1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (C) 1999 Eric Youngdale
4 * Copyright (C) 2014 Christoph Hellwig
5 *
6 * SCSI queueing library.
7 * Initial versions: Eric Youngdale (eric@andante.org).
8 * Based upon conversations with large numbers
9 * of people at Linux Expo.
10 */
11
12 #include <linux/bio.h>
13 #include <linux/bitops.h>
14 #include <linux/blkdev.h>
15 #include <linux/completion.h>
16 #include <linux/ctype.h>
17 #include <linux/kernel.h>
18 #include <linux/export.h>
19 #include <linux/init.h>
20 #include <linux/pci.h>
21 #include <linux/delay.h>
22 #include <linux/hardirq.h>
23 #include <linux/scatterlist.h>
24 #include <linux/blk-mq.h>
25 #include <linux/blk-integrity.h>
26 #include <linux/ratelimit.h>
27 #include <linux/unaligned.h>
28
29 #include <scsi/scsi.h>
30 #include <scsi/scsi_cmnd.h>
31 #include <scsi/scsi_dbg.h>
32 #include <scsi/scsi_device.h>
33 #include <scsi/scsi_driver.h>
34 #include <scsi/scsi_eh.h>
35 #include <scsi/scsi_host.h>
36 #include <scsi/scsi_transport.h> /* scsi_init_limits() */
37 #include <scsi/scsi_dh.h>
38
39 #include <trace/events/scsi.h>
40
41 #include "scsi_debugfs.h"
42 #include "scsi_priv.h"
43 #include "scsi_logging.h"
44
45 /*
46 * Size of integrity metadata is usually small, 1 inline sg should
47 * cover normal cases.
48 */
49 #ifdef CONFIG_ARCH_NO_SG_CHAIN
50 #define SCSI_INLINE_PROT_SG_CNT 0
51 #define SCSI_INLINE_SG_CNT 0
52 #else
53 #define SCSI_INLINE_PROT_SG_CNT 1
54 #define SCSI_INLINE_SG_CNT 2
55 #endif
56
57 static struct kmem_cache *scsi_sense_cache;
58 static DEFINE_MUTEX(scsi_sense_cache_mutex);
59
60 static void scsi_mq_uninit_cmd(struct scsi_cmnd *cmd);
61
scsi_init_sense_cache(struct Scsi_Host * shost)62 int scsi_init_sense_cache(struct Scsi_Host *shost)
63 {
64 int ret = 0;
65
66 mutex_lock(&scsi_sense_cache_mutex);
67 if (!scsi_sense_cache) {
68 scsi_sense_cache =
69 kmem_cache_create_usercopy("scsi_sense_cache",
70 SCSI_SENSE_BUFFERSIZE, 0, SLAB_HWCACHE_ALIGN,
71 0, SCSI_SENSE_BUFFERSIZE, NULL);
72 if (!scsi_sense_cache)
73 ret = -ENOMEM;
74 }
75 mutex_unlock(&scsi_sense_cache_mutex);
76 return ret;
77 }
78
79 static void
scsi_set_blocked(struct scsi_cmnd * cmd,enum scsi_qc_status reason)80 scsi_set_blocked(struct scsi_cmnd *cmd, enum scsi_qc_status reason)
81 {
82 struct Scsi_Host *host = cmd->device->host;
83 struct scsi_device *device = cmd->device;
84 struct scsi_target *starget = scsi_target(device);
85
86 /*
87 * Set the appropriate busy bit for the device/host.
88 *
89 * If the host/device isn't busy, assume that something actually
90 * completed, and that we should be able to queue a command now.
91 *
92 * Note that the prior mid-layer assumption that any host could
93 * always queue at least one command is now broken. The mid-layer
94 * will implement a user specifiable stall (see
95 * scsi_host.max_host_blocked and scsi_device.max_device_blocked)
96 * if a command is requeued with no other commands outstanding
97 * either for the device or for the host.
98 */
99 switch (reason) {
100 case SCSI_MLQUEUE_HOST_BUSY:
101 atomic_set(&host->host_blocked, host->max_host_blocked);
102 break;
103 case SCSI_MLQUEUE_DEVICE_BUSY:
104 case SCSI_MLQUEUE_EH_RETRY:
105 atomic_set(&device->device_blocked,
106 device->max_device_blocked);
107 break;
108 case SCSI_MLQUEUE_TARGET_BUSY:
109 atomic_set(&starget->target_blocked,
110 starget->max_target_blocked);
111 break;
112 }
113 }
114
scsi_mq_requeue_cmd(struct scsi_cmnd * cmd,unsigned long msecs)115 static void scsi_mq_requeue_cmd(struct scsi_cmnd *cmd, unsigned long msecs)
116 {
117 struct request *rq = scsi_cmd_to_rq(cmd);
118
119 if (rq->rq_flags & RQF_DONTPREP) {
120 rq->rq_flags &= ~RQF_DONTPREP;
121 scsi_mq_uninit_cmd(cmd);
122 } else {
123 WARN_ON_ONCE(true);
124 }
125
126 blk_mq_requeue_request(rq, false);
127 if (!scsi_host_in_recovery(cmd->device->host))
128 blk_mq_delay_kick_requeue_list(rq->q, msecs);
129 }
130
131 /**
132 * __scsi_queue_insert - private queue insertion
133 * @cmd: The SCSI command being requeued
134 * @reason: The reason for the requeue
135 * @unbusy: Whether the queue should be unbusied
136 *
137 * This is a private queue insertion. The public interface
138 * scsi_queue_insert() always assumes the queue should be unbusied
139 * because it's always called before the completion. This function is
140 * for a requeue after completion, which should only occur in this
141 * file.
142 */
__scsi_queue_insert(struct scsi_cmnd * cmd,enum scsi_qc_status reason,bool unbusy)143 static void __scsi_queue_insert(struct scsi_cmnd *cmd,
144 enum scsi_qc_status reason, bool unbusy)
145 {
146 struct scsi_device *device = cmd->device;
147
148 SCSI_LOG_MLQUEUE(1, scmd_printk(KERN_INFO, cmd,
149 "Inserting command %p into mlqueue\n", cmd));
150
151 scsi_set_blocked(cmd, reason);
152
153 /*
154 * Decrement the counters, since these commands are no longer
155 * active on the host/device.
156 */
157 if (unbusy)
158 scsi_device_unbusy(device, cmd);
159
160 /*
161 * Requeue this command. It will go before all other commands
162 * that are already in the queue. Schedule requeue work under
163 * lock such that the kblockd_schedule_work() call happens
164 * before blk_mq_destroy_queue() finishes.
165 */
166 cmd->result = 0;
167
168 blk_mq_requeue_request(scsi_cmd_to_rq(cmd),
169 !scsi_host_in_recovery(cmd->device->host));
170 }
171
172 /**
173 * scsi_queue_insert - Reinsert a command in the queue.
174 * @cmd: command that we are adding to queue.
175 * @reason: why we are inserting command to queue.
176 *
177 * We do this for one of two cases. Either the host is busy and it cannot accept
178 * any more commands for the time being, or the device returned QUEUE_FULL and
179 * can accept no more commands.
180 *
181 * Context: This could be called either from an interrupt context or a normal
182 * process context.
183 */
scsi_queue_insert(struct scsi_cmnd * cmd,enum scsi_qc_status reason)184 void scsi_queue_insert(struct scsi_cmnd *cmd, enum scsi_qc_status reason)
185 {
186 __scsi_queue_insert(cmd, reason, true);
187 }
188
189 /**
190 * scsi_failures_reset_retries - reset all failures to zero
191 * @failures: &struct scsi_failures with specific failure modes set
192 */
scsi_failures_reset_retries(struct scsi_failures * failures)193 void scsi_failures_reset_retries(struct scsi_failures *failures)
194 {
195 struct scsi_failure *failure;
196
197 failures->total_retries = 0;
198
199 for (failure = failures->failure_definitions; failure->result;
200 failure++)
201 failure->retries = 0;
202 }
203 EXPORT_SYMBOL_GPL(scsi_failures_reset_retries);
204
205 /**
206 * scsi_check_passthrough - Determine if passthrough scsi_cmnd needs a retry.
207 * @scmd: scsi_cmnd to check.
208 * @failures: scsi_failures struct that lists failures to check for.
209 *
210 * Returns -EAGAIN if the caller should retry else 0.
211 */
scsi_check_passthrough(struct scsi_cmnd * scmd,struct scsi_failures * failures)212 static int scsi_check_passthrough(struct scsi_cmnd *scmd,
213 struct scsi_failures *failures)
214 {
215 struct scsi_failure *failure;
216 struct scsi_sense_hdr sshdr;
217 enum sam_status status;
218
219 if (!scmd->result)
220 return 0;
221
222 if (!failures)
223 return 0;
224
225 for (failure = failures->failure_definitions; failure->result;
226 failure++) {
227 if (failure->result == SCMD_FAILURE_RESULT_ANY)
228 goto maybe_retry;
229
230 if (host_byte(scmd->result) &&
231 host_byte(scmd->result) == host_byte(failure->result))
232 goto maybe_retry;
233
234 status = status_byte(scmd->result);
235 if (!status)
236 continue;
237
238 if (failure->result == SCMD_FAILURE_STAT_ANY &&
239 !scsi_status_is_good(scmd->result))
240 goto maybe_retry;
241
242 if (status != status_byte(failure->result))
243 continue;
244
245 if (status_byte(failure->result) != SAM_STAT_CHECK_CONDITION ||
246 failure->sense == SCMD_FAILURE_SENSE_ANY)
247 goto maybe_retry;
248
249 if (!scsi_command_normalize_sense(scmd, &sshdr))
250 return 0;
251
252 if (failure->sense != sshdr.sense_key)
253 continue;
254
255 if (failure->asc == SCMD_FAILURE_ASC_ANY)
256 goto maybe_retry;
257
258 if (failure->asc != sshdr.asc)
259 continue;
260
261 if (failure->ascq == SCMD_FAILURE_ASCQ_ANY ||
262 failure->ascq == sshdr.ascq)
263 goto maybe_retry;
264 }
265
266 return 0;
267
268 maybe_retry:
269 if (failure->allowed) {
270 if (failure->allowed == SCMD_FAILURE_NO_LIMIT ||
271 ++failure->retries <= failure->allowed)
272 return -EAGAIN;
273 } else {
274 if (failures->total_allowed == SCMD_FAILURE_NO_LIMIT ||
275 ++failures->total_retries <= failures->total_allowed)
276 return -EAGAIN;
277 }
278
279 return 0;
280 }
281
282 /**
283 * scsi_execute_cmd - insert request and wait for the result
284 * @sdev: scsi_device
285 * @cmd: scsi command
286 * @opf: block layer request cmd_flags
287 * @buffer: data buffer
288 * @bufflen: len of buffer
289 * @timeout: request timeout in HZ
290 * @ml_retries: number of times SCSI midlayer will retry request
291 * @args: Optional args. See struct definition for field descriptions
292 *
293 * Returns the scsi_cmnd result field if a command was executed, or a negative
294 * Linux error code if we didn't get that far.
295 */
scsi_execute_cmd(struct scsi_device * sdev,const unsigned char * cmd,blk_opf_t opf,void * buffer,unsigned int bufflen,int timeout,int ml_retries,const struct scsi_exec_args * args)296 int scsi_execute_cmd(struct scsi_device *sdev, const unsigned char *cmd,
297 blk_opf_t opf, void *buffer, unsigned int bufflen,
298 int timeout, int ml_retries,
299 const struct scsi_exec_args *args)
300 {
301 static const struct scsi_exec_args default_args;
302 struct request *req;
303 struct scsi_cmnd *scmd;
304 int ret;
305
306 if (!args)
307 args = &default_args;
308 else if (WARN_ON_ONCE(args->sense &&
309 args->sense_len != SCSI_SENSE_BUFFERSIZE))
310 return -EINVAL;
311
312 retry:
313 req = scsi_alloc_request(sdev->request_queue, opf, args->req_flags);
314 if (IS_ERR(req))
315 return PTR_ERR(req);
316
317 if (bufflen) {
318 ret = blk_rq_map_kern(req, buffer, bufflen, GFP_NOIO);
319 if (ret)
320 goto out;
321 }
322 scmd = blk_mq_rq_to_pdu(req);
323 scmd->cmd_len = COMMAND_SIZE(cmd[0]);
324 memcpy(scmd->cmnd, cmd, scmd->cmd_len);
325 scmd->allowed = ml_retries;
326 scmd->flags |= args->scmd_flags;
327 req->timeout = timeout;
328 req->rq_flags |= RQF_QUIET;
329
330 /*
331 * head injection *required* here otherwise quiesce won't work
332 */
333 blk_execute_rq(req, true);
334
335 if (scsi_check_passthrough(scmd, args->failures) == -EAGAIN) {
336 blk_mq_free_request(req);
337 goto retry;
338 }
339
340 /*
341 * Some devices (USB mass-storage in particular) may transfer
342 * garbage data together with a residue indicating that the data
343 * is invalid. Prevent the garbage from being misinterpreted
344 * and prevent security leaks by zeroing out the excess data.
345 */
346 if (unlikely(scmd->resid_len > 0 && scmd->resid_len <= bufflen))
347 memset(buffer + bufflen - scmd->resid_len, 0, scmd->resid_len);
348
349 if (args->resid)
350 *args->resid = scmd->resid_len;
351 if (args->sense)
352 memcpy(args->sense, scmd->sense_buffer, SCSI_SENSE_BUFFERSIZE);
353 if (args->sshdr)
354 scsi_normalize_sense(scmd->sense_buffer, scmd->sense_len,
355 args->sshdr);
356
357 ret = scmd->result;
358 out:
359 blk_mq_free_request(req);
360
361 return ret;
362 }
363 EXPORT_SYMBOL(scsi_execute_cmd);
364
365 /*
366 * Wake up the error handler if necessary. Avoid as follows that the error
367 * handler is not woken up if host in-flight requests number ==
368 * shost->host_failed: use call_rcu() in scsi_eh_scmd_add() in combination
369 * with an RCU read lock in this function to ensure that this function in
370 * its entirety either finishes before scsi_eh_scmd_add() increases the
371 * host_failed counter or that it notices the shost state change made by
372 * scsi_eh_scmd_add().
373 */
scsi_dec_host_busy(struct Scsi_Host * shost,struct scsi_cmnd * cmd)374 static void scsi_dec_host_busy(struct Scsi_Host *shost, struct scsi_cmnd *cmd)
375 {
376 unsigned long flags;
377
378 rcu_read_lock();
379 __clear_bit(SCMD_STATE_INFLIGHT, &cmd->state);
380 if (unlikely(scsi_host_in_recovery(shost))) {
381 /*
382 * Ensure the clear of SCMD_STATE_INFLIGHT is visible to
383 * other CPUs before counting busy requests. Otherwise,
384 * reordering can cause CPUs to race and miss an eh wakeup
385 * when no CPU sees all busy requests as done or timed out.
386 */
387 smp_mb();
388
389 unsigned int busy = scsi_host_busy(shost);
390
391 spin_lock_irqsave(shost->host_lock, flags);
392 if (shost->host_failed || shost->host_eh_scheduled)
393 scsi_eh_wakeup(shost, busy);
394 spin_unlock_irqrestore(shost->host_lock, flags);
395 }
396 rcu_read_unlock();
397 }
398
scsi_device_unbusy(struct scsi_device * sdev,struct scsi_cmnd * cmd)399 void scsi_device_unbusy(struct scsi_device *sdev, struct scsi_cmnd *cmd)
400 {
401 struct Scsi_Host *shost = sdev->host;
402 struct scsi_target *starget = scsi_target(sdev);
403
404 scsi_dec_host_busy(shost, cmd);
405
406 if (starget->can_queue > 0)
407 atomic_dec(&starget->target_busy);
408
409 if (sdev->budget_map.map)
410 sbitmap_put(&sdev->budget_map, cmd->budget_token);
411 cmd->budget_token = -1;
412 }
413
414 /*
415 * Kick the queue of SCSI device @sdev if @sdev != current_sdev. Called with
416 * interrupts disabled.
417 */
scsi_kick_sdev_queue(struct scsi_device * sdev,void * data)418 static void scsi_kick_sdev_queue(struct scsi_device *sdev, void *data)
419 {
420 struct scsi_device *current_sdev = data;
421
422 if (sdev != current_sdev)
423 blk_mq_run_hw_queues(sdev->request_queue, true);
424 }
425
426 /*
427 * Called for single_lun devices on IO completion. Clear starget_sdev_user,
428 * and call blk_run_queue for all the scsi_devices on the target -
429 * including current_sdev first.
430 *
431 * Called with *no* scsi locks held.
432 */
scsi_single_lun_run(struct scsi_device * current_sdev)433 static void scsi_single_lun_run(struct scsi_device *current_sdev)
434 {
435 struct Scsi_Host *shost = current_sdev->host;
436 struct scsi_target *starget = scsi_target(current_sdev);
437 unsigned long flags;
438
439 spin_lock_irqsave(shost->host_lock, flags);
440 starget->starget_sdev_user = NULL;
441 spin_unlock_irqrestore(shost->host_lock, flags);
442
443 /*
444 * Call blk_run_queue for all LUNs on the target, starting with
445 * current_sdev. We race with others (to set starget_sdev_user),
446 * but in most cases, we will be first. Ideally, each LU on the
447 * target would get some limited time or requests on the target.
448 */
449 blk_mq_run_hw_queues(current_sdev->request_queue,
450 shost->queuecommand_may_block);
451
452 spin_lock_irqsave(shost->host_lock, flags);
453 if (!starget->starget_sdev_user)
454 __starget_for_each_device(starget, current_sdev,
455 scsi_kick_sdev_queue);
456 spin_unlock_irqrestore(shost->host_lock, flags);
457 }
458
scsi_device_is_busy(struct scsi_device * sdev)459 static inline bool scsi_device_is_busy(struct scsi_device *sdev)
460 {
461 if (scsi_device_busy(sdev) >= sdev->queue_depth)
462 return true;
463 if (atomic_read(&sdev->device_blocked) > 0)
464 return true;
465 return false;
466 }
467
scsi_target_is_busy(struct scsi_target * starget)468 static inline bool scsi_target_is_busy(struct scsi_target *starget)
469 {
470 if (starget->can_queue > 0) {
471 if (atomic_read(&starget->target_busy) >= starget->can_queue)
472 return true;
473 if (atomic_read(&starget->target_blocked) > 0)
474 return true;
475 }
476 return false;
477 }
478
scsi_host_is_busy(struct Scsi_Host * shost)479 static inline bool scsi_host_is_busy(struct Scsi_Host *shost)
480 {
481 if (atomic_read(&shost->host_blocked) > 0)
482 return true;
483 if (shost->host_self_blocked)
484 return true;
485 return false;
486 }
487
scsi_starved_list_run(struct Scsi_Host * shost)488 static void scsi_starved_list_run(struct Scsi_Host *shost)
489 {
490 LIST_HEAD(starved_list);
491 struct scsi_device *sdev;
492 unsigned long flags;
493
494 spin_lock_irqsave(shost->host_lock, flags);
495 list_splice_init(&shost->starved_list, &starved_list);
496
497 while (!list_empty(&starved_list)) {
498 struct request_queue *slq;
499
500 /*
501 * As long as shost is accepting commands and we have
502 * starved queues, call blk_run_queue. scsi_request_fn
503 * drops the queue_lock and can add us back to the
504 * starved_list.
505 *
506 * host_lock protects the starved_list and starved_entry.
507 * scsi_request_fn must get the host_lock before checking
508 * or modifying starved_list or starved_entry.
509 */
510 if (scsi_host_is_busy(shost))
511 break;
512
513 sdev = list_entry(starved_list.next,
514 struct scsi_device, starved_entry);
515 list_del_init(&sdev->starved_entry);
516 if (scsi_target_is_busy(scsi_target(sdev))) {
517 list_move_tail(&sdev->starved_entry,
518 &shost->starved_list);
519 continue;
520 }
521
522 /*
523 * Once we drop the host lock, a racing scsi_remove_device()
524 * call may remove the sdev from the starved list and destroy
525 * it and the queue. Mitigate by taking a reference to the
526 * queue and never touching the sdev again after we drop the
527 * host lock. Note: if __scsi_remove_device() invokes
528 * blk_mq_destroy_queue() before the queue is run from this
529 * function then blk_run_queue() will return immediately since
530 * blk_mq_destroy_queue() marks the queue with QUEUE_FLAG_DYING.
531 */
532 slq = sdev->request_queue;
533 if (!blk_get_queue(slq))
534 continue;
535 spin_unlock_irqrestore(shost->host_lock, flags);
536
537 blk_mq_run_hw_queues(slq, false);
538 blk_put_queue(slq);
539
540 spin_lock_irqsave(shost->host_lock, flags);
541 }
542 /* put any unprocessed entries back */
543 list_splice(&starved_list, &shost->starved_list);
544 spin_unlock_irqrestore(shost->host_lock, flags);
545 }
546
547 /**
548 * scsi_run_queue - Select a proper request queue to serve next.
549 * @q: last request's queue
550 *
551 * The previous command was completely finished, start a new one if possible.
552 */
scsi_run_queue(struct request_queue * q)553 static void scsi_run_queue(struct request_queue *q)
554 {
555 struct scsi_device *sdev = q->queuedata;
556
557 if (scsi_target(sdev)->single_lun)
558 scsi_single_lun_run(sdev);
559 if (!list_empty(&sdev->host->starved_list))
560 scsi_starved_list_run(sdev->host);
561
562 /* Note: blk_mq_kick_requeue_list() runs the queue asynchronously. */
563 blk_mq_kick_requeue_list(q);
564 }
565
scsi_requeue_run_queue(struct work_struct * work)566 void scsi_requeue_run_queue(struct work_struct *work)
567 {
568 struct scsi_device *sdev;
569 struct request_queue *q;
570
571 sdev = container_of(work, struct scsi_device, requeue_work);
572 q = sdev->request_queue;
573 scsi_run_queue(q);
574 }
575
scsi_run_host_queues(struct Scsi_Host * shost)576 void scsi_run_host_queues(struct Scsi_Host *shost)
577 {
578 struct scsi_device *sdev, *prev = NULL;
579 unsigned long flags;
580
581 spin_lock_irqsave(shost->host_lock, flags);
582 __shost_for_each_device(sdev, shost) {
583 /*
584 * Only skip devices so deep into removal they will never need
585 * another kick to their queues. Thus scsi_device_get() cannot
586 * be used as it would skip devices in SDEV_CANCEL state which
587 * may need a queue kick.
588 */
589 if (sdev->sdev_state == SDEV_DEL ||
590 !get_device(&sdev->sdev_gendev))
591 continue;
592 spin_unlock_irqrestore(shost->host_lock, flags);
593
594 if (prev)
595 put_device(&prev->sdev_gendev);
596 scsi_run_queue(sdev->request_queue);
597
598 prev = sdev;
599
600 spin_lock_irqsave(shost->host_lock, flags);
601 }
602 spin_unlock_irqrestore(shost->host_lock, flags);
603 if (prev)
604 put_device(&prev->sdev_gendev);
605 }
606
scsi_uninit_cmd(struct scsi_cmnd * cmd)607 static void scsi_uninit_cmd(struct scsi_cmnd *cmd)
608 {
609 if (!blk_rq_is_passthrough(scsi_cmd_to_rq(cmd))) {
610 struct scsi_driver *drv = scsi_cmd_to_driver(cmd);
611
612 if (drv->uninit_command)
613 drv->uninit_command(cmd);
614 }
615 }
616
scsi_free_sgtables(struct scsi_cmnd * cmd)617 void scsi_free_sgtables(struct scsi_cmnd *cmd)
618 {
619 if (cmd->sdb.table.nents)
620 sg_free_table_chained(&cmd->sdb.table,
621 SCSI_INLINE_SG_CNT);
622 if (scsi_prot_sg_count(cmd))
623 sg_free_table_chained(&cmd->prot_sdb->table,
624 SCSI_INLINE_PROT_SG_CNT);
625 }
626 EXPORT_SYMBOL_GPL(scsi_free_sgtables);
627
scsi_mq_uninit_cmd(struct scsi_cmnd * cmd)628 static void scsi_mq_uninit_cmd(struct scsi_cmnd *cmd)
629 {
630 scsi_free_sgtables(cmd);
631 scsi_uninit_cmd(cmd);
632 }
633
scsi_run_queue_async(struct scsi_device * sdev)634 static void scsi_run_queue_async(struct scsi_device *sdev)
635 {
636 if (scsi_host_in_recovery(sdev->host))
637 return;
638
639 if (scsi_target(sdev)->single_lun ||
640 !list_empty(&sdev->host->starved_list)) {
641 kblockd_schedule_work(&sdev->requeue_work);
642 } else {
643 /*
644 * smp_mb() present in sbitmap_queue_clear() or implied in
645 * .end_io is for ordering writing .device_busy in
646 * scsi_device_unbusy() and reading sdev->restarts.
647 */
648 int old = atomic_read(&sdev->restarts);
649
650 /*
651 * ->restarts has to be kept as non-zero if new budget
652 * contention occurs.
653 *
654 * No need to run queue when either another re-run
655 * queue wins in updating ->restarts or a new budget
656 * contention occurs.
657 */
658 if (old && atomic_cmpxchg(&sdev->restarts, old, 0) == old)
659 blk_mq_run_hw_queues(sdev->request_queue, true);
660 }
661 }
662
663 /* Returns false when no more bytes to process, true if there are more */
scsi_end_request(struct request * req,blk_status_t error,unsigned int bytes)664 static bool scsi_end_request(struct request *req, blk_status_t error,
665 unsigned int bytes)
666 {
667 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(req);
668 struct scsi_device *sdev = cmd->device;
669 struct request_queue *q = sdev->request_queue;
670
671 if (blk_update_request(req, error, bytes))
672 return true;
673
674 if (q->limits.features & BLK_FEAT_ADD_RANDOM)
675 add_disk_randomness(req->q->disk);
676
677 WARN_ON_ONCE(!blk_rq_is_passthrough(req) &&
678 !(cmd->flags & SCMD_INITIALIZED));
679 cmd->flags = 0;
680
681 /*
682 * Calling rcu_barrier() is not necessary here because the
683 * SCSI error handler guarantees that the function called by
684 * call_rcu() has been called before scsi_end_request() is
685 * called.
686 */
687 destroy_rcu_head(&cmd->rcu);
688
689 /*
690 * In the MQ case the command gets freed by __blk_mq_end_request,
691 * so we have to do all cleanup that depends on it earlier.
692 *
693 * We also can't kick the queues from irq context, so we
694 * will have to defer it to a workqueue.
695 */
696 scsi_mq_uninit_cmd(cmd);
697
698 /*
699 * queue is still alive, so grab the ref for preventing it
700 * from being cleaned up during running queue.
701 */
702 percpu_ref_get(&q->q_usage_counter);
703
704 __blk_mq_end_request(req, error);
705
706 scsi_run_queue_async(sdev);
707
708 percpu_ref_put(&q->q_usage_counter);
709 return false;
710 }
711
712 /**
713 * scsi_result_to_blk_status - translate a SCSI result code into blk_status_t
714 * @result: scsi error code
715 *
716 * Translate a SCSI result code into a blk_status_t value.
717 */
scsi_result_to_blk_status(int result)718 static blk_status_t scsi_result_to_blk_status(int result)
719 {
720 /*
721 * Check the scsi-ml byte first in case we converted a host or status
722 * byte.
723 */
724 switch (scsi_ml_byte(result)) {
725 case SCSIML_STAT_OK:
726 break;
727 case SCSIML_STAT_RESV_CONFLICT:
728 return BLK_STS_RESV_CONFLICT;
729 case SCSIML_STAT_NOSPC:
730 return BLK_STS_NOSPC;
731 case SCSIML_STAT_MED_ERROR:
732 return BLK_STS_MEDIUM;
733 case SCSIML_STAT_TGT_FAILURE:
734 return BLK_STS_TARGET;
735 case SCSIML_STAT_DL_TIMEOUT:
736 return BLK_STS_DURATION_LIMIT;
737 }
738
739 switch (host_byte(result)) {
740 case DID_OK:
741 if (scsi_status_is_good(result))
742 return BLK_STS_OK;
743 return BLK_STS_IOERR;
744 case DID_TRANSPORT_FAILFAST:
745 case DID_TRANSPORT_MARGINAL:
746 return BLK_STS_TRANSPORT;
747 default:
748 return BLK_STS_IOERR;
749 }
750 }
751
752 /**
753 * scsi_rq_err_bytes - determine number of bytes till the next failure boundary
754 * @rq: request to examine
755 *
756 * Description:
757 * A request could be merge of IOs which require different failure
758 * handling. This function determines the number of bytes which
759 * can be failed from the beginning of the request without
760 * crossing into area which need to be retried further.
761 *
762 * Return:
763 * The number of bytes to fail.
764 */
scsi_rq_err_bytes(const struct request * rq)765 static unsigned int scsi_rq_err_bytes(const struct request *rq)
766 {
767 blk_opf_t ff = rq->cmd_flags & REQ_FAILFAST_MASK;
768 unsigned int bytes = 0;
769 struct bio *bio;
770
771 if (!(rq->rq_flags & RQF_MIXED_MERGE))
772 return blk_rq_bytes(rq);
773
774 /*
775 * Currently the only 'mixing' which can happen is between
776 * different fastfail types. We can safely fail portions
777 * which have all the failfast bits that the first one has -
778 * the ones which are at least as eager to fail as the first
779 * one.
780 */
781 for (bio = rq->bio; bio; bio = bio->bi_next) {
782 if ((bio->bi_opf & ff) != ff)
783 break;
784 bytes += bio->bi_iter.bi_size;
785 }
786
787 /* this could lead to infinite loop */
788 BUG_ON(blk_rq_bytes(rq) && !bytes);
789 return bytes;
790 }
791
scsi_cmd_runtime_exceeced(struct scsi_cmnd * cmd)792 static bool scsi_cmd_runtime_exceeced(struct scsi_cmnd *cmd)
793 {
794 struct request *req = scsi_cmd_to_rq(cmd);
795 unsigned long wait_for;
796
797 if (cmd->allowed == SCSI_CMD_RETRIES_NO_LIMIT)
798 return false;
799
800 wait_for = (cmd->allowed + 1) * req->timeout;
801 if (time_before(cmd->jiffies_at_alloc + wait_for, jiffies)) {
802 scmd_printk(KERN_ERR, cmd, "timing out command, waited %lus\n",
803 wait_for/HZ);
804 return true;
805 }
806 return false;
807 }
808
809 /*
810 * When ALUA transition state is returned, reprep the cmd to
811 * use the ALUA handler's transition timeout. Delay the reprep
812 * 1 sec to avoid aggressive retries of the target in that
813 * state.
814 */
815 #define ALUA_TRANSITION_REPREP_DELAY 1000
816
817 /* Helper for scsi_io_completion() when special action required. */
scsi_io_completion_action(struct scsi_cmnd * cmd,int result)818 static void scsi_io_completion_action(struct scsi_cmnd *cmd, int result)
819 {
820 struct request *req = scsi_cmd_to_rq(cmd);
821 int level = 0;
822 enum {ACTION_FAIL, ACTION_REPREP, ACTION_DELAYED_REPREP,
823 ACTION_RETRY, ACTION_DELAYED_RETRY} action;
824 struct scsi_sense_hdr sshdr;
825 bool sense_valid;
826 bool sense_current = true; /* false implies "deferred sense" */
827 blk_status_t blk_stat;
828
829 sense_valid = scsi_command_normalize_sense(cmd, &sshdr);
830 if (sense_valid)
831 sense_current = !scsi_sense_is_deferred(&sshdr);
832
833 blk_stat = scsi_result_to_blk_status(result);
834
835 if (host_byte(result) == DID_RESET) {
836 /* Third party bus reset or reset for error recovery
837 * reasons. Just retry the command and see what
838 * happens.
839 */
840 action = ACTION_RETRY;
841 } else if (sense_valid && sense_current) {
842 switch (sshdr.sense_key) {
843 case UNIT_ATTENTION:
844 if (cmd->device->removable) {
845 /* Detected disc change. Set a bit
846 * and quietly refuse further access.
847 */
848 cmd->device->changed = 1;
849 action = ACTION_FAIL;
850 } else {
851 /* Must have been a power glitch, or a
852 * bus reset. Could not have been a
853 * media change, so we just retry the
854 * command and see what happens.
855 */
856 action = ACTION_RETRY;
857 }
858 break;
859 case ILLEGAL_REQUEST:
860 /* If we had an ILLEGAL REQUEST returned, then
861 * we may have performed an unsupported
862 * command. The only thing this should be
863 * would be a ten byte read where only a six
864 * byte read was supported. Also, on a system
865 * where READ CAPACITY failed, we may have
866 * read past the end of the disk.
867 */
868 if ((cmd->device->use_10_for_rw &&
869 sshdr.asc == 0x20 && sshdr.ascq == 0x00) &&
870 (cmd->cmnd[0] == READ_10 ||
871 cmd->cmnd[0] == WRITE_10)) {
872 /* This will issue a new 6-byte command. */
873 cmd->device->use_10_for_rw = 0;
874 action = ACTION_REPREP;
875 } else if (sshdr.asc == 0x10) /* DIX */ {
876 action = ACTION_FAIL;
877 blk_stat = BLK_STS_PROTECTION;
878 /* INVALID COMMAND OPCODE or INVALID FIELD IN CDB */
879 } else if (sshdr.asc == 0x20 || sshdr.asc == 0x24) {
880 action = ACTION_FAIL;
881 blk_stat = BLK_STS_TARGET;
882 } else
883 action = ACTION_FAIL;
884 break;
885 case ABORTED_COMMAND:
886 action = ACTION_FAIL;
887 if (sshdr.asc == 0x10) /* DIF */
888 blk_stat = BLK_STS_PROTECTION;
889 break;
890 case NOT_READY:
891 /* If the device is in the process of becoming
892 * ready, or has a temporary blockage, retry.
893 */
894 if (sshdr.asc == 0x04) {
895 switch (sshdr.ascq) {
896 case 0x01: /* becoming ready */
897 case 0x04: /* format in progress */
898 case 0x05: /* rebuild in progress */
899 case 0x06: /* recalculation in progress */
900 case 0x07: /* operation in progress */
901 case 0x08: /* Long write in progress */
902 case 0x09: /* self test in progress */
903 case 0x11: /* notify (enable spinup) required */
904 case 0x14: /* space allocation in progress */
905 case 0x1a: /* start stop unit in progress */
906 case 0x1b: /* sanitize in progress */
907 case 0x1d: /* configuration in progress */
908 action = ACTION_DELAYED_RETRY;
909 break;
910 case 0x0a: /* ALUA state transition */
911 action = ACTION_DELAYED_REPREP;
912 break;
913 /*
914 * Depopulation might take many hours,
915 * thus it is not worthwhile to retry.
916 */
917 case 0x24: /* depopulation in progress */
918 case 0x25: /* depopulation restore in progress */
919 fallthrough;
920 default:
921 action = ACTION_FAIL;
922 break;
923 }
924 } else
925 action = ACTION_FAIL;
926 break;
927 case VOLUME_OVERFLOW:
928 /* See SSC3rXX or current. */
929 action = ACTION_FAIL;
930 break;
931 case DATA_PROTECT:
932 action = ACTION_FAIL;
933 if ((sshdr.asc == 0x0C && sshdr.ascq == 0x12) ||
934 (sshdr.asc == 0x55 &&
935 (sshdr.ascq == 0x0E || sshdr.ascq == 0x0F))) {
936 /* Insufficient zone resources */
937 blk_stat = BLK_STS_ZONE_OPEN_RESOURCE;
938 }
939 break;
940 case COMPLETED:
941 fallthrough;
942 default:
943 action = ACTION_FAIL;
944 break;
945 }
946 } else
947 action = ACTION_FAIL;
948
949 if (action != ACTION_FAIL && scsi_cmd_runtime_exceeced(cmd))
950 action = ACTION_FAIL;
951
952 switch (action) {
953 case ACTION_FAIL:
954 /* Give up and fail the remainder of the request */
955 if (!(req->rq_flags & RQF_QUIET)) {
956 static DEFINE_RATELIMIT_STATE(_rs,
957 DEFAULT_RATELIMIT_INTERVAL,
958 DEFAULT_RATELIMIT_BURST);
959
960 if (unlikely(scsi_logging_level))
961 level =
962 SCSI_LOG_LEVEL(SCSI_LOG_MLCOMPLETE_SHIFT,
963 SCSI_LOG_MLCOMPLETE_BITS);
964
965 /*
966 * if logging is enabled the failure will be printed
967 * in scsi_log_completion(), so avoid duplicate messages
968 */
969 if (!level && __ratelimit(&_rs)) {
970 scsi_print_result(cmd, NULL, FAILED);
971 if (sense_valid)
972 scsi_print_sense(cmd);
973 scsi_print_command(cmd);
974 }
975 }
976 if (!scsi_end_request(req, blk_stat, scsi_rq_err_bytes(req)))
977 return;
978 fallthrough;
979 case ACTION_REPREP:
980 scsi_mq_requeue_cmd(cmd, 0);
981 break;
982 case ACTION_DELAYED_REPREP:
983 scsi_mq_requeue_cmd(cmd, ALUA_TRANSITION_REPREP_DELAY);
984 break;
985 case ACTION_RETRY:
986 /* Retry the same command immediately */
987 __scsi_queue_insert(cmd, SCSI_MLQUEUE_EH_RETRY, false);
988 break;
989 case ACTION_DELAYED_RETRY:
990 /* Retry the same command after a delay */
991 __scsi_queue_insert(cmd, SCSI_MLQUEUE_DEVICE_BUSY, false);
992 break;
993 }
994 }
995
996 /*
997 * Helper for scsi_io_completion() when cmd->result is non-zero. Returns a
998 * new result that may suppress further error checking. Also modifies
999 * *blk_statp in some cases.
1000 */
scsi_io_completion_nz_result(struct scsi_cmnd * cmd,int result,blk_status_t * blk_statp)1001 static int scsi_io_completion_nz_result(struct scsi_cmnd *cmd, int result,
1002 blk_status_t *blk_statp)
1003 {
1004 bool sense_valid;
1005 bool sense_current = true; /* false implies "deferred sense" */
1006 struct request *req = scsi_cmd_to_rq(cmd);
1007 struct scsi_sense_hdr sshdr;
1008
1009 sense_valid = scsi_command_normalize_sense(cmd, &sshdr);
1010 if (sense_valid)
1011 sense_current = !scsi_sense_is_deferred(&sshdr);
1012
1013 if (blk_rq_is_passthrough(req)) {
1014 if (sense_valid) {
1015 /*
1016 * SG_IO wants current and deferred errors
1017 */
1018 cmd->sense_len = min(8 + cmd->sense_buffer[7],
1019 SCSI_SENSE_BUFFERSIZE);
1020 }
1021 if (sense_current)
1022 *blk_statp = scsi_result_to_blk_status(result);
1023 } else if (blk_rq_bytes(req) == 0 && sense_current) {
1024 /*
1025 * Flush commands do not transfers any data, and thus cannot use
1026 * good_bytes != blk_rq_bytes(req) as the signal for an error.
1027 * This sets *blk_statp explicitly for the problem case.
1028 */
1029 *blk_statp = scsi_result_to_blk_status(result);
1030 }
1031 /*
1032 * Recovered errors need reporting, but they're always treated as
1033 * success, so fiddle the result code here. For passthrough requests
1034 * we already took a copy of the original into sreq->result which
1035 * is what gets returned to the user
1036 */
1037 if (sense_valid && (sshdr.sense_key == RECOVERED_ERROR)) {
1038 bool do_print = true;
1039 /*
1040 * if ATA PASS-THROUGH INFORMATION AVAILABLE [0x0, 0x1d]
1041 * skip print since caller wants ATA registers. Only occurs
1042 * on SCSI ATA PASS_THROUGH commands when CK_COND=1
1043 */
1044 if ((sshdr.asc == 0x0) && (sshdr.ascq == 0x1d))
1045 do_print = false;
1046 else if (req->rq_flags & RQF_QUIET)
1047 do_print = false;
1048 if (do_print)
1049 scsi_print_sense(cmd);
1050 result = 0;
1051 /* for passthrough, *blk_statp may be set */
1052 *blk_statp = BLK_STS_OK;
1053 }
1054 /*
1055 * Another corner case: the SCSI status byte is non-zero but 'good'.
1056 * Example: PRE-FETCH command returns SAM_STAT_CONDITION_MET when
1057 * it is able to fit nominated LBs in its cache (and SAM_STAT_GOOD
1058 * if it can't fit). Treat SAM_STAT_CONDITION_MET and the related
1059 * intermediate statuses (both obsolete in SAM-4) as good.
1060 */
1061 if ((result & 0xff) && scsi_status_is_good(result)) {
1062 result = 0;
1063 *blk_statp = BLK_STS_OK;
1064 }
1065 return result;
1066 }
1067
1068 /**
1069 * scsi_io_completion - Completion processing for SCSI commands.
1070 * @cmd: command that is finished.
1071 * @good_bytes: number of processed bytes.
1072 *
1073 * We will finish off the specified number of sectors. If we are done, the
1074 * command block will be released and the queue function will be goosed. If we
1075 * are not done then we have to figure out what to do next:
1076 *
1077 * a) We can call scsi_mq_requeue_cmd(). The request will be
1078 * unprepared and put back on the queue. Then a new command will
1079 * be created for it. This should be used if we made forward
1080 * progress, or if we want to switch from READ(10) to READ(6) for
1081 * example.
1082 *
1083 * b) We can call scsi_io_completion_action(). The request will be
1084 * put back on the queue and retried using the same command as
1085 * before, possibly after a delay.
1086 *
1087 * c) We can call scsi_end_request() with blk_stat other than
1088 * BLK_STS_OK, to fail the remainder of the request.
1089 */
scsi_io_completion(struct scsi_cmnd * cmd,unsigned int good_bytes)1090 void scsi_io_completion(struct scsi_cmnd *cmd, unsigned int good_bytes)
1091 {
1092 int result = cmd->result;
1093 struct request *req = scsi_cmd_to_rq(cmd);
1094 blk_status_t blk_stat = BLK_STS_OK;
1095
1096 if (unlikely(result)) /* a nz result may or may not be an error */
1097 result = scsi_io_completion_nz_result(cmd, result, &blk_stat);
1098
1099 /*
1100 * Next deal with any sectors which we were able to correctly
1101 * handle.
1102 */
1103 SCSI_LOG_HLCOMPLETE(1, scmd_printk(KERN_INFO, cmd,
1104 "%u sectors total, %d bytes done.\n",
1105 blk_rq_sectors(req), good_bytes));
1106
1107 /*
1108 * Failed, zero length commands always need to drop down
1109 * to retry code. Fast path should return in this block.
1110 */
1111 if (likely(blk_rq_bytes(req) > 0 || blk_stat == BLK_STS_OK)) {
1112 if (likely(!scsi_end_request(req, blk_stat, good_bytes)))
1113 return; /* no bytes remaining */
1114 }
1115
1116 /* Kill remainder if no retries. */
1117 if (unlikely(blk_stat && scsi_noretry_cmd(cmd))) {
1118 if (scsi_end_request(req, blk_stat, blk_rq_bytes(req)))
1119 WARN_ONCE(true,
1120 "Bytes remaining after failed, no-retry command");
1121 return;
1122 }
1123
1124 /*
1125 * If there had been no error, but we have leftover bytes in the
1126 * request just queue the command up again.
1127 */
1128 if (likely(result == 0))
1129 scsi_mq_requeue_cmd(cmd, 0);
1130 else
1131 scsi_io_completion_action(cmd, result);
1132 }
1133
scsi_cmd_needs_dma_drain(struct scsi_device * sdev,struct request * rq)1134 static inline bool scsi_cmd_needs_dma_drain(struct scsi_device *sdev,
1135 struct request *rq)
1136 {
1137 return sdev->dma_drain_len && blk_rq_is_passthrough(rq) &&
1138 !op_is_write(req_op(rq)) &&
1139 sdev->host->hostt->dma_need_drain(rq);
1140 }
1141
1142 /**
1143 * scsi_alloc_sgtables - Allocate and initialize data and integrity scatterlists
1144 * @cmd: SCSI command data structure to initialize.
1145 *
1146 * Initializes @cmd->sdb and also @cmd->prot_sdb if data integrity is enabled
1147 * for @cmd.
1148 *
1149 * Returns:
1150 * * BLK_STS_OK - on success
1151 * * BLK_STS_RESOURCE - if the failure is retryable
1152 * * BLK_STS_IOERR - if the failure is fatal
1153 */
scsi_alloc_sgtables(struct scsi_cmnd * cmd)1154 blk_status_t scsi_alloc_sgtables(struct scsi_cmnd *cmd)
1155 {
1156 struct scsi_device *sdev = cmd->device;
1157 struct request *rq = scsi_cmd_to_rq(cmd);
1158 unsigned short nr_segs = blk_rq_nr_phys_segments(rq);
1159 struct scatterlist *last_sg = NULL;
1160 blk_status_t ret;
1161 bool need_drain = scsi_cmd_needs_dma_drain(sdev, rq);
1162 int count;
1163
1164 if (WARN_ON_ONCE(!nr_segs))
1165 return BLK_STS_IOERR;
1166
1167 /*
1168 * Make sure there is space for the drain. The driver must adjust
1169 * max_hw_segments to be prepared for this.
1170 */
1171 if (need_drain)
1172 nr_segs++;
1173
1174 /*
1175 * If sg table allocation fails, requeue request later.
1176 */
1177 if (unlikely(sg_alloc_table_chained(&cmd->sdb.table, nr_segs,
1178 cmd->sdb.table.sgl, SCSI_INLINE_SG_CNT)))
1179 return BLK_STS_RESOURCE;
1180
1181 /*
1182 * Next, walk the list, and fill in the addresses and sizes of
1183 * each segment.
1184 */
1185 count = __blk_rq_map_sg(rq, cmd->sdb.table.sgl, &last_sg);
1186
1187 if (blk_rq_bytes(rq) & rq->q->limits.dma_pad_mask) {
1188 unsigned int pad_len =
1189 (rq->q->limits.dma_pad_mask & ~blk_rq_bytes(rq)) + 1;
1190
1191 last_sg->length += pad_len;
1192 cmd->extra_len += pad_len;
1193 }
1194
1195 if (need_drain) {
1196 sg_unmark_end(last_sg);
1197 last_sg = sg_next(last_sg);
1198 sg_set_buf(last_sg, sdev->dma_drain_buf, sdev->dma_drain_len);
1199 sg_mark_end(last_sg);
1200
1201 cmd->extra_len += sdev->dma_drain_len;
1202 count++;
1203 }
1204
1205 BUG_ON(count > cmd->sdb.table.nents);
1206 cmd->sdb.table.nents = count;
1207 cmd->sdb.length = blk_rq_payload_bytes(rq);
1208
1209 if (blk_integrity_rq(rq)) {
1210 struct scsi_data_buffer *prot_sdb = cmd->prot_sdb;
1211
1212 if (WARN_ON_ONCE(!prot_sdb)) {
1213 /*
1214 * This can happen if someone (e.g. multipath)
1215 * queues a command to a device on an adapter
1216 * that does not support DIX.
1217 */
1218 ret = BLK_STS_IOERR;
1219 goto out_free_sgtables;
1220 }
1221
1222 if (sg_alloc_table_chained(&prot_sdb->table,
1223 rq->nr_integrity_segments,
1224 prot_sdb->table.sgl,
1225 SCSI_INLINE_PROT_SG_CNT)) {
1226 ret = BLK_STS_RESOURCE;
1227 goto out_free_sgtables;
1228 }
1229
1230 count = blk_rq_map_integrity_sg(rq, prot_sdb->table.sgl);
1231 cmd->prot_sdb = prot_sdb;
1232 cmd->prot_sdb->table.nents = count;
1233 }
1234
1235 return BLK_STS_OK;
1236 out_free_sgtables:
1237 scsi_free_sgtables(cmd);
1238 return ret;
1239 }
1240 EXPORT_SYMBOL(scsi_alloc_sgtables);
1241
1242 /**
1243 * scsi_initialize_rq - initialize struct scsi_cmnd partially
1244 * @rq: Request associated with the SCSI command to be initialized.
1245 *
1246 * This function initializes the members of struct scsi_cmnd that must be
1247 * initialized before request processing starts and that won't be
1248 * reinitialized if a SCSI command is requeued.
1249 */
scsi_initialize_rq(struct request * rq)1250 static void scsi_initialize_rq(struct request *rq)
1251 {
1252 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(rq);
1253
1254 memset(cmd->cmnd, 0, sizeof(cmd->cmnd));
1255 cmd->cmd_len = MAX_COMMAND_SIZE;
1256 cmd->sense_len = 0;
1257 init_rcu_head(&cmd->rcu);
1258 cmd->jiffies_at_alloc = jiffies;
1259 cmd->retries = 0;
1260 }
1261
1262 /**
1263 * scsi_alloc_request - allocate a block request and partially
1264 * initialize its &scsi_cmnd
1265 * @q: the device's request queue
1266 * @opf: the request operation code
1267 * @flags: block layer allocation flags
1268 *
1269 * Return: &struct request pointer on success or %NULL on failure
1270 */
scsi_alloc_request(struct request_queue * q,blk_opf_t opf,blk_mq_req_flags_t flags)1271 struct request *scsi_alloc_request(struct request_queue *q, blk_opf_t opf,
1272 blk_mq_req_flags_t flags)
1273 {
1274 struct request *rq;
1275
1276 rq = blk_mq_alloc_request(q, opf, flags);
1277 if (!IS_ERR(rq))
1278 scsi_initialize_rq(rq);
1279 return rq;
1280 }
1281 EXPORT_SYMBOL_GPL(scsi_alloc_request);
1282
1283 /*
1284 * Only called when the request isn't completed by SCSI, and not freed by
1285 * SCSI
1286 */
scsi_cleanup_rq(struct request * rq)1287 static void scsi_cleanup_rq(struct request *rq)
1288 {
1289 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(rq);
1290
1291 cmd->flags = 0;
1292
1293 if (rq->rq_flags & RQF_DONTPREP) {
1294 scsi_mq_uninit_cmd(cmd);
1295 rq->rq_flags &= ~RQF_DONTPREP;
1296 }
1297 }
1298
1299 /* Called before a request is prepared. See also scsi_mq_prep_fn(). */
scsi_init_command(struct scsi_device * dev,struct scsi_cmnd * cmd)1300 void scsi_init_command(struct scsi_device *dev, struct scsi_cmnd *cmd)
1301 {
1302 struct request *rq = scsi_cmd_to_rq(cmd);
1303
1304 if (!blk_rq_is_passthrough(rq) && !(cmd->flags & SCMD_INITIALIZED)) {
1305 cmd->flags |= SCMD_INITIALIZED;
1306 scsi_initialize_rq(rq);
1307 }
1308
1309 cmd->device = dev;
1310 INIT_LIST_HEAD(&cmd->eh_entry);
1311 INIT_DELAYED_WORK(&cmd->abort_work, scmd_eh_abort_handler);
1312 }
1313
scsi_setup_scsi_cmnd(struct scsi_device * sdev,struct request * req)1314 static blk_status_t scsi_setup_scsi_cmnd(struct scsi_device *sdev,
1315 struct request *req)
1316 {
1317 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(req);
1318
1319 /*
1320 * Passthrough requests may transfer data, in which case they must
1321 * a bio attached to them. Or they might contain a SCSI command
1322 * that does not transfer data, in which case they may optionally
1323 * submit a request without an attached bio.
1324 */
1325 if (req->bio) {
1326 blk_status_t ret = scsi_alloc_sgtables(cmd);
1327 if (unlikely(ret != BLK_STS_OK))
1328 return ret;
1329 } else {
1330 BUG_ON(blk_rq_bytes(req));
1331
1332 memset(&cmd->sdb, 0, sizeof(cmd->sdb));
1333 }
1334
1335 cmd->transfersize = blk_rq_bytes(req);
1336 return BLK_STS_OK;
1337 }
1338
1339 static blk_status_t
scsi_device_state_check(struct scsi_device * sdev,struct request * req)1340 scsi_device_state_check(struct scsi_device *sdev, struct request *req)
1341 {
1342 switch (sdev->sdev_state) {
1343 case SDEV_CREATED:
1344 return BLK_STS_OK;
1345 case SDEV_OFFLINE:
1346 case SDEV_TRANSPORT_OFFLINE:
1347 /*
1348 * If the device is offline we refuse to process any
1349 * commands. The device must be brought online
1350 * before trying any recovery commands.
1351 */
1352 if (!sdev->offline_already) {
1353 sdev->offline_already = true;
1354 sdev_printk(KERN_ERR, sdev,
1355 "rejecting I/O to offline device\n");
1356 }
1357 return BLK_STS_IOERR;
1358 case SDEV_DEL:
1359 /*
1360 * If the device is fully deleted, we refuse to
1361 * process any commands as well.
1362 */
1363 sdev_printk(KERN_ERR, sdev,
1364 "rejecting I/O to dead device\n");
1365 return BLK_STS_IOERR;
1366 case SDEV_BLOCK:
1367 case SDEV_CREATED_BLOCK:
1368 return BLK_STS_RESOURCE;
1369 case SDEV_QUIESCE:
1370 /*
1371 * If the device is blocked we only accept power management
1372 * commands.
1373 */
1374 if (req && WARN_ON_ONCE(!(req->rq_flags & RQF_PM)))
1375 return BLK_STS_RESOURCE;
1376 return BLK_STS_OK;
1377 default:
1378 /*
1379 * For any other not fully online state we only allow
1380 * power management commands.
1381 */
1382 if (req && !(req->rq_flags & RQF_PM))
1383 return BLK_STS_OFFLINE;
1384 return BLK_STS_OK;
1385 }
1386 }
1387
1388 /*
1389 * scsi_dev_queue_ready: if we can send requests to sdev, assign one token
1390 * and return the token else return -1.
1391 */
scsi_dev_queue_ready(struct request_queue * q,struct scsi_device * sdev)1392 static inline int scsi_dev_queue_ready(struct request_queue *q,
1393 struct scsi_device *sdev)
1394 {
1395 int token;
1396
1397 if (!sdev->budget_map.map)
1398 return INT_MAX;
1399
1400 token = sbitmap_get(&sdev->budget_map);
1401 if (token < 0)
1402 return -1;
1403
1404 if (!atomic_read(&sdev->device_blocked))
1405 return token;
1406
1407 /*
1408 * Only unblock if no other commands are pending and
1409 * if device_blocked has decreased to zero
1410 */
1411 if (scsi_device_busy(sdev) > 1 ||
1412 atomic_dec_return(&sdev->device_blocked) > 0) {
1413 sbitmap_put(&sdev->budget_map, token);
1414 return -1;
1415 }
1416
1417 SCSI_LOG_MLQUEUE(3, sdev_printk(KERN_INFO, sdev,
1418 "unblocking device at zero depth\n"));
1419
1420 return token;
1421 }
1422
1423 /*
1424 * scsi_target_queue_ready: checks if there we can send commands to target
1425 * @sdev: scsi device on starget to check.
1426 */
scsi_target_queue_ready(struct Scsi_Host * shost,struct scsi_device * sdev)1427 static inline int scsi_target_queue_ready(struct Scsi_Host *shost,
1428 struct scsi_device *sdev)
1429 {
1430 struct scsi_target *starget = scsi_target(sdev);
1431 unsigned int busy;
1432
1433 if (starget->single_lun) {
1434 spin_lock_irq(shost->host_lock);
1435 if (starget->starget_sdev_user &&
1436 starget->starget_sdev_user != sdev) {
1437 spin_unlock_irq(shost->host_lock);
1438 return 0;
1439 }
1440 starget->starget_sdev_user = sdev;
1441 spin_unlock_irq(shost->host_lock);
1442 }
1443
1444 if (starget->can_queue <= 0)
1445 return 1;
1446
1447 busy = atomic_inc_return(&starget->target_busy) - 1;
1448 if (atomic_read(&starget->target_blocked) > 0) {
1449 if (busy)
1450 goto starved;
1451
1452 /*
1453 * unblock after target_blocked iterates to zero
1454 */
1455 if (atomic_dec_return(&starget->target_blocked) > 0)
1456 goto out_dec;
1457
1458 SCSI_LOG_MLQUEUE(3, starget_printk(KERN_INFO, starget,
1459 "unblocking target at zero depth\n"));
1460 }
1461
1462 if (busy >= starget->can_queue)
1463 goto starved;
1464
1465 return 1;
1466
1467 starved:
1468 spin_lock_irq(shost->host_lock);
1469 list_move_tail(&sdev->starved_entry, &shost->starved_list);
1470 spin_unlock_irq(shost->host_lock);
1471 out_dec:
1472 if (starget->can_queue > 0)
1473 atomic_dec(&starget->target_busy);
1474 return 0;
1475 }
1476
1477 /*
1478 * scsi_host_queue_ready: if we can send requests to shost, return 1 else
1479 * return 0. We must end up running the queue again whenever 0 is
1480 * returned, else IO can hang.
1481 */
scsi_host_queue_ready(struct request_queue * q,struct Scsi_Host * shost,struct scsi_device * sdev,struct scsi_cmnd * cmd)1482 static inline int scsi_host_queue_ready(struct request_queue *q,
1483 struct Scsi_Host *shost,
1484 struct scsi_device *sdev,
1485 struct scsi_cmnd *cmd)
1486 {
1487 if (atomic_read(&shost->host_blocked) > 0) {
1488 if (scsi_host_busy(shost) > 0)
1489 goto starved;
1490
1491 /*
1492 * unblock after host_blocked iterates to zero
1493 */
1494 if (atomic_dec_return(&shost->host_blocked) > 0)
1495 goto out_dec;
1496
1497 SCSI_LOG_MLQUEUE(3,
1498 shost_printk(KERN_INFO, shost,
1499 "unblocking host at zero depth\n"));
1500 }
1501
1502 if (shost->host_self_blocked)
1503 goto starved;
1504
1505 /* We're OK to process the command, so we can't be starved */
1506 if (!list_empty(&sdev->starved_entry)) {
1507 spin_lock_irq(shost->host_lock);
1508 if (!list_empty(&sdev->starved_entry))
1509 list_del_init(&sdev->starved_entry);
1510 spin_unlock_irq(shost->host_lock);
1511 }
1512
1513 __set_bit(SCMD_STATE_INFLIGHT, &cmd->state);
1514
1515 return 1;
1516
1517 starved:
1518 spin_lock_irq(shost->host_lock);
1519 if (list_empty(&sdev->starved_entry))
1520 list_add_tail(&sdev->starved_entry, &shost->starved_list);
1521 spin_unlock_irq(shost->host_lock);
1522 out_dec:
1523 scsi_dec_host_busy(shost, cmd);
1524 return 0;
1525 }
1526
1527 /*
1528 * Busy state exporting function for request stacking drivers.
1529 *
1530 * For efficiency, no lock is taken to check the busy state of
1531 * shost/starget/sdev, since the returned value is not guaranteed and
1532 * may be changed after request stacking drivers call the function,
1533 * regardless of taking lock or not.
1534 *
1535 * When scsi can't dispatch I/Os anymore and needs to kill I/Os scsi
1536 * needs to return 'not busy'. Otherwise, request stacking drivers
1537 * may hold requests forever.
1538 */
scsi_mq_lld_busy(struct request_queue * q)1539 static bool scsi_mq_lld_busy(struct request_queue *q)
1540 {
1541 struct scsi_device *sdev = q->queuedata;
1542 struct Scsi_Host *shost;
1543
1544 if (blk_queue_dying(q))
1545 return false;
1546
1547 shost = sdev->host;
1548
1549 /*
1550 * Ignore host/starget busy state.
1551 * Since block layer does not have a concept of fairness across
1552 * multiple queues, congestion of host/starget needs to be handled
1553 * in SCSI layer.
1554 */
1555 if (scsi_host_in_recovery(shost) || scsi_device_is_busy(sdev))
1556 return true;
1557
1558 return false;
1559 }
1560
1561 /*
1562 * Block layer request completion callback. May be called from interrupt
1563 * context.
1564 */
scsi_complete(struct request * rq)1565 static void scsi_complete(struct request *rq)
1566 {
1567 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(rq);
1568 enum scsi_disposition disposition;
1569
1570 if (blk_mq_is_reserved_rq(rq)) {
1571 /* Only pass-through requests are supported in this code path. */
1572 WARN_ON_ONCE(!blk_rq_is_passthrough(scsi_cmd_to_rq(cmd)));
1573 scsi_mq_uninit_cmd(cmd);
1574 __blk_mq_end_request(rq, scsi_result_to_blk_status(cmd->result));
1575 return;
1576 }
1577
1578 INIT_LIST_HEAD(&cmd->eh_entry);
1579
1580 atomic_inc(&cmd->device->iodone_cnt);
1581 if (cmd->result)
1582 atomic_inc(&cmd->device->ioerr_cnt);
1583
1584 disposition = scsi_decide_disposition(cmd);
1585 if (disposition != SUCCESS && scsi_cmd_runtime_exceeced(cmd))
1586 disposition = SUCCESS;
1587
1588 scsi_log_completion(cmd, disposition);
1589
1590 switch (disposition) {
1591 case SUCCESS:
1592 scsi_finish_command(cmd);
1593 break;
1594 case NEEDS_RETRY:
1595 scsi_queue_insert(cmd, SCSI_MLQUEUE_EH_RETRY);
1596 break;
1597 case ADD_TO_MLQUEUE:
1598 scsi_queue_insert(cmd, SCSI_MLQUEUE_DEVICE_BUSY);
1599 break;
1600 default:
1601 scsi_eh_scmd_add(cmd);
1602 break;
1603 }
1604 }
1605
1606 /**
1607 * scsi_dispatch_cmd - Dispatch a command to the low-level driver.
1608 * @cmd: command block we are dispatching.
1609 *
1610 * Return: nonzero return request was rejected and device's queue needs to be
1611 * plugged.
1612 */
scsi_dispatch_cmd(struct scsi_cmnd * cmd)1613 static enum scsi_qc_status scsi_dispatch_cmd(struct scsi_cmnd *cmd)
1614 {
1615 struct Scsi_Host *host = cmd->device->host;
1616 int rtn = 0;
1617
1618 atomic_inc(&cmd->device->iorequest_cnt);
1619
1620 /* check if the device is still usable */
1621 if (unlikely(cmd->device->sdev_state == SDEV_DEL)) {
1622 /* in SDEV_DEL we error all commands. DID_NO_CONNECT
1623 * returns an immediate error upwards, and signals
1624 * that the device is no longer present */
1625 cmd->result = DID_NO_CONNECT << 16;
1626 goto done;
1627 }
1628
1629 /* Check to see if the scsi lld made this device blocked. */
1630 if (unlikely(scsi_device_blocked(cmd->device))) {
1631 /*
1632 * in blocked state, the command is just put back on
1633 * the device queue. The suspend state has already
1634 * blocked the queue so future requests should not
1635 * occur until the device transitions out of the
1636 * suspend state.
1637 */
1638 SCSI_LOG_MLQUEUE(3, scmd_printk(KERN_INFO, cmd,
1639 "queuecommand : device blocked\n"));
1640 atomic_dec(&cmd->device->iorequest_cnt);
1641 return SCSI_MLQUEUE_DEVICE_BUSY;
1642 }
1643
1644 /* Store the LUN value in cmnd, if needed. */
1645 if (cmd->device->lun_in_cdb)
1646 cmd->cmnd[1] = (cmd->cmnd[1] & 0x1f) |
1647 (cmd->device->lun << 5 & 0xe0);
1648
1649 scsi_log_send(cmd);
1650
1651 /*
1652 * Before we queue this command, check if the command
1653 * length exceeds what the host adapter can handle.
1654 */
1655 if (cmd->cmd_len > cmd->device->host->max_cmd_len) {
1656 SCSI_LOG_MLQUEUE(3, scmd_printk(KERN_INFO, cmd,
1657 "queuecommand : command too long. "
1658 "cdb_size=%d host->max_cmd_len=%d\n",
1659 cmd->cmd_len, cmd->device->host->max_cmd_len));
1660 cmd->result = (DID_ABORT << 16);
1661 goto done;
1662 }
1663
1664 if (unlikely(host->shost_state == SHOST_DEL)) {
1665 cmd->result = (DID_NO_CONNECT << 16);
1666 goto done;
1667
1668 }
1669
1670 trace_scsi_dispatch_cmd_start(cmd);
1671 rtn = host->hostt->queuecommand(host, cmd);
1672 if (rtn) {
1673 atomic_dec(&cmd->device->iorequest_cnt);
1674 trace_scsi_dispatch_cmd_error(cmd, rtn);
1675 if (rtn != SCSI_MLQUEUE_DEVICE_BUSY &&
1676 rtn != SCSI_MLQUEUE_TARGET_BUSY)
1677 rtn = SCSI_MLQUEUE_HOST_BUSY;
1678
1679 SCSI_LOG_MLQUEUE(3, scmd_printk(KERN_INFO, cmd,
1680 "queuecommand : request rejected\n"));
1681 }
1682
1683 return rtn;
1684 done:
1685 scsi_done(cmd);
1686 return 0;
1687 }
1688
1689 /* Size in bytes of the sg-list stored in the scsi-mq command-private data. */
scsi_mq_inline_sgl_size(struct Scsi_Host * shost)1690 static unsigned int scsi_mq_inline_sgl_size(struct Scsi_Host *shost)
1691 {
1692 return min_t(unsigned int, shost->sg_tablesize, SCSI_INLINE_SG_CNT) *
1693 sizeof(struct scatterlist);
1694 }
1695
scsi_prepare_cmd(struct request * req)1696 static blk_status_t scsi_prepare_cmd(struct request *req)
1697 {
1698 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(req);
1699 struct scsi_device *sdev = req->q->queuedata;
1700 struct Scsi_Host *shost = sdev->host;
1701 bool in_flight = test_bit(SCMD_STATE_INFLIGHT, &cmd->state);
1702 struct scatterlist *sg;
1703
1704 scsi_init_command(sdev, cmd);
1705
1706 cmd->eh_eflags = 0;
1707 cmd->prot_type = 0;
1708 cmd->prot_flags = 0;
1709 cmd->submitter = 0;
1710 memset(&cmd->sdb, 0, sizeof(cmd->sdb));
1711 cmd->underflow = 0;
1712 cmd->transfersize = 0;
1713 cmd->host_scribble = NULL;
1714 cmd->result = 0;
1715 cmd->extra_len = 0;
1716 cmd->state = 0;
1717 if (in_flight)
1718 __set_bit(SCMD_STATE_INFLIGHT, &cmd->state);
1719
1720 cmd->prot_op = SCSI_PROT_NORMAL;
1721 if (blk_rq_bytes(req))
1722 cmd->sc_data_direction = rq_dma_dir(req);
1723 else
1724 cmd->sc_data_direction = DMA_NONE;
1725
1726 sg = (void *)cmd + sizeof(struct scsi_cmnd) + shost->hostt->cmd_size;
1727 cmd->sdb.table.sgl = sg;
1728
1729 if (scsi_host_get_prot(shost)) {
1730 memset(cmd->prot_sdb, 0, sizeof(struct scsi_data_buffer));
1731
1732 cmd->prot_sdb->table.sgl =
1733 (struct scatterlist *)(cmd->prot_sdb + 1);
1734 }
1735
1736 /*
1737 * Special handling for passthrough commands, which don't go to the ULP
1738 * at all:
1739 */
1740 if (blk_rq_is_passthrough(req))
1741 return scsi_setup_scsi_cmnd(sdev, req);
1742
1743 if (sdev->handler && sdev->handler->prep_fn) {
1744 blk_status_t ret = sdev->handler->prep_fn(sdev, req);
1745
1746 if (ret != BLK_STS_OK)
1747 return ret;
1748 }
1749
1750 /* Usually overridden by the ULP */
1751 cmd->allowed = 0;
1752 memset(cmd->cmnd, 0, sizeof(cmd->cmnd));
1753 return scsi_cmd_to_driver(cmd)->init_command(cmd);
1754 }
1755
scsi_done_internal(struct scsi_cmnd * cmd,bool complete_directly)1756 static void scsi_done_internal(struct scsi_cmnd *cmd, bool complete_directly)
1757 {
1758 struct request *req = scsi_cmd_to_rq(cmd);
1759
1760 switch (cmd->submitter) {
1761 case SUBMITTED_BY_BLOCK_LAYER:
1762 break;
1763 case SUBMITTED_BY_SCSI_ERROR_HANDLER:
1764 return scsi_eh_done(cmd);
1765 case SUBMITTED_BY_SCSI_RESET_IOCTL:
1766 return;
1767 }
1768
1769 if (unlikely(blk_should_fake_timeout(scsi_cmd_to_rq(cmd)->q)))
1770 return;
1771 if (unlikely(test_and_set_bit(SCMD_STATE_COMPLETE, &cmd->state)))
1772 return;
1773 trace_scsi_dispatch_cmd_done(cmd);
1774
1775 if (complete_directly)
1776 blk_mq_complete_request_direct(req, scsi_complete);
1777 else
1778 blk_mq_complete_request(req);
1779 }
1780
scsi_done(struct scsi_cmnd * cmd)1781 void scsi_done(struct scsi_cmnd *cmd)
1782 {
1783 scsi_done_internal(cmd, false);
1784 }
1785 EXPORT_SYMBOL(scsi_done);
1786
scsi_done_direct(struct scsi_cmnd * cmd)1787 void scsi_done_direct(struct scsi_cmnd *cmd)
1788 {
1789 scsi_done_internal(cmd, true);
1790 }
1791 EXPORT_SYMBOL(scsi_done_direct);
1792
scsi_mq_put_budget(struct request_queue * q,int budget_token)1793 static void scsi_mq_put_budget(struct request_queue *q, int budget_token)
1794 {
1795 struct scsi_device *sdev = q->queuedata;
1796
1797 if (sdev->budget_map.map)
1798 sbitmap_put(&sdev->budget_map, budget_token);
1799 }
1800
1801 /*
1802 * When to reinvoke queueing after a resource shortage. It's 3 msecs to
1803 * not change behaviour from the previous unplug mechanism, experimentation
1804 * may prove this needs changing.
1805 */
1806 #define SCSI_QUEUE_DELAY 3
1807
scsi_mq_get_budget(struct request_queue * q)1808 static int scsi_mq_get_budget(struct request_queue *q)
1809 {
1810 struct scsi_device *sdev = q->queuedata;
1811 int token = scsi_dev_queue_ready(q, sdev);
1812
1813 if (token >= 0)
1814 return token;
1815
1816 atomic_inc(&sdev->restarts);
1817
1818 /*
1819 * Orders atomic_inc(&sdev->restarts) and atomic_read(&sdev->device_busy).
1820 * .restarts must be incremented before .device_busy is read because the
1821 * code in scsi_run_queue_async() depends on the order of these operations.
1822 */
1823 smp_mb__after_atomic();
1824
1825 /*
1826 * If all in-flight requests originated from this LUN are completed
1827 * before reading .device_busy, sdev->device_busy will be observed as
1828 * zero, then blk_mq_delay_run_hw_queues() will dispatch this request
1829 * soon. Otherwise, completion of one of these requests will observe
1830 * the .restarts flag, and the request queue will be run for handling
1831 * this request, see scsi_end_request().
1832 */
1833 if (unlikely(scsi_device_busy(sdev) == 0 &&
1834 !scsi_device_blocked(sdev)))
1835 blk_mq_delay_run_hw_queues(sdev->request_queue, SCSI_QUEUE_DELAY);
1836 return -1;
1837 }
1838
scsi_mq_set_rq_budget_token(struct request * req,int token)1839 static void scsi_mq_set_rq_budget_token(struct request *req, int token)
1840 {
1841 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(req);
1842
1843 cmd->budget_token = token;
1844 }
1845
scsi_mq_get_rq_budget_token(struct request * req)1846 static int scsi_mq_get_rq_budget_token(struct request *req)
1847 {
1848 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(req);
1849
1850 return cmd->budget_token;
1851 }
1852
scsi_queue_rq(struct blk_mq_hw_ctx * hctx,const struct blk_mq_queue_data * bd)1853 static blk_status_t scsi_queue_rq(struct blk_mq_hw_ctx *hctx,
1854 const struct blk_mq_queue_data *bd)
1855 {
1856 struct request *req = bd->rq;
1857 struct request_queue *q = req->q;
1858 struct scsi_device *sdev = q->queuedata;
1859 struct Scsi_Host *shost = sdev->host;
1860 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(req);
1861 blk_status_t ret;
1862 enum scsi_qc_status reason;
1863
1864 WARN_ON_ONCE(cmd->budget_token < 0);
1865
1866 /*
1867 * Bypass the SCSI device, SCSI target and SCSI host checks for
1868 * reserved commands.
1869 */
1870 if (!blk_mq_is_reserved_rq(req)) {
1871 /*
1872 * If the device is not in running state we will reject some or
1873 * all commands.
1874 */
1875 if (unlikely(sdev->sdev_state != SDEV_RUNNING)) {
1876 ret = scsi_device_state_check(sdev, req);
1877 if (ret != BLK_STS_OK)
1878 goto out_put_budget;
1879 }
1880
1881 ret = BLK_STS_RESOURCE;
1882 if (!scsi_target_queue_ready(shost, sdev))
1883 goto out_put_budget;
1884 if (unlikely(scsi_host_in_recovery(shost))) {
1885 if (cmd->flags & SCMD_FAIL_IF_RECOVERING)
1886 ret = BLK_STS_OFFLINE;
1887 goto out_dec_target_busy;
1888 }
1889 if (!scsi_host_queue_ready(q, shost, sdev, cmd))
1890 goto out_dec_target_busy;
1891 }
1892
1893 /*
1894 * Only clear the driver-private command data if the LLD does not supply
1895 * a function to initialize that data.
1896 */
1897 if (shost->hostt->cmd_size && !shost->hostt->init_cmd_priv)
1898 memset(scsi_cmd_priv(cmd), 0, shost->hostt->cmd_size);
1899
1900 if (!(req->rq_flags & RQF_DONTPREP)) {
1901 ret = scsi_prepare_cmd(req);
1902 if (ret != BLK_STS_OK)
1903 goto out_dec_host_busy;
1904 req->rq_flags |= RQF_DONTPREP;
1905 } else {
1906 clear_bit(SCMD_STATE_COMPLETE, &cmd->state);
1907 }
1908
1909 cmd->flags &= SCMD_PRESERVED_FLAGS;
1910 if (sdev->simple_tags)
1911 cmd->flags |= SCMD_TAGGED;
1912 if (bd->last)
1913 cmd->flags |= SCMD_LAST;
1914
1915 scsi_set_resid(cmd, 0);
1916 memset(cmd->sense_buffer, 0, SCSI_SENSE_BUFFERSIZE);
1917 cmd->submitter = SUBMITTED_BY_BLOCK_LAYER;
1918
1919 blk_mq_start_request(req);
1920 if (blk_mq_is_reserved_rq(req)) {
1921 reason = shost->hostt->queue_reserved_command(shost, cmd);
1922 if (reason) {
1923 ret = BLK_STS_RESOURCE;
1924 goto out_put_budget;
1925 }
1926 return BLK_STS_OK;
1927 }
1928 reason = scsi_dispatch_cmd(cmd);
1929 if (reason) {
1930 scsi_set_blocked(cmd, reason);
1931 ret = BLK_STS_RESOURCE;
1932 goto out_dec_host_busy;
1933 }
1934
1935 return BLK_STS_OK;
1936
1937 out_dec_host_busy:
1938 scsi_dec_host_busy(shost, cmd);
1939 out_dec_target_busy:
1940 if (scsi_target(sdev)->can_queue > 0)
1941 atomic_dec(&scsi_target(sdev)->target_busy);
1942 out_put_budget:
1943 scsi_mq_put_budget(q, cmd->budget_token);
1944 cmd->budget_token = -1;
1945 switch (ret) {
1946 case BLK_STS_OK:
1947 break;
1948 case BLK_STS_RESOURCE:
1949 if (scsi_device_blocked(sdev))
1950 ret = BLK_STS_DEV_RESOURCE;
1951 break;
1952 case BLK_STS_AGAIN:
1953 cmd->result = DID_BUS_BUSY << 16;
1954 if (req->rq_flags & RQF_DONTPREP)
1955 scsi_mq_uninit_cmd(cmd);
1956 break;
1957 default:
1958 if (unlikely(!scsi_device_online(sdev)))
1959 cmd->result = DID_NO_CONNECT << 16;
1960 else
1961 cmd->result = DID_ERROR << 16;
1962 /*
1963 * Make sure to release all allocated resources when
1964 * we hit an error, as we will never see this command
1965 * again.
1966 */
1967 if (req->rq_flags & RQF_DONTPREP)
1968 scsi_mq_uninit_cmd(cmd);
1969 scsi_run_queue_async(sdev);
1970 break;
1971 }
1972 return ret;
1973 }
1974
scsi_mq_init_request(struct blk_mq_tag_set * set,struct request * rq,unsigned int hctx_idx,unsigned int numa_node)1975 static int scsi_mq_init_request(struct blk_mq_tag_set *set, struct request *rq,
1976 unsigned int hctx_idx, unsigned int numa_node)
1977 {
1978 struct Scsi_Host *shost = set->driver_data;
1979 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(rq);
1980 struct scatterlist *sg;
1981 int ret = 0;
1982
1983 cmd->sense_buffer =
1984 kmem_cache_alloc_node(scsi_sense_cache, GFP_KERNEL, numa_node);
1985 if (!cmd->sense_buffer)
1986 return -ENOMEM;
1987
1988 if (scsi_host_get_prot(shost)) {
1989 sg = (void *)cmd + sizeof(struct scsi_cmnd) +
1990 shost->hostt->cmd_size;
1991 cmd->prot_sdb = (void *)sg + scsi_mq_inline_sgl_size(shost);
1992 }
1993
1994 if (shost->hostt->init_cmd_priv) {
1995 ret = shost->hostt->init_cmd_priv(shost, cmd);
1996 if (ret < 0)
1997 kmem_cache_free(scsi_sense_cache, cmd->sense_buffer);
1998 }
1999
2000 return ret;
2001 }
2002
scsi_mq_exit_request(struct blk_mq_tag_set * set,struct request * rq,unsigned int hctx_idx)2003 static void scsi_mq_exit_request(struct blk_mq_tag_set *set, struct request *rq,
2004 unsigned int hctx_idx)
2005 {
2006 struct Scsi_Host *shost = set->driver_data;
2007 struct scsi_cmnd *cmd = blk_mq_rq_to_pdu(rq);
2008
2009 if (shost->hostt->exit_cmd_priv)
2010 shost->hostt->exit_cmd_priv(shost, cmd);
2011 kmem_cache_free(scsi_sense_cache, cmd->sense_buffer);
2012 }
2013
2014
scsi_mq_poll(struct blk_mq_hw_ctx * hctx,struct io_comp_batch * iob)2015 static int scsi_mq_poll(struct blk_mq_hw_ctx *hctx, struct io_comp_batch *iob)
2016 {
2017 struct Scsi_Host *shost = hctx->driver_data;
2018
2019 if (shost->hostt->mq_poll)
2020 return shost->hostt->mq_poll(shost, hctx->queue_num);
2021
2022 return 0;
2023 }
2024
scsi_init_hctx(struct blk_mq_hw_ctx * hctx,void * data,unsigned int hctx_idx)2025 static int scsi_init_hctx(struct blk_mq_hw_ctx *hctx, void *data,
2026 unsigned int hctx_idx)
2027 {
2028 struct Scsi_Host *shost = data;
2029
2030 hctx->driver_data = shost;
2031 return 0;
2032 }
2033
scsi_map_queues(struct blk_mq_tag_set * set)2034 static void scsi_map_queues(struct blk_mq_tag_set *set)
2035 {
2036 struct Scsi_Host *shost = container_of(set, struct Scsi_Host, tag_set);
2037
2038 if (shost->hostt->map_queues)
2039 return shost->hostt->map_queues(shost);
2040 blk_mq_map_queues(&set->map[HCTX_TYPE_DEFAULT]);
2041 }
2042
scsi_init_limits(struct Scsi_Host * shost,struct queue_limits * lim)2043 void scsi_init_limits(struct Scsi_Host *shost, struct queue_limits *lim)
2044 {
2045 struct device *dev = shost->dma_dev;
2046
2047 memset(lim, 0, sizeof(*lim));
2048 lim->max_segments =
2049 min_t(unsigned short, shost->sg_tablesize, SG_MAX_SEGMENTS);
2050
2051 if (scsi_host_prot_dma(shost)) {
2052 shost->sg_prot_tablesize =
2053 min_not_zero(shost->sg_prot_tablesize,
2054 (unsigned short)SCSI_MAX_PROT_SG_SEGMENTS);
2055 BUG_ON(shost->sg_prot_tablesize < shost->sg_tablesize);
2056 lim->max_integrity_segments = shost->sg_prot_tablesize;
2057 }
2058
2059 lim->max_hw_sectors = shost->max_sectors;
2060 lim->seg_boundary_mask = shost->dma_boundary;
2061 lim->max_segment_size = shost->max_segment_size;
2062 lim->virt_boundary_mask = shost->virt_boundary_mask;
2063 lim->dma_alignment = max_t(unsigned int,
2064 shost->dma_alignment, dma_get_cache_alignment() - 1);
2065
2066 /*
2067 * Propagate the DMA formation properties to the dma-mapping layer as
2068 * a courtesy service to the LLDDs. This needs to check that the buses
2069 * actually support the DMA API first, though.
2070 */
2071 if (dev->dma_parms) {
2072 dma_set_seg_boundary(dev, shost->dma_boundary);
2073 dma_set_max_seg_size(dev, shost->max_segment_size);
2074 }
2075 }
2076 EXPORT_SYMBOL_GPL(scsi_init_limits);
2077
2078 static const struct blk_mq_ops scsi_mq_ops_no_commit = {
2079 .get_budget = scsi_mq_get_budget,
2080 .put_budget = scsi_mq_put_budget,
2081 .queue_rq = scsi_queue_rq,
2082 .complete = scsi_complete,
2083 .timeout = scsi_timeout,
2084 #ifdef CONFIG_BLK_DEBUG_FS
2085 .show_rq = scsi_show_rq,
2086 #endif
2087 .init_request = scsi_mq_init_request,
2088 .exit_request = scsi_mq_exit_request,
2089 .cleanup_rq = scsi_cleanup_rq,
2090 .busy = scsi_mq_lld_busy,
2091 .map_queues = scsi_map_queues,
2092 .init_hctx = scsi_init_hctx,
2093 .poll = scsi_mq_poll,
2094 .set_rq_budget_token = scsi_mq_set_rq_budget_token,
2095 .get_rq_budget_token = scsi_mq_get_rq_budget_token,
2096 };
2097
2098
scsi_commit_rqs(struct blk_mq_hw_ctx * hctx)2099 static void scsi_commit_rqs(struct blk_mq_hw_ctx *hctx)
2100 {
2101 struct Scsi_Host *shost = hctx->driver_data;
2102
2103 shost->hostt->commit_rqs(shost, hctx->queue_num);
2104 }
2105
2106 static const struct blk_mq_ops scsi_mq_ops = {
2107 .get_budget = scsi_mq_get_budget,
2108 .put_budget = scsi_mq_put_budget,
2109 .queue_rq = scsi_queue_rq,
2110 .commit_rqs = scsi_commit_rqs,
2111 .complete = scsi_complete,
2112 .timeout = scsi_timeout,
2113 #ifdef CONFIG_BLK_DEBUG_FS
2114 .show_rq = scsi_show_rq,
2115 #endif
2116 .init_request = scsi_mq_init_request,
2117 .exit_request = scsi_mq_exit_request,
2118 .cleanup_rq = scsi_cleanup_rq,
2119 .busy = scsi_mq_lld_busy,
2120 .map_queues = scsi_map_queues,
2121 .init_hctx = scsi_init_hctx,
2122 .poll = scsi_mq_poll,
2123 .set_rq_budget_token = scsi_mq_set_rq_budget_token,
2124 .get_rq_budget_token = scsi_mq_get_rq_budget_token,
2125 };
2126
scsi_mq_setup_tags(struct Scsi_Host * shost)2127 int scsi_mq_setup_tags(struct Scsi_Host *shost)
2128 {
2129 unsigned int cmd_size, sgl_size;
2130 struct blk_mq_tag_set *tag_set = &shost->tag_set;
2131
2132 sgl_size = max_t(unsigned int, sizeof(struct scatterlist),
2133 scsi_mq_inline_sgl_size(shost));
2134 cmd_size = sizeof(struct scsi_cmnd) + shost->hostt->cmd_size + sgl_size;
2135 if (scsi_host_get_prot(shost))
2136 cmd_size += sizeof(struct scsi_data_buffer) +
2137 sizeof(struct scatterlist) * SCSI_INLINE_PROT_SG_CNT;
2138
2139 memset(tag_set, 0, sizeof(*tag_set));
2140 if (shost->hostt->commit_rqs)
2141 tag_set->ops = &scsi_mq_ops;
2142 else
2143 tag_set->ops = &scsi_mq_ops_no_commit;
2144 tag_set->nr_hw_queues = shost->nr_hw_queues ? : 1;
2145 tag_set->nr_maps = shost->nr_maps ? : 1;
2146 tag_set->queue_depth = shost->can_queue + shost->nr_reserved_cmds;
2147 tag_set->reserved_tags = shost->nr_reserved_cmds;
2148 tag_set->cmd_size = cmd_size;
2149 tag_set->numa_node = dev_to_node(shost->dma_dev);
2150 if (shost->hostt->tag_alloc_policy_rr)
2151 tag_set->flags |= BLK_MQ_F_TAG_RR;
2152 if (shost->queuecommand_may_block)
2153 tag_set->flags |= BLK_MQ_F_BLOCKING;
2154 tag_set->driver_data = shost;
2155 if (shost->host_tagset)
2156 tag_set->flags |= BLK_MQ_F_TAG_HCTX_SHARED;
2157
2158 return blk_mq_alloc_tag_set(tag_set);
2159 }
2160
scsi_mq_free_tags(struct kref * kref)2161 void scsi_mq_free_tags(struct kref *kref)
2162 {
2163 struct Scsi_Host *shost = container_of(kref, typeof(*shost),
2164 tagset_refcnt);
2165
2166 blk_mq_free_tag_set(&shost->tag_set);
2167 complete(&shost->tagset_freed);
2168 }
2169
2170 /**
2171 * scsi_get_internal_cmd() - Allocate an internal SCSI command.
2172 * @sdev: SCSI device from which to allocate the command
2173 * @data_direction: Data direction for the allocated command
2174 * @flags: request allocation flags, e.g. BLK_MQ_REQ_RESERVED or
2175 * BLK_MQ_REQ_NOWAIT.
2176 *
2177 * Allocates a SCSI command for internal LLDD use.
2178 */
scsi_get_internal_cmd(struct scsi_device * sdev,enum dma_data_direction data_direction,blk_mq_req_flags_t flags)2179 struct scsi_cmnd *scsi_get_internal_cmd(struct scsi_device *sdev,
2180 enum dma_data_direction data_direction,
2181 blk_mq_req_flags_t flags)
2182 {
2183 enum req_op op = data_direction == DMA_TO_DEVICE ? REQ_OP_DRV_OUT :
2184 REQ_OP_DRV_IN;
2185 struct scsi_cmnd *scmd;
2186 struct request *rq;
2187
2188 rq = scsi_alloc_request(sdev->request_queue, op, flags);
2189 if (IS_ERR(rq))
2190 return NULL;
2191 scmd = blk_mq_rq_to_pdu(rq);
2192 scmd->device = sdev;
2193
2194 return scmd;
2195 }
2196 EXPORT_SYMBOL_GPL(scsi_get_internal_cmd);
2197
2198 /**
2199 * scsi_put_internal_cmd() - Free an internal SCSI command.
2200 * @scmd: SCSI command to be freed
2201 */
scsi_put_internal_cmd(struct scsi_cmnd * scmd)2202 void scsi_put_internal_cmd(struct scsi_cmnd *scmd)
2203 {
2204 blk_mq_free_request(blk_mq_rq_from_pdu(scmd));
2205 }
2206 EXPORT_SYMBOL_GPL(scsi_put_internal_cmd);
2207
2208 /**
2209 * scsi_device_from_queue - return sdev associated with a request_queue
2210 * @q: The request queue to return the sdev from
2211 *
2212 * Return the sdev associated with a request queue or NULL if the
2213 * request_queue does not reference a SCSI device.
2214 */
scsi_device_from_queue(struct request_queue * q)2215 struct scsi_device *scsi_device_from_queue(struct request_queue *q)
2216 {
2217 struct scsi_device *sdev = NULL;
2218
2219 if (q->mq_ops == &scsi_mq_ops_no_commit ||
2220 q->mq_ops == &scsi_mq_ops)
2221 sdev = q->queuedata;
2222 if (!sdev || !get_device(&sdev->sdev_gendev))
2223 sdev = NULL;
2224
2225 return sdev;
2226 }
2227 /*
2228 * pktcdvd should have been integrated into the SCSI layers, but for historical
2229 * reasons like the old IDE driver it isn't. This export allows it to safely
2230 * probe if a given device is a SCSI one and only attach to that.
2231 */
2232 #ifdef CONFIG_CDROM_PKTCDVD_MODULE
2233 EXPORT_SYMBOL_GPL(scsi_device_from_queue);
2234 #endif
2235
2236 /**
2237 * scsi_block_requests - Utility function used by low-level drivers to prevent
2238 * further commands from being queued to the device.
2239 * @shost: host in question
2240 *
2241 * There is no timer nor any other means by which the requests get unblocked
2242 * other than the low-level driver calling scsi_unblock_requests().
2243 */
scsi_block_requests(struct Scsi_Host * shost)2244 void scsi_block_requests(struct Scsi_Host *shost)
2245 {
2246 shost->host_self_blocked = 1;
2247 }
2248 EXPORT_SYMBOL(scsi_block_requests);
2249
2250 /**
2251 * scsi_unblock_requests - Utility function used by low-level drivers to allow
2252 * further commands to be queued to the device.
2253 * @shost: host in question
2254 *
2255 * There is no timer nor any other means by which the requests get unblocked
2256 * other than the low-level driver calling scsi_unblock_requests(). This is done
2257 * as an API function so that changes to the internals of the scsi mid-layer
2258 * won't require wholesale changes to drivers that use this feature.
2259 */
scsi_unblock_requests(struct Scsi_Host * shost)2260 void scsi_unblock_requests(struct Scsi_Host *shost)
2261 {
2262 shost->host_self_blocked = 0;
2263 scsi_run_host_queues(shost);
2264 }
2265 EXPORT_SYMBOL(scsi_unblock_requests);
2266
scsi_exit_queue(void)2267 void scsi_exit_queue(void)
2268 {
2269 kmem_cache_destroy(scsi_sense_cache);
2270 }
2271
2272 /**
2273 * scsi_mode_select - issue a mode select
2274 * @sdev: SCSI device to be queried
2275 * @pf: Page format bit (1 == standard, 0 == vendor specific)
2276 * @sp: Save page bit (0 == don't save, 1 == save)
2277 * @buffer: request buffer (may not be smaller than eight bytes)
2278 * @len: length of request buffer.
2279 * @timeout: command timeout
2280 * @retries: number of retries before failing
2281 * @data: returns a structure abstracting the mode header data
2282 * @sshdr: place to put sense data (or NULL if no sense to be collected).
2283 * must be SCSI_SENSE_BUFFERSIZE big.
2284 *
2285 * Returns zero if successful; negative error number or scsi
2286 * status on error
2287 *
2288 */
scsi_mode_select(struct scsi_device * sdev,int pf,int sp,unsigned char * buffer,int len,int timeout,int retries,struct scsi_mode_data * data,struct scsi_sense_hdr * sshdr)2289 int scsi_mode_select(struct scsi_device *sdev, int pf, int sp,
2290 unsigned char *buffer, int len, int timeout, int retries,
2291 struct scsi_mode_data *data, struct scsi_sense_hdr *sshdr)
2292 {
2293 unsigned char cmd[10];
2294 unsigned char *real_buffer;
2295 const struct scsi_exec_args exec_args = {
2296 .sshdr = sshdr,
2297 };
2298 int ret;
2299
2300 memset(cmd, 0, sizeof(cmd));
2301 cmd[1] = (pf ? 0x10 : 0) | (sp ? 0x01 : 0);
2302
2303 /*
2304 * Use MODE SELECT(10) if the device asked for it or if the mode page
2305 * and the mode select header cannot fit within the maximumm 255 bytes
2306 * of the MODE SELECT(6) command.
2307 */
2308 if (sdev->use_10_for_ms ||
2309 len + 4 > 255 ||
2310 data->block_descriptor_length > 255) {
2311 if (len > 65535 - 8)
2312 return -EINVAL;
2313 real_buffer = kmalloc(8 + len, GFP_KERNEL);
2314 if (!real_buffer)
2315 return -ENOMEM;
2316 memcpy(real_buffer + 8, buffer, len);
2317 len += 8;
2318 real_buffer[0] = 0;
2319 real_buffer[1] = 0;
2320 real_buffer[2] = data->medium_type;
2321 real_buffer[3] = data->device_specific;
2322 real_buffer[4] = data->longlba ? 0x01 : 0;
2323 real_buffer[5] = 0;
2324 put_unaligned_be16(data->block_descriptor_length,
2325 &real_buffer[6]);
2326
2327 cmd[0] = MODE_SELECT_10;
2328 put_unaligned_be16(len, &cmd[7]);
2329 } else {
2330 if (data->longlba)
2331 return -EINVAL;
2332
2333 real_buffer = kmalloc(4 + len, GFP_KERNEL);
2334 if (!real_buffer)
2335 return -ENOMEM;
2336 memcpy(real_buffer + 4, buffer, len);
2337 len += 4;
2338 real_buffer[0] = 0;
2339 real_buffer[1] = data->medium_type;
2340 real_buffer[2] = data->device_specific;
2341 real_buffer[3] = data->block_descriptor_length;
2342
2343 cmd[0] = MODE_SELECT;
2344 cmd[4] = len;
2345 }
2346
2347 ret = scsi_execute_cmd(sdev, cmd, REQ_OP_DRV_OUT, real_buffer, len,
2348 timeout, retries, &exec_args);
2349 kfree(real_buffer);
2350 return ret;
2351 }
2352 EXPORT_SYMBOL_GPL(scsi_mode_select);
2353
2354 /**
2355 * scsi_mode_sense - issue a mode sense, falling back from 10 to six bytes if necessary.
2356 * @sdev: SCSI device to be queried
2357 * @dbd: set to prevent mode sense from returning block descriptors
2358 * @modepage: mode page being requested
2359 * @subpage: sub-page of the mode page being requested
2360 * @buffer: request buffer (may not be smaller than eight bytes)
2361 * @len: length of request buffer.
2362 * @timeout: command timeout
2363 * @retries: number of retries before failing
2364 * @data: returns a structure abstracting the mode header data
2365 * @sshdr: place to put sense data (or NULL if no sense to be collected).
2366 * must be SCSI_SENSE_BUFFERSIZE big.
2367 *
2368 * Returns zero if successful, or a negative error number on failure
2369 */
2370 int
scsi_mode_sense(struct scsi_device * sdev,int dbd,int modepage,int subpage,unsigned char * buffer,int len,int timeout,int retries,struct scsi_mode_data * data,struct scsi_sense_hdr * sshdr)2371 scsi_mode_sense(struct scsi_device *sdev, int dbd, int modepage, int subpage,
2372 unsigned char *buffer, int len, int timeout, int retries,
2373 struct scsi_mode_data *data, struct scsi_sense_hdr *sshdr)
2374 {
2375 unsigned char cmd[12];
2376 int use_10_for_ms;
2377 int header_length;
2378 int result;
2379 struct scsi_sense_hdr my_sshdr;
2380 struct scsi_failure failure_defs[] = {
2381 {
2382 .sense = UNIT_ATTENTION,
2383 .asc = SCMD_FAILURE_ASC_ANY,
2384 .ascq = SCMD_FAILURE_ASCQ_ANY,
2385 .allowed = retries,
2386 .result = SAM_STAT_CHECK_CONDITION,
2387 },
2388 {}
2389 };
2390 struct scsi_failures failures = {
2391 .failure_definitions = failure_defs,
2392 };
2393 const struct scsi_exec_args exec_args = {
2394 /* caller might not be interested in sense, but we need it */
2395 .sshdr = sshdr ? : &my_sshdr,
2396 .failures = &failures,
2397 };
2398
2399 memset(data, 0, sizeof(*data));
2400 memset(&cmd[0], 0, 12);
2401
2402 dbd = sdev->set_dbd_for_ms ? 8 : dbd;
2403 cmd[1] = dbd & 0x18; /* allows DBD and LLBA bits */
2404 cmd[2] = modepage;
2405 cmd[3] = subpage;
2406
2407 sshdr = exec_args.sshdr;
2408
2409 retry:
2410 use_10_for_ms = sdev->use_10_for_ms || len > 255;
2411
2412 if (use_10_for_ms) {
2413 if (len < 8 || len > 65535)
2414 return -EINVAL;
2415
2416 cmd[0] = MODE_SENSE_10;
2417 put_unaligned_be16(len, &cmd[7]);
2418 header_length = 8;
2419 } else {
2420 if (len < 4)
2421 return -EINVAL;
2422
2423 cmd[0] = MODE_SENSE;
2424 cmd[4] = len;
2425 header_length = 4;
2426 }
2427
2428 memset(buffer, 0, len);
2429
2430 result = scsi_execute_cmd(sdev, cmd, REQ_OP_DRV_IN, buffer, len,
2431 timeout, retries, &exec_args);
2432 if (result < 0)
2433 return result;
2434
2435 /* This code looks awful: what it's doing is making sure an
2436 * ILLEGAL REQUEST sense return identifies the actual command
2437 * byte as the problem. MODE_SENSE commands can return
2438 * ILLEGAL REQUEST if the code page isn't supported */
2439
2440 if (!scsi_status_is_good(result)) {
2441 if (scsi_sense_valid(sshdr)) {
2442 if ((sshdr->sense_key == ILLEGAL_REQUEST) &&
2443 (sshdr->asc == 0x20) && (sshdr->ascq == 0)) {
2444 /*
2445 * Invalid command operation code: retry using
2446 * MODE SENSE(6) if this was a MODE SENSE(10)
2447 * request, except if the request mode page is
2448 * too large for MODE SENSE single byte
2449 * allocation length field.
2450 */
2451 if (use_10_for_ms) {
2452 if (len > 255)
2453 return -EIO;
2454 sdev->use_10_for_ms = 0;
2455 goto retry;
2456 }
2457 }
2458 }
2459 return -EIO;
2460 }
2461 if (unlikely(buffer[0] == 0x86 && buffer[1] == 0x0b &&
2462 (modepage == 6 || modepage == 8))) {
2463 /* Initio breakage? */
2464 header_length = 0;
2465 data->length = 13;
2466 data->medium_type = 0;
2467 data->device_specific = 0;
2468 data->longlba = 0;
2469 data->block_descriptor_length = 0;
2470 } else if (use_10_for_ms) {
2471 data->length = get_unaligned_be16(&buffer[0]) + 2;
2472 data->medium_type = buffer[2];
2473 data->device_specific = buffer[3];
2474 data->longlba = buffer[4] & 0x01;
2475 data->block_descriptor_length = get_unaligned_be16(&buffer[6]);
2476 } else {
2477 data->length = buffer[0] + 1;
2478 data->medium_type = buffer[1];
2479 data->device_specific = buffer[2];
2480 data->block_descriptor_length = buffer[3];
2481 }
2482 data->header_length = header_length;
2483
2484 return 0;
2485 }
2486 EXPORT_SYMBOL(scsi_mode_sense);
2487
2488 /**
2489 * scsi_test_unit_ready - test if unit is ready
2490 * @sdev: scsi device to change the state of.
2491 * @timeout: command timeout
2492 * @retries: number of retries before failing
2493 * @sshdr: outpout pointer for decoded sense information.
2494 *
2495 * Returns zero if successful or an error if TUR failed. For
2496 * removable media, UNIT_ATTENTION sets ->changed flag.
2497 **/
2498 int
scsi_test_unit_ready(struct scsi_device * sdev,int timeout,int retries,struct scsi_sense_hdr * sshdr)2499 scsi_test_unit_ready(struct scsi_device *sdev, int timeout, int retries,
2500 struct scsi_sense_hdr *sshdr)
2501 {
2502 char cmd[] = {
2503 TEST_UNIT_READY, 0, 0, 0, 0, 0,
2504 };
2505 const struct scsi_exec_args exec_args = {
2506 .sshdr = sshdr,
2507 };
2508 int result;
2509
2510 /* try to eat the UNIT_ATTENTION if there are enough retries */
2511 do {
2512 result = scsi_execute_cmd(sdev, cmd, REQ_OP_DRV_IN, NULL, 0,
2513 timeout, 1, &exec_args);
2514 if (sdev->removable && result > 0 && scsi_sense_valid(sshdr) &&
2515 sshdr->sense_key == UNIT_ATTENTION)
2516 sdev->changed = 1;
2517 } while (result > 0 && scsi_sense_valid(sshdr) &&
2518 sshdr->sense_key == UNIT_ATTENTION && --retries);
2519
2520 return result;
2521 }
2522 EXPORT_SYMBOL(scsi_test_unit_ready);
2523
2524 /**
2525 * scsi_device_set_state - Take the given device through the device state model.
2526 * @sdev: scsi device to change the state of.
2527 * @state: state to change to.
2528 *
2529 * Returns zero if successful or an error if the requested
2530 * transition is illegal.
2531 */
2532 int
scsi_device_set_state(struct scsi_device * sdev,enum scsi_device_state state)2533 scsi_device_set_state(struct scsi_device *sdev, enum scsi_device_state state)
2534 {
2535 enum scsi_device_state oldstate = sdev->sdev_state;
2536
2537 if (state == oldstate)
2538 return 0;
2539
2540 switch (state) {
2541 case SDEV_CREATED:
2542 switch (oldstate) {
2543 case SDEV_CREATED_BLOCK:
2544 break;
2545 default:
2546 goto illegal;
2547 }
2548 break;
2549
2550 case SDEV_RUNNING:
2551 switch (oldstate) {
2552 case SDEV_CREATED:
2553 case SDEV_OFFLINE:
2554 case SDEV_TRANSPORT_OFFLINE:
2555 case SDEV_QUIESCE:
2556 case SDEV_BLOCK:
2557 break;
2558 default:
2559 goto illegal;
2560 }
2561 break;
2562
2563 case SDEV_QUIESCE:
2564 switch (oldstate) {
2565 case SDEV_RUNNING:
2566 case SDEV_OFFLINE:
2567 case SDEV_TRANSPORT_OFFLINE:
2568 break;
2569 default:
2570 goto illegal;
2571 }
2572 break;
2573
2574 case SDEV_OFFLINE:
2575 case SDEV_TRANSPORT_OFFLINE:
2576 switch (oldstate) {
2577 case SDEV_CREATED:
2578 case SDEV_RUNNING:
2579 case SDEV_QUIESCE:
2580 case SDEV_BLOCK:
2581 break;
2582 default:
2583 goto illegal;
2584 }
2585 break;
2586
2587 case SDEV_BLOCK:
2588 switch (oldstate) {
2589 case SDEV_RUNNING:
2590 case SDEV_CREATED_BLOCK:
2591 case SDEV_QUIESCE:
2592 case SDEV_OFFLINE:
2593 break;
2594 default:
2595 goto illegal;
2596 }
2597 break;
2598
2599 case SDEV_CREATED_BLOCK:
2600 switch (oldstate) {
2601 case SDEV_CREATED:
2602 break;
2603 default:
2604 goto illegal;
2605 }
2606 break;
2607
2608 case SDEV_CANCEL:
2609 switch (oldstate) {
2610 case SDEV_CREATED:
2611 case SDEV_RUNNING:
2612 case SDEV_QUIESCE:
2613 case SDEV_OFFLINE:
2614 case SDEV_TRANSPORT_OFFLINE:
2615 break;
2616 default:
2617 goto illegal;
2618 }
2619 break;
2620
2621 case SDEV_DEL:
2622 switch (oldstate) {
2623 case SDEV_CREATED:
2624 case SDEV_RUNNING:
2625 case SDEV_OFFLINE:
2626 case SDEV_TRANSPORT_OFFLINE:
2627 case SDEV_CANCEL:
2628 case SDEV_BLOCK:
2629 case SDEV_CREATED_BLOCK:
2630 break;
2631 default:
2632 goto illegal;
2633 }
2634 break;
2635
2636 }
2637 sdev->offline_already = false;
2638 sdev->sdev_state = state;
2639 return 0;
2640
2641 illegal:
2642 SCSI_LOG_ERROR_RECOVERY(1,
2643 sdev_printk(KERN_ERR, sdev,
2644 "Illegal state transition %s->%s",
2645 scsi_device_state_name(oldstate),
2646 scsi_device_state_name(state))
2647 );
2648 return -EINVAL;
2649 }
2650 EXPORT_SYMBOL(scsi_device_set_state);
2651
2652 /**
2653 * scsi_evt_emit - emit a single SCSI device uevent
2654 * @sdev: associated SCSI device
2655 * @evt: event to emit
2656 *
2657 * Send a single uevent (scsi_event) to the associated scsi_device.
2658 */
scsi_evt_emit(struct scsi_device * sdev,struct scsi_event * evt)2659 static void scsi_evt_emit(struct scsi_device *sdev, struct scsi_event *evt)
2660 {
2661 int idx = 0;
2662 char *envp[3];
2663
2664 switch (evt->evt_type) {
2665 case SDEV_EVT_MEDIA_CHANGE:
2666 envp[idx++] = "SDEV_MEDIA_CHANGE=1";
2667 break;
2668 case SDEV_EVT_INQUIRY_CHANGE_REPORTED:
2669 scsi_rescan_device(sdev);
2670 envp[idx++] = "SDEV_UA=INQUIRY_DATA_HAS_CHANGED";
2671 break;
2672 case SDEV_EVT_CAPACITY_CHANGE_REPORTED:
2673 envp[idx++] = "SDEV_UA=CAPACITY_DATA_HAS_CHANGED";
2674 break;
2675 case SDEV_EVT_SOFT_THRESHOLD_REACHED_REPORTED:
2676 envp[idx++] = "SDEV_UA=THIN_PROVISIONING_SOFT_THRESHOLD_REACHED";
2677 break;
2678 case SDEV_EVT_MODE_PARAMETER_CHANGE_REPORTED:
2679 envp[idx++] = "SDEV_UA=MODE_PARAMETERS_CHANGED";
2680 break;
2681 case SDEV_EVT_LUN_CHANGE_REPORTED:
2682 envp[idx++] = "SDEV_UA=REPORTED_LUNS_DATA_HAS_CHANGED";
2683 break;
2684 case SDEV_EVT_ALUA_STATE_CHANGE_REPORTED:
2685 envp[idx++] = "SDEV_UA=ASYMMETRIC_ACCESS_STATE_CHANGED";
2686 break;
2687 case SDEV_EVT_POWER_ON_RESET_OCCURRED:
2688 envp[idx++] = "SDEV_UA=POWER_ON_RESET_OCCURRED";
2689 break;
2690 default:
2691 /* do nothing */
2692 break;
2693 }
2694
2695 envp[idx++] = NULL;
2696
2697 kobject_uevent_env(&sdev->sdev_gendev.kobj, KOBJ_CHANGE, envp);
2698 }
2699
2700 /**
2701 * scsi_evt_thread - send a uevent for each scsi event
2702 * @work: work struct for scsi_device
2703 *
2704 * Dispatch queued events to their associated scsi_device kobjects
2705 * as uevents.
2706 */
scsi_evt_thread(struct work_struct * work)2707 void scsi_evt_thread(struct work_struct *work)
2708 {
2709 struct scsi_device *sdev;
2710 enum scsi_device_event evt_type;
2711 LIST_HEAD(event_list);
2712
2713 sdev = container_of(work, struct scsi_device, event_work);
2714
2715 for (evt_type = SDEV_EVT_FIRST; evt_type <= SDEV_EVT_LAST; evt_type++)
2716 if (test_and_clear_bit(evt_type, sdev->pending_events))
2717 sdev_evt_send_simple(sdev, evt_type, GFP_KERNEL);
2718
2719 while (1) {
2720 struct scsi_event *evt;
2721 struct list_head *this, *tmp;
2722 unsigned long flags;
2723
2724 spin_lock_irqsave(&sdev->list_lock, flags);
2725 list_splice_init(&sdev->event_list, &event_list);
2726 spin_unlock_irqrestore(&sdev->list_lock, flags);
2727
2728 if (list_empty(&event_list))
2729 break;
2730
2731 list_for_each_safe(this, tmp, &event_list) {
2732 evt = list_entry(this, struct scsi_event, node);
2733 list_del(&evt->node);
2734 scsi_evt_emit(sdev, evt);
2735 kfree(evt);
2736 }
2737 }
2738 }
2739
2740 /**
2741 * sdev_evt_send - send asserted event to uevent thread
2742 * @sdev: scsi_device event occurred on
2743 * @evt: event to send
2744 *
2745 * Assert scsi device event asynchronously.
2746 */
sdev_evt_send(struct scsi_device * sdev,struct scsi_event * evt)2747 void sdev_evt_send(struct scsi_device *sdev, struct scsi_event *evt)
2748 {
2749 unsigned long flags;
2750
2751 #if 0
2752 /* FIXME: currently this check eliminates all media change events
2753 * for polled devices. Need to update to discriminate between AN
2754 * and polled events */
2755 if (!test_bit(evt->evt_type, sdev->supported_events)) {
2756 kfree(evt);
2757 return;
2758 }
2759 #endif
2760
2761 spin_lock_irqsave(&sdev->list_lock, flags);
2762 list_add_tail(&evt->node, &sdev->event_list);
2763 schedule_work(&sdev->event_work);
2764 spin_unlock_irqrestore(&sdev->list_lock, flags);
2765 }
2766 EXPORT_SYMBOL_GPL(sdev_evt_send);
2767
2768 /**
2769 * sdev_evt_alloc - allocate a new scsi event
2770 * @evt_type: type of event to allocate
2771 * @gfpflags: GFP flags for allocation
2772 *
2773 * Allocates and returns a new scsi_event.
2774 */
sdev_evt_alloc(enum scsi_device_event evt_type,gfp_t gfpflags)2775 struct scsi_event *sdev_evt_alloc(enum scsi_device_event evt_type,
2776 gfp_t gfpflags)
2777 {
2778 struct scsi_event *evt = kzalloc_obj(struct scsi_event, gfpflags);
2779 if (!evt)
2780 return NULL;
2781
2782 evt->evt_type = evt_type;
2783 INIT_LIST_HEAD(&evt->node);
2784
2785 /* evt_type-specific initialization, if any */
2786 switch (evt_type) {
2787 case SDEV_EVT_MEDIA_CHANGE:
2788 case SDEV_EVT_INQUIRY_CHANGE_REPORTED:
2789 case SDEV_EVT_CAPACITY_CHANGE_REPORTED:
2790 case SDEV_EVT_SOFT_THRESHOLD_REACHED_REPORTED:
2791 case SDEV_EVT_MODE_PARAMETER_CHANGE_REPORTED:
2792 case SDEV_EVT_LUN_CHANGE_REPORTED:
2793 case SDEV_EVT_ALUA_STATE_CHANGE_REPORTED:
2794 case SDEV_EVT_POWER_ON_RESET_OCCURRED:
2795 default:
2796 /* do nothing */
2797 break;
2798 }
2799
2800 return evt;
2801 }
2802 EXPORT_SYMBOL_GPL(sdev_evt_alloc);
2803
2804 /**
2805 * sdev_evt_send_simple - send asserted event to uevent thread
2806 * @sdev: scsi_device event occurred on
2807 * @evt_type: type of event to send
2808 * @gfpflags: GFP flags for allocation
2809 *
2810 * Assert scsi device event asynchronously, given an event type.
2811 */
sdev_evt_send_simple(struct scsi_device * sdev,enum scsi_device_event evt_type,gfp_t gfpflags)2812 void sdev_evt_send_simple(struct scsi_device *sdev,
2813 enum scsi_device_event evt_type, gfp_t gfpflags)
2814 {
2815 struct scsi_event *evt = sdev_evt_alloc(evt_type, gfpflags);
2816 if (!evt) {
2817 sdev_printk(KERN_ERR, sdev, "event %d eaten due to OOM\n",
2818 evt_type);
2819 return;
2820 }
2821
2822 sdev_evt_send(sdev, evt);
2823 }
2824 EXPORT_SYMBOL_GPL(sdev_evt_send_simple);
2825
2826 /**
2827 * scsi_device_quiesce - Block all commands except power management.
2828 * @sdev: scsi device to quiesce.
2829 *
2830 * This works by trying to transition to the SDEV_QUIESCE state
2831 * (which must be a legal transition). When the device is in this
2832 * state, only power management requests will be accepted, all others will
2833 * be deferred.
2834 *
2835 * Must be called with user context, may sleep.
2836 *
2837 * Returns zero if successful or an error if not.
2838 */
2839 int
scsi_device_quiesce(struct scsi_device * sdev)2840 scsi_device_quiesce(struct scsi_device *sdev)
2841 {
2842 struct request_queue *q = sdev->request_queue;
2843 unsigned int memflags;
2844 int err;
2845
2846 /*
2847 * It is allowed to call scsi_device_quiesce() multiple times from
2848 * the same context but concurrent scsi_device_quiesce() calls are
2849 * not allowed.
2850 */
2851 WARN_ON_ONCE(sdev->quiesced_by && sdev->quiesced_by != current);
2852
2853 if (sdev->quiesced_by == current)
2854 return 0;
2855
2856 blk_set_pm_only(q);
2857
2858 memflags = blk_mq_freeze_queue(q);
2859 /*
2860 * Ensure that the effect of blk_set_pm_only() will be visible
2861 * for percpu_ref_tryget() callers that occur after the queue
2862 * unfreeze even if the queue was already frozen before this function
2863 * was called. See also https://lwn.net/Articles/573497/.
2864 */
2865 synchronize_rcu();
2866 blk_mq_unfreeze_queue(q, memflags);
2867
2868 mutex_lock(&sdev->state_mutex);
2869 err = scsi_device_set_state(sdev, SDEV_QUIESCE);
2870 if (err == 0)
2871 sdev->quiesced_by = current;
2872 else
2873 blk_clear_pm_only(q);
2874 mutex_unlock(&sdev->state_mutex);
2875
2876 return err;
2877 }
2878 EXPORT_SYMBOL(scsi_device_quiesce);
2879
2880 /**
2881 * scsi_device_resume - Restart user issued commands to a quiesced device.
2882 * @sdev: scsi device to resume.
2883 *
2884 * Moves the device from quiesced back to running and restarts the
2885 * queues.
2886 *
2887 * Must be called with user context, may sleep.
2888 */
scsi_device_resume(struct scsi_device * sdev)2889 void scsi_device_resume(struct scsi_device *sdev)
2890 {
2891 /* check if the device state was mutated prior to resume, and if
2892 * so assume the state is being managed elsewhere (for example
2893 * device deleted during suspend)
2894 */
2895 mutex_lock(&sdev->state_mutex);
2896 if (sdev->sdev_state == SDEV_QUIESCE)
2897 scsi_device_set_state(sdev, SDEV_RUNNING);
2898 if (sdev->quiesced_by) {
2899 sdev->quiesced_by = NULL;
2900 blk_clear_pm_only(sdev->request_queue);
2901 }
2902 mutex_unlock(&sdev->state_mutex);
2903 }
2904 EXPORT_SYMBOL(scsi_device_resume);
2905
2906 static void
device_quiesce_fn(struct scsi_device * sdev,void * data)2907 device_quiesce_fn(struct scsi_device *sdev, void *data)
2908 {
2909 scsi_device_quiesce(sdev);
2910 }
2911
2912 void
scsi_target_quiesce(struct scsi_target * starget)2913 scsi_target_quiesce(struct scsi_target *starget)
2914 {
2915 starget_for_each_device(starget, NULL, device_quiesce_fn);
2916 }
2917 EXPORT_SYMBOL(scsi_target_quiesce);
2918
2919 static void
device_resume_fn(struct scsi_device * sdev,void * data)2920 device_resume_fn(struct scsi_device *sdev, void *data)
2921 {
2922 scsi_device_resume(sdev);
2923 }
2924
2925 void
scsi_target_resume(struct scsi_target * starget)2926 scsi_target_resume(struct scsi_target *starget)
2927 {
2928 starget_for_each_device(starget, NULL, device_resume_fn);
2929 }
2930 EXPORT_SYMBOL(scsi_target_resume);
2931
__scsi_internal_device_block_nowait(struct scsi_device * sdev)2932 static int __scsi_internal_device_block_nowait(struct scsi_device *sdev)
2933 {
2934 if (scsi_device_set_state(sdev, SDEV_BLOCK))
2935 return scsi_device_set_state(sdev, SDEV_CREATED_BLOCK);
2936
2937 return 0;
2938 }
2939
scsi_start_queue(struct scsi_device * sdev)2940 void scsi_start_queue(struct scsi_device *sdev)
2941 {
2942 if (cmpxchg(&sdev->queue_stopped, 1, 0))
2943 blk_mq_unquiesce_queue(sdev->request_queue);
2944 }
2945
scsi_stop_queue(struct scsi_device * sdev)2946 static void scsi_stop_queue(struct scsi_device *sdev)
2947 {
2948 /*
2949 * The atomic variable of ->queue_stopped covers that
2950 * blk_mq_quiesce_queue* is balanced with blk_mq_unquiesce_queue.
2951 *
2952 * The caller needs to wait until quiesce is done.
2953 */
2954 if (!cmpxchg(&sdev->queue_stopped, 0, 1))
2955 blk_mq_quiesce_queue_nowait(sdev->request_queue);
2956 }
2957
2958 /**
2959 * scsi_internal_device_block_nowait - try to transition to the SDEV_BLOCK state
2960 * @sdev: device to block
2961 *
2962 * Pause SCSI command processing on the specified device. Does not sleep.
2963 *
2964 * Returns zero if successful or a negative error code upon failure.
2965 *
2966 * Notes:
2967 * This routine transitions the device to the SDEV_BLOCK state (which must be
2968 * a legal transition). When the device is in this state, command processing
2969 * is paused until the device leaves the SDEV_BLOCK state. See also
2970 * scsi_internal_device_unblock_nowait().
2971 */
scsi_internal_device_block_nowait(struct scsi_device * sdev)2972 int scsi_internal_device_block_nowait(struct scsi_device *sdev)
2973 {
2974 int ret = __scsi_internal_device_block_nowait(sdev);
2975
2976 /*
2977 * The device has transitioned to SDEV_BLOCK. Stop the
2978 * block layer from calling the midlayer with this device's
2979 * request queue.
2980 */
2981 if (!ret)
2982 scsi_stop_queue(sdev);
2983 return ret;
2984 }
2985 EXPORT_SYMBOL_GPL(scsi_internal_device_block_nowait);
2986
2987 /**
2988 * scsi_device_block - try to transition to the SDEV_BLOCK state
2989 * @sdev: device to block
2990 * @data: dummy argument, ignored
2991 *
2992 * Pause SCSI command processing on the specified device. Callers must wait
2993 * until all ongoing scsi_queue_rq() calls have finished after this function
2994 * returns.
2995 *
2996 * Note:
2997 * This routine transitions the device to the SDEV_BLOCK state (which must be
2998 * a legal transition). When the device is in this state, command processing
2999 * is paused until the device leaves the SDEV_BLOCK state. See also
3000 * scsi_internal_device_unblock().
3001 */
scsi_device_block(struct scsi_device * sdev,void * data)3002 static void scsi_device_block(struct scsi_device *sdev, void *data)
3003 {
3004 int err;
3005 enum scsi_device_state state;
3006
3007 mutex_lock(&sdev->state_mutex);
3008 err = __scsi_internal_device_block_nowait(sdev);
3009 state = sdev->sdev_state;
3010 if (err == 0)
3011 /*
3012 * scsi_stop_queue() must be called with the state_mutex
3013 * held. Otherwise a simultaneous scsi_start_queue() call
3014 * might unquiesce the queue before we quiesce it.
3015 */
3016 scsi_stop_queue(sdev);
3017
3018 mutex_unlock(&sdev->state_mutex);
3019
3020 WARN_ONCE(err, "%s: failed to block %s in state %d\n",
3021 __func__, dev_name(&sdev->sdev_gendev), state);
3022 }
3023
3024 /**
3025 * scsi_internal_device_unblock_nowait - resume a device after a block request
3026 * @sdev: device to resume
3027 * @new_state: state to set the device to after unblocking
3028 *
3029 * Restart the device queue for a previously suspended SCSI device. Does not
3030 * sleep.
3031 *
3032 * Returns zero if successful or a negative error code upon failure.
3033 *
3034 * Notes:
3035 * This routine transitions the device to the SDEV_RUNNING state or to one of
3036 * the offline states (which must be a legal transition) allowing the midlayer
3037 * to goose the queue for this device.
3038 */
scsi_internal_device_unblock_nowait(struct scsi_device * sdev,enum scsi_device_state new_state)3039 int scsi_internal_device_unblock_nowait(struct scsi_device *sdev,
3040 enum scsi_device_state new_state)
3041 {
3042 switch (new_state) {
3043 case SDEV_RUNNING:
3044 case SDEV_TRANSPORT_OFFLINE:
3045 break;
3046 default:
3047 return -EINVAL;
3048 }
3049
3050 /*
3051 * Try to transition the scsi device to SDEV_RUNNING or one of the
3052 * offlined states and goose the device queue if successful.
3053 */
3054 switch (sdev->sdev_state) {
3055 case SDEV_BLOCK:
3056 case SDEV_TRANSPORT_OFFLINE:
3057 sdev->sdev_state = new_state;
3058 break;
3059 case SDEV_CREATED_BLOCK:
3060 if (new_state == SDEV_TRANSPORT_OFFLINE ||
3061 new_state == SDEV_OFFLINE)
3062 sdev->sdev_state = new_state;
3063 else
3064 sdev->sdev_state = SDEV_CREATED;
3065 break;
3066 case SDEV_CANCEL:
3067 case SDEV_OFFLINE:
3068 break;
3069 default:
3070 return -EINVAL;
3071 }
3072 scsi_start_queue(sdev);
3073
3074 return 0;
3075 }
3076 EXPORT_SYMBOL_GPL(scsi_internal_device_unblock_nowait);
3077
3078 /**
3079 * scsi_internal_device_unblock - resume a device after a block request
3080 * @sdev: device to resume
3081 * @new_state: state to set the device to after unblocking
3082 *
3083 * Restart the device queue for a previously suspended SCSI device. May sleep.
3084 *
3085 * Returns zero if successful or a negative error code upon failure.
3086 *
3087 * Notes:
3088 * This routine transitions the device to the SDEV_RUNNING state or to one of
3089 * the offline states (which must be a legal transition) allowing the midlayer
3090 * to goose the queue for this device.
3091 */
scsi_internal_device_unblock(struct scsi_device * sdev,enum scsi_device_state new_state)3092 static int scsi_internal_device_unblock(struct scsi_device *sdev,
3093 enum scsi_device_state new_state)
3094 {
3095 int ret;
3096
3097 mutex_lock(&sdev->state_mutex);
3098 ret = scsi_internal_device_unblock_nowait(sdev, new_state);
3099 mutex_unlock(&sdev->state_mutex);
3100
3101 return ret;
3102 }
3103
3104 static int
target_block(struct device * dev,void * data)3105 target_block(struct device *dev, void *data)
3106 {
3107 if (scsi_is_target_device(dev))
3108 starget_for_each_device(to_scsi_target(dev), NULL,
3109 scsi_device_block);
3110 return 0;
3111 }
3112
3113 /**
3114 * scsi_block_targets - transition all SCSI child devices to SDEV_BLOCK state
3115 * @dev: a parent device of one or more scsi_target devices
3116 * @shost: the Scsi_Host to which this device belongs
3117 *
3118 * Iterate over all children of @dev, which should be scsi_target devices,
3119 * and switch all subordinate scsi devices to SDEV_BLOCK state. Wait for
3120 * ongoing scsi_queue_rq() calls to finish. May sleep.
3121 *
3122 * Note:
3123 * @dev must not itself be a scsi_target device.
3124 */
3125 void
scsi_block_targets(struct Scsi_Host * shost,struct device * dev)3126 scsi_block_targets(struct Scsi_Host *shost, struct device *dev)
3127 {
3128 WARN_ON_ONCE(scsi_is_target_device(dev));
3129 device_for_each_child(dev, NULL, target_block);
3130 blk_mq_wait_quiesce_done(&shost->tag_set);
3131 }
3132 EXPORT_SYMBOL_GPL(scsi_block_targets);
3133
3134 static void
device_unblock(struct scsi_device * sdev,void * data)3135 device_unblock(struct scsi_device *sdev, void *data)
3136 {
3137 scsi_internal_device_unblock(sdev, *(enum scsi_device_state *)data);
3138 }
3139
3140 static int
target_unblock(struct device * dev,void * data)3141 target_unblock(struct device *dev, void *data)
3142 {
3143 if (scsi_is_target_device(dev))
3144 starget_for_each_device(to_scsi_target(dev), data,
3145 device_unblock);
3146 return 0;
3147 }
3148
3149 void
scsi_target_unblock(struct device * dev,enum scsi_device_state new_state)3150 scsi_target_unblock(struct device *dev, enum scsi_device_state new_state)
3151 {
3152 if (scsi_is_target_device(dev))
3153 starget_for_each_device(to_scsi_target(dev), &new_state,
3154 device_unblock);
3155 else
3156 device_for_each_child(dev, &new_state, target_unblock);
3157 }
3158 EXPORT_SYMBOL_GPL(scsi_target_unblock);
3159
3160 /**
3161 * scsi_host_block - Try to transition all logical units to the SDEV_BLOCK state
3162 * @shost: device to block
3163 *
3164 * Pause SCSI command processing for all logical units associated with the SCSI
3165 * host and wait until pending scsi_queue_rq() calls have finished.
3166 *
3167 * Returns zero if successful or a negative error code upon failure.
3168 */
3169 int
scsi_host_block(struct Scsi_Host * shost)3170 scsi_host_block(struct Scsi_Host *shost)
3171 {
3172 struct scsi_device *sdev;
3173 int ret;
3174
3175 /*
3176 * Call scsi_internal_device_block_nowait so we can avoid
3177 * calling synchronize_rcu() for each LUN.
3178 */
3179 shost_for_each_device(sdev, shost) {
3180 mutex_lock(&sdev->state_mutex);
3181 ret = scsi_internal_device_block_nowait(sdev);
3182 mutex_unlock(&sdev->state_mutex);
3183 if (ret) {
3184 scsi_device_put(sdev);
3185 return ret;
3186 }
3187 }
3188
3189 /* Wait for ongoing scsi_queue_rq() calls to finish. */
3190 blk_mq_wait_quiesce_done(&shost->tag_set);
3191
3192 return 0;
3193 }
3194 EXPORT_SYMBOL_GPL(scsi_host_block);
3195
3196 int
scsi_host_unblock(struct Scsi_Host * shost,int new_state)3197 scsi_host_unblock(struct Scsi_Host *shost, int new_state)
3198 {
3199 struct scsi_device *sdev;
3200 int ret = 0;
3201
3202 shost_for_each_device(sdev, shost) {
3203 ret = scsi_internal_device_unblock(sdev, new_state);
3204 if (ret) {
3205 scsi_device_put(sdev);
3206 break;
3207 }
3208 }
3209 return ret;
3210 }
3211 EXPORT_SYMBOL_GPL(scsi_host_unblock);
3212
3213 /**
3214 * scsi_kmap_atomic_sg - find and atomically map an sg-elemnt
3215 * @sgl: scatter-gather list
3216 * @sg_count: number of segments in sg
3217 * @offset: offset in bytes into sg, on return offset into the mapped area
3218 * @len: bytes to map, on return number of bytes mapped
3219 *
3220 * Returns virtual address of the start of the mapped page
3221 */
scsi_kmap_atomic_sg(struct scatterlist * sgl,int sg_count,size_t * offset,size_t * len)3222 void *scsi_kmap_atomic_sg(struct scatterlist *sgl, int sg_count,
3223 size_t *offset, size_t *len)
3224 {
3225 int i;
3226 size_t sg_len = 0, len_complete = 0;
3227 struct scatterlist *sg;
3228 struct page *page;
3229
3230 WARN_ON(!irqs_disabled());
3231
3232 for_each_sg(sgl, sg, sg_count, i) {
3233 len_complete = sg_len; /* Complete sg-entries */
3234 sg_len += sg->length;
3235 if (sg_len > *offset)
3236 break;
3237 }
3238
3239 if (unlikely(i == sg_count)) {
3240 printk(KERN_ERR "%s: Bytes in sg: %zu, requested offset %zu, "
3241 "elements %d\n",
3242 __func__, sg_len, *offset, sg_count);
3243 WARN_ON(1);
3244 return NULL;
3245 }
3246
3247 /* Offset starting from the beginning of first page in this sg-entry */
3248 *offset = *offset - len_complete + sg->offset;
3249
3250 page = sg_page(sg) + (*offset >> PAGE_SHIFT);
3251 *offset &= ~PAGE_MASK;
3252
3253 /* Bytes in this sg-entry from *offset to the end of the page */
3254 sg_len = PAGE_SIZE - *offset;
3255 if (*len > sg_len)
3256 *len = sg_len;
3257
3258 return kmap_atomic(page);
3259 }
3260 EXPORT_SYMBOL(scsi_kmap_atomic_sg);
3261
3262 /**
3263 * scsi_kunmap_atomic_sg - atomically unmap a virtual address, previously mapped with scsi_kmap_atomic_sg
3264 * @virt: virtual address to be unmapped
3265 */
scsi_kunmap_atomic_sg(void * virt)3266 void scsi_kunmap_atomic_sg(void *virt)
3267 {
3268 kunmap_atomic(virt);
3269 }
3270 EXPORT_SYMBOL(scsi_kunmap_atomic_sg);
3271
sdev_disable_disk_events(struct scsi_device * sdev)3272 void sdev_disable_disk_events(struct scsi_device *sdev)
3273 {
3274 atomic_inc(&sdev->disk_events_disable_depth);
3275 }
3276 EXPORT_SYMBOL(sdev_disable_disk_events);
3277
sdev_enable_disk_events(struct scsi_device * sdev)3278 void sdev_enable_disk_events(struct scsi_device *sdev)
3279 {
3280 if (WARN_ON_ONCE(atomic_read(&sdev->disk_events_disable_depth) <= 0))
3281 return;
3282 atomic_dec(&sdev->disk_events_disable_depth);
3283 }
3284 EXPORT_SYMBOL(sdev_enable_disk_events);
3285
designator_prio(const unsigned char * d)3286 static unsigned char designator_prio(const unsigned char *d)
3287 {
3288 if (d[1] & 0x30)
3289 /* not associated with LUN */
3290 return 0;
3291
3292 if (d[3] == 0)
3293 /* invalid length */
3294 return 0;
3295
3296 /*
3297 * Order of preference for lun descriptor:
3298 * - SCSI name string
3299 * - NAA IEEE Registered Extended
3300 * - EUI-64 based 16-byte
3301 * - EUI-64 based 12-byte
3302 * - NAA IEEE Registered
3303 * - NAA IEEE Extended
3304 * - EUI-64 based 8-byte
3305 * - SCSI name string (truncated)
3306 * - T10 Vendor ID
3307 * as longer descriptors reduce the likelyhood
3308 * of identification clashes.
3309 */
3310
3311 switch (d[1] & 0xf) {
3312 case 8:
3313 /* SCSI name string, variable-length UTF-8 */
3314 return 9;
3315 case 3:
3316 switch (d[4] >> 4) {
3317 case 6:
3318 /* NAA registered extended */
3319 return 8;
3320 case 5:
3321 /* NAA registered */
3322 return 5;
3323 case 4:
3324 /* NAA extended */
3325 return 4;
3326 case 3:
3327 /* NAA locally assigned */
3328 return 1;
3329 default:
3330 break;
3331 }
3332 break;
3333 case 2:
3334 switch (d[3]) {
3335 case 16:
3336 /* EUI64-based, 16 byte */
3337 return 7;
3338 case 12:
3339 /* EUI64-based, 12 byte */
3340 return 6;
3341 case 8:
3342 /* EUI64-based, 8 byte */
3343 return 3;
3344 default:
3345 break;
3346 }
3347 break;
3348 case 1:
3349 /* T10 vendor ID */
3350 return 1;
3351 default:
3352 break;
3353 }
3354
3355 return 0;
3356 }
3357
3358 /**
3359 * scsi_vpd_lun_id - return a unique device identification
3360 * @sdev: SCSI device
3361 * @id: buffer for the identification
3362 * @id_len: length of the buffer
3363 *
3364 * Copies a unique device identification into @id based
3365 * on the information in the VPD page 0x83 of the device.
3366 * The string will be formatted as a SCSI name string.
3367 *
3368 * Returns the length of the identification or error on failure.
3369 * If the identifier is longer than the supplied buffer the actual
3370 * identifier length is returned and the buffer is not zero-padded.
3371 */
scsi_vpd_lun_id(struct scsi_device * sdev,char * id,size_t id_len)3372 int scsi_vpd_lun_id(struct scsi_device *sdev, char *id, size_t id_len)
3373 {
3374 u8 cur_id_prio = 0;
3375 u8 cur_id_size = 0;
3376 const unsigned char *d, *cur_id_str;
3377 const struct scsi_vpd *vpd_pg83;
3378 int id_size = -EINVAL;
3379
3380 rcu_read_lock();
3381 vpd_pg83 = rcu_dereference(sdev->vpd_pg83);
3382 if (!vpd_pg83) {
3383 rcu_read_unlock();
3384 return -ENXIO;
3385 }
3386
3387 /* The id string must be at least 20 bytes + terminating NULL byte */
3388 if (id_len < 21) {
3389 rcu_read_unlock();
3390 return -EINVAL;
3391 }
3392
3393 memset(id, 0, id_len);
3394 for (d = vpd_pg83->data + 4;
3395 d < vpd_pg83->data + vpd_pg83->len;
3396 d += d[3] + 4) {
3397 u8 prio = designator_prio(d);
3398
3399 if (prio == 0 || cur_id_prio > prio)
3400 continue;
3401
3402 switch (d[1] & 0xf) {
3403 case 0x1:
3404 /* T10 Vendor ID */
3405 if (cur_id_size > d[3])
3406 break;
3407 cur_id_prio = prio;
3408 cur_id_size = d[3];
3409 if (cur_id_size + 4 > id_len)
3410 cur_id_size = id_len - 4;
3411 cur_id_str = d + 4;
3412 id_size = snprintf(id, id_len, "t10.%*pE",
3413 cur_id_size, cur_id_str);
3414 break;
3415 case 0x2:
3416 /* EUI-64 */
3417 cur_id_prio = prio;
3418 cur_id_size = d[3];
3419 cur_id_str = d + 4;
3420 switch (cur_id_size) {
3421 case 8:
3422 id_size = snprintf(id, id_len,
3423 "eui.%8phN",
3424 cur_id_str);
3425 break;
3426 case 12:
3427 id_size = snprintf(id, id_len,
3428 "eui.%12phN",
3429 cur_id_str);
3430 break;
3431 case 16:
3432 id_size = snprintf(id, id_len,
3433 "eui.%16phN",
3434 cur_id_str);
3435 break;
3436 default:
3437 break;
3438 }
3439 break;
3440 case 0x3:
3441 /* NAA */
3442 cur_id_prio = prio;
3443 cur_id_size = d[3];
3444 cur_id_str = d + 4;
3445 switch (cur_id_size) {
3446 case 8:
3447 id_size = snprintf(id, id_len,
3448 "naa.%8phN",
3449 cur_id_str);
3450 break;
3451 case 16:
3452 id_size = snprintf(id, id_len,
3453 "naa.%16phN",
3454 cur_id_str);
3455 break;
3456 default:
3457 break;
3458 }
3459 break;
3460 case 0x8:
3461 /* SCSI name string */
3462 if (cur_id_size > d[3])
3463 break;
3464 /* Prefer others for truncated descriptor */
3465 if (d[3] > id_len) {
3466 prio = 2;
3467 if (cur_id_prio > prio)
3468 break;
3469 }
3470 cur_id_prio = prio;
3471 cur_id_size = id_size = d[3];
3472 cur_id_str = d + 4;
3473 if (cur_id_size >= id_len)
3474 cur_id_size = id_len - 1;
3475 memcpy(id, cur_id_str, cur_id_size);
3476 break;
3477 default:
3478 break;
3479 }
3480 }
3481 rcu_read_unlock();
3482
3483 return id_size;
3484 }
3485 EXPORT_SYMBOL(scsi_vpd_lun_id);
3486
3487 /**
3488 * scsi_vpd_lun_serial - return a unique device serial number
3489 * @sdev: SCSI device
3490 * @sn: buffer for the serial number
3491 * @sn_size: size of the buffer
3492 *
3493 * Copies the device serial number into @sn based on the information in
3494 * the VPD page 0x80 of the device. The string will be null terminated
3495 * and have leading and trailing whitespace stripped.
3496 *
3497 * Returns the length of the serial number or error on failure.
3498 */
scsi_vpd_lun_serial(struct scsi_device * sdev,char * sn,size_t sn_size)3499 int scsi_vpd_lun_serial(struct scsi_device *sdev, char *sn, size_t sn_size)
3500 {
3501 const struct scsi_vpd *vpd_pg80;
3502 const unsigned char *d;
3503 int len;
3504
3505 guard(rcu)();
3506 vpd_pg80 = rcu_dereference(sdev->vpd_pg80);
3507 if (!vpd_pg80)
3508 return -ENXIO;
3509
3510 len = vpd_pg80->len - 4;
3511 d = vpd_pg80->data + 4;
3512
3513 /* Skip leading spaces */
3514 while (len > 0 && isspace(*d)) {
3515 len--;
3516 d++;
3517 }
3518
3519 /* Skip trailing spaces */
3520 while (len > 0 && isspace(d[len - 1]))
3521 len--;
3522
3523 if (sn_size < len + 1)
3524 return -EINVAL;
3525
3526 memcpy(sn, d, len);
3527 sn[len] = '\0';
3528
3529 return len;
3530 }
3531 EXPORT_SYMBOL(scsi_vpd_lun_serial);
3532
3533 /**
3534 * scsi_vpd_tpg_id - return a target port group identifier
3535 * @sdev: SCSI device
3536 * @rel_id: pointer to return relative target port in if not %NULL
3537 *
3538 * Returns the Target Port Group identifier from the information
3539 * from VPD page 0x83 of the device.
3540 * Optionally sets @rel_id to the relative target port on success.
3541 *
3542 * Return: the identifier or error on failure.
3543 */
scsi_vpd_tpg_id(struct scsi_device * sdev,int * rel_id)3544 int scsi_vpd_tpg_id(struct scsi_device *sdev, int *rel_id)
3545 {
3546 const unsigned char *d;
3547 const struct scsi_vpd *vpd_pg83;
3548 int group_id = -EAGAIN, rel_port = -1;
3549
3550 rcu_read_lock();
3551 vpd_pg83 = rcu_dereference(sdev->vpd_pg83);
3552 if (!vpd_pg83) {
3553 rcu_read_unlock();
3554 return -ENXIO;
3555 }
3556
3557 d = vpd_pg83->data + 4;
3558 while (d < vpd_pg83->data + vpd_pg83->len) {
3559 switch (d[1] & 0xf) {
3560 case 0x4:
3561 /* Relative target port */
3562 rel_port = get_unaligned_be16(&d[6]);
3563 break;
3564 case 0x5:
3565 /* Target port group */
3566 group_id = get_unaligned_be16(&d[6]);
3567 break;
3568 default:
3569 break;
3570 }
3571 d += d[3] + 4;
3572 }
3573 rcu_read_unlock();
3574
3575 if (group_id >= 0 && rel_id && rel_port != -1)
3576 *rel_id = rel_port;
3577
3578 return group_id;
3579 }
3580 EXPORT_SYMBOL(scsi_vpd_tpg_id);
3581
3582 /**
3583 * scsi_build_sense - build sense data for a command
3584 * @scmd: scsi command for which the sense should be formatted
3585 * @desc: Sense format (non-zero == descriptor format,
3586 * 0 == fixed format)
3587 * @key: Sense key
3588 * @asc: Additional sense code
3589 * @ascq: Additional sense code qualifier
3590 *
3591 **/
scsi_build_sense(struct scsi_cmnd * scmd,int desc,u8 key,u8 asc,u8 ascq)3592 void scsi_build_sense(struct scsi_cmnd *scmd, int desc, u8 key, u8 asc, u8 ascq)
3593 {
3594 scsi_build_sense_buffer(desc, scmd->sense_buffer, key, asc, ascq);
3595 scmd->result = SAM_STAT_CHECK_CONDITION;
3596 }
3597 EXPORT_SYMBOL_GPL(scsi_build_sense);
3598
3599 #ifdef CONFIG_SCSI_LIB_KUNIT_TEST
3600 #include "scsi_lib_test.c"
3601 #endif
3602