1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Block multiqueue core code
4 *
5 * Copyright (C) 2013-2014 Jens Axboe
6 * Copyright (C) 2013-2014 Christoph Hellwig
7 */
8 #include <linux/kernel.h>
9 #include <linux/module.h>
10 #include <linux/backing-dev.h>
11 #include <linux/bio.h>
12 #include <linux/blkdev.h>
13 #include <linux/blk-integrity.h>
14 #include <linux/kmemleak.h>
15 #include <linux/mm.h>
16 #include <linux/init.h>
17 #include <linux/slab.h>
18 #include <linux/workqueue.h>
19 #include <linux/smp.h>
20 #include <linux/interrupt.h>
21 #include <linux/llist.h>
22 #include <linux/cpu.h>
23 #include <linux/cache.h>
24 #include <linux/sched/topology.h>
25 #include <linux/sched/signal.h>
26 #include <linux/suspend.h>
27 #include <linux/delay.h>
28 #include <linux/crash_dump.h>
29 #include <linux/prefetch.h>
30 #include <linux/blk-crypto.h>
31 #include <linux/part_stat.h>
32 #include <linux/sched/isolation.h>
33
34 #include <trace/events/block.h>
35
36 #include <linux/t10-pi.h>
37 #include "blk.h"
38 #include "blk-mq.h"
39 #include "blk-mq-debugfs.h"
40 #include "blk-pm.h"
41 #include "blk-stat.h"
42 #include "blk-mq-sched.h"
43 #include "blk-rq-qos.h"
44
45 static DEFINE_PER_CPU(struct llist_head, blk_cpu_done);
46 static DEFINE_PER_CPU(call_single_data_t, blk_cpu_csd);
47 static DEFINE_MUTEX(blk_mq_cpuhp_lock);
48
49 static void blk_mq_insert_request(struct request *rq, blk_insert_t flags);
50 static void blk_mq_request_bypass_insert(struct request *rq,
51 blk_insert_t flags);
52 static void blk_mq_try_issue_list_directly(struct blk_mq_hw_ctx *hctx,
53 struct list_head *list);
54 static int blk_hctx_poll(struct request_queue *q, struct blk_mq_hw_ctx *hctx,
55 struct io_comp_batch *iob, unsigned int flags);
56
57 /*
58 * Check if any of the ctx, dispatch list or elevator
59 * have pending work in this hardware queue.
60 */
blk_mq_hctx_has_pending(struct blk_mq_hw_ctx * hctx)61 static bool blk_mq_hctx_has_pending(struct blk_mq_hw_ctx *hctx)
62 {
63 return !list_empty_careful(&hctx->dispatch) ||
64 sbitmap_any_bit_set(&hctx->ctx_map) ||
65 blk_mq_sched_has_work(hctx);
66 }
67
68 /*
69 * Mark this ctx as having pending work in this hardware queue
70 */
blk_mq_hctx_mark_pending(struct blk_mq_hw_ctx * hctx,struct blk_mq_ctx * ctx)71 static void blk_mq_hctx_mark_pending(struct blk_mq_hw_ctx *hctx,
72 struct blk_mq_ctx *ctx)
73 {
74 const int bit = ctx->index_hw[hctx->type];
75
76 if (!sbitmap_test_bit(&hctx->ctx_map, bit))
77 sbitmap_set_bit(&hctx->ctx_map, bit);
78 }
79
blk_mq_hctx_clear_pending(struct blk_mq_hw_ctx * hctx,struct blk_mq_ctx * ctx)80 static void blk_mq_hctx_clear_pending(struct blk_mq_hw_ctx *hctx,
81 struct blk_mq_ctx *ctx)
82 {
83 const int bit = ctx->index_hw[hctx->type];
84
85 sbitmap_clear_bit(&hctx->ctx_map, bit);
86 }
87
88 struct mq_inflight {
89 struct block_device *part;
90 unsigned int inflight[2];
91 };
92
blk_mq_check_in_driver(struct request * rq,void * priv)93 static bool blk_mq_check_in_driver(struct request *rq, void *priv)
94 {
95 struct mq_inflight *mi = priv;
96
97 if (rq->rq_flags & RQF_IO_STAT &&
98 (!bdev_is_partition(mi->part) || rq->part == mi->part) &&
99 blk_mq_rq_state(rq) == MQ_RQ_IN_FLIGHT)
100 mi->inflight[rq_data_dir(rq)]++;
101
102 return true;
103 }
104
blk_mq_in_driver_rw(struct block_device * part,unsigned int inflight[2])105 void blk_mq_in_driver_rw(struct block_device *part, unsigned int inflight[2])
106 {
107 struct mq_inflight mi = { .part = part };
108
109 blk_mq_queue_tag_busy_iter(bdev_get_queue(part), blk_mq_check_in_driver,
110 &mi);
111 inflight[READ] = mi.inflight[READ];
112 inflight[WRITE] = mi.inflight[WRITE];
113 }
114
115 #ifdef CONFIG_LOCKDEP
blk_freeze_set_owner(struct request_queue * q,struct task_struct * owner)116 static bool blk_freeze_set_owner(struct request_queue *q,
117 struct task_struct *owner)
118 {
119 if (!owner)
120 return false;
121
122 if (!q->mq_freeze_depth) {
123 q->mq_freeze_owner = owner;
124 q->mq_freeze_owner_depth = 1;
125 q->mq_freeze_disk_dead = !q->disk ||
126 test_bit(GD_DEAD, &q->disk->state) ||
127 !blk_queue_registered(q);
128 q->mq_freeze_queue_dying = blk_queue_dying(q);
129 return true;
130 }
131
132 if (owner == q->mq_freeze_owner)
133 q->mq_freeze_owner_depth += 1;
134 return false;
135 }
136
137 /* verify the last unfreeze in owner context */
blk_unfreeze_check_owner(struct request_queue * q)138 static bool blk_unfreeze_check_owner(struct request_queue *q)
139 {
140 if (q->mq_freeze_owner != current)
141 return false;
142 if (--q->mq_freeze_owner_depth == 0) {
143 q->mq_freeze_owner = NULL;
144 return true;
145 }
146 return false;
147 }
148
149 #else
150
blk_freeze_set_owner(struct request_queue * q,struct task_struct * owner)151 static bool blk_freeze_set_owner(struct request_queue *q,
152 struct task_struct *owner)
153 {
154 return false;
155 }
156
blk_unfreeze_check_owner(struct request_queue * q)157 static bool blk_unfreeze_check_owner(struct request_queue *q)
158 {
159 return false;
160 }
161 #endif
162
__blk_freeze_queue_start(struct request_queue * q,struct task_struct * owner)163 bool __blk_freeze_queue_start(struct request_queue *q,
164 struct task_struct *owner)
165 {
166 bool freeze;
167
168 mutex_lock(&q->mq_freeze_lock);
169 freeze = blk_freeze_set_owner(q, owner);
170 if (++q->mq_freeze_depth == 1) {
171 percpu_ref_kill(&q->q_usage_counter);
172 mutex_unlock(&q->mq_freeze_lock);
173 if (queue_is_mq(q))
174 blk_mq_run_hw_queues(q, false);
175 } else {
176 mutex_unlock(&q->mq_freeze_lock);
177 }
178
179 return freeze;
180 }
181
blk_freeze_queue_start(struct request_queue * q)182 void blk_freeze_queue_start(struct request_queue *q)
183 {
184 if (__blk_freeze_queue_start(q, current))
185 blk_freeze_acquire_lock(q);
186 }
187 EXPORT_SYMBOL_GPL(blk_freeze_queue_start);
188
blk_mq_freeze_queue_wait(struct request_queue * q)189 void blk_mq_freeze_queue_wait(struct request_queue *q)
190 {
191 wait_event(q->mq_freeze_wq, percpu_ref_is_zero(&q->q_usage_counter));
192 }
193 EXPORT_SYMBOL_GPL(blk_mq_freeze_queue_wait);
194
blk_mq_freeze_queue_wait_timeout(struct request_queue * q,unsigned long timeout)195 int blk_mq_freeze_queue_wait_timeout(struct request_queue *q,
196 unsigned long timeout)
197 {
198 return wait_event_timeout(q->mq_freeze_wq,
199 percpu_ref_is_zero(&q->q_usage_counter),
200 timeout);
201 }
202 EXPORT_SYMBOL_GPL(blk_mq_freeze_queue_wait_timeout);
203
blk_mq_freeze_queue_nomemsave(struct request_queue * q)204 void blk_mq_freeze_queue_nomemsave(struct request_queue *q)
205 {
206 blk_freeze_queue_start(q);
207 blk_mq_freeze_queue_wait(q);
208 }
209 EXPORT_SYMBOL_GPL(blk_mq_freeze_queue_nomemsave);
210
__blk_mq_unfreeze_queue(struct request_queue * q,bool force_atomic)211 bool __blk_mq_unfreeze_queue(struct request_queue *q, bool force_atomic)
212 {
213 bool unfreeze;
214
215 mutex_lock(&q->mq_freeze_lock);
216 if (force_atomic)
217 q->q_usage_counter.data->force_atomic = true;
218 q->mq_freeze_depth--;
219 WARN_ON_ONCE(q->mq_freeze_depth < 0);
220 if (!q->mq_freeze_depth) {
221 percpu_ref_resurrect(&q->q_usage_counter);
222 wake_up_all(&q->mq_freeze_wq);
223 }
224 unfreeze = blk_unfreeze_check_owner(q);
225 mutex_unlock(&q->mq_freeze_lock);
226
227 return unfreeze;
228 }
229
blk_mq_unfreeze_queue_nomemrestore(struct request_queue * q)230 void blk_mq_unfreeze_queue_nomemrestore(struct request_queue *q)
231 {
232 if (__blk_mq_unfreeze_queue(q, false))
233 blk_unfreeze_release_lock(q);
234 }
235 EXPORT_SYMBOL_GPL(blk_mq_unfreeze_queue_nomemrestore);
236
237 /*
238 * non_owner variant of blk_freeze_queue_start
239 *
240 * Unlike blk_freeze_queue_start, the queue doesn't need to be unfrozen
241 * by the same task. This is fragile and should not be used if at all
242 * possible.
243 */
blk_freeze_queue_start_non_owner(struct request_queue * q)244 void blk_freeze_queue_start_non_owner(struct request_queue *q)
245 {
246 __blk_freeze_queue_start(q, NULL);
247 }
248 EXPORT_SYMBOL_GPL(blk_freeze_queue_start_non_owner);
249
250 /* non_owner variant of blk_mq_unfreeze_queue */
blk_mq_unfreeze_queue_non_owner(struct request_queue * q)251 void blk_mq_unfreeze_queue_non_owner(struct request_queue *q)
252 {
253 __blk_mq_unfreeze_queue(q, false);
254 }
255 EXPORT_SYMBOL_GPL(blk_mq_unfreeze_queue_non_owner);
256
257 /*
258 * FIXME: replace the scsi_internal_device_*block_nowait() calls in the
259 * mpt3sas driver such that this function can be removed.
260 */
blk_mq_quiesce_queue_nowait(struct request_queue * q)261 void blk_mq_quiesce_queue_nowait(struct request_queue *q)
262 {
263 unsigned long flags;
264
265 spin_lock_irqsave(&q->queue_lock, flags);
266 if (!q->quiesce_depth++)
267 blk_queue_flag_set(QUEUE_FLAG_QUIESCED, q);
268 spin_unlock_irqrestore(&q->queue_lock, flags);
269 }
270 EXPORT_SYMBOL_GPL(blk_mq_quiesce_queue_nowait);
271
272 /**
273 * blk_mq_wait_quiesce_done() - wait until in-progress quiesce is done
274 * @set: tag_set to wait on
275 *
276 * Note: it is driver's responsibility for making sure that quiesce has
277 * been started on or more of the request_queues of the tag_set. This
278 * function only waits for the quiesce on those request_queues that had
279 * the quiesce flag set using blk_mq_quiesce_queue_nowait.
280 */
blk_mq_wait_quiesce_done(struct blk_mq_tag_set * set)281 void blk_mq_wait_quiesce_done(struct blk_mq_tag_set *set)
282 {
283 if (set->flags & BLK_MQ_F_BLOCKING)
284 synchronize_srcu(set->srcu);
285 else
286 synchronize_rcu();
287 }
288 EXPORT_SYMBOL_GPL(blk_mq_wait_quiesce_done);
289
290 /**
291 * blk_mq_quiesce_queue() - wait until all ongoing dispatches have finished
292 * @q: request queue.
293 *
294 * Note: this function does not prevent that the struct request end_io()
295 * callback function is invoked. Once this function is returned, we make
296 * sure no dispatch can happen until the queue is unquiesced via
297 * blk_mq_unquiesce_queue().
298 */
blk_mq_quiesce_queue(struct request_queue * q)299 void blk_mq_quiesce_queue(struct request_queue *q)
300 {
301 blk_mq_quiesce_queue_nowait(q);
302 /* nothing to wait for non-mq queues */
303 if (queue_is_mq(q))
304 blk_mq_wait_quiesce_done(q->tag_set);
305 }
306 EXPORT_SYMBOL_GPL(blk_mq_quiesce_queue);
307
308 /*
309 * blk_mq_unquiesce_queue() - counterpart of blk_mq_quiesce_queue()
310 * @q: request queue.
311 *
312 * This function recovers queue into the state before quiescing
313 * which is done by blk_mq_quiesce_queue.
314 */
blk_mq_unquiesce_queue(struct request_queue * q)315 void blk_mq_unquiesce_queue(struct request_queue *q)
316 {
317 unsigned long flags;
318 bool run_queue = false;
319
320 spin_lock_irqsave(&q->queue_lock, flags);
321 if (WARN_ON_ONCE(q->quiesce_depth <= 0)) {
322 ;
323 } else if (!--q->quiesce_depth) {
324 blk_queue_flag_clear(QUEUE_FLAG_QUIESCED, q);
325 run_queue = true;
326 }
327 spin_unlock_irqrestore(&q->queue_lock, flags);
328
329 /* dispatch requests which are inserted during quiescing */
330 if (run_queue)
331 blk_mq_run_hw_queues(q, true);
332 }
333 EXPORT_SYMBOL_GPL(blk_mq_unquiesce_queue);
334
blk_mq_quiesce_tagset(struct blk_mq_tag_set * set)335 void blk_mq_quiesce_tagset(struct blk_mq_tag_set *set)
336 {
337 struct request_queue *q;
338
339 rcu_read_lock();
340 list_for_each_entry_rcu(q, &set->tag_list, tag_set_list) {
341 if (!blk_queue_skip_tagset_quiesce(q))
342 blk_mq_quiesce_queue_nowait(q);
343 }
344 rcu_read_unlock();
345
346 blk_mq_wait_quiesce_done(set);
347 }
348 EXPORT_SYMBOL_GPL(blk_mq_quiesce_tagset);
349
blk_mq_unquiesce_tagset(struct blk_mq_tag_set * set)350 void blk_mq_unquiesce_tagset(struct blk_mq_tag_set *set)
351 {
352 struct request_queue *q;
353
354 rcu_read_lock();
355 list_for_each_entry_rcu(q, &set->tag_list, tag_set_list) {
356 if (!blk_queue_skip_tagset_quiesce(q))
357 blk_mq_unquiesce_queue(q);
358 }
359 rcu_read_unlock();
360 }
361 EXPORT_SYMBOL_GPL(blk_mq_unquiesce_tagset);
362
blk_mq_wake_waiters(struct request_queue * q)363 void blk_mq_wake_waiters(struct request_queue *q)
364 {
365 struct blk_mq_hw_ctx *hctx;
366 unsigned long i;
367
368 queue_for_each_hw_ctx(q, hctx, i)
369 if (blk_mq_hw_queue_mapped(hctx))
370 blk_mq_tag_wakeup_all(hctx->tags, true);
371 }
372
blk_rq_init(struct request_queue * q,struct request * rq)373 void blk_rq_init(struct request_queue *q, struct request *rq)
374 {
375 memset(rq, 0, sizeof(*rq));
376
377 INIT_LIST_HEAD(&rq->queuelist);
378 rq->q = q;
379 rq->__sector = (sector_t) -1;
380 rq->phys_gap_bit = 0;
381 INIT_HLIST_NODE(&rq->hash);
382 RB_CLEAR_NODE(&rq->rb_node);
383 rq->tag = BLK_MQ_NO_TAG;
384 rq->internal_tag = BLK_MQ_NO_TAG;
385 rq->start_time_ns = blk_time_get_ns();
386 blk_crypto_rq_set_defaults(rq);
387 }
388 EXPORT_SYMBOL(blk_rq_init);
389
390 /* Set start and alloc time when the allocated request is actually used */
blk_mq_rq_time_init(struct request * rq,u64 alloc_time_ns)391 static inline void blk_mq_rq_time_init(struct request *rq, u64 alloc_time_ns)
392 {
393 #ifdef CONFIG_BLK_RQ_ALLOC_TIME
394 if (blk_queue_rq_alloc_time(rq->q))
395 rq->alloc_time_ns = alloc_time_ns;
396 else
397 rq->alloc_time_ns = 0;
398 #endif
399 }
400
blk_mq_bio_issue_init(struct request_queue * q,struct bio * bio)401 static inline void blk_mq_bio_issue_init(struct request_queue *q,
402 struct bio *bio)
403 {
404 #ifdef CONFIG_BLK_CGROUP
405 if (test_bit(QUEUE_FLAG_BIO_ISSUE_TIME, &q->queue_flags))
406 bio->issue_time_ns = blk_time_get_ns();
407 #endif
408 }
409
blk_mq_rq_ctx_init(struct blk_mq_alloc_data * data,struct blk_mq_tags * tags,unsigned int tag)410 static struct request *blk_mq_rq_ctx_init(struct blk_mq_alloc_data *data,
411 struct blk_mq_tags *tags, unsigned int tag)
412 {
413 struct blk_mq_ctx *ctx = data->ctx;
414 struct blk_mq_hw_ctx *hctx = data->hctx;
415 struct request_queue *q = data->q;
416 struct request *rq = tags->static_rqs[tag];
417
418 rq->q = q;
419 rq->mq_ctx = ctx;
420 rq->mq_hctx = hctx;
421 rq->cmd_flags = data->cmd_flags;
422
423 if (data->flags & BLK_MQ_REQ_PM)
424 data->rq_flags |= RQF_PM;
425 rq->rq_flags = data->rq_flags;
426
427 if (data->rq_flags & RQF_SCHED_TAGS) {
428 rq->tag = BLK_MQ_NO_TAG;
429 rq->internal_tag = tag;
430 } else {
431 rq->tag = tag;
432 rq->internal_tag = BLK_MQ_NO_TAG;
433 }
434 rq->timeout = 0;
435
436 rq->part = NULL;
437 rq->io_start_time_ns = 0;
438 rq->stats_sectors = 0;
439 rq->nr_phys_segments = 0;
440 rq->nr_integrity_segments = 0;
441 rq->end_io = NULL;
442 rq->end_io_data = NULL;
443
444 blk_crypto_rq_set_defaults(rq);
445 INIT_LIST_HEAD(&rq->queuelist);
446 /* tag was already set */
447 WRITE_ONCE(rq->deadline, 0);
448 req_ref_set(rq, 1);
449
450 if (rq->rq_flags & RQF_USE_SCHED) {
451 struct elevator_queue *e = data->q->elevator;
452
453 INIT_HLIST_NODE(&rq->hash);
454 RB_CLEAR_NODE(&rq->rb_node);
455
456 if (e->type->ops.prepare_request)
457 e->type->ops.prepare_request(rq);
458 }
459
460 return rq;
461 }
462
463 static inline struct request *
__blk_mq_alloc_requests_batch(struct blk_mq_alloc_data * data)464 __blk_mq_alloc_requests_batch(struct blk_mq_alloc_data *data)
465 {
466 unsigned int tag, tag_offset;
467 struct blk_mq_tags *tags;
468 struct request *rq;
469 unsigned long tag_mask;
470 int i, nr = 0;
471
472 do {
473 tag_mask = blk_mq_get_tags(data, data->nr_tags - nr, &tag_offset);
474 if (unlikely(!tag_mask)) {
475 if (nr == 0)
476 return NULL;
477 break;
478 }
479 tags = blk_mq_tags_from_data(data);
480 for (i = 0; tag_mask; i++) {
481 if (!(tag_mask & (1UL << i)))
482 continue;
483 tag = tag_offset + i;
484 prefetch(tags->static_rqs[tag]);
485 tag_mask &= ~(1UL << i);
486 rq = blk_mq_rq_ctx_init(data, tags, tag);
487 rq_list_add_head(data->cached_rqs, rq);
488 nr++;
489 }
490 } while (data->nr_tags > nr);
491
492 if (!(data->rq_flags & RQF_SCHED_TAGS))
493 blk_mq_add_active_requests(data->hctx, nr);
494 /* caller already holds a reference, add for remainder */
495 percpu_ref_get_many(&data->q->q_usage_counter, nr - 1);
496 data->nr_tags -= nr;
497
498 return rq_list_pop(data->cached_rqs);
499 }
500
blk_mq_limit_depth(struct blk_mq_alloc_data * data)501 static void blk_mq_limit_depth(struct blk_mq_alloc_data *data)
502 {
503 struct elevator_mq_ops *ops;
504
505 /* If no I/O scheduler has been configured, don't limit requests */
506 if (!data->q->elevator) {
507 blk_mq_tag_busy(data->hctx);
508 return;
509 }
510
511 /*
512 * All requests use scheduler tags when an I/O scheduler is
513 * enabled for the queue.
514 */
515 data->rq_flags |= RQF_SCHED_TAGS;
516
517 /*
518 * Flush/passthrough requests are special and go directly to the
519 * dispatch list, they are not subject to the async_depth limit.
520 */
521 if ((data->cmd_flags & REQ_OP_MASK) == REQ_OP_FLUSH ||
522 blk_op_is_passthrough(data->cmd_flags))
523 return;
524
525 WARN_ON_ONCE(data->flags & BLK_MQ_REQ_RESERVED);
526 data->rq_flags |= RQF_USE_SCHED;
527
528 /*
529 * By default, sync requests have no limit, and async requests are
530 * limited to async_depth.
531 */
532 ops = &data->q->elevator->type->ops;
533 if (ops->limit_depth)
534 ops->limit_depth(data->cmd_flags, data);
535 }
536
__blk_mq_alloc_requests(struct blk_mq_alloc_data * data)537 static struct request *__blk_mq_alloc_requests(struct blk_mq_alloc_data *data)
538 {
539 struct request_queue *q = data->q;
540 u64 alloc_time_ns = 0;
541 struct request *rq;
542 unsigned int tag;
543
544 /* alloc_time includes depth and tag waits */
545 if (blk_queue_rq_alloc_time(q))
546 alloc_time_ns = blk_time_get_ns();
547
548 if (data->cmd_flags & REQ_NOWAIT)
549 data->flags |= BLK_MQ_REQ_NOWAIT;
550
551 retry:
552 data->ctx = blk_mq_get_ctx(q);
553 data->hctx = blk_mq_map_queue(data->cmd_flags, data->ctx);
554
555 blk_mq_limit_depth(data);
556 if (data->flags & BLK_MQ_REQ_RESERVED)
557 data->rq_flags |= RQF_RESV;
558
559 /*
560 * Try batched alloc if we want more than 1 tag.
561 */
562 if (data->nr_tags > 1) {
563 rq = __blk_mq_alloc_requests_batch(data);
564 if (rq) {
565 blk_mq_rq_time_init(rq, alloc_time_ns);
566 return rq;
567 }
568 data->nr_tags = 1;
569 }
570
571 /*
572 * Waiting allocations only fail because of an inactive hctx. In that
573 * case just retry the hctx assignment and tag allocation as CPU hotplug
574 * should have migrated us to an online CPU by now.
575 */
576 tag = blk_mq_get_tag(data);
577 if (tag == BLK_MQ_NO_TAG) {
578 if (data->flags & BLK_MQ_REQ_NOWAIT)
579 return NULL;
580 /*
581 * Give up the CPU and sleep for a random short time to
582 * ensure that thread using a realtime scheduling class
583 * are migrated off the CPU, and thus off the hctx that
584 * is going away.
585 */
586 msleep(3);
587 goto retry;
588 }
589
590 if (!(data->rq_flags & RQF_SCHED_TAGS))
591 blk_mq_inc_active_requests(data->hctx);
592 rq = blk_mq_rq_ctx_init(data, blk_mq_tags_from_data(data), tag);
593 blk_mq_rq_time_init(rq, alloc_time_ns);
594 return rq;
595 }
596
blk_mq_rq_cache_fill(struct request_queue * q,struct blk_plug * plug,blk_opf_t opf,blk_mq_req_flags_t flags)597 static struct request *blk_mq_rq_cache_fill(struct request_queue *q,
598 struct blk_plug *plug,
599 blk_opf_t opf,
600 blk_mq_req_flags_t flags)
601 {
602 struct blk_mq_alloc_data data = {
603 .q = q,
604 .flags = flags,
605 .shallow_depth = 0,
606 .cmd_flags = opf,
607 .rq_flags = 0,
608 .nr_tags = plug->nr_ios,
609 .cached_rqs = &plug->cached_rqs,
610 .ctx = NULL,
611 .hctx = NULL
612 };
613 struct request *rq;
614
615 if (blk_queue_enter(q, flags))
616 return NULL;
617
618 plug->nr_ios = 1;
619
620 rq = __blk_mq_alloc_requests(&data);
621 if (unlikely(!rq))
622 blk_queue_exit(q);
623 return rq;
624 }
625
blk_mq_alloc_cached_request(struct request_queue * q,blk_opf_t opf,blk_mq_req_flags_t flags)626 static struct request *blk_mq_alloc_cached_request(struct request_queue *q,
627 blk_opf_t opf,
628 blk_mq_req_flags_t flags)
629 {
630 struct blk_plug *plug = current->plug;
631 struct request *rq;
632
633 if (!plug)
634 return NULL;
635
636 if (rq_list_empty(&plug->cached_rqs)) {
637 if (plug->nr_ios == 1)
638 return NULL;
639 rq = blk_mq_rq_cache_fill(q, plug, opf, flags);
640 if (!rq)
641 return NULL;
642 } else {
643 rq = rq_list_peek(&plug->cached_rqs);
644 if (!rq || rq->q != q)
645 return NULL;
646
647 if (blk_mq_get_hctx_type(opf) != rq->mq_hctx->type)
648 return NULL;
649 if (op_is_flush(rq->cmd_flags) != op_is_flush(opf))
650 return NULL;
651
652 rq_list_pop(&plug->cached_rqs);
653 blk_mq_rq_time_init(rq, blk_time_get_ns());
654 }
655
656 rq->cmd_flags = opf;
657 INIT_LIST_HEAD(&rq->queuelist);
658 return rq;
659 }
660
blk_mq_alloc_request(struct request_queue * q,blk_opf_t opf,blk_mq_req_flags_t flags)661 struct request *blk_mq_alloc_request(struct request_queue *q, blk_opf_t opf,
662 blk_mq_req_flags_t flags)
663 {
664 struct request *rq;
665
666 rq = blk_mq_alloc_cached_request(q, opf, flags);
667 if (!rq) {
668 struct blk_mq_alloc_data data = {
669 .q = q,
670 .flags = flags,
671 .shallow_depth = 0,
672 .cmd_flags = opf,
673 .rq_flags = 0,
674 .nr_tags = 1,
675 .cached_rqs = NULL,
676 .ctx = NULL,
677 .hctx = NULL
678 };
679 int ret;
680
681 ret = blk_queue_enter(q, flags);
682 if (ret)
683 return ERR_PTR(ret);
684
685 rq = __blk_mq_alloc_requests(&data);
686 if (!rq)
687 goto out_queue_exit;
688 }
689 rq->__data_len = 0;
690 rq->phys_gap_bit = 0;
691 rq->__sector = (sector_t) -1;
692 rq->bio = rq->biotail = NULL;
693 return rq;
694 out_queue_exit:
695 blk_queue_exit(q);
696 return ERR_PTR(-EWOULDBLOCK);
697 }
698 EXPORT_SYMBOL(blk_mq_alloc_request);
699
blk_mq_alloc_request_hctx(struct request_queue * q,blk_opf_t opf,blk_mq_req_flags_t flags,unsigned int hctx_idx)700 struct request *blk_mq_alloc_request_hctx(struct request_queue *q,
701 blk_opf_t opf, blk_mq_req_flags_t flags, unsigned int hctx_idx)
702 {
703 struct blk_mq_alloc_data data = {
704 .q = q,
705 .flags = flags,
706 .shallow_depth = 0,
707 .cmd_flags = opf,
708 .rq_flags = 0,
709 .nr_tags = 1,
710 .cached_rqs = NULL,
711 .ctx = NULL,
712 .hctx = NULL
713 };
714 u64 alloc_time_ns = 0;
715 struct request *rq;
716 unsigned int cpu;
717 unsigned int tag;
718 int ret;
719
720 /* alloc_time includes depth and tag waits */
721 if (blk_queue_rq_alloc_time(q))
722 alloc_time_ns = blk_time_get_ns();
723
724 /*
725 * If the tag allocator sleeps we could get an allocation for a
726 * different hardware context. No need to complicate the low level
727 * allocator for this for the rare use case of a command tied to
728 * a specific queue.
729 */
730 if (WARN_ON_ONCE(!(flags & BLK_MQ_REQ_NOWAIT)) ||
731 WARN_ON_ONCE(!(flags & BLK_MQ_REQ_RESERVED)))
732 return ERR_PTR(-EINVAL);
733
734 if (hctx_idx >= q->nr_hw_queues)
735 return ERR_PTR(-EIO);
736
737 ret = blk_queue_enter(q, flags);
738 if (ret)
739 return ERR_PTR(ret);
740
741 /*
742 * Check if the hardware context is actually mapped to anything.
743 * If not tell the caller that it should skip this queue.
744 */
745 ret = -EXDEV;
746 data.hctx = q->queue_hw_ctx[hctx_idx];
747 if (!blk_mq_hw_queue_mapped(data.hctx))
748 goto out_queue_exit;
749 cpu = cpumask_first_and(data.hctx->cpumask, cpu_online_mask);
750 if (cpu >= nr_cpu_ids)
751 goto out_queue_exit;
752 data.ctx = __blk_mq_get_ctx(q, cpu);
753
754 if (q->elevator)
755 data.rq_flags |= RQF_SCHED_TAGS;
756 else
757 blk_mq_tag_busy(data.hctx);
758
759 if (flags & BLK_MQ_REQ_RESERVED)
760 data.rq_flags |= RQF_RESV;
761
762 ret = -EWOULDBLOCK;
763 tag = blk_mq_get_tag(&data);
764 if (tag == BLK_MQ_NO_TAG)
765 goto out_queue_exit;
766 if (!(data.rq_flags & RQF_SCHED_TAGS))
767 blk_mq_inc_active_requests(data.hctx);
768 rq = blk_mq_rq_ctx_init(&data, blk_mq_tags_from_data(&data), tag);
769 blk_mq_rq_time_init(rq, alloc_time_ns);
770 rq->__data_len = 0;
771 rq->phys_gap_bit = 0;
772 rq->__sector = (sector_t) -1;
773 rq->bio = rq->biotail = NULL;
774 return rq;
775
776 out_queue_exit:
777 blk_queue_exit(q);
778 return ERR_PTR(ret);
779 }
780 EXPORT_SYMBOL_GPL(blk_mq_alloc_request_hctx);
781
blk_mq_finish_request(struct request * rq)782 static void blk_mq_finish_request(struct request *rq)
783 {
784 struct request_queue *q = rq->q;
785
786 blk_zone_finish_request(rq);
787
788 if (rq->rq_flags & RQF_USE_SCHED) {
789 q->elevator->type->ops.finish_request(rq);
790 /*
791 * For postflush request that may need to be
792 * completed twice, we should clear this flag
793 * to avoid double finish_request() on the rq.
794 */
795 rq->rq_flags &= ~RQF_USE_SCHED;
796 }
797 }
798
__blk_mq_free_request(struct request * rq)799 static void __blk_mq_free_request(struct request *rq)
800 {
801 struct request_queue *q = rq->q;
802 struct blk_mq_ctx *ctx = rq->mq_ctx;
803 struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
804 const int sched_tag = rq->internal_tag;
805
806 blk_crypto_free_request(rq);
807 blk_pm_mark_last_busy(rq);
808 rq->mq_hctx = NULL;
809
810 if (rq->tag != BLK_MQ_NO_TAG) {
811 blk_mq_dec_active_requests(hctx);
812 blk_mq_put_tag(hctx->tags, ctx, rq->tag);
813 }
814 if (sched_tag != BLK_MQ_NO_TAG)
815 blk_mq_put_tag(hctx->sched_tags, ctx, sched_tag);
816 blk_mq_sched_restart(hctx);
817 blk_queue_exit(q);
818 }
819
blk_mq_free_request(struct request * rq)820 void blk_mq_free_request(struct request *rq)
821 {
822 struct request_queue *q = rq->q;
823
824 blk_mq_finish_request(rq);
825
826 rq_qos_done(q, rq);
827
828 WRITE_ONCE(rq->state, MQ_RQ_IDLE);
829 if (req_ref_put_and_test(rq))
830 __blk_mq_free_request(rq);
831 }
832 EXPORT_SYMBOL_GPL(blk_mq_free_request);
833
blk_mq_free_plug_rqs(struct blk_plug * plug)834 void blk_mq_free_plug_rqs(struct blk_plug *plug)
835 {
836 struct request *rq;
837
838 while ((rq = rq_list_pop(&plug->cached_rqs)) != NULL)
839 blk_mq_free_request(rq);
840 }
841
blk_dump_rq_flags(struct request * rq,char * msg)842 void blk_dump_rq_flags(struct request *rq, char *msg)
843 {
844 printk(KERN_INFO "%s: dev %s: flags=%llx\n", msg,
845 rq->q->disk ? rq->q->disk->disk_name : "?",
846 (__force unsigned long long) rq->cmd_flags);
847
848 printk(KERN_INFO " sector %llu, nr/cnr %u/%u\n",
849 (unsigned long long)blk_rq_pos(rq),
850 blk_rq_sectors(rq), blk_rq_cur_sectors(rq));
851 printk(KERN_INFO " bio %p, biotail %p, len %u\n",
852 rq->bio, rq->biotail, blk_rq_bytes(rq));
853 }
854 EXPORT_SYMBOL(blk_dump_rq_flags);
855
blk_account_io_completion(struct request * req,unsigned int bytes)856 static void blk_account_io_completion(struct request *req, unsigned int bytes)
857 {
858 if (req->rq_flags & RQF_IO_STAT) {
859 const int sgrp = op_stat_group(req_op(req));
860
861 part_stat_lock();
862 part_stat_add(req->part, sectors[sgrp], bytes >> 9);
863 part_stat_unlock();
864 }
865 }
866
blk_print_req_error(struct request * req,blk_status_t status)867 static void blk_print_req_error(struct request *req, blk_status_t status)
868 {
869 printk_ratelimited(KERN_ERR
870 "%s error, dev %s, sector %llu op 0x%x:(%s) flags 0x%x "
871 "phys_seg %u prio class %u\n",
872 blk_status_to_str(status),
873 req->q->disk ? req->q->disk->disk_name : "?",
874 blk_rq_pos(req), (__force u32)req_op(req),
875 blk_op_str(req_op(req)),
876 (__force u32)(req->cmd_flags & ~REQ_OP_MASK),
877 req->nr_phys_segments,
878 IOPRIO_PRIO_CLASS(req_get_ioprio(req)));
879 }
880
881 /*
882 * Fully end IO on a request. Does not support partial completions, or
883 * errors.
884 */
blk_complete_request(struct request * req)885 static void blk_complete_request(struct request *req)
886 {
887 const bool is_flush = (req->rq_flags & RQF_FLUSH_SEQ) != 0;
888 int total_bytes = blk_rq_bytes(req);
889 struct bio *bio = req->bio;
890
891 trace_block_rq_complete(req, BLK_STS_OK, total_bytes);
892
893 if (!bio)
894 return;
895
896 if (blk_integrity_rq(req) && req_op(req) == REQ_OP_READ)
897 blk_integrity_complete(req, total_bytes);
898
899 /*
900 * Upper layers may call blk_crypto_evict_key() anytime after the last
901 * bio_endio(). Therefore, the keyslot must be released before that.
902 */
903 blk_crypto_rq_put_keyslot(req);
904
905 blk_account_io_completion(req, total_bytes);
906
907 do {
908 struct bio *next = bio->bi_next;
909
910 /* Completion has already been traced */
911 bio_clear_flag(bio, BIO_TRACE_COMPLETION);
912
913 if (blk_req_bio_is_zone_append(req, bio))
914 blk_zone_append_update_request_bio(req, bio);
915
916 if (!is_flush)
917 bio_endio(bio);
918 bio = next;
919 } while (bio);
920
921 /*
922 * Reset counters so that the request stacking driver
923 * can find how many bytes remain in the request
924 * later.
925 */
926 if (!req->end_io) {
927 req->bio = NULL;
928 req->__data_len = 0;
929 }
930 }
931
932 /**
933 * blk_update_request - Complete multiple bytes without completing the request
934 * @req: the request being processed
935 * @error: block status code
936 * @nr_bytes: number of bytes to complete for @req
937 *
938 * Description:
939 * Ends I/O on a number of bytes attached to @req, but doesn't complete
940 * the request structure even if @req doesn't have leftover.
941 * If @req has leftover, sets it up for the next range of segments.
942 *
943 * Passing the result of blk_rq_bytes() as @nr_bytes guarantees
944 * %false return from this function.
945 *
946 * Note:
947 * The RQF_SPECIAL_PAYLOAD flag is ignored on purpose in this function
948 * except in the consistency check at the end of this function.
949 *
950 * Return:
951 * %false - this request doesn't have any more data
952 * %true - this request has more data
953 **/
blk_update_request(struct request * req,blk_status_t error,unsigned int nr_bytes)954 bool blk_update_request(struct request *req, blk_status_t error,
955 unsigned int nr_bytes)
956 {
957 bool is_flush = req->rq_flags & RQF_FLUSH_SEQ;
958 bool quiet = req->rq_flags & RQF_QUIET;
959 int total_bytes;
960
961 trace_block_rq_complete(req, error, nr_bytes);
962
963 if (!req->bio)
964 return false;
965
966 if (blk_integrity_rq(req) && req_op(req) == REQ_OP_READ &&
967 error == BLK_STS_OK)
968 blk_integrity_complete(req, nr_bytes);
969
970 /*
971 * Upper layers may call blk_crypto_evict_key() anytime after the last
972 * bio_endio(). Therefore, the keyslot must be released before that.
973 */
974 if (blk_crypto_rq_has_keyslot(req) && nr_bytes >= blk_rq_bytes(req))
975 __blk_crypto_rq_put_keyslot(req);
976
977 if (unlikely(error && !blk_rq_is_passthrough(req) && !quiet) &&
978 !test_bit(GD_DEAD, &req->q->disk->state)) {
979 blk_print_req_error(req, error);
980 trace_block_rq_error(req, error, nr_bytes);
981 }
982
983 blk_account_io_completion(req, nr_bytes);
984
985 total_bytes = 0;
986 while (req->bio) {
987 struct bio *bio = req->bio;
988 unsigned bio_bytes = min(bio->bi_iter.bi_size, nr_bytes);
989
990 if (unlikely(error))
991 bio->bi_status = error;
992
993 if (bio_bytes == bio->bi_iter.bi_size) {
994 req->bio = bio->bi_next;
995 } else if (bio_is_zone_append(bio) && error == BLK_STS_OK) {
996 /*
997 * Partial zone append completions cannot be supported
998 * as the BIO fragments may end up not being written
999 * sequentially.
1000 */
1001 bio->bi_status = BLK_STS_IOERR;
1002 }
1003
1004 /* Completion has already been traced */
1005 bio_clear_flag(bio, BIO_TRACE_COMPLETION);
1006 if (unlikely(quiet))
1007 bio_set_flag(bio, BIO_QUIET);
1008
1009 bio_advance(bio, bio_bytes);
1010
1011 /* Don't actually finish bio if it's part of flush sequence */
1012 if (!bio->bi_iter.bi_size) {
1013 if (blk_req_bio_is_zone_append(req, bio))
1014 blk_zone_append_update_request_bio(req, bio);
1015 if (!is_flush)
1016 bio_endio(bio);
1017 }
1018
1019 total_bytes += bio_bytes;
1020 nr_bytes -= bio_bytes;
1021
1022 if (!nr_bytes)
1023 break;
1024 }
1025
1026 /*
1027 * completely done
1028 */
1029 if (!req->bio) {
1030 /*
1031 * Reset counters so that the request stacking driver
1032 * can find how many bytes remain in the request
1033 * later.
1034 */
1035 req->__data_len = 0;
1036 return false;
1037 }
1038
1039 req->__data_len -= total_bytes;
1040
1041 /* update sector only for requests with clear definition of sector */
1042 if (!blk_rq_is_passthrough(req))
1043 req->__sector += total_bytes >> 9;
1044
1045 /* mixed attributes always follow the first bio */
1046 if (req->rq_flags & RQF_MIXED_MERGE) {
1047 req->cmd_flags &= ~REQ_FAILFAST_MASK;
1048 req->cmd_flags |= req->bio->bi_opf & REQ_FAILFAST_MASK;
1049 }
1050
1051 if (!(req->rq_flags & RQF_SPECIAL_PAYLOAD)) {
1052 /*
1053 * If total number of sectors is less than the first segment
1054 * size, something has gone terribly wrong.
1055 */
1056 if (blk_rq_bytes(req) < blk_rq_cur_bytes(req)) {
1057 blk_dump_rq_flags(req, "request botched");
1058 req->__data_len = blk_rq_cur_bytes(req);
1059 }
1060
1061 /* recalculate the number of segments */
1062 req->nr_phys_segments = blk_recalc_rq_segments(req);
1063 }
1064
1065 return true;
1066 }
1067 EXPORT_SYMBOL_GPL(blk_update_request);
1068
blk_account_io_done(struct request * req,u64 now)1069 static inline void blk_account_io_done(struct request *req, u64 now)
1070 {
1071 trace_block_io_done(req);
1072
1073 /*
1074 * Account IO completion. flush_rq isn't accounted as a
1075 * normal IO on queueing nor completion. Accounting the
1076 * containing request is enough.
1077 */
1078 if ((req->rq_flags & (RQF_IO_STAT|RQF_FLUSH_SEQ)) == RQF_IO_STAT) {
1079 const int sgrp = op_stat_group(req_op(req));
1080
1081 part_stat_lock();
1082 update_io_ticks(req->part, jiffies, true);
1083 part_stat_inc(req->part, ios[sgrp]);
1084 part_stat_add(req->part, nsecs[sgrp], now - req->start_time_ns);
1085 bdev_dec_in_flight(req->part, req_op(req));
1086 part_stat_unlock();
1087 }
1088 }
1089
blk_account_io_start(struct request * req)1090 static inline void blk_account_io_start(struct request *req)
1091 {
1092 trace_block_io_start(req);
1093
1094 if (!blk_queue_io_stat(req->q))
1095 return;
1096 if (blk_rq_is_passthrough(req) && !blk_rq_passthrough_stats(req, req->q))
1097 return;
1098
1099 req->rq_flags |= RQF_IO_STAT;
1100 req->start_time_ns = blk_time_get_ns();
1101
1102 /*
1103 * All non-passthrough requests are created from a bio with one
1104 * exception: when a flush command that is part of a flush sequence
1105 * generated by the state machine in blk-flush.c is cloned onto the
1106 * lower device by dm-multipath we can get here without a bio.
1107 */
1108 if (req->bio)
1109 req->part = req->bio->bi_bdev;
1110 else
1111 req->part = req->q->disk->part0;
1112
1113 part_stat_lock();
1114 update_io_ticks(req->part, jiffies, false);
1115 bdev_inc_in_flight(req->part, req_op(req));
1116 part_stat_unlock();
1117 }
1118
__blk_mq_end_request_acct(struct request * rq,u64 now)1119 static inline void __blk_mq_end_request_acct(struct request *rq, u64 now)
1120 {
1121 if (rq->rq_flags & RQF_STATS)
1122 blk_stat_add(rq, now);
1123
1124 blk_mq_sched_completed_request(rq, now);
1125 blk_account_io_done(rq, now);
1126 }
1127
__blk_mq_end_request(struct request * rq,blk_status_t error)1128 inline void __blk_mq_end_request(struct request *rq, blk_status_t error)
1129 {
1130 if (blk_mq_need_time_stamp(rq))
1131 __blk_mq_end_request_acct(rq, blk_time_get_ns());
1132
1133 blk_mq_finish_request(rq);
1134
1135 if (rq->end_io) {
1136 rq_qos_done(rq->q, rq);
1137 if (rq->end_io(rq, error, NULL) == RQ_END_IO_FREE)
1138 blk_mq_free_request(rq);
1139 } else {
1140 blk_mq_free_request(rq);
1141 }
1142 }
1143 EXPORT_SYMBOL(__blk_mq_end_request);
1144
blk_mq_end_request(struct request * rq,blk_status_t error)1145 void blk_mq_end_request(struct request *rq, blk_status_t error)
1146 {
1147 if (blk_update_request(rq, error, blk_rq_bytes(rq)))
1148 BUG();
1149 __blk_mq_end_request(rq, error);
1150 }
1151 EXPORT_SYMBOL(blk_mq_end_request);
1152
1153 #define TAG_COMP_BATCH 32
1154
blk_mq_flush_tag_batch(struct blk_mq_hw_ctx * hctx,int * tag_array,int nr_tags)1155 static inline void blk_mq_flush_tag_batch(struct blk_mq_hw_ctx *hctx,
1156 int *tag_array, int nr_tags)
1157 {
1158 struct request_queue *q = hctx->queue;
1159
1160 blk_mq_sub_active_requests(hctx, nr_tags);
1161
1162 blk_mq_put_tags(hctx->tags, tag_array, nr_tags);
1163 percpu_ref_put_many(&q->q_usage_counter, nr_tags);
1164 }
1165
blk_mq_end_request_batch(struct io_comp_batch * iob)1166 void blk_mq_end_request_batch(struct io_comp_batch *iob)
1167 {
1168 int tags[TAG_COMP_BATCH], nr_tags = 0;
1169 struct blk_mq_hw_ctx *cur_hctx = NULL;
1170 struct request *rq;
1171 u64 now = 0;
1172
1173 if (iob->need_ts)
1174 now = blk_time_get_ns();
1175
1176 while ((rq = rq_list_pop(&iob->req_list)) != NULL) {
1177 prefetch(rq->bio);
1178 prefetch(rq->rq_next);
1179
1180 blk_complete_request(rq);
1181 if (iob->need_ts)
1182 __blk_mq_end_request_acct(rq, now);
1183
1184 blk_mq_finish_request(rq);
1185
1186 rq_qos_done(rq->q, rq);
1187
1188 /*
1189 * If end_io handler returns NONE, then it still has
1190 * ownership of the request.
1191 */
1192 if (rq->end_io && rq->end_io(rq, 0, iob) == RQ_END_IO_NONE)
1193 continue;
1194
1195 WRITE_ONCE(rq->state, MQ_RQ_IDLE);
1196 if (!req_ref_put_and_test(rq))
1197 continue;
1198
1199 blk_crypto_free_request(rq);
1200 blk_pm_mark_last_busy(rq);
1201
1202 if (nr_tags == TAG_COMP_BATCH || cur_hctx != rq->mq_hctx) {
1203 if (cur_hctx)
1204 blk_mq_flush_tag_batch(cur_hctx, tags, nr_tags);
1205 nr_tags = 0;
1206 cur_hctx = rq->mq_hctx;
1207 }
1208 tags[nr_tags++] = rq->tag;
1209 }
1210
1211 if (nr_tags)
1212 blk_mq_flush_tag_batch(cur_hctx, tags, nr_tags);
1213 }
1214 EXPORT_SYMBOL_GPL(blk_mq_end_request_batch);
1215
blk_complete_reqs(struct llist_head * list)1216 static void blk_complete_reqs(struct llist_head *list)
1217 {
1218 struct llist_node *entry = llist_reverse_order(llist_del_all(list));
1219 struct request *rq, *next;
1220
1221 llist_for_each_entry_safe(rq, next, entry, ipi_list)
1222 rq->q->mq_ops->complete(rq);
1223 }
1224
blk_done_softirq(void)1225 static __latent_entropy void blk_done_softirq(void)
1226 {
1227 blk_complete_reqs(this_cpu_ptr(&blk_cpu_done));
1228 }
1229
blk_softirq_cpu_dead(unsigned int cpu)1230 static int blk_softirq_cpu_dead(unsigned int cpu)
1231 {
1232 blk_complete_reqs(&per_cpu(blk_cpu_done, cpu));
1233 return 0;
1234 }
1235
__blk_mq_complete_request_remote(void * data)1236 static void __blk_mq_complete_request_remote(void *data)
1237 {
1238 __raise_softirq_irqoff(BLOCK_SOFTIRQ);
1239 }
1240
blk_mq_complete_need_ipi(struct request * rq)1241 static inline bool blk_mq_complete_need_ipi(struct request *rq)
1242 {
1243 int cpu = raw_smp_processor_id();
1244
1245 if (!IS_ENABLED(CONFIG_SMP) ||
1246 !test_bit(QUEUE_FLAG_SAME_COMP, &rq->q->queue_flags))
1247 return false;
1248 /*
1249 * With force threaded interrupts enabled, raising softirq from an SMP
1250 * function call will always result in waking the ksoftirqd thread.
1251 * This is probably worse than completing the request on a different
1252 * cache domain.
1253 */
1254 if (force_irqthreads())
1255 return false;
1256
1257 /* same CPU or cache domain and capacity? Complete locally */
1258 if (cpu == rq->mq_ctx->cpu ||
1259 (!test_bit(QUEUE_FLAG_SAME_FORCE, &rq->q->queue_flags) &&
1260 cpus_share_cache(cpu, rq->mq_ctx->cpu) &&
1261 cpus_equal_capacity(cpu, rq->mq_ctx->cpu)))
1262 return false;
1263
1264 /* don't try to IPI to an offline CPU */
1265 return cpu_online(rq->mq_ctx->cpu);
1266 }
1267
blk_mq_complete_send_ipi(struct request * rq)1268 static void blk_mq_complete_send_ipi(struct request *rq)
1269 {
1270 unsigned int cpu;
1271
1272 cpu = rq->mq_ctx->cpu;
1273 if (llist_add(&rq->ipi_list, &per_cpu(blk_cpu_done, cpu)))
1274 smp_call_function_single_async(cpu, &per_cpu(blk_cpu_csd, cpu));
1275 }
1276
blk_mq_raise_softirq(struct request * rq)1277 static void blk_mq_raise_softirq(struct request *rq)
1278 {
1279 struct llist_head *list;
1280
1281 preempt_disable();
1282 list = this_cpu_ptr(&blk_cpu_done);
1283 if (llist_add(&rq->ipi_list, list))
1284 raise_softirq(BLOCK_SOFTIRQ);
1285 preempt_enable();
1286 }
1287
blk_mq_complete_request_remote(struct request * rq)1288 bool blk_mq_complete_request_remote(struct request *rq)
1289 {
1290 WRITE_ONCE(rq->state, MQ_RQ_COMPLETE);
1291
1292 /*
1293 * For request which hctx has only one ctx mapping,
1294 * or a polled request, always complete locally,
1295 * it's pointless to redirect the completion.
1296 */
1297 if ((rq->mq_hctx->nr_ctx == 1 &&
1298 rq->mq_ctx->cpu == raw_smp_processor_id()) ||
1299 rq->cmd_flags & REQ_POLLED)
1300 return false;
1301
1302 if (blk_mq_complete_need_ipi(rq)) {
1303 blk_mq_complete_send_ipi(rq);
1304 return true;
1305 }
1306
1307 if (rq->q->nr_hw_queues == 1) {
1308 blk_mq_raise_softirq(rq);
1309 return true;
1310 }
1311 return false;
1312 }
1313 EXPORT_SYMBOL_GPL(blk_mq_complete_request_remote);
1314
1315 /**
1316 * blk_mq_complete_request - end I/O on a request
1317 * @rq: the request being processed
1318 *
1319 * Description:
1320 * Complete a request by scheduling the ->complete_rq operation.
1321 **/
blk_mq_complete_request(struct request * rq)1322 void blk_mq_complete_request(struct request *rq)
1323 {
1324 if (!blk_mq_complete_request_remote(rq))
1325 rq->q->mq_ops->complete(rq);
1326 }
1327 EXPORT_SYMBOL(blk_mq_complete_request);
1328
1329 /**
1330 * blk_mq_start_request - Start processing a request
1331 * @rq: Pointer to request to be started
1332 *
1333 * Function used by device drivers to notify the block layer that a request
1334 * is going to be processed now, so blk layer can do proper initializations
1335 * such as starting the timeout timer.
1336 */
blk_mq_start_request(struct request * rq)1337 void blk_mq_start_request(struct request *rq)
1338 {
1339 struct request_queue *q = rq->q;
1340
1341 trace_block_rq_issue(rq);
1342
1343 if (test_bit(QUEUE_FLAG_STATS, &q->queue_flags) &&
1344 !blk_rq_is_passthrough(rq)) {
1345 rq->io_start_time_ns = blk_time_get_ns();
1346 rq->stats_sectors = blk_rq_sectors(rq);
1347 rq->rq_flags |= RQF_STATS;
1348 rq_qos_issue(q, rq);
1349 }
1350
1351 WARN_ON_ONCE(blk_mq_rq_state(rq) != MQ_RQ_IDLE);
1352
1353 blk_add_timer(rq);
1354 WRITE_ONCE(rq->state, MQ_RQ_IN_FLIGHT);
1355 rq->mq_hctx->tags->rqs[rq->tag] = rq;
1356
1357 if (blk_integrity_rq(rq) && req_op(rq) == REQ_OP_WRITE)
1358 blk_integrity_prepare(rq);
1359
1360 if (rq->bio && rq->bio->bi_opf & REQ_POLLED)
1361 WRITE_ONCE(rq->bio->bi_cookie, rq->mq_hctx->queue_num);
1362 }
1363 EXPORT_SYMBOL(blk_mq_start_request);
1364
1365 /*
1366 * Allow 2x BLK_MAX_REQUEST_COUNT requests on plug queue for multiple
1367 * queues. This is important for md arrays to benefit from merging
1368 * requests.
1369 */
blk_plug_max_rq_count(struct blk_plug * plug)1370 static inline unsigned short blk_plug_max_rq_count(struct blk_plug *plug)
1371 {
1372 if (plug->multiple_queues)
1373 return BLK_MAX_REQUEST_COUNT * 2;
1374 return BLK_MAX_REQUEST_COUNT;
1375 }
1376
blk_add_rq_to_plug(struct blk_plug * plug,struct request * rq)1377 static void blk_add_rq_to_plug(struct blk_plug *plug, struct request *rq)
1378 {
1379 struct request *last = rq_list_peek(&plug->mq_list);
1380
1381 if (!plug->rq_count) {
1382 trace_block_plug(rq->q);
1383 } else if (plug->rq_count >= blk_plug_max_rq_count(plug) ||
1384 (!blk_queue_nomerges(rq->q) &&
1385 blk_rq_bytes(last) >= BLK_PLUG_FLUSH_SIZE)) {
1386 blk_mq_flush_plug_list(plug, false);
1387 last = NULL;
1388 trace_block_plug(rq->q);
1389 }
1390
1391 if (!plug->multiple_queues && last && last->q != rq->q)
1392 plug->multiple_queues = true;
1393 /*
1394 * Any request allocated from sched tags can't be issued to
1395 * ->queue_rqs() directly
1396 */
1397 if (!plug->has_elevator && (rq->rq_flags & RQF_SCHED_TAGS))
1398 plug->has_elevator = true;
1399 rq_list_add_tail(&plug->mq_list, rq);
1400 plug->rq_count++;
1401 }
1402
1403 /**
1404 * blk_execute_rq_nowait - insert a request to I/O scheduler for execution
1405 * @rq: request to insert
1406 * @at_head: insert request at head or tail of queue
1407 *
1408 * Description:
1409 * Insert a fully prepared request at the back of the I/O scheduler queue
1410 * for execution. Don't wait for completion.
1411 *
1412 * Note:
1413 * This function will invoke @done directly if the queue is dead.
1414 */
blk_execute_rq_nowait(struct request * rq,bool at_head)1415 void blk_execute_rq_nowait(struct request *rq, bool at_head)
1416 {
1417 struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
1418
1419 WARN_ON(irqs_disabled());
1420 WARN_ON(!blk_rq_is_passthrough(rq));
1421
1422 blk_account_io_start(rq);
1423
1424 if (current->plug && !at_head) {
1425 blk_add_rq_to_plug(current->plug, rq);
1426 return;
1427 }
1428
1429 blk_mq_insert_request(rq, at_head ? BLK_MQ_INSERT_AT_HEAD : 0);
1430 blk_mq_run_hw_queue(hctx, hctx->flags & BLK_MQ_F_BLOCKING);
1431 }
1432 EXPORT_SYMBOL_GPL(blk_execute_rq_nowait);
1433
1434 struct blk_rq_wait {
1435 struct completion done;
1436 blk_status_t ret;
1437 };
1438
blk_end_sync_rq(struct request * rq,blk_status_t ret,const struct io_comp_batch * iob)1439 static enum rq_end_io_ret blk_end_sync_rq(struct request *rq, blk_status_t ret,
1440 const struct io_comp_batch *iob)
1441 {
1442 struct blk_rq_wait *wait = rq->end_io_data;
1443
1444 wait->ret = ret;
1445 complete(&wait->done);
1446 return RQ_END_IO_NONE;
1447 }
1448
blk_rq_is_poll(struct request * rq)1449 bool blk_rq_is_poll(struct request *rq)
1450 {
1451 if (!rq->mq_hctx)
1452 return false;
1453 if (rq->mq_hctx->type != HCTX_TYPE_POLL)
1454 return false;
1455 return true;
1456 }
1457 EXPORT_SYMBOL_GPL(blk_rq_is_poll);
1458
blk_rq_poll_completion(struct request * rq,struct completion * wait)1459 static void blk_rq_poll_completion(struct request *rq, struct completion *wait)
1460 {
1461 do {
1462 blk_hctx_poll(rq->q, rq->mq_hctx, NULL, BLK_POLL_ONESHOT);
1463 cond_resched();
1464 } while (!completion_done(wait));
1465 }
1466
1467 /**
1468 * blk_execute_rq - insert a request into queue for execution
1469 * @rq: request to insert
1470 * @at_head: insert request at head or tail of queue
1471 *
1472 * Description:
1473 * Insert a fully prepared request at the back of the I/O scheduler queue
1474 * for execution and wait for completion.
1475 * Return: The blk_status_t result provided to blk_mq_end_request().
1476 */
blk_execute_rq(struct request * rq,bool at_head)1477 blk_status_t blk_execute_rq(struct request *rq, bool at_head)
1478 {
1479 struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
1480 struct blk_rq_wait wait = {
1481 .done = COMPLETION_INITIALIZER_ONSTACK(wait.done),
1482 };
1483
1484 WARN_ON(irqs_disabled());
1485 WARN_ON(!blk_rq_is_passthrough(rq));
1486
1487 rq->end_io_data = &wait;
1488 rq->end_io = blk_end_sync_rq;
1489
1490 blk_account_io_start(rq);
1491 blk_mq_insert_request(rq, at_head ? BLK_MQ_INSERT_AT_HEAD : 0);
1492 blk_mq_run_hw_queue(hctx, false);
1493
1494 if (blk_rq_is_poll(rq))
1495 blk_rq_poll_completion(rq, &wait.done);
1496 else
1497 blk_wait_io(&wait.done);
1498
1499 return wait.ret;
1500 }
1501 EXPORT_SYMBOL(blk_execute_rq);
1502
__blk_mq_requeue_request(struct request * rq)1503 static void __blk_mq_requeue_request(struct request *rq)
1504 {
1505 struct request_queue *q = rq->q;
1506
1507 blk_mq_put_driver_tag(rq);
1508
1509 trace_block_rq_requeue(rq);
1510 rq_qos_requeue(q, rq);
1511
1512 if (blk_mq_request_started(rq)) {
1513 WRITE_ONCE(rq->state, MQ_RQ_IDLE);
1514 rq->rq_flags &= ~RQF_TIMED_OUT;
1515 }
1516 }
1517
blk_mq_requeue_request(struct request * rq,bool kick_requeue_list)1518 void blk_mq_requeue_request(struct request *rq, bool kick_requeue_list)
1519 {
1520 struct request_queue *q = rq->q;
1521 unsigned long flags;
1522
1523 __blk_mq_requeue_request(rq);
1524
1525 /* this request will be re-inserted to io scheduler queue */
1526 blk_mq_sched_requeue_request(rq);
1527
1528 spin_lock_irqsave(&q->requeue_lock, flags);
1529 list_add_tail(&rq->queuelist, &q->requeue_list);
1530 spin_unlock_irqrestore(&q->requeue_lock, flags);
1531
1532 if (kick_requeue_list)
1533 blk_mq_kick_requeue_list(q);
1534 }
1535 EXPORT_SYMBOL(blk_mq_requeue_request);
1536
blk_mq_requeue_work(struct work_struct * work)1537 static void blk_mq_requeue_work(struct work_struct *work)
1538 {
1539 struct request_queue *q =
1540 container_of(work, struct request_queue, requeue_work.work);
1541 LIST_HEAD(rq_list);
1542 LIST_HEAD(flush_list);
1543 struct request *rq;
1544
1545 spin_lock_irq(&q->requeue_lock);
1546 list_splice_init(&q->requeue_list, &rq_list);
1547 list_splice_init(&q->flush_list, &flush_list);
1548 spin_unlock_irq(&q->requeue_lock);
1549
1550 while (!list_empty(&rq_list)) {
1551 rq = list_entry(rq_list.next, struct request, queuelist);
1552 list_del_init(&rq->queuelist);
1553 /*
1554 * If RQF_DONTPREP is set, the request has been started by the
1555 * driver already and might have driver-specific data allocated
1556 * already. Insert it into the hctx dispatch list to avoid
1557 * block layer merges for the request.
1558 */
1559 if (rq->rq_flags & RQF_DONTPREP)
1560 blk_mq_request_bypass_insert(rq, 0);
1561 else
1562 blk_mq_insert_request(rq, BLK_MQ_INSERT_AT_HEAD);
1563 }
1564
1565 while (!list_empty(&flush_list)) {
1566 rq = list_entry(flush_list.next, struct request, queuelist);
1567 list_del_init(&rq->queuelist);
1568 blk_mq_insert_request(rq, 0);
1569 }
1570
1571 blk_mq_run_hw_queues(q, false);
1572 }
1573
blk_mq_kick_requeue_list(struct request_queue * q)1574 void blk_mq_kick_requeue_list(struct request_queue *q)
1575 {
1576 kblockd_mod_delayed_work_on(WORK_CPU_UNBOUND, &q->requeue_work, 0);
1577 }
1578 EXPORT_SYMBOL(blk_mq_kick_requeue_list);
1579
blk_mq_delay_kick_requeue_list(struct request_queue * q,unsigned long msecs)1580 void blk_mq_delay_kick_requeue_list(struct request_queue *q,
1581 unsigned long msecs)
1582 {
1583 kblockd_mod_delayed_work_on(WORK_CPU_UNBOUND, &q->requeue_work,
1584 msecs_to_jiffies(msecs));
1585 }
1586 EXPORT_SYMBOL(blk_mq_delay_kick_requeue_list);
1587
blk_is_flush_data_rq(struct request * rq)1588 static bool blk_is_flush_data_rq(struct request *rq)
1589 {
1590 return (rq->rq_flags & RQF_FLUSH_SEQ) && !is_flush_rq(rq);
1591 }
1592
blk_mq_rq_inflight(struct request * rq,void * priv)1593 static bool blk_mq_rq_inflight(struct request *rq, void *priv)
1594 {
1595 /*
1596 * If we find a request that isn't idle we know the queue is busy
1597 * as it's checked in the iter.
1598 * Return false to stop the iteration.
1599 *
1600 * In case of queue quiesce, if one flush data request is completed,
1601 * don't count it as inflight given the flush sequence is suspended,
1602 * and the original flush data request is invisible to driver, just
1603 * like other pending requests because of quiesce
1604 */
1605 if (blk_mq_request_started(rq) && !(blk_queue_quiesced(rq->q) &&
1606 blk_is_flush_data_rq(rq) &&
1607 blk_mq_request_completed(rq))) {
1608 bool *busy = priv;
1609
1610 *busy = true;
1611 return false;
1612 }
1613
1614 return true;
1615 }
1616
blk_mq_queue_inflight(struct request_queue * q)1617 bool blk_mq_queue_inflight(struct request_queue *q)
1618 {
1619 bool busy = false;
1620
1621 blk_mq_queue_tag_busy_iter(q, blk_mq_rq_inflight, &busy);
1622 return busy;
1623 }
1624 EXPORT_SYMBOL_GPL(blk_mq_queue_inflight);
1625
blk_mq_rq_timed_out(struct request * req)1626 static void blk_mq_rq_timed_out(struct request *req)
1627 {
1628 req->rq_flags |= RQF_TIMED_OUT;
1629 if (req->q->mq_ops->timeout) {
1630 enum blk_eh_timer_return ret;
1631
1632 ret = req->q->mq_ops->timeout(req);
1633 if (ret == BLK_EH_DONE)
1634 return;
1635 WARN_ON_ONCE(ret != BLK_EH_RESET_TIMER);
1636 }
1637
1638 blk_add_timer(req);
1639 }
1640
1641 struct blk_expired_data {
1642 bool has_timedout_rq;
1643 unsigned long next;
1644 unsigned long timeout_start;
1645 };
1646
blk_mq_req_expired(struct request * rq,struct blk_expired_data * expired)1647 static bool blk_mq_req_expired(struct request *rq, struct blk_expired_data *expired)
1648 {
1649 unsigned long deadline;
1650
1651 if (blk_mq_rq_state(rq) != MQ_RQ_IN_FLIGHT)
1652 return false;
1653 if (rq->rq_flags & RQF_TIMED_OUT)
1654 return false;
1655
1656 deadline = READ_ONCE(rq->deadline);
1657 if (time_after_eq(expired->timeout_start, deadline))
1658 return true;
1659
1660 if (expired->next == 0)
1661 expired->next = deadline;
1662 else if (time_after(expired->next, deadline))
1663 expired->next = deadline;
1664 return false;
1665 }
1666
blk_mq_put_rq_ref(struct request * rq)1667 void blk_mq_put_rq_ref(struct request *rq)
1668 {
1669 if (is_flush_rq(rq)) {
1670 if (rq->end_io(rq, 0, NULL) == RQ_END_IO_FREE)
1671 blk_mq_free_request(rq);
1672 } else if (req_ref_put_and_test(rq)) {
1673 __blk_mq_free_request(rq);
1674 }
1675 }
1676
blk_mq_check_expired(struct request * rq,void * priv)1677 static bool blk_mq_check_expired(struct request *rq, void *priv)
1678 {
1679 struct blk_expired_data *expired = priv;
1680
1681 /*
1682 * blk_mq_queue_tag_busy_iter() has locked the request, so it cannot
1683 * be reallocated underneath the timeout handler's processing, then
1684 * the expire check is reliable. If the request is not expired, then
1685 * it was completed and reallocated as a new request after returning
1686 * from blk_mq_check_expired().
1687 */
1688 if (blk_mq_req_expired(rq, expired)) {
1689 expired->has_timedout_rq = true;
1690 return false;
1691 }
1692 return true;
1693 }
1694
blk_mq_handle_expired(struct request * rq,void * priv)1695 static bool blk_mq_handle_expired(struct request *rq, void *priv)
1696 {
1697 struct blk_expired_data *expired = priv;
1698
1699 if (blk_mq_req_expired(rq, expired))
1700 blk_mq_rq_timed_out(rq);
1701 return true;
1702 }
1703
blk_mq_timeout_work(struct work_struct * work)1704 static void blk_mq_timeout_work(struct work_struct *work)
1705 {
1706 struct request_queue *q =
1707 container_of(work, struct request_queue, timeout_work);
1708 struct blk_expired_data expired = {
1709 .timeout_start = jiffies,
1710 };
1711 struct blk_mq_hw_ctx *hctx;
1712 unsigned long i;
1713
1714 /* A deadlock might occur if a request is stuck requiring a
1715 * timeout at the same time a queue freeze is waiting
1716 * completion, since the timeout code would not be able to
1717 * acquire the queue reference here.
1718 *
1719 * That's why we don't use blk_queue_enter here; instead, we use
1720 * percpu_ref_tryget directly, because we need to be able to
1721 * obtain a reference even in the short window between the queue
1722 * starting to freeze, by dropping the first reference in
1723 * blk_freeze_queue_start, and the moment the last request is
1724 * consumed, marked by the instant q_usage_counter reaches
1725 * zero.
1726 */
1727 if (!percpu_ref_tryget(&q->q_usage_counter))
1728 return;
1729
1730 /* check if there is any timed-out request */
1731 blk_mq_queue_tag_busy_iter(q, blk_mq_check_expired, &expired);
1732 if (expired.has_timedout_rq) {
1733 /*
1734 * Before walking tags, we must ensure any submit started
1735 * before the current time has finished. Since the submit
1736 * uses srcu or rcu, wait for a synchronization point to
1737 * ensure all running submits have finished
1738 */
1739 blk_mq_wait_quiesce_done(q->tag_set);
1740
1741 expired.next = 0;
1742 blk_mq_queue_tag_busy_iter(q, blk_mq_handle_expired, &expired);
1743 }
1744
1745 if (expired.next != 0) {
1746 mod_timer(&q->timeout, expired.next);
1747 } else {
1748 /*
1749 * Request timeouts are handled as a forward rolling timer. If
1750 * we end up here it means that no requests are pending and
1751 * also that no request has been pending for a while. Mark
1752 * each hctx as idle.
1753 */
1754 queue_for_each_hw_ctx(q, hctx, i) {
1755 /* the hctx may be unmapped, so check it here */
1756 if (blk_mq_hw_queue_mapped(hctx))
1757 blk_mq_tag_idle(hctx);
1758 }
1759 }
1760 blk_queue_exit(q);
1761 }
1762
1763 struct flush_busy_ctx_data {
1764 struct blk_mq_hw_ctx *hctx;
1765 struct list_head *list;
1766 };
1767
flush_busy_ctx(struct sbitmap * sb,unsigned int bitnr,void * data)1768 static bool flush_busy_ctx(struct sbitmap *sb, unsigned int bitnr, void *data)
1769 {
1770 struct flush_busy_ctx_data *flush_data = data;
1771 struct blk_mq_hw_ctx *hctx = flush_data->hctx;
1772 struct blk_mq_ctx *ctx = hctx->ctxs[bitnr];
1773 enum hctx_type type = hctx->type;
1774
1775 spin_lock(&ctx->lock);
1776 list_splice_tail_init(&ctx->rq_lists[type], flush_data->list);
1777 sbitmap_clear_bit(sb, bitnr);
1778 spin_unlock(&ctx->lock);
1779 return true;
1780 }
1781
1782 /*
1783 * Process software queues that have been marked busy, splicing them
1784 * to the for-dispatch
1785 */
blk_mq_flush_busy_ctxs(struct blk_mq_hw_ctx * hctx,struct list_head * list)1786 void blk_mq_flush_busy_ctxs(struct blk_mq_hw_ctx *hctx, struct list_head *list)
1787 {
1788 struct flush_busy_ctx_data data = {
1789 .hctx = hctx,
1790 .list = list,
1791 };
1792
1793 sbitmap_for_each_set(&hctx->ctx_map, flush_busy_ctx, &data);
1794 }
1795
1796 struct dispatch_rq_data {
1797 struct blk_mq_hw_ctx *hctx;
1798 struct request *rq;
1799 };
1800
dispatch_rq_from_ctx(struct sbitmap * sb,unsigned int bitnr,void * data)1801 static bool dispatch_rq_from_ctx(struct sbitmap *sb, unsigned int bitnr,
1802 void *data)
1803 {
1804 struct dispatch_rq_data *dispatch_data = data;
1805 struct blk_mq_hw_ctx *hctx = dispatch_data->hctx;
1806 struct blk_mq_ctx *ctx = hctx->ctxs[bitnr];
1807 enum hctx_type type = hctx->type;
1808
1809 spin_lock(&ctx->lock);
1810 if (!list_empty(&ctx->rq_lists[type])) {
1811 dispatch_data->rq = list_entry_rq(ctx->rq_lists[type].next);
1812 list_del_init(&dispatch_data->rq->queuelist);
1813 if (list_empty(&ctx->rq_lists[type]))
1814 sbitmap_clear_bit(sb, bitnr);
1815 }
1816 spin_unlock(&ctx->lock);
1817
1818 return !dispatch_data->rq;
1819 }
1820
blk_mq_dequeue_from_ctx(struct blk_mq_hw_ctx * hctx,struct blk_mq_ctx * start)1821 struct request *blk_mq_dequeue_from_ctx(struct blk_mq_hw_ctx *hctx,
1822 struct blk_mq_ctx *start)
1823 {
1824 unsigned off = start ? start->index_hw[hctx->type] : 0;
1825 struct dispatch_rq_data data = {
1826 .hctx = hctx,
1827 .rq = NULL,
1828 };
1829
1830 __sbitmap_for_each_set(&hctx->ctx_map, off,
1831 dispatch_rq_from_ctx, &data);
1832
1833 return data.rq;
1834 }
1835
__blk_mq_alloc_driver_tag(struct request * rq)1836 bool __blk_mq_alloc_driver_tag(struct request *rq)
1837 {
1838 struct sbitmap_queue *bt = &rq->mq_hctx->tags->bitmap_tags;
1839 unsigned int tag_offset = rq->mq_hctx->tags->nr_reserved_tags;
1840 int tag;
1841
1842 blk_mq_tag_busy(rq->mq_hctx);
1843
1844 if (blk_mq_tag_is_reserved(rq->mq_hctx->sched_tags, rq->internal_tag)) {
1845 bt = &rq->mq_hctx->tags->breserved_tags;
1846 tag_offset = 0;
1847 } else {
1848 if (!hctx_may_queue(rq->mq_hctx, bt))
1849 return false;
1850 }
1851
1852 tag = __sbitmap_queue_get(bt);
1853 if (tag == BLK_MQ_NO_TAG)
1854 return false;
1855
1856 rq->tag = tag + tag_offset;
1857 blk_mq_inc_active_requests(rq->mq_hctx);
1858 return true;
1859 }
1860
blk_mq_dispatch_wake(wait_queue_entry_t * wait,unsigned mode,int flags,void * key)1861 static int blk_mq_dispatch_wake(wait_queue_entry_t *wait, unsigned mode,
1862 int flags, void *key)
1863 {
1864 struct blk_mq_hw_ctx *hctx;
1865
1866 hctx = container_of(wait, struct blk_mq_hw_ctx, dispatch_wait);
1867
1868 spin_lock(&hctx->dispatch_wait_lock);
1869 if (!list_empty(&wait->entry)) {
1870 struct sbitmap_queue *sbq;
1871
1872 list_del_init(&wait->entry);
1873 sbq = &hctx->tags->bitmap_tags;
1874 atomic_dec(&sbq->ws_active);
1875 }
1876 spin_unlock(&hctx->dispatch_wait_lock);
1877
1878 blk_mq_run_hw_queue(hctx, true);
1879 return 1;
1880 }
1881
1882 /*
1883 * Mark us waiting for a tag. For shared tags, this involves hooking us into
1884 * the tag wakeups. For non-shared tags, we can simply mark us needing a
1885 * restart. For both cases, take care to check the condition again after
1886 * marking us as waiting.
1887 */
blk_mq_mark_tag_wait(struct blk_mq_hw_ctx * hctx,struct request * rq)1888 static bool blk_mq_mark_tag_wait(struct blk_mq_hw_ctx *hctx,
1889 struct request *rq)
1890 {
1891 struct sbitmap_queue *sbq;
1892 struct wait_queue_head *wq;
1893 wait_queue_entry_t *wait;
1894 bool ret;
1895
1896 if (!(hctx->flags & BLK_MQ_F_TAG_QUEUE_SHARED) &&
1897 !(blk_mq_is_shared_tags(hctx->flags))) {
1898 blk_mq_sched_mark_restart_hctx(hctx);
1899
1900 /*
1901 * It's possible that a tag was freed in the window between the
1902 * allocation failure and adding the hardware queue to the wait
1903 * queue.
1904 *
1905 * Don't clear RESTART here, someone else could have set it.
1906 * At most this will cost an extra queue run.
1907 */
1908 return blk_mq_get_driver_tag(rq);
1909 }
1910
1911 wait = &hctx->dispatch_wait;
1912 if (!list_empty_careful(&wait->entry))
1913 return false;
1914
1915 if (blk_mq_tag_is_reserved(rq->mq_hctx->sched_tags, rq->internal_tag))
1916 sbq = &hctx->tags->breserved_tags;
1917 else
1918 sbq = &hctx->tags->bitmap_tags;
1919 wq = &bt_wait_ptr(sbq, hctx)->wait;
1920
1921 spin_lock_irq(&wq->lock);
1922 spin_lock(&hctx->dispatch_wait_lock);
1923 if (!list_empty(&wait->entry)) {
1924 spin_unlock(&hctx->dispatch_wait_lock);
1925 spin_unlock_irq(&wq->lock);
1926 return false;
1927 }
1928
1929 atomic_inc(&sbq->ws_active);
1930 wait->flags &= ~WQ_FLAG_EXCLUSIVE;
1931 __add_wait_queue(wq, wait);
1932
1933 /*
1934 * Add one explicit barrier since blk_mq_get_driver_tag() may
1935 * not imply barrier in case of failure.
1936 *
1937 * Order adding us to wait queue and allocating driver tag.
1938 *
1939 * The pair is the one implied in sbitmap_queue_wake_up() which
1940 * orders clearing sbitmap tag bits and waitqueue_active() in
1941 * __sbitmap_queue_wake_up(), since waitqueue_active() is lockless
1942 *
1943 * Otherwise, re-order of adding wait queue and getting driver tag
1944 * may cause __sbitmap_queue_wake_up() to wake up nothing because
1945 * the waitqueue_active() may not observe us in wait queue.
1946 */
1947 smp_mb();
1948
1949 /*
1950 * It's possible that a tag was freed in the window between the
1951 * allocation failure and adding the hardware queue to the wait
1952 * queue.
1953 */
1954 ret = blk_mq_get_driver_tag(rq);
1955 if (!ret) {
1956 spin_unlock(&hctx->dispatch_wait_lock);
1957 spin_unlock_irq(&wq->lock);
1958 return false;
1959 }
1960
1961 /*
1962 * We got a tag, remove ourselves from the wait queue to ensure
1963 * someone else gets the wakeup.
1964 */
1965 list_del_init(&wait->entry);
1966 atomic_dec(&sbq->ws_active);
1967 spin_unlock(&hctx->dispatch_wait_lock);
1968 spin_unlock_irq(&wq->lock);
1969
1970 return true;
1971 }
1972
1973 #define BLK_MQ_DISPATCH_BUSY_EWMA_WEIGHT 8
1974 #define BLK_MQ_DISPATCH_BUSY_EWMA_FACTOR 4
1975 /*
1976 * Update dispatch busy with the Exponential Weighted Moving Average(EWMA):
1977 * - EWMA is one simple way to compute running average value
1978 * - weight(7/8 and 1/8) is applied so that it can decrease exponentially
1979 * - take 4 as factor for avoiding to get too small(0) result, and this
1980 * factor doesn't matter because EWMA decreases exponentially
1981 */
blk_mq_update_dispatch_busy(struct blk_mq_hw_ctx * hctx,bool busy)1982 static void blk_mq_update_dispatch_busy(struct blk_mq_hw_ctx *hctx, bool busy)
1983 {
1984 unsigned int ewma;
1985
1986 ewma = hctx->dispatch_busy;
1987
1988 if (!ewma && !busy)
1989 return;
1990
1991 ewma *= BLK_MQ_DISPATCH_BUSY_EWMA_WEIGHT - 1;
1992 if (busy)
1993 ewma += 1 << BLK_MQ_DISPATCH_BUSY_EWMA_FACTOR;
1994 ewma /= BLK_MQ_DISPATCH_BUSY_EWMA_WEIGHT;
1995
1996 hctx->dispatch_busy = ewma;
1997 }
1998
1999 #define BLK_MQ_RESOURCE_DELAY 3 /* ms units */
2000
blk_mq_handle_dev_resource(struct request * rq,struct list_head * list)2001 static void blk_mq_handle_dev_resource(struct request *rq,
2002 struct list_head *list)
2003 {
2004 list_add(&rq->queuelist, list);
2005 __blk_mq_requeue_request(rq);
2006 }
2007
2008 enum prep_dispatch {
2009 PREP_DISPATCH_OK,
2010 PREP_DISPATCH_NO_TAG,
2011 PREP_DISPATCH_NO_BUDGET,
2012 };
2013
blk_mq_prep_dispatch_rq(struct request * rq,bool need_budget)2014 static enum prep_dispatch blk_mq_prep_dispatch_rq(struct request *rq,
2015 bool need_budget)
2016 {
2017 struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
2018 int budget_token = -1;
2019
2020 if (need_budget) {
2021 budget_token = blk_mq_get_dispatch_budget(rq->q);
2022 if (budget_token < 0) {
2023 blk_mq_put_driver_tag(rq);
2024 return PREP_DISPATCH_NO_BUDGET;
2025 }
2026 blk_mq_set_rq_budget_token(rq, budget_token);
2027 }
2028
2029 if (!blk_mq_get_driver_tag(rq)) {
2030 /*
2031 * The initial allocation attempt failed, so we need to
2032 * rerun the hardware queue when a tag is freed. The
2033 * waitqueue takes care of that. If the queue is run
2034 * before we add this entry back on the dispatch list,
2035 * we'll re-run it below.
2036 */
2037 if (!blk_mq_mark_tag_wait(hctx, rq)) {
2038 /*
2039 * All budgets not got from this function will be put
2040 * together during handling partial dispatch
2041 */
2042 if (need_budget)
2043 blk_mq_put_dispatch_budget(rq->q, budget_token);
2044 return PREP_DISPATCH_NO_TAG;
2045 }
2046 }
2047
2048 return PREP_DISPATCH_OK;
2049 }
2050
2051 /* release all allocated budgets before calling to blk_mq_dispatch_rq_list */
blk_mq_release_budgets(struct request_queue * q,struct list_head * list)2052 static void blk_mq_release_budgets(struct request_queue *q,
2053 struct list_head *list)
2054 {
2055 struct request *rq;
2056
2057 list_for_each_entry(rq, list, queuelist) {
2058 int budget_token = blk_mq_get_rq_budget_token(rq);
2059
2060 if (budget_token >= 0)
2061 blk_mq_put_dispatch_budget(q, budget_token);
2062 }
2063 }
2064
2065 /*
2066 * blk_mq_commit_rqs will notify driver using bd->last that there is no
2067 * more requests. (See comment in struct blk_mq_ops for commit_rqs for
2068 * details)
2069 * Attention, we should explicitly call this in unusual cases:
2070 * 1) did not queue everything initially scheduled to queue
2071 * 2) the last attempt to queue a request failed
2072 */
blk_mq_commit_rqs(struct blk_mq_hw_ctx * hctx,int queued,bool from_schedule)2073 static void blk_mq_commit_rqs(struct blk_mq_hw_ctx *hctx, int queued,
2074 bool from_schedule)
2075 {
2076 if (hctx->queue->mq_ops->commit_rqs && queued) {
2077 trace_block_unplug(hctx->queue, queued, !from_schedule);
2078 hctx->queue->mq_ops->commit_rqs(hctx);
2079 }
2080 }
2081
2082 /*
2083 * Returns true if we did some work AND can potentially do more.
2084 */
blk_mq_dispatch_rq_list(struct blk_mq_hw_ctx * hctx,struct list_head * list,bool get_budget)2085 bool blk_mq_dispatch_rq_list(struct blk_mq_hw_ctx *hctx, struct list_head *list,
2086 bool get_budget)
2087 {
2088 enum prep_dispatch prep;
2089 struct request_queue *q = hctx->queue;
2090 struct request *rq;
2091 int queued;
2092 blk_status_t ret = BLK_STS_OK;
2093 bool needs_resource = false;
2094
2095 if (list_empty(list))
2096 return false;
2097
2098 /*
2099 * Now process all the entries, sending them to the driver.
2100 */
2101 queued = 0;
2102 do {
2103 struct blk_mq_queue_data bd;
2104
2105 rq = list_first_entry(list, struct request, queuelist);
2106
2107 WARN_ON_ONCE(hctx != rq->mq_hctx);
2108 prep = blk_mq_prep_dispatch_rq(rq, get_budget);
2109 if (prep != PREP_DISPATCH_OK)
2110 break;
2111
2112 list_del_init(&rq->queuelist);
2113
2114 bd.rq = rq;
2115 bd.last = list_empty(list);
2116
2117 ret = q->mq_ops->queue_rq(hctx, &bd);
2118 switch (ret) {
2119 case BLK_STS_OK:
2120 queued++;
2121 break;
2122 case BLK_STS_RESOURCE:
2123 needs_resource = true;
2124 fallthrough;
2125 case BLK_STS_DEV_RESOURCE:
2126 blk_mq_handle_dev_resource(rq, list);
2127 goto out;
2128 default:
2129 blk_mq_end_request(rq, ret);
2130 }
2131 } while (!list_empty(list));
2132 out:
2133 /* If we didn't flush the entire list, we could have told the driver
2134 * there was more coming, but that turned out to be a lie.
2135 */
2136 if (!list_empty(list) || ret != BLK_STS_OK)
2137 blk_mq_commit_rqs(hctx, queued, false);
2138
2139 /*
2140 * Any items that need requeuing? Stuff them into hctx->dispatch,
2141 * that is where we will continue on next queue run.
2142 */
2143 if (!list_empty(list)) {
2144 bool needs_restart;
2145 /* For non-shared tags, the RESTART check will suffice */
2146 bool no_tag = prep == PREP_DISPATCH_NO_TAG &&
2147 ((hctx->flags & BLK_MQ_F_TAG_QUEUE_SHARED) ||
2148 blk_mq_is_shared_tags(hctx->flags));
2149
2150 /*
2151 * If the caller allocated budgets, free the budgets of the
2152 * requests that have not yet been passed to the block driver.
2153 */
2154 if (!get_budget)
2155 blk_mq_release_budgets(q, list);
2156
2157 spin_lock(&hctx->lock);
2158 list_splice_tail_init(list, &hctx->dispatch);
2159 spin_unlock(&hctx->lock);
2160
2161 /*
2162 * Order adding requests to hctx->dispatch and checking
2163 * SCHED_RESTART flag. The pair of this smp_mb() is the one
2164 * in blk_mq_sched_restart(). Avoid restart code path to
2165 * miss the new added requests to hctx->dispatch, meantime
2166 * SCHED_RESTART is observed here.
2167 */
2168 smp_mb();
2169
2170 /*
2171 * If SCHED_RESTART was set by the caller of this function and
2172 * it is no longer set that means that it was cleared by another
2173 * thread and hence that a queue rerun is needed.
2174 *
2175 * If 'no_tag' is set, that means that we failed getting
2176 * a driver tag with an I/O scheduler attached. If our dispatch
2177 * waitqueue is no longer active, ensure that we run the queue
2178 * AFTER adding our entries back to the list.
2179 *
2180 * If no I/O scheduler has been configured it is possible that
2181 * the hardware queue got stopped and restarted before requests
2182 * were pushed back onto the dispatch list. Rerun the queue to
2183 * avoid starvation. Notes:
2184 * - blk_mq_run_hw_queue() checks whether or not a queue has
2185 * been stopped before rerunning a queue.
2186 * - Some but not all block drivers stop a queue before
2187 * returning BLK_STS_RESOURCE. Two exceptions are scsi-mq
2188 * and dm-rq.
2189 *
2190 * If driver returns BLK_STS_RESOURCE and SCHED_RESTART
2191 * bit is set, run queue after a delay to avoid IO stalls
2192 * that could otherwise occur if the queue is idle. We'll do
2193 * similar if we couldn't get budget or couldn't lock a zone
2194 * and SCHED_RESTART is set.
2195 */
2196 needs_restart = blk_mq_sched_needs_restart(hctx);
2197 if (prep == PREP_DISPATCH_NO_BUDGET)
2198 needs_resource = true;
2199 if (!needs_restart ||
2200 (no_tag && list_empty_careful(&hctx->dispatch_wait.entry)))
2201 blk_mq_run_hw_queue(hctx, true);
2202 else if (needs_resource)
2203 blk_mq_delay_run_hw_queue(hctx, BLK_MQ_RESOURCE_DELAY);
2204
2205 blk_mq_update_dispatch_busy(hctx, true);
2206 return false;
2207 }
2208
2209 blk_mq_update_dispatch_busy(hctx, false);
2210 return true;
2211 }
2212
blk_mq_first_mapped_cpu(struct blk_mq_hw_ctx * hctx)2213 static inline int blk_mq_first_mapped_cpu(struct blk_mq_hw_ctx *hctx)
2214 {
2215 int cpu = cpumask_first_and(hctx->cpumask, cpu_online_mask);
2216
2217 if (cpu >= nr_cpu_ids)
2218 cpu = cpumask_first(hctx->cpumask);
2219 return cpu;
2220 }
2221
2222 /*
2223 * ->next_cpu is always calculated from hctx->cpumask, so simply use
2224 * it for speeding up the check
2225 */
blk_mq_hctx_empty_cpumask(struct blk_mq_hw_ctx * hctx)2226 static bool blk_mq_hctx_empty_cpumask(struct blk_mq_hw_ctx *hctx)
2227 {
2228 return hctx->next_cpu >= nr_cpu_ids;
2229 }
2230
2231 /*
2232 * It'd be great if the workqueue API had a way to pass
2233 * in a mask and had some smarts for more clever placement.
2234 * For now we just round-robin here, switching for every
2235 * BLK_MQ_CPU_WORK_BATCH queued items.
2236 */
blk_mq_hctx_next_cpu(struct blk_mq_hw_ctx * hctx)2237 static int blk_mq_hctx_next_cpu(struct blk_mq_hw_ctx *hctx)
2238 {
2239 bool tried = false;
2240 int next_cpu = hctx->next_cpu;
2241
2242 /* Switch to unbound if no allowable CPUs in this hctx */
2243 if (hctx->queue->nr_hw_queues == 1 || blk_mq_hctx_empty_cpumask(hctx))
2244 return WORK_CPU_UNBOUND;
2245
2246 if (--hctx->next_cpu_batch <= 0) {
2247 select_cpu:
2248 next_cpu = cpumask_next_and(next_cpu, hctx->cpumask,
2249 cpu_online_mask);
2250 if (next_cpu >= nr_cpu_ids)
2251 next_cpu = blk_mq_first_mapped_cpu(hctx);
2252 hctx->next_cpu_batch = BLK_MQ_CPU_WORK_BATCH;
2253 }
2254
2255 /*
2256 * Do unbound schedule if we can't find a online CPU for this hctx,
2257 * and it should only happen in the path of handling CPU DEAD.
2258 */
2259 if (!cpu_online(next_cpu)) {
2260 if (!tried) {
2261 tried = true;
2262 goto select_cpu;
2263 }
2264
2265 /*
2266 * Make sure to re-select CPU next time once after CPUs
2267 * in hctx->cpumask become online again.
2268 */
2269 hctx->next_cpu = next_cpu;
2270 hctx->next_cpu_batch = 1;
2271 return WORK_CPU_UNBOUND;
2272 }
2273
2274 hctx->next_cpu = next_cpu;
2275 return next_cpu;
2276 }
2277
2278 /**
2279 * blk_mq_delay_run_hw_queue - Run a hardware queue asynchronously.
2280 * @hctx: Pointer to the hardware queue to run.
2281 * @msecs: Milliseconds of delay to wait before running the queue.
2282 *
2283 * Run a hardware queue asynchronously with a delay of @msecs.
2284 */
blk_mq_delay_run_hw_queue(struct blk_mq_hw_ctx * hctx,unsigned long msecs)2285 void blk_mq_delay_run_hw_queue(struct blk_mq_hw_ctx *hctx, unsigned long msecs)
2286 {
2287 if (unlikely(blk_mq_hctx_stopped(hctx)))
2288 return;
2289 kblockd_mod_delayed_work_on(blk_mq_hctx_next_cpu(hctx), &hctx->run_work,
2290 msecs_to_jiffies(msecs));
2291 }
2292 EXPORT_SYMBOL(blk_mq_delay_run_hw_queue);
2293
blk_mq_hw_queue_need_run(struct blk_mq_hw_ctx * hctx)2294 static inline bool blk_mq_hw_queue_need_run(struct blk_mq_hw_ctx *hctx)
2295 {
2296 bool need_run;
2297
2298 /*
2299 * When queue is quiesced, we may be switching io scheduler, or
2300 * updating nr_hw_queues, or other things, and we can't run queue
2301 * any more, even blk_mq_hctx_has_pending() can't be called safely.
2302 *
2303 * And queue will be rerun in blk_mq_unquiesce_queue() if it is
2304 * quiesced.
2305 */
2306 __blk_mq_run_dispatch_ops(hctx->queue, false,
2307 need_run = !blk_queue_quiesced(hctx->queue) &&
2308 blk_mq_hctx_has_pending(hctx));
2309 return need_run;
2310 }
2311
2312 /**
2313 * blk_mq_run_hw_queue - Start to run a hardware queue.
2314 * @hctx: Pointer to the hardware queue to run.
2315 * @async: If we want to run the queue asynchronously.
2316 *
2317 * Check if the request queue is not in a quiesced state and if there are
2318 * pending requests to be sent. If this is true, run the queue to send requests
2319 * to hardware.
2320 */
blk_mq_run_hw_queue(struct blk_mq_hw_ctx * hctx,bool async)2321 void blk_mq_run_hw_queue(struct blk_mq_hw_ctx *hctx, bool async)
2322 {
2323 bool need_run;
2324
2325 /*
2326 * We can't run the queue inline with interrupts disabled.
2327 */
2328 WARN_ON_ONCE(!async && in_interrupt());
2329
2330 might_sleep_if(!async && hctx->flags & BLK_MQ_F_BLOCKING);
2331
2332 need_run = blk_mq_hw_queue_need_run(hctx);
2333 if (!need_run) {
2334 unsigned long flags;
2335
2336 /*
2337 * Synchronize with blk_mq_unquiesce_queue(), because we check
2338 * if hw queue is quiesced locklessly above, we need the use
2339 * ->queue_lock to make sure we see the up-to-date status to
2340 * not miss rerunning the hw queue.
2341 */
2342 spin_lock_irqsave(&hctx->queue->queue_lock, flags);
2343 need_run = blk_mq_hw_queue_need_run(hctx);
2344 spin_unlock_irqrestore(&hctx->queue->queue_lock, flags);
2345
2346 if (!need_run)
2347 return;
2348 }
2349
2350 if (async || !cpumask_test_cpu(raw_smp_processor_id(), hctx->cpumask)) {
2351 blk_mq_delay_run_hw_queue(hctx, 0);
2352 return;
2353 }
2354
2355 blk_mq_run_dispatch_ops(hctx->queue,
2356 blk_mq_sched_dispatch_requests(hctx));
2357 }
2358 EXPORT_SYMBOL(blk_mq_run_hw_queue);
2359
2360 /*
2361 * Return prefered queue to dispatch from (if any) for non-mq aware IO
2362 * scheduler.
2363 */
blk_mq_get_sq_hctx(struct request_queue * q)2364 static struct blk_mq_hw_ctx *blk_mq_get_sq_hctx(struct request_queue *q)
2365 {
2366 struct blk_mq_ctx *ctx = blk_mq_get_ctx(q);
2367 /*
2368 * If the IO scheduler does not respect hardware queues when
2369 * dispatching, we just don't bother with multiple HW queues and
2370 * dispatch from hctx for the current CPU since running multiple queues
2371 * just causes lock contention inside the scheduler and pointless cache
2372 * bouncing.
2373 */
2374 struct blk_mq_hw_ctx *hctx = ctx->hctxs[HCTX_TYPE_DEFAULT];
2375
2376 if (!blk_mq_hctx_stopped(hctx))
2377 return hctx;
2378 return NULL;
2379 }
2380
2381 /**
2382 * blk_mq_run_hw_queues - Run all hardware queues in a request queue.
2383 * @q: Pointer to the request queue to run.
2384 * @async: If we want to run the queue asynchronously.
2385 */
blk_mq_run_hw_queues(struct request_queue * q,bool async)2386 void blk_mq_run_hw_queues(struct request_queue *q, bool async)
2387 {
2388 struct blk_mq_hw_ctx *hctx, *sq_hctx;
2389 unsigned long i;
2390
2391 sq_hctx = NULL;
2392 if (blk_queue_sq_sched(q))
2393 sq_hctx = blk_mq_get_sq_hctx(q);
2394 queue_for_each_hw_ctx(q, hctx, i) {
2395 if (blk_mq_hctx_stopped(hctx))
2396 continue;
2397 /*
2398 * Dispatch from this hctx either if there's no hctx preferred
2399 * by IO scheduler or if it has requests that bypass the
2400 * scheduler.
2401 */
2402 if (!sq_hctx || sq_hctx == hctx ||
2403 !list_empty_careful(&hctx->dispatch))
2404 blk_mq_run_hw_queue(hctx, async);
2405 }
2406 }
2407 EXPORT_SYMBOL(blk_mq_run_hw_queues);
2408
2409 /**
2410 * blk_mq_delay_run_hw_queues - Run all hardware queues asynchronously.
2411 * @q: Pointer to the request queue to run.
2412 * @msecs: Milliseconds of delay to wait before running the queues.
2413 */
blk_mq_delay_run_hw_queues(struct request_queue * q,unsigned long msecs)2414 void blk_mq_delay_run_hw_queues(struct request_queue *q, unsigned long msecs)
2415 {
2416 struct blk_mq_hw_ctx *hctx, *sq_hctx;
2417 unsigned long i;
2418
2419 sq_hctx = NULL;
2420 if (blk_queue_sq_sched(q))
2421 sq_hctx = blk_mq_get_sq_hctx(q);
2422 queue_for_each_hw_ctx(q, hctx, i) {
2423 if (blk_mq_hctx_stopped(hctx))
2424 continue;
2425 /*
2426 * If there is already a run_work pending, leave the
2427 * pending delay untouched. Otherwise, a hctx can stall
2428 * if another hctx is re-delaying the other's work
2429 * before the work executes.
2430 */
2431 if (delayed_work_pending(&hctx->run_work))
2432 continue;
2433 /*
2434 * Dispatch from this hctx either if there's no hctx preferred
2435 * by IO scheduler or if it has requests that bypass the
2436 * scheduler.
2437 */
2438 if (!sq_hctx || sq_hctx == hctx ||
2439 !list_empty_careful(&hctx->dispatch))
2440 blk_mq_delay_run_hw_queue(hctx, msecs);
2441 }
2442 }
2443 EXPORT_SYMBOL(blk_mq_delay_run_hw_queues);
2444
2445 /*
2446 * This function is often used for pausing .queue_rq() by driver when
2447 * there isn't enough resource or some conditions aren't satisfied, and
2448 * BLK_STS_RESOURCE is usually returned.
2449 *
2450 * We do not guarantee that dispatch can be drained or blocked
2451 * after blk_mq_stop_hw_queue() returns. Please use
2452 * blk_mq_quiesce_queue() for that requirement.
2453 */
blk_mq_stop_hw_queue(struct blk_mq_hw_ctx * hctx)2454 void blk_mq_stop_hw_queue(struct blk_mq_hw_ctx *hctx)
2455 {
2456 cancel_delayed_work(&hctx->run_work);
2457
2458 set_bit(BLK_MQ_S_STOPPED, &hctx->state);
2459 }
2460 EXPORT_SYMBOL(blk_mq_stop_hw_queue);
2461
2462 /*
2463 * This function is often used for pausing .queue_rq() by driver when
2464 * there isn't enough resource or some conditions aren't satisfied, and
2465 * BLK_STS_RESOURCE is usually returned.
2466 *
2467 * We do not guarantee that dispatch can be drained or blocked
2468 * after blk_mq_stop_hw_queues() returns. Please use
2469 * blk_mq_quiesce_queue() for that requirement.
2470 */
blk_mq_stop_hw_queues(struct request_queue * q)2471 void blk_mq_stop_hw_queues(struct request_queue *q)
2472 {
2473 struct blk_mq_hw_ctx *hctx;
2474 unsigned long i;
2475
2476 queue_for_each_hw_ctx(q, hctx, i)
2477 blk_mq_stop_hw_queue(hctx);
2478 }
2479 EXPORT_SYMBOL(blk_mq_stop_hw_queues);
2480
blk_mq_start_hw_queue(struct blk_mq_hw_ctx * hctx)2481 void blk_mq_start_hw_queue(struct blk_mq_hw_ctx *hctx)
2482 {
2483 clear_bit(BLK_MQ_S_STOPPED, &hctx->state);
2484
2485 blk_mq_run_hw_queue(hctx, hctx->flags & BLK_MQ_F_BLOCKING);
2486 }
2487 EXPORT_SYMBOL(blk_mq_start_hw_queue);
2488
blk_mq_start_hw_queues(struct request_queue * q)2489 void blk_mq_start_hw_queues(struct request_queue *q)
2490 {
2491 struct blk_mq_hw_ctx *hctx;
2492 unsigned long i;
2493
2494 queue_for_each_hw_ctx(q, hctx, i)
2495 blk_mq_start_hw_queue(hctx);
2496 }
2497 EXPORT_SYMBOL(blk_mq_start_hw_queues);
2498
blk_mq_start_stopped_hw_queue(struct blk_mq_hw_ctx * hctx,bool async)2499 void blk_mq_start_stopped_hw_queue(struct blk_mq_hw_ctx *hctx, bool async)
2500 {
2501 if (!blk_mq_hctx_stopped(hctx))
2502 return;
2503
2504 clear_bit(BLK_MQ_S_STOPPED, &hctx->state);
2505 /*
2506 * Pairs with the smp_mb() in blk_mq_hctx_stopped() to order the
2507 * clearing of BLK_MQ_S_STOPPED above and the checking of dispatch
2508 * list in the subsequent routine.
2509 */
2510 smp_mb__after_atomic();
2511 blk_mq_run_hw_queue(hctx, async);
2512 }
2513 EXPORT_SYMBOL_GPL(blk_mq_start_stopped_hw_queue);
2514
blk_mq_start_stopped_hw_queues(struct request_queue * q,bool async)2515 void blk_mq_start_stopped_hw_queues(struct request_queue *q, bool async)
2516 {
2517 struct blk_mq_hw_ctx *hctx;
2518 unsigned long i;
2519
2520 queue_for_each_hw_ctx(q, hctx, i)
2521 blk_mq_start_stopped_hw_queue(hctx, async ||
2522 (hctx->flags & BLK_MQ_F_BLOCKING));
2523 }
2524 EXPORT_SYMBOL(blk_mq_start_stopped_hw_queues);
2525
blk_mq_run_work_fn(struct work_struct * work)2526 static void blk_mq_run_work_fn(struct work_struct *work)
2527 {
2528 struct blk_mq_hw_ctx *hctx =
2529 container_of(work, struct blk_mq_hw_ctx, run_work.work);
2530
2531 blk_mq_run_dispatch_ops(hctx->queue,
2532 blk_mq_sched_dispatch_requests(hctx));
2533 }
2534
2535 /**
2536 * blk_mq_request_bypass_insert - Insert a request at dispatch list.
2537 * @rq: Pointer to request to be inserted.
2538 * @flags: BLK_MQ_INSERT_*
2539 *
2540 * Should only be used carefully, when the caller knows we want to
2541 * bypass a potential IO scheduler on the target device.
2542 */
blk_mq_request_bypass_insert(struct request * rq,blk_insert_t flags)2543 static void blk_mq_request_bypass_insert(struct request *rq, blk_insert_t flags)
2544 {
2545 struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
2546
2547 spin_lock(&hctx->lock);
2548 if (flags & BLK_MQ_INSERT_AT_HEAD)
2549 list_add(&rq->queuelist, &hctx->dispatch);
2550 else
2551 list_add_tail(&rq->queuelist, &hctx->dispatch);
2552 spin_unlock(&hctx->lock);
2553 }
2554
blk_mq_insert_requests(struct blk_mq_hw_ctx * hctx,struct blk_mq_ctx * ctx,struct list_head * list,bool run_queue_async)2555 static void blk_mq_insert_requests(struct blk_mq_hw_ctx *hctx,
2556 struct blk_mq_ctx *ctx, struct list_head *list,
2557 bool run_queue_async)
2558 {
2559 struct request *rq;
2560 enum hctx_type type = hctx->type;
2561
2562 /*
2563 * Try to issue requests directly if the hw queue isn't busy to save an
2564 * extra enqueue & dequeue to the sw queue.
2565 */
2566 if (!hctx->dispatch_busy && !run_queue_async) {
2567 blk_mq_run_dispatch_ops(hctx->queue,
2568 blk_mq_try_issue_list_directly(hctx, list));
2569 if (list_empty(list))
2570 goto out;
2571 }
2572
2573 /*
2574 * preemption doesn't flush plug list, so it's possible ctx->cpu is
2575 * offline now
2576 */
2577 list_for_each_entry(rq, list, queuelist) {
2578 BUG_ON(rq->mq_ctx != ctx);
2579 trace_block_rq_insert(rq);
2580 if (rq->cmd_flags & REQ_NOWAIT)
2581 run_queue_async = true;
2582 }
2583
2584 spin_lock(&ctx->lock);
2585 list_splice_tail_init(list, &ctx->rq_lists[type]);
2586 blk_mq_hctx_mark_pending(hctx, ctx);
2587 spin_unlock(&ctx->lock);
2588 out:
2589 blk_mq_run_hw_queue(hctx, run_queue_async);
2590 }
2591
blk_mq_insert_request(struct request * rq,blk_insert_t flags)2592 static void blk_mq_insert_request(struct request *rq, blk_insert_t flags)
2593 {
2594 struct request_queue *q = rq->q;
2595 struct blk_mq_ctx *ctx = rq->mq_ctx;
2596 struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
2597
2598 if (blk_rq_is_passthrough(rq)) {
2599 /*
2600 * Passthrough request have to be added to hctx->dispatch
2601 * directly. The device may be in a situation where it can't
2602 * handle FS request, and always returns BLK_STS_RESOURCE for
2603 * them, which gets them added to hctx->dispatch.
2604 *
2605 * If a passthrough request is required to unblock the queues,
2606 * and it is added to the scheduler queue, there is no chance to
2607 * dispatch it given we prioritize requests in hctx->dispatch.
2608 */
2609 blk_mq_request_bypass_insert(rq, flags);
2610 } else if (req_op(rq) == REQ_OP_FLUSH) {
2611 /*
2612 * Firstly normal IO request is inserted to scheduler queue or
2613 * sw queue, meantime we add flush request to dispatch queue(
2614 * hctx->dispatch) directly and there is at most one in-flight
2615 * flush request for each hw queue, so it doesn't matter to add
2616 * flush request to tail or front of the dispatch queue.
2617 *
2618 * Secondly in case of NCQ, flush request belongs to non-NCQ
2619 * command, and queueing it will fail when there is any
2620 * in-flight normal IO request(NCQ command). When adding flush
2621 * rq to the front of hctx->dispatch, it is easier to introduce
2622 * extra time to flush rq's latency because of S_SCHED_RESTART
2623 * compared with adding to the tail of dispatch queue, then
2624 * chance of flush merge is increased, and less flush requests
2625 * will be issued to controller. It is observed that ~10% time
2626 * is saved in blktests block/004 on disk attached to AHCI/NCQ
2627 * drive when adding flush rq to the front of hctx->dispatch.
2628 *
2629 * Simply queue flush rq to the front of hctx->dispatch so that
2630 * intensive flush workloads can benefit in case of NCQ HW.
2631 */
2632 blk_mq_request_bypass_insert(rq, BLK_MQ_INSERT_AT_HEAD);
2633 } else if (q->elevator) {
2634 LIST_HEAD(list);
2635
2636 WARN_ON_ONCE(rq->tag != BLK_MQ_NO_TAG);
2637
2638 list_add(&rq->queuelist, &list);
2639 q->elevator->type->ops.insert_requests(hctx, &list, flags);
2640 } else {
2641 trace_block_rq_insert(rq);
2642
2643 spin_lock(&ctx->lock);
2644 if (flags & BLK_MQ_INSERT_AT_HEAD)
2645 list_add(&rq->queuelist, &ctx->rq_lists[hctx->type]);
2646 else
2647 list_add_tail(&rq->queuelist,
2648 &ctx->rq_lists[hctx->type]);
2649 blk_mq_hctx_mark_pending(hctx, ctx);
2650 spin_unlock(&ctx->lock);
2651 }
2652 }
2653
blk_mq_bio_to_request(struct request * rq,struct bio * bio,unsigned int nr_segs)2654 static void blk_mq_bio_to_request(struct request *rq, struct bio *bio,
2655 unsigned int nr_segs)
2656 {
2657 int err;
2658
2659 if (bio->bi_opf & REQ_RAHEAD)
2660 rq->cmd_flags |= REQ_FAILFAST_MASK;
2661
2662 rq->bio = rq->biotail = bio;
2663 rq->__sector = bio->bi_iter.bi_sector;
2664 rq->__data_len = bio->bi_iter.bi_size;
2665 rq->phys_gap_bit = bio->bi_bvec_gap_bit;
2666
2667 rq->nr_phys_segments = nr_segs;
2668 if (bio_integrity(bio))
2669 rq->nr_integrity_segments = blk_rq_count_integrity_sg(rq->q,
2670 bio);
2671
2672 /* This can't fail, since GFP_NOIO includes __GFP_DIRECT_RECLAIM. */
2673 err = blk_crypto_rq_bio_prep(rq, bio, GFP_NOIO);
2674 WARN_ON_ONCE(err);
2675
2676 blk_account_io_start(rq);
2677 }
2678
__blk_mq_issue_directly(struct blk_mq_hw_ctx * hctx,struct request * rq,bool last)2679 static blk_status_t __blk_mq_issue_directly(struct blk_mq_hw_ctx *hctx,
2680 struct request *rq, bool last)
2681 {
2682 struct request_queue *q = rq->q;
2683 struct blk_mq_queue_data bd = {
2684 .rq = rq,
2685 .last = last,
2686 };
2687 blk_status_t ret;
2688
2689 /*
2690 * For OK queue, we are done. For error, caller may kill it.
2691 * Any other error (busy), just add it to our list as we
2692 * previously would have done.
2693 */
2694 ret = q->mq_ops->queue_rq(hctx, &bd);
2695 switch (ret) {
2696 case BLK_STS_OK:
2697 blk_mq_update_dispatch_busy(hctx, false);
2698 break;
2699 case BLK_STS_RESOURCE:
2700 case BLK_STS_DEV_RESOURCE:
2701 blk_mq_update_dispatch_busy(hctx, true);
2702 __blk_mq_requeue_request(rq);
2703 break;
2704 default:
2705 blk_mq_update_dispatch_busy(hctx, false);
2706 break;
2707 }
2708
2709 return ret;
2710 }
2711
blk_mq_get_budget_and_tag(struct request * rq)2712 static bool blk_mq_get_budget_and_tag(struct request *rq)
2713 {
2714 int budget_token;
2715
2716 budget_token = blk_mq_get_dispatch_budget(rq->q);
2717 if (budget_token < 0)
2718 return false;
2719 blk_mq_set_rq_budget_token(rq, budget_token);
2720 if (!blk_mq_get_driver_tag(rq)) {
2721 blk_mq_put_dispatch_budget(rq->q, budget_token);
2722 return false;
2723 }
2724 return true;
2725 }
2726
2727 /**
2728 * blk_mq_try_issue_directly - Try to send a request directly to device driver.
2729 * @hctx: Pointer of the associated hardware queue.
2730 * @rq: Pointer to request to be sent.
2731 *
2732 * If the device has enough resources to accept a new request now, send the
2733 * request directly to device driver. Else, insert at hctx->dispatch queue, so
2734 * we can try send it another time in the future. Requests inserted at this
2735 * queue have higher priority.
2736 */
blk_mq_try_issue_directly(struct blk_mq_hw_ctx * hctx,struct request * rq)2737 static void blk_mq_try_issue_directly(struct blk_mq_hw_ctx *hctx,
2738 struct request *rq)
2739 {
2740 blk_status_t ret;
2741
2742 if (blk_mq_hctx_stopped(hctx) || blk_queue_quiesced(rq->q)) {
2743 blk_mq_insert_request(rq, 0);
2744 blk_mq_run_hw_queue(hctx, false);
2745 return;
2746 }
2747
2748 if ((rq->rq_flags & RQF_USE_SCHED) || !blk_mq_get_budget_and_tag(rq)) {
2749 blk_mq_insert_request(rq, 0);
2750 blk_mq_run_hw_queue(hctx, rq->cmd_flags & REQ_NOWAIT);
2751 return;
2752 }
2753
2754 ret = __blk_mq_issue_directly(hctx, rq, true);
2755 switch (ret) {
2756 case BLK_STS_OK:
2757 break;
2758 case BLK_STS_RESOURCE:
2759 case BLK_STS_DEV_RESOURCE:
2760 blk_mq_request_bypass_insert(rq, 0);
2761 blk_mq_run_hw_queue(hctx, false);
2762 break;
2763 default:
2764 blk_mq_end_request(rq, ret);
2765 break;
2766 }
2767 }
2768
blk_mq_request_issue_directly(struct request * rq,bool last)2769 static blk_status_t blk_mq_request_issue_directly(struct request *rq, bool last)
2770 {
2771 struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
2772
2773 if (blk_mq_hctx_stopped(hctx) || blk_queue_quiesced(rq->q)) {
2774 blk_mq_insert_request(rq, 0);
2775 blk_mq_run_hw_queue(hctx, false);
2776 return BLK_STS_OK;
2777 }
2778
2779 if (!blk_mq_get_budget_and_tag(rq))
2780 return BLK_STS_RESOURCE;
2781 return __blk_mq_issue_directly(hctx, rq, last);
2782 }
2783
blk_mq_issue_direct(struct rq_list * rqs)2784 static void blk_mq_issue_direct(struct rq_list *rqs)
2785 {
2786 struct blk_mq_hw_ctx *hctx = NULL;
2787 struct request *rq;
2788 int queued = 0;
2789 blk_status_t ret = BLK_STS_OK;
2790
2791 while ((rq = rq_list_pop(rqs))) {
2792 bool last = rq_list_empty(rqs);
2793
2794 if (hctx != rq->mq_hctx) {
2795 if (hctx) {
2796 blk_mq_commit_rqs(hctx, queued, false);
2797 queued = 0;
2798 }
2799 hctx = rq->mq_hctx;
2800 }
2801
2802 ret = blk_mq_request_issue_directly(rq, last);
2803 switch (ret) {
2804 case BLK_STS_OK:
2805 queued++;
2806 break;
2807 case BLK_STS_RESOURCE:
2808 case BLK_STS_DEV_RESOURCE:
2809 blk_mq_request_bypass_insert(rq, 0);
2810 blk_mq_run_hw_queue(hctx, false);
2811 goto out;
2812 default:
2813 blk_mq_end_request(rq, ret);
2814 break;
2815 }
2816 }
2817
2818 out:
2819 if (ret != BLK_STS_OK)
2820 blk_mq_commit_rqs(hctx, queued, false);
2821 }
2822
__blk_mq_flush_list(struct request_queue * q,struct rq_list * rqs)2823 static void __blk_mq_flush_list(struct request_queue *q, struct rq_list *rqs)
2824 {
2825 if (blk_queue_quiesced(q))
2826 return;
2827 q->mq_ops->queue_rqs(rqs);
2828 }
2829
blk_mq_extract_queue_requests(struct rq_list * rqs,struct rq_list * queue_rqs)2830 static unsigned blk_mq_extract_queue_requests(struct rq_list *rqs,
2831 struct rq_list *queue_rqs)
2832 {
2833 struct request *rq = rq_list_pop(rqs);
2834 struct request_queue *this_q = rq->q;
2835 struct request **prev = &rqs->head;
2836 struct rq_list matched_rqs = {};
2837 struct request *last = NULL;
2838 unsigned depth = 1;
2839
2840 rq_list_add_tail(&matched_rqs, rq);
2841 while ((rq = *prev)) {
2842 if (rq->q == this_q) {
2843 /* move rq from rqs to matched_rqs */
2844 *prev = rq->rq_next;
2845 rq_list_add_tail(&matched_rqs, rq);
2846 depth++;
2847 } else {
2848 /* leave rq in rqs */
2849 prev = &rq->rq_next;
2850 last = rq;
2851 }
2852 }
2853
2854 rqs->tail = last;
2855 *queue_rqs = matched_rqs;
2856 return depth;
2857 }
2858
blk_mq_dispatch_queue_requests(struct rq_list * rqs,unsigned depth)2859 static void blk_mq_dispatch_queue_requests(struct rq_list *rqs, unsigned depth)
2860 {
2861 struct request_queue *q = rq_list_peek(rqs)->q;
2862
2863 trace_block_unplug(q, depth, true);
2864
2865 /*
2866 * Peek first request and see if we have a ->queue_rqs() hook.
2867 * If we do, we can dispatch the whole list in one go.
2868 * We already know at this point that all requests belong to the
2869 * same queue, caller must ensure that's the case.
2870 */
2871 if (q->mq_ops->queue_rqs) {
2872 blk_mq_run_dispatch_ops(q, __blk_mq_flush_list(q, rqs));
2873 if (rq_list_empty(rqs))
2874 return;
2875 }
2876
2877 blk_mq_run_dispatch_ops(q, blk_mq_issue_direct(rqs));
2878 }
2879
blk_mq_dispatch_list(struct rq_list * rqs,bool from_sched)2880 static void blk_mq_dispatch_list(struct rq_list *rqs, bool from_sched)
2881 {
2882 struct blk_mq_hw_ctx *this_hctx = NULL;
2883 struct blk_mq_ctx *this_ctx = NULL;
2884 struct rq_list requeue_list = {};
2885 unsigned int depth = 0;
2886 bool is_passthrough = false;
2887 LIST_HEAD(list);
2888
2889 do {
2890 struct request *rq = rq_list_pop(rqs);
2891
2892 if (!this_hctx) {
2893 this_hctx = rq->mq_hctx;
2894 this_ctx = rq->mq_ctx;
2895 is_passthrough = blk_rq_is_passthrough(rq);
2896 } else if (this_hctx != rq->mq_hctx || this_ctx != rq->mq_ctx ||
2897 is_passthrough != blk_rq_is_passthrough(rq)) {
2898 rq_list_add_tail(&requeue_list, rq);
2899 continue;
2900 }
2901 list_add_tail(&rq->queuelist, &list);
2902 depth++;
2903 } while (!rq_list_empty(rqs));
2904
2905 *rqs = requeue_list;
2906 trace_block_unplug(this_hctx->queue, depth, !from_sched);
2907
2908 percpu_ref_get(&this_hctx->queue->q_usage_counter);
2909 /* passthrough requests should never be issued to the I/O scheduler */
2910 if (is_passthrough) {
2911 spin_lock(&this_hctx->lock);
2912 list_splice_tail_init(&list, &this_hctx->dispatch);
2913 spin_unlock(&this_hctx->lock);
2914 blk_mq_run_hw_queue(this_hctx, from_sched);
2915 } else if (this_hctx->queue->elevator) {
2916 this_hctx->queue->elevator->type->ops.insert_requests(this_hctx,
2917 &list, 0);
2918 blk_mq_run_hw_queue(this_hctx, from_sched);
2919 } else {
2920 blk_mq_insert_requests(this_hctx, this_ctx, &list, from_sched);
2921 }
2922 percpu_ref_put(&this_hctx->queue->q_usage_counter);
2923 }
2924
blk_mq_dispatch_multiple_queue_requests(struct rq_list * rqs)2925 static void blk_mq_dispatch_multiple_queue_requests(struct rq_list *rqs)
2926 {
2927 do {
2928 struct rq_list queue_rqs;
2929 unsigned depth;
2930
2931 depth = blk_mq_extract_queue_requests(rqs, &queue_rqs);
2932 blk_mq_dispatch_queue_requests(&queue_rqs, depth);
2933 while (!rq_list_empty(&queue_rqs))
2934 blk_mq_dispatch_list(&queue_rqs, false);
2935 } while (!rq_list_empty(rqs));
2936 }
2937
blk_mq_flush_plug_list(struct blk_plug * plug,bool from_schedule)2938 void blk_mq_flush_plug_list(struct blk_plug *plug, bool from_schedule)
2939 {
2940 unsigned int depth;
2941
2942 /*
2943 * We may have been called recursively midway through handling
2944 * plug->mq_list via a schedule() in the driver's queue_rq() callback.
2945 * To avoid mq_list changing under our feet, clear rq_count early and
2946 * bail out specifically if rq_count is 0 rather than checking
2947 * whether the mq_list is empty.
2948 */
2949 if (plug->rq_count == 0)
2950 return;
2951 depth = plug->rq_count;
2952 plug->rq_count = 0;
2953
2954 if (!plug->has_elevator && !from_schedule) {
2955 if (plug->multiple_queues) {
2956 blk_mq_dispatch_multiple_queue_requests(&plug->mq_list);
2957 return;
2958 }
2959
2960 blk_mq_dispatch_queue_requests(&plug->mq_list, depth);
2961 if (rq_list_empty(&plug->mq_list))
2962 return;
2963 }
2964
2965 do {
2966 blk_mq_dispatch_list(&plug->mq_list, from_schedule);
2967 } while (!rq_list_empty(&plug->mq_list));
2968 }
2969
blk_mq_try_issue_list_directly(struct blk_mq_hw_ctx * hctx,struct list_head * list)2970 static void blk_mq_try_issue_list_directly(struct blk_mq_hw_ctx *hctx,
2971 struct list_head *list)
2972 {
2973 int queued = 0;
2974 blk_status_t ret = BLK_STS_OK;
2975
2976 while (!list_empty(list)) {
2977 struct request *rq = list_first_entry(list, struct request,
2978 queuelist);
2979
2980 list_del_init(&rq->queuelist);
2981 ret = blk_mq_request_issue_directly(rq, list_empty(list));
2982 switch (ret) {
2983 case BLK_STS_OK:
2984 queued++;
2985 break;
2986 case BLK_STS_RESOURCE:
2987 case BLK_STS_DEV_RESOURCE:
2988 blk_mq_request_bypass_insert(rq, 0);
2989 if (list_empty(list))
2990 blk_mq_run_hw_queue(hctx, false);
2991 goto out;
2992 default:
2993 blk_mq_end_request(rq, ret);
2994 break;
2995 }
2996 }
2997
2998 out:
2999 if (ret != BLK_STS_OK)
3000 blk_mq_commit_rqs(hctx, queued, false);
3001 }
3002
blk_mq_attempt_bio_merge(struct request_queue * q,struct bio * bio,unsigned int nr_segs)3003 static bool blk_mq_attempt_bio_merge(struct request_queue *q,
3004 struct bio *bio, unsigned int nr_segs)
3005 {
3006 if (!blk_queue_nomerges(q) && bio_mergeable(bio)) {
3007 if (blk_attempt_plug_merge(q, bio, nr_segs))
3008 return true;
3009 if (blk_mq_sched_bio_merge(q, bio, nr_segs))
3010 return true;
3011 }
3012 return false;
3013 }
3014
blk_mq_get_new_requests(struct request_queue * q,struct blk_plug * plug,struct bio * bio)3015 static struct request *blk_mq_get_new_requests(struct request_queue *q,
3016 struct blk_plug *plug,
3017 struct bio *bio)
3018 {
3019 struct blk_mq_alloc_data data = {
3020 .q = q,
3021 .flags = 0,
3022 .shallow_depth = 0,
3023 .cmd_flags = bio->bi_opf,
3024 .rq_flags = 0,
3025 .nr_tags = 1,
3026 .cached_rqs = NULL,
3027 .ctx = NULL,
3028 .hctx = NULL
3029 };
3030 struct request *rq;
3031
3032 rq_qos_throttle(q, bio);
3033
3034 if (plug) {
3035 data.nr_tags = plug->nr_ios;
3036 plug->nr_ios = 1;
3037 data.cached_rqs = &plug->cached_rqs;
3038 }
3039
3040 rq = __blk_mq_alloc_requests(&data);
3041 if (unlikely(!rq))
3042 rq_qos_cleanup(q, bio);
3043 return rq;
3044 }
3045
3046 /*
3047 * Check if there is a suitable cached request and return it.
3048 */
blk_mq_get_cached_request(struct blk_plug * plug,struct request_queue * q,blk_opf_t opf)3049 static struct request *blk_mq_get_cached_request(struct blk_plug *plug,
3050 struct request_queue *q, blk_opf_t opf)
3051 {
3052 enum hctx_type type = blk_mq_get_hctx_type(opf);
3053 struct request *rq;
3054
3055 if (!plug)
3056 return NULL;
3057 rq = rq_list_peek(&plug->cached_rqs);
3058 if (!rq || rq->q != q)
3059 return NULL;
3060 if (type != rq->mq_hctx->type &&
3061 (type != HCTX_TYPE_READ || rq->mq_hctx->type != HCTX_TYPE_DEFAULT))
3062 return NULL;
3063 if (op_is_flush(rq->cmd_flags) != op_is_flush(opf))
3064 return NULL;
3065 rq_list_pop(&plug->cached_rqs);
3066 return rq;
3067 }
3068
bio_unaligned(const struct bio * bio,struct request_queue * q)3069 static bool bio_unaligned(const struct bio *bio, struct request_queue *q)
3070 {
3071 unsigned int bs_mask = queue_logical_block_size(q) - 1;
3072
3073 /* .bi_sector of any zero sized bio need to be initialized */
3074 if ((bio->bi_iter.bi_size & bs_mask) ||
3075 ((bio->bi_iter.bi_sector << SECTOR_SHIFT) & bs_mask))
3076 return true;
3077 return false;
3078 }
3079
3080 /**
3081 * blk_mq_submit_bio - Create and send a request to block device.
3082 * @bio: Bio pointer.
3083 *
3084 * Builds up a request structure from @q and @bio and send to the device. The
3085 * request may not be queued directly to hardware if:
3086 * * This request can be merged with another one
3087 * * We want to place request at plug queue for possible future merging
3088 * * There is an IO scheduler active at this queue
3089 *
3090 * It will not queue the request if there is an error with the bio, or at the
3091 * request creation.
3092 */
blk_mq_submit_bio(struct bio * bio)3093 void blk_mq_submit_bio(struct bio *bio)
3094 {
3095 struct request_queue *q = bdev_get_queue(bio->bi_bdev);
3096 struct blk_plug *plug = current->plug;
3097 const int is_sync = op_is_sync(bio->bi_opf);
3098 unsigned int integrity_action;
3099 struct blk_mq_hw_ctx *hctx;
3100 unsigned int nr_segs;
3101 struct request *rq;
3102 blk_status_t ret;
3103
3104 /*
3105 * If the plug has a cached request for this queue, try to use it.
3106 */
3107 rq = blk_mq_get_cached_request(plug, q, bio->bi_opf);
3108
3109 /*
3110 * A BIO that was released from a zone write plug has already been
3111 * through the preparation in this function, already holds a reference
3112 * on the queue usage counter, and is the only write BIO in-flight for
3113 * the target zone. Go straight to preparing a request for it.
3114 */
3115 if (bio_zone_write_plugging(bio)) {
3116 nr_segs = bio->__bi_nr_segments;
3117 if (rq)
3118 blk_queue_exit(q);
3119 goto new_request;
3120 }
3121
3122 /*
3123 * The cached request already holds a q_usage_counter reference and we
3124 * don't have to acquire a new one if we use it.
3125 */
3126 if (!rq) {
3127 if (unlikely(bio_queue_enter(bio)))
3128 return;
3129 }
3130
3131 /*
3132 * Device reconfiguration may change logical block size or reduce the
3133 * number of poll queues, so the checks for alignment and poll support
3134 * have to be done with queue usage counter held.
3135 */
3136 if (unlikely(bio_unaligned(bio, q))) {
3137 bio_io_error(bio);
3138 goto queue_exit;
3139 }
3140
3141 if ((bio->bi_opf & REQ_POLLED) && !blk_mq_can_poll(q)) {
3142 bio_endio_status(bio, BLK_STS_NOTSUPP);
3143 goto queue_exit;
3144 }
3145
3146 bio = __bio_split_to_limits(bio, &q->limits, &nr_segs);
3147 if (!bio)
3148 goto queue_exit;
3149
3150 integrity_action = bio_integrity_action(bio);
3151 if (integrity_action)
3152 bio_integrity_prep(bio, integrity_action);
3153
3154 blk_mq_bio_issue_init(q, bio);
3155 if (blk_mq_attempt_bio_merge(q, bio, nr_segs))
3156 goto queue_exit;
3157
3158 if (bio_needs_zone_write_plugging(bio)) {
3159 if (blk_zone_plug_bio(bio, nr_segs))
3160 goto queue_exit;
3161 }
3162
3163 new_request:
3164 if (rq) {
3165 rq_qos_throttle(rq->q, bio);
3166 blk_mq_rq_time_init(rq, blk_time_get_ns());
3167 rq->cmd_flags = bio->bi_opf;
3168 INIT_LIST_HEAD(&rq->queuelist);
3169 } else {
3170 rq = blk_mq_get_new_requests(q, plug, bio);
3171 if (unlikely(!rq)) {
3172 if (bio->bi_opf & REQ_NOWAIT)
3173 bio_wouldblock_error(bio);
3174 goto queue_exit;
3175 }
3176 }
3177
3178 trace_block_getrq(bio);
3179
3180 rq_qos_track(q, rq, bio);
3181
3182 blk_mq_bio_to_request(rq, bio, nr_segs);
3183
3184 ret = blk_crypto_rq_get_keyslot(rq);
3185 if (ret != BLK_STS_OK) {
3186 bio_endio_status(bio, ret);
3187 blk_mq_free_request(rq);
3188 return;
3189 }
3190
3191 if (bio_zone_write_plugging(bio))
3192 blk_zone_write_plug_init_request(rq);
3193
3194 if (op_is_flush(bio->bi_opf) && blk_insert_flush(rq))
3195 return;
3196
3197 if (plug) {
3198 blk_add_rq_to_plug(plug, rq);
3199 return;
3200 }
3201
3202 hctx = rq->mq_hctx;
3203 if ((rq->rq_flags & RQF_USE_SCHED) ||
3204 (hctx->dispatch_busy && (q->nr_hw_queues == 1 || !is_sync))) {
3205 blk_mq_insert_request(rq, 0);
3206 blk_mq_run_hw_queue(hctx, true);
3207 } else {
3208 blk_mq_run_dispatch_ops(q, blk_mq_try_issue_directly(hctx, rq));
3209 }
3210 return;
3211
3212 queue_exit:
3213 if (!rq)
3214 blk_queue_exit(q);
3215 else
3216 rq_list_add_head(&plug->cached_rqs, rq);
3217 }
3218
3219 #ifdef CONFIG_BLK_MQ_STACKING
3220 /**
3221 * blk_insert_cloned_request - Helper for stacking drivers to submit a request
3222 * @rq: the request being queued
3223 */
blk_insert_cloned_request(struct request * rq)3224 blk_status_t blk_insert_cloned_request(struct request *rq)
3225 {
3226 struct request_queue *q = rq->q;
3227 unsigned int max_sectors = blk_queue_get_max_sectors(rq);
3228 unsigned int max_segments = blk_rq_get_max_segments(rq);
3229 blk_status_t ret;
3230
3231 if (blk_rq_sectors(rq) > max_sectors) {
3232 /*
3233 * SCSI device does not have a good way to return if
3234 * Write Same/Zero is actually supported. If a device rejects
3235 * a non-read/write command (discard, write same,etc.) the
3236 * low-level device driver will set the relevant queue limit to
3237 * 0 to prevent blk-lib from issuing more of the offending
3238 * operations. Commands queued prior to the queue limit being
3239 * reset need to be completed with BLK_STS_NOTSUPP to avoid I/O
3240 * errors being propagated to upper layers.
3241 */
3242 if (max_sectors == 0)
3243 return BLK_STS_NOTSUPP;
3244
3245 printk(KERN_ERR "%s: over max size limit. (%u > %u)\n",
3246 __func__, blk_rq_sectors(rq), max_sectors);
3247 return BLK_STS_IOERR;
3248 }
3249
3250 /*
3251 * The queue settings related to segment counting may differ from the
3252 * original queue.
3253 */
3254 rq->nr_phys_segments = blk_recalc_rq_segments(rq);
3255 if (rq->nr_phys_segments > max_segments) {
3256 printk(KERN_ERR "%s: over max segments limit. (%u > %u)\n",
3257 __func__, rq->nr_phys_segments, max_segments);
3258 return BLK_STS_IOERR;
3259 }
3260
3261 /*
3262 * Integrity segment counting depends on the same queue limits
3263 * (virt_boundary_mask, seg_boundary_mask, max_segment_size) that
3264 * vary across stacked queues, so recompute against the bottom
3265 * queue just like nr_phys_segments above.
3266 */
3267 if (blk_integrity_rq(rq) && rq->bio) {
3268 unsigned short max_int_segs = queue_max_integrity_segments(q);
3269
3270 rq->nr_integrity_segments =
3271 blk_rq_count_integrity_sg(rq->q, rq->bio);
3272 if (rq->nr_integrity_segments > max_int_segs) {
3273 printk(KERN_ERR "%s: over max integrity segments limit. (%u > %u)\n",
3274 __func__, rq->nr_integrity_segments,
3275 max_int_segs);
3276 return BLK_STS_IOERR;
3277 }
3278 }
3279
3280 if (q->disk && should_fail_request(q->disk->part0, blk_rq_bytes(rq)))
3281 return BLK_STS_IOERR;
3282
3283 ret = blk_crypto_rq_get_keyslot(rq);
3284 if (ret != BLK_STS_OK)
3285 return ret;
3286
3287 blk_account_io_start(rq);
3288
3289 /*
3290 * Since we have a scheduler attached on the top device,
3291 * bypass a potential scheduler on the bottom device for
3292 * insert.
3293 */
3294 blk_mq_run_dispatch_ops(q,
3295 ret = blk_mq_request_issue_directly(rq, true));
3296 if (ret)
3297 blk_account_io_done(rq, blk_time_get_ns());
3298 return ret;
3299 }
3300 EXPORT_SYMBOL_GPL(blk_insert_cloned_request);
3301
3302 /**
3303 * blk_rq_unprep_clone - Helper function to free all bios in a cloned request
3304 * @rq: the clone request to be cleaned up
3305 *
3306 * Description:
3307 * Free all bios in @rq for a cloned request.
3308 */
blk_rq_unprep_clone(struct request * rq)3309 void blk_rq_unprep_clone(struct request *rq)
3310 {
3311 struct bio *bio;
3312
3313 while ((bio = rq->bio) != NULL) {
3314 rq->bio = bio->bi_next;
3315
3316 bio_put(bio);
3317 }
3318 }
3319 EXPORT_SYMBOL_GPL(blk_rq_unprep_clone);
3320
3321 /**
3322 * blk_rq_prep_clone - Helper function to setup clone request
3323 * @rq: the request to be setup
3324 * @rq_src: original request to be cloned
3325 * @bs: bio_set that bios for clone are allocated from
3326 * @gfp_mask: memory allocation mask for bio
3327 * @bio_ctr: setup function to be called for each clone bio.
3328 * Returns %0 for success, non %0 for failure.
3329 * @data: private data to be passed to @bio_ctr
3330 *
3331 * Description:
3332 * Clones bios in @rq_src to @rq, and copies attributes of @rq_src to @rq.
3333 * Also, pages which the original bios are pointing to are not copied
3334 * and the cloned bios just point same pages.
3335 * So cloned bios must be completed before original bios, which means
3336 * the caller must complete @rq before @rq_src.
3337 */
blk_rq_prep_clone(struct request * rq,struct request * rq_src,struct bio_set * bs,gfp_t gfp_mask,int (* bio_ctr)(struct bio *,struct bio *,void *),void * data)3338 int blk_rq_prep_clone(struct request *rq, struct request *rq_src,
3339 struct bio_set *bs, gfp_t gfp_mask,
3340 int (*bio_ctr)(struct bio *, struct bio *, void *),
3341 void *data)
3342 {
3343 struct bio *bio_src;
3344
3345 if (!bs)
3346 bs = &fs_bio_set;
3347
3348 __rq_for_each_bio(bio_src, rq_src) {
3349 struct bio *bio = bio_alloc_clone(rq->q->disk->part0, bio_src,
3350 gfp_mask, bs);
3351 if (!bio)
3352 goto free_and_out;
3353
3354 if (bio_ctr && bio_ctr(bio, bio_src, data)) {
3355 bio_put(bio);
3356 goto free_and_out;
3357 }
3358
3359 if (rq->bio) {
3360 rq->biotail->bi_next = bio;
3361 rq->biotail = bio;
3362 } else {
3363 rq->bio = rq->biotail = bio;
3364 }
3365 }
3366
3367 /* Copy attributes of the original request to the clone request. */
3368 rq->__sector = blk_rq_pos(rq_src);
3369 rq->__data_len = blk_rq_bytes(rq_src);
3370 if (rq_src->rq_flags & RQF_SPECIAL_PAYLOAD) {
3371 rq->rq_flags |= RQF_SPECIAL_PAYLOAD;
3372 rq->special_vec = rq_src->special_vec;
3373 }
3374 rq->nr_phys_segments = rq_src->nr_phys_segments;
3375 rq->nr_integrity_segments = rq_src->nr_integrity_segments;
3376 rq->phys_gap_bit = rq_src->phys_gap_bit;
3377
3378 if (rq->bio && blk_crypto_rq_bio_prep(rq, rq->bio, gfp_mask) < 0)
3379 goto free_and_out;
3380
3381 return 0;
3382
3383 free_and_out:
3384 blk_rq_unprep_clone(rq);
3385
3386 return -ENOMEM;
3387 }
3388 EXPORT_SYMBOL_GPL(blk_rq_prep_clone);
3389 #endif /* CONFIG_BLK_MQ_STACKING */
3390
3391 /*
3392 * Steal bios from a request and add them to a bio list.
3393 * The request must not have been partially completed before.
3394 */
blk_steal_bios(struct bio_list * list,struct request * rq)3395 void blk_steal_bios(struct bio_list *list, struct request *rq)
3396 {
3397 struct bio *bio;
3398
3399 for (bio = rq->bio; bio; bio = bio->bi_next) {
3400 if (bio->bi_opf & REQ_POLLED) {
3401 bio->bi_opf &= ~REQ_POLLED;
3402 bio->bi_cookie = BLK_QC_T_NONE;
3403 }
3404 /*
3405 * The alternate request queue that we may end up submitting
3406 * the bio to may be frozen temporarily, in this case REQ_NOWAIT
3407 * will fail the I/O immediately with EAGAIN to the issuer.
3408 * We are not in the issuer context which cannot block. Clear
3409 * the flag to avoid spurious EAGAIN I/O failures.
3410 */
3411 bio->bi_opf &= ~REQ_NOWAIT;
3412 bio_clear_flag(bio, BIO_QOS_THROTTLED);
3413 bio_clear_flag(bio, BIO_QOS_MERGED);
3414 }
3415
3416 if (rq->bio) {
3417 if (list->tail)
3418 list->tail->bi_next = rq->bio;
3419 else
3420 list->head = rq->bio;
3421 list->tail = rq->biotail;
3422
3423 rq->bio = NULL;
3424 rq->biotail = NULL;
3425 }
3426
3427 rq->__data_len = 0;
3428 }
3429 EXPORT_SYMBOL_GPL(blk_steal_bios);
3430
order_to_size(unsigned int order)3431 static size_t order_to_size(unsigned int order)
3432 {
3433 return (size_t)PAGE_SIZE << order;
3434 }
3435
3436 /* called before freeing request pool in @tags */
blk_mq_clear_rq_mapping(struct blk_mq_tags * drv_tags,struct blk_mq_tags * tags)3437 static void blk_mq_clear_rq_mapping(struct blk_mq_tags *drv_tags,
3438 struct blk_mq_tags *tags)
3439 {
3440 struct page *page;
3441
3442 /*
3443 * There is no need to clear mapping if driver tags is not initialized
3444 * or the mapping belongs to the driver tags.
3445 */
3446 if (!drv_tags || drv_tags == tags)
3447 return;
3448
3449 list_for_each_entry(page, &tags->page_list, lru) {
3450 unsigned long start = (unsigned long)page_address(page);
3451 unsigned long end = start + order_to_size(page->private);
3452 int i;
3453
3454 for (i = 0; i < drv_tags->nr_tags; i++) {
3455 struct request *rq = drv_tags->rqs[i];
3456 unsigned long rq_addr = (unsigned long)rq;
3457
3458 if (rq_addr >= start && rq_addr < end) {
3459 WARN_ON_ONCE(req_ref_read(rq) != 0);
3460 cmpxchg(&drv_tags->rqs[i], rq, NULL);
3461 }
3462 }
3463 }
3464 }
3465
blk_mq_free_rqs(struct blk_mq_tag_set * set,struct blk_mq_tags * tags,unsigned int hctx_idx)3466 void blk_mq_free_rqs(struct blk_mq_tag_set *set, struct blk_mq_tags *tags,
3467 unsigned int hctx_idx)
3468 {
3469 struct blk_mq_tags *drv_tags;
3470
3471 if (list_empty(&tags->page_list))
3472 return;
3473
3474 if (blk_mq_is_shared_tags(set->flags))
3475 drv_tags = set->shared_tags;
3476 else
3477 drv_tags = set->tags[hctx_idx];
3478
3479 if (tags->static_rqs && set->ops->exit_request) {
3480 int i;
3481
3482 for (i = 0; i < tags->nr_tags; i++) {
3483 struct request *rq = tags->static_rqs[i];
3484
3485 if (!rq)
3486 continue;
3487 set->ops->exit_request(set, rq, hctx_idx);
3488 tags->static_rqs[i] = NULL;
3489 }
3490 }
3491
3492 blk_mq_clear_rq_mapping(drv_tags, tags);
3493 /*
3494 * Free request pages in SRCU callback, which is called from
3495 * blk_mq_free_tags().
3496 */
3497 }
3498
blk_mq_free_rq_map(struct blk_mq_tag_set * set,struct blk_mq_tags * tags)3499 void blk_mq_free_rq_map(struct blk_mq_tag_set *set, struct blk_mq_tags *tags)
3500 {
3501 kfree(tags->rqs);
3502 tags->rqs = NULL;
3503 kfree(tags->static_rqs);
3504 tags->static_rqs = NULL;
3505
3506 blk_mq_free_tags(set, tags);
3507 }
3508
hctx_idx_to_type(struct blk_mq_tag_set * set,unsigned int hctx_idx)3509 static enum hctx_type hctx_idx_to_type(struct blk_mq_tag_set *set,
3510 unsigned int hctx_idx)
3511 {
3512 int i;
3513
3514 for (i = 0; i < set->nr_maps; i++) {
3515 unsigned int start = set->map[i].queue_offset;
3516 unsigned int end = start + set->map[i].nr_queues;
3517
3518 if (hctx_idx >= start && hctx_idx < end)
3519 break;
3520 }
3521
3522 if (i >= set->nr_maps)
3523 i = HCTX_TYPE_DEFAULT;
3524
3525 return i;
3526 }
3527
blk_mq_get_hctx_node(struct blk_mq_tag_set * set,unsigned int hctx_idx)3528 static int blk_mq_get_hctx_node(struct blk_mq_tag_set *set,
3529 unsigned int hctx_idx)
3530 {
3531 enum hctx_type type = hctx_idx_to_type(set, hctx_idx);
3532
3533 return blk_mq_hw_queue_to_node(&set->map[type], hctx_idx);
3534 }
3535
blk_mq_alloc_rq_map(struct blk_mq_tag_set * set,unsigned int hctx_idx,unsigned int nr_tags,unsigned int reserved_tags)3536 static struct blk_mq_tags *blk_mq_alloc_rq_map(struct blk_mq_tag_set *set,
3537 unsigned int hctx_idx,
3538 unsigned int nr_tags,
3539 unsigned int reserved_tags)
3540 {
3541 int node = blk_mq_get_hctx_node(set, hctx_idx);
3542 struct blk_mq_tags *tags;
3543
3544 if (node == NUMA_NO_NODE)
3545 node = set->numa_node;
3546
3547 tags = blk_mq_init_tags(nr_tags, reserved_tags, set->flags, node);
3548 if (!tags)
3549 return NULL;
3550
3551 tags->rqs = kcalloc_node(nr_tags, sizeof(struct request *),
3552 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY,
3553 node);
3554 if (!tags->rqs)
3555 goto err_free_tags;
3556
3557 tags->static_rqs = kcalloc_node(nr_tags, sizeof(struct request *),
3558 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY,
3559 node);
3560 if (!tags->static_rqs)
3561 goto err_free_rqs;
3562
3563 return tags;
3564
3565 err_free_rqs:
3566 kfree(tags->rqs);
3567 err_free_tags:
3568 blk_mq_free_tags(set, tags);
3569 return NULL;
3570 }
3571
blk_mq_init_request(struct blk_mq_tag_set * set,struct request * rq,unsigned int hctx_idx,int node)3572 static int blk_mq_init_request(struct blk_mq_tag_set *set, struct request *rq,
3573 unsigned int hctx_idx, int node)
3574 {
3575 int ret;
3576
3577 if (set->ops->init_request) {
3578 ret = set->ops->init_request(set, rq, hctx_idx, node);
3579 if (ret)
3580 return ret;
3581 }
3582
3583 WRITE_ONCE(rq->state, MQ_RQ_IDLE);
3584 return 0;
3585 }
3586
blk_mq_alloc_rqs(struct blk_mq_tag_set * set,struct blk_mq_tags * tags,unsigned int hctx_idx,unsigned int depth)3587 static int blk_mq_alloc_rqs(struct blk_mq_tag_set *set,
3588 struct blk_mq_tags *tags,
3589 unsigned int hctx_idx, unsigned int depth)
3590 {
3591 unsigned int i, j, entries_per_page, max_order = 4;
3592 int node = blk_mq_get_hctx_node(set, hctx_idx);
3593 size_t rq_size, left;
3594
3595 if (node == NUMA_NO_NODE)
3596 node = set->numa_node;
3597
3598 /*
3599 * rq_size is the size of the request plus driver payload, rounded
3600 * to the cacheline size
3601 */
3602 rq_size = round_up(sizeof(struct request) + set->cmd_size,
3603 cache_line_size());
3604 left = rq_size * depth;
3605
3606 for (i = 0; i < depth; ) {
3607 int this_order = max_order;
3608 struct page *page;
3609 int to_do;
3610 void *p;
3611
3612 while (this_order && left < order_to_size(this_order - 1))
3613 this_order--;
3614
3615 do {
3616 page = alloc_pages_node(node,
3617 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY | __GFP_ZERO,
3618 this_order);
3619 if (page)
3620 break;
3621 if (!this_order--)
3622 break;
3623 if (order_to_size(this_order) < rq_size)
3624 break;
3625 } while (1);
3626
3627 if (!page)
3628 goto fail;
3629
3630 page->private = this_order;
3631 list_add_tail(&page->lru, &tags->page_list);
3632
3633 p = page_address(page);
3634 /*
3635 * Allow kmemleak to scan these pages as they contain pointers
3636 * to additional allocations like via ops->init_request().
3637 */
3638 kmemleak_alloc(p, order_to_size(this_order), 1, GFP_NOIO);
3639 entries_per_page = order_to_size(this_order) / rq_size;
3640 to_do = min(entries_per_page, depth - i);
3641 left -= to_do * rq_size;
3642 for (j = 0; j < to_do; j++) {
3643 struct request *rq = p;
3644
3645 tags->static_rqs[i] = rq;
3646 if (blk_mq_init_request(set, rq, hctx_idx, node)) {
3647 tags->static_rqs[i] = NULL;
3648 goto fail;
3649 }
3650
3651 p += rq_size;
3652 i++;
3653 }
3654 }
3655 return 0;
3656
3657 fail:
3658 blk_mq_free_rqs(set, tags, hctx_idx);
3659 return -ENOMEM;
3660 }
3661
3662 struct rq_iter_data {
3663 struct blk_mq_hw_ctx *hctx;
3664 bool has_rq;
3665 };
3666
blk_mq_has_request(struct request * rq,void * data)3667 static bool blk_mq_has_request(struct request *rq, void *data)
3668 {
3669 struct rq_iter_data *iter_data = data;
3670
3671 if (rq->mq_hctx != iter_data->hctx)
3672 return true;
3673 iter_data->has_rq = true;
3674 return false;
3675 }
3676
blk_mq_hctx_has_requests(struct blk_mq_hw_ctx * hctx)3677 static bool blk_mq_hctx_has_requests(struct blk_mq_hw_ctx *hctx)
3678 {
3679 struct blk_mq_tags *tags = hctx->sched_tags ?
3680 hctx->sched_tags : hctx->tags;
3681 struct rq_iter_data data = {
3682 .hctx = hctx,
3683 };
3684 int srcu_idx;
3685
3686 srcu_idx = srcu_read_lock(&hctx->queue->tag_set->tags_srcu);
3687 blk_mq_all_tag_iter(tags, blk_mq_has_request, &data);
3688 srcu_read_unlock(&hctx->queue->tag_set->tags_srcu, srcu_idx);
3689
3690 return data.has_rq;
3691 }
3692
blk_mq_hctx_has_online_cpu(struct blk_mq_hw_ctx * hctx,unsigned int this_cpu)3693 static bool blk_mq_hctx_has_online_cpu(struct blk_mq_hw_ctx *hctx,
3694 unsigned int this_cpu)
3695 {
3696 enum hctx_type type = hctx->type;
3697 int cpu;
3698
3699 /*
3700 * hctx->cpumask has to rule out isolated CPUs, but userspace still
3701 * might submit IOs on these isolated CPUs, so use the queue map to
3702 * check if all CPUs mapped to this hctx are offline
3703 */
3704 for_each_online_cpu(cpu) {
3705 struct blk_mq_hw_ctx *h = blk_mq_map_queue_type(hctx->queue,
3706 type, cpu);
3707
3708 if (h != hctx)
3709 continue;
3710
3711 /* this hctx has at least one online CPU */
3712 if (this_cpu != cpu)
3713 return true;
3714 }
3715
3716 return false;
3717 }
3718
blk_mq_hctx_notify_offline(unsigned int cpu,struct hlist_node * node)3719 static int blk_mq_hctx_notify_offline(unsigned int cpu, struct hlist_node *node)
3720 {
3721 struct blk_mq_hw_ctx *hctx = hlist_entry_safe(node,
3722 struct blk_mq_hw_ctx, cpuhp_online);
3723 int ret = 0;
3724
3725 if (!hctx->nr_ctx || blk_mq_hctx_has_online_cpu(hctx, cpu))
3726 return 0;
3727
3728 /*
3729 * Prevent new request from being allocated on the current hctx.
3730 *
3731 * The smp_mb__after_atomic() Pairs with the implied barrier in
3732 * test_and_set_bit_lock in sbitmap_get(). Ensures the inactive flag is
3733 * seen once we return from the tag allocator.
3734 */
3735 set_bit(BLK_MQ_S_INACTIVE, &hctx->state);
3736 smp_mb__after_atomic();
3737
3738 /*
3739 * Try to grab a reference to the queue and wait for any outstanding
3740 * requests. If we could not grab a reference the queue has been
3741 * frozen and there are no requests.
3742 */
3743 if (percpu_ref_tryget(&hctx->queue->q_usage_counter)) {
3744 while (blk_mq_hctx_has_requests(hctx)) {
3745 /*
3746 * The wakeup capable IRQ handler of block device is
3747 * not called during suspend. Skip the loop by checking
3748 * pm_wakeup_pending to prevent the deadlock and improve
3749 * suspend latency.
3750 */
3751 if (pm_wakeup_pending()) {
3752 clear_bit(BLK_MQ_S_INACTIVE, &hctx->state);
3753 ret = -EBUSY;
3754 break;
3755 }
3756 msleep(5);
3757 }
3758 percpu_ref_put(&hctx->queue->q_usage_counter);
3759 }
3760
3761 return ret;
3762 }
3763
3764 /*
3765 * Check if one CPU is mapped to the specified hctx
3766 *
3767 * Isolated CPUs have been ruled out from hctx->cpumask, which is supposed
3768 * to be used for scheduling kworker only. For other usage, please call this
3769 * helper for checking if one CPU belongs to the specified hctx
3770 */
blk_mq_cpu_mapped_to_hctx(unsigned int cpu,const struct blk_mq_hw_ctx * hctx)3771 static bool blk_mq_cpu_mapped_to_hctx(unsigned int cpu,
3772 const struct blk_mq_hw_ctx *hctx)
3773 {
3774 struct blk_mq_hw_ctx *mapped_hctx = blk_mq_map_queue_type(hctx->queue,
3775 hctx->type, cpu);
3776
3777 return mapped_hctx == hctx;
3778 }
3779
blk_mq_hctx_notify_online(unsigned int cpu,struct hlist_node * node)3780 static int blk_mq_hctx_notify_online(unsigned int cpu, struct hlist_node *node)
3781 {
3782 struct blk_mq_hw_ctx *hctx = hlist_entry_safe(node,
3783 struct blk_mq_hw_ctx, cpuhp_online);
3784
3785 if (blk_mq_cpu_mapped_to_hctx(cpu, hctx))
3786 clear_bit(BLK_MQ_S_INACTIVE, &hctx->state);
3787 return 0;
3788 }
3789
3790 /*
3791 * 'cpu' is going away. splice any existing rq_list entries from this
3792 * software queue to the hw queue dispatch list, and ensure that it
3793 * gets run.
3794 */
blk_mq_hctx_notify_dead(unsigned int cpu,struct hlist_node * node)3795 static int blk_mq_hctx_notify_dead(unsigned int cpu, struct hlist_node *node)
3796 {
3797 struct blk_mq_hw_ctx *hctx;
3798 struct blk_mq_ctx *ctx;
3799 LIST_HEAD(tmp);
3800 enum hctx_type type;
3801
3802 hctx = hlist_entry_safe(node, struct blk_mq_hw_ctx, cpuhp_dead);
3803 if (!blk_mq_cpu_mapped_to_hctx(cpu, hctx))
3804 return 0;
3805
3806 ctx = __blk_mq_get_ctx(hctx->queue, cpu);
3807 type = hctx->type;
3808
3809 spin_lock(&ctx->lock);
3810 if (!list_empty(&ctx->rq_lists[type])) {
3811 list_splice_init(&ctx->rq_lists[type], &tmp);
3812 blk_mq_hctx_clear_pending(hctx, ctx);
3813 }
3814 spin_unlock(&ctx->lock);
3815
3816 if (list_empty(&tmp))
3817 return 0;
3818
3819 spin_lock(&hctx->lock);
3820 list_splice_tail_init(&tmp, &hctx->dispatch);
3821 spin_unlock(&hctx->lock);
3822
3823 blk_mq_run_hw_queue(hctx, true);
3824 return 0;
3825 }
3826
__blk_mq_remove_cpuhp(struct blk_mq_hw_ctx * hctx)3827 static void __blk_mq_remove_cpuhp(struct blk_mq_hw_ctx *hctx)
3828 {
3829 lockdep_assert_held(&blk_mq_cpuhp_lock);
3830
3831 if (!(hctx->flags & BLK_MQ_F_STACKING) &&
3832 !hlist_unhashed(&hctx->cpuhp_online)) {
3833 cpuhp_state_remove_instance_nocalls(CPUHP_AP_BLK_MQ_ONLINE,
3834 &hctx->cpuhp_online);
3835 INIT_HLIST_NODE(&hctx->cpuhp_online);
3836 }
3837
3838 if (!hlist_unhashed(&hctx->cpuhp_dead)) {
3839 cpuhp_state_remove_instance_nocalls(CPUHP_BLK_MQ_DEAD,
3840 &hctx->cpuhp_dead);
3841 INIT_HLIST_NODE(&hctx->cpuhp_dead);
3842 }
3843 }
3844
blk_mq_remove_cpuhp(struct blk_mq_hw_ctx * hctx)3845 static void blk_mq_remove_cpuhp(struct blk_mq_hw_ctx *hctx)
3846 {
3847 mutex_lock(&blk_mq_cpuhp_lock);
3848 __blk_mq_remove_cpuhp(hctx);
3849 mutex_unlock(&blk_mq_cpuhp_lock);
3850 }
3851
__blk_mq_add_cpuhp(struct blk_mq_hw_ctx * hctx)3852 static void __blk_mq_add_cpuhp(struct blk_mq_hw_ctx *hctx)
3853 {
3854 lockdep_assert_held(&blk_mq_cpuhp_lock);
3855
3856 if (!(hctx->flags & BLK_MQ_F_STACKING) &&
3857 hlist_unhashed(&hctx->cpuhp_online))
3858 cpuhp_state_add_instance_nocalls(CPUHP_AP_BLK_MQ_ONLINE,
3859 &hctx->cpuhp_online);
3860
3861 if (hlist_unhashed(&hctx->cpuhp_dead))
3862 cpuhp_state_add_instance_nocalls(CPUHP_BLK_MQ_DEAD,
3863 &hctx->cpuhp_dead);
3864 }
3865
__blk_mq_remove_cpuhp_list(struct list_head * head)3866 static void __blk_mq_remove_cpuhp_list(struct list_head *head)
3867 {
3868 struct blk_mq_hw_ctx *hctx;
3869
3870 lockdep_assert_held(&blk_mq_cpuhp_lock);
3871
3872 list_for_each_entry(hctx, head, hctx_list)
3873 __blk_mq_remove_cpuhp(hctx);
3874 }
3875
3876 /*
3877 * Unregister cpuhp callbacks from exited hw queues
3878 *
3879 * Safe to call if this `request_queue` is live
3880 */
blk_mq_remove_hw_queues_cpuhp(struct request_queue * q)3881 static void blk_mq_remove_hw_queues_cpuhp(struct request_queue *q)
3882 {
3883 LIST_HEAD(hctx_list);
3884
3885 spin_lock(&q->unused_hctx_lock);
3886 list_splice_init(&q->unused_hctx_list, &hctx_list);
3887 spin_unlock(&q->unused_hctx_lock);
3888
3889 mutex_lock(&blk_mq_cpuhp_lock);
3890 __blk_mq_remove_cpuhp_list(&hctx_list);
3891 mutex_unlock(&blk_mq_cpuhp_lock);
3892
3893 spin_lock(&q->unused_hctx_lock);
3894 list_splice(&hctx_list, &q->unused_hctx_list);
3895 spin_unlock(&q->unused_hctx_lock);
3896 }
3897
3898 /*
3899 * Register cpuhp callbacks from all hw queues
3900 *
3901 * Safe to call if this `request_queue` is live
3902 */
blk_mq_add_hw_queues_cpuhp(struct request_queue * q)3903 static void blk_mq_add_hw_queues_cpuhp(struct request_queue *q)
3904 {
3905 struct blk_mq_hw_ctx *hctx;
3906 unsigned long i;
3907
3908 mutex_lock(&blk_mq_cpuhp_lock);
3909 queue_for_each_hw_ctx(q, hctx, i)
3910 __blk_mq_add_cpuhp(hctx);
3911 mutex_unlock(&blk_mq_cpuhp_lock);
3912 }
3913
3914 /*
3915 * Before freeing hw queue, clearing the flush request reference in
3916 * tags->rqs[] for avoiding potential UAF.
3917 */
blk_mq_clear_flush_rq_mapping(struct blk_mq_tags * tags,unsigned int queue_depth,struct request * flush_rq)3918 static void blk_mq_clear_flush_rq_mapping(struct blk_mq_tags *tags,
3919 unsigned int queue_depth, struct request *flush_rq)
3920 {
3921 int i;
3922
3923 /* The hw queue may not be mapped yet */
3924 if (!tags)
3925 return;
3926
3927 WARN_ON_ONCE(req_ref_read(flush_rq) != 0);
3928
3929 for (i = 0; i < queue_depth; i++)
3930 cmpxchg(&tags->rqs[i], flush_rq, NULL);
3931 }
3932
blk_free_flush_queue_callback(struct rcu_head * head)3933 static void blk_free_flush_queue_callback(struct rcu_head *head)
3934 {
3935 struct blk_flush_queue *fq =
3936 container_of(head, struct blk_flush_queue, rcu_head);
3937
3938 blk_free_flush_queue(fq);
3939 }
3940
3941 /* hctx->ctxs will be freed in queue's release handler */
blk_mq_exit_hctx(struct request_queue * q,struct blk_mq_tag_set * set,struct blk_mq_hw_ctx * hctx,unsigned int hctx_idx)3942 static void blk_mq_exit_hctx(struct request_queue *q,
3943 struct blk_mq_tag_set *set,
3944 struct blk_mq_hw_ctx *hctx, unsigned int hctx_idx)
3945 {
3946 struct request *flush_rq = hctx->fq->flush_rq;
3947
3948 if (blk_mq_hw_queue_mapped(hctx))
3949 blk_mq_tag_idle(hctx);
3950
3951 if (blk_queue_init_done(q))
3952 blk_mq_clear_flush_rq_mapping(set->tags[hctx_idx],
3953 set->queue_depth, flush_rq);
3954 if (set->ops->exit_request)
3955 set->ops->exit_request(set, flush_rq, hctx_idx);
3956
3957 if (set->ops->exit_hctx)
3958 set->ops->exit_hctx(hctx, hctx_idx);
3959
3960 call_srcu(&set->tags_srcu, &hctx->fq->rcu_head,
3961 blk_free_flush_queue_callback);
3962 hctx->fq = NULL;
3963
3964 spin_lock(&q->unused_hctx_lock);
3965 list_add(&hctx->hctx_list, &q->unused_hctx_list);
3966 spin_unlock(&q->unused_hctx_lock);
3967 }
3968
blk_mq_exit_hw_queues(struct request_queue * q,struct blk_mq_tag_set * set,int nr_queue)3969 static void blk_mq_exit_hw_queues(struct request_queue *q,
3970 struct blk_mq_tag_set *set, int nr_queue)
3971 {
3972 struct blk_mq_hw_ctx *hctx;
3973 unsigned long i;
3974
3975 queue_for_each_hw_ctx(q, hctx, i) {
3976 if (i == nr_queue)
3977 break;
3978 blk_mq_remove_cpuhp(hctx);
3979 blk_mq_exit_hctx(q, set, hctx, i);
3980 }
3981 }
3982
blk_mq_init_hctx(struct request_queue * q,struct blk_mq_tag_set * set,struct blk_mq_hw_ctx * hctx,unsigned hctx_idx)3983 static int blk_mq_init_hctx(struct request_queue *q,
3984 struct blk_mq_tag_set *set,
3985 struct blk_mq_hw_ctx *hctx, unsigned hctx_idx)
3986 {
3987 gfp_t gfp = GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY;
3988
3989 hctx->fq = blk_alloc_flush_queue(hctx->numa_node, set->cmd_size, gfp);
3990 if (!hctx->fq)
3991 goto fail;
3992
3993 hctx->queue_num = hctx_idx;
3994
3995 hctx->tags = set->tags[hctx_idx];
3996
3997 if (set->ops->init_hctx &&
3998 set->ops->init_hctx(hctx, set->driver_data, hctx_idx))
3999 goto fail_free_fq;
4000
4001 if (blk_mq_init_request(set, hctx->fq->flush_rq, hctx_idx,
4002 hctx->numa_node))
4003 goto exit_hctx;
4004
4005 return 0;
4006
4007 exit_hctx:
4008 if (set->ops->exit_hctx)
4009 set->ops->exit_hctx(hctx, hctx_idx);
4010 fail_free_fq:
4011 blk_free_flush_queue(hctx->fq);
4012 hctx->fq = NULL;
4013 fail:
4014 return -1;
4015 }
4016
4017 static struct blk_mq_hw_ctx *
blk_mq_alloc_hctx(struct request_queue * q,struct blk_mq_tag_set * set,int node)4018 blk_mq_alloc_hctx(struct request_queue *q, struct blk_mq_tag_set *set,
4019 int node)
4020 {
4021 struct blk_mq_hw_ctx *hctx;
4022 gfp_t gfp = GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY;
4023
4024 hctx = kzalloc_node(sizeof(struct blk_mq_hw_ctx), gfp, node);
4025 if (!hctx)
4026 goto fail_alloc_hctx;
4027
4028 if (!zalloc_cpumask_var_node(&hctx->cpumask, gfp, node))
4029 goto free_hctx;
4030
4031 atomic_set(&hctx->nr_active, 0);
4032 if (node == NUMA_NO_NODE)
4033 node = set->numa_node;
4034 hctx->numa_node = node;
4035
4036 INIT_DELAYED_WORK(&hctx->run_work, blk_mq_run_work_fn);
4037 spin_lock_init(&hctx->lock);
4038 INIT_LIST_HEAD(&hctx->dispatch);
4039 INIT_HLIST_NODE(&hctx->cpuhp_dead);
4040 INIT_HLIST_NODE(&hctx->cpuhp_online);
4041 hctx->queue = q;
4042 hctx->flags = set->flags & ~BLK_MQ_F_TAG_QUEUE_SHARED;
4043
4044 INIT_LIST_HEAD(&hctx->hctx_list);
4045
4046 /*
4047 * Allocate space for all possible cpus to avoid allocation at
4048 * runtime
4049 */
4050 hctx->ctxs = kmalloc_array_node(nr_cpu_ids, sizeof(void *),
4051 gfp, node);
4052 if (!hctx->ctxs)
4053 goto free_cpumask;
4054
4055 if (sbitmap_init_node(&hctx->ctx_map, nr_cpu_ids, ilog2(8),
4056 gfp, node, false, false))
4057 goto free_ctxs;
4058 hctx->nr_ctx = 0;
4059
4060 spin_lock_init(&hctx->dispatch_wait_lock);
4061 init_waitqueue_func_entry(&hctx->dispatch_wait, blk_mq_dispatch_wake);
4062 INIT_LIST_HEAD(&hctx->dispatch_wait.entry);
4063
4064 blk_mq_hctx_kobj_init(hctx);
4065
4066 return hctx;
4067
4068 free_ctxs:
4069 kfree(hctx->ctxs);
4070 free_cpumask:
4071 free_cpumask_var(hctx->cpumask);
4072 free_hctx:
4073 kfree(hctx);
4074 fail_alloc_hctx:
4075 return NULL;
4076 }
4077
blk_mq_init_cpu_queues(struct request_queue * q,unsigned int nr_hw_queues)4078 static void blk_mq_init_cpu_queues(struct request_queue *q,
4079 unsigned int nr_hw_queues)
4080 {
4081 struct blk_mq_tag_set *set = q->tag_set;
4082 unsigned int i, j;
4083
4084 for_each_possible_cpu(i) {
4085 struct blk_mq_ctx *__ctx = per_cpu_ptr(q->queue_ctx, i);
4086 struct blk_mq_hw_ctx *hctx;
4087 int k;
4088
4089 __ctx->cpu = i;
4090 spin_lock_init(&__ctx->lock);
4091 for (k = HCTX_TYPE_DEFAULT; k < HCTX_MAX_TYPES; k++)
4092 INIT_LIST_HEAD(&__ctx->rq_lists[k]);
4093
4094 __ctx->queue = q;
4095
4096 /*
4097 * Set local node, IFF we have more than one hw queue. If
4098 * not, we remain on the home node of the device
4099 */
4100 for (j = 0; j < set->nr_maps; j++) {
4101 hctx = blk_mq_map_queue_type(q, j, i);
4102 if (nr_hw_queues > 1 && hctx->numa_node == NUMA_NO_NODE)
4103 hctx->numa_node = cpu_to_node(i);
4104 }
4105 }
4106 }
4107
blk_mq_alloc_map_and_rqs(struct blk_mq_tag_set * set,unsigned int hctx_idx,unsigned int depth)4108 struct blk_mq_tags *blk_mq_alloc_map_and_rqs(struct blk_mq_tag_set *set,
4109 unsigned int hctx_idx,
4110 unsigned int depth)
4111 {
4112 struct blk_mq_tags *tags;
4113 int ret;
4114
4115 tags = blk_mq_alloc_rq_map(set, hctx_idx, depth, set->reserved_tags);
4116 if (!tags)
4117 return NULL;
4118
4119 ret = blk_mq_alloc_rqs(set, tags, hctx_idx, depth);
4120 if (ret) {
4121 blk_mq_free_rq_map(set, tags);
4122 return NULL;
4123 }
4124
4125 return tags;
4126 }
4127
__blk_mq_alloc_map_and_rqs(struct blk_mq_tag_set * set,int hctx_idx)4128 static bool __blk_mq_alloc_map_and_rqs(struct blk_mq_tag_set *set,
4129 int hctx_idx)
4130 {
4131 if (blk_mq_is_shared_tags(set->flags)) {
4132 set->tags[hctx_idx] = set->shared_tags;
4133
4134 return true;
4135 }
4136
4137 set->tags[hctx_idx] = blk_mq_alloc_map_and_rqs(set, hctx_idx,
4138 set->queue_depth);
4139
4140 return set->tags[hctx_idx];
4141 }
4142
blk_mq_free_map_and_rqs(struct blk_mq_tag_set * set,struct blk_mq_tags * tags,unsigned int hctx_idx)4143 void blk_mq_free_map_and_rqs(struct blk_mq_tag_set *set,
4144 struct blk_mq_tags *tags,
4145 unsigned int hctx_idx)
4146 {
4147 if (tags) {
4148 blk_mq_free_rqs(set, tags, hctx_idx);
4149 blk_mq_free_rq_map(set, tags);
4150 }
4151 }
4152
__blk_mq_free_map_and_rqs(struct blk_mq_tag_set * set,unsigned int hctx_idx)4153 static void __blk_mq_free_map_and_rqs(struct blk_mq_tag_set *set,
4154 unsigned int hctx_idx)
4155 {
4156 if (!blk_mq_is_shared_tags(set->flags))
4157 blk_mq_free_map_and_rqs(set, set->tags[hctx_idx], hctx_idx);
4158
4159 set->tags[hctx_idx] = NULL;
4160 }
4161
blk_mq_map_swqueue(struct request_queue * q)4162 static void blk_mq_map_swqueue(struct request_queue *q)
4163 {
4164 unsigned int j, hctx_idx;
4165 unsigned long i;
4166 struct blk_mq_hw_ctx *hctx;
4167 struct blk_mq_ctx *ctx;
4168 struct blk_mq_tag_set *set = q->tag_set;
4169
4170 queue_for_each_hw_ctx(q, hctx, i) {
4171 cpumask_clear(hctx->cpumask);
4172 hctx->nr_ctx = 0;
4173 hctx->dispatch_from = NULL;
4174 }
4175
4176 /*
4177 * Map software to hardware queues.
4178 *
4179 * If the cpu isn't present, the cpu is mapped to first hctx.
4180 */
4181 for_each_possible_cpu(i) {
4182
4183 ctx = per_cpu_ptr(q->queue_ctx, i);
4184 for (j = 0; j < set->nr_maps; j++) {
4185 if (!set->map[j].nr_queues) {
4186 ctx->hctxs[j] = blk_mq_map_queue_type(q,
4187 HCTX_TYPE_DEFAULT, i);
4188 continue;
4189 }
4190 hctx_idx = set->map[j].mq_map[i];
4191 /* unmapped hw queue can be remapped after CPU topo changed */
4192 if (!set->tags[hctx_idx] &&
4193 !__blk_mq_alloc_map_and_rqs(set, hctx_idx)) {
4194 /*
4195 * If tags initialization fail for some hctx,
4196 * that hctx won't be brought online. In this
4197 * case, remap the current ctx to hctx[0] which
4198 * is guaranteed to always have tags allocated
4199 */
4200 set->map[j].mq_map[i] = 0;
4201 }
4202
4203 hctx = blk_mq_map_queue_type(q, j, i);
4204 ctx->hctxs[j] = hctx;
4205 /*
4206 * If the CPU is already set in the mask, then we've
4207 * mapped this one already. This can happen if
4208 * devices share queues across queue maps.
4209 */
4210 if (cpumask_test_cpu(i, hctx->cpumask))
4211 continue;
4212
4213 cpumask_set_cpu(i, hctx->cpumask);
4214 hctx->type = j;
4215 ctx->index_hw[hctx->type] = hctx->nr_ctx;
4216 hctx->ctxs[hctx->nr_ctx++] = ctx;
4217
4218 /*
4219 * If the nr_ctx type overflows, we have exceeded the
4220 * amount of sw queues we can support.
4221 */
4222 BUG_ON(!hctx->nr_ctx);
4223 }
4224
4225 for (; j < HCTX_MAX_TYPES; j++)
4226 ctx->hctxs[j] = blk_mq_map_queue_type(q,
4227 HCTX_TYPE_DEFAULT, i);
4228 }
4229
4230 queue_for_each_hw_ctx(q, hctx, i) {
4231 int cpu;
4232
4233 /*
4234 * If no software queues are mapped to this hardware queue,
4235 * disable it and free the request entries.
4236 */
4237 if (!hctx->nr_ctx) {
4238 /* Never unmap queue 0. We need it as a
4239 * fallback in case of a new remap fails
4240 * allocation
4241 */
4242 if (i)
4243 __blk_mq_free_map_and_rqs(set, i);
4244
4245 hctx->tags = NULL;
4246 continue;
4247 }
4248
4249 hctx->tags = set->tags[i];
4250 WARN_ON(!hctx->tags);
4251
4252 /*
4253 * Set the map size to the number of mapped software queues.
4254 * This is more accurate and more efficient than looping
4255 * over all possibly mapped software queues.
4256 */
4257 sbitmap_resize(&hctx->ctx_map, hctx->nr_ctx);
4258
4259 /*
4260 * Rule out isolated CPUs from hctx->cpumask to avoid
4261 * running block kworker on isolated CPUs.
4262 * FIXME: cpuset should propagate further changes to isolated CPUs
4263 * here.
4264 */
4265 rcu_read_lock();
4266 for_each_cpu(cpu, hctx->cpumask) {
4267 if (cpu_is_isolated(cpu))
4268 cpumask_clear_cpu(cpu, hctx->cpumask);
4269 }
4270 rcu_read_unlock();
4271
4272 /*
4273 * Initialize batch roundrobin counts
4274 */
4275 hctx->next_cpu = blk_mq_first_mapped_cpu(hctx);
4276 hctx->next_cpu_batch = BLK_MQ_CPU_WORK_BATCH;
4277 }
4278 }
4279
4280 /*
4281 * Caller needs to ensure that we're either frozen/quiesced, or that
4282 * the queue isn't live yet.
4283 */
queue_set_hctx_shared(struct request_queue * q,bool shared)4284 static void queue_set_hctx_shared(struct request_queue *q, bool shared)
4285 {
4286 struct blk_mq_hw_ctx *hctx;
4287 unsigned long i;
4288
4289 queue_for_each_hw_ctx(q, hctx, i) {
4290 if (shared) {
4291 hctx->flags |= BLK_MQ_F_TAG_QUEUE_SHARED;
4292 } else {
4293 blk_mq_tag_idle(hctx);
4294 hctx->flags &= ~BLK_MQ_F_TAG_QUEUE_SHARED;
4295 }
4296 }
4297 }
4298
blk_mq_update_tag_set_shared(struct blk_mq_tag_set * set,bool shared)4299 static void blk_mq_update_tag_set_shared(struct blk_mq_tag_set *set,
4300 bool shared)
4301 {
4302 struct request_queue *q;
4303 unsigned int memflags;
4304
4305 lockdep_assert_held(&set->tag_list_lock);
4306
4307 list_for_each_entry(q, &set->tag_list, tag_set_list) {
4308 memflags = blk_mq_freeze_queue(q);
4309 queue_set_hctx_shared(q, shared);
4310 blk_mq_unfreeze_queue(q, memflags);
4311 }
4312 }
4313
blk_mq_del_queue_tag_set(struct request_queue * q)4314 static void blk_mq_del_queue_tag_set(struct request_queue *q)
4315 {
4316 struct blk_mq_tag_set *set = q->tag_set;
4317
4318 mutex_lock(&set->tag_list_lock);
4319 list_del_rcu(&q->tag_set_list);
4320 if (list_is_singular(&set->tag_list)) {
4321 /* just transitioned to unshared */
4322 set->flags &= ~BLK_MQ_F_TAG_QUEUE_SHARED;
4323 /* update existing queue */
4324 blk_mq_update_tag_set_shared(set, false);
4325 }
4326 mutex_unlock(&set->tag_list_lock);
4327 }
4328
blk_mq_add_queue_tag_set(struct blk_mq_tag_set * set,struct request_queue * q)4329 static void blk_mq_add_queue_tag_set(struct blk_mq_tag_set *set,
4330 struct request_queue *q)
4331 {
4332 mutex_lock(&set->tag_list_lock);
4333
4334 /*
4335 * Check to see if we're transitioning to shared (from 1 to 2 queues).
4336 */
4337 if (!list_empty(&set->tag_list) &&
4338 !(set->flags & BLK_MQ_F_TAG_QUEUE_SHARED)) {
4339 set->flags |= BLK_MQ_F_TAG_QUEUE_SHARED;
4340 /* update existing queue */
4341 blk_mq_update_tag_set_shared(set, true);
4342 }
4343 if (set->flags & BLK_MQ_F_TAG_QUEUE_SHARED)
4344 queue_set_hctx_shared(q, true);
4345 list_add_tail_rcu(&q->tag_set_list, &set->tag_list);
4346
4347 mutex_unlock(&set->tag_list_lock);
4348 }
4349
4350 /* All allocations will be freed in release handler of q->mq_kobj */
blk_mq_alloc_ctxs(struct request_queue * q)4351 static int blk_mq_alloc_ctxs(struct request_queue *q)
4352 {
4353 struct blk_mq_ctxs *ctxs;
4354 int cpu;
4355
4356 ctxs = kzalloc_obj(*ctxs);
4357 if (!ctxs)
4358 return -ENOMEM;
4359
4360 ctxs->queue_ctx = alloc_percpu(struct blk_mq_ctx);
4361 if (!ctxs->queue_ctx)
4362 goto fail;
4363
4364 for_each_possible_cpu(cpu) {
4365 struct blk_mq_ctx *ctx = per_cpu_ptr(ctxs->queue_ctx, cpu);
4366 ctx->ctxs = ctxs;
4367 }
4368
4369 q->mq_kobj = &ctxs->kobj;
4370 q->queue_ctx = ctxs->queue_ctx;
4371
4372 return 0;
4373 fail:
4374 kfree(ctxs);
4375 return -ENOMEM;
4376 }
4377
4378 /*
4379 * It is the actual release handler for mq, but we do it from
4380 * request queue's release handler for avoiding use-after-free
4381 * and headache because q->mq_kobj shouldn't have been introduced,
4382 * but we can't group ctx/kctx kobj without it.
4383 */
blk_mq_release(struct request_queue * q)4384 void blk_mq_release(struct request_queue *q)
4385 {
4386 struct blk_mq_hw_ctx *hctx, *next;
4387 unsigned long i;
4388
4389 queue_for_each_hw_ctx(q, hctx, i)
4390 WARN_ON_ONCE(hctx && list_empty(&hctx->hctx_list));
4391
4392 /* all hctx are in .unused_hctx_list now */
4393 list_for_each_entry_safe(hctx, next, &q->unused_hctx_list, hctx_list) {
4394 list_del_init(&hctx->hctx_list);
4395 kobject_put(&hctx->kobj);
4396 }
4397
4398 kfree(q->queue_hw_ctx);
4399
4400 /*
4401 * release .mq_kobj and sw queue's kobject now because
4402 * both share lifetime with request queue.
4403 */
4404 blk_mq_sysfs_deinit(q);
4405 }
4406
blk_mq_alloc_queue(struct blk_mq_tag_set * set,struct queue_limits * lim,void * queuedata)4407 struct request_queue *blk_mq_alloc_queue(struct blk_mq_tag_set *set,
4408 struct queue_limits *lim, void *queuedata)
4409 {
4410 struct queue_limits default_lim = { };
4411 struct request_queue *q;
4412 int ret;
4413
4414 if (!lim)
4415 lim = &default_lim;
4416 lim->features |= BLK_FEAT_IO_STAT | BLK_FEAT_NOWAIT;
4417 if (set->nr_maps > HCTX_TYPE_POLL)
4418 lim->features |= BLK_FEAT_POLL;
4419
4420 q = blk_alloc_queue(lim, set->numa_node);
4421 if (IS_ERR(q))
4422 return q;
4423 q->queuedata = queuedata;
4424 ret = blk_mq_init_allocated_queue(set, q);
4425 if (ret) {
4426 blk_put_queue(q);
4427 return ERR_PTR(ret);
4428 }
4429 return q;
4430 }
4431 EXPORT_SYMBOL(blk_mq_alloc_queue);
4432
4433 /**
4434 * blk_mq_destroy_queue - shutdown a request queue
4435 * @q: request queue to shutdown
4436 *
4437 * This shuts down a request queue allocated by blk_mq_alloc_queue(). All future
4438 * requests will be failed with -ENODEV. The caller is responsible for dropping
4439 * the reference from blk_mq_alloc_queue() by calling blk_put_queue().
4440 *
4441 * Context: can sleep
4442 */
blk_mq_destroy_queue(struct request_queue * q)4443 void blk_mq_destroy_queue(struct request_queue *q)
4444 {
4445 WARN_ON_ONCE(!queue_is_mq(q));
4446 WARN_ON_ONCE(blk_queue_registered(q));
4447
4448 might_sleep();
4449
4450 blk_queue_flag_set(QUEUE_FLAG_DYING, q);
4451 blk_queue_start_drain(q);
4452 blk_mq_freeze_queue_wait(q);
4453
4454 blk_sync_queue(q);
4455 blk_mq_cancel_work_sync(q);
4456 blk_mq_exit_queue(q);
4457 }
4458 EXPORT_SYMBOL(blk_mq_destroy_queue);
4459
__blk_mq_alloc_disk(struct blk_mq_tag_set * set,struct queue_limits * lim,void * queuedata,struct lock_class_key * lkclass)4460 struct gendisk *__blk_mq_alloc_disk(struct blk_mq_tag_set *set,
4461 struct queue_limits *lim, void *queuedata,
4462 struct lock_class_key *lkclass)
4463 {
4464 struct request_queue *q;
4465 struct gendisk *disk;
4466
4467 q = blk_mq_alloc_queue(set, lim, queuedata);
4468 if (IS_ERR(q))
4469 return ERR_CAST(q);
4470
4471 disk = __alloc_disk_node(q, set->numa_node, lkclass);
4472 if (!disk) {
4473 blk_mq_destroy_queue(q);
4474 blk_put_queue(q);
4475 return ERR_PTR(-ENOMEM);
4476 }
4477 set_bit(GD_OWNS_QUEUE, &disk->state);
4478 return disk;
4479 }
4480 EXPORT_SYMBOL(__blk_mq_alloc_disk);
4481
blk_mq_alloc_disk_for_queue(struct request_queue * q,struct lock_class_key * lkclass)4482 struct gendisk *blk_mq_alloc_disk_for_queue(struct request_queue *q,
4483 struct lock_class_key *lkclass)
4484 {
4485 struct gendisk *disk;
4486
4487 if (!blk_get_queue(q))
4488 return NULL;
4489 disk = __alloc_disk_node(q, NUMA_NO_NODE, lkclass);
4490 if (!disk)
4491 blk_put_queue(q);
4492 return disk;
4493 }
4494 EXPORT_SYMBOL(blk_mq_alloc_disk_for_queue);
4495
4496 /*
4497 * Only hctx removed from cpuhp list can be reused
4498 */
blk_mq_hctx_is_reusable(struct blk_mq_hw_ctx * hctx)4499 static bool blk_mq_hctx_is_reusable(struct blk_mq_hw_ctx *hctx)
4500 {
4501 return hlist_unhashed(&hctx->cpuhp_online) &&
4502 hlist_unhashed(&hctx->cpuhp_dead);
4503 }
4504
blk_mq_alloc_and_init_hctx(struct blk_mq_tag_set * set,struct request_queue * q,int hctx_idx,int node)4505 static struct blk_mq_hw_ctx *blk_mq_alloc_and_init_hctx(
4506 struct blk_mq_tag_set *set, struct request_queue *q,
4507 int hctx_idx, int node)
4508 {
4509 struct blk_mq_hw_ctx *hctx = NULL, *tmp;
4510
4511 /* reuse dead hctx first */
4512 spin_lock(&q->unused_hctx_lock);
4513 list_for_each_entry(tmp, &q->unused_hctx_list, hctx_list) {
4514 if (tmp->numa_node == node && blk_mq_hctx_is_reusable(tmp)) {
4515 hctx = tmp;
4516 break;
4517 }
4518 }
4519 if (hctx)
4520 list_del_init(&hctx->hctx_list);
4521 spin_unlock(&q->unused_hctx_lock);
4522
4523 if (!hctx)
4524 hctx = blk_mq_alloc_hctx(q, set, node);
4525 if (!hctx)
4526 goto fail;
4527
4528 if (blk_mq_init_hctx(q, set, hctx, hctx_idx))
4529 goto free_hctx;
4530
4531 return hctx;
4532
4533 free_hctx:
4534 kobject_put(&hctx->kobj);
4535 fail:
4536 return NULL;
4537 }
4538
__blk_mq_realloc_hw_ctxs(struct blk_mq_tag_set * set,struct request_queue * q)4539 static void __blk_mq_realloc_hw_ctxs(struct blk_mq_tag_set *set,
4540 struct request_queue *q)
4541 {
4542 int i, j, end;
4543 struct blk_mq_hw_ctx **hctxs = q->queue_hw_ctx;
4544
4545 if (q->nr_hw_queues < set->nr_hw_queues) {
4546 struct blk_mq_hw_ctx **new_hctxs;
4547
4548 new_hctxs = kcalloc_node(set->nr_hw_queues,
4549 sizeof(*new_hctxs), GFP_KERNEL,
4550 set->numa_node);
4551 if (!new_hctxs)
4552 return;
4553 if (hctxs)
4554 memcpy(new_hctxs, hctxs, q->nr_hw_queues *
4555 sizeof(*hctxs));
4556 rcu_assign_pointer(q->queue_hw_ctx, new_hctxs);
4557 /*
4558 * Make sure reading the old queue_hw_ctx from other
4559 * context concurrently won't trigger uaf.
4560 */
4561 kfree_rcu_mightsleep(hctxs);
4562 hctxs = new_hctxs;
4563 }
4564
4565 for (i = 0; i < set->nr_hw_queues; i++) {
4566 int old_node;
4567 int node = blk_mq_get_hctx_node(set, i);
4568 struct blk_mq_hw_ctx *old_hctx = hctxs[i];
4569
4570 if (old_hctx) {
4571 old_node = old_hctx->numa_node;
4572 blk_mq_exit_hctx(q, set, old_hctx, i);
4573 }
4574
4575 hctxs[i] = blk_mq_alloc_and_init_hctx(set, q, i, node);
4576 if (!hctxs[i]) {
4577 if (!old_hctx)
4578 break;
4579 pr_warn("Allocate new hctx on node %d fails, fallback to previous one on node %d\n",
4580 node, old_node);
4581 hctxs[i] = blk_mq_alloc_and_init_hctx(set, q, i,
4582 old_node);
4583 WARN_ON_ONCE(!hctxs[i]);
4584 }
4585 }
4586 /*
4587 * Increasing nr_hw_queues fails. Free the newly allocated
4588 * hctxs and keep the previous q->nr_hw_queues.
4589 */
4590 if (i != set->nr_hw_queues) {
4591 j = q->nr_hw_queues;
4592 end = i;
4593 } else {
4594 j = i;
4595 end = q->nr_hw_queues;
4596 q->nr_hw_queues = set->nr_hw_queues;
4597 }
4598
4599 for (; j < end; j++) {
4600 struct blk_mq_hw_ctx *hctx = hctxs[j];
4601
4602 if (hctx) {
4603 blk_mq_exit_hctx(q, set, hctx, j);
4604 hctxs[j] = NULL;
4605 }
4606 }
4607 }
4608
blk_mq_realloc_hw_ctxs(struct blk_mq_tag_set * set,struct request_queue * q)4609 static void blk_mq_realloc_hw_ctxs(struct blk_mq_tag_set *set,
4610 struct request_queue *q)
4611 {
4612 __blk_mq_realloc_hw_ctxs(set, q);
4613
4614 /* unregister cpuhp callbacks for exited hctxs */
4615 blk_mq_remove_hw_queues_cpuhp(q);
4616
4617 /* register cpuhp for new initialized hctxs */
4618 blk_mq_add_hw_queues_cpuhp(q);
4619 }
4620
blk_mq_init_allocated_queue(struct blk_mq_tag_set * set,struct request_queue * q)4621 int blk_mq_init_allocated_queue(struct blk_mq_tag_set *set,
4622 struct request_queue *q)
4623 {
4624 /* mark the queue as mq asap */
4625 q->mq_ops = set->ops;
4626
4627 /*
4628 * ->tag_set has to be setup before initialize hctx, which cpuphp
4629 * handler needs it for checking queue mapping
4630 */
4631 q->tag_set = set;
4632
4633 if (blk_mq_alloc_ctxs(q))
4634 goto err_exit;
4635
4636 /* init q->mq_kobj and sw queues' kobjects */
4637 blk_mq_sysfs_init(q);
4638
4639 INIT_LIST_HEAD(&q->unused_hctx_list);
4640 spin_lock_init(&q->unused_hctx_lock);
4641
4642 blk_mq_realloc_hw_ctxs(set, q);
4643 if (!q->nr_hw_queues)
4644 goto err_hctxs;
4645
4646 INIT_WORK(&q->timeout_work, blk_mq_timeout_work);
4647 blk_queue_rq_timeout(q, set->timeout ? set->timeout : 30 * HZ);
4648
4649 q->queue_flags |= QUEUE_FLAG_MQ_DEFAULT;
4650
4651 INIT_DELAYED_WORK(&q->requeue_work, blk_mq_requeue_work);
4652 INIT_LIST_HEAD(&q->flush_list);
4653 INIT_LIST_HEAD(&q->requeue_list);
4654 spin_lock_init(&q->requeue_lock);
4655
4656 q->nr_requests = set->queue_depth;
4657 q->async_depth = set->queue_depth;
4658
4659 blk_mq_init_cpu_queues(q, set->nr_hw_queues);
4660 blk_mq_map_swqueue(q);
4661 blk_mq_add_queue_tag_set(set, q);
4662 return 0;
4663
4664 err_hctxs:
4665 blk_mq_release(q);
4666 err_exit:
4667 q->mq_ops = NULL;
4668 return -ENOMEM;
4669 }
4670 EXPORT_SYMBOL(blk_mq_init_allocated_queue);
4671
4672 /* tags can _not_ be used after returning from blk_mq_exit_queue */
blk_mq_exit_queue(struct request_queue * q)4673 void blk_mq_exit_queue(struct request_queue *q)
4674 {
4675 struct blk_mq_tag_set *set = q->tag_set;
4676
4677 /* Checks hctx->flags & BLK_MQ_F_TAG_QUEUE_SHARED. */
4678 blk_mq_exit_hw_queues(q, set, set->nr_hw_queues);
4679 /* May clear BLK_MQ_F_TAG_QUEUE_SHARED in hctx->flags. */
4680 blk_mq_del_queue_tag_set(q);
4681 }
4682
__blk_mq_alloc_rq_maps(struct blk_mq_tag_set * set)4683 static int __blk_mq_alloc_rq_maps(struct blk_mq_tag_set *set)
4684 {
4685 int i;
4686
4687 if (blk_mq_is_shared_tags(set->flags)) {
4688 set->shared_tags = blk_mq_alloc_map_and_rqs(set,
4689 BLK_MQ_NO_HCTX_IDX,
4690 set->queue_depth);
4691 if (!set->shared_tags)
4692 return -ENOMEM;
4693 }
4694
4695 for (i = 0; i < set->nr_hw_queues; i++) {
4696 if (!__blk_mq_alloc_map_and_rqs(set, i))
4697 goto out_unwind;
4698 cond_resched();
4699 }
4700
4701 return 0;
4702
4703 out_unwind:
4704 while (--i >= 0)
4705 __blk_mq_free_map_and_rqs(set, i);
4706
4707 if (blk_mq_is_shared_tags(set->flags)) {
4708 blk_mq_free_map_and_rqs(set, set->shared_tags,
4709 BLK_MQ_NO_HCTX_IDX);
4710 }
4711
4712 return -ENOMEM;
4713 }
4714
4715 /*
4716 * Allocate the request maps associated with this tag_set. Note that this
4717 * may reduce the depth asked for, if memory is tight. set->queue_depth
4718 * will be updated to reflect the allocated depth.
4719 */
blk_mq_alloc_set_map_and_rqs(struct blk_mq_tag_set * set)4720 static int blk_mq_alloc_set_map_and_rqs(struct blk_mq_tag_set *set)
4721 {
4722 unsigned int depth;
4723 int err;
4724
4725 depth = set->queue_depth;
4726 do {
4727 err = __blk_mq_alloc_rq_maps(set);
4728 if (!err)
4729 break;
4730
4731 set->queue_depth >>= 1;
4732 if (set->queue_depth < set->reserved_tags + BLK_MQ_TAG_MIN) {
4733 err = -ENOMEM;
4734 break;
4735 }
4736 } while (set->queue_depth);
4737
4738 if (!set->queue_depth || err) {
4739 pr_err("blk-mq: failed to allocate request map\n");
4740 return -ENOMEM;
4741 }
4742
4743 if (depth != set->queue_depth)
4744 pr_info("blk-mq: reduced tag depth (%u -> %u)\n",
4745 depth, set->queue_depth);
4746
4747 return 0;
4748 }
4749
blk_mq_update_queue_map(struct blk_mq_tag_set * set)4750 static void blk_mq_update_queue_map(struct blk_mq_tag_set *set)
4751 {
4752 /*
4753 * blk_mq_map_queues() and multiple .map_queues() implementations
4754 * expect that set->map[HCTX_TYPE_DEFAULT].nr_queues is set to the
4755 * number of hardware queues.
4756 */
4757 if (set->nr_maps == 1)
4758 set->map[HCTX_TYPE_DEFAULT].nr_queues = set->nr_hw_queues;
4759
4760 if (set->ops->map_queues) {
4761 int i;
4762
4763 /*
4764 * transport .map_queues is usually done in the following
4765 * way:
4766 *
4767 * for (queue = 0; queue < set->nr_hw_queues; queue++) {
4768 * mask = get_cpu_mask(queue)
4769 * for_each_cpu(cpu, mask)
4770 * set->map[x].mq_map[cpu] = queue;
4771 * }
4772 *
4773 * When we need to remap, the table has to be cleared for
4774 * killing stale mapping since one CPU may not be mapped
4775 * to any hw queue.
4776 */
4777 for (i = 0; i < set->nr_maps; i++)
4778 blk_mq_clear_mq_map(&set->map[i]);
4779
4780 set->ops->map_queues(set);
4781 } else {
4782 BUG_ON(set->nr_maps > 1);
4783 blk_mq_map_queues(&set->map[HCTX_TYPE_DEFAULT]);
4784 }
4785 }
4786
blk_mq_prealloc_tag_set_tags(struct blk_mq_tag_set * set,int new_nr_hw_queues)4787 static struct blk_mq_tags **blk_mq_prealloc_tag_set_tags(
4788 struct blk_mq_tag_set *set,
4789 int new_nr_hw_queues)
4790 {
4791 struct blk_mq_tags **new_tags;
4792 int i;
4793
4794 if (set->nr_hw_queues >= new_nr_hw_queues)
4795 return NULL;
4796
4797 new_tags = kcalloc_node(new_nr_hw_queues, sizeof(struct blk_mq_tags *),
4798 GFP_KERNEL, set->numa_node);
4799 if (!new_tags)
4800 return ERR_PTR(-ENOMEM);
4801
4802 if (set->tags)
4803 memcpy(new_tags, set->tags, set->nr_hw_queues *
4804 sizeof(*set->tags));
4805
4806 for (i = set->nr_hw_queues; i < new_nr_hw_queues; i++) {
4807 if (blk_mq_is_shared_tags(set->flags)) {
4808 new_tags[i] = set->shared_tags;
4809 } else {
4810 new_tags[i] = blk_mq_alloc_map_and_rqs(set, i,
4811 set->queue_depth);
4812 if (!new_tags[i])
4813 goto out_unwind;
4814 }
4815 cond_resched();
4816 }
4817
4818 return new_tags;
4819 out_unwind:
4820 while (--i >= set->nr_hw_queues) {
4821 if (!blk_mq_is_shared_tags(set->flags))
4822 blk_mq_free_map_and_rqs(set, new_tags[i], i);
4823 }
4824 kfree(new_tags);
4825 return ERR_PTR(-ENOMEM);
4826 }
4827
4828 /*
4829 * Alloc a tag set to be associated with one or more request queues.
4830 * May fail with EINVAL for various error conditions. May adjust the
4831 * requested depth down, if it's too large. In that case, the set
4832 * value will be stored in set->queue_depth.
4833 */
blk_mq_alloc_tag_set(struct blk_mq_tag_set * set)4834 int blk_mq_alloc_tag_set(struct blk_mq_tag_set *set)
4835 {
4836 int i, ret;
4837
4838 BUILD_BUG_ON(BLK_MQ_MAX_DEPTH > 1 << BLK_MQ_UNIQUE_TAG_BITS);
4839
4840 if (!set->nr_hw_queues)
4841 return -EINVAL;
4842 if (!set->queue_depth)
4843 return -EINVAL;
4844 if (set->queue_depth < set->reserved_tags + BLK_MQ_TAG_MIN)
4845 return -EINVAL;
4846
4847 if (!set->ops->queue_rq)
4848 return -EINVAL;
4849
4850 if (!set->ops->get_budget ^ !set->ops->put_budget)
4851 return -EINVAL;
4852
4853 if (set->queue_depth > BLK_MQ_MAX_DEPTH) {
4854 pr_info("blk-mq: reduced tag depth to %u\n",
4855 BLK_MQ_MAX_DEPTH);
4856 set->queue_depth = BLK_MQ_MAX_DEPTH;
4857 }
4858
4859 if (!set->nr_maps)
4860 set->nr_maps = 1;
4861 else if (set->nr_maps > HCTX_MAX_TYPES)
4862 return -EINVAL;
4863
4864 /*
4865 * If a crashdump is active, then we are potentially in a very
4866 * memory constrained environment. Limit us to 64 tags to prevent
4867 * using too much memory.
4868 */
4869 if (is_kdump_kernel())
4870 set->queue_depth = min(64U, set->queue_depth);
4871
4872 /*
4873 * There is no use for more h/w queues than cpus if we just have
4874 * a single map
4875 */
4876 if (set->nr_maps == 1 && set->nr_hw_queues > nr_cpu_ids)
4877 set->nr_hw_queues = nr_cpu_ids;
4878
4879 if (set->flags & BLK_MQ_F_BLOCKING) {
4880 set->srcu = kmalloc_obj(*set->srcu);
4881 if (!set->srcu)
4882 return -ENOMEM;
4883 ret = init_srcu_struct(set->srcu);
4884 if (ret)
4885 goto out_free_srcu;
4886 }
4887 ret = init_srcu_struct(&set->tags_srcu);
4888 if (ret)
4889 goto out_cleanup_srcu;
4890
4891 init_rwsem(&set->update_nr_hwq_lock);
4892
4893 ret = -ENOMEM;
4894 set->tags = kcalloc_node(set->nr_hw_queues,
4895 sizeof(struct blk_mq_tags *), GFP_KERNEL,
4896 set->numa_node);
4897 if (!set->tags)
4898 goto out_cleanup_tags_srcu;
4899
4900 for (i = 0; i < set->nr_maps; i++) {
4901 set->map[i].mq_map = kcalloc_node(nr_cpu_ids,
4902 sizeof(set->map[i].mq_map[0]),
4903 GFP_KERNEL, set->numa_node);
4904 if (!set->map[i].mq_map)
4905 goto out_free_mq_map;
4906 set->map[i].nr_queues = set->nr_hw_queues;
4907 }
4908
4909 blk_mq_update_queue_map(set);
4910
4911 ret = blk_mq_alloc_set_map_and_rqs(set);
4912 if (ret)
4913 goto out_free_mq_map;
4914
4915 mutex_init(&set->tag_list_lock);
4916 INIT_LIST_HEAD(&set->tag_list);
4917
4918 return 0;
4919
4920 out_free_mq_map:
4921 for (i = 0; i < set->nr_maps; i++) {
4922 kfree(set->map[i].mq_map);
4923 set->map[i].mq_map = NULL;
4924 }
4925 kfree(set->tags);
4926 set->tags = NULL;
4927 out_cleanup_tags_srcu:
4928 cleanup_srcu_struct(&set->tags_srcu);
4929 out_cleanup_srcu:
4930 if (set->flags & BLK_MQ_F_BLOCKING)
4931 cleanup_srcu_struct(set->srcu);
4932 out_free_srcu:
4933 if (set->flags & BLK_MQ_F_BLOCKING)
4934 kfree(set->srcu);
4935 return ret;
4936 }
4937 EXPORT_SYMBOL(blk_mq_alloc_tag_set);
4938
4939 /* allocate and initialize a tagset for a simple single-queue device */
blk_mq_alloc_sq_tag_set(struct blk_mq_tag_set * set,const struct blk_mq_ops * ops,unsigned int queue_depth,unsigned int set_flags)4940 int blk_mq_alloc_sq_tag_set(struct blk_mq_tag_set *set,
4941 const struct blk_mq_ops *ops, unsigned int queue_depth,
4942 unsigned int set_flags)
4943 {
4944 memset(set, 0, sizeof(*set));
4945 set->ops = ops;
4946 set->nr_hw_queues = 1;
4947 set->nr_maps = 1;
4948 set->queue_depth = queue_depth;
4949 set->numa_node = NUMA_NO_NODE;
4950 set->flags = set_flags;
4951 return blk_mq_alloc_tag_set(set);
4952 }
4953 EXPORT_SYMBOL_GPL(blk_mq_alloc_sq_tag_set);
4954
blk_mq_free_tag_set(struct blk_mq_tag_set * set)4955 void blk_mq_free_tag_set(struct blk_mq_tag_set *set)
4956 {
4957 int i, j;
4958
4959 for (i = 0; i < set->nr_hw_queues; i++)
4960 __blk_mq_free_map_and_rqs(set, i);
4961
4962 if (blk_mq_is_shared_tags(set->flags)) {
4963 blk_mq_free_map_and_rqs(set, set->shared_tags,
4964 BLK_MQ_NO_HCTX_IDX);
4965 }
4966
4967 for (j = 0; j < set->nr_maps; j++) {
4968 kfree(set->map[j].mq_map);
4969 set->map[j].mq_map = NULL;
4970 }
4971
4972 kfree(set->tags);
4973 set->tags = NULL;
4974
4975 srcu_barrier(&set->tags_srcu);
4976 cleanup_srcu_struct(&set->tags_srcu);
4977 if (set->flags & BLK_MQ_F_BLOCKING) {
4978 srcu_barrier(set->srcu);
4979 cleanup_srcu_struct(set->srcu);
4980 kfree(set->srcu);
4981 }
4982 }
4983 EXPORT_SYMBOL(blk_mq_free_tag_set);
4984
blk_mq_update_nr_requests(struct request_queue * q,struct elevator_tags * et,unsigned int nr)4985 struct elevator_tags *blk_mq_update_nr_requests(struct request_queue *q,
4986 struct elevator_tags *et,
4987 unsigned int nr)
4988 {
4989 struct blk_mq_tag_set *set = q->tag_set;
4990 struct elevator_tags *old_et = NULL;
4991 struct blk_mq_hw_ctx *hctx;
4992 unsigned long i;
4993
4994 blk_mq_quiesce_queue(q);
4995
4996 if (blk_mq_is_shared_tags(set->flags)) {
4997 /*
4998 * Shared tags, for sched tags, we allocate max initially hence
4999 * tags can't grow, see blk_mq_alloc_sched_tags().
5000 */
5001 if (q->elevator)
5002 blk_mq_tag_update_sched_shared_tags(q, nr);
5003 else
5004 blk_mq_tag_resize_shared_tags(set, nr);
5005 } else if (!q->elevator) {
5006 /*
5007 * Non-shared hardware tags, nr is already checked from
5008 * queue_requests_store() and tags can't grow.
5009 */
5010 queue_for_each_hw_ctx(q, hctx, i) {
5011 if (!hctx->tags)
5012 continue;
5013 sbitmap_queue_resize(&hctx->tags->bitmap_tags,
5014 nr - hctx->tags->nr_reserved_tags);
5015 }
5016 } else if (nr <= q->elevator->et->nr_requests) {
5017 /* Non-shared sched tags, and tags don't grow. */
5018 queue_for_each_hw_ctx(q, hctx, i) {
5019 if (!hctx->sched_tags)
5020 continue;
5021 sbitmap_queue_resize(&hctx->sched_tags->bitmap_tags,
5022 nr - hctx->sched_tags->nr_reserved_tags);
5023 }
5024 } else {
5025 /* Non-shared sched tags, and tags grow */
5026 queue_for_each_hw_ctx(q, hctx, i)
5027 hctx->sched_tags = et->tags[i];
5028 old_et = q->elevator->et;
5029 q->elevator->et = et;
5030 }
5031
5032 /*
5033 * Preserve relative value, both nr and async_depth are at most 16 bit
5034 * value, no need to worry about overflow.
5035 */
5036 q->async_depth = max(q->async_depth * nr / q->nr_requests, 1);
5037 q->nr_requests = nr;
5038 if (q->elevator && q->elevator->type->ops.depth_updated)
5039 q->elevator->type->ops.depth_updated(q);
5040
5041 blk_mq_unquiesce_queue(q);
5042 return old_et;
5043 }
5044
5045 /*
5046 * Switch back to the elevator type stored in the xarray.
5047 */
blk_mq_elv_switch_back(struct request_queue * q,struct xarray * elv_tbl)5048 static void blk_mq_elv_switch_back(struct request_queue *q,
5049 struct xarray *elv_tbl)
5050 {
5051 struct elv_change_ctx *ctx = xa_load(elv_tbl, q->id);
5052
5053 if (WARN_ON_ONCE(!ctx))
5054 return;
5055
5056 /* The elv_update_nr_hw_queues unfreezes the queue. */
5057 elv_update_nr_hw_queues(q, ctx);
5058
5059 /* Drop the reference acquired in blk_mq_elv_switch_none. */
5060 if (ctx->type)
5061 elevator_put(ctx->type);
5062 }
5063
5064 /*
5065 * Stores elevator name and type in ctx and set current elevator to none.
5066 */
blk_mq_elv_switch_none(struct request_queue * q,struct xarray * elv_tbl)5067 static int blk_mq_elv_switch_none(struct request_queue *q,
5068 struct xarray *elv_tbl)
5069 {
5070 struct elv_change_ctx *ctx;
5071
5072 lockdep_assert_held_write(&q->tag_set->update_nr_hwq_lock);
5073
5074 /*
5075 * Accessing q->elevator without holding q->elevator_lock is safe here
5076 * because we're called from nr_hw_queue update which is protected by
5077 * set->update_nr_hwq_lock in the writer context. So, scheduler update/
5078 * switch code (which acquires the same lock in the reader context)
5079 * can't run concurrently.
5080 */
5081 if (q->elevator) {
5082 ctx = xa_load(elv_tbl, q->id);
5083 if (WARN_ON_ONCE(!ctx))
5084 return -ENOENT;
5085
5086 ctx->name = q->elevator->type->elevator_name;
5087
5088 /*
5089 * Before we switch elevator to 'none', take a reference to
5090 * the elevator module so that while nr_hw_queue update is
5091 * running, no one can remove elevator module. We'd put the
5092 * reference to elevator module later when we switch back
5093 * elevator.
5094 */
5095 __elevator_get(q->elevator->type);
5096
5097 /*
5098 * Store elevator type so that we can release the reference
5099 * taken above later.
5100 */
5101 ctx->type = q->elevator->type;
5102 elevator_set_none(q);
5103 }
5104 return 0;
5105 }
5106
__blk_mq_update_nr_hw_queues(struct blk_mq_tag_set * set,int nr_hw_queues)5107 static void __blk_mq_update_nr_hw_queues(struct blk_mq_tag_set *set,
5108 int nr_hw_queues)
5109 {
5110 struct request_queue *q;
5111 int prev_nr_hw_queues = set->nr_hw_queues;
5112 unsigned int memflags;
5113 int i;
5114 struct xarray elv_tbl;
5115 struct blk_mq_tags **new_tags;
5116 bool queues_frozen = false;
5117
5118 lockdep_assert_held(&set->tag_list_lock);
5119
5120 if (set->nr_maps == 1 && nr_hw_queues > nr_cpu_ids)
5121 nr_hw_queues = nr_cpu_ids;
5122 if (nr_hw_queues < 1)
5123 return;
5124 if (set->nr_maps == 1 && nr_hw_queues == set->nr_hw_queues)
5125 return;
5126
5127 memflags = memalloc_noio_save();
5128
5129 xa_init(&elv_tbl);
5130 if (blk_mq_alloc_sched_ctx_batch(&elv_tbl, set) < 0)
5131 goto out_free_ctx;
5132
5133 if (blk_mq_alloc_sched_res_batch(&elv_tbl, set, nr_hw_queues) < 0)
5134 goto out_free_ctx;
5135
5136 list_for_each_entry(q, &set->tag_list, tag_set_list) {
5137 blk_mq_debugfs_unregister_hctxs(q);
5138 blk_mq_sysfs_unregister_hctxs(q);
5139 }
5140
5141 /*
5142 * Switch IO scheduler to 'none', cleaning up the data associated
5143 * with the previous scheduler. We will switch back once we are done
5144 * updating the new sw to hw queue mappings.
5145 */
5146 list_for_each_entry(q, &set->tag_list, tag_set_list)
5147 if (blk_mq_elv_switch_none(q, &elv_tbl))
5148 goto switch_back;
5149
5150 new_tags = blk_mq_prealloc_tag_set_tags(set, nr_hw_queues);
5151 if (IS_ERR(new_tags))
5152 goto switch_back;
5153
5154 list_for_each_entry(q, &set->tag_list, tag_set_list)
5155 blk_mq_freeze_queue_nomemsave(q);
5156 queues_frozen = true;
5157 if (new_tags) {
5158 kfree(set->tags);
5159 set->tags = new_tags;
5160 }
5161 set->nr_hw_queues = nr_hw_queues;
5162
5163 fallback:
5164 blk_mq_update_queue_map(set);
5165 list_for_each_entry(q, &set->tag_list, tag_set_list) {
5166 __blk_mq_realloc_hw_ctxs(set, q);
5167
5168 if (q->nr_hw_queues != set->nr_hw_queues) {
5169 int i = prev_nr_hw_queues;
5170
5171 pr_warn("Increasing nr_hw_queues to %d fails, fallback to %d\n",
5172 nr_hw_queues, prev_nr_hw_queues);
5173 for (; i < set->nr_hw_queues; i++)
5174 __blk_mq_free_map_and_rqs(set, i);
5175
5176 set->nr_hw_queues = prev_nr_hw_queues;
5177 goto fallback;
5178 }
5179 blk_mq_map_swqueue(q);
5180 }
5181 switch_back:
5182 /* The blk_mq_elv_switch_back unfreezes queue for us. */
5183 list_for_each_entry(q, &set->tag_list, tag_set_list) {
5184 /* switch_back expects queue to be frozen */
5185 if (!queues_frozen)
5186 blk_mq_freeze_queue_nomemsave(q);
5187 blk_mq_elv_switch_back(q, &elv_tbl);
5188 }
5189
5190 list_for_each_entry(q, &set->tag_list, tag_set_list) {
5191 blk_mq_sysfs_register_hctxs(q);
5192 blk_mq_debugfs_register_hctxs(q);
5193
5194 blk_mq_remove_hw_queues_cpuhp(q);
5195 blk_mq_add_hw_queues_cpuhp(q);
5196 }
5197
5198 out_free_ctx:
5199 blk_mq_free_sched_ctx_batch(&elv_tbl);
5200 xa_destroy(&elv_tbl);
5201 memalloc_noio_restore(memflags);
5202
5203 /* Free the excess tags when nr_hw_queues shrink. */
5204 for (i = set->nr_hw_queues; i < prev_nr_hw_queues; i++)
5205 __blk_mq_free_map_and_rqs(set, i);
5206 }
5207
blk_mq_update_nr_hw_queues(struct blk_mq_tag_set * set,int nr_hw_queues)5208 void blk_mq_update_nr_hw_queues(struct blk_mq_tag_set *set, int nr_hw_queues)
5209 {
5210 down_write(&set->update_nr_hwq_lock);
5211 mutex_lock(&set->tag_list_lock);
5212 __blk_mq_update_nr_hw_queues(set, nr_hw_queues);
5213 mutex_unlock(&set->tag_list_lock);
5214 up_write(&set->update_nr_hwq_lock);
5215 }
5216 EXPORT_SYMBOL_GPL(blk_mq_update_nr_hw_queues);
5217
blk_hctx_poll(struct request_queue * q,struct blk_mq_hw_ctx * hctx,struct io_comp_batch * iob,unsigned int flags)5218 static int blk_hctx_poll(struct request_queue *q, struct blk_mq_hw_ctx *hctx,
5219 struct io_comp_batch *iob, unsigned int flags)
5220 {
5221 int ret;
5222 unsigned long timeout = jiffies + 2;
5223
5224 do {
5225 ret = q->mq_ops->poll(hctx, iob);
5226 if (ret > 0)
5227 return ret;
5228 if (task_sigpending(current))
5229 return 1;
5230 if (ret < 0 || (flags & BLK_POLL_ONESHOT))
5231 break;
5232 cpu_relax();
5233 } while (!need_resched() && time_before(jiffies, timeout));
5234
5235 return 0;
5236 }
5237
blk_mq_poll(struct request_queue * q,blk_qc_t cookie,struct io_comp_batch * iob,unsigned int flags)5238 int blk_mq_poll(struct request_queue *q, blk_qc_t cookie,
5239 struct io_comp_batch *iob, unsigned int flags)
5240 {
5241 if (!blk_mq_can_poll(q))
5242 return 0;
5243 return blk_hctx_poll(q, q->queue_hw_ctx[cookie], iob, flags);
5244 }
5245
blk_rq_poll(struct request * rq,struct io_comp_batch * iob,unsigned int poll_flags)5246 int blk_rq_poll(struct request *rq, struct io_comp_batch *iob,
5247 unsigned int poll_flags)
5248 {
5249 struct request_queue *q = rq->q;
5250 int ret;
5251
5252 if (!blk_rq_is_poll(rq))
5253 return 0;
5254 if (!percpu_ref_tryget(&q->q_usage_counter))
5255 return 0;
5256
5257 ret = blk_hctx_poll(q, rq->mq_hctx, iob, poll_flags);
5258 blk_queue_exit(q);
5259
5260 return ret;
5261 }
5262 EXPORT_SYMBOL_GPL(blk_rq_poll);
5263
blk_mq_rq_cpu(struct request * rq)5264 unsigned int blk_mq_rq_cpu(struct request *rq)
5265 {
5266 return rq->mq_ctx->cpu;
5267 }
5268 EXPORT_SYMBOL(blk_mq_rq_cpu);
5269
blk_mq_cancel_work_sync(struct request_queue * q)5270 void blk_mq_cancel_work_sync(struct request_queue *q)
5271 {
5272 struct blk_mq_hw_ctx *hctx;
5273 unsigned long i;
5274
5275 cancel_delayed_work_sync(&q->requeue_work);
5276
5277 queue_for_each_hw_ctx(q, hctx, i)
5278 cancel_delayed_work_sync(&hctx->run_work);
5279 }
5280
blk_mq_init(void)5281 static int __init blk_mq_init(void)
5282 {
5283 int i;
5284
5285 for_each_possible_cpu(i)
5286 init_llist_head(&per_cpu(blk_cpu_done, i));
5287 for_each_possible_cpu(i)
5288 INIT_CSD(&per_cpu(blk_cpu_csd, i),
5289 __blk_mq_complete_request_remote, NULL);
5290 open_softirq(BLOCK_SOFTIRQ, blk_done_softirq);
5291
5292 cpuhp_setup_state_nocalls(CPUHP_BLOCK_SOFTIRQ_DEAD,
5293 "block/softirq:dead", NULL,
5294 blk_softirq_cpu_dead);
5295 cpuhp_setup_state_multi(CPUHP_BLK_MQ_DEAD, "block/mq:dead", NULL,
5296 blk_mq_hctx_notify_dead);
5297 cpuhp_setup_state_multi(CPUHP_AP_BLK_MQ_ONLINE, "block/mq:online",
5298 blk_mq_hctx_notify_online,
5299 blk_mq_hctx_notify_offline);
5300 return 0;
5301 }
5302 subsys_initcall(blk_mq_init);
5303