dm kcopyd: introduce configurable throttling
[deliverable/linux.git] / drivers / md / dm.c
CommitLineData
1da177e4
LT
1/*
2 * Copyright (C) 2001, 2002 Sistina Software (UK) Limited.
784aae73 3 * Copyright (C) 2004-2008 Red Hat, Inc. All rights reserved.
1da177e4
LT
4 *
5 * This file is released under the GPL.
6 */
7
8#include "dm.h"
51e5b2bd 9#include "dm-uevent.h"
1da177e4
LT
10
11#include <linux/init.h>
12#include <linux/module.h>
48c9c27b 13#include <linux/mutex.h>
1da177e4
LT
14#include <linux/moduleparam.h>
15#include <linux/blkpg.h>
16#include <linux/bio.h>
1da177e4
LT
17#include <linux/mempool.h>
18#include <linux/slab.h>
19#include <linux/idr.h>
3ac51e74 20#include <linux/hdreg.h>
3f77316d 21#include <linux/delay.h>
55782138
LZ
22
23#include <trace/events/block.h>
1da177e4 24
72d94861
AK
25#define DM_MSG_PREFIX "core"
26
71a16736
NK
27#ifdef CONFIG_PRINTK
28/*
29 * ratelimit state to be used in DMXXX_LIMIT().
30 */
31DEFINE_RATELIMIT_STATE(dm_ratelimit_state,
32 DEFAULT_RATELIMIT_INTERVAL,
33 DEFAULT_RATELIMIT_BURST);
34EXPORT_SYMBOL(dm_ratelimit_state);
35#endif
36
60935eb2
MB
37/*
38 * Cookies are numeric values sent with CHANGE and REMOVE
39 * uevents while resuming, removing or renaming the device.
40 */
41#define DM_COOKIE_ENV_VAR_NAME "DM_COOKIE"
42#define DM_COOKIE_LENGTH 24
43
1da177e4
LT
44static const char *_name = DM_NAME;
45
46static unsigned int major = 0;
47static unsigned int _major = 0;
48
d15b774c
AK
49static DEFINE_IDR(_minor_idr);
50
f32c10b0 51static DEFINE_SPINLOCK(_minor_lock);
1da177e4 52/*
8fbf26ad 53 * For bio-based dm.
1da177e4
LT
54 * One of these is allocated per bio.
55 */
56struct dm_io {
57 struct mapped_device *md;
58 int error;
1da177e4 59 atomic_t io_count;
6ae2fa67 60 struct bio *bio;
3eaf840e 61 unsigned long start_time;
f88fb981 62 spinlock_t endio_lock;
1da177e4
LT
63};
64
8fbf26ad
KU
65/*
66 * For request-based dm.
67 * One of these is allocated per request.
68 */
69struct dm_rq_target_io {
70 struct mapped_device *md;
71 struct dm_target *ti;
72 struct request *orig, clone;
73 int error;
74 union map_info info;
75};
76
77/*
94818742
KO
78 * For request-based dm - the bio clones we allocate are embedded in these
79 * structs.
80 *
81 * We allocate these with bio_alloc_bioset, using the front_pad parameter when
82 * the bioset is created - this means the bio has to come at the end of the
83 * struct.
8fbf26ad
KU
84 */
85struct dm_rq_clone_bio_info {
86 struct bio *orig;
cec47e3d 87 struct dm_rq_target_io *tio;
94818742 88 struct bio clone;
8fbf26ad
KU
89};
90
1da177e4
LT
91union map_info *dm_get_mapinfo(struct bio *bio)
92{
17b2f66f 93 if (bio && bio->bi_private)
028867ac 94 return &((struct dm_target_io *)bio->bi_private)->info;
17b2f66f 95 return NULL;
1da177e4
LT
96}
97
cec47e3d
KU
98union map_info *dm_get_rq_mapinfo(struct request *rq)
99{
100 if (rq && rq->end_io_data)
101 return &((struct dm_rq_target_io *)rq->end_io_data)->info;
102 return NULL;
103}
104EXPORT_SYMBOL_GPL(dm_get_rq_mapinfo);
105
ba61fdd1
JM
106#define MINOR_ALLOCED ((void *)-1)
107
1da177e4
LT
108/*
109 * Bits for the md->flags field.
110 */
1eb787ec 111#define DMF_BLOCK_IO_FOR_SUSPEND 0
1da177e4 112#define DMF_SUSPENDED 1
aa8d7c2f 113#define DMF_FROZEN 2
fba9f90e 114#define DMF_FREEING 3
5c6bd75d 115#define DMF_DELETING 4
2e93ccc1 116#define DMF_NOFLUSH_SUSPENDING 5
d5b9dd04 117#define DMF_MERGE_IS_OPTIONAL 6
1da177e4 118
304f3f6a
MB
119/*
120 * Work processed by per-device workqueue.
121 */
1da177e4 122struct mapped_device {
2ca3310e 123 struct rw_semaphore io_lock;
e61290a4 124 struct mutex suspend_lock;
1da177e4
LT
125 rwlock_t map_lock;
126 atomic_t holders;
5c6bd75d 127 atomic_t open_count;
1da177e4
LT
128
129 unsigned long flags;
130
165125e1 131 struct request_queue *queue;
a5664dad 132 unsigned type;
4a0b4ddf 133 /* Protect queue and type against concurrent access. */
a5664dad
MS
134 struct mutex type_lock;
135
36a0456f
AK
136 struct target_type *immutable_target_type;
137
1da177e4 138 struct gendisk *disk;
7e51f257 139 char name[16];
1da177e4
LT
140
141 void *interface_ptr;
142
143 /*
144 * A list of ios that arrived while we were suspended.
145 */
316d315b 146 atomic_t pending[2];
1da177e4 147 wait_queue_head_t wait;
53d5914f 148 struct work_struct work;
74859364 149 struct bio_list deferred;
022c2611 150 spinlock_t deferred_lock;
1da177e4 151
af7e466a 152 /*
29e4013d 153 * Processing queue (flush)
304f3f6a
MB
154 */
155 struct workqueue_struct *wq;
156
1da177e4
LT
157 /*
158 * The current mapping.
159 */
160 struct dm_table *map;
161
162 /*
163 * io objects are allocated from here.
164 */
165 mempool_t *io_pool;
1da177e4 166
9faf400f
SB
167 struct bio_set *bs;
168
1da177e4
LT
169 /*
170 * Event handling.
171 */
172 atomic_t event_nr;
173 wait_queue_head_t eventq;
7a8c3d3b
MA
174 atomic_t uevent_seq;
175 struct list_head uevent_list;
176 spinlock_t uevent_lock; /* Protect access to uevent_list */
1da177e4
LT
177
178 /*
179 * freeze/thaw support require holding onto a super block
180 */
181 struct super_block *frozen_sb;
db8fef4f 182 struct block_device *bdev;
3ac51e74
DW
183
184 /* forced geometry settings */
185 struct hd_geometry geometry;
784aae73
MB
186
187 /* sysfs handle */
188 struct kobject kobj;
52b1fd5a 189
d87f4c14
TH
190 /* zero-length flush that will be cloned and submitted to targets */
191 struct bio flush_bio;
1da177e4
LT
192};
193
e6ee8c0b
KU
194/*
195 * For mempools pre-allocation at the table loading time.
196 */
197struct dm_md_mempools {
198 mempool_t *io_pool;
e6ee8c0b
KU
199 struct bio_set *bs;
200};
201
1da177e4 202#define MIN_IOS 256
e18b890b 203static struct kmem_cache *_io_cache;
8fbf26ad 204static struct kmem_cache *_rq_tio_cache;
94818742 205
1da177e4
LT
206static int __init local_init(void)
207{
51157b4a 208 int r = -ENOMEM;
1da177e4 209
1da177e4 210 /* allocate a slab for the dm_ios */
028867ac 211 _io_cache = KMEM_CACHE(dm_io, 0);
1da177e4 212 if (!_io_cache)
51157b4a 213 return r;
1da177e4 214
8fbf26ad
KU
215 _rq_tio_cache = KMEM_CACHE(dm_rq_target_io, 0);
216 if (!_rq_tio_cache)
dba14160 217 goto out_free_io_cache;
8fbf26ad 218
51e5b2bd 219 r = dm_uevent_init();
51157b4a 220 if (r)
23e5083b 221 goto out_free_rq_tio_cache;
51e5b2bd 222
1da177e4
LT
223 _major = major;
224 r = register_blkdev(_major, _name);
51157b4a
KU
225 if (r < 0)
226 goto out_uevent_exit;
1da177e4
LT
227
228 if (!_major)
229 _major = r;
230
231 return 0;
51157b4a
KU
232
233out_uevent_exit:
234 dm_uevent_exit();
8fbf26ad
KU
235out_free_rq_tio_cache:
236 kmem_cache_destroy(_rq_tio_cache);
51157b4a
KU
237out_free_io_cache:
238 kmem_cache_destroy(_io_cache);
239
240 return r;
1da177e4
LT
241}
242
243static void local_exit(void)
244{
8fbf26ad 245 kmem_cache_destroy(_rq_tio_cache);
1da177e4 246 kmem_cache_destroy(_io_cache);
00d59405 247 unregister_blkdev(_major, _name);
51e5b2bd 248 dm_uevent_exit();
1da177e4
LT
249
250 _major = 0;
251
252 DMINFO("cleaned up");
253}
254
b9249e55 255static int (*_inits[])(void) __initdata = {
1da177e4
LT
256 local_init,
257 dm_target_init,
258 dm_linear_init,
259 dm_stripe_init,
952b3557 260 dm_io_init,
945fa4d2 261 dm_kcopyd_init,
1da177e4
LT
262 dm_interface_init,
263};
264
b9249e55 265static void (*_exits[])(void) = {
1da177e4
LT
266 local_exit,
267 dm_target_exit,
268 dm_linear_exit,
269 dm_stripe_exit,
952b3557 270 dm_io_exit,
945fa4d2 271 dm_kcopyd_exit,
1da177e4
LT
272 dm_interface_exit,
273};
274
275static int __init dm_init(void)
276{
277 const int count = ARRAY_SIZE(_inits);
278
279 int r, i;
280
281 for (i = 0; i < count; i++) {
282 r = _inits[i]();
283 if (r)
284 goto bad;
285 }
286
287 return 0;
288
289 bad:
290 while (i--)
291 _exits[i]();
292
293 return r;
294}
295
296static void __exit dm_exit(void)
297{
298 int i = ARRAY_SIZE(_exits);
299
300 while (i--)
301 _exits[i]();
d15b774c
AK
302
303 /*
304 * Should be empty by this point.
305 */
d15b774c 306 idr_destroy(&_minor_idr);
1da177e4
LT
307}
308
309/*
310 * Block device functions
311 */
432a212c
MA
312int dm_deleting_md(struct mapped_device *md)
313{
314 return test_bit(DMF_DELETING, &md->flags);
315}
316
fe5f9f2c 317static int dm_blk_open(struct block_device *bdev, fmode_t mode)
1da177e4
LT
318{
319 struct mapped_device *md;
320
fba9f90e
JM
321 spin_lock(&_minor_lock);
322
fe5f9f2c 323 md = bdev->bd_disk->private_data;
fba9f90e
JM
324 if (!md)
325 goto out;
326
5c6bd75d 327 if (test_bit(DMF_FREEING, &md->flags) ||
432a212c 328 dm_deleting_md(md)) {
fba9f90e
JM
329 md = NULL;
330 goto out;
331 }
332
1da177e4 333 dm_get(md);
5c6bd75d 334 atomic_inc(&md->open_count);
fba9f90e
JM
335
336out:
337 spin_unlock(&_minor_lock);
338
339 return md ? 0 : -ENXIO;
1da177e4
LT
340}
341
fe5f9f2c 342static int dm_blk_close(struct gendisk *disk, fmode_t mode)
1da177e4 343{
fe5f9f2c 344 struct mapped_device *md = disk->private_data;
6e9624b8 345
4a1aeb98
MB
346 spin_lock(&_minor_lock);
347
5c6bd75d 348 atomic_dec(&md->open_count);
1da177e4 349 dm_put(md);
4a1aeb98
MB
350
351 spin_unlock(&_minor_lock);
6e9624b8 352
1da177e4
LT
353 return 0;
354}
355
5c6bd75d
AK
356int dm_open_count(struct mapped_device *md)
357{
358 return atomic_read(&md->open_count);
359}
360
361/*
362 * Guarantees nothing is using the device before it's deleted.
363 */
364int dm_lock_for_deletion(struct mapped_device *md)
365{
366 int r = 0;
367
368 spin_lock(&_minor_lock);
369
370 if (dm_open_count(md))
371 r = -EBUSY;
372 else
373 set_bit(DMF_DELETING, &md->flags);
374
375 spin_unlock(&_minor_lock);
376
377 return r;
378}
379
3ac51e74
DW
380static int dm_blk_getgeo(struct block_device *bdev, struct hd_geometry *geo)
381{
382 struct mapped_device *md = bdev->bd_disk->private_data;
383
384 return dm_get_geometry(md, geo);
385}
386
fe5f9f2c 387static int dm_blk_ioctl(struct block_device *bdev, fmode_t mode,
aa129a22
MB
388 unsigned int cmd, unsigned long arg)
389{
fe5f9f2c 390 struct mapped_device *md = bdev->bd_disk->private_data;
7c666411 391 struct dm_table *map = dm_get_live_table(md);
aa129a22
MB
392 struct dm_target *tgt;
393 int r = -ENOTTY;
394
aa129a22
MB
395 if (!map || !dm_table_get_size(map))
396 goto out;
397
398 /* We only support devices that have a single target */
399 if (dm_table_get_num_targets(map) != 1)
400 goto out;
401
402 tgt = dm_table_get_target(map, 0);
403
4f186f8b 404 if (dm_suspended_md(md)) {
aa129a22
MB
405 r = -EAGAIN;
406 goto out;
407 }
408
409 if (tgt->type->ioctl)
647b3d00 410 r = tgt->type->ioctl(tgt, cmd, arg);
aa129a22
MB
411
412out:
413 dm_table_put(map);
414
aa129a22
MB
415 return r;
416}
417
028867ac 418static struct dm_io *alloc_io(struct mapped_device *md)
1da177e4
LT
419{
420 return mempool_alloc(md->io_pool, GFP_NOIO);
421}
422
028867ac 423static void free_io(struct mapped_device *md, struct dm_io *io)
1da177e4
LT
424{
425 mempool_free(io, md->io_pool);
426}
427
028867ac 428static void free_tio(struct mapped_device *md, struct dm_target_io *tio)
1da177e4 429{
dba14160 430 bio_put(&tio->clone);
1da177e4
LT
431}
432
08885643
KU
433static struct dm_rq_target_io *alloc_rq_tio(struct mapped_device *md,
434 gfp_t gfp_mask)
cec47e3d 435{
5f015204 436 return mempool_alloc(md->io_pool, gfp_mask);
cec47e3d
KU
437}
438
439static void free_rq_tio(struct dm_rq_target_io *tio)
440{
5f015204 441 mempool_free(tio, tio->md->io_pool);
cec47e3d
KU
442}
443
90abb8c4
KU
444static int md_in_flight(struct mapped_device *md)
445{
446 return atomic_read(&md->pending[READ]) +
447 atomic_read(&md->pending[WRITE]);
448}
449
3eaf840e
JNN
450static void start_io_acct(struct dm_io *io)
451{
452 struct mapped_device *md = io->md;
c9959059 453 int cpu;
316d315b 454 int rw = bio_data_dir(io->bio);
3eaf840e
JNN
455
456 io->start_time = jiffies;
457
074a7aca
TH
458 cpu = part_stat_lock();
459 part_round_stats(cpu, &dm_disk(md)->part0);
460 part_stat_unlock();
1e9bb880
SL
461 atomic_set(&dm_disk(md)->part0.in_flight[rw],
462 atomic_inc_return(&md->pending[rw]));
3eaf840e
JNN
463}
464
d221d2e7 465static void end_io_acct(struct dm_io *io)
3eaf840e
JNN
466{
467 struct mapped_device *md = io->md;
468 struct bio *bio = io->bio;
469 unsigned long duration = jiffies - io->start_time;
c9959059 470 int pending, cpu;
3eaf840e
JNN
471 int rw = bio_data_dir(bio);
472
074a7aca
TH
473 cpu = part_stat_lock();
474 part_round_stats(cpu, &dm_disk(md)->part0);
475 part_stat_add(cpu, &dm_disk(md)->part0, ticks[rw], duration);
476 part_stat_unlock();
3eaf840e 477
af7e466a
MP
478 /*
479 * After this is decremented the bio must not be touched if it is
d87f4c14 480 * a flush.
af7e466a 481 */
1e9bb880
SL
482 pending = atomic_dec_return(&md->pending[rw]);
483 atomic_set(&dm_disk(md)->part0.in_flight[rw], pending);
316d315b 484 pending += atomic_read(&md->pending[rw^0x1]);
3eaf840e 485
d221d2e7
MP
486 /* nudge anyone waiting on suspend queue */
487 if (!pending)
488 wake_up(&md->wait);
3eaf840e
JNN
489}
490
1da177e4
LT
491/*
492 * Add the bio to the list of deferred io.
493 */
92c63902 494static void queue_io(struct mapped_device *md, struct bio *bio)
1da177e4 495{
05447420 496 unsigned long flags;
1da177e4 497
05447420 498 spin_lock_irqsave(&md->deferred_lock, flags);
1da177e4 499 bio_list_add(&md->deferred, bio);
05447420 500 spin_unlock_irqrestore(&md->deferred_lock, flags);
6a8736d1 501 queue_work(md->wq, &md->work);
1da177e4
LT
502}
503
504/*
505 * Everyone (including functions in this file), should use this
506 * function to access the md->map field, and make sure they call
507 * dm_table_put() when finished.
508 */
7c666411 509struct dm_table *dm_get_live_table(struct mapped_device *md)
1da177e4
LT
510{
511 struct dm_table *t;
523d9297 512 unsigned long flags;
1da177e4 513
523d9297 514 read_lock_irqsave(&md->map_lock, flags);
1da177e4
LT
515 t = md->map;
516 if (t)
517 dm_table_get(t);
523d9297 518 read_unlock_irqrestore(&md->map_lock, flags);
1da177e4
LT
519
520 return t;
521}
522
3ac51e74
DW
523/*
524 * Get the geometry associated with a dm device
525 */
526int dm_get_geometry(struct mapped_device *md, struct hd_geometry *geo)
527{
528 *geo = md->geometry;
529
530 return 0;
531}
532
533/*
534 * Set the geometry of a device.
535 */
536int dm_set_geometry(struct mapped_device *md, struct hd_geometry *geo)
537{
538 sector_t sz = (sector_t)geo->cylinders * geo->heads * geo->sectors;
539
540 if (geo->start > sz) {
541 DMWARN("Start sector is beyond the geometry limits.");
542 return -EINVAL;
543 }
544
545 md->geometry = *geo;
546
547 return 0;
548}
549
1da177e4
LT
550/*-----------------------------------------------------------------
551 * CRUD START:
552 * A more elegant soln is in the works that uses the queue
553 * merge fn, unfortunately there are a couple of changes to
554 * the block layer that I want to make for this. So in the
555 * interests of getting something for people to use I give
556 * you this clearly demarcated crap.
557 *---------------------------------------------------------------*/
558
2e93ccc1
KU
559static int __noflush_suspending(struct mapped_device *md)
560{
561 return test_bit(DMF_NOFLUSH_SUSPENDING, &md->flags);
562}
563
1da177e4
LT
564/*
565 * Decrements the number of outstanding ios that a bio has been
566 * cloned into, completing the original io if necc.
567 */
858119e1 568static void dec_pending(struct dm_io *io, int error)
1da177e4 569{
2e93ccc1 570 unsigned long flags;
b35f8caa
MB
571 int io_error;
572 struct bio *bio;
573 struct mapped_device *md = io->md;
2e93ccc1
KU
574
575 /* Push-back supersedes any I/O errors */
f88fb981
KU
576 if (unlikely(error)) {
577 spin_lock_irqsave(&io->endio_lock, flags);
578 if (!(io->error > 0 && __noflush_suspending(md)))
579 io->error = error;
580 spin_unlock_irqrestore(&io->endio_lock, flags);
581 }
1da177e4
LT
582
583 if (atomic_dec_and_test(&io->io_count)) {
2e93ccc1
KU
584 if (io->error == DM_ENDIO_REQUEUE) {
585 /*
586 * Target requested pushing back the I/O.
2e93ccc1 587 */
022c2611 588 spin_lock_irqsave(&md->deferred_lock, flags);
6a8736d1
TH
589 if (__noflush_suspending(md))
590 bio_list_add_head(&md->deferred, io->bio);
591 else
2e93ccc1
KU
592 /* noflush suspend was interrupted. */
593 io->error = -EIO;
022c2611 594 spin_unlock_irqrestore(&md->deferred_lock, flags);
2e93ccc1
KU
595 }
596
b35f8caa
MB
597 io_error = io->error;
598 bio = io->bio;
6a8736d1
TH
599 end_io_acct(io);
600 free_io(md, io);
601
602 if (io_error == DM_ENDIO_REQUEUE)
603 return;
2e93ccc1 604
b372d360 605 if ((bio->bi_rw & REQ_FLUSH) && bio->bi_size) {
af7e466a 606 /*
6a8736d1
TH
607 * Preflush done for flush with data, reissue
608 * without REQ_FLUSH.
af7e466a 609 */
6a8736d1
TH
610 bio->bi_rw &= ~REQ_FLUSH;
611 queue_io(md, bio);
af7e466a 612 } else {
b372d360 613 /* done with normal IO or empty flush */
b372d360 614 bio_endio(bio, io_error);
b35f8caa 615 }
1da177e4
LT
616 }
617}
618
6712ecf8 619static void clone_endio(struct bio *bio, int error)
1da177e4
LT
620{
621 int r = 0;
028867ac 622 struct dm_target_io *tio = bio->bi_private;
b35f8caa 623 struct dm_io *io = tio->io;
9faf400f 624 struct mapped_device *md = tio->io->md;
1da177e4
LT
625 dm_endio_fn endio = tio->ti->type->end_io;
626
1da177e4
LT
627 if (!bio_flagged(bio, BIO_UPTODATE) && !error)
628 error = -EIO;
629
630 if (endio) {
7de3ee57 631 r = endio(tio->ti, bio, error);
2e93ccc1
KU
632 if (r < 0 || r == DM_ENDIO_REQUEUE)
633 /*
634 * error and requeue request are handled
635 * in dec_pending().
636 */
1da177e4 637 error = r;
45cbcd79
KU
638 else if (r == DM_ENDIO_INCOMPLETE)
639 /* The target will handle the io */
6712ecf8 640 return;
45cbcd79
KU
641 else if (r) {
642 DMWARN("unimplemented target endio return value: %d", r);
643 BUG();
644 }
1da177e4
LT
645 }
646
9faf400f 647 free_tio(md, tio);
b35f8caa 648 dec_pending(io, error);
1da177e4
LT
649}
650
cec47e3d
KU
651/*
652 * Partial completion handling for request-based dm
653 */
654static void end_clone_bio(struct bio *clone, int error)
655{
656 struct dm_rq_clone_bio_info *info = clone->bi_private;
657 struct dm_rq_target_io *tio = info->tio;
658 struct bio *bio = info->orig;
659 unsigned int nr_bytes = info->orig->bi_size;
660
661 bio_put(clone);
662
663 if (tio->error)
664 /*
665 * An error has already been detected on the request.
666 * Once error occurred, just let clone->end_io() handle
667 * the remainder.
668 */
669 return;
670 else if (error) {
671 /*
672 * Don't notice the error to the upper layer yet.
673 * The error handling decision is made by the target driver,
674 * when the request is completed.
675 */
676 tio->error = error;
677 return;
678 }
679
680 /*
681 * I/O for the bio successfully completed.
682 * Notice the data completion to the upper layer.
683 */
684
685 /*
686 * bios are processed from the head of the list.
687 * So the completing bio should always be rq->bio.
688 * If it's not, something wrong is happening.
689 */
690 if (tio->orig->bio != bio)
691 DMERR("bio completion is going in the middle of the request");
692
693 /*
694 * Update the original request.
695 * Do not use blk_end_request() here, because it may complete
696 * the original request before the clone, and break the ordering.
697 */
698 blk_update_request(tio->orig, 0, nr_bytes);
699}
700
701/*
702 * Don't touch any member of the md after calling this function because
703 * the md may be freed in dm_put() at the end of this function.
704 * Or do dm_get() before calling this function and dm_put() later.
705 */
b4324fee 706static void rq_completed(struct mapped_device *md, int rw, int run_queue)
cec47e3d 707{
b4324fee 708 atomic_dec(&md->pending[rw]);
cec47e3d
KU
709
710 /* nudge anyone waiting on suspend queue */
b4324fee 711 if (!md_in_flight(md))
cec47e3d
KU
712 wake_up(&md->wait);
713
a8c32a5c
JA
714 /*
715 * Run this off this callpath, as drivers could invoke end_io while
716 * inside their request_fn (and holding the queue lock). Calling
717 * back into ->request_fn() could deadlock attempting to grab the
718 * queue lock again.
719 */
cec47e3d 720 if (run_queue)
a8c32a5c 721 blk_run_queue_async(md->queue);
cec47e3d
KU
722
723 /*
724 * dm_put() must be at the end of this function. See the comment above
725 */
726 dm_put(md);
727}
728
a77e28c7
KU
729static void free_rq_clone(struct request *clone)
730{
731 struct dm_rq_target_io *tio = clone->end_io_data;
732
733 blk_rq_unprep_clone(clone);
734 free_rq_tio(tio);
735}
736
980691e5
KU
737/*
738 * Complete the clone and the original request.
739 * Must be called without queue lock.
740 */
741static void dm_end_request(struct request *clone, int error)
742{
743 int rw = rq_data_dir(clone);
744 struct dm_rq_target_io *tio = clone->end_io_data;
745 struct mapped_device *md = tio->md;
746 struct request *rq = tio->orig;
747
29e4013d 748 if (rq->cmd_type == REQ_TYPE_BLOCK_PC) {
980691e5
KU
749 rq->errors = clone->errors;
750 rq->resid_len = clone->resid_len;
751
752 if (rq->sense)
753 /*
754 * We are using the sense buffer of the original
755 * request.
756 * So setting the length of the sense data is enough.
757 */
758 rq->sense_len = clone->sense_len;
759 }
760
761 free_rq_clone(clone);
29e4013d
TH
762 blk_end_request_all(rq, error);
763 rq_completed(md, rw, true);
980691e5
KU
764}
765
cec47e3d
KU
766static void dm_unprep_request(struct request *rq)
767{
768 struct request *clone = rq->special;
cec47e3d
KU
769
770 rq->special = NULL;
771 rq->cmd_flags &= ~REQ_DONTPREP;
772
a77e28c7 773 free_rq_clone(clone);
cec47e3d
KU
774}
775
776/*
777 * Requeue the original request of a clone.
778 */
779void dm_requeue_unmapped_request(struct request *clone)
780{
b4324fee 781 int rw = rq_data_dir(clone);
cec47e3d
KU
782 struct dm_rq_target_io *tio = clone->end_io_data;
783 struct mapped_device *md = tio->md;
784 struct request *rq = tio->orig;
785 struct request_queue *q = rq->q;
786 unsigned long flags;
787
788 dm_unprep_request(rq);
789
790 spin_lock_irqsave(q->queue_lock, flags);
cec47e3d
KU
791 blk_requeue_request(q, rq);
792 spin_unlock_irqrestore(q->queue_lock, flags);
793
b4324fee 794 rq_completed(md, rw, 0);
cec47e3d
KU
795}
796EXPORT_SYMBOL_GPL(dm_requeue_unmapped_request);
797
798static void __stop_queue(struct request_queue *q)
799{
800 blk_stop_queue(q);
801}
802
803static void stop_queue(struct request_queue *q)
804{
805 unsigned long flags;
806
807 spin_lock_irqsave(q->queue_lock, flags);
808 __stop_queue(q);
809 spin_unlock_irqrestore(q->queue_lock, flags);
810}
811
812static void __start_queue(struct request_queue *q)
813{
814 if (blk_queue_stopped(q))
815 blk_start_queue(q);
816}
817
818static void start_queue(struct request_queue *q)
819{
820 unsigned long flags;
821
822 spin_lock_irqsave(q->queue_lock, flags);
823 __start_queue(q);
824 spin_unlock_irqrestore(q->queue_lock, flags);
825}
826
11a68244 827static void dm_done(struct request *clone, int error, bool mapped)
cec47e3d 828{
11a68244 829 int r = error;
cec47e3d 830 struct dm_rq_target_io *tio = clone->end_io_data;
ba1cbad9 831 dm_request_endio_fn rq_end_io = NULL;
cec47e3d 832
ba1cbad9
MS
833 if (tio->ti) {
834 rq_end_io = tio->ti->type->rq_end_io;
835
836 if (mapped && rq_end_io)
837 r = rq_end_io(tio->ti, clone, error, &tio->info);
838 }
cec47e3d 839
11a68244 840 if (r <= 0)
cec47e3d 841 /* The target wants to complete the I/O */
11a68244
KU
842 dm_end_request(clone, r);
843 else if (r == DM_ENDIO_INCOMPLETE)
cec47e3d
KU
844 /* The target will handle the I/O */
845 return;
11a68244 846 else if (r == DM_ENDIO_REQUEUE)
cec47e3d
KU
847 /* The target wants to requeue the I/O */
848 dm_requeue_unmapped_request(clone);
849 else {
11a68244 850 DMWARN("unimplemented target endio return value: %d", r);
cec47e3d
KU
851 BUG();
852 }
853}
854
11a68244
KU
855/*
856 * Request completion handler for request-based dm
857 */
858static void dm_softirq_done(struct request *rq)
859{
860 bool mapped = true;
861 struct request *clone = rq->completion_data;
862 struct dm_rq_target_io *tio = clone->end_io_data;
863
864 if (rq->cmd_flags & REQ_FAILED)
865 mapped = false;
866
867 dm_done(clone, tio->error, mapped);
868}
869
cec47e3d
KU
870/*
871 * Complete the clone and the original request with the error status
872 * through softirq context.
873 */
874static void dm_complete_request(struct request *clone, int error)
875{
876 struct dm_rq_target_io *tio = clone->end_io_data;
877 struct request *rq = tio->orig;
878
879 tio->error = error;
880 rq->completion_data = clone;
881 blk_complete_request(rq);
882}
883
884/*
885 * Complete the not-mapped clone and the original request with the error status
886 * through softirq context.
887 * Target's rq_end_io() function isn't called.
888 * This may be used when the target's map_rq() function fails.
889 */
890void dm_kill_unmapped_request(struct request *clone, int error)
891{
892 struct dm_rq_target_io *tio = clone->end_io_data;
893 struct request *rq = tio->orig;
894
895 rq->cmd_flags |= REQ_FAILED;
896 dm_complete_request(clone, error);
897}
898EXPORT_SYMBOL_GPL(dm_kill_unmapped_request);
899
900/*
901 * Called with the queue lock held
902 */
903static void end_clone_request(struct request *clone, int error)
904{
905 /*
906 * For just cleaning up the information of the queue in which
907 * the clone was dispatched.
908 * The clone is *NOT* freed actually here because it is alloced from
909 * dm own mempool and REQ_ALLOCED isn't set in clone->cmd_flags.
910 */
911 __blk_put_request(clone->q, clone);
912
913 /*
914 * Actual request completion is done in a softirq context which doesn't
915 * hold the queue lock. Otherwise, deadlock could occur because:
916 * - another request may be submitted by the upper level driver
917 * of the stacking during the completion
918 * - the submission which requires queue lock may be done
919 * against this queue
920 */
921 dm_complete_request(clone, error);
922}
923
56a67df7
MS
924/*
925 * Return maximum size of I/O possible at the supplied sector up to the current
926 * target boundary.
927 */
928static sector_t max_io_len_target_boundary(sector_t sector, struct dm_target *ti)
929{
930 sector_t target_offset = dm_target_offset(ti, sector);
931
932 return ti->len - target_offset;
933}
934
935static sector_t max_io_len(sector_t sector, struct dm_target *ti)
1da177e4 936{
56a67df7 937 sector_t len = max_io_len_target_boundary(sector, ti);
542f9038 938 sector_t offset, max_len;
1da177e4
LT
939
940 /*
542f9038 941 * Does the target need to split even further?
1da177e4 942 */
542f9038
MS
943 if (ti->max_io_len) {
944 offset = dm_target_offset(ti, sector);
945 if (unlikely(ti->max_io_len & (ti->max_io_len - 1)))
946 max_len = sector_div(offset, ti->max_io_len);
947 else
948 max_len = offset & (ti->max_io_len - 1);
949 max_len = ti->max_io_len - max_len;
950
951 if (len > max_len)
952 len = max_len;
1da177e4
LT
953 }
954
955 return len;
956}
957
542f9038
MS
958int dm_set_target_max_io_len(struct dm_target *ti, sector_t len)
959{
960 if (len > UINT_MAX) {
961 DMERR("Specified maximum size of target IO (%llu) exceeds limit (%u)",
962 (unsigned long long)len, UINT_MAX);
963 ti->error = "Maximum size of target IO is too large";
964 return -EINVAL;
965 }
966
967 ti->max_io_len = (uint32_t) len;
968
969 return 0;
970}
971EXPORT_SYMBOL_GPL(dm_set_target_max_io_len);
972
bd2a49b8 973static void __map_bio(struct dm_target_io *tio)
1da177e4
LT
974{
975 int r;
2056a782 976 sector_t sector;
9faf400f 977 struct mapped_device *md;
dba14160 978 struct bio *clone = &tio->clone;
bd2a49b8 979 struct dm_target *ti = tio->ti;
1da177e4 980
1da177e4
LT
981 clone->bi_end_io = clone_endio;
982 clone->bi_private = tio;
983
984 /*
985 * Map the clone. If r == 0 we don't need to do
986 * anything, the target has assumed ownership of
987 * this io.
988 */
989 atomic_inc(&tio->io->io_count);
2056a782 990 sector = clone->bi_sector;
7de3ee57 991 r = ti->type->map(ti, clone);
45cbcd79 992 if (r == DM_MAPIO_REMAPPED) {
1da177e4 993 /* the bio has been remapped so dispatch it */
2056a782 994
d07335e5
MS
995 trace_block_bio_remap(bdev_get_queue(clone->bi_bdev), clone,
996 tio->io->bio->bi_bdev->bd_dev, sector);
2056a782 997
1da177e4 998 generic_make_request(clone);
2e93ccc1
KU
999 } else if (r < 0 || r == DM_MAPIO_REQUEUE) {
1000 /* error the io and bail out, or requeue it if needed */
9faf400f
SB
1001 md = tio->io->md;
1002 dec_pending(tio->io, r);
9faf400f 1003 free_tio(md, tio);
45cbcd79
KU
1004 } else if (r) {
1005 DMWARN("unimplemented target map return value: %d", r);
1006 BUG();
1da177e4
LT
1007 }
1008}
1009
1010struct clone_info {
1011 struct mapped_device *md;
1012 struct dm_table *map;
1013 struct bio *bio;
1014 struct dm_io *io;
1015 sector_t sector;
1016 sector_t sector_count;
1017 unsigned short idx;
1018};
1019
bd2a49b8
AK
1020static void bio_setup_sector(struct bio *bio, sector_t sector, sector_t len)
1021{
1022 bio->bi_sector = sector;
1023 bio->bi_size = to_bytes(len);
1024}
1025
1026static void bio_setup_bv(struct bio *bio, unsigned short idx, unsigned short bv_count)
1027{
1028 bio->bi_idx = idx;
1029 bio->bi_vcnt = idx + bv_count;
1030 bio->bi_flags &= ~(1 << BIO_SEG_VALID);
1031}
1032
1033static void clone_bio_integrity(struct bio *bio, struct bio *clone,
1034 unsigned short idx, unsigned len, unsigned offset,
1035 unsigned trim)
1036{
1037 if (!bio_integrity(bio))
1038 return;
1039
1040 bio_integrity_clone(clone, bio, GFP_NOIO);
1041
1042 if (trim)
1043 bio_integrity_trim(clone, bio_sector_offset(bio, idx, offset), len);
1044}
1045
1da177e4 1046/*
d87f4c14 1047 * Creates a little bio that just does part of a bvec.
1da177e4 1048 */
14fe594d
AK
1049static void clone_split_bio(struct dm_target_io *tio, struct bio *bio,
1050 sector_t sector, unsigned short idx,
1051 unsigned offset, unsigned len)
1da177e4 1052{
dba14160 1053 struct bio *clone = &tio->clone;
1da177e4
LT
1054 struct bio_vec *bv = bio->bi_io_vec + idx;
1055
1da177e4
LT
1056 *clone->bi_io_vec = *bv;
1057
bd2a49b8
AK
1058 bio_setup_sector(clone, sector, len);
1059
1da177e4 1060 clone->bi_bdev = bio->bi_bdev;
d87f4c14 1061 clone->bi_rw = bio->bi_rw;
1da177e4 1062 clone->bi_vcnt = 1;
1da177e4
LT
1063 clone->bi_io_vec->bv_offset = offset;
1064 clone->bi_io_vec->bv_len = clone->bi_size;
f3e1d26e 1065 clone->bi_flags |= 1 << BIO_CLONED;
1da177e4 1066
bd2a49b8 1067 clone_bio_integrity(bio, clone, idx, len, offset, 1);
1da177e4
LT
1068}
1069
1070/*
1071 * Creates a bio that consists of range of complete bvecs.
1072 */
dba14160
MP
1073static void clone_bio(struct dm_target_io *tio, struct bio *bio,
1074 sector_t sector, unsigned short idx,
e4c93811 1075 unsigned short bv_count, unsigned len)
1da177e4 1076{
dba14160 1077 struct bio *clone = &tio->clone;
bd2a49b8 1078 unsigned trim = 0;
1da177e4 1079
9faf400f 1080 __bio_clone(clone, bio);
bd2a49b8
AK
1081 bio_setup_sector(clone, sector, len);
1082 bio_setup_bv(clone, idx, bv_count);
1083
1084 if (idx != bio->bi_idx || clone->bi_size < bio->bi_size)
1085 trim = 1;
1086 clone_bio_integrity(bio, clone, idx, len, 0, trim);
1da177e4
LT
1087}
1088
9015df24 1089static struct dm_target_io *alloc_tio(struct clone_info *ci,
bd2a49b8 1090 struct dm_target *ti, int nr_iovecs,
55a62eef 1091 unsigned target_bio_nr)
f9ab94ce 1092{
dba14160
MP
1093 struct dm_target_io *tio;
1094 struct bio *clone;
1095
1096 clone = bio_alloc_bioset(GFP_NOIO, nr_iovecs, ci->md->bs);
1097 tio = container_of(clone, struct dm_target_io, clone);
f9ab94ce
MP
1098
1099 tio->io = ci->io;
1100 tio->ti = ti;
f9ab94ce 1101 memset(&tio->info, 0, sizeof(tio->info));
55a62eef 1102 tio->target_bio_nr = target_bio_nr;
9015df24
AK
1103
1104 return tio;
1105}
1106
14fe594d
AK
1107static void __clone_and_map_simple_bio(struct clone_info *ci,
1108 struct dm_target *ti,
1109 unsigned target_bio_nr, sector_t len)
9015df24 1110{
55a62eef 1111 struct dm_target_io *tio = alloc_tio(ci, ti, ci->bio->bi_max_vecs, target_bio_nr);
dba14160 1112 struct bio *clone = &tio->clone;
9015df24 1113
06a426ce
MS
1114 /*
1115 * Discard requests require the bio's inline iovecs be initialized.
1116 * ci->bio->bi_max_vecs is BIO_INLINE_VECS anyway, for both flush
1117 * and discard, so no need for concern about wasted bvec allocations.
1118 */
dba14160 1119 __bio_clone(clone, ci->bio);
bd2a49b8
AK
1120 if (len)
1121 bio_setup_sector(clone, ci->sector, len);
f9ab94ce 1122
bd2a49b8 1123 __map_bio(tio);
f9ab94ce
MP
1124}
1125
14fe594d
AK
1126static void __send_duplicate_bios(struct clone_info *ci, struct dm_target *ti,
1127 unsigned num_bios, sector_t len)
06a426ce 1128{
55a62eef 1129 unsigned target_bio_nr;
06a426ce 1130
55a62eef 1131 for (target_bio_nr = 0; target_bio_nr < num_bios; target_bio_nr++)
14fe594d 1132 __clone_and_map_simple_bio(ci, ti, target_bio_nr, len);
06a426ce
MS
1133}
1134
14fe594d 1135static int __send_empty_flush(struct clone_info *ci)
f9ab94ce 1136{
06a426ce 1137 unsigned target_nr = 0;
f9ab94ce
MP
1138 struct dm_target *ti;
1139
b372d360 1140 BUG_ON(bio_has_data(ci->bio));
f9ab94ce 1141 while ((ti = dm_table_get_target(ci->map, target_nr++)))
14fe594d 1142 __send_duplicate_bios(ci, ti, ti->num_flush_bios, 0);
f9ab94ce 1143
f9ab94ce
MP
1144 return 0;
1145}
1146
e4c93811
AK
1147static void __clone_and_map_data_bio(struct clone_info *ci, struct dm_target *ti,
1148 sector_t sector, int nr_iovecs,
1149 unsigned short idx, unsigned short bv_count,
1150 unsigned offset, unsigned len,
1151 unsigned split_bvec)
5ae89a87 1152{
dba14160 1153 struct bio *bio = ci->bio;
5ae89a87
MS
1154 struct dm_target_io *tio;
1155
e4c93811
AK
1156 tio = alloc_tio(ci, ti, nr_iovecs, 0);
1157
1158 if (split_bvec)
1159 clone_split_bio(tio, bio, sector, idx, offset, len);
1160 else
1161 clone_bio(tio, bio, sector, idx, bv_count, len);
1162
bd2a49b8 1163 __map_bio(tio);
5ae89a87
MS
1164}
1165
55a62eef 1166typedef unsigned (*get_num_bios_fn)(struct dm_target *ti);
23508a96 1167
55a62eef 1168static unsigned get_num_discard_bios(struct dm_target *ti)
23508a96 1169{
55a62eef 1170 return ti->num_discard_bios;
23508a96
MS
1171}
1172
55a62eef 1173static unsigned get_num_write_same_bios(struct dm_target *ti)
23508a96 1174{
55a62eef 1175 return ti->num_write_same_bios;
23508a96
MS
1176}
1177
1178typedef bool (*is_split_required_fn)(struct dm_target *ti);
1179
1180static bool is_split_required_for_discard(struct dm_target *ti)
1181{
55a62eef 1182 return ti->split_discard_bios;
23508a96
MS
1183}
1184
14fe594d
AK
1185static int __send_changing_extent_only(struct clone_info *ci,
1186 get_num_bios_fn get_num_bios,
1187 is_split_required_fn is_split_required)
5ae89a87
MS
1188{
1189 struct dm_target *ti;
a79245b3 1190 sector_t len;
55a62eef 1191 unsigned num_bios;
5ae89a87 1192
a79245b3
MS
1193 do {
1194 ti = dm_table_find_target(ci->map, ci->sector);
1195 if (!dm_target_is_valid(ti))
1196 return -EIO;
5ae89a87 1197
5ae89a87 1198 /*
23508a96
MS
1199 * Even though the device advertised support for this type of
1200 * request, that does not mean every target supports it, and
936688d7 1201 * reconfiguration might also have changed that since the
a79245b3 1202 * check was performed.
5ae89a87 1203 */
55a62eef
AK
1204 num_bios = get_num_bios ? get_num_bios(ti) : 0;
1205 if (!num_bios)
a79245b3 1206 return -EOPNOTSUPP;
5ae89a87 1207
23508a96 1208 if (is_split_required && !is_split_required(ti))
7acf0277
MP
1209 len = min(ci->sector_count, max_io_len_target_boundary(ci->sector, ti));
1210 else
1211 len = min(ci->sector_count, max_io_len(ci->sector, ti));
06a426ce 1212
14fe594d 1213 __send_duplicate_bios(ci, ti, num_bios, len);
a79245b3
MS
1214
1215 ci->sector += len;
1216 } while (ci->sector_count -= len);
5ae89a87
MS
1217
1218 return 0;
1219}
1220
14fe594d 1221static int __send_discard(struct clone_info *ci)
23508a96 1222{
14fe594d
AK
1223 return __send_changing_extent_only(ci, get_num_discard_bios,
1224 is_split_required_for_discard);
23508a96
MS
1225}
1226
14fe594d 1227static int __send_write_same(struct clone_info *ci)
23508a96 1228{
14fe594d 1229 return __send_changing_extent_only(ci, get_num_write_same_bios, NULL);
23508a96
MS
1230}
1231
e4c93811
AK
1232/*
1233 * Find maximum number of sectors / bvecs we can process with a single bio.
1234 */
1235static sector_t __len_within_target(struct clone_info *ci, sector_t max, int *idx)
1236{
1237 struct bio *bio = ci->bio;
1238 sector_t bv_len, total_len = 0;
1239
1240 for (*idx = ci->idx; max && (*idx < bio->bi_vcnt); (*idx)++) {
1241 bv_len = to_sector(bio->bi_io_vec[*idx].bv_len);
1242
1243 if (bv_len > max)
1244 break;
1245
1246 max -= bv_len;
1247 total_len += bv_len;
1248 }
1249
1250 return total_len;
1251}
1252
1253static int __split_bvec_across_targets(struct clone_info *ci,
1254 struct dm_target *ti, sector_t max)
1255{
1256 struct bio *bio = ci->bio;
1257 struct bio_vec *bv = bio->bi_io_vec + ci->idx;
1258 sector_t remaining = to_sector(bv->bv_len);
1259 unsigned offset = 0;
1260 sector_t len;
1261
1262 do {
1263 if (offset) {
1264 ti = dm_table_find_target(ci->map, ci->sector);
1265 if (!dm_target_is_valid(ti))
1266 return -EIO;
1267
1268 max = max_io_len(ci->sector, ti);
1269 }
1270
1271 len = min(remaining, max);
1272
1273 __clone_and_map_data_bio(ci, ti, ci->sector, 1, ci->idx, 0,
1274 bv->bv_offset + offset, len, 1);
1275
1276 ci->sector += len;
1277 ci->sector_count -= len;
1278 offset += to_bytes(len);
1279 } while (remaining -= len);
1280
1281 ci->idx++;
1282
1283 return 0;
1284}
1285
1286/*
1287 * Select the correct strategy for processing a non-flush bio.
1288 */
14fe594d 1289static int __split_and_process_non_flush(struct clone_info *ci)
1da177e4 1290{
dba14160 1291 struct bio *bio = ci->bio;
512875bd 1292 struct dm_target *ti;
e4c93811
AK
1293 sector_t len, max;
1294 int idx;
1da177e4 1295
5ae89a87 1296 if (unlikely(bio->bi_rw & REQ_DISCARD))
14fe594d 1297 return __send_discard(ci);
23508a96 1298 else if (unlikely(bio->bi_rw & REQ_WRITE_SAME))
14fe594d 1299 return __send_write_same(ci);
5ae89a87 1300
512875bd
JN
1301 ti = dm_table_find_target(ci->map, ci->sector);
1302 if (!dm_target_is_valid(ti))
1303 return -EIO;
1304
56a67df7 1305 max = max_io_len(ci->sector, ti);
512875bd 1306
e4c93811
AK
1307 /*
1308 * Optimise for the simple case where we can do all of
1309 * the remaining io with a single clone.
1310 */
1da177e4 1311 if (ci->sector_count <= max) {
e4c93811
AK
1312 __clone_and_map_data_bio(ci, ti, ci->sector, bio->bi_max_vecs,
1313 ci->idx, bio->bi_vcnt - ci->idx, 0,
1314 ci->sector_count, 0);
1315 ci->sector_count = 0;
1316 return 0;
1317 }
1da177e4 1318
e4c93811
AK
1319 /*
1320 * There are some bvecs that don't span targets.
1321 * Do as many of these as possible.
1322 */
1323 if (to_sector(bio->bi_io_vec[ci->idx].bv_len) <= max) {
1324 len = __len_within_target(ci, max, &idx);
1da177e4 1325
e4c93811
AK
1326 __clone_and_map_data_bio(ci, ti, ci->sector, bio->bi_max_vecs,
1327 ci->idx, idx - ci->idx, 0, len, 0);
1da177e4
LT
1328
1329 ci->sector += len;
1330 ci->sector_count -= len;
e4c93811 1331 ci->idx = idx;
d2044a94 1332
e4c93811 1333 return 0;
1da177e4 1334 }
512875bd 1335
e4c93811
AK
1336 /*
1337 * Handle a bvec that must be split between two or more targets.
1338 */
1339 return __split_bvec_across_targets(ci, ti, max);
1da177e4
LT
1340}
1341
1342/*
14fe594d 1343 * Entry point to split a bio into clones and submit them to the targets.
1da177e4 1344 */
f0b9a450 1345static void __split_and_process_bio(struct mapped_device *md, struct bio *bio)
1da177e4
LT
1346{
1347 struct clone_info ci;
512875bd 1348 int error = 0;
1da177e4 1349
7c666411 1350 ci.map = dm_get_live_table(md);
f0b9a450 1351 if (unlikely(!ci.map)) {
6a8736d1 1352 bio_io_error(bio);
f0b9a450
MP
1353 return;
1354 }
692d0eb9 1355
1da177e4 1356 ci.md = md;
1da177e4
LT
1357 ci.io = alloc_io(md);
1358 ci.io->error = 0;
1359 atomic_set(&ci.io->io_count, 1);
1360 ci.io->bio = bio;
1361 ci.io->md = md;
f88fb981 1362 spin_lock_init(&ci.io->endio_lock);
1da177e4 1363 ci.sector = bio->bi_sector;
1da177e4
LT
1364 ci.idx = bio->bi_idx;
1365
3eaf840e 1366 start_io_acct(ci.io);
bd2a49b8 1367
b372d360
MS
1368 if (bio->bi_rw & REQ_FLUSH) {
1369 ci.bio = &ci.md->flush_bio;
1370 ci.sector_count = 0;
14fe594d 1371 error = __send_empty_flush(&ci);
b372d360
MS
1372 /* dec_pending submits any data associated with flush */
1373 } else {
6a8736d1 1374 ci.bio = bio;
d87f4c14 1375 ci.sector_count = bio_sectors(bio);
b372d360 1376 while (ci.sector_count && !error)
14fe594d 1377 error = __split_and_process_non_flush(&ci);
d87f4c14 1378 }
1da177e4
LT
1379
1380 /* drop the extra reference count */
512875bd 1381 dec_pending(ci.io, error);
1da177e4
LT
1382 dm_table_put(ci.map);
1383}
1384/*-----------------------------------------------------------------
1385 * CRUD END
1386 *---------------------------------------------------------------*/
1387
f6fccb12
MB
1388static int dm_merge_bvec(struct request_queue *q,
1389 struct bvec_merge_data *bvm,
1390 struct bio_vec *biovec)
1391{
1392 struct mapped_device *md = q->queuedata;
7c666411 1393 struct dm_table *map = dm_get_live_table(md);
f6fccb12
MB
1394 struct dm_target *ti;
1395 sector_t max_sectors;
5037108a 1396 int max_size = 0;
f6fccb12
MB
1397
1398 if (unlikely(!map))
5037108a 1399 goto out;
f6fccb12
MB
1400
1401 ti = dm_table_find_target(map, bvm->bi_sector);
b01cd5ac
MP
1402 if (!dm_target_is_valid(ti))
1403 goto out_table;
f6fccb12
MB
1404
1405 /*
1406 * Find maximum amount of I/O that won't need splitting
1407 */
56a67df7 1408 max_sectors = min(max_io_len(bvm->bi_sector, ti),
f6fccb12
MB
1409 (sector_t) BIO_MAX_SECTORS);
1410 max_size = (max_sectors << SECTOR_SHIFT) - bvm->bi_size;
1411 if (max_size < 0)
1412 max_size = 0;
1413
1414 /*
1415 * merge_bvec_fn() returns number of bytes
1416 * it can accept at this offset
1417 * max is precomputed maximal io size
1418 */
1419 if (max_size && ti->type->merge)
1420 max_size = ti->type->merge(ti, bvm, biovec, max_size);
8cbeb67a
MP
1421 /*
1422 * If the target doesn't support merge method and some of the devices
1423 * provided their merge_bvec method (we know this by looking at
1424 * queue_max_hw_sectors), then we can't allow bios with multiple vector
1425 * entries. So always set max_size to 0, and the code below allows
1426 * just one page.
1427 */
1428 else if (queue_max_hw_sectors(q) <= PAGE_SIZE >> 9)
1429
1430 max_size = 0;
f6fccb12 1431
b01cd5ac 1432out_table:
5037108a
MP
1433 dm_table_put(map);
1434
1435out:
f6fccb12
MB
1436 /*
1437 * Always allow an entire first page
1438 */
1439 if (max_size <= biovec->bv_len && !(bvm->bi_size >> SECTOR_SHIFT))
1440 max_size = biovec->bv_len;
1441
f6fccb12
MB
1442 return max_size;
1443}
1444
1da177e4
LT
1445/*
1446 * The request function that just remaps the bio built up by
1447 * dm_merge_bvec.
1448 */
5a7bbad2 1449static void _dm_request(struct request_queue *q, struct bio *bio)
1da177e4 1450{
12f03a49 1451 int rw = bio_data_dir(bio);
1da177e4 1452 struct mapped_device *md = q->queuedata;
c9959059 1453 int cpu;
1da177e4 1454
2ca3310e 1455 down_read(&md->io_lock);
1da177e4 1456
074a7aca
TH
1457 cpu = part_stat_lock();
1458 part_stat_inc(cpu, &dm_disk(md)->part0, ios[rw]);
1459 part_stat_add(cpu, &dm_disk(md)->part0, sectors[rw], bio_sectors(bio));
1460 part_stat_unlock();
12f03a49 1461
6a8736d1
TH
1462 /* if we're suspended, we have to queue this io for later */
1463 if (unlikely(test_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags))) {
2ca3310e 1464 up_read(&md->io_lock);
1da177e4 1465
6a8736d1
TH
1466 if (bio_rw(bio) != READA)
1467 queue_io(md, bio);
1468 else
54d9a1b4 1469 bio_io_error(bio);
5a7bbad2 1470 return;
1da177e4
LT
1471 }
1472
f0b9a450 1473 __split_and_process_bio(md, bio);
2ca3310e 1474 up_read(&md->io_lock);
5a7bbad2 1475 return;
cec47e3d
KU
1476}
1477
1478static int dm_request_based(struct mapped_device *md)
1479{
1480 return blk_queue_stackable(md->queue);
1481}
1482
5a7bbad2 1483static void dm_request(struct request_queue *q, struct bio *bio)
cec47e3d
KU
1484{
1485 struct mapped_device *md = q->queuedata;
1486
1487 if (dm_request_based(md))
5a7bbad2
CH
1488 blk_queue_bio(q, bio);
1489 else
1490 _dm_request(q, bio);
cec47e3d
KU
1491}
1492
1493void dm_dispatch_request(struct request *rq)
1494{
1495 int r;
1496
1497 if (blk_queue_io_stat(rq->q))
1498 rq->cmd_flags |= REQ_IO_STAT;
1499
1500 rq->start_time = jiffies;
1501 r = blk_insert_cloned_request(rq->q, rq);
1502 if (r)
1503 dm_complete_request(rq, r);
1504}
1505EXPORT_SYMBOL_GPL(dm_dispatch_request);
1506
cec47e3d
KU
1507static int dm_rq_bio_constructor(struct bio *bio, struct bio *bio_orig,
1508 void *data)
1509{
1510 struct dm_rq_target_io *tio = data;
94818742
KO
1511 struct dm_rq_clone_bio_info *info =
1512 container_of(bio, struct dm_rq_clone_bio_info, clone);
cec47e3d
KU
1513
1514 info->orig = bio_orig;
1515 info->tio = tio;
1516 bio->bi_end_io = end_clone_bio;
1517 bio->bi_private = info;
cec47e3d
KU
1518
1519 return 0;
1520}
1521
1522static int setup_clone(struct request *clone, struct request *rq,
1523 struct dm_rq_target_io *tio)
1524{
d0bcb878 1525 int r;
cec47e3d 1526
29e4013d
TH
1527 r = blk_rq_prep_clone(clone, rq, tio->md->bs, GFP_ATOMIC,
1528 dm_rq_bio_constructor, tio);
1529 if (r)
1530 return r;
cec47e3d 1531
29e4013d
TH
1532 clone->cmd = rq->cmd;
1533 clone->cmd_len = rq->cmd_len;
1534 clone->sense = rq->sense;
1535 clone->buffer = rq->buffer;
cec47e3d
KU
1536 clone->end_io = end_clone_request;
1537 clone->end_io_data = tio;
1538
1539 return 0;
1540}
1541
6facdaff
KU
1542static struct request *clone_rq(struct request *rq, struct mapped_device *md,
1543 gfp_t gfp_mask)
1544{
1545 struct request *clone;
1546 struct dm_rq_target_io *tio;
1547
1548 tio = alloc_rq_tio(md, gfp_mask);
1549 if (!tio)
1550 return NULL;
1551
1552 tio->md = md;
1553 tio->ti = NULL;
1554 tio->orig = rq;
1555 tio->error = 0;
1556 memset(&tio->info, 0, sizeof(tio->info));
1557
1558 clone = &tio->clone;
1559 if (setup_clone(clone, rq, tio)) {
1560 /* -ENOMEM */
1561 free_rq_tio(tio);
1562 return NULL;
1563 }
1564
1565 return clone;
1566}
1567
cec47e3d
KU
1568/*
1569 * Called with the queue lock held.
1570 */
1571static int dm_prep_fn(struct request_queue *q, struct request *rq)
1572{
1573 struct mapped_device *md = q->queuedata;
cec47e3d
KU
1574 struct request *clone;
1575
cec47e3d
KU
1576 if (unlikely(rq->special)) {
1577 DMWARN("Already has something in rq->special.");
1578 return BLKPREP_KILL;
1579 }
1580
6facdaff
KU
1581 clone = clone_rq(rq, md, GFP_ATOMIC);
1582 if (!clone)
cec47e3d 1583 return BLKPREP_DEFER;
cec47e3d
KU
1584
1585 rq->special = clone;
1586 rq->cmd_flags |= REQ_DONTPREP;
1587
1588 return BLKPREP_OK;
1589}
1590
9eef87da
KU
1591/*
1592 * Returns:
1593 * 0 : the request has been processed (not requeued)
1594 * !0 : the request has been requeued
1595 */
1596static int map_request(struct dm_target *ti, struct request *clone,
1597 struct mapped_device *md)
cec47e3d 1598{
9eef87da 1599 int r, requeued = 0;
cec47e3d
KU
1600 struct dm_rq_target_io *tio = clone->end_io_data;
1601
cec47e3d
KU
1602 tio->ti = ti;
1603 r = ti->type->map_rq(ti, clone, &tio->info);
1604 switch (r) {
1605 case DM_MAPIO_SUBMITTED:
1606 /* The target has taken the I/O to submit by itself later */
1607 break;
1608 case DM_MAPIO_REMAPPED:
1609 /* The target has remapped the I/O so dispatch it */
6db4ccd6
JN
1610 trace_block_rq_remap(clone->q, clone, disk_devt(dm_disk(md)),
1611 blk_rq_pos(tio->orig));
cec47e3d
KU
1612 dm_dispatch_request(clone);
1613 break;
1614 case DM_MAPIO_REQUEUE:
1615 /* The target wants to requeue the I/O */
1616 dm_requeue_unmapped_request(clone);
9eef87da 1617 requeued = 1;
cec47e3d
KU
1618 break;
1619 default:
1620 if (r > 0) {
1621 DMWARN("unimplemented target map return value: %d", r);
1622 BUG();
1623 }
1624
1625 /* The target wants to complete the I/O */
1626 dm_kill_unmapped_request(clone, r);
1627 break;
1628 }
9eef87da
KU
1629
1630 return requeued;
cec47e3d
KU
1631}
1632
ba1cbad9
MS
1633static struct request *dm_start_request(struct mapped_device *md, struct request *orig)
1634{
1635 struct request *clone;
1636
1637 blk_start_request(orig);
1638 clone = orig->special;
1639 atomic_inc(&md->pending[rq_data_dir(clone)]);
1640
1641 /*
1642 * Hold the md reference here for the in-flight I/O.
1643 * We can't rely on the reference count by device opener,
1644 * because the device may be closed during the request completion
1645 * when all bios are completed.
1646 * See the comment in rq_completed() too.
1647 */
1648 dm_get(md);
1649
1650 return clone;
1651}
1652
cec47e3d
KU
1653/*
1654 * q->request_fn for request-based dm.
1655 * Called with the queue lock held.
1656 */
1657static void dm_request_fn(struct request_queue *q)
1658{
1659 struct mapped_device *md = q->queuedata;
7c666411 1660 struct dm_table *map = dm_get_live_table(md);
cec47e3d 1661 struct dm_target *ti;
b4324fee 1662 struct request *rq, *clone;
29e4013d 1663 sector_t pos;
cec47e3d
KU
1664
1665 /*
b4324fee
KU
1666 * For suspend, check blk_queue_stopped() and increment
1667 * ->pending within a single queue_lock not to increment the
1668 * number of in-flight I/Os after the queue is stopped in
1669 * dm_suspend().
cec47e3d 1670 */
7eaceacc 1671 while (!blk_queue_stopped(q)) {
cec47e3d
KU
1672 rq = blk_peek_request(q);
1673 if (!rq)
7eaceacc 1674 goto delay_and_out;
cec47e3d 1675
29e4013d
TH
1676 /* always use block 0 to find the target for flushes for now */
1677 pos = 0;
1678 if (!(rq->cmd_flags & REQ_FLUSH))
1679 pos = blk_rq_pos(rq);
1680
1681 ti = dm_table_find_target(map, pos);
ba1cbad9
MS
1682 if (!dm_target_is_valid(ti)) {
1683 /*
1684 * Must perform setup, that dm_done() requires,
1685 * before calling dm_kill_unmapped_request
1686 */
1687 DMERR_LIMIT("request attempted access beyond the end of device");
1688 clone = dm_start_request(md, rq);
1689 dm_kill_unmapped_request(clone, -EIO);
1690 continue;
1691 }
d0bcb878 1692
cec47e3d 1693 if (ti->type->busy && ti->type->busy(ti))
7eaceacc 1694 goto delay_and_out;
cec47e3d 1695
ba1cbad9 1696 clone = dm_start_request(md, rq);
b4324fee 1697
cec47e3d 1698 spin_unlock(q->queue_lock);
9eef87da
KU
1699 if (map_request(ti, clone, md))
1700 goto requeued;
1701
052189a2
KU
1702 BUG_ON(!irqs_disabled());
1703 spin_lock(q->queue_lock);
cec47e3d
KU
1704 }
1705
1706 goto out;
1707
9eef87da 1708requeued:
052189a2
KU
1709 BUG_ON(!irqs_disabled());
1710 spin_lock(q->queue_lock);
9eef87da 1711
7eaceacc
JA
1712delay_and_out:
1713 blk_delay_queue(q, HZ / 10);
cec47e3d
KU
1714out:
1715 dm_table_put(map);
cec47e3d
KU
1716}
1717
1718int dm_underlying_device_busy(struct request_queue *q)
1719{
1720 return blk_lld_busy(q);
1721}
1722EXPORT_SYMBOL_GPL(dm_underlying_device_busy);
1723
1724static int dm_lld_busy(struct request_queue *q)
1725{
1726 int r;
1727 struct mapped_device *md = q->queuedata;
7c666411 1728 struct dm_table *map = dm_get_live_table(md);
cec47e3d
KU
1729
1730 if (!map || test_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags))
1731 r = 1;
1732 else
1733 r = dm_table_any_busy_target(map);
1734
1735 dm_table_put(map);
1736
1737 return r;
1738}
1739
1da177e4
LT
1740static int dm_any_congested(void *congested_data, int bdi_bits)
1741{
8a57dfc6
CS
1742 int r = bdi_bits;
1743 struct mapped_device *md = congested_data;
1744 struct dm_table *map;
1da177e4 1745
1eb787ec 1746 if (!test_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags)) {
7c666411 1747 map = dm_get_live_table(md);
8a57dfc6 1748 if (map) {
cec47e3d
KU
1749 /*
1750 * Request-based dm cares about only own queue for
1751 * the query about congestion status of request_queue
1752 */
1753 if (dm_request_based(md))
1754 r = md->queue->backing_dev_info.state &
1755 bdi_bits;
1756 else
1757 r = dm_table_any_congested(map, bdi_bits);
1758
8a57dfc6
CS
1759 dm_table_put(map);
1760 }
1761 }
1762
1da177e4
LT
1763 return r;
1764}
1765
1766/*-----------------------------------------------------------------
1767 * An IDR is used to keep track of allocated minor numbers.
1768 *---------------------------------------------------------------*/
2b06cfff 1769static void free_minor(int minor)
1da177e4 1770{
f32c10b0 1771 spin_lock(&_minor_lock);
1da177e4 1772 idr_remove(&_minor_idr, minor);
f32c10b0 1773 spin_unlock(&_minor_lock);
1da177e4
LT
1774}
1775
1776/*
1777 * See if the device with a specific minor # is free.
1778 */
cf13ab8e 1779static int specific_minor(int minor)
1da177e4 1780{
c9d76be6 1781 int r;
1da177e4
LT
1782
1783 if (minor >= (1 << MINORBITS))
1784 return -EINVAL;
1785
c9d76be6 1786 idr_preload(GFP_KERNEL);
f32c10b0 1787 spin_lock(&_minor_lock);
1da177e4 1788
c9d76be6 1789 r = idr_alloc(&_minor_idr, MINOR_ALLOCED, minor, minor + 1, GFP_NOWAIT);
1da177e4 1790
f32c10b0 1791 spin_unlock(&_minor_lock);
c9d76be6
TH
1792 idr_preload_end();
1793 if (r < 0)
1794 return r == -ENOSPC ? -EBUSY : r;
1795 return 0;
1da177e4
LT
1796}
1797
cf13ab8e 1798static int next_free_minor(int *minor)
1da177e4 1799{
c9d76be6 1800 int r;
62f75c2f 1801
c9d76be6 1802 idr_preload(GFP_KERNEL);
f32c10b0 1803 spin_lock(&_minor_lock);
1da177e4 1804
c9d76be6 1805 r = idr_alloc(&_minor_idr, MINOR_ALLOCED, 0, 1 << MINORBITS, GFP_NOWAIT);
1da177e4 1806
f32c10b0 1807 spin_unlock(&_minor_lock);
c9d76be6
TH
1808 idr_preload_end();
1809 if (r < 0)
1810 return r;
1811 *minor = r;
1812 return 0;
1da177e4
LT
1813}
1814
83d5cde4 1815static const struct block_device_operations dm_blk_dops;
1da177e4 1816
53d5914f
MP
1817static void dm_wq_work(struct work_struct *work);
1818
4a0b4ddf
MS
1819static void dm_init_md_queue(struct mapped_device *md)
1820{
1821 /*
1822 * Request-based dm devices cannot be stacked on top of bio-based dm
1823 * devices. The type of this dm device has not been decided yet.
1824 * The type is decided at the first table loading time.
1825 * To prevent problematic device stacking, clear the queue flag
1826 * for request stacking support until then.
1827 *
1828 * This queue is new, so no concurrency on the queue_flags.
1829 */
1830 queue_flag_clear_unlocked(QUEUE_FLAG_STACKABLE, md->queue);
1831
1832 md->queue->queuedata = md;
1833 md->queue->backing_dev_info.congested_fn = dm_any_congested;
1834 md->queue->backing_dev_info.congested_data = md;
1835 blk_queue_make_request(md->queue, dm_request);
1836 blk_queue_bounce_limit(md->queue, BLK_BOUNCE_ANY);
4a0b4ddf
MS
1837 blk_queue_merge_bvec(md->queue, dm_merge_bvec);
1838}
1839
1da177e4
LT
1840/*
1841 * Allocate and initialise a blank device with a given minor.
1842 */
2b06cfff 1843static struct mapped_device *alloc_dev(int minor)
1da177e4
LT
1844{
1845 int r;
cf13ab8e 1846 struct mapped_device *md = kzalloc(sizeof(*md), GFP_KERNEL);
ba61fdd1 1847 void *old_md;
1da177e4
LT
1848
1849 if (!md) {
1850 DMWARN("unable to allocate device, out of memory.");
1851 return NULL;
1852 }
1853
10da4f79 1854 if (!try_module_get(THIS_MODULE))
6ed7ade8 1855 goto bad_module_get;
10da4f79 1856
1da177e4 1857 /* get a minor number for the dev */
2b06cfff 1858 if (minor == DM_ANY_MINOR)
cf13ab8e 1859 r = next_free_minor(&minor);
2b06cfff 1860 else
cf13ab8e 1861 r = specific_minor(minor);
1da177e4 1862 if (r < 0)
6ed7ade8 1863 goto bad_minor;
1da177e4 1864
a5664dad 1865 md->type = DM_TYPE_NONE;
2ca3310e 1866 init_rwsem(&md->io_lock);
e61290a4 1867 mutex_init(&md->suspend_lock);
a5664dad 1868 mutex_init(&md->type_lock);
022c2611 1869 spin_lock_init(&md->deferred_lock);
1da177e4
LT
1870 rwlock_init(&md->map_lock);
1871 atomic_set(&md->holders, 1);
5c6bd75d 1872 atomic_set(&md->open_count, 0);
1da177e4 1873 atomic_set(&md->event_nr, 0);
7a8c3d3b
MA
1874 atomic_set(&md->uevent_seq, 0);
1875 INIT_LIST_HEAD(&md->uevent_list);
1876 spin_lock_init(&md->uevent_lock);
1da177e4 1877
4a0b4ddf 1878 md->queue = blk_alloc_queue(GFP_KERNEL);
1da177e4 1879 if (!md->queue)
6ed7ade8 1880 goto bad_queue;
1da177e4 1881
4a0b4ddf 1882 dm_init_md_queue(md);
9faf400f 1883
1da177e4
LT
1884 md->disk = alloc_disk(1);
1885 if (!md->disk)
6ed7ade8 1886 goto bad_disk;
1da177e4 1887
316d315b
NK
1888 atomic_set(&md->pending[0], 0);
1889 atomic_set(&md->pending[1], 0);
f0b04115 1890 init_waitqueue_head(&md->wait);
53d5914f 1891 INIT_WORK(&md->work, dm_wq_work);
f0b04115
JM
1892 init_waitqueue_head(&md->eventq);
1893
1da177e4
LT
1894 md->disk->major = _major;
1895 md->disk->first_minor = minor;
1896 md->disk->fops = &dm_blk_dops;
1897 md->disk->queue = md->queue;
1898 md->disk->private_data = md;
1899 sprintf(md->disk->disk_name, "dm-%d", minor);
1900 add_disk(md->disk);
7e51f257 1901 format_dev_t(md->name, MKDEV(_major, minor));
1da177e4 1902
9c4376de
TH
1903 md->wq = alloc_workqueue("kdmflush",
1904 WQ_NON_REENTRANT | WQ_MEM_RECLAIM, 0);
304f3f6a
MB
1905 if (!md->wq)
1906 goto bad_thread;
1907
32a926da
MP
1908 md->bdev = bdget_disk(md->disk, 0);
1909 if (!md->bdev)
1910 goto bad_bdev;
1911
6a8736d1
TH
1912 bio_init(&md->flush_bio);
1913 md->flush_bio.bi_bdev = md->bdev;
1914 md->flush_bio.bi_rw = WRITE_FLUSH;
1915
ba61fdd1 1916 /* Populate the mapping, nobody knows we exist yet */
f32c10b0 1917 spin_lock(&_minor_lock);
ba61fdd1 1918 old_md = idr_replace(&_minor_idr, md, minor);
f32c10b0 1919 spin_unlock(&_minor_lock);
ba61fdd1
JM
1920
1921 BUG_ON(old_md != MINOR_ALLOCED);
1922
1da177e4
LT
1923 return md;
1924
32a926da
MP
1925bad_bdev:
1926 destroy_workqueue(md->wq);
304f3f6a 1927bad_thread:
03022c54 1928 del_gendisk(md->disk);
304f3f6a 1929 put_disk(md->disk);
6ed7ade8 1930bad_disk:
1312f40e 1931 blk_cleanup_queue(md->queue);
6ed7ade8 1932bad_queue:
1da177e4 1933 free_minor(minor);
6ed7ade8 1934bad_minor:
10da4f79 1935 module_put(THIS_MODULE);
6ed7ade8 1936bad_module_get:
1da177e4
LT
1937 kfree(md);
1938 return NULL;
1939}
1940
ae9da83f
JN
1941static void unlock_fs(struct mapped_device *md);
1942
1da177e4
LT
1943static void free_dev(struct mapped_device *md)
1944{
f331c029 1945 int minor = MINOR(disk_devt(md->disk));
63d94e48 1946
32a926da
MP
1947 unlock_fs(md);
1948 bdput(md->bdev);
304f3f6a 1949 destroy_workqueue(md->wq);
e6ee8c0b
KU
1950 if (md->io_pool)
1951 mempool_destroy(md->io_pool);
1952 if (md->bs)
1953 bioset_free(md->bs);
9c47008d 1954 blk_integrity_unregister(md->disk);
1da177e4 1955 del_gendisk(md->disk);
63d94e48 1956 free_minor(minor);
fba9f90e
JM
1957
1958 spin_lock(&_minor_lock);
1959 md->disk->private_data = NULL;
1960 spin_unlock(&_minor_lock);
1961
1da177e4 1962 put_disk(md->disk);
1312f40e 1963 blk_cleanup_queue(md->queue);
10da4f79 1964 module_put(THIS_MODULE);
1da177e4
LT
1965 kfree(md);
1966}
1967
e6ee8c0b
KU
1968static void __bind_mempools(struct mapped_device *md, struct dm_table *t)
1969{
c0820cf5 1970 struct dm_md_mempools *p = dm_table_get_md_mempools(t);
e6ee8c0b 1971
5f015204 1972 if (md->io_pool && md->bs) {
16245bdc
JN
1973 /* The md already has necessary mempools. */
1974 if (dm_table_get_type(t) == DM_TYPE_BIO_BASED) {
1975 /*
1976 * Reload bioset because front_pad may have changed
1977 * because a different table was loaded.
1978 */
1979 bioset_free(md->bs);
1980 md->bs = p->bs;
1981 p->bs = NULL;
1982 } else if (dm_table_get_type(t) == DM_TYPE_REQUEST_BASED) {
16245bdc
JN
1983 /*
1984 * There's no need to reload with request-based dm
1985 * because the size of front_pad doesn't change.
1986 * Note for future: If you are to reload bioset,
1987 * prep-ed requests in the queue may refer
1988 * to bio from the old bioset, so you must walk
1989 * through the queue to unprep.
1990 */
1991 }
e6ee8c0b 1992 goto out;
c0820cf5 1993 }
e6ee8c0b 1994
5f015204 1995 BUG_ON(!p || md->io_pool || md->bs);
e6ee8c0b
KU
1996
1997 md->io_pool = p->io_pool;
1998 p->io_pool = NULL;
e6ee8c0b
KU
1999 md->bs = p->bs;
2000 p->bs = NULL;
2001
2002out:
2003 /* mempool bind completed, now no need any mempools in the table */
2004 dm_table_free_md_mempools(t);
2005}
2006
1da177e4
LT
2007/*
2008 * Bind a table to the device.
2009 */
2010static void event_callback(void *context)
2011{
7a8c3d3b
MA
2012 unsigned long flags;
2013 LIST_HEAD(uevents);
1da177e4
LT
2014 struct mapped_device *md = (struct mapped_device *) context;
2015
7a8c3d3b
MA
2016 spin_lock_irqsave(&md->uevent_lock, flags);
2017 list_splice_init(&md->uevent_list, &uevents);
2018 spin_unlock_irqrestore(&md->uevent_lock, flags);
2019
ed9e1982 2020 dm_send_uevents(&uevents, &disk_to_dev(md->disk)->kobj);
7a8c3d3b 2021
1da177e4
LT
2022 atomic_inc(&md->event_nr);
2023 wake_up(&md->eventq);
2024}
2025
c217649b
MS
2026/*
2027 * Protected by md->suspend_lock obtained by dm_swap_table().
2028 */
4e90188b 2029static void __set_size(struct mapped_device *md, sector_t size)
1da177e4 2030{
4e90188b 2031 set_capacity(md->disk, size);
1da177e4 2032
db8fef4f 2033 i_size_write(md->bdev->bd_inode, (loff_t)size << SECTOR_SHIFT);
1da177e4
LT
2034}
2035
d5b9dd04
MP
2036/*
2037 * Return 1 if the queue has a compulsory merge_bvec_fn function.
2038 *
2039 * If this function returns 0, then the device is either a non-dm
2040 * device without a merge_bvec_fn, or it is a dm device that is
2041 * able to split any bios it receives that are too big.
2042 */
2043int dm_queue_merge_is_compulsory(struct request_queue *q)
2044{
2045 struct mapped_device *dev_md;
2046
2047 if (!q->merge_bvec_fn)
2048 return 0;
2049
2050 if (q->make_request_fn == dm_request) {
2051 dev_md = q->queuedata;
2052 if (test_bit(DMF_MERGE_IS_OPTIONAL, &dev_md->flags))
2053 return 0;
2054 }
2055
2056 return 1;
2057}
2058
2059static int dm_device_merge_is_compulsory(struct dm_target *ti,
2060 struct dm_dev *dev, sector_t start,
2061 sector_t len, void *data)
2062{
2063 struct block_device *bdev = dev->bdev;
2064 struct request_queue *q = bdev_get_queue(bdev);
2065
2066 return dm_queue_merge_is_compulsory(q);
2067}
2068
2069/*
2070 * Return 1 if it is acceptable to ignore merge_bvec_fn based
2071 * on the properties of the underlying devices.
2072 */
2073static int dm_table_merge_is_optional(struct dm_table *table)
2074{
2075 unsigned i = 0;
2076 struct dm_target *ti;
2077
2078 while (i < dm_table_get_num_targets(table)) {
2079 ti = dm_table_get_target(table, i++);
2080
2081 if (ti->type->iterate_devices &&
2082 ti->type->iterate_devices(ti, dm_device_merge_is_compulsory, NULL))
2083 return 0;
2084 }
2085
2086 return 1;
2087}
2088
042d2a9b
AK
2089/*
2090 * Returns old map, which caller must destroy.
2091 */
2092static struct dm_table *__bind(struct mapped_device *md, struct dm_table *t,
2093 struct queue_limits *limits)
1da177e4 2094{
042d2a9b 2095 struct dm_table *old_map;
165125e1 2096 struct request_queue *q = md->queue;
1da177e4 2097 sector_t size;
523d9297 2098 unsigned long flags;
d5b9dd04 2099 int merge_is_optional;
1da177e4
LT
2100
2101 size = dm_table_get_size(t);
3ac51e74
DW
2102
2103 /*
2104 * Wipe any geometry if the size of the table changed.
2105 */
2106 if (size != get_capacity(md->disk))
2107 memset(&md->geometry, 0, sizeof(md->geometry));
2108
32a926da 2109 __set_size(md, size);
d5816876 2110
2ca3310e
AK
2111 dm_table_event_callback(t, event_callback, md);
2112
e6ee8c0b
KU
2113 /*
2114 * The queue hasn't been stopped yet, if the old table type wasn't
2115 * for request-based during suspension. So stop it to prevent
2116 * I/O mapping before resume.
2117 * This must be done before setting the queue restrictions,
2118 * because request-based dm may be run just after the setting.
2119 */
2120 if (dm_table_request_based(t) && !blk_queue_stopped(q))
2121 stop_queue(q);
2122
2123 __bind_mempools(md, t);
2124
d5b9dd04
MP
2125 merge_is_optional = dm_table_merge_is_optional(t);
2126
523d9297 2127 write_lock_irqsave(&md->map_lock, flags);
042d2a9b 2128 old_map = md->map;
1da177e4 2129 md->map = t;
36a0456f
AK
2130 md->immutable_target_type = dm_table_get_immutable_target_type(t);
2131
754c5fc7 2132 dm_table_set_restrictions(t, q, limits);
d5b9dd04
MP
2133 if (merge_is_optional)
2134 set_bit(DMF_MERGE_IS_OPTIONAL, &md->flags);
2135 else
2136 clear_bit(DMF_MERGE_IS_OPTIONAL, &md->flags);
523d9297 2137 write_unlock_irqrestore(&md->map_lock, flags);
1da177e4 2138
042d2a9b 2139 return old_map;
1da177e4
LT
2140}
2141
a7940155
AK
2142/*
2143 * Returns unbound table for the caller to free.
2144 */
2145static struct dm_table *__unbind(struct mapped_device *md)
1da177e4
LT
2146{
2147 struct dm_table *map = md->map;
523d9297 2148 unsigned long flags;
1da177e4
LT
2149
2150 if (!map)
a7940155 2151 return NULL;
1da177e4
LT
2152
2153 dm_table_event_callback(map, NULL, NULL);
523d9297 2154 write_lock_irqsave(&md->map_lock, flags);
1da177e4 2155 md->map = NULL;
523d9297 2156 write_unlock_irqrestore(&md->map_lock, flags);
a7940155
AK
2157
2158 return map;
1da177e4
LT
2159}
2160
2161/*
2162 * Constructor for a new device.
2163 */
2b06cfff 2164int dm_create(int minor, struct mapped_device **result)
1da177e4
LT
2165{
2166 struct mapped_device *md;
2167
2b06cfff 2168 md = alloc_dev(minor);
1da177e4
LT
2169 if (!md)
2170 return -ENXIO;
2171
784aae73
MB
2172 dm_sysfs_init(md);
2173
1da177e4
LT
2174 *result = md;
2175 return 0;
2176}
2177
a5664dad
MS
2178/*
2179 * Functions to manage md->type.
2180 * All are required to hold md->type_lock.
2181 */
2182void dm_lock_md_type(struct mapped_device *md)
2183{
2184 mutex_lock(&md->type_lock);
2185}
2186
2187void dm_unlock_md_type(struct mapped_device *md)
2188{
2189 mutex_unlock(&md->type_lock);
2190}
2191
2192void dm_set_md_type(struct mapped_device *md, unsigned type)
2193{
2194 md->type = type;
2195}
2196
2197unsigned dm_get_md_type(struct mapped_device *md)
2198{
2199 return md->type;
2200}
2201
36a0456f
AK
2202struct target_type *dm_get_immutable_target_type(struct mapped_device *md)
2203{
2204 return md->immutable_target_type;
2205}
2206
4a0b4ddf
MS
2207/*
2208 * Fully initialize a request-based queue (->elevator, ->request_fn, etc).
2209 */
2210static int dm_init_request_based_queue(struct mapped_device *md)
2211{
2212 struct request_queue *q = NULL;
2213
2214 if (md->queue->elevator)
2215 return 1;
2216
2217 /* Fully initialize the queue */
2218 q = blk_init_allocated_queue(md->queue, dm_request_fn, NULL);
2219 if (!q)
2220 return 0;
2221
2222 md->queue = q;
4a0b4ddf
MS
2223 dm_init_md_queue(md);
2224 blk_queue_softirq_done(md->queue, dm_softirq_done);
2225 blk_queue_prep_rq(md->queue, dm_prep_fn);
2226 blk_queue_lld_busy(md->queue, dm_lld_busy);
4a0b4ddf
MS
2227
2228 elv_register_queue(md->queue);
2229
2230 return 1;
2231}
2232
2233/*
2234 * Setup the DM device's queue based on md's type
2235 */
2236int dm_setup_md_queue(struct mapped_device *md)
2237{
2238 if ((dm_get_md_type(md) == DM_TYPE_REQUEST_BASED) &&
2239 !dm_init_request_based_queue(md)) {
2240 DMWARN("Cannot initialize queue for request-based mapped device");
2241 return -EINVAL;
2242 }
2243
2244 return 0;
2245}
2246
637842cf 2247static struct mapped_device *dm_find_md(dev_t dev)
1da177e4
LT
2248{
2249 struct mapped_device *md;
1da177e4
LT
2250 unsigned minor = MINOR(dev);
2251
2252 if (MAJOR(dev) != _major || minor >= (1 << MINORBITS))
2253 return NULL;
2254
f32c10b0 2255 spin_lock(&_minor_lock);
1da177e4
LT
2256
2257 md = idr_find(&_minor_idr, minor);
fba9f90e 2258 if (md && (md == MINOR_ALLOCED ||
f331c029 2259 (MINOR(disk_devt(dm_disk(md))) != minor) ||
abdc568b 2260 dm_deleting_md(md) ||
17b2f66f 2261 test_bit(DMF_FREEING, &md->flags))) {
637842cf 2262 md = NULL;
fba9f90e
JM
2263 goto out;
2264 }
1da177e4 2265
fba9f90e 2266out:
f32c10b0 2267 spin_unlock(&_minor_lock);
1da177e4 2268
637842cf
DT
2269 return md;
2270}
2271
d229a958
DT
2272struct mapped_device *dm_get_md(dev_t dev)
2273{
2274 struct mapped_device *md = dm_find_md(dev);
2275
2276 if (md)
2277 dm_get(md);
2278
2279 return md;
2280}
3cf2e4ba 2281EXPORT_SYMBOL_GPL(dm_get_md);
d229a958 2282
9ade92a9 2283void *dm_get_mdptr(struct mapped_device *md)
637842cf 2284{
9ade92a9 2285 return md->interface_ptr;
1da177e4
LT
2286}
2287
2288void dm_set_mdptr(struct mapped_device *md, void *ptr)
2289{
2290 md->interface_ptr = ptr;
2291}
2292
2293void dm_get(struct mapped_device *md)
2294{
2295 atomic_inc(&md->holders);
3f77316d 2296 BUG_ON(test_bit(DMF_FREEING, &md->flags));
1da177e4
LT
2297}
2298
72d94861
AK
2299const char *dm_device_name(struct mapped_device *md)
2300{
2301 return md->name;
2302}
2303EXPORT_SYMBOL_GPL(dm_device_name);
2304
3f77316d 2305static void __dm_destroy(struct mapped_device *md, bool wait)
1da177e4 2306{
1134e5ae 2307 struct dm_table *map;
1da177e4 2308
3f77316d 2309 might_sleep();
fba9f90e 2310
3f77316d
KU
2311 spin_lock(&_minor_lock);
2312 map = dm_get_live_table(md);
2313 idr_replace(&_minor_idr, MINOR_ALLOCED, MINOR(disk_devt(dm_disk(md))));
2314 set_bit(DMF_FREEING, &md->flags);
2315 spin_unlock(&_minor_lock);
2316
2317 if (!dm_suspended_md(md)) {
2318 dm_table_presuspend_targets(map);
2319 dm_table_postsuspend_targets(map);
1da177e4 2320 }
3f77316d
KU
2321
2322 /*
2323 * Rare, but there may be I/O requests still going to complete,
2324 * for example. Wait for all references to disappear.
2325 * No one should increment the reference count of the mapped_device,
2326 * after the mapped_device state becomes DMF_FREEING.
2327 */
2328 if (wait)
2329 while (atomic_read(&md->holders))
2330 msleep(1);
2331 else if (atomic_read(&md->holders))
2332 DMWARN("%s: Forcibly removing mapped_device still in use! (%d users)",
2333 dm_device_name(md), atomic_read(&md->holders));
2334
2335 dm_sysfs_exit(md);
2336 dm_table_put(map);
2337 dm_table_destroy(__unbind(md));
2338 free_dev(md);
2339}
2340
2341void dm_destroy(struct mapped_device *md)
2342{
2343 __dm_destroy(md, true);
2344}
2345
2346void dm_destroy_immediate(struct mapped_device *md)
2347{
2348 __dm_destroy(md, false);
2349}
2350
2351void dm_put(struct mapped_device *md)
2352{
2353 atomic_dec(&md->holders);
1da177e4 2354}
79eb885c 2355EXPORT_SYMBOL_GPL(dm_put);
1da177e4 2356
401600df 2357static int dm_wait_for_completion(struct mapped_device *md, int interruptible)
46125c1c
MB
2358{
2359 int r = 0;
b44ebeb0
MP
2360 DECLARE_WAITQUEUE(wait, current);
2361
b44ebeb0 2362 add_wait_queue(&md->wait, &wait);
46125c1c
MB
2363
2364 while (1) {
401600df 2365 set_current_state(interruptible);
46125c1c 2366
b4324fee 2367 if (!md_in_flight(md))
46125c1c
MB
2368 break;
2369
401600df
MP
2370 if (interruptible == TASK_INTERRUPTIBLE &&
2371 signal_pending(current)) {
46125c1c
MB
2372 r = -EINTR;
2373 break;
2374 }
2375
2376 io_schedule();
2377 }
2378 set_current_state(TASK_RUNNING);
2379
b44ebeb0
MP
2380 remove_wait_queue(&md->wait, &wait);
2381
46125c1c
MB
2382 return r;
2383}
2384
1da177e4
LT
2385/*
2386 * Process the deferred bios
2387 */
ef208587 2388static void dm_wq_work(struct work_struct *work)
1da177e4 2389{
ef208587
MP
2390 struct mapped_device *md = container_of(work, struct mapped_device,
2391 work);
6d6f10df 2392 struct bio *c;
1da177e4 2393
6a8736d1 2394 down_read(&md->io_lock);
ef208587 2395
3b00b203 2396 while (!test_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags)) {
df12ee99
AK
2397 spin_lock_irq(&md->deferred_lock);
2398 c = bio_list_pop(&md->deferred);
2399 spin_unlock_irq(&md->deferred_lock);
2400
6a8736d1 2401 if (!c)
df12ee99 2402 break;
022c2611 2403
6a8736d1 2404 up_read(&md->io_lock);
3b00b203 2405
e6ee8c0b
KU
2406 if (dm_request_based(md))
2407 generic_make_request(c);
6a8736d1
TH
2408 else
2409 __split_and_process_bio(md, c);
3b00b203 2410
6a8736d1 2411 down_read(&md->io_lock);
022c2611 2412 }
73d410c0 2413
6a8736d1 2414 up_read(&md->io_lock);
1da177e4
LT
2415}
2416
9a1fb464 2417static void dm_queue_flush(struct mapped_device *md)
304f3f6a 2418{
3b00b203
MP
2419 clear_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags);
2420 smp_mb__after_clear_bit();
53d5914f 2421 queue_work(md->wq, &md->work);
304f3f6a
MB
2422}
2423
1da177e4 2424/*
042d2a9b 2425 * Swap in a new table, returning the old one for the caller to destroy.
1da177e4 2426 */
042d2a9b 2427struct dm_table *dm_swap_table(struct mapped_device *md, struct dm_table *table)
1da177e4 2428{
87eb5b21 2429 struct dm_table *live_map = NULL, *map = ERR_PTR(-EINVAL);
754c5fc7 2430 struct queue_limits limits;
042d2a9b 2431 int r;
1da177e4 2432
e61290a4 2433 mutex_lock(&md->suspend_lock);
1da177e4
LT
2434
2435 /* device must be suspended */
4f186f8b 2436 if (!dm_suspended_md(md))
93c534ae 2437 goto out;
1da177e4 2438
3ae70656
MS
2439 /*
2440 * If the new table has no data devices, retain the existing limits.
2441 * This helps multipath with queue_if_no_path if all paths disappear,
2442 * then new I/O is queued based on these limits, and then some paths
2443 * reappear.
2444 */
2445 if (dm_table_has_no_data_devices(table)) {
2446 live_map = dm_get_live_table(md);
2447 if (live_map)
2448 limits = md->queue->limits;
2449 dm_table_put(live_map);
2450 }
2451
87eb5b21
MC
2452 if (!live_map) {
2453 r = dm_calculate_queue_limits(table, &limits);
2454 if (r) {
2455 map = ERR_PTR(r);
2456 goto out;
2457 }
042d2a9b 2458 }
754c5fc7 2459
042d2a9b 2460 map = __bind(md, table, &limits);
1da177e4 2461
93c534ae 2462out:
e61290a4 2463 mutex_unlock(&md->suspend_lock);
042d2a9b 2464 return map;
1da177e4
LT
2465}
2466
2467/*
2468 * Functions to lock and unlock any filesystem running on the
2469 * device.
2470 */
2ca3310e 2471static int lock_fs(struct mapped_device *md)
1da177e4 2472{
e39e2e95 2473 int r;
1da177e4
LT
2474
2475 WARN_ON(md->frozen_sb);
dfbe03f6 2476
db8fef4f 2477 md->frozen_sb = freeze_bdev(md->bdev);
dfbe03f6 2478 if (IS_ERR(md->frozen_sb)) {
cf222b37 2479 r = PTR_ERR(md->frozen_sb);
e39e2e95
AK
2480 md->frozen_sb = NULL;
2481 return r;
dfbe03f6
AK
2482 }
2483
aa8d7c2f
AK
2484 set_bit(DMF_FROZEN, &md->flags);
2485
1da177e4
LT
2486 return 0;
2487}
2488
2ca3310e 2489static void unlock_fs(struct mapped_device *md)
1da177e4 2490{
aa8d7c2f
AK
2491 if (!test_bit(DMF_FROZEN, &md->flags))
2492 return;
2493
db8fef4f 2494 thaw_bdev(md->bdev, md->frozen_sb);
1da177e4 2495 md->frozen_sb = NULL;
aa8d7c2f 2496 clear_bit(DMF_FROZEN, &md->flags);
1da177e4
LT
2497}
2498
2499/*
2500 * We need to be able to change a mapping table under a mounted
2501 * filesystem. For example we might want to move some data in
2502 * the background. Before the table can be swapped with
2503 * dm_bind_table, dm_suspend must be called to flush any in
2504 * flight bios and ensure that any further io gets deferred.
2505 */
cec47e3d
KU
2506/*
2507 * Suspend mechanism in request-based dm.
2508 *
9f518b27
KU
2509 * 1. Flush all I/Os by lock_fs() if needed.
2510 * 2. Stop dispatching any I/O by stopping the request_queue.
2511 * 3. Wait for all in-flight I/Os to be completed or requeued.
cec47e3d 2512 *
9f518b27 2513 * To abort suspend, start the request_queue.
cec47e3d 2514 */
a3d77d35 2515int dm_suspend(struct mapped_device *md, unsigned suspend_flags)
1da177e4 2516{
2ca3310e 2517 struct dm_table *map = NULL;
46125c1c 2518 int r = 0;
a3d77d35 2519 int do_lockfs = suspend_flags & DM_SUSPEND_LOCKFS_FLAG ? 1 : 0;
2e93ccc1 2520 int noflush = suspend_flags & DM_SUSPEND_NOFLUSH_FLAG ? 1 : 0;
1da177e4 2521
e61290a4 2522 mutex_lock(&md->suspend_lock);
2ca3310e 2523
4f186f8b 2524 if (dm_suspended_md(md)) {
73d410c0 2525 r = -EINVAL;
d287483d 2526 goto out_unlock;
73d410c0 2527 }
1da177e4 2528
7c666411 2529 map = dm_get_live_table(md);
1da177e4 2530
2e93ccc1
KU
2531 /*
2532 * DMF_NOFLUSH_SUSPENDING must be set before presuspend.
2533 * This flag is cleared before dm_suspend returns.
2534 */
2535 if (noflush)
2536 set_bit(DMF_NOFLUSH_SUSPENDING, &md->flags);
2537
cf222b37
AK
2538 /* This does not get reverted if there's an error later. */
2539 dm_table_presuspend_targets(map);
2540
32a926da 2541 /*
9f518b27
KU
2542 * Flush I/O to the device.
2543 * Any I/O submitted after lock_fs() may not be flushed.
2544 * noflush takes precedence over do_lockfs.
2545 * (lock_fs() flushes I/Os and waits for them to complete.)
32a926da
MP
2546 */
2547 if (!noflush && do_lockfs) {
2548 r = lock_fs(md);
2549 if (r)
f431d966 2550 goto out;
aa8d7c2f 2551 }
1da177e4
LT
2552
2553 /*
3b00b203
MP
2554 * Here we must make sure that no processes are submitting requests
2555 * to target drivers i.e. no one may be executing
2556 * __split_and_process_bio. This is called from dm_request and
2557 * dm_wq_work.
2558 *
2559 * To get all processes out of __split_and_process_bio in dm_request,
2560 * we take the write lock. To prevent any process from reentering
6a8736d1
TH
2561 * __split_and_process_bio from dm_request and quiesce the thread
2562 * (dm_wq_work), we set BMF_BLOCK_IO_FOR_SUSPEND and call
2563 * flush_workqueue(md->wq).
1da177e4 2564 */
2ca3310e 2565 down_write(&md->io_lock);
1eb787ec 2566 set_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags);
2ca3310e 2567 up_write(&md->io_lock);
1da177e4 2568
d0bcb878 2569 /*
29e4013d
TH
2570 * Stop md->queue before flushing md->wq in case request-based
2571 * dm defers requests to md->wq from md->queue.
d0bcb878 2572 */
cec47e3d 2573 if (dm_request_based(md))
9f518b27 2574 stop_queue(md->queue);
cec47e3d 2575
d0bcb878
KU
2576 flush_workqueue(md->wq);
2577
1da177e4 2578 /*
3b00b203
MP
2579 * At this point no more requests are entering target request routines.
2580 * We call dm_wait_for_completion to wait for all existing requests
2581 * to finish.
1da177e4 2582 */
401600df 2583 r = dm_wait_for_completion(md, TASK_INTERRUPTIBLE);
1da177e4 2584
2ca3310e 2585 down_write(&md->io_lock);
6d6f10df 2586 if (noflush)
022c2611 2587 clear_bit(DMF_NOFLUSH_SUSPENDING, &md->flags);
94d6351e 2588 up_write(&md->io_lock);
2e93ccc1 2589
1da177e4 2590 /* were we interrupted ? */
46125c1c 2591 if (r < 0) {
9a1fb464 2592 dm_queue_flush(md);
73d410c0 2593
cec47e3d 2594 if (dm_request_based(md))
9f518b27 2595 start_queue(md->queue);
cec47e3d 2596
2ca3310e 2597 unlock_fs(md);
2e93ccc1 2598 goto out; /* pushback list is already flushed, so skip flush */
2ca3310e 2599 }
1da177e4 2600
3b00b203
MP
2601 /*
2602 * If dm_wait_for_completion returned 0, the device is completely
2603 * quiescent now. There is no request-processing activity. All new
2604 * requests are being added to md->deferred list.
2605 */
2606
2ca3310e 2607 set_bit(DMF_SUSPENDED, &md->flags);
b84b0287 2608
4d4471cb
KU
2609 dm_table_postsuspend_targets(map);
2610
2ca3310e
AK
2611out:
2612 dm_table_put(map);
d287483d
AK
2613
2614out_unlock:
e61290a4 2615 mutex_unlock(&md->suspend_lock);
cf222b37 2616 return r;
1da177e4
LT
2617}
2618
2619int dm_resume(struct mapped_device *md)
2620{
cf222b37 2621 int r = -EINVAL;
cf222b37 2622 struct dm_table *map = NULL;
1da177e4 2623
e61290a4 2624 mutex_lock(&md->suspend_lock);
4f186f8b 2625 if (!dm_suspended_md(md))
cf222b37 2626 goto out;
cf222b37 2627
7c666411 2628 map = dm_get_live_table(md);
2ca3310e 2629 if (!map || !dm_table_get_size(map))
cf222b37 2630 goto out;
1da177e4 2631
8757b776
MB
2632 r = dm_table_resume_targets(map);
2633 if (r)
2634 goto out;
2ca3310e 2635
9a1fb464 2636 dm_queue_flush(md);
2ca3310e 2637
cec47e3d
KU
2638 /*
2639 * Flushing deferred I/Os must be done after targets are resumed
2640 * so that mapping of targets can work correctly.
2641 * Request-based dm is queueing the deferred I/Os in its request_queue.
2642 */
2643 if (dm_request_based(md))
2644 start_queue(md->queue);
2645
2ca3310e
AK
2646 unlock_fs(md);
2647
2648 clear_bit(DMF_SUSPENDED, &md->flags);
2649
cf222b37
AK
2650 r = 0;
2651out:
2652 dm_table_put(map);
e61290a4 2653 mutex_unlock(&md->suspend_lock);
2ca3310e 2654
cf222b37 2655 return r;
1da177e4
LT
2656}
2657
2658/*-----------------------------------------------------------------
2659 * Event notification.
2660 *---------------------------------------------------------------*/
3abf85b5 2661int dm_kobject_uevent(struct mapped_device *md, enum kobject_action action,
60935eb2 2662 unsigned cookie)
69267a30 2663{
60935eb2
MB
2664 char udev_cookie[DM_COOKIE_LENGTH];
2665 char *envp[] = { udev_cookie, NULL };
2666
2667 if (!cookie)
3abf85b5 2668 return kobject_uevent(&disk_to_dev(md->disk)->kobj, action);
60935eb2
MB
2669 else {
2670 snprintf(udev_cookie, DM_COOKIE_LENGTH, "%s=%u",
2671 DM_COOKIE_ENV_VAR_NAME, cookie);
3abf85b5
PR
2672 return kobject_uevent_env(&disk_to_dev(md->disk)->kobj,
2673 action, envp);
60935eb2 2674 }
69267a30
AK
2675}
2676
7a8c3d3b
MA
2677uint32_t dm_next_uevent_seq(struct mapped_device *md)
2678{
2679 return atomic_add_return(1, &md->uevent_seq);
2680}
2681
1da177e4
LT
2682uint32_t dm_get_event_nr(struct mapped_device *md)
2683{
2684 return atomic_read(&md->event_nr);
2685}
2686
2687int dm_wait_event(struct mapped_device *md, int event_nr)
2688{
2689 return wait_event_interruptible(md->eventq,
2690 (event_nr != atomic_read(&md->event_nr)));
2691}
2692
7a8c3d3b
MA
2693void dm_uevent_add(struct mapped_device *md, struct list_head *elist)
2694{
2695 unsigned long flags;
2696
2697 spin_lock_irqsave(&md->uevent_lock, flags);
2698 list_add(elist, &md->uevent_list);
2699 spin_unlock_irqrestore(&md->uevent_lock, flags);
2700}
2701
1da177e4
LT
2702/*
2703 * The gendisk is only valid as long as you have a reference
2704 * count on 'md'.
2705 */
2706struct gendisk *dm_disk(struct mapped_device *md)
2707{
2708 return md->disk;
2709}
2710
784aae73
MB
2711struct kobject *dm_kobject(struct mapped_device *md)
2712{
2713 return &md->kobj;
2714}
2715
2716/*
2717 * struct mapped_device should not be exported outside of dm.c
2718 * so use this check to verify that kobj is part of md structure
2719 */
2720struct mapped_device *dm_get_from_kobject(struct kobject *kobj)
2721{
2722 struct mapped_device *md;
2723
2724 md = container_of(kobj, struct mapped_device, kobj);
2725 if (&md->kobj != kobj)
2726 return NULL;
2727
4d89b7b4 2728 if (test_bit(DMF_FREEING, &md->flags) ||
432a212c 2729 dm_deleting_md(md))
4d89b7b4
MB
2730 return NULL;
2731
784aae73
MB
2732 dm_get(md);
2733 return md;
2734}
2735
4f186f8b 2736int dm_suspended_md(struct mapped_device *md)
1da177e4
LT
2737{
2738 return test_bit(DMF_SUSPENDED, &md->flags);
2739}
2740
64dbce58
KU
2741int dm_suspended(struct dm_target *ti)
2742{
ecdb2e25 2743 return dm_suspended_md(dm_table_get_md(ti->table));
64dbce58
KU
2744}
2745EXPORT_SYMBOL_GPL(dm_suspended);
2746
2e93ccc1
KU
2747int dm_noflush_suspending(struct dm_target *ti)
2748{
ecdb2e25 2749 return __noflush_suspending(dm_table_get_md(ti->table));
2e93ccc1
KU
2750}
2751EXPORT_SYMBOL_GPL(dm_noflush_suspending);
2752
c0820cf5 2753struct dm_md_mempools *dm_alloc_md_mempools(unsigned type, unsigned integrity, unsigned per_bio_data_size)
e6ee8c0b 2754{
5f015204
JN
2755 struct dm_md_mempools *pools = kzalloc(sizeof(*pools), GFP_KERNEL);
2756 struct kmem_cache *cachep;
2757 unsigned int pool_size;
2758 unsigned int front_pad;
e6ee8c0b
KU
2759
2760 if (!pools)
2761 return NULL;
2762
23e5083b 2763 if (type == DM_TYPE_BIO_BASED) {
5f015204
JN
2764 cachep = _io_cache;
2765 pool_size = 16;
2766 front_pad = roundup(per_bio_data_size, __alignof__(struct dm_target_io)) + offsetof(struct dm_target_io, clone);
2767 } else if (type == DM_TYPE_REQUEST_BASED) {
2768 cachep = _rq_tio_cache;
2769 pool_size = MIN_IOS;
2770 front_pad = offsetof(struct dm_rq_clone_bio_info, clone);
2771 /* per_bio_data_size is not used. See __bind_mempools(). */
2772 WARN_ON(per_bio_data_size != 0);
2773 } else
2774 goto out;
e6ee8c0b 2775
5f015204
JN
2776 pools->io_pool = mempool_create_slab_pool(MIN_IOS, cachep);
2777 if (!pools->io_pool)
2778 goto out;
e6ee8c0b 2779
5f015204 2780 pools->bs = bioset_create(pool_size, front_pad);
e6ee8c0b 2781 if (!pools->bs)
5f015204 2782 goto out;
e6ee8c0b 2783
a91a2785 2784 if (integrity && bioset_integrity_create(pools->bs, pool_size))
5f015204 2785 goto out;
a91a2785 2786
e6ee8c0b
KU
2787 return pools;
2788
5f015204
JN
2789out:
2790 dm_free_md_mempools(pools);
e6ee8c0b
KU
2791
2792 return NULL;
2793}
2794
2795void dm_free_md_mempools(struct dm_md_mempools *pools)
2796{
2797 if (!pools)
2798 return;
2799
2800 if (pools->io_pool)
2801 mempool_destroy(pools->io_pool);
2802
e6ee8c0b
KU
2803 if (pools->bs)
2804 bioset_free(pools->bs);
2805
2806 kfree(pools);
2807}
2808
83d5cde4 2809static const struct block_device_operations dm_blk_dops = {
1da177e4
LT
2810 .open = dm_blk_open,
2811 .release = dm_blk_close,
aa129a22 2812 .ioctl = dm_blk_ioctl,
3ac51e74 2813 .getgeo = dm_blk_getgeo,
1da177e4
LT
2814 .owner = THIS_MODULE
2815};
2816
2817EXPORT_SYMBOL(dm_get_mapinfo);
2818
2819/*
2820 * module hooks
2821 */
2822module_init(dm_init);
2823module_exit(dm_exit);
2824
2825module_param(major, uint, 0);
2826MODULE_PARM_DESC(major, "The major number of the device mapper");
2827MODULE_DESCRIPTION(DM_NAME " driver");
2828MODULE_AUTHOR("Joe Thornber <dm-devel@redhat.com>");
2829MODULE_LICENSE("GPL");
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