mq_create_q_id,
16826 &mq_create->u.response);
16829 /* The IOCTL status is embedded in the mailbox subheader. */
16830 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
16831 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
16832 if (shdr_status || shdr_add_status || rc) {
16833 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16834 "2502 MQ_CREATE mailbox failed with "
16835 "status x%x add_status x%x, mbx status x%x\n",
16836 shdr_status, shdr_add_status, rc);
16837 status = -ENXIO;
16838 goto out;
16840 if (mq->queue_id == 0xFFFF) {
16841 status = -ENXIO;
16842 goto out;
16844 mq->type = LPFC_MQ;
16845 mq->assoc_qid = cq->queue_id;
16846 mq->subtype = subtype;
16847 mq->host_index = 0;
16848 mq->hba_index = 0;
16850 /* link the mq onto the parent cq child list */
16851 list_add_tail(&mq->list, &cq->child_list);
16852 out:
16853 mempool_free(mbox, phba->mbox_mem_pool);
16854 return status;
16858 * lpfc_wq_create - Create a Work Queue on the HBA
16859 * @phba: HBA structure that indicates port to create a queue on.
16860 * @wq: The queue structure to use to create the work queue.
16861 * @cq: The completion queue to bind this work queue to.
16862 * @subtype: The subtype of the work queue indicating its functionality.
16864 * This function creates a work queue, as detailed in @wq, on a port, described
16865 * by @phba by sending a WQ_CREATE mailbox command to the HBA.
16867 * The @phba struct is used to send mailbox command to HBA. The @wq struct
16868 * is used to get the entry count and entry size that are necessary to
16869 * determine the number of pages to allocate and use for this queue. The @cq
16870 * is used to indicate which completion queue to bind this work queue to. This
16871 * function will send the WQ_CREATE mailbox command to the HBA to setup the
16872 * work queue. This function is asynchronous and will wait for the mailbox
16873 * command to finish before continuing.
16875 * On success this function will return a zero. If unable to allocate enough
16876 * memory this function will return -ENOMEM. If the queue create mailbox command
16877 * fails this function will return -ENXIO.
16880 lpfc_wq_create(struct lpfc_hba *phba, struct lpfc_queue *wq,
16881 struct lpfc_queue *cq, uint32_t subtype)
16883 struct lpfc_mbx_wq_create *wq_create;
16884 struct lpfc_dmabuf *dmabuf;
16885 LPFC_MBOXQ_t *mbox;
16886 int rc, length, status = 0;
16887 uint32_t shdr_status, shdr_add_status;
16888 union lpfc_sli4_cfg_shdr *shdr;
16889 uint32_t hw_page_size = phba->sli4_hba.pc_sli4_params.if_page_sz;
16890 struct dma_address *page;
16891 void __iomem *bar_memmap_p;
16892 uint32_t db_offset;
16893 uint16_t pci_barset;
16894 uint8_t dpp_barset;
16895 uint32_t dpp_offset;
16896 uint8_t wq_create_version;
16897 #ifdef CONFIG_X86
16898 unsigned long pg_addr;
16899 #endif
16901 /* sanity check on queue memory */
16902 if (!wq || !cq)
16903 return -ENODEV;
16904 if (!phba->sli4_hba.pc_sli4_params.supported)
16905 hw_page_size = wq->page_size;
16907 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
16908 if (!mbox)
16909 return -ENOMEM;
16910 length = (sizeof(struct lpfc_mbx_wq_create) -
16911 sizeof(struct lpfc_sli4_cfg_mhdr));
16912 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
16913 LPFC_MBOX_OPCODE_FCOE_WQ_CREATE,
16914 length, LPFC_SLI4_MBX_EMBED);
16915 wq_create = &mbox->u.mqe.un.wq_create;
16916 shdr = (union lpfc_sli4_cfg_shdr *) &wq_create->header.cfg_shdr;
16917 bf_set(lpfc_mbx_wq_create_num_pages, &wq_create->u.request,
16918 wq->page_count);
16919 bf_set(lpfc_mbx_wq_create_cq_id, &wq_create->u.request,
16920 cq->queue_id);
16922 /* wqv is the earliest version supported, NOT the latest */
16923 bf_set(lpfc_mbox_hdr_version, &shdr->request,
16924 phba->sli4_hba.pc_sli4_params.wqv);
16926 if ((phba->sli4_hba.pc_sli4_params.wqsize & LPFC_WQ_SZ128_SUPPORT) ||
16927 (wq->page_size > SLI4_PAGE_SIZE))
16928 wq_create_version = LPFC_Q_CREATE_VERSION_1;
16929 else
16930 wq_create_version = LPFC_Q_CREATE_VERSION_0;
16932 switch (wq_create_version) {
16933 case LPFC_Q_CREATE_VERSION_1:
16934 bf_set(lpfc_mbx_wq_create_wqe_count, &wq_create->u.request_1,
16935 wq->entry_count);
16936 bf_set(lpfc_mbox_hdr_version, &shdr->request,
16937 LPFC_Q_CREATE_VERSION_1);
16939 switch (wq->entry_size) {
16940 default:
16941 case 64:
16942 bf_set(lpfc_mbx_wq_create_wqe_size,
16943 &wq_create->u.request_1,
16944 LPFC_WQ_WQE_SIZE_64);
16945 break;
16946 case 128:
16947 bf_set(lpfc_mbx_wq_create_wqe_size,
16948 &wq_create->u.request_1,
16949 LPFC_WQ_WQE_SIZE_128);
16950 break;
16952 /* Request DPP by default */
16953 bf_set(lpfc_mbx_wq_create_dpp_req, &wq_create->u.request_1, 1);
16954 bf_set(lpfc_mbx_wq_create_page_size,
16955 &wq_create->u.request_1,
16956 (wq->page_size / SLI4_PAGE_SIZE));
16957 page = wq_create->u.request_1.page;
16958 break;
16959 default:
16960 page = wq_create->u.request.page;
16961 break;
16964 list_for_each_entry(dmabuf, &wq->page_list, list) {
16965 memset(dmabuf->virt, 0, hw_page_size);
16966 page[dmabuf->buffer_tag].addr_lo = putPaddrLow(dmabuf->phys);
16967 page[dmabuf->buffer_tag].addr_hi = putPaddrHigh(dmabuf->phys);
16970 if (phba->sli4_hba.fw_func_mode & LPFC_DUA_MODE)
16971 bf_set(lpfc_mbx_wq_create_dua, &wq_create->u.request, 1);
16973 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
16974 /* The IOCTL status is embedded in the mailbox subheader. */
16975 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
16976 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
16977 if (shdr_status || shdr_add_status || rc) {
16978 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
16979 "2503 WQ_CREATE mailbox failed with "
16980 "status x%x add_status x%x, mbx status x%x\n",
16981 shdr_status, shdr_add_status, rc);
16982 status = -ENXIO;
16983 goto out;
16986 if (wq_create_version == LPFC_Q_CREATE_VERSION_0)
16987 wq->queue_id = bf_get(lpfc_mbx_wq_create_q_id,
16988 &wq_create->u.response);
16989 else
16990 wq->queue_id = bf_get(lpfc_mbx_wq_create_v1_q_id,
16991 &wq_create->u.response_1);
16993 if (wq->queue_id == 0xFFFF) {
16994 status = -ENXIO;
16995 goto out;
16998 wq->db_format = LPFC_DB_LIST_FORMAT;
16999 if (wq_create_version == LPFC_Q_CREATE_VERSION_0) {
17000 if (phba->sli4_hba.fw_func_mode & LPFC_DUA_MODE) {
17001 wq->db_format = bf_get(lpfc_mbx_wq_create_db_format,
17002 &wq_create->u.response);
17003 if ((wq->db_format != LPFC_DB_LIST_FORMAT) &&
17004 (wq->db_format != LPFC_DB_RING_FORMAT)) {
17005 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17006 "3265 WQ[%d] doorbell format "
17007 "not supported: x%x\n",
17008 wq->queue_id, wq->db_format);
17009 status = -EINVAL;
17010 goto out;
17012 pci_barset = bf_get(lpfc_mbx_wq_create_bar_set,
17013 &wq_create->u.response);
17014 bar_memmap_p = lpfc_dual_chute_pci_bar_map(phba,
17015 pci_barset);
17016 if (!bar_memmap_p) {
17017 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17018 "3263 WQ[%d] failed to memmap "
17019 "pci barset:x%x\n",
17020 wq->queue_id, pci_barset);
17021 status = -ENOMEM;
17022 goto out;
17024 db_offset = wq_create->u.response.doorbell_offset;
17025 if ((db_offset != LPFC_ULP0_WQ_DOORBELL) &&
17026 (db_offset != LPFC_ULP1_WQ_DOORBELL)) {
17027 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17028 "3252 WQ[%d] doorbell offset "
17029 "not supported: x%x\n",
17030 wq->queue_id, db_offset);
17031 status = -EINVAL;
17032 goto out;
17034 wq->db_regaddr = bar_memmap_p + db_offset;
17035 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
17036 "3264 WQ[%d]: barset:x%x, offset:x%x, "
17037 "format:x%x\n", wq->queue_id,
17038 pci_barset, db_offset, wq->db_format);
17039 } else
17040 wq->db_regaddr = phba->sli4_hba.WQDBregaddr;
17041 } else {
17042 /* Check if DPP was honored by the firmware */
17043 wq->dpp_enable = bf_get(lpfc_mbx_wq_create_dpp_rsp,
17044 &wq_create->u.response_1);
17045 if (wq->dpp_enable) {
17046 pci_barset = bf_get(lpfc_mbx_wq_create_v1_bar_set,
17047 &wq_create->u.response_1);
17048 bar_memmap_p = lpfc_dual_chute_pci_bar_map(phba,
17049 pci_barset);
17050 if (!bar_memmap_p) {
17051 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17052 "3267 WQ[%d] failed to memmap "
17053 "pci barset:x%x\n",
17054 wq->queue_id, pci_barset);
17055 status = -ENOMEM;
17056 goto out;
17058 db_offset = wq_create->u.response_1.doorbell_offset;
17059 wq->db_regaddr = bar_memmap_p + db_offset;
17060 wq->dpp_id = bf_get(lpfc_mbx_wq_create_dpp_id,
17061 &wq_create->u.response_1);
17062 dpp_barset = bf_get(lpfc_mbx_wq_create_dpp_bar,
17063 &wq_create->u.response_1);
17064 bar_memmap_p = lpfc_dual_chute_pci_bar_map(phba,
17065 dpp_barset);
17066 if (!bar_memmap_p) {
17067 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17068 "3268 WQ[%d] failed to memmap "
17069 "pci barset:x%x\n",
17070 wq->queue_id, dpp_barset);
17071 status = -ENOMEM;
17072 goto out;
17074 dpp_offset = wq_create->u.response_1.dpp_offset;
17075 wq->dpp_regaddr = bar_memmap_p + dpp_offset;
17076 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
17077 "3271 WQ[%d]: barset:x%x, offset:x%x, "
17078 "dpp_id:x%x dpp_barset:x%x "
17079 "dpp_offset:x%x\n",
17080 wq->queue_id, pci_barset, db_offset,
17081 wq->dpp_id, dpp_barset, dpp_offset);
17083 #ifdef CONFIG_X86
17084 /* Enable combined writes for DPP aperture */
17085 pg_addr = (unsigned long)(wq->dpp_regaddr) & PAGE_MASK;
17086 rc = set_memory_wc(pg_addr, 1);
17087 if (rc) {
17088 lpfc_printf_log(phba, KERN_ERR, LOG_INIT,
17089 "3272 Cannot setup Combined "
17090 "Write on WQ[%d] - disable DPP\n",
17091 wq->queue_id);
17092 phba->cfg_enable_dpp = 0;
17094 #else
17095 phba->cfg_enable_dpp = 0;
17096 #endif
17097 } else
17098 wq->db_regaddr = phba->sli4_hba.WQDBregaddr;
17100 wq->pring = kzalloc(sizeof(struct lpfc_sli_ring), GFP_KERNEL);
17101 if (wq->pring == NULL) {
17102 status = -ENOMEM;
17103 goto out;
17105 wq->type = LPFC_WQ;
17106 wq->assoc_qid = cq->queue_id;
17107 wq->subtype = subtype;
17108 wq->host_index = 0;
17109 wq->hba_index = 0;
17110 wq->notify_interval = LPFC_WQ_NOTIFY_INTRVL;
17112 /* link the wq onto the parent cq child list */
17113 list_add_tail(&wq->list, &cq->child_list);
17114 out:
17115 mempool_free(mbox, phba->mbox_mem_pool);
17116 return status;
17120 * lpfc_rq_create - Create a Receive Queue on the HBA
17121 * @phba: HBA structure that indicates port to create a queue on.
17122 * @hrq: The queue structure to use to create the header receive queue.
17123 * @drq: The queue structure to use to create the data receive queue.
17124 * @cq: The completion queue to bind this work queue to.
17125 * @subtype: The subtype of the work queue indicating its functionality.
17127 * This function creates a receive buffer queue pair , as detailed in @hrq and
17128 * @drq, on a port, described by @phba by sending a RQ_CREATE mailbox command
17129 * to the HBA.
17131 * The @phba struct is used to send mailbox command to HBA. The @drq and @hrq
17132 * struct is used to get the entry count that is necessary to determine the
17133 * number of pages to use for this queue. The @cq is used to indicate which
17134 * completion queue to bind received buffers that are posted to these queues to.
17135 * This function will send the RQ_CREATE mailbox command to the HBA to setup the
17136 * receive queue pair. This function is asynchronous and will wait for the
17137 * mailbox command to finish before continuing.
17139 * On success this function will return a zero. If unable to allocate enough
17140 * memory this function will return -ENOMEM. If the queue create mailbox command
17141 * fails this function will return -ENXIO.
17144 lpfc_rq_create(struct lpfc_hba *phba, struct lpfc_queue *hrq,
17145 struct lpfc_queue *drq, struct lpfc_queue *cq, uint32_t subtype)
17147 struct lpfc_mbx_rq_create *rq_create;
17148 struct lpfc_dmabuf *dmabuf;
17149 LPFC_MBOXQ_t *mbox;
17150 int rc, length, status = 0;
17151 uint32_t shdr_status, shdr_add_status;
17152 union lpfc_sli4_cfg_shdr *shdr;
17153 uint32_t hw_page_size = phba->sli4_hba.pc_sli4_params.if_page_sz;
17154 void __iomem *bar_memmap_p;
17155 uint32_t db_offset;
17156 uint16_t pci_barset;
17158 /* sanity check on queue memory */
17159 if (!hrq || !drq || !cq)
17160 return -ENODEV;
17161 if (!phba->sli4_hba.pc_sli4_params.supported)
17162 hw_page_size = SLI4_PAGE_SIZE;
17164 if (hrq->entry_count != drq->entry_count)
17165 return -EINVAL;
17166 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
17167 if (!mbox)
17168 return -ENOMEM;
17169 length = (sizeof(struct lpfc_mbx_rq_create) -
17170 sizeof(struct lpfc_sli4_cfg_mhdr));
17171 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
17172 LPFC_MBOX_OPCODE_FCOE_RQ_CREATE,
17173 length, LPFC_SLI4_MBX_EMBED);
17174 rq_create = &mbox->u.mqe.un.rq_create;
17175 shdr = (union lpfc_sli4_cfg_shdr *) &rq_create->header.cfg_shdr;
17176 bf_set(lpfc_mbox_hdr_version, &shdr->request,
17177 phba->sli4_hba.pc_sli4_params.rqv);
17178 if (phba->sli4_hba.pc_sli4_params.rqv == LPFC_Q_CREATE_VERSION_1) {
17179 bf_set(lpfc_rq_context_rqe_count_1,
17180 &rq_create->u.request.context,
17181 hrq->entry_count);
17182 rq_create->u.request.context.buffer_size = LPFC_HDR_BUF_SIZE;
17183 bf_set(lpfc_rq_context_rqe_size,
17184 &rq_create->u.request.context,
17185 LPFC_RQE_SIZE_8);
17186 bf_set(lpfc_rq_context_page_size,
17187 &rq_create->u.request.context,
17188 LPFC_RQ_PAGE_SIZE_4096);
17189 } else {
17190 switch (hrq->entry_count) {
17191 default:
17192 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17193 "2535 Unsupported RQ count. (%d)\n",
17194 hrq->entry_count);
17195 if (hrq->entry_count < 512) {
17196 status = -EINVAL;
17197 goto out;
17199 fallthrough; /* otherwise default to smallest count */
17200 case 512:
17201 bf_set(lpfc_rq_context_rqe_count,
17202 &rq_create->u.request.context,
17203 LPFC_RQ_RING_SIZE_512);
17204 break;
17205 case 1024:
17206 bf_set(lpfc_rq_context_rqe_count,
17207 &rq_create->u.request.context,
17208 LPFC_RQ_RING_SIZE_1024);
17209 break;
17210 case 2048:
17211 bf_set(lpfc_rq_context_rqe_count,
17212 &rq_create->u.request.context,
17213 LPFC_RQ_RING_SIZE_2048);
17214 break;
17215 case 4096:
17216 bf_set(lpfc_rq_context_rqe_count,
17217 &rq_create->u.request.context,
17218 LPFC_RQ_RING_SIZE_4096);
17219 break;
17221 bf_set(lpfc_rq_context_buf_size, &rq_create->u.request.context,
17222 LPFC_HDR_BUF_SIZE);
17224 bf_set(lpfc_rq_context_cq_id, &rq_create->u.request.context,
17225 cq->queue_id);
17226 bf_set(lpfc_mbx_rq_create_num_pages, &rq_create->u.request,
17227 hrq->page_count);
17228 list_for_each_entry(dmabuf, &hrq->page_list, list) {
17229 memset(dmabuf->virt, 0, hw_page_size);
17230 rq_create->u.request.page[dmabuf->buffer_tag].addr_lo =
17231 putPaddrLow(dmabuf->phys);
17232 rq_create->u.request.page[dmabuf->buffer_tag].addr_hi =
17233 putPaddrHigh(dmabuf->phys);
17235 if (phba->sli4_hba.fw_func_mode & LPFC_DUA_MODE)
17236 bf_set(lpfc_mbx_rq_create_dua, &rq_create->u.request, 1);
17238 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
17239 /* The IOCTL status is embedded in the mailbox subheader. */
17240 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17241 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17242 if (shdr_status || shdr_add_status || rc) {
17243 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17244 "2504 RQ_CREATE mailbox failed with "
17245 "status x%x add_status x%x, mbx status x%x\n",
17246 shdr_status, shdr_add_status, rc);
17247 status = -ENXIO;
17248 goto out;
17250 hrq->queue_id = bf_get(lpfc_mbx_rq_create_q_id, &rq_create->u.response);
17251 if (hrq->queue_id == 0xFFFF) {
17252 status = -ENXIO;
17253 goto out;
17256 if (phba->sli4_hba.fw_func_mode & LPFC_DUA_MODE) {
17257 hrq->db_format = bf_get(lpfc_mbx_rq_create_db_format,
17258 &rq_create->u.response);
17259 if ((hrq->db_format != LPFC_DB_LIST_FORMAT) &&
17260 (hrq->db_format != LPFC_DB_RING_FORMAT)) {
17261 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17262 "3262 RQ [%d] doorbell format not "
17263 "supported: x%x\n", hrq->queue_id,
17264 hrq->db_format);
17265 status = -EINVAL;
17266 goto out;
17269 pci_barset = bf_get(lpfc_mbx_rq_create_bar_set,
17270 &rq_create->u.response);
17271 bar_memmap_p = lpfc_dual_chute_pci_bar_map(phba, pci_barset);
17272 if (!bar_memmap_p) {
17273 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17274 "3269 RQ[%d] failed to memmap pci "
17275 "barset:x%x\n", hrq->queue_id,
17276 pci_barset);
17277 status = -ENOMEM;
17278 goto out;
17281 db_offset = rq_create->u.response.doorbell_offset;
17282 if ((db_offset != LPFC_ULP0_RQ_DOORBELL) &&
17283 (db_offset != LPFC_ULP1_RQ_DOORBELL)) {
17284 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17285 "3270 RQ[%d] doorbell offset not "
17286 "supported: x%x\n", hrq->queue_id,
17287 db_offset);
17288 status = -EINVAL;
17289 goto out;
17291 hrq->db_regaddr = bar_memmap_p + db_offset;
17292 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
17293 "3266 RQ[qid:%d]: barset:x%x, offset:x%x, "
17294 "format:x%x\n", hrq->queue_id, pci_barset,
17295 db_offset, hrq->db_format);
17296 } else {
17297 hrq->db_format = LPFC_DB_RING_FORMAT;
17298 hrq->db_regaddr = phba->sli4_hba.RQDBregaddr;
17300 hrq->type = LPFC_HRQ;
17301 hrq->assoc_qid = cq->queue_id;
17302 hrq->subtype = subtype;
17303 hrq->host_index = 0;
17304 hrq->hba_index = 0;
17305 hrq->notify_interval = LPFC_RQ_NOTIFY_INTRVL;
17307 /* now create the data queue */
17308 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
17309 LPFC_MBOX_OPCODE_FCOE_RQ_CREATE,
17310 length, LPFC_SLI4_MBX_EMBED);
17311 bf_set(lpfc_mbox_hdr_version, &shdr->request,
17312 phba->sli4_hba.pc_sli4_params.rqv);
17313 if (phba->sli4_hba.pc_sli4_params.rqv == LPFC_Q_CREATE_VERSION_1) {
17314 bf_set(lpfc_rq_context_rqe_count_1,
17315 &rq_create->u.request.context, hrq->entry_count);
17316 if (subtype == LPFC_NVMET)
17317 rq_create->u.request.context.buffer_size =
17318 LPFC_NVMET_DATA_BUF_SIZE;
17319 else
17320 rq_create->u.request.context.buffer_size =
17321 LPFC_DATA_BUF_SIZE;
17322 bf_set(lpfc_rq_context_rqe_size, &rq_create->u.request.context,
17323 LPFC_RQE_SIZE_8);
17324 bf_set(lpfc_rq_context_page_size, &rq_create->u.request.context,
17325 (PAGE_SIZE/SLI4_PAGE_SIZE));
17326 } else {
17327 switch (drq->entry_count) {
17328 default:
17329 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17330 "2536 Unsupported RQ count. (%d)\n",
17331 drq->entry_count);
17332 if (drq->entry_count < 512) {
17333 status = -EINVAL;
17334 goto out;
17336 fallthrough; /* otherwise default to smallest count */
17337 case 512:
17338 bf_set(lpfc_rq_context_rqe_count,
17339 &rq_create->u.request.context,
17340 LPFC_RQ_RING_SIZE_512);
17341 break;
17342 case 1024:
17343 bf_set(lpfc_rq_context_rqe_count,
17344 &rq_create->u.request.context,
17345 LPFC_RQ_RING_SIZE_1024);
17346 break;
17347 case 2048:
17348 bf_set(lpfc_rq_context_rqe_count,
17349 &rq_create->u.request.context,
17350 LPFC_RQ_RING_SIZE_2048);
17351 break;
17352 case 4096:
17353 bf_set(lpfc_rq_context_rqe_count,
17354 &rq_create->u.request.context,
17355 LPFC_RQ_RING_SIZE_4096);
17356 break;
17358 if (subtype == LPFC_NVMET)
17359 bf_set(lpfc_rq_context_buf_size,
17360 &rq_create->u.request.context,
17361 LPFC_NVMET_DATA_BUF_SIZE);
17362 else
17363 bf_set(lpfc_rq_context_buf_size,
17364 &rq_create->u.request.context,
17365 LPFC_DATA_BUF_SIZE);
17367 bf_set(lpfc_rq_context_cq_id, &rq_create->u.request.context,
17368 cq->queue_id);
17369 bf_set(lpfc_mbx_rq_create_num_pages, &rq_create->u.request,
17370 drq->page_count);
17371 list_for_each_entry(dmabuf, &drq->page_list, list) {
17372 rq_create->u.request.page[dmabuf->buffer_tag].addr_lo =
17373 putPaddrLow(dmabuf->phys);
17374 rq_create->u.request.page[dmabuf->buffer_tag].addr_hi =
17375 putPaddrHigh(dmabuf->phys);
17377 if (phba->sli4_hba.fw_func_mode & LPFC_DUA_MODE)
17378 bf_set(lpfc_mbx_rq_create_dua, &rq_create->u.request, 1);
17379 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
17380 /* The IOCTL status is embedded in the mailbox subheader. */
17381 shdr = (union lpfc_sli4_cfg_shdr *) &rq_create->header.cfg_shdr;
17382 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17383 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17384 if (shdr_status || shdr_add_status || rc) {
17385 status = -ENXIO;
17386 goto out;
17388 drq->queue_id = bf_get(lpfc_mbx_rq_create_q_id, &rq_create->u.response);
17389 if (drq->queue_id == 0xFFFF) {
17390 status = -ENXIO;
17391 goto out;
17393 drq->type = LPFC_DRQ;
17394 drq->assoc_qid = cq->queue_id;
17395 drq->subtype = subtype;
17396 drq->host_index = 0;
17397 drq->hba_index = 0;
17398 drq->notify_interval = LPFC_RQ_NOTIFY_INTRVL;
17400 /* link the header and data RQs onto the parent cq child list */
17401 list_add_tail(&hrq->list, &cq->child_list);
17402 list_add_tail(&drq->list, &cq->child_list);
17404 out:
17405 mempool_free(mbox, phba->mbox_mem_pool);
17406 return status;
17410 * lpfc_mrq_create - Create MRQ Receive Queues on the HBA
17411 * @phba: HBA structure that indicates port to create a queue on.
17412 * @hrqp: The queue structure array to use to create the header receive queues.
17413 * @drqp: The queue structure array to use to create the data receive queues.
17414 * @cqp: The completion queue array to bind these receive queues to.
17415 * @subtype: Functional purpose of the queue (MBOX, IO, ELS, NVMET, etc).
17417 * This function creates a receive buffer queue pair , as detailed in @hrq and
17418 * @drq, on a port, described by @phba by sending a RQ_CREATE mailbox command
17419 * to the HBA.
17421 * The @phba struct is used to send mailbox command to HBA. The @drq and @hrq
17422 * struct is used to get the entry count that is necessary to determine the
17423 * number of pages to use for this queue. The @cq is used to indicate which
17424 * completion queue to bind received buffers that are posted to these queues to.
17425 * This function will send the RQ_CREATE mailbox command to the HBA to setup the
17426 * receive queue pair. This function is asynchronous and will wait for the
17427 * mailbox command to finish before continuing.
17429 * On success this function will return a zero. If unable to allocate enough
17430 * memory this function will return -ENOMEM. If the queue create mailbox command
17431 * fails this function will return -ENXIO.
17434 lpfc_mrq_create(struct lpfc_hba *phba, struct lpfc_queue **hrqp,
17435 struct lpfc_queue **drqp, struct lpfc_queue **cqp,
17436 uint32_t subtype)
17438 struct lpfc_queue *hrq, *drq, *cq;
17439 struct lpfc_mbx_rq_create_v2 *rq_create;
17440 struct lpfc_dmabuf *dmabuf;
17441 LPFC_MBOXQ_t *mbox;
17442 int rc, length, alloclen, status = 0;
17443 int cnt, idx, numrq, page_idx = 0;
17444 uint32_t shdr_status, shdr_add_status;
17445 union lpfc_sli4_cfg_shdr *shdr;
17446 uint32_t hw_page_size = phba->sli4_hba.pc_sli4_params.if_page_sz;
17448 numrq = phba->cfg_nvmet_mrq;
17449 /* sanity check on array memory */
17450 if (!hrqp || !drqp || !cqp || !numrq)
17451 return -ENODEV;
17452 if (!phba->sli4_hba.pc_sli4_params.supported)
17453 hw_page_size = SLI4_PAGE_SIZE;
17455 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
17456 if (!mbox)
17457 return -ENOMEM;
17459 length = sizeof(struct lpfc_mbx_rq_create_v2);
17460 length += ((2 * numrq * hrqp[0]->page_count) *
17461 sizeof(struct dma_address));
17463 alloclen = lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
17464 LPFC_MBOX_OPCODE_FCOE_RQ_CREATE, length,
17465 LPFC_SLI4_MBX_NEMBED);
17466 if (alloclen < length) {
17467 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17468 "3099 Allocated DMA memory size (%d) is "
17469 "less than the requested DMA memory size "
17470 "(%d)\n", alloclen, length);
17471 status = -ENOMEM;
17472 goto out;
17477 rq_create = mbox->sge_array->addr[0];
17478 shdr = (union lpfc_sli4_cfg_shdr *)&rq_create->cfg_shdr;
17480 bf_set(lpfc_mbox_hdr_version, &shdr->request, LPFC_Q_CREATE_VERSION_2);
17481 cnt = 0;
17483 for (idx = 0; idx < numrq; idx++) {
17484 hrq = hrqp[idx];
17485 drq = drqp[idx];
17486 cq = cqp[idx];
17488 /* sanity check on queue memory */
17489 if (!hrq || !drq || !cq) {
17490 status = -ENODEV;
17491 goto out;
17494 if (hrq->entry_count != drq->entry_count) {
17495 status = -EINVAL;
17496 goto out;
17499 if (idx == 0) {
17500 bf_set(lpfc_mbx_rq_create_num_pages,
17501 &rq_create->u.request,
17502 hrq->page_count);
17503 bf_set(lpfc_mbx_rq_create_rq_cnt,
17504 &rq_create->u.request, (numrq * 2));
17505 bf_set(lpfc_mbx_rq_create_dnb, &rq_create->u.request,
17507 bf_set(lpfc_rq_context_base_cq,
17508 &rq_create->u.request.context,
17509 cq->queue_id);
17510 bf_set(lpfc_rq_context_data_size,
17511 &rq_create->u.request.context,
17512 LPFC_NVMET_DATA_BUF_SIZE);
17513 bf_set(lpfc_rq_context_hdr_size,
17514 &rq_create->u.request.context,
17515 LPFC_HDR_BUF_SIZE);
17516 bf_set(lpfc_rq_context_rqe_count_1,
17517 &rq_create->u.request.context,
17518 hrq->entry_count);
17519 bf_set(lpfc_rq_context_rqe_size,
17520 &rq_create->u.request.context,
17521 LPFC_RQE_SIZE_8);
17522 bf_set(lpfc_rq_context_page_size,
17523 &rq_create->u.request.context,
17524 (PAGE_SIZE/SLI4_PAGE_SIZE));
17526 rc = 0;
17527 list_for_each_entry(dmabuf, &hrq->page_list, list) {
17528 memset(dmabuf->virt, 0, hw_page_size);
17529 cnt = page_idx + dmabuf->buffer_tag;
17530 rq_create->u.request.page[cnt].addr_lo =
17531 putPaddrLow(dmabuf->phys);
17532 rq_create->u.request.page[cnt].addr_hi =
17533 putPaddrHigh(dmabuf->phys);
17534 rc++;
17536 page_idx += rc;
17538 rc = 0;
17539 list_for_each_entry(dmabuf, &drq->page_list, list) {
17540 memset(dmabuf->virt, 0, hw_page_size);
17541 cnt = page_idx + dmabuf->buffer_tag;
17542 rq_create->u.request.page[cnt].addr_lo =
17543 putPaddrLow(dmabuf->phys);
17544 rq_create->u.request.page[cnt].addr_hi =
17545 putPaddrHigh(dmabuf->phys);
17546 rc++;
17548 page_idx += rc;
17550 hrq->db_format = LPFC_DB_RING_FORMAT;
17551 hrq->db_regaddr = phba->sli4_hba.RQDBregaddr;
17552 hrq->type = LPFC_HRQ;
17553 hrq->assoc_qid = cq->queue_id;
17554 hrq->subtype = subtype;
17555 hrq->host_index = 0;
17556 hrq->hba_index = 0;
17557 hrq->notify_interval = LPFC_RQ_NOTIFY_INTRVL;
17559 drq->db_format = LPFC_DB_RING_FORMAT;
17560 drq->db_regaddr = phba->sli4_hba.RQDBregaddr;
17561 drq->type = LPFC_DRQ;
17562 drq->assoc_qid = cq->queue_id;
17563 drq->subtype = subtype;
17564 drq->host_index = 0;
17565 drq->hba_index = 0;
17566 drq->notify_interval = LPFC_RQ_NOTIFY_INTRVL;
17568 list_add_tail(&hrq->list, &cq->child_list);
17569 list_add_tail(&drq->list, &cq->child_list);
17572 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
17573 /* The IOCTL status is embedded in the mailbox subheader. */
17574 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17575 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17576 if (shdr_status || shdr_add_status || rc) {
17577 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17578 "3120 RQ_CREATE mailbox failed with "
17579 "status x%x add_status x%x, mbx status x%x\n",
17580 shdr_status, shdr_add_status, rc);
17581 status = -ENXIO;
17582 goto out;
17584 rc = bf_get(lpfc_mbx_rq_create_q_id, &rq_create->u.response);
17585 if (rc == 0xFFFF) {
17586 status = -ENXIO;
17587 goto out;
17590 /* Initialize all RQs with associated queue id */
17591 for (idx = 0; idx < numrq; idx++) {
17592 hrq = hrqp[idx];
17593 hrq->queue_id = rc + (2 * idx);
17594 drq = drqp[idx];
17595 drq->queue_id = rc + (2 * idx) + 1;
17598 out:
17599 lpfc_sli4_mbox_cmd_free(phba, mbox);
17600 return status;
17604 * lpfc_eq_destroy - Destroy an event Queue on the HBA
17605 * @phba: HBA structure that indicates port to destroy a queue on.
17606 * @eq: The queue structure associated with the queue to destroy.
17608 * This function destroys a queue, as detailed in @eq by sending an mailbox
17609 * command, specific to the type of queue, to the HBA.
17611 * The @eq struct is used to get the queue ID of the queue to destroy.
17613 * On success this function will return a zero. If the queue destroy mailbox
17614 * command fails this function will return -ENXIO.
17617 lpfc_eq_destroy(struct lpfc_hba *phba, struct lpfc_queue *eq)
17619 LPFC_MBOXQ_t *mbox;
17620 int rc, length, status = 0;
17621 uint32_t shdr_status, shdr_add_status;
17622 union lpfc_sli4_cfg_shdr *shdr;
17624 /* sanity check on queue memory */
17625 if (!eq)
17626 return -ENODEV;
17628 mbox = mempool_alloc(eq->phba->mbox_mem_pool, GFP_KERNEL);
17629 if (!mbox)
17630 return -ENOMEM;
17631 length = (sizeof(struct lpfc_mbx_eq_destroy) -
17632 sizeof(struct lpfc_sli4_cfg_mhdr));
17633 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
17634 LPFC_MBOX_OPCODE_EQ_DESTROY,
17635 length, LPFC_SLI4_MBX_EMBED);
17636 bf_set(lpfc_mbx_eq_destroy_q_id, &mbox->u.mqe.un.eq_destroy.u.request,
17637 eq->queue_id);
17638 mbox->vport = eq->phba->pport;
17639 mbox->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
17641 rc = lpfc_sli_issue_mbox(eq->phba, mbox, MBX_POLL);
17642 /* The IOCTL status is embedded in the mailbox subheader. */
17643 shdr = (union lpfc_sli4_cfg_shdr *)
17644 &mbox->u.mqe.un.eq_destroy.header.cfg_shdr;
17645 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17646 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17647 if (shdr_status || shdr_add_status || rc) {
17648 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17649 "2505 EQ_DESTROY mailbox failed with "
17650 "status x%x add_status x%x, mbx status x%x\n",
17651 shdr_status, shdr_add_status, rc);
17652 status = -ENXIO;
17655 /* Remove eq from any list */
17656 list_del_init(&eq->list);
17657 mempool_free(mbox, eq->phba->mbox_mem_pool);
17658 return status;
17662 * lpfc_cq_destroy - Destroy a Completion Queue on the HBA
17663 * @phba: HBA structure that indicates port to destroy a queue on.
17664 * @cq: The queue structure associated with the queue to destroy.
17666 * This function destroys a queue, as detailed in @cq by sending an mailbox
17667 * command, specific to the type of queue, to the HBA.
17669 * The @cq struct is used to get the queue ID of the queue to destroy.
17671 * On success this function will return a zero. If the queue destroy mailbox
17672 * command fails this function will return -ENXIO.
17675 lpfc_cq_destroy(struct lpfc_hba *phba, struct lpfc_queue *cq)
17677 LPFC_MBOXQ_t *mbox;
17678 int rc, length, status = 0;
17679 uint32_t shdr_status, shdr_add_status;
17680 union lpfc_sli4_cfg_shdr *shdr;
17682 /* sanity check on queue memory */
17683 if (!cq)
17684 return -ENODEV;
17685 mbox = mempool_alloc(cq->phba->mbox_mem_pool, GFP_KERNEL);
17686 if (!mbox)
17687 return -ENOMEM;
17688 length = (sizeof(struct lpfc_mbx_cq_destroy) -
17689 sizeof(struct lpfc_sli4_cfg_mhdr));
17690 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
17691 LPFC_MBOX_OPCODE_CQ_DESTROY,
17692 length, LPFC_SLI4_MBX_EMBED);
17693 bf_set(lpfc_mbx_cq_destroy_q_id, &mbox->u.mqe.un.cq_destroy.u.request,
17694 cq->queue_id);
17695 mbox->vport = cq->phba->pport;
17696 mbox->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
17697 rc = lpfc_sli_issue_mbox(cq->phba, mbox, MBX_POLL);
17698 /* The IOCTL status is embedded in the mailbox subheader. */
17699 shdr = (union lpfc_sli4_cfg_shdr *)
17700 &mbox->u.mqe.un.wq_create.header.cfg_shdr;
17701 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17702 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17703 if (shdr_status || shdr_add_status || rc) {
17704 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17705 "2506 CQ_DESTROY mailbox failed with "
17706 "status x%x add_status x%x, mbx status x%x\n",
17707 shdr_status, shdr_add_status, rc);
17708 status = -ENXIO;
17710 /* Remove cq from any list */
17711 list_del_init(&cq->list);
17712 mempool_free(mbox, cq->phba->mbox_mem_pool);
17713 return status;
17717 * lpfc_mq_destroy - Destroy a Mailbox Queue on the HBA
17718 * @phba: HBA structure that indicates port to destroy a queue on.
17719 * @mq: The queue structure associated with the queue to destroy.
17721 * This function destroys a queue, as detailed in @mq by sending an mailbox
17722 * command, specific to the type of queue, to the HBA.
17724 * The @mq struct is used to get the queue ID of the queue to destroy.
17726 * On success this function will return a zero. If the queue destroy mailbox
17727 * command fails this function will return -ENXIO.
17730 lpfc_mq_destroy(struct lpfc_hba *phba, struct lpfc_queue *mq)
17732 LPFC_MBOXQ_t *mbox;
17733 int rc, length, status = 0;
17734 uint32_t shdr_status, shdr_add_status;
17735 union lpfc_sli4_cfg_shdr *shdr;
17737 /* sanity check on queue memory */
17738 if (!mq)
17739 return -ENODEV;
17740 mbox = mempool_alloc(mq->phba->mbox_mem_pool, GFP_KERNEL);
17741 if (!mbox)
17742 return -ENOMEM;
17743 length = (sizeof(struct lpfc_mbx_mq_destroy) -
17744 sizeof(struct lpfc_sli4_cfg_mhdr));
17745 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
17746 LPFC_MBOX_OPCODE_MQ_DESTROY,
17747 length, LPFC_SLI4_MBX_EMBED);
17748 bf_set(lpfc_mbx_mq_destroy_q_id, &mbox->u.mqe.un.mq_destroy.u.request,
17749 mq->queue_id);
17750 mbox->vport = mq->phba->pport;
17751 mbox->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
17752 rc = lpfc_sli_issue_mbox(mq->phba, mbox, MBX_POLL);
17753 /* The IOCTL status is embedded in the mailbox subheader. */
17754 shdr = (union lpfc_sli4_cfg_shdr *)
17755 &mbox->u.mqe.un.mq_destroy.header.cfg_shdr;
17756 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17757 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17758 if (shdr_status || shdr_add_status || rc) {
17759 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17760 "2507 MQ_DESTROY mailbox failed with "
17761 "status x%x add_status x%x, mbx status x%x\n",
17762 shdr_status, shdr_add_status, rc);
17763 status = -ENXIO;
17765 /* Remove mq from any list */
17766 list_del_init(&mq->list);
17767 mempool_free(mbox, mq->phba->mbox_mem_pool);
17768 return status;
17772 * lpfc_wq_destroy - Destroy a Work Queue on the HBA
17773 * @phba: HBA structure that indicates port to destroy a queue on.
17774 * @wq: The queue structure associated with the queue to destroy.
17776 * This function destroys a queue, as detailed in @wq by sending an mailbox
17777 * command, specific to the type of queue, to the HBA.
17779 * The @wq struct is used to get the queue ID of the queue to destroy.
17781 * On success this function will return a zero. If the queue destroy mailbox
17782 * command fails this function will return -ENXIO.
17785 lpfc_wq_destroy(struct lpfc_hba *phba, struct lpfc_queue *wq)
17787 LPFC_MBOXQ_t *mbox;
17788 int rc, length, status = 0;
17789 uint32_t shdr_status, shdr_add_status;
17790 union lpfc_sli4_cfg_shdr *shdr;
17792 /* sanity check on queue memory */
17793 if (!wq)
17794 return -ENODEV;
17795 mbox = mempool_alloc(wq->phba->mbox_mem_pool, GFP_KERNEL);
17796 if (!mbox)
17797 return -ENOMEM;
17798 length = (sizeof(struct lpfc_mbx_wq_destroy) -
17799 sizeof(struct lpfc_sli4_cfg_mhdr));
17800 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
17801 LPFC_MBOX_OPCODE_FCOE_WQ_DESTROY,
17802 length, LPFC_SLI4_MBX_EMBED);
17803 bf_set(lpfc_mbx_wq_destroy_q_id, &mbox->u.mqe.un.wq_destroy.u.request,
17804 wq->queue_id);
17805 mbox->vport = wq->phba->pport;
17806 mbox->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
17807 rc = lpfc_sli_issue_mbox(wq->phba, mbox, MBX_POLL);
17808 shdr = (union lpfc_sli4_cfg_shdr *)
17809 &mbox->u.mqe.un.wq_destroy.header.cfg_shdr;
17810 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17811 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17812 if (shdr_status || shdr_add_status || rc) {
17813 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17814 "2508 WQ_DESTROY mailbox failed with "
17815 "status x%x add_status x%x, mbx status x%x\n",
17816 shdr_status, shdr_add_status, rc);
17817 status = -ENXIO;
17819 /* Remove wq from any list */
17820 list_del_init(&wq->list);
17821 kfree(wq->pring);
17822 wq->pring = NULL;
17823 mempool_free(mbox, wq->phba->mbox_mem_pool);
17824 return status;
17828 * lpfc_rq_destroy - Destroy a Receive Queue on the HBA
17829 * @phba: HBA structure that indicates port to destroy a queue on.
17830 * @hrq: The queue structure associated with the queue to destroy.
17831 * @drq: The queue structure associated with the queue to destroy.
17833 * This function destroys a queue, as detailed in @rq by sending an mailbox
17834 * command, specific to the type of queue, to the HBA.
17836 * The @rq struct is used to get the queue ID of the queue to destroy.
17838 * On success this function will return a zero. If the queue destroy mailbox
17839 * command fails this function will return -ENXIO.
17842 lpfc_rq_destroy(struct lpfc_hba *phba, struct lpfc_queue *hrq,
17843 struct lpfc_queue *drq)
17845 LPFC_MBOXQ_t *mbox;
17846 int rc, length, status = 0;
17847 uint32_t shdr_status, shdr_add_status;
17848 union lpfc_sli4_cfg_shdr *shdr;
17850 /* sanity check on queue memory */
17851 if (!hrq || !drq)
17852 return -ENODEV;
17853 mbox = mempool_alloc(hrq->phba->mbox_mem_pool, GFP_KERNEL);
17854 if (!mbox)
17855 return -ENOMEM;
17856 length = (sizeof(struct lpfc_mbx_rq_destroy) -
17857 sizeof(struct lpfc_sli4_cfg_mhdr));
17858 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
17859 LPFC_MBOX_OPCODE_FCOE_RQ_DESTROY,
17860 length, LPFC_SLI4_MBX_EMBED);
17861 bf_set(lpfc_mbx_rq_destroy_q_id, &mbox->u.mqe.un.rq_destroy.u.request,
17862 hrq->queue_id);
17863 mbox->vport = hrq->phba->pport;
17864 mbox->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
17865 rc = lpfc_sli_issue_mbox(hrq->phba, mbox, MBX_POLL);
17866 /* The IOCTL status is embedded in the mailbox subheader. */
17867 shdr = (union lpfc_sli4_cfg_shdr *)
17868 &mbox->u.mqe.un.rq_destroy.header.cfg_shdr;
17869 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17870 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17871 if (shdr_status || shdr_add_status || rc) {
17872 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17873 "2509 RQ_DESTROY mailbox failed with "
17874 "status x%x add_status x%x, mbx status x%x\n",
17875 shdr_status, shdr_add_status, rc);
17876 mempool_free(mbox, hrq->phba->mbox_mem_pool);
17877 return -ENXIO;
17879 bf_set(lpfc_mbx_rq_destroy_q_id, &mbox->u.mqe.un.rq_destroy.u.request,
17880 drq->queue_id);
17881 rc = lpfc_sli_issue_mbox(drq->phba, mbox, MBX_POLL);
17882 shdr = (union lpfc_sli4_cfg_shdr *)
17883 &mbox->u.mqe.un.rq_destroy.header.cfg_shdr;
17884 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17885 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17886 if (shdr_status || shdr_add_status || rc) {
17887 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17888 "2510 RQ_DESTROY mailbox failed with "
17889 "status x%x add_status x%x, mbx status x%x\n",
17890 shdr_status, shdr_add_status, rc);
17891 status = -ENXIO;
17893 list_del_init(&hrq->list);
17894 list_del_init(&drq->list);
17895 mempool_free(mbox, hrq->phba->mbox_mem_pool);
17896 return status;
17900 * lpfc_sli4_post_sgl - Post scatter gather list for an XRI to HBA
17901 * @phba: The virtual port for which this call being executed.
17902 * @pdma_phys_addr0: Physical address of the 1st SGL page.
17903 * @pdma_phys_addr1: Physical address of the 2nd SGL page.
17904 * @xritag: the xritag that ties this io to the SGL pages.
17906 * This routine will post the sgl pages for the IO that has the xritag
17907 * that is in the iocbq structure. The xritag is assigned during iocbq
17908 * creation and persists for as long as the driver is loaded.
17909 * if the caller has fewer than 256 scatter gather segments to map then
17910 * pdma_phys_addr1 should be 0.
17911 * If the caller needs to map more than 256 scatter gather segment then
17912 * pdma_phys_addr1 should be a valid physical address.
17913 * physical address for SGLs must be 64 byte aligned.
17914 * If you are going to map 2 SGL's then the first one must have 256 entries
17915 * the second sgl can have between 1 and 256 entries.
17917 * Return codes:
17918 * 0 - Success
17919 * -ENXIO, -ENOMEM - Failure
17922 lpfc_sli4_post_sgl(struct lpfc_hba *phba,
17923 dma_addr_t pdma_phys_addr0,
17924 dma_addr_t pdma_phys_addr1,
17925 uint16_t xritag)
17927 struct lpfc_mbx_post_sgl_pages *post_sgl_pages;
17928 LPFC_MBOXQ_t *mbox;
17929 int rc;
17930 uint32_t shdr_status, shdr_add_status;
17931 uint32_t mbox_tmo;
17932 union lpfc_sli4_cfg_shdr *shdr;
17934 if (xritag == NO_XRI) {
17935 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17936 "0364 Invalid param:\n");
17937 return -EINVAL;
17940 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
17941 if (!mbox)
17942 return -ENOMEM;
17944 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
17945 LPFC_MBOX_OPCODE_FCOE_POST_SGL_PAGES,
17946 sizeof(struct lpfc_mbx_post_sgl_pages) -
17947 sizeof(struct lpfc_sli4_cfg_mhdr), LPFC_SLI4_MBX_EMBED);
17949 post_sgl_pages = (struct lpfc_mbx_post_sgl_pages *)
17950 &mbox->u.mqe.un.post_sgl_pages;
17951 bf_set(lpfc_post_sgl_pages_xri, post_sgl_pages, xritag);
17952 bf_set(lpfc_post_sgl_pages_xricnt, post_sgl_pages, 1);
17954 post_sgl_pages->sgl_pg_pairs[0].sgl_pg0_addr_lo =
17955 cpu_to_le32(putPaddrLow(pdma_phys_addr0));
17956 post_sgl_pages->sgl_pg_pairs[0].sgl_pg0_addr_hi =
17957 cpu_to_le32(putPaddrHigh(pdma_phys_addr0));
17959 post_sgl_pages->sgl_pg_pairs[0].sgl_pg1_addr_lo =
17960 cpu_to_le32(putPaddrLow(pdma_phys_addr1));
17961 post_sgl_pages->sgl_pg_pairs[0].sgl_pg1_addr_hi =
17962 cpu_to_le32(putPaddrHigh(pdma_phys_addr1));
17963 if (!phba->sli4_hba.intr_enable)
17964 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
17965 else {
17966 mbox_tmo = lpfc_mbox_tmo_val(phba, mbox);
17967 rc = lpfc_sli_issue_mbox_wait(phba, mbox, mbox_tmo);
17969 /* The IOCTL status is embedded in the mailbox subheader. */
17970 shdr = (union lpfc_sli4_cfg_shdr *) &post_sgl_pages->header.cfg_shdr;
17971 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
17972 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
17973 if (!phba->sli4_hba.intr_enable)
17974 mempool_free(mbox, phba->mbox_mem_pool);
17975 else if (rc != MBX_TIMEOUT)
17976 mempool_free(mbox, phba->mbox_mem_pool);
17977 if (shdr_status || shdr_add_status || rc) {
17978 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
17979 "2511 POST_SGL mailbox failed with "
17980 "status x%x add_status x%x, mbx status x%x\n",
17981 shdr_status, shdr_add_status, rc);
17983 return 0;
17987 * lpfc_sli4_alloc_xri - Get an available rpi in the device's range
17988 * @phba: pointer to lpfc hba data structure.
17990 * This routine is invoked to post rpi header templates to the
17991 * HBA consistent with the SLI-4 interface spec. This routine
17992 * posts a SLI4_PAGE_SIZE memory region to the port to hold up to
17993 * SLI4_PAGE_SIZE modulo 64 rpi context headers.
17995 * Returns
17996 * A nonzero rpi defined as rpi_base <= rpi < max_rpi if successful
17997 * LPFC_RPI_ALLOC_ERROR if no rpis are available.
17999 static uint16_t
18000 lpfc_sli4_alloc_xri(struct lpfc_hba *phba)
18002 unsigned long xri;
18005 * Fetch the next logical xri. Because this index is logical,
18006 * the driver starts at 0 each time.
18008 spin_lock_irq(&phba->hbalock);
18009 xri = find_first_zero_bit(phba->sli4_hba.xri_bmask,
18010 phba->sli4_hba.max_cfg_param.max_xri);
18011 if (xri >= phba->sli4_hba.max_cfg_param.max_xri) {
18012 spin_unlock_irq(&phba->hbalock);
18013 return NO_XRI;
18014 } else {
18015 set_bit(xri, phba->sli4_hba.xri_bmask);
18016 phba->sli4_hba.max_cfg_param.xri_used++;
18018 spin_unlock_irq(&phba->hbalock);
18019 return xri;
18023 * __lpfc_sli4_free_xri - Release an xri for reuse.
18024 * @phba: pointer to lpfc hba data structure.
18025 * @xri: xri to release.
18027 * This routine is invoked to release an xri to the pool of
18028 * available rpis maintained by the driver.
18030 static void
18031 __lpfc_sli4_free_xri(struct lpfc_hba *phba, int xri)
18033 if (test_and_clear_bit(xri, phba->sli4_hba.xri_bmask)) {
18034 phba->sli4_hba.max_cfg_param.xri_used--;
18039 * lpfc_sli4_free_xri - Release an xri for reuse.
18040 * @phba: pointer to lpfc hba data structure.
18041 * @xri: xri to release.
18043 * This routine is invoked to release an xri to the pool of
18044 * available rpis maintained by the driver.
18046 void
18047 lpfc_sli4_free_xri(struct lpfc_hba *phba, int xri)
18049 spin_lock_irq(&phba->hbalock);
18050 __lpfc_sli4_free_xri(phba, xri);
18051 spin_unlock_irq(&phba->hbalock);
18055 * lpfc_sli4_next_xritag - Get an xritag for the io
18056 * @phba: Pointer to HBA context object.
18058 * This function gets an xritag for the iocb. If there is no unused xritag
18059 * it will return 0xffff.
18060 * The function returns the allocated xritag if successful, else returns zero.
18061 * Zero is not a valid xritag.
18062 * The caller is not required to hold any lock.
18064 uint16_t
18065 lpfc_sli4_next_xritag(struct lpfc_hba *phba)
18067 uint16_t xri_index;
18069 xri_index = lpfc_sli4_alloc_xri(phba);
18070 if (xri_index == NO_XRI)
18071 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
18072 "2004 Failed to allocate XRI.last XRITAG is %d"
18073 " Max XRI is %d, Used XRI is %d\n",
18074 xri_index,
18075 phba->sli4_hba.max_cfg_param.max_xri,
18076 phba->sli4_hba.max_cfg_param.xri_used);
18077 return xri_index;
18081 * lpfc_sli4_post_sgl_list - post a block of ELS sgls to the port.
18082 * @phba: pointer to lpfc hba data structure.
18083 * @post_sgl_list: pointer to els sgl entry list.
18084 * @post_cnt: number of els sgl entries on the list.
18086 * This routine is invoked to post a block of driver's sgl pages to the
18087 * HBA using non-embedded mailbox command. No Lock is held. This routine
18088 * is only called when the driver is loading and after all IO has been
18089 * stopped.
18091 static int
18092 lpfc_sli4_post_sgl_list(struct lpfc_hba *phba,
18093 struct list_head *post_sgl_list,
18094 int post_cnt)
18096 struct lpfc_sglq *sglq_entry = NULL, *sglq_next = NULL;
18097 struct lpfc_mbx_post_uembed_sgl_page1 *sgl;
18098 struct sgl_page_pairs *sgl_pg_pairs;
18099 void *viraddr;
18100 LPFC_MBOXQ_t *mbox;
18101 uint32_t reqlen, alloclen, pg_pairs;
18102 uint32_t mbox_tmo;
18103 uint16_t xritag_start = 0;
18104 int rc = 0;
18105 uint32_t shdr_status, shdr_add_status;
18106 union lpfc_sli4_cfg_shdr *shdr;
18108 reqlen = post_cnt * sizeof(struct sgl_page_pairs) +
18109 sizeof(union lpfc_sli4_cfg_shdr) + sizeof(uint32_t);
18110 if (reqlen > SLI4_PAGE_SIZE) {
18111 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
18112 "2559 Block sgl registration required DMA "
18113 "size (%d) great than a page\n", reqlen);
18114 return -ENOMEM;
18117 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
18118 if (!mbox)
18119 return -ENOMEM;
18121 /* Allocate DMA memory and set up the non-embedded mailbox command */
18122 alloclen = lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
18123 LPFC_MBOX_OPCODE_FCOE_POST_SGL_PAGES, reqlen,
18124 LPFC_SLI4_MBX_NEMBED);
18126 if (alloclen < reqlen) {
18127 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
18128 "0285 Allocated DMA memory size (%d) is "
18129 "less than the requested DMA memory "
18130 "size (%d)\n", alloclen, reqlen);
18131 lpfc_sli4_mbox_cmd_free(phba, mbox);
18132 return -ENOMEM;
18134 /* Set up the SGL pages in the non-embedded DMA pages */
18135 viraddr = mbox->sge_array->addr[0];
18136 sgl = (struct lpfc_mbx_post_uembed_sgl_page1 *)viraddr;
18137 sgl_pg_pairs = &sgl->sgl_pg_pairs;
18139 pg_pairs = 0;
18140 list_for_each_entry_safe(sglq_entry, sglq_next, post_sgl_list, list) {
18141 /* Set up the sge entry */
18142 sgl_pg_pairs->sgl_pg0_addr_lo =
18143 cpu_to_le32(putPaddrLow(sglq_entry->phys));
18144 sgl_pg_pairs->sgl_pg0_addr_hi =
18145 cpu_to_le32(putPaddrHigh(sglq_entry->phys));
18146 sgl_pg_pairs->sgl_pg1_addr_lo =
18147 cpu_to_le32(putPaddrLow(0));
18148 sgl_pg_pairs->sgl_pg1_addr_hi =
18149 cpu_to_le32(putPaddrHigh(0));
18151 /* Keep the first xritag on the list */
18152 if (pg_pairs == 0)
18153 xritag_start = sglq_entry->sli4_xritag;
18154 sgl_pg_pairs++;
18155 pg_pairs++;
18158 /* Complete initialization and perform endian conversion. */
18159 bf_set(lpfc_post_sgl_pages_xri, sgl, xritag_start);
18160 bf_set(lpfc_post_sgl_pages_xricnt, sgl, post_cnt);
18161 sgl->word0 = cpu_to_le32(sgl->word0);
18163 if (!phba->sli4_hba.intr_enable)
18164 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
18165 else {
18166 mbox_tmo = lpfc_mbox_tmo_val(phba, mbox);
18167 rc = lpfc_sli_issue_mbox_wait(phba, mbox, mbox_tmo);
18169 shdr = (union lpfc_sli4_cfg_shdr *) &sgl->cfg_shdr;
18170 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
18171 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
18172 if (!phba->sli4_hba.intr_enable)
18173 lpfc_sli4_mbox_cmd_free(phba, mbox);
18174 else if (rc != MBX_TIMEOUT)
18175 lpfc_sli4_mbox_cmd_free(phba, mbox);
18176 if (shdr_status || shdr_add_status || rc) {
18177 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
18178 "2513 POST_SGL_BLOCK mailbox command failed "
18179 "status x%x add_status x%x mbx status x%x\n",
18180 shdr_status, shdr_add_status, rc);
18181 rc = -ENXIO;
18183 return rc;
18187 * lpfc_sli4_post_io_sgl_block - post a block of nvme sgl list to firmware
18188 * @phba: pointer to lpfc hba data structure.
18189 * @nblist: pointer to nvme buffer list.
18190 * @count: number of scsi buffers on the list.
18192 * This routine is invoked to post a block of @count scsi sgl pages from a
18193 * SCSI buffer list @nblist to the HBA using non-embedded mailbox command.
18194 * No Lock is held.
18197 static int
18198 lpfc_sli4_post_io_sgl_block(struct lpfc_hba *phba, struct list_head *nblist,
18199 int count)
18201 struct lpfc_io_buf *lpfc_ncmd;
18202 struct lpfc_mbx_post_uembed_sgl_page1 *sgl;
18203 struct sgl_page_pairs *sgl_pg_pairs;
18204 void *viraddr;
18205 LPFC_MBOXQ_t *mbox;
18206 uint32_t reqlen, alloclen, pg_pairs;
18207 uint32_t mbox_tmo;
18208 uint16_t xritag_start = 0;
18209 int rc = 0;
18210 uint32_t shdr_status, shdr_add_status;
18211 dma_addr_t pdma_phys_bpl1;
18212 union lpfc_sli4_cfg_shdr *shdr;
18214 /* Calculate the requested length of the dma memory */
18215 reqlen = count * sizeof(struct sgl_page_pairs) +
18216 sizeof(union lpfc_sli4_cfg_shdr) + sizeof(uint32_t);
18217 if (reqlen > SLI4_PAGE_SIZE) {
18218 lpfc_printf_log(phba, KERN_WARNING, LOG_INIT,
18219 "6118 Block sgl registration required DMA "
18220 "size (%d) great than a page\n", reqlen);
18221 return -ENOMEM;
18223 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
18224 if (!mbox) {
18225 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
18226 "6119 Failed to allocate mbox cmd memory\n");
18227 return -ENOMEM;
18230 /* Allocate DMA memory and set up the non-embedded mailbox command */
18231 alloclen = lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
18232 LPFC_MBOX_OPCODE_FCOE_POST_SGL_PAGES,
18233 reqlen, LPFC_SLI4_MBX_NEMBED);
18235 if (alloclen < reqlen) {
18236 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
18237 "6120 Allocated DMA memory size (%d) is "
18238 "less than the requested DMA memory "
18239 "size (%d)\n", alloclen, reqlen);
18240 lpfc_sli4_mbox_cmd_free(phba, mbox);
18241 return -ENOMEM;
18244 /* Get the first SGE entry from the non-embedded DMA memory */
18245 viraddr = mbox->sge_array->addr[0];
18247 /* Set up the SGL pages in the non-embedded DMA pages */
18248 sgl = (struct lpfc_mbx_post_uembed_sgl_page1 *)viraddr;
18249 sgl_pg_pairs = &sgl->sgl_pg_pairs;
18251 pg_pairs = 0;
18252 list_for_each_entry(lpfc_ncmd, nblist, list) {
18253 /* Set up the sge entry */
18254 sgl_pg_pairs->sgl_pg0_addr_lo =
18255 cpu_to_le32(putPaddrLow(lpfc_ncmd->dma_phys_sgl));
18256 sgl_pg_pairs->sgl_pg0_addr_hi =
18257 cpu_to_le32(putPaddrHigh(lpfc_ncmd->dma_phys_sgl));
18258 if (phba->cfg_sg_dma_buf_size > SGL_PAGE_SIZE)
18259 pdma_phys_bpl1 = lpfc_ncmd->dma_phys_sgl +
18260 SGL_PAGE_SIZE;
18261 else
18262 pdma_phys_bpl1 = 0;
18263 sgl_pg_pairs->sgl_pg1_addr_lo =
18264 cpu_to_le32(putPaddrLow(pdma_phys_bpl1));
18265 sgl_pg_pairs->sgl_pg1_addr_hi =
18266 cpu_to_le32(putPaddrHigh(pdma_phys_bpl1));
18267 /* Keep the first xritag on the list */
18268 if (pg_pairs == 0)
18269 xritag_start = lpfc_ncmd->cur_iocbq.sli4_xritag;
18270 sgl_pg_pairs++;
18271 pg_pairs++;
18273 bf_set(lpfc_post_sgl_pages_xri, sgl, xritag_start);
18274 bf_set(lpfc_post_sgl_pages_xricnt, sgl, pg_pairs);
18275 /* Perform endian conversion if necessary */
18276 sgl->word0 = cpu_to_le32(sgl->word0);
18278 if (!phba->sli4_hba.intr_enable) {
18279 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
18280 } else {
18281 mbox_tmo = lpfc_mbox_tmo_val(phba, mbox);
18282 rc = lpfc_sli_issue_mbox_wait(phba, mbox, mbox_tmo);
18284 shdr = (union lpfc_sli4_cfg_shdr *)&sgl->cfg_shdr;
18285 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
18286 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
18287 if (!phba->sli4_hba.intr_enable)
18288 lpfc_sli4_mbox_cmd_free(phba, mbox);
18289 else if (rc != MBX_TIMEOUT)
18290 lpfc_sli4_mbox_cmd_free(phba, mbox);
18291 if (shdr_status || shdr_add_status || rc) {
18292 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
18293 "6125 POST_SGL_BLOCK mailbox command failed "
18294 "status x%x add_status x%x mbx status x%x\n",
18295 shdr_status, shdr_add_status, rc);
18296 rc = -ENXIO;
18298 return rc;
18302 * lpfc_sli4_post_io_sgl_list - Post blocks of nvme buffer sgls from a list
18303 * @phba: pointer to lpfc hba data structure.
18304 * @post_nblist: pointer to the nvme buffer list.
18305 * @sb_count: number of nvme buffers.
18307 * This routine walks a list of nvme buffers that was passed in. It attempts
18308 * to construct blocks of nvme buffer sgls which contains contiguous xris and
18309 * uses the non-embedded SGL block post mailbox commands to post to the port.
18310 * For single NVME buffer sgl with non-contiguous xri, if any, it shall use
18311 * embedded SGL post mailbox command for posting. The @post_nblist passed in
18312 * must be local list, thus no lock is needed when manipulate the list.
18314 * Returns: 0 = failure, non-zero number of successfully posted buffers.
18317 lpfc_sli4_post_io_sgl_list(struct lpfc_hba *phba,
18318 struct list_head *post_nblist, int sb_count)
18320 struct lpfc_io_buf *lpfc_ncmd, *lpfc_ncmd_next;
18321 int status, sgl_size;
18322 int post_cnt = 0, block_cnt = 0, num_posting = 0, num_posted = 0;
18323 dma_addr_t pdma_phys_sgl1;
18324 int last_xritag = NO_XRI;
18325 int cur_xritag;
18326 LIST_HEAD(prep_nblist);
18327 LIST_HEAD(blck_nblist);
18328 LIST_HEAD(nvme_nblist);
18330 /* sanity check */
18331 if (sb_count <= 0)
18332 return -EINVAL;
18334 sgl_size = phba->cfg_sg_dma_buf_size;
18335 list_for_each_entry_safe(lpfc_ncmd, lpfc_ncmd_next, post_nblist, list) {
18336 list_del_init(&lpfc_ncmd->list);
18337 block_cnt++;
18338 if ((last_xritag != NO_XRI) &&
18339 (lpfc_ncmd->cur_iocbq.sli4_xritag != last_xritag + 1)) {
18340 /* a hole in xri block, form a sgl posting block */
18341 list_splice_init(&prep_nblist, &blck_nblist);
18342 post_cnt = block_cnt - 1;
18343 /* prepare list for next posting block */
18344 list_add_tail(&lpfc_ncmd->list, &prep_nblist);
18345 block_cnt = 1;
18346 } else {
18347 /* prepare list for next posting block */
18348 list_add_tail(&lpfc_ncmd->list, &prep_nblist);
18349 /* enough sgls for non-embed sgl mbox command */
18350 if (block_cnt == LPFC_NEMBED_MBOX_SGL_CNT) {
18351 list_splice_init(&prep_nblist, &blck_nblist);
18352 post_cnt = block_cnt;
18353 block_cnt = 0;
18356 num_posting++;
18357 last_xritag = lpfc_ncmd->cur_iocbq.sli4_xritag;
18359 /* end of repost sgl list condition for NVME buffers */
18360 if (num_posting == sb_count) {
18361 if (post_cnt == 0) {
18362 /* last sgl posting block */
18363 list_splice_init(&prep_nblist, &blck_nblist);
18364 post_cnt = block_cnt;
18365 } else if (block_cnt == 1) {
18366 /* last single sgl with non-contiguous xri */
18367 if (sgl_size > SGL_PAGE_SIZE)
18368 pdma_phys_sgl1 =
18369 lpfc_ncmd->dma_phys_sgl +
18370 SGL_PAGE_SIZE;
18371 else
18372 pdma_phys_sgl1 = 0;
18373 cur_xritag = lpfc_ncmd->cur_iocbq.sli4_xritag;
18374 status = lpfc_sli4_post_sgl(
18375 phba, lpfc_ncmd->dma_phys_sgl,
18376 pdma_phys_sgl1, cur_xritag);
18377 if (status) {
18378 /* Post error. Buffer unavailable. */
18379 lpfc_ncmd->flags |=
18380 LPFC_SBUF_NOT_POSTED;
18381 } else {
18382 /* Post success. Bffer available. */
18383 lpfc_ncmd->flags &=
18384 ~LPFC_SBUF_NOT_POSTED;
18385 lpfc_ncmd->status = IOSTAT_SUCCESS;
18386 num_posted++;
18388 /* success, put on NVME buffer sgl list */
18389 list_add_tail(&lpfc_ncmd->list, &nvme_nblist);
18393 /* continue until a nembed page worth of sgls */
18394 if (post_cnt == 0)
18395 continue;
18397 /* post block of NVME buffer list sgls */
18398 status = lpfc_sli4_post_io_sgl_block(phba, &blck_nblist,
18399 post_cnt);
18401 /* don't reset xirtag due to hole in xri block */
18402 if (block_cnt == 0)
18403 last_xritag = NO_XRI;
18405 /* reset NVME buffer post count for next round of posting */
18406 post_cnt = 0;
18408 /* put posted NVME buffer-sgl posted on NVME buffer sgl list */
18409 while (!list_empty(&blck_nblist)) {
18410 list_remove_head(&blck_nblist, lpfc_ncmd,
18411 struct lpfc_io_buf, list);
18412 if (status) {
18413 /* Post error. Mark buffer unavailable. */
18414 lpfc_ncmd->flags |= LPFC_SBUF_NOT_POSTED;
18415 } else {
18416 /* Post success, Mark buffer available. */
18417 lpfc_ncmd->flags &= ~LPFC_SBUF_NOT_POSTED;
18418 lpfc_ncmd->status = IOSTAT_SUCCESS;
18419 num_posted++;
18421 list_add_tail(&lpfc_ncmd->list, &nvme_nblist);
18424 /* Push NVME buffers with sgl posted to the available list */
18425 lpfc_io_buf_replenish(phba, &nvme_nblist);
18427 return num_posted;
18431 * lpfc_fc_frame_check - Check that this frame is a valid frame to handle
18432 * @phba: pointer to lpfc_hba struct that the frame was received on
18433 * @fc_hdr: A pointer to the FC Header data (In Big Endian Format)
18435 * This function checks the fields in the @fc_hdr to see if the FC frame is a
18436 * valid type of frame that the LPFC driver will handle. This function will
18437 * return a zero if the frame is a valid frame or a non zero value when the
18438 * frame does not pass the check.
18440 static int
18441 lpfc_fc_frame_check(struct lpfc_hba *phba, struct fc_frame_header *fc_hdr)
18443 /* make rctl_names static to save stack space */
18444 struct fc_vft_header *fc_vft_hdr;
18445 struct fc_app_header *fc_app_hdr;
18446 uint32_t *header = (uint32_t *) fc_hdr;
18448 #define FC_RCTL_MDS_DIAGS 0xF4
18450 switch (fc_hdr->fh_r_ctl) {
18451 case FC_RCTL_DD_UNCAT: /* uncategorized information */
18452 case FC_RCTL_DD_SOL_DATA: /* solicited data */
18453 case FC_RCTL_DD_UNSOL_CTL: /* unsolicited control */
18454 case FC_RCTL_DD_SOL_CTL: /* solicited control or reply */
18455 case FC_RCTL_DD_UNSOL_DATA: /* unsolicited data */
18456 case FC_RCTL_DD_DATA_DESC: /* data descriptor */
18457 case FC_RCTL_DD_UNSOL_CMD: /* unsolicited command */
18458 case FC_RCTL_DD_CMD_STATUS: /* command status */
18459 case FC_RCTL_ELS_REQ: /* extended link services request */
18460 case FC_RCTL_ELS_REP: /* extended link services reply */
18461 case FC_RCTL_ELS4_REQ: /* FC-4 ELS request */
18462 case FC_RCTL_ELS4_REP: /* FC-4 ELS reply */
18463 case FC_RCTL_BA_ABTS: /* basic link service abort */
18464 case FC_RCTL_BA_RMC: /* remove connection */
18465 case FC_RCTL_BA_ACC: /* basic accept */
18466 case FC_RCTL_BA_RJT: /* basic reject */
18467 case FC_RCTL_BA_PRMT:
18468 case FC_RCTL_ACK_1: /* acknowledge_1 */
18469 case FC_RCTL_ACK_0: /* acknowledge_0 */
18470 case FC_RCTL_P_RJT: /* port reject */
18471 case FC_RCTL_F_RJT: /* fabric reject */
18472 case FC_RCTL_P_BSY: /* port busy */
18473 case FC_RCTL_F_BSY: /* fabric busy to data frame */
18474 case FC_RCTL_F_BSYL: /* fabric busy to link control frame */
18475 case FC_RCTL_LCR: /* link credit reset */
18476 case FC_RCTL_MDS_DIAGS: /* MDS Diagnostics */
18477 case FC_RCTL_END: /* end */
18478 break;
18479 case FC_RCTL_VFTH: /* Virtual Fabric tagging Header */
18480 fc_vft_hdr = (struct fc_vft_header *)fc_hdr;
18481 fc_hdr = &((struct fc_frame_header *)fc_vft_hdr)[1];
18482 return lpfc_fc_frame_check(phba, fc_hdr);
18483 case FC_RCTL_BA_NOP: /* basic link service NOP */
18484 default:
18485 goto drop;
18488 switch (fc_hdr->fh_type) {
18489 case FC_TYPE_BLS:
18490 case FC_TYPE_ELS:
18491 case FC_TYPE_FCP:
18492 case FC_TYPE_CT:
18493 case FC_TYPE_NVME:
18494 break;
18495 case FC_TYPE_IP:
18496 case FC_TYPE_ILS:
18497 default:
18498 goto drop;
18501 if (unlikely(phba->link_flag == LS_LOOPBACK_MODE &&
18502 phba->cfg_vmid_app_header)) {
18503 /* Application header is 16B device header */
18504 if (fc_hdr->fh_df_ctl & LPFC_FC_16B_DEVICE_HEADER) {
18505 fc_app_hdr = (struct fc_app_header *) (fc_hdr + 1);
18506 if (be32_to_cpu(fc_app_hdr->src_app_id) !=
18507 LOOPBACK_SRC_APPID) {
18508 lpfc_printf_log(phba, KERN_WARNING,
18509 LOG_ELS | LOG_LIBDFC,
18510 "1932 Loopback src app id "
18511 "not matched, app_id:x%x\n",
18512 be32_to_cpu(fc_app_hdr->src_app_id));
18514 goto drop;
18516 } else {
18517 lpfc_printf_log(phba, KERN_WARNING,
18518 LOG_ELS | LOG_LIBDFC,
18519 "1933 Loopback df_ctl bit not set, "
18520 "df_ctl:x%x\n",
18521 fc_hdr->fh_df_ctl);
18523 goto drop;
18527 lpfc_printf_log(phba, KERN_INFO, LOG_ELS,
18528 "2538 Received frame rctl:x%x, type:x%x, "
18529 "frame Data:%08x %08x %08x %08x %08x %08x %08x\n",
18530 fc_hdr->fh_r_ctl, fc_hdr->fh_type,
18531 be32_to_cpu(header[0]), be32_to_cpu(header[1]),
18532 be32_to_cpu(header[2]), be32_to_cpu(header[3]),
18533 be32_to_cpu(header[4]), be32_to_cpu(header[5]),
18534 be32_to_cpu(header[6]));
18535 return 0;
18536 drop:
18537 lpfc_printf_log(phba, KERN_WARNING, LOG_ELS,
18538 "2539 Dropped frame rctl:x%x type:x%x\n",
18539 fc_hdr->fh_r_ctl, fc_hdr->fh_type);
18540 return 1;
18544 * lpfc_fc_hdr_get_vfi - Get the VFI from an FC frame
18545 * @fc_hdr: A pointer to the FC Header data (In Big Endian Format)
18547 * This function processes the FC header to retrieve the VFI from the VF
18548 * header, if one exists. This function will return the VFI if one exists
18549 * or 0 if no VSAN Header exists.
18551 static uint32_t
18552 lpfc_fc_hdr_get_vfi(struct fc_frame_header *fc_hdr)
18554 struct fc_vft_header *fc_vft_hdr = (struct fc_vft_header *)fc_hdr;
18556 if (fc_hdr->fh_r_ctl != FC_RCTL_VFTH)
18557 return 0;
18558 return bf_get(fc_vft_hdr_vf_id, fc_vft_hdr);
18562 * lpfc_fc_frame_to_vport - Finds the vport that a frame is destined to
18563 * @phba: Pointer to the HBA structure to search for the vport on
18564 * @fc_hdr: A pointer to the FC Header data (In Big Endian Format)
18565 * @fcfi: The FC Fabric ID that the frame came from
18566 * @did: Destination ID to match against
18568 * This function searches the @phba for a vport that matches the content of the
18569 * @fc_hdr passed in and the @fcfi. This function uses the @fc_hdr to fetch the
18570 * VFI, if the Virtual Fabric Tagging Header exists, and the DID. This function
18571 * returns the matching vport pointer or NULL if unable to match frame to a
18572 * vport.
18574 static struct lpfc_vport *
18575 lpfc_fc_frame_to_vport(struct lpfc_hba *phba, struct fc_frame_header *fc_hdr,
18576 uint16_t fcfi, uint32_t did)
18578 struct lpfc_vport **vports;
18579 struct lpfc_vport *vport = NULL;
18580 int i;
18582 if (did == Fabric_DID)
18583 return phba->pport;
18584 if (test_bit(FC_PT2PT, &phba->pport->fc_flag) &&
18585 phba->link_state != LPFC_HBA_READY)
18586 return phba->pport;
18588 vports = lpfc_create_vport_work_array(phba);
18589 if (vports != NULL) {
18590 for (i = 0; i <= phba->max_vpi && vports[i] != NULL; i++) {
18591 if (phba->fcf.fcfi == fcfi &&
18592 vports[i]->vfi == lpfc_fc_hdr_get_vfi(fc_hdr) &&
18593 vports[i]->fc_myDID == did) {
18594 vport = vports[i];
18595 break;
18599 lpfc_destroy_vport_work_array(phba, vports);
18600 return vport;
18604 * lpfc_update_rcv_time_stamp - Update vport's rcv seq time stamp
18605 * @vport: The vport to work on.
18607 * This function updates the receive sequence time stamp for this vport. The
18608 * receive sequence time stamp indicates the time that the last frame of the
18609 * the sequence that has been idle for the longest amount of time was received.
18610 * the driver uses this time stamp to indicate if any received sequences have
18611 * timed out.
18613 static void
18614 lpfc_update_rcv_time_stamp(struct lpfc_vport *vport)
18616 struct lpfc_dmabuf *h_buf;
18617 struct hbq_dmabuf *dmabuf = NULL;
18619 /* get the oldest sequence on the rcv list */
18620 h_buf = list_get_first(&vport->rcv_buffer_list,
18621 struct lpfc_dmabuf, list);
18622 if (!h_buf)
18623 return;
18624 dmabuf = container_of(h_buf, struct hbq_dmabuf, hbuf);
18625 vport->rcv_buffer_time_stamp = dmabuf->time_stamp;
18629 * lpfc_cleanup_rcv_buffers - Cleans up all outstanding receive sequences.
18630 * @vport: The vport that the received sequences were sent to.
18632 * This function cleans up all outstanding received sequences. This is called
18633 * by the driver when a link event or user action invalidates all the received
18634 * sequences.
18636 void
18637 lpfc_cleanup_rcv_buffers(struct lpfc_vport *vport)
18639 struct lpfc_dmabuf *h_buf, *hnext;
18640 struct lpfc_dmabuf *d_buf, *dnext;
18641 struct hbq_dmabuf *dmabuf = NULL;
18643 /* start with the oldest sequence on the rcv list */
18644 list_for_each_entry_safe(h_buf, hnext, &vport->rcv_buffer_list, list) {
18645 dmabuf = container_of(h_buf, struct hbq_dmabuf, hbuf);
18646 list_del_init(&dmabuf->hbuf.list);
18647 list_for_each_entry_safe(d_buf, dnext,
18648 &dmabuf->dbuf.list, list) {
18649 list_del_init(&d_buf->list);
18650 lpfc_in_buf_free(vport->phba, d_buf);
18652 lpfc_in_buf_free(vport->phba, &dmabuf->dbuf);
18657 * lpfc_rcv_seq_check_edtov - Cleans up timed out receive sequences.
18658 * @vport: The vport that the received sequences were sent to.
18660 * This function determines whether any received sequences have timed out by
18661 * first checking the vport's rcv_buffer_time_stamp. If this time_stamp
18662 * indicates that there is at least one timed out sequence this routine will
18663 * go through the received sequences one at a time from most inactive to most
18664 * active to determine which ones need to be cleaned up. Once it has determined
18665 * that a sequence needs to be cleaned up it will simply free up the resources
18666 * without sending an abort.
18668 void
18669 lpfc_rcv_seq_check_edtov(struct lpfc_vport *vport)
18671 struct lpfc_dmabuf *h_buf, *hnext;
18672 struct lpfc_dmabuf *d_buf, *dnext;
18673 struct hbq_dmabuf *dmabuf = NULL;
18674 unsigned long timeout;
18675 int abort_count = 0;
18677 timeout = (msecs_to_jiffies(vport->phba->fc_edtov) +
18678 vport->rcv_buffer_time_stamp);
18679 if (list_empty(&vport->rcv_buffer_list) ||
18680 time_before(jiffies, timeout))
18681 return;
18682 /* start with the oldest sequence on the rcv list */
18683 list_for_each_entry_safe(h_buf, hnext, &vport->rcv_buffer_list, list) {
18684 dmabuf = container_of(h_buf, struct hbq_dmabuf, hbuf);
18685 timeout = (msecs_to_jiffies(vport->phba->fc_edtov) +
18686 dmabuf->time_stamp);
18687 if (time_before(jiffies, timeout))
18688 break;
18689 abort_count++;
18690 list_del_init(&dmabuf->hbuf.list);
18691 list_for_each_entry_safe(d_buf, dnext,
18692 &dmabuf->dbuf.list, list) {
18693 list_del_init(&d_buf->list);
18694 lpfc_in_buf_free(vport->phba, d_buf);
18696 lpfc_in_buf_free(vport->phba, &dmabuf->dbuf);
18698 if (abort_count)
18699 lpfc_update_rcv_time_stamp(vport);
18703 * lpfc_fc_frame_add - Adds a frame to the vport's list of received sequences
18704 * @vport: pointer to a vitural port
18705 * @dmabuf: pointer to a dmabuf that describes the hdr and data of the FC frame
18707 * This function searches through the existing incomplete sequences that have
18708 * been sent to this @vport. If the frame matches one of the incomplete
18709 * sequences then the dbuf in the @dmabuf is added to the list of frames that
18710 * make up that sequence. If no sequence is found that matches this frame then
18711 * the function will add the hbuf in the @dmabuf to the @vport's rcv_buffer_list
18712 * This function returns a pointer to the first dmabuf in the sequence list that
18713 * the frame was linked to.
18715 static struct hbq_dmabuf *
18716 lpfc_fc_frame_add(struct lpfc_vport *vport, struct hbq_dmabuf *dmabuf)
18718 struct fc_frame_header *new_hdr;
18719 struct fc_frame_header *temp_hdr;
18720 struct lpfc_dmabuf *d_buf;
18721 struct lpfc_dmabuf *h_buf;
18722 struct hbq_dmabuf *seq_dmabuf = NULL;
18723 struct hbq_dmabuf *temp_dmabuf = NULL;
18724 uint8_t found = 0;
18726 INIT_LIST_HEAD(&dmabuf->dbuf.list);
18727 dmabuf->time_stamp = jiffies;
18728 new_hdr = (struct fc_frame_header *)dmabuf->hbuf.virt;
18730 /* Use the hdr_buf to find the sequence that this frame belongs to */
18731 list_for_each_entry(h_buf, &vport->rcv_buffer_list, list) {
18732 temp_hdr = (struct fc_frame_header *)h_buf->virt;
18733 if ((temp_hdr->fh_seq_id != new_hdr->fh_seq_id) ||
18734 (temp_hdr->fh_ox_id != new_hdr->fh_ox_id) ||
18735 (memcmp(&temp_hdr->fh_s_id, &new_hdr->fh_s_id, 3)))
18736 continue;
18737 /* found a pending sequence that matches this frame */
18738 seq_dmabuf = container_of(h_buf, struct hbq_dmabuf, hbuf);
18739 break;
18741 if (!seq_dmabuf) {
18743 * This indicates first frame received for this sequence.
18744 * Queue the buffer on the vport's rcv_buffer_list.
18746 list_add_tail(&dmabuf->hbuf.list, &vport->rcv_buffer_list);
18747 lpfc_update_rcv_time_stamp(vport);
18748 return dmabuf;
18750 temp_hdr = seq_dmabuf->hbuf.virt;
18751 if (be16_to_cpu(new_hdr->fh_seq_cnt) <
18752 be16_to_cpu(temp_hdr->fh_seq_cnt)) {
18753 list_del_init(&seq_dmabuf->hbuf.list);
18754 list_add_tail(&dmabuf->hbuf.list, &vport->rcv_buffer_list);
18755 list_add_tail(&dmabuf->dbuf.list, &seq_dmabuf->dbuf.list);
18756 lpfc_update_rcv_time_stamp(vport);
18757 return dmabuf;
18759 /* move this sequence to the tail to indicate a young sequence */
18760 list_move_tail(&seq_dmabuf->hbuf.list, &vport->rcv_buffer_list);
18761 seq_dmabuf->time_stamp = jiffies;
18762 lpfc_update_rcv_time_stamp(vport);
18763 if (list_empty(&seq_dmabuf->dbuf.list)) {
18764 list_add_tail(&dmabuf->dbuf.list, &seq_dmabuf->dbuf.list);
18765 return seq_dmabuf;
18767 /* find the correct place in the sequence to insert this frame */
18768 d_buf = list_entry(seq_dmabuf->dbuf.list.prev, typeof(*d_buf), list);
18769 while (!found) {
18770 temp_dmabuf = container_of(d_buf, struct hbq_dmabuf, dbuf);
18771 temp_hdr = (struct fc_frame_header *)temp_dmabuf->hbuf.virt;
18773 * If the frame's sequence count is greater than the frame on
18774 * the list then insert the frame right after this frame
18776 if (be16_to_cpu(new_hdr->fh_seq_cnt) >
18777 be16_to_cpu(temp_hdr->fh_seq_cnt)) {
18778 list_add(&dmabuf->dbuf.list, &temp_dmabuf->dbuf.list);
18779 found = 1;
18780 break;
18783 if (&d_buf->list == &seq_dmabuf->dbuf.list)
18784 break;
18785 d_buf = list_entry(d_buf->list.prev, typeof(*d_buf), list);
18788 if (found)
18789 return seq_dmabuf;
18790 return NULL;
18794 * lpfc_sli4_abort_partial_seq - Abort partially assembled unsol sequence
18795 * @vport: pointer to a vitural port
18796 * @dmabuf: pointer to a dmabuf that describes the FC sequence
18798 * This function tries to abort from the partially assembed sequence, described
18799 * by the information from basic abbort @dmabuf. It checks to see whether such
18800 * partially assembled sequence held by the driver. If so, it shall free up all
18801 * the frames from the partially assembled sequence.
18803 * Return
18804 * true -- if there is matching partially assembled sequence present and all
18805 * the frames freed with the sequence;
18806 * false -- if there is no matching partially assembled sequence present so
18807 * nothing got aborted in the lower layer driver
18809 static bool
18810 lpfc_sli4_abort_partial_seq(struct lpfc_vport *vport,
18811 struct hbq_dmabuf *dmabuf)
18813 struct fc_frame_header *new_hdr;
18814 struct fc_frame_header *temp_hdr;
18815 struct lpfc_dmabuf *d_buf, *n_buf, *h_buf;
18816 struct hbq_dmabuf *seq_dmabuf = NULL;
18818 /* Use the hdr_buf to find the sequence that matches this frame */
18819 INIT_LIST_HEAD(&dmabuf->dbuf.list);
18820 INIT_LIST_HEAD(&dmabuf->hbuf.list);
18821 new_hdr = (struct fc_frame_header *)dmabuf->hbuf.virt;
18822 list_for_each_entry(h_buf, &vport->rcv_buffer_list, list) {
18823 temp_hdr = (struct fc_frame_header *)h_buf->virt;
18824 if ((temp_hdr->fh_seq_id != new_hdr->fh_seq_id) ||
18825 (temp_hdr->fh_ox_id != new_hdr->fh_ox_id) ||
18826 (memcmp(&temp_hdr->fh_s_id, &new_hdr->fh_s_id, 3)))
18827 continue;
18828 /* found a pending sequence that matches this frame */
18829 seq_dmabuf = container_of(h_buf, struct hbq_dmabuf, hbuf);
18830 break;
18833 /* Free up all the frames from the partially assembled sequence */
18834 if (seq_dmabuf) {
18835 list_for_each_entry_safe(d_buf, n_buf,
18836 &seq_dmabuf->dbuf.list, list) {
18837 list_del_init(&d_buf->list);
18838 lpfc_in_buf_free(vport->phba, d_buf);
18840 return true;
18842 return false;
18846 * lpfc_sli4_abort_ulp_seq - Abort assembled unsol sequence from ulp
18847 * @vport: pointer to a vitural port
18848 * @dmabuf: pointer to a dmabuf that describes the FC sequence
18850 * This function tries to abort from the assembed sequence from upper level
18851 * protocol, described by the information from basic abbort @dmabuf. It
18852 * checks to see whether such pending context exists at upper level protocol.
18853 * If so, it shall clean up the pending context.
18855 * Return
18856 * true -- if there is matching pending context of the sequence cleaned
18857 * at ulp;
18858 * false -- if there is no matching pending context of the sequence present
18859 * at ulp.
18861 static bool
18862 lpfc_sli4_abort_ulp_seq(struct lpfc_vport *vport, struct hbq_dmabuf *dmabuf)
18864 struct lpfc_hba *phba = vport->phba;
18865 int handled;
18867 /* Accepting abort at ulp with SLI4 only */
18868 if (phba->sli_rev < LPFC_SLI_REV4)
18869 return false;
18871 /* Register all caring upper level protocols to attend abort */
18872 handled = lpfc_ct_handle_unsol_abort(phba, dmabuf);
18873 if (handled)
18874 return true;
18876 return false;
18880 * lpfc_sli4_seq_abort_rsp_cmpl - BLS ABORT RSP seq abort iocb complete handler
18881 * @phba: Pointer to HBA context object.
18882 * @cmd_iocbq: pointer to the command iocbq structure.
18883 * @rsp_iocbq: pointer to the response iocbq structure.
18885 * This function handles the sequence abort response iocb command complete
18886 * event. It properly releases the memory allocated to the sequence abort
18887 * accept iocb.
18889 static void
18890 lpfc_sli4_seq_abort_rsp_cmpl(struct lpfc_hba *phba,
18891 struct lpfc_iocbq *cmd_iocbq,
18892 struct lpfc_iocbq *rsp_iocbq)
18894 if (cmd_iocbq) {
18895 lpfc_nlp_put(cmd_iocbq->ndlp);
18896 lpfc_sli_release_iocbq(phba, cmd_iocbq);
18899 /* Failure means BLS ABORT RSP did not get delivered to remote node*/
18900 if (rsp_iocbq && rsp_iocbq->iocb.ulpStatus)
18901 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
18902 "3154 BLS ABORT RSP failed, data: x%x/x%x\n",
18903 get_job_ulpstatus(phba, rsp_iocbq),
18904 get_job_word4(phba, rsp_iocbq));
18908 * lpfc_sli4_xri_inrange - check xri is in range of xris owned by driver.
18909 * @phba: Pointer to HBA context object.
18910 * @xri: xri id in transaction.
18912 * This function validates the xri maps to the known range of XRIs allocated an
18913 * used by the driver.
18915 uint16_t
18916 lpfc_sli4_xri_inrange(struct lpfc_hba *phba,
18917 uint16_t xri)
18919 uint16_t i;
18921 for (i = 0; i < phba->sli4_hba.max_cfg_param.max_xri; i++) {
18922 if (xri == phba->sli4_hba.xri_ids[i])
18923 return i;
18925 return NO_XRI;
18929 * lpfc_sli4_seq_abort_rsp - bls rsp to sequence abort
18930 * @vport: pointer to a virtual port.
18931 * @fc_hdr: pointer to a FC frame header.
18932 * @aborted: was the partially assembled receive sequence successfully aborted
18934 * This function sends a basic response to a previous unsol sequence abort
18935 * event after aborting the sequence handling.
18937 void
18938 lpfc_sli4_seq_abort_rsp(struct lpfc_vport *vport,
18939 struct fc_frame_header *fc_hdr, bool aborted)
18941 struct lpfc_hba *phba = vport->phba;
18942 struct lpfc_iocbq *ctiocb = NULL;
18943 struct lpfc_nodelist *ndlp;
18944 uint16_t oxid, rxid, xri, lxri;
18945 uint32_t sid, fctl;
18946 union lpfc_wqe128 *icmd;
18947 int rc;
18949 if (!lpfc_is_link_up(phba))
18950 return;
18952 sid = sli4_sid_from_fc_hdr(fc_hdr);
18953 oxid = be16_to_cpu(fc_hdr->fh_ox_id);
18954 rxid = be16_to_cpu(fc_hdr->fh_rx_id);
18956 ndlp = lpfc_findnode_did(vport, sid);
18957 if (!ndlp) {
18958 ndlp = lpfc_nlp_init(vport, sid);
18959 if (!ndlp) {
18960 lpfc_printf_vlog(vport, KERN_WARNING, LOG_ELS,
18961 "1268 Failed to allocate ndlp for "
18962 "oxid:x%x SID:x%x\n", oxid, sid);
18963 return;
18965 /* Put ndlp onto vport node list */
18966 lpfc_enqueue_node(vport, ndlp);
18969 /* Allocate buffer for rsp iocb */
18970 ctiocb = lpfc_sli_get_iocbq(phba);
18971 if (!ctiocb)
18972 return;
18974 icmd = &ctiocb->wqe;
18976 /* Extract the F_CTL field from FC_HDR */
18977 fctl = sli4_fctl_from_fc_hdr(fc_hdr);
18979 ctiocb->ndlp = lpfc_nlp_get(ndlp);
18980 if (!ctiocb->ndlp) {
18981 lpfc_sli_release_iocbq(phba, ctiocb);
18982 return;
18985 ctiocb->vport = vport;
18986 ctiocb->cmd_cmpl = lpfc_sli4_seq_abort_rsp_cmpl;
18987 ctiocb->sli4_lxritag = NO_XRI;
18988 ctiocb->sli4_xritag = NO_XRI;
18989 ctiocb->abort_rctl = FC_RCTL_BA_ACC;
18991 if (fctl & FC_FC_EX_CTX)
18992 /* Exchange responder sent the abort so we
18993 * own the oxid.
18995 xri = oxid;
18996 else
18997 xri = rxid;
18998 lxri = lpfc_sli4_xri_inrange(phba, xri);
18999 if (lxri != NO_XRI)
19000 lpfc_set_rrq_active(phba, ndlp, lxri,
19001 (xri == oxid) ? rxid : oxid, 0);
19002 /* For BA_ABTS from exchange responder, if the logical xri with
19003 * the oxid maps to the FCP XRI range, the port no longer has
19004 * that exchange context, send a BLS_RJT. Override the IOCB for
19005 * a BA_RJT.
19007 if ((fctl & FC_FC_EX_CTX) &&
19008 (lxri > lpfc_sli4_get_iocb_cnt(phba))) {
19009 ctiocb->abort_rctl = FC_RCTL_BA_RJT;
19010 bf_set(xmit_bls_rsp64_rjt_vspec, &icmd->xmit_bls_rsp, 0);
19011 bf_set(xmit_bls_rsp64_rjt_expc, &icmd->xmit_bls_rsp,
19012 FC_BA_RJT_INV_XID);
19013 bf_set(xmit_bls_rsp64_rjt_rsnc, &icmd->xmit_bls_rsp,
19014 FC_BA_RJT_UNABLE);
19017 /* If BA_ABTS failed to abort a partially assembled receive sequence,
19018 * the driver no longer has that exchange, send a BLS_RJT. Override
19019 * the IOCB for a BA_RJT.
19021 if (aborted == false) {
19022 ctiocb->abort_rctl = FC_RCTL_BA_RJT;
19023 bf_set(xmit_bls_rsp64_rjt_vspec, &icmd->xmit_bls_rsp, 0);
19024 bf_set(xmit_bls_rsp64_rjt_expc, &icmd->xmit_bls_rsp,
19025 FC_BA_RJT_INV_XID);
19026 bf_set(xmit_bls_rsp64_rjt_rsnc, &icmd->xmit_bls_rsp,
19027 FC_BA_RJT_UNABLE);
19030 if (fctl & FC_FC_EX_CTX) {
19031 /* ABTS sent by responder to CT exchange, construction
19032 * of BA_ACC will use OX_ID from ABTS for the XRI_TAG
19033 * field and RX_ID from ABTS for RX_ID field.
19035 ctiocb->abort_bls = LPFC_ABTS_UNSOL_RSP;
19036 bf_set(xmit_bls_rsp64_rxid, &icmd->xmit_bls_rsp, rxid);
19037 } else {
19038 /* ABTS sent by initiator to CT exchange, construction
19039 * of BA_ACC will need to allocate a new XRI as for the
19040 * XRI_TAG field.
19042 ctiocb->abort_bls = LPFC_ABTS_UNSOL_INT;
19045 /* OX_ID is invariable to who sent ABTS to CT exchange */
19046 bf_set(xmit_bls_rsp64_oxid, &icmd->xmit_bls_rsp, oxid);
19047 bf_set(xmit_bls_rsp64_oxid, &icmd->xmit_bls_rsp, rxid);
19049 /* Use CT=VPI */
19050 bf_set(wqe_els_did, &icmd->xmit_bls_rsp.wqe_dest,
19051 ndlp->nlp_DID);
19052 bf_set(xmit_bls_rsp64_temprpi, &icmd->xmit_bls_rsp,
19053 phba->sli4_hba.rpi_ids[ndlp->nlp_rpi]);
19054 bf_set(wqe_cmnd, &icmd->generic.wqe_com, CMD_XMIT_BLS_RSP64_CX);
19056 /* Xmit CT abts response on exchange <xid> */
19057 lpfc_printf_vlog(vport, KERN_INFO, LOG_ELS,
19058 "1200 Send BLS cmd x%x on oxid x%x Data: x%x\n",
19059 ctiocb->abort_rctl, oxid, phba->link_state);
19061 rc = lpfc_sli_issue_iocb(phba, LPFC_ELS_RING, ctiocb, 0);
19062 if (rc == IOCB_ERROR) {
19063 lpfc_printf_vlog(vport, KERN_ERR, LOG_TRACE_EVENT,
19064 "2925 Failed to issue CT ABTS RSP x%x on "
19065 "xri x%x, Data x%x\n",
19066 ctiocb->abort_rctl, oxid,
19067 phba->link_state);
19068 lpfc_nlp_put(ndlp);
19069 ctiocb->ndlp = NULL;
19070 lpfc_sli_release_iocbq(phba, ctiocb);
19073 /* if only usage of this nodelist is BLS response, release initial ref
19074 * to free ndlp when transmit completes
19076 if (ndlp->nlp_state == NLP_STE_UNUSED_NODE &&
19077 !(ndlp->nlp_flag & NLP_DROPPED) &&
19078 !(ndlp->fc4_xpt_flags & (NVME_XPT_REGD | SCSI_XPT_REGD))) {
19079 ndlp->nlp_flag |= NLP_DROPPED;
19080 lpfc_nlp_put(ndlp);
19085 * lpfc_sli4_handle_unsol_abort - Handle sli-4 unsolicited abort event
19086 * @vport: Pointer to the vport on which this sequence was received
19087 * @dmabuf: pointer to a dmabuf that describes the FC sequence
19089 * This function handles an SLI-4 unsolicited abort event. If the unsolicited
19090 * receive sequence is only partially assembed by the driver, it shall abort
19091 * the partially assembled frames for the sequence. Otherwise, if the
19092 * unsolicited receive sequence has been completely assembled and passed to
19093 * the Upper Layer Protocol (ULP), it then mark the per oxid status for the
19094 * unsolicited sequence has been aborted. After that, it will issue a basic
19095 * accept to accept the abort.
19097 static void
19098 lpfc_sli4_handle_unsol_abort(struct lpfc_vport *vport,
19099 struct hbq_dmabuf *dmabuf)
19101 struct lpfc_hba *phba = vport->phba;
19102 struct fc_frame_header fc_hdr;
19103 uint32_t fctl;
19104 bool aborted;
19106 /* Make a copy of fc_hdr before the dmabuf being released */
19107 memcpy(&fc_hdr, dmabuf->hbuf.virt, sizeof(struct fc_frame_header));
19108 fctl = sli4_fctl_from_fc_hdr(&fc_hdr);
19110 if (fctl & FC_FC_EX_CTX) {
19111 /* ABTS by responder to exchange, no cleanup needed */
19112 aborted = true;
19113 } else {
19114 /* ABTS by initiator to exchange, need to do cleanup */
19115 aborted = lpfc_sli4_abort_partial_seq(vport, dmabuf);
19116 if (aborted == false)
19117 aborted = lpfc_sli4_abort_ulp_seq(vport, dmabuf);
19119 lpfc_in_buf_free(phba, &dmabuf->dbuf);
19121 if (phba->nvmet_support) {
19122 lpfc_nvmet_rcv_unsol_abort(vport, &fc_hdr);
19123 return;
19126 /* Respond with BA_ACC or BA_RJT accordingly */
19127 lpfc_sli4_seq_abort_rsp(vport, &fc_hdr, aborted);
19131 * lpfc_seq_complete - Indicates if a sequence is complete
19132 * @dmabuf: pointer to a dmabuf that describes the FC sequence
19134 * This function checks the sequence, starting with the frame described by
19135 * @dmabuf, to see if all the frames associated with this sequence are present.
19136 * the frames associated with this sequence are linked to the @dmabuf using the
19137 * dbuf list. This function looks for two major things. 1) That the first frame
19138 * has a sequence count of zero. 2) There is a frame with last frame of sequence
19139 * set. 3) That there are no holes in the sequence count. The function will
19140 * return 1 when the sequence is complete, otherwise it will return 0.
19142 static int
19143 lpfc_seq_complete(struct hbq_dmabuf *dmabuf)
19145 struct fc_frame_header *hdr;
19146 struct lpfc_dmabuf *d_buf;
19147 struct hbq_dmabuf *seq_dmabuf;
19148 uint32_t fctl;
19149 int seq_count = 0;
19151 hdr = (struct fc_frame_header *)dmabuf->hbuf.virt;
19152 /* make sure first fame of sequence has a sequence count of zero */
19153 if (hdr->fh_seq_cnt != seq_count)
19154 return 0;
19155 fctl = (hdr->fh_f_ctl[0] << 16 |
19156 hdr->fh_f_ctl[1] << 8 |
19157 hdr->fh_f_ctl[2]);
19158 /* If last frame of sequence we can return success. */
19159 if (fctl & FC_FC_END_SEQ)
19160 return 1;
19161 list_for_each_entry(d_buf, &dmabuf->dbuf.list, list) {
19162 seq_dmabuf = container_of(d_buf, struct hbq_dmabuf, dbuf);
19163 hdr = (struct fc_frame_header *)seq_dmabuf->hbuf.virt;
19164 /* If there is a hole in the sequence count then fail. */
19165 if (++seq_count != be16_to_cpu(hdr->fh_seq_cnt))
19166 return 0;
19167 fctl = (hdr->fh_f_ctl[0] << 16 |
19168 hdr->fh_f_ctl[1] << 8 |
19169 hdr->fh_f_ctl[2]);
19170 /* If last frame of sequence we can return success. */
19171 if (fctl & FC_FC_END_SEQ)
19172 return 1;
19174 return 0;
19178 * lpfc_prep_seq - Prep sequence for ULP processing
19179 * @vport: Pointer to the vport on which this sequence was received
19180 * @seq_dmabuf: pointer to a dmabuf that describes the FC sequence
19182 * This function takes a sequence, described by a list of frames, and creates
19183 * a list of iocbq structures to describe the sequence. This iocbq list will be
19184 * used to issue to the generic unsolicited sequence handler. This routine
19185 * returns a pointer to the first iocbq in the list. If the function is unable
19186 * to allocate an iocbq then it throw out the received frames that were not
19187 * able to be described and return a pointer to the first iocbq. If unable to
19188 * allocate any iocbqs (including the first) this function will return NULL.
19190 static struct lpfc_iocbq *
19191 lpfc_prep_seq(struct lpfc_vport *vport, struct hbq_dmabuf *seq_dmabuf)
19193 struct hbq_dmabuf *hbq_buf;
19194 struct lpfc_dmabuf *d_buf, *n_buf;
19195 struct lpfc_iocbq *first_iocbq, *iocbq;
19196 struct fc_frame_header *fc_hdr;
19197 uint32_t sid;
19198 uint32_t len, tot_len;
19200 fc_hdr = (struct fc_frame_header *)seq_dmabuf->hbuf.virt;
19201 /* remove from receive buffer list */
19202 list_del_init(&seq_dmabuf->hbuf.list);
19203 lpfc_update_rcv_time_stamp(vport);
19204 /* get the Remote Port's SID */
19205 sid = sli4_sid_from_fc_hdr(fc_hdr);
19206 tot_len = 0;
19207 /* Get an iocbq struct to fill in. */
19208 first_iocbq = lpfc_sli_get_iocbq(vport->phba);
19209 if (first_iocbq) {
19210 /* Initialize the first IOCB. */
19211 first_iocbq->wcqe_cmpl.total_data_placed = 0;
19212 bf_set(lpfc_wcqe_c_status, &first_iocbq->wcqe_cmpl,
19213 IOSTAT_SUCCESS);
19214 first_iocbq->vport = vport;
19216 /* Check FC Header to see what TYPE of frame we are rcv'ing */
19217 if (sli4_type_from_fc_hdr(fc_hdr) == FC_TYPE_ELS) {
19218 bf_set(els_rsp64_sid, &first_iocbq->wqe.xmit_els_rsp,
19219 sli4_did_from_fc_hdr(fc_hdr));
19222 bf_set(wqe_ctxt_tag, &first_iocbq->wqe.xmit_els_rsp.wqe_com,
19223 NO_XRI);
19224 bf_set(wqe_rcvoxid, &first_iocbq->wqe.xmit_els_rsp.wqe_com,
19225 be16_to_cpu(fc_hdr->fh_ox_id));
19227 /* put the first buffer into the first iocb */
19228 tot_len = bf_get(lpfc_rcqe_length,
19229 &seq_dmabuf->cq_event.cqe.rcqe_cmpl);
19231 first_iocbq->cmd_dmabuf = &seq_dmabuf->dbuf;
19232 first_iocbq->bpl_dmabuf = NULL;
19233 /* Keep track of the BDE count */
19234 first_iocbq->wcqe_cmpl.word3 = 1;
19236 if (tot_len > LPFC_DATA_BUF_SIZE)
19237 first_iocbq->wqe.gen_req.bde.tus.f.bdeSize =
19238 LPFC_DATA_BUF_SIZE;
19239 else
19240 first_iocbq->wqe.gen_req.bde.tus.f.bdeSize = tot_len;
19242 first_iocbq->wcqe_cmpl.total_data_placed = tot_len;
19243 bf_set(wqe_els_did, &first_iocbq->wqe.xmit_els_rsp.wqe_dest,
19244 sid);
19246 iocbq = first_iocbq;
19248 * Each IOCBq can have two Buffers assigned, so go through the list
19249 * of buffers for this sequence and save two buffers in each IOCBq
19251 list_for_each_entry_safe(d_buf, n_buf, &seq_dmabuf->dbuf.list, list) {
19252 if (!iocbq) {
19253 lpfc_in_buf_free(vport->phba, d_buf);
19254 continue;
19256 if (!iocbq->bpl_dmabuf) {
19257 iocbq->bpl_dmabuf = d_buf;
19258 iocbq->wcqe_cmpl.word3++;
19259 /* We need to get the size out of the right CQE */
19260 hbq_buf = container_of(d_buf, struct hbq_dmabuf, dbuf);
19261 len = bf_get(lpfc_rcqe_length,
19262 &hbq_buf->cq_event.cqe.rcqe_cmpl);
19263 iocbq->unsol_rcv_len = len;
19264 iocbq->wcqe_cmpl.total_data_placed += len;
19265 tot_len += len;
19266 } else {
19267 iocbq = lpfc_sli_get_iocbq(vport->phba);
19268 if (!iocbq) {
19269 if (first_iocbq) {
19270 bf_set(lpfc_wcqe_c_status,
19271 &first_iocbq->wcqe_cmpl,
19272 IOSTAT_SUCCESS);
19273 first_iocbq->wcqe_cmpl.parameter =
19274 IOERR_NO_RESOURCES;
19276 lpfc_in_buf_free(vport->phba, d_buf);
19277 continue;
19279 /* We need to get the size out of the right CQE */
19280 hbq_buf = container_of(d_buf, struct hbq_dmabuf, dbuf);
19281 len = bf_get(lpfc_rcqe_length,
19282 &hbq_buf->cq_event.cqe.rcqe_cmpl);
19283 iocbq->cmd_dmabuf = d_buf;
19284 iocbq->bpl_dmabuf = NULL;
19285 iocbq->wcqe_cmpl.word3 = 1;
19287 if (len > LPFC_DATA_BUF_SIZE)
19288 iocbq->wqe.xmit_els_rsp.bde.tus.f.bdeSize =
19289 LPFC_DATA_BUF_SIZE;
19290 else
19291 iocbq->wqe.xmit_els_rsp.bde.tus.f.bdeSize =
19292 len;
19294 tot_len += len;
19295 iocbq->wcqe_cmpl.total_data_placed = tot_len;
19296 bf_set(wqe_els_did, &iocbq->wqe.xmit_els_rsp.wqe_dest,
19297 sid);
19298 list_add_tail(&iocbq->list, &first_iocbq->list);
19301 /* Free the sequence's header buffer */
19302 if (!first_iocbq)
19303 lpfc_in_buf_free(vport->phba, &seq_dmabuf->dbuf);
19305 return first_iocbq;
19308 static void
19309 lpfc_sli4_send_seq_to_ulp(struct lpfc_vport *vport,
19310 struct hbq_dmabuf *seq_dmabuf)
19312 struct fc_frame_header *fc_hdr;
19313 struct lpfc_iocbq *iocbq, *curr_iocb, *next_iocb;
19314 struct lpfc_hba *phba = vport->phba;
19316 fc_hdr = (struct fc_frame_header *)seq_dmabuf->hbuf.virt;
19317 iocbq = lpfc_prep_seq(vport, seq_dmabuf);
19318 if (!iocbq) {
19319 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
19320 "2707 Ring %d handler: Failed to allocate "
19321 "iocb Rctl x%x Type x%x received\n",
19322 LPFC_ELS_RING,
19323 fc_hdr->fh_r_ctl, fc_hdr->fh_type);
19324 return;
19326 if (!lpfc_complete_unsol_iocb(phba,
19327 phba->sli4_hba.els_wq->pring,
19328 iocbq, fc_hdr->fh_r_ctl,
19329 fc_hdr->fh_type)) {
19330 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
19331 "2540 Ring %d handler: unexpected Rctl "
19332 "x%x Type x%x received\n",
19333 LPFC_ELS_RING,
19334 fc_hdr->fh_r_ctl, fc_hdr->fh_type);
19335 lpfc_in_buf_free(phba, &seq_dmabuf->dbuf);
19338 /* Free iocb created in lpfc_prep_seq */
19339 list_for_each_entry_safe(curr_iocb, next_iocb,
19340 &iocbq->list, list) {
19341 list_del_init(&curr_iocb->list);
19342 lpfc_sli_release_iocbq(phba, curr_iocb);
19344 lpfc_sli_release_iocbq(phba, iocbq);
19347 static void
19348 lpfc_sli4_mds_loopback_cmpl(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocb,
19349 struct lpfc_iocbq *rspiocb)
19351 struct lpfc_dmabuf *pcmd = cmdiocb->cmd_dmabuf;
19353 if (pcmd && pcmd->virt)
19354 dma_pool_free(phba->lpfc_drb_pool, pcmd->virt, pcmd->phys);
19355 kfree(pcmd);
19356 lpfc_sli_release_iocbq(phba, cmdiocb);
19357 lpfc_drain_txq(phba);
19360 static void
19361 lpfc_sli4_handle_mds_loopback(struct lpfc_vport *vport,
19362 struct hbq_dmabuf *dmabuf)
19364 struct fc_frame_header *fc_hdr;
19365 struct lpfc_hba *phba = vport->phba;
19366 struct lpfc_iocbq *iocbq = NULL;
19367 union lpfc_wqe128 *pwqe;
19368 struct lpfc_dmabuf *pcmd = NULL;
19369 uint32_t frame_len;
19370 int rc;
19371 unsigned long iflags;
19373 fc_hdr = (struct fc_frame_header *)dmabuf->hbuf.virt;
19374 frame_len = bf_get(lpfc_rcqe_length, &dmabuf->cq_event.cqe.rcqe_cmpl);
19376 /* Send the received frame back */
19377 iocbq = lpfc_sli_get_iocbq(phba);
19378 if (!iocbq) {
19379 /* Queue cq event and wakeup worker thread to process it */
19380 spin_lock_irqsave(&phba->hbalock, iflags);
19381 list_add_tail(&dmabuf->cq_event.list,
19382 &phba->sli4_hba.sp_queue_event);
19383 spin_unlock_irqrestore(&phba->hbalock, iflags);
19384 set_bit(HBA_SP_QUEUE_EVT, &phba->hba_flag);
19385 lpfc_worker_wake_up(phba);
19386 return;
19389 /* Allocate buffer for command payload */
19390 pcmd = kmalloc(sizeof(struct lpfc_dmabuf), GFP_KERNEL);
19391 if (pcmd)
19392 pcmd->virt = dma_pool_alloc(phba->lpfc_drb_pool, GFP_KERNEL,
19393 &pcmd->phys);
19394 if (!pcmd || !pcmd->virt)
19395 goto exit;
19397 INIT_LIST_HEAD(&pcmd->list);
19399 /* copyin the payload */
19400 memcpy(pcmd->virt, dmabuf->dbuf.virt, frame_len);
19402 iocbq->cmd_dmabuf = pcmd;
19403 iocbq->vport = vport;
19404 iocbq->cmd_flag &= ~LPFC_FIP_ELS_ID_MASK;
19405 iocbq->cmd_flag |= LPFC_USE_FCPWQIDX;
19406 iocbq->num_bdes = 0;
19408 pwqe = &iocbq->wqe;
19409 /* fill in BDE's for command */
19410 pwqe->gen_req.bde.addrHigh = putPaddrHigh(pcmd->phys);
19411 pwqe->gen_req.bde.addrLow = putPaddrLow(pcmd->phys);
19412 pwqe->gen_req.bde.tus.f.bdeSize = frame_len;
19413 pwqe->gen_req.bde.tus.f.bdeFlags = BUFF_TYPE_BDE_64;
19415 pwqe->send_frame.frame_len = frame_len;
19416 pwqe->send_frame.fc_hdr_wd0 = be32_to_cpu(*((__be32 *)fc_hdr));
19417 pwqe->send_frame.fc_hdr_wd1 = be32_to_cpu(*((__be32 *)fc_hdr + 1));
19418 pwqe->send_frame.fc_hdr_wd2 = be32_to_cpu(*((__be32 *)fc_hdr + 2));
19419 pwqe->send_frame.fc_hdr_wd3 = be32_to_cpu(*((__be32 *)fc_hdr + 3));
19420 pwqe->send_frame.fc_hdr_wd4 = be32_to_cpu(*((__be32 *)fc_hdr + 4));
19421 pwqe->send_frame.fc_hdr_wd5 = be32_to_cpu(*((__be32 *)fc_hdr + 5));
19423 pwqe->generic.wqe_com.word7 = 0;
19424 pwqe->generic.wqe_com.word10 = 0;
19426 bf_set(wqe_cmnd, &pwqe->generic.wqe_com, CMD_SEND_FRAME);
19427 bf_set(wqe_sof, &pwqe->generic.wqe_com, 0x2E); /* SOF byte */
19428 bf_set(wqe_eof, &pwqe->generic.wqe_com, 0x41); /* EOF byte */
19429 bf_set(wqe_lenloc, &pwqe->generic.wqe_com, 1);
19430 bf_set(wqe_xbl, &pwqe->generic.wqe_com, 1);
19431 bf_set(wqe_dbde, &pwqe->generic.wqe_com, 1);
19432 bf_set(wqe_xc, &pwqe->generic.wqe_com, 1);
19433 bf_set(wqe_cmd_type, &pwqe->generic.wqe_com, 0xA);
19434 bf_set(wqe_cqid, &pwqe->generic.wqe_com, LPFC_WQE_CQ_ID_DEFAULT);
19435 bf_set(wqe_xri_tag, &pwqe->generic.wqe_com, iocbq->sli4_xritag);
19436 bf_set(wqe_reqtag, &pwqe->generic.wqe_com, iocbq->iotag);
19437 bf_set(wqe_class, &pwqe->generic.wqe_com, CLASS3);
19438 pwqe->generic.wqe_com.abort_tag = iocbq->iotag;
19440 iocbq->cmd_cmpl = lpfc_sli4_mds_loopback_cmpl;
19442 rc = lpfc_sli_issue_iocb(phba, LPFC_ELS_RING, iocbq, 0);
19443 if (rc == IOCB_ERROR)
19444 goto exit;
19446 lpfc_in_buf_free(phba, &dmabuf->dbuf);
19447 return;
19449 exit:
19450 lpfc_printf_log(phba, KERN_WARNING, LOG_SLI,
19451 "2023 Unable to process MDS loopback frame\n");
19452 if (pcmd && pcmd->virt)
19453 dma_pool_free(phba->lpfc_drb_pool, pcmd->virt, pcmd->phys);
19454 kfree(pcmd);
19455 if (iocbq)
19456 lpfc_sli_release_iocbq(phba, iocbq);
19457 lpfc_in_buf_free(phba, &dmabuf->dbuf);
19461 * lpfc_sli4_handle_received_buffer - Handle received buffers from firmware
19462 * @phba: Pointer to HBA context object.
19463 * @dmabuf: Pointer to a dmabuf that describes the FC sequence.
19465 * This function is called with no lock held. This function processes all
19466 * the received buffers and gives it to upper layers when a received buffer
19467 * indicates that it is the final frame in the sequence. The interrupt
19468 * service routine processes received buffers at interrupt contexts.
19469 * Worker thread calls lpfc_sli4_handle_received_buffer, which will call the
19470 * appropriate receive function when the final frame in a sequence is received.
19472 void
19473 lpfc_sli4_handle_received_buffer(struct lpfc_hba *phba,
19474 struct hbq_dmabuf *dmabuf)
19476 struct hbq_dmabuf *seq_dmabuf;
19477 struct fc_frame_header *fc_hdr;
19478 struct lpfc_vport *vport;
19479 uint32_t fcfi;
19480 uint32_t did;
19482 /* Process each received buffer */
19483 fc_hdr = (struct fc_frame_header *)dmabuf->hbuf.virt;
19485 if (fc_hdr->fh_r_ctl == FC_RCTL_MDS_DIAGS ||
19486 fc_hdr->fh_r_ctl == FC_RCTL_DD_UNSOL_DATA) {
19487 vport = phba->pport;
19488 /* Handle MDS Loopback frames */
19489 if (!test_bit(FC_UNLOADING, &phba->pport->load_flag))
19490 lpfc_sli4_handle_mds_loopback(vport, dmabuf);
19491 else
19492 lpfc_in_buf_free(phba, &dmabuf->dbuf);
19493 return;
19496 /* check to see if this a valid type of frame */
19497 if (lpfc_fc_frame_check(phba, fc_hdr)) {
19498 lpfc_in_buf_free(phba, &dmabuf->dbuf);
19499 return;
19502 if ((bf_get(lpfc_cqe_code,
19503 &dmabuf->cq_event.cqe.rcqe_cmpl) == CQE_CODE_RECEIVE_V1))
19504 fcfi = bf_get(lpfc_rcqe_fcf_id_v1,
19505 &dmabuf->cq_event.cqe.rcqe_cmpl);
19506 else
19507 fcfi = bf_get(lpfc_rcqe_fcf_id,
19508 &dmabuf->cq_event.cqe.rcqe_cmpl);
19510 if (fc_hdr->fh_r_ctl == 0xF4 && fc_hdr->fh_type == 0xFF) {
19511 vport = phba->pport;
19512 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
19513 "2023 MDS Loopback %d bytes\n",
19514 bf_get(lpfc_rcqe_length,
19515 &dmabuf->cq_event.cqe.rcqe_cmpl));
19516 /* Handle MDS Loopback frames */
19517 lpfc_sli4_handle_mds_loopback(vport, dmabuf);
19518 return;
19521 /* d_id this frame is directed to */
19522 did = sli4_did_from_fc_hdr(fc_hdr);
19524 vport = lpfc_fc_frame_to_vport(phba, fc_hdr, fcfi, did);
19525 if (!vport) {
19526 /* throw out the frame */
19527 lpfc_in_buf_free(phba, &dmabuf->dbuf);
19528 return;
19531 /* vport is registered unless we rcv a FLOGI directed to Fabric_DID */
19532 if (!(vport->vpi_state & LPFC_VPI_REGISTERED) &&
19533 (did != Fabric_DID)) {
19535 * Throw out the frame if we are not pt2pt.
19536 * The pt2pt protocol allows for discovery frames
19537 * to be received without a registered VPI.
19539 if (!test_bit(FC_PT2PT, &vport->fc_flag) ||
19540 phba->link_state == LPFC_HBA_READY) {
19541 lpfc_in_buf_free(phba, &dmabuf->dbuf);
19542 return;
19546 /* Handle the basic abort sequence (BA_ABTS) event */
19547 if (fc_hdr->fh_r_ctl == FC_RCTL_BA_ABTS) {
19548 lpfc_sli4_handle_unsol_abort(vport, dmabuf);
19549 return;
19552 /* Link this frame */
19553 seq_dmabuf = lpfc_fc_frame_add(vport, dmabuf);
19554 if (!seq_dmabuf) {
19555 /* unable to add frame to vport - throw it out */
19556 lpfc_in_buf_free(phba, &dmabuf->dbuf);
19557 return;
19559 /* If not last frame in sequence continue processing frames. */
19560 if (!lpfc_seq_complete(seq_dmabuf))
19561 return;
19563 /* Send the complete sequence to the upper layer protocol */
19564 lpfc_sli4_send_seq_to_ulp(vport, seq_dmabuf);
19568 * lpfc_sli4_post_all_rpi_hdrs - Post the rpi header memory region to the port
19569 * @phba: pointer to lpfc hba data structure.
19571 * This routine is invoked to post rpi header templates to the
19572 * HBA consistent with the SLI-4 interface spec. This routine
19573 * posts a SLI4_PAGE_SIZE memory region to the port to hold up to
19574 * SLI4_PAGE_SIZE modulo 64 rpi context headers.
19576 * This routine does not require any locks. It's usage is expected
19577 * to be driver load or reset recovery when the driver is
19578 * sequential.
19580 * Return codes
19581 * 0 - successful
19582 * -EIO - The mailbox failed to complete successfully.
19583 * When this error occurs, the driver is not guaranteed
19584 * to have any rpi regions posted to the device and
19585 * must either attempt to repost the regions or take a
19586 * fatal error.
19589 lpfc_sli4_post_all_rpi_hdrs(struct lpfc_hba *phba)
19591 struct lpfc_rpi_hdr *rpi_page;
19592 uint32_t rc = 0;
19593 uint16_t lrpi = 0;
19595 /* SLI4 ports that support extents do not require RPI headers. */
19596 if (!phba->sli4_hba.rpi_hdrs_in_use)
19597 goto exit;
19598 if (phba->sli4_hba.extents_in_use)
19599 return -EIO;
19601 list_for_each_entry(rpi_page, &phba->sli4_hba.lpfc_rpi_hdr_list, list) {
19603 * Assign the rpi headers a physical rpi only if the driver
19604 * has not initialized those resources. A port reset only
19605 * needs the headers posted.
19607 if (bf_get(lpfc_rpi_rsrc_rdy, &phba->sli4_hba.sli4_flags) !=
19608 LPFC_RPI_RSRC_RDY)
19609 rpi_page->start_rpi = phba->sli4_hba.rpi_ids[lrpi];
19611 rc = lpfc_sli4_post_rpi_hdr(phba, rpi_page);
19612 if (rc != MBX_SUCCESS) {
19613 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
19614 "2008 Error %d posting all rpi "
19615 "headers\n", rc);
19616 rc = -EIO;
19617 break;
19621 exit:
19622 bf_set(lpfc_rpi_rsrc_rdy, &phba->sli4_hba.sli4_flags,
19623 LPFC_RPI_RSRC_RDY);
19624 return rc;
19628 * lpfc_sli4_post_rpi_hdr - Post an rpi header memory region to the port
19629 * @phba: pointer to lpfc hba data structure.
19630 * @rpi_page: pointer to the rpi memory region.
19632 * This routine is invoked to post a single rpi header to the
19633 * HBA consistent with the SLI-4 interface spec. This memory region
19634 * maps up to 64 rpi context regions.
19636 * Return codes
19637 * 0 - successful
19638 * -ENOMEM - No available memory
19639 * -EIO - The mailbox failed to complete successfully.
19642 lpfc_sli4_post_rpi_hdr(struct lpfc_hba *phba, struct lpfc_rpi_hdr *rpi_page)
19644 LPFC_MBOXQ_t *mboxq;
19645 struct lpfc_mbx_post_hdr_tmpl *hdr_tmpl;
19646 uint32_t rc = 0;
19647 uint32_t shdr_status, shdr_add_status;
19648 union lpfc_sli4_cfg_shdr *shdr;
19650 /* SLI4 ports that support extents do not require RPI headers. */
19651 if (!phba->sli4_hba.rpi_hdrs_in_use)
19652 return rc;
19653 if (phba->sli4_hba.extents_in_use)
19654 return -EIO;
19656 /* The port is notified of the header region via a mailbox command. */
19657 mboxq = (LPFC_MBOXQ_t *) mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
19658 if (!mboxq) {
19659 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
19660 "2001 Unable to allocate memory for issuing "
19661 "SLI_CONFIG_SPECIAL mailbox command\n");
19662 return -ENOMEM;
19665 /* Post all rpi memory regions to the port. */
19666 hdr_tmpl = &mboxq->u.mqe.un.hdr_tmpl;
19667 lpfc_sli4_config(phba, mboxq, LPFC_MBOX_SUBSYSTEM_FCOE,
19668 LPFC_MBOX_OPCODE_FCOE_POST_HDR_TEMPLATE,
19669 sizeof(struct lpfc_mbx_post_hdr_tmpl) -
19670 sizeof(struct lpfc_sli4_cfg_mhdr),
19671 LPFC_SLI4_MBX_EMBED);
19674 /* Post the physical rpi to the port for this rpi header. */
19675 bf_set(lpfc_mbx_post_hdr_tmpl_rpi_offset, hdr_tmpl,
19676 rpi_page->start_rpi);
19677 bf_set(lpfc_mbx_post_hdr_tmpl_page_cnt,
19678 hdr_tmpl, rpi_page->page_count);
19680 hdr_tmpl->rpi_paddr_lo = putPaddrLow(rpi_page->dmabuf->phys);
19681 hdr_tmpl->rpi_paddr_hi = putPaddrHigh(rpi_page->dmabuf->phys);
19682 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
19683 shdr = (union lpfc_sli4_cfg_shdr *) &hdr_tmpl->header.cfg_shdr;
19684 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
19685 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
19686 mempool_free(mboxq, phba->mbox_mem_pool);
19687 if (shdr_status || shdr_add_status || rc) {
19688 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
19689 "2514 POST_RPI_HDR mailbox failed with "
19690 "status x%x add_status x%x, mbx status x%x\n",
19691 shdr_status, shdr_add_status, rc);
19692 rc = -ENXIO;
19693 } else {
19695 * The next_rpi stores the next logical module-64 rpi value used
19696 * to post physical rpis in subsequent rpi postings.
19698 spin_lock_irq(&phba->hbalock);
19699 phba->sli4_hba.next_rpi = rpi_page->next_rpi;
19700 spin_unlock_irq(&phba->hbalock);
19702 return rc;
19706 * lpfc_sli4_alloc_rpi - Get an available rpi in the device's range
19707 * @phba: pointer to lpfc hba data structure.
19709 * This routine is invoked to post rpi header templates to the
19710 * HBA consistent with the SLI-4 interface spec. This routine
19711 * posts a SLI4_PAGE_SIZE memory region to the port to hold up to
19712 * SLI4_PAGE_SIZE modulo 64 rpi context headers.
19714 * Returns
19715 * A nonzero rpi defined as rpi_base <= rpi < max_rpi if successful
19716 * LPFC_RPI_ALLOC_ERROR if no rpis are available.
19719 lpfc_sli4_alloc_rpi(struct lpfc_hba *phba)
19721 unsigned long rpi;
19722 uint16_t max_rpi, rpi_limit;
19723 uint16_t rpi_remaining, lrpi = 0;
19724 struct lpfc_rpi_hdr *rpi_hdr;
19725 unsigned long iflag;
19728 * Fetch the next logical rpi. Because this index is logical,
19729 * the driver starts at 0 each time.
19731 spin_lock_irqsave(&phba->hbalock, iflag);
19732 max_rpi = phba->sli4_hba.max_cfg_param.max_rpi;
19733 rpi_limit = phba->sli4_hba.next_rpi;
19735 rpi = find_first_zero_bit(phba->sli4_hba.rpi_bmask, rpi_limit);
19736 if (rpi >= rpi_limit)
19737 rpi = LPFC_RPI_ALLOC_ERROR;
19738 else {
19739 set_bit(rpi, phba->sli4_hba.rpi_bmask);
19740 phba->sli4_hba.max_cfg_param.rpi_used++;
19741 phba->sli4_hba.rpi_count++;
19743 lpfc_printf_log(phba, KERN_INFO,
19744 LOG_NODE | LOG_DISCOVERY,
19745 "0001 Allocated rpi:x%x max:x%x lim:x%x\n",
19746 (int) rpi, max_rpi, rpi_limit);
19749 * Don't try to allocate more rpi header regions if the device limit
19750 * has been exhausted.
19752 if ((rpi == LPFC_RPI_ALLOC_ERROR) &&
19753 (phba->sli4_hba.rpi_count >= max_rpi)) {
19754 spin_unlock_irqrestore(&phba->hbalock, iflag);
19755 return rpi;
19759 * RPI header postings are not required for SLI4 ports capable of
19760 * extents.
19762 if (!phba->sli4_hba.rpi_hdrs_in_use) {
19763 spin_unlock_irqrestore(&phba->hbalock, iflag);
19764 return rpi;
19768 * If the driver is running low on rpi resources, allocate another
19769 * page now. Note that the next_rpi value is used because
19770 * it represents how many are actually in use whereas max_rpi notes
19771 * how many are supported max by the device.
19773 rpi_remaining = phba->sli4_hba.next_rpi - phba->sli4_hba.rpi_count;
19774 spin_unlock_irqrestore(&phba->hbalock, iflag);
19775 if (rpi_remaining < LPFC_RPI_LOW_WATER_MARK) {
19776 rpi_hdr = lpfc_sli4_create_rpi_hdr(phba);
19777 if (!rpi_hdr) {
19778 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
19779 "2002 Error Could not grow rpi "
19780 "count\n");
19781 } else {
19782 lrpi = rpi_hdr->start_rpi;
19783 rpi_hdr->start_rpi = phba->sli4_hba.rpi_ids[lrpi];
19784 lpfc_sli4_post_rpi_hdr(phba, rpi_hdr);
19788 return rpi;
19792 * __lpfc_sli4_free_rpi - Release an rpi for reuse.
19793 * @phba: pointer to lpfc hba data structure.
19794 * @rpi: rpi to free
19796 * This routine is invoked to release an rpi to the pool of
19797 * available rpis maintained by the driver.
19799 static void
19800 __lpfc_sli4_free_rpi(struct lpfc_hba *phba, int rpi)
19803 * if the rpi value indicates a prior unreg has already
19804 * been done, skip the unreg.
19806 if (rpi == LPFC_RPI_ALLOC_ERROR)
19807 return;
19809 if (test_and_clear_bit(rpi, phba->sli4_hba.rpi_bmask)) {
19810 phba->sli4_hba.rpi_count--;
19811 phba->sli4_hba.max_cfg_param.rpi_used--;
19812 } else {
19813 lpfc_printf_log(phba, KERN_INFO,
19814 LOG_NODE | LOG_DISCOVERY,
19815 "2016 rpi %x not inuse\n",
19816 rpi);
19821 * lpfc_sli4_free_rpi - Release an rpi for reuse.
19822 * @phba: pointer to lpfc hba data structure.
19823 * @rpi: rpi to free
19825 * This routine is invoked to release an rpi to the pool of
19826 * available rpis maintained by the driver.
19828 void
19829 lpfc_sli4_free_rpi(struct lpfc_hba *phba, int rpi)
19831 spin_lock_irq(&phba->hbalock);
19832 __lpfc_sli4_free_rpi(phba, rpi);
19833 spin_unlock_irq(&phba->hbalock);
19837 * lpfc_sli4_remove_rpis - Remove the rpi bitmask region
19838 * @phba: pointer to lpfc hba data structure.
19840 * This routine is invoked to remove the memory region that
19841 * provided rpi via a bitmask.
19843 void
19844 lpfc_sli4_remove_rpis(struct lpfc_hba *phba)
19846 kfree(phba->sli4_hba.rpi_bmask);
19847 kfree(phba->sli4_hba.rpi_ids);
19848 bf_set(lpfc_rpi_rsrc_rdy, &phba->sli4_hba.sli4_flags, 0);
19852 * lpfc_sli4_resume_rpi - Remove the rpi bitmask region
19853 * @ndlp: pointer to lpfc nodelist data structure.
19854 * @cmpl: completion call-back.
19855 * @iocbq: data to load as mbox ctx_u information
19857 * This routine is invoked to remove the memory region that
19858 * provided rpi via a bitmask.
19861 lpfc_sli4_resume_rpi(struct lpfc_nodelist *ndlp,
19862 void (*cmpl)(struct lpfc_hba *, LPFC_MBOXQ_t *),
19863 struct lpfc_iocbq *iocbq)
19865 LPFC_MBOXQ_t *mboxq;
19866 struct lpfc_hba *phba = ndlp->phba;
19867 int rc;
19869 /* The port is notified of the header region via a mailbox command. */
19870 mboxq = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
19871 if (!mboxq)
19872 return -ENOMEM;
19874 /* If cmpl assigned, then this nlp_get pairs with
19875 * lpfc_mbx_cmpl_resume_rpi.
19877 * Else cmpl is NULL, then this nlp_get pairs with
19878 * lpfc_sli_def_mbox_cmpl.
19880 if (!lpfc_nlp_get(ndlp)) {
19881 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
19882 "2122 %s: Failed to get nlp ref\n",
19883 __func__);
19884 mempool_free(mboxq, phba->mbox_mem_pool);
19885 return -EIO;
19888 /* Post all rpi memory regions to the port. */
19889 lpfc_resume_rpi(mboxq, ndlp);
19890 if (cmpl) {
19891 mboxq->mbox_cmpl = cmpl;
19892 mboxq->ctx_u.save_iocb = iocbq;
19893 } else
19894 mboxq->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
19895 mboxq->ctx_ndlp = ndlp;
19896 mboxq->vport = ndlp->vport;
19897 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_NOWAIT);
19898 if (rc == MBX_NOT_FINISHED) {
19899 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
19900 "2010 Resume RPI Mailbox failed "
19901 "status %d, mbxStatus x%x\n", rc,
19902 bf_get(lpfc_mqe_status, &mboxq->u.mqe));
19903 lpfc_nlp_put(ndlp);
19904 mempool_free(mboxq, phba->mbox_mem_pool);
19905 return -EIO;
19907 return 0;
19911 * lpfc_sli4_init_vpi - Initialize a vpi with the port
19912 * @vport: Pointer to the vport for which the vpi is being initialized
19914 * This routine is invoked to activate a vpi with the port.
19916 * Returns:
19917 * 0 success
19918 * -Evalue otherwise
19921 lpfc_sli4_init_vpi(struct lpfc_vport *vport)
19923 LPFC_MBOXQ_t *mboxq;
19924 int rc = 0;
19925 int retval = MBX_SUCCESS;
19926 uint32_t mbox_tmo;
19927 struct lpfc_hba *phba = vport->phba;
19928 mboxq = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
19929 if (!mboxq)
19930 return -ENOMEM;
19931 lpfc_init_vpi(phba, mboxq, vport->vpi);
19932 mbox_tmo = lpfc_mbox_tmo_val(phba, mboxq);
19933 rc = lpfc_sli_issue_mbox_wait(phba, mboxq, mbox_tmo);
19934 if (rc != MBX_SUCCESS) {
19935 lpfc_printf_vlog(vport, KERN_ERR, LOG_TRACE_EVENT,
19936 "2022 INIT VPI Mailbox failed "
19937 "status %d, mbxStatus x%x\n", rc,
19938 bf_get(lpfc_mqe_status, &mboxq->u.mqe));
19939 retval = -EIO;
19941 if (rc != MBX_TIMEOUT)
19942 mempool_free(mboxq, vport->phba->mbox_mem_pool);
19944 return retval;
19948 * lpfc_mbx_cmpl_add_fcf_record - add fcf mbox completion handler.
19949 * @phba: pointer to lpfc hba data structure.
19950 * @mboxq: Pointer to mailbox object.
19952 * This routine is invoked to manually add a single FCF record. The caller
19953 * must pass a completely initialized FCF_Record. This routine takes
19954 * care of the nonembedded mailbox operations.
19956 static void
19957 lpfc_mbx_cmpl_add_fcf_record(struct lpfc_hba *phba, LPFC_MBOXQ_t *mboxq)
19959 void *virt_addr;
19960 union lpfc_sli4_cfg_shdr *shdr;
19961 uint32_t shdr_status, shdr_add_status;
19963 virt_addr = mboxq->sge_array->addr[0];
19964 /* The IOCTL status is embedded in the mailbox subheader. */
19965 shdr = (union lpfc_sli4_cfg_shdr *) virt_addr;
19966 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
19967 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
19969 if ((shdr_status || shdr_add_status) &&
19970 (shdr_status != STATUS_FCF_IN_USE))
19971 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
19972 "2558 ADD_FCF_RECORD mailbox failed with "
19973 "status x%x add_status x%x\n",
19974 shdr_status, shdr_add_status);
19976 lpfc_sli4_mbox_cmd_free(phba, mboxq);
19980 * lpfc_sli4_add_fcf_record - Manually add an FCF Record.
19981 * @phba: pointer to lpfc hba data structure.
19982 * @fcf_record: pointer to the initialized fcf record to add.
19984 * This routine is invoked to manually add a single FCF record. The caller
19985 * must pass a completely initialized FCF_Record. This routine takes
19986 * care of the nonembedded mailbox operations.
19989 lpfc_sli4_add_fcf_record(struct lpfc_hba *phba, struct fcf_record *fcf_record)
19991 int rc = 0;
19992 LPFC_MBOXQ_t *mboxq;
19993 uint8_t *bytep;
19994 void *virt_addr;
19995 struct lpfc_mbx_sge sge;
19996 uint32_t alloc_len, req_len;
19997 uint32_t fcfindex;
19999 mboxq = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
20000 if (!mboxq) {
20001 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
20002 "2009 Failed to allocate mbox for ADD_FCF cmd\n");
20003 return -ENOMEM;
20006 req_len = sizeof(struct fcf_record) + sizeof(union lpfc_sli4_cfg_shdr) +
20007 sizeof(uint32_t);
20009 /* Allocate DMA memory and set up the non-embedded mailbox command */
20010 alloc_len = lpfc_sli4_config(phba, mboxq, LPFC_MBOX_SUBSYSTEM_FCOE,
20011 LPFC_MBOX_OPCODE_FCOE_ADD_FCF,
20012 req_len, LPFC_SLI4_MBX_NEMBED);
20013 if (alloc_len < req_len) {
20014 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
20015 "2523 Allocated DMA memory size (x%x) is "
20016 "less than the requested DMA memory "
20017 "size (x%x)\n", alloc_len, req_len);
20018 lpfc_sli4_mbox_cmd_free(phba, mboxq);
20019 return -ENOMEM;
20023 * Get the first SGE entry from the non-embedded DMA memory. This
20024 * routine only uses a single SGE.
20026 lpfc_sli4_mbx_sge_get(mboxq, 0, &sge);
20027 virt_addr = mboxq->sge_array->addr[0];
20029 * Configure the FCF record for FCFI 0. This is the driver's
20030 * hardcoded default and gets used in nonFIP mode.
20032 fcfindex = bf_get(lpfc_fcf_record_fcf_index, fcf_record);
20033 bytep = virt_addr + sizeof(union lpfc_sli4_cfg_shdr);
20034 lpfc_sli_pcimem_bcopy(&fcfindex, bytep, sizeof(uint32_t));
20037 * Copy the fcf_index and the FCF Record Data. The data starts after
20038 * the FCoE header plus word10. The data copy needs to be endian
20039 * correct.
20041 bytep += sizeof(uint32_t);
20042 lpfc_sli_pcimem_bcopy(fcf_record, bytep, sizeof(struct fcf_record));
20043 mboxq->vport = phba->pport;
20044 mboxq->mbox_cmpl = lpfc_mbx_cmpl_add_fcf_record;
20045 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_NOWAIT);
20046 if (rc == MBX_NOT_FINISHED) {
20047 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
20048 "2515 ADD_FCF_RECORD mailbox failed with "
20049 "status 0x%x\n", rc);
20050 lpfc_sli4_mbox_cmd_free(phba, mboxq);
20051 rc = -EIO;
20052 } else
20053 rc = 0;
20055 return rc;
20059 * lpfc_sli4_build_dflt_fcf_record - Build the driver's default FCF Record.
20060 * @phba: pointer to lpfc hba data structure.
20061 * @fcf_record: pointer to the fcf record to write the default data.
20062 * @fcf_index: FCF table entry index.
20064 * This routine is invoked to build the driver's default FCF record. The
20065 * values used are hardcoded. This routine handles memory initialization.
20068 void
20069 lpfc_sli4_build_dflt_fcf_record(struct lpfc_hba *phba,
20070 struct fcf_record *fcf_record,
20071 uint16_t fcf_index)
20073 memset(fcf_record, 0, sizeof(struct fcf_record));
20074 fcf_record->max_rcv_size = LPFC_FCOE_MAX_RCV_SIZE;
20075 fcf_record->fka_adv_period = LPFC_FCOE_FKA_ADV_PER;
20076 fcf_record->fip_priority = LPFC_FCOE_FIP_PRIORITY;
20077 bf_set(lpfc_fcf_record_mac_0, fcf_record, phba->fc_map[0]);
20078 bf_set(lpfc_fcf_record_mac_1, fcf_record, phba->fc_map[1]);
20079 bf_set(lpfc_fcf_record_mac_2, fcf_record, phba->fc_map[2]);
20080 bf_set(lpfc_fcf_record_mac_3, fcf_record, LPFC_FCOE_FCF_MAC3);
20081 bf_set(lpfc_fcf_record_mac_4, fcf_record, LPFC_FCOE_FCF_MAC4);
20082 bf_set(lpfc_fcf_record_mac_5, fcf_record, LPFC_FCOE_FCF_MAC5);
20083 bf_set(lpfc_fcf_record_fc_map_0, fcf_record, phba->fc_map[0]);
20084 bf_set(lpfc_fcf_record_fc_map_1, fcf_record, phba->fc_map[1]);
20085 bf_set(lpfc_fcf_record_fc_map_2, fcf_record, phba->fc_map[2]);
20086 bf_set(lpfc_fcf_record_fcf_valid, fcf_record, 1);
20087 bf_set(lpfc_fcf_record_fcf_avail, fcf_record, 1);
20088 bf_set(lpfc_fcf_record_fcf_index, fcf_record, fcf_index);
20089 bf_set(lpfc_fcf_record_mac_addr_prov, fcf_record,
20090 LPFC_FCF_FPMA | LPFC_FCF_SPMA);
20091 /* Set the VLAN bit map */
20092 if (phba->valid_vlan) {
20093 fcf_record->vlan_bitmap[phba->vlan_id / 8]
20094 = 1 << (phba->vlan_id % 8);
20099 * lpfc_sli4_fcf_scan_read_fcf_rec - Read hba fcf record for fcf scan.
20100 * @phba: pointer to lpfc hba data structure.
20101 * @fcf_index: FCF table entry offset.
20103 * This routine is invoked to scan the entire FCF table by reading FCF
20104 * record and processing it one at a time starting from the @fcf_index
20105 * for initial FCF discovery or fast FCF failover rediscovery.
20107 * Return 0 if the mailbox command is submitted successfully, none 0
20108 * otherwise.
20111 lpfc_sli4_fcf_scan_read_fcf_rec(struct lpfc_hba *phba, uint16_t fcf_index)
20113 int rc = 0, error;
20114 LPFC_MBOXQ_t *mboxq;
20116 phba->fcoe_eventtag_at_fcf_scan = phba->fcoe_eventtag;
20117 phba->fcoe_cvl_eventtag_attn = phba->fcoe_cvl_eventtag;
20118 mboxq = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
20119 if (!mboxq) {
20120 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
20121 "2000 Failed to allocate mbox for "
20122 "READ_FCF cmd\n");
20123 error = -ENOMEM;
20124 goto fail_fcf_scan;
20126 /* Construct the read FCF record mailbox command */
20127 rc = lpfc_sli4_mbx_read_fcf_rec(phba, mboxq, fcf_index);
20128 if (rc) {
20129 error = -EINVAL;
20130 goto fail_fcf_scan;
20132 /* Issue the mailbox command asynchronously */
20133 mboxq->vport = phba->pport;
20134 mboxq->mbox_cmpl = lpfc_mbx_cmpl_fcf_scan_read_fcf_rec;
20136 set_bit(FCF_TS_INPROG, &phba->hba_flag);
20138 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_NOWAIT);
20139 if (rc == MBX_NOT_FINISHED)
20140 error = -EIO;
20141 else {
20142 /* Reset eligible FCF count for new scan */
20143 if (fcf_index == LPFC_FCOE_FCF_GET_FIRST)
20144 phba->fcf.eligible_fcf_cnt = 0;
20145 error = 0;
20147 fail_fcf_scan:
20148 if (error) {
20149 if (mboxq)
20150 lpfc_sli4_mbox_cmd_free(phba, mboxq);
20151 /* FCF scan failed, clear FCF_TS_INPROG flag */
20152 clear_bit(FCF_TS_INPROG, &phba->hba_flag);
20154 return error;
20158 * lpfc_sli4_fcf_rr_read_fcf_rec - Read hba fcf record for roundrobin fcf.
20159 * @phba: pointer to lpfc hba data structure.
20160 * @fcf_index: FCF table entry offset.
20162 * This routine is invoked to read an FCF record indicated by @fcf_index
20163 * and to use it for FLOGI roundrobin FCF failover.
20165 * Return 0 if the mailbox command is submitted successfully, none 0
20166 * otherwise.
20169 lpfc_sli4_fcf_rr_read_fcf_rec(struct lpfc_hba *phba, uint16_t fcf_index)
20171 int rc = 0, error;
20172 LPFC_MBOXQ_t *mboxq;
20174 mboxq = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
20175 if (!mboxq) {
20176 lpfc_printf_log(phba, KERN_ERR, LOG_FIP | LOG_INIT,
20177 "2763 Failed to allocate mbox for "
20178 "READ_FCF cmd\n");
20179 error = -ENOMEM;
20180 goto fail_fcf_read;
20182 /* Construct the read FCF record mailbox command */
20183 rc = lpfc_sli4_mbx_read_fcf_rec(phba, mboxq, fcf_index);
20184 if (rc) {
20185 error = -EINVAL;
20186 goto fail_fcf_read;
20188 /* Issue the mailbox command asynchronously */
20189 mboxq->vport = phba->pport;
20190 mboxq->mbox_cmpl = lpfc_mbx_cmpl_fcf_rr_read_fcf_rec;
20191 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_NOWAIT);
20192 if (rc == MBX_NOT_FINISHED)
20193 error = -EIO;
20194 else
20195 error = 0;
20197 fail_fcf_read:
20198 if (error && mboxq)
20199 lpfc_sli4_mbox_cmd_free(phba, mboxq);
20200 return error;
20204 * lpfc_sli4_read_fcf_rec - Read hba fcf record for update eligible fcf bmask.
20205 * @phba: pointer to lpfc hba data structure.
20206 * @fcf_index: FCF table entry offset.
20208 * This routine is invoked to read an FCF record indicated by @fcf_index to
20209 * determine whether it's eligible for FLOGI roundrobin failover list.
20211 * Return 0 if the mailbox command is submitted successfully, none 0
20212 * otherwise.
20215 lpfc_sli4_read_fcf_rec(struct lpfc_hba *phba, uint16_t fcf_index)
20217 int rc = 0, error;
20218 LPFC_MBOXQ_t *mboxq;
20220 mboxq = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
20221 if (!mboxq) {
20222 lpfc_printf_log(phba, KERN_ERR, LOG_FIP | LOG_INIT,
20223 "2758 Failed to allocate mbox for "
20224 "READ_FCF cmd\n");
20225 error = -ENOMEM;
20226 goto fail_fcf_read;
20228 /* Construct the read FCF record mailbox command */
20229 rc = lpfc_sli4_mbx_read_fcf_rec(phba, mboxq, fcf_index);
20230 if (rc) {
20231 error = -EINVAL;
20232 goto fail_fcf_read;
20234 /* Issue the mailbox command asynchronously */
20235 mboxq->vport = phba->pport;
20236 mboxq->mbox_cmpl = lpfc_mbx_cmpl_read_fcf_rec;
20237 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_NOWAIT);
20238 if (rc == MBX_NOT_FINISHED)
20239 error = -EIO;
20240 else
20241 error = 0;
20243 fail_fcf_read:
20244 if (error && mboxq)
20245 lpfc_sli4_mbox_cmd_free(phba, mboxq);
20246 return error;
20250 * lpfc_check_next_fcf_pri_level
20251 * @phba: pointer to the lpfc_hba struct for this port.
20252 * This routine is called from the lpfc_sli4_fcf_rr_next_index_get
20253 * routine when the rr_bmask is empty. The FCF indecies are put into the
20254 * rr_bmask based on their priority level. Starting from the highest priority
20255 * to the lowest. The most likely FCF candidate will be in the highest
20256 * priority group. When this routine is called it searches the fcf_pri list for
20257 * next lowest priority group and repopulates the rr_bmask with only those
20258 * fcf_indexes.
20259 * returns:
20260 * 1=success 0=failure
20262 static int
20263 lpfc_check_next_fcf_pri_level(struct lpfc_hba *phba)
20265 uint16_t next_fcf_pri;
20266 uint16_t last_index;
20267 struct lpfc_fcf_pri *fcf_pri;
20268 int rc;
20269 int ret = 0;
20271 last_index = find_first_bit(phba->fcf.fcf_rr_bmask,
20272 LPFC_SLI4_FCF_TBL_INDX_MAX);
20273 lpfc_printf_log(phba, KERN_INFO, LOG_FIP,
20274 "3060 Last IDX %d\n", last_index);
20276 /* Verify the priority list has 2 or more entries */
20277 spin_lock_irq(&phba->hbalock);
20278 if (list_empty(&phba->fcf.fcf_pri_list) ||
20279 list_is_singular(&phba->fcf.fcf_pri_list)) {
20280 spin_unlock_irq(&phba->hbalock);
20281 lpfc_printf_log(phba, KERN_ERR, LOG_FIP,
20282 "3061 Last IDX %d\n", last_index);
20283 return 0; /* Empty rr list */
20285 spin_unlock_irq(&phba->hbalock);
20287 next_fcf_pri = 0;
20289 * Clear the rr_bmask and set all of the bits that are at this
20290 * priority.
20292 memset(phba->fcf.fcf_rr_bmask, 0,
20293 sizeof(*phba->fcf.fcf_rr_bmask));
20294 spin_lock_irq(&phba->hbalock);
20295 list_for_each_entry(fcf_pri, &phba->fcf.fcf_pri_list, list) {
20296 if (fcf_pri->fcf_rec.flag & LPFC_FCF_FLOGI_FAILED)
20297 continue;
20299 * the 1st priority that has not FLOGI failed
20300 * will be the highest.
20302 if (!next_fcf_pri)
20303 next_fcf_pri = fcf_pri->fcf_rec.priority;
20304 spin_unlock_irq(&phba->hbalock);
20305 if (fcf_pri->fcf_rec.priority == next_fcf_pri) {
20306 rc = lpfc_sli4_fcf_rr_index_set(phba,
20307 fcf_pri->fcf_rec.fcf_index);
20308 if (rc)
20309 return 0;
20311 spin_lock_irq(&phba->hbalock);
20314 * if next_fcf_pri was not set above and the list is not empty then
20315 * we have failed flogis on all of them. So reset flogi failed
20316 * and start at the beginning.
20318 if (!next_fcf_pri && !list_empty(&phba->fcf.fcf_pri_list)) {
20319 list_for_each_entry(fcf_pri, &phba->fcf.fcf_pri_list, list) {
20320 fcf_pri->fcf_rec.flag &= ~LPFC_FCF_FLOGI_FAILED;
20322 * the 1st priority that has not FLOGI failed
20323 * will be the highest.
20325 if (!next_fcf_pri)
20326 next_fcf_pri = fcf_pri->fcf_rec.priority;
20327 spin_unlock_irq(&phba->hbalock);
20328 if (fcf_pri->fcf_rec.priority == next_fcf_pri) {
20329 rc = lpfc_sli4_fcf_rr_index_set(phba,
20330 fcf_pri->fcf_rec.fcf_index);
20331 if (rc)
20332 return 0;
20334 spin_lock_irq(&phba->hbalock);
20336 } else
20337 ret = 1;
20338 spin_unlock_irq(&phba->hbalock);
20340 return ret;
20343 * lpfc_sli4_fcf_rr_next_index_get - Get next eligible fcf record index
20344 * @phba: pointer to lpfc hba data structure.
20346 * This routine is to get the next eligible FCF record index in a round
20347 * robin fashion. If the next eligible FCF record index equals to the
20348 * initial roundrobin FCF record index, LPFC_FCOE_FCF_NEXT_NONE (0xFFFF)
20349 * shall be returned, otherwise, the next eligible FCF record's index
20350 * shall be returned.
20352 uint16_t
20353 lpfc_sli4_fcf_rr_next_index_get(struct lpfc_hba *phba)
20355 uint16_t next_fcf_index;
20357 initial_priority:
20358 /* Search start from next bit of currently registered FCF index */
20359 next_fcf_index = phba->fcf.current_rec.fcf_indx;
20361 next_priority:
20362 /* Determine the next fcf index to check */
20363 next_fcf_index = (next_fcf_index + 1) % LPFC_SLI4_FCF_TBL_INDX_MAX;
20364 next_fcf_index = find_next_bit(phba->fcf.fcf_rr_bmask,
20365 LPFC_SLI4_FCF_TBL_INDX_MAX,
20366 next_fcf_index);
20368 /* Wrap around condition on phba->fcf.fcf_rr_bmask */
20369 if (next_fcf_index >= LPFC_SLI4_FCF_TBL_INDX_MAX) {
20371 * If we have wrapped then we need to clear the bits that
20372 * have been tested so that we can detect when we should
20373 * change the priority level.
20375 next_fcf_index = find_first_bit(phba->fcf.fcf_rr_bmask,
20376 LPFC_SLI4_FCF_TBL_INDX_MAX);
20380 /* Check roundrobin failover list empty condition */
20381 if (next_fcf_index >= LPFC_SLI4_FCF_TBL_INDX_MAX ||
20382 next_fcf_index == phba->fcf.current_rec.fcf_indx) {
20384 * If next fcf index is not found check if there are lower
20385 * Priority level fcf's in the fcf_priority list.
20386 * Set up the rr_bmask with all of the avaiable fcf bits
20387 * at that level and continue the selection process.
20389 if (lpfc_check_next_fcf_pri_level(phba))
20390 goto initial_priority;
20391 lpfc_printf_log(phba, KERN_WARNING, LOG_FIP,
20392 "2844 No roundrobin failover FCF available\n");
20394 return LPFC_FCOE_FCF_NEXT_NONE;
20397 if (next_fcf_index < LPFC_SLI4_FCF_TBL_INDX_MAX &&
20398 phba->fcf.fcf_pri[next_fcf_index].fcf_rec.flag &
20399 LPFC_FCF_FLOGI_FAILED) {
20400 if (list_is_singular(&phba->fcf.fcf_pri_list))
20401 return LPFC_FCOE_FCF_NEXT_NONE;
20403 goto next_priority;
20406 lpfc_printf_log(phba, KERN_INFO, LOG_FIP,
20407 "2845 Get next roundrobin failover FCF (x%x)\n",
20408 next_fcf_index);
20410 return next_fcf_index;
20414 * lpfc_sli4_fcf_rr_index_set - Set bmask with eligible fcf record index
20415 * @phba: pointer to lpfc hba data structure.
20416 * @fcf_index: index into the FCF table to 'set'
20418 * This routine sets the FCF record index in to the eligible bmask for
20419 * roundrobin failover search. It checks to make sure that the index
20420 * does not go beyond the range of the driver allocated bmask dimension
20421 * before setting the bit.
20423 * Returns 0 if the index bit successfully set, otherwise, it returns
20424 * -EINVAL.
20427 lpfc_sli4_fcf_rr_index_set(struct lpfc_hba *phba, uint16_t fcf_index)
20429 if (fcf_index >= LPFC_SLI4_FCF_TBL_INDX_MAX) {
20430 lpfc_printf_log(phba, KERN_ERR, LOG_FIP,
20431 "2610 FCF (x%x) reached driver's book "
20432 "keeping dimension:x%x\n",
20433 fcf_index, LPFC_SLI4_FCF_TBL_INDX_MAX);
20434 return -EINVAL;
20436 /* Set the eligible FCF record index bmask */
20437 set_bit(fcf_index, phba->fcf.fcf_rr_bmask);
20439 lpfc_printf_log(phba, KERN_INFO, LOG_FIP,
20440 "2790 Set FCF (x%x) to roundrobin FCF failover "
20441 "bmask\n", fcf_index);
20443 return 0;
20447 * lpfc_sli4_fcf_rr_index_clear - Clear bmask from eligible fcf record index
20448 * @phba: pointer to lpfc hba data structure.
20449 * @fcf_index: index into the FCF table to 'clear'
20451 * This routine clears the FCF record index from the eligible bmask for
20452 * roundrobin failover search. It checks to make sure that the index
20453 * does not go beyond the range of the driver allocated bmask dimension
20454 * before clearing the bit.
20456 void
20457 lpfc_sli4_fcf_rr_index_clear(struct lpfc_hba *phba, uint16_t fcf_index)
20459 struct lpfc_fcf_pri *fcf_pri, *fcf_pri_next;
20460 if (fcf_index >= LPFC_SLI4_FCF_TBL_INDX_MAX) {
20461 lpfc_printf_log(phba, KERN_ERR, LOG_FIP,
20462 "2762 FCF (x%x) reached driver's book "
20463 "keeping dimension:x%x\n",
20464 fcf_index, LPFC_SLI4_FCF_TBL_INDX_MAX);
20465 return;
20467 /* Clear the eligible FCF record index bmask */
20468 spin_lock_irq(&phba->hbalock);
20469 list_for_each_entry_safe(fcf_pri, fcf_pri_next, &phba->fcf.fcf_pri_list,
20470 list) {
20471 if (fcf_pri->fcf_rec.fcf_index == fcf_index) {
20472 list_del_init(&fcf_pri->list);
20473 break;
20476 spin_unlock_irq(&phba->hbalock);
20477 clear_bit(fcf_index, phba->fcf.fcf_rr_bmask);
20479 lpfc_printf_log(phba, KERN_INFO, LOG_FIP,
20480 "2791 Clear FCF (x%x) from roundrobin failover "
20481 "bmask\n", fcf_index);
20485 * lpfc_mbx_cmpl_redisc_fcf_table - completion routine for rediscover FCF table
20486 * @phba: pointer to lpfc hba data structure.
20487 * @mbox: An allocated pointer to type LPFC_MBOXQ_t
20489 * This routine is the completion routine for the rediscover FCF table mailbox
20490 * command. If the mailbox command returned failure, it will try to stop the
20491 * FCF rediscover wait timer.
20493 static void
20494 lpfc_mbx_cmpl_redisc_fcf_table(struct lpfc_hba *phba, LPFC_MBOXQ_t *mbox)
20496 struct lpfc_mbx_redisc_fcf_tbl *redisc_fcf;
20497 uint32_t shdr_status, shdr_add_status;
20499 redisc_fcf = &mbox->u.mqe.un.redisc_fcf_tbl;
20501 shdr_status = bf_get(lpfc_mbox_hdr_status,
20502 &redisc_fcf->header.cfg_shdr.response);
20503 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status,
20504 &redisc_fcf->header.cfg_shdr.response);
20505 if (shdr_status || shdr_add_status) {
20506 lpfc_printf_log(phba, KERN_ERR, LOG_FIP,
20507 "2746 Requesting for FCF rediscovery failed "
20508 "status x%x add_status x%x\n",
20509 shdr_status, shdr_add_status);
20510 if (phba->fcf.fcf_flag & FCF_ACVL_DISC) {
20511 spin_lock_irq(&phba->hbalock);
20512 phba->fcf.fcf_flag &= ~FCF_ACVL_DISC;
20513 spin_unlock_irq(&phba->hbalock);
20515 * CVL event triggered FCF rediscover request failed,
20516 * last resort to re-try current registered FCF entry.
20518 lpfc_retry_pport_discovery(phba);
20519 } else {
20520 spin_lock_irq(&phba->hbalock);
20521 phba->fcf.fcf_flag &= ~FCF_DEAD_DISC;
20522 spin_unlock_irq(&phba->hbalock);
20524 * DEAD FCF event triggered FCF rediscover request
20525 * failed, last resort to fail over as a link down
20526 * to FCF registration.
20528 lpfc_sli4_fcf_dead_failthrough(phba);
20530 } else {
20531 lpfc_printf_log(phba, KERN_INFO, LOG_FIP,
20532 "2775 Start FCF rediscover quiescent timer\n");
20534 * Start FCF rediscovery wait timer for pending FCF
20535 * before rescan FCF record table.
20537 lpfc_fcf_redisc_wait_start_timer(phba);
20540 mempool_free(mbox, phba->mbox_mem_pool);
20544 * lpfc_sli4_redisc_fcf_table - Request to rediscover entire FCF table by port.
20545 * @phba: pointer to lpfc hba data structure.
20547 * This routine is invoked to request for rediscovery of the entire FCF table
20548 * by the port.
20551 lpfc_sli4_redisc_fcf_table(struct lpfc_hba *phba)
20553 LPFC_MBOXQ_t *mbox;
20554 struct lpfc_mbx_redisc_fcf_tbl *redisc_fcf;
20555 int rc, length;
20557 /* Cancel retry delay timers to all vports before FCF rediscover */
20558 lpfc_cancel_all_vport_retry_delay_timer(phba);
20560 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
20561 if (!mbox) {
20562 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
20563 "2745 Failed to allocate mbox for "
20564 "requesting FCF rediscover.\n");
20565 return -ENOMEM;
20568 length = (sizeof(struct lpfc_mbx_redisc_fcf_tbl) -
20569 sizeof(struct lpfc_sli4_cfg_mhdr));
20570 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_FCOE,
20571 LPFC_MBOX_OPCODE_FCOE_REDISCOVER_FCF,
20572 length, LPFC_SLI4_MBX_EMBED);
20574 redisc_fcf = &mbox->u.mqe.un.redisc_fcf_tbl;
20575 /* Set count to 0 for invalidating the entire FCF database */
20576 bf_set(lpfc_mbx_redisc_fcf_count, redisc_fcf, 0);
20578 /* Issue the mailbox command asynchronously */
20579 mbox->vport = phba->pport;
20580 mbox->mbox_cmpl = lpfc_mbx_cmpl_redisc_fcf_table;
20581 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_NOWAIT);
20583 if (rc == MBX_NOT_FINISHED) {
20584 mempool_free(mbox, phba->mbox_mem_pool);
20585 return -EIO;
20587 return 0;
20591 * lpfc_sli4_fcf_dead_failthrough - Failthrough routine to fcf dead event
20592 * @phba: pointer to lpfc hba data structure.
20594 * This function is the failover routine as a last resort to the FCF DEAD
20595 * event when driver failed to perform fast FCF failover.
20597 void
20598 lpfc_sli4_fcf_dead_failthrough(struct lpfc_hba *phba)
20600 uint32_t link_state;
20603 * Last resort as FCF DEAD event failover will treat this as
20604 * a link down, but save the link state because we don't want
20605 * it to be changed to Link Down unless it is already down.
20607 link_state = phba->link_state;
20608 lpfc_linkdown(phba);
20609 phba->link_state = link_state;
20611 /* Unregister FCF if no devices connected to it */
20612 lpfc_unregister_unused_fcf(phba);
20616 * lpfc_sli_get_config_region23 - Get sli3 port region 23 data.
20617 * @phba: pointer to lpfc hba data structure.
20618 * @rgn23_data: pointer to configure region 23 data.
20620 * This function gets SLI3 port configure region 23 data through memory dump
20621 * mailbox command. When it successfully retrieves data, the size of the data
20622 * will be returned, otherwise, 0 will be returned.
20624 static uint32_t
20625 lpfc_sli_get_config_region23(struct lpfc_hba *phba, char *rgn23_data)
20627 LPFC_MBOXQ_t *pmb = NULL;
20628 MAILBOX_t *mb;
20629 uint32_t offset = 0;
20630 int rc;
20632 if (!rgn23_data)
20633 return 0;
20635 pmb = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
20636 if (!pmb) {
20637 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
20638 "2600 failed to allocate mailbox memory\n");
20639 return 0;
20641 mb = &pmb->u.mb;
20643 do {
20644 lpfc_dump_mem(phba, pmb, offset, DMP_REGION_23);
20645 rc = lpfc_sli_issue_mbox(phba, pmb, MBX_POLL);
20647 if (rc != MBX_SUCCESS) {
20648 lpfc_printf_log(phba, KERN_INFO, LOG_INIT,
20649 "2601 failed to read config "
20650 "region 23, rc 0x%x Status 0x%x\n",
20651 rc, mb->mbxStatus);
20652 mb->un.varDmp.word_cnt = 0;
20655 * dump mem may return a zero when finished or we got a
20656 * mailbox error, either way we are done.
20658 if (mb->un.varDmp.word_cnt == 0)
20659 break;
20661 if (mb->un.varDmp.word_cnt > DMP_RGN23_SIZE - offset)
20662 mb->un.varDmp.word_cnt = DMP_RGN23_SIZE - offset;
20664 lpfc_sli_pcimem_bcopy(((uint8_t *)mb) + DMP_RSP_OFFSET,
20665 rgn23_data + offset,
20666 mb->un.varDmp.word_cnt);
20667 offset += mb->un.varDmp.word_cnt;
20668 } while (mb->un.varDmp.word_cnt && offset < DMP_RGN23_SIZE);
20670 mempool_free(pmb, phba->mbox_mem_pool);
20671 return offset;
20675 * lpfc_sli4_get_config_region23 - Get sli4 port region 23 data.
20676 * @phba: pointer to lpfc hba data structure.
20677 * @rgn23_data: pointer to configure region 23 data.
20679 * This function gets SLI4 port configure region 23 data through memory dump
20680 * mailbox command. When it successfully retrieves data, the size of the data
20681 * will be returned, otherwise, 0 will be returned.
20683 static uint32_t
20684 lpfc_sli4_get_config_region23(struct lpfc_hba *phba, char *rgn23_data)
20686 LPFC_MBOXQ_t *mboxq = NULL;
20687 struct lpfc_dmabuf *mp = NULL;
20688 struct lpfc_mqe *mqe;
20689 uint32_t data_length = 0;
20690 int rc;
20692 if (!rgn23_data)
20693 return 0;
20695 mboxq = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
20696 if (!mboxq) {
20697 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
20698 "3105 failed to allocate mailbox memory\n");
20699 return 0;
20702 if (lpfc_sli4_dump_cfg_rg23(phba, mboxq))
20703 goto out;
20704 mqe = &mboxq->u.mqe;
20705 mp = mboxq->ctx_buf;
20706 rc = lpfc_sli_issue_mbox(phba, mboxq, MBX_POLL);
20707 if (rc)
20708 goto out;
20709 data_length = mqe->un.mb_words[5];
20710 if (data_length == 0)
20711 goto out;
20712 if (data_length > DMP_RGN23_SIZE) {
20713 data_length = 0;
20714 goto out;
20716 lpfc_sli_pcimem_bcopy((char *)mp->virt, rgn23_data, data_length);
20717 out:
20718 lpfc_mbox_rsrc_cleanup(phba, mboxq, MBOX_THD_UNLOCKED);
20719 return data_length;
20723 * lpfc_sli_read_link_ste - Read region 23 to decide if link is disabled.
20724 * @phba: pointer to lpfc hba data structure.
20726 * This function read region 23 and parse TLV for port status to
20727 * decide if the user disaled the port. If the TLV indicates the
20728 * port is disabled, the hba_flag is set accordingly.
20730 void
20731 lpfc_sli_read_link_ste(struct lpfc_hba *phba)
20733 uint8_t *rgn23_data = NULL;
20734 uint32_t if_type, data_size, sub_tlv_len, tlv_offset;
20735 uint32_t offset = 0;
20737 /* Get adapter Region 23 data */
20738 rgn23_data = kzalloc(DMP_RGN23_SIZE, GFP_KERNEL);
20739 if (!rgn23_data)
20740 goto out;
20742 if (phba->sli_rev < LPFC_SLI_REV4)
20743 data_size = lpfc_sli_get_config_region23(phba, rgn23_data);
20744 else {
20745 if_type = bf_get(lpfc_sli_intf_if_type,
20746 &phba->sli4_hba.sli_intf);
20747 if (if_type == LPFC_SLI_INTF_IF_TYPE_0)
20748 goto out;
20749 data_size = lpfc_sli4_get_config_region23(phba, rgn23_data);
20752 if (!data_size)
20753 goto out;
20755 /* Check the region signature first */
20756 if (memcmp(&rgn23_data[offset], LPFC_REGION23_SIGNATURE, 4)) {
20757 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
20758 "2619 Config region 23 has bad signature\n");
20759 goto out;
20761 offset += 4;
20763 /* Check the data structure version */
20764 if (rgn23_data[offset] != LPFC_REGION23_VERSION) {
20765 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
20766 "2620 Config region 23 has bad version\n");
20767 goto out;
20769 offset += 4;
20771 /* Parse TLV entries in the region */
20772 while (offset < data_size) {
20773 if (rgn23_data[offset] == LPFC_REGION23_LAST_REC)
20774 break;
20776 * If the TLV is not driver specific TLV or driver id is
20777 * not linux driver id, skip the record.
20779 if ((rgn23_data[offset] != DRIVER_SPECIFIC_TYPE) ||
20780 (rgn23_data[offset + 2] != LINUX_DRIVER_ID) ||
20781 (rgn23_data[offset + 3] != 0)) {
20782 offset += rgn23_data[offset + 1] * 4 + 4;
20783 continue;
20786 /* Driver found a driver specific TLV in the config region */
20787 sub_tlv_len = rgn23_data[offset + 1] * 4;
20788 offset += 4;
20789 tlv_offset = 0;
20792 * Search for configured port state sub-TLV.
20794 while ((offset < data_size) &&
20795 (tlv_offset < sub_tlv_len)) {
20796 if (rgn23_data[offset] == LPFC_REGION23_LAST_REC) {
20797 offset += 4;
20798 tlv_offset += 4;
20799 break;
20801 if (rgn23_data[offset] != PORT_STE_TYPE) {
20802 offset += rgn23_data[offset + 1] * 4 + 4;
20803 tlv_offset += rgn23_data[offset + 1] * 4 + 4;
20804 continue;
20807 /* This HBA contains PORT_STE configured */
20808 if (!rgn23_data[offset + 2])
20809 set_bit(LINK_DISABLED, &phba->hba_flag);
20811 goto out;
20815 out:
20816 kfree(rgn23_data);
20817 return;
20821 * lpfc_log_fw_write_cmpl - logs firmware write completion status
20822 * @phba: pointer to lpfc hba data structure
20823 * @shdr_status: wr_object rsp's status field
20824 * @shdr_add_status: wr_object rsp's add_status field
20825 * @shdr_add_status_2: wr_object rsp's add_status_2 field
20826 * @shdr_change_status: wr_object rsp's change_status field
20827 * @shdr_csf: wr_object rsp's csf bit
20829 * This routine is intended to be called after a firmware write completes.
20830 * It will log next action items to be performed by the user to instantiate
20831 * the newly downloaded firmware or reason for incompatibility.
20833 static void
20834 lpfc_log_fw_write_cmpl(struct lpfc_hba *phba, u32 shdr_status,
20835 u32 shdr_add_status, u32 shdr_add_status_2,
20836 u32 shdr_change_status, u32 shdr_csf)
20838 lpfc_printf_log(phba, KERN_INFO, LOG_MBOX | LOG_SLI,
20839 "4198 %s: flash_id x%02x, asic_rev x%02x, "
20840 "status x%02x, add_status x%02x, add_status_2 x%02x, "
20841 "change_status x%02x, csf %01x\n", __func__,
20842 phba->sli4_hba.flash_id, phba->sli4_hba.asic_rev,
20843 shdr_status, shdr_add_status, shdr_add_status_2,
20844 shdr_change_status, shdr_csf);
20846 if (shdr_add_status == LPFC_ADD_STATUS_INCOMPAT_OBJ) {
20847 switch (shdr_add_status_2) {
20848 case LPFC_ADD_STATUS_2_INCOMPAT_FLASH:
20849 lpfc_log_msg(phba, KERN_WARNING, LOG_MBOX | LOG_SLI,
20850 "4199 Firmware write failed: "
20851 "image incompatible with flash x%02x\n",
20852 phba->sli4_hba.flash_id);
20853 break;
20854 case LPFC_ADD_STATUS_2_INCORRECT_ASIC:
20855 lpfc_log_msg(phba, KERN_WARNING, LOG_MBOX | LOG_SLI,
20856 "4200 Firmware write failed: "
20857 "image incompatible with ASIC "
20858 "architecture x%02x\n",
20859 phba->sli4_hba.asic_rev);
20860 break;
20861 default:
20862 lpfc_log_msg(phba, KERN_WARNING, LOG_MBOX | LOG_SLI,
20863 "4210 Firmware write failed: "
20864 "add_status_2 x%02x\n",
20865 shdr_add_status_2);
20866 break;
20868 } else if (!shdr_status && !shdr_add_status) {
20869 if (shdr_change_status == LPFC_CHANGE_STATUS_FW_RESET ||
20870 shdr_change_status == LPFC_CHANGE_STATUS_PORT_MIGRATION) {
20871 if (shdr_csf)
20872 shdr_change_status =
20873 LPFC_CHANGE_STATUS_PCI_RESET;
20876 switch (shdr_change_status) {
20877 case (LPFC_CHANGE_STATUS_PHYS_DEV_RESET):
20878 lpfc_log_msg(phba, KERN_NOTICE, LOG_MBOX | LOG_SLI,
20879 "3198 Firmware write complete: System "
20880 "reboot required to instantiate\n");
20881 break;
20882 case (LPFC_CHANGE_STATUS_FW_RESET):
20883 lpfc_log_msg(phba, KERN_NOTICE, LOG_MBOX | LOG_SLI,
20884 "3199 Firmware write complete: "
20885 "Firmware reset required to "
20886 "instantiate\n");
20887 break;
20888 case (LPFC_CHANGE_STATUS_PORT_MIGRATION):
20889 lpfc_log_msg(phba, KERN_NOTICE, LOG_MBOX | LOG_SLI,
20890 "3200 Firmware write complete: Port "
20891 "Migration or PCI Reset required to "
20892 "instantiate\n");
20893 break;
20894 case (LPFC_CHANGE_STATUS_PCI_RESET):
20895 lpfc_log_msg(phba, KERN_NOTICE, LOG_MBOX | LOG_SLI,
20896 "3201 Firmware write complete: PCI "
20897 "Reset required to instantiate\n");
20898 break;
20899 default:
20900 break;
20906 * lpfc_wr_object - write an object to the firmware
20907 * @phba: HBA structure that indicates port to create a queue on.
20908 * @dmabuf_list: list of dmabufs to write to the port.
20909 * @size: the total byte value of the objects to write to the port.
20910 * @offset: the current offset to be used to start the transfer.
20912 * This routine will create a wr_object mailbox command to send to the port.
20913 * the mailbox command will be constructed using the dma buffers described in
20914 * @dmabuf_list to create a list of BDEs. This routine will fill in as many
20915 * BDEs that the imbedded mailbox can support. The @offset variable will be
20916 * used to indicate the starting offset of the transfer and will also return
20917 * the offset after the write object mailbox has completed. @size is used to
20918 * determine the end of the object and whether the eof bit should be set.
20920 * Return 0 is successful and offset will contain the new offset to use
20921 * for the next write.
20922 * Return negative value for error cases.
20925 lpfc_wr_object(struct lpfc_hba *phba, struct list_head *dmabuf_list,
20926 uint32_t size, uint32_t *offset)
20928 struct lpfc_mbx_wr_object *wr_object;
20929 LPFC_MBOXQ_t *mbox;
20930 int rc = 0, i = 0;
20931 int mbox_status = 0;
20932 uint32_t shdr_status, shdr_add_status, shdr_add_status_2;
20933 uint32_t shdr_change_status = 0, shdr_csf = 0;
20934 uint32_t mbox_tmo;
20935 struct lpfc_dmabuf *dmabuf;
20936 uint32_t written = 0;
20937 bool check_change_status = false;
20939 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
20940 if (!mbox)
20941 return -ENOMEM;
20943 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
20944 LPFC_MBOX_OPCODE_WRITE_OBJECT,
20945 sizeof(struct lpfc_mbx_wr_object) -
20946 sizeof(struct lpfc_sli4_cfg_mhdr), LPFC_SLI4_MBX_EMBED);
20948 wr_object = (struct lpfc_mbx_wr_object *)&mbox->u.mqe.un.wr_object;
20949 wr_object->u.request.write_offset = *offset;
20950 sprintf((uint8_t *)wr_object->u.request.object_name, "/");
20951 wr_object->u.request.object_name[0] =
20952 cpu_to_le32(wr_object->u.request.object_name[0]);
20953 bf_set(lpfc_wr_object_eof, &wr_object->u.request, 0);
20954 list_for_each_entry(dmabuf, dmabuf_list, list) {
20955 if (i >= LPFC_MBX_WR_CONFIG_MAX_BDE || written >= size)
20956 break;
20957 wr_object->u.request.bde[i].addrLow = putPaddrLow(dmabuf->phys);
20958 wr_object->u.request.bde[i].addrHigh =
20959 putPaddrHigh(dmabuf->phys);
20960 if (written + SLI4_PAGE_SIZE >= size) {
20961 wr_object->u.request.bde[i].tus.f.bdeSize =
20962 (size - written);
20963 written += (size - written);
20964 bf_set(lpfc_wr_object_eof, &wr_object->u.request, 1);
20965 bf_set(lpfc_wr_object_eas, &wr_object->u.request, 1);
20966 check_change_status = true;
20967 } else {
20968 wr_object->u.request.bde[i].tus.f.bdeSize =
20969 SLI4_PAGE_SIZE;
20970 written += SLI4_PAGE_SIZE;
20972 i++;
20974 wr_object->u.request.bde_count = i;
20975 bf_set(lpfc_wr_object_write_length, &wr_object->u.request, written);
20976 if (!phba->sli4_hba.intr_enable)
20977 mbox_status = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
20978 else {
20979 mbox_tmo = lpfc_mbox_tmo_val(phba, mbox);
20980 mbox_status = lpfc_sli_issue_mbox_wait(phba, mbox, mbox_tmo);
20983 /* The mbox status needs to be maintained to detect MBOX_TIMEOUT. */
20984 rc = mbox_status;
20986 /* The IOCTL status is embedded in the mailbox subheader. */
20987 shdr_status = bf_get(lpfc_mbox_hdr_status,
20988 &wr_object->header.cfg_shdr.response);
20989 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status,
20990 &wr_object->header.cfg_shdr.response);
20991 shdr_add_status_2 = bf_get(lpfc_mbox_hdr_add_status_2,
20992 &wr_object->header.cfg_shdr.response);
20993 if (check_change_status) {
20994 shdr_change_status = bf_get(lpfc_wr_object_change_status,
20995 &wr_object->u.response);
20996 shdr_csf = bf_get(lpfc_wr_object_csf,
20997 &wr_object->u.response);
21000 if (shdr_status || shdr_add_status || shdr_add_status_2 || rc) {
21001 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
21002 "3025 Write Object mailbox failed with "
21003 "status x%x add_status x%x, add_status_2 x%x, "
21004 "mbx status x%x\n",
21005 shdr_status, shdr_add_status, shdr_add_status_2,
21006 rc);
21007 rc = -ENXIO;
21008 *offset = shdr_add_status;
21009 } else {
21010 *offset += wr_object->u.response.actual_write_length;
21013 if (rc || check_change_status)
21014 lpfc_log_fw_write_cmpl(phba, shdr_status, shdr_add_status,
21015 shdr_add_status_2, shdr_change_status,
21016 shdr_csf);
21018 if (!phba->sli4_hba.intr_enable)
21019 mempool_free(mbox, phba->mbox_mem_pool);
21020 else if (mbox_status != MBX_TIMEOUT)
21021 mempool_free(mbox, phba->mbox_mem_pool);
21023 return rc;
21027 * lpfc_cleanup_pending_mbox - Free up vport discovery mailbox commands.
21028 * @vport: pointer to vport data structure.
21030 * This function iterate through the mailboxq and clean up all REG_LOGIN
21031 * and REG_VPI mailbox commands associated with the vport. This function
21032 * is called when driver want to restart discovery of the vport due to
21033 * a Clear Virtual Link event.
21035 void
21036 lpfc_cleanup_pending_mbox(struct lpfc_vport *vport)
21038 struct lpfc_hba *phba = vport->phba;
21039 LPFC_MBOXQ_t *mb, *nextmb;
21040 struct lpfc_nodelist *ndlp;
21041 struct lpfc_nodelist *act_mbx_ndlp = NULL;
21042 LIST_HEAD(mbox_cmd_list);
21043 uint8_t restart_loop;
21045 /* Clean up internally queued mailbox commands with the vport */
21046 spin_lock_irq(&phba->hbalock);
21047 list_for_each_entry_safe(mb, nextmb, &phba->sli.mboxq, list) {
21048 if (mb->vport != vport)
21049 continue;
21051 if ((mb->u.mb.mbxCommand != MBX_REG_LOGIN64) &&
21052 (mb->u.mb.mbxCommand != MBX_REG_VPI))
21053 continue;
21055 list_move_tail(&mb->list, &mbox_cmd_list);
21057 /* Clean up active mailbox command with the vport */
21058 mb = phba->sli.mbox_active;
21059 if (mb && (mb->vport == vport)) {
21060 if ((mb->u.mb.mbxCommand == MBX_REG_LOGIN64) ||
21061 (mb->u.mb.mbxCommand == MBX_REG_VPI))
21062 mb->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
21063 if (mb->u.mb.mbxCommand == MBX_REG_LOGIN64) {
21064 act_mbx_ndlp = mb->ctx_ndlp;
21066 /* This reference is local to this routine. The
21067 * reference is removed at routine exit.
21069 act_mbx_ndlp = lpfc_nlp_get(act_mbx_ndlp);
21071 /* Unregister the RPI when mailbox complete */
21072 mb->mbox_flag |= LPFC_MBX_IMED_UNREG;
21075 /* Cleanup any mailbox completions which are not yet processed */
21076 do {
21077 restart_loop = 0;
21078 list_for_each_entry(mb, &phba->sli.mboxq_cmpl, list) {
21080 * If this mailox is already processed or it is
21081 * for another vport ignore it.
21083 if ((mb->vport != vport) ||
21084 (mb->mbox_flag & LPFC_MBX_IMED_UNREG))
21085 continue;
21087 if ((mb->u.mb.mbxCommand != MBX_REG_LOGIN64) &&
21088 (mb->u.mb.mbxCommand != MBX_REG_VPI))
21089 continue;
21091 mb->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
21092 if (mb->u.mb.mbxCommand == MBX_REG_LOGIN64) {
21093 ndlp = mb->ctx_ndlp;
21094 /* Unregister the RPI when mailbox complete */
21095 mb->mbox_flag |= LPFC_MBX_IMED_UNREG;
21096 restart_loop = 1;
21097 spin_unlock_irq(&phba->hbalock);
21098 spin_lock(&ndlp->lock);
21099 ndlp->nlp_flag &= ~NLP_IGNR_REG_CMPL;
21100 spin_unlock(&ndlp->lock);
21101 spin_lock_irq(&phba->hbalock);
21102 break;
21105 } while (restart_loop);
21107 spin_unlock_irq(&phba->hbalock);
21109 /* Release the cleaned-up mailbox commands */
21110 while (!list_empty(&mbox_cmd_list)) {
21111 list_remove_head(&mbox_cmd_list, mb, LPFC_MBOXQ_t, list);
21112 if (mb->u.mb.mbxCommand == MBX_REG_LOGIN64) {
21113 ndlp = mb->ctx_ndlp;
21114 mb->ctx_ndlp = NULL;
21115 if (ndlp) {
21116 spin_lock(&ndlp->lock);
21117 ndlp->nlp_flag &= ~NLP_IGNR_REG_CMPL;
21118 spin_unlock(&ndlp->lock);
21119 lpfc_nlp_put(ndlp);
21122 lpfc_mbox_rsrc_cleanup(phba, mb, MBOX_THD_UNLOCKED);
21125 /* Release the ndlp with the cleaned-up active mailbox command */
21126 if (act_mbx_ndlp) {
21127 spin_lock(&act_mbx_ndlp->lock);
21128 act_mbx_ndlp->nlp_flag &= ~NLP_IGNR_REG_CMPL;
21129 spin_unlock(&act_mbx_ndlp->lock);
21130 lpfc_nlp_put(act_mbx_ndlp);
21135 * lpfc_drain_txq - Drain the txq
21136 * @phba: Pointer to HBA context object.
21138 * This function attempt to submit IOCBs on the txq
21139 * to the adapter. For SLI4 adapters, the txq contains
21140 * ELS IOCBs that have been deferred because the there
21141 * are no SGLs. This congestion can occur with large
21142 * vport counts during node discovery.
21145 uint32_t
21146 lpfc_drain_txq(struct lpfc_hba *phba)
21148 LIST_HEAD(completions);
21149 struct lpfc_sli_ring *pring;
21150 struct lpfc_iocbq *piocbq = NULL;
21151 unsigned long iflags = 0;
21152 char *fail_msg = NULL;
21153 uint32_t txq_cnt = 0;
21154 struct lpfc_queue *wq;
21155 int ret = 0;
21157 if (phba->link_flag & LS_MDS_LOOPBACK) {
21158 /* MDS WQE are posted only to first WQ*/
21159 wq = phba->sli4_hba.hdwq[0].io_wq;
21160 if (unlikely(!wq))
21161 return 0;
21162 pring = wq->pring;
21163 } else {
21164 wq = phba->sli4_hba.els_wq;
21165 if (unlikely(!wq))
21166 return 0;
21167 pring = lpfc_phba_elsring(phba);
21170 if (unlikely(!pring) || list_empty(&pring->txq))
21171 return 0;
21173 spin_lock_irqsave(&pring->ring_lock, iflags);
21174 list_for_each_entry(piocbq, &pring->txq, list) {
21175 txq_cnt++;
21178 if (txq_cnt > pring->txq_max)
21179 pring->txq_max = txq_cnt;
21181 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21183 while (!list_empty(&pring->txq)) {
21184 spin_lock_irqsave(&pring->ring_lock, iflags);
21186 piocbq = lpfc_sli_ringtx_get(phba, pring);
21187 if (!piocbq) {
21188 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21189 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
21190 "2823 txq empty and txq_cnt is %d\n",
21191 txq_cnt);
21192 break;
21194 txq_cnt--;
21196 ret = __lpfc_sli_issue_iocb(phba, pring->ringno, piocbq, 0);
21198 if (ret && ret != IOCB_BUSY) {
21199 fail_msg = " - Cannot send IO ";
21200 piocbq->cmd_flag &= ~LPFC_DRIVER_ABORTED;
21202 if (fail_msg) {
21203 piocbq->cmd_flag |= LPFC_DRIVER_ABORTED;
21204 /* Failed means we can't issue and need to cancel */
21205 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
21206 "2822 IOCB failed %s iotag 0x%x "
21207 "xri 0x%x %d flg x%x\n",
21208 fail_msg, piocbq->iotag,
21209 piocbq->sli4_xritag, ret,
21210 piocbq->cmd_flag);
21211 list_add_tail(&piocbq->list, &completions);
21212 fail_msg = NULL;
21214 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21215 if (txq_cnt == 0 || ret == IOCB_BUSY)
21216 break;
21218 /* Cancel all the IOCBs that cannot be issued */
21219 lpfc_sli_cancel_iocbs(phba, &completions, IOSTAT_LOCAL_REJECT,
21220 IOERR_SLI_ABORTED);
21222 return txq_cnt;
21226 * lpfc_wqe_bpl2sgl - Convert the bpl/bde to a sgl.
21227 * @phba: Pointer to HBA context object.
21228 * @pwqeq: Pointer to command WQE.
21229 * @sglq: Pointer to the scatter gather queue object.
21231 * This routine converts the bpl or bde that is in the WQE
21232 * to a sgl list for the sli4 hardware. The physical address
21233 * of the bpl/bde is converted back to a virtual address.
21234 * If the WQE contains a BPL then the list of BDE's is
21235 * converted to sli4_sge's. If the WQE contains a single
21236 * BDE then it is converted to a single sli_sge.
21237 * The WQE is still in cpu endianness so the contents of
21238 * the bpl can be used without byte swapping.
21240 * Returns valid XRI = Success, NO_XRI = Failure.
21242 static uint16_t
21243 lpfc_wqe_bpl2sgl(struct lpfc_hba *phba, struct lpfc_iocbq *pwqeq,
21244 struct lpfc_sglq *sglq)
21246 uint16_t xritag = NO_XRI;
21247 struct ulp_bde64 *bpl = NULL;
21248 struct ulp_bde64 bde;
21249 struct sli4_sge *sgl = NULL;
21250 struct lpfc_dmabuf *dmabuf;
21251 union lpfc_wqe128 *wqe;
21252 int numBdes = 0;
21253 int i = 0;
21254 uint32_t offset = 0; /* accumulated offset in the sg request list */
21255 int inbound = 0; /* number of sg reply entries inbound from firmware */
21256 uint32_t cmd;
21258 if (!pwqeq || !sglq)
21259 return xritag;
21261 sgl = (struct sli4_sge *)sglq->sgl;
21262 wqe = &pwqeq->wqe;
21263 pwqeq->iocb.ulpIoTag = pwqeq->iotag;
21265 cmd = bf_get(wqe_cmnd, &wqe->generic.wqe_com);
21266 if (cmd == CMD_XMIT_BLS_RSP64_WQE)
21267 return sglq->sli4_xritag;
21268 numBdes = pwqeq->num_bdes;
21269 if (numBdes) {
21270 /* The addrHigh and addrLow fields within the WQE
21271 * have not been byteswapped yet so there is no
21272 * need to swap them back.
21274 if (pwqeq->bpl_dmabuf)
21275 dmabuf = pwqeq->bpl_dmabuf;
21276 else
21277 return xritag;
21279 bpl = (struct ulp_bde64 *)dmabuf->virt;
21280 if (!bpl)
21281 return xritag;
21283 for (i = 0; i < numBdes; i++) {
21284 /* Should already be byte swapped. */
21285 sgl->addr_hi = bpl->addrHigh;
21286 sgl->addr_lo = bpl->addrLow;
21288 sgl->word2 = le32_to_cpu(sgl->word2);
21289 if ((i+1) == numBdes)
21290 bf_set(lpfc_sli4_sge_last, sgl, 1);
21291 else
21292 bf_set(lpfc_sli4_sge_last, sgl, 0);
21293 /* swap the size field back to the cpu so we
21294 * can assign it to the sgl.
21296 bde.tus.w = le32_to_cpu(bpl->tus.w);
21297 sgl->sge_len = cpu_to_le32(bde.tus.f.bdeSize);
21298 /* The offsets in the sgl need to be accumulated
21299 * separately for the request and reply lists.
21300 * The request is always first, the reply follows.
21302 switch (cmd) {
21303 case CMD_GEN_REQUEST64_WQE:
21304 /* add up the reply sg entries */
21305 if (bpl->tus.f.bdeFlags == BUFF_TYPE_BDE_64I)
21306 inbound++;
21307 /* first inbound? reset the offset */
21308 if (inbound == 1)
21309 offset = 0;
21310 bf_set(lpfc_sli4_sge_offset, sgl, offset);
21311 bf_set(lpfc_sli4_sge_type, sgl,
21312 LPFC_SGE_TYPE_DATA);
21313 offset += bde.tus.f.bdeSize;
21314 break;
21315 case CMD_FCP_TRSP64_WQE:
21316 bf_set(lpfc_sli4_sge_offset, sgl, 0);
21317 bf_set(lpfc_sli4_sge_type, sgl,
21318 LPFC_SGE_TYPE_DATA);
21319 break;
21320 case CMD_FCP_TSEND64_WQE:
21321 case CMD_FCP_TRECEIVE64_WQE:
21322 bf_set(lpfc_sli4_sge_type, sgl,
21323 bpl->tus.f.bdeFlags);
21324 if (i < 3)
21325 offset = 0;
21326 else
21327 offset += bde.tus.f.bdeSize;
21328 bf_set(lpfc_sli4_sge_offset, sgl, offset);
21329 break;
21331 sgl->word2 = cpu_to_le32(sgl->word2);
21332 bpl++;
21333 sgl++;
21335 } else if (wqe->gen_req.bde.tus.f.bdeFlags == BUFF_TYPE_BDE_64) {
21336 /* The addrHigh and addrLow fields of the BDE have not
21337 * been byteswapped yet so they need to be swapped
21338 * before putting them in the sgl.
21340 sgl->addr_hi = cpu_to_le32(wqe->gen_req.bde.addrHigh);
21341 sgl->addr_lo = cpu_to_le32(wqe->gen_req.bde.addrLow);
21342 sgl->word2 = le32_to_cpu(sgl->word2);
21343 bf_set(lpfc_sli4_sge_last, sgl, 1);
21344 sgl->word2 = cpu_to_le32(sgl->word2);
21345 sgl->sge_len = cpu_to_le32(wqe->gen_req.bde.tus.f.bdeSize);
21347 return sglq->sli4_xritag;
21351 * lpfc_sli4_issue_wqe - Issue an SLI4 Work Queue Entry (WQE)
21352 * @phba: Pointer to HBA context object.
21353 * @qp: Pointer to HDW queue.
21354 * @pwqe: Pointer to command WQE.
21357 lpfc_sli4_issue_wqe(struct lpfc_hba *phba, struct lpfc_sli4_hdw_queue *qp,
21358 struct lpfc_iocbq *pwqe)
21360 union lpfc_wqe128 *wqe = &pwqe->wqe;
21361 struct lpfc_async_xchg_ctx *ctxp;
21362 struct lpfc_queue *wq;
21363 struct lpfc_sglq *sglq;
21364 struct lpfc_sli_ring *pring;
21365 unsigned long iflags;
21366 uint32_t ret = 0;
21368 /* NVME_LS and NVME_LS ABTS requests. */
21369 if (pwqe->cmd_flag & LPFC_IO_NVME_LS) {
21370 pring = phba->sli4_hba.nvmels_wq->pring;
21371 lpfc_qp_spin_lock_irqsave(&pring->ring_lock, iflags,
21372 qp, wq_access);
21373 sglq = __lpfc_sli_get_els_sglq(phba, pwqe);
21374 if (!sglq) {
21375 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21376 return WQE_BUSY;
21378 pwqe->sli4_lxritag = sglq->sli4_lxritag;
21379 pwqe->sli4_xritag = sglq->sli4_xritag;
21380 if (lpfc_wqe_bpl2sgl(phba, pwqe, sglq) == NO_XRI) {
21381 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21382 return WQE_ERROR;
21384 bf_set(wqe_xri_tag, &pwqe->wqe.xmit_bls_rsp.wqe_com,
21385 pwqe->sli4_xritag);
21386 ret = lpfc_sli4_wq_put(phba->sli4_hba.nvmels_wq, wqe);
21387 if (ret) {
21388 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21389 return ret;
21392 lpfc_sli_ringtxcmpl_put(phba, pring, pwqe);
21393 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21395 lpfc_sli4_poll_eq(qp->hba_eq);
21396 return 0;
21399 /* NVME_FCREQ and NVME_ABTS requests */
21400 if (pwqe->cmd_flag & (LPFC_IO_NVME | LPFC_IO_FCP | LPFC_IO_CMF)) {
21401 /* Get the IO distribution (hba_wqidx) for WQ assignment. */
21402 wq = qp->io_wq;
21403 pring = wq->pring;
21405 bf_set(wqe_cqid, &wqe->generic.wqe_com, qp->io_cq_map);
21407 lpfc_qp_spin_lock_irqsave(&pring->ring_lock, iflags,
21408 qp, wq_access);
21409 ret = lpfc_sli4_wq_put(wq, wqe);
21410 if (ret) {
21411 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21412 return ret;
21414 lpfc_sli_ringtxcmpl_put(phba, pring, pwqe);
21415 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21417 lpfc_sli4_poll_eq(qp->hba_eq);
21418 return 0;
21421 /* NVMET requests */
21422 if (pwqe->cmd_flag & LPFC_IO_NVMET) {
21423 /* Get the IO distribution (hba_wqidx) for WQ assignment. */
21424 wq = qp->io_wq;
21425 pring = wq->pring;
21427 ctxp = pwqe->context_un.axchg;
21428 sglq = ctxp->ctxbuf->sglq;
21429 if (pwqe->sli4_xritag == NO_XRI) {
21430 pwqe->sli4_lxritag = sglq->sli4_lxritag;
21431 pwqe->sli4_xritag = sglq->sli4_xritag;
21433 bf_set(wqe_xri_tag, &pwqe->wqe.xmit_bls_rsp.wqe_com,
21434 pwqe->sli4_xritag);
21435 bf_set(wqe_cqid, &wqe->generic.wqe_com, qp->io_cq_map);
21437 lpfc_qp_spin_lock_irqsave(&pring->ring_lock, iflags,
21438 qp, wq_access);
21439 ret = lpfc_sli4_wq_put(wq, wqe);
21440 if (ret) {
21441 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21442 return ret;
21444 lpfc_sli_ringtxcmpl_put(phba, pring, pwqe);
21445 spin_unlock_irqrestore(&pring->ring_lock, iflags);
21447 lpfc_sli4_poll_eq(qp->hba_eq);
21448 return 0;
21450 return WQE_ERROR;
21454 * lpfc_sli4_issue_abort_iotag - SLI-4 WQE init & issue for the Abort
21455 * @phba: Pointer to HBA context object.
21456 * @cmdiocb: Pointer to driver command iocb object.
21457 * @cmpl: completion function.
21459 * Fill the appropriate fields for the abort WQE and call
21460 * internal routine lpfc_sli4_issue_wqe to send the WQE
21461 * This function is called with hbalock held and no ring_lock held.
21463 * RETURNS 0 - SUCCESS
21467 lpfc_sli4_issue_abort_iotag(struct lpfc_hba *phba, struct lpfc_iocbq *cmdiocb,
21468 void *cmpl)
21470 struct lpfc_vport *vport = cmdiocb->vport;
21471 struct lpfc_iocbq *abtsiocb = NULL;
21472 union lpfc_wqe128 *abtswqe;
21473 struct lpfc_io_buf *lpfc_cmd;
21474 int retval = IOCB_ERROR;
21475 u16 xritag = cmdiocb->sli4_xritag;
21478 * The scsi command can not be in txq and it is in flight because the
21479 * pCmd is still pointing at the SCSI command we have to abort. There
21480 * is no need to search the txcmplq. Just send an abort to the FW.
21483 abtsiocb = __lpfc_sli_get_iocbq(phba);
21484 if (!abtsiocb)
21485 return WQE_NORESOURCE;
21487 /* Indicate the IO is being aborted by the driver. */
21488 cmdiocb->cmd_flag |= LPFC_DRIVER_ABORTED;
21490 abtswqe = &abtsiocb->wqe;
21491 memset(abtswqe, 0, sizeof(*abtswqe));
21493 if (!lpfc_is_link_up(phba) || (phba->link_flag & LS_EXTERNAL_LOOPBACK))
21494 bf_set(abort_cmd_ia, &abtswqe->abort_cmd, 1);
21495 bf_set(abort_cmd_criteria, &abtswqe->abort_cmd, T_XRI_TAG);
21496 abtswqe->abort_cmd.rsrvd5 = 0;
21497 abtswqe->abort_cmd.wqe_com.abort_tag = xritag;
21498 bf_set(wqe_reqtag, &abtswqe->abort_cmd.wqe_com, abtsiocb->iotag);
21499 bf_set(wqe_cmnd, &abtswqe->abort_cmd.wqe_com, CMD_ABORT_XRI_CX);
21500 bf_set(wqe_xri_tag, &abtswqe->generic.wqe_com, 0);
21501 bf_set(wqe_qosd, &abtswqe->abort_cmd.wqe_com, 1);
21502 bf_set(wqe_lenloc, &abtswqe->abort_cmd.wqe_com, LPFC_WQE_LENLOC_NONE);
21503 bf_set(wqe_cmd_type, &abtswqe->abort_cmd.wqe_com, OTHER_COMMAND);
21505 /* ABTS WQE must go to the same WQ as the WQE to be aborted */
21506 abtsiocb->hba_wqidx = cmdiocb->hba_wqidx;
21507 abtsiocb->cmd_flag |= LPFC_USE_FCPWQIDX;
21508 if (cmdiocb->cmd_flag & LPFC_IO_FCP)
21509 abtsiocb->cmd_flag |= LPFC_IO_FCP;
21510 if (cmdiocb->cmd_flag & LPFC_IO_NVME)
21511 abtsiocb->cmd_flag |= LPFC_IO_NVME;
21512 if (cmdiocb->cmd_flag & LPFC_IO_FOF)
21513 abtsiocb->cmd_flag |= LPFC_IO_FOF;
21514 abtsiocb->vport = vport;
21515 abtsiocb->cmd_cmpl = cmpl;
21517 lpfc_cmd = container_of(cmdiocb, struct lpfc_io_buf, cur_iocbq);
21518 retval = lpfc_sli4_issue_wqe(phba, lpfc_cmd->hdwq, abtsiocb);
21520 lpfc_printf_vlog(vport, KERN_INFO, LOG_SLI | LOG_NVME_ABTS | LOG_FCP,
21521 "0359 Abort xri x%x, original iotag x%x, "
21522 "abort cmd iotag x%x retval x%x\n",
21523 xritag, cmdiocb->iotag, abtsiocb->iotag, retval);
21525 if (retval) {
21526 cmdiocb->cmd_flag &= ~LPFC_DRIVER_ABORTED;
21527 __lpfc_sli_release_iocbq(phba, abtsiocb);
21530 return retval;
21533 #ifdef LPFC_MXP_STAT
21535 * lpfc_snapshot_mxp - Snapshot pbl, pvt and busy count
21536 * @phba: pointer to lpfc hba data structure.
21537 * @hwqid: belong to which HWQ.
21539 * The purpose of this routine is to take a snapshot of pbl, pvt and busy count
21540 * 15 seconds after a test case is running.
21542 * The user should call lpfc_debugfs_multixripools_write before running a test
21543 * case to clear stat_snapshot_taken. Then the user starts a test case. During
21544 * test case is running, stat_snapshot_taken is incremented by 1 every time when
21545 * this routine is called from heartbeat timer. When stat_snapshot_taken is
21546 * equal to LPFC_MXP_SNAPSHOT_TAKEN, a snapshot is taken.
21548 void lpfc_snapshot_mxp(struct lpfc_hba *phba, u32 hwqid)
21550 struct lpfc_sli4_hdw_queue *qp;
21551 struct lpfc_multixri_pool *multixri_pool;
21552 struct lpfc_pvt_pool *pvt_pool;
21553 struct lpfc_pbl_pool *pbl_pool;
21554 u32 txcmplq_cnt;
21556 qp = &phba->sli4_hba.hdwq[hwqid];
21557 multixri_pool = qp->p_multixri_pool;
21558 if (!multixri_pool)
21559 return;
21561 if (multixri_pool->stat_snapshot_taken == LPFC_MXP_SNAPSHOT_TAKEN) {
21562 pvt_pool = &qp->p_multixri_pool->pvt_pool;
21563 pbl_pool = &qp->p_multixri_pool->pbl_pool;
21564 txcmplq_cnt = qp->io_wq->pring->txcmplq_cnt;
21566 multixri_pool->stat_pbl_count = pbl_pool->count;
21567 multixri_pool->stat_pvt_count = pvt_pool->count;
21568 multixri_pool->stat_busy_count = txcmplq_cnt;
21571 multixri_pool->stat_snapshot_taken++;
21573 #endif
21576 * lpfc_adjust_pvt_pool_count - Adjust private pool count
21577 * @phba: pointer to lpfc hba data structure.
21578 * @hwqid: belong to which HWQ.
21580 * This routine moves some XRIs from private to public pool when private pool
21581 * is not busy.
21583 void lpfc_adjust_pvt_pool_count(struct lpfc_hba *phba, u32 hwqid)
21585 struct lpfc_multixri_pool *multixri_pool;
21586 u32 io_req_count;
21587 u32 prev_io_req_count;
21589 multixri_pool = phba->sli4_hba.hdwq[hwqid].p_multixri_pool;
21590 if (!multixri_pool)
21591 return;
21592 io_req_count = multixri_pool->io_req_count;
21593 prev_io_req_count = multixri_pool->prev_io_req_count;
21595 if (prev_io_req_count != io_req_count) {
21596 /* Private pool is busy */
21597 multixri_pool->prev_io_req_count = io_req_count;
21598 } else {
21599 /* Private pool is not busy.
21600 * Move XRIs from private to public pool.
21602 lpfc_move_xri_pvt_to_pbl(phba, hwqid);
21607 * lpfc_adjust_high_watermark - Adjust high watermark
21608 * @phba: pointer to lpfc hba data structure.
21609 * @hwqid: belong to which HWQ.
21611 * This routine sets high watermark as number of outstanding XRIs,
21612 * but make sure the new value is between xri_limit/2 and xri_limit.
21614 void lpfc_adjust_high_watermark(struct lpfc_hba *phba, u32 hwqid)
21616 u32 new_watermark;
21617 u32 watermark_max;
21618 u32 watermark_min;
21619 u32 xri_limit;
21620 u32 txcmplq_cnt;
21621 u32 abts_io_bufs;
21622 struct lpfc_multixri_pool *multixri_pool;
21623 struct lpfc_sli4_hdw_queue *qp;
21625 qp = &phba->sli4_hba.hdwq[hwqid];
21626 multixri_pool = qp->p_multixri_pool;
21627 if (!multixri_pool)
21628 return;
21629 xri_limit = multixri_pool->xri_limit;
21631 watermark_max = xri_limit;
21632 watermark_min = xri_limit / 2;
21634 txcmplq_cnt = qp->io_wq->pring->txcmplq_cnt;
21635 abts_io_bufs = qp->abts_scsi_io_bufs;
21636 abts_io_bufs += qp->abts_nvme_io_bufs;
21638 new_watermark = txcmplq_cnt + abts_io_bufs;
21639 new_watermark = min(watermark_max, new_watermark);
21640 new_watermark = max(watermark_min, new_watermark);
21641 multixri_pool->pvt_pool.high_watermark = new_watermark;
21643 #ifdef LPFC_MXP_STAT
21644 multixri_pool->stat_max_hwm = max(multixri_pool->stat_max_hwm,
21645 new_watermark);
21646 #endif
21650 * lpfc_move_xri_pvt_to_pbl - Move some XRIs from private to public pool
21651 * @phba: pointer to lpfc hba data structure.
21652 * @hwqid: belong to which HWQ.
21654 * This routine is called from hearbeat timer when pvt_pool is idle.
21655 * All free XRIs are moved from private to public pool on hwqid with 2 steps.
21656 * The first step moves (all - low_watermark) amount of XRIs.
21657 * The second step moves the rest of XRIs.
21659 void lpfc_move_xri_pvt_to_pbl(struct lpfc_hba *phba, u32 hwqid)
21661 struct lpfc_pbl_pool *pbl_pool;
21662 struct lpfc_pvt_pool *pvt_pool;
21663 struct lpfc_sli4_hdw_queue *qp;
21664 struct lpfc_io_buf *lpfc_ncmd;
21665 struct lpfc_io_buf *lpfc_ncmd_next;
21666 unsigned long iflag;
21667 struct list_head tmp_list;
21668 u32 tmp_count;
21670 qp = &phba->sli4_hba.hdwq[hwqid];
21671 pbl_pool = &qp->p_multixri_pool->pbl_pool;
21672 pvt_pool = &qp->p_multixri_pool->pvt_pool;
21673 tmp_count = 0;
21675 lpfc_qp_spin_lock_irqsave(&pbl_pool->lock, iflag, qp, mv_to_pub_pool);
21676 lpfc_qp_spin_lock(&pvt_pool->lock, qp, mv_from_pvt_pool);
21678 if (pvt_pool->count > pvt_pool->low_watermark) {
21679 /* Step 1: move (all - low_watermark) from pvt_pool
21680 * to pbl_pool
21683 /* Move low watermark of bufs from pvt_pool to tmp_list */
21684 INIT_LIST_HEAD(&tmp_list);
21685 list_for_each_entry_safe(lpfc_ncmd, lpfc_ncmd_next,
21686 &pvt_pool->list, list) {
21687 list_move_tail(&lpfc_ncmd->list, &tmp_list);
21688 tmp_count++;
21689 if (tmp_count >= pvt_pool->low_watermark)
21690 break;
21693 /* Move all bufs from pvt_pool to pbl_pool */
21694 list_splice_init(&pvt_pool->list, &pbl_pool->list);
21696 /* Move all bufs from tmp_list to pvt_pool */
21697 list_splice(&tmp_list, &pvt_pool->list);
21699 pbl_pool->count += (pvt_pool->count - tmp_count);
21700 pvt_pool->count = tmp_count;
21701 } else {
21702 /* Step 2: move the rest from pvt_pool to pbl_pool */
21703 list_splice_init(&pvt_pool->list, &pbl_pool->list);
21704 pbl_pool->count += pvt_pool->count;
21705 pvt_pool->count = 0;
21708 spin_unlock(&pvt_pool->lock);
21709 spin_unlock_irqrestore(&pbl_pool->lock, iflag);
21713 * _lpfc_move_xri_pbl_to_pvt - Move some XRIs from public to private pool
21714 * @phba: pointer to lpfc hba data structure
21715 * @qp: pointer to HDW queue
21716 * @pbl_pool: specified public free XRI pool
21717 * @pvt_pool: specified private free XRI pool
21718 * @count: number of XRIs to move
21720 * This routine tries to move some free common bufs from the specified pbl_pool
21721 * to the specified pvt_pool. It might move less than count XRIs if there's not
21722 * enough in public pool.
21724 * Return:
21725 * true - if XRIs are successfully moved from the specified pbl_pool to the
21726 * specified pvt_pool
21727 * false - if the specified pbl_pool is empty or locked by someone else
21729 static bool
21730 _lpfc_move_xri_pbl_to_pvt(struct lpfc_hba *phba, struct lpfc_sli4_hdw_queue *qp,
21731 struct lpfc_pbl_pool *pbl_pool,
21732 struct lpfc_pvt_pool *pvt_pool, u32 count)
21734 struct lpfc_io_buf *lpfc_ncmd;
21735 struct lpfc_io_buf *lpfc_ncmd_next;
21736 unsigned long iflag;
21737 int ret;
21739 ret = spin_trylock_irqsave(&pbl_pool->lock, iflag);
21740 if (ret) {
21741 if (pbl_pool->count) {
21742 /* Move a batch of XRIs from public to private pool */
21743 lpfc_qp_spin_lock(&pvt_pool->lock, qp, mv_to_pvt_pool);
21744 list_for_each_entry_safe(lpfc_ncmd,
21745 lpfc_ncmd_next,
21746 &pbl_pool->list,
21747 list) {
21748 list_move_tail(&lpfc_ncmd->list,
21749 &pvt_pool->list);
21750 pvt_pool->count++;
21751 pbl_pool->count--;
21752 count--;
21753 if (count == 0)
21754 break;
21757 spin_unlock(&pvt_pool->lock);
21758 spin_unlock_irqrestore(&pbl_pool->lock, iflag);
21759 return true;
21761 spin_unlock_irqrestore(&pbl_pool->lock, iflag);
21764 return false;
21768 * lpfc_move_xri_pbl_to_pvt - Move some XRIs from public to private pool
21769 * @phba: pointer to lpfc hba data structure.
21770 * @hwqid: belong to which HWQ.
21771 * @count: number of XRIs to move
21773 * This routine tries to find some free common bufs in one of public pools with
21774 * Round Robin method. The search always starts from local hwqid, then the next
21775 * HWQ which was found last time (rrb_next_hwqid). Once a public pool is found,
21776 * a batch of free common bufs are moved to private pool on hwqid.
21777 * It might move less than count XRIs if there's not enough in public pool.
21779 void lpfc_move_xri_pbl_to_pvt(struct lpfc_hba *phba, u32 hwqid, u32 count)
21781 struct lpfc_multixri_pool *multixri_pool;
21782 struct lpfc_multixri_pool *next_multixri_pool;
21783 struct lpfc_pvt_pool *pvt_pool;
21784 struct lpfc_pbl_pool *pbl_pool;
21785 struct lpfc_sli4_hdw_queue *qp;
21786 u32 next_hwqid;
21787 u32 hwq_count;
21788 int ret;
21790 qp = &phba->sli4_hba.hdwq[hwqid];
21791 multixri_pool = qp->p_multixri_pool;
21792 pvt_pool = &multixri_pool->pvt_pool;
21793 pbl_pool = &multixri_pool->pbl_pool;
21795 /* Check if local pbl_pool is available */
21796 ret = _lpfc_move_xri_pbl_to_pvt(phba, qp, pbl_pool, pvt_pool, count);
21797 if (ret) {
21798 #ifdef LPFC_MXP_STAT
21799 multixri_pool->local_pbl_hit_count++;
21800 #endif
21801 return;
21804 hwq_count = phba->cfg_hdw_queue;
21806 /* Get the next hwqid which was found last time */
21807 next_hwqid = multixri_pool->rrb_next_hwqid;
21809 do {
21810 /* Go to next hwq */
21811 next_hwqid = (next_hwqid + 1) % hwq_count;
21813 next_multixri_pool =
21814 phba->sli4_hba.hdwq[next_hwqid].p_multixri_pool;
21815 pbl_pool = &next_multixri_pool->pbl_pool;
21817 /* Check if the public free xri pool is available */
21818 ret = _lpfc_move_xri_pbl_to_pvt(
21819 phba, qp, pbl_pool, pvt_pool, count);
21821 /* Exit while-loop if success or all hwqid are checked */
21822 } while (!ret && next_hwqid != multixri_pool->rrb_next_hwqid);
21824 /* Starting point for the next time */
21825 multixri_pool->rrb_next_hwqid = next_hwqid;
21827 if (!ret) {
21828 /* stats: all public pools are empty*/
21829 multixri_pool->pbl_empty_count++;
21832 #ifdef LPFC_MXP_STAT
21833 if (ret) {
21834 if (next_hwqid == hwqid)
21835 multixri_pool->local_pbl_hit_count++;
21836 else
21837 multixri_pool->other_pbl_hit_count++;
21839 #endif
21843 * lpfc_keep_pvt_pool_above_lowwm - Keep pvt_pool above low watermark
21844 * @phba: pointer to lpfc hba data structure.
21845 * @hwqid: belong to which HWQ.
21847 * This routine get a batch of XRIs from pbl_pool if pvt_pool is less than
21848 * low watermark.
21850 void lpfc_keep_pvt_pool_above_lowwm(struct lpfc_hba *phba, u32 hwqid)
21852 struct lpfc_multixri_pool *multixri_pool;
21853 struct lpfc_pvt_pool *pvt_pool;
21855 multixri_pool = phba->sli4_hba.hdwq[hwqid].p_multixri_pool;
21856 pvt_pool = &multixri_pool->pvt_pool;
21858 if (pvt_pool->count < pvt_pool->low_watermark)
21859 lpfc_move_xri_pbl_to_pvt(phba, hwqid, XRI_BATCH);
21863 * lpfc_release_io_buf - Return one IO buf back to free pool
21864 * @phba: pointer to lpfc hba data structure.
21865 * @lpfc_ncmd: IO buf to be returned.
21866 * @qp: belong to which HWQ.
21868 * This routine returns one IO buf back to free pool. If this is an urgent IO,
21869 * the IO buf is returned to expedite pool. If cfg_xri_rebalancing==1,
21870 * the IO buf is returned to pbl_pool or pvt_pool based on watermark and
21871 * xri_limit. If cfg_xri_rebalancing==0, the IO buf is returned to
21872 * lpfc_io_buf_list_put.
21874 void lpfc_release_io_buf(struct lpfc_hba *phba, struct lpfc_io_buf *lpfc_ncmd,
21875 struct lpfc_sli4_hdw_queue *qp)
21877 unsigned long iflag;
21878 struct lpfc_pbl_pool *pbl_pool;
21879 struct lpfc_pvt_pool *pvt_pool;
21880 struct lpfc_epd_pool *epd_pool;
21881 u32 txcmplq_cnt;
21882 u32 xri_owned;
21883 u32 xri_limit;
21884 u32 abts_io_bufs;
21886 /* MUST zero fields if buffer is reused by another protocol */
21887 lpfc_ncmd->nvmeCmd = NULL;
21888 lpfc_ncmd->cur_iocbq.cmd_cmpl = NULL;
21890 if (phba->cfg_xpsgl && !phba->nvmet_support &&
21891 !list_empty(&lpfc_ncmd->dma_sgl_xtra_list))
21892 lpfc_put_sgl_per_hdwq(phba, lpfc_ncmd);
21894 if (!list_empty(&lpfc_ncmd->dma_cmd_rsp_list))
21895 lpfc_put_cmd_rsp_buf_per_hdwq(phba, lpfc_ncmd);
21897 if (phba->cfg_xri_rebalancing) {
21898 if (lpfc_ncmd->expedite) {
21899 /* Return to expedite pool */
21900 epd_pool = &phba->epd_pool;
21901 spin_lock_irqsave(&epd_pool->lock, iflag);
21902 list_add_tail(&lpfc_ncmd->list, &epd_pool->list);
21903 epd_pool->count++;
21904 spin_unlock_irqrestore(&epd_pool->lock, iflag);
21905 return;
21908 /* Avoid invalid access if an IO sneaks in and is being rejected
21909 * just _after_ xri pools are destroyed in lpfc_offline.
21910 * Nothing much can be done at this point.
21912 if (!qp->p_multixri_pool)
21913 return;
21915 pbl_pool = &qp->p_multixri_pool->pbl_pool;
21916 pvt_pool = &qp->p_multixri_pool->pvt_pool;
21918 txcmplq_cnt = qp->io_wq->pring->txcmplq_cnt;
21919 abts_io_bufs = qp->abts_scsi_io_bufs;
21920 abts_io_bufs += qp->abts_nvme_io_bufs;
21922 xri_owned = pvt_pool->count + txcmplq_cnt + abts_io_bufs;
21923 xri_limit = qp->p_multixri_pool->xri_limit;
21925 #ifdef LPFC_MXP_STAT
21926 if (xri_owned <= xri_limit)
21927 qp->p_multixri_pool->below_limit_count++;
21928 else
21929 qp->p_multixri_pool->above_limit_count++;
21930 #endif
21932 /* XRI goes to either public or private free xri pool
21933 * based on watermark and xri_limit
21935 if ((pvt_pool->count < pvt_pool->low_watermark) ||
21936 (xri_owned < xri_limit &&
21937 pvt_pool->count < pvt_pool->high_watermark)) {
21938 lpfc_qp_spin_lock_irqsave(&pvt_pool->lock, iflag,
21939 qp, free_pvt_pool);
21940 list_add_tail(&lpfc_ncmd->list,
21941 &pvt_pool->list);
21942 pvt_pool->count++;
21943 spin_unlock_irqrestore(&pvt_pool->lock, iflag);
21944 } else {
21945 lpfc_qp_spin_lock_irqsave(&pbl_pool->lock, iflag,
21946 qp, free_pub_pool);
21947 list_add_tail(&lpfc_ncmd->list,
21948 &pbl_pool->list);
21949 pbl_pool->count++;
21950 spin_unlock_irqrestore(&pbl_pool->lock, iflag);
21952 } else {
21953 lpfc_qp_spin_lock_irqsave(&qp->io_buf_list_put_lock, iflag,
21954 qp, free_xri);
21955 list_add_tail(&lpfc_ncmd->list,
21956 &qp->lpfc_io_buf_list_put);
21957 qp->put_io_bufs++;
21958 spin_unlock_irqrestore(&qp->io_buf_list_put_lock,
21959 iflag);
21964 * lpfc_get_io_buf_from_private_pool - Get one free IO buf from private pool
21965 * @phba: pointer to lpfc hba data structure.
21966 * @qp: pointer to HDW queue
21967 * @pvt_pool: pointer to private pool data structure.
21968 * @ndlp: pointer to lpfc nodelist data structure.
21970 * This routine tries to get one free IO buf from private pool.
21972 * Return:
21973 * pointer to one free IO buf - if private pool is not empty
21974 * NULL - if private pool is empty
21976 static struct lpfc_io_buf *
21977 lpfc_get_io_buf_from_private_pool(struct lpfc_hba *phba,
21978 struct lpfc_sli4_hdw_queue *qp,
21979 struct lpfc_pvt_pool *pvt_pool,
21980 struct lpfc_nodelist *ndlp)
21982 struct lpfc_io_buf *lpfc_ncmd;
21983 struct lpfc_io_buf *lpfc_ncmd_next;
21984 unsigned long iflag;
21986 lpfc_qp_spin_lock_irqsave(&pvt_pool->lock, iflag, qp, alloc_pvt_pool);
21987 list_for_each_entry_safe(lpfc_ncmd, lpfc_ncmd_next,
21988 &pvt_pool->list, list) {
21989 if (lpfc_test_rrq_active(
21990 phba, ndlp, lpfc_ncmd->cur_iocbq.sli4_lxritag))
21991 continue;
21992 list_del(&lpfc_ncmd->list);
21993 pvt_pool->count--;
21994 spin_unlock_irqrestore(&pvt_pool->lock, iflag);
21995 return lpfc_ncmd;
21997 spin_unlock_irqrestore(&pvt_pool->lock, iflag);
21999 return NULL;
22003 * lpfc_get_io_buf_from_expedite_pool - Get one free IO buf from expedite pool
22004 * @phba: pointer to lpfc hba data structure.
22006 * This routine tries to get one free IO buf from expedite pool.
22008 * Return:
22009 * pointer to one free IO buf - if expedite pool is not empty
22010 * NULL - if expedite pool is empty
22012 static struct lpfc_io_buf *
22013 lpfc_get_io_buf_from_expedite_pool(struct lpfc_hba *phba)
22015 struct lpfc_io_buf *lpfc_ncmd = NULL, *iter;
22016 struct lpfc_io_buf *lpfc_ncmd_next;
22017 unsigned long iflag;
22018 struct lpfc_epd_pool *epd_pool;
22020 epd_pool = &phba->epd_pool;
22022 spin_lock_irqsave(&epd_pool->lock, iflag);
22023 if (epd_pool->count > 0) {
22024 list_for_each_entry_safe(iter, lpfc_ncmd_next,
22025 &epd_pool->list, list) {
22026 list_del(&iter->list);
22027 epd_pool->count--;
22028 lpfc_ncmd = iter;
22029 break;
22032 spin_unlock_irqrestore(&epd_pool->lock, iflag);
22034 return lpfc_ncmd;
22038 * lpfc_get_io_buf_from_multixri_pools - Get one free IO bufs
22039 * @phba: pointer to lpfc hba data structure.
22040 * @ndlp: pointer to lpfc nodelist data structure.
22041 * @hwqid: belong to which HWQ
22042 * @expedite: 1 means this request is urgent.
22044 * This routine will do the following actions and then return a pointer to
22045 * one free IO buf.
22047 * 1. If private free xri count is empty, move some XRIs from public to
22048 * private pool.
22049 * 2. Get one XRI from private free xri pool.
22050 * 3. If we fail to get one from pvt_pool and this is an expedite request,
22051 * get one free xri from expedite pool.
22053 * Note: ndlp is only used on SCSI side for RRQ testing.
22054 * The caller should pass NULL for ndlp on NVME side.
22056 * Return:
22057 * pointer to one free IO buf - if private pool is not empty
22058 * NULL - if private pool is empty
22060 static struct lpfc_io_buf *
22061 lpfc_get_io_buf_from_multixri_pools(struct lpfc_hba *phba,
22062 struct lpfc_nodelist *ndlp,
22063 int hwqid, int expedite)
22065 struct lpfc_sli4_hdw_queue *qp;
22066 struct lpfc_multixri_pool *multixri_pool;
22067 struct lpfc_pvt_pool *pvt_pool;
22068 struct lpfc_io_buf *lpfc_ncmd;
22070 qp = &phba->sli4_hba.hdwq[hwqid];
22071 lpfc_ncmd = NULL;
22072 if (!qp) {
22073 lpfc_printf_log(phba, KERN_INFO,
22074 LOG_SLI | LOG_NVME_ABTS | LOG_FCP,
22075 "5556 NULL qp for hwqid x%x\n", hwqid);
22076 return lpfc_ncmd;
22078 multixri_pool = qp->p_multixri_pool;
22079 if (!multixri_pool) {
22080 lpfc_printf_log(phba, KERN_INFO,
22081 LOG_SLI | LOG_NVME_ABTS | LOG_FCP,
22082 "5557 NULL multixri for hwqid x%x\n", hwqid);
22083 return lpfc_ncmd;
22085 pvt_pool = &multixri_pool->pvt_pool;
22086 if (!pvt_pool) {
22087 lpfc_printf_log(phba, KERN_INFO,
22088 LOG_SLI | LOG_NVME_ABTS | LOG_FCP,
22089 "5558 NULL pvt_pool for hwqid x%x\n", hwqid);
22090 return lpfc_ncmd;
22092 multixri_pool->io_req_count++;
22094 /* If pvt_pool is empty, move some XRIs from public to private pool */
22095 if (pvt_pool->count == 0)
22096 lpfc_move_xri_pbl_to_pvt(phba, hwqid, XRI_BATCH);
22098 /* Get one XRI from private free xri pool */
22099 lpfc_ncmd = lpfc_get_io_buf_from_private_pool(phba, qp, pvt_pool, ndlp);
22101 if (lpfc_ncmd) {
22102 lpfc_ncmd->hdwq = qp;
22103 lpfc_ncmd->hdwq_no = hwqid;
22104 } else if (expedite) {
22105 /* If we fail to get one from pvt_pool and this is an expedite
22106 * request, get one free xri from expedite pool.
22108 lpfc_ncmd = lpfc_get_io_buf_from_expedite_pool(phba);
22111 return lpfc_ncmd;
22114 static inline struct lpfc_io_buf *
22115 lpfc_io_buf(struct lpfc_hba *phba, struct lpfc_nodelist *ndlp, int idx)
22117 struct lpfc_sli4_hdw_queue *qp;
22118 struct lpfc_io_buf *lpfc_cmd, *lpfc_cmd_next;
22120 qp = &phba->sli4_hba.hdwq[idx];
22121 list_for_each_entry_safe(lpfc_cmd, lpfc_cmd_next,
22122 &qp->lpfc_io_buf_list_get, list) {
22123 if (lpfc_test_rrq_active(phba, ndlp,
22124 lpfc_cmd->cur_iocbq.sli4_lxritag))
22125 continue;
22127 if (lpfc_cmd->flags & LPFC_SBUF_NOT_POSTED)
22128 continue;
22130 list_del_init(&lpfc_cmd->list);
22131 qp->get_io_bufs--;
22132 lpfc_cmd->hdwq = qp;
22133 lpfc_cmd->hdwq_no = idx;
22134 return lpfc_cmd;
22136 return NULL;
22140 * lpfc_get_io_buf - Get one IO buffer from free pool
22141 * @phba: The HBA for which this call is being executed.
22142 * @ndlp: pointer to lpfc nodelist data structure.
22143 * @hwqid: belong to which HWQ
22144 * @expedite: 1 means this request is urgent.
22146 * This routine gets one IO buffer from free pool. If cfg_xri_rebalancing==1,
22147 * removes a IO buffer from multiXRI pools. If cfg_xri_rebalancing==0, removes
22148 * a IO buffer from head of @hdwq io_buf_list and returns to caller.
22150 * Note: ndlp is only used on SCSI side for RRQ testing.
22151 * The caller should pass NULL for ndlp on NVME side.
22153 * Return codes:
22154 * NULL - Error
22155 * Pointer to lpfc_io_buf - Success
22157 struct lpfc_io_buf *lpfc_get_io_buf(struct lpfc_hba *phba,
22158 struct lpfc_nodelist *ndlp,
22159 u32 hwqid, int expedite)
22161 struct lpfc_sli4_hdw_queue *qp;
22162 unsigned long iflag;
22163 struct lpfc_io_buf *lpfc_cmd;
22165 qp = &phba->sli4_hba.hdwq[hwqid];
22166 lpfc_cmd = NULL;
22167 if (!qp) {
22168 lpfc_printf_log(phba, KERN_WARNING,
22169 LOG_SLI | LOG_NVME_ABTS | LOG_FCP,
22170 "5555 NULL qp for hwqid x%x\n", hwqid);
22171 return lpfc_cmd;
22174 if (phba->cfg_xri_rebalancing)
22175 lpfc_cmd = lpfc_get_io_buf_from_multixri_pools(
22176 phba, ndlp, hwqid, expedite);
22177 else {
22178 lpfc_qp_spin_lock_irqsave(&qp->io_buf_list_get_lock, iflag,
22179 qp, alloc_xri_get);
22180 if (qp->get_io_bufs > LPFC_NVME_EXPEDITE_XRICNT || expedite)
22181 lpfc_cmd = lpfc_io_buf(phba, ndlp, hwqid);
22182 if (!lpfc_cmd) {
22183 lpfc_qp_spin_lock(&qp->io_buf_list_put_lock,
22184 qp, alloc_xri_put);
22185 list_splice(&qp->lpfc_io_buf_list_put,
22186 &qp->lpfc_io_buf_list_get);
22187 qp->get_io_bufs += qp->put_io_bufs;
22188 INIT_LIST_HEAD(&qp->lpfc_io_buf_list_put);
22189 qp->put_io_bufs = 0;
22190 spin_unlock(&qp->io_buf_list_put_lock);
22191 if (qp->get_io_bufs > LPFC_NVME_EXPEDITE_XRICNT ||
22192 expedite)
22193 lpfc_cmd = lpfc_io_buf(phba, ndlp, hwqid);
22195 spin_unlock_irqrestore(&qp->io_buf_list_get_lock, iflag);
22198 return lpfc_cmd;
22202 * lpfc_read_object - Retrieve object data from HBA
22203 * @phba: The HBA for which this call is being executed.
22204 * @rdobject: Pathname of object data we want to read.
22205 * @datap: Pointer to where data will be copied to.
22206 * @datasz: size of data area
22208 * This routine is limited to object sizes of LPFC_BPL_SIZE (1024) or less.
22209 * The data will be truncated if datasz is not large enough.
22210 * Version 1 is not supported with Embedded mbox cmd, so we must use version 0.
22211 * Returns the actual bytes read from the object.
22213 * This routine is hard coded to use a poll completion. Unlike other
22214 * sli4_config mailboxes, it uses lpfc_mbuf memory which is not
22215 * cleaned up in lpfc_sli4_cmd_mbox_free. If this routine is modified
22216 * to use interrupt-based completions, code is needed to fully cleanup
22217 * the memory.
22220 lpfc_read_object(struct lpfc_hba *phba, char *rdobject, uint32_t *datap,
22221 uint32_t datasz)
22223 struct lpfc_mbx_read_object *read_object;
22224 LPFC_MBOXQ_t *mbox;
22225 int rc, length, eof, j, byte_cnt = 0;
22226 uint32_t shdr_status, shdr_add_status;
22227 union lpfc_sli4_cfg_shdr *shdr;
22228 struct lpfc_dmabuf *pcmd;
22229 u32 rd_object_name[LPFC_MBX_OBJECT_NAME_LEN_DW] = {0};
22231 mbox = mempool_alloc(phba->mbox_mem_pool, GFP_KERNEL);
22232 if (!mbox)
22233 return -ENOMEM;
22234 length = (sizeof(struct lpfc_mbx_read_object) -
22235 sizeof(struct lpfc_sli4_cfg_mhdr));
22236 lpfc_sli4_config(phba, mbox, LPFC_MBOX_SUBSYSTEM_COMMON,
22237 LPFC_MBOX_OPCODE_READ_OBJECT,
22238 length, LPFC_SLI4_MBX_EMBED);
22239 read_object = &mbox->u.mqe.un.read_object;
22240 shdr = (union lpfc_sli4_cfg_shdr *)&read_object->header.cfg_shdr;
22242 bf_set(lpfc_mbox_hdr_version, &shdr->request, LPFC_Q_CREATE_VERSION_0);
22243 bf_set(lpfc_mbx_rd_object_rlen, &read_object->u.request, datasz);
22244 read_object->u.request.rd_object_offset = 0;
22245 read_object->u.request.rd_object_cnt = 1;
22247 memset((void *)read_object->u.request.rd_object_name, 0,
22248 LPFC_OBJ_NAME_SZ);
22249 scnprintf((char *)rd_object_name, sizeof(rd_object_name), rdobject);
22250 for (j = 0; j < strlen(rdobject); j++)
22251 read_object->u.request.rd_object_name[j] =
22252 cpu_to_le32(rd_object_name[j]);
22254 pcmd = kmalloc(sizeof(*pcmd), GFP_KERNEL);
22255 if (pcmd)
22256 pcmd->virt = lpfc_mbuf_alloc(phba, MEM_PRI, &pcmd->phys);
22257 if (!pcmd || !pcmd->virt) {
22258 kfree(pcmd);
22259 mempool_free(mbox, phba->mbox_mem_pool);
22260 return -ENOMEM;
22262 memset((void *)pcmd->virt, 0, LPFC_BPL_SIZE);
22263 read_object->u.request.rd_object_hbuf[0].pa_lo =
22264 putPaddrLow(pcmd->phys);
22265 read_object->u.request.rd_object_hbuf[0].pa_hi =
22266 putPaddrHigh(pcmd->phys);
22267 read_object->u.request.rd_object_hbuf[0].length = LPFC_BPL_SIZE;
22269 mbox->vport = phba->pport;
22270 mbox->mbox_cmpl = lpfc_sli_def_mbox_cmpl;
22271 mbox->ctx_ndlp = NULL;
22273 rc = lpfc_sli_issue_mbox(phba, mbox, MBX_POLL);
22274 shdr_status = bf_get(lpfc_mbox_hdr_status, &shdr->response);
22275 shdr_add_status = bf_get(lpfc_mbox_hdr_add_status, &shdr->response);
22277 if (shdr_status == STATUS_FAILED &&
22278 shdr_add_status == ADD_STATUS_INVALID_OBJECT_NAME) {
22279 lpfc_printf_log(phba, KERN_ERR, LOG_INIT | LOG_CGN_MGMT,
22280 "4674 No port cfg file in FW.\n");
22281 byte_cnt = -ENOENT;
22282 } else if (shdr_status || shdr_add_status || rc) {
22283 lpfc_printf_log(phba, KERN_ERR, LOG_INIT | LOG_CGN_MGMT,
22284 "2625 READ_OBJECT mailbox failed with "
22285 "status x%x add_status x%x, mbx status x%x\n",
22286 shdr_status, shdr_add_status, rc);
22287 byte_cnt = -ENXIO;
22288 } else {
22289 /* Success */
22290 length = read_object->u.response.rd_object_actual_rlen;
22291 eof = bf_get(lpfc_mbx_rd_object_eof, &read_object->u.response);
22292 lpfc_printf_log(phba, KERN_INFO, LOG_INIT | LOG_CGN_MGMT,
22293 "2626 READ_OBJECT Success len %d:%d, EOF %d\n",
22294 length, datasz, eof);
22296 /* Detect the port config file exists but is empty */
22297 if (!length && eof) {
22298 byte_cnt = 0;
22299 goto exit;
22302 byte_cnt = length;
22303 lpfc_sli_pcimem_bcopy(pcmd->virt, datap, byte_cnt);
22306 exit:
22307 /* This is an embedded SLI4 mailbox with an external buffer allocated.
22308 * Free the pcmd and then cleanup with the correct routine.
22310 lpfc_mbuf_free(phba, pcmd->virt, pcmd->phys);
22311 kfree(pcmd);
22312 lpfc_sli4_mbox_cmd_free(phba, mbox);
22313 return byte_cnt;
22317 * lpfc_get_sgl_per_hdwq - Get one SGL chunk from hdwq's pool
22318 * @phba: The HBA for which this call is being executed.
22319 * @lpfc_buf: IO buf structure to append the SGL chunk
22321 * This routine gets one SGL chunk buffer from hdwq's SGL chunk pool,
22322 * and will allocate an SGL chunk if the pool is empty.
22324 * Return codes:
22325 * NULL - Error
22326 * Pointer to sli4_hybrid_sgl - Success
22328 struct sli4_hybrid_sgl *
22329 lpfc_get_sgl_per_hdwq(struct lpfc_hba *phba, struct lpfc_io_buf *lpfc_buf)
22331 struct sli4_hybrid_sgl *list_entry = NULL;
22332 struct sli4_hybrid_sgl *tmp = NULL;
22333 struct sli4_hybrid_sgl *allocated_sgl = NULL;
22334 struct lpfc_sli4_hdw_queue *hdwq = lpfc_buf->hdwq;
22335 struct list_head *buf_list = &hdwq->sgl_list;
22336 unsigned long iflags;
22338 spin_lock_irqsave(&hdwq->hdwq_lock, iflags);
22340 if (likely(!list_empty(buf_list))) {
22341 /* break off 1 chunk from the sgl_list */
22342 list_for_each_entry_safe(list_entry, tmp,
22343 buf_list, list_node) {
22344 list_move_tail(&list_entry->list_node,
22345 &lpfc_buf->dma_sgl_xtra_list);
22346 break;
22348 } else {
22349 /* allocate more */
22350 spin_unlock_irqrestore(&hdwq->hdwq_lock, iflags);
22351 tmp = kmalloc_node(sizeof(*tmp), GFP_ATOMIC,
22352 cpu_to_node(hdwq->io_wq->chann));
22353 if (!tmp) {
22354 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
22355 "8353 error kmalloc memory for HDWQ "
22356 "%d %s\n",
22357 lpfc_buf->hdwq_no, __func__);
22358 return NULL;
22361 tmp->dma_sgl = dma_pool_alloc(phba->lpfc_sg_dma_buf_pool,
22362 GFP_ATOMIC, &tmp->dma_phys_sgl);
22363 if (!tmp->dma_sgl) {
22364 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
22365 "8354 error pool_alloc memory for HDWQ "
22366 "%d %s\n",
22367 lpfc_buf->hdwq_no, __func__);
22368 kfree(tmp);
22369 return NULL;
22372 spin_lock_irqsave(&hdwq->hdwq_lock, iflags);
22373 list_add_tail(&tmp->list_node, &lpfc_buf->dma_sgl_xtra_list);
22376 allocated_sgl = list_last_entry(&lpfc_buf->dma_sgl_xtra_list,
22377 struct sli4_hybrid_sgl,
22378 list_node);
22380 spin_unlock_irqrestore(&hdwq->hdwq_lock, iflags);
22382 return allocated_sgl;
22386 * lpfc_put_sgl_per_hdwq - Put one SGL chunk into hdwq pool
22387 * @phba: The HBA for which this call is being executed.
22388 * @lpfc_buf: IO buf structure with the SGL chunk
22390 * This routine puts one SGL chunk buffer into hdwq's SGL chunk pool.
22392 * Return codes:
22393 * 0 - Success
22394 * -EINVAL - Error
22397 lpfc_put_sgl_per_hdwq(struct lpfc_hba *phba, struct lpfc_io_buf *lpfc_buf)
22399 int rc = 0;
22400 struct sli4_hybrid_sgl *list_entry = NULL;
22401 struct sli4_hybrid_sgl *tmp = NULL;
22402 struct lpfc_sli4_hdw_queue *hdwq = lpfc_buf->hdwq;
22403 struct list_head *buf_list = &hdwq->sgl_list;
22404 unsigned long iflags;
22406 spin_lock_irqsave(&hdwq->hdwq_lock, iflags);
22408 if (likely(!list_empty(&lpfc_buf->dma_sgl_xtra_list))) {
22409 list_for_each_entry_safe(list_entry, tmp,
22410 &lpfc_buf->dma_sgl_xtra_list,
22411 list_node) {
22412 list_move_tail(&list_entry->list_node,
22413 buf_list);
22415 } else {
22416 rc = -EINVAL;
22419 spin_unlock_irqrestore(&hdwq->hdwq_lock, iflags);
22420 return rc;
22424 * lpfc_free_sgl_per_hdwq - Free all SGL chunks of hdwq pool
22425 * @phba: phba object
22426 * @hdwq: hdwq to cleanup sgl buff resources on
22428 * This routine frees all SGL chunks of hdwq SGL chunk pool.
22430 * Return codes:
22431 * None
22433 void
22434 lpfc_free_sgl_per_hdwq(struct lpfc_hba *phba,
22435 struct lpfc_sli4_hdw_queue *hdwq)
22437 struct list_head *buf_list = &hdwq->sgl_list;
22438 struct sli4_hybrid_sgl *list_entry = NULL;
22439 struct sli4_hybrid_sgl *tmp = NULL;
22440 unsigned long iflags;
22442 spin_lock_irqsave(&hdwq->hdwq_lock, iflags);
22444 /* Free sgl pool */
22445 list_for_each_entry_safe(list_entry, tmp,
22446 buf_list, list_node) {
22447 list_del(&list_entry->list_node);
22448 dma_pool_free(phba->lpfc_sg_dma_buf_pool,
22449 list_entry->dma_sgl,
22450 list_entry->dma_phys_sgl);
22451 kfree(list_entry);
22454 spin_unlock_irqrestore(&hdwq->hdwq_lock, iflags);
22458 * lpfc_get_cmd_rsp_buf_per_hdwq - Get one CMD/RSP buffer from hdwq
22459 * @phba: The HBA for which this call is being executed.
22460 * @lpfc_buf: IO buf structure to attach the CMD/RSP buffer
22462 * This routine gets one CMD/RSP buffer from hdwq's CMD/RSP pool,
22463 * and will allocate an CMD/RSP buffer if the pool is empty.
22465 * Return codes:
22466 * NULL - Error
22467 * Pointer to fcp_cmd_rsp_buf - Success
22469 struct fcp_cmd_rsp_buf *
22470 lpfc_get_cmd_rsp_buf_per_hdwq(struct lpfc_hba *phba,
22471 struct lpfc_io_buf *lpfc_buf)
22473 struct fcp_cmd_rsp_buf *list_entry = NULL;
22474 struct fcp_cmd_rsp_buf *tmp = NULL;
22475 struct fcp_cmd_rsp_buf *allocated_buf = NULL;
22476 struct lpfc_sli4_hdw_queue *hdwq = lpfc_buf->hdwq;
22477 struct list_head *buf_list = &hdwq->cmd_rsp_buf_list;
22478 unsigned long iflags;
22480 spin_lock_irqsave(&hdwq->hdwq_lock, iflags);
22482 if (likely(!list_empty(buf_list))) {
22483 /* break off 1 chunk from the list */
22484 list_for_each_entry_safe(list_entry, tmp,
22485 buf_list,
22486 list_node) {
22487 list_move_tail(&list_entry->list_node,
22488 &lpfc_buf->dma_cmd_rsp_list);
22489 break;
22491 } else {
22492 /* allocate more */
22493 spin_unlock_irqrestore(&hdwq->hdwq_lock, iflags);
22494 tmp = kmalloc_node(sizeof(*tmp), GFP_ATOMIC,
22495 cpu_to_node(hdwq->io_wq->chann));
22496 if (!tmp) {
22497 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
22498 "8355 error kmalloc memory for HDWQ "
22499 "%d %s\n",
22500 lpfc_buf->hdwq_no, __func__);
22501 return NULL;
22504 tmp->fcp_cmnd = dma_pool_zalloc(phba->lpfc_cmd_rsp_buf_pool,
22505 GFP_ATOMIC,
22506 &tmp->fcp_cmd_rsp_dma_handle);
22508 if (!tmp->fcp_cmnd) {
22509 lpfc_printf_log(phba, KERN_INFO, LOG_SLI,
22510 "8356 error pool_alloc memory for HDWQ "
22511 "%d %s\n",
22512 lpfc_buf->hdwq_no, __func__);
22513 kfree(tmp);
22514 return NULL;
22517 tmp->fcp_rsp = (struct fcp_rsp *)((uint8_t *)tmp->fcp_cmnd +
22518 sizeof(struct fcp_cmnd32));
22520 spin_lock_irqsave(&hdwq->hdwq_lock, iflags);
22521 list_add_tail(&tmp->list_node, &lpfc_buf->dma_cmd_rsp_list);
22524 allocated_buf = list_last_entry(&lpfc_buf->dma_cmd_rsp_list,
22525 struct fcp_cmd_rsp_buf,
22526 list_node);
22528 spin_unlock_irqrestore(&hdwq->hdwq_lock, iflags);
22530 return allocated_buf;
22534 * lpfc_put_cmd_rsp_buf_per_hdwq - Put one CMD/RSP buffer into hdwq pool
22535 * @phba: The HBA for which this call is being executed.
22536 * @lpfc_buf: IO buf structure with the CMD/RSP buf
22538 * This routine puts one CMD/RSP buffer into executing CPU's CMD/RSP pool.
22540 * Return codes:
22541 * 0 - Success
22542 * -EINVAL - Error
22545 lpfc_put_cmd_rsp_buf_per_hdwq(struct lpfc_hba *phba,
22546 struct lpfc_io_buf *lpfc_buf)
22548 int rc = 0;
22549 struct fcp_cmd_rsp_buf *list_entry = NULL;
22550 struct fcp_cmd_rsp_buf *tmp = NULL;
22551 struct lpfc_sli4_hdw_queue *hdwq = lpfc_buf->hdwq;
22552 struct list_head *buf_list = &hdwq->cmd_rsp_buf_list;
22553 unsigned long iflags;
22555 spin_lock_irqsave(&hdwq->hdwq_lock, iflags);
22557 if (likely(!list_empty(&lpfc_buf->dma_cmd_rsp_list))) {
22558 list_for_each_entry_safe(list_entry, tmp,
22559 &lpfc_buf->dma_cmd_rsp_list,
22560 list_node) {
22561 list_move_tail(&list_entry->list_node,
22562 buf_list);
22564 } else {
22565 rc = -EINVAL;
22568 spin_unlock_irqrestore(&hdwq->hdwq_lock, iflags);
22569 return rc;
22573 * lpfc_free_cmd_rsp_buf_per_hdwq - Free all CMD/RSP chunks of hdwq pool
22574 * @phba: phba object
22575 * @hdwq: hdwq to cleanup cmd rsp buff resources on
22577 * This routine frees all CMD/RSP buffers of hdwq's CMD/RSP buf pool.
22579 * Return codes:
22580 * None
22582 void
22583 lpfc_free_cmd_rsp_buf_per_hdwq(struct lpfc_hba *phba,
22584 struct lpfc_sli4_hdw_queue *hdwq)
22586 struct list_head *buf_list = &hdwq->cmd_rsp_buf_list;
22587 struct fcp_cmd_rsp_buf *list_entry = NULL;
22588 struct fcp_cmd_rsp_buf *tmp = NULL;
22589 unsigned long iflags;
22591 spin_lock_irqsave(&hdwq->hdwq_lock, iflags);
22593 /* Free cmd_rsp buf pool */
22594 list_for_each_entry_safe(list_entry, tmp,
22595 buf_list,
22596 list_node) {
22597 list_del(&list_entry->list_node);
22598 dma_pool_free(phba->lpfc_cmd_rsp_buf_pool,
22599 list_entry->fcp_cmnd,
22600 list_entry->fcp_cmd_rsp_dma_handle);
22601 kfree(list_entry);
22604 spin_unlock_irqrestore(&hdwq->hdwq_lock, iflags);
22608 * lpfc_sli_prep_wqe - Prepare WQE for the command to be posted
22609 * @phba: phba object
22610 * @job: job entry of the command to be posted.
22612 * Fill the common fields of the wqe for each of the command.
22614 * Return codes:
22615 * None
22617 void
22618 lpfc_sli_prep_wqe(struct lpfc_hba *phba, struct lpfc_iocbq *job)
22620 u8 cmnd;
22621 u32 *pcmd;
22622 u32 if_type = 0;
22623 u32 abort_tag;
22624 bool fip;
22625 struct lpfc_nodelist *ndlp = NULL;
22626 union lpfc_wqe128 *wqe = &job->wqe;
22627 u8 command_type = ELS_COMMAND_NON_FIP;
22629 fip = test_bit(HBA_FIP_SUPPORT, &phba->hba_flag);
22630 /* The fcp commands will set command type */
22631 if (job->cmd_flag & LPFC_IO_FCP)
22632 command_type = FCP_COMMAND;
22633 else if (fip && (job->cmd_flag & LPFC_FIP_ELS_ID_MASK))
22634 command_type = ELS_COMMAND_FIP;
22635 else
22636 command_type = ELS_COMMAND_NON_FIP;
22638 abort_tag = job->iotag;
22639 cmnd = bf_get(wqe_cmnd, &wqe->els_req.wqe_com);
22641 switch (cmnd) {
22642 case CMD_ELS_REQUEST64_WQE:
22643 ndlp = job->ndlp;
22645 if_type = bf_get(lpfc_sli_intf_if_type,
22646 &phba->sli4_hba.sli_intf);
22647 if (if_type >= LPFC_SLI_INTF_IF_TYPE_2) {
22648 pcmd = (u32 *)job->cmd_dmabuf->virt;
22649 if (pcmd && (*pcmd == ELS_CMD_FLOGI ||
22650 *pcmd == ELS_CMD_SCR ||
22651 *pcmd == ELS_CMD_RDF ||
22652 *pcmd == ELS_CMD_EDC ||
22653 *pcmd == ELS_CMD_RSCN_XMT ||
22654 *pcmd == ELS_CMD_FDISC ||
22655 *pcmd == ELS_CMD_LOGO ||
22656 *pcmd == ELS_CMD_QFPA ||
22657 *pcmd == ELS_CMD_UVEM ||
22658 *pcmd == ELS_CMD_PLOGI)) {
22659 bf_set(els_req64_sp, &wqe->els_req, 1);
22660 bf_set(els_req64_sid, &wqe->els_req,
22661 job->vport->fc_myDID);
22663 if ((*pcmd == ELS_CMD_FLOGI) &&
22664 !(phba->fc_topology ==
22665 LPFC_TOPOLOGY_LOOP))
22666 bf_set(els_req64_sid, &wqe->els_req, 0);
22668 bf_set(wqe_ct, &wqe->els_req.wqe_com, 1);
22669 bf_set(wqe_ctxt_tag, &wqe->els_req.wqe_com,
22670 phba->vpi_ids[job->vport->vpi]);
22671 } else if (pcmd) {
22672 bf_set(wqe_ct, &wqe->els_req.wqe_com, 0);
22673 bf_set(wqe_ctxt_tag, &wqe->els_req.wqe_com,
22674 phba->sli4_hba.rpi_ids[ndlp->nlp_rpi]);
22678 bf_set(wqe_temp_rpi, &wqe->els_req.wqe_com,
22679 phba->sli4_hba.rpi_ids[ndlp->nlp_rpi]);
22681 bf_set(wqe_dbde, &wqe->els_req.wqe_com, 1);
22682 bf_set(wqe_iod, &wqe->els_req.wqe_com, LPFC_WQE_IOD_READ);
22683 bf_set(wqe_qosd, &wqe->els_req.wqe_com, 1);
22684 bf_set(wqe_lenloc, &wqe->els_req.wqe_com, LPFC_WQE_LENLOC_NONE);
22685 bf_set(wqe_ebde_cnt, &wqe->els_req.wqe_com, 0);
22686 break;
22687 case CMD_XMIT_ELS_RSP64_WQE:
22688 ndlp = job->ndlp;
22690 /* word4 */
22691 wqe->xmit_els_rsp.word4 = 0;
22693 if_type = bf_get(lpfc_sli_intf_if_type,
22694 &phba->sli4_hba.sli_intf);
22695 if (if_type >= LPFC_SLI_INTF_IF_TYPE_2) {
22696 if (test_bit(FC_PT2PT, &job->vport->fc_flag)) {
22697 bf_set(els_rsp64_sp, &wqe->xmit_els_rsp, 1);
22698 bf_set(els_rsp64_sid, &wqe->xmit_els_rsp,
22699 job->vport->fc_myDID);
22700 if (job->vport->fc_myDID == Fabric_DID) {
22701 bf_set(wqe_els_did,
22702 &wqe->xmit_els_rsp.wqe_dest, 0);
22707 bf_set(wqe_dbde, &wqe->xmit_els_rsp.wqe_com, 1);
22708 bf_set(wqe_iod, &wqe->xmit_els_rsp.wqe_com, LPFC_WQE_IOD_WRITE);
22709 bf_set(wqe_qosd, &wqe->xmit_els_rsp.wqe_com, 1);
22710 bf_set(wqe_lenloc, &wqe->xmit_els_rsp.wqe_com,
22711 LPFC_WQE_LENLOC_WORD3);
22712 bf_set(wqe_ebde_cnt, &wqe->xmit_els_rsp.wqe_com, 0);
22714 if (phba->fc_topology == LPFC_TOPOLOGY_LOOP) {
22715 bf_set(els_rsp64_sp, &wqe->xmit_els_rsp, 1);
22716 bf_set(els_rsp64_sid, &wqe->xmit_els_rsp,
22717 job->vport->fc_myDID);
22718 bf_set(wqe_ct, &wqe->xmit_els_rsp.wqe_com, 1);
22721 if (phba->sli_rev == LPFC_SLI_REV4) {
22722 bf_set(wqe_rsp_temp_rpi, &wqe->xmit_els_rsp,
22723 phba->sli4_hba.rpi_ids[ndlp->nlp_rpi]);
22725 if (bf_get(wqe_ct, &wqe->xmit_els_rsp.wqe_com))
22726 bf_set(wqe_ctxt_tag, &wqe->xmit_els_rsp.wqe_com,
22727 phba->vpi_ids[job->vport->vpi]);
22729 command_type = OTHER_COMMAND;
22730 break;
22731 case CMD_GEN_REQUEST64_WQE:
22732 /* Word 10 */
22733 bf_set(wqe_dbde, &wqe->gen_req.wqe_com, 1);
22734 bf_set(wqe_iod, &wqe->gen_req.wqe_com, LPFC_WQE_IOD_READ);
22735 bf_set(wqe_qosd, &wqe->gen_req.wqe_com, 1);
22736 bf_set(wqe_lenloc, &wqe->gen_req.wqe_com, LPFC_WQE_LENLOC_NONE);
22737 bf_set(wqe_ebde_cnt, &wqe->gen_req.wqe_com, 0);
22738 command_type = OTHER_COMMAND;
22739 break;
22740 case CMD_XMIT_SEQUENCE64_WQE:
22741 if (phba->link_flag & LS_LOOPBACK_MODE)
22742 bf_set(wqe_xo, &wqe->xmit_sequence.wge_ctl, 1);
22744 wqe->xmit_sequence.rsvd3 = 0;
22745 bf_set(wqe_pu, &wqe->xmit_sequence.wqe_com, 0);
22746 bf_set(wqe_dbde, &wqe->xmit_sequence.wqe_com, 1);
22747 bf_set(wqe_iod, &wqe->xmit_sequence.wqe_com,
22748 LPFC_WQE_IOD_WRITE);
22749 bf_set(wqe_lenloc, &wqe->xmit_sequence.wqe_com,
22750 LPFC_WQE_LENLOC_WORD12);
22751 bf_set(wqe_ebde_cnt, &wqe->xmit_sequence.wqe_com, 0);
22752 command_type = OTHER_COMMAND;
22753 break;
22754 case CMD_XMIT_BLS_RSP64_WQE:
22755 bf_set(xmit_bls_rsp64_seqcnthi, &wqe->xmit_bls_rsp, 0xffff);
22756 bf_set(wqe_xmit_bls_pt, &wqe->xmit_bls_rsp.wqe_dest, 0x1);
22757 bf_set(wqe_ct, &wqe->xmit_bls_rsp.wqe_com, 1);
22758 bf_set(wqe_ctxt_tag, &wqe->xmit_bls_rsp.wqe_com,
22759 phba->vpi_ids[phba->pport->vpi]);
22760 bf_set(wqe_qosd, &wqe->xmit_bls_rsp.wqe_com, 1);
22761 bf_set(wqe_lenloc, &wqe->xmit_bls_rsp.wqe_com,
22762 LPFC_WQE_LENLOC_NONE);
22763 /* Overwrite the pre-set comnd type with OTHER_COMMAND */
22764 command_type = OTHER_COMMAND;
22765 break;
22766 case CMD_FCP_ICMND64_WQE: /* task mgmt commands */
22767 case CMD_ABORT_XRI_WQE: /* abort iotag */
22768 case CMD_SEND_FRAME: /* mds loopback */
22769 /* cases already formatted for sli4 wqe - no chgs necessary */
22770 return;
22771 default:
22772 dump_stack();
22773 lpfc_printf_log(phba, KERN_ERR, LOG_TRACE_EVENT,
22774 "6207 Invalid command 0x%x\n",
22775 cmnd);
22776 break;
22779 wqe->generic.wqe_com.abort_tag = abort_tag;
22780 bf_set(wqe_reqtag, &wqe->generic.wqe_com, job->iotag);
22781 bf_set(wqe_cmd_type, &wqe->generic.wqe_com, command_type);
22782 bf_set(wqe_cqid, &wqe->generic.wqe_com, LPFC_WQE_CQ_ID_DEFAULT);