2 * PMC-Sierra PM8001/8081/8088/8089 SAS/SATA based host adapters driver
4 * Copyright (c) 2008-2009 USI Co., Ltd.
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions, and the following disclaimer,
12 * without modification.
13 * 2. Redistributions in binary form must reproduce at minimum a disclaimer
14 * substantially similar to the "NO WARRANTY" disclaimer below
15 * ("Disclaimer") and any redistribution must be conditioned upon
16 * including a substantially similar Disclaimer requirement for further
17 * binary redistribution.
18 * 3. Neither the names of the above-listed copyright holders nor the names
19 * of any contributors may be used to endorse or promote products derived
20 * from this software without specific prior written permission.
22 * Alternatively, this software may be distributed under the terms of the
23 * GNU General Public License ("GPL") version 2 as published by the Free
24 * Software Foundation.
27 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
28 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
29 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTIBILITY AND FITNESS FOR
30 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
31 * HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
32 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
33 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
34 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
35 * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING
36 * IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
37 * POSSIBILITY OF SUCH DAMAGES.
41 #include <linux/slab.h>
42 #include "pm8001_sas.h"
45 * pm8001_find_tag - from sas task to find out tag that belongs to this task
46 * @task: the task sent to the LLDD
47 * @tag: the found tag associated with the task
49 static int pm8001_find_tag(struct sas_task
*task
, u32
*tag
)
51 if (task
->lldd_task
) {
52 struct pm8001_ccb_info
*ccb
;
53 ccb
= task
->lldd_task
;
61 * pm8001_tag_free - free the no more needed tag
62 * @pm8001_ha: our hba struct
63 * @tag: the found tag associated with the task
65 void pm8001_tag_free(struct pm8001_hba_info
*pm8001_ha
, u32 tag
)
67 void *bitmap
= pm8001_ha
->tags
;
68 clear_bit(tag
, bitmap
);
72 * pm8001_tag_alloc - allocate a empty tag for task used.
73 * @pm8001_ha: our hba struct
74 * @tag_out: the found empty tag .
76 inline int pm8001_tag_alloc(struct pm8001_hba_info
*pm8001_ha
, u32
*tag_out
)
79 void *bitmap
= pm8001_ha
->tags
;
82 spin_lock_irqsave(&pm8001_ha
->bitmap_lock
, flags
);
83 tag
= find_first_zero_bit(bitmap
, pm8001_ha
->tags_num
);
84 if (tag
>= pm8001_ha
->tags_num
) {
85 spin_unlock_irqrestore(&pm8001_ha
->bitmap_lock
, flags
);
86 return -SAS_QUEUE_FULL
;
89 spin_unlock_irqrestore(&pm8001_ha
->bitmap_lock
, flags
);
94 void pm8001_tag_init(struct pm8001_hba_info
*pm8001_ha
)
97 for (i
= 0; i
< pm8001_ha
->tags_num
; ++i
)
98 pm8001_tag_free(pm8001_ha
, i
);
102 * pm8001_mem_alloc - allocate memory for pm8001.
104 * @virt_addr: the allocated virtual address
105 * @pphys_addr_hi: the physical address high byte address.
106 * @pphys_addr_lo: the physical address low byte address.
107 * @mem_size: memory size.
109 int pm8001_mem_alloc(struct pci_dev
*pdev
, void **virt_addr
,
110 dma_addr_t
*pphys_addr
, u32
*pphys_addr_hi
,
111 u32
*pphys_addr_lo
, u32 mem_size
, u32 align
)
113 caddr_t mem_virt_alloc
;
114 dma_addr_t mem_dma_handle
;
116 u64 align_offset
= 0;
118 align_offset
= (dma_addr_t
)align
- 1;
119 mem_virt_alloc
= dma_alloc_coherent(&pdev
->dev
, mem_size
+ align
,
120 &mem_dma_handle
, GFP_KERNEL
);
121 if (!mem_virt_alloc
) {
122 pr_err("pm80xx: memory allocation error\n");
125 *pphys_addr
= mem_dma_handle
;
126 phys_align
= (*pphys_addr
+ align_offset
) & ~align_offset
;
127 *virt_addr
= (void *)mem_virt_alloc
+ phys_align
- *pphys_addr
;
128 *pphys_addr_hi
= upper_32_bits(phys_align
);
129 *pphys_addr_lo
= lower_32_bits(phys_align
);
134 * pm8001_find_ha_by_dev - from domain device which come from sas layer to
135 * find out our hba struct.
136 * @dev: the domain device which from sas layer.
139 struct pm8001_hba_info
*pm8001_find_ha_by_dev(struct domain_device
*dev
)
141 struct sas_ha_struct
*sha
= dev
->port
->ha
;
142 struct pm8001_hba_info
*pm8001_ha
= sha
->lldd_ha
;
147 * pm8001_phy_control - this function should be registered to
148 * sas_domain_function_template to provide libsas used, note: this is just
149 * control the HBA phy rather than other expander phy if you want control
150 * other phy, you should use SMP command.
151 * @sas_phy: which phy in HBA phys.
152 * @func: the operation.
153 * @funcdata: always NULL.
155 int pm8001_phy_control(struct asd_sas_phy
*sas_phy
, enum phy_func func
,
158 int rc
= 0, phy_id
= sas_phy
->id
;
159 struct pm8001_hba_info
*pm8001_ha
= NULL
;
160 struct sas_phy_linkrates
*rates
;
161 struct sas_ha_struct
*sas_ha
;
162 struct pm8001_phy
*phy
;
163 DECLARE_COMPLETION_ONSTACK(completion
);
165 pm8001_ha
= sas_phy
->ha
->lldd_ha
;
166 phy
= &pm8001_ha
->phy
[phy_id
];
167 pm8001_ha
->phy
[phy_id
].enable_completion
= &completion
;
169 case PHY_FUNC_SET_LINK_RATE
:
171 if (rates
->minimum_linkrate
) {
172 pm8001_ha
->phy
[phy_id
].minimum_linkrate
=
173 rates
->minimum_linkrate
;
175 if (rates
->maximum_linkrate
) {
176 pm8001_ha
->phy
[phy_id
].maximum_linkrate
=
177 rates
->maximum_linkrate
;
179 if (pm8001_ha
->phy
[phy_id
].phy_state
== PHY_LINK_DISABLE
) {
180 PM8001_CHIP_DISP
->phy_start_req(pm8001_ha
, phy_id
);
181 wait_for_completion(&completion
);
183 PM8001_CHIP_DISP
->phy_ctl_req(pm8001_ha
, phy_id
,
186 case PHY_FUNC_HARD_RESET
:
187 if (pm8001_ha
->phy
[phy_id
].phy_state
== PHY_LINK_DISABLE
) {
188 PM8001_CHIP_DISP
->phy_start_req(pm8001_ha
, phy_id
);
189 wait_for_completion(&completion
);
191 PM8001_CHIP_DISP
->phy_ctl_req(pm8001_ha
, phy_id
,
194 case PHY_FUNC_LINK_RESET
:
195 if (pm8001_ha
->phy
[phy_id
].phy_state
== PHY_LINK_DISABLE
) {
196 PM8001_CHIP_DISP
->phy_start_req(pm8001_ha
, phy_id
);
197 wait_for_completion(&completion
);
199 PM8001_CHIP_DISP
->phy_ctl_req(pm8001_ha
, phy_id
,
202 case PHY_FUNC_RELEASE_SPINUP_HOLD
:
203 PM8001_CHIP_DISP
->phy_ctl_req(pm8001_ha
, phy_id
,
206 case PHY_FUNC_DISABLE
:
207 if (pm8001_ha
->chip_id
!= chip_8001
) {
208 if (pm8001_ha
->phy
[phy_id
].phy_state
==
209 PHY_STATE_LINK_UP_SPCV
) {
210 sas_ha
= pm8001_ha
->sas
;
211 sas_phy_disconnected(&phy
->sas_phy
);
212 sas_ha
->notify_phy_event(&phy
->sas_phy
,
213 PHYE_LOSS_OF_SIGNAL
);
214 phy
->phy_attached
= 0;
217 if (pm8001_ha
->phy
[phy_id
].phy_state
==
218 PHY_STATE_LINK_UP_SPC
) {
219 sas_ha
= pm8001_ha
->sas
;
220 sas_phy_disconnected(&phy
->sas_phy
);
221 sas_ha
->notify_phy_event(&phy
->sas_phy
,
222 PHYE_LOSS_OF_SIGNAL
);
223 phy
->phy_attached
= 0;
226 PM8001_CHIP_DISP
->phy_stop_req(pm8001_ha
, phy_id
);
228 case PHY_FUNC_GET_EVENTS
:
229 spin_lock_irqsave(&pm8001_ha
->lock
, flags
);
230 if (pm8001_ha
->chip_id
== chip_8001
) {
231 if (-1 == pm8001_bar4_shift(pm8001_ha
,
232 (phy_id
< 4) ? 0x30000 : 0x40000)) {
233 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
238 struct sas_phy
*phy
= sas_phy
->phy
;
239 uint32_t *qp
= (uint32_t *)(((char *)
240 pm8001_ha
->io_mem
[2].memvirtaddr
)
241 + 0x1034 + (0x4000 * (phy_id
& 3)));
243 phy
->invalid_dword_count
= qp
[0];
244 phy
->running_disparity_error_count
= qp
[1];
245 phy
->loss_of_dword_sync_count
= qp
[3];
246 phy
->phy_reset_problem_count
= qp
[4];
248 if (pm8001_ha
->chip_id
== chip_8001
)
249 pm8001_bar4_shift(pm8001_ha
, 0);
250 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
253 pm8001_dbg(pm8001_ha
, DEVIO
, "func 0x%x\n", func
);
261 * pm8001_scan_start - we should enable all HBA phys by sending the phy_start
263 * @shost: the scsi host data.
265 void pm8001_scan_start(struct Scsi_Host
*shost
)
268 struct pm8001_hba_info
*pm8001_ha
;
269 struct sas_ha_struct
*sha
= SHOST_TO_SAS_HA(shost
);
270 pm8001_ha
= sha
->lldd_ha
;
271 /* SAS_RE_INITIALIZATION not available in SPCv/ve */
272 if (pm8001_ha
->chip_id
== chip_8001
)
273 PM8001_CHIP_DISP
->sas_re_init_req(pm8001_ha
);
274 for (i
= 0; i
< pm8001_ha
->chip
->n_phy
; ++i
)
275 PM8001_CHIP_DISP
->phy_start_req(pm8001_ha
, i
);
278 int pm8001_scan_finished(struct Scsi_Host
*shost
, unsigned long time
)
280 struct sas_ha_struct
*ha
= SHOST_TO_SAS_HA(shost
);
282 /* give the phy enabling interrupt event time to come in (1s
283 * is empirically about all it takes) */
286 /* Wait for discovery to finish */
292 * pm8001_task_prep_smp - the dispatcher function, prepare data for smp task
293 * @pm8001_ha: our hba card information
294 * @ccb: the ccb which attached to smp task
296 static int pm8001_task_prep_smp(struct pm8001_hba_info
*pm8001_ha
,
297 struct pm8001_ccb_info
*ccb
)
299 return PM8001_CHIP_DISP
->smp_req(pm8001_ha
, ccb
);
302 u32
pm8001_get_ncq_tag(struct sas_task
*task
, u32
*tag
)
304 struct ata_queued_cmd
*qc
= task
->uldd_task
;
306 if (qc
->tf
.command
== ATA_CMD_FPDMA_WRITE
||
307 qc
->tf
.command
== ATA_CMD_FPDMA_READ
||
308 qc
->tf
.command
== ATA_CMD_FPDMA_RECV
||
309 qc
->tf
.command
== ATA_CMD_FPDMA_SEND
||
310 qc
->tf
.command
== ATA_CMD_NCQ_NON_DATA
) {
319 * pm8001_task_prep_ata - the dispatcher function, prepare data for sata task
320 * @pm8001_ha: our hba card information
321 * @ccb: the ccb which attached to sata task
323 static int pm8001_task_prep_ata(struct pm8001_hba_info
*pm8001_ha
,
324 struct pm8001_ccb_info
*ccb
)
326 return PM8001_CHIP_DISP
->sata_req(pm8001_ha
, ccb
);
330 * pm8001_task_prep_ssp_tm - the dispatcher function, prepare task management data
331 * @pm8001_ha: our hba card information
332 * @ccb: the ccb which attached to TM
333 * @tmf: the task management IU
335 static int pm8001_task_prep_ssp_tm(struct pm8001_hba_info
*pm8001_ha
,
336 struct pm8001_ccb_info
*ccb
, struct pm8001_tmf_task
*tmf
)
338 return PM8001_CHIP_DISP
->ssp_tm_req(pm8001_ha
, ccb
, tmf
);
342 * pm8001_task_prep_ssp - the dispatcher function,prepare ssp data for ssp task
343 * @pm8001_ha: our hba card information
344 * @ccb: the ccb which attached to ssp task
346 static int pm8001_task_prep_ssp(struct pm8001_hba_info
*pm8001_ha
,
347 struct pm8001_ccb_info
*ccb
)
349 return PM8001_CHIP_DISP
->ssp_io_req(pm8001_ha
, ccb
);
352 /* Find the local port id that's attached to this device */
353 static int sas_find_local_port_id(struct domain_device
*dev
)
355 struct domain_device
*pdev
= dev
->parent
;
357 /* Directly attached device */
359 return dev
->port
->id
;
361 struct domain_device
*pdev_p
= pdev
->parent
;
363 return pdev
->port
->id
;
369 #define DEV_IS_GONE(pm8001_dev) \
370 ((!pm8001_dev || (pm8001_dev->dev_type == SAS_PHY_UNUSED)))
372 * pm8001_task_exec - queue the task(ssp, smp && ata) to the hardware.
373 * @task: the task to be execute.
374 * @gfp_flags: gfp_flags.
375 * @is_tmf: if it is task management task.
376 * @tmf: the task management IU
378 static int pm8001_task_exec(struct sas_task
*task
,
379 gfp_t gfp_flags
, int is_tmf
, struct pm8001_tmf_task
*tmf
)
381 struct domain_device
*dev
= task
->dev
;
382 struct pm8001_hba_info
*pm8001_ha
;
383 struct pm8001_device
*pm8001_dev
;
384 struct pm8001_port
*port
= NULL
;
385 struct sas_task
*t
= task
;
386 struct pm8001_ccb_info
*ccb
;
387 u32 tag
= 0xdeadbeef, rc
= 0, n_elem
= 0;
388 unsigned long flags
= 0;
389 enum sas_protocol task_proto
= t
->task_proto
;
392 struct task_status_struct
*tsm
= &t
->task_status
;
393 tsm
->resp
= SAS_TASK_UNDELIVERED
;
394 tsm
->stat
= SAS_PHY_DOWN
;
395 if (dev
->dev_type
!= SAS_SATA_DEV
)
399 pm8001_ha
= pm8001_find_ha_by_dev(task
->dev
);
400 if (pm8001_ha
->controller_fatal_error
) {
401 struct task_status_struct
*ts
= &t
->task_status
;
403 ts
->resp
= SAS_TASK_UNDELIVERED
;
407 pm8001_dbg(pm8001_ha
, IO
, "pm8001_task_exec device\n");
408 spin_lock_irqsave(&pm8001_ha
->lock
, flags
);
411 pm8001_dev
= dev
->lldd_dev
;
412 port
= &pm8001_ha
->port
[sas_find_local_port_id(dev
)];
413 if (DEV_IS_GONE(pm8001_dev
) || !port
->port_attached
) {
414 if (sas_protocol_ata(task_proto
)) {
415 struct task_status_struct
*ts
= &t
->task_status
;
416 ts
->resp
= SAS_TASK_UNDELIVERED
;
417 ts
->stat
= SAS_PHY_DOWN
;
419 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
421 spin_lock_irqsave(&pm8001_ha
->lock
, flags
);
424 struct task_status_struct
*ts
= &t
->task_status
;
425 ts
->resp
= SAS_TASK_UNDELIVERED
;
426 ts
->stat
= SAS_PHY_DOWN
;
431 rc
= pm8001_tag_alloc(pm8001_ha
, &tag
);
434 ccb
= &pm8001_ha
->ccb_info
[tag
];
436 if (!sas_protocol_ata(task_proto
)) {
437 if (t
->num_scatter
) {
438 n_elem
= dma_map_sg(pm8001_ha
->dev
,
448 n_elem
= t
->num_scatter
;
452 ccb
->n_elem
= n_elem
;
455 ccb
->device
= pm8001_dev
;
456 switch (task_proto
) {
457 case SAS_PROTOCOL_SMP
:
458 atomic_inc(&pm8001_dev
->running_req
);
459 rc
= pm8001_task_prep_smp(pm8001_ha
, ccb
);
461 case SAS_PROTOCOL_SSP
:
462 atomic_inc(&pm8001_dev
->running_req
);
464 rc
= pm8001_task_prep_ssp_tm(pm8001_ha
,
467 rc
= pm8001_task_prep_ssp(pm8001_ha
, ccb
);
469 case SAS_PROTOCOL_SATA
:
470 case SAS_PROTOCOL_STP
:
471 atomic_inc(&pm8001_dev
->running_req
);
472 rc
= pm8001_task_prep_ata(pm8001_ha
, ccb
);
475 dev_printk(KERN_ERR
, pm8001_ha
->dev
,
476 "unknown sas_task proto: 0x%x\n", task_proto
);
482 pm8001_dbg(pm8001_ha
, IO
, "rc is %x\n", rc
);
483 atomic_dec(&pm8001_dev
->running_req
);
486 /* TODO: select normal or high priority */
487 spin_lock(&t
->task_state_lock
);
488 t
->task_state_flags
|= SAS_TASK_AT_INITIATOR
;
489 spin_unlock(&t
->task_state_lock
);
495 pm8001_tag_free(pm8001_ha
, tag
);
497 dev_printk(KERN_ERR
, pm8001_ha
->dev
, "pm8001 exec failed[%d]!\n", rc
);
498 if (!sas_protocol_ata(task_proto
))
500 dma_unmap_sg(pm8001_ha
->dev
, t
->scatter
, t
->num_scatter
,
503 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
508 * pm8001_queue_command - register for upper layer used, all IO commands sent
509 * to HBA are from this interface.
510 * @task: the task to be execute.
511 * @gfp_flags: gfp_flags
513 int pm8001_queue_command(struct sas_task
*task
, gfp_t gfp_flags
)
515 return pm8001_task_exec(task
, gfp_flags
, 0, NULL
);
519 * pm8001_ccb_task_free - free the sg for ssp and smp command, free the ccb.
520 * @pm8001_ha: our hba card information
521 * @ccb: the ccb which attached to ssp task
522 * @task: the task to be free.
523 * @ccb_idx: ccb index.
525 void pm8001_ccb_task_free(struct pm8001_hba_info
*pm8001_ha
,
526 struct sas_task
*task
, struct pm8001_ccb_info
*ccb
, u32 ccb_idx
)
530 if (!sas_protocol_ata(task
->task_proto
))
532 dma_unmap_sg(pm8001_ha
->dev
, task
->scatter
,
533 task
->num_scatter
, task
->data_dir
);
535 switch (task
->task_proto
) {
536 case SAS_PROTOCOL_SMP
:
537 dma_unmap_sg(pm8001_ha
->dev
, &task
->smp_task
.smp_resp
, 1,
539 dma_unmap_sg(pm8001_ha
->dev
, &task
->smp_task
.smp_req
, 1,
543 case SAS_PROTOCOL_SATA
:
544 case SAS_PROTOCOL_STP
:
545 case SAS_PROTOCOL_SSP
:
550 task
->lldd_task
= NULL
;
552 ccb
->ccb_tag
= 0xFFFFFFFF;
554 pm8001_tag_free(pm8001_ha
, ccb_idx
);
558 * pm8001_alloc_dev - find a empty pm8001_device
559 * @pm8001_ha: our hba card information
561 static struct pm8001_device
*pm8001_alloc_dev(struct pm8001_hba_info
*pm8001_ha
)
564 for (dev
= 0; dev
< PM8001_MAX_DEVICES
; dev
++) {
565 if (pm8001_ha
->devices
[dev
].dev_type
== SAS_PHY_UNUSED
) {
566 pm8001_ha
->devices
[dev
].id
= dev
;
567 return &pm8001_ha
->devices
[dev
];
570 if (dev
== PM8001_MAX_DEVICES
) {
571 pm8001_dbg(pm8001_ha
, FAIL
,
572 "max support %d devices, ignore ..\n",
578 * pm8001_find_dev - find a matching pm8001_device
579 * @pm8001_ha: our hba card information
580 * @device_id: device ID to match against
582 struct pm8001_device
*pm8001_find_dev(struct pm8001_hba_info
*pm8001_ha
,
586 for (dev
= 0; dev
< PM8001_MAX_DEVICES
; dev
++) {
587 if (pm8001_ha
->devices
[dev
].device_id
== device_id
)
588 return &pm8001_ha
->devices
[dev
];
590 if (dev
== PM8001_MAX_DEVICES
) {
591 pm8001_dbg(pm8001_ha
, FAIL
, "NO MATCHING DEVICE FOUND !!!\n");
596 static void pm8001_free_dev(struct pm8001_device
*pm8001_dev
)
598 u32 id
= pm8001_dev
->id
;
599 memset(pm8001_dev
, 0, sizeof(*pm8001_dev
));
601 pm8001_dev
->dev_type
= SAS_PHY_UNUSED
;
602 pm8001_dev
->device_id
= PM8001_MAX_DEVICES
;
603 pm8001_dev
->sas_device
= NULL
;
607 * pm8001_dev_found_notify - libsas notify a device is found.
608 * @dev: the device structure which sas layer used.
610 * when libsas find a sas domain device, it should tell the LLDD that
611 * device is found, and then LLDD register this device to HBA firmware
612 * by the command "OPC_INB_REG_DEV", after that the HBA will assign a
613 * device ID(according to device's sas address) and returned it to LLDD. From
614 * now on, we communicate with HBA FW with the device ID which HBA assigned
615 * rather than sas address. it is the necessary step for our HBA but it is
616 * the optional for other HBA driver.
618 static int pm8001_dev_found_notify(struct domain_device
*dev
)
620 unsigned long flags
= 0;
622 struct pm8001_hba_info
*pm8001_ha
= NULL
;
623 struct domain_device
*parent_dev
= dev
->parent
;
624 struct pm8001_device
*pm8001_device
;
625 DECLARE_COMPLETION_ONSTACK(completion
);
627 pm8001_ha
= pm8001_find_ha_by_dev(dev
);
628 spin_lock_irqsave(&pm8001_ha
->lock
, flags
);
630 pm8001_device
= pm8001_alloc_dev(pm8001_ha
);
631 if (!pm8001_device
) {
635 pm8001_device
->sas_device
= dev
;
636 dev
->lldd_dev
= pm8001_device
;
637 pm8001_device
->dev_type
= dev
->dev_type
;
638 pm8001_device
->dcompletion
= &completion
;
639 if (parent_dev
&& dev_is_expander(parent_dev
->dev_type
)) {
642 for (phy_id
= 0; phy_id
< parent_dev
->ex_dev
.num_phys
;
644 phy
= &parent_dev
->ex_dev
.ex_phy
[phy_id
];
645 if (SAS_ADDR(phy
->attached_sas_addr
)
646 == SAS_ADDR(dev
->sas_addr
)) {
647 pm8001_device
->attached_phy
= phy_id
;
651 if (phy_id
== parent_dev
->ex_dev
.num_phys
) {
652 pm8001_dbg(pm8001_ha
, FAIL
,
653 "Error: no attached dev:%016llx at ex:%016llx.\n",
654 SAS_ADDR(dev
->sas_addr
),
655 SAS_ADDR(parent_dev
->sas_addr
));
659 if (dev
->dev_type
== SAS_SATA_DEV
) {
660 pm8001_device
->attached_phy
=
661 dev
->rphy
->identify
.phy_identifier
;
662 flag
= 1; /* directly sata */
664 } /*register this device to HBA*/
665 pm8001_dbg(pm8001_ha
, DISC
, "Found device\n");
666 PM8001_CHIP_DISP
->reg_dev_req(pm8001_ha
, pm8001_device
, flag
);
667 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
668 wait_for_completion(&completion
);
669 if (dev
->dev_type
== SAS_END_DEVICE
)
671 pm8001_ha
->flags
= PM8001F_RUN_TIME
;
674 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
678 int pm8001_dev_found(struct domain_device
*dev
)
680 return pm8001_dev_found_notify(dev
);
683 void pm8001_task_done(struct sas_task
*task
)
685 if (!del_timer(&task
->slow_task
->timer
))
687 complete(&task
->slow_task
->completion
);
690 static void pm8001_tmf_timedout(struct timer_list
*t
)
692 struct sas_task_slow
*slow
= from_timer(slow
, t
, timer
);
693 struct sas_task
*task
= slow
->task
;
695 task
->task_state_flags
|= SAS_TASK_STATE_ABORTED
;
696 complete(&task
->slow_task
->completion
);
699 #define PM8001_TASK_TIMEOUT 20
701 * pm8001_exec_internal_tmf_task - execute some task management commands.
702 * @dev: the wanted device.
703 * @tmf: which task management wanted to be take.
704 * @para_len: para_len.
705 * @parameter: ssp task parameter.
707 * when errors or exception happened, we may want to do something, for example
708 * abort the issued task which result in this execption, it is done by calling
709 * this function, note it is also with the task execute interface.
711 static int pm8001_exec_internal_tmf_task(struct domain_device
*dev
,
712 void *parameter
, u32 para_len
, struct pm8001_tmf_task
*tmf
)
715 struct sas_task
*task
= NULL
;
716 struct pm8001_hba_info
*pm8001_ha
= pm8001_find_ha_by_dev(dev
);
717 struct pm8001_device
*pm8001_dev
= dev
->lldd_dev
;
718 DECLARE_COMPLETION_ONSTACK(completion_setstate
);
720 for (retry
= 0; retry
< 3; retry
++) {
721 task
= sas_alloc_slow_task(GFP_KERNEL
);
726 task
->task_proto
= dev
->tproto
;
727 memcpy(&task
->ssp_task
, parameter
, para_len
);
728 task
->task_done
= pm8001_task_done
;
729 task
->slow_task
->timer
.function
= pm8001_tmf_timedout
;
730 task
->slow_task
->timer
.expires
= jiffies
+ PM8001_TASK_TIMEOUT
*HZ
;
731 add_timer(&task
->slow_task
->timer
);
733 res
= pm8001_task_exec(task
, GFP_KERNEL
, 1, tmf
);
736 del_timer(&task
->slow_task
->timer
);
737 pm8001_dbg(pm8001_ha
, FAIL
, "Executing internal task failed\n");
740 wait_for_completion(&task
->slow_task
->completion
);
741 if (pm8001_ha
->chip_id
!= chip_8001
) {
742 pm8001_dev
->setds_completion
= &completion_setstate
;
743 PM8001_CHIP_DISP
->set_dev_state_req(pm8001_ha
,
745 wait_for_completion(&completion_setstate
);
747 res
= -TMF_RESP_FUNC_FAILED
;
748 /* Even TMF timed out, return direct. */
749 if ((task
->task_state_flags
& SAS_TASK_STATE_ABORTED
)) {
750 if (!(task
->task_state_flags
& SAS_TASK_STATE_DONE
)) {
751 pm8001_dbg(pm8001_ha
, FAIL
,
752 "TMF task[%x]timeout.\n",
758 if (task
->task_status
.resp
== SAS_TASK_COMPLETE
&&
759 task
->task_status
.stat
== SAM_STAT_GOOD
) {
760 res
= TMF_RESP_FUNC_COMPLETE
;
764 if (task
->task_status
.resp
== SAS_TASK_COMPLETE
&&
765 task
->task_status
.stat
== SAS_DATA_UNDERRUN
) {
766 /* no error, but return the number of bytes of
768 res
= task
->task_status
.residual
;
772 if (task
->task_status
.resp
== SAS_TASK_COMPLETE
&&
773 task
->task_status
.stat
== SAS_DATA_OVERRUN
) {
774 pm8001_dbg(pm8001_ha
, FAIL
, "Blocked task error.\n");
778 pm8001_dbg(pm8001_ha
, EH
,
779 " Task to dev %016llx response:0x%x status 0x%x\n",
780 SAS_ADDR(dev
->sas_addr
),
781 task
->task_status
.resp
,
782 task
->task_status
.stat
);
788 BUG_ON(retry
== 3 && task
!= NULL
);
794 pm8001_exec_internal_task_abort(struct pm8001_hba_info
*pm8001_ha
,
795 struct pm8001_device
*pm8001_dev
, struct domain_device
*dev
, u32 flag
,
800 struct pm8001_ccb_info
*ccb
;
801 struct sas_task
*task
= NULL
;
803 for (retry
= 0; retry
< 3; retry
++) {
804 task
= sas_alloc_slow_task(GFP_KERNEL
);
809 task
->task_proto
= dev
->tproto
;
810 task
->task_done
= pm8001_task_done
;
811 task
->slow_task
->timer
.function
= pm8001_tmf_timedout
;
812 task
->slow_task
->timer
.expires
= jiffies
+ PM8001_TASK_TIMEOUT
* HZ
;
813 add_timer(&task
->slow_task
->timer
);
815 res
= pm8001_tag_alloc(pm8001_ha
, &ccb_tag
);
818 ccb
= &pm8001_ha
->ccb_info
[ccb_tag
];
819 ccb
->device
= pm8001_dev
;
820 ccb
->ccb_tag
= ccb_tag
;
824 res
= PM8001_CHIP_DISP
->task_abort(pm8001_ha
,
825 pm8001_dev
, flag
, task_tag
, ccb_tag
);
828 del_timer(&task
->slow_task
->timer
);
829 pm8001_dbg(pm8001_ha
, FAIL
, "Executing internal task failed\n");
832 wait_for_completion(&task
->slow_task
->completion
);
833 res
= TMF_RESP_FUNC_FAILED
;
834 /* Even TMF timed out, return direct. */
835 if ((task
->task_state_flags
& SAS_TASK_STATE_ABORTED
)) {
836 if (!(task
->task_state_flags
& SAS_TASK_STATE_DONE
)) {
837 pm8001_dbg(pm8001_ha
, FAIL
,
838 "TMF task timeout.\n");
843 if (task
->task_status
.resp
== SAS_TASK_COMPLETE
&&
844 task
->task_status
.stat
== SAM_STAT_GOOD
) {
845 res
= TMF_RESP_FUNC_COMPLETE
;
849 pm8001_dbg(pm8001_ha
, EH
,
850 " Task to dev %016llx response: 0x%x status 0x%x\n",
851 SAS_ADDR(dev
->sas_addr
),
852 task
->task_status
.resp
,
853 task
->task_status
.stat
);
859 BUG_ON(retry
== 3 && task
!= NULL
);
865 * pm8001_dev_gone_notify - see the comments for "pm8001_dev_found_notify"
866 * @dev: the device structure which sas layer used.
868 static void pm8001_dev_gone_notify(struct domain_device
*dev
)
870 unsigned long flags
= 0;
871 struct pm8001_hba_info
*pm8001_ha
;
872 struct pm8001_device
*pm8001_dev
= dev
->lldd_dev
;
874 pm8001_ha
= pm8001_find_ha_by_dev(dev
);
875 spin_lock_irqsave(&pm8001_ha
->lock
, flags
);
877 u32 device_id
= pm8001_dev
->device_id
;
879 pm8001_dbg(pm8001_ha
, DISC
, "found dev[%d:%x] is gone.\n",
880 pm8001_dev
->device_id
, pm8001_dev
->dev_type
);
881 if (atomic_read(&pm8001_dev
->running_req
)) {
882 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
883 pm8001_exec_internal_task_abort(pm8001_ha
, pm8001_dev
,
885 while (atomic_read(&pm8001_dev
->running_req
))
887 spin_lock_irqsave(&pm8001_ha
->lock
, flags
);
889 PM8001_CHIP_DISP
->dereg_dev_req(pm8001_ha
, device_id
);
890 pm8001_free_dev(pm8001_dev
);
892 pm8001_dbg(pm8001_ha
, DISC
, "Found dev has gone.\n");
894 dev
->lldd_dev
= NULL
;
895 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
898 void pm8001_dev_gone(struct domain_device
*dev
)
900 pm8001_dev_gone_notify(dev
);
903 static int pm8001_issue_ssp_tmf(struct domain_device
*dev
,
904 u8
*lun
, struct pm8001_tmf_task
*tmf
)
906 struct sas_ssp_task ssp_task
;
907 if (!(dev
->tproto
& SAS_PROTOCOL_SSP
))
908 return TMF_RESP_FUNC_ESUPP
;
910 memcpy((u8
*)&ssp_task
.LUN
, lun
, 8);
911 return pm8001_exec_internal_tmf_task(dev
, &ssp_task
, sizeof(ssp_task
),
915 /* retry commands by ha, by task and/or by device */
916 void pm8001_open_reject_retry(
917 struct pm8001_hba_info
*pm8001_ha
,
918 struct sas_task
*task_to_close
,
919 struct pm8001_device
*device_to_close
)
924 if (pm8001_ha
== NULL
)
927 spin_lock_irqsave(&pm8001_ha
->lock
, flags
);
929 for (i
= 0; i
< PM8001_MAX_CCB
; i
++) {
930 struct sas_task
*task
;
931 struct task_status_struct
*ts
;
932 struct pm8001_device
*pm8001_dev
;
933 unsigned long flags1
;
935 struct pm8001_ccb_info
*ccb
= &pm8001_ha
->ccb_info
[i
];
937 pm8001_dev
= ccb
->device
;
938 if (!pm8001_dev
|| (pm8001_dev
->dev_type
== SAS_PHY_UNUSED
))
940 if (!device_to_close
) {
941 uintptr_t d
= (uintptr_t)pm8001_dev
942 - (uintptr_t)&pm8001_ha
->devices
;
943 if (((d
% sizeof(*pm8001_dev
)) != 0)
944 || ((d
/ sizeof(*pm8001_dev
)) >= PM8001_MAX_DEVICES
))
946 } else if (pm8001_dev
!= device_to_close
)
949 if (!tag
|| (tag
== 0xFFFFFFFF))
952 if (!task
|| !task
->task_done
)
954 if (task_to_close
&& (task
!= task_to_close
))
956 ts
= &task
->task_status
;
957 ts
->resp
= SAS_TASK_COMPLETE
;
958 /* Force the midlayer to retry */
959 ts
->stat
= SAS_OPEN_REJECT
;
960 ts
->open_rej_reason
= SAS_OREJ_RSVD_RETRY
;
962 atomic_dec(&pm8001_dev
->running_req
);
963 spin_lock_irqsave(&task
->task_state_lock
, flags1
);
964 task
->task_state_flags
&= ~SAS_TASK_STATE_PENDING
;
965 task
->task_state_flags
&= ~SAS_TASK_AT_INITIATOR
;
966 task
->task_state_flags
|= SAS_TASK_STATE_DONE
;
967 if (unlikely((task
->task_state_flags
968 & SAS_TASK_STATE_ABORTED
))) {
969 spin_unlock_irqrestore(&task
->task_state_lock
,
971 pm8001_ccb_task_free(pm8001_ha
, task
, ccb
, tag
);
973 spin_unlock_irqrestore(&task
->task_state_lock
,
975 pm8001_ccb_task_free(pm8001_ha
, task
, ccb
, tag
);
976 mb();/* in order to force CPU ordering */
977 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
978 task
->task_done(task
);
979 spin_lock_irqsave(&pm8001_ha
->lock
, flags
);
983 spin_unlock_irqrestore(&pm8001_ha
->lock
, flags
);
987 * Standard mandates link reset for ATA (type 0) and hard reset for
988 * SSP (type 1) , only for RECOVERY
989 * @dev: the device structure for the device to reset.
991 int pm8001_I_T_nexus_reset(struct domain_device
*dev
)
993 int rc
= TMF_RESP_FUNC_FAILED
;
994 struct pm8001_device
*pm8001_dev
;
995 struct pm8001_hba_info
*pm8001_ha
;
998 if (!dev
|| !dev
->lldd_dev
)
1001 pm8001_dev
= dev
->lldd_dev
;
1002 pm8001_ha
= pm8001_find_ha_by_dev(dev
);
1003 phy
= sas_get_local_phy(dev
);
1005 if (dev_is_sata(dev
)) {
1006 if (scsi_is_sas_phy_local(phy
)) {
1010 rc
= sas_phy_reset(phy
, 1);
1012 pm8001_dbg(pm8001_ha
, EH
,
1013 "phy reset failed for device %x\n"
1014 "with rc %d\n", pm8001_dev
->device_id
, rc
);
1015 rc
= TMF_RESP_FUNC_FAILED
;
1019 rc
= pm8001_exec_internal_task_abort(pm8001_ha
, pm8001_dev
,
1022 pm8001_dbg(pm8001_ha
, EH
, "task abort failed %x\n"
1023 "with rc %d\n", pm8001_dev
->device_id
, rc
);
1024 rc
= TMF_RESP_FUNC_FAILED
;
1027 rc
= sas_phy_reset(phy
, 1);
1030 pm8001_dbg(pm8001_ha
, EH
, " for device[%x]:rc=%d\n",
1031 pm8001_dev
->device_id
, rc
);
1033 sas_put_local_phy(phy
);
1038 * This function handle the IT_NEXUS_XXX event or completion
1039 * status code for SSP/SATA/SMP I/O request.
1041 int pm8001_I_T_nexus_event_handler(struct domain_device
*dev
)
1043 int rc
= TMF_RESP_FUNC_FAILED
;
1044 struct pm8001_device
*pm8001_dev
;
1045 struct pm8001_hba_info
*pm8001_ha
;
1046 struct sas_phy
*phy
;
1048 if (!dev
|| !dev
->lldd_dev
)
1051 pm8001_dev
= dev
->lldd_dev
;
1052 pm8001_ha
= pm8001_find_ha_by_dev(dev
);
1054 pm8001_dbg(pm8001_ha
, EH
, "I_T_Nexus handler invoked !!\n");
1056 phy
= sas_get_local_phy(dev
);
1058 if (dev_is_sata(dev
)) {
1059 DECLARE_COMPLETION_ONSTACK(completion_setstate
);
1060 if (scsi_is_sas_phy_local(phy
)) {
1064 /* send internal ssp/sata/smp abort command to FW */
1065 rc
= pm8001_exec_internal_task_abort(pm8001_ha
, pm8001_dev
,
1069 /* deregister the target device */
1070 pm8001_dev_gone_notify(dev
);
1073 /*send phy reset to hard reset target */
1074 rc
= sas_phy_reset(phy
, 1);
1076 pm8001_dev
->setds_completion
= &completion_setstate
;
1078 wait_for_completion(&completion_setstate
);
1080 /* send internal ssp/sata/smp abort command to FW */
1081 rc
= pm8001_exec_internal_task_abort(pm8001_ha
, pm8001_dev
,
1085 /* deregister the target device */
1086 pm8001_dev_gone_notify(dev
);
1089 /*send phy reset to hard reset target */
1090 rc
= sas_phy_reset(phy
, 1);
1093 pm8001_dbg(pm8001_ha
, EH
, " for device[%x]:rc=%d\n",
1094 pm8001_dev
->device_id
, rc
);
1096 sas_put_local_phy(phy
);
1100 /* mandatory SAM-3, the task reset the specified LUN*/
1101 int pm8001_lu_reset(struct domain_device
*dev
, u8
*lun
)
1103 int rc
= TMF_RESP_FUNC_FAILED
;
1104 struct pm8001_tmf_task tmf_task
;
1105 struct pm8001_device
*pm8001_dev
= dev
->lldd_dev
;
1106 struct pm8001_hba_info
*pm8001_ha
= pm8001_find_ha_by_dev(dev
);
1107 DECLARE_COMPLETION_ONSTACK(completion_setstate
);
1108 if (dev_is_sata(dev
)) {
1109 struct sas_phy
*phy
= sas_get_local_phy(dev
);
1110 rc
= pm8001_exec_internal_task_abort(pm8001_ha
, pm8001_dev
,
1112 rc
= sas_phy_reset(phy
, 1);
1113 sas_put_local_phy(phy
);
1114 pm8001_dev
->setds_completion
= &completion_setstate
;
1115 rc
= PM8001_CHIP_DISP
->set_dev_state_req(pm8001_ha
,
1117 wait_for_completion(&completion_setstate
);
1119 tmf_task
.tmf
= TMF_LU_RESET
;
1120 rc
= pm8001_issue_ssp_tmf(dev
, lun
, &tmf_task
);
1122 /* If failed, fall-through I_T_Nexus reset */
1123 pm8001_dbg(pm8001_ha
, EH
, "for device[%x]:rc=%d\n",
1124 pm8001_dev
->device_id
, rc
);
1128 /* optional SAM-3 */
1129 int pm8001_query_task(struct sas_task
*task
)
1131 u32 tag
= 0xdeadbeef;
1132 struct scsi_lun lun
;
1133 struct pm8001_tmf_task tmf_task
;
1134 int rc
= TMF_RESP_FUNC_FAILED
;
1135 if (unlikely(!task
|| !task
->lldd_task
|| !task
->dev
))
1138 if (task
->task_proto
& SAS_PROTOCOL_SSP
) {
1139 struct scsi_cmnd
*cmnd
= task
->uldd_task
;
1140 struct domain_device
*dev
= task
->dev
;
1141 struct pm8001_hba_info
*pm8001_ha
=
1142 pm8001_find_ha_by_dev(dev
);
1144 int_to_scsilun(cmnd
->device
->lun
, &lun
);
1145 rc
= pm8001_find_tag(task
, &tag
);
1147 rc
= TMF_RESP_FUNC_FAILED
;
1150 pm8001_dbg(pm8001_ha
, EH
, "Query:[%16ph]\n", cmnd
->cmnd
);
1151 tmf_task
.tmf
= TMF_QUERY_TASK
;
1152 tmf_task
.tag_of_task_to_be_managed
= tag
;
1154 rc
= pm8001_issue_ssp_tmf(dev
, lun
.scsi_lun
, &tmf_task
);
1156 /* The task is still in Lun, release it then */
1157 case TMF_RESP_FUNC_SUCC
:
1158 pm8001_dbg(pm8001_ha
, EH
,
1159 "The task is still in Lun\n");
1161 /* The task is not in Lun or failed, reset the phy */
1162 case TMF_RESP_FUNC_FAILED
:
1163 case TMF_RESP_FUNC_COMPLETE
:
1164 pm8001_dbg(pm8001_ha
, EH
,
1165 "The task is not in Lun or failed, reset the phy\n");
1169 pr_err("pm80xx: rc= %d\n", rc
);
1173 /* mandatory SAM-3, still need free task/ccb info, abort the specified task */
1174 int pm8001_abort_task(struct sas_task
*task
)
1176 unsigned long flags
;
1178 struct domain_device
*dev
;
1179 struct pm8001_hba_info
*pm8001_ha
;
1180 struct scsi_lun lun
;
1181 struct pm8001_device
*pm8001_dev
;
1182 struct pm8001_tmf_task tmf_task
;
1183 int rc
= TMF_RESP_FUNC_FAILED
, ret
;
1185 struct sas_task_slow slow_task
;
1186 if (unlikely(!task
|| !task
->lldd_task
|| !task
->dev
))
1187 return TMF_RESP_FUNC_FAILED
;
1189 pm8001_dev
= dev
->lldd_dev
;
1190 pm8001_ha
= pm8001_find_ha_by_dev(dev
);
1191 phy_id
= pm8001_dev
->attached_phy
;
1192 ret
= pm8001_find_tag(task
, &tag
);
1194 pm8001_info(pm8001_ha
, "no tag for task:%p\n", task
);
1195 return TMF_RESP_FUNC_FAILED
;
1197 spin_lock_irqsave(&task
->task_state_lock
, flags
);
1198 if (task
->task_state_flags
& SAS_TASK_STATE_DONE
) {
1199 spin_unlock_irqrestore(&task
->task_state_lock
, flags
);
1200 return TMF_RESP_FUNC_COMPLETE
;
1202 task
->task_state_flags
|= SAS_TASK_STATE_ABORTED
;
1203 if (task
->slow_task
== NULL
) {
1204 init_completion(&slow_task
.completion
);
1205 task
->slow_task
= &slow_task
;
1207 spin_unlock_irqrestore(&task
->task_state_lock
, flags
);
1208 if (task
->task_proto
& SAS_PROTOCOL_SSP
) {
1209 struct scsi_cmnd
*cmnd
= task
->uldd_task
;
1210 int_to_scsilun(cmnd
->device
->lun
, &lun
);
1211 tmf_task
.tmf
= TMF_ABORT_TASK
;
1212 tmf_task
.tag_of_task_to_be_managed
= tag
;
1213 rc
= pm8001_issue_ssp_tmf(dev
, lun
.scsi_lun
, &tmf_task
);
1214 pm8001_exec_internal_task_abort(pm8001_ha
, pm8001_dev
,
1215 pm8001_dev
->sas_device
, 0, tag
);
1216 } else if (task
->task_proto
& SAS_PROTOCOL_SATA
||
1217 task
->task_proto
& SAS_PROTOCOL_STP
) {
1218 if (pm8001_ha
->chip_id
== chip_8006
) {
1219 DECLARE_COMPLETION_ONSTACK(completion_reset
);
1220 DECLARE_COMPLETION_ONSTACK(completion
);
1221 struct pm8001_phy
*phy
= pm8001_ha
->phy
+ phy_id
;
1223 /* 1. Set Device state as Recovery */
1224 pm8001_dev
->setds_completion
= &completion
;
1225 PM8001_CHIP_DISP
->set_dev_state_req(pm8001_ha
,
1227 wait_for_completion(&completion
);
1229 /* 2. Send Phy Control Hard Reset */
1230 reinit_completion(&completion
);
1231 phy
->port_reset_status
= PORT_RESET_TMO
;
1232 phy
->reset_success
= false;
1233 phy
->enable_completion
= &completion
;
1234 phy
->reset_completion
= &completion_reset
;
1235 ret
= PM8001_CHIP_DISP
->phy_ctl_req(pm8001_ha
, phy_id
,
1238 phy
->enable_completion
= NULL
;
1239 phy
->reset_completion
= NULL
;
1243 /* In the case of the reset timeout/fail we still
1244 * abort the command at the firmware. The assumption
1245 * here is that the drive is off doing something so
1246 * that it's not processing requests, and we want to
1247 * avoid getting a completion for this and either
1248 * leaking the task in libsas or losing the race and
1249 * getting a double free.
1251 pm8001_dbg(pm8001_ha
, MSG
,
1252 "Waiting for local phy ctl\n");
1253 ret
= wait_for_completion_timeout(&completion
,
1254 PM8001_TASK_TIMEOUT
* HZ
);
1255 if (!ret
|| !phy
->reset_success
) {
1256 phy
->enable_completion
= NULL
;
1257 phy
->reset_completion
= NULL
;
1259 /* 3. Wait for Port Reset complete or
1262 pm8001_dbg(pm8001_ha
, MSG
,
1263 "Waiting for Port reset\n");
1264 ret
= wait_for_completion_timeout(
1266 PM8001_TASK_TIMEOUT
* HZ
);
1268 phy
->reset_completion
= NULL
;
1269 WARN_ON(phy
->port_reset_status
==
1271 if (phy
->port_reset_status
== PORT_RESET_TMO
) {
1272 pm8001_dev_gone_notify(dev
);
1279 * we wait for the task to be aborted so that the task
1280 * is removed from the ccb. on success the caller is
1281 * going to free the task.
1283 ret
= pm8001_exec_internal_task_abort(pm8001_ha
,
1284 pm8001_dev
, pm8001_dev
->sas_device
, 1, tag
);
1287 ret
= wait_for_completion_timeout(
1288 &task
->slow_task
->completion
,
1289 PM8001_TASK_TIMEOUT
* HZ
);
1293 /* 5. Set Device State as Operational */
1294 reinit_completion(&completion
);
1295 pm8001_dev
->setds_completion
= &completion
;
1296 PM8001_CHIP_DISP
->set_dev_state_req(pm8001_ha
,
1298 wait_for_completion(&completion
);
1300 rc
= pm8001_exec_internal_task_abort(pm8001_ha
,
1301 pm8001_dev
, pm8001_dev
->sas_device
, 0, tag
);
1303 rc
= TMF_RESP_FUNC_COMPLETE
;
1304 } else if (task
->task_proto
& SAS_PROTOCOL_SMP
) {
1306 rc
= pm8001_exec_internal_task_abort(pm8001_ha
, pm8001_dev
,
1307 pm8001_dev
->sas_device
, 0, tag
);
1311 spin_lock_irqsave(&task
->task_state_lock
, flags
);
1312 if (task
->slow_task
== &slow_task
)
1313 task
->slow_task
= NULL
;
1314 spin_unlock_irqrestore(&task
->task_state_lock
, flags
);
1315 if (rc
!= TMF_RESP_FUNC_COMPLETE
)
1316 pm8001_info(pm8001_ha
, "rc= %d\n", rc
);
1320 int pm8001_abort_task_set(struct domain_device
*dev
, u8
*lun
)
1322 struct pm8001_tmf_task tmf_task
;
1324 tmf_task
.tmf
= TMF_ABORT_TASK_SET
;
1325 return pm8001_issue_ssp_tmf(dev
, lun
, &tmf_task
);
1328 int pm8001_clear_aca(struct domain_device
*dev
, u8
*lun
)
1330 struct pm8001_tmf_task tmf_task
;
1332 tmf_task
.tmf
= TMF_CLEAR_ACA
;
1333 return pm8001_issue_ssp_tmf(dev
, lun
, &tmf_task
);
1336 int pm8001_clear_task_set(struct domain_device
*dev
, u8
*lun
)
1338 struct pm8001_tmf_task tmf_task
;
1339 struct pm8001_device
*pm8001_dev
= dev
->lldd_dev
;
1340 struct pm8001_hba_info
*pm8001_ha
= pm8001_find_ha_by_dev(dev
);
1342 pm8001_dbg(pm8001_ha
, EH
, "I_T_L_Q clear task set[%x]\n",
1343 pm8001_dev
->device_id
);
1344 tmf_task
.tmf
= TMF_CLEAR_TASK_SET
;
1345 return pm8001_issue_ssp_tmf(dev
, lun
, &tmf_task
);