block: don't include <linux/idr.h> in blk.h
[linux-2.6-block.git] / block / blk-flush.c
CommitLineData
8c16567d 1// SPDX-License-Identifier: GPL-2.0
86db1e29 2/*
3140c3cf 3 * Functions to sequence PREFLUSH and FUA writes.
ae1b1539
TH
4 *
5 * Copyright (C) 2011 Max Planck Institute for Gravitational Physics
6 * Copyright (C) 2011 Tejun Heo <tj@kernel.org>
7 *
3140c3cf 8 * REQ_{PREFLUSH|FUA} requests are decomposed to sequences consisted of three
ae1b1539
TH
9 * optional steps - PREFLUSH, DATA and POSTFLUSH - according to the request
10 * properties and hardware capability.
11 *
28a8f0d3
MC
12 * If a request doesn't have data, only REQ_PREFLUSH makes sense, which
13 * indicates a simple flush request. If there is data, REQ_PREFLUSH indicates
ae1b1539
TH
14 * that the device cache should be flushed before the data is executed, and
15 * REQ_FUA means that the data must be on non-volatile media on request
16 * completion.
17 *
3140c3cf
OS
18 * If the device doesn't have writeback cache, PREFLUSH and FUA don't make any
19 * difference. The requests are either completed immediately if there's no data
20 * or executed as normal requests otherwise.
ae1b1539 21 *
28a8f0d3 22 * If the device has writeback cache and supports FUA, REQ_PREFLUSH is
ae1b1539
TH
23 * translated to PREFLUSH but REQ_FUA is passed down directly with DATA.
24 *
28a8f0d3
MC
25 * If the device has writeback cache and doesn't support FUA, REQ_PREFLUSH
26 * is translated to PREFLUSH and REQ_FUA to POSTFLUSH.
ae1b1539
TH
27 *
28 * The actual execution of flush is double buffered. Whenever a request
29 * needs to execute PRE or POSTFLUSH, it queues at
7c94e1c1 30 * fq->flush_queue[fq->flush_pending_idx]. Once certain criteria are met, a
3a5e02ce 31 * REQ_OP_FLUSH is issued and the pending_idx is toggled. When the flush
ae1b1539 32 * completes, all the requests which were pending are proceeded to the next
3140c3cf 33 * step. This allows arbitrary merging of different types of PREFLUSH/FUA
ae1b1539
TH
34 * requests.
35 *
36 * Currently, the following conditions are used to determine when to issue
37 * flush.
38 *
39 * C1. At any given time, only one flush shall be in progress. This makes
40 * double buffering sufficient.
41 *
42 * C2. Flush is deferred if any request is executing DATA of its sequence.
43 * This avoids issuing separate POSTFLUSHes for requests which shared
44 * PREFLUSH.
45 *
46 * C3. The second condition is ignored if there is a request which has
47 * waited longer than FLUSH_PENDING_TIMEOUT. This is to avoid
48 * starvation in the unlikely case where there are continuous stream of
3140c3cf 49 * FUA (without PREFLUSH) requests.
ae1b1539
TH
50 *
51 * For devices which support FUA, it isn't clear whether C2 (and thus C3)
52 * is beneficial.
53 *
3140c3cf 54 * Note that a sequenced PREFLUSH/FUA request with DATA is completed twice.
ae1b1539
TH
55 * Once while executing DATA and again after the whole sequence is
56 * complete. The first completion updates the contained bio but doesn't
57 * finish it so that the bio submitter is notified only after the whole
e8064021 58 * sequence is complete. This is implemented by testing RQF_FLUSH_SEQ in
ae1b1539
TH
59 * req_bio_endio().
60 *
3140c3cf 61 * The above peculiarity requires that each PREFLUSH/FUA request has only one
ae1b1539
TH
62 * bio attached to it, which is guaranteed as they aren't allowed to be
63 * merged in the usual way.
86db1e29 64 */
ae1b1539 65
86db1e29
JA
66#include <linux/kernel.h>
67#include <linux/module.h>
68#include <linux/bio.h>
69#include <linux/blkdev.h>
5a0e3ad6 70#include <linux/gfp.h>
320ae51f 71#include <linux/blk-mq.h>
86db1e29
JA
72
73#include "blk.h"
320ae51f 74#include "blk-mq.h"
0048b483 75#include "blk-mq-tag.h"
bd166ef1 76#include "blk-mq-sched.h"
86db1e29 77
3140c3cf 78/* PREFLUSH/FUA sequences */
4fed947c 79enum {
ae1b1539
TH
80 REQ_FSEQ_PREFLUSH = (1 << 0), /* pre-flushing in progress */
81 REQ_FSEQ_DATA = (1 << 1), /* data write in progress */
82 REQ_FSEQ_POSTFLUSH = (1 << 2), /* post-flushing in progress */
83 REQ_FSEQ_DONE = (1 << 3),
84
85 REQ_FSEQ_ACTIONS = REQ_FSEQ_PREFLUSH | REQ_FSEQ_DATA |
86 REQ_FSEQ_POSTFLUSH,
87
88 /*
89 * If flush has been pending longer than the following timeout,
90 * it's issued even if flush_data requests are still in flight.
91 */
92 FLUSH_PENDING_TIMEOUT = 5 * HZ,
4fed947c
TH
93};
94
404b8f5a 95static void blk_kick_flush(struct request_queue *q,
84fca1b0 96 struct blk_flush_queue *fq, unsigned int flags);
28e7d184 97
0281ed3c
CH
98static inline struct blk_flush_queue *
99blk_get_flush_queue(struct request_queue *q, struct blk_mq_ctx *ctx)
100{
101 return blk_mq_map_queue(q, REQ_OP_FLUSH, ctx)->fq;
102}
103
c888a8f9 104static unsigned int blk_flush_policy(unsigned long fflags, struct request *rq)
86db1e29 105{
ae1b1539 106 unsigned int policy = 0;
86db1e29 107
fa1bf42f
JM
108 if (blk_rq_sectors(rq))
109 policy |= REQ_FSEQ_DATA;
110
c888a8f9 111 if (fflags & (1UL << QUEUE_FLAG_WC)) {
28a8f0d3 112 if (rq->cmd_flags & REQ_PREFLUSH)
ae1b1539 113 policy |= REQ_FSEQ_PREFLUSH;
c888a8f9
JA
114 if (!(fflags & (1UL << QUEUE_FLAG_FUA)) &&
115 (rq->cmd_flags & REQ_FUA))
ae1b1539 116 policy |= REQ_FSEQ_POSTFLUSH;
28e7d184 117 }
ae1b1539 118 return policy;
86db1e29
JA
119}
120
ae1b1539 121static unsigned int blk_flush_cur_seq(struct request *rq)
47f70d5a 122{
ae1b1539
TH
123 return 1 << ffz(rq->flush.seq);
124}
47f70d5a 125
ae1b1539
TH
126static void blk_flush_restore_request(struct request *rq)
127{
47f70d5a 128 /*
ae1b1539
TH
129 * After flush data completion, @rq->bio is %NULL but we need to
130 * complete the bio again. @rq->biotail is guaranteed to equal the
131 * original @rq->bio. Restore it.
47f70d5a 132 */
ae1b1539
TH
133 rq->bio = rq->biotail;
134
135 /* make @rq a normal request */
e8064021 136 rq->rq_flags &= ~RQF_FLUSH_SEQ;
4853abaa 137 rq->end_io = rq->flush.saved_end_io;
320ae51f
JA
138}
139
404b8f5a 140static void blk_flush_queue_rq(struct request *rq, bool add_front)
320ae51f 141{
7e992f84 142 blk_mq_add_to_requeue_list(rq, add_front, true);
47f70d5a
TH
143}
144
b6866318
KK
145static void blk_account_io_flush(struct request *rq)
146{
8446fe92 147 struct block_device *part = rq->rq_disk->part0;
b6866318
KK
148
149 part_stat_lock();
150 part_stat_inc(part, ios[STAT_FLUSH]);
151 part_stat_add(part, nsecs[STAT_FLUSH],
152 ktime_get_ns() - rq->start_time_ns);
153 part_stat_unlock();
154}
155
ae1b1539
TH
156/**
157 * blk_flush_complete_seq - complete flush sequence
3140c3cf 158 * @rq: PREFLUSH/FUA request being sequenced
0bae352d 159 * @fq: flush queue
ae1b1539
TH
160 * @seq: sequences to complete (mask of %REQ_FSEQ_*, can be zero)
161 * @error: whether an error occurred
162 *
163 * @rq just completed @seq part of its flush sequence, record the
164 * completion and trigger the next step.
165 *
166 * CONTEXT:
9809b4ee 167 * spin_lock_irq(fq->mq_flush_lock)
ae1b1539 168 */
404b8f5a 169static void blk_flush_complete_seq(struct request *rq,
0bae352d 170 struct blk_flush_queue *fq,
2a842aca 171 unsigned int seq, blk_status_t error)
86db1e29 172{
ae1b1539 173 struct request_queue *q = rq->q;
7c94e1c1 174 struct list_head *pending = &fq->flush_queue[fq->flush_pending_idx];
190b02ed 175 unsigned int cmd_flags;
ae1b1539
TH
176
177 BUG_ON(rq->flush.seq & seq);
178 rq->flush.seq |= seq;
190b02ed 179 cmd_flags = rq->cmd_flags;
ae1b1539
TH
180
181 if (likely(!error))
182 seq = blk_flush_cur_seq(rq);
183 else
184 seq = REQ_FSEQ_DONE;
185
186 switch (seq) {
187 case REQ_FSEQ_PREFLUSH:
188 case REQ_FSEQ_POSTFLUSH:
189 /* queue for flush */
190 if (list_empty(pending))
7c94e1c1 191 fq->flush_pending_since = jiffies;
ae1b1539
TH
192 list_move_tail(&rq->flush.list, pending);
193 break;
194
195 case REQ_FSEQ_DATA:
7c94e1c1 196 list_move_tail(&rq->flush.list, &fq->flush_data_in_flight);
404b8f5a 197 blk_flush_queue_rq(rq, true);
ae1b1539
TH
198 break;
199
200 case REQ_FSEQ_DONE:
201 /*
b6866318 202 * @rq was previously adjusted by blk_insert_flush() for
ae1b1539
TH
203 * flush sequencing and may already have gone through the
204 * flush data request completion path. Restore @rq for
205 * normal completion and end it.
206 */
207 BUG_ON(!list_empty(&rq->queuelist));
208 list_del_init(&rq->flush.list);
209 blk_flush_restore_request(rq);
7e992f84 210 blk_mq_end_request(rq, error);
ae1b1539
TH
211 break;
212
213 default:
214 BUG();
215 }
216
404b8f5a 217 blk_kick_flush(q, fq, cmd_flags);
86db1e29
JA
218}
219
2a842aca 220static void flush_end_io(struct request *flush_rq, blk_status_t error)
86db1e29 221{
ae1b1539 222 struct request_queue *q = flush_rq->q;
320ae51f 223 struct list_head *running;
ae1b1539 224 struct request *rq, *n;
320ae51f 225 unsigned long flags = 0;
e97c293c 226 struct blk_flush_queue *fq = blk_get_flush_queue(q, flush_rq->mq_ctx);
ae1b1539 227
7e992f84
JA
228 /* release the tag's ownership to the req cloned from */
229 spin_lock_irqsave(&fq->mq_flush_lock, flags);
8d699663
YY
230
231 if (!refcount_dec_and_test(&flush_rq->ref)) {
232 fq->rq_status = error;
233 spin_unlock_irqrestore(&fq->mq_flush_lock, flags);
234 return;
235 }
236
84da7acc 237 blk_account_io_flush(flush_rq);
9f16a667
ML
238 /*
239 * Flush request has to be marked as IDLE when it is really ended
240 * because its .end_io() is called from timeout code path too for
241 * avoiding use-after-free.
242 */
243 WRITE_ONCE(flush_rq->state, MQ_RQ_IDLE);
8d699663
YY
244 if (fq->rq_status != BLK_STS_OK)
245 error = fq->rq_status;
246
4e2f62e5 247 if (!q->elevator) {
568f2700 248 flush_rq->tag = BLK_MQ_NO_TAG;
4e2f62e5
JA
249 } else {
250 blk_mq_put_driver_tag(flush_rq);
568f2700 251 flush_rq->internal_tag = BLK_MQ_NO_TAG;
4e2f62e5 252 }
18741986 253
7c94e1c1
ML
254 running = &fq->flush_queue[fq->flush_running_idx];
255 BUG_ON(fq->flush_pending_idx == fq->flush_running_idx);
ae1b1539
TH
256
257 /* account completion of the flush request */
7c94e1c1 258 fq->flush_running_idx ^= 1;
320ae51f 259
ae1b1539
TH
260 /* and push the waiting requests to the next stage */
261 list_for_each_entry_safe(rq, n, running, flush.list) {
262 unsigned int seq = blk_flush_cur_seq(rq);
263
264 BUG_ON(seq != REQ_FSEQ_PREFLUSH && seq != REQ_FSEQ_POSTFLUSH);
404b8f5a 265 blk_flush_complete_seq(rq, fq, seq, error);
ae1b1539
TH
266 }
267
7e992f84 268 spin_unlock_irqrestore(&fq->mq_flush_lock, flags);
320ae51f
JA
269}
270
a9ed27a7
ML
271bool is_flush_rq(struct request *rq)
272{
273 return rq->end_io == flush_end_io;
274}
275
ae1b1539
TH
276/**
277 * blk_kick_flush - consider issuing flush request
278 * @q: request_queue being kicked
0bae352d 279 * @fq: flush queue
84fca1b0 280 * @flags: cmd_flags of the original request
ae1b1539
TH
281 *
282 * Flush related states of @q have changed, consider issuing flush request.
283 * Please read the comment at the top of this file for more info.
284 *
285 * CONTEXT:
9809b4ee 286 * spin_lock_irq(fq->mq_flush_lock)
ae1b1539 287 *
ae1b1539 288 */
404b8f5a 289static void blk_kick_flush(struct request_queue *q, struct blk_flush_queue *fq,
84fca1b0 290 unsigned int flags)
86db1e29 291{
7c94e1c1 292 struct list_head *pending = &fq->flush_queue[fq->flush_pending_idx];
ae1b1539
TH
293 struct request *first_rq =
294 list_first_entry(pending, struct request, flush.list);
7c94e1c1 295 struct request *flush_rq = fq->flush_rq;
ae1b1539
TH
296
297 /* C1 described at the top of this file */
7c94e1c1 298 if (fq->flush_pending_idx != fq->flush_running_idx || list_empty(pending))
404b8f5a 299 return;
ae1b1539 300
b5718d6c
YY
301 /* C2 and C3 */
302 if (!list_empty(&fq->flush_data_in_flight) &&
ae1b1539 303 time_before(jiffies,
7c94e1c1 304 fq->flush_pending_since + FLUSH_PENDING_TIMEOUT))
404b8f5a 305 return;
ae1b1539
TH
306
307 /*
308 * Issue flush and toggle pending_idx. This makes pending_idx
309 * different from running_idx, which means flush is in flight.
310 */
7c94e1c1 311 fq->flush_pending_idx ^= 1;
18741986 312
7ddab5de 313 blk_rq_init(q, flush_rq);
f70ced09
ML
314
315 /*
923218f6
ML
316 * In case of none scheduler, borrow tag from the first request
317 * since they can't be in flight at the same time. And acquire
318 * the tag's ownership for flush req.
319 *
320 * In case of IO scheduler, flush rq need to borrow scheduler tag
321 * just for cheating put/get driver tag.
f70ced09 322 */
7e992f84 323 flush_rq->mq_ctx = first_rq->mq_ctx;
ea4f995e 324 flush_rq->mq_hctx = first_rq->mq_hctx;
7e992f84 325
c1e2b842 326 if (!q->elevator) {
7e992f84 327 flush_rq->tag = first_rq->tag;
c1e2b842
ML
328
329 /*
330 * We borrow data request's driver tag, so have to mark
331 * this flush request as INFLIGHT for avoiding double
332 * account of this driver tag
333 */
334 flush_rq->rq_flags |= RQF_MQ_INFLIGHT;
335 } else
7e992f84 336 flush_rq->internal_tag = first_rq->internal_tag;
320ae51f 337
70fd7614 338 flush_rq->cmd_flags = REQ_OP_FLUSH | REQ_PREFLUSH;
84fca1b0 339 flush_rq->cmd_flags |= (flags & REQ_DRV) | (flags & REQ_FAILFAST_MASK);
e8064021 340 flush_rq->rq_flags |= RQF_FLUSH_SEQ;
7ddab5de
ML
341 flush_rq->rq_disk = first_rq->rq_disk;
342 flush_rq->end_io = flush_end_io;
c2da19ed
ML
343 /*
344 * Order WRITE ->end_io and WRITE rq->ref, and its pair is the one
345 * implied in refcount_inc_not_zero() called from
346 * blk_mq_find_and_get_req(), which orders WRITE/READ flush_rq->ref
347 * and READ flush_rq->end_io
348 */
349 smp_wmb();
350 refcount_set(&flush_rq->ref, 1);
ae1b1539 351
404b8f5a 352 blk_flush_queue_rq(flush_rq, false);
86db1e29
JA
353}
354
2a842aca 355static void mq_flush_data_end_io(struct request *rq, blk_status_t error)
320ae51f
JA
356{
357 struct request_queue *q = rq->q;
ea4f995e 358 struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
e97c293c 359 struct blk_mq_ctx *ctx = rq->mq_ctx;
320ae51f 360 unsigned long flags;
e97c293c 361 struct blk_flush_queue *fq = blk_get_flush_queue(q, ctx);
320ae51f 362
4e2f62e5
JA
363 if (q->elevator) {
364 WARN_ON(rq->tag < 0);
365 blk_mq_put_driver_tag(rq);
366 }
367
320ae51f
JA
368 /*
369 * After populating an empty queue, kick it to avoid stall. Read
370 * the comment in flush_end_io().
371 */
7c94e1c1 372 spin_lock_irqsave(&fq->mq_flush_lock, flags);
bd166ef1 373 blk_flush_complete_seq(rq, fq, REQ_FSEQ_DATA, error);
7c94e1c1 374 spin_unlock_irqrestore(&fq->mq_flush_lock, flags);
bd166ef1 375
85bd6e61 376 blk_mq_sched_restart(hctx);
320ae51f
JA
377}
378
ae1b1539 379/**
3140c3cf 380 * blk_insert_flush - insert a new PREFLUSH/FUA request
ae1b1539
TH
381 * @rq: request to insert
382 *
b710a480 383 * To be called from __elv_add_request() for %ELEVATOR_INSERT_FLUSH insertions.
320ae51f 384 * or __blk_mq_run_hw_queue() to dispatch request.
ae1b1539
TH
385 * @rq is being submitted. Analyze what needs to be done and put it on the
386 * right queue.
ae1b1539 387 */
2b504bd4 388void blk_insert_flush(struct request *rq)
86db1e29 389{
ae1b1539 390 struct request_queue *q = rq->q;
c888a8f9 391 unsigned long fflags = q->queue_flags; /* may change, cache */
ae1b1539 392 unsigned int policy = blk_flush_policy(fflags, rq);
e97c293c 393 struct blk_flush_queue *fq = blk_get_flush_queue(q, rq->mq_ctx);
86db1e29 394
ae1b1539
TH
395 /*
396 * @policy now records what operations need to be done. Adjust
28a8f0d3 397 * REQ_PREFLUSH and FUA for the driver.
ae1b1539 398 */
28a8f0d3 399 rq->cmd_flags &= ~REQ_PREFLUSH;
c888a8f9 400 if (!(fflags & (1UL << QUEUE_FLAG_FUA)))
ae1b1539
TH
401 rq->cmd_flags &= ~REQ_FUA;
402
ae5b2ec8
JA
403 /*
404 * REQ_PREFLUSH|REQ_FUA implies REQ_SYNC, so if we clear any
405 * of those flags, we have to set REQ_SYNC to avoid skewing
406 * the request accounting.
407 */
408 rq->cmd_flags |= REQ_SYNC;
409
4853abaa
JM
410 /*
411 * An empty flush handed down from a stacking driver may
412 * translate into nothing if the underlying device does not
413 * advertise a write-back cache. In this case, simply
414 * complete the request.
415 */
416 if (!policy) {
7e992f84 417 blk_mq_end_request(rq, 0);
2b504bd4 418 return;
4853abaa
JM
419 }
420
834f9f61 421 BUG_ON(rq->bio != rq->biotail); /*assumes zero or single bio rq */
4853abaa 422
ae1b1539
TH
423 /*
424 * If there's data but flush is not necessary, the request can be
425 * processed directly without going through flush machinery. Queue
426 * for normal execution.
427 */
428 if ((policy & REQ_FSEQ_DATA) &&
2b504bd4
ML
429 !(policy & (REQ_FSEQ_PREFLUSH | REQ_FSEQ_POSTFLUSH))) {
430 blk_mq_request_bypass_insert(rq, false, true);
431 return;
432 }
cde4c406 433
ae1b1539
TH
434 /*
435 * @rq should go through flush machinery. Mark it part of flush
436 * sequence and submit for further processing.
437 */
438 memset(&rq->flush, 0, sizeof(rq->flush));
439 INIT_LIST_HEAD(&rq->flush.list);
e8064021 440 rq->rq_flags |= RQF_FLUSH_SEQ;
4853abaa 441 rq->flush.saved_end_io = rq->end_io; /* Usually NULL */
320ae51f 442
7e992f84 443 rq->end_io = mq_flush_data_end_io;
ae1b1539 444
7e992f84 445 spin_lock_irq(&fq->mq_flush_lock);
0bae352d 446 blk_flush_complete_seq(rq, fq, REQ_FSEQ_ACTIONS & ~policy, 0);
7e992f84 447 spin_unlock_irq(&fq->mq_flush_lock);
86db1e29
JA
448}
449
86db1e29
JA
450/**
451 * blkdev_issue_flush - queue a flush
452 * @bdev: blockdev to issue flush for
86db1e29
JA
453 *
454 * Description:
9398554f 455 * Issue a flush for the block device in question.
86db1e29 456 */
c6bf3f0e 457int blkdev_issue_flush(struct block_device *bdev)
86db1e29 458{
c6bf3f0e 459 struct bio bio;
86db1e29 460
c6bf3f0e
CH
461 bio_init(&bio, NULL, 0);
462 bio_set_dev(&bio, bdev);
463 bio.bi_opf = REQ_OP_WRITE | REQ_PREFLUSH;
464 return submit_bio_wait(&bio);
86db1e29 465}
86db1e29 466EXPORT_SYMBOL(blkdev_issue_flush);
320ae51f 467
754a1572
GJ
468struct blk_flush_queue *blk_alloc_flush_queue(int node, int cmd_size,
469 gfp_t flags)
320ae51f 470{
7c94e1c1
ML
471 struct blk_flush_queue *fq;
472 int rq_sz = sizeof(struct request);
1bcb1ead 473
5b202853 474 fq = kzalloc_node(sizeof(*fq), flags, node);
7c94e1c1
ML
475 if (!fq)
476 goto fail;
1bcb1ead 477
7e992f84 478 spin_lock_init(&fq->mq_flush_lock);
7c94e1c1 479
6d247d7f 480 rq_sz = round_up(rq_sz + cmd_size, cache_line_size());
5b202853 481 fq->flush_rq = kzalloc_node(rq_sz, flags, node);
7c94e1c1
ML
482 if (!fq->flush_rq)
483 goto fail_rq;
484
485 INIT_LIST_HEAD(&fq->flush_queue[0]);
486 INIT_LIST_HEAD(&fq->flush_queue[1]);
487 INIT_LIST_HEAD(&fq->flush_data_in_flight);
488
489 return fq;
490
491 fail_rq:
492 kfree(fq);
493 fail:
494 return NULL;
320ae51f 495}
f3552655 496
ba483388 497void blk_free_flush_queue(struct blk_flush_queue *fq)
f3552655 498{
7c94e1c1
ML
499 /* bio based request queue hasn't flush queue */
500 if (!fq)
501 return;
3c09676c 502
7c94e1c1
ML
503 kfree(fq->flush_rq);
504 kfree(fq);
505}
fb01a293
ML
506
507/*
508 * Allow driver to set its own lock class to fq->mq_flush_lock for
509 * avoiding lockdep complaint.
510 *
511 * flush_end_io() may be called recursively from some driver, such as
512 * nvme-loop, so lockdep may complain 'possible recursive locking' because
513 * all 'struct blk_flush_queue' instance share same mq_flush_lock lock class
514 * key. We need to assign different lock class for these driver's
515 * fq->mq_flush_lock for avoiding the lockdep warning.
516 *
517 * Use dynamically allocated lock class key for each 'blk_flush_queue'
518 * instance is over-kill, and more worse it introduces horrible boot delay
519 * issue because synchronize_rcu() is implied in lockdep_unregister_key which
520 * is called for each hctx release. SCSI probing may synchronously create and
521 * destroy lots of MQ request_queues for non-existent devices, and some robot
522 * test kernel always enable lockdep option. It is observed that more than half
523 * an hour is taken during SCSI MQ probe with per-fq lock class.
524 */
525void blk_mq_hctx_set_fq_lock_class(struct blk_mq_hw_ctx *hctx,
526 struct lock_class_key *key)
527{
528 lockdep_set_class(&hctx->fq->mq_flush_lock, key);
529}
530EXPORT_SYMBOL_GPL(blk_mq_hctx_set_fq_lock_class);