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block: split out request-only flags into a new namespace
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CommitLineData
1da177e4 1/*
1da177e4
LT
2 * Copyright (C) 1991, 1992 Linus Torvalds
3 * Copyright (C) 1994, Karl Keyte: Added support for disk statistics
4 * Elevator latency, (C) 2000 Andrea Arcangeli <andrea@suse.de> SuSE
5 * Queue request tables / lock, selectable elevator, Jens Axboe <axboe@suse.de>
6728cb0e
JA
6 * kernel-doc documentation started by NeilBrown <neilb@cse.unsw.edu.au>
7 * - July2000
1da177e4
LT
8 * bio rewrite, highmem i/o, etc, Jens Axboe <axboe@suse.de> - may 2001
9 */
10
11/*
12 * This handles all read/write requests to block devices
13 */
1da177e4
LT
14#include <linux/kernel.h>
15#include <linux/module.h>
16#include <linux/backing-dev.h>
17#include <linux/bio.h>
18#include <linux/blkdev.h>
320ae51f 19#include <linux/blk-mq.h>
1da177e4
LT
20#include <linux/highmem.h>
21#include <linux/mm.h>
22#include <linux/kernel_stat.h>
23#include <linux/string.h>
24#include <linux/init.h>
1da177e4
LT
25#include <linux/completion.h>
26#include <linux/slab.h>
27#include <linux/swap.h>
28#include <linux/writeback.h>
faccbd4b 29#include <linux/task_io_accounting_ops.h>
c17bb495 30#include <linux/fault-inject.h>
73c10101 31#include <linux/list_sort.h>
e3c78ca5 32#include <linux/delay.h>
aaf7c680 33#include <linux/ratelimit.h>
6c954667 34#include <linux/pm_runtime.h>
eea8f41c 35#include <linux/blk-cgroup.h>
55782138
LZ
36
37#define CREATE_TRACE_POINTS
38#include <trace/events/block.h>
1da177e4 39
8324aa91 40#include "blk.h"
43a5e4e2 41#include "blk-mq.h"
8324aa91 42
d07335e5 43EXPORT_TRACEPOINT_SYMBOL_GPL(block_bio_remap);
b0da3f0d 44EXPORT_TRACEPOINT_SYMBOL_GPL(block_rq_remap);
0a82a8d1 45EXPORT_TRACEPOINT_SYMBOL_GPL(block_bio_complete);
3291fa57 46EXPORT_TRACEPOINT_SYMBOL_GPL(block_split);
cbae8d45 47EXPORT_TRACEPOINT_SYMBOL_GPL(block_unplug);
0bfc2455 48
a73f730d
TH
49DEFINE_IDA(blk_queue_ida);
50
1da177e4
LT
51/*
52 * For the allocated request tables
53 */
d674d414 54struct kmem_cache *request_cachep;
1da177e4
LT
55
56/*
57 * For queue allocation
58 */
6728cb0e 59struct kmem_cache *blk_requestq_cachep;
1da177e4 60
1da177e4
LT
61/*
62 * Controlling structure to kblockd
63 */
ff856bad 64static struct workqueue_struct *kblockd_workqueue;
1da177e4 65
d40f75a0
TH
66static void blk_clear_congested(struct request_list *rl, int sync)
67{
d40f75a0
TH
68#ifdef CONFIG_CGROUP_WRITEBACK
69 clear_wb_congested(rl->blkg->wb_congested, sync);
70#else
482cf79c
TH
71 /*
72 * If !CGROUP_WRITEBACK, all blkg's map to bdi->wb and we shouldn't
73 * flip its congestion state for events on other blkcgs.
74 */
75 if (rl == &rl->q->root_rl)
76 clear_wb_congested(rl->q->backing_dev_info.wb.congested, sync);
d40f75a0
TH
77#endif
78}
79
80static void blk_set_congested(struct request_list *rl, int sync)
81{
d40f75a0
TH
82#ifdef CONFIG_CGROUP_WRITEBACK
83 set_wb_congested(rl->blkg->wb_congested, sync);
84#else
482cf79c
TH
85 /* see blk_clear_congested() */
86 if (rl == &rl->q->root_rl)
87 set_wb_congested(rl->q->backing_dev_info.wb.congested, sync);
d40f75a0
TH
88#endif
89}
90
8324aa91 91void blk_queue_congestion_threshold(struct request_queue *q)
1da177e4
LT
92{
93 int nr;
94
95 nr = q->nr_requests - (q->nr_requests / 8) + 1;
96 if (nr > q->nr_requests)
97 nr = q->nr_requests;
98 q->nr_congestion_on = nr;
99
100 nr = q->nr_requests - (q->nr_requests / 8) - (q->nr_requests / 16) - 1;
101 if (nr < 1)
102 nr = 1;
103 q->nr_congestion_off = nr;
104}
105
1da177e4
LT
106/**
107 * blk_get_backing_dev_info - get the address of a queue's backing_dev_info
108 * @bdev: device
109 *
110 * Locates the passed device's request queue and returns the address of its
ff9ea323
TH
111 * backing_dev_info. This function can only be called if @bdev is opened
112 * and the return value is never NULL.
1da177e4
LT
113 */
114struct backing_dev_info *blk_get_backing_dev_info(struct block_device *bdev)
115{
165125e1 116 struct request_queue *q = bdev_get_queue(bdev);
1da177e4 117
ff9ea323 118 return &q->backing_dev_info;
1da177e4 119}
1da177e4
LT
120EXPORT_SYMBOL(blk_get_backing_dev_info);
121
2a4aa30c 122void blk_rq_init(struct request_queue *q, struct request *rq)
1da177e4 123{
1afb20f3
FT
124 memset(rq, 0, sizeof(*rq));
125
1da177e4 126 INIT_LIST_HEAD(&rq->queuelist);
242f9dcb 127 INIT_LIST_HEAD(&rq->timeout_list);
c7c22e4d 128 rq->cpu = -1;
63a71386 129 rq->q = q;
a2dec7b3 130 rq->__sector = (sector_t) -1;
2e662b65
JA
131 INIT_HLIST_NODE(&rq->hash);
132 RB_CLEAR_NODE(&rq->rb_node);
d7e3c324 133 rq->cmd = rq->__cmd;
e2494e1b 134 rq->cmd_len = BLK_MAX_CDB;
63a71386 135 rq->tag = -1;
b243ddcb 136 rq->start_time = jiffies;
9195291e 137 set_start_time_ns(rq);
09e099d4 138 rq->part = NULL;
1da177e4 139}
2a4aa30c 140EXPORT_SYMBOL(blk_rq_init);
1da177e4 141
5bb23a68
N
142static void req_bio_endio(struct request *rq, struct bio *bio,
143 unsigned int nbytes, int error)
1da177e4 144{
78d8e58a 145 if (error)
4246a0b6 146 bio->bi_error = error;
797e7dbb 147
e8064021 148 if (unlikely(rq->rq_flags & RQF_QUIET))
b7c44ed9 149 bio_set_flag(bio, BIO_QUIET);
08bafc03 150
f79ea416 151 bio_advance(bio, nbytes);
7ba1ba12 152
143a87f4 153 /* don't actually finish bio if it's part of flush sequence */
e8064021 154 if (bio->bi_iter.bi_size == 0 && !(rq->rq_flags & RQF_FLUSH_SEQ))
4246a0b6 155 bio_endio(bio);
1da177e4 156}
1da177e4 157
1da177e4
LT
158void blk_dump_rq_flags(struct request *rq, char *msg)
159{
160 int bit;
161
5953316d 162 printk(KERN_INFO "%s: dev %s: type=%x, flags=%llx\n", msg,
4aff5e23 163 rq->rq_disk ? rq->rq_disk->disk_name : "?", rq->cmd_type,
5953316d 164 (unsigned long long) rq->cmd_flags);
1da177e4 165
83096ebf
TH
166 printk(KERN_INFO " sector %llu, nr/cnr %u/%u\n",
167 (unsigned long long)blk_rq_pos(rq),
168 blk_rq_sectors(rq), blk_rq_cur_sectors(rq));
b4f42e28
JA
169 printk(KERN_INFO " bio %p, biotail %p, len %u\n",
170 rq->bio, rq->biotail, blk_rq_bytes(rq));
1da177e4 171
33659ebb 172 if (rq->cmd_type == REQ_TYPE_BLOCK_PC) {
6728cb0e 173 printk(KERN_INFO " cdb: ");
d34c87e4 174 for (bit = 0; bit < BLK_MAX_CDB; bit++)
1da177e4
LT
175 printk("%02x ", rq->cmd[bit]);
176 printk("\n");
177 }
178}
1da177e4
LT
179EXPORT_SYMBOL(blk_dump_rq_flags);
180
3cca6dc1 181static void blk_delay_work(struct work_struct *work)
1da177e4 182{
3cca6dc1 183 struct request_queue *q;
1da177e4 184
3cca6dc1
JA
185 q = container_of(work, struct request_queue, delay_work.work);
186 spin_lock_irq(q->queue_lock);
24ecfbe2 187 __blk_run_queue(q);
3cca6dc1 188 spin_unlock_irq(q->queue_lock);
1da177e4 189}
1da177e4
LT
190
191/**
3cca6dc1
JA
192 * blk_delay_queue - restart queueing after defined interval
193 * @q: The &struct request_queue in question
194 * @msecs: Delay in msecs
1da177e4
LT
195 *
196 * Description:
3cca6dc1
JA
197 * Sometimes queueing needs to be postponed for a little while, to allow
198 * resources to come back. This function will make sure that queueing is
70460571 199 * restarted around the specified time. Queue lock must be held.
3cca6dc1
JA
200 */
201void blk_delay_queue(struct request_queue *q, unsigned long msecs)
2ad8b1ef 202{
70460571
BVA
203 if (likely(!blk_queue_dead(q)))
204 queue_delayed_work(kblockd_workqueue, &q->delay_work,
205 msecs_to_jiffies(msecs));
2ad8b1ef 206}
3cca6dc1 207EXPORT_SYMBOL(blk_delay_queue);
2ad8b1ef 208
21491412
JA
209/**
210 * blk_start_queue_async - asynchronously restart a previously stopped queue
211 * @q: The &struct request_queue in question
212 *
213 * Description:
214 * blk_start_queue_async() will clear the stop flag on the queue, and
215 * ensure that the request_fn for the queue is run from an async
216 * context.
217 **/
218void blk_start_queue_async(struct request_queue *q)
219{
220 queue_flag_clear(QUEUE_FLAG_STOPPED, q);
221 blk_run_queue_async(q);
222}
223EXPORT_SYMBOL(blk_start_queue_async);
224
1da177e4
LT
225/**
226 * blk_start_queue - restart a previously stopped queue
165125e1 227 * @q: The &struct request_queue in question
1da177e4
LT
228 *
229 * Description:
230 * blk_start_queue() will clear the stop flag on the queue, and call
231 * the request_fn for the queue if it was in a stopped state when
232 * entered. Also see blk_stop_queue(). Queue lock must be held.
233 **/
165125e1 234void blk_start_queue(struct request_queue *q)
1da177e4 235{
a038e253
PBG
236 WARN_ON(!irqs_disabled());
237
75ad23bc 238 queue_flag_clear(QUEUE_FLAG_STOPPED, q);
24ecfbe2 239 __blk_run_queue(q);
1da177e4 240}
1da177e4
LT
241EXPORT_SYMBOL(blk_start_queue);
242
243/**
244 * blk_stop_queue - stop a queue
165125e1 245 * @q: The &struct request_queue in question
1da177e4
LT
246 *
247 * Description:
248 * The Linux block layer assumes that a block driver will consume all
249 * entries on the request queue when the request_fn strategy is called.
250 * Often this will not happen, because of hardware limitations (queue
251 * depth settings). If a device driver gets a 'queue full' response,
252 * or if it simply chooses not to queue more I/O at one point, it can
253 * call this function to prevent the request_fn from being called until
254 * the driver has signalled it's ready to go again. This happens by calling
255 * blk_start_queue() to restart queue operations. Queue lock must be held.
256 **/
165125e1 257void blk_stop_queue(struct request_queue *q)
1da177e4 258{
136b5721 259 cancel_delayed_work(&q->delay_work);
75ad23bc 260 queue_flag_set(QUEUE_FLAG_STOPPED, q);
1da177e4
LT
261}
262EXPORT_SYMBOL(blk_stop_queue);
263
264/**
265 * blk_sync_queue - cancel any pending callbacks on a queue
266 * @q: the queue
267 *
268 * Description:
269 * The block layer may perform asynchronous callback activity
270 * on a queue, such as calling the unplug function after a timeout.
271 * A block device may call blk_sync_queue to ensure that any
272 * such activity is cancelled, thus allowing it to release resources
59c51591 273 * that the callbacks might use. The caller must already have made sure
1da177e4
LT
274 * that its ->make_request_fn will not re-add plugging prior to calling
275 * this function.
276 *
da527770 277 * This function does not cancel any asynchronous activity arising
da3dae54 278 * out of elevator or throttling code. That would require elevator_exit()
5efd6113 279 * and blkcg_exit_queue() to be called with queue lock initialized.
da527770 280 *
1da177e4
LT
281 */
282void blk_sync_queue(struct request_queue *q)
283{
70ed28b9 284 del_timer_sync(&q->timeout);
f04c1fe7
ML
285
286 if (q->mq_ops) {
287 struct blk_mq_hw_ctx *hctx;
288 int i;
289
70f4db63 290 queue_for_each_hw_ctx(q, hctx, i) {
27489a3c 291 cancel_work_sync(&hctx->run_work);
70f4db63
CH
292 cancel_delayed_work_sync(&hctx->delay_work);
293 }
f04c1fe7
ML
294 } else {
295 cancel_delayed_work_sync(&q->delay_work);
296 }
1da177e4
LT
297}
298EXPORT_SYMBOL(blk_sync_queue);
299
c246e80d
BVA
300/**
301 * __blk_run_queue_uncond - run a queue whether or not it has been stopped
302 * @q: The queue to run
303 *
304 * Description:
305 * Invoke request handling on a queue if there are any pending requests.
306 * May be used to restart request handling after a request has completed.
307 * This variant runs the queue whether or not the queue has been
308 * stopped. Must be called with the queue lock held and interrupts
309 * disabled. See also @blk_run_queue.
310 */
311inline void __blk_run_queue_uncond(struct request_queue *q)
312{
313 if (unlikely(blk_queue_dead(q)))
314 return;
315
24faf6f6
BVA
316 /*
317 * Some request_fn implementations, e.g. scsi_request_fn(), unlock
318 * the queue lock internally. As a result multiple threads may be
319 * running such a request function concurrently. Keep track of the
320 * number of active request_fn invocations such that blk_drain_queue()
321 * can wait until all these request_fn calls have finished.
322 */
323 q->request_fn_active++;
c246e80d 324 q->request_fn(q);
24faf6f6 325 q->request_fn_active--;
c246e80d 326}
a7928c15 327EXPORT_SYMBOL_GPL(__blk_run_queue_uncond);
c246e80d 328
1da177e4 329/**
80a4b58e 330 * __blk_run_queue - run a single device queue
1da177e4 331 * @q: The queue to run
80a4b58e
JA
332 *
333 * Description:
334 * See @blk_run_queue. This variant must be called with the queue lock
24ecfbe2 335 * held and interrupts disabled.
1da177e4 336 */
24ecfbe2 337void __blk_run_queue(struct request_queue *q)
1da177e4 338{
a538cd03
TH
339 if (unlikely(blk_queue_stopped(q)))
340 return;
341
c246e80d 342 __blk_run_queue_uncond(q);
75ad23bc
NP
343}
344EXPORT_SYMBOL(__blk_run_queue);
dac07ec1 345
24ecfbe2
CH
346/**
347 * blk_run_queue_async - run a single device queue in workqueue context
348 * @q: The queue to run
349 *
350 * Description:
351 * Tells kblockd to perform the equivalent of @blk_run_queue on behalf
70460571 352 * of us. The caller must hold the queue lock.
24ecfbe2
CH
353 */
354void blk_run_queue_async(struct request_queue *q)
355{
70460571 356 if (likely(!blk_queue_stopped(q) && !blk_queue_dead(q)))
e7c2f967 357 mod_delayed_work(kblockd_workqueue, &q->delay_work, 0);
24ecfbe2 358}
c21e6beb 359EXPORT_SYMBOL(blk_run_queue_async);
24ecfbe2 360
75ad23bc
NP
361/**
362 * blk_run_queue - run a single device queue
363 * @q: The queue to run
80a4b58e
JA
364 *
365 * Description:
366 * Invoke request handling on this queue, if it has pending work to do.
a7f55792 367 * May be used to restart queueing when a request has completed.
75ad23bc
NP
368 */
369void blk_run_queue(struct request_queue *q)
370{
371 unsigned long flags;
372
373 spin_lock_irqsave(q->queue_lock, flags);
24ecfbe2 374 __blk_run_queue(q);
1da177e4
LT
375 spin_unlock_irqrestore(q->queue_lock, flags);
376}
377EXPORT_SYMBOL(blk_run_queue);
378
165125e1 379void blk_put_queue(struct request_queue *q)
483f4afc
AV
380{
381 kobject_put(&q->kobj);
382}
d86e0e83 383EXPORT_SYMBOL(blk_put_queue);
483f4afc 384
e3c78ca5 385/**
807592a4 386 * __blk_drain_queue - drain requests from request_queue
e3c78ca5 387 * @q: queue to drain
c9a929dd 388 * @drain_all: whether to drain all requests or only the ones w/ ELVPRIV
e3c78ca5 389 *
c9a929dd
TH
390 * Drain requests from @q. If @drain_all is set, all requests are drained.
391 * If not, only ELVPRIV requests are drained. The caller is responsible
392 * for ensuring that no new requests which need to be drained are queued.
e3c78ca5 393 */
807592a4
BVA
394static void __blk_drain_queue(struct request_queue *q, bool drain_all)
395 __releases(q->queue_lock)
396 __acquires(q->queue_lock)
e3c78ca5 397{
458f27a9
AH
398 int i;
399
807592a4
BVA
400 lockdep_assert_held(q->queue_lock);
401
e3c78ca5 402 while (true) {
481a7d64 403 bool drain = false;
e3c78ca5 404
b855b04a
TH
405 /*
406 * The caller might be trying to drain @q before its
407 * elevator is initialized.
408 */
409 if (q->elevator)
410 elv_drain_elevator(q);
411
5efd6113 412 blkcg_drain_queue(q);
e3c78ca5 413
4eabc941
TH
414 /*
415 * This function might be called on a queue which failed
b855b04a
TH
416 * driver init after queue creation or is not yet fully
417 * active yet. Some drivers (e.g. fd and loop) get unhappy
418 * in such cases. Kick queue iff dispatch queue has
419 * something on it and @q has request_fn set.
4eabc941 420 */
b855b04a 421 if (!list_empty(&q->queue_head) && q->request_fn)
4eabc941 422 __blk_run_queue(q);
c9a929dd 423
8a5ecdd4 424 drain |= q->nr_rqs_elvpriv;
24faf6f6 425 drain |= q->request_fn_active;
481a7d64
TH
426
427 /*
428 * Unfortunately, requests are queued at and tracked from
429 * multiple places and there's no single counter which can
430 * be drained. Check all the queues and counters.
431 */
432 if (drain_all) {
e97c293c 433 struct blk_flush_queue *fq = blk_get_flush_queue(q, NULL);
481a7d64
TH
434 drain |= !list_empty(&q->queue_head);
435 for (i = 0; i < 2; i++) {
8a5ecdd4 436 drain |= q->nr_rqs[i];
481a7d64 437 drain |= q->in_flight[i];
7c94e1c1
ML
438 if (fq)
439 drain |= !list_empty(&fq->flush_queue[i]);
481a7d64
TH
440 }
441 }
e3c78ca5 442
481a7d64 443 if (!drain)
e3c78ca5 444 break;
807592a4
BVA
445
446 spin_unlock_irq(q->queue_lock);
447
e3c78ca5 448 msleep(10);
807592a4
BVA
449
450 spin_lock_irq(q->queue_lock);
e3c78ca5 451 }
458f27a9
AH
452
453 /*
454 * With queue marked dead, any woken up waiter will fail the
455 * allocation path, so the wakeup chaining is lost and we're
456 * left with hung waiters. We need to wake up those waiters.
457 */
458 if (q->request_fn) {
a051661c
TH
459 struct request_list *rl;
460
a051661c
TH
461 blk_queue_for_each_rl(rl, q)
462 for (i = 0; i < ARRAY_SIZE(rl->wait); i++)
463 wake_up_all(&rl->wait[i]);
458f27a9 464 }
e3c78ca5
TH
465}
466
d732580b
TH
467/**
468 * blk_queue_bypass_start - enter queue bypass mode
469 * @q: queue of interest
470 *
471 * In bypass mode, only the dispatch FIFO queue of @q is used. This
472 * function makes @q enter bypass mode and drains all requests which were
6ecf23af 473 * throttled or issued before. On return, it's guaranteed that no request
80fd9979
TH
474 * is being throttled or has ELVPRIV set and blk_queue_bypass() %true
475 * inside queue or RCU read lock.
d732580b
TH
476 */
477void blk_queue_bypass_start(struct request_queue *q)
478{
479 spin_lock_irq(q->queue_lock);
776687bc 480 q->bypass_depth++;
d732580b
TH
481 queue_flag_set(QUEUE_FLAG_BYPASS, q);
482 spin_unlock_irq(q->queue_lock);
483
776687bc
TH
484 /*
485 * Queues start drained. Skip actual draining till init is
486 * complete. This avoids lenghty delays during queue init which
487 * can happen many times during boot.
488 */
489 if (blk_queue_init_done(q)) {
807592a4
BVA
490 spin_lock_irq(q->queue_lock);
491 __blk_drain_queue(q, false);
492 spin_unlock_irq(q->queue_lock);
493
b82d4b19
TH
494 /* ensure blk_queue_bypass() is %true inside RCU read lock */
495 synchronize_rcu();
496 }
d732580b
TH
497}
498EXPORT_SYMBOL_GPL(blk_queue_bypass_start);
499
500/**
501 * blk_queue_bypass_end - leave queue bypass mode
502 * @q: queue of interest
503 *
504 * Leave bypass mode and restore the normal queueing behavior.
505 */
506void blk_queue_bypass_end(struct request_queue *q)
507{
508 spin_lock_irq(q->queue_lock);
509 if (!--q->bypass_depth)
510 queue_flag_clear(QUEUE_FLAG_BYPASS, q);
511 WARN_ON_ONCE(q->bypass_depth < 0);
512 spin_unlock_irq(q->queue_lock);
513}
514EXPORT_SYMBOL_GPL(blk_queue_bypass_end);
515
aed3ea94
JA
516void blk_set_queue_dying(struct request_queue *q)
517{
1b856086
BVA
518 spin_lock_irq(q->queue_lock);
519 queue_flag_set(QUEUE_FLAG_DYING, q);
520 spin_unlock_irq(q->queue_lock);
aed3ea94
JA
521
522 if (q->mq_ops)
523 blk_mq_wake_waiters(q);
524 else {
525 struct request_list *rl;
526
527 blk_queue_for_each_rl(rl, q) {
528 if (rl->rq_pool) {
529 wake_up(&rl->wait[BLK_RW_SYNC]);
530 wake_up(&rl->wait[BLK_RW_ASYNC]);
531 }
532 }
533 }
534}
535EXPORT_SYMBOL_GPL(blk_set_queue_dying);
536
c9a929dd
TH
537/**
538 * blk_cleanup_queue - shutdown a request queue
539 * @q: request queue to shutdown
540 *
c246e80d
BVA
541 * Mark @q DYING, drain all pending requests, mark @q DEAD, destroy and
542 * put it. All future requests will be failed immediately with -ENODEV.
c94a96ac 543 */
6728cb0e 544void blk_cleanup_queue(struct request_queue *q)
483f4afc 545{
c9a929dd 546 spinlock_t *lock = q->queue_lock;
e3335de9 547
3f3299d5 548 /* mark @q DYING, no new request or merges will be allowed afterwards */
483f4afc 549 mutex_lock(&q->sysfs_lock);
aed3ea94 550 blk_set_queue_dying(q);
c9a929dd 551 spin_lock_irq(lock);
6ecf23af 552
80fd9979 553 /*
3f3299d5 554 * A dying queue is permanently in bypass mode till released. Note
80fd9979
TH
555 * that, unlike blk_queue_bypass_start(), we aren't performing
556 * synchronize_rcu() after entering bypass mode to avoid the delay
557 * as some drivers create and destroy a lot of queues while
558 * probing. This is still safe because blk_release_queue() will be
559 * called only after the queue refcnt drops to zero and nothing,
560 * RCU or not, would be traversing the queue by then.
561 */
6ecf23af
TH
562 q->bypass_depth++;
563 queue_flag_set(QUEUE_FLAG_BYPASS, q);
564
c9a929dd
TH
565 queue_flag_set(QUEUE_FLAG_NOMERGES, q);
566 queue_flag_set(QUEUE_FLAG_NOXMERGES, q);
3f3299d5 567 queue_flag_set(QUEUE_FLAG_DYING, q);
c9a929dd
TH
568 spin_unlock_irq(lock);
569 mutex_unlock(&q->sysfs_lock);
570
c246e80d
BVA
571 /*
572 * Drain all requests queued before DYING marking. Set DEAD flag to
573 * prevent that q->request_fn() gets invoked after draining finished.
574 */
3ef28e83
DW
575 blk_freeze_queue(q);
576 spin_lock_irq(lock);
577 if (!q->mq_ops)
43a5e4e2 578 __blk_drain_queue(q, true);
c246e80d 579 queue_flag_set(QUEUE_FLAG_DEAD, q);
807592a4 580 spin_unlock_irq(lock);
c9a929dd 581
5a48fc14
DW
582 /* for synchronous bio-based driver finish in-flight integrity i/o */
583 blk_flush_integrity();
584
c9a929dd
TH
585 /* @q won't process any more request, flush async actions */
586 del_timer_sync(&q->backing_dev_info.laptop_mode_wb_timer);
587 blk_sync_queue(q);
588
45a9c9d9
BVA
589 if (q->mq_ops)
590 blk_mq_free_queue(q);
3ef28e83 591 percpu_ref_exit(&q->q_usage_counter);
45a9c9d9 592
5e5cfac0
AH
593 spin_lock_irq(lock);
594 if (q->queue_lock != &q->__queue_lock)
595 q->queue_lock = &q->__queue_lock;
596 spin_unlock_irq(lock);
597
b02176f3 598 bdi_unregister(&q->backing_dev_info);
6cd18e71 599
c9a929dd 600 /* @q is and will stay empty, shutdown and put */
483f4afc
AV
601 blk_put_queue(q);
602}
1da177e4
LT
603EXPORT_SYMBOL(blk_cleanup_queue);
604
271508db
DR
605/* Allocate memory local to the request queue */
606static void *alloc_request_struct(gfp_t gfp_mask, void *data)
607{
608 int nid = (int)(long)data;
609 return kmem_cache_alloc_node(request_cachep, gfp_mask, nid);
610}
611
612static void free_request_struct(void *element, void *unused)
613{
614 kmem_cache_free(request_cachep, element);
615}
616
5b788ce3
TH
617int blk_init_rl(struct request_list *rl, struct request_queue *q,
618 gfp_t gfp_mask)
1da177e4 619{
1abec4fd
MS
620 if (unlikely(rl->rq_pool))
621 return 0;
622
5b788ce3 623 rl->q = q;
1faa16d2
JA
624 rl->count[BLK_RW_SYNC] = rl->count[BLK_RW_ASYNC] = 0;
625 rl->starved[BLK_RW_SYNC] = rl->starved[BLK_RW_ASYNC] = 0;
1faa16d2
JA
626 init_waitqueue_head(&rl->wait[BLK_RW_SYNC]);
627 init_waitqueue_head(&rl->wait[BLK_RW_ASYNC]);
1da177e4 628
271508db
DR
629 rl->rq_pool = mempool_create_node(BLKDEV_MIN_RQ, alloc_request_struct,
630 free_request_struct,
631 (void *)(long)q->node, gfp_mask,
632 q->node);
1da177e4
LT
633 if (!rl->rq_pool)
634 return -ENOMEM;
635
636 return 0;
637}
638
5b788ce3
TH
639void blk_exit_rl(struct request_list *rl)
640{
641 if (rl->rq_pool)
642 mempool_destroy(rl->rq_pool);
643}
644
165125e1 645struct request_queue *blk_alloc_queue(gfp_t gfp_mask)
1da177e4 646{
c304a51b 647 return blk_alloc_queue_node(gfp_mask, NUMA_NO_NODE);
1946089a
CL
648}
649EXPORT_SYMBOL(blk_alloc_queue);
1da177e4 650
6f3b0e8b 651int blk_queue_enter(struct request_queue *q, bool nowait)
3ef28e83
DW
652{
653 while (true) {
654 int ret;
655
656 if (percpu_ref_tryget_live(&q->q_usage_counter))
657 return 0;
658
6f3b0e8b 659 if (nowait)
3ef28e83
DW
660 return -EBUSY;
661
662 ret = wait_event_interruptible(q->mq_freeze_wq,
663 !atomic_read(&q->mq_freeze_depth) ||
664 blk_queue_dying(q));
665 if (blk_queue_dying(q))
666 return -ENODEV;
667 if (ret)
668 return ret;
669 }
670}
671
672void blk_queue_exit(struct request_queue *q)
673{
674 percpu_ref_put(&q->q_usage_counter);
675}
676
677static void blk_queue_usage_counter_release(struct percpu_ref *ref)
678{
679 struct request_queue *q =
680 container_of(ref, struct request_queue, q_usage_counter);
681
682 wake_up_all(&q->mq_freeze_wq);
683}
684
287922eb
CH
685static void blk_rq_timed_out_timer(unsigned long data)
686{
687 struct request_queue *q = (struct request_queue *)data;
688
689 kblockd_schedule_work(&q->timeout_work);
690}
691
165125e1 692struct request_queue *blk_alloc_queue_node(gfp_t gfp_mask, int node_id)
1946089a 693{
165125e1 694 struct request_queue *q;
e0bf68dd 695 int err;
1946089a 696
8324aa91 697 q = kmem_cache_alloc_node(blk_requestq_cachep,
94f6030c 698 gfp_mask | __GFP_ZERO, node_id);
1da177e4
LT
699 if (!q)
700 return NULL;
701
00380a40 702 q->id = ida_simple_get(&blk_queue_ida, 0, 0, gfp_mask);
a73f730d 703 if (q->id < 0)
3d2936f4 704 goto fail_q;
a73f730d 705
54efd50b
KO
706 q->bio_split = bioset_create(BIO_POOL_SIZE, 0);
707 if (!q->bio_split)
708 goto fail_id;
709
0989a025 710 q->backing_dev_info.ra_pages =
09cbfeaf 711 (VM_MAX_READAHEAD * 1024) / PAGE_SIZE;
89e9b9e0 712 q->backing_dev_info.capabilities = BDI_CAP_CGROUP_WRITEBACK;
d993831f 713 q->backing_dev_info.name = "block";
5151412d 714 q->node = node_id;
0989a025 715
e0bf68dd 716 err = bdi_init(&q->backing_dev_info);
a73f730d 717 if (err)
54efd50b 718 goto fail_split;
e0bf68dd 719
31373d09
MG
720 setup_timer(&q->backing_dev_info.laptop_mode_wb_timer,
721 laptop_mode_timer_fn, (unsigned long) q);
242f9dcb 722 setup_timer(&q->timeout, blk_rq_timed_out_timer, (unsigned long) q);
b855b04a 723 INIT_LIST_HEAD(&q->queue_head);
242f9dcb 724 INIT_LIST_HEAD(&q->timeout_list);
a612fddf 725 INIT_LIST_HEAD(&q->icq_list);
4eef3049 726#ifdef CONFIG_BLK_CGROUP
e8989fae 727 INIT_LIST_HEAD(&q->blkg_list);
4eef3049 728#endif
3cca6dc1 729 INIT_DELAYED_WORK(&q->delay_work, blk_delay_work);
483f4afc 730
8324aa91 731 kobject_init(&q->kobj, &blk_queue_ktype);
1da177e4 732
483f4afc 733 mutex_init(&q->sysfs_lock);
e7e72bf6 734 spin_lock_init(&q->__queue_lock);
483f4afc 735
c94a96ac
VG
736 /*
737 * By default initialize queue_lock to internal lock and driver can
738 * override it later if need be.
739 */
740 q->queue_lock = &q->__queue_lock;
741
b82d4b19
TH
742 /*
743 * A queue starts its life with bypass turned on to avoid
744 * unnecessary bypass on/off overhead and nasty surprises during
749fefe6
TH
745 * init. The initial bypass will be finished when the queue is
746 * registered by blk_register_queue().
b82d4b19
TH
747 */
748 q->bypass_depth = 1;
749 __set_bit(QUEUE_FLAG_BYPASS, &q->queue_flags);
750
320ae51f
JA
751 init_waitqueue_head(&q->mq_freeze_wq);
752
3ef28e83
DW
753 /*
754 * Init percpu_ref in atomic mode so that it's faster to shutdown.
755 * See blk_register_queue() for details.
756 */
757 if (percpu_ref_init(&q->q_usage_counter,
758 blk_queue_usage_counter_release,
759 PERCPU_REF_INIT_ATOMIC, GFP_KERNEL))
fff4996b 760 goto fail_bdi;
f51b802c 761
3ef28e83
DW
762 if (blkcg_init_queue(q))
763 goto fail_ref;
764
1da177e4 765 return q;
a73f730d 766
3ef28e83
DW
767fail_ref:
768 percpu_ref_exit(&q->q_usage_counter);
fff4996b
MP
769fail_bdi:
770 bdi_destroy(&q->backing_dev_info);
54efd50b
KO
771fail_split:
772 bioset_free(q->bio_split);
a73f730d
TH
773fail_id:
774 ida_simple_remove(&blk_queue_ida, q->id);
775fail_q:
776 kmem_cache_free(blk_requestq_cachep, q);
777 return NULL;
1da177e4 778}
1946089a 779EXPORT_SYMBOL(blk_alloc_queue_node);
1da177e4
LT
780
781/**
782 * blk_init_queue - prepare a request queue for use with a block device
783 * @rfn: The function to be called to process requests that have been
784 * placed on the queue.
785 * @lock: Request queue spin lock
786 *
787 * Description:
788 * If a block device wishes to use the standard request handling procedures,
789 * which sorts requests and coalesces adjacent requests, then it must
790 * call blk_init_queue(). The function @rfn will be called when there
791 * are requests on the queue that need to be processed. If the device
792 * supports plugging, then @rfn may not be called immediately when requests
793 * are available on the queue, but may be called at some time later instead.
794 * Plugged queues are generally unplugged when a buffer belonging to one
795 * of the requests on the queue is needed, or due to memory pressure.
796 *
797 * @rfn is not required, or even expected, to remove all requests off the
798 * queue, but only as many as it can handle at a time. If it does leave
799 * requests on the queue, it is responsible for arranging that the requests
800 * get dealt with eventually.
801 *
802 * The queue spin lock must be held while manipulating the requests on the
a038e253
PBG
803 * request queue; this lock will be taken also from interrupt context, so irq
804 * disabling is needed for it.
1da177e4 805 *
710027a4 806 * Function returns a pointer to the initialized request queue, or %NULL if
1da177e4
LT
807 * it didn't succeed.
808 *
809 * Note:
810 * blk_init_queue() must be paired with a blk_cleanup_queue() call
811 * when the block device is deactivated (such as at module unload).
812 **/
1946089a 813
165125e1 814struct request_queue *blk_init_queue(request_fn_proc *rfn, spinlock_t *lock)
1da177e4 815{
c304a51b 816 return blk_init_queue_node(rfn, lock, NUMA_NO_NODE);
1946089a
CL
817}
818EXPORT_SYMBOL(blk_init_queue);
819
165125e1 820struct request_queue *
1946089a
CL
821blk_init_queue_node(request_fn_proc *rfn, spinlock_t *lock, int node_id)
822{
c86d1b8a 823 struct request_queue *uninit_q, *q;
1da177e4 824
c86d1b8a
MS
825 uninit_q = blk_alloc_queue_node(GFP_KERNEL, node_id);
826 if (!uninit_q)
827 return NULL;
828
5151412d 829 q = blk_init_allocated_queue(uninit_q, rfn, lock);
c86d1b8a 830 if (!q)
7982e90c 831 blk_cleanup_queue(uninit_q);
18741986 832
7982e90c 833 return q;
01effb0d
MS
834}
835EXPORT_SYMBOL(blk_init_queue_node);
836
dece1635 837static blk_qc_t blk_queue_bio(struct request_queue *q, struct bio *bio);
336b7e1f 838
01effb0d
MS
839struct request_queue *
840blk_init_allocated_queue(struct request_queue *q, request_fn_proc *rfn,
841 spinlock_t *lock)
01effb0d 842{
1da177e4
LT
843 if (!q)
844 return NULL;
845
f70ced09 846 q->fq = blk_alloc_flush_queue(q, NUMA_NO_NODE, 0);
ba483388 847 if (!q->fq)
7982e90c
MS
848 return NULL;
849
a051661c 850 if (blk_init_rl(&q->root_rl, q, GFP_KERNEL))
708f04d2 851 goto fail;
1da177e4 852
287922eb 853 INIT_WORK(&q->timeout_work, blk_timeout_work);
1da177e4 854 q->request_fn = rfn;
1da177e4 855 q->prep_rq_fn = NULL;
28018c24 856 q->unprep_rq_fn = NULL;
60ea8226 857 q->queue_flags |= QUEUE_FLAG_DEFAULT;
c94a96ac
VG
858
859 /* Override internal queue lock with supplied lock pointer */
860 if (lock)
861 q->queue_lock = lock;
1da177e4 862
f3b144aa
JA
863 /*
864 * This also sets hw/phys segments, boundary and size
865 */
c20e8de2 866 blk_queue_make_request(q, blk_queue_bio);
1da177e4 867
44ec9542
AS
868 q->sg_reserved_size = INT_MAX;
869
eb1c160b
TS
870 /* Protect q->elevator from elevator_change */
871 mutex_lock(&q->sysfs_lock);
872
b82d4b19 873 /* init elevator */
eb1c160b
TS
874 if (elevator_init(q, NULL)) {
875 mutex_unlock(&q->sysfs_lock);
708f04d2 876 goto fail;
eb1c160b
TS
877 }
878
879 mutex_unlock(&q->sysfs_lock);
880
b82d4b19 881 return q;
708f04d2
DJ
882
883fail:
ba483388 884 blk_free_flush_queue(q->fq);
708f04d2 885 return NULL;
1da177e4 886}
5151412d 887EXPORT_SYMBOL(blk_init_allocated_queue);
1da177e4 888
09ac46c4 889bool blk_get_queue(struct request_queue *q)
1da177e4 890{
3f3299d5 891 if (likely(!blk_queue_dying(q))) {
09ac46c4
TH
892 __blk_get_queue(q);
893 return true;
1da177e4
LT
894 }
895
09ac46c4 896 return false;
1da177e4 897}
d86e0e83 898EXPORT_SYMBOL(blk_get_queue);
1da177e4 899
5b788ce3 900static inline void blk_free_request(struct request_list *rl, struct request *rq)
1da177e4 901{
e8064021 902 if (rq->rq_flags & RQF_ELVPRIV) {
5b788ce3 903 elv_put_request(rl->q, rq);
f1f8cc94 904 if (rq->elv.icq)
11a3122f 905 put_io_context(rq->elv.icq->ioc);
f1f8cc94
TH
906 }
907
5b788ce3 908 mempool_free(rq, rl->rq_pool);
1da177e4
LT
909}
910
1da177e4
LT
911/*
912 * ioc_batching returns true if the ioc is a valid batching request and
913 * should be given priority access to a request.
914 */
165125e1 915static inline int ioc_batching(struct request_queue *q, struct io_context *ioc)
1da177e4
LT
916{
917 if (!ioc)
918 return 0;
919
920 /*
921 * Make sure the process is able to allocate at least 1 request
922 * even if the batch times out, otherwise we could theoretically
923 * lose wakeups.
924 */
925 return ioc->nr_batch_requests == q->nr_batching ||
926 (ioc->nr_batch_requests > 0
927 && time_before(jiffies, ioc->last_waited + BLK_BATCH_TIME));
928}
929
930/*
931 * ioc_set_batching sets ioc to be a new "batcher" if it is not one. This
932 * will cause the process to be a "batcher" on all queues in the system. This
933 * is the behaviour we want though - once it gets a wakeup it should be given
934 * a nice run.
935 */
165125e1 936static void ioc_set_batching(struct request_queue *q, struct io_context *ioc)
1da177e4
LT
937{
938 if (!ioc || ioc_batching(q, ioc))
939 return;
940
941 ioc->nr_batch_requests = q->nr_batching;
942 ioc->last_waited = jiffies;
943}
944
5b788ce3 945static void __freed_request(struct request_list *rl, int sync)
1da177e4 946{
5b788ce3 947 struct request_queue *q = rl->q;
1da177e4 948
d40f75a0
TH
949 if (rl->count[sync] < queue_congestion_off_threshold(q))
950 blk_clear_congested(rl, sync);
1da177e4 951
1faa16d2
JA
952 if (rl->count[sync] + 1 <= q->nr_requests) {
953 if (waitqueue_active(&rl->wait[sync]))
954 wake_up(&rl->wait[sync]);
1da177e4 955
5b788ce3 956 blk_clear_rl_full(rl, sync);
1da177e4
LT
957 }
958}
959
960/*
961 * A request has just been released. Account for it, update the full and
962 * congestion status, wake up any waiters. Called under q->queue_lock.
963 */
e8064021
CH
964static void freed_request(struct request_list *rl, bool sync,
965 req_flags_t rq_flags)
1da177e4 966{
5b788ce3 967 struct request_queue *q = rl->q;
1da177e4 968
8a5ecdd4 969 q->nr_rqs[sync]--;
1faa16d2 970 rl->count[sync]--;
e8064021 971 if (rq_flags & RQF_ELVPRIV)
8a5ecdd4 972 q->nr_rqs_elvpriv--;
1da177e4 973
5b788ce3 974 __freed_request(rl, sync);
1da177e4 975
1faa16d2 976 if (unlikely(rl->starved[sync ^ 1]))
5b788ce3 977 __freed_request(rl, sync ^ 1);
1da177e4
LT
978}
979
e3a2b3f9
JA
980int blk_update_nr_requests(struct request_queue *q, unsigned int nr)
981{
982 struct request_list *rl;
d40f75a0 983 int on_thresh, off_thresh;
e3a2b3f9
JA
984
985 spin_lock_irq(q->queue_lock);
986 q->nr_requests = nr;
987 blk_queue_congestion_threshold(q);
d40f75a0
TH
988 on_thresh = queue_congestion_on_threshold(q);
989 off_thresh = queue_congestion_off_threshold(q);
e3a2b3f9 990
d40f75a0
TH
991 blk_queue_for_each_rl(rl, q) {
992 if (rl->count[BLK_RW_SYNC] >= on_thresh)
993 blk_set_congested(rl, BLK_RW_SYNC);
994 else if (rl->count[BLK_RW_SYNC] < off_thresh)
995 blk_clear_congested(rl, BLK_RW_SYNC);
e3a2b3f9 996
d40f75a0
TH
997 if (rl->count[BLK_RW_ASYNC] >= on_thresh)
998 blk_set_congested(rl, BLK_RW_ASYNC);
999 else if (rl->count[BLK_RW_ASYNC] < off_thresh)
1000 blk_clear_congested(rl, BLK_RW_ASYNC);
e3a2b3f9 1001
e3a2b3f9
JA
1002 if (rl->count[BLK_RW_SYNC] >= q->nr_requests) {
1003 blk_set_rl_full(rl, BLK_RW_SYNC);
1004 } else {
1005 blk_clear_rl_full(rl, BLK_RW_SYNC);
1006 wake_up(&rl->wait[BLK_RW_SYNC]);
1007 }
1008
1009 if (rl->count[BLK_RW_ASYNC] >= q->nr_requests) {
1010 blk_set_rl_full(rl, BLK_RW_ASYNC);
1011 } else {
1012 blk_clear_rl_full(rl, BLK_RW_ASYNC);
1013 wake_up(&rl->wait[BLK_RW_ASYNC]);
1014 }
1015 }
1016
1017 spin_unlock_irq(q->queue_lock);
1018 return 0;
1019}
1020
9d5a4e94
MS
1021/*
1022 * Determine if elevator data should be initialized when allocating the
1023 * request associated with @bio.
1024 */
1025static bool blk_rq_should_init_elevator(struct bio *bio)
1026{
1027 if (!bio)
1028 return true;
1029
1030 /*
1031 * Flush requests do not use the elevator so skip initialization.
1032 * This allows a request to share the flush and elevator data.
1033 */
1eff9d32 1034 if (bio->bi_opf & (REQ_PREFLUSH | REQ_FUA))
9d5a4e94
MS
1035 return false;
1036
1037 return true;
1038}
1039
852c788f
TH
1040/**
1041 * rq_ioc - determine io_context for request allocation
1042 * @bio: request being allocated is for this bio (can be %NULL)
1043 *
1044 * Determine io_context to use for request allocation for @bio. May return
1045 * %NULL if %current->io_context doesn't exist.
1046 */
1047static struct io_context *rq_ioc(struct bio *bio)
1048{
1049#ifdef CONFIG_BLK_CGROUP
1050 if (bio && bio->bi_ioc)
1051 return bio->bi_ioc;
1052#endif
1053 return current->io_context;
1054}
1055
da8303c6 1056/**
a06e05e6 1057 * __get_request - get a free request
5b788ce3 1058 * @rl: request list to allocate from
e6a40b09
MC
1059 * @op: REQ_OP_READ/REQ_OP_WRITE
1060 * @op_flags: rq_flag_bits
da8303c6
TH
1061 * @bio: bio to allocate request for (can be %NULL)
1062 * @gfp_mask: allocation mask
1063 *
1064 * Get a free request from @q. This function may fail under memory
1065 * pressure or if @q is dead.
1066 *
da3dae54 1067 * Must be called with @q->queue_lock held and,
a492f075
JL
1068 * Returns ERR_PTR on failure, with @q->queue_lock held.
1069 * Returns request pointer on success, with @q->queue_lock *not held*.
1da177e4 1070 */
e6a40b09
MC
1071static struct request *__get_request(struct request_list *rl, int op,
1072 int op_flags, struct bio *bio,
1073 gfp_t gfp_mask)
1da177e4 1074{
5b788ce3 1075 struct request_queue *q = rl->q;
b679281a 1076 struct request *rq;
7f4b35d1
TH
1077 struct elevator_type *et = q->elevator->type;
1078 struct io_context *ioc = rq_ioc(bio);
f1f8cc94 1079 struct io_cq *icq = NULL;
d9d8c5c4 1080 const bool is_sync = rw_is_sync(op, op_flags) != 0;
75eb6c37 1081 int may_queue;
e8064021 1082 req_flags_t rq_flags = RQF_ALLOCED;
88ee5ef1 1083
3f3299d5 1084 if (unlikely(blk_queue_dying(q)))
a492f075 1085 return ERR_PTR(-ENODEV);
da8303c6 1086
ba568ea0 1087 may_queue = elv_may_queue(q, op, op_flags);
88ee5ef1
JA
1088 if (may_queue == ELV_MQUEUE_NO)
1089 goto rq_starved;
1090
1faa16d2
JA
1091 if (rl->count[is_sync]+1 >= queue_congestion_on_threshold(q)) {
1092 if (rl->count[is_sync]+1 >= q->nr_requests) {
88ee5ef1
JA
1093 /*
1094 * The queue will fill after this allocation, so set
1095 * it as full, and mark this process as "batching".
1096 * This process will be allowed to complete a batch of
1097 * requests, others will be blocked.
1098 */
5b788ce3 1099 if (!blk_rl_full(rl, is_sync)) {
88ee5ef1 1100 ioc_set_batching(q, ioc);
5b788ce3 1101 blk_set_rl_full(rl, is_sync);
88ee5ef1
JA
1102 } else {
1103 if (may_queue != ELV_MQUEUE_MUST
1104 && !ioc_batching(q, ioc)) {
1105 /*
1106 * The queue is full and the allocating
1107 * process is not a "batcher", and not
1108 * exempted by the IO scheduler
1109 */
a492f075 1110 return ERR_PTR(-ENOMEM);
88ee5ef1
JA
1111 }
1112 }
1da177e4 1113 }
d40f75a0 1114 blk_set_congested(rl, is_sync);
1da177e4
LT
1115 }
1116
082cf69e
JA
1117 /*
1118 * Only allow batching queuers to allocate up to 50% over the defined
1119 * limit of requests, otherwise we could have thousands of requests
1120 * allocated with any setting of ->nr_requests
1121 */
1faa16d2 1122 if (rl->count[is_sync] >= (3 * q->nr_requests / 2))
a492f075 1123 return ERR_PTR(-ENOMEM);
fd782a4a 1124
8a5ecdd4 1125 q->nr_rqs[is_sync]++;
1faa16d2
JA
1126 rl->count[is_sync]++;
1127 rl->starved[is_sync] = 0;
cb98fc8b 1128
f1f8cc94
TH
1129 /*
1130 * Decide whether the new request will be managed by elevator. If
e8064021 1131 * so, mark @rq_flags and increment elvpriv. Non-zero elvpriv will
f1f8cc94
TH
1132 * prevent the current elevator from being destroyed until the new
1133 * request is freed. This guarantees icq's won't be destroyed and
1134 * makes creating new ones safe.
1135 *
1136 * Also, lookup icq while holding queue_lock. If it doesn't exist,
1137 * it will be created after releasing queue_lock.
1138 */
d732580b 1139 if (blk_rq_should_init_elevator(bio) && !blk_queue_bypass(q)) {
e8064021 1140 rq_flags |= RQF_ELVPRIV;
8a5ecdd4 1141 q->nr_rqs_elvpriv++;
f1f8cc94
TH
1142 if (et->icq_cache && ioc)
1143 icq = ioc_lookup_icq(ioc, q);
9d5a4e94 1144 }
cb98fc8b 1145
f253b86b 1146 if (blk_queue_io_stat(q))
e8064021 1147 rq_flags |= RQF_IO_STAT;
1da177e4
LT
1148 spin_unlock_irq(q->queue_lock);
1149
29e2b09a 1150 /* allocate and init request */
5b788ce3 1151 rq = mempool_alloc(rl->rq_pool, gfp_mask);
29e2b09a 1152 if (!rq)
b679281a 1153 goto fail_alloc;
1da177e4 1154
29e2b09a 1155 blk_rq_init(q, rq);
a051661c 1156 blk_rq_set_rl(rq, rl);
e8064021
CH
1157 req_set_op_attrs(rq, op, op_flags);
1158 rq->rq_flags = rq_flags;
29e2b09a 1159
aaf7c680 1160 /* init elvpriv */
e8064021 1161 if (rq_flags & RQF_ELVPRIV) {
aaf7c680 1162 if (unlikely(et->icq_cache && !icq)) {
7f4b35d1
TH
1163 if (ioc)
1164 icq = ioc_create_icq(ioc, q, gfp_mask);
aaf7c680
TH
1165 if (!icq)
1166 goto fail_elvpriv;
29e2b09a 1167 }
aaf7c680
TH
1168
1169 rq->elv.icq = icq;
1170 if (unlikely(elv_set_request(q, rq, bio, gfp_mask)))
1171 goto fail_elvpriv;
1172
1173 /* @rq->elv.icq holds io_context until @rq is freed */
29e2b09a
TH
1174 if (icq)
1175 get_io_context(icq->ioc);
1176 }
aaf7c680 1177out:
88ee5ef1
JA
1178 /*
1179 * ioc may be NULL here, and ioc_batching will be false. That's
1180 * OK, if the queue is under the request limit then requests need
1181 * not count toward the nr_batch_requests limit. There will always
1182 * be some limit enforced by BLK_BATCH_TIME.
1183 */
1da177e4
LT
1184 if (ioc_batching(q, ioc))
1185 ioc->nr_batch_requests--;
6728cb0e 1186
e6a40b09 1187 trace_block_getrq(q, bio, op);
1da177e4 1188 return rq;
b679281a 1189
aaf7c680
TH
1190fail_elvpriv:
1191 /*
1192 * elvpriv init failed. ioc, icq and elvpriv aren't mempool backed
1193 * and may fail indefinitely under memory pressure and thus
1194 * shouldn't stall IO. Treat this request as !elvpriv. This will
1195 * disturb iosched and blkcg but weird is bettern than dead.
1196 */
7b2b10e0
RE
1197 printk_ratelimited(KERN_WARNING "%s: dev %s: request aux data allocation failed, iosched may be disturbed\n",
1198 __func__, dev_name(q->backing_dev_info.dev));
aaf7c680 1199
e8064021 1200 rq->rq_flags &= ~RQF_ELVPRIV;
aaf7c680
TH
1201 rq->elv.icq = NULL;
1202
1203 spin_lock_irq(q->queue_lock);
8a5ecdd4 1204 q->nr_rqs_elvpriv--;
aaf7c680
TH
1205 spin_unlock_irq(q->queue_lock);
1206 goto out;
1207
b679281a
TH
1208fail_alloc:
1209 /*
1210 * Allocation failed presumably due to memory. Undo anything we
1211 * might have messed up.
1212 *
1213 * Allocating task should really be put onto the front of the wait
1214 * queue, but this is pretty rare.
1215 */
1216 spin_lock_irq(q->queue_lock);
e8064021 1217 freed_request(rl, is_sync, rq_flags);
b679281a
TH
1218
1219 /*
1220 * in the very unlikely event that allocation failed and no
1221 * requests for this direction was pending, mark us starved so that
1222 * freeing of a request in the other direction will notice
1223 * us. another possible fix would be to split the rq mempool into
1224 * READ and WRITE
1225 */
1226rq_starved:
1227 if (unlikely(rl->count[is_sync] == 0))
1228 rl->starved[is_sync] = 1;
a492f075 1229 return ERR_PTR(-ENOMEM);
1da177e4
LT
1230}
1231
da8303c6 1232/**
a06e05e6 1233 * get_request - get a free request
da8303c6 1234 * @q: request_queue to allocate request from
e6a40b09
MC
1235 * @op: REQ_OP_READ/REQ_OP_WRITE
1236 * @op_flags: rq_flag_bits
da8303c6 1237 * @bio: bio to allocate request for (can be %NULL)
a06e05e6 1238 * @gfp_mask: allocation mask
da8303c6 1239 *
d0164adc
MG
1240 * Get a free request from @q. If %__GFP_DIRECT_RECLAIM is set in @gfp_mask,
1241 * this function keeps retrying under memory pressure and fails iff @q is dead.
d6344532 1242 *
da3dae54 1243 * Must be called with @q->queue_lock held and,
a492f075
JL
1244 * Returns ERR_PTR on failure, with @q->queue_lock held.
1245 * Returns request pointer on success, with @q->queue_lock *not held*.
1da177e4 1246 */
e6a40b09
MC
1247static struct request *get_request(struct request_queue *q, int op,
1248 int op_flags, struct bio *bio,
1249 gfp_t gfp_mask)
1da177e4 1250{
d9d8c5c4 1251 const bool is_sync = rw_is_sync(op, op_flags) != 0;
a06e05e6 1252 DEFINE_WAIT(wait);
a051661c 1253 struct request_list *rl;
1da177e4 1254 struct request *rq;
a051661c
TH
1255
1256 rl = blk_get_rl(q, bio); /* transferred to @rq on success */
a06e05e6 1257retry:
e6a40b09 1258 rq = __get_request(rl, op, op_flags, bio, gfp_mask);
a492f075 1259 if (!IS_ERR(rq))
a06e05e6 1260 return rq;
1da177e4 1261
d0164adc 1262 if (!gfpflags_allow_blocking(gfp_mask) || unlikely(blk_queue_dying(q))) {
a051661c 1263 blk_put_rl(rl);
a492f075 1264 return rq;
a051661c 1265 }
1da177e4 1266
a06e05e6
TH
1267 /* wait on @rl and retry */
1268 prepare_to_wait_exclusive(&rl->wait[is_sync], &wait,
1269 TASK_UNINTERRUPTIBLE);
1da177e4 1270
e6a40b09 1271 trace_block_sleeprq(q, bio, op);
1da177e4 1272
a06e05e6
TH
1273 spin_unlock_irq(q->queue_lock);
1274 io_schedule();
d6344532 1275
a06e05e6
TH
1276 /*
1277 * After sleeping, we become a "batching" process and will be able
1278 * to allocate at least one request, and up to a big batch of them
1279 * for a small period time. See ioc_batching, ioc_set_batching
1280 */
a06e05e6 1281 ioc_set_batching(q, current->io_context);
05caf8db 1282
a06e05e6
TH
1283 spin_lock_irq(q->queue_lock);
1284 finish_wait(&rl->wait[is_sync], &wait);
1da177e4 1285
a06e05e6 1286 goto retry;
1da177e4
LT
1287}
1288
320ae51f
JA
1289static struct request *blk_old_get_request(struct request_queue *q, int rw,
1290 gfp_t gfp_mask)
1da177e4
LT
1291{
1292 struct request *rq;
1293
1294 BUG_ON(rw != READ && rw != WRITE);
1295
7f4b35d1
TH
1296 /* create ioc upfront */
1297 create_io_context(gfp_mask, q->node);
1298
d6344532 1299 spin_lock_irq(q->queue_lock);
e6a40b09 1300 rq = get_request(q, rw, 0, NULL, gfp_mask);
0c4de0f3 1301 if (IS_ERR(rq)) {
da8303c6 1302 spin_unlock_irq(q->queue_lock);
0c4de0f3
CH
1303 return rq;
1304 }
1da177e4 1305
0c4de0f3
CH
1306 /* q->queue_lock is unlocked at this point */
1307 rq->__data_len = 0;
1308 rq->__sector = (sector_t) -1;
1309 rq->bio = rq->biotail = NULL;
1da177e4
LT
1310 return rq;
1311}
320ae51f
JA
1312
1313struct request *blk_get_request(struct request_queue *q, int rw, gfp_t gfp_mask)
1314{
1315 if (q->mq_ops)
6f3b0e8b
CH
1316 return blk_mq_alloc_request(q, rw,
1317 (gfp_mask & __GFP_DIRECT_RECLAIM) ?
1318 0 : BLK_MQ_REQ_NOWAIT);
320ae51f
JA
1319 else
1320 return blk_old_get_request(q, rw, gfp_mask);
1321}
1da177e4
LT
1322EXPORT_SYMBOL(blk_get_request);
1323
f27b087b 1324/**
da3dae54 1325 * blk_rq_set_block_pc - initialize a request to type BLOCK_PC
f27b087b
JA
1326 * @rq: request to be initialized
1327 *
1328 */
1329void blk_rq_set_block_pc(struct request *rq)
1330{
1331 rq->cmd_type = REQ_TYPE_BLOCK_PC;
f27b087b 1332 memset(rq->__cmd, 0, sizeof(rq->__cmd));
f27b087b
JA
1333}
1334EXPORT_SYMBOL(blk_rq_set_block_pc);
1335
1da177e4
LT
1336/**
1337 * blk_requeue_request - put a request back on queue
1338 * @q: request queue where request should be inserted
1339 * @rq: request to be inserted
1340 *
1341 * Description:
1342 * Drivers often keep queueing requests until the hardware cannot accept
1343 * more, when that condition happens we need to put the request back
1344 * on the queue. Must be called with queue lock held.
1345 */
165125e1 1346void blk_requeue_request(struct request_queue *q, struct request *rq)
1da177e4 1347{
242f9dcb
JA
1348 blk_delete_timer(rq);
1349 blk_clear_rq_complete(rq);
5f3ea37c 1350 trace_block_rq_requeue(q, rq);
2056a782 1351
e8064021 1352 if (rq->rq_flags & RQF_QUEUED)
1da177e4
LT
1353 blk_queue_end_tag(q, rq);
1354
ba396a6c
JB
1355 BUG_ON(blk_queued_rq(rq));
1356
1da177e4
LT
1357 elv_requeue_request(q, rq);
1358}
1da177e4
LT
1359EXPORT_SYMBOL(blk_requeue_request);
1360
73c10101
JA
1361static void add_acct_request(struct request_queue *q, struct request *rq,
1362 int where)
1363{
320ae51f 1364 blk_account_io_start(rq, true);
7eaceacc 1365 __elv_add_request(q, rq, where);
73c10101
JA
1366}
1367
074a7aca
TH
1368static void part_round_stats_single(int cpu, struct hd_struct *part,
1369 unsigned long now)
1370{
7276d02e
JA
1371 int inflight;
1372
074a7aca
TH
1373 if (now == part->stamp)
1374 return;
1375
7276d02e
JA
1376 inflight = part_in_flight(part);
1377 if (inflight) {
074a7aca 1378 __part_stat_add(cpu, part, time_in_queue,
7276d02e 1379 inflight * (now - part->stamp));
074a7aca
TH
1380 __part_stat_add(cpu, part, io_ticks, (now - part->stamp));
1381 }
1382 part->stamp = now;
1383}
1384
1385/**
496aa8a9
RD
1386 * part_round_stats() - Round off the performance stats on a struct disk_stats.
1387 * @cpu: cpu number for stats access
1388 * @part: target partition
1da177e4
LT
1389 *
1390 * The average IO queue length and utilisation statistics are maintained
1391 * by observing the current state of the queue length and the amount of
1392 * time it has been in this state for.
1393 *
1394 * Normally, that accounting is done on IO completion, but that can result
1395 * in more than a second's worth of IO being accounted for within any one
1396 * second, leading to >100% utilisation. To deal with that, we call this
1397 * function to do a round-off before returning the results when reading
1398 * /proc/diskstats. This accounts immediately for all queue usage up to
1399 * the current jiffies and restarts the counters again.
1400 */
c9959059 1401void part_round_stats(int cpu, struct hd_struct *part)
6f2576af
JM
1402{
1403 unsigned long now = jiffies;
1404
074a7aca
TH
1405 if (part->partno)
1406 part_round_stats_single(cpu, &part_to_disk(part)->part0, now);
1407 part_round_stats_single(cpu, part, now);
6f2576af 1408}
074a7aca 1409EXPORT_SYMBOL_GPL(part_round_stats);
6f2576af 1410
47fafbc7 1411#ifdef CONFIG_PM
c8158819
LM
1412static void blk_pm_put_request(struct request *rq)
1413{
e8064021 1414 if (rq->q->dev && !(rq->rq_flags & RQF_PM) && !--rq->q->nr_pending)
c8158819
LM
1415 pm_runtime_mark_last_busy(rq->q->dev);
1416}
1417#else
1418static inline void blk_pm_put_request(struct request *rq) {}
1419#endif
1420
1da177e4
LT
1421/*
1422 * queue lock must be held
1423 */
165125e1 1424void __blk_put_request(struct request_queue *q, struct request *req)
1da177e4 1425{
e8064021
CH
1426 req_flags_t rq_flags = req->rq_flags;
1427
1da177e4
LT
1428 if (unlikely(!q))
1429 return;
1da177e4 1430
6f5ba581
CH
1431 if (q->mq_ops) {
1432 blk_mq_free_request(req);
1433 return;
1434 }
1435
c8158819
LM
1436 blk_pm_put_request(req);
1437
8922e16c
TH
1438 elv_completed_request(q, req);
1439
1cd96c24
BH
1440 /* this is a bio leak */
1441 WARN_ON(req->bio != NULL);
1442
1da177e4
LT
1443 /*
1444 * Request may not have originated from ll_rw_blk. if not,
1445 * it didn't come out of our reserved rq pools
1446 */
e8064021 1447 if (rq_flags & RQF_ALLOCED) {
a051661c 1448 struct request_list *rl = blk_rq_rl(req);
e8064021 1449 bool sync = rw_is_sync(req_op(req), req->cmd_flags);
1da177e4 1450
1da177e4 1451 BUG_ON(!list_empty(&req->queuelist));
360f92c2 1452 BUG_ON(ELV_ON_HASH(req));
1da177e4 1453
a051661c 1454 blk_free_request(rl, req);
e8064021 1455 freed_request(rl, sync, rq_flags);
a051661c 1456 blk_put_rl(rl);
1da177e4
LT
1457 }
1458}
6e39b69e
MC
1459EXPORT_SYMBOL_GPL(__blk_put_request);
1460
1da177e4
LT
1461void blk_put_request(struct request *req)
1462{
165125e1 1463 struct request_queue *q = req->q;
8922e16c 1464
320ae51f
JA
1465 if (q->mq_ops)
1466 blk_mq_free_request(req);
1467 else {
1468 unsigned long flags;
1469
1470 spin_lock_irqsave(q->queue_lock, flags);
1471 __blk_put_request(q, req);
1472 spin_unlock_irqrestore(q->queue_lock, flags);
1473 }
1da177e4 1474}
1da177e4
LT
1475EXPORT_SYMBOL(blk_put_request);
1476
66ac0280
CH
1477/**
1478 * blk_add_request_payload - add a payload to a request
1479 * @rq: request to update
1480 * @page: page backing the payload
37e58237 1481 * @offset: offset in page
66ac0280
CH
1482 * @len: length of the payload.
1483 *
1484 * This allows to later add a payload to an already submitted request by
1485 * a block driver. The driver needs to take care of freeing the payload
1486 * itself.
1487 *
1488 * Note that this is a quite horrible hack and nothing but handling of
1489 * discard requests should ever use it.
1490 */
1491void blk_add_request_payload(struct request *rq, struct page *page,
37e58237 1492 int offset, unsigned int len)
66ac0280
CH
1493{
1494 struct bio *bio = rq->bio;
1495
1496 bio->bi_io_vec->bv_page = page;
37e58237 1497 bio->bi_io_vec->bv_offset = offset;
66ac0280
CH
1498 bio->bi_io_vec->bv_len = len;
1499
4f024f37 1500 bio->bi_iter.bi_size = len;
66ac0280
CH
1501 bio->bi_vcnt = 1;
1502 bio->bi_phys_segments = 1;
1503
1504 rq->__data_len = rq->resid_len = len;
1505 rq->nr_phys_segments = 1;
66ac0280
CH
1506}
1507EXPORT_SYMBOL_GPL(blk_add_request_payload);
1508
320ae51f
JA
1509bool bio_attempt_back_merge(struct request_queue *q, struct request *req,
1510 struct bio *bio)
73c10101 1511{
1eff9d32 1512 const int ff = bio->bi_opf & REQ_FAILFAST_MASK;
73c10101 1513
73c10101
JA
1514 if (!ll_back_merge_fn(q, req, bio))
1515 return false;
1516
8c1cf6bb 1517 trace_block_bio_backmerge(q, req, bio);
73c10101
JA
1518
1519 if ((req->cmd_flags & REQ_FAILFAST_MASK) != ff)
1520 blk_rq_set_mixed_merge(req);
1521
1522 req->biotail->bi_next = bio;
1523 req->biotail = bio;
4f024f37 1524 req->__data_len += bio->bi_iter.bi_size;
73c10101
JA
1525 req->ioprio = ioprio_best(req->ioprio, bio_prio(bio));
1526
320ae51f 1527 blk_account_io_start(req, false);
73c10101
JA
1528 return true;
1529}
1530
320ae51f
JA
1531bool bio_attempt_front_merge(struct request_queue *q, struct request *req,
1532 struct bio *bio)
73c10101 1533{
1eff9d32 1534 const int ff = bio->bi_opf & REQ_FAILFAST_MASK;
73c10101 1535
73c10101
JA
1536 if (!ll_front_merge_fn(q, req, bio))
1537 return false;
1538
8c1cf6bb 1539 trace_block_bio_frontmerge(q, req, bio);
73c10101
JA
1540
1541 if ((req->cmd_flags & REQ_FAILFAST_MASK) != ff)
1542 blk_rq_set_mixed_merge(req);
1543
73c10101
JA
1544 bio->bi_next = req->bio;
1545 req->bio = bio;
1546
4f024f37
KO
1547 req->__sector = bio->bi_iter.bi_sector;
1548 req->__data_len += bio->bi_iter.bi_size;
73c10101
JA
1549 req->ioprio = ioprio_best(req->ioprio, bio_prio(bio));
1550
320ae51f 1551 blk_account_io_start(req, false);
73c10101
JA
1552 return true;
1553}
1554
bd87b589 1555/**
320ae51f 1556 * blk_attempt_plug_merge - try to merge with %current's plugged list
bd87b589
TH
1557 * @q: request_queue new bio is being queued at
1558 * @bio: new bio being queued
1559 * @request_count: out parameter for number of traversed plugged requests
ccc2600b
RD
1560 * @same_queue_rq: pointer to &struct request that gets filled in when
1561 * another request associated with @q is found on the plug list
1562 * (optional, may be %NULL)
bd87b589
TH
1563 *
1564 * Determine whether @bio being queued on @q can be merged with a request
1565 * on %current's plugged list. Returns %true if merge was successful,
1566 * otherwise %false.
1567 *
07c2bd37
TH
1568 * Plugging coalesces IOs from the same issuer for the same purpose without
1569 * going through @q->queue_lock. As such it's more of an issuing mechanism
1570 * than scheduling, and the request, while may have elvpriv data, is not
1571 * added on the elevator at this point. In addition, we don't have
1572 * reliable access to the elevator outside queue lock. Only check basic
1573 * merging parameters without querying the elevator.
da41a589
RE
1574 *
1575 * Caller must ensure !blk_queue_nomerges(q) beforehand.
73c10101 1576 */
320ae51f 1577bool blk_attempt_plug_merge(struct request_queue *q, struct bio *bio,
5b3f341f
SL
1578 unsigned int *request_count,
1579 struct request **same_queue_rq)
73c10101
JA
1580{
1581 struct blk_plug *plug;
1582 struct request *rq;
1583 bool ret = false;
92f399c7 1584 struct list_head *plug_list;
73c10101 1585
bd87b589 1586 plug = current->plug;
73c10101
JA
1587 if (!plug)
1588 goto out;
56ebdaf2 1589 *request_count = 0;
73c10101 1590
92f399c7
SL
1591 if (q->mq_ops)
1592 plug_list = &plug->mq_list;
1593 else
1594 plug_list = &plug->list;
1595
1596 list_for_each_entry_reverse(rq, plug_list, queuelist) {
73c10101
JA
1597 int el_ret;
1598
5b3f341f 1599 if (rq->q == q) {
1b2e19f1 1600 (*request_count)++;
5b3f341f
SL
1601 /*
1602 * Only blk-mq multiple hardware queues case checks the
1603 * rq in the same queue, there should be only one such
1604 * rq in a queue
1605 **/
1606 if (same_queue_rq)
1607 *same_queue_rq = rq;
1608 }
56ebdaf2 1609
07c2bd37 1610 if (rq->q != q || !blk_rq_merge_ok(rq, bio))
73c10101
JA
1611 continue;
1612
050c8ea8 1613 el_ret = blk_try_merge(rq, bio);
73c10101
JA
1614 if (el_ret == ELEVATOR_BACK_MERGE) {
1615 ret = bio_attempt_back_merge(q, rq, bio);
1616 if (ret)
1617 break;
1618 } else if (el_ret == ELEVATOR_FRONT_MERGE) {
1619 ret = bio_attempt_front_merge(q, rq, bio);
1620 if (ret)
1621 break;
1622 }
1623 }
1624out:
1625 return ret;
1626}
1627
0809e3ac
JM
1628unsigned int blk_plug_queued_count(struct request_queue *q)
1629{
1630 struct blk_plug *plug;
1631 struct request *rq;
1632 struct list_head *plug_list;
1633 unsigned int ret = 0;
1634
1635 plug = current->plug;
1636 if (!plug)
1637 goto out;
1638
1639 if (q->mq_ops)
1640 plug_list = &plug->mq_list;
1641 else
1642 plug_list = &plug->list;
1643
1644 list_for_each_entry(rq, plug_list, queuelist) {
1645 if (rq->q == q)
1646 ret++;
1647 }
1648out:
1649 return ret;
1650}
1651
86db1e29 1652void init_request_from_bio(struct request *req, struct bio *bio)
52d9e675 1653{
4aff5e23 1654 req->cmd_type = REQ_TYPE_FS;
52d9e675 1655
1eff9d32
JA
1656 req->cmd_flags |= bio->bi_opf & REQ_COMMON_MASK;
1657 if (bio->bi_opf & REQ_RAHEAD)
a82afdfc 1658 req->cmd_flags |= REQ_FAILFAST_MASK;
b31dc66a 1659
52d9e675 1660 req->errors = 0;
4f024f37 1661 req->__sector = bio->bi_iter.bi_sector;
52d9e675 1662 req->ioprio = bio_prio(bio);
bc1c56fd 1663 blk_rq_bio_prep(req->q, req, bio);
52d9e675
TH
1664}
1665
dece1635 1666static blk_qc_t blk_queue_bio(struct request_queue *q, struct bio *bio)
1da177e4 1667{
1eff9d32 1668 const bool sync = !!(bio->bi_opf & REQ_SYNC);
73c10101 1669 struct blk_plug *plug;
e6a40b09 1670 int el_ret, rw_flags = 0, where = ELEVATOR_INSERT_SORT;
73c10101 1671 struct request *req;
56ebdaf2 1672 unsigned int request_count = 0;
1da177e4 1673
1da177e4
LT
1674 /*
1675 * low level driver can indicate that it wants pages above a
1676 * certain limit bounced to low memory (ie for highmem, or even
1677 * ISA dma in theory)
1678 */
1679 blk_queue_bounce(q, &bio);
1680
23688bf4
JN
1681 blk_queue_split(q, &bio, q->bio_split);
1682
ffecfd1a 1683 if (bio_integrity_enabled(bio) && bio_integrity_prep(bio)) {
4246a0b6
CH
1684 bio->bi_error = -EIO;
1685 bio_endio(bio);
dece1635 1686 return BLK_QC_T_NONE;
ffecfd1a
DW
1687 }
1688
1eff9d32 1689 if (bio->bi_opf & (REQ_PREFLUSH | REQ_FUA)) {
73c10101 1690 spin_lock_irq(q->queue_lock);
ae1b1539 1691 where = ELEVATOR_INSERT_FLUSH;
28e7d184
TH
1692 goto get_rq;
1693 }
1694
73c10101
JA
1695 /*
1696 * Check if we can merge with the plugged list before grabbing
1697 * any locks.
1698 */
0809e3ac
JM
1699 if (!blk_queue_nomerges(q)) {
1700 if (blk_attempt_plug_merge(q, bio, &request_count, NULL))
dece1635 1701 return BLK_QC_T_NONE;
0809e3ac
JM
1702 } else
1703 request_count = blk_plug_queued_count(q);
1da177e4 1704
73c10101 1705 spin_lock_irq(q->queue_lock);
2056a782 1706
73c10101
JA
1707 el_ret = elv_merge(q, &req, bio);
1708 if (el_ret == ELEVATOR_BACK_MERGE) {
73c10101 1709 if (bio_attempt_back_merge(q, req, bio)) {
07c2bd37 1710 elv_bio_merged(q, req, bio);
73c10101
JA
1711 if (!attempt_back_merge(q, req))
1712 elv_merged_request(q, req, el_ret);
1713 goto out_unlock;
1714 }
1715 } else if (el_ret == ELEVATOR_FRONT_MERGE) {
73c10101 1716 if (bio_attempt_front_merge(q, req, bio)) {
07c2bd37 1717 elv_bio_merged(q, req, bio);
73c10101
JA
1718 if (!attempt_front_merge(q, req))
1719 elv_merged_request(q, req, el_ret);
1720 goto out_unlock;
80a761fd 1721 }
1da177e4
LT
1722 }
1723
450991bc 1724get_rq:
7749a8d4
JA
1725 /*
1726 * This sync check and mask will be re-done in init_request_from_bio(),
1727 * but we need to set it earlier to expose the sync flag to the
1728 * rq allocator and io schedulers.
1729 */
7749a8d4 1730 if (sync)
7b6d91da 1731 rw_flags |= REQ_SYNC;
7749a8d4 1732
b8269db4
JA
1733 /*
1734 * Add in META/PRIO flags, if set, before we get to the IO scheduler
1735 */
1eff9d32 1736 rw_flags |= (bio->bi_opf & (REQ_META | REQ_PRIO));
b8269db4 1737
1da177e4 1738 /*
450991bc 1739 * Grab a free request. This is might sleep but can not fail.
d6344532 1740 * Returns with the queue unlocked.
450991bc 1741 */
e6a40b09 1742 req = get_request(q, bio_data_dir(bio), rw_flags, bio, GFP_NOIO);
a492f075 1743 if (IS_ERR(req)) {
4246a0b6
CH
1744 bio->bi_error = PTR_ERR(req);
1745 bio_endio(bio);
da8303c6
TH
1746 goto out_unlock;
1747 }
d6344532 1748
450991bc
NP
1749 /*
1750 * After dropping the lock and possibly sleeping here, our request
1751 * may now be mergeable after it had proven unmergeable (above).
1752 * We don't worry about that case for efficiency. It won't happen
1753 * often, and the elevators are able to handle it.
1da177e4 1754 */
52d9e675 1755 init_request_from_bio(req, bio);
1da177e4 1756
9562ad9a 1757 if (test_bit(QUEUE_FLAG_SAME_COMP, &q->queue_flags))
11ccf116 1758 req->cpu = raw_smp_processor_id();
73c10101
JA
1759
1760 plug = current->plug;
721a9602 1761 if (plug) {
dc6d36c9
JA
1762 /*
1763 * If this is the first request added after a plug, fire
7aef2e78 1764 * of a plug trace.
dc6d36c9 1765 */
7aef2e78 1766 if (!request_count)
dc6d36c9 1767 trace_block_plug(q);
3540d5e8 1768 else {
019ceb7d 1769 if (request_count >= BLK_MAX_REQUEST_COUNT) {
3540d5e8 1770 blk_flush_plug_list(plug, false);
019ceb7d
SL
1771 trace_block_plug(q);
1772 }
73c10101 1773 }
73c10101 1774 list_add_tail(&req->queuelist, &plug->list);
320ae51f 1775 blk_account_io_start(req, true);
73c10101
JA
1776 } else {
1777 spin_lock_irq(q->queue_lock);
1778 add_acct_request(q, req, where);
24ecfbe2 1779 __blk_run_queue(q);
73c10101
JA
1780out_unlock:
1781 spin_unlock_irq(q->queue_lock);
1782 }
dece1635
JA
1783
1784 return BLK_QC_T_NONE;
1da177e4
LT
1785}
1786
1787/*
1788 * If bio->bi_dev is a partition, remap the location
1789 */
1790static inline void blk_partition_remap(struct bio *bio)
1791{
1792 struct block_device *bdev = bio->bi_bdev;
1793
bf2de6f5 1794 if (bio_sectors(bio) && bdev != bdev->bd_contains) {
1da177e4
LT
1795 struct hd_struct *p = bdev->bd_part;
1796
4f024f37 1797 bio->bi_iter.bi_sector += p->start_sect;
1da177e4 1798 bio->bi_bdev = bdev->bd_contains;
c7149d6b 1799
d07335e5
MS
1800 trace_block_bio_remap(bdev_get_queue(bio->bi_bdev), bio,
1801 bdev->bd_dev,
4f024f37 1802 bio->bi_iter.bi_sector - p->start_sect);
1da177e4
LT
1803 }
1804}
1805
1da177e4
LT
1806static void handle_bad_sector(struct bio *bio)
1807{
1808 char b[BDEVNAME_SIZE];
1809
1810 printk(KERN_INFO "attempt to access beyond end of device\n");
6296b960 1811 printk(KERN_INFO "%s: rw=%d, want=%Lu, limit=%Lu\n",
1da177e4 1812 bdevname(bio->bi_bdev, b),
1eff9d32 1813 bio->bi_opf,
f73a1c7d 1814 (unsigned long long)bio_end_sector(bio),
77304d2a 1815 (long long)(i_size_read(bio->bi_bdev->bd_inode) >> 9));
1da177e4
LT
1816}
1817
c17bb495
AM
1818#ifdef CONFIG_FAIL_MAKE_REQUEST
1819
1820static DECLARE_FAULT_ATTR(fail_make_request);
1821
1822static int __init setup_fail_make_request(char *str)
1823{
1824 return setup_fault_attr(&fail_make_request, str);
1825}
1826__setup("fail_make_request=", setup_fail_make_request);
1827
b2c9cd37 1828static bool should_fail_request(struct hd_struct *part, unsigned int bytes)
c17bb495 1829{
b2c9cd37 1830 return part->make_it_fail && should_fail(&fail_make_request, bytes);
c17bb495
AM
1831}
1832
1833static int __init fail_make_request_debugfs(void)
1834{
dd48c085
AM
1835 struct dentry *dir = fault_create_debugfs_attr("fail_make_request",
1836 NULL, &fail_make_request);
1837
21f9fcd8 1838 return PTR_ERR_OR_ZERO(dir);
c17bb495
AM
1839}
1840
1841late_initcall(fail_make_request_debugfs);
1842
1843#else /* CONFIG_FAIL_MAKE_REQUEST */
1844
b2c9cd37
AM
1845static inline bool should_fail_request(struct hd_struct *part,
1846 unsigned int bytes)
c17bb495 1847{
b2c9cd37 1848 return false;
c17bb495
AM
1849}
1850
1851#endif /* CONFIG_FAIL_MAKE_REQUEST */
1852
c07e2b41
JA
1853/*
1854 * Check whether this bio extends beyond the end of the device.
1855 */
1856static inline int bio_check_eod(struct bio *bio, unsigned int nr_sectors)
1857{
1858 sector_t maxsector;
1859
1860 if (!nr_sectors)
1861 return 0;
1862
1863 /* Test device or partition size, when known. */
77304d2a 1864 maxsector = i_size_read(bio->bi_bdev->bd_inode) >> 9;
c07e2b41 1865 if (maxsector) {
4f024f37 1866 sector_t sector = bio->bi_iter.bi_sector;
c07e2b41
JA
1867
1868 if (maxsector < nr_sectors || maxsector - nr_sectors < sector) {
1869 /*
1870 * This may well happen - the kernel calls bread()
1871 * without checking the size of the device, e.g., when
1872 * mounting a device.
1873 */
1874 handle_bad_sector(bio);
1875 return 1;
1876 }
1877 }
1878
1879 return 0;
1880}
1881
27a84d54
CH
1882static noinline_for_stack bool
1883generic_make_request_checks(struct bio *bio)
1da177e4 1884{
165125e1 1885 struct request_queue *q;
5a7bbad2 1886 int nr_sectors = bio_sectors(bio);
51fd77bd 1887 int err = -EIO;
5a7bbad2
CH
1888 char b[BDEVNAME_SIZE];
1889 struct hd_struct *part;
1da177e4
LT
1890
1891 might_sleep();
1da177e4 1892
c07e2b41
JA
1893 if (bio_check_eod(bio, nr_sectors))
1894 goto end_io;
1da177e4 1895
5a7bbad2
CH
1896 q = bdev_get_queue(bio->bi_bdev);
1897 if (unlikely(!q)) {
1898 printk(KERN_ERR
1899 "generic_make_request: Trying to access "
1900 "nonexistent block-device %s (%Lu)\n",
1901 bdevname(bio->bi_bdev, b),
4f024f37 1902 (long long) bio->bi_iter.bi_sector);
5a7bbad2
CH
1903 goto end_io;
1904 }
c17bb495 1905
5a7bbad2 1906 part = bio->bi_bdev->bd_part;
4f024f37 1907 if (should_fail_request(part, bio->bi_iter.bi_size) ||
5a7bbad2 1908 should_fail_request(&part_to_disk(part)->part0,
4f024f37 1909 bio->bi_iter.bi_size))
5a7bbad2 1910 goto end_io;
2056a782 1911
5a7bbad2
CH
1912 /*
1913 * If this device has partitions, remap block n
1914 * of partition p to block n+start(p) of the disk.
1915 */
1916 blk_partition_remap(bio);
2056a782 1917
5a7bbad2
CH
1918 if (bio_check_eod(bio, nr_sectors))
1919 goto end_io;
1e87901e 1920
5a7bbad2
CH
1921 /*
1922 * Filter flush bio's early so that make_request based
1923 * drivers without flush support don't have to worry
1924 * about them.
1925 */
1eff9d32 1926 if ((bio->bi_opf & (REQ_PREFLUSH | REQ_FUA)) &&
c888a8f9 1927 !test_bit(QUEUE_FLAG_WC, &q->queue_flags)) {
1eff9d32 1928 bio->bi_opf &= ~(REQ_PREFLUSH | REQ_FUA);
5a7bbad2
CH
1929 if (!nr_sectors) {
1930 err = 0;
51fd77bd
JA
1931 goto end_io;
1932 }
5a7bbad2 1933 }
5ddfe969 1934
288dab8a
CH
1935 switch (bio_op(bio)) {
1936 case REQ_OP_DISCARD:
1937 if (!blk_queue_discard(q))
1938 goto not_supported;
1939 break;
1940 case REQ_OP_SECURE_ERASE:
1941 if (!blk_queue_secure_erase(q))
1942 goto not_supported;
1943 break;
1944 case REQ_OP_WRITE_SAME:
1945 if (!bdev_write_same(bio->bi_bdev))
1946 goto not_supported;
2d253440
ST
1947 case REQ_OP_ZONE_REPORT:
1948 case REQ_OP_ZONE_RESET:
1949 if (!bdev_is_zoned(bio->bi_bdev))
1950 goto not_supported;
288dab8a
CH
1951 break;
1952 default:
1953 break;
5a7bbad2 1954 }
01edede4 1955
7f4b35d1
TH
1956 /*
1957 * Various block parts want %current->io_context and lazy ioc
1958 * allocation ends up trading a lot of pain for a small amount of
1959 * memory. Just allocate it upfront. This may fail and block
1960 * layer knows how to live with it.
1961 */
1962 create_io_context(GFP_ATOMIC, q->node);
1963
ae118896
TH
1964 if (!blkcg_bio_issue_check(q, bio))
1965 return false;
27a84d54 1966
5a7bbad2 1967 trace_block_bio_queue(q, bio);
27a84d54 1968 return true;
a7384677 1969
288dab8a
CH
1970not_supported:
1971 err = -EOPNOTSUPP;
a7384677 1972end_io:
4246a0b6
CH
1973 bio->bi_error = err;
1974 bio_endio(bio);
27a84d54 1975 return false;
1da177e4
LT
1976}
1977
27a84d54
CH
1978/**
1979 * generic_make_request - hand a buffer to its device driver for I/O
1980 * @bio: The bio describing the location in memory and on the device.
1981 *
1982 * generic_make_request() is used to make I/O requests of block
1983 * devices. It is passed a &struct bio, which describes the I/O that needs
1984 * to be done.
1985 *
1986 * generic_make_request() does not return any status. The
1987 * success/failure status of the request, along with notification of
1988 * completion, is delivered asynchronously through the bio->bi_end_io
1989 * function described (one day) else where.
1990 *
1991 * The caller of generic_make_request must make sure that bi_io_vec
1992 * are set to describe the memory buffer, and that bi_dev and bi_sector are
1993 * set to describe the device address, and the
1994 * bi_end_io and optionally bi_private are set to describe how
1995 * completion notification should be signaled.
1996 *
1997 * generic_make_request and the drivers it calls may use bi_next if this
1998 * bio happens to be merged with someone else, and may resubmit the bio to
1999 * a lower device by calling into generic_make_request recursively, which
2000 * means the bio should NOT be touched after the call to ->make_request_fn.
d89d8796 2001 */
dece1635 2002blk_qc_t generic_make_request(struct bio *bio)
d89d8796 2003{
bddd87c7 2004 struct bio_list bio_list_on_stack;
dece1635 2005 blk_qc_t ret = BLK_QC_T_NONE;
bddd87c7 2006
27a84d54 2007 if (!generic_make_request_checks(bio))
dece1635 2008 goto out;
27a84d54
CH
2009
2010 /*
2011 * We only want one ->make_request_fn to be active at a time, else
2012 * stack usage with stacked devices could be a problem. So use
2013 * current->bio_list to keep a list of requests submited by a
2014 * make_request_fn function. current->bio_list is also used as a
2015 * flag to say if generic_make_request is currently active in this
2016 * task or not. If it is NULL, then no make_request is active. If
2017 * it is non-NULL, then a make_request is active, and new requests
2018 * should be added at the tail
2019 */
bddd87c7 2020 if (current->bio_list) {
bddd87c7 2021 bio_list_add(current->bio_list, bio);
dece1635 2022 goto out;
d89d8796 2023 }
27a84d54 2024
d89d8796
NB
2025 /* following loop may be a bit non-obvious, and so deserves some
2026 * explanation.
2027 * Before entering the loop, bio->bi_next is NULL (as all callers
2028 * ensure that) so we have a list with a single bio.
2029 * We pretend that we have just taken it off a longer list, so
bddd87c7
AM
2030 * we assign bio_list to a pointer to the bio_list_on_stack,
2031 * thus initialising the bio_list of new bios to be
27a84d54 2032 * added. ->make_request() may indeed add some more bios
d89d8796
NB
2033 * through a recursive call to generic_make_request. If it
2034 * did, we find a non-NULL value in bio_list and re-enter the loop
2035 * from the top. In this case we really did just take the bio
bddd87c7 2036 * of the top of the list (no pretending) and so remove it from
27a84d54 2037 * bio_list, and call into ->make_request() again.
d89d8796
NB
2038 */
2039 BUG_ON(bio->bi_next);
bddd87c7
AM
2040 bio_list_init(&bio_list_on_stack);
2041 current->bio_list = &bio_list_on_stack;
d89d8796 2042 do {
27a84d54
CH
2043 struct request_queue *q = bdev_get_queue(bio->bi_bdev);
2044
6f3b0e8b 2045 if (likely(blk_queue_enter(q, false) == 0)) {
dece1635 2046 ret = q->make_request_fn(q, bio);
3ef28e83
DW
2047
2048 blk_queue_exit(q);
27a84d54 2049
3ef28e83
DW
2050 bio = bio_list_pop(current->bio_list);
2051 } else {
2052 struct bio *bio_next = bio_list_pop(current->bio_list);
2053
2054 bio_io_error(bio);
2055 bio = bio_next;
2056 }
d89d8796 2057 } while (bio);
bddd87c7 2058 current->bio_list = NULL; /* deactivate */
dece1635
JA
2059
2060out:
2061 return ret;
d89d8796 2062}
1da177e4
LT
2063EXPORT_SYMBOL(generic_make_request);
2064
2065/**
710027a4 2066 * submit_bio - submit a bio to the block device layer for I/O
1da177e4
LT
2067 * @bio: The &struct bio which describes the I/O
2068 *
2069 * submit_bio() is very similar in purpose to generic_make_request(), and
2070 * uses that function to do most of the work. Both are fairly rough
710027a4 2071 * interfaces; @bio must be presetup and ready for I/O.
1da177e4
LT
2072 *
2073 */
4e49ea4a 2074blk_qc_t submit_bio(struct bio *bio)
1da177e4 2075{
bf2de6f5
JA
2076 /*
2077 * If it's a regular read/write or a barrier with data attached,
2078 * go through the normal accounting stuff before submission.
2079 */
e2a60da7 2080 if (bio_has_data(bio)) {
4363ac7c
MP
2081 unsigned int count;
2082
95fe6c1a 2083 if (unlikely(bio_op(bio) == REQ_OP_WRITE_SAME))
4363ac7c
MP
2084 count = bdev_logical_block_size(bio->bi_bdev) >> 9;
2085 else
2086 count = bio_sectors(bio);
2087
a8ebb056 2088 if (op_is_write(bio_op(bio))) {
bf2de6f5
JA
2089 count_vm_events(PGPGOUT, count);
2090 } else {
4f024f37 2091 task_io_account_read(bio->bi_iter.bi_size);
bf2de6f5
JA
2092 count_vm_events(PGPGIN, count);
2093 }
2094
2095 if (unlikely(block_dump)) {
2096 char b[BDEVNAME_SIZE];
8dcbdc74 2097 printk(KERN_DEBUG "%s(%d): %s block %Lu on %s (%u sectors)\n",
ba25f9dc 2098 current->comm, task_pid_nr(current),
a8ebb056 2099 op_is_write(bio_op(bio)) ? "WRITE" : "READ",
4f024f37 2100 (unsigned long long)bio->bi_iter.bi_sector,
8dcbdc74
SM
2101 bdevname(bio->bi_bdev, b),
2102 count);
bf2de6f5 2103 }
1da177e4
LT
2104 }
2105
dece1635 2106 return generic_make_request(bio);
1da177e4 2107}
1da177e4
LT
2108EXPORT_SYMBOL(submit_bio);
2109
82124d60 2110/**
bf4e6b4e
HR
2111 * blk_cloned_rq_check_limits - Helper function to check a cloned request
2112 * for new the queue limits
82124d60
KU
2113 * @q: the queue
2114 * @rq: the request being checked
2115 *
2116 * Description:
2117 * @rq may have been made based on weaker limitations of upper-level queues
2118 * in request stacking drivers, and it may violate the limitation of @q.
2119 * Since the block layer and the underlying device driver trust @rq
2120 * after it is inserted to @q, it should be checked against @q before
2121 * the insertion using this generic function.
2122 *
82124d60 2123 * Request stacking drivers like request-based dm may change the queue
bf4e6b4e
HR
2124 * limits when retrying requests on other queues. Those requests need
2125 * to be checked against the new queue limits again during dispatch.
82124d60 2126 */
bf4e6b4e
HR
2127static int blk_cloned_rq_check_limits(struct request_queue *q,
2128 struct request *rq)
82124d60 2129{
8fe0d473 2130 if (blk_rq_sectors(rq) > blk_queue_get_max_sectors(q, req_op(rq))) {
82124d60
KU
2131 printk(KERN_ERR "%s: over max size limit.\n", __func__);
2132 return -EIO;
2133 }
2134
2135 /*
2136 * queue's settings related to segment counting like q->bounce_pfn
2137 * may differ from that of other stacking queues.
2138 * Recalculate it to check the request correctly on this queue's
2139 * limitation.
2140 */
2141 blk_recalc_rq_segments(rq);
8a78362c 2142 if (rq->nr_phys_segments > queue_max_segments(q)) {
82124d60
KU
2143 printk(KERN_ERR "%s: over max segments limit.\n", __func__);
2144 return -EIO;
2145 }
2146
2147 return 0;
2148}
82124d60
KU
2149
2150/**
2151 * blk_insert_cloned_request - Helper for stacking drivers to submit a request
2152 * @q: the queue to submit the request
2153 * @rq: the request being queued
2154 */
2155int blk_insert_cloned_request(struct request_queue *q, struct request *rq)
2156{
2157 unsigned long flags;
4853abaa 2158 int where = ELEVATOR_INSERT_BACK;
82124d60 2159
bf4e6b4e 2160 if (blk_cloned_rq_check_limits(q, rq))
82124d60
KU
2161 return -EIO;
2162
b2c9cd37
AM
2163 if (rq->rq_disk &&
2164 should_fail_request(&rq->rq_disk->part0, blk_rq_bytes(rq)))
82124d60 2165 return -EIO;
82124d60 2166
7fb4898e
KB
2167 if (q->mq_ops) {
2168 if (blk_queue_io_stat(q))
2169 blk_account_io_start(rq, true);
6acfe68b 2170 blk_mq_insert_request(rq, false, true, false);
7fb4898e
KB
2171 return 0;
2172 }
2173
82124d60 2174 spin_lock_irqsave(q->queue_lock, flags);
3f3299d5 2175 if (unlikely(blk_queue_dying(q))) {
8ba61435
TH
2176 spin_unlock_irqrestore(q->queue_lock, flags);
2177 return -ENODEV;
2178 }
82124d60
KU
2179
2180 /*
2181 * Submitting request must be dequeued before calling this function
2182 * because it will be linked to another request_queue
2183 */
2184 BUG_ON(blk_queued_rq(rq));
2185
28a8f0d3 2186 if (rq->cmd_flags & (REQ_PREFLUSH | REQ_FUA))
4853abaa
JM
2187 where = ELEVATOR_INSERT_FLUSH;
2188
2189 add_acct_request(q, rq, where);
e67b77c7
JM
2190 if (where == ELEVATOR_INSERT_FLUSH)
2191 __blk_run_queue(q);
82124d60
KU
2192 spin_unlock_irqrestore(q->queue_lock, flags);
2193
2194 return 0;
2195}
2196EXPORT_SYMBOL_GPL(blk_insert_cloned_request);
2197
80a761fd
TH
2198/**
2199 * blk_rq_err_bytes - determine number of bytes till the next failure boundary
2200 * @rq: request to examine
2201 *
2202 * Description:
2203 * A request could be merge of IOs which require different failure
2204 * handling. This function determines the number of bytes which
2205 * can be failed from the beginning of the request without
2206 * crossing into area which need to be retried further.
2207 *
2208 * Return:
2209 * The number of bytes to fail.
2210 *
2211 * Context:
2212 * queue_lock must be held.
2213 */
2214unsigned int blk_rq_err_bytes(const struct request *rq)
2215{
2216 unsigned int ff = rq->cmd_flags & REQ_FAILFAST_MASK;
2217 unsigned int bytes = 0;
2218 struct bio *bio;
2219
e8064021 2220 if (!(rq->rq_flags & RQF_MIXED_MERGE))
80a761fd
TH
2221 return blk_rq_bytes(rq);
2222
2223 /*
2224 * Currently the only 'mixing' which can happen is between
2225 * different fastfail types. We can safely fail portions
2226 * which have all the failfast bits that the first one has -
2227 * the ones which are at least as eager to fail as the first
2228 * one.
2229 */
2230 for (bio = rq->bio; bio; bio = bio->bi_next) {
1eff9d32 2231 if ((bio->bi_opf & ff) != ff)
80a761fd 2232 break;
4f024f37 2233 bytes += bio->bi_iter.bi_size;
80a761fd
TH
2234 }
2235
2236 /* this could lead to infinite loop */
2237 BUG_ON(blk_rq_bytes(rq) && !bytes);
2238 return bytes;
2239}
2240EXPORT_SYMBOL_GPL(blk_rq_err_bytes);
2241
320ae51f 2242void blk_account_io_completion(struct request *req, unsigned int bytes)
bc58ba94 2243{
c2553b58 2244 if (blk_do_io_stat(req)) {
bc58ba94
JA
2245 const int rw = rq_data_dir(req);
2246 struct hd_struct *part;
2247 int cpu;
2248
2249 cpu = part_stat_lock();
09e099d4 2250 part = req->part;
bc58ba94
JA
2251 part_stat_add(cpu, part, sectors[rw], bytes >> 9);
2252 part_stat_unlock();
2253 }
2254}
2255
320ae51f 2256void blk_account_io_done(struct request *req)
bc58ba94 2257{
bc58ba94 2258 /*
dd4c133f
TH
2259 * Account IO completion. flush_rq isn't accounted as a
2260 * normal IO on queueing nor completion. Accounting the
2261 * containing request is enough.
bc58ba94 2262 */
e8064021 2263 if (blk_do_io_stat(req) && !(req->rq_flags & RQF_FLUSH_SEQ)) {
bc58ba94
JA
2264 unsigned long duration = jiffies - req->start_time;
2265 const int rw = rq_data_dir(req);
2266 struct hd_struct *part;
2267 int cpu;
2268
2269 cpu = part_stat_lock();
09e099d4 2270 part = req->part;
bc58ba94
JA
2271
2272 part_stat_inc(cpu, part, ios[rw]);
2273 part_stat_add(cpu, part, ticks[rw], duration);
2274 part_round_stats(cpu, part);
316d315b 2275 part_dec_in_flight(part, rw);
bc58ba94 2276
6c23a968 2277 hd_struct_put(part);
bc58ba94
JA
2278 part_stat_unlock();
2279 }
2280}
2281
47fafbc7 2282#ifdef CONFIG_PM
c8158819
LM
2283/*
2284 * Don't process normal requests when queue is suspended
2285 * or in the process of suspending/resuming
2286 */
2287static struct request *blk_pm_peek_request(struct request_queue *q,
2288 struct request *rq)
2289{
2290 if (q->dev && (q->rpm_status == RPM_SUSPENDED ||
e8064021 2291 (q->rpm_status != RPM_ACTIVE && !(rq->rq_flags & RQF_PM))))
c8158819
LM
2292 return NULL;
2293 else
2294 return rq;
2295}
2296#else
2297static inline struct request *blk_pm_peek_request(struct request_queue *q,
2298 struct request *rq)
2299{
2300 return rq;
2301}
2302#endif
2303
320ae51f
JA
2304void blk_account_io_start(struct request *rq, bool new_io)
2305{
2306 struct hd_struct *part;
2307 int rw = rq_data_dir(rq);
2308 int cpu;
2309
2310 if (!blk_do_io_stat(rq))
2311 return;
2312
2313 cpu = part_stat_lock();
2314
2315 if (!new_io) {
2316 part = rq->part;
2317 part_stat_inc(cpu, part, merges[rw]);
2318 } else {
2319 part = disk_map_sector_rcu(rq->rq_disk, blk_rq_pos(rq));
2320 if (!hd_struct_try_get(part)) {
2321 /*
2322 * The partition is already being removed,
2323 * the request will be accounted on the disk only
2324 *
2325 * We take a reference on disk->part0 although that
2326 * partition will never be deleted, so we can treat
2327 * it as any other partition.
2328 */
2329 part = &rq->rq_disk->part0;
2330 hd_struct_get(part);
2331 }
2332 part_round_stats(cpu, part);
2333 part_inc_in_flight(part, rw);
2334 rq->part = part;
2335 }
2336
2337 part_stat_unlock();
2338}
2339
3bcddeac 2340/**
9934c8c0
TH
2341 * blk_peek_request - peek at the top of a request queue
2342 * @q: request queue to peek at
2343 *
2344 * Description:
2345 * Return the request at the top of @q. The returned request
2346 * should be started using blk_start_request() before LLD starts
2347 * processing it.
2348 *
2349 * Return:
2350 * Pointer to the request at the top of @q if available. Null
2351 * otherwise.
2352 *
2353 * Context:
2354 * queue_lock must be held.
2355 */
2356struct request *blk_peek_request(struct request_queue *q)
158dbda0
TH
2357{
2358 struct request *rq;
2359 int ret;
2360
2361 while ((rq = __elv_next_request(q)) != NULL) {
c8158819
LM
2362
2363 rq = blk_pm_peek_request(q, rq);
2364 if (!rq)
2365 break;
2366
e8064021 2367 if (!(rq->rq_flags & RQF_STARTED)) {
158dbda0
TH
2368 /*
2369 * This is the first time the device driver
2370 * sees this request (possibly after
2371 * requeueing). Notify IO scheduler.
2372 */
e8064021 2373 if (rq->rq_flags & RQF_SORTED)
158dbda0
TH
2374 elv_activate_rq(q, rq);
2375
2376 /*
2377 * just mark as started even if we don't start
2378 * it, a request that has been delayed should
2379 * not be passed by new incoming requests
2380 */
e8064021 2381 rq->rq_flags |= RQF_STARTED;
158dbda0
TH
2382 trace_block_rq_issue(q, rq);
2383 }
2384
2385 if (!q->boundary_rq || q->boundary_rq == rq) {
2386 q->end_sector = rq_end_sector(rq);
2387 q->boundary_rq = NULL;
2388 }
2389
e8064021 2390 if (rq->rq_flags & RQF_DONTPREP)
158dbda0
TH
2391 break;
2392
2e46e8b2 2393 if (q->dma_drain_size && blk_rq_bytes(rq)) {
158dbda0
TH
2394 /*
2395 * make sure space for the drain appears we
2396 * know we can do this because max_hw_segments
2397 * has been adjusted to be one fewer than the
2398 * device can handle
2399 */
2400 rq->nr_phys_segments++;
2401 }
2402
2403 if (!q->prep_rq_fn)
2404 break;
2405
2406 ret = q->prep_rq_fn(q, rq);
2407 if (ret == BLKPREP_OK) {
2408 break;
2409 } else if (ret == BLKPREP_DEFER) {
2410 /*
2411 * the request may have been (partially) prepped.
2412 * we need to keep this request in the front to
e8064021 2413 * avoid resource deadlock. RQF_STARTED will
158dbda0
TH
2414 * prevent other fs requests from passing this one.
2415 */
2e46e8b2 2416 if (q->dma_drain_size && blk_rq_bytes(rq) &&
e8064021 2417 !(rq->rq_flags & RQF_DONTPREP)) {
158dbda0
TH
2418 /*
2419 * remove the space for the drain we added
2420 * so that we don't add it again
2421 */
2422 --rq->nr_phys_segments;
2423 }
2424
2425 rq = NULL;
2426 break;
0fb5b1fb
MP
2427 } else if (ret == BLKPREP_KILL || ret == BLKPREP_INVALID) {
2428 int err = (ret == BLKPREP_INVALID) ? -EREMOTEIO : -EIO;
2429
e8064021 2430 rq->rq_flags |= RQF_QUIET;
c143dc90
JB
2431 /*
2432 * Mark this request as started so we don't trigger
2433 * any debug logic in the end I/O path.
2434 */
2435 blk_start_request(rq);
0fb5b1fb 2436 __blk_end_request_all(rq, err);
158dbda0
TH
2437 } else {
2438 printk(KERN_ERR "%s: bad return=%d\n", __func__, ret);
2439 break;
2440 }
2441 }
2442
2443 return rq;
2444}
9934c8c0 2445EXPORT_SYMBOL(blk_peek_request);
158dbda0 2446
9934c8c0 2447void blk_dequeue_request(struct request *rq)
158dbda0 2448{
9934c8c0
TH
2449 struct request_queue *q = rq->q;
2450
158dbda0
TH
2451 BUG_ON(list_empty(&rq->queuelist));
2452 BUG_ON(ELV_ON_HASH(rq));
2453
2454 list_del_init(&rq->queuelist);
2455
2456 /*
2457 * the time frame between a request being removed from the lists
2458 * and to it is freed is accounted as io that is in progress at
2459 * the driver side.
2460 */
9195291e 2461 if (blk_account_rq(rq)) {
0a7ae2ff 2462 q->in_flight[rq_is_sync(rq)]++;
9195291e
DS
2463 set_io_start_time_ns(rq);
2464 }
158dbda0
TH
2465}
2466
9934c8c0
TH
2467/**
2468 * blk_start_request - start request processing on the driver
2469 * @req: request to dequeue
2470 *
2471 * Description:
2472 * Dequeue @req and start timeout timer on it. This hands off the
2473 * request to the driver.
2474 *
2475 * Block internal functions which don't want to start timer should
2476 * call blk_dequeue_request().
2477 *
2478 * Context:
2479 * queue_lock must be held.
2480 */
2481void blk_start_request(struct request *req)
2482{
2483 blk_dequeue_request(req);
2484
2485 /*
5f49f631
TH
2486 * We are now handing the request to the hardware, initialize
2487 * resid_len to full count and add the timeout handler.
9934c8c0 2488 */
5f49f631 2489 req->resid_len = blk_rq_bytes(req);
dbb66c4b
FT
2490 if (unlikely(blk_bidi_rq(req)))
2491 req->next_rq->resid_len = blk_rq_bytes(req->next_rq);
2492
4912aa6c 2493 BUG_ON(test_bit(REQ_ATOM_COMPLETE, &req->atomic_flags));
9934c8c0
TH
2494 blk_add_timer(req);
2495}
2496EXPORT_SYMBOL(blk_start_request);
2497
2498/**
2499 * blk_fetch_request - fetch a request from a request queue
2500 * @q: request queue to fetch a request from
2501 *
2502 * Description:
2503 * Return the request at the top of @q. The request is started on
2504 * return and LLD can start processing it immediately.
2505 *
2506 * Return:
2507 * Pointer to the request at the top of @q if available. Null
2508 * otherwise.
2509 *
2510 * Context:
2511 * queue_lock must be held.
2512 */
2513struct request *blk_fetch_request(struct request_queue *q)
2514{
2515 struct request *rq;
2516
2517 rq = blk_peek_request(q);
2518 if (rq)
2519 blk_start_request(rq);
2520 return rq;
2521}
2522EXPORT_SYMBOL(blk_fetch_request);
2523
3bcddeac 2524/**
2e60e022 2525 * blk_update_request - Special helper function for request stacking drivers
8ebf9756 2526 * @req: the request being processed
710027a4 2527 * @error: %0 for success, < %0 for error
8ebf9756 2528 * @nr_bytes: number of bytes to complete @req
3bcddeac
KU
2529 *
2530 * Description:
8ebf9756
RD
2531 * Ends I/O on a number of bytes attached to @req, but doesn't complete
2532 * the request structure even if @req doesn't have leftover.
2533 * If @req has leftover, sets it up for the next range of segments.
2e60e022
TH
2534 *
2535 * This special helper function is only for request stacking drivers
2536 * (e.g. request-based dm) so that they can handle partial completion.
2537 * Actual device drivers should use blk_end_request instead.
2538 *
2539 * Passing the result of blk_rq_bytes() as @nr_bytes guarantees
2540 * %false return from this function.
3bcddeac
KU
2541 *
2542 * Return:
2e60e022
TH
2543 * %false - this request doesn't have any more data
2544 * %true - this request has more data
3bcddeac 2545 **/
2e60e022 2546bool blk_update_request(struct request *req, int error, unsigned int nr_bytes)
1da177e4 2547{
f79ea416 2548 int total_bytes;
1da177e4 2549
4a0efdc9
HR
2550 trace_block_rq_complete(req->q, req, nr_bytes);
2551
2e60e022
TH
2552 if (!req->bio)
2553 return false;
2554
1da177e4 2555 /*
6f41469c
TH
2556 * For fs requests, rq is just carrier of independent bio's
2557 * and each partial completion should be handled separately.
2558 * Reset per-request error on each partial completion.
2559 *
2560 * TODO: tj: This is too subtle. It would be better to let
2561 * low level drivers do what they see fit.
1da177e4 2562 */
33659ebb 2563 if (req->cmd_type == REQ_TYPE_FS)
1da177e4
LT
2564 req->errors = 0;
2565
33659ebb 2566 if (error && req->cmd_type == REQ_TYPE_FS &&
e8064021 2567 !(req->rq_flags & RQF_QUIET)) {
79775567
HR
2568 char *error_type;
2569
2570 switch (error) {
2571 case -ENOLINK:
2572 error_type = "recoverable transport";
2573 break;
2574 case -EREMOTEIO:
2575 error_type = "critical target";
2576 break;
2577 case -EBADE:
2578 error_type = "critical nexus";
2579 break;
d1ffc1f8
HR
2580 case -ETIMEDOUT:
2581 error_type = "timeout";
2582 break;
a9d6ceb8
HR
2583 case -ENOSPC:
2584 error_type = "critical space allocation";
2585 break;
7e782af5
HR
2586 case -ENODATA:
2587 error_type = "critical medium";
2588 break;
79775567
HR
2589 case -EIO:
2590 default:
2591 error_type = "I/O";
2592 break;
2593 }
ef3ecb66
RE
2594 printk_ratelimited(KERN_ERR "%s: %s error, dev %s, sector %llu\n",
2595 __func__, error_type, req->rq_disk ?
37d7b34f
YZ
2596 req->rq_disk->disk_name : "?",
2597 (unsigned long long)blk_rq_pos(req));
2598
1da177e4
LT
2599 }
2600
bc58ba94 2601 blk_account_io_completion(req, nr_bytes);
d72d904a 2602
f79ea416
KO
2603 total_bytes = 0;
2604 while (req->bio) {
2605 struct bio *bio = req->bio;
4f024f37 2606 unsigned bio_bytes = min(bio->bi_iter.bi_size, nr_bytes);
1da177e4 2607
4f024f37 2608 if (bio_bytes == bio->bi_iter.bi_size)
1da177e4 2609 req->bio = bio->bi_next;
1da177e4 2610
f79ea416 2611 req_bio_endio(req, bio, bio_bytes, error);
1da177e4 2612
f79ea416
KO
2613 total_bytes += bio_bytes;
2614 nr_bytes -= bio_bytes;
1da177e4 2615
f79ea416
KO
2616 if (!nr_bytes)
2617 break;
1da177e4
LT
2618 }
2619
2620 /*
2621 * completely done
2622 */
2e60e022
TH
2623 if (!req->bio) {
2624 /*
2625 * Reset counters so that the request stacking driver
2626 * can find how many bytes remain in the request
2627 * later.
2628 */
a2dec7b3 2629 req->__data_len = 0;
2e60e022
TH
2630 return false;
2631 }
1da177e4 2632
a2dec7b3 2633 req->__data_len -= total_bytes;
2e46e8b2
TH
2634
2635 /* update sector only for requests with clear definition of sector */
e2a60da7 2636 if (req->cmd_type == REQ_TYPE_FS)
a2dec7b3 2637 req->__sector += total_bytes >> 9;
2e46e8b2 2638
80a761fd 2639 /* mixed attributes always follow the first bio */
e8064021 2640 if (req->rq_flags & RQF_MIXED_MERGE) {
80a761fd 2641 req->cmd_flags &= ~REQ_FAILFAST_MASK;
1eff9d32 2642 req->cmd_flags |= req->bio->bi_opf & REQ_FAILFAST_MASK;
80a761fd
TH
2643 }
2644
2e46e8b2
TH
2645 /*
2646 * If total number of sectors is less than the first segment
2647 * size, something has gone terribly wrong.
2648 */
2649 if (blk_rq_bytes(req) < blk_rq_cur_bytes(req)) {
8182924b 2650 blk_dump_rq_flags(req, "request botched");
a2dec7b3 2651 req->__data_len = blk_rq_cur_bytes(req);
2e46e8b2
TH
2652 }
2653
2654 /* recalculate the number of segments */
1da177e4 2655 blk_recalc_rq_segments(req);
2e46e8b2 2656
2e60e022 2657 return true;
1da177e4 2658}
2e60e022 2659EXPORT_SYMBOL_GPL(blk_update_request);
1da177e4 2660
2e60e022
TH
2661static bool blk_update_bidi_request(struct request *rq, int error,
2662 unsigned int nr_bytes,
2663 unsigned int bidi_bytes)
5efccd17 2664{
2e60e022
TH
2665 if (blk_update_request(rq, error, nr_bytes))
2666 return true;
5efccd17 2667
2e60e022
TH
2668 /* Bidi request must be completed as a whole */
2669 if (unlikely(blk_bidi_rq(rq)) &&
2670 blk_update_request(rq->next_rq, error, bidi_bytes))
2671 return true;
5efccd17 2672
e2e1a148
JA
2673 if (blk_queue_add_random(rq->q))
2674 add_disk_randomness(rq->rq_disk);
2e60e022
TH
2675
2676 return false;
1da177e4
LT
2677}
2678
28018c24
JB
2679/**
2680 * blk_unprep_request - unprepare a request
2681 * @req: the request
2682 *
2683 * This function makes a request ready for complete resubmission (or
2684 * completion). It happens only after all error handling is complete,
2685 * so represents the appropriate moment to deallocate any resources
2686 * that were allocated to the request in the prep_rq_fn. The queue
2687 * lock is held when calling this.
2688 */
2689void blk_unprep_request(struct request *req)
2690{
2691 struct request_queue *q = req->q;
2692
e8064021 2693 req->rq_flags &= ~RQF_DONTPREP;
28018c24
JB
2694 if (q->unprep_rq_fn)
2695 q->unprep_rq_fn(q, req);
2696}
2697EXPORT_SYMBOL_GPL(blk_unprep_request);
2698
1da177e4
LT
2699/*
2700 * queue lock must be held
2701 */
12120077 2702void blk_finish_request(struct request *req, int error)
1da177e4 2703{
e8064021 2704 if (req->rq_flags & RQF_QUEUED)
b8286239
KU
2705 blk_queue_end_tag(req->q, req);
2706
ba396a6c 2707 BUG_ON(blk_queued_rq(req));
1da177e4 2708
33659ebb 2709 if (unlikely(laptop_mode) && req->cmd_type == REQ_TYPE_FS)
31373d09 2710 laptop_io_completion(&req->q->backing_dev_info);
1da177e4 2711
e78042e5
MA
2712 blk_delete_timer(req);
2713
e8064021 2714 if (req->rq_flags & RQF_DONTPREP)
28018c24
JB
2715 blk_unprep_request(req);
2716
bc58ba94 2717 blk_account_io_done(req);
b8286239 2718
1da177e4 2719 if (req->end_io)
8ffdc655 2720 req->end_io(req, error);
b8286239
KU
2721 else {
2722 if (blk_bidi_rq(req))
2723 __blk_put_request(req->next_rq->q, req->next_rq);
2724
1da177e4 2725 __blk_put_request(req->q, req);
b8286239 2726 }
1da177e4 2727}
12120077 2728EXPORT_SYMBOL(blk_finish_request);
1da177e4 2729
3b11313a 2730/**
2e60e022
TH
2731 * blk_end_bidi_request - Complete a bidi request
2732 * @rq: the request to complete
2733 * @error: %0 for success, < %0 for error
2734 * @nr_bytes: number of bytes to complete @rq
2735 * @bidi_bytes: number of bytes to complete @rq->next_rq
a0cd1285
JA
2736 *
2737 * Description:
e3a04fe3 2738 * Ends I/O on a number of bytes attached to @rq and @rq->next_rq.
2e60e022
TH
2739 * Drivers that supports bidi can safely call this member for any
2740 * type of request, bidi or uni. In the later case @bidi_bytes is
2741 * just ignored.
336cdb40
KU
2742 *
2743 * Return:
2e60e022
TH
2744 * %false - we are done with this request
2745 * %true - still buffers pending for this request
a0cd1285 2746 **/
b1f74493 2747static bool blk_end_bidi_request(struct request *rq, int error,
32fab448
KU
2748 unsigned int nr_bytes, unsigned int bidi_bytes)
2749{
336cdb40 2750 struct request_queue *q = rq->q;
2e60e022 2751 unsigned long flags;
32fab448 2752
2e60e022
TH
2753 if (blk_update_bidi_request(rq, error, nr_bytes, bidi_bytes))
2754 return true;
32fab448 2755
336cdb40 2756 spin_lock_irqsave(q->queue_lock, flags);
2e60e022 2757 blk_finish_request(rq, error);
336cdb40
KU
2758 spin_unlock_irqrestore(q->queue_lock, flags);
2759
2e60e022 2760 return false;
32fab448
KU
2761}
2762
336cdb40 2763/**
2e60e022
TH
2764 * __blk_end_bidi_request - Complete a bidi request with queue lock held
2765 * @rq: the request to complete
710027a4 2766 * @error: %0 for success, < %0 for error
e3a04fe3
KU
2767 * @nr_bytes: number of bytes to complete @rq
2768 * @bidi_bytes: number of bytes to complete @rq->next_rq
336cdb40
KU
2769 *
2770 * Description:
2e60e022
TH
2771 * Identical to blk_end_bidi_request() except that queue lock is
2772 * assumed to be locked on entry and remains so on return.
336cdb40
KU
2773 *
2774 * Return:
2e60e022
TH
2775 * %false - we are done with this request
2776 * %true - still buffers pending for this request
336cdb40 2777 **/
4853abaa 2778bool __blk_end_bidi_request(struct request *rq, int error,
b1f74493 2779 unsigned int nr_bytes, unsigned int bidi_bytes)
336cdb40 2780{
2e60e022
TH
2781 if (blk_update_bidi_request(rq, error, nr_bytes, bidi_bytes))
2782 return true;
336cdb40 2783
2e60e022 2784 blk_finish_request(rq, error);
336cdb40 2785
2e60e022 2786 return false;
336cdb40 2787}
e19a3ab0
KU
2788
2789/**
2790 * blk_end_request - Helper function for drivers to complete the request.
2791 * @rq: the request being processed
710027a4 2792 * @error: %0 for success, < %0 for error
e19a3ab0
KU
2793 * @nr_bytes: number of bytes to complete
2794 *
2795 * Description:
2796 * Ends I/O on a number of bytes attached to @rq.
2797 * If @rq has leftover, sets it up for the next range of segments.
2798 *
2799 * Return:
b1f74493
FT
2800 * %false - we are done with this request
2801 * %true - still buffers pending for this request
e19a3ab0 2802 **/
b1f74493 2803bool blk_end_request(struct request *rq, int error, unsigned int nr_bytes)
e19a3ab0 2804{
b1f74493 2805 return blk_end_bidi_request(rq, error, nr_bytes, 0);
e19a3ab0 2806}
56ad1740 2807EXPORT_SYMBOL(blk_end_request);
336cdb40
KU
2808
2809/**
b1f74493
FT
2810 * blk_end_request_all - Helper function for drives to finish the request.
2811 * @rq: the request to finish
8ebf9756 2812 * @error: %0 for success, < %0 for error
336cdb40
KU
2813 *
2814 * Description:
b1f74493
FT
2815 * Completely finish @rq.
2816 */
2817void blk_end_request_all(struct request *rq, int error)
336cdb40 2818{
b1f74493
FT
2819 bool pending;
2820 unsigned int bidi_bytes = 0;
336cdb40 2821
b1f74493
FT
2822 if (unlikely(blk_bidi_rq(rq)))
2823 bidi_bytes = blk_rq_bytes(rq->next_rq);
336cdb40 2824
b1f74493
FT
2825 pending = blk_end_bidi_request(rq, error, blk_rq_bytes(rq), bidi_bytes);
2826 BUG_ON(pending);
2827}
56ad1740 2828EXPORT_SYMBOL(blk_end_request_all);
336cdb40 2829
b1f74493
FT
2830/**
2831 * blk_end_request_cur - Helper function to finish the current request chunk.
2832 * @rq: the request to finish the current chunk for
8ebf9756 2833 * @error: %0 for success, < %0 for error
b1f74493
FT
2834 *
2835 * Description:
2836 * Complete the current consecutively mapped chunk from @rq.
2837 *
2838 * Return:
2839 * %false - we are done with this request
2840 * %true - still buffers pending for this request
2841 */
2842bool blk_end_request_cur(struct request *rq, int error)
2843{
2844 return blk_end_request(rq, error, blk_rq_cur_bytes(rq));
336cdb40 2845}
56ad1740 2846EXPORT_SYMBOL(blk_end_request_cur);
336cdb40 2847
80a761fd
TH
2848/**
2849 * blk_end_request_err - Finish a request till the next failure boundary.
2850 * @rq: the request to finish till the next failure boundary for
2851 * @error: must be negative errno
2852 *
2853 * Description:
2854 * Complete @rq till the next failure boundary.
2855 *
2856 * Return:
2857 * %false - we are done with this request
2858 * %true - still buffers pending for this request
2859 */
2860bool blk_end_request_err(struct request *rq, int error)
2861{
2862 WARN_ON(error >= 0);
2863 return blk_end_request(rq, error, blk_rq_err_bytes(rq));
2864}
2865EXPORT_SYMBOL_GPL(blk_end_request_err);
2866
e3a04fe3 2867/**
b1f74493
FT
2868 * __blk_end_request - Helper function for drivers to complete the request.
2869 * @rq: the request being processed
2870 * @error: %0 for success, < %0 for error
2871 * @nr_bytes: number of bytes to complete
e3a04fe3
KU
2872 *
2873 * Description:
b1f74493 2874 * Must be called with queue lock held unlike blk_end_request().
e3a04fe3
KU
2875 *
2876 * Return:
b1f74493
FT
2877 * %false - we are done with this request
2878 * %true - still buffers pending for this request
e3a04fe3 2879 **/
b1f74493 2880bool __blk_end_request(struct request *rq, int error, unsigned int nr_bytes)
e3a04fe3 2881{
b1f74493 2882 return __blk_end_bidi_request(rq, error, nr_bytes, 0);
e3a04fe3 2883}
56ad1740 2884EXPORT_SYMBOL(__blk_end_request);
e3a04fe3 2885
32fab448 2886/**
b1f74493
FT
2887 * __blk_end_request_all - Helper function for drives to finish the request.
2888 * @rq: the request to finish
8ebf9756 2889 * @error: %0 for success, < %0 for error
32fab448
KU
2890 *
2891 * Description:
b1f74493 2892 * Completely finish @rq. Must be called with queue lock held.
32fab448 2893 */
b1f74493 2894void __blk_end_request_all(struct request *rq, int error)
32fab448 2895{
b1f74493
FT
2896 bool pending;
2897 unsigned int bidi_bytes = 0;
2898
2899 if (unlikely(blk_bidi_rq(rq)))
2900 bidi_bytes = blk_rq_bytes(rq->next_rq);
2901
2902 pending = __blk_end_bidi_request(rq, error, blk_rq_bytes(rq), bidi_bytes);
2903 BUG_ON(pending);
32fab448 2904}
56ad1740 2905EXPORT_SYMBOL(__blk_end_request_all);
32fab448 2906
e19a3ab0 2907/**
b1f74493
FT
2908 * __blk_end_request_cur - Helper function to finish the current request chunk.
2909 * @rq: the request to finish the current chunk for
8ebf9756 2910 * @error: %0 for success, < %0 for error
e19a3ab0
KU
2911 *
2912 * Description:
b1f74493
FT
2913 * Complete the current consecutively mapped chunk from @rq. Must
2914 * be called with queue lock held.
e19a3ab0
KU
2915 *
2916 * Return:
b1f74493
FT
2917 * %false - we are done with this request
2918 * %true - still buffers pending for this request
2919 */
2920bool __blk_end_request_cur(struct request *rq, int error)
e19a3ab0 2921{
b1f74493 2922 return __blk_end_request(rq, error, blk_rq_cur_bytes(rq));
e19a3ab0 2923}
56ad1740 2924EXPORT_SYMBOL(__blk_end_request_cur);
e19a3ab0 2925
80a761fd
TH
2926/**
2927 * __blk_end_request_err - Finish a request till the next failure boundary.
2928 * @rq: the request to finish till the next failure boundary for
2929 * @error: must be negative errno
2930 *
2931 * Description:
2932 * Complete @rq till the next failure boundary. Must be called
2933 * with queue lock held.
2934 *
2935 * Return:
2936 * %false - we are done with this request
2937 * %true - still buffers pending for this request
2938 */
2939bool __blk_end_request_err(struct request *rq, int error)
2940{
2941 WARN_ON(error >= 0);
2942 return __blk_end_request(rq, error, blk_rq_err_bytes(rq));
2943}
2944EXPORT_SYMBOL_GPL(__blk_end_request_err);
2945
86db1e29
JA
2946void blk_rq_bio_prep(struct request_queue *q, struct request *rq,
2947 struct bio *bio)
1da177e4 2948{
4993b77d 2949 req_set_op(rq, bio_op(bio));
1da177e4 2950
b4f42e28 2951 if (bio_has_data(bio))
fb2dce86 2952 rq->nr_phys_segments = bio_phys_segments(q, bio);
b4f42e28 2953
4f024f37 2954 rq->__data_len = bio->bi_iter.bi_size;
1da177e4 2955 rq->bio = rq->biotail = bio;
1da177e4 2956
66846572
N
2957 if (bio->bi_bdev)
2958 rq->rq_disk = bio->bi_bdev->bd_disk;
2959}
1da177e4 2960
2d4dc890
IL
2961#if ARCH_IMPLEMENTS_FLUSH_DCACHE_PAGE
2962/**
2963 * rq_flush_dcache_pages - Helper function to flush all pages in a request
2964 * @rq: the request to be flushed
2965 *
2966 * Description:
2967 * Flush all pages in @rq.
2968 */
2969void rq_flush_dcache_pages(struct request *rq)
2970{
2971 struct req_iterator iter;
7988613b 2972 struct bio_vec bvec;
2d4dc890
IL
2973
2974 rq_for_each_segment(bvec, rq, iter)
7988613b 2975 flush_dcache_page(bvec.bv_page);
2d4dc890
IL
2976}
2977EXPORT_SYMBOL_GPL(rq_flush_dcache_pages);
2978#endif
2979
ef9e3fac
KU
2980/**
2981 * blk_lld_busy - Check if underlying low-level drivers of a device are busy
2982 * @q : the queue of the device being checked
2983 *
2984 * Description:
2985 * Check if underlying low-level drivers of a device are busy.
2986 * If the drivers want to export their busy state, they must set own
2987 * exporting function using blk_queue_lld_busy() first.
2988 *
2989 * Basically, this function is used only by request stacking drivers
2990 * to stop dispatching requests to underlying devices when underlying
2991 * devices are busy. This behavior helps more I/O merging on the queue
2992 * of the request stacking driver and prevents I/O throughput regression
2993 * on burst I/O load.
2994 *
2995 * Return:
2996 * 0 - Not busy (The request stacking driver should dispatch request)
2997 * 1 - Busy (The request stacking driver should stop dispatching request)
2998 */
2999int blk_lld_busy(struct request_queue *q)
3000{
3001 if (q->lld_busy_fn)
3002 return q->lld_busy_fn(q);
3003
3004 return 0;
3005}
3006EXPORT_SYMBOL_GPL(blk_lld_busy);
3007
78d8e58a
MS
3008/**
3009 * blk_rq_unprep_clone - Helper function to free all bios in a cloned request
3010 * @rq: the clone request to be cleaned up
3011 *
3012 * Description:
3013 * Free all bios in @rq for a cloned request.
3014 */
3015void blk_rq_unprep_clone(struct request *rq)
3016{
3017 struct bio *bio;
3018
3019 while ((bio = rq->bio) != NULL) {
3020 rq->bio = bio->bi_next;
3021
3022 bio_put(bio);
3023 }
3024}
3025EXPORT_SYMBOL_GPL(blk_rq_unprep_clone);
3026
3027/*
3028 * Copy attributes of the original request to the clone request.
3029 * The actual data parts (e.g. ->cmd, ->sense) are not copied.
3030 */
3031static void __blk_rq_prep_clone(struct request *dst, struct request *src)
b0fd271d
KU
3032{
3033 dst->cpu = src->cpu;
4993b77d
MC
3034 req_set_op_attrs(dst, req_op(src),
3035 (src->cmd_flags & REQ_CLONE_MASK) | REQ_NOMERGE);
b0fd271d
KU
3036 dst->cmd_type = src->cmd_type;
3037 dst->__sector = blk_rq_pos(src);
3038 dst->__data_len = blk_rq_bytes(src);
3039 dst->nr_phys_segments = src->nr_phys_segments;
3040 dst->ioprio = src->ioprio;
3041 dst->extra_len = src->extra_len;
78d8e58a
MS
3042}
3043
3044/**
3045 * blk_rq_prep_clone - Helper function to setup clone request
3046 * @rq: the request to be setup
3047 * @rq_src: original request to be cloned
3048 * @bs: bio_set that bios for clone are allocated from
3049 * @gfp_mask: memory allocation mask for bio
3050 * @bio_ctr: setup function to be called for each clone bio.
3051 * Returns %0 for success, non %0 for failure.
3052 * @data: private data to be passed to @bio_ctr
3053 *
3054 * Description:
3055 * Clones bios in @rq_src to @rq, and copies attributes of @rq_src to @rq.
3056 * The actual data parts of @rq_src (e.g. ->cmd, ->sense)
3057 * are not copied, and copying such parts is the caller's responsibility.
3058 * Also, pages which the original bios are pointing to are not copied
3059 * and the cloned bios just point same pages.
3060 * So cloned bios must be completed before original bios, which means
3061 * the caller must complete @rq before @rq_src.
3062 */
3063int blk_rq_prep_clone(struct request *rq, struct request *rq_src,
3064 struct bio_set *bs, gfp_t gfp_mask,
3065 int (*bio_ctr)(struct bio *, struct bio *, void *),
3066 void *data)
3067{
3068 struct bio *bio, *bio_src;
3069
3070 if (!bs)
3071 bs = fs_bio_set;
3072
3073 __rq_for_each_bio(bio_src, rq_src) {
3074 bio = bio_clone_fast(bio_src, gfp_mask, bs);
3075 if (!bio)
3076 goto free_and_out;
3077
3078 if (bio_ctr && bio_ctr(bio, bio_src, data))
3079 goto free_and_out;
3080
3081 if (rq->bio) {
3082 rq->biotail->bi_next = bio;
3083 rq->biotail = bio;
3084 } else
3085 rq->bio = rq->biotail = bio;
3086 }
3087
3088 __blk_rq_prep_clone(rq, rq_src);
3089
3090 return 0;
3091
3092free_and_out:
3093 if (bio)
3094 bio_put(bio);
3095 blk_rq_unprep_clone(rq);
3096
3097 return -ENOMEM;
b0fd271d
KU
3098}
3099EXPORT_SYMBOL_GPL(blk_rq_prep_clone);
3100
59c3d45e 3101int kblockd_schedule_work(struct work_struct *work)
1da177e4
LT
3102{
3103 return queue_work(kblockd_workqueue, work);
3104}
1da177e4
LT
3105EXPORT_SYMBOL(kblockd_schedule_work);
3106
ee63cfa7
JA
3107int kblockd_schedule_work_on(int cpu, struct work_struct *work)
3108{
3109 return queue_work_on(cpu, kblockd_workqueue, work);
3110}
3111EXPORT_SYMBOL(kblockd_schedule_work_on);
3112
59c3d45e
JA
3113int kblockd_schedule_delayed_work(struct delayed_work *dwork,
3114 unsigned long delay)
e43473b7
VG
3115{
3116 return queue_delayed_work(kblockd_workqueue, dwork, delay);
3117}
3118EXPORT_SYMBOL(kblockd_schedule_delayed_work);
3119
8ab14595
JA
3120int kblockd_schedule_delayed_work_on(int cpu, struct delayed_work *dwork,
3121 unsigned long delay)
3122{
3123 return queue_delayed_work_on(cpu, kblockd_workqueue, dwork, delay);
3124}
3125EXPORT_SYMBOL(kblockd_schedule_delayed_work_on);
3126
75df7136
SJ
3127/**
3128 * blk_start_plug - initialize blk_plug and track it inside the task_struct
3129 * @plug: The &struct blk_plug that needs to be initialized
3130 *
3131 * Description:
3132 * Tracking blk_plug inside the task_struct will help with auto-flushing the
3133 * pending I/O should the task end up blocking between blk_start_plug() and
3134 * blk_finish_plug(). This is important from a performance perspective, but
3135 * also ensures that we don't deadlock. For instance, if the task is blocking
3136 * for a memory allocation, memory reclaim could end up wanting to free a
3137 * page belonging to that request that is currently residing in our private
3138 * plug. By flushing the pending I/O when the process goes to sleep, we avoid
3139 * this kind of deadlock.
3140 */
73c10101
JA
3141void blk_start_plug(struct blk_plug *plug)
3142{
3143 struct task_struct *tsk = current;
3144
dd6cf3e1
SL
3145 /*
3146 * If this is a nested plug, don't actually assign it.
3147 */
3148 if (tsk->plug)
3149 return;
3150
73c10101 3151 INIT_LIST_HEAD(&plug->list);
320ae51f 3152 INIT_LIST_HEAD(&plug->mq_list);
048c9374 3153 INIT_LIST_HEAD(&plug->cb_list);
73c10101 3154 /*
dd6cf3e1
SL
3155 * Store ordering should not be needed here, since a potential
3156 * preempt will imply a full memory barrier
73c10101 3157 */
dd6cf3e1 3158 tsk->plug = plug;
73c10101
JA
3159}
3160EXPORT_SYMBOL(blk_start_plug);
3161
3162static int plug_rq_cmp(void *priv, struct list_head *a, struct list_head *b)
3163{
3164 struct request *rqa = container_of(a, struct request, queuelist);
3165 struct request *rqb = container_of(b, struct request, queuelist);
3166
975927b9
JM
3167 return !(rqa->q < rqb->q ||
3168 (rqa->q == rqb->q && blk_rq_pos(rqa) < blk_rq_pos(rqb)));
73c10101
JA
3169}
3170
49cac01e
JA
3171/*
3172 * If 'from_schedule' is true, then postpone the dispatch of requests
3173 * until a safe kblockd context. We due this to avoid accidental big
3174 * additional stack usage in driver dispatch, in places where the originally
3175 * plugger did not intend it.
3176 */
f6603783 3177static void queue_unplugged(struct request_queue *q, unsigned int depth,
49cac01e 3178 bool from_schedule)
99e22598 3179 __releases(q->queue_lock)
94b5eb28 3180{
49cac01e 3181 trace_block_unplug(q, depth, !from_schedule);
99e22598 3182
70460571 3183 if (from_schedule)
24ecfbe2 3184 blk_run_queue_async(q);
70460571 3185 else
24ecfbe2 3186 __blk_run_queue(q);
70460571 3187 spin_unlock(q->queue_lock);
94b5eb28
JA
3188}
3189
74018dc3 3190static void flush_plug_callbacks(struct blk_plug *plug, bool from_schedule)
048c9374
N
3191{
3192 LIST_HEAD(callbacks);
3193
2a7d5559
SL
3194 while (!list_empty(&plug->cb_list)) {
3195 list_splice_init(&plug->cb_list, &callbacks);
048c9374 3196
2a7d5559
SL
3197 while (!list_empty(&callbacks)) {
3198 struct blk_plug_cb *cb = list_first_entry(&callbacks,
048c9374
N
3199 struct blk_plug_cb,
3200 list);
2a7d5559 3201 list_del(&cb->list);
74018dc3 3202 cb->callback(cb, from_schedule);
2a7d5559 3203 }
048c9374
N
3204 }
3205}
3206
9cbb1750
N
3207struct blk_plug_cb *blk_check_plugged(blk_plug_cb_fn unplug, void *data,
3208 int size)
3209{
3210 struct blk_plug *plug = current->plug;
3211 struct blk_plug_cb *cb;
3212
3213 if (!plug)
3214 return NULL;
3215
3216 list_for_each_entry(cb, &plug->cb_list, list)
3217 if (cb->callback == unplug && cb->data == data)
3218 return cb;
3219
3220 /* Not currently on the callback list */
3221 BUG_ON(size < sizeof(*cb));
3222 cb = kzalloc(size, GFP_ATOMIC);
3223 if (cb) {
3224 cb->data = data;
3225 cb->callback = unplug;
3226 list_add(&cb->list, &plug->cb_list);
3227 }
3228 return cb;
3229}
3230EXPORT_SYMBOL(blk_check_plugged);
3231
49cac01e 3232void blk_flush_plug_list(struct blk_plug *plug, bool from_schedule)
73c10101
JA
3233{
3234 struct request_queue *q;
3235 unsigned long flags;
3236 struct request *rq;
109b8129 3237 LIST_HEAD(list);
94b5eb28 3238 unsigned int depth;
73c10101 3239
74018dc3 3240 flush_plug_callbacks(plug, from_schedule);
320ae51f
JA
3241
3242 if (!list_empty(&plug->mq_list))
3243 blk_mq_flush_plug_list(plug, from_schedule);
3244
73c10101
JA
3245 if (list_empty(&plug->list))
3246 return;
3247
109b8129
N
3248 list_splice_init(&plug->list, &list);
3249
422765c2 3250 list_sort(NULL, &list, plug_rq_cmp);
73c10101
JA
3251
3252 q = NULL;
94b5eb28 3253 depth = 0;
18811272
JA
3254
3255 /*
3256 * Save and disable interrupts here, to avoid doing it for every
3257 * queue lock we have to take.
3258 */
73c10101 3259 local_irq_save(flags);
109b8129
N
3260 while (!list_empty(&list)) {
3261 rq = list_entry_rq(list.next);
73c10101 3262 list_del_init(&rq->queuelist);
73c10101
JA
3263 BUG_ON(!rq->q);
3264 if (rq->q != q) {
99e22598
JA
3265 /*
3266 * This drops the queue lock
3267 */
3268 if (q)
49cac01e 3269 queue_unplugged(q, depth, from_schedule);
73c10101 3270 q = rq->q;
94b5eb28 3271 depth = 0;
73c10101
JA
3272 spin_lock(q->queue_lock);
3273 }
8ba61435
TH
3274
3275 /*
3276 * Short-circuit if @q is dead
3277 */
3f3299d5 3278 if (unlikely(blk_queue_dying(q))) {
8ba61435
TH
3279 __blk_end_request_all(rq, -ENODEV);
3280 continue;
3281 }
3282
73c10101
JA
3283 /*
3284 * rq is already accounted, so use raw insert
3285 */
28a8f0d3 3286 if (rq->cmd_flags & (REQ_PREFLUSH | REQ_FUA))
401a18e9
JA
3287 __elv_add_request(q, rq, ELEVATOR_INSERT_FLUSH);
3288 else
3289 __elv_add_request(q, rq, ELEVATOR_INSERT_SORT_MERGE);
94b5eb28
JA
3290
3291 depth++;
73c10101
JA
3292 }
3293
99e22598
JA
3294 /*
3295 * This drops the queue lock
3296 */
3297 if (q)
49cac01e 3298 queue_unplugged(q, depth, from_schedule);
73c10101 3299
73c10101
JA
3300 local_irq_restore(flags);
3301}
73c10101
JA
3302
3303void blk_finish_plug(struct blk_plug *plug)
3304{
dd6cf3e1
SL
3305 if (plug != current->plug)
3306 return;
f6603783 3307 blk_flush_plug_list(plug, false);
73c10101 3308
dd6cf3e1 3309 current->plug = NULL;
73c10101 3310}
88b996cd 3311EXPORT_SYMBOL(blk_finish_plug);
73c10101 3312
05229bee
JA
3313bool blk_poll(struct request_queue *q, blk_qc_t cookie)
3314{
3315 struct blk_plug *plug;
3316 long state;
6e219353
SB
3317 unsigned int queue_num;
3318 struct blk_mq_hw_ctx *hctx;
05229bee
JA
3319
3320 if (!q->mq_ops || !q->mq_ops->poll || !blk_qc_t_valid(cookie) ||
3321 !test_bit(QUEUE_FLAG_POLL, &q->queue_flags))
3322 return false;
3323
6e219353
SB
3324 queue_num = blk_qc_t_to_queue_num(cookie);
3325 hctx = q->queue_hw_ctx[queue_num];
3326 hctx->poll_considered++;
3327
05229bee
JA
3328 plug = current->plug;
3329 if (plug)
3330 blk_flush_plug_list(plug, false);
3331
3332 state = current->state;
3333 while (!need_resched()) {
05229bee
JA
3334 int ret;
3335
3336 hctx->poll_invoked++;
3337
3338 ret = q->mq_ops->poll(hctx, blk_qc_t_to_tag(cookie));
3339 if (ret > 0) {
3340 hctx->poll_success++;
3341 set_current_state(TASK_RUNNING);
3342 return true;
3343 }
3344
3345 if (signal_pending_state(state, current))
3346 set_current_state(TASK_RUNNING);
3347
3348 if (current->state == TASK_RUNNING)
3349 return true;
3350 if (ret < 0)
3351 break;
3352 cpu_relax();
3353 }
3354
3355 return false;
3356}
9645c1a2 3357EXPORT_SYMBOL_GPL(blk_poll);
05229bee 3358
47fafbc7 3359#ifdef CONFIG_PM
6c954667
LM
3360/**
3361 * blk_pm_runtime_init - Block layer runtime PM initialization routine
3362 * @q: the queue of the device
3363 * @dev: the device the queue belongs to
3364 *
3365 * Description:
3366 * Initialize runtime-PM-related fields for @q and start auto suspend for
3367 * @dev. Drivers that want to take advantage of request-based runtime PM
3368 * should call this function after @dev has been initialized, and its
3369 * request queue @q has been allocated, and runtime PM for it can not happen
3370 * yet(either due to disabled/forbidden or its usage_count > 0). In most
3371 * cases, driver should call this function before any I/O has taken place.
3372 *
3373 * This function takes care of setting up using auto suspend for the device,
3374 * the autosuspend delay is set to -1 to make runtime suspend impossible
3375 * until an updated value is either set by user or by driver. Drivers do
3376 * not need to touch other autosuspend settings.
3377 *
3378 * The block layer runtime PM is request based, so only works for drivers
3379 * that use request as their IO unit instead of those directly use bio's.
3380 */
3381void blk_pm_runtime_init(struct request_queue *q, struct device *dev)
3382{
3383 q->dev = dev;
3384 q->rpm_status = RPM_ACTIVE;
3385 pm_runtime_set_autosuspend_delay(q->dev, -1);
3386 pm_runtime_use_autosuspend(q->dev);
3387}
3388EXPORT_SYMBOL(blk_pm_runtime_init);
3389
3390/**
3391 * blk_pre_runtime_suspend - Pre runtime suspend check
3392 * @q: the queue of the device
3393 *
3394 * Description:
3395 * This function will check if runtime suspend is allowed for the device
3396 * by examining if there are any requests pending in the queue. If there
3397 * are requests pending, the device can not be runtime suspended; otherwise,
3398 * the queue's status will be updated to SUSPENDING and the driver can
3399 * proceed to suspend the device.
3400 *
3401 * For the not allowed case, we mark last busy for the device so that
3402 * runtime PM core will try to autosuspend it some time later.
3403 *
3404 * This function should be called near the start of the device's
3405 * runtime_suspend callback.
3406 *
3407 * Return:
3408 * 0 - OK to runtime suspend the device
3409 * -EBUSY - Device should not be runtime suspended
3410 */
3411int blk_pre_runtime_suspend(struct request_queue *q)
3412{
3413 int ret = 0;
3414
4fd41a85
KX
3415 if (!q->dev)
3416 return ret;
3417
6c954667
LM
3418 spin_lock_irq(q->queue_lock);
3419 if (q->nr_pending) {
3420 ret = -EBUSY;
3421 pm_runtime_mark_last_busy(q->dev);
3422 } else {
3423 q->rpm_status = RPM_SUSPENDING;
3424 }
3425 spin_unlock_irq(q->queue_lock);
3426 return ret;
3427}
3428EXPORT_SYMBOL(blk_pre_runtime_suspend);
3429
3430/**
3431 * blk_post_runtime_suspend - Post runtime suspend processing
3432 * @q: the queue of the device
3433 * @err: return value of the device's runtime_suspend function
3434 *
3435 * Description:
3436 * Update the queue's runtime status according to the return value of the
3437 * device's runtime suspend function and mark last busy for the device so
3438 * that PM core will try to auto suspend the device at a later time.
3439 *
3440 * This function should be called near the end of the device's
3441 * runtime_suspend callback.
3442 */
3443void blk_post_runtime_suspend(struct request_queue *q, int err)
3444{
4fd41a85
KX
3445 if (!q->dev)
3446 return;
3447
6c954667
LM
3448 spin_lock_irq(q->queue_lock);
3449 if (!err) {
3450 q->rpm_status = RPM_SUSPENDED;
3451 } else {
3452 q->rpm_status = RPM_ACTIVE;
3453 pm_runtime_mark_last_busy(q->dev);
3454 }
3455 spin_unlock_irq(q->queue_lock);
3456}
3457EXPORT_SYMBOL(blk_post_runtime_suspend);
3458
3459/**
3460 * blk_pre_runtime_resume - Pre runtime resume processing
3461 * @q: the queue of the device
3462 *
3463 * Description:
3464 * Update the queue's runtime status to RESUMING in preparation for the
3465 * runtime resume of the device.
3466 *
3467 * This function should be called near the start of the device's
3468 * runtime_resume callback.
3469 */
3470void blk_pre_runtime_resume(struct request_queue *q)
3471{
4fd41a85
KX
3472 if (!q->dev)
3473 return;
3474
6c954667
LM
3475 spin_lock_irq(q->queue_lock);
3476 q->rpm_status = RPM_RESUMING;
3477 spin_unlock_irq(q->queue_lock);
3478}
3479EXPORT_SYMBOL(blk_pre_runtime_resume);
3480
3481/**
3482 * blk_post_runtime_resume - Post runtime resume processing
3483 * @q: the queue of the device
3484 * @err: return value of the device's runtime_resume function
3485 *
3486 * Description:
3487 * Update the queue's runtime status according to the return value of the
3488 * device's runtime_resume function. If it is successfully resumed, process
3489 * the requests that are queued into the device's queue when it is resuming
3490 * and then mark last busy and initiate autosuspend for it.
3491 *
3492 * This function should be called near the end of the device's
3493 * runtime_resume callback.
3494 */
3495void blk_post_runtime_resume(struct request_queue *q, int err)
3496{
4fd41a85
KX
3497 if (!q->dev)
3498 return;
3499
6c954667
LM
3500 spin_lock_irq(q->queue_lock);
3501 if (!err) {
3502 q->rpm_status = RPM_ACTIVE;
3503 __blk_run_queue(q);
3504 pm_runtime_mark_last_busy(q->dev);
c60855cd 3505 pm_request_autosuspend(q->dev);
6c954667
LM
3506 } else {
3507 q->rpm_status = RPM_SUSPENDED;
3508 }
3509 spin_unlock_irq(q->queue_lock);
3510}
3511EXPORT_SYMBOL(blk_post_runtime_resume);
d07ab6d1
MW
3512
3513/**
3514 * blk_set_runtime_active - Force runtime status of the queue to be active
3515 * @q: the queue of the device
3516 *
3517 * If the device is left runtime suspended during system suspend the resume
3518 * hook typically resumes the device and corrects runtime status
3519 * accordingly. However, that does not affect the queue runtime PM status
3520 * which is still "suspended". This prevents processing requests from the
3521 * queue.
3522 *
3523 * This function can be used in driver's resume hook to correct queue
3524 * runtime PM status and re-enable peeking requests from the queue. It
3525 * should be called before first request is added to the queue.
3526 */
3527void blk_set_runtime_active(struct request_queue *q)
3528{
3529 spin_lock_irq(q->queue_lock);
3530 q->rpm_status = RPM_ACTIVE;
3531 pm_runtime_mark_last_busy(q->dev);
3532 pm_request_autosuspend(q->dev);
3533 spin_unlock_irq(q->queue_lock);
3534}
3535EXPORT_SYMBOL(blk_set_runtime_active);
6c954667
LM
3536#endif
3537
1da177e4
LT
3538int __init blk_dev_init(void)
3539{
9eb55b03 3540 BUILD_BUG_ON(__REQ_NR_BITS > 8 *
0762b23d 3541 FIELD_SIZEOF(struct request, cmd_flags));
9eb55b03 3542
89b90be2
TH
3543 /* used for unplugging and affects IO latency/throughput - HIGHPRI */
3544 kblockd_workqueue = alloc_workqueue("kblockd",
28747fcd 3545 WQ_MEM_RECLAIM | WQ_HIGHPRI, 0);
1da177e4
LT
3546 if (!kblockd_workqueue)
3547 panic("Failed to create kblockd\n");
3548
3549 request_cachep = kmem_cache_create("blkdev_requests",
20c2df83 3550 sizeof(struct request), 0, SLAB_PANIC, NULL);
1da177e4 3551
c2789bd4 3552 blk_requestq_cachep = kmem_cache_create("request_queue",
165125e1 3553 sizeof(struct request_queue), 0, SLAB_PANIC, NULL);
1da177e4 3554
d38ecf93 3555 return 0;
1da177e4 3556}