Revert "ALSA: hda: Flush interrupts on disabling"
[linux/fpc-iii.git] / drivers / infiniband / hw / qib / qib_ruc.c
blob10afde6d02fa87fe74592683bc72daeed2015e25
1 /*
2 * Copyright (c) 2006, 2007, 2008, 2009 QLogic Corporation. All rights reserved.
3 * Copyright (c) 2005, 2006 PathScale, Inc. All rights reserved.
5 * This software is available to you under a choice of one of two
6 * licenses. You may choose to be licensed under the terms of the GNU
7 * General Public License (GPL) Version 2, available from the file
8 * COPYING in the main directory of this source tree, or the
9 * OpenIB.org BSD license below:
11 * Redistribution and use in source and binary forms, with or
12 * without modification, are permitted provided that the following
13 * conditions are met:
15 * - Redistributions of source code must retain the above
16 * copyright notice, this list of conditions and the following
17 * disclaimer.
19 * - Redistributions in binary form must reproduce the above
20 * copyright notice, this list of conditions and the following
21 * disclaimer in the documentation and/or other materials
22 * provided with the distribution.
24 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
25 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
26 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
27 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
28 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
29 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
30 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
31 * SOFTWARE.
34 #include <linux/spinlock.h>
35 #include <rdma/ib_smi.h>
37 #include "qib.h"
38 #include "qib_mad.h"
41 * Convert the AETH RNR timeout code into the number of microseconds.
43 const u32 ib_qib_rnr_table[32] = {
44 655360, /* 00: 655.36 */
45 10, /* 01: .01 */
46 20, /* 02 .02 */
47 30, /* 03: .03 */
48 40, /* 04: .04 */
49 60, /* 05: .06 */
50 80, /* 06: .08 */
51 120, /* 07: .12 */
52 160, /* 08: .16 */
53 240, /* 09: .24 */
54 320, /* 0A: .32 */
55 480, /* 0B: .48 */
56 640, /* 0C: .64 */
57 960, /* 0D: .96 */
58 1280, /* 0E: 1.28 */
59 1920, /* 0F: 1.92 */
60 2560, /* 10: 2.56 */
61 3840, /* 11: 3.84 */
62 5120, /* 12: 5.12 */
63 7680, /* 13: 7.68 */
64 10240, /* 14: 10.24 */
65 15360, /* 15: 15.36 */
66 20480, /* 16: 20.48 */
67 30720, /* 17: 30.72 */
68 40960, /* 18: 40.96 */
69 61440, /* 19: 61.44 */
70 81920, /* 1A: 81.92 */
71 122880, /* 1B: 122.88 */
72 163840, /* 1C: 163.84 */
73 245760, /* 1D: 245.76 */
74 327680, /* 1E: 327.68 */
75 491520 /* 1F: 491.52 */
79 * Validate a RWQE and fill in the SGE state.
80 * Return 1 if OK.
82 static int qib_init_sge(struct rvt_qp *qp, struct rvt_rwqe *wqe)
84 int i, j, ret;
85 struct ib_wc wc;
86 struct rvt_lkey_table *rkt;
87 struct rvt_pd *pd;
88 struct rvt_sge_state *ss;
90 rkt = &to_idev(qp->ibqp.device)->rdi.lkey_table;
91 pd = ibpd_to_rvtpd(qp->ibqp.srq ? qp->ibqp.srq->pd : qp->ibqp.pd);
92 ss = &qp->r_sge;
93 ss->sg_list = qp->r_sg_list;
94 qp->r_len = 0;
95 for (i = j = 0; i < wqe->num_sge; i++) {
96 if (wqe->sg_list[i].length == 0)
97 continue;
98 /* Check LKEY */
99 if (!rvt_lkey_ok(rkt, pd, j ? &ss->sg_list[j - 1] : &ss->sge,
100 &wqe->sg_list[i], IB_ACCESS_LOCAL_WRITE))
101 goto bad_lkey;
102 qp->r_len += wqe->sg_list[i].length;
103 j++;
105 ss->num_sge = j;
106 ss->total_len = qp->r_len;
107 ret = 1;
108 goto bail;
110 bad_lkey:
111 while (j) {
112 struct rvt_sge *sge = --j ? &ss->sg_list[j - 1] : &ss->sge;
114 rvt_put_mr(sge->mr);
116 ss->num_sge = 0;
117 memset(&wc, 0, sizeof(wc));
118 wc.wr_id = wqe->wr_id;
119 wc.status = IB_WC_LOC_PROT_ERR;
120 wc.opcode = IB_WC_RECV;
121 wc.qp = &qp->ibqp;
122 /* Signal solicited completion event. */
123 rvt_cq_enter(ibcq_to_rvtcq(qp->ibqp.recv_cq), &wc, 1);
124 ret = 0;
125 bail:
126 return ret;
130 * qib_get_rwqe - copy the next RWQE into the QP's RWQE
131 * @qp: the QP
132 * @wr_id_only: update qp->r_wr_id only, not qp->r_sge
134 * Return -1 if there is a local error, 0 if no RWQE is available,
135 * otherwise return 1.
137 * Can be called from interrupt level.
139 int qib_get_rwqe(struct rvt_qp *qp, int wr_id_only)
141 unsigned long flags;
142 struct rvt_rq *rq;
143 struct rvt_rwq *wq;
144 struct rvt_srq *srq;
145 struct rvt_rwqe *wqe;
146 void (*handler)(struct ib_event *, void *);
147 u32 tail;
148 int ret;
150 if (qp->ibqp.srq) {
151 srq = ibsrq_to_rvtsrq(qp->ibqp.srq);
152 handler = srq->ibsrq.event_handler;
153 rq = &srq->rq;
154 } else {
155 srq = NULL;
156 handler = NULL;
157 rq = &qp->r_rq;
160 spin_lock_irqsave(&rq->lock, flags);
161 if (!(ib_rvt_state_ops[qp->state] & RVT_PROCESS_RECV_OK)) {
162 ret = 0;
163 goto unlock;
166 wq = rq->wq;
167 tail = wq->tail;
168 /* Validate tail before using it since it is user writable. */
169 if (tail >= rq->size)
170 tail = 0;
171 if (unlikely(tail == wq->head)) {
172 ret = 0;
173 goto unlock;
175 /* Make sure entry is read after head index is read. */
176 smp_rmb();
177 wqe = rvt_get_rwqe_ptr(rq, tail);
179 * Even though we update the tail index in memory, the verbs
180 * consumer is not supposed to post more entries until a
181 * completion is generated.
183 if (++tail >= rq->size)
184 tail = 0;
185 wq->tail = tail;
186 if (!wr_id_only && !qib_init_sge(qp, wqe)) {
187 ret = -1;
188 goto unlock;
190 qp->r_wr_id = wqe->wr_id;
192 ret = 1;
193 set_bit(RVT_R_WRID_VALID, &qp->r_aflags);
194 if (handler) {
195 u32 n;
198 * Validate head pointer value and compute
199 * the number of remaining WQEs.
201 n = wq->head;
202 if (n >= rq->size)
203 n = 0;
204 if (n < tail)
205 n += rq->size - tail;
206 else
207 n -= tail;
208 if (n < srq->limit) {
209 struct ib_event ev;
211 srq->limit = 0;
212 spin_unlock_irqrestore(&rq->lock, flags);
213 ev.device = qp->ibqp.device;
214 ev.element.srq = qp->ibqp.srq;
215 ev.event = IB_EVENT_SRQ_LIMIT_REACHED;
216 handler(&ev, srq->ibsrq.srq_context);
217 goto bail;
220 unlock:
221 spin_unlock_irqrestore(&rq->lock, flags);
222 bail:
223 return ret;
227 * Switch to alternate path.
228 * The QP s_lock should be held and interrupts disabled.
230 void qib_migrate_qp(struct rvt_qp *qp)
232 struct ib_event ev;
234 qp->s_mig_state = IB_MIG_MIGRATED;
235 qp->remote_ah_attr = qp->alt_ah_attr;
236 qp->port_num = qp->alt_ah_attr.port_num;
237 qp->s_pkey_index = qp->s_alt_pkey_index;
239 ev.device = qp->ibqp.device;
240 ev.element.qp = &qp->ibqp;
241 ev.event = IB_EVENT_PATH_MIG;
242 qp->ibqp.event_handler(&ev, qp->ibqp.qp_context);
245 static __be64 get_sguid(struct qib_ibport *ibp, unsigned index)
247 if (!index) {
248 struct qib_pportdata *ppd = ppd_from_ibp(ibp);
250 return ppd->guid;
252 return ibp->guids[index - 1];
255 static int gid_ok(union ib_gid *gid, __be64 gid_prefix, __be64 id)
257 return (gid->global.interface_id == id &&
258 (gid->global.subnet_prefix == gid_prefix ||
259 gid->global.subnet_prefix == IB_DEFAULT_GID_PREFIX));
264 * This should be called with the QP r_lock held.
266 * The s_lock will be acquired around the qib_migrate_qp() call.
268 int qib_ruc_check_hdr(struct qib_ibport *ibp, struct ib_header *hdr,
269 int has_grh, struct rvt_qp *qp, u32 bth0)
271 __be64 guid;
272 unsigned long flags;
274 if (qp->s_mig_state == IB_MIG_ARMED && (bth0 & IB_BTH_MIG_REQ)) {
275 if (!has_grh) {
276 if (qp->alt_ah_attr.ah_flags & IB_AH_GRH)
277 goto err;
278 } else {
279 if (!(qp->alt_ah_attr.ah_flags & IB_AH_GRH))
280 goto err;
281 guid = get_sguid(ibp, qp->alt_ah_attr.grh.sgid_index);
282 if (!gid_ok(&hdr->u.l.grh.dgid,
283 ibp->rvp.gid_prefix, guid))
284 goto err;
285 if (!gid_ok(&hdr->u.l.grh.sgid,
286 qp->alt_ah_attr.grh.dgid.global.subnet_prefix,
287 qp->alt_ah_attr.grh.dgid.global.interface_id))
288 goto err;
290 if (!qib_pkey_ok((u16)bth0,
291 qib_get_pkey(ibp, qp->s_alt_pkey_index))) {
292 qib_bad_pqkey(ibp, IB_NOTICE_TRAP_BAD_PKEY,
293 (u16)bth0,
294 (be16_to_cpu(hdr->lrh[0]) >> 4) & 0xF,
295 0, qp->ibqp.qp_num,
296 hdr->lrh[3], hdr->lrh[1]);
297 goto err;
299 /* Validate the SLID. See Ch. 9.6.1.5 and 17.2.8 */
300 if (be16_to_cpu(hdr->lrh[3]) != qp->alt_ah_attr.dlid ||
301 ppd_from_ibp(ibp)->port != qp->alt_ah_attr.port_num)
302 goto err;
303 spin_lock_irqsave(&qp->s_lock, flags);
304 qib_migrate_qp(qp);
305 spin_unlock_irqrestore(&qp->s_lock, flags);
306 } else {
307 if (!has_grh) {
308 if (qp->remote_ah_attr.ah_flags & IB_AH_GRH)
309 goto err;
310 } else {
311 if (!(qp->remote_ah_attr.ah_flags & IB_AH_GRH))
312 goto err;
313 guid = get_sguid(ibp,
314 qp->remote_ah_attr.grh.sgid_index);
315 if (!gid_ok(&hdr->u.l.grh.dgid,
316 ibp->rvp.gid_prefix, guid))
317 goto err;
318 if (!gid_ok(&hdr->u.l.grh.sgid,
319 qp->remote_ah_attr.grh.dgid.global.subnet_prefix,
320 qp->remote_ah_attr.grh.dgid.global.interface_id))
321 goto err;
323 if (!qib_pkey_ok((u16)bth0,
324 qib_get_pkey(ibp, qp->s_pkey_index))) {
325 qib_bad_pqkey(ibp, IB_NOTICE_TRAP_BAD_PKEY,
326 (u16)bth0,
327 (be16_to_cpu(hdr->lrh[0]) >> 4) & 0xF,
328 0, qp->ibqp.qp_num,
329 hdr->lrh[3], hdr->lrh[1]);
330 goto err;
332 /* Validate the SLID. See Ch. 9.6.1.5 */
333 if (be16_to_cpu(hdr->lrh[3]) != qp->remote_ah_attr.dlid ||
334 ppd_from_ibp(ibp)->port != qp->port_num)
335 goto err;
336 if (qp->s_mig_state == IB_MIG_REARM &&
337 !(bth0 & IB_BTH_MIG_REQ))
338 qp->s_mig_state = IB_MIG_ARMED;
341 return 0;
343 err:
344 return 1;
348 * qib_ruc_loopback - handle UC and RC lookback requests
349 * @sqp: the sending QP
351 * This is called from qib_do_send() to
352 * forward a WQE addressed to the same HCA.
353 * Note that although we are single threaded due to the tasklet, we still
354 * have to protect against post_send(). We don't have to worry about
355 * receive interrupts since this is a connected protocol and all packets
356 * will pass through here.
358 static void qib_ruc_loopback(struct rvt_qp *sqp)
360 struct qib_ibport *ibp = to_iport(sqp->ibqp.device, sqp->port_num);
361 struct qib_pportdata *ppd = ppd_from_ibp(ibp);
362 struct qib_devdata *dd = ppd->dd;
363 struct rvt_dev_info *rdi = &dd->verbs_dev.rdi;
364 struct rvt_qp *qp;
365 struct rvt_swqe *wqe;
366 struct rvt_sge *sge;
367 unsigned long flags;
368 struct ib_wc wc;
369 u64 sdata;
370 atomic64_t *maddr;
371 enum ib_wc_status send_status;
372 int release;
373 int ret;
375 rcu_read_lock();
377 * Note that we check the responder QP state after
378 * checking the requester's state.
380 qp = rvt_lookup_qpn(rdi, &ibp->rvp, sqp->remote_qpn);
381 if (!qp)
382 goto done;
384 spin_lock_irqsave(&sqp->s_lock, flags);
386 /* Return if we are already busy processing a work request. */
387 if ((sqp->s_flags & (RVT_S_BUSY | RVT_S_ANY_WAIT)) ||
388 !(ib_rvt_state_ops[sqp->state] & RVT_PROCESS_OR_FLUSH_SEND))
389 goto unlock;
391 sqp->s_flags |= RVT_S_BUSY;
393 again:
394 smp_read_barrier_depends(); /* see post_one_send() */
395 if (sqp->s_last == ACCESS_ONCE(sqp->s_head))
396 goto clr_busy;
397 wqe = rvt_get_swqe_ptr(sqp, sqp->s_last);
399 /* Return if it is not OK to start a new work reqeust. */
400 if (!(ib_rvt_state_ops[sqp->state] & RVT_PROCESS_NEXT_SEND_OK)) {
401 if (!(ib_rvt_state_ops[sqp->state] & RVT_FLUSH_SEND))
402 goto clr_busy;
403 /* We are in the error state, flush the work request. */
404 send_status = IB_WC_WR_FLUSH_ERR;
405 goto flush_send;
409 * We can rely on the entry not changing without the s_lock
410 * being held until we update s_last.
411 * We increment s_cur to indicate s_last is in progress.
413 if (sqp->s_last == sqp->s_cur) {
414 if (++sqp->s_cur >= sqp->s_size)
415 sqp->s_cur = 0;
417 spin_unlock_irqrestore(&sqp->s_lock, flags);
419 if (!qp || !(ib_rvt_state_ops[qp->state] & RVT_PROCESS_RECV_OK) ||
420 qp->ibqp.qp_type != sqp->ibqp.qp_type) {
421 ibp->rvp.n_pkt_drops++;
423 * For RC, the requester would timeout and retry so
424 * shortcut the timeouts and just signal too many retries.
426 if (sqp->ibqp.qp_type == IB_QPT_RC)
427 send_status = IB_WC_RETRY_EXC_ERR;
428 else
429 send_status = IB_WC_SUCCESS;
430 goto serr;
433 memset(&wc, 0, sizeof(wc));
434 send_status = IB_WC_SUCCESS;
436 release = 1;
437 sqp->s_sge.sge = wqe->sg_list[0];
438 sqp->s_sge.sg_list = wqe->sg_list + 1;
439 sqp->s_sge.num_sge = wqe->wr.num_sge;
440 sqp->s_len = wqe->length;
441 switch (wqe->wr.opcode) {
442 case IB_WR_SEND_WITH_IMM:
443 wc.wc_flags = IB_WC_WITH_IMM;
444 wc.ex.imm_data = wqe->wr.ex.imm_data;
445 /* FALLTHROUGH */
446 case IB_WR_SEND:
447 ret = qib_get_rwqe(qp, 0);
448 if (ret < 0)
449 goto op_err;
450 if (!ret)
451 goto rnr_nak;
452 if (wqe->length > qp->r_len)
453 goto inv_err;
454 break;
456 case IB_WR_RDMA_WRITE_WITH_IMM:
457 if (unlikely(!(qp->qp_access_flags & IB_ACCESS_REMOTE_WRITE)))
458 goto inv_err;
459 wc.wc_flags = IB_WC_WITH_IMM;
460 wc.ex.imm_data = wqe->wr.ex.imm_data;
461 ret = qib_get_rwqe(qp, 1);
462 if (ret < 0)
463 goto op_err;
464 if (!ret)
465 goto rnr_nak;
466 /* FALLTHROUGH */
467 case IB_WR_RDMA_WRITE:
468 if (unlikely(!(qp->qp_access_flags & IB_ACCESS_REMOTE_WRITE)))
469 goto inv_err;
470 if (wqe->length == 0)
471 break;
472 if (unlikely(!rvt_rkey_ok(qp, &qp->r_sge.sge, wqe->length,
473 wqe->rdma_wr.remote_addr,
474 wqe->rdma_wr.rkey,
475 IB_ACCESS_REMOTE_WRITE)))
476 goto acc_err;
477 qp->r_sge.sg_list = NULL;
478 qp->r_sge.num_sge = 1;
479 qp->r_sge.total_len = wqe->length;
480 break;
482 case IB_WR_RDMA_READ:
483 if (unlikely(!(qp->qp_access_flags & IB_ACCESS_REMOTE_READ)))
484 goto inv_err;
485 if (unlikely(!rvt_rkey_ok(qp, &sqp->s_sge.sge, wqe->length,
486 wqe->rdma_wr.remote_addr,
487 wqe->rdma_wr.rkey,
488 IB_ACCESS_REMOTE_READ)))
489 goto acc_err;
490 release = 0;
491 sqp->s_sge.sg_list = NULL;
492 sqp->s_sge.num_sge = 1;
493 qp->r_sge.sge = wqe->sg_list[0];
494 qp->r_sge.sg_list = wqe->sg_list + 1;
495 qp->r_sge.num_sge = wqe->wr.num_sge;
496 qp->r_sge.total_len = wqe->length;
497 break;
499 case IB_WR_ATOMIC_CMP_AND_SWP:
500 case IB_WR_ATOMIC_FETCH_AND_ADD:
501 if (unlikely(!(qp->qp_access_flags & IB_ACCESS_REMOTE_ATOMIC)))
502 goto inv_err;
503 if (unlikely(!rvt_rkey_ok(qp, &qp->r_sge.sge, sizeof(u64),
504 wqe->atomic_wr.remote_addr,
505 wqe->atomic_wr.rkey,
506 IB_ACCESS_REMOTE_ATOMIC)))
507 goto acc_err;
508 /* Perform atomic OP and save result. */
509 maddr = (atomic64_t *) qp->r_sge.sge.vaddr;
510 sdata = wqe->atomic_wr.compare_add;
511 *(u64 *) sqp->s_sge.sge.vaddr =
512 (wqe->atomic_wr.wr.opcode == IB_WR_ATOMIC_FETCH_AND_ADD) ?
513 (u64) atomic64_add_return(sdata, maddr) - sdata :
514 (u64) cmpxchg((u64 *) qp->r_sge.sge.vaddr,
515 sdata, wqe->atomic_wr.swap);
516 rvt_put_mr(qp->r_sge.sge.mr);
517 qp->r_sge.num_sge = 0;
518 goto send_comp;
520 default:
521 send_status = IB_WC_LOC_QP_OP_ERR;
522 goto serr;
525 sge = &sqp->s_sge.sge;
526 while (sqp->s_len) {
527 u32 len = sqp->s_len;
529 if (len > sge->length)
530 len = sge->length;
531 if (len > sge->sge_length)
532 len = sge->sge_length;
533 BUG_ON(len == 0);
534 qib_copy_sge(&qp->r_sge, sge->vaddr, len, release);
535 sge->vaddr += len;
536 sge->length -= len;
537 sge->sge_length -= len;
538 if (sge->sge_length == 0) {
539 if (!release)
540 rvt_put_mr(sge->mr);
541 if (--sqp->s_sge.num_sge)
542 *sge = *sqp->s_sge.sg_list++;
543 } else if (sge->length == 0 && sge->mr->lkey) {
544 if (++sge->n >= RVT_SEGSZ) {
545 if (++sge->m >= sge->mr->mapsz)
546 break;
547 sge->n = 0;
549 sge->vaddr =
550 sge->mr->map[sge->m]->segs[sge->n].vaddr;
551 sge->length =
552 sge->mr->map[sge->m]->segs[sge->n].length;
554 sqp->s_len -= len;
556 if (release)
557 rvt_put_ss(&qp->r_sge);
559 if (!test_and_clear_bit(RVT_R_WRID_VALID, &qp->r_aflags))
560 goto send_comp;
562 if (wqe->wr.opcode == IB_WR_RDMA_WRITE_WITH_IMM)
563 wc.opcode = IB_WC_RECV_RDMA_WITH_IMM;
564 else
565 wc.opcode = IB_WC_RECV;
566 wc.wr_id = qp->r_wr_id;
567 wc.status = IB_WC_SUCCESS;
568 wc.byte_len = wqe->length;
569 wc.qp = &qp->ibqp;
570 wc.src_qp = qp->remote_qpn;
571 wc.slid = qp->remote_ah_attr.dlid;
572 wc.sl = qp->remote_ah_attr.sl;
573 wc.port_num = 1;
574 /* Signal completion event if the solicited bit is set. */
575 rvt_cq_enter(ibcq_to_rvtcq(qp->ibqp.recv_cq), &wc,
576 wqe->wr.send_flags & IB_SEND_SOLICITED);
578 send_comp:
579 spin_lock_irqsave(&sqp->s_lock, flags);
580 ibp->rvp.n_loop_pkts++;
581 flush_send:
582 sqp->s_rnr_retry = sqp->s_rnr_retry_cnt;
583 qib_send_complete(sqp, wqe, send_status);
584 goto again;
586 rnr_nak:
587 /* Handle RNR NAK */
588 if (qp->ibqp.qp_type == IB_QPT_UC)
589 goto send_comp;
590 ibp->rvp.n_rnr_naks++;
592 * Note: we don't need the s_lock held since the BUSY flag
593 * makes this single threaded.
595 if (sqp->s_rnr_retry == 0) {
596 send_status = IB_WC_RNR_RETRY_EXC_ERR;
597 goto serr;
599 if (sqp->s_rnr_retry_cnt < 7)
600 sqp->s_rnr_retry--;
601 spin_lock_irqsave(&sqp->s_lock, flags);
602 if (!(ib_rvt_state_ops[sqp->state] & RVT_PROCESS_RECV_OK))
603 goto clr_busy;
604 sqp->s_flags |= RVT_S_WAIT_RNR;
605 sqp->s_timer.function = qib_rc_rnr_retry;
606 sqp->s_timer.expires = jiffies +
607 usecs_to_jiffies(ib_qib_rnr_table[qp->r_min_rnr_timer]);
608 add_timer(&sqp->s_timer);
609 goto clr_busy;
611 op_err:
612 send_status = IB_WC_REM_OP_ERR;
613 wc.status = IB_WC_LOC_QP_OP_ERR;
614 goto err;
616 inv_err:
617 send_status =
618 sqp->ibqp.qp_type == IB_QPT_RC ?
619 IB_WC_REM_INV_REQ_ERR :
620 IB_WC_SUCCESS;
621 wc.status = IB_WC_LOC_QP_OP_ERR;
622 goto err;
624 acc_err:
625 send_status = IB_WC_REM_ACCESS_ERR;
626 wc.status = IB_WC_LOC_PROT_ERR;
627 err:
628 /* responder goes to error state */
629 qib_rc_error(qp, wc.status);
631 serr:
632 spin_lock_irqsave(&sqp->s_lock, flags);
633 qib_send_complete(sqp, wqe, send_status);
634 if (sqp->ibqp.qp_type == IB_QPT_RC) {
635 int lastwqe = rvt_error_qp(sqp, IB_WC_WR_FLUSH_ERR);
637 sqp->s_flags &= ~RVT_S_BUSY;
638 spin_unlock_irqrestore(&sqp->s_lock, flags);
639 if (lastwqe) {
640 struct ib_event ev;
642 ev.device = sqp->ibqp.device;
643 ev.element.qp = &sqp->ibqp;
644 ev.event = IB_EVENT_QP_LAST_WQE_REACHED;
645 sqp->ibqp.event_handler(&ev, sqp->ibqp.qp_context);
647 goto done;
649 clr_busy:
650 sqp->s_flags &= ~RVT_S_BUSY;
651 unlock:
652 spin_unlock_irqrestore(&sqp->s_lock, flags);
653 done:
654 rcu_read_unlock();
658 * qib_make_grh - construct a GRH header
659 * @ibp: a pointer to the IB port
660 * @hdr: a pointer to the GRH header being constructed
661 * @grh: the global route address to send to
662 * @hwords: the number of 32 bit words of header being sent
663 * @nwords: the number of 32 bit words of data being sent
665 * Return the size of the header in 32 bit words.
667 u32 qib_make_grh(struct qib_ibport *ibp, struct ib_grh *hdr,
668 struct ib_global_route *grh, u32 hwords, u32 nwords)
670 hdr->version_tclass_flow =
671 cpu_to_be32((IB_GRH_VERSION << IB_GRH_VERSION_SHIFT) |
672 (grh->traffic_class << IB_GRH_TCLASS_SHIFT) |
673 (grh->flow_label << IB_GRH_FLOW_SHIFT));
674 hdr->paylen = cpu_to_be16((hwords - 2 + nwords + SIZE_OF_CRC) << 2);
675 /* next_hdr is defined by C8-7 in ch. 8.4.1 */
676 hdr->next_hdr = IB_GRH_NEXT_HDR;
677 hdr->hop_limit = grh->hop_limit;
678 /* The SGID is 32-bit aligned. */
679 hdr->sgid.global.subnet_prefix = ibp->rvp.gid_prefix;
680 hdr->sgid.global.interface_id = grh->sgid_index ?
681 ibp->guids[grh->sgid_index - 1] : ppd_from_ibp(ibp)->guid;
682 hdr->dgid = grh->dgid;
684 /* GRH header size in 32-bit words. */
685 return sizeof(struct ib_grh) / sizeof(u32);
688 void qib_make_ruc_header(struct rvt_qp *qp, struct ib_other_headers *ohdr,
689 u32 bth0, u32 bth2)
691 struct qib_qp_priv *priv = qp->priv;
692 struct qib_ibport *ibp = to_iport(qp->ibqp.device, qp->port_num);
693 u16 lrh0;
694 u32 nwords;
695 u32 extra_bytes;
697 /* Construct the header. */
698 extra_bytes = -qp->s_cur_size & 3;
699 nwords = (qp->s_cur_size + extra_bytes) >> 2;
700 lrh0 = QIB_LRH_BTH;
701 if (unlikely(qp->remote_ah_attr.ah_flags & IB_AH_GRH)) {
702 qp->s_hdrwords += qib_make_grh(ibp, &priv->s_hdr->u.l.grh,
703 &qp->remote_ah_attr.grh,
704 qp->s_hdrwords, nwords);
705 lrh0 = QIB_LRH_GRH;
707 lrh0 |= ibp->sl_to_vl[qp->remote_ah_attr.sl] << 12 |
708 qp->remote_ah_attr.sl << 4;
709 priv->s_hdr->lrh[0] = cpu_to_be16(lrh0);
710 priv->s_hdr->lrh[1] = cpu_to_be16(qp->remote_ah_attr.dlid);
711 priv->s_hdr->lrh[2] =
712 cpu_to_be16(qp->s_hdrwords + nwords + SIZE_OF_CRC);
713 priv->s_hdr->lrh[3] = cpu_to_be16(ppd_from_ibp(ibp)->lid |
714 qp->remote_ah_attr.src_path_bits);
715 bth0 |= qib_get_pkey(ibp, qp->s_pkey_index);
716 bth0 |= extra_bytes << 20;
717 if (qp->s_mig_state == IB_MIG_MIGRATED)
718 bth0 |= IB_BTH_MIG_REQ;
719 ohdr->bth[0] = cpu_to_be32(bth0);
720 ohdr->bth[1] = cpu_to_be32(qp->remote_qpn);
721 ohdr->bth[2] = cpu_to_be32(bth2);
722 this_cpu_inc(ibp->pmastats->n_unicast_xmit);
725 void _qib_do_send(struct work_struct *work)
727 struct qib_qp_priv *priv = container_of(work, struct qib_qp_priv,
728 s_work);
729 struct rvt_qp *qp = priv->owner;
731 qib_do_send(qp);
735 * qib_do_send - perform a send on a QP
736 * @qp: pointer to the QP
738 * Process entries in the send work queue until credit or queue is
739 * exhausted. Only allow one CPU to send a packet per QP (tasklet).
740 * Otherwise, two threads could send packets out of order.
742 void qib_do_send(struct rvt_qp *qp)
744 struct qib_qp_priv *priv = qp->priv;
745 struct qib_ibport *ibp = to_iport(qp->ibqp.device, qp->port_num);
746 struct qib_pportdata *ppd = ppd_from_ibp(ibp);
747 int (*make_req)(struct rvt_qp *qp, unsigned long *flags);
748 unsigned long flags;
750 if ((qp->ibqp.qp_type == IB_QPT_RC ||
751 qp->ibqp.qp_type == IB_QPT_UC) &&
752 (qp->remote_ah_attr.dlid & ~((1 << ppd->lmc) - 1)) == ppd->lid) {
753 qib_ruc_loopback(qp);
754 return;
757 if (qp->ibqp.qp_type == IB_QPT_RC)
758 make_req = qib_make_rc_req;
759 else if (qp->ibqp.qp_type == IB_QPT_UC)
760 make_req = qib_make_uc_req;
761 else
762 make_req = qib_make_ud_req;
764 spin_lock_irqsave(&qp->s_lock, flags);
766 /* Return if we are already busy processing a work request. */
767 if (!qib_send_ok(qp)) {
768 spin_unlock_irqrestore(&qp->s_lock, flags);
769 return;
772 qp->s_flags |= RVT_S_BUSY;
774 do {
775 /* Check for a constructed packet to be sent. */
776 if (qp->s_hdrwords != 0) {
777 spin_unlock_irqrestore(&qp->s_lock, flags);
779 * If the packet cannot be sent now, return and
780 * the send tasklet will be woken up later.
782 if (qib_verbs_send(qp, priv->s_hdr, qp->s_hdrwords,
783 qp->s_cur_sge, qp->s_cur_size))
784 return;
785 /* Record that s_hdr is empty. */
786 qp->s_hdrwords = 0;
787 spin_lock_irqsave(&qp->s_lock, flags);
789 } while (make_req(qp, &flags));
791 spin_unlock_irqrestore(&qp->s_lock, flags);
795 * This should be called with s_lock held.
797 void qib_send_complete(struct rvt_qp *qp, struct rvt_swqe *wqe,
798 enum ib_wc_status status)
800 u32 old_last, last;
801 unsigned i;
803 if (!(ib_rvt_state_ops[qp->state] & RVT_PROCESS_OR_FLUSH_SEND))
804 return;
806 last = qp->s_last;
807 old_last = last;
808 if (++last >= qp->s_size)
809 last = 0;
810 qp->s_last = last;
811 /* See post_send() */
812 barrier();
813 for (i = 0; i < wqe->wr.num_sge; i++) {
814 struct rvt_sge *sge = &wqe->sg_list[i];
816 rvt_put_mr(sge->mr);
818 if (qp->ibqp.qp_type == IB_QPT_UD ||
819 qp->ibqp.qp_type == IB_QPT_SMI ||
820 qp->ibqp.qp_type == IB_QPT_GSI)
821 atomic_dec(&ibah_to_rvtah(wqe->ud_wr.ah)->refcount);
823 /* See ch. 11.2.4.1 and 10.7.3.1 */
824 if (!(qp->s_flags & RVT_S_SIGNAL_REQ_WR) ||
825 (wqe->wr.send_flags & IB_SEND_SIGNALED) ||
826 status != IB_WC_SUCCESS) {
827 struct ib_wc wc;
829 memset(&wc, 0, sizeof(wc));
830 wc.wr_id = wqe->wr.wr_id;
831 wc.status = status;
832 wc.opcode = ib_qib_wc_opcode[wqe->wr.opcode];
833 wc.qp = &qp->ibqp;
834 if (status == IB_WC_SUCCESS)
835 wc.byte_len = wqe->length;
836 rvt_cq_enter(ibcq_to_rvtcq(qp->ibqp.send_cq), &wc,
837 status != IB_WC_SUCCESS);
840 if (qp->s_acked == old_last)
841 qp->s_acked = last;
842 if (qp->s_cur == old_last)
843 qp->s_cur = last;
844 if (qp->s_tail == old_last)
845 qp->s_tail = last;
846 if (qp->state == IB_QPS_SQD && last == qp->s_cur)
847 qp->s_draining = 0;