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1 /*
2 * Block multiqueue core code
3 *
4 * Copyright (C) 2013-2014 Jens Axboe
5 * Copyright (C) 2013-2014 Christoph Hellwig
6 */
7 #include <linux/kernel.h>
8 #include <linux/module.h>
9 #include <linux/backing-dev.h>
10 #include <linux/bio.h>
11 #include <linux/blkdev.h>
12 #include <linux/kmemleak.h>
13 #include <linux/mm.h>
14 #include <linux/init.h>
15 #include <linux/slab.h>
16 #include <linux/workqueue.h>
17 #include <linux/smp.h>
18 #include <linux/llist.h>
19 #include <linux/list_sort.h>
20 #include <linux/cpu.h>
21 #include <linux/cache.h>
22 #include <linux/sched/sysctl.h>
23 #include <linux/sched/topology.h>
24 #include <linux/sched/signal.h>
25 #include <linux/delay.h>
26 #include <linux/crash_dump.h>
27 #include <linux/prefetch.h>
28
29 #include <trace/events/block.h>
30
31 #include <linux/blk-mq.h>
32 #include "blk.h"
33 #include "blk-mq.h"
34 #include "blk-mq-debugfs.h"
35 #include "blk-mq-tag.h"
36 #include "blk-stat.h"
37 #include "blk-wbt.h"
38 #include "blk-mq-sched.h"
39
40 static bool blk_mq_poll(struct request_queue *q, blk_qc_t cookie);
41 static void blk_mq_poll_stats_start(struct request_queue *q);
42 static void blk_mq_poll_stats_fn(struct blk_stat_callback *cb);
43
44 static int blk_mq_poll_stats_bkt(const struct request *rq)
45 {
46 int ddir, bytes, bucket;
47
48 ddir = rq_data_dir(rq);
49 bytes = blk_rq_bytes(rq);
50
51 bucket = ddir + 2*(ilog2(bytes) - 9);
52
53 if (bucket < 0)
54 return -1;
55 else if (bucket >= BLK_MQ_POLL_STATS_BKTS)
56 return ddir + BLK_MQ_POLL_STATS_BKTS - 2;
57
58 return bucket;
59 }
60
61 /*
62 * Check if any of the ctx's have pending work in this hardware queue
63 */
64 static bool blk_mq_hctx_has_pending(struct blk_mq_hw_ctx *hctx)
65 {
66 return !list_empty_careful(&hctx->dispatch) ||
67 sbitmap_any_bit_set(&hctx->ctx_map) ||
68 blk_mq_sched_has_work(hctx);
69 }
70
71 /*
72 * Mark this ctx as having pending work in this hardware queue
73 */
74 static void blk_mq_hctx_mark_pending(struct blk_mq_hw_ctx *hctx,
75 struct blk_mq_ctx *ctx)
76 {
77 if (!sbitmap_test_bit(&hctx->ctx_map, ctx->index_hw))
78 sbitmap_set_bit(&hctx->ctx_map, ctx->index_hw);
79 }
80
81 static void blk_mq_hctx_clear_pending(struct blk_mq_hw_ctx *hctx,
82 struct blk_mq_ctx *ctx)
83 {
84 sbitmap_clear_bit(&hctx->ctx_map, ctx->index_hw);
85 }
86
87 struct mq_inflight {
88 struct hd_struct *part;
89 unsigned int *inflight;
90 };
91
92 static void blk_mq_check_inflight(struct blk_mq_hw_ctx *hctx,
93 struct request *rq, void *priv,
94 bool reserved)
95 {
96 struct mq_inflight *mi = priv;
97
98 if (test_bit(REQ_ATOM_STARTED, &rq->atomic_flags) &&
99 !test_bit(REQ_ATOM_COMPLETE, &rq->atomic_flags)) {
100 /*
101 * index[0] counts the specific partition that was asked
102 * for. index[1] counts the ones that are active on the
103 * whole device, so increment that if mi->part is indeed
104 * a partition, and not a whole device.
105 */
106 if (rq->part == mi->part)
107 mi->inflight[0]++;
108 if (mi->part->partno)
109 mi->inflight[1]++;
110 }
111 }
112
113 void blk_mq_in_flight(struct request_queue *q, struct hd_struct *part,
114 unsigned int inflight[2])
115 {
116 struct mq_inflight mi = { .part = part, .inflight = inflight, };
117
118 inflight[0] = inflight[1] = 0;
119 blk_mq_queue_tag_busy_iter(q, blk_mq_check_inflight, &mi);
120 }
121
122 static void blk_mq_check_inflight_rw(struct blk_mq_hw_ctx *hctx,
123 struct request *rq, void *priv,
124 bool reserved)
125 {
126 struct mq_inflight *mi = priv;
127
128 if (rq->part == mi->part)
129 mi->inflight[rq_data_dir(rq)]++;
130 }
131
132 void blk_mq_in_flight_rw(struct request_queue *q, struct hd_struct *part,
133 unsigned int inflight[2])
134 {
135 struct mq_inflight mi = { .part = part, .inflight = inflight, };
136
137 inflight[0] = inflight[1] = 0;
138 blk_mq_queue_tag_busy_iter(q, blk_mq_check_inflight_rw, &mi);
139 }
140
141 void blk_freeze_queue_start(struct request_queue *q)
142 {
143 int freeze_depth;
144
145 freeze_depth = atomic_inc_return(&q->mq_freeze_depth);
146 if (freeze_depth == 1) {
147 percpu_ref_kill(&q->q_usage_counter);
148 if (q->mq_ops)
149 blk_mq_run_hw_queues(q, false);
150 }
151 }
152 EXPORT_SYMBOL_GPL(blk_freeze_queue_start);
153
154 void blk_mq_freeze_queue_wait(struct request_queue *q)
155 {
156 wait_event(q->mq_freeze_wq, percpu_ref_is_zero(&q->q_usage_counter));
157 }
158 EXPORT_SYMBOL_GPL(blk_mq_freeze_queue_wait);
159
160 int blk_mq_freeze_queue_wait_timeout(struct request_queue *q,
161 unsigned long timeout)
162 {
163 return wait_event_timeout(q->mq_freeze_wq,
164 percpu_ref_is_zero(&q->q_usage_counter),
165 timeout);
166 }
167 EXPORT_SYMBOL_GPL(blk_mq_freeze_queue_wait_timeout);
168
169 /*
170 * Guarantee no request is in use, so we can change any data structure of
171 * the queue afterward.
172 */
173 void blk_freeze_queue(struct request_queue *q)
174 {
175 /*
176 * In the !blk_mq case we are only calling this to kill the
177 * q_usage_counter, otherwise this increases the freeze depth
178 * and waits for it to return to zero. For this reason there is
179 * no blk_unfreeze_queue(), and blk_freeze_queue() is not
180 * exported to drivers as the only user for unfreeze is blk_mq.
181 */
182 blk_freeze_queue_start(q);
183 if (!q->mq_ops)
184 blk_drain_queue(q);
185 blk_mq_freeze_queue_wait(q);
186 }
187
188 void blk_mq_freeze_queue(struct request_queue *q)
189 {
190 /*
191 * ...just an alias to keep freeze and unfreeze actions balanced
192 * in the blk_mq_* namespace
193 */
194 blk_freeze_queue(q);
195 }
196 EXPORT_SYMBOL_GPL(blk_mq_freeze_queue);
197
198 void blk_mq_unfreeze_queue(struct request_queue *q)
199 {
200 int freeze_depth;
201
202 freeze_depth = atomic_dec_return(&q->mq_freeze_depth);
203 WARN_ON_ONCE(freeze_depth < 0);
204 if (!freeze_depth) {
205 percpu_ref_reinit(&q->q_usage_counter);
206 wake_up_all(&q->mq_freeze_wq);
207 }
208 }
209 EXPORT_SYMBOL_GPL(blk_mq_unfreeze_queue);
210
211 /*
212 * FIXME: replace the scsi_internal_device_*block_nowait() calls in the
213 * mpt3sas driver such that this function can be removed.
214 */
215 void blk_mq_quiesce_queue_nowait(struct request_queue *q)
216 {
217 unsigned long flags;
218
219 spin_lock_irqsave(q->queue_lock, flags);
220 queue_flag_set(QUEUE_FLAG_QUIESCED, q);
221 spin_unlock_irqrestore(q->queue_lock, flags);
222 }
223 EXPORT_SYMBOL_GPL(blk_mq_quiesce_queue_nowait);
224
225 /**
226 * blk_mq_quiesce_queue() - wait until all ongoing dispatches have finished
227 * @q: request queue.
228 *
229 * Note: this function does not prevent that the struct request end_io()
230 * callback function is invoked. Once this function is returned, we make
231 * sure no dispatch can happen until the queue is unquiesced via
232 * blk_mq_unquiesce_queue().
233 */
234 void blk_mq_quiesce_queue(struct request_queue *q)
235 {
236 struct blk_mq_hw_ctx *hctx;
237 unsigned int i;
238 bool rcu = false;
239
240 blk_mq_quiesce_queue_nowait(q);
241
242 queue_for_each_hw_ctx(q, hctx, i) {
243 if (hctx->flags & BLK_MQ_F_BLOCKING)
244 synchronize_srcu(hctx->queue_rq_srcu);
245 else
246 rcu = true;
247 }
248 if (rcu)
249 synchronize_rcu();
250 }
251 EXPORT_SYMBOL_GPL(blk_mq_quiesce_queue);
252
253 /*
254 * blk_mq_unquiesce_queue() - counterpart of blk_mq_quiesce_queue()
255 * @q: request queue.
256 *
257 * This function recovers queue into the state before quiescing
258 * which is done by blk_mq_quiesce_queue.
259 */
260 void blk_mq_unquiesce_queue(struct request_queue *q)
261 {
262 unsigned long flags;
263
264 spin_lock_irqsave(q->queue_lock, flags);
265 queue_flag_clear(QUEUE_FLAG_QUIESCED, q);
266 spin_unlock_irqrestore(q->queue_lock, flags);
267
268 /* dispatch requests which are inserted during quiescing */
269 blk_mq_run_hw_queues(q, true);
270 }
271 EXPORT_SYMBOL_GPL(blk_mq_unquiesce_queue);
272
273 void blk_mq_wake_waiters(struct request_queue *q)
274 {
275 struct blk_mq_hw_ctx *hctx;
276 unsigned int i;
277
278 queue_for_each_hw_ctx(q, hctx, i)
279 if (blk_mq_hw_queue_mapped(hctx))
280 blk_mq_tag_wakeup_all(hctx->tags, true);
281 }
282
283 bool blk_mq_can_queue(struct blk_mq_hw_ctx *hctx)
284 {
285 return blk_mq_has_free_tags(hctx->tags);
286 }
287 EXPORT_SYMBOL(blk_mq_can_queue);
288
289 static struct request *blk_mq_rq_ctx_init(struct blk_mq_alloc_data *data,
290 unsigned int tag, unsigned int op)
291 {
292 struct blk_mq_tags *tags = blk_mq_tags_from_data(data);
293 struct request *rq = tags->static_rqs[tag];
294
295 rq->rq_flags = 0;
296
297 if (data->flags & BLK_MQ_REQ_INTERNAL) {
298 rq->tag = -1;
299 rq->internal_tag = tag;
300 } else {
301 if (data->hctx->flags & BLK_MQ_F_TAG_SHARED) {
302 rq->rq_flags = RQF_MQ_INFLIGHT;
303 atomic_inc(&data->hctx->nr_active);
304 }
305 rq->tag = tag;
306 rq->internal_tag = -1;
307 data->hctx->tags->rqs[rq->tag] = rq;
308 }
309
310 INIT_LIST_HEAD(&rq->queuelist);
311 /* csd/requeue_work/fifo_time is initialized before use */
312 rq->q = data->q;
313 rq->mq_ctx = data->ctx;
314 rq->cmd_flags = op;
315 if (data->flags & BLK_MQ_REQ_PREEMPT)
316 rq->rq_flags |= RQF_PREEMPT;
317 if (blk_queue_io_stat(data->q))
318 rq->rq_flags |= RQF_IO_STAT;
319 /* do not touch atomic flags, it needs atomic ops against the timer */
320 rq->cpu = -1;
321 INIT_HLIST_NODE(&rq->hash);
322 RB_CLEAR_NODE(&rq->rb_node);
323 rq->rq_disk = NULL;
324 rq->part = NULL;
325 rq->start_time = jiffies;
326 #ifdef CONFIG_BLK_CGROUP
327 rq->rl = NULL;
328 set_start_time_ns(rq);
329 rq->io_start_time_ns = 0;
330 #endif
331 rq->nr_phys_segments = 0;
332 #if defined(CONFIG_BLK_DEV_INTEGRITY)
333 rq->nr_integrity_segments = 0;
334 #endif
335 rq->special = NULL;
336 /* tag was already set */
337 rq->extra_len = 0;
338
339 INIT_LIST_HEAD(&rq->timeout_list);
340 rq->timeout = 0;
341
342 rq->end_io = NULL;
343 rq->end_io_data = NULL;
344 rq->next_rq = NULL;
345
346 data->ctx->rq_dispatched[op_is_sync(op)]++;
347 return rq;
348 }
349
350 static struct request *blk_mq_get_request(struct request_queue *q,
351 struct bio *bio, unsigned int op,
352 struct blk_mq_alloc_data *data)
353 {
354 struct elevator_queue *e = q->elevator;
355 struct request *rq;
356 unsigned int tag;
357 bool put_ctx_on_error = false;
358
359 blk_queue_enter_live(q);
360 data->q = q;
361 if (likely(!data->ctx)) {
362 data->ctx = blk_mq_get_ctx(q);
363 put_ctx_on_error = true;
364 }
365 if (likely(!data->hctx))
366 data->hctx = blk_mq_map_queue(q, data->ctx->cpu);
367 if (op & REQ_NOWAIT)
368 data->flags |= BLK_MQ_REQ_NOWAIT;
369
370 if (e) {
371 data->flags |= BLK_MQ_REQ_INTERNAL;
372
373 /*
374 * Flush requests are special and go directly to the
375 * dispatch list.
376 */
377 if (!op_is_flush(op) && e->type->ops.mq.limit_depth)
378 e->type->ops.mq.limit_depth(op, data);
379 } else {
380 blk_mq_tag_busy(data->hctx);
381 }
382
383 tag = blk_mq_get_tag(data);
384 if (tag == BLK_MQ_TAG_FAIL) {
385 if (put_ctx_on_error) {
386 blk_mq_put_ctx(data->ctx);
387 data->ctx = NULL;
388 }
389 blk_queue_exit(q);
390 return NULL;
391 }
392
393 rq = blk_mq_rq_ctx_init(data, tag, op);
394 if (!op_is_flush(op)) {
395 rq->elv.icq = NULL;
396 if (e && e->type->ops.mq.prepare_request) {
397 if (e->type->icq_cache && rq_ioc(bio))
398 blk_mq_sched_assign_ioc(rq, bio);
399
400 e->type->ops.mq.prepare_request(rq, bio);
401 rq->rq_flags |= RQF_ELVPRIV;
402 }
403 }
404 data->hctx->queued++;
405 return rq;
406 }
407
408 struct request *blk_mq_alloc_request(struct request_queue *q, unsigned int op,
409 blk_mq_req_flags_t flags)
410 {
411 struct blk_mq_alloc_data alloc_data = { .flags = flags };
412 struct request *rq;
413 int ret;
414
415 ret = blk_queue_enter(q, flags);
416 if (ret)
417 return ERR_PTR(ret);
418
419 rq = blk_mq_get_request(q, NULL, op, &alloc_data);
420 blk_queue_exit(q);
421
422 if (!rq)
423 return ERR_PTR(-EWOULDBLOCK);
424
425 blk_mq_put_ctx(alloc_data.ctx);
426
427 rq->__data_len = 0;
428 rq->__sector = (sector_t) -1;
429 rq->bio = rq->biotail = NULL;
430 return rq;
431 }
432 EXPORT_SYMBOL(blk_mq_alloc_request);
433
434 struct request *blk_mq_alloc_request_hctx(struct request_queue *q,
435 unsigned int op, blk_mq_req_flags_t flags, unsigned int hctx_idx)
436 {
437 struct blk_mq_alloc_data alloc_data = { .flags = flags };
438 struct request *rq;
439 unsigned int cpu;
440 int ret;
441
442 /*
443 * If the tag allocator sleeps we could get an allocation for a
444 * different hardware context. No need to complicate the low level
445 * allocator for this for the rare use case of a command tied to
446 * a specific queue.
447 */
448 if (WARN_ON_ONCE(!(flags & BLK_MQ_REQ_NOWAIT)))
449 return ERR_PTR(-EINVAL);
450
451 if (hctx_idx >= q->nr_hw_queues)
452 return ERR_PTR(-EIO);
453
454 ret = blk_queue_enter(q, flags);
455 if (ret)
456 return ERR_PTR(ret);
457
458 /*
459 * Check if the hardware context is actually mapped to anything.
460 * If not tell the caller that it should skip this queue.
461 */
462 alloc_data.hctx = q->queue_hw_ctx[hctx_idx];
463 if (!blk_mq_hw_queue_mapped(alloc_data.hctx)) {
464 blk_queue_exit(q);
465 return ERR_PTR(-EXDEV);
466 }
467 cpu = cpumask_first_and(alloc_data.hctx->cpumask, cpu_online_mask);
468 alloc_data.ctx = __blk_mq_get_ctx(q, cpu);
469
470 rq = blk_mq_get_request(q, NULL, op, &alloc_data);
471 blk_queue_exit(q);
472
473 if (!rq)
474 return ERR_PTR(-EWOULDBLOCK);
475
476 return rq;
477 }
478 EXPORT_SYMBOL_GPL(blk_mq_alloc_request_hctx);
479
480 void blk_mq_free_request(struct request *rq)
481 {
482 struct request_queue *q = rq->q;
483 struct elevator_queue *e = q->elevator;
484 struct blk_mq_ctx *ctx = rq->mq_ctx;
485 struct blk_mq_hw_ctx *hctx = blk_mq_map_queue(q, ctx->cpu);
486 const int sched_tag = rq->internal_tag;
487
488 if (rq->rq_flags & RQF_ELVPRIV) {
489 if (e && e->type->ops.mq.finish_request)
490 e->type->ops.mq.finish_request(rq);
491 if (rq->elv.icq) {
492 put_io_context(rq->elv.icq->ioc);
493 rq->elv.icq = NULL;
494 }
495 }
496
497 ctx->rq_completed[rq_is_sync(rq)]++;
498 if (rq->rq_flags & RQF_MQ_INFLIGHT)
499 atomic_dec(&hctx->nr_active);
500
501 if (unlikely(laptop_mode && !blk_rq_is_passthrough(rq)))
502 laptop_io_completion(q->backing_dev_info);
503
504 wbt_done(q->rq_wb, &rq->issue_stat);
505
506 if (blk_rq_rl(rq))
507 blk_put_rl(blk_rq_rl(rq));
508
509 clear_bit(REQ_ATOM_STARTED, &rq->atomic_flags);
510 clear_bit(REQ_ATOM_POLL_SLEPT, &rq->atomic_flags);
511 if (rq->tag != -1)
512 blk_mq_put_tag(hctx, hctx->tags, ctx, rq->tag);
513 if (sched_tag != -1)
514 blk_mq_put_tag(hctx, hctx->sched_tags, ctx, sched_tag);
515 blk_mq_sched_restart(hctx);
516 blk_queue_exit(q);
517 }
518 EXPORT_SYMBOL_GPL(blk_mq_free_request);
519
520 inline void __blk_mq_end_request(struct request *rq, blk_status_t error)
521 {
522 blk_account_io_done(rq);
523
524 if (rq->end_io) {
525 wbt_done(rq->q->rq_wb, &rq->issue_stat);
526 rq->end_io(rq, error);
527 } else {
528 if (unlikely(blk_bidi_rq(rq)))
529 blk_mq_free_request(rq->next_rq);
530 blk_mq_free_request(rq);
531 }
532 }
533 EXPORT_SYMBOL(__blk_mq_end_request);
534
535 void blk_mq_end_request(struct request *rq, blk_status_t error)
536 {
537 if (blk_update_request(rq, error, blk_rq_bytes(rq)))
538 BUG();
539 __blk_mq_end_request(rq, error);
540 }
541 EXPORT_SYMBOL(blk_mq_end_request);
542
543 static void __blk_mq_complete_request_remote(void *data)
544 {
545 struct request *rq = data;
546
547 rq->q->softirq_done_fn(rq);
548 }
549
550 static void __blk_mq_complete_request(struct request *rq)
551 {
552 struct blk_mq_ctx *ctx = rq->mq_ctx;
553 bool shared = false;
554 int cpu;
555
556 if (rq->internal_tag != -1)
557 blk_mq_sched_completed_request(rq);
558 if (rq->rq_flags & RQF_STATS) {
559 blk_mq_poll_stats_start(rq->q);
560 blk_stat_add(rq);
561 }
562
563 if (!test_bit(QUEUE_FLAG_SAME_COMP, &rq->q->queue_flags)) {
564 rq->q->softirq_done_fn(rq);
565 return;
566 }
567
568 cpu = get_cpu();
569 if (!test_bit(QUEUE_FLAG_SAME_FORCE, &rq->q->queue_flags))
570 shared = cpus_share_cache(cpu, ctx->cpu);
571
572 if (cpu != ctx->cpu && !shared && cpu_online(ctx->cpu)) {
573 rq->csd.func = __blk_mq_complete_request_remote;
574 rq->csd.info = rq;
575 rq->csd.flags = 0;
576 smp_call_function_single_async(ctx->cpu, &rq->csd);
577 } else {
578 rq->q->softirq_done_fn(rq);
579 }
580 put_cpu();
581 }
582
583 static void hctx_unlock(struct blk_mq_hw_ctx *hctx, int srcu_idx)
584 {
585 if (!(hctx->flags & BLK_MQ_F_BLOCKING))
586 rcu_read_unlock();
587 else
588 srcu_read_unlock(hctx->queue_rq_srcu, srcu_idx);
589 }
590
591 static void hctx_lock(struct blk_mq_hw_ctx *hctx, int *srcu_idx)
592 {
593 if (!(hctx->flags & BLK_MQ_F_BLOCKING))
594 rcu_read_lock();
595 else
596 *srcu_idx = srcu_read_lock(hctx->queue_rq_srcu);
597 }
598
599 /**
600 * blk_mq_complete_request - end I/O on a request
601 * @rq: the request being processed
602 *
603 * Description:
604 * Ends all I/O on a request. It does not handle partial completions.
605 * The actual completion happens out-of-order, through a IPI handler.
606 **/
607 void blk_mq_complete_request(struct request *rq)
608 {
609 struct request_queue *q = rq->q;
610
611 if (unlikely(blk_should_fake_timeout(q)))
612 return;
613 if (!blk_mark_rq_complete(rq))
614 __blk_mq_complete_request(rq);
615 }
616 EXPORT_SYMBOL(blk_mq_complete_request);
617
618 int blk_mq_request_started(struct request *rq)
619 {
620 return test_bit(REQ_ATOM_STARTED, &rq->atomic_flags);
621 }
622 EXPORT_SYMBOL_GPL(blk_mq_request_started);
623
624 void blk_mq_start_request(struct request *rq)
625 {
626 struct request_queue *q = rq->q;
627
628 blk_mq_sched_started_request(rq);
629
630 trace_block_rq_issue(q, rq);
631
632 if (test_bit(QUEUE_FLAG_STATS, &q->queue_flags)) {
633 blk_stat_set_issue(&rq->issue_stat, blk_rq_sectors(rq));
634 rq->rq_flags |= RQF_STATS;
635 wbt_issue(q->rq_wb, &rq->issue_stat);
636 }
637
638 blk_add_timer(rq);
639
640 WARN_ON_ONCE(test_bit(REQ_ATOM_STARTED, &rq->atomic_flags));
641
642 /*
643 * Mark us as started and clear complete. Complete might have been
644 * set if requeue raced with timeout, which then marked it as
645 * complete. So be sure to clear complete again when we start
646 * the request, otherwise we'll ignore the completion event.
647 *
648 * Ensure that ->deadline is visible before we set STARTED, such that
649 * blk_mq_check_expired() is guaranteed to observe our ->deadline when
650 * it observes STARTED.
651 */
652 smp_wmb();
653 set_bit(REQ_ATOM_STARTED, &rq->atomic_flags);
654 if (test_bit(REQ_ATOM_COMPLETE, &rq->atomic_flags)) {
655 /*
656 * Coherence order guarantees these consecutive stores to a
657 * single variable propagate in the specified order. Thus the
658 * clear_bit() is ordered _after_ the set bit. See
659 * blk_mq_check_expired().
660 *
661 * (the bits must be part of the same byte for this to be
662 * true).
663 */
664 clear_bit(REQ_ATOM_COMPLETE, &rq->atomic_flags);
665 }
666
667 if (q->dma_drain_size && blk_rq_bytes(rq)) {
668 /*
669 * Make sure space for the drain appears. We know we can do
670 * this because max_hw_segments has been adjusted to be one
671 * fewer than the device can handle.
672 */
673 rq->nr_phys_segments++;
674 }
675 }
676 EXPORT_SYMBOL(blk_mq_start_request);
677
678 /*
679 * When we reach here because queue is busy, REQ_ATOM_COMPLETE
680 * flag isn't set yet, so there may be race with timeout handler,
681 * but given rq->deadline is just set in .queue_rq() under
682 * this situation, the race won't be possible in reality because
683 * rq->timeout should be set as big enough to cover the window
684 * between blk_mq_start_request() called from .queue_rq() and
685 * clearing REQ_ATOM_STARTED here.
686 */
687 static void __blk_mq_requeue_request(struct request *rq)
688 {
689 struct request_queue *q = rq->q;
690
691 blk_mq_put_driver_tag(rq);
692
693 trace_block_rq_requeue(q, rq);
694 wbt_requeue(q->rq_wb, &rq->issue_stat);
695
696 if (test_and_clear_bit(REQ_ATOM_STARTED, &rq->atomic_flags)) {
697 if (q->dma_drain_size && blk_rq_bytes(rq))
698 rq->nr_phys_segments--;
699 }
700 }
701
702 void blk_mq_requeue_request(struct request *rq, bool kick_requeue_list)
703 {
704 __blk_mq_requeue_request(rq);
705
706 /* this request will be re-inserted to io scheduler queue */
707 blk_mq_sched_requeue_request(rq);
708
709 BUG_ON(blk_queued_rq(rq));
710 blk_mq_add_to_requeue_list(rq, true, kick_requeue_list);
711 }
712 EXPORT_SYMBOL(blk_mq_requeue_request);
713
714 static void blk_mq_requeue_work(struct work_struct *work)
715 {
716 struct request_queue *q =
717 container_of(work, struct request_queue, requeue_work.work);
718 LIST_HEAD(rq_list);
719 struct request *rq, *next;
720
721 spin_lock_irq(&q->requeue_lock);
722 list_splice_init(&q->requeue_list, &rq_list);
723 spin_unlock_irq(&q->requeue_lock);
724
725 list_for_each_entry_safe(rq, next, &rq_list, queuelist) {
726 if (!(rq->rq_flags & (RQF_SOFTBARRIER | RQF_DONTPREP)))
727 continue;
728
729 rq->rq_flags &= ~RQF_SOFTBARRIER;
730 list_del_init(&rq->queuelist);
731 /*
732 * If RQF_DONTPREP, rq has contained some driver specific
733 * data, so insert it to hctx dispatch list to avoid any
734 * merge.
735 */
736 if (rq->rq_flags & RQF_DONTPREP)
737 blk_mq_request_bypass_insert(rq, false);
738 else
739 blk_mq_sched_insert_request(rq, true, false, false);
740 }
741
742 while (!list_empty(&rq_list)) {
743 rq = list_entry(rq_list.next, struct request, queuelist);
744 list_del_init(&rq->queuelist);
745 blk_mq_sched_insert_request(rq, false, false, false);
746 }
747
748 blk_mq_run_hw_queues(q, false);
749 }
750
751 void blk_mq_add_to_requeue_list(struct request *rq, bool at_head,
752 bool kick_requeue_list)
753 {
754 struct request_queue *q = rq->q;
755 unsigned long flags;
756
757 /*
758 * We abuse this flag that is otherwise used by the I/O scheduler to
759 * request head insertion from the workqueue.
760 */
761 BUG_ON(rq->rq_flags & RQF_SOFTBARRIER);
762
763 spin_lock_irqsave(&q->requeue_lock, flags);
764 if (at_head) {
765 rq->rq_flags |= RQF_SOFTBARRIER;
766 list_add(&rq->queuelist, &q->requeue_list);
767 } else {
768 list_add_tail(&rq->queuelist, &q->requeue_list);
769 }
770 spin_unlock_irqrestore(&q->requeue_lock, flags);
771
772 if (kick_requeue_list)
773 blk_mq_kick_requeue_list(q);
774 }
775 EXPORT_SYMBOL(blk_mq_add_to_requeue_list);
776
777 void blk_mq_kick_requeue_list(struct request_queue *q)
778 {
779 kblockd_mod_delayed_work_on(WORK_CPU_UNBOUND, &q->requeue_work, 0);
780 }
781 EXPORT_SYMBOL(blk_mq_kick_requeue_list);
782
783 void blk_mq_delay_kick_requeue_list(struct request_queue *q,
784 unsigned long msecs)
785 {
786 kblockd_mod_delayed_work_on(WORK_CPU_UNBOUND, &q->requeue_work,
787 msecs_to_jiffies(msecs));
788 }
789 EXPORT_SYMBOL(blk_mq_delay_kick_requeue_list);
790
791 struct request *blk_mq_tag_to_rq(struct blk_mq_tags *tags, unsigned int tag)
792 {
793 if (tag < tags->nr_tags) {
794 prefetch(tags->rqs[tag]);
795 return tags->rqs[tag];
796 }
797
798 return NULL;
799 }
800 EXPORT_SYMBOL(blk_mq_tag_to_rq);
801
802 struct blk_mq_timeout_data {
803 unsigned long next;
804 unsigned int next_set;
805 };
806
807 void blk_mq_rq_timed_out(struct request *req, bool reserved)
808 {
809 const struct blk_mq_ops *ops = req->q->mq_ops;
810 enum blk_eh_timer_return ret = BLK_EH_RESET_TIMER;
811
812 /*
813 * We know that complete is set at this point. If STARTED isn't set
814 * anymore, then the request isn't active and the "timeout" should
815 * just be ignored. This can happen due to the bitflag ordering.
816 * Timeout first checks if STARTED is set, and if it is, assumes
817 * the request is active. But if we race with completion, then
818 * both flags will get cleared. So check here again, and ignore
819 * a timeout event with a request that isn't active.
820 */
821 if (!test_bit(REQ_ATOM_STARTED, &req->atomic_flags))
822 return;
823
824 if (ops->timeout)
825 ret = ops->timeout(req, reserved);
826
827 switch (ret) {
828 case BLK_EH_HANDLED:
829 __blk_mq_complete_request(req);
830 break;
831 case BLK_EH_RESET_TIMER:
832 blk_add_timer(req);
833 blk_clear_rq_complete(req);
834 break;
835 case BLK_EH_NOT_HANDLED:
836 break;
837 default:
838 printk(KERN_ERR "block: bad eh return: %d\n", ret);
839 break;
840 }
841 }
842
843 static void blk_mq_check_expired(struct blk_mq_hw_ctx *hctx,
844 struct request *rq, void *priv, bool reserved)
845 {
846 struct blk_mq_timeout_data *data = priv;
847 unsigned long deadline;
848
849 if (!test_bit(REQ_ATOM_STARTED, &rq->atomic_flags))
850 return;
851
852 /*
853 * Ensures that if we see STARTED we must also see our
854 * up-to-date deadline, see blk_mq_start_request().
855 */
856 smp_rmb();
857
858 deadline = READ_ONCE(rq->deadline);
859
860 /*
861 * The rq being checked may have been freed and reallocated
862 * out already here, we avoid this race by checking rq->deadline
863 * and REQ_ATOM_COMPLETE flag together:
864 *
865 * - if rq->deadline is observed as new value because of
866 * reusing, the rq won't be timed out because of timing.
867 * - if rq->deadline is observed as previous value,
868 * REQ_ATOM_COMPLETE flag won't be cleared in reuse path
869 * because we put a barrier between setting rq->deadline
870 * and clearing the flag in blk_mq_start_request(), so
871 * this rq won't be timed out too.
872 */
873 if (time_after_eq(jiffies, deadline)) {
874 if (!blk_mark_rq_complete(rq)) {
875 /*
876 * Again coherence order ensures that consecutive reads
877 * from the same variable must be in that order. This
878 * ensures that if we see COMPLETE clear, we must then
879 * see STARTED set and we'll ignore this timeout.
880 *
881 * (There's also the MB implied by the test_and_clear())
882 */
883 blk_mq_rq_timed_out(rq, reserved);
884 }
885 } else if (!data->next_set || time_after(data->next, deadline)) {
886 data->next = deadline;
887 data->next_set = 1;
888 }
889 }
890
891 static void blk_mq_timeout_work(struct work_struct *work)
892 {
893 struct request_queue *q =
894 container_of(work, struct request_queue, timeout_work);
895 struct blk_mq_timeout_data data = {
896 .next = 0,
897 .next_set = 0,
898 };
899 int i;
900
901 /* A deadlock might occur if a request is stuck requiring a
902 * timeout at the same time a queue freeze is waiting
903 * completion, since the timeout code would not be able to
904 * acquire the queue reference here.
905 *
906 * That's why we don't use blk_queue_enter here; instead, we use
907 * percpu_ref_tryget directly, because we need to be able to
908 * obtain a reference even in the short window between the queue
909 * starting to freeze, by dropping the first reference in
910 * blk_freeze_queue_start, and the moment the last request is
911 * consumed, marked by the instant q_usage_counter reaches
912 * zero.
913 */
914 if (!percpu_ref_tryget(&q->q_usage_counter))
915 return;
916
917 blk_mq_queue_tag_busy_iter(q, blk_mq_check_expired, &data);
918
919 if (data.next_set) {
920 data.next = blk_rq_timeout(round_jiffies_up(data.next));
921 mod_timer(&q->timeout, data.next);
922 } else {
923 struct blk_mq_hw_ctx *hctx;
924
925 queue_for_each_hw_ctx(q, hctx, i) {
926 /* the hctx may be unmapped, so check it here */
927 if (blk_mq_hw_queue_mapped(hctx))
928 blk_mq_tag_idle(hctx);
929 }
930 }
931 blk_queue_exit(q);
932 }
933
934 struct flush_busy_ctx_data {
935 struct blk_mq_hw_ctx *hctx;
936 struct list_head *list;
937 };
938
939 static bool flush_busy_ctx(struct sbitmap *sb, unsigned int bitnr, void *data)
940 {
941 struct flush_busy_ctx_data *flush_data = data;
942 struct blk_mq_hw_ctx *hctx = flush_data->hctx;
943 struct blk_mq_ctx *ctx = hctx->ctxs[bitnr];
944
945 sbitmap_clear_bit(sb, bitnr);
946 spin_lock(&ctx->lock);
947 list_splice_tail_init(&ctx->rq_list, flush_data->list);
948 spin_unlock(&ctx->lock);
949 return true;
950 }
951
952 /*
953 * Process software queues that have been marked busy, splicing them
954 * to the for-dispatch
955 */
956 void blk_mq_flush_busy_ctxs(struct blk_mq_hw_ctx *hctx, struct list_head *list)
957 {
958 struct flush_busy_ctx_data data = {
959 .hctx = hctx,
960 .list = list,
961 };
962
963 sbitmap_for_each_set(&hctx->ctx_map, flush_busy_ctx, &data);
964 }
965 EXPORT_SYMBOL_GPL(blk_mq_flush_busy_ctxs);
966
967 struct dispatch_rq_data {
968 struct blk_mq_hw_ctx *hctx;
969 struct request *rq;
970 };
971
972 static bool dispatch_rq_from_ctx(struct sbitmap *sb, unsigned int bitnr,
973 void *data)
974 {
975 struct dispatch_rq_data *dispatch_data = data;
976 struct blk_mq_hw_ctx *hctx = dispatch_data->hctx;
977 struct blk_mq_ctx *ctx = hctx->ctxs[bitnr];
978
979 spin_lock(&ctx->lock);
980 if (unlikely(!list_empty(&ctx->rq_list))) {
981 dispatch_data->rq = list_entry_rq(ctx->rq_list.next);
982 list_del_init(&dispatch_data->rq->queuelist);
983 if (list_empty(&ctx->rq_list))
984 sbitmap_clear_bit(sb, bitnr);
985 }
986 spin_unlock(&ctx->lock);
987
988 return !dispatch_data->rq;
989 }
990
991 struct request *blk_mq_dequeue_from_ctx(struct blk_mq_hw_ctx *hctx,
992 struct blk_mq_ctx *start)
993 {
994 unsigned off = start ? start->index_hw : 0;
995 struct dispatch_rq_data data = {
996 .hctx = hctx,
997 .rq = NULL,
998 };
999
1000 __sbitmap_for_each_set(&hctx->ctx_map, off,
1001 dispatch_rq_from_ctx, &data);
1002
1003 return data.rq;
1004 }
1005
1006 static inline unsigned int queued_to_index(unsigned int queued)
1007 {
1008 if (!queued)
1009 return 0;
1010
1011 return min(BLK_MQ_MAX_DISPATCH_ORDER - 1, ilog2(queued) + 1);
1012 }
1013
1014 bool blk_mq_get_driver_tag(struct request *rq, struct blk_mq_hw_ctx **hctx,
1015 bool wait)
1016 {
1017 struct blk_mq_alloc_data data = {
1018 .q = rq->q,
1019 .hctx = blk_mq_map_queue(rq->q, rq->mq_ctx->cpu),
1020 .flags = wait ? 0 : BLK_MQ_REQ_NOWAIT,
1021 };
1022 bool shared;
1023
1024 might_sleep_if(wait);
1025
1026 if (rq->tag != -1)
1027 goto done;
1028
1029 if (blk_mq_tag_is_reserved(data.hctx->sched_tags, rq->internal_tag))
1030 data.flags |= BLK_MQ_REQ_RESERVED;
1031
1032 shared = blk_mq_tag_busy(data.hctx);
1033 rq->tag = blk_mq_get_tag(&data);
1034 if (rq->tag >= 0) {
1035 if (shared) {
1036 rq->rq_flags |= RQF_MQ_INFLIGHT;
1037 atomic_inc(&data.hctx->nr_active);
1038 }
1039 data.hctx->tags->rqs[rq->tag] = rq;
1040 }
1041
1042 done:
1043 if (hctx)
1044 *hctx = data.hctx;
1045 return rq->tag != -1;
1046 }
1047
1048 static int blk_mq_dispatch_wake(wait_queue_entry_t *wait, unsigned mode,
1049 int flags, void *key)
1050 {
1051 struct blk_mq_hw_ctx *hctx;
1052
1053 hctx = container_of(wait, struct blk_mq_hw_ctx, dispatch_wait);
1054
1055 list_del_init(&wait->entry);
1056 blk_mq_run_hw_queue(hctx, true);
1057 return 1;
1058 }
1059
1060 /*
1061 * Mark us waiting for a tag. For shared tags, this involves hooking us into
1062 * the tag wakeups. For non-shared tags, we can simply mark us nedeing a
1063 * restart. For both caes, take care to check the condition again after
1064 * marking us as waiting.
1065 */
1066 static bool blk_mq_mark_tag_wait(struct blk_mq_hw_ctx **hctx,
1067 struct request *rq)
1068 {
1069 struct blk_mq_hw_ctx *this_hctx = *hctx;
1070 bool shared_tags = (this_hctx->flags & BLK_MQ_F_TAG_SHARED) != 0;
1071 struct sbq_wait_state *ws;
1072 wait_queue_entry_t *wait;
1073 bool ret;
1074
1075 if (!shared_tags) {
1076 if (!test_bit(BLK_MQ_S_SCHED_RESTART, &this_hctx->state))
1077 set_bit(BLK_MQ_S_SCHED_RESTART, &this_hctx->state);
1078 } else {
1079 wait = &this_hctx->dispatch_wait;
1080 if (!list_empty_careful(&wait->entry))
1081 return false;
1082
1083 spin_lock(&this_hctx->lock);
1084 if (!list_empty(&wait->entry)) {
1085 spin_unlock(&this_hctx->lock);
1086 return false;
1087 }
1088
1089 ws = bt_wait_ptr(&this_hctx->tags->bitmap_tags, this_hctx);
1090 add_wait_queue(&ws->wait, wait);
1091 }
1092
1093 /*
1094 * It's possible that a tag was freed in the window between the
1095 * allocation failure and adding the hardware queue to the wait
1096 * queue.
1097 */
1098 ret = blk_mq_get_driver_tag(rq, hctx, false);
1099
1100 if (!shared_tags) {
1101 /*
1102 * Don't clear RESTART here, someone else could have set it.
1103 * At most this will cost an extra queue run.
1104 */
1105 return ret;
1106 } else {
1107 if (!ret) {
1108 spin_unlock(&this_hctx->lock);
1109 return false;
1110 }
1111
1112 /*
1113 * We got a tag, remove ourselves from the wait queue to ensure
1114 * someone else gets the wakeup.
1115 */
1116 spin_lock_irq(&ws->wait.lock);
1117 list_del_init(&wait->entry);
1118 spin_unlock_irq(&ws->wait.lock);
1119 spin_unlock(&this_hctx->lock);
1120 return true;
1121 }
1122 }
1123
1124 #define BLK_MQ_DISPATCH_BUSY_EWMA_WEIGHT 8
1125 #define BLK_MQ_DISPATCH_BUSY_EWMA_FACTOR 4
1126 /*
1127 * Update dispatch busy with the Exponential Weighted Moving Average(EWMA):
1128 * - EWMA is one simple way to compute running average value
1129 * - weight(7/8 and 1/8) is applied so that it can decrease exponentially
1130 * - take 4 as factor for avoiding to get too small(0) result, and this
1131 * factor doesn't matter because EWMA decreases exponentially
1132 */
1133 static void blk_mq_update_dispatch_busy(struct blk_mq_hw_ctx *hctx, bool busy)
1134 {
1135 unsigned int ewma;
1136
1137 if (hctx->queue->elevator)
1138 return;
1139
1140 ewma = hctx->dispatch_busy;
1141
1142 if (!ewma && !busy)
1143 return;
1144
1145 ewma *= BLK_MQ_DISPATCH_BUSY_EWMA_WEIGHT - 1;
1146 if (busy)
1147 ewma += 1 << BLK_MQ_DISPATCH_BUSY_EWMA_FACTOR;
1148 ewma /= BLK_MQ_DISPATCH_BUSY_EWMA_WEIGHT;
1149
1150 hctx->dispatch_busy = ewma;
1151 }
1152
1153 #define BLK_MQ_RESOURCE_DELAY 3 /* ms units */
1154
1155 /*
1156 * Returns true if we did some work AND can potentially do more.
1157 */
1158 bool blk_mq_dispatch_rq_list(struct request_queue *q, struct list_head *list,
1159 bool got_budget)
1160 {
1161 struct blk_mq_hw_ctx *hctx;
1162 struct request *rq, *nxt;
1163 bool no_tag = false;
1164 int errors, queued;
1165 blk_status_t ret = BLK_STS_OK;
1166
1167 if (list_empty(list))
1168 return false;
1169
1170 WARN_ON(!list_is_singular(list) && got_budget);
1171
1172 /*
1173 * Now process all the entries, sending them to the driver.
1174 */
1175 errors = queued = 0;
1176 do {
1177 struct blk_mq_queue_data bd;
1178
1179 rq = list_first_entry(list, struct request, queuelist);
1180
1181 hctx = blk_mq_map_queue(rq->q, rq->mq_ctx->cpu);
1182 if (!got_budget && !blk_mq_get_dispatch_budget(hctx))
1183 break;
1184
1185 if (!blk_mq_get_driver_tag(rq, NULL, false)) {
1186 /*
1187 * The initial allocation attempt failed, so we need to
1188 * rerun the hardware queue when a tag is freed. The
1189 * waitqueue takes care of that. If the queue is run
1190 * before we add this entry back on the dispatch list,
1191 * we'll re-run it below.
1192 */
1193 if (!blk_mq_mark_tag_wait(&hctx, rq)) {
1194 blk_mq_put_dispatch_budget(hctx);
1195 /*
1196 * For non-shared tags, the RESTART check
1197 * will suffice.
1198 */
1199 if (hctx->flags & BLK_MQ_F_TAG_SHARED)
1200 no_tag = true;
1201 break;
1202 }
1203 }
1204
1205 list_del_init(&rq->queuelist);
1206
1207 bd.rq = rq;
1208
1209 /*
1210 * Flag last if we have no more requests, or if we have more
1211 * but can't assign a driver tag to it.
1212 */
1213 if (list_empty(list))
1214 bd.last = true;
1215 else {
1216 nxt = list_first_entry(list, struct request, queuelist);
1217 bd.last = !blk_mq_get_driver_tag(nxt, NULL, false);
1218 }
1219
1220 ret = q->mq_ops->queue_rq(hctx, &bd);
1221 if (ret == BLK_STS_RESOURCE || ret == BLK_STS_DEV_RESOURCE) {
1222 /*
1223 * If an I/O scheduler has been configured and we got a
1224 * driver tag for the next request already, free it
1225 * again.
1226 */
1227 if (!list_empty(list)) {
1228 nxt = list_first_entry(list, struct request, queuelist);
1229 blk_mq_put_driver_tag(nxt);
1230 }
1231 list_add(&rq->queuelist, list);
1232 __blk_mq_requeue_request(rq);
1233 break;
1234 }
1235
1236 if (unlikely(ret != BLK_STS_OK)) {
1237 errors++;
1238 blk_mq_end_request(rq, BLK_STS_IOERR);
1239 continue;
1240 }
1241
1242 queued++;
1243 } while (!list_empty(list));
1244
1245 hctx->dispatched[queued_to_index(queued)]++;
1246
1247 /*
1248 * Any items that need requeuing? Stuff them into hctx->dispatch,
1249 * that is where we will continue on next queue run.
1250 */
1251 if (!list_empty(list)) {
1252 bool needs_restart;
1253
1254 spin_lock(&hctx->lock);
1255 list_splice_init(list, &hctx->dispatch);
1256 spin_unlock(&hctx->lock);
1257
1258 /*
1259 * If SCHED_RESTART was set by the caller of this function and
1260 * it is no longer set that means that it was cleared by another
1261 * thread and hence that a queue rerun is needed.
1262 *
1263 * If 'no_tag' is set, that means that we failed getting
1264 * a driver tag with an I/O scheduler attached. If our dispatch
1265 * waitqueue is no longer active, ensure that we run the queue
1266 * AFTER adding our entries back to the list.
1267 *
1268 * If no I/O scheduler has been configured it is possible that
1269 * the hardware queue got stopped and restarted before requests
1270 * were pushed back onto the dispatch list. Rerun the queue to
1271 * avoid starvation. Notes:
1272 * - blk_mq_run_hw_queue() checks whether or not a queue has
1273 * been stopped before rerunning a queue.
1274 * - Some but not all block drivers stop a queue before
1275 * returning BLK_STS_RESOURCE. Two exceptions are scsi-mq
1276 * and dm-rq.
1277 *
1278 * If driver returns BLK_STS_RESOURCE and SCHED_RESTART
1279 * bit is set, run queue after a delay to avoid IO stalls
1280 * that could otherwise occur if the queue is idle.
1281 */
1282 needs_restart = blk_mq_sched_needs_restart(hctx);
1283 if (!needs_restart ||
1284 (no_tag && list_empty_careful(&hctx->dispatch_wait.entry)))
1285 blk_mq_run_hw_queue(hctx, true);
1286 else if (needs_restart && (ret == BLK_STS_RESOURCE))
1287 blk_mq_delay_run_hw_queue(hctx, BLK_MQ_RESOURCE_DELAY);
1288
1289 blk_mq_update_dispatch_busy(hctx, true);
1290 return false;
1291 } else
1292 blk_mq_update_dispatch_busy(hctx, false);
1293
1294 /*
1295 * If the host/device is unable to accept more work, inform the
1296 * caller of that.
1297 */
1298 if (ret == BLK_STS_RESOURCE || ret == BLK_STS_DEV_RESOURCE)
1299 return false;
1300
1301 return (queued + errors) != 0;
1302 }
1303
1304 static void __blk_mq_run_hw_queue(struct blk_mq_hw_ctx *hctx)
1305 {
1306 int srcu_idx;
1307
1308 /*
1309 * We should be running this queue from one of the CPUs that
1310 * are mapped to it.
1311 *
1312 * There are at least two related races now between setting
1313 * hctx->next_cpu from blk_mq_hctx_next_cpu() and running
1314 * __blk_mq_run_hw_queue():
1315 *
1316 * - hctx->next_cpu is found offline in blk_mq_hctx_next_cpu(),
1317 * but later it becomes online, then this warning is harmless
1318 * at all
1319 *
1320 * - hctx->next_cpu is found online in blk_mq_hctx_next_cpu(),
1321 * but later it becomes offline, then the warning can't be
1322 * triggered, and we depend on blk-mq timeout handler to
1323 * handle dispatched requests to this hctx
1324 */
1325 if (!cpumask_test_cpu(raw_smp_processor_id(), hctx->cpumask) &&
1326 cpu_online(hctx->next_cpu)) {
1327 printk(KERN_WARNING "run queue from wrong CPU %d, hctx %s\n",
1328 raw_smp_processor_id(),
1329 cpumask_empty(hctx->cpumask) ? "inactive": "active");
1330 dump_stack();
1331 }
1332
1333 /*
1334 * We can't run the queue inline with ints disabled. Ensure that
1335 * we catch bad users of this early.
1336 */
1337 WARN_ON_ONCE(in_interrupt());
1338
1339 might_sleep_if(hctx->flags & BLK_MQ_F_BLOCKING);
1340
1341 hctx_lock(hctx, &srcu_idx);
1342 blk_mq_sched_dispatch_requests(hctx);
1343 hctx_unlock(hctx, srcu_idx);
1344 }
1345
1346 static inline int blk_mq_first_mapped_cpu(struct blk_mq_hw_ctx *hctx)
1347 {
1348 int cpu = cpumask_first_and(hctx->cpumask, cpu_online_mask);
1349
1350 if (cpu >= nr_cpu_ids)
1351 cpu = cpumask_first(hctx->cpumask);
1352 return cpu;
1353 }
1354
1355 /*
1356 * It'd be great if the workqueue API had a way to pass
1357 * in a mask and had some smarts for more clever placement.
1358 * For now we just round-robin here, switching for every
1359 * BLK_MQ_CPU_WORK_BATCH queued items.
1360 */
1361 static int blk_mq_hctx_next_cpu(struct blk_mq_hw_ctx *hctx)
1362 {
1363 bool tried = false;
1364 int next_cpu = hctx->next_cpu;
1365
1366 if (hctx->queue->nr_hw_queues == 1)
1367 return WORK_CPU_UNBOUND;
1368
1369 if (--hctx->next_cpu_batch <= 0) {
1370 select_cpu:
1371 next_cpu = cpumask_next_and(next_cpu, hctx->cpumask,
1372 cpu_online_mask);
1373 if (next_cpu >= nr_cpu_ids)
1374 next_cpu = blk_mq_first_mapped_cpu(hctx);
1375 hctx->next_cpu_batch = BLK_MQ_CPU_WORK_BATCH;
1376 }
1377
1378 /*
1379 * Do unbound schedule if we can't find a online CPU for this hctx,
1380 * and it should only happen in the path of handling CPU DEAD.
1381 */
1382 if (!cpu_online(next_cpu)) {
1383 if (!tried) {
1384 tried = true;
1385 goto select_cpu;
1386 }
1387
1388 /*
1389 * Make sure to re-select CPU next time once after CPUs
1390 * in hctx->cpumask become online again.
1391 */
1392 hctx->next_cpu = next_cpu;
1393 hctx->next_cpu_batch = 1;
1394 return WORK_CPU_UNBOUND;
1395 }
1396
1397 hctx->next_cpu = next_cpu;
1398 return next_cpu;
1399 }
1400
1401 static void __blk_mq_delay_run_hw_queue(struct blk_mq_hw_ctx *hctx, bool async,
1402 unsigned long msecs)
1403 {
1404 if (unlikely(blk_mq_hctx_stopped(hctx)))
1405 return;
1406
1407 if (!async && !(hctx->flags & BLK_MQ_F_BLOCKING)) {
1408 int cpu = get_cpu();
1409 if (cpumask_test_cpu(cpu, hctx->cpumask)) {
1410 __blk_mq_run_hw_queue(hctx);
1411 put_cpu();
1412 return;
1413 }
1414
1415 put_cpu();
1416 }
1417
1418 kblockd_mod_delayed_work_on(blk_mq_hctx_next_cpu(hctx), &hctx->run_work,
1419 msecs_to_jiffies(msecs));
1420 }
1421
1422 void blk_mq_delay_run_hw_queue(struct blk_mq_hw_ctx *hctx, unsigned long msecs)
1423 {
1424 __blk_mq_delay_run_hw_queue(hctx, true, msecs);
1425 }
1426 EXPORT_SYMBOL(blk_mq_delay_run_hw_queue);
1427
1428 bool blk_mq_run_hw_queue(struct blk_mq_hw_ctx *hctx, bool async)
1429 {
1430 int srcu_idx;
1431 bool need_run;
1432
1433 /*
1434 * When queue is quiesced, we may be switching io scheduler, or
1435 * updating nr_hw_queues, or other things, and we can't run queue
1436 * any more, even __blk_mq_hctx_has_pending() can't be called safely.
1437 *
1438 * And queue will be rerun in blk_mq_unquiesce_queue() if it is
1439 * quiesced.
1440 */
1441 hctx_lock(hctx, &srcu_idx);
1442 need_run = !blk_queue_quiesced(hctx->queue) &&
1443 blk_mq_hctx_has_pending(hctx);
1444 hctx_unlock(hctx, srcu_idx);
1445
1446 if (need_run) {
1447 __blk_mq_delay_run_hw_queue(hctx, async, 0);
1448 return true;
1449 }
1450
1451 return false;
1452 }
1453 EXPORT_SYMBOL(blk_mq_run_hw_queue);
1454
1455 void blk_mq_run_hw_queues(struct request_queue *q, bool async)
1456 {
1457 struct blk_mq_hw_ctx *hctx;
1458 int i;
1459
1460 queue_for_each_hw_ctx(q, hctx, i) {
1461 if (blk_mq_hctx_stopped(hctx))
1462 continue;
1463
1464 blk_mq_run_hw_queue(hctx, async);
1465 }
1466 }
1467 EXPORT_SYMBOL(blk_mq_run_hw_queues);
1468
1469 /**
1470 * blk_mq_queue_stopped() - check whether one or more hctxs have been stopped
1471 * @q: request queue.
1472 *
1473 * The caller is responsible for serializing this function against
1474 * blk_mq_{start,stop}_hw_queue().
1475 */
1476 bool blk_mq_queue_stopped(struct request_queue *q)
1477 {
1478 struct blk_mq_hw_ctx *hctx;
1479 int i;
1480
1481 queue_for_each_hw_ctx(q, hctx, i)
1482 if (blk_mq_hctx_stopped(hctx))
1483 return true;
1484
1485 return false;
1486 }
1487 EXPORT_SYMBOL(blk_mq_queue_stopped);
1488
1489 /*
1490 * This function is often used for pausing .queue_rq() by driver when
1491 * there isn't enough resource or some conditions aren't satisfied, and
1492 * BLK_STS_RESOURCE is usually returned.
1493 *
1494 * We do not guarantee that dispatch can be drained or blocked
1495 * after blk_mq_stop_hw_queue() returns. Please use
1496 * blk_mq_quiesce_queue() for that requirement.
1497 */
1498 void blk_mq_stop_hw_queue(struct blk_mq_hw_ctx *hctx)
1499 {
1500 cancel_delayed_work(&hctx->run_work);
1501
1502 set_bit(BLK_MQ_S_STOPPED, &hctx->state);
1503 }
1504 EXPORT_SYMBOL(blk_mq_stop_hw_queue);
1505
1506 /*
1507 * This function is often used for pausing .queue_rq() by driver when
1508 * there isn't enough resource or some conditions aren't satisfied, and
1509 * BLK_STS_RESOURCE is usually returned.
1510 *
1511 * We do not guarantee that dispatch can be drained or blocked
1512 * after blk_mq_stop_hw_queues() returns. Please use
1513 * blk_mq_quiesce_queue() for that requirement.
1514 */
1515 void blk_mq_stop_hw_queues(struct request_queue *q)
1516 {
1517 struct blk_mq_hw_ctx *hctx;
1518 int i;
1519
1520 queue_for_each_hw_ctx(q, hctx, i)
1521 blk_mq_stop_hw_queue(hctx);
1522 }
1523 EXPORT_SYMBOL(blk_mq_stop_hw_queues);
1524
1525 void blk_mq_start_hw_queue(struct blk_mq_hw_ctx *hctx)
1526 {
1527 clear_bit(BLK_MQ_S_STOPPED, &hctx->state);
1528
1529 blk_mq_run_hw_queue(hctx, false);
1530 }
1531 EXPORT_SYMBOL(blk_mq_start_hw_queue);
1532
1533 void blk_mq_start_hw_queues(struct request_queue *q)
1534 {
1535 struct blk_mq_hw_ctx *hctx;
1536 int i;
1537
1538 queue_for_each_hw_ctx(q, hctx, i)
1539 blk_mq_start_hw_queue(hctx);
1540 }
1541 EXPORT_SYMBOL(blk_mq_start_hw_queues);
1542
1543 void blk_mq_start_stopped_hw_queue(struct blk_mq_hw_ctx *hctx, bool async)
1544 {
1545 if (!blk_mq_hctx_stopped(hctx))
1546 return;
1547
1548 clear_bit(BLK_MQ_S_STOPPED, &hctx->state);
1549 blk_mq_run_hw_queue(hctx, async);
1550 }
1551 EXPORT_SYMBOL_GPL(blk_mq_start_stopped_hw_queue);
1552
1553 void blk_mq_start_stopped_hw_queues(struct request_queue *q, bool async)
1554 {
1555 struct blk_mq_hw_ctx *hctx;
1556 int i;
1557
1558 queue_for_each_hw_ctx(q, hctx, i)
1559 blk_mq_start_stopped_hw_queue(hctx, async);
1560 }
1561 EXPORT_SYMBOL(blk_mq_start_stopped_hw_queues);
1562
1563 static void blk_mq_run_work_fn(struct work_struct *work)
1564 {
1565 struct blk_mq_hw_ctx *hctx;
1566
1567 hctx = container_of(work, struct blk_mq_hw_ctx, run_work.work);
1568
1569 /*
1570 * If we are stopped, don't run the queue. The exception is if
1571 * BLK_MQ_S_START_ON_RUN is set. For that case, we auto-clear
1572 * the STOPPED bit and run it.
1573 */
1574 if (test_bit(BLK_MQ_S_STOPPED, &hctx->state)) {
1575 if (!test_bit(BLK_MQ_S_START_ON_RUN, &hctx->state))
1576 return;
1577
1578 clear_bit(BLK_MQ_S_START_ON_RUN, &hctx->state);
1579 clear_bit(BLK_MQ_S_STOPPED, &hctx->state);
1580 }
1581
1582 __blk_mq_run_hw_queue(hctx);
1583 }
1584
1585
1586 void blk_mq_delay_queue(struct blk_mq_hw_ctx *hctx, unsigned long msecs)
1587 {
1588 if (WARN_ON_ONCE(!blk_mq_hw_queue_mapped(hctx)))
1589 return;
1590
1591 /*
1592 * Stop the hw queue, then modify currently delayed work.
1593 * This should prevent us from running the queue prematurely.
1594 * Mark the queue as auto-clearing STOPPED when it runs.
1595 */
1596 blk_mq_stop_hw_queue(hctx);
1597 set_bit(BLK_MQ_S_START_ON_RUN, &hctx->state);
1598 kblockd_mod_delayed_work_on(blk_mq_hctx_next_cpu(hctx),
1599 &hctx->run_work,
1600 msecs_to_jiffies(msecs));
1601 }
1602 EXPORT_SYMBOL(blk_mq_delay_queue);
1603
1604 static inline void __blk_mq_insert_req_list(struct blk_mq_hw_ctx *hctx,
1605 struct request *rq,
1606 bool at_head)
1607 {
1608 struct blk_mq_ctx *ctx = rq->mq_ctx;
1609
1610 lockdep_assert_held(&ctx->lock);
1611
1612 trace_block_rq_insert(hctx->queue, rq);
1613
1614 if (at_head)
1615 list_add(&rq->queuelist, &ctx->rq_list);
1616 else
1617 list_add_tail(&rq->queuelist, &ctx->rq_list);
1618 }
1619
1620 void __blk_mq_insert_request(struct blk_mq_hw_ctx *hctx, struct request *rq,
1621 bool at_head)
1622 {
1623 struct blk_mq_ctx *ctx = rq->mq_ctx;
1624
1625 lockdep_assert_held(&ctx->lock);
1626
1627 __blk_mq_insert_req_list(hctx, rq, at_head);
1628 blk_mq_hctx_mark_pending(hctx, ctx);
1629 }
1630
1631 /*
1632 * Should only be used carefully, when the caller knows we want to
1633 * bypass a potential IO scheduler on the target device.
1634 */
1635 void blk_mq_request_bypass_insert(struct request *rq, bool run_queue)
1636 {
1637 struct blk_mq_ctx *ctx = rq->mq_ctx;
1638 struct blk_mq_hw_ctx *hctx = blk_mq_map_queue(rq->q, ctx->cpu);
1639
1640 spin_lock(&hctx->lock);
1641 list_add_tail(&rq->queuelist, &hctx->dispatch);
1642 spin_unlock(&hctx->lock);
1643
1644 if (run_queue)
1645 blk_mq_run_hw_queue(hctx, false);
1646 }
1647
1648 void blk_mq_insert_requests(struct blk_mq_hw_ctx *hctx, struct blk_mq_ctx *ctx,
1649 struct list_head *list)
1650
1651 {
1652 /*
1653 * preemption doesn't flush plug list, so it's possible ctx->cpu is
1654 * offline now
1655 */
1656 spin_lock(&ctx->lock);
1657 while (!list_empty(list)) {
1658 struct request *rq;
1659
1660 rq = list_first_entry(list, struct request, queuelist);
1661 BUG_ON(rq->mq_ctx != ctx);
1662 list_del_init(&rq->queuelist);
1663 __blk_mq_insert_req_list(hctx, rq, false);
1664 }
1665 blk_mq_hctx_mark_pending(hctx, ctx);
1666 spin_unlock(&ctx->lock);
1667 }
1668
1669 static int plug_ctx_cmp(void *priv, struct list_head *a, struct list_head *b)
1670 {
1671 struct request *rqa = container_of(a, struct request, queuelist);
1672 struct request *rqb = container_of(b, struct request, queuelist);
1673
1674 return !(rqa->mq_ctx < rqb->mq_ctx ||
1675 (rqa->mq_ctx == rqb->mq_ctx &&
1676 blk_rq_pos(rqa) < blk_rq_pos(rqb)));
1677 }
1678
1679 void blk_mq_flush_plug_list(struct blk_plug *plug, bool from_schedule)
1680 {
1681 struct blk_mq_ctx *this_ctx;
1682 struct request_queue *this_q;
1683 struct request *rq;
1684 LIST_HEAD(list);
1685 LIST_HEAD(ctx_list);
1686 unsigned int depth;
1687
1688 list_splice_init(&plug->mq_list, &list);
1689
1690 list_sort(NULL, &list, plug_ctx_cmp);
1691
1692 this_q = NULL;
1693 this_ctx = NULL;
1694 depth = 0;
1695
1696 while (!list_empty(&list)) {
1697 rq = list_entry_rq(list.next);
1698 list_del_init(&rq->queuelist);
1699 BUG_ON(!rq->q);
1700 if (rq->mq_ctx != this_ctx) {
1701 if (this_ctx) {
1702 trace_block_unplug(this_q, depth, !from_schedule);
1703 blk_mq_sched_insert_requests(this_q, this_ctx,
1704 &ctx_list,
1705 from_schedule);
1706 }
1707
1708 this_ctx = rq->mq_ctx;
1709 this_q = rq->q;
1710 depth = 0;
1711 }
1712
1713 depth++;
1714 list_add_tail(&rq->queuelist, &ctx_list);
1715 }
1716
1717 /*
1718 * If 'this_ctx' is set, we know we have entries to complete
1719 * on 'ctx_list'. Do those.
1720 */
1721 if (this_ctx) {
1722 trace_block_unplug(this_q, depth, !from_schedule);
1723 blk_mq_sched_insert_requests(this_q, this_ctx, &ctx_list,
1724 from_schedule);
1725 }
1726 }
1727
1728 static void blk_mq_bio_to_request(struct request *rq, struct bio *bio)
1729 {
1730 blk_init_request_from_bio(rq, bio);
1731
1732 blk_rq_set_rl(rq, blk_get_rl(rq->q, bio));
1733
1734 blk_account_io_start(rq, true);
1735 }
1736
1737 static inline void blk_mq_queue_io(struct blk_mq_hw_ctx *hctx,
1738 struct blk_mq_ctx *ctx,
1739 struct request *rq)
1740 {
1741 spin_lock(&ctx->lock);
1742 __blk_mq_insert_request(hctx, rq, false);
1743 spin_unlock(&ctx->lock);
1744 }
1745
1746 static blk_qc_t request_to_qc_t(struct blk_mq_hw_ctx *hctx, struct request *rq)
1747 {
1748 if (rq->tag != -1)
1749 return blk_tag_to_qc_t(rq->tag, hctx->queue_num, false);
1750
1751 return blk_tag_to_qc_t(rq->internal_tag, hctx->queue_num, true);
1752 }
1753
1754 static blk_status_t __blk_mq_issue_directly(struct blk_mq_hw_ctx *hctx,
1755 struct request *rq,
1756 blk_qc_t *cookie)
1757 {
1758 struct request_queue *q = rq->q;
1759 struct blk_mq_queue_data bd = {
1760 .rq = rq,
1761 .last = true,
1762 };
1763 blk_qc_t new_cookie;
1764 blk_status_t ret;
1765
1766 new_cookie = request_to_qc_t(hctx, rq);
1767
1768 /*
1769 * For OK queue, we are done. For error, caller may kill it.
1770 * Any other error (busy), just add it to our list as we
1771 * previously would have done.
1772 */
1773 ret = q->mq_ops->queue_rq(hctx, &bd);
1774 switch (ret) {
1775 case BLK_STS_OK:
1776 blk_mq_update_dispatch_busy(hctx, false);
1777 *cookie = new_cookie;
1778 break;
1779 case BLK_STS_RESOURCE:
1780 case BLK_STS_DEV_RESOURCE:
1781 blk_mq_update_dispatch_busy(hctx, true);
1782 __blk_mq_requeue_request(rq);
1783 break;
1784 default:
1785 blk_mq_update_dispatch_busy(hctx, false);
1786 *cookie = BLK_QC_T_NONE;
1787 break;
1788 }
1789
1790 return ret;
1791 }
1792
1793 static blk_status_t __blk_mq_try_issue_directly(struct blk_mq_hw_ctx *hctx,
1794 struct request *rq,
1795 blk_qc_t *cookie,
1796 bool bypass_insert)
1797 {
1798 struct request_queue *q = rq->q;
1799 bool run_queue = true;
1800
1801 /*
1802 * RCU or SRCU read lock is needed before checking quiesced flag.
1803 *
1804 * When queue is stopped or quiesced, ignore 'bypass_insert' from
1805 * blk_mq_request_issue_directly(), and return BLK_STS_OK to caller,
1806 * and avoid driver to try to dispatch again.
1807 */
1808 if (blk_mq_hctx_stopped(hctx) || blk_queue_quiesced(q)) {
1809 run_queue = false;
1810 bypass_insert = false;
1811 goto insert;
1812 }
1813
1814 if (q->elevator && !bypass_insert)
1815 goto insert;
1816
1817 if (!blk_mq_get_dispatch_budget(hctx))
1818 goto insert;
1819
1820 if (!blk_mq_get_driver_tag(rq, NULL, false)) {
1821 blk_mq_put_dispatch_budget(hctx);
1822 goto insert;
1823 }
1824
1825 return __blk_mq_issue_directly(hctx, rq, cookie);
1826 insert:
1827 if (bypass_insert)
1828 return BLK_STS_RESOURCE;
1829
1830 blk_mq_sched_insert_request(rq, false, run_queue, false);
1831 return BLK_STS_OK;
1832 }
1833
1834 static void blk_mq_try_issue_directly(struct blk_mq_hw_ctx *hctx,
1835 struct request *rq, blk_qc_t *cookie)
1836 {
1837 blk_status_t ret;
1838 int srcu_idx;
1839
1840 might_sleep_if(hctx->flags & BLK_MQ_F_BLOCKING);
1841
1842 hctx_lock(hctx, &srcu_idx);
1843
1844 ret = __blk_mq_try_issue_directly(hctx, rq, cookie, false);
1845 if (ret == BLK_STS_RESOURCE || ret == BLK_STS_DEV_RESOURCE)
1846 blk_mq_sched_insert_request(rq, false, true, false);
1847 else if (ret != BLK_STS_OK)
1848 blk_mq_end_request(rq, ret);
1849
1850 hctx_unlock(hctx, srcu_idx);
1851 }
1852
1853 blk_status_t blk_mq_request_issue_directly(struct request *rq)
1854 {
1855 blk_status_t ret;
1856 int srcu_idx;
1857 blk_qc_t unused_cookie;
1858 struct blk_mq_ctx *ctx = rq->mq_ctx;
1859 struct blk_mq_hw_ctx *hctx = blk_mq_map_queue(rq->q, ctx->cpu);
1860
1861 hctx_lock(hctx, &srcu_idx);
1862 ret = __blk_mq_try_issue_directly(hctx, rq, &unused_cookie, true);
1863 hctx_unlock(hctx, srcu_idx);
1864
1865 return ret;
1866 }
1867
1868 void blk_mq_try_issue_list_directly(struct blk_mq_hw_ctx *hctx,
1869 struct list_head *list)
1870 {
1871 while (!list_empty(list)) {
1872 blk_status_t ret;
1873 struct request *rq = list_first_entry(list, struct request,
1874 queuelist);
1875
1876 list_del_init(&rq->queuelist);
1877 ret = blk_mq_request_issue_directly(rq);
1878 if (ret != BLK_STS_OK) {
1879 list_add(&rq->queuelist, list);
1880 break;
1881 }
1882 }
1883 }
1884
1885 static blk_qc_t blk_mq_make_request(struct request_queue *q, struct bio *bio)
1886 {
1887 const int is_sync = op_is_sync(bio->bi_opf);
1888 const int is_flush_fua = op_is_flush(bio->bi_opf);
1889 struct blk_mq_alloc_data data = { .flags = 0 };
1890 struct request *rq;
1891 unsigned int request_count = 0;
1892 struct blk_plug *plug;
1893 struct request *same_queue_rq = NULL;
1894 blk_qc_t cookie;
1895 unsigned int wb_acct;
1896
1897 blk_queue_bounce(q, &bio);
1898
1899 blk_queue_split(q, &bio);
1900
1901 if (!bio_integrity_prep(bio))
1902 return BLK_QC_T_NONE;
1903
1904 if (!is_flush_fua && !blk_queue_nomerges(q) &&
1905 blk_attempt_plug_merge(q, bio, &request_count, &same_queue_rq))
1906 return BLK_QC_T_NONE;
1907
1908 if (blk_mq_sched_bio_merge(q, bio))
1909 return BLK_QC_T_NONE;
1910
1911 wb_acct = wbt_wait(q->rq_wb, bio, NULL);
1912
1913 trace_block_getrq(q, bio, bio->bi_opf);
1914
1915 rq = blk_mq_get_request(q, bio, bio->bi_opf, &data);
1916 if (unlikely(!rq)) {
1917 __wbt_done(q->rq_wb, wb_acct);
1918 if (bio->bi_opf & REQ_NOWAIT)
1919 bio_wouldblock_error(bio);
1920 return BLK_QC_T_NONE;
1921 }
1922
1923 wbt_track(&rq->issue_stat, wb_acct);
1924
1925 cookie = request_to_qc_t(data.hctx, rq);
1926
1927 plug = current->plug;
1928 if (unlikely(is_flush_fua)) {
1929 blk_mq_put_ctx(data.ctx);
1930 blk_mq_bio_to_request(rq, bio);
1931
1932 /* bypass scheduler for flush rq */
1933 blk_insert_flush(rq);
1934 blk_mq_run_hw_queue(data.hctx, true);
1935 } else if (plug && q->nr_hw_queues == 1) {
1936 struct request *last = NULL;
1937
1938 blk_mq_put_ctx(data.ctx);
1939 blk_mq_bio_to_request(rq, bio);
1940
1941 /*
1942 * @request_count may become stale because of schedule
1943 * out, so check the list again.
1944 */
1945 if (list_empty(&plug->mq_list))
1946 request_count = 0;
1947 else if (blk_queue_nomerges(q))
1948 request_count = blk_plug_queued_count(q);
1949
1950 if (!request_count)
1951 trace_block_plug(q);
1952 else
1953 last = list_entry_rq(plug->mq_list.prev);
1954
1955 if (request_count >= BLK_MAX_REQUEST_COUNT || (last &&
1956 blk_rq_bytes(last) >= BLK_PLUG_FLUSH_SIZE)) {
1957 blk_flush_plug_list(plug, false);
1958 trace_block_plug(q);
1959 }
1960
1961 list_add_tail(&rq->queuelist, &plug->mq_list);
1962 } else if (plug && !blk_queue_nomerges(q)) {
1963 blk_mq_bio_to_request(rq, bio);
1964
1965 /*
1966 * We do limited plugging. If the bio can be merged, do that.
1967 * Otherwise the existing request in the plug list will be
1968 * issued. So the plug list will have one request at most
1969 * The plug list might get flushed before this. If that happens,
1970 * the plug list is empty, and same_queue_rq is invalid.
1971 */
1972 if (list_empty(&plug->mq_list))
1973 same_queue_rq = NULL;
1974 if (same_queue_rq)
1975 list_del_init(&same_queue_rq->queuelist);
1976 list_add_tail(&rq->queuelist, &plug->mq_list);
1977
1978 blk_mq_put_ctx(data.ctx);
1979
1980 if (same_queue_rq) {
1981 data.hctx = blk_mq_map_queue(q,
1982 same_queue_rq->mq_ctx->cpu);
1983 blk_mq_try_issue_directly(data.hctx, same_queue_rq,
1984 &cookie);
1985 }
1986 } else if ((q->nr_hw_queues > 1 && is_sync) || (!q->elevator &&
1987 !data.hctx->dispatch_busy)) {
1988 blk_mq_put_ctx(data.ctx);
1989 blk_mq_bio_to_request(rq, bio);
1990 blk_mq_try_issue_directly(data.hctx, rq, &cookie);
1991 } else if (q->elevator) {
1992 blk_mq_put_ctx(data.ctx);
1993 blk_mq_bio_to_request(rq, bio);
1994 blk_mq_sched_insert_request(rq, false, true, true);
1995 } else {
1996 blk_mq_put_ctx(data.ctx);
1997 blk_mq_bio_to_request(rq, bio);
1998 blk_mq_queue_io(data.hctx, data.ctx, rq);
1999 blk_mq_run_hw_queue(data.hctx, true);
2000 }
2001
2002 return cookie;
2003 }
2004
2005 void blk_mq_free_rqs(struct blk_mq_tag_set *set, struct blk_mq_tags *tags,
2006 unsigned int hctx_idx)
2007 {
2008 struct page *page;
2009
2010 if (tags->rqs && set->ops->exit_request) {
2011 int i;
2012
2013 for (i = 0; i < tags->nr_tags; i++) {
2014 struct request *rq = tags->static_rqs[i];
2015
2016 if (!rq)
2017 continue;
2018 set->ops->exit_request(set, rq, hctx_idx);
2019 tags->static_rqs[i] = NULL;
2020 }
2021 }
2022
2023 while (!list_empty(&tags->page_list)) {
2024 page = list_first_entry(&tags->page_list, struct page, lru);
2025 list_del_init(&page->lru);
2026 /*
2027 * Remove kmemleak object previously allocated in
2028 * blk_mq_init_rq_map().
2029 */
2030 kmemleak_free(page_address(page));
2031 __free_pages(page, page->private);
2032 }
2033 }
2034
2035 void blk_mq_free_rq_map(struct blk_mq_tags *tags)
2036 {
2037 kfree(tags->rqs);
2038 tags->rqs = NULL;
2039 kfree(tags->static_rqs);
2040 tags->static_rqs = NULL;
2041
2042 blk_mq_free_tags(tags);
2043 }
2044
2045 struct blk_mq_tags *blk_mq_alloc_rq_map(struct blk_mq_tag_set *set,
2046 unsigned int hctx_idx,
2047 unsigned int nr_tags,
2048 unsigned int reserved_tags)
2049 {
2050 struct blk_mq_tags *tags;
2051 int node;
2052
2053 node = blk_mq_hw_queue_to_node(set->mq_map, hctx_idx);
2054 if (node == NUMA_NO_NODE)
2055 node = set->numa_node;
2056
2057 tags = blk_mq_init_tags(nr_tags, reserved_tags, node,
2058 BLK_MQ_FLAG_TO_ALLOC_POLICY(set->flags));
2059 if (!tags)
2060 return NULL;
2061
2062 tags->rqs = kzalloc_node(nr_tags * sizeof(struct request *),
2063 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY,
2064 node);
2065 if (!tags->rqs) {
2066 blk_mq_free_tags(tags);
2067 return NULL;
2068 }
2069
2070 tags->static_rqs = kzalloc_node(nr_tags * sizeof(struct request *),
2071 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY,
2072 node);
2073 if (!tags->static_rqs) {
2074 kfree(tags->rqs);
2075 blk_mq_free_tags(tags);
2076 return NULL;
2077 }
2078
2079 return tags;
2080 }
2081
2082 static size_t order_to_size(unsigned int order)
2083 {
2084 return (size_t)PAGE_SIZE << order;
2085 }
2086
2087 int blk_mq_alloc_rqs(struct blk_mq_tag_set *set, struct blk_mq_tags *tags,
2088 unsigned int hctx_idx, unsigned int depth)
2089 {
2090 unsigned int i, j, entries_per_page, max_order = 4;
2091 size_t rq_size, left;
2092 int node;
2093
2094 node = blk_mq_hw_queue_to_node(set->mq_map, hctx_idx);
2095 if (node == NUMA_NO_NODE)
2096 node = set->numa_node;
2097
2098 INIT_LIST_HEAD(&tags->page_list);
2099
2100 /*
2101 * rq_size is the size of the request plus driver payload, rounded
2102 * to the cacheline size
2103 */
2104 rq_size = round_up(sizeof(struct request) + set->cmd_size,
2105 cache_line_size());
2106 left = rq_size * depth;
2107
2108 for (i = 0; i < depth; ) {
2109 int this_order = max_order;
2110 struct page *page;
2111 int to_do;
2112 void *p;
2113
2114 while (this_order && left < order_to_size(this_order - 1))
2115 this_order--;
2116
2117 do {
2118 page = alloc_pages_node(node,
2119 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY | __GFP_ZERO,
2120 this_order);
2121 if (page)
2122 break;
2123 if (!this_order--)
2124 break;
2125 if (order_to_size(this_order) < rq_size)
2126 break;
2127 } while (1);
2128
2129 if (!page)
2130 goto fail;
2131
2132 page->private = this_order;
2133 list_add_tail(&page->lru, &tags->page_list);
2134
2135 p = page_address(page);
2136 /*
2137 * Allow kmemleak to scan these pages as they contain pointers
2138 * to additional allocations like via ops->init_request().
2139 */
2140 kmemleak_alloc(p, order_to_size(this_order), 1, GFP_NOIO);
2141 entries_per_page = order_to_size(this_order) / rq_size;
2142 to_do = min(entries_per_page, depth - i);
2143 left -= to_do * rq_size;
2144 for (j = 0; j < to_do; j++) {
2145 struct request *rq = p;
2146
2147 tags->static_rqs[i] = rq;
2148 if (set->ops->init_request) {
2149 if (set->ops->init_request(set, rq, hctx_idx,
2150 node)) {
2151 tags->static_rqs[i] = NULL;
2152 goto fail;
2153 }
2154 }
2155
2156 p += rq_size;
2157 i++;
2158 }
2159 }
2160 return 0;
2161
2162 fail:
2163 blk_mq_free_rqs(set, tags, hctx_idx);
2164 return -ENOMEM;
2165 }
2166
2167 /*
2168 * 'cpu' is going away. splice any existing rq_list entries from this
2169 * software queue to the hw queue dispatch list, and ensure that it
2170 * gets run.
2171 */
2172 static int blk_mq_hctx_notify_dead(unsigned int cpu, struct hlist_node *node)
2173 {
2174 struct blk_mq_hw_ctx *hctx;
2175 struct blk_mq_ctx *ctx;
2176 LIST_HEAD(tmp);
2177
2178 hctx = hlist_entry_safe(node, struct blk_mq_hw_ctx, cpuhp_dead);
2179 ctx = __blk_mq_get_ctx(hctx->queue, cpu);
2180
2181 spin_lock(&ctx->lock);
2182 if (!list_empty(&ctx->rq_list)) {
2183 list_splice_init(&ctx->rq_list, &tmp);
2184 blk_mq_hctx_clear_pending(hctx, ctx);
2185 }
2186 spin_unlock(&ctx->lock);
2187
2188 if (list_empty(&tmp))
2189 return 0;
2190
2191 spin_lock(&hctx->lock);
2192 list_splice_tail_init(&tmp, &hctx->dispatch);
2193 spin_unlock(&hctx->lock);
2194
2195 blk_mq_run_hw_queue(hctx, true);
2196 return 0;
2197 }
2198
2199 static void blk_mq_remove_cpuhp(struct blk_mq_hw_ctx *hctx)
2200 {
2201 cpuhp_state_remove_instance_nocalls(CPUHP_BLK_MQ_DEAD,
2202 &hctx->cpuhp_dead);
2203 }
2204
2205 /* hctx->ctxs will be freed in queue's release handler */
2206 static void blk_mq_exit_hctx(struct request_queue *q,
2207 struct blk_mq_tag_set *set,
2208 struct blk_mq_hw_ctx *hctx, unsigned int hctx_idx)
2209 {
2210 blk_mq_debugfs_unregister_hctx(hctx);
2211
2212 if (blk_mq_hw_queue_mapped(hctx))
2213 blk_mq_tag_idle(hctx);
2214
2215 if (set->ops->exit_request)
2216 set->ops->exit_request(set, hctx->fq->flush_rq, hctx_idx);
2217
2218 blk_mq_sched_exit_hctx(q, hctx, hctx_idx);
2219
2220 if (set->ops->exit_hctx)
2221 set->ops->exit_hctx(hctx, hctx_idx);
2222
2223 blk_mq_remove_cpuhp(hctx);
2224 }
2225
2226 static void blk_mq_exit_hw_queues(struct request_queue *q,
2227 struct blk_mq_tag_set *set, int nr_queue)
2228 {
2229 struct blk_mq_hw_ctx *hctx;
2230 unsigned int i;
2231
2232 queue_for_each_hw_ctx(q, hctx, i) {
2233 if (i == nr_queue)
2234 break;
2235 blk_mq_exit_hctx(q, set, hctx, i);
2236 }
2237 }
2238
2239 static int blk_mq_init_hctx(struct request_queue *q,
2240 struct blk_mq_tag_set *set,
2241 struct blk_mq_hw_ctx *hctx, unsigned hctx_idx)
2242 {
2243 int node;
2244
2245 node = hctx->numa_node;
2246 if (node == NUMA_NO_NODE)
2247 node = hctx->numa_node = set->numa_node;
2248
2249 INIT_DELAYED_WORK(&hctx->run_work, blk_mq_run_work_fn);
2250 spin_lock_init(&hctx->lock);
2251 INIT_LIST_HEAD(&hctx->dispatch);
2252 hctx->queue = q;
2253 hctx->flags = set->flags & ~BLK_MQ_F_TAG_SHARED;
2254
2255 cpuhp_state_add_instance_nocalls(CPUHP_BLK_MQ_DEAD, &hctx->cpuhp_dead);
2256
2257 hctx->tags = set->tags[hctx_idx];
2258
2259 /*
2260 * Allocate space for all possible cpus to avoid allocation at
2261 * runtime
2262 */
2263 hctx->ctxs = kmalloc_array_node(nr_cpu_ids, sizeof(void *),
2264 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY, node);
2265 if (!hctx->ctxs)
2266 goto unregister_cpu_notifier;
2267
2268 if (sbitmap_init_node(&hctx->ctx_map, nr_cpu_ids, ilog2(8),
2269 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY, node))
2270 goto free_ctxs;
2271
2272 hctx->nr_ctx = 0;
2273
2274 init_waitqueue_func_entry(&hctx->dispatch_wait, blk_mq_dispatch_wake);
2275 INIT_LIST_HEAD(&hctx->dispatch_wait.entry);
2276
2277 if (set->ops->init_hctx &&
2278 set->ops->init_hctx(hctx, set->driver_data, hctx_idx))
2279 goto free_bitmap;
2280
2281 if (blk_mq_sched_init_hctx(q, hctx, hctx_idx))
2282 goto exit_hctx;
2283
2284 hctx->fq = blk_alloc_flush_queue(q, hctx->numa_node, set->cmd_size,
2285 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY);
2286 if (!hctx->fq)
2287 goto sched_exit_hctx;
2288
2289 if (set->ops->init_request &&
2290 set->ops->init_request(set, hctx->fq->flush_rq, hctx_idx,
2291 node))
2292 goto free_fq;
2293
2294 if (hctx->flags & BLK_MQ_F_BLOCKING)
2295 init_srcu_struct(hctx->queue_rq_srcu);
2296
2297 blk_mq_debugfs_register_hctx(q, hctx);
2298
2299 return 0;
2300
2301 free_fq:
2302 blk_free_flush_queue(hctx->fq);
2303 sched_exit_hctx:
2304 blk_mq_sched_exit_hctx(q, hctx, hctx_idx);
2305 exit_hctx:
2306 if (set->ops->exit_hctx)
2307 set->ops->exit_hctx(hctx, hctx_idx);
2308 free_bitmap:
2309 sbitmap_free(&hctx->ctx_map);
2310 free_ctxs:
2311 kfree(hctx->ctxs);
2312 unregister_cpu_notifier:
2313 blk_mq_remove_cpuhp(hctx);
2314 return -1;
2315 }
2316
2317 static void blk_mq_init_cpu_queues(struct request_queue *q,
2318 unsigned int nr_hw_queues)
2319 {
2320 unsigned int i;
2321
2322 for_each_possible_cpu(i) {
2323 struct blk_mq_ctx *__ctx = per_cpu_ptr(q->queue_ctx, i);
2324 struct blk_mq_hw_ctx *hctx;
2325
2326 __ctx->cpu = i;
2327 spin_lock_init(&__ctx->lock);
2328 INIT_LIST_HEAD(&__ctx->rq_list);
2329 __ctx->queue = q;
2330
2331 /*
2332 * Set local node, IFF we have more than one hw queue. If
2333 * not, we remain on the home node of the device
2334 */
2335 hctx = blk_mq_map_queue(q, i);
2336 if (nr_hw_queues > 1 && hctx->numa_node == NUMA_NO_NODE)
2337 hctx->numa_node = local_memory_node(cpu_to_node(i));
2338 }
2339 }
2340
2341 static bool __blk_mq_alloc_rq_map(struct blk_mq_tag_set *set, int hctx_idx)
2342 {
2343 int ret = 0;
2344
2345 set->tags[hctx_idx] = blk_mq_alloc_rq_map(set, hctx_idx,
2346 set->queue_depth, set->reserved_tags);
2347 if (!set->tags[hctx_idx])
2348 return false;
2349
2350 ret = blk_mq_alloc_rqs(set, set->tags[hctx_idx], hctx_idx,
2351 set->queue_depth);
2352 if (!ret)
2353 return true;
2354
2355 blk_mq_free_rq_map(set->tags[hctx_idx]);
2356 set->tags[hctx_idx] = NULL;
2357 return false;
2358 }
2359
2360 static void blk_mq_free_map_and_requests(struct blk_mq_tag_set *set,
2361 unsigned int hctx_idx)
2362 {
2363 if (set->tags[hctx_idx]) {
2364 blk_mq_free_rqs(set, set->tags[hctx_idx], hctx_idx);
2365 blk_mq_free_rq_map(set->tags[hctx_idx]);
2366 set->tags[hctx_idx] = NULL;
2367 }
2368 }
2369
2370 static void blk_mq_map_swqueue(struct request_queue *q)
2371 {
2372 unsigned int i, hctx_idx;
2373 struct blk_mq_hw_ctx *hctx;
2374 struct blk_mq_ctx *ctx;
2375 struct blk_mq_tag_set *set = q->tag_set;
2376
2377 /*
2378 * Avoid others reading imcomplete hctx->cpumask through sysfs
2379 */
2380 mutex_lock(&q->sysfs_lock);
2381
2382 queue_for_each_hw_ctx(q, hctx, i) {
2383 cpumask_clear(hctx->cpumask);
2384 hctx->nr_ctx = 0;
2385 }
2386
2387 /*
2388 * Map software to hardware queues.
2389 *
2390 * If the cpu isn't present, the cpu is mapped to first hctx.
2391 */
2392 for_each_possible_cpu(i) {
2393 hctx_idx = q->mq_map[i];
2394 /* unmapped hw queue can be remapped after CPU topo changed */
2395 if (!set->tags[hctx_idx] &&
2396 !__blk_mq_alloc_rq_map(set, hctx_idx)) {
2397 /*
2398 * If tags initialization fail for some hctx,
2399 * that hctx won't be brought online. In this
2400 * case, remap the current ctx to hctx[0] which
2401 * is guaranteed to always have tags allocated
2402 */
2403 q->mq_map[i] = 0;
2404 }
2405
2406 ctx = per_cpu_ptr(q->queue_ctx, i);
2407 hctx = blk_mq_map_queue(q, i);
2408
2409 cpumask_set_cpu(i, hctx->cpumask);
2410 ctx->index_hw = hctx->nr_ctx;
2411 hctx->ctxs[hctx->nr_ctx++] = ctx;
2412 }
2413
2414 mutex_unlock(&q->sysfs_lock);
2415
2416 queue_for_each_hw_ctx(q, hctx, i) {
2417 /*
2418 * If no software queues are mapped to this hardware queue,
2419 * disable it and free the request entries.
2420 */
2421 if (!hctx->nr_ctx) {
2422 /* Never unmap queue 0. We need it as a
2423 * fallback in case of a new remap fails
2424 * allocation
2425 */
2426 if (i && set->tags[i])
2427 blk_mq_free_map_and_requests(set, i);
2428
2429 hctx->tags = NULL;
2430 continue;
2431 }
2432
2433 hctx->tags = set->tags[i];
2434 WARN_ON(!hctx->tags);
2435
2436 /*
2437 * Set the map size to the number of mapped software queues.
2438 * This is more accurate and more efficient than looping
2439 * over all possibly mapped software queues.
2440 */
2441 sbitmap_resize(&hctx->ctx_map, hctx->nr_ctx);
2442
2443 /*
2444 * Initialize batch roundrobin counts
2445 */
2446 hctx->next_cpu = blk_mq_first_mapped_cpu(hctx);
2447 hctx->next_cpu_batch = BLK_MQ_CPU_WORK_BATCH;
2448 }
2449 }
2450
2451 /*
2452 * Caller needs to ensure that we're either frozen/quiesced, or that
2453 * the queue isn't live yet.
2454 */
2455 static void queue_set_hctx_shared(struct request_queue *q, bool shared)
2456 {
2457 struct blk_mq_hw_ctx *hctx;
2458 int i;
2459
2460 queue_for_each_hw_ctx(q, hctx, i) {
2461 if (shared) {
2462 if (test_bit(BLK_MQ_S_SCHED_RESTART, &hctx->state))
2463 atomic_inc(&q->shared_hctx_restart);
2464 hctx->flags |= BLK_MQ_F_TAG_SHARED;
2465 } else {
2466 if (test_bit(BLK_MQ_S_SCHED_RESTART, &hctx->state))
2467 atomic_dec(&q->shared_hctx_restart);
2468 hctx->flags &= ~BLK_MQ_F_TAG_SHARED;
2469 }
2470 }
2471 }
2472
2473 static void blk_mq_update_tag_set_depth(struct blk_mq_tag_set *set,
2474 bool shared)
2475 {
2476 struct request_queue *q;
2477
2478 lockdep_assert_held(&set->tag_list_lock);
2479
2480 list_for_each_entry(q, &set->tag_list, tag_set_list) {
2481 blk_mq_freeze_queue(q);
2482 queue_set_hctx_shared(q, shared);
2483 blk_mq_unfreeze_queue(q);
2484 }
2485 }
2486
2487 static void blk_mq_del_queue_tag_set(struct request_queue *q)
2488 {
2489 struct blk_mq_tag_set *set = q->tag_set;
2490
2491 mutex_lock(&set->tag_list_lock);
2492 list_del_rcu(&q->tag_set_list);
2493 if (list_is_singular(&set->tag_list)) {
2494 /* just transitioned to unshared */
2495 set->flags &= ~BLK_MQ_F_TAG_SHARED;
2496 /* update existing queue */
2497 blk_mq_update_tag_set_depth(set, false);
2498 }
2499 mutex_unlock(&set->tag_list_lock);
2500 synchronize_rcu();
2501 INIT_LIST_HEAD(&q->tag_set_list);
2502 }
2503
2504 static void blk_mq_add_queue_tag_set(struct blk_mq_tag_set *set,
2505 struct request_queue *q)
2506 {
2507 q->tag_set = set;
2508
2509 mutex_lock(&set->tag_list_lock);
2510
2511 /*
2512 * Check to see if we're transitioning to shared (from 1 to 2 queues).
2513 */
2514 if (!list_empty(&set->tag_list) &&
2515 !(set->flags & BLK_MQ_F_TAG_SHARED)) {
2516 set->flags |= BLK_MQ_F_TAG_SHARED;
2517 /* update existing queue */
2518 blk_mq_update_tag_set_depth(set, true);
2519 }
2520 if (set->flags & BLK_MQ_F_TAG_SHARED)
2521 queue_set_hctx_shared(q, true);
2522 list_add_tail_rcu(&q->tag_set_list, &set->tag_list);
2523
2524 mutex_unlock(&set->tag_list_lock);
2525 }
2526
2527 /*
2528 * It is the actual release handler for mq, but we do it from
2529 * request queue's release handler for avoiding use-after-free
2530 * and headache because q->mq_kobj shouldn't have been introduced,
2531 * but we can't group ctx/kctx kobj without it.
2532 */
2533 void blk_mq_release(struct request_queue *q)
2534 {
2535 struct blk_mq_hw_ctx *hctx;
2536 unsigned int i;
2537
2538 /* hctx kobj stays in hctx */
2539 queue_for_each_hw_ctx(q, hctx, i) {
2540 if (!hctx)
2541 continue;
2542 kobject_put(&hctx->kobj);
2543 }
2544
2545 q->mq_map = NULL;
2546
2547 kfree(q->queue_hw_ctx);
2548
2549 /*
2550 * release .mq_kobj and sw queue's kobject now because
2551 * both share lifetime with request queue.
2552 */
2553 blk_mq_sysfs_deinit(q);
2554
2555 free_percpu(q->queue_ctx);
2556 }
2557
2558 struct request_queue *blk_mq_init_queue(struct blk_mq_tag_set *set)
2559 {
2560 struct request_queue *uninit_q, *q;
2561
2562 uninit_q = blk_alloc_queue_node(GFP_KERNEL, set->numa_node);
2563 if (!uninit_q)
2564 return ERR_PTR(-ENOMEM);
2565
2566 q = blk_mq_init_allocated_queue(set, uninit_q);
2567 if (IS_ERR(q))
2568 blk_cleanup_queue(uninit_q);
2569
2570 return q;
2571 }
2572 EXPORT_SYMBOL(blk_mq_init_queue);
2573
2574 static int blk_mq_hw_ctx_size(struct blk_mq_tag_set *tag_set)
2575 {
2576 int hw_ctx_size = sizeof(struct blk_mq_hw_ctx);
2577
2578 BUILD_BUG_ON(ALIGN(offsetof(struct blk_mq_hw_ctx, queue_rq_srcu),
2579 __alignof__(struct blk_mq_hw_ctx)) !=
2580 sizeof(struct blk_mq_hw_ctx));
2581
2582 if (tag_set->flags & BLK_MQ_F_BLOCKING)
2583 hw_ctx_size += sizeof(struct srcu_struct);
2584
2585 return hw_ctx_size;
2586 }
2587
2588 static void blk_mq_realloc_hw_ctxs(struct blk_mq_tag_set *set,
2589 struct request_queue *q)
2590 {
2591 int i, j;
2592 struct blk_mq_hw_ctx **hctxs = q->queue_hw_ctx;
2593
2594 blk_mq_sysfs_unregister(q);
2595
2596 /* protect against switching io scheduler */
2597 mutex_lock(&q->sysfs_lock);
2598 for (i = 0; i < set->nr_hw_queues; i++) {
2599 int node;
2600
2601 if (hctxs[i])
2602 continue;
2603
2604 node = blk_mq_hw_queue_to_node(q->mq_map, i);
2605 hctxs[i] = kzalloc_node(blk_mq_hw_ctx_size(set),
2606 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY,
2607 node);
2608 if (!hctxs[i])
2609 break;
2610
2611 if (!zalloc_cpumask_var_node(&hctxs[i]->cpumask,
2612 GFP_NOIO | __GFP_NOWARN | __GFP_NORETRY,
2613 node)) {
2614 kfree(hctxs[i]);
2615 hctxs[i] = NULL;
2616 break;
2617 }
2618
2619 atomic_set(&hctxs[i]->nr_active, 0);
2620 hctxs[i]->numa_node = node;
2621 hctxs[i]->queue_num = i;
2622
2623 if (blk_mq_init_hctx(q, set, hctxs[i], i)) {
2624 free_cpumask_var(hctxs[i]->cpumask);
2625 kfree(hctxs[i]);
2626 hctxs[i] = NULL;
2627 break;
2628 }
2629 blk_mq_hctx_kobj_init(hctxs[i]);
2630 }
2631 for (j = i; j < q->nr_hw_queues; j++) {
2632 struct blk_mq_hw_ctx *hctx = hctxs[j];
2633
2634 if (hctx) {
2635 if (hctx->tags)
2636 blk_mq_free_map_and_requests(set, j);
2637 blk_mq_exit_hctx(q, set, hctx, j);
2638 kobject_put(&hctx->kobj);
2639 hctxs[j] = NULL;
2640
2641 }
2642 }
2643 q->nr_hw_queues = i;
2644 mutex_unlock(&q->sysfs_lock);
2645 blk_mq_sysfs_register(q);
2646 }
2647
2648 struct request_queue *blk_mq_init_allocated_queue(struct blk_mq_tag_set *set,
2649 struct request_queue *q)
2650 {
2651 /* mark the queue as mq asap */
2652 q->mq_ops = set->ops;
2653
2654 q->poll_cb = blk_stat_alloc_callback(blk_mq_poll_stats_fn,
2655 blk_mq_poll_stats_bkt,
2656 BLK_MQ_POLL_STATS_BKTS, q);
2657 if (!q->poll_cb)
2658 goto err_exit;
2659
2660 q->queue_ctx = alloc_percpu(struct blk_mq_ctx);
2661 if (!q->queue_ctx)
2662 goto err_exit;
2663
2664 /* init q->mq_kobj and sw queues' kobjects */
2665 blk_mq_sysfs_init(q);
2666
2667 q->queue_hw_ctx = kzalloc_node(nr_cpu_ids * sizeof(*(q->queue_hw_ctx)),
2668 GFP_KERNEL, set->numa_node);
2669 if (!q->queue_hw_ctx)
2670 goto err_percpu;
2671
2672 q->mq_map = set->mq_map;
2673
2674 blk_mq_realloc_hw_ctxs(set, q);
2675 if (!q->nr_hw_queues)
2676 goto err_hctxs;
2677
2678 INIT_WORK(&q->timeout_work, blk_mq_timeout_work);
2679 blk_queue_rq_timeout(q, set->timeout ? set->timeout : 30 * HZ);
2680
2681 q->nr_queues = nr_cpu_ids;
2682
2683 q->queue_flags |= QUEUE_FLAG_MQ_DEFAULT;
2684
2685 if (!(set->flags & BLK_MQ_F_SG_MERGE))
2686 q->queue_flags |= 1 << QUEUE_FLAG_NO_SG_MERGE;
2687
2688 q->sg_reserved_size = INT_MAX;
2689
2690 INIT_DELAYED_WORK(&q->requeue_work, blk_mq_requeue_work);
2691 INIT_LIST_HEAD(&q->requeue_list);
2692 spin_lock_init(&q->requeue_lock);
2693
2694 blk_queue_make_request(q, blk_mq_make_request);
2695 if (q->mq_ops->poll)
2696 q->poll_fn = blk_mq_poll;
2697
2698 /*
2699 * Do this after blk_queue_make_request() overrides it...
2700 */
2701 q->nr_requests = set->queue_depth;
2702
2703 /*
2704 * Default to classic polling
2705 */
2706 q->poll_nsec = -1;
2707
2708 if (set->ops->complete)
2709 blk_queue_softirq_done(q, set->ops->complete);
2710
2711 blk_mq_init_cpu_queues(q, set->nr_hw_queues);
2712 blk_mq_add_queue_tag_set(set, q);
2713 blk_mq_map_swqueue(q);
2714
2715 if (!(set->flags & BLK_MQ_F_NO_SCHED)) {
2716 int ret;
2717
2718 ret = blk_mq_sched_init(q);
2719 if (ret)
2720 return ERR_PTR(ret);
2721 }
2722
2723 return q;
2724
2725 err_hctxs:
2726 kfree(q->queue_hw_ctx);
2727 err_percpu:
2728 free_percpu(q->queue_ctx);
2729 err_exit:
2730 q->mq_ops = NULL;
2731 return ERR_PTR(-ENOMEM);
2732 }
2733 EXPORT_SYMBOL(blk_mq_init_allocated_queue);
2734
2735 /* tags can _not_ be used after returning from blk_mq_exit_queue */
2736 void blk_mq_exit_queue(struct request_queue *q)
2737 {
2738 struct blk_mq_tag_set *set = q->tag_set;
2739
2740 blk_mq_del_queue_tag_set(q);
2741 blk_mq_exit_hw_queues(q, set, set->nr_hw_queues);
2742 }
2743
2744 /* Basically redo blk_mq_init_queue with queue frozen */
2745 static void blk_mq_queue_reinit(struct request_queue *q)
2746 {
2747 WARN_ON_ONCE(!atomic_read(&q->mq_freeze_depth));
2748
2749 blk_mq_debugfs_unregister_hctxs(q);
2750 blk_mq_sysfs_unregister(q);
2751
2752 /*
2753 * redo blk_mq_init_cpu_queues and blk_mq_init_hw_queues. FIXME: maybe
2754 * we should change hctx numa_node according to the new topology (this
2755 * involves freeing and re-allocating memory, worth doing?)
2756 */
2757 blk_mq_map_swqueue(q);
2758
2759 blk_mq_sysfs_register(q);
2760 blk_mq_debugfs_register_hctxs(q);
2761 }
2762
2763 static int __blk_mq_alloc_rq_maps(struct blk_mq_tag_set *set)
2764 {
2765 int i;
2766
2767 for (i = 0; i < set->nr_hw_queues; i++)
2768 if (!__blk_mq_alloc_rq_map(set, i))
2769 goto out_unwind;
2770
2771 return 0;
2772
2773 out_unwind:
2774 while (--i >= 0)
2775 blk_mq_free_rq_map(set->tags[i]);
2776
2777 return -ENOMEM;
2778 }
2779
2780 /*
2781 * Allocate the request maps associated with this tag_set. Note that this
2782 * may reduce the depth asked for, if memory is tight. set->queue_depth
2783 * will be updated to reflect the allocated depth.
2784 */
2785 static int blk_mq_alloc_rq_maps(struct blk_mq_tag_set *set)
2786 {
2787 unsigned int depth;
2788 int err;
2789
2790 depth = set->queue_depth;
2791 do {
2792 err = __blk_mq_alloc_rq_maps(set);
2793 if (!err)
2794 break;
2795
2796 set->queue_depth >>= 1;
2797 if (set->queue_depth < set->reserved_tags + BLK_MQ_TAG_MIN) {
2798 err = -ENOMEM;
2799 break;
2800 }
2801 } while (set->queue_depth);
2802
2803 if (!set->queue_depth || err) {
2804 pr_err("blk-mq: failed to allocate request map\n");
2805 return -ENOMEM;
2806 }
2807
2808 if (depth != set->queue_depth)
2809 pr_info("blk-mq: reduced tag depth (%u -> %u)\n",
2810 depth, set->queue_depth);
2811
2812 return 0;
2813 }
2814
2815 static int blk_mq_update_queue_map(struct blk_mq_tag_set *set)
2816 {
2817 if (set->ops->map_queues) {
2818 int cpu;
2819 /*
2820 * transport .map_queues is usually done in the following
2821 * way:
2822 *
2823 * for (queue = 0; queue < set->nr_hw_queues; queue++) {
2824 * mask = get_cpu_mask(queue)
2825 * for_each_cpu(cpu, mask)
2826 * set->mq_map[cpu] = queue;
2827 * }
2828 *
2829 * When we need to remap, the table has to be cleared for
2830 * killing stale mapping since one CPU may not be mapped
2831 * to any hw queue.
2832 */
2833 for_each_possible_cpu(cpu)
2834 set->mq_map[cpu] = 0;
2835
2836 return set->ops->map_queues(set);
2837 } else
2838 return blk_mq_map_queues(set);
2839 }
2840
2841 /*
2842 * Alloc a tag set to be associated with one or more request queues.
2843 * May fail with EINVAL for various error conditions. May adjust the
2844 * requested depth down, if if it too large. In that case, the set
2845 * value will be stored in set->queue_depth.
2846 */
2847 int blk_mq_alloc_tag_set(struct blk_mq_tag_set *set)
2848 {
2849 int ret;
2850
2851 BUILD_BUG_ON(BLK_MQ_MAX_DEPTH > 1 << BLK_MQ_UNIQUE_TAG_BITS);
2852
2853 if (!set->nr_hw_queues)
2854 return -EINVAL;
2855 if (!set->queue_depth)
2856 return -EINVAL;
2857 if (set->queue_depth < set->reserved_tags + BLK_MQ_TAG_MIN)
2858 return -EINVAL;
2859
2860 if (!set->ops->queue_rq)
2861 return -EINVAL;
2862
2863 if (!set->ops->get_budget ^ !set->ops->put_budget)
2864 return -EINVAL;
2865
2866 if (set->queue_depth > BLK_MQ_MAX_DEPTH) {
2867 pr_info("blk-mq: reduced tag depth to %u\n",
2868 BLK_MQ_MAX_DEPTH);
2869 set->queue_depth = BLK_MQ_MAX_DEPTH;
2870 }
2871
2872 /*
2873 * If a crashdump is active, then we are potentially in a very
2874 * memory constrained environment. Limit us to 1 queue and
2875 * 64 tags to prevent using too much memory.
2876 */
2877 if (is_kdump_kernel()) {
2878 set->nr_hw_queues = 1;
2879 set->queue_depth = min(64U, set->queue_depth);
2880 }
2881 /*
2882 * There is no use for more h/w queues than cpus.
2883 */
2884 if (set->nr_hw_queues > nr_cpu_ids)
2885 set->nr_hw_queues = nr_cpu_ids;
2886
2887 set->tags = kzalloc_node(nr_cpu_ids * sizeof(struct blk_mq_tags *),
2888 GFP_KERNEL, set->numa_node);
2889 if (!set->tags)
2890 return -ENOMEM;
2891
2892 ret = -ENOMEM;
2893 set->mq_map = kzalloc_node(sizeof(*set->mq_map) * nr_cpu_ids,
2894 GFP_KERNEL, set->numa_node);
2895 if (!set->mq_map)
2896 goto out_free_tags;
2897
2898 ret = blk_mq_update_queue_map(set);
2899 if (ret)
2900 goto out_free_mq_map;
2901
2902 ret = blk_mq_alloc_rq_maps(set);
2903 if (ret)
2904 goto out_free_mq_map;
2905
2906 mutex_init(&set->tag_list_lock);
2907 INIT_LIST_HEAD(&set->tag_list);
2908
2909 return 0;
2910
2911 out_free_mq_map:
2912 kfree(set->mq_map);
2913 set->mq_map = NULL;
2914 out_free_tags:
2915 kfree(set->tags);
2916 set->tags = NULL;
2917 return ret;
2918 }
2919 EXPORT_SYMBOL(blk_mq_alloc_tag_set);
2920
2921 void blk_mq_free_tag_set(struct blk_mq_tag_set *set)
2922 {
2923 int i;
2924
2925 for (i = 0; i < nr_cpu_ids; i++)
2926 blk_mq_free_map_and_requests(set, i);
2927
2928 kfree(set->mq_map);
2929 set->mq_map = NULL;
2930
2931 kfree(set->tags);
2932 set->tags = NULL;
2933 }
2934 EXPORT_SYMBOL(blk_mq_free_tag_set);
2935
2936 int blk_mq_update_nr_requests(struct request_queue *q, unsigned int nr)
2937 {
2938 struct blk_mq_tag_set *set = q->tag_set;
2939 struct blk_mq_hw_ctx *hctx;
2940 int i, ret;
2941
2942 if (!set)
2943 return -EINVAL;
2944
2945 if (q->nr_requests == nr)
2946 return 0;
2947
2948 blk_mq_freeze_queue(q);
2949 blk_mq_quiesce_queue(q);
2950
2951 ret = 0;
2952 queue_for_each_hw_ctx(q, hctx, i) {
2953 if (!hctx->tags)
2954 continue;
2955 /*
2956 * If we're using an MQ scheduler, just update the scheduler
2957 * queue depth. This is similar to what the old code would do.
2958 */
2959 if (!hctx->sched_tags) {
2960 ret = blk_mq_tag_update_depth(hctx, &hctx->tags, nr,
2961 false);
2962 } else {
2963 ret = blk_mq_tag_update_depth(hctx, &hctx->sched_tags,
2964 nr, true);
2965 }
2966 if (ret)
2967 break;
2968 }
2969
2970 if (!ret)
2971 q->nr_requests = nr;
2972
2973 blk_mq_unquiesce_queue(q);
2974 blk_mq_unfreeze_queue(q);
2975
2976 return ret;
2977 }
2978
2979 static void __blk_mq_update_nr_hw_queues(struct blk_mq_tag_set *set,
2980 int nr_hw_queues)
2981 {
2982 struct request_queue *q;
2983
2984 lockdep_assert_held(&set->tag_list_lock);
2985
2986 if (nr_hw_queues > nr_cpu_ids)
2987 nr_hw_queues = nr_cpu_ids;
2988 if (nr_hw_queues < 1 || nr_hw_queues == set->nr_hw_queues)
2989 return;
2990
2991 list_for_each_entry(q, &set->tag_list, tag_set_list)
2992 blk_mq_freeze_queue(q);
2993
2994 set->nr_hw_queues = nr_hw_queues;
2995 blk_mq_update_queue_map(set);
2996 list_for_each_entry(q, &set->tag_list, tag_set_list) {
2997 blk_mq_realloc_hw_ctxs(set, q);
2998 blk_mq_queue_reinit(q);
2999 }
3000
3001 list_for_each_entry(q, &set->tag_list, tag_set_list)
3002 blk_mq_unfreeze_queue(q);
3003 }
3004
3005 void blk_mq_update_nr_hw_queues(struct blk_mq_tag_set *set, int nr_hw_queues)
3006 {
3007 mutex_lock(&set->tag_list_lock);
3008 __blk_mq_update_nr_hw_queues(set, nr_hw_queues);
3009 mutex_unlock(&set->tag_list_lock);
3010 }
3011 EXPORT_SYMBOL_GPL(blk_mq_update_nr_hw_queues);
3012
3013 /* Enable polling stats and return whether they were already enabled. */
3014 static bool blk_poll_stats_enable(struct request_queue *q)
3015 {
3016 if (test_bit(QUEUE_FLAG_POLL_STATS, &q->queue_flags) ||
3017 test_and_set_bit(QUEUE_FLAG_POLL_STATS, &q->queue_flags))
3018 return true;
3019 blk_stat_add_callback(q, q->poll_cb);
3020 return false;
3021 }
3022
3023 static void blk_mq_poll_stats_start(struct request_queue *q)
3024 {
3025 /*
3026 * We don't arm the callback if polling stats are not enabled or the
3027 * callback is already active.
3028 */
3029 if (!test_bit(QUEUE_FLAG_POLL_STATS, &q->queue_flags) ||
3030 blk_stat_is_active(q->poll_cb))
3031 return;
3032
3033 blk_stat_activate_msecs(q->poll_cb, 100);
3034 }
3035
3036 static void blk_mq_poll_stats_fn(struct blk_stat_callback *cb)
3037 {
3038 struct request_queue *q = cb->data;
3039 int bucket;
3040
3041 for (bucket = 0; bucket < BLK_MQ_POLL_STATS_BKTS; bucket++) {
3042 if (cb->stat[bucket].nr_samples)
3043 q->poll_stat[bucket] = cb->stat[bucket];
3044 }
3045 }
3046
3047 static unsigned long blk_mq_poll_nsecs(struct request_queue *q,
3048 struct blk_mq_hw_ctx *hctx,
3049 struct request *rq)
3050 {
3051 unsigned long ret = 0;
3052 int bucket;
3053
3054 /*
3055 * If stats collection isn't on, don't sleep but turn it on for
3056 * future users
3057 */
3058 if (!blk_poll_stats_enable(q))
3059 return 0;
3060
3061 /*
3062 * As an optimistic guess, use half of the mean service time
3063 * for this type of request. We can (and should) make this smarter.
3064 * For instance, if the completion latencies are tight, we can
3065 * get closer than just half the mean. This is especially
3066 * important on devices where the completion latencies are longer
3067 * than ~10 usec. We do use the stats for the relevant IO size
3068 * if available which does lead to better estimates.
3069 */
3070 bucket = blk_mq_poll_stats_bkt(rq);
3071 if (bucket < 0)
3072 return ret;
3073
3074 if (q->poll_stat[bucket].nr_samples)
3075 ret = (q->poll_stat[bucket].mean + 1) / 2;
3076
3077 return ret;
3078 }
3079
3080 static bool blk_mq_poll_hybrid_sleep(struct request_queue *q,
3081 struct blk_mq_hw_ctx *hctx,
3082 struct request *rq)
3083 {
3084 struct hrtimer_sleeper hs;
3085 enum hrtimer_mode mode;
3086 unsigned int nsecs;
3087 ktime_t kt;
3088
3089 if (test_bit(REQ_ATOM_POLL_SLEPT, &rq->atomic_flags))
3090 return false;
3091
3092 /*
3093 * poll_nsec can be:
3094 *
3095 * -1: don't ever hybrid sleep
3096 * 0: use half of prev avg
3097 * >0: use this specific value
3098 */
3099 if (q->poll_nsec == -1)
3100 return false;
3101 else if (q->poll_nsec > 0)
3102 nsecs = q->poll_nsec;
3103 else
3104 nsecs = blk_mq_poll_nsecs(q, hctx, rq);
3105
3106 if (!nsecs)
3107 return false;
3108
3109 set_bit(REQ_ATOM_POLL_SLEPT, &rq->atomic_flags);
3110
3111 /*
3112 * This will be replaced with the stats tracking code, using
3113 * 'avg_completion_time / 2' as the pre-sleep target.
3114 */
3115 kt = nsecs;
3116
3117 mode = HRTIMER_MODE_REL;
3118 hrtimer_init_on_stack(&hs.timer, CLOCK_MONOTONIC, mode);
3119 hrtimer_set_expires(&hs.timer, kt);
3120
3121 hrtimer_init_sleeper(&hs, current);
3122 do {
3123 if (test_bit(REQ_ATOM_COMPLETE, &rq->atomic_flags))
3124 break;
3125 set_current_state(TASK_UNINTERRUPTIBLE);
3126 hrtimer_start_expires(&hs.timer, mode);
3127 if (hs.task)
3128 io_schedule();
3129 hrtimer_cancel(&hs.timer);
3130 mode = HRTIMER_MODE_ABS;
3131 } while (hs.task && !signal_pending(current));
3132
3133 __set_current_state(TASK_RUNNING);
3134 destroy_hrtimer_on_stack(&hs.timer);
3135 return true;
3136 }
3137
3138 static bool __blk_mq_poll(struct blk_mq_hw_ctx *hctx, struct request *rq)
3139 {
3140 struct request_queue *q = hctx->queue;
3141 long state;
3142
3143 /*
3144 * If we sleep, have the caller restart the poll loop to reset
3145 * the state. Like for the other success return cases, the
3146 * caller is responsible for checking if the IO completed. If
3147 * the IO isn't complete, we'll get called again and will go
3148 * straight to the busy poll loop.
3149 */
3150 if (blk_mq_poll_hybrid_sleep(q, hctx, rq))
3151 return true;
3152
3153 hctx->poll_considered++;
3154
3155 state = current->state;
3156 while (!need_resched()) {
3157 int ret;
3158
3159 hctx->poll_invoked++;
3160
3161 ret = q->mq_ops->poll(hctx, rq->tag);
3162 if (ret > 0) {
3163 hctx->poll_success++;
3164 set_current_state(TASK_RUNNING);
3165 return true;
3166 }
3167
3168 if (signal_pending_state(state, current))
3169 set_current_state(TASK_RUNNING);
3170
3171 if (current->state == TASK_RUNNING)
3172 return true;
3173 if (ret < 0)
3174 break;
3175 cpu_relax();
3176 }
3177
3178 return false;
3179 }
3180
3181 static bool blk_mq_poll(struct request_queue *q, blk_qc_t cookie)
3182 {
3183 struct blk_mq_hw_ctx *hctx;
3184 struct request *rq;
3185
3186 if (!test_bit(QUEUE_FLAG_POLL, &q->queue_flags))
3187 return false;
3188
3189 hctx = q->queue_hw_ctx[blk_qc_t_to_queue_num(cookie)];
3190 if (!blk_qc_t_is_internal(cookie))
3191 rq = blk_mq_tag_to_rq(hctx->tags, blk_qc_t_to_tag(cookie));
3192 else {
3193 rq = blk_mq_tag_to_rq(hctx->sched_tags, blk_qc_t_to_tag(cookie));
3194 /*
3195 * With scheduling, if the request has completed, we'll
3196 * get a NULL return here, as we clear the sched tag when
3197 * that happens. The request still remains valid, like always,
3198 * so we should be safe with just the NULL check.
3199 */
3200 if (!rq)
3201 return false;
3202 }
3203
3204 return __blk_mq_poll(hctx, rq);
3205 }
3206
3207 static int __init blk_mq_init(void)
3208 {
3209 /*
3210 * See comment in block/blk.h rq_atomic_flags enum
3211 */
3212 BUILD_BUG_ON((REQ_ATOM_STARTED / BITS_PER_BYTE) !=
3213 (REQ_ATOM_COMPLETE / BITS_PER_BYTE));
3214
3215 cpuhp_setup_state_multi(CPUHP_BLK_MQ_DEAD, "block/mq:dead", NULL,
3216 blk_mq_hctx_notify_dead);
3217 return 0;
3218 }
3219 subsys_initcall(blk_mq_init);