xref: /linux/drivers/md/dm-cache-target.c (revision 546b928da0427b0d6c663cbb992bd7bfa9ac7971)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Copyright (C) 2012 Red Hat. All rights reserved.
4  *
5  * This file is released under the GPL.
6  */
7 
8 #include "dm.h"
9 #include "dm-bio-prison-v2.h"
10 #include "dm-bio-record.h"
11 #include "dm-cache-metadata.h"
12 #include "dm-io-tracker.h"
13 #include "dm-cache-background-tracker.h"
14 
15 #include <linux/dm-io.h>
16 #include <linux/dm-kcopyd.h>
17 #include <linux/jiffies.h>
18 #include <linux/init.h>
19 #include <linux/kstrtox.h>
20 #include <linux/mempool.h>
21 #include <linux/module.h>
22 #include <linux/rwsem.h>
23 #include <linux/slab.h>
24 #include <linux/vmalloc.h>
25 
26 #define DM_MSG_PREFIX "cache"
27 
28 DECLARE_DM_KCOPYD_THROTTLE_WITH_MODULE_PARM(cache_copy_throttle,
29 	"A percentage of time allocated for copying to and/or from cache");
30 
31 /*----------------------------------------------------------------*/
32 
33 /*
34  * Glossary:
35  *
36  * oblock: index of an origin block
37  * cblock: index of a cache block
38  * promotion: movement of a block from origin to cache
39  * demotion: movement of a block from cache to origin
40  * migration: movement of a block between the origin and cache device,
41  *	      either direction
42  */
43 
44 /*----------------------------------------------------------------*/
45 
46 /*
47  * Represents a chunk of future work.  'input' allows continuations to pass
48  * values between themselves, typically error values.
49  */
50 struct continuation {
51 	struct work_struct ws;
52 	blk_status_t input;
53 };
54 
init_continuation(struct continuation * k,void (* fn)(struct work_struct *))55 static inline void init_continuation(struct continuation *k,
56 				     void (*fn)(struct work_struct *))
57 {
58 	INIT_WORK(&k->ws, fn);
59 	k->input = 0;
60 }
61 
queue_continuation(struct workqueue_struct * wq,struct continuation * k)62 static inline void queue_continuation(struct workqueue_struct *wq,
63 				      struct continuation *k)
64 {
65 	queue_work(wq, &k->ws);
66 }
67 
68 /*----------------------------------------------------------------*/
69 
70 /*
71  * The batcher collects together pieces of work that need a particular
72  * operation to occur before they can proceed (typically a commit).
73  */
74 struct batcher {
75 	/*
76 	 * The operation that everyone is waiting for.
77 	 */
78 	blk_status_t (*commit_op)(void *context);
79 	void *commit_context;
80 
81 	/*
82 	 * This is how bios should be issued once the commit op is complete
83 	 * (accounted_request).
84 	 */
85 	void (*issue_op)(struct bio *bio, void *context);
86 	void *issue_context;
87 
88 	/*
89 	 * Queued work gets put on here after commit.
90 	 */
91 	struct workqueue_struct *wq;
92 
93 	spinlock_t lock;
94 	struct list_head work_items;
95 	struct bio_list bios;
96 	struct work_struct commit_work;
97 
98 	bool commit_scheduled;
99 };
100 
__commit(struct work_struct * _ws)101 static void __commit(struct work_struct *_ws)
102 {
103 	struct batcher *b = container_of(_ws, struct batcher, commit_work);
104 	blk_status_t r;
105 	struct list_head work_items;
106 	struct work_struct *ws, *tmp;
107 	struct continuation *k;
108 	struct bio *bio;
109 	struct bio_list bios;
110 
111 	INIT_LIST_HEAD(&work_items);
112 	bio_list_init(&bios);
113 
114 	/*
115 	 * We have to grab these before the commit_op to avoid a race
116 	 * condition.
117 	 */
118 	spin_lock_irq(&b->lock);
119 	list_splice_init(&b->work_items, &work_items);
120 	bio_list_merge_init(&bios, &b->bios);
121 	b->commit_scheduled = false;
122 	spin_unlock_irq(&b->lock);
123 
124 	r = b->commit_op(b->commit_context);
125 
126 	list_for_each_entry_safe(ws, tmp, &work_items, entry) {
127 		k = container_of(ws, struct continuation, ws);
128 		k->input = r;
129 		INIT_LIST_HEAD(&ws->entry); /* to avoid a WARN_ON */
130 		queue_work(b->wq, ws);
131 	}
132 
133 	while ((bio = bio_list_pop(&bios))) {
134 		if (r) {
135 			bio->bi_status = r;
136 			bio_endio(bio);
137 		} else
138 			b->issue_op(bio, b->issue_context);
139 	}
140 }
141 
batcher_init(struct batcher * b,blk_status_t (* commit_op)(void *),void * commit_context,void (* issue_op)(struct bio * bio,void *),void * issue_context,struct workqueue_struct * wq)142 static void batcher_init(struct batcher *b,
143 			 blk_status_t (*commit_op)(void *),
144 			 void *commit_context,
145 			 void (*issue_op)(struct bio *bio, void *),
146 			 void *issue_context,
147 			 struct workqueue_struct *wq)
148 {
149 	b->commit_op = commit_op;
150 	b->commit_context = commit_context;
151 	b->issue_op = issue_op;
152 	b->issue_context = issue_context;
153 	b->wq = wq;
154 
155 	spin_lock_init(&b->lock);
156 	INIT_LIST_HEAD(&b->work_items);
157 	bio_list_init(&b->bios);
158 	INIT_WORK(&b->commit_work, __commit);
159 	b->commit_scheduled = false;
160 }
161 
async_commit(struct batcher * b)162 static void async_commit(struct batcher *b)
163 {
164 	queue_work(b->wq, &b->commit_work);
165 }
166 
continue_after_commit(struct batcher * b,struct continuation * k)167 static void continue_after_commit(struct batcher *b, struct continuation *k)
168 {
169 	bool commit_scheduled;
170 
171 	spin_lock_irq(&b->lock);
172 	commit_scheduled = b->commit_scheduled;
173 	list_add_tail(&k->ws.entry, &b->work_items);
174 	spin_unlock_irq(&b->lock);
175 
176 	if (commit_scheduled)
177 		async_commit(b);
178 }
179 
180 /*
181  * Bios are errored if commit failed.
182  */
issue_after_commit(struct batcher * b,struct bio * bio)183 static void issue_after_commit(struct batcher *b, struct bio *bio)
184 {
185 	bool commit_scheduled;
186 
187 	spin_lock_irq(&b->lock);
188 	commit_scheduled = b->commit_scheduled;
189 	bio_list_add(&b->bios, bio);
190 	spin_unlock_irq(&b->lock);
191 
192 	if (commit_scheduled)
193 		async_commit(b);
194 }
195 
196 /*
197  * Call this if some urgent work is waiting for the commit to complete.
198  */
schedule_commit(struct batcher * b)199 static void schedule_commit(struct batcher *b)
200 {
201 	bool immediate;
202 
203 	spin_lock_irq(&b->lock);
204 	immediate = !list_empty(&b->work_items) || !bio_list_empty(&b->bios);
205 	b->commit_scheduled = true;
206 	spin_unlock_irq(&b->lock);
207 
208 	if (immediate)
209 		async_commit(b);
210 }
211 
212 /*
213  * There are a couple of places where we let a bio run, but want to do some
214  * work before calling its endio function.  We do this by temporarily
215  * changing the endio fn.
216  */
217 struct dm_hook_info {
218 	bio_end_io_t *bi_end_io;
219 };
220 
dm_hook_bio(struct dm_hook_info * h,struct bio * bio,bio_end_io_t * bi_end_io,void * bi_private)221 static void dm_hook_bio(struct dm_hook_info *h, struct bio *bio,
222 			bio_end_io_t *bi_end_io, void *bi_private)
223 {
224 	h->bi_end_io = bio->bi_end_io;
225 
226 	bio->bi_end_io = bi_end_io;
227 	bio->bi_private = bi_private;
228 }
229 
dm_unhook_bio(struct dm_hook_info * h,struct bio * bio)230 static void dm_unhook_bio(struct dm_hook_info *h, struct bio *bio)
231 {
232 	bio->bi_end_io = h->bi_end_io;
233 }
234 
235 /*----------------------------------------------------------------*/
236 
237 #define MIGRATION_POOL_SIZE 128
238 #define COMMIT_PERIOD HZ
239 #define MIGRATION_COUNT_WINDOW 10
240 
241 /*
242  * The block size of the device holding cache data must be
243  * between 32KB and 1GB.
244  */
245 #define DATA_DEV_BLOCK_SIZE_MIN_SECTORS (32 * 1024 >> SECTOR_SHIFT)
246 #define DATA_DEV_BLOCK_SIZE_MAX_SECTORS (1024 * 1024 * 1024 >> SECTOR_SHIFT)
247 
248 enum cache_metadata_mode {
249 	CM_WRITE,		/* metadata may be changed */
250 	CM_READ_ONLY,		/* metadata may not be changed */
251 	CM_FAIL
252 };
253 
254 enum cache_io_mode {
255 	/*
256 	 * Data is written to cached blocks only.  These blocks are marked
257 	 * dirty.  If you lose the cache device you will lose data.
258 	 * Potential performance increase for both reads and writes.
259 	 */
260 	CM_IO_WRITEBACK,
261 
262 	/*
263 	 * Data is written to both cache and origin.  Blocks are never
264 	 * dirty.  Potential performance benfit for reads only.
265 	 */
266 	CM_IO_WRITETHROUGH,
267 
268 	/*
269 	 * A degraded mode useful for various cache coherency situations
270 	 * (eg, rolling back snapshots).  Reads and writes always go to the
271 	 * origin.  If a write goes to a cached oblock, then the cache
272 	 * block is invalidated.
273 	 */
274 	CM_IO_PASSTHROUGH
275 };
276 
277 struct cache_features {
278 	enum cache_metadata_mode mode;
279 	enum cache_io_mode io_mode;
280 	unsigned int metadata_version;
281 	bool discard_passdown:1;
282 };
283 
284 struct cache_stats {
285 	atomic_t read_hit;
286 	atomic_t read_miss;
287 	atomic_t write_hit;
288 	atomic_t write_miss;
289 	atomic_t demotion;
290 	atomic_t promotion;
291 	atomic_t writeback;
292 	atomic_t copies_avoided;
293 	atomic_t cache_cell_clash;
294 	atomic_t commit_count;
295 	atomic_t discard_count;
296 };
297 
298 struct cache {
299 	struct dm_target *ti;
300 	spinlock_t lock;
301 
302 	/*
303 	 * Fields for converting from sectors to blocks.
304 	 */
305 	int sectors_per_block_shift;
306 	sector_t sectors_per_block;
307 
308 	struct dm_cache_metadata *cmd;
309 
310 	/*
311 	 * Metadata is written to this device.
312 	 */
313 	struct dm_dev *metadata_dev;
314 
315 	/*
316 	 * The slower of the two data devices.  Typically a spindle.
317 	 */
318 	struct dm_dev *origin_dev;
319 
320 	/*
321 	 * The faster of the two data devices.  Typically an SSD.
322 	 */
323 	struct dm_dev *cache_dev;
324 
325 	/*
326 	 * Size of the origin device in _complete_ blocks and native sectors.
327 	 */
328 	dm_oblock_t origin_blocks;
329 	sector_t origin_sectors;
330 
331 	/*
332 	 * Size of the cache device in blocks.
333 	 */
334 	dm_cblock_t cache_size;
335 
336 	/*
337 	 * Invalidation fields.
338 	 */
339 	spinlock_t invalidation_lock;
340 	struct list_head invalidation_requests;
341 
342 	sector_t migration_threshold;
343 
344 	/*
345 	 * The number of in flight migrations that are performing
346 	 * background io. eg, promotion, writeback.
347 	 */
348 	atomic_t nr_io_migrations;
349 
350 	struct bio_list deferred_bios;
351 
352 	struct rw_semaphore quiesce_lock;
353 
354 	/*
355 	 * origin_blocks entries, discarded if set.
356 	 */
357 	dm_dblock_t discard_nr_blocks;
358 	unsigned long *discard_bitset;
359 	uint32_t discard_block_size; /* a power of 2 times sectors per block */
360 
361 	/*
362 	 * Rather than reconstructing the table line for the status we just
363 	 * save it and regurgitate.
364 	 */
365 	unsigned int nr_ctr_args;
366 	const char **ctr_args;
367 
368 	struct dm_kcopyd_client *copier;
369 	struct work_struct deferred_bio_worker;
370 	struct work_struct migration_worker;
371 	struct workqueue_struct *wq;
372 	struct delayed_work waker;
373 	struct dm_bio_prison_v2 *prison;
374 
375 	/*
376 	 * cache_size entries, dirty if set
377 	 */
378 	unsigned long *dirty_bitset;
379 	atomic_t nr_dirty;
380 
381 	unsigned int policy_nr_args;
382 	struct dm_cache_policy *policy;
383 
384 	/*
385 	 * Cache features such as write-through.
386 	 */
387 	struct cache_features features;
388 
389 	struct cache_stats stats;
390 
391 	bool need_tick_bio:1;
392 	bool sized:1;
393 	bool invalidate:1;
394 	bool commit_requested:1;
395 	bool loaded_mappings:1;
396 	bool loaded_discards:1;
397 
398 	/* background work management */
399 	bool background_work_allowed;
400 	unsigned background_work_nr;
401 	spinlock_t background_work_lock;
402 	wait_queue_head_t background_work_wait;
403 
404 	struct batcher committer;
405 	struct work_struct commit_ws;
406 
407 	struct dm_io_tracker tracker;
408 
409 	mempool_t migration_pool;
410 
411 	struct bio_set bs;
412 
413 	/*
414 	 * Cache_size entries. Set bits indicate blocks mapped beyond the
415 	 * target length, which are marked for invalidation.
416 	 */
417 	unsigned long *invalid_bitset;
418 };
419 
420 struct per_bio_data {
421 	bool tick:1;
422 	unsigned int req_nr:2;
423 	struct dm_bio_prison_cell_v2 *cell;
424 	struct dm_hook_info hook_info;
425 	sector_t len;
426 };
427 
428 struct dm_cache_migration {
429 	struct continuation k;
430 	struct cache *cache;
431 
432 	struct policy_work *op;
433 	struct bio *overwrite_bio;
434 	struct dm_bio_prison_cell_v2 *cell;
435 
436 	dm_cblock_t invalidate_cblock;
437 	dm_oblock_t invalidate_oblock;
438 };
439 
440 /*----------------------------------------------------------------*/
441 
writethrough_mode(struct cache * cache)442 static bool writethrough_mode(struct cache *cache)
443 {
444 	return cache->features.io_mode == CM_IO_WRITETHROUGH;
445 }
446 
writeback_mode(struct cache * cache)447 static bool writeback_mode(struct cache *cache)
448 {
449 	return cache->features.io_mode == CM_IO_WRITEBACK;
450 }
451 
passthrough_mode(struct cache * cache)452 static inline bool passthrough_mode(struct cache *cache)
453 {
454 	return unlikely(cache->features.io_mode == CM_IO_PASSTHROUGH);
455 }
456 
457 /*----------------------------------------------------------------*/
458 
wake_deferred_bio_worker(struct cache * cache)459 static void wake_deferred_bio_worker(struct cache *cache)
460 {
461 	queue_work(cache->wq, &cache->deferred_bio_worker);
462 }
463 
wake_migration_worker(struct cache * cache)464 static void wake_migration_worker(struct cache *cache)
465 {
466 	if (passthrough_mode(cache))
467 		return;
468 
469 	queue_work(cache->wq, &cache->migration_worker);
470 }
471 
472 /*----------------------------------------------------------------*/
473 
alloc_prison_cell(struct cache * cache)474 static struct dm_bio_prison_cell_v2 *alloc_prison_cell(struct cache *cache)
475 {
476 	return dm_bio_prison_alloc_cell_v2(cache->prison, GFP_NOIO);
477 }
478 
free_prison_cell(struct cache * cache,struct dm_bio_prison_cell_v2 * cell)479 static void free_prison_cell(struct cache *cache, struct dm_bio_prison_cell_v2 *cell)
480 {
481 	dm_bio_prison_free_cell_v2(cache->prison, cell);
482 }
483 
alloc_migration(struct cache * cache)484 static struct dm_cache_migration *alloc_migration(struct cache *cache)
485 {
486 	struct dm_cache_migration *mg;
487 
488 	mg = mempool_alloc(&cache->migration_pool, GFP_NOIO);
489 
490 	memset(mg, 0, sizeof(*mg));
491 
492 	mg->cache = cache;
493 
494 	return mg;
495 }
496 
free_migration(struct dm_cache_migration * mg)497 static void free_migration(struct dm_cache_migration *mg)
498 {
499 	mempool_free(mg, &mg->cache->migration_pool);
500 }
501 
502 /*----------------------------------------------------------------*/
503 
oblock_succ(dm_oblock_t b)504 static inline dm_oblock_t oblock_succ(dm_oblock_t b)
505 {
506 	return to_oblock(from_oblock(b) + 1ull);
507 }
508 
build_key(dm_oblock_t begin,dm_oblock_t end,struct dm_cell_key_v2 * key)509 static void build_key(dm_oblock_t begin, dm_oblock_t end, struct dm_cell_key_v2 *key)
510 {
511 	key->virtual = 0;
512 	key->dev = 0;
513 	key->block_begin = from_oblock(begin);
514 	key->block_end = from_oblock(end);
515 }
516 
517 /*
518  * We have two lock levels.  Level 0, which is used to prevent WRITEs, and
519  * level 1 which prevents *both* READs and WRITEs.
520  */
521 #define WRITE_LOCK_LEVEL 0
522 #define READ_WRITE_LOCK_LEVEL 1
523 
lock_level(struct bio * bio)524 static unsigned int lock_level(struct bio *bio)
525 {
526 	return bio_data_dir(bio) == WRITE ?
527 		WRITE_LOCK_LEVEL :
528 		READ_WRITE_LOCK_LEVEL;
529 }
530 
531 /*
532  *--------------------------------------------------------------
533  * Per bio data
534  *--------------------------------------------------------------
535  */
536 
get_per_bio_data(struct bio * bio)537 static struct per_bio_data *get_per_bio_data(struct bio *bio)
538 {
539 	struct per_bio_data *pb = dm_per_bio_data(bio, sizeof(struct per_bio_data));
540 
541 	BUG_ON(!pb);
542 	return pb;
543 }
544 
init_per_bio_data(struct bio * bio)545 static struct per_bio_data *init_per_bio_data(struct bio *bio)
546 {
547 	struct per_bio_data *pb = get_per_bio_data(bio);
548 
549 	pb->tick = false;
550 	pb->req_nr = dm_bio_get_target_bio_nr(bio);
551 	pb->cell = NULL;
552 	pb->len = 0;
553 
554 	return pb;
555 }
556 
557 /*----------------------------------------------------------------*/
558 
defer_bio(struct cache * cache,struct bio * bio)559 static void defer_bio(struct cache *cache, struct bio *bio)
560 {
561 	spin_lock_irq(&cache->lock);
562 	bio_list_add(&cache->deferred_bios, bio);
563 	spin_unlock_irq(&cache->lock);
564 
565 	wake_deferred_bio_worker(cache);
566 }
567 
defer_bios(struct cache * cache,struct bio_list * bios)568 static void defer_bios(struct cache *cache, struct bio_list *bios)
569 {
570 	spin_lock_irq(&cache->lock);
571 	bio_list_merge_init(&cache->deferred_bios, bios);
572 	spin_unlock_irq(&cache->lock);
573 
574 	wake_deferred_bio_worker(cache);
575 }
576 
577 /*----------------------------------------------------------------*/
578 
bio_detain_shared(struct cache * cache,dm_oblock_t oblock,struct bio * bio)579 static bool bio_detain_shared(struct cache *cache, dm_oblock_t oblock, struct bio *bio)
580 {
581 	bool r;
582 	struct per_bio_data *pb;
583 	struct dm_cell_key_v2 key;
584 	dm_oblock_t end = to_oblock(from_oblock(oblock) + 1ULL);
585 	struct dm_bio_prison_cell_v2 *cell_prealloc, *cell;
586 
587 	cell_prealloc = alloc_prison_cell(cache); /* FIXME: allow wait if calling from worker */
588 
589 	build_key(oblock, end, &key);
590 	r = dm_cell_get_v2(cache->prison, &key, lock_level(bio), bio, cell_prealloc, &cell);
591 	if (!r) {
592 		/*
593 		 * Failed to get the lock.
594 		 */
595 		free_prison_cell(cache, cell_prealloc);
596 		return r;
597 	}
598 
599 	if (cell != cell_prealloc)
600 		free_prison_cell(cache, cell_prealloc);
601 
602 	pb = get_per_bio_data(bio);
603 	pb->cell = cell;
604 
605 	return r;
606 }
607 
608 /*----------------------------------------------------------------*/
609 
is_dirty(struct cache * cache,dm_cblock_t b)610 static bool is_dirty(struct cache *cache, dm_cblock_t b)
611 {
612 	return test_bit(from_cblock(b), cache->dirty_bitset);
613 }
614 
set_dirty(struct cache * cache,dm_cblock_t cblock)615 static void set_dirty(struct cache *cache, dm_cblock_t cblock)
616 {
617 	if (!test_and_set_bit(from_cblock(cblock), cache->dirty_bitset)) {
618 		atomic_inc(&cache->nr_dirty);
619 		policy_set_dirty(cache->policy, cblock);
620 	}
621 }
622 
623 /*
624  * These two are called when setting after migrations to force the policy
625  * and dirty bitset to be in sync.
626  */
force_set_dirty(struct cache * cache,dm_cblock_t cblock)627 static void force_set_dirty(struct cache *cache, dm_cblock_t cblock)
628 {
629 	if (!test_and_set_bit(from_cblock(cblock), cache->dirty_bitset))
630 		atomic_inc(&cache->nr_dirty);
631 	policy_set_dirty(cache->policy, cblock);
632 }
633 
force_clear_dirty(struct cache * cache,dm_cblock_t cblock)634 static void force_clear_dirty(struct cache *cache, dm_cblock_t cblock)
635 {
636 	if (test_and_clear_bit(from_cblock(cblock), cache->dirty_bitset)) {
637 		if (atomic_dec_return(&cache->nr_dirty) == 0)
638 			dm_table_event(cache->ti->table);
639 	}
640 
641 	policy_clear_dirty(cache->policy, cblock);
642 }
643 
644 /*----------------------------------------------------------------*/
645 
block_size_is_power_of_two(struct cache * cache)646 static bool block_size_is_power_of_two(struct cache *cache)
647 {
648 	return cache->sectors_per_block_shift >= 0;
649 }
650 
block_div(dm_block_t b,uint32_t n)651 static dm_block_t block_div(dm_block_t b, uint32_t n)
652 {
653 	do_div(b, n);
654 
655 	return b;
656 }
657 
oblocks_per_dblock(struct cache * cache)658 static dm_block_t oblocks_per_dblock(struct cache *cache)
659 {
660 	dm_block_t oblocks = cache->discard_block_size;
661 
662 	if (block_size_is_power_of_two(cache))
663 		oblocks >>= cache->sectors_per_block_shift;
664 	else
665 		oblocks = block_div(oblocks, cache->sectors_per_block);
666 
667 	return oblocks;
668 }
669 
oblock_to_dblock(struct cache * cache,dm_oblock_t oblock)670 static dm_dblock_t oblock_to_dblock(struct cache *cache, dm_oblock_t oblock)
671 {
672 	return to_dblock(block_div(from_oblock(oblock),
673 				   oblocks_per_dblock(cache)));
674 }
675 
set_discard(struct cache * cache,dm_dblock_t b)676 static void set_discard(struct cache *cache, dm_dblock_t b)
677 {
678 	BUG_ON(from_dblock(b) >= from_dblock(cache->discard_nr_blocks));
679 	atomic_inc(&cache->stats.discard_count);
680 
681 	spin_lock_irq(&cache->lock);
682 	set_bit(from_dblock(b), cache->discard_bitset);
683 	spin_unlock_irq(&cache->lock);
684 }
685 
clear_discard(struct cache * cache,dm_dblock_t b)686 static void clear_discard(struct cache *cache, dm_dblock_t b)
687 {
688 	spin_lock_irq(&cache->lock);
689 	clear_bit(from_dblock(b), cache->discard_bitset);
690 	spin_unlock_irq(&cache->lock);
691 }
692 
is_discarded(struct cache * cache,dm_dblock_t b)693 static bool is_discarded(struct cache *cache, dm_dblock_t b)
694 {
695 	int r;
696 
697 	spin_lock_irq(&cache->lock);
698 	r = test_bit(from_dblock(b), cache->discard_bitset);
699 	spin_unlock_irq(&cache->lock);
700 
701 	return r;
702 }
703 
is_discarded_oblock(struct cache * cache,dm_oblock_t b)704 static bool is_discarded_oblock(struct cache *cache, dm_oblock_t b)
705 {
706 	int r;
707 
708 	spin_lock_irq(&cache->lock);
709 	r = test_bit(from_dblock(oblock_to_dblock(cache, b)),
710 		     cache->discard_bitset);
711 	spin_unlock_irq(&cache->lock);
712 
713 	return r;
714 }
715 
716 /*
717  * -------------------------------------------------------------
718  * Remapping
719  *--------------------------------------------------------------
720  */
remap_to_origin(struct cache * cache,struct bio * bio)721 static void remap_to_origin(struct cache *cache, struct bio *bio)
722 {
723 	bio_set_dev(bio, cache->origin_dev->bdev);
724 }
725 
remap_to_cache(struct cache * cache,struct bio * bio,dm_cblock_t cblock)726 static void remap_to_cache(struct cache *cache, struct bio *bio,
727 			   dm_cblock_t cblock)
728 {
729 	sector_t bi_sector = bio->bi_iter.bi_sector;
730 	sector_t block = from_cblock(cblock);
731 
732 	bio_set_dev(bio, cache->cache_dev->bdev);
733 	if (!block_size_is_power_of_two(cache))
734 		bio->bi_iter.bi_sector =
735 			(block * cache->sectors_per_block) +
736 			sector_div(bi_sector, cache->sectors_per_block);
737 	else
738 		bio->bi_iter.bi_sector =
739 			(block << cache->sectors_per_block_shift) |
740 			(bi_sector & (cache->sectors_per_block - 1));
741 }
742 
check_if_tick_bio_needed(struct cache * cache,struct bio * bio)743 static void check_if_tick_bio_needed(struct cache *cache, struct bio *bio)
744 {
745 	struct per_bio_data *pb;
746 
747 	spin_lock_irq(&cache->lock);
748 	if (cache->need_tick_bio && !op_is_flush(bio->bi_opf) &&
749 	    bio_op(bio) != REQ_OP_DISCARD) {
750 		pb = get_per_bio_data(bio);
751 		pb->tick = true;
752 		cache->need_tick_bio = false;
753 	}
754 	spin_unlock_irq(&cache->lock);
755 }
756 
remap_to_origin_clear_discard(struct cache * cache,struct bio * bio,dm_oblock_t oblock)757 static void remap_to_origin_clear_discard(struct cache *cache, struct bio *bio,
758 					  dm_oblock_t oblock)
759 {
760 	// FIXME: check_if_tick_bio_needed() is called way too much through this interface
761 	check_if_tick_bio_needed(cache, bio);
762 	remap_to_origin(cache, bio);
763 	if (bio_data_dir(bio) == WRITE)
764 		clear_discard(cache, oblock_to_dblock(cache, oblock));
765 }
766 
remap_to_cache_dirty(struct cache * cache,struct bio * bio,dm_oblock_t oblock,dm_cblock_t cblock)767 static void remap_to_cache_dirty(struct cache *cache, struct bio *bio,
768 				 dm_oblock_t oblock, dm_cblock_t cblock)
769 {
770 	check_if_tick_bio_needed(cache, bio);
771 	remap_to_cache(cache, bio, cblock);
772 	if (bio_data_dir(bio) == WRITE) {
773 		set_dirty(cache, cblock);
774 		clear_discard(cache, oblock_to_dblock(cache, oblock));
775 	}
776 }
777 
get_bio_block(struct cache * cache,struct bio * bio)778 static dm_oblock_t get_bio_block(struct cache *cache, struct bio *bio)
779 {
780 	sector_t block_nr = bio->bi_iter.bi_sector;
781 
782 	if (!block_size_is_power_of_two(cache))
783 		(void) sector_div(block_nr, cache->sectors_per_block);
784 	else
785 		block_nr >>= cache->sectors_per_block_shift;
786 
787 	return to_oblock(block_nr);
788 }
789 
accountable_bio(struct cache * cache,struct bio * bio)790 static bool accountable_bio(struct cache *cache, struct bio *bio)
791 {
792 	return bio_op(bio) != REQ_OP_DISCARD;
793 }
794 
accounted_begin(struct cache * cache,struct bio * bio)795 static void accounted_begin(struct cache *cache, struct bio *bio)
796 {
797 	struct per_bio_data *pb;
798 
799 	if (accountable_bio(cache, bio)) {
800 		pb = get_per_bio_data(bio);
801 		pb->len = bio_sectors(bio);
802 		dm_iot_io_begin(&cache->tracker, pb->len);
803 	}
804 }
805 
accounted_complete(struct cache * cache,struct bio * bio)806 static void accounted_complete(struct cache *cache, struct bio *bio)
807 {
808 	struct per_bio_data *pb = get_per_bio_data(bio);
809 
810 	dm_iot_io_end(&cache->tracker, pb->len);
811 }
812 
accounted_request(struct cache * cache,struct bio * bio)813 static void accounted_request(struct cache *cache, struct bio *bio)
814 {
815 	accounted_begin(cache, bio);
816 	dm_submit_bio_remap(bio, NULL);
817 }
818 
issue_op(struct bio * bio,void * context)819 static void issue_op(struct bio *bio, void *context)
820 {
821 	struct cache *cache = context;
822 
823 	accounted_request(cache, bio);
824 }
825 
826 /*
827  * When running in writethrough mode we need to send writes to clean blocks
828  * to both the cache and origin devices.  Clone the bio and send them in parallel.
829  */
remap_to_origin_and_cache(struct cache * cache,struct bio * bio,dm_oblock_t oblock,dm_cblock_t cblock)830 static void remap_to_origin_and_cache(struct cache *cache, struct bio *bio,
831 				      dm_oblock_t oblock, dm_cblock_t cblock)
832 {
833 	struct bio *origin_bio = bio_alloc_clone(cache->origin_dev->bdev, bio,
834 						 GFP_NOIO, &cache->bs);
835 
836 	BUG_ON(!origin_bio);
837 
838 	bio_chain(origin_bio, bio);
839 
840 	if (bio_data_dir(origin_bio) == WRITE)
841 		clear_discard(cache, oblock_to_dblock(cache, oblock));
842 	submit_bio(origin_bio);
843 
844 	remap_to_cache(cache, bio, cblock);
845 }
846 
847 /*
848  *--------------------------------------------------------------
849  * Failure modes
850  *--------------------------------------------------------------
851  */
get_cache_mode(struct cache * cache)852 static enum cache_metadata_mode get_cache_mode(struct cache *cache)
853 {
854 	return cache->features.mode;
855 }
856 
cache_device_name(struct cache * cache)857 static const char *cache_device_name(struct cache *cache)
858 {
859 	return dm_table_device_name(cache->ti->table);
860 }
861 
notify_mode_switch(struct cache * cache,enum cache_metadata_mode mode)862 static void notify_mode_switch(struct cache *cache, enum cache_metadata_mode mode)
863 {
864 	static const char *descs[] = {
865 		"write",
866 		"read-only",
867 		"fail"
868 	};
869 
870 	dm_table_event(cache->ti->table);
871 	DMINFO("%s: switching cache to %s mode",
872 	       cache_device_name(cache), descs[(int)mode]);
873 }
874 
set_cache_mode(struct cache * cache,enum cache_metadata_mode new_mode)875 static void set_cache_mode(struct cache *cache, enum cache_metadata_mode new_mode)
876 {
877 	bool needs_check;
878 	enum cache_metadata_mode old_mode = get_cache_mode(cache);
879 
880 	if (dm_cache_metadata_needs_check(cache->cmd, &needs_check)) {
881 		DMERR("%s: unable to read needs_check flag, setting failure mode.",
882 		      cache_device_name(cache));
883 		new_mode = CM_FAIL;
884 	}
885 
886 	if (new_mode == CM_WRITE && needs_check) {
887 		DMERR("%s: unable to switch cache to write mode until repaired.",
888 		      cache_device_name(cache));
889 		if (old_mode != new_mode)
890 			new_mode = old_mode;
891 		else
892 			new_mode = CM_READ_ONLY;
893 	}
894 
895 	/* Never move out of fail mode */
896 	if (old_mode == CM_FAIL)
897 		new_mode = CM_FAIL;
898 
899 	switch (new_mode) {
900 	case CM_FAIL:
901 	case CM_READ_ONLY:
902 		dm_cache_metadata_set_read_only(cache->cmd);
903 		break;
904 
905 	case CM_WRITE:
906 		dm_cache_metadata_set_read_write(cache->cmd);
907 		break;
908 	}
909 
910 	cache->features.mode = new_mode;
911 
912 	if (new_mode != old_mode)
913 		notify_mode_switch(cache, new_mode);
914 }
915 
abort_transaction(struct cache * cache)916 static void abort_transaction(struct cache *cache)
917 {
918 	const char *dev_name = cache_device_name(cache);
919 
920 	if (get_cache_mode(cache) >= CM_READ_ONLY)
921 		return;
922 
923 	DMERR_LIMIT("%s: aborting current metadata transaction", dev_name);
924 	if (dm_cache_metadata_abort(cache->cmd)) {
925 		DMERR("%s: failed to abort metadata transaction", dev_name);
926 		set_cache_mode(cache, CM_FAIL);
927 	}
928 
929 	if (dm_cache_metadata_set_needs_check(cache->cmd)) {
930 		DMERR("%s: failed to set 'needs_check' flag in metadata", dev_name);
931 		set_cache_mode(cache, CM_FAIL);
932 	}
933 }
934 
metadata_operation_failed(struct cache * cache,const char * op,int r)935 static void metadata_operation_failed(struct cache *cache, const char *op, int r)
936 {
937 	DMERR_LIMIT("%s: metadata operation '%s' failed: error = %d",
938 		    cache_device_name(cache), op, r);
939 	abort_transaction(cache);
940 	set_cache_mode(cache, CM_READ_ONLY);
941 }
942 
943 /*----------------------------------------------------------------*/
944 
load_stats(struct cache * cache)945 static void load_stats(struct cache *cache)
946 {
947 	struct dm_cache_statistics stats;
948 
949 	dm_cache_metadata_get_stats(cache->cmd, &stats);
950 	atomic_set(&cache->stats.read_hit, stats.read_hits);
951 	atomic_set(&cache->stats.read_miss, stats.read_misses);
952 	atomic_set(&cache->stats.write_hit, stats.write_hits);
953 	atomic_set(&cache->stats.write_miss, stats.write_misses);
954 }
955 
save_stats(struct cache * cache)956 static void save_stats(struct cache *cache)
957 {
958 	struct dm_cache_statistics stats;
959 
960 	if (get_cache_mode(cache) >= CM_READ_ONLY)
961 		return;
962 
963 	stats.read_hits = atomic_read(&cache->stats.read_hit);
964 	stats.read_misses = atomic_read(&cache->stats.read_miss);
965 	stats.write_hits = atomic_read(&cache->stats.write_hit);
966 	stats.write_misses = atomic_read(&cache->stats.write_miss);
967 
968 	dm_cache_metadata_set_stats(cache->cmd, &stats);
969 }
970 
update_stats(struct cache_stats * stats,enum policy_operation op)971 static void update_stats(struct cache_stats *stats, enum policy_operation op)
972 {
973 	switch (op) {
974 	case POLICY_PROMOTE:
975 		atomic_inc(&stats->promotion);
976 		break;
977 
978 	case POLICY_DEMOTE:
979 		atomic_inc(&stats->demotion);
980 		break;
981 
982 	case POLICY_WRITEBACK:
983 		atomic_inc(&stats->writeback);
984 		break;
985 	}
986 }
987 
988 /*
989  *---------------------------------------------------------------------
990  * Migration processing
991  *
992  * Migration covers moving data from the origin device to the cache, or
993  * vice versa.
994  *---------------------------------------------------------------------
995  */
inc_io_migrations(struct cache * cache)996 static void inc_io_migrations(struct cache *cache)
997 {
998 	atomic_inc(&cache->nr_io_migrations);
999 }
1000 
dec_io_migrations(struct cache * cache)1001 static void dec_io_migrations(struct cache *cache)
1002 {
1003 	atomic_dec(&cache->nr_io_migrations);
1004 }
1005 
discard_or_flush(struct bio * bio)1006 static bool discard_or_flush(struct bio *bio)
1007 {
1008 	return bio_op(bio) == REQ_OP_DISCARD || op_is_flush(bio->bi_opf);
1009 }
1010 
calc_discard_block_range(struct cache * cache,struct bio * bio,dm_dblock_t * b,dm_dblock_t * e)1011 static void calc_discard_block_range(struct cache *cache, struct bio *bio,
1012 				     dm_dblock_t *b, dm_dblock_t *e)
1013 {
1014 	sector_t sb = bio->bi_iter.bi_sector;
1015 	sector_t se = bio_end_sector(bio);
1016 
1017 	*b = to_dblock(dm_sector_div_up(sb, cache->discard_block_size));
1018 
1019 	if (se - sb < cache->discard_block_size)
1020 		*e = *b;
1021 	else
1022 		*e = to_dblock(block_div(se, cache->discard_block_size));
1023 }
1024 
1025 /*----------------------------------------------------------------*/
1026 
prevent_background_work(struct cache * cache)1027 static void prevent_background_work(struct cache *cache)
1028 {
1029 	spin_lock_irq(&cache->background_work_lock);
1030 	cache->background_work_allowed = false;
1031 	wait_event_lock_irq(cache->background_work_wait,
1032 			    cache->background_work_nr == 0,
1033 			    cache->background_work_lock);
1034 	spin_unlock_irq(&cache->background_work_lock);
1035 }
1036 
allow_background_work(struct cache * cache)1037 static void allow_background_work(struct cache *cache)
1038 {
1039 	spin_lock_irq(&cache->background_work_lock);
1040 	cache->background_work_allowed = true;
1041 	spin_unlock_irq(&cache->background_work_lock);
1042 }
1043 
background_work_begin(struct cache * cache)1044 static bool background_work_begin(struct cache *cache)
1045 {
1046 	bool r;
1047 
1048 	spin_lock_irq(&cache->background_work_lock);
1049 	r = cache->background_work_allowed;
1050 	if (r)
1051 		cache->background_work_nr++;
1052 	spin_unlock_irq(&cache->background_work_lock);
1053 	return r;
1054 }
1055 
background_work_end(struct cache * cache)1056 static void background_work_end(struct cache *cache)
1057 {
1058 	spin_lock_irq(&cache->background_work_lock);
1059 	if (--cache->background_work_nr == 0)
1060 		wake_up(&cache->background_work_wait);
1061 	spin_unlock_irq(&cache->background_work_lock);
1062 }
1063 
1064 /*----------------------------------------------------------------*/
1065 
bio_writes_complete_block(struct cache * cache,struct bio * bio)1066 static bool bio_writes_complete_block(struct cache *cache, struct bio *bio)
1067 {
1068 	return (bio_data_dir(bio) == WRITE) &&
1069 		(bio->bi_iter.bi_size == (cache->sectors_per_block << SECTOR_SHIFT));
1070 }
1071 
optimisable_bio(struct cache * cache,struct bio * bio,dm_oblock_t block)1072 static bool optimisable_bio(struct cache *cache, struct bio *bio, dm_oblock_t block)
1073 {
1074 	return writeback_mode(cache) &&
1075 		(is_discarded_oblock(cache, block) || bio_writes_complete_block(cache, bio));
1076 }
1077 
quiesce(struct dm_cache_migration * mg,void (* continuation)(struct work_struct *))1078 static void quiesce(struct dm_cache_migration *mg,
1079 		    void (*continuation)(struct work_struct *))
1080 {
1081 	init_continuation(&mg->k, continuation);
1082 	dm_cell_quiesce_v2(mg->cache->prison, mg->cell, &mg->k.ws);
1083 }
1084 
ws_to_mg(struct work_struct * ws)1085 static struct dm_cache_migration *ws_to_mg(struct work_struct *ws)
1086 {
1087 	struct continuation *k = container_of(ws, struct continuation, ws);
1088 
1089 	return container_of(k, struct dm_cache_migration, k);
1090 }
1091 
copy_complete(int read_err,unsigned long write_err,void * context)1092 static void copy_complete(int read_err, unsigned long write_err, void *context)
1093 {
1094 	struct dm_cache_migration *mg = container_of(context, struct dm_cache_migration, k);
1095 
1096 	if (read_err || write_err)
1097 		mg->k.input = BLK_STS_IOERR;
1098 
1099 	queue_continuation(mg->cache->wq, &mg->k);
1100 }
1101 
copy(struct dm_cache_migration * mg,bool promote)1102 static void copy(struct dm_cache_migration *mg, bool promote)
1103 {
1104 	struct dm_io_region o_region, c_region;
1105 	struct cache *cache = mg->cache;
1106 
1107 	o_region.bdev = cache->origin_dev->bdev;
1108 	o_region.sector = from_oblock(mg->op->oblock) * cache->sectors_per_block;
1109 	o_region.count = cache->sectors_per_block;
1110 
1111 	c_region.bdev = cache->cache_dev->bdev;
1112 	c_region.sector = from_cblock(mg->op->cblock) * cache->sectors_per_block;
1113 	c_region.count = cache->sectors_per_block;
1114 
1115 	if (promote)
1116 		dm_kcopyd_copy(cache->copier, &o_region, 1, &c_region, 0, copy_complete, &mg->k);
1117 	else
1118 		dm_kcopyd_copy(cache->copier, &c_region, 1, &o_region, 0, copy_complete, &mg->k);
1119 }
1120 
bio_drop_shared_lock(struct cache * cache,struct bio * bio)1121 static void bio_drop_shared_lock(struct cache *cache, struct bio *bio)
1122 {
1123 	struct per_bio_data *pb = get_per_bio_data(bio);
1124 
1125 	if (pb->cell && dm_cell_put_v2(cache->prison, pb->cell))
1126 		free_prison_cell(cache, pb->cell);
1127 	pb->cell = NULL;
1128 }
1129 
overwrite_endio(struct bio * bio)1130 static void overwrite_endio(struct bio *bio)
1131 {
1132 	struct dm_cache_migration *mg = bio->bi_private;
1133 	struct cache *cache = mg->cache;
1134 	struct per_bio_data *pb = get_per_bio_data(bio);
1135 
1136 	dm_unhook_bio(&pb->hook_info, bio);
1137 
1138 	if (bio->bi_status)
1139 		mg->k.input = bio->bi_status;
1140 
1141 	queue_continuation(cache->wq, &mg->k);
1142 }
1143 
overwrite(struct dm_cache_migration * mg,void (* continuation)(struct work_struct *))1144 static void overwrite(struct dm_cache_migration *mg,
1145 		      void (*continuation)(struct work_struct *))
1146 {
1147 	struct bio *bio = mg->overwrite_bio;
1148 	struct per_bio_data *pb = get_per_bio_data(bio);
1149 
1150 	dm_hook_bio(&pb->hook_info, bio, overwrite_endio, mg);
1151 
1152 	/*
1153 	 * The overwrite bio is part of the copy operation, as such it does
1154 	 * not set/clear discard or dirty flags.
1155 	 */
1156 	if (mg->op->op == POLICY_PROMOTE)
1157 		remap_to_cache(mg->cache, bio, mg->op->cblock);
1158 	else
1159 		remap_to_origin(mg->cache, bio);
1160 
1161 	init_continuation(&mg->k, continuation);
1162 	accounted_request(mg->cache, bio);
1163 }
1164 
1165 /*
1166  * Migration steps:
1167  *
1168  * 1) exclusive lock preventing WRITEs
1169  * 2) quiesce
1170  * 3) copy or issue overwrite bio
1171  * 4) upgrade to exclusive lock preventing READs and WRITEs
1172  * 5) quiesce
1173  * 6) update metadata and commit
1174  * 7) unlock
1175  */
mg_complete(struct dm_cache_migration * mg,bool success)1176 static void mg_complete(struct dm_cache_migration *mg, bool success)
1177 {
1178 	struct bio_list bios;
1179 	struct cache *cache = mg->cache;
1180 	struct policy_work *op = mg->op;
1181 	dm_cblock_t cblock = op->cblock;
1182 
1183 	if (success)
1184 		update_stats(&cache->stats, op->op);
1185 
1186 	switch (op->op) {
1187 	case POLICY_PROMOTE:
1188 		clear_discard(cache, oblock_to_dblock(cache, op->oblock));
1189 		policy_complete_background_work(cache->policy, op, success);
1190 
1191 		if (mg->overwrite_bio) {
1192 			if (success)
1193 				force_set_dirty(cache, cblock);
1194 			else if (mg->k.input)
1195 				mg->overwrite_bio->bi_status = mg->k.input;
1196 			else
1197 				mg->overwrite_bio->bi_status = BLK_STS_IOERR;
1198 			bio_endio(mg->overwrite_bio);
1199 		} else {
1200 			if (success)
1201 				force_clear_dirty(cache, cblock);
1202 			dec_io_migrations(cache);
1203 		}
1204 		break;
1205 
1206 	case POLICY_DEMOTE:
1207 		/*
1208 		 * We clear dirty here to update the nr_dirty counter.
1209 		 */
1210 		if (success)
1211 			force_clear_dirty(cache, cblock);
1212 		policy_complete_background_work(cache->policy, op, success);
1213 		dec_io_migrations(cache);
1214 		break;
1215 
1216 	case POLICY_WRITEBACK:
1217 		if (success)
1218 			force_clear_dirty(cache, cblock);
1219 		policy_complete_background_work(cache->policy, op, success);
1220 		dec_io_migrations(cache);
1221 		break;
1222 	}
1223 
1224 	bio_list_init(&bios);
1225 	if (mg->cell) {
1226 		if (dm_cell_unlock_v2(cache->prison, mg->cell, &bios))
1227 			free_prison_cell(cache, mg->cell);
1228 	}
1229 
1230 	free_migration(mg);
1231 	defer_bios(cache, &bios);
1232 	wake_migration_worker(cache);
1233 
1234 	background_work_end(cache);
1235 }
1236 
mg_success(struct work_struct * ws)1237 static void mg_success(struct work_struct *ws)
1238 {
1239 	struct dm_cache_migration *mg = ws_to_mg(ws);
1240 
1241 	mg_complete(mg, mg->k.input == 0);
1242 }
1243 
mg_update_metadata(struct work_struct * ws)1244 static void mg_update_metadata(struct work_struct *ws)
1245 {
1246 	int r;
1247 	struct dm_cache_migration *mg = ws_to_mg(ws);
1248 	struct cache *cache = mg->cache;
1249 	struct policy_work *op = mg->op;
1250 
1251 	switch (op->op) {
1252 	case POLICY_PROMOTE:
1253 		r = dm_cache_insert_mapping(cache->cmd, op->cblock, op->oblock);
1254 		if (r) {
1255 			DMERR_LIMIT("%s: migration failed; couldn't insert mapping",
1256 				    cache_device_name(cache));
1257 			metadata_operation_failed(cache, "dm_cache_insert_mapping", r);
1258 
1259 			mg_complete(mg, false);
1260 			return;
1261 		}
1262 		mg_complete(mg, true);
1263 		break;
1264 
1265 	case POLICY_DEMOTE:
1266 		r = dm_cache_remove_mapping(cache->cmd, op->cblock);
1267 		if (r) {
1268 			DMERR_LIMIT("%s: migration failed; couldn't update on disk metadata",
1269 				    cache_device_name(cache));
1270 			metadata_operation_failed(cache, "dm_cache_remove_mapping", r);
1271 
1272 			mg_complete(mg, false);
1273 			return;
1274 		}
1275 
1276 		/*
1277 		 * It would be nice if we only had to commit when a REQ_FLUSH
1278 		 * comes through.  But there's one scenario that we have to
1279 		 * look out for:
1280 		 *
1281 		 * - vblock x in a cache block
1282 		 * - domotion occurs
1283 		 * - cache block gets reallocated and over written
1284 		 * - crash
1285 		 *
1286 		 * When we recover, because there was no commit the cache will
1287 		 * rollback to having the data for vblock x in the cache block.
1288 		 * But the cache block has since been overwritten, so it'll end
1289 		 * up pointing to data that was never in 'x' during the history
1290 		 * of the device.
1291 		 *
1292 		 * To avoid this issue we require a commit as part of the
1293 		 * demotion operation.
1294 		 */
1295 		init_continuation(&mg->k, mg_success);
1296 		continue_after_commit(&cache->committer, &mg->k);
1297 		schedule_commit(&cache->committer);
1298 		break;
1299 
1300 	case POLICY_WRITEBACK:
1301 		mg_complete(mg, true);
1302 		break;
1303 	}
1304 }
1305 
mg_update_metadata_after_copy(struct work_struct * ws)1306 static void mg_update_metadata_after_copy(struct work_struct *ws)
1307 {
1308 	struct dm_cache_migration *mg = ws_to_mg(ws);
1309 
1310 	/*
1311 	 * Did the copy succeed?
1312 	 */
1313 	if (mg->k.input)
1314 		mg_complete(mg, false);
1315 	else
1316 		mg_update_metadata(ws);
1317 }
1318 
mg_upgrade_lock(struct work_struct * ws)1319 static void mg_upgrade_lock(struct work_struct *ws)
1320 {
1321 	int r;
1322 	struct dm_cache_migration *mg = ws_to_mg(ws);
1323 
1324 	/*
1325 	 * Did the copy succeed?
1326 	 */
1327 	if (mg->k.input)
1328 		mg_complete(mg, false);
1329 
1330 	else {
1331 		/*
1332 		 * Now we want the lock to prevent both reads and writes.
1333 		 */
1334 		r = dm_cell_lock_promote_v2(mg->cache->prison, mg->cell,
1335 					    READ_WRITE_LOCK_LEVEL);
1336 		if (r < 0)
1337 			mg_complete(mg, false);
1338 
1339 		else if (r)
1340 			quiesce(mg, mg_update_metadata);
1341 
1342 		else
1343 			mg_update_metadata(ws);
1344 	}
1345 }
1346 
mg_full_copy(struct work_struct * ws)1347 static void mg_full_copy(struct work_struct *ws)
1348 {
1349 	struct dm_cache_migration *mg = ws_to_mg(ws);
1350 	struct cache *cache = mg->cache;
1351 	struct policy_work *op = mg->op;
1352 	bool is_policy_promote = (op->op == POLICY_PROMOTE);
1353 
1354 	if ((!is_policy_promote && !is_dirty(cache, op->cblock)) ||
1355 	    is_discarded_oblock(cache, op->oblock)) {
1356 		mg_upgrade_lock(ws);
1357 		return;
1358 	}
1359 
1360 	init_continuation(&mg->k, mg_upgrade_lock);
1361 	copy(mg, is_policy_promote);
1362 }
1363 
mg_copy(struct work_struct * ws)1364 static void mg_copy(struct work_struct *ws)
1365 {
1366 	struct dm_cache_migration *mg = ws_to_mg(ws);
1367 
1368 	if (mg->overwrite_bio) {
1369 		/*
1370 		 * No exclusive lock was held when we last checked if the bio
1371 		 * was optimisable.  So we have to check again in case things
1372 		 * have changed (eg, the block may no longer be discarded).
1373 		 */
1374 		if (!optimisable_bio(mg->cache, mg->overwrite_bio, mg->op->oblock)) {
1375 			/*
1376 			 * Fallback to a real full copy after doing some tidying up.
1377 			 */
1378 			bool rb = bio_detain_shared(mg->cache, mg->op->oblock, mg->overwrite_bio);
1379 
1380 			BUG_ON(rb); /* An exclusive lock must _not_ be held for this block */
1381 			mg->overwrite_bio = NULL;
1382 			inc_io_migrations(mg->cache);
1383 			mg_full_copy(ws);
1384 			return;
1385 		}
1386 
1387 		/*
1388 		 * It's safe to do this here, even though it's new data
1389 		 * because all IO has been locked out of the block.
1390 		 *
1391 		 * mg_lock_writes() already took READ_WRITE_LOCK_LEVEL
1392 		 * so _not_ using mg_upgrade_lock() as continutation.
1393 		 */
1394 		overwrite(mg, mg_update_metadata_after_copy);
1395 
1396 	} else
1397 		mg_full_copy(ws);
1398 }
1399 
mg_lock_writes(struct dm_cache_migration * mg)1400 static int mg_lock_writes(struct dm_cache_migration *mg)
1401 {
1402 	int r;
1403 	struct dm_cell_key_v2 key;
1404 	struct cache *cache = mg->cache;
1405 	struct dm_bio_prison_cell_v2 *prealloc;
1406 
1407 	prealloc = alloc_prison_cell(cache);
1408 
1409 	/*
1410 	 * Prevent writes to the block, but allow reads to continue.
1411 	 * Unless we're using an overwrite bio, in which case we lock
1412 	 * everything.
1413 	 */
1414 	build_key(mg->op->oblock, oblock_succ(mg->op->oblock), &key);
1415 	r = dm_cell_lock_v2(cache->prison, &key,
1416 			    mg->overwrite_bio ?  READ_WRITE_LOCK_LEVEL : WRITE_LOCK_LEVEL,
1417 			    prealloc, &mg->cell);
1418 	if (r < 0) {
1419 		free_prison_cell(cache, prealloc);
1420 		mg_complete(mg, false);
1421 		return r;
1422 	}
1423 
1424 	if (mg->cell != prealloc)
1425 		free_prison_cell(cache, prealloc);
1426 
1427 	if (r == 0)
1428 		mg_copy(&mg->k.ws);
1429 	else
1430 		quiesce(mg, mg_copy);
1431 
1432 	return 0;
1433 }
1434 
mg_start(struct cache * cache,struct policy_work * op,struct bio * bio)1435 static int mg_start(struct cache *cache, struct policy_work *op, struct bio *bio)
1436 {
1437 	struct dm_cache_migration *mg;
1438 
1439 	if (!background_work_begin(cache)) {
1440 		policy_complete_background_work(cache->policy, op, false);
1441 		return -EPERM;
1442 	}
1443 
1444 	mg = alloc_migration(cache);
1445 
1446 	mg->op = op;
1447 	mg->overwrite_bio = bio;
1448 
1449 	if (!bio)
1450 		inc_io_migrations(cache);
1451 
1452 	return mg_lock_writes(mg);
1453 }
1454 
1455 /*
1456  *--------------------------------------------------------------
1457  * invalidation processing
1458  *--------------------------------------------------------------
1459  */
1460 
invalidate_complete(struct dm_cache_migration * mg,bool success)1461 static void invalidate_complete(struct dm_cache_migration *mg, bool success)
1462 {
1463 	struct bio_list bios;
1464 	struct cache *cache = mg->cache;
1465 
1466 	if (success)
1467 		atomic_inc(&cache->stats.demotion);
1468 
1469 	bio_list_init(&bios);
1470 	if (mg->cell) {
1471 		if (dm_cell_unlock_v2(cache->prison, mg->cell, &bios))
1472 			free_prison_cell(cache, mg->cell);
1473 	}
1474 
1475 	if (mg->overwrite_bio) {
1476 		// Set generic error if the bio hasn't been issued yet,
1477 		// e.g., invalidation or metadata commit failed before bio
1478 		// submission. Otherwise preserve the bio's own error status.
1479 		if (!success && !mg->overwrite_bio->bi_status)
1480 			mg->overwrite_bio->bi_status = BLK_STS_IOERR;
1481 		bio_endio(mg->overwrite_bio);
1482 	}
1483 
1484 	free_migration(mg);
1485 	defer_bios(cache, &bios);
1486 
1487 	background_work_end(cache);
1488 }
1489 
invalidate_completed(struct work_struct * ws)1490 static void invalidate_completed(struct work_struct *ws)
1491 {
1492 	struct dm_cache_migration *mg = ws_to_mg(ws);
1493 
1494 	invalidate_complete(mg, !mg->k.input);
1495 }
1496 
invalidate_cblock(struct cache * cache,dm_cblock_t cblock)1497 static int invalidate_cblock(struct cache *cache, dm_cblock_t cblock)
1498 {
1499 	int r;
1500 
1501 	r = policy_invalidate_mapping(cache->policy, cblock);
1502 	if (!r) {
1503 		r = dm_cache_remove_mapping(cache->cmd, cblock);
1504 		if (r) {
1505 			DMERR_LIMIT("%s: invalidation failed; couldn't update on disk metadata",
1506 				    cache_device_name(cache));
1507 			metadata_operation_failed(cache, "dm_cache_remove_mapping", r);
1508 		}
1509 
1510 	} else if (r == -ENODATA) {
1511 		/*
1512 		 * Harmless, already unmapped.
1513 		 */
1514 		r = 0;
1515 
1516 	} else
1517 		DMERR("%s: policy_invalidate_mapping failed", cache_device_name(cache));
1518 
1519 	return r;
1520 }
1521 
invalidate_committed(struct work_struct * ws)1522 static void invalidate_committed(struct work_struct *ws)
1523 {
1524 	struct dm_cache_migration *mg = ws_to_mg(ws);
1525 	struct cache *cache = mg->cache;
1526 	struct bio *bio = mg->overwrite_bio;
1527 	struct per_bio_data *pb = get_per_bio_data(bio);
1528 
1529 	if (mg->k.input) {
1530 		invalidate_complete(mg, false);
1531 		return;
1532 	}
1533 
1534 	init_continuation(&mg->k, invalidate_completed);
1535 	remap_to_origin_clear_discard(cache, bio, mg->invalidate_oblock);
1536 	dm_hook_bio(&pb->hook_info, bio, overwrite_endio, mg);
1537 	dm_submit_bio_remap(bio, NULL);
1538 }
1539 
invalidate_remove(struct work_struct * ws)1540 static void invalidate_remove(struct work_struct *ws)
1541 {
1542 	int r;
1543 	struct dm_cache_migration *mg = ws_to_mg(ws);
1544 	struct cache *cache = mg->cache;
1545 
1546 	r = invalidate_cblock(cache, mg->invalidate_cblock);
1547 	if (r) {
1548 		invalidate_complete(mg, false);
1549 		return;
1550 	}
1551 
1552 	init_continuation(&mg->k, invalidate_committed);
1553 	continue_after_commit(&cache->committer, &mg->k);
1554 	schedule_commit(&cache->committer);
1555 }
1556 
invalidate_lock(struct dm_cache_migration * mg)1557 static int invalidate_lock(struct dm_cache_migration *mg)
1558 {
1559 	int r;
1560 	struct dm_cell_key_v2 key;
1561 	struct cache *cache = mg->cache;
1562 	struct dm_bio_prison_cell_v2 *prealloc;
1563 
1564 	prealloc = alloc_prison_cell(cache);
1565 
1566 	build_key(mg->invalidate_oblock, oblock_succ(mg->invalidate_oblock), &key);
1567 	r = dm_cell_lock_v2(cache->prison, &key,
1568 			    READ_WRITE_LOCK_LEVEL, prealloc, &mg->cell);
1569 	if (r < 0) {
1570 		free_prison_cell(cache, prealloc);
1571 
1572 		/* Defer the bio for retrying the cell lock */
1573 		if (mg->overwrite_bio) {
1574 			struct bio *bio = mg->overwrite_bio;
1575 
1576 			mg->overwrite_bio = NULL;
1577 			defer_bio(cache, bio);
1578 		}
1579 
1580 		invalidate_complete(mg, false);
1581 		return r;
1582 	}
1583 
1584 	if (mg->cell != prealloc)
1585 		free_prison_cell(cache, prealloc);
1586 
1587 	if (r)
1588 		quiesce(mg, invalidate_remove);
1589 
1590 	else {
1591 		/*
1592 		 * We can't call invalidate_remove() directly here because we
1593 		 * might still be in request context.
1594 		 */
1595 		init_continuation(&mg->k, invalidate_remove);
1596 		queue_work(cache->wq, &mg->k.ws);
1597 	}
1598 
1599 	return 0;
1600 }
1601 
invalidate_start(struct cache * cache,dm_cblock_t cblock,dm_oblock_t oblock,struct bio * bio)1602 static int invalidate_start(struct cache *cache, dm_cblock_t cblock,
1603 			    dm_oblock_t oblock, struct bio *bio)
1604 {
1605 	struct dm_cache_migration *mg;
1606 
1607 	if (!background_work_begin(cache))
1608 		return -EPERM;
1609 
1610 	mg = alloc_migration(cache);
1611 
1612 	mg->overwrite_bio = bio;
1613 	mg->invalidate_cblock = cblock;
1614 	mg->invalidate_oblock = oblock;
1615 
1616 	return invalidate_lock(mg);
1617 }
1618 
1619 /*
1620  *--------------------------------------------------------------
1621  * bio processing
1622  *--------------------------------------------------------------
1623  */
1624 
1625 enum busy {
1626 	IDLE,
1627 	BUSY
1628 };
1629 
spare_migration_bandwidth(struct cache * cache)1630 static enum busy spare_migration_bandwidth(struct cache *cache)
1631 {
1632 	bool idle = dm_iot_idle_for(&cache->tracker, HZ);
1633 	sector_t current_volume = (atomic_read(&cache->nr_io_migrations) + 1) *
1634 		cache->sectors_per_block;
1635 
1636 	if (idle && current_volume <= cache->migration_threshold)
1637 		return IDLE;
1638 	else
1639 		return BUSY;
1640 }
1641 
inc_hit_counter(struct cache * cache,struct bio * bio)1642 static void inc_hit_counter(struct cache *cache, struct bio *bio)
1643 {
1644 	atomic_inc(bio_data_dir(bio) == READ ?
1645 		   &cache->stats.read_hit : &cache->stats.write_hit);
1646 }
1647 
inc_miss_counter(struct cache * cache,struct bio * bio)1648 static void inc_miss_counter(struct cache *cache, struct bio *bio)
1649 {
1650 	atomic_inc(bio_data_dir(bio) == READ ?
1651 		   &cache->stats.read_miss : &cache->stats.write_miss);
1652 }
1653 
1654 /*----------------------------------------------------------------*/
1655 
map_bio(struct cache * cache,struct bio * bio,dm_oblock_t block,bool * commit_needed)1656 static int map_bio(struct cache *cache, struct bio *bio, dm_oblock_t block,
1657 		   bool *commit_needed)
1658 {
1659 	int r, data_dir;
1660 	bool rb, background_queued;
1661 	dm_cblock_t cblock;
1662 
1663 	*commit_needed = false;
1664 
1665 	rb = bio_detain_shared(cache, block, bio);
1666 	if (!rb) {
1667 		/*
1668 		 * An exclusive lock is held for this block, so we have to
1669 		 * wait.  We set the commit_needed flag so the current
1670 		 * transaction will be committed asap, allowing this lock
1671 		 * to be dropped.
1672 		 */
1673 		*commit_needed = true;
1674 		return DM_MAPIO_SUBMITTED;
1675 	}
1676 
1677 	data_dir = bio_data_dir(bio);
1678 
1679 	if (optimisable_bio(cache, bio, block)) {
1680 		struct policy_work *op = NULL;
1681 
1682 		r = policy_lookup_with_work(cache->policy, block, &cblock, data_dir, true, &op);
1683 		if (unlikely(r && r != -ENOENT)) {
1684 			DMERR_LIMIT("%s: policy_lookup_with_work() failed with r = %d",
1685 				    cache_device_name(cache), r);
1686 			bio_io_error(bio);
1687 			return DM_MAPIO_SUBMITTED;
1688 		}
1689 
1690 		if (r == -ENOENT && op) {
1691 			bio_drop_shared_lock(cache, bio);
1692 			BUG_ON(op->op != POLICY_PROMOTE);
1693 			mg_start(cache, op, bio);
1694 			return DM_MAPIO_SUBMITTED;
1695 		}
1696 	} else {
1697 		r = policy_lookup(cache->policy, block, &cblock, data_dir, false, &background_queued);
1698 		if (unlikely(r && r != -ENOENT)) {
1699 			DMERR_LIMIT("%s: policy_lookup() failed with r = %d",
1700 				    cache_device_name(cache), r);
1701 			bio_io_error(bio);
1702 			return DM_MAPIO_SUBMITTED;
1703 		}
1704 
1705 		if (background_queued)
1706 			wake_migration_worker(cache);
1707 	}
1708 
1709 	if (r == -ENOENT) {
1710 		struct per_bio_data *pb = get_per_bio_data(bio);
1711 
1712 		/*
1713 		 * Miss.
1714 		 */
1715 		inc_miss_counter(cache, bio);
1716 		if (pb->req_nr == 0) {
1717 			accounted_begin(cache, bio);
1718 			remap_to_origin_clear_discard(cache, bio, block);
1719 		} else {
1720 			/*
1721 			 * This is a duplicate writethrough io that is no
1722 			 * longer needed because the block has been demoted.
1723 			 */
1724 			bio_endio(bio);
1725 			return DM_MAPIO_SUBMITTED;
1726 		}
1727 	} else {
1728 		/*
1729 		 * Hit.
1730 		 */
1731 		inc_hit_counter(cache, bio);
1732 
1733 		/*
1734 		 * Passthrough always maps to the origin, invalidating any
1735 		 * cache blocks that are written to.
1736 		 */
1737 		if (passthrough_mode(cache)) {
1738 			if (bio_data_dir(bio) == WRITE) {
1739 				bio_drop_shared_lock(cache, bio);
1740 				invalidate_start(cache, cblock, block, bio);
1741 				return DM_MAPIO_SUBMITTED;
1742 			} else
1743 				remap_to_origin_clear_discard(cache, bio, block);
1744 		} else {
1745 			if (bio_data_dir(bio) == WRITE && writethrough_mode(cache) &&
1746 			    !is_dirty(cache, cblock)) {
1747 				remap_to_origin_and_cache(cache, bio, block, cblock);
1748 				accounted_begin(cache, bio);
1749 			} else
1750 				remap_to_cache_dirty(cache, bio, block, cblock);
1751 		}
1752 	}
1753 
1754 	/*
1755 	 * dm core turns FUA requests into a separate payload and FLUSH req.
1756 	 */
1757 	if (bio->bi_opf & REQ_FUA) {
1758 		/*
1759 		 * issue_after_commit will call accounted_begin a second time.  So
1760 		 * we call accounted_complete() to avoid double accounting.
1761 		 */
1762 		accounted_complete(cache, bio);
1763 		issue_after_commit(&cache->committer, bio);
1764 		*commit_needed = true;
1765 		return DM_MAPIO_SUBMITTED;
1766 	}
1767 
1768 	return DM_MAPIO_REMAPPED;
1769 }
1770 
process_bio(struct cache * cache,struct bio * bio)1771 static bool process_bio(struct cache *cache, struct bio *bio)
1772 {
1773 	bool commit_needed;
1774 
1775 	if (map_bio(cache, bio, get_bio_block(cache, bio), &commit_needed) == DM_MAPIO_REMAPPED)
1776 		dm_submit_bio_remap(bio, NULL);
1777 
1778 	return commit_needed;
1779 }
1780 
1781 /*
1782  * A non-zero return indicates read_only or fail_io mode.
1783  */
commit(struct cache * cache,bool clean_shutdown)1784 static int commit(struct cache *cache, bool clean_shutdown)
1785 {
1786 	int r;
1787 
1788 	if (get_cache_mode(cache) >= CM_READ_ONLY)
1789 		return -EINVAL;
1790 
1791 	atomic_inc(&cache->stats.commit_count);
1792 	r = dm_cache_commit(cache->cmd, clean_shutdown);
1793 	if (r)
1794 		metadata_operation_failed(cache, "dm_cache_commit", r);
1795 
1796 	return r;
1797 }
1798 
1799 /*
1800  * Used by the batcher.
1801  */
commit_op(void * context)1802 static blk_status_t commit_op(void *context)
1803 {
1804 	struct cache *cache = context;
1805 
1806 	if (dm_cache_changed_this_transaction(cache->cmd))
1807 		return errno_to_blk_status(commit(cache, false));
1808 
1809 	return 0;
1810 }
1811 
1812 /*----------------------------------------------------------------*/
1813 
process_flush_bio(struct cache * cache,struct bio * bio)1814 static bool process_flush_bio(struct cache *cache, struct bio *bio)
1815 {
1816 	struct per_bio_data *pb = get_per_bio_data(bio);
1817 
1818 	if (!pb->req_nr)
1819 		remap_to_origin(cache, bio);
1820 	else
1821 		remap_to_cache(cache, bio, 0);
1822 
1823 	issue_after_commit(&cache->committer, bio);
1824 	return true;
1825 }
1826 
process_discard_bio(struct cache * cache,struct bio * bio)1827 static bool process_discard_bio(struct cache *cache, struct bio *bio)
1828 {
1829 	dm_dblock_t b, e;
1830 
1831 	/*
1832 	 * FIXME: do we need to lock the region?  Or can we just assume the
1833 	 * user wont be so foolish as to issue discard concurrently with
1834 	 * other IO?
1835 	 */
1836 	calc_discard_block_range(cache, bio, &b, &e);
1837 	while (b != e) {
1838 		set_discard(cache, b);
1839 		b = to_dblock(from_dblock(b) + 1);
1840 	}
1841 
1842 	if (cache->features.discard_passdown) {
1843 		remap_to_origin(cache, bio);
1844 		dm_submit_bio_remap(bio, NULL);
1845 	} else
1846 		bio_endio(bio);
1847 
1848 	return false;
1849 }
1850 
process_deferred_bios(struct work_struct * ws)1851 static void process_deferred_bios(struct work_struct *ws)
1852 {
1853 	struct cache *cache = container_of(ws, struct cache, deferred_bio_worker);
1854 
1855 	bool commit_needed = false;
1856 	struct bio_list bios;
1857 	struct bio *bio;
1858 
1859 	bio_list_init(&bios);
1860 
1861 	spin_lock_irq(&cache->lock);
1862 	bio_list_merge_init(&bios, &cache->deferred_bios);
1863 	spin_unlock_irq(&cache->lock);
1864 
1865 	while ((bio = bio_list_pop(&bios))) {
1866 		if (bio->bi_opf & REQ_PREFLUSH)
1867 			commit_needed = process_flush_bio(cache, bio) || commit_needed;
1868 
1869 		else if (bio_op(bio) == REQ_OP_DISCARD)
1870 			commit_needed = process_discard_bio(cache, bio) || commit_needed;
1871 
1872 		else
1873 			commit_needed = process_bio(cache, bio) || commit_needed;
1874 		cond_resched();
1875 	}
1876 
1877 	if (commit_needed)
1878 		schedule_commit(&cache->committer);
1879 }
1880 
1881 /*
1882  *--------------------------------------------------------------
1883  * Main worker loop
1884  *--------------------------------------------------------------
1885  */
requeue_deferred_bios(struct cache * cache)1886 static void requeue_deferred_bios(struct cache *cache)
1887 {
1888 	struct bio *bio;
1889 	struct bio_list bios;
1890 
1891 	bio_list_init(&bios);
1892 	bio_list_merge_init(&bios, &cache->deferred_bios);
1893 
1894 	while ((bio = bio_list_pop(&bios))) {
1895 		bio->bi_status = BLK_STS_DM_REQUEUE;
1896 		bio_endio(bio);
1897 		cond_resched();
1898 	}
1899 }
1900 
1901 /*
1902  * We want to commit periodically so that not too much
1903  * unwritten metadata builds up.
1904  */
do_waker(struct work_struct * ws)1905 static void do_waker(struct work_struct *ws)
1906 {
1907 	struct cache *cache = container_of(to_delayed_work(ws), struct cache, waker);
1908 
1909 	policy_tick(cache->policy, true);
1910 	wake_migration_worker(cache);
1911 	schedule_commit(&cache->committer);
1912 	queue_delayed_work(cache->wq, &cache->waker, COMMIT_PERIOD);
1913 }
1914 
check_migrations(struct work_struct * ws)1915 static void check_migrations(struct work_struct *ws)
1916 {
1917 	int r;
1918 	struct policy_work *op;
1919 	struct cache *cache = container_of(ws, struct cache, migration_worker);
1920 	enum busy b;
1921 
1922 	for (;;) {
1923 		b = spare_migration_bandwidth(cache);
1924 
1925 		r = policy_get_background_work(cache->policy, b == IDLE, &op);
1926 		if (r == -ENODATA)
1927 			break;
1928 
1929 		if (r) {
1930 			DMERR_LIMIT("%s: policy_background_work failed",
1931 				    cache_device_name(cache));
1932 			break;
1933 		}
1934 
1935 		r = mg_start(cache, op, NULL);
1936 		if (r)
1937 			break;
1938 
1939 		cond_resched();
1940 	}
1941 }
1942 
1943 /*
1944  *--------------------------------------------------------------
1945  * Target methods
1946  *--------------------------------------------------------------
1947  */
1948 
1949 /*
1950  * This function gets called on the error paths of the constructor, so we
1951  * have to cope with a partially initialised struct.
1952  */
__destroy(struct cache * cache)1953 static void __destroy(struct cache *cache)
1954 {
1955 	mempool_exit(&cache->migration_pool);
1956 
1957 	if (cache->prison)
1958 		dm_bio_prison_destroy_v2(cache->prison);
1959 
1960 	if (cache->wq)
1961 		destroy_workqueue(cache->wq);
1962 
1963 	if (cache->dirty_bitset)
1964 		free_bitset(cache->dirty_bitset);
1965 
1966 	if (cache->discard_bitset)
1967 		free_bitset(cache->discard_bitset);
1968 
1969 	if (cache->invalid_bitset)
1970 		free_bitset(cache->invalid_bitset);
1971 
1972 	if (cache->copier)
1973 		dm_kcopyd_client_destroy(cache->copier);
1974 
1975 	if (cache->cmd)
1976 		dm_cache_metadata_close(cache->cmd);
1977 
1978 	if (cache->metadata_dev)
1979 		dm_put_device(cache->ti, cache->metadata_dev);
1980 
1981 	if (cache->origin_dev)
1982 		dm_put_device(cache->ti, cache->origin_dev);
1983 
1984 	if (cache->cache_dev)
1985 		dm_put_device(cache->ti, cache->cache_dev);
1986 
1987 	if (cache->policy)
1988 		dm_cache_policy_destroy(cache->policy);
1989 
1990 	bioset_exit(&cache->bs);
1991 
1992 	kfree(cache);
1993 }
1994 
destroy(struct cache * cache)1995 static void destroy(struct cache *cache)
1996 {
1997 	unsigned int i;
1998 
1999 	cancel_delayed_work_sync(&cache->waker);
2000 
2001 	for (i = 0; i < cache->nr_ctr_args ; i++)
2002 		kfree(cache->ctr_args[i]);
2003 	kfree(cache->ctr_args);
2004 
2005 	__destroy(cache);
2006 }
2007 
cache_dtr(struct dm_target * ti)2008 static void cache_dtr(struct dm_target *ti)
2009 {
2010 	struct cache *cache = ti->private;
2011 
2012 	destroy(cache);
2013 }
2014 
get_dev_size(struct dm_dev * dev)2015 static sector_t get_dev_size(struct dm_dev *dev)
2016 {
2017 	return bdev_nr_sectors(dev->bdev);
2018 }
2019 
2020 /*----------------------------------------------------------------*/
2021 
2022 /*
2023  * Construct a cache device mapping.
2024  *
2025  * cache <metadata dev> <cache dev> <origin dev> <block size>
2026  *       <#feature args> [<feature arg>]*
2027  *       <policy> <#policy args> [<policy arg>]*
2028  *
2029  * metadata dev    : fast device holding the persistent metadata
2030  * cache dev	   : fast device holding cached data blocks
2031  * origin dev	   : slow device holding original data blocks
2032  * block size	   : cache unit size in sectors
2033  *
2034  * #feature args   : number of feature arguments passed
2035  * feature args    : writethrough.  (The default is writeback.)
2036  *
2037  * policy	   : the replacement policy to use
2038  * #policy args    : an even number of policy arguments corresponding
2039  *		     to key/value pairs passed to the policy
2040  * policy args	   : key/value pairs passed to the policy
2041  *		     E.g. 'sequential_threshold 1024'
2042  *		     See cache-policies.txt for details.
2043  *
2044  * Optional feature arguments are:
2045  *   writethrough  : write through caching that prohibits cache block
2046  *		     content from being different from origin block content.
2047  *		     Without this argument, the default behaviour is to write
2048  *		     back cache block contents later for performance reasons,
2049  *		     so they may differ from the corresponding origin blocks.
2050  */
2051 struct cache_args {
2052 	struct dm_target *ti;
2053 
2054 	struct dm_dev *metadata_dev;
2055 
2056 	struct dm_dev *cache_dev;
2057 	sector_t cache_sectors;
2058 
2059 	struct dm_dev *origin_dev;
2060 
2061 	uint32_t block_size;
2062 
2063 	const char *policy_name;
2064 	int policy_argc;
2065 	const char **policy_argv;
2066 
2067 	struct cache_features features;
2068 };
2069 
destroy_cache_args(struct cache_args * ca)2070 static void destroy_cache_args(struct cache_args *ca)
2071 {
2072 	if (ca->metadata_dev)
2073 		dm_put_device(ca->ti, ca->metadata_dev);
2074 
2075 	if (ca->cache_dev)
2076 		dm_put_device(ca->ti, ca->cache_dev);
2077 
2078 	if (ca->origin_dev)
2079 		dm_put_device(ca->ti, ca->origin_dev);
2080 
2081 	kfree(ca);
2082 }
2083 
at_least_one_arg(struct dm_arg_set * as,char ** error)2084 static bool at_least_one_arg(struct dm_arg_set *as, char **error)
2085 {
2086 	if (!as->argc) {
2087 		*error = "Insufficient args";
2088 		return false;
2089 	}
2090 
2091 	return true;
2092 }
2093 
parse_metadata_dev(struct cache_args * ca,struct dm_arg_set * as,char ** error)2094 static int parse_metadata_dev(struct cache_args *ca, struct dm_arg_set *as,
2095 			      char **error)
2096 {
2097 	int r;
2098 	sector_t metadata_dev_size;
2099 
2100 	if (!at_least_one_arg(as, error))
2101 		return -EINVAL;
2102 
2103 	r = dm_get_device(ca->ti, dm_shift_arg(as),
2104 			  BLK_OPEN_READ | BLK_OPEN_WRITE, &ca->metadata_dev);
2105 	if (r) {
2106 		*error = "Error opening metadata device";
2107 		return r;
2108 	}
2109 
2110 	metadata_dev_size = get_dev_size(ca->metadata_dev);
2111 	if (metadata_dev_size > DM_CACHE_METADATA_MAX_SECTORS_WARNING)
2112 		DMWARN("Metadata device %pg is larger than %u sectors: excess space will not be used.",
2113 		       ca->metadata_dev->bdev, THIN_METADATA_MAX_SECTORS);
2114 
2115 	return 0;
2116 }
2117 
parse_cache_dev(struct cache_args * ca,struct dm_arg_set * as,char ** error)2118 static int parse_cache_dev(struct cache_args *ca, struct dm_arg_set *as,
2119 			   char **error)
2120 {
2121 	int r;
2122 
2123 	if (!at_least_one_arg(as, error))
2124 		return -EINVAL;
2125 
2126 	r = dm_get_device(ca->ti, dm_shift_arg(as),
2127 			  BLK_OPEN_READ | BLK_OPEN_WRITE, &ca->cache_dev);
2128 	if (r) {
2129 		*error = "Error opening cache device";
2130 		return r;
2131 	}
2132 	ca->cache_sectors = get_dev_size(ca->cache_dev);
2133 
2134 	return 0;
2135 }
2136 
parse_origin_dev(struct cache_args * ca,struct dm_arg_set * as,char ** error)2137 static int parse_origin_dev(struct cache_args *ca, struct dm_arg_set *as,
2138 			    char **error)
2139 {
2140 	int r;
2141 
2142 	if (!at_least_one_arg(as, error))
2143 		return -EINVAL;
2144 
2145 	r = dm_get_device(ca->ti, dm_shift_arg(as),
2146 			  BLK_OPEN_READ | BLK_OPEN_WRITE, &ca->origin_dev);
2147 	if (r) {
2148 		*error = "Error opening origin device";
2149 		return r;
2150 	}
2151 
2152 	return 0;
2153 }
2154 
parse_block_size(struct cache_args * ca,struct dm_arg_set * as,char ** error)2155 static int parse_block_size(struct cache_args *ca, struct dm_arg_set *as,
2156 			    char **error)
2157 {
2158 	unsigned long block_size;
2159 
2160 	if (!at_least_one_arg(as, error))
2161 		return -EINVAL;
2162 
2163 	if (kstrtoul(dm_shift_arg(as), 10, &block_size) || !block_size ||
2164 	    block_size < DATA_DEV_BLOCK_SIZE_MIN_SECTORS ||
2165 	    block_size > DATA_DEV_BLOCK_SIZE_MAX_SECTORS ||
2166 	    block_size & (DATA_DEV_BLOCK_SIZE_MIN_SECTORS - 1)) {
2167 		*error = "Invalid data block size";
2168 		return -EINVAL;
2169 	}
2170 
2171 	if (block_size > ca->cache_sectors) {
2172 		*error = "Data block size is larger than the cache device";
2173 		return -EINVAL;
2174 	}
2175 
2176 	ca->block_size = block_size;
2177 
2178 	return 0;
2179 }
2180 
init_features(struct cache_features * cf)2181 static void init_features(struct cache_features *cf)
2182 {
2183 	cf->mode = CM_WRITE;
2184 	cf->io_mode = CM_IO_WRITEBACK;
2185 	cf->metadata_version = 1;
2186 	cf->discard_passdown = true;
2187 }
2188 
parse_features(struct cache_args * ca,struct dm_arg_set * as,char ** error)2189 static int parse_features(struct cache_args *ca, struct dm_arg_set *as,
2190 			  char **error)
2191 {
2192 	static const struct dm_arg _args[] = {
2193 		{0, 3, "Invalid number of cache feature arguments"},
2194 	};
2195 
2196 	int r, mode_ctr = 0;
2197 	unsigned int argc;
2198 	const char *arg;
2199 	struct cache_features *cf = &ca->features;
2200 
2201 	init_features(cf);
2202 
2203 	r = dm_read_arg_group(_args, as, &argc, error);
2204 	if (r)
2205 		return -EINVAL;
2206 
2207 	while (argc--) {
2208 		arg = dm_shift_arg(as);
2209 
2210 		if (!strcasecmp(arg, "writeback")) {
2211 			cf->io_mode = CM_IO_WRITEBACK;
2212 			mode_ctr++;
2213 		}
2214 
2215 		else if (!strcasecmp(arg, "writethrough")) {
2216 			cf->io_mode = CM_IO_WRITETHROUGH;
2217 			mode_ctr++;
2218 		}
2219 
2220 		else if (!strcasecmp(arg, "passthrough")) {
2221 			cf->io_mode = CM_IO_PASSTHROUGH;
2222 			mode_ctr++;
2223 		}
2224 
2225 		else if (!strcasecmp(arg, "metadata2"))
2226 			cf->metadata_version = 2;
2227 
2228 		else if (!strcasecmp(arg, "no_discard_passdown"))
2229 			cf->discard_passdown = false;
2230 
2231 		else {
2232 			*error = "Unrecognised cache feature requested";
2233 			return -EINVAL;
2234 		}
2235 	}
2236 
2237 	if (mode_ctr > 1) {
2238 		*error = "Duplicate cache io_mode features requested";
2239 		return -EINVAL;
2240 	}
2241 
2242 	return 0;
2243 }
2244 
parse_policy(struct cache_args * ca,struct dm_arg_set * as,char ** error)2245 static int parse_policy(struct cache_args *ca, struct dm_arg_set *as,
2246 			char **error)
2247 {
2248 	static const struct dm_arg _args[] = {
2249 		{0, 1024, "Invalid number of policy arguments"},
2250 	};
2251 
2252 	int r;
2253 
2254 	if (!at_least_one_arg(as, error))
2255 		return -EINVAL;
2256 
2257 	ca->policy_name = dm_shift_arg(as);
2258 
2259 	r = dm_read_arg_group(_args, as, &ca->policy_argc, error);
2260 	if (r)
2261 		return -EINVAL;
2262 
2263 	ca->policy_argv = (const char **)as->argv;
2264 	dm_consume_args(as, ca->policy_argc);
2265 
2266 	return 0;
2267 }
2268 
parse_cache_args(struct cache_args * ca,int argc,char ** argv,char ** error)2269 static int parse_cache_args(struct cache_args *ca, int argc, char **argv,
2270 			    char **error)
2271 {
2272 	int r;
2273 	struct dm_arg_set as;
2274 
2275 	as.argc = argc;
2276 	as.argv = argv;
2277 
2278 	r = parse_metadata_dev(ca, &as, error);
2279 	if (r)
2280 		return r;
2281 
2282 	r = parse_cache_dev(ca, &as, error);
2283 	if (r)
2284 		return r;
2285 
2286 	r = parse_origin_dev(ca, &as, error);
2287 	if (r)
2288 		return r;
2289 
2290 	r = parse_block_size(ca, &as, error);
2291 	if (r)
2292 		return r;
2293 
2294 	r = parse_features(ca, &as, error);
2295 	if (r)
2296 		return r;
2297 
2298 	r = parse_policy(ca, &as, error);
2299 	if (r)
2300 		return r;
2301 
2302 	return 0;
2303 }
2304 
2305 /*----------------------------------------------------------------*/
2306 
2307 static struct kmem_cache *migration_cache = NULL;
2308 
2309 #define NOT_CORE_OPTION 1
2310 
process_config_option(struct cache * cache,const char * key,const char * value)2311 static int process_config_option(struct cache *cache, const char *key, const char *value)
2312 {
2313 	unsigned long tmp;
2314 
2315 	if (!strcasecmp(key, "migration_threshold")) {
2316 		if (kstrtoul(value, 10, &tmp))
2317 			return -EINVAL;
2318 
2319 		cache->migration_threshold = tmp;
2320 		return 0;
2321 	}
2322 
2323 	return NOT_CORE_OPTION;
2324 }
2325 
set_config_value(struct cache * cache,const char * key,const char * value)2326 static int set_config_value(struct cache *cache, const char *key, const char *value)
2327 {
2328 	int r = process_config_option(cache, key, value);
2329 
2330 	if (r == NOT_CORE_OPTION)
2331 		r = policy_set_config_value(cache->policy, key, value);
2332 
2333 	if (r)
2334 		DMWARN("bad config value for %s: %s", key, value);
2335 
2336 	return r;
2337 }
2338 
set_config_values(struct cache * cache,int argc,const char ** argv)2339 static int set_config_values(struct cache *cache, int argc, const char **argv)
2340 {
2341 	int r = 0;
2342 
2343 	if (argc & 1) {
2344 		DMWARN("Odd number of policy arguments given but they should be <key> <value> pairs.");
2345 		return -EINVAL;
2346 	}
2347 
2348 	while (argc) {
2349 		r = set_config_value(cache, argv[0], argv[1]);
2350 		if (r)
2351 			break;
2352 
2353 		argc -= 2;
2354 		argv += 2;
2355 	}
2356 
2357 	return r;
2358 }
2359 
create_cache_policy(struct cache * cache,struct cache_args * ca,char ** error)2360 static int create_cache_policy(struct cache *cache, struct cache_args *ca,
2361 			       char **error)
2362 {
2363 	struct dm_cache_policy *p = dm_cache_policy_create(ca->policy_name,
2364 							   cache->cache_size,
2365 							   cache->origin_sectors,
2366 							   cache->sectors_per_block);
2367 	if (IS_ERR(p)) {
2368 		*error = "Error creating cache's policy";
2369 		return PTR_ERR(p);
2370 	}
2371 	cache->policy = p;
2372 	BUG_ON(!cache->policy);
2373 
2374 	return 0;
2375 }
2376 
2377 /*
2378  * We want the discard block size to be at least the size of the cache
2379  * block size and have no more than 2^14 discard blocks across the origin.
2380  */
2381 #define MAX_DISCARD_BLOCKS (1 << 14)
2382 
too_many_discard_blocks(sector_t discard_block_size,sector_t origin_size)2383 static bool too_many_discard_blocks(sector_t discard_block_size,
2384 				    sector_t origin_size)
2385 {
2386 	(void) sector_div(origin_size, discard_block_size);
2387 
2388 	return origin_size > MAX_DISCARD_BLOCKS;
2389 }
2390 
calculate_discard_block_size(sector_t cache_block_size,sector_t origin_size)2391 static sector_t calculate_discard_block_size(sector_t cache_block_size,
2392 					     sector_t origin_size)
2393 {
2394 	sector_t discard_block_size = cache_block_size;
2395 
2396 	if (origin_size)
2397 		while (too_many_discard_blocks(discard_block_size, origin_size))
2398 			discard_block_size *= 2;
2399 
2400 	return discard_block_size;
2401 }
2402 
set_cache_size(struct cache * cache,dm_cblock_t size)2403 static void set_cache_size(struct cache *cache, dm_cblock_t size)
2404 {
2405 	dm_block_t nr_blocks = from_cblock(size);
2406 
2407 	if (nr_blocks > (1 << 20) && cache->cache_size != size)
2408 		DMWARN_LIMIT("You have created a cache device with a lot of individual cache blocks (%llu)\n"
2409 			     "All these mappings can consume a lot of kernel memory, and take some time to read/write.\n"
2410 			     "Please consider increasing the cache block size to reduce the overall cache block count.",
2411 			     (unsigned long long) nr_blocks);
2412 
2413 	cache->cache_size = size;
2414 }
2415 
2416 #define DEFAULT_MIGRATION_THRESHOLD 2048
2417 
cache_create(struct cache_args * ca,struct cache ** result)2418 static int cache_create(struct cache_args *ca, struct cache **result)
2419 {
2420 	int r = 0;
2421 	char **error = &ca->ti->error;
2422 	struct cache *cache;
2423 	struct dm_target *ti = ca->ti;
2424 	dm_block_t origin_blocks;
2425 	struct dm_cache_metadata *cmd;
2426 	bool may_format = ca->features.mode == CM_WRITE;
2427 
2428 	cache = kzalloc_obj(*cache);
2429 	if (!cache)
2430 		return -ENOMEM;
2431 
2432 	cache->ti = ca->ti;
2433 	ti->private = cache;
2434 	ti->accounts_remapped_io = true;
2435 	ti->num_flush_bios = 2;
2436 	ti->flush_supported = true;
2437 
2438 	ti->num_discard_bios = 1;
2439 	ti->discards_supported = true;
2440 
2441 	ti->per_io_data_size = sizeof(struct per_bio_data);
2442 
2443 	cache->features = ca->features;
2444 	if (writethrough_mode(cache)) {
2445 		/* Create bioset for writethrough bios issued to origin */
2446 		r = bioset_init(&cache->bs, BIO_POOL_SIZE, 0, 0);
2447 		if (r)
2448 			goto bad;
2449 	}
2450 
2451 	cache->metadata_dev = ca->metadata_dev;
2452 	cache->origin_dev = ca->origin_dev;
2453 	cache->cache_dev = ca->cache_dev;
2454 
2455 	ca->metadata_dev = ca->origin_dev = ca->cache_dev = NULL;
2456 
2457 	origin_blocks = cache->origin_sectors = ti->len;
2458 	origin_blocks = block_div(origin_blocks, ca->block_size);
2459 	cache->origin_blocks = to_oblock(origin_blocks);
2460 
2461 	cache->sectors_per_block = ca->block_size;
2462 	if (dm_set_target_max_io_len(ti, cache->sectors_per_block)) {
2463 		r = -EINVAL;
2464 		goto bad;
2465 	}
2466 
2467 	if (ca->block_size & (ca->block_size - 1)) {
2468 		dm_block_t cache_size = ca->cache_sectors;
2469 
2470 		cache->sectors_per_block_shift = -1;
2471 		cache_size = block_div(cache_size, ca->block_size);
2472 		set_cache_size(cache, to_cblock(cache_size));
2473 	} else {
2474 		cache->sectors_per_block_shift = __ffs(ca->block_size);
2475 		set_cache_size(cache, to_cblock(ca->cache_sectors >> cache->sectors_per_block_shift));
2476 	}
2477 
2478 	r = create_cache_policy(cache, ca, error);
2479 	if (r)
2480 		goto bad;
2481 
2482 	cache->policy_nr_args = ca->policy_argc;
2483 	cache->migration_threshold = DEFAULT_MIGRATION_THRESHOLD;
2484 
2485 	r = set_config_values(cache, ca->policy_argc, ca->policy_argv);
2486 	if (r) {
2487 		*error = "Error setting cache policy's config values";
2488 		goto bad;
2489 	}
2490 
2491 	cmd = dm_cache_metadata_open(cache->metadata_dev->bdev,
2492 				     ca->block_size, may_format,
2493 				     dm_cache_policy_get_hint_size(cache->policy),
2494 				     ca->features.metadata_version);
2495 	if (IS_ERR(cmd)) {
2496 		*error = "Error creating metadata object";
2497 		r = PTR_ERR(cmd);
2498 		goto bad;
2499 	}
2500 	cache->cmd = cmd;
2501 	set_cache_mode(cache, CM_WRITE);
2502 	if (get_cache_mode(cache) != CM_WRITE) {
2503 		*error = "Unable to get write access to metadata, please check/repair metadata.";
2504 		r = -EINVAL;
2505 		goto bad;
2506 	}
2507 
2508 	if (passthrough_mode(cache))
2509 		policy_allow_migrations(cache->policy, false);
2510 
2511 	spin_lock_init(&cache->lock);
2512 	bio_list_init(&cache->deferred_bios);
2513 	atomic_set(&cache->nr_io_migrations, 0);
2514 
2515 	r = -ENOMEM;
2516 	atomic_set(&cache->nr_dirty, 0);
2517 	cache->dirty_bitset = alloc_bitset(from_cblock(cache->cache_size));
2518 	if (!cache->dirty_bitset) {
2519 		*error = "could not allocate dirty bitset";
2520 		goto bad;
2521 	}
2522 	clear_bitset(cache->dirty_bitset, from_cblock(cache->cache_size));
2523 
2524 	cache->discard_block_size =
2525 		calculate_discard_block_size(cache->sectors_per_block,
2526 					     cache->origin_sectors);
2527 	cache->discard_nr_blocks = to_dblock(dm_sector_div_up(cache->origin_sectors,
2528 							      cache->discard_block_size));
2529 	cache->discard_bitset = alloc_bitset(from_dblock(cache->discard_nr_blocks));
2530 	if (!cache->discard_bitset) {
2531 		*error = "could not allocate discard bitset";
2532 		goto bad;
2533 	}
2534 	clear_bitset(cache->discard_bitset, from_dblock(cache->discard_nr_blocks));
2535 
2536 	cache->invalid_bitset = alloc_bitset(from_cblock(cache->cache_size));
2537 	if (!cache->invalid_bitset) {
2538 		*error = "could not allocate bitset for invalid blocks";
2539 		goto bad;
2540 	}
2541 	clear_bitset(cache->invalid_bitset, from_cblock(cache->cache_size));
2542 
2543 	cache->copier = dm_kcopyd_client_create(&dm_kcopyd_throttle);
2544 	if (IS_ERR(cache->copier)) {
2545 		*error = "could not create kcopyd client";
2546 		r = PTR_ERR(cache->copier);
2547 		goto bad;
2548 	}
2549 
2550 	cache->wq = alloc_workqueue("dm-" DM_MSG_PREFIX,
2551 				    WQ_MEM_RECLAIM | WQ_PERCPU, 0);
2552 	if (!cache->wq) {
2553 		*error = "could not create workqueue for metadata object";
2554 		goto bad;
2555 	}
2556 	INIT_WORK(&cache->deferred_bio_worker, process_deferred_bios);
2557 	INIT_WORK(&cache->migration_worker, check_migrations);
2558 	INIT_DELAYED_WORK(&cache->waker, do_waker);
2559 
2560 	cache->prison = dm_bio_prison_create_v2(cache->wq);
2561 	if (!cache->prison) {
2562 		*error = "could not create bio prison";
2563 		goto bad;
2564 	}
2565 
2566 	r = mempool_init_slab_pool(&cache->migration_pool, MIGRATION_POOL_SIZE,
2567 				   migration_cache);
2568 	if (r) {
2569 		*error = "Error creating cache's migration mempool";
2570 		goto bad;
2571 	}
2572 
2573 	cache->need_tick_bio = true;
2574 	cache->sized = false;
2575 	cache->invalidate = false;
2576 	cache->commit_requested = false;
2577 	cache->loaded_mappings = false;
2578 	cache->loaded_discards = false;
2579 
2580 	load_stats(cache);
2581 
2582 	atomic_set(&cache->stats.demotion, 0);
2583 	atomic_set(&cache->stats.promotion, 0);
2584 	atomic_set(&cache->stats.copies_avoided, 0);
2585 	atomic_set(&cache->stats.cache_cell_clash, 0);
2586 	atomic_set(&cache->stats.commit_count, 0);
2587 	atomic_set(&cache->stats.discard_count, 0);
2588 
2589 	spin_lock_init(&cache->invalidation_lock);
2590 	INIT_LIST_HEAD(&cache->invalidation_requests);
2591 
2592 	batcher_init(&cache->committer, commit_op, cache,
2593 		     issue_op, cache, cache->wq);
2594 	dm_iot_init(&cache->tracker);
2595 
2596 	init_waitqueue_head(&cache->background_work_wait);
2597 	spin_lock_init(&cache->background_work_lock);
2598 	cache->background_work_allowed = false;
2599 	cache->background_work_nr = 0;
2600 
2601 	*result = cache;
2602 	return 0;
2603 bad:
2604 	__destroy(cache);
2605 	return r;
2606 }
2607 
copy_ctr_args(struct cache * cache,int argc,const char ** argv)2608 static int copy_ctr_args(struct cache *cache, int argc, const char **argv)
2609 {
2610 	unsigned int i;
2611 	const char **copy;
2612 
2613 	copy = kcalloc(argc, sizeof(*copy), GFP_KERNEL);
2614 	if (!copy)
2615 		return -ENOMEM;
2616 	for (i = 0; i < argc; i++) {
2617 		copy[i] = kstrdup(argv[i], GFP_KERNEL);
2618 		if (!copy[i]) {
2619 			while (i--)
2620 				kfree(copy[i]);
2621 			kfree(copy);
2622 			return -ENOMEM;
2623 		}
2624 	}
2625 
2626 	cache->nr_ctr_args = argc;
2627 	cache->ctr_args = copy;
2628 
2629 	return 0;
2630 }
2631 
cache_ctr(struct dm_target * ti,unsigned int argc,char ** argv)2632 static int cache_ctr(struct dm_target *ti, unsigned int argc, char **argv)
2633 {
2634 	int r = -EINVAL;
2635 	struct cache_args *ca;
2636 	struct cache *cache = NULL;
2637 
2638 	ca = kzalloc_obj(*ca);
2639 	if (!ca) {
2640 		ti->error = "Error allocating memory for cache";
2641 		return -ENOMEM;
2642 	}
2643 	ca->ti = ti;
2644 
2645 	r = parse_cache_args(ca, argc, argv, &ti->error);
2646 	if (r)
2647 		goto out;
2648 
2649 	r = cache_create(ca, &cache);
2650 	if (r)
2651 		goto out;
2652 
2653 	r = copy_ctr_args(cache, argc - 3, (const char **)argv + 3);
2654 	if (r) {
2655 		__destroy(cache);
2656 		goto out;
2657 	}
2658 
2659 	ti->private = cache;
2660 out:
2661 	destroy_cache_args(ca);
2662 	return r;
2663 }
2664 
2665 /*----------------------------------------------------------------*/
2666 
cache_map(struct dm_target * ti,struct bio * bio)2667 static int cache_map(struct dm_target *ti, struct bio *bio)
2668 {
2669 	struct cache *cache = ti->private;
2670 
2671 	int r;
2672 	bool commit_needed;
2673 	dm_oblock_t block = get_bio_block(cache, bio);
2674 
2675 	init_per_bio_data(bio);
2676 	if (unlikely(from_oblock(block) >= from_oblock(cache->origin_blocks))) {
2677 		/*
2678 		 * This can only occur if the io goes to a partial block at
2679 		 * the end of the origin device.  We don't cache these.
2680 		 * Just remap to the origin and carry on.
2681 		 */
2682 		remap_to_origin(cache, bio);
2683 		accounted_begin(cache, bio);
2684 		return DM_MAPIO_REMAPPED;
2685 	}
2686 
2687 	if (discard_or_flush(bio)) {
2688 		defer_bio(cache, bio);
2689 		return DM_MAPIO_SUBMITTED;
2690 	}
2691 
2692 	r = map_bio(cache, bio, block, &commit_needed);
2693 	if (commit_needed)
2694 		schedule_commit(&cache->committer);
2695 
2696 	return r;
2697 }
2698 
cache_end_io(struct dm_target * ti,struct bio * bio,blk_status_t * error)2699 static int cache_end_io(struct dm_target *ti, struct bio *bio, blk_status_t *error)
2700 {
2701 	struct cache *cache = ti->private;
2702 	unsigned long flags;
2703 	struct per_bio_data *pb = get_per_bio_data(bio);
2704 
2705 	if (pb->tick) {
2706 		policy_tick(cache->policy, false);
2707 
2708 		spin_lock_irqsave(&cache->lock, flags);
2709 		cache->need_tick_bio = true;
2710 		spin_unlock_irqrestore(&cache->lock, flags);
2711 	}
2712 
2713 	bio_drop_shared_lock(cache, bio);
2714 	accounted_complete(cache, bio);
2715 
2716 	return DM_ENDIO_DONE;
2717 }
2718 
write_dirty_bitset(struct cache * cache)2719 static int write_dirty_bitset(struct cache *cache)
2720 {
2721 	int r;
2722 
2723 	if (get_cache_mode(cache) >= CM_READ_ONLY)
2724 		return -EINVAL;
2725 
2726 	r = dm_cache_set_dirty_bits(cache->cmd, from_cblock(cache->cache_size), cache->dirty_bitset);
2727 	if (r)
2728 		metadata_operation_failed(cache, "dm_cache_set_dirty_bits", r);
2729 
2730 	return r;
2731 }
2732 
write_discard_bitset(struct cache * cache)2733 static int write_discard_bitset(struct cache *cache)
2734 {
2735 	unsigned int i, r;
2736 
2737 	if (get_cache_mode(cache) >= CM_READ_ONLY)
2738 		return -EINVAL;
2739 
2740 	r = dm_cache_discard_bitset_resize(cache->cmd, cache->discard_block_size,
2741 					   cache->discard_nr_blocks);
2742 	if (r) {
2743 		DMERR("%s: could not resize on-disk discard bitset", cache_device_name(cache));
2744 		metadata_operation_failed(cache, "dm_cache_discard_bitset_resize", r);
2745 		return r;
2746 	}
2747 
2748 	for (i = 0; i < from_dblock(cache->discard_nr_blocks); i++) {
2749 		r = dm_cache_set_discard(cache->cmd, to_dblock(i),
2750 					 is_discarded(cache, to_dblock(i)));
2751 		if (r) {
2752 			metadata_operation_failed(cache, "dm_cache_set_discard", r);
2753 			return r;
2754 		}
2755 	}
2756 
2757 	return 0;
2758 }
2759 
write_hints(struct cache * cache)2760 static int write_hints(struct cache *cache)
2761 {
2762 	int r;
2763 
2764 	if (get_cache_mode(cache) >= CM_READ_ONLY)
2765 		return -EINVAL;
2766 
2767 	r = dm_cache_write_hints(cache->cmd, cache->policy);
2768 	if (r) {
2769 		metadata_operation_failed(cache, "dm_cache_write_hints", r);
2770 		return r;
2771 	}
2772 
2773 	return 0;
2774 }
2775 
2776 /*
2777  * returns true on success
2778  */
sync_metadata(struct cache * cache)2779 static bool sync_metadata(struct cache *cache)
2780 {
2781 	int r1, r2, r3, r4;
2782 
2783 	r1 = write_dirty_bitset(cache);
2784 	if (r1)
2785 		DMERR("%s: could not write dirty bitset", cache_device_name(cache));
2786 
2787 	r2 = write_discard_bitset(cache);
2788 	if (r2)
2789 		DMERR("%s: could not write discard bitset", cache_device_name(cache));
2790 
2791 	save_stats(cache);
2792 
2793 	r3 = write_hints(cache);
2794 	if (r3)
2795 		DMERR("%s: could not write hints", cache_device_name(cache));
2796 
2797 	/*
2798 	 * If writing the above metadata failed, we still commit, but don't
2799 	 * set the clean shutdown flag.  This will effectively force every
2800 	 * dirty bit to be set on reload.
2801 	 */
2802 	r4 = commit(cache, !r1 && !r2 && !r3);
2803 	if (r4)
2804 		DMERR("%s: could not write cache metadata", cache_device_name(cache));
2805 
2806 	return !r1 && !r2 && !r3 && !r4;
2807 }
2808 
cache_postsuspend(struct dm_target * ti)2809 static void cache_postsuspend(struct dm_target *ti)
2810 {
2811 	struct cache *cache = ti->private;
2812 
2813 	prevent_background_work(cache);
2814 	BUG_ON(atomic_read(&cache->nr_io_migrations));
2815 
2816 	cancel_delayed_work_sync(&cache->waker);
2817 	drain_workqueue(cache->wq);
2818 	WARN_ON(cache->tracker.in_flight);
2819 
2820 	/*
2821 	 * If it's a flush suspend there won't be any deferred bios, so this
2822 	 * call is harmless.
2823 	 */
2824 	requeue_deferred_bios(cache);
2825 
2826 	if (get_cache_mode(cache) == CM_WRITE)
2827 		(void) sync_metadata(cache);
2828 }
2829 
load_mapping(void * context,dm_oblock_t oblock,dm_cblock_t cblock,bool dirty,uint32_t hint,bool hint_valid)2830 static int load_mapping(void *context, dm_oblock_t oblock, dm_cblock_t cblock,
2831 			bool dirty, uint32_t hint, bool hint_valid)
2832 {
2833 	struct cache *cache = context;
2834 
2835 	if (dirty) {
2836 		if (passthrough_mode(cache)) {
2837 			DMERR("%s: cannot enter passthrough mode unless all blocks are clean",
2838 			      cache_device_name(cache));
2839 			return -EBUSY;
2840 		}
2841 
2842 		set_bit(from_cblock(cblock), cache->dirty_bitset);
2843 		atomic_inc(&cache->nr_dirty);
2844 	} else
2845 		clear_bit(from_cblock(cblock), cache->dirty_bitset);
2846 
2847 	return policy_load_mapping(cache->policy, oblock, cblock, dirty, hint, hint_valid);
2848 }
2849 
load_filtered_mapping(void * context,dm_oblock_t oblock,dm_cblock_t cblock,bool dirty,uint32_t hint,bool hint_valid)2850 static int load_filtered_mapping(void *context, dm_oblock_t oblock, dm_cblock_t cblock,
2851 				 bool dirty, uint32_t hint, bool hint_valid)
2852 {
2853 	struct cache *cache = context;
2854 
2855 	if (from_oblock(oblock) >= from_oblock(cache->origin_blocks)) {
2856 		if (dirty) {
2857 			DMERR("%s: unable to shrink origin; cache block %u is dirty",
2858 			      cache_device_name(cache), from_cblock(cblock));
2859 			return -EFBIG;
2860 		}
2861 		set_bit(from_cblock(cblock), cache->invalid_bitset);
2862 		return 0;
2863 	}
2864 
2865 	return load_mapping(context, oblock, cblock, dirty, hint, hint_valid);
2866 }
2867 
2868 /*
2869  * The discard block size in the on disk metadata is not
2870  * necessarily the same as we're currently using.  So we have to
2871  * be careful to only set the discarded attribute if we know it
2872  * covers a complete block of the new size.
2873  */
2874 struct discard_load_info {
2875 	struct cache *cache;
2876 
2877 	/*
2878 	 * These blocks are sized using the on disk dblock size, rather
2879 	 * than the current one.
2880 	 */
2881 	dm_block_t block_size;
2882 	dm_block_t discard_begin, discard_end;
2883 };
2884 
discard_load_info_init(struct cache * cache,struct discard_load_info * li)2885 static void discard_load_info_init(struct cache *cache,
2886 				   struct discard_load_info *li)
2887 {
2888 	li->cache = cache;
2889 	li->discard_begin = li->discard_end = 0;
2890 }
2891 
set_discard_range(struct discard_load_info * li)2892 static void set_discard_range(struct discard_load_info *li)
2893 {
2894 	sector_t b, e;
2895 
2896 	if (li->discard_begin == li->discard_end)
2897 		return;
2898 
2899 	/*
2900 	 * Convert to sectors.
2901 	 */
2902 	b = li->discard_begin * li->block_size;
2903 	e = li->discard_end * li->block_size;
2904 
2905 	/*
2906 	 * Then convert back to the current dblock size.
2907 	 */
2908 	b = dm_sector_div_up(b, li->cache->discard_block_size);
2909 	sector_div(e, li->cache->discard_block_size);
2910 
2911 	/*
2912 	 * The origin may have shrunk, so we need to check we're still in
2913 	 * bounds.
2914 	 */
2915 	if (e > from_dblock(li->cache->discard_nr_blocks))
2916 		e = from_dblock(li->cache->discard_nr_blocks);
2917 
2918 	for (; b < e; b++)
2919 		set_discard(li->cache, to_dblock(b));
2920 }
2921 
load_discard(void * context,sector_t discard_block_size,dm_dblock_t dblock,bool discard)2922 static int load_discard(void *context, sector_t discard_block_size,
2923 			dm_dblock_t dblock, bool discard)
2924 {
2925 	struct discard_load_info *li = context;
2926 
2927 	li->block_size = discard_block_size;
2928 
2929 	if (discard) {
2930 		if (from_dblock(dblock) == li->discard_end)
2931 			/*
2932 			 * We're already in a discard range, just extend it.
2933 			 */
2934 			li->discard_end = li->discard_end + 1ULL;
2935 
2936 		else {
2937 			/*
2938 			 * Emit the old range and start a new one.
2939 			 */
2940 			set_discard_range(li);
2941 			li->discard_begin = from_dblock(dblock);
2942 			li->discard_end = li->discard_begin + 1ULL;
2943 		}
2944 	} else {
2945 		set_discard_range(li);
2946 		li->discard_begin = li->discard_end = 0;
2947 	}
2948 
2949 	return 0;
2950 }
2951 
get_cache_dev_size(struct cache * cache)2952 static dm_cblock_t get_cache_dev_size(struct cache *cache)
2953 {
2954 	sector_t size = get_dev_size(cache->cache_dev);
2955 	(void) sector_div(size, cache->sectors_per_block);
2956 	return to_cblock(size);
2957 }
2958 
can_resume(struct cache * cache)2959 static bool can_resume(struct cache *cache)
2960 {
2961 	bool clean_when_opened;
2962 	int r;
2963 
2964 	/*
2965 	 * Disallow retrying the resume operation for devices that failed the
2966 	 * first resume attempt, as the failure leaves the policy object partially
2967 	 * initialized. Retrying could trigger BUG_ON when loading cache mappings
2968 	 * into the incomplete policy object.
2969 	 */
2970 	if (cache->sized && !cache->loaded_mappings) {
2971 		if (get_cache_mode(cache) != CM_WRITE)
2972 			DMERR("%s: unable to resume a failed-loaded cache, please check metadata.",
2973 			      cache_device_name(cache));
2974 		else
2975 			DMERR("%s: unable to resume cache due to missing proper cache table reload",
2976 			      cache_device_name(cache));
2977 		return false;
2978 	}
2979 
2980 	if (passthrough_mode(cache)) {
2981 		r = dm_cache_metadata_clean_when_opened(cache->cmd, &clean_when_opened);
2982 		if (r) {
2983 			DMERR("%s: failed to query metadata flags", cache_device_name(cache));
2984 			return false;
2985 		}
2986 
2987 		if (!clean_when_opened) {
2988 			DMERR("%s: unable to resume into passthrough mode after unclean shutdown",
2989 			      cache_device_name(cache));
2990 			return false;
2991 		}
2992 	}
2993 
2994 	return true;
2995 }
2996 
can_resize(struct cache * cache,dm_cblock_t new_size)2997 static bool can_resize(struct cache *cache, dm_cblock_t new_size)
2998 {
2999 	if (from_cblock(new_size) > from_cblock(cache->cache_size)) {
3000 		DMERR("%s: unable to extend cache due to missing cache table reload",
3001 		      cache_device_name(cache));
3002 		return false;
3003 	}
3004 
3005 	/*
3006 	 * We can't drop a dirty block when shrinking the cache.
3007 	 */
3008 	if (cache->loaded_mappings) {
3009 		new_size = to_cblock(find_next_bit(cache->dirty_bitset,
3010 						   from_cblock(cache->cache_size),
3011 						   from_cblock(new_size)));
3012 		if (new_size != cache->cache_size) {
3013 			DMERR("%s: unable to shrink cache; cache block %llu is dirty",
3014 			      cache_device_name(cache),
3015 			      (unsigned long long) from_cblock(new_size));
3016 			return false;
3017 		}
3018 	}
3019 
3020 	return true;
3021 }
3022 
resize_cache_dev(struct cache * cache,dm_cblock_t new_size)3023 static int resize_cache_dev(struct cache *cache, dm_cblock_t new_size)
3024 {
3025 	int r;
3026 
3027 	r = dm_cache_resize(cache->cmd, new_size);
3028 	if (r) {
3029 		DMERR("%s: could not resize cache metadata", cache_device_name(cache));
3030 		metadata_operation_failed(cache, "dm_cache_resize", r);
3031 		return r;
3032 	}
3033 
3034 	set_cache_size(cache, new_size);
3035 
3036 	return 0;
3037 }
3038 
truncate_oblocks(struct cache * cache)3039 static int truncate_oblocks(struct cache *cache)
3040 {
3041 	uint32_t nr_blocks = from_cblock(cache->cache_size);
3042 	uint32_t i;
3043 	int r;
3044 
3045 	for_each_set_bit(i, cache->invalid_bitset, nr_blocks) {
3046 		r = dm_cache_remove_mapping(cache->cmd, to_cblock(i));
3047 		if (r) {
3048 			DMERR_LIMIT("%s: invalidation failed; couldn't update on disk metadata",
3049 				    cache_device_name(cache));
3050 			return r;
3051 		}
3052 	}
3053 
3054 	return 0;
3055 }
3056 
cache_preresume(struct dm_target * ti)3057 static int cache_preresume(struct dm_target *ti)
3058 {
3059 	int r = 0;
3060 	struct cache *cache = ti->private;
3061 	dm_cblock_t csize = get_cache_dev_size(cache);
3062 
3063 	if (!can_resume(cache))
3064 		return -EINVAL;
3065 
3066 	/*
3067 	 * Check to see if the cache has resized.
3068 	 */
3069 	if (!cache->sized || csize != cache->cache_size) {
3070 		if (!can_resize(cache, csize))
3071 			return -EINVAL;
3072 
3073 		r = resize_cache_dev(cache, csize);
3074 		if (r)
3075 			return r;
3076 
3077 		cache->sized = true;
3078 	}
3079 
3080 	if (!cache->loaded_mappings) {
3081 		/*
3082 		 * The fast device could have been resized since the last
3083 		 * failed preresume attempt.  To be safe we start by a blank
3084 		 * bitset for cache blocks.
3085 		 */
3086 		clear_bitset(cache->invalid_bitset, from_cblock(cache->cache_size));
3087 
3088 		r = dm_cache_load_mappings(cache->cmd, cache->policy,
3089 					   load_filtered_mapping, cache);
3090 		if (r) {
3091 			DMERR("%s: could not load cache mappings", cache_device_name(cache));
3092 			if (r != -EFBIG && r != -EBUSY)
3093 				metadata_operation_failed(cache, "dm_cache_load_mappings", r);
3094 			return r;
3095 		}
3096 
3097 		r = truncate_oblocks(cache);
3098 		if (r) {
3099 			metadata_operation_failed(cache, "dm_cache_remove_mapping", r);
3100 			return r;
3101 		}
3102 
3103 		cache->loaded_mappings = true;
3104 	}
3105 
3106 	if (!cache->loaded_discards) {
3107 		struct discard_load_info li;
3108 
3109 		/*
3110 		 * The discard bitset could have been resized, or the
3111 		 * discard block size changed.  To be safe we start by
3112 		 * setting every dblock to not discarded.
3113 		 */
3114 		clear_bitset(cache->discard_bitset, from_dblock(cache->discard_nr_blocks));
3115 
3116 		discard_load_info_init(cache, &li);
3117 		r = dm_cache_load_discards(cache->cmd, load_discard, &li);
3118 		if (r) {
3119 			DMERR("%s: could not load origin discards", cache_device_name(cache));
3120 			metadata_operation_failed(cache, "dm_cache_load_discards", r);
3121 			return r;
3122 		}
3123 		set_discard_range(&li);
3124 
3125 		cache->loaded_discards = true;
3126 	}
3127 
3128 	return r;
3129 }
3130 
cache_resume(struct dm_target * ti)3131 static void cache_resume(struct dm_target *ti)
3132 {
3133 	struct cache *cache = ti->private;
3134 
3135 	cache->need_tick_bio = true;
3136 	allow_background_work(cache);
3137 	do_waker(&cache->waker.work);
3138 }
3139 
emit_flags(struct cache * cache,char * result,unsigned int maxlen,ssize_t * sz_ptr)3140 static void emit_flags(struct cache *cache, char *result,
3141 		       unsigned int maxlen, ssize_t *sz_ptr)
3142 {
3143 	ssize_t sz = *sz_ptr;
3144 	struct cache_features *cf = &cache->features;
3145 	unsigned int count = (cf->metadata_version == 2) + !cf->discard_passdown + 1;
3146 
3147 	DMEMIT("%u ", count);
3148 
3149 	if (cf->metadata_version == 2)
3150 		DMEMIT("metadata2 ");
3151 
3152 	if (writethrough_mode(cache))
3153 		DMEMIT("writethrough ");
3154 
3155 	else if (passthrough_mode(cache))
3156 		DMEMIT("passthrough ");
3157 
3158 	else if (writeback_mode(cache))
3159 		DMEMIT("writeback ");
3160 
3161 	else {
3162 		DMEMIT("unknown ");
3163 		DMERR("%s: internal error: unknown io mode: %d",
3164 		      cache_device_name(cache), (int) cf->io_mode);
3165 	}
3166 
3167 	if (!cf->discard_passdown)
3168 		DMEMIT("no_discard_passdown ");
3169 
3170 	*sz_ptr = sz;
3171 }
3172 
3173 /*
3174  * Status format:
3175  *
3176  * <metadata block size> <#used metadata blocks>/<#total metadata blocks>
3177  * <cache block size> <#used cache blocks>/<#total cache blocks>
3178  * <#read hits> <#read misses> <#write hits> <#write misses>
3179  * <#demotions> <#promotions> <#dirty>
3180  * <#features> <features>*
3181  * <#core args> <core args>
3182  * <policy name> <#policy args> <policy args>* <cache metadata mode> <needs_check>
3183  */
cache_status(struct dm_target * ti,status_type_t type,unsigned int status_flags,char * result,unsigned int maxlen)3184 static void cache_status(struct dm_target *ti, status_type_t type,
3185 			 unsigned int status_flags, char *result, unsigned int maxlen)
3186 {
3187 	int r = 0;
3188 	unsigned int i;
3189 	ssize_t sz = 0;
3190 	dm_block_t nr_free_blocks_metadata = 0;
3191 	dm_block_t nr_blocks_metadata = 0;
3192 	char buf[BDEVNAME_SIZE];
3193 	struct cache *cache = ti->private;
3194 	dm_cblock_t residency;
3195 	bool needs_check;
3196 
3197 	switch (type) {
3198 	case STATUSTYPE_INFO:
3199 		if (get_cache_mode(cache) == CM_FAIL) {
3200 			DMEMIT("Fail");
3201 			break;
3202 		}
3203 
3204 		/* Commit to ensure statistics aren't out-of-date */
3205 		if (!(status_flags & DM_STATUS_NOFLUSH_FLAG) && !dm_suspended(ti))
3206 			(void) commit(cache, false);
3207 
3208 		r = dm_cache_get_free_metadata_block_count(cache->cmd, &nr_free_blocks_metadata);
3209 		if (r) {
3210 			DMERR("%s: dm_cache_get_free_metadata_block_count returned %d",
3211 			      cache_device_name(cache), r);
3212 			goto err;
3213 		}
3214 
3215 		r = dm_cache_get_metadata_dev_size(cache->cmd, &nr_blocks_metadata);
3216 		if (r) {
3217 			DMERR("%s: dm_cache_get_metadata_dev_size returned %d",
3218 			      cache_device_name(cache), r);
3219 			goto err;
3220 		}
3221 
3222 		residency = policy_residency(cache->policy);
3223 
3224 		DMEMIT("%u %llu/%llu %llu %llu/%llu %u %u %u %u %u %u %lu ",
3225 		       (unsigned int)DM_CACHE_METADATA_BLOCK_SIZE,
3226 		       (unsigned long long)(nr_blocks_metadata - nr_free_blocks_metadata),
3227 		       (unsigned long long)nr_blocks_metadata,
3228 		       (unsigned long long)cache->sectors_per_block,
3229 		       (unsigned long long) from_cblock(residency),
3230 		       (unsigned long long) from_cblock(cache->cache_size),
3231 		       (unsigned int) atomic_read(&cache->stats.read_hit),
3232 		       (unsigned int) atomic_read(&cache->stats.read_miss),
3233 		       (unsigned int) atomic_read(&cache->stats.write_hit),
3234 		       (unsigned int) atomic_read(&cache->stats.write_miss),
3235 		       (unsigned int) atomic_read(&cache->stats.demotion),
3236 		       (unsigned int) atomic_read(&cache->stats.promotion),
3237 		       (unsigned long) atomic_read(&cache->nr_dirty));
3238 
3239 		emit_flags(cache, result, maxlen, &sz);
3240 
3241 		DMEMIT("2 migration_threshold %llu ", (unsigned long long) cache->migration_threshold);
3242 
3243 		DMEMIT("%s ", dm_cache_policy_get_name(cache->policy));
3244 		if (sz < maxlen) {
3245 			r = policy_emit_config_values(cache->policy, result, maxlen, &sz);
3246 			if (r)
3247 				DMERR("%s: policy_emit_config_values returned %d",
3248 				      cache_device_name(cache), r);
3249 		}
3250 
3251 		if (get_cache_mode(cache) == CM_READ_ONLY)
3252 			DMEMIT("ro ");
3253 		else
3254 			DMEMIT("rw ");
3255 
3256 		r = dm_cache_metadata_needs_check(cache->cmd, &needs_check);
3257 
3258 		if (r || needs_check)
3259 			DMEMIT("needs_check ");
3260 		else
3261 			DMEMIT("- ");
3262 
3263 		break;
3264 
3265 	case STATUSTYPE_TABLE:
3266 		format_dev_t(buf, cache->metadata_dev->bdev->bd_dev);
3267 		DMEMIT("%s ", buf);
3268 		format_dev_t(buf, cache->cache_dev->bdev->bd_dev);
3269 		DMEMIT("%s ", buf);
3270 		format_dev_t(buf, cache->origin_dev->bdev->bd_dev);
3271 		DMEMIT("%s", buf);
3272 
3273 		for (i = 0; i < cache->nr_ctr_args - 1; i++)
3274 			DMEMIT(" %s", cache->ctr_args[i]);
3275 		if (cache->nr_ctr_args)
3276 			DMEMIT(" %s", cache->ctr_args[cache->nr_ctr_args - 1]);
3277 		break;
3278 
3279 	case STATUSTYPE_IMA:
3280 		DMEMIT_TARGET_NAME_VERSION(ti->type);
3281 		if (get_cache_mode(cache) == CM_FAIL)
3282 			DMEMIT(",metadata_mode=fail");
3283 		else if (get_cache_mode(cache) == CM_READ_ONLY)
3284 			DMEMIT(",metadata_mode=ro");
3285 		else
3286 			DMEMIT(",metadata_mode=rw");
3287 
3288 		format_dev_t(buf, cache->metadata_dev->bdev->bd_dev);
3289 		DMEMIT(",cache_metadata_device=%s", buf);
3290 		format_dev_t(buf, cache->cache_dev->bdev->bd_dev);
3291 		DMEMIT(",cache_device=%s", buf);
3292 		format_dev_t(buf, cache->origin_dev->bdev->bd_dev);
3293 		DMEMIT(",cache_origin_device=%s", buf);
3294 		DMEMIT(",writethrough=%c", writethrough_mode(cache) ? 'y' : 'n');
3295 		DMEMIT(",writeback=%c", writeback_mode(cache) ? 'y' : 'n');
3296 		DMEMIT(",passthrough=%c", passthrough_mode(cache) ? 'y' : 'n');
3297 		DMEMIT(",metadata2=%c", cache->features.metadata_version == 2 ? 'y' : 'n');
3298 		DMEMIT(",no_discard_passdown=%c", cache->features.discard_passdown ? 'n' : 'y');
3299 		DMEMIT(";");
3300 		break;
3301 	}
3302 
3303 	return;
3304 
3305 err:
3306 	DMEMIT("Error");
3307 }
3308 
3309 /*
3310  * Defines a range of cblocks, begin to (end - 1) are in the range.  end is
3311  * the one-past-the-end value.
3312  */
3313 struct cblock_range {
3314 	dm_cblock_t begin;
3315 	dm_cblock_t end;
3316 };
3317 
cblock_succ(dm_cblock_t b)3318 static inline dm_cblock_t cblock_succ(dm_cblock_t b)
3319 {
3320 	return to_cblock(from_cblock(b) + 1);
3321 }
3322 
3323 /*
3324  * A cache block range can take two forms:
3325  *
3326  * i) A single cblock, eg. '3456'
3327  * ii) A begin and end cblock with a dash between, eg. 123-234
3328  */
parse_cblock_range(struct cache * cache,char * str,struct cblock_range * result)3329 static int parse_cblock_range(struct cache *cache, char *str,
3330 			      struct cblock_range *result)
3331 {
3332 	char *blocknr = strsep(&str, "-");
3333 	unsigned int b, e;
3334 	int r;
3335 
3336 	r = kstrtouint(blocknr, 10, &b);
3337 	if (r)
3338 		goto bad;
3339 
3340 	result->begin = to_cblock(b);
3341 
3342 	if (str) {
3343 		blocknr = str;
3344 
3345 		r = kstrtouint(blocknr, 10, &e);
3346 		if (r)
3347 			goto bad;
3348 
3349 		result->end = to_cblock(e);
3350 	} else {
3351 		result->end = cblock_succ(result->begin);
3352 	}
3353 
3354 	return 0;
3355 
3356 bad:
3357 	DMERR("%s: invalid cblock range '%s'", cache_device_name(cache), blocknr);
3358 	return -EINVAL;
3359 }
3360 
validate_cblock_range(struct cache * cache,struct cblock_range * range)3361 static int validate_cblock_range(struct cache *cache, struct cblock_range *range)
3362 {
3363 	uint64_t b = from_cblock(range->begin);
3364 	uint64_t e = from_cblock(range->end);
3365 	uint64_t n = from_cblock(cache->cache_size);
3366 
3367 	if (b >= n) {
3368 		DMERR("%s: begin cblock out of range: %llu >= %llu",
3369 		      cache_device_name(cache), b, n);
3370 		return -EINVAL;
3371 	}
3372 
3373 	if (e > n) {
3374 		DMERR("%s: end cblock out of range: %llu > %llu",
3375 		      cache_device_name(cache), e, n);
3376 		return -EINVAL;
3377 	}
3378 
3379 	if (b >= e) {
3380 		DMERR("%s: invalid cblock range: %llu >= %llu",
3381 		      cache_device_name(cache), b, e);
3382 		return -EINVAL;
3383 	}
3384 
3385 	return 0;
3386 }
3387 
request_invalidation(struct cache * cache,struct cblock_range * range)3388 static int request_invalidation(struct cache *cache, struct cblock_range *range)
3389 {
3390 	int r = 0;
3391 
3392 	/*
3393 	 * We don't need to do any locking here because we know we're in
3394 	 * passthrough mode.  There's is potential for a race between an
3395 	 * invalidation triggered by an io and an invalidation message.  This
3396 	 * is harmless, we must not worry if the policy call fails.
3397 	 */
3398 	while (range->begin != range->end) {
3399 		r = invalidate_cblock(cache, range->begin);
3400 		if (r)
3401 			return r;
3402 
3403 		range->begin = cblock_succ(range->begin);
3404 	}
3405 
3406 	cache->commit_requested = true;
3407 	return r;
3408 }
3409 
process_invalidate_cblocks_message(struct cache * cache,unsigned int count,char ** cblock_ranges)3410 static int process_invalidate_cblocks_message(struct cache *cache, unsigned int count,
3411 					      char **cblock_ranges)
3412 {
3413 	int r = 0;
3414 	unsigned int i;
3415 	struct cblock_range range;
3416 
3417 	if (!passthrough_mode(cache)) {
3418 		DMERR("%s: cache has to be in passthrough mode for invalidation",
3419 		      cache_device_name(cache));
3420 		return -EPERM;
3421 	}
3422 
3423 	for (i = 0; i < count; i++) {
3424 		r = parse_cblock_range(cache, cblock_ranges[i], &range);
3425 		if (r)
3426 			break;
3427 
3428 		r = validate_cblock_range(cache, &range);
3429 		if (r)
3430 			break;
3431 
3432 		/*
3433 		 * Pass begin and end origin blocks to the worker and wake it.
3434 		 */
3435 		r = request_invalidation(cache, &range);
3436 		if (r)
3437 			break;
3438 	}
3439 
3440 	return r;
3441 }
3442 
3443 /*
3444  * Supports
3445  *	"<key> <value>"
3446  * and
3447  *     "invalidate_cblocks [(<begin>)|(<begin>-<end>)]*
3448  *
3449  * The key migration_threshold is supported by the cache target core.
3450  */
cache_message(struct dm_target * ti,unsigned int argc,char ** argv,char * result,unsigned int maxlen)3451 static int cache_message(struct dm_target *ti, unsigned int argc, char **argv,
3452 			 char *result, unsigned int maxlen)
3453 {
3454 	struct cache *cache = ti->private;
3455 
3456 	if (!argc)
3457 		return -EINVAL;
3458 
3459 	if (get_cache_mode(cache) >= CM_READ_ONLY) {
3460 		DMERR("%s: unable to service cache target messages in READ_ONLY or FAIL mode",
3461 		      cache_device_name(cache));
3462 		return -EOPNOTSUPP;
3463 	}
3464 
3465 	if (!strcasecmp(argv[0], "invalidate_cblocks"))
3466 		return process_invalidate_cblocks_message(cache, argc - 1, argv + 1);
3467 
3468 	if (argc != 2)
3469 		return -EINVAL;
3470 
3471 	return set_config_value(cache, argv[0], argv[1]);
3472 }
3473 
cache_iterate_devices(struct dm_target * ti,iterate_devices_callout_fn fn,void * data)3474 static int cache_iterate_devices(struct dm_target *ti,
3475 				 iterate_devices_callout_fn fn, void *data)
3476 {
3477 	int r = 0;
3478 	struct cache *cache = ti->private;
3479 
3480 	r = fn(ti, cache->cache_dev, 0, get_dev_size(cache->cache_dev), data);
3481 	if (!r)
3482 		r = fn(ti, cache->origin_dev, 0, ti->len, data);
3483 
3484 	return r;
3485 }
3486 
3487 /*
3488  * If discard_passdown was enabled verify that the origin device
3489  * supports discards.  Disable discard_passdown if not.
3490  */
disable_passdown_if_not_supported(struct cache * cache)3491 static void disable_passdown_if_not_supported(struct cache *cache)
3492 {
3493 	struct block_device *origin_bdev = cache->origin_dev->bdev;
3494 	struct queue_limits *origin_limits = bdev_limits(origin_bdev);
3495 	const char *reason = NULL;
3496 
3497 	if (!cache->features.discard_passdown)
3498 		return;
3499 
3500 	if (!bdev_max_discard_sectors(origin_bdev))
3501 		reason = "discard unsupported";
3502 
3503 	else if (origin_limits->max_discard_sectors < cache->sectors_per_block)
3504 		reason = "max discard sectors smaller than a block";
3505 
3506 	if (reason) {
3507 		DMWARN("Origin device (%pg) %s: Disabling discard passdown.",
3508 		       origin_bdev, reason);
3509 		cache->features.discard_passdown = false;
3510 	}
3511 }
3512 
set_discard_limits(struct cache * cache,struct queue_limits * limits)3513 static void set_discard_limits(struct cache *cache, struct queue_limits *limits)
3514 {
3515 	struct block_device *origin_bdev = cache->origin_dev->bdev;
3516 	struct queue_limits *origin_limits = bdev_limits(origin_bdev);
3517 
3518 	if (!cache->features.discard_passdown) {
3519 		/* No passdown is done so setting own virtual limits */
3520 		limits->max_hw_discard_sectors = min_t(sector_t, cache->discard_block_size * 1024,
3521 						       cache->origin_sectors);
3522 		limits->discard_granularity = cache->discard_block_size << SECTOR_SHIFT;
3523 		return;
3524 	}
3525 
3526 	/*
3527 	 * cache_iterate_devices() is stacking both origin and fast device limits
3528 	 * but discards aren't passed to fast device, so inherit origin's limits.
3529 	 */
3530 	limits->max_hw_discard_sectors = origin_limits->max_hw_discard_sectors;
3531 	limits->discard_granularity = origin_limits->discard_granularity;
3532 	limits->discard_alignment = origin_limits->discard_alignment;
3533 }
3534 
cache_io_hints(struct dm_target * ti,struct queue_limits * limits)3535 static void cache_io_hints(struct dm_target *ti, struct queue_limits *limits)
3536 {
3537 	struct cache *cache = ti->private;
3538 	uint64_t io_opt_sectors = limits->io_opt >> SECTOR_SHIFT;
3539 
3540 	/*
3541 	 * If the system-determined stacked limits are compatible with the
3542 	 * cache's blocksize (io_opt is a factor) do not override them.
3543 	 */
3544 	if (io_opt_sectors < cache->sectors_per_block ||
3545 	    do_div(io_opt_sectors, cache->sectors_per_block)) {
3546 		limits->io_min = cache->sectors_per_block << SECTOR_SHIFT;
3547 		limits->io_opt = cache->sectors_per_block << SECTOR_SHIFT;
3548 	}
3549 
3550 	disable_passdown_if_not_supported(cache);
3551 	set_discard_limits(cache, limits);
3552 }
3553 
3554 /*----------------------------------------------------------------*/
3555 
3556 static struct target_type cache_target = {
3557 	.name = "cache",
3558 	.version = {2, 4, 0},
3559 	.module = THIS_MODULE,
3560 	.ctr = cache_ctr,
3561 	.dtr = cache_dtr,
3562 	.map = cache_map,
3563 	.end_io = cache_end_io,
3564 	.postsuspend = cache_postsuspend,
3565 	.preresume = cache_preresume,
3566 	.resume = cache_resume,
3567 	.status = cache_status,
3568 	.message = cache_message,
3569 	.iterate_devices = cache_iterate_devices,
3570 	.io_hints = cache_io_hints,
3571 };
3572 
dm_cache_init(void)3573 static int __init dm_cache_init(void)
3574 {
3575 	int r;
3576 
3577 	migration_cache = KMEM_CACHE(dm_cache_migration, 0);
3578 	if (!migration_cache) {
3579 		r = -ENOMEM;
3580 		goto err;
3581 	}
3582 
3583 	btracker_work_cache = kmem_cache_create("dm_cache_bt_work",
3584 		sizeof(struct bt_work), __alignof__(struct bt_work), 0, NULL);
3585 	if (!btracker_work_cache) {
3586 		r = -ENOMEM;
3587 		goto err;
3588 	}
3589 
3590 	r = dm_register_target(&cache_target);
3591 	if (r) {
3592 		goto err;
3593 	}
3594 
3595 	return 0;
3596 
3597 err:
3598 	kmem_cache_destroy(migration_cache);
3599 	kmem_cache_destroy(btracker_work_cache);
3600 	return r;
3601 }
3602 
dm_cache_exit(void)3603 static void __exit dm_cache_exit(void)
3604 {
3605 	dm_unregister_target(&cache_target);
3606 	kmem_cache_destroy(migration_cache);
3607 	kmem_cache_destroy(btracker_work_cache);
3608 }
3609 
3610 module_init(dm_cache_init);
3611 module_exit(dm_cache_exit);
3612 
3613 MODULE_DESCRIPTION(DM_NAME " cache target");
3614 MODULE_AUTHOR("Joe Thornber <ejt@redhat.com>");
3615 MODULE_LICENSE("GPL");
3616