dm-thin.c 110 KB

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  1. /*
  2. * Copyright (C) 2011-2012 Red Hat UK.
  3. *
  4. * This file is released under the GPL.
  5. */
  6. #include "dm-thin-metadata.h"
  7. #include "dm-bio-prison.h"
  8. #include "dm.h"
  9. #include <linux/device-mapper.h>
  10. #include <linux/dm-io.h>
  11. #include <linux/dm-kcopyd.h>
  12. #include <linux/jiffies.h>
  13. #include <linux/log2.h>
  14. #include <linux/list.h>
  15. #include <linux/rculist.h>
  16. #include <linux/init.h>
  17. #include <linux/module.h>
  18. #include <linux/slab.h>
  19. #include <linux/vmalloc.h>
  20. #include <linux/sort.h>
  21. #include <linux/rbtree.h>
  22. #define DM_MSG_PREFIX "thin"
  23. /*
  24. * Tunable constants
  25. */
  26. #define ENDIO_HOOK_POOL_SIZE 1024
  27. #define MAPPING_POOL_SIZE 1024
  28. #define COMMIT_PERIOD HZ
  29. #define NO_SPACE_TIMEOUT_SECS 60
  30. static unsigned no_space_timeout_secs = NO_SPACE_TIMEOUT_SECS;
  31. DECLARE_DM_KCOPYD_THROTTLE_WITH_MODULE_PARM(snapshot_copy_throttle,
  32. "A percentage of time allocated for copy on write");
  33. /*
  34. * The block size of the device holding pool data must be
  35. * between 64KB and 1GB.
  36. */
  37. #define DATA_DEV_BLOCK_SIZE_MIN_SECTORS (64 * 1024 >> SECTOR_SHIFT)
  38. #define DATA_DEV_BLOCK_SIZE_MAX_SECTORS (1024 * 1024 * 1024 >> SECTOR_SHIFT)
  39. /*
  40. * Device id is restricted to 24 bits.
  41. */
  42. #define MAX_DEV_ID ((1 << 24) - 1)
  43. /*
  44. * How do we handle breaking sharing of data blocks?
  45. * =================================================
  46. *
  47. * We use a standard copy-on-write btree to store the mappings for the
  48. * devices (note I'm talking about copy-on-write of the metadata here, not
  49. * the data). When you take an internal snapshot you clone the root node
  50. * of the origin btree. After this there is no concept of an origin or a
  51. * snapshot. They are just two device trees that happen to point to the
  52. * same data blocks.
  53. *
  54. * When we get a write in we decide if it's to a shared data block using
  55. * some timestamp magic. If it is, we have to break sharing.
  56. *
  57. * Let's say we write to a shared block in what was the origin. The
  58. * steps are:
  59. *
  60. * i) plug io further to this physical block. (see bio_prison code).
  61. *
  62. * ii) quiesce any read io to that shared data block. Obviously
  63. * including all devices that share this block. (see dm_deferred_set code)
  64. *
  65. * iii) copy the data block to a newly allocate block. This step can be
  66. * missed out if the io covers the block. (schedule_copy).
  67. *
  68. * iv) insert the new mapping into the origin's btree
  69. * (process_prepared_mapping). This act of inserting breaks some
  70. * sharing of btree nodes between the two devices. Breaking sharing only
  71. * effects the btree of that specific device. Btrees for the other
  72. * devices that share the block never change. The btree for the origin
  73. * device as it was after the last commit is untouched, ie. we're using
  74. * persistent data structures in the functional programming sense.
  75. *
  76. * v) unplug io to this physical block, including the io that triggered
  77. * the breaking of sharing.
  78. *
  79. * Steps (ii) and (iii) occur in parallel.
  80. *
  81. * The metadata _doesn't_ need to be committed before the io continues. We
  82. * get away with this because the io is always written to a _new_ block.
  83. * If there's a crash, then:
  84. *
  85. * - The origin mapping will point to the old origin block (the shared
  86. * one). This will contain the data as it was before the io that triggered
  87. * the breaking of sharing came in.
  88. *
  89. * - The snap mapping still points to the old block. As it would after
  90. * the commit.
  91. *
  92. * The downside of this scheme is the timestamp magic isn't perfect, and
  93. * will continue to think that data block in the snapshot device is shared
  94. * even after the write to the origin has broken sharing. I suspect data
  95. * blocks will typically be shared by many different devices, so we're
  96. * breaking sharing n + 1 times, rather than n, where n is the number of
  97. * devices that reference this data block. At the moment I think the
  98. * benefits far, far outweigh the disadvantages.
  99. */
  100. /*----------------------------------------------------------------*/
  101. /*
  102. * Key building.
  103. */
  104. enum lock_space {
  105. VIRTUAL,
  106. PHYSICAL
  107. };
  108. static void build_key(struct dm_thin_device *td, enum lock_space ls,
  109. dm_block_t b, dm_block_t e, struct dm_cell_key *key)
  110. {
  111. key->virtual = (ls == VIRTUAL);
  112. key->dev = dm_thin_dev_id(td);
  113. key->block_begin = b;
  114. key->block_end = e;
  115. }
  116. static void build_data_key(struct dm_thin_device *td, dm_block_t b,
  117. struct dm_cell_key *key)
  118. {
  119. build_key(td, PHYSICAL, b, b + 1llu, key);
  120. }
  121. static void build_virtual_key(struct dm_thin_device *td, dm_block_t b,
  122. struct dm_cell_key *key)
  123. {
  124. build_key(td, VIRTUAL, b, b + 1llu, key);
  125. }
  126. /*----------------------------------------------------------------*/
  127. #define THROTTLE_THRESHOLD (1 * HZ)
  128. struct throttle {
  129. struct rw_semaphore lock;
  130. unsigned long threshold;
  131. bool throttle_applied;
  132. };
  133. static void throttle_init(struct throttle *t)
  134. {
  135. init_rwsem(&t->lock);
  136. t->throttle_applied = false;
  137. }
  138. static void throttle_work_start(struct throttle *t)
  139. {
  140. t->threshold = jiffies + THROTTLE_THRESHOLD;
  141. }
  142. static void throttle_work_update(struct throttle *t)
  143. {
  144. if (!t->throttle_applied && jiffies > t->threshold) {
  145. down_write(&t->lock);
  146. t->throttle_applied = true;
  147. }
  148. }
  149. static void throttle_work_complete(struct throttle *t)
  150. {
  151. if (t->throttle_applied) {
  152. t->throttle_applied = false;
  153. up_write(&t->lock);
  154. }
  155. }
  156. static void throttle_lock(struct throttle *t)
  157. {
  158. down_read(&t->lock);
  159. }
  160. static void throttle_unlock(struct throttle *t)
  161. {
  162. up_read(&t->lock);
  163. }
  164. /*----------------------------------------------------------------*/
  165. /*
  166. * A pool device ties together a metadata device and a data device. It
  167. * also provides the interface for creating and destroying internal
  168. * devices.
  169. */
  170. struct dm_thin_new_mapping;
  171. /*
  172. * The pool runs in 4 modes. Ordered in degraded order for comparisons.
  173. */
  174. enum pool_mode {
  175. PM_WRITE, /* metadata may be changed */
  176. PM_OUT_OF_DATA_SPACE, /* metadata may be changed, though data may not be allocated */
  177. PM_READ_ONLY, /* metadata may not be changed */
  178. PM_FAIL, /* all I/O fails */
  179. };
  180. struct pool_features {
  181. enum pool_mode mode;
  182. bool zero_new_blocks:1;
  183. bool discard_enabled:1;
  184. bool discard_passdown:1;
  185. bool error_if_no_space:1;
  186. };
  187. struct thin_c;
  188. typedef void (*process_bio_fn)(struct thin_c *tc, struct bio *bio);
  189. typedef void (*process_cell_fn)(struct thin_c *tc, struct dm_bio_prison_cell *cell);
  190. typedef void (*process_mapping_fn)(struct dm_thin_new_mapping *m);
  191. #define CELL_SORT_ARRAY_SIZE 8192
  192. struct pool {
  193. struct list_head list;
  194. struct dm_target *ti; /* Only set if a pool target is bound */
  195. struct mapped_device *pool_md;
  196. struct block_device *md_dev;
  197. struct dm_pool_metadata *pmd;
  198. dm_block_t low_water_blocks;
  199. uint32_t sectors_per_block;
  200. int sectors_per_block_shift;
  201. struct pool_features pf;
  202. bool low_water_triggered:1; /* A dm event has been sent */
  203. bool suspended:1;
  204. bool out_of_data_space:1;
  205. struct dm_bio_prison *prison;
  206. struct dm_kcopyd_client *copier;
  207. struct workqueue_struct *wq;
  208. struct throttle throttle;
  209. struct work_struct worker;
  210. struct delayed_work waker;
  211. struct delayed_work no_space_timeout;
  212. unsigned long last_commit_jiffies;
  213. unsigned ref_count;
  214. spinlock_t lock;
  215. struct bio_list deferred_flush_bios;
  216. struct list_head prepared_mappings;
  217. struct list_head prepared_discards;
  218. struct list_head prepared_discards_pt2;
  219. struct list_head active_thins;
  220. struct dm_deferred_set *shared_read_ds;
  221. struct dm_deferred_set *all_io_ds;
  222. struct dm_thin_new_mapping *next_mapping;
  223. mempool_t *mapping_pool;
  224. process_bio_fn process_bio;
  225. process_bio_fn process_discard;
  226. process_cell_fn process_cell;
  227. process_cell_fn process_discard_cell;
  228. process_mapping_fn process_prepared_mapping;
  229. process_mapping_fn process_prepared_discard;
  230. process_mapping_fn process_prepared_discard_pt2;
  231. struct dm_bio_prison_cell **cell_sort_array;
  232. };
  233. static enum pool_mode get_pool_mode(struct pool *pool);
  234. static void metadata_operation_failed(struct pool *pool, const char *op, int r);
  235. /*
  236. * Target context for a pool.
  237. */
  238. struct pool_c {
  239. struct dm_target *ti;
  240. struct pool *pool;
  241. struct dm_dev *data_dev;
  242. struct dm_dev *metadata_dev;
  243. struct dm_target_callbacks callbacks;
  244. dm_block_t low_water_blocks;
  245. struct pool_features requested_pf; /* Features requested during table load */
  246. struct pool_features adjusted_pf; /* Features used after adjusting for constituent devices */
  247. };
  248. /*
  249. * Target context for a thin.
  250. */
  251. struct thin_c {
  252. struct list_head list;
  253. struct dm_dev *pool_dev;
  254. struct dm_dev *origin_dev;
  255. sector_t origin_size;
  256. dm_thin_id dev_id;
  257. struct pool *pool;
  258. struct dm_thin_device *td;
  259. struct mapped_device *thin_md;
  260. bool requeue_mode:1;
  261. spinlock_t lock;
  262. struct list_head deferred_cells;
  263. struct bio_list deferred_bio_list;
  264. struct bio_list retry_on_resume_list;
  265. struct rb_root sort_bio_list; /* sorted list of deferred bios */
  266. /*
  267. * Ensures the thin is not destroyed until the worker has finished
  268. * iterating the active_thins list.
  269. */
  270. atomic_t refcount;
  271. struct completion can_destroy;
  272. };
  273. /*----------------------------------------------------------------*/
  274. static bool block_size_is_power_of_two(struct pool *pool)
  275. {
  276. return pool->sectors_per_block_shift >= 0;
  277. }
  278. static sector_t block_to_sectors(struct pool *pool, dm_block_t b)
  279. {
  280. return block_size_is_power_of_two(pool) ?
  281. (b << pool->sectors_per_block_shift) :
  282. (b * pool->sectors_per_block);
  283. }
  284. /*----------------------------------------------------------------*/
  285. struct discard_op {
  286. struct thin_c *tc;
  287. struct blk_plug plug;
  288. struct bio *parent_bio;
  289. struct bio *bio;
  290. };
  291. static void begin_discard(struct discard_op *op, struct thin_c *tc, struct bio *parent)
  292. {
  293. BUG_ON(!parent);
  294. op->tc = tc;
  295. blk_start_plug(&op->plug);
  296. op->parent_bio = parent;
  297. op->bio = NULL;
  298. }
  299. static int issue_discard(struct discard_op *op, dm_block_t data_b, dm_block_t data_e)
  300. {
  301. struct thin_c *tc = op->tc;
  302. sector_t s = block_to_sectors(tc->pool, data_b);
  303. sector_t len = block_to_sectors(tc->pool, data_e - data_b);
  304. return __blkdev_issue_discard(tc->pool_dev->bdev, s, len,
  305. GFP_NOWAIT, 0, &op->bio);
  306. }
  307. static void end_discard(struct discard_op *op, int r)
  308. {
  309. if (op->bio) {
  310. /*
  311. * Even if one of the calls to issue_discard failed, we
  312. * need to wait for the chain to complete.
  313. */
  314. bio_chain(op->bio, op->parent_bio);
  315. bio_set_op_attrs(op->bio, REQ_OP_DISCARD, 0);
  316. submit_bio(op->bio);
  317. }
  318. blk_finish_plug(&op->plug);
  319. /*
  320. * Even if r is set, there could be sub discards in flight that we
  321. * need to wait for.
  322. */
  323. if (r && !op->parent_bio->bi_error)
  324. op->parent_bio->bi_error = r;
  325. bio_endio(op->parent_bio);
  326. }
  327. /*----------------------------------------------------------------*/
  328. /*
  329. * wake_worker() is used when new work is queued and when pool_resume is
  330. * ready to continue deferred IO processing.
  331. */
  332. static void wake_worker(struct pool *pool)
  333. {
  334. queue_work(pool->wq, &pool->worker);
  335. }
  336. /*----------------------------------------------------------------*/
  337. static int bio_detain(struct pool *pool, struct dm_cell_key *key, struct bio *bio,
  338. struct dm_bio_prison_cell **cell_result)
  339. {
  340. int r;
  341. struct dm_bio_prison_cell *cell_prealloc;
  342. /*
  343. * Allocate a cell from the prison's mempool.
  344. * This might block but it can't fail.
  345. */
  346. cell_prealloc = dm_bio_prison_alloc_cell(pool->prison, GFP_NOIO);
  347. r = dm_bio_detain(pool->prison, key, bio, cell_prealloc, cell_result);
  348. if (r)
  349. /*
  350. * We reused an old cell; we can get rid of
  351. * the new one.
  352. */
  353. dm_bio_prison_free_cell(pool->prison, cell_prealloc);
  354. return r;
  355. }
  356. static void cell_release(struct pool *pool,
  357. struct dm_bio_prison_cell *cell,
  358. struct bio_list *bios)
  359. {
  360. dm_cell_release(pool->prison, cell, bios);
  361. dm_bio_prison_free_cell(pool->prison, cell);
  362. }
  363. static void cell_visit_release(struct pool *pool,
  364. void (*fn)(void *, struct dm_bio_prison_cell *),
  365. void *context,
  366. struct dm_bio_prison_cell *cell)
  367. {
  368. dm_cell_visit_release(pool->prison, fn, context, cell);
  369. dm_bio_prison_free_cell(pool->prison, cell);
  370. }
  371. static void cell_release_no_holder(struct pool *pool,
  372. struct dm_bio_prison_cell *cell,
  373. struct bio_list *bios)
  374. {
  375. dm_cell_release_no_holder(pool->prison, cell, bios);
  376. dm_bio_prison_free_cell(pool->prison, cell);
  377. }
  378. static void cell_error_with_code(struct pool *pool,
  379. struct dm_bio_prison_cell *cell, int error_code)
  380. {
  381. dm_cell_error(pool->prison, cell, error_code);
  382. dm_bio_prison_free_cell(pool->prison, cell);
  383. }
  384. static int get_pool_io_error_code(struct pool *pool)
  385. {
  386. return pool->out_of_data_space ? -ENOSPC : -EIO;
  387. }
  388. static void cell_error(struct pool *pool, struct dm_bio_prison_cell *cell)
  389. {
  390. int error = get_pool_io_error_code(pool);
  391. cell_error_with_code(pool, cell, error);
  392. }
  393. static void cell_success(struct pool *pool, struct dm_bio_prison_cell *cell)
  394. {
  395. cell_error_with_code(pool, cell, 0);
  396. }
  397. static void cell_requeue(struct pool *pool, struct dm_bio_prison_cell *cell)
  398. {
  399. cell_error_with_code(pool, cell, DM_ENDIO_REQUEUE);
  400. }
  401. /*----------------------------------------------------------------*/
  402. /*
  403. * A global list of pools that uses a struct mapped_device as a key.
  404. */
  405. static struct dm_thin_pool_table {
  406. struct mutex mutex;
  407. struct list_head pools;
  408. } dm_thin_pool_table;
  409. static void pool_table_init(void)
  410. {
  411. mutex_init(&dm_thin_pool_table.mutex);
  412. INIT_LIST_HEAD(&dm_thin_pool_table.pools);
  413. }
  414. static void __pool_table_insert(struct pool *pool)
  415. {
  416. BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex));
  417. list_add(&pool->list, &dm_thin_pool_table.pools);
  418. }
  419. static void __pool_table_remove(struct pool *pool)
  420. {
  421. BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex));
  422. list_del(&pool->list);
  423. }
  424. static struct pool *__pool_table_lookup(struct mapped_device *md)
  425. {
  426. struct pool *pool = NULL, *tmp;
  427. BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex));
  428. list_for_each_entry(tmp, &dm_thin_pool_table.pools, list) {
  429. if (tmp->pool_md == md) {
  430. pool = tmp;
  431. break;
  432. }
  433. }
  434. return pool;
  435. }
  436. static struct pool *__pool_table_lookup_metadata_dev(struct block_device *md_dev)
  437. {
  438. struct pool *pool = NULL, *tmp;
  439. BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex));
  440. list_for_each_entry(tmp, &dm_thin_pool_table.pools, list) {
  441. if (tmp->md_dev == md_dev) {
  442. pool = tmp;
  443. break;
  444. }
  445. }
  446. return pool;
  447. }
  448. /*----------------------------------------------------------------*/
  449. struct dm_thin_endio_hook {
  450. struct thin_c *tc;
  451. struct dm_deferred_entry *shared_read_entry;
  452. struct dm_deferred_entry *all_io_entry;
  453. struct dm_thin_new_mapping *overwrite_mapping;
  454. struct rb_node rb_node;
  455. struct dm_bio_prison_cell *cell;
  456. };
  457. static void __merge_bio_list(struct bio_list *bios, struct bio_list *master)
  458. {
  459. bio_list_merge(bios, master);
  460. bio_list_init(master);
  461. }
  462. static void error_bio_list(struct bio_list *bios, int error)
  463. {
  464. struct bio *bio;
  465. while ((bio = bio_list_pop(bios))) {
  466. bio->bi_error = error;
  467. bio_endio(bio);
  468. }
  469. }
  470. static void error_thin_bio_list(struct thin_c *tc, struct bio_list *master, int error)
  471. {
  472. struct bio_list bios;
  473. unsigned long flags;
  474. bio_list_init(&bios);
  475. spin_lock_irqsave(&tc->lock, flags);
  476. __merge_bio_list(&bios, master);
  477. spin_unlock_irqrestore(&tc->lock, flags);
  478. error_bio_list(&bios, error);
  479. }
  480. static void requeue_deferred_cells(struct thin_c *tc)
  481. {
  482. struct pool *pool = tc->pool;
  483. unsigned long flags;
  484. struct list_head cells;
  485. struct dm_bio_prison_cell *cell, *tmp;
  486. INIT_LIST_HEAD(&cells);
  487. spin_lock_irqsave(&tc->lock, flags);
  488. list_splice_init(&tc->deferred_cells, &cells);
  489. spin_unlock_irqrestore(&tc->lock, flags);
  490. list_for_each_entry_safe(cell, tmp, &cells, user_list)
  491. cell_requeue(pool, cell);
  492. }
  493. static void requeue_io(struct thin_c *tc)
  494. {
  495. struct bio_list bios;
  496. unsigned long flags;
  497. bio_list_init(&bios);
  498. spin_lock_irqsave(&tc->lock, flags);
  499. __merge_bio_list(&bios, &tc->deferred_bio_list);
  500. __merge_bio_list(&bios, &tc->retry_on_resume_list);
  501. spin_unlock_irqrestore(&tc->lock, flags);
  502. error_bio_list(&bios, DM_ENDIO_REQUEUE);
  503. requeue_deferred_cells(tc);
  504. }
  505. static void error_retry_list_with_code(struct pool *pool, int error)
  506. {
  507. struct thin_c *tc;
  508. rcu_read_lock();
  509. list_for_each_entry_rcu(tc, &pool->active_thins, list)
  510. error_thin_bio_list(tc, &tc->retry_on_resume_list, error);
  511. rcu_read_unlock();
  512. }
  513. static void error_retry_list(struct pool *pool)
  514. {
  515. int error = get_pool_io_error_code(pool);
  516. error_retry_list_with_code(pool, error);
  517. }
  518. /*
  519. * This section of code contains the logic for processing a thin device's IO.
  520. * Much of the code depends on pool object resources (lists, workqueues, etc)
  521. * but most is exclusively called from the thin target rather than the thin-pool
  522. * target.
  523. */
  524. static dm_block_t get_bio_block(struct thin_c *tc, struct bio *bio)
  525. {
  526. struct pool *pool = tc->pool;
  527. sector_t block_nr = bio->bi_iter.bi_sector;
  528. if (block_size_is_power_of_two(pool))
  529. block_nr >>= pool->sectors_per_block_shift;
  530. else
  531. (void) sector_div(block_nr, pool->sectors_per_block);
  532. return block_nr;
  533. }
  534. /*
  535. * Returns the _complete_ blocks that this bio covers.
  536. */
  537. static void get_bio_block_range(struct thin_c *tc, struct bio *bio,
  538. dm_block_t *begin, dm_block_t *end)
  539. {
  540. struct pool *pool = tc->pool;
  541. sector_t b = bio->bi_iter.bi_sector;
  542. sector_t e = b + (bio->bi_iter.bi_size >> SECTOR_SHIFT);
  543. b += pool->sectors_per_block - 1ull; /* so we round up */
  544. if (block_size_is_power_of_two(pool)) {
  545. b >>= pool->sectors_per_block_shift;
  546. e >>= pool->sectors_per_block_shift;
  547. } else {
  548. (void) sector_div(b, pool->sectors_per_block);
  549. (void) sector_div(e, pool->sectors_per_block);
  550. }
  551. if (e < b)
  552. /* Can happen if the bio is within a single block. */
  553. e = b;
  554. *begin = b;
  555. *end = e;
  556. }
  557. static void remap(struct thin_c *tc, struct bio *bio, dm_block_t block)
  558. {
  559. struct pool *pool = tc->pool;
  560. sector_t bi_sector = bio->bi_iter.bi_sector;
  561. bio->bi_bdev = tc->pool_dev->bdev;
  562. if (block_size_is_power_of_two(pool))
  563. bio->bi_iter.bi_sector =
  564. (block << pool->sectors_per_block_shift) |
  565. (bi_sector & (pool->sectors_per_block - 1));
  566. else
  567. bio->bi_iter.bi_sector = (block * pool->sectors_per_block) +
  568. sector_div(bi_sector, pool->sectors_per_block);
  569. }
  570. static void remap_to_origin(struct thin_c *tc, struct bio *bio)
  571. {
  572. bio->bi_bdev = tc->origin_dev->bdev;
  573. }
  574. static int bio_triggers_commit(struct thin_c *tc, struct bio *bio)
  575. {
  576. return (bio->bi_opf & (REQ_PREFLUSH | REQ_FUA)) &&
  577. dm_thin_changed_this_transaction(tc->td);
  578. }
  579. static void inc_all_io_entry(struct pool *pool, struct bio *bio)
  580. {
  581. struct dm_thin_endio_hook *h;
  582. if (bio_op(bio) == REQ_OP_DISCARD)
  583. return;
  584. h = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));
  585. h->all_io_entry = dm_deferred_entry_inc(pool->all_io_ds);
  586. }
  587. static void issue(struct thin_c *tc, struct bio *bio)
  588. {
  589. struct pool *pool = tc->pool;
  590. unsigned long flags;
  591. if (!bio_triggers_commit(tc, bio)) {
  592. generic_make_request(bio);
  593. return;
  594. }
  595. /*
  596. * Complete bio with an error if earlier I/O caused changes to
  597. * the metadata that can't be committed e.g, due to I/O errors
  598. * on the metadata device.
  599. */
  600. if (dm_thin_aborted_changes(tc->td)) {
  601. bio_io_error(bio);
  602. return;
  603. }
  604. /*
  605. * Batch together any bios that trigger commits and then issue a
  606. * single commit for them in process_deferred_bios().
  607. */
  608. spin_lock_irqsave(&pool->lock, flags);
  609. bio_list_add(&pool->deferred_flush_bios, bio);
  610. spin_unlock_irqrestore(&pool->lock, flags);
  611. }
  612. static void remap_to_origin_and_issue(struct thin_c *tc, struct bio *bio)
  613. {
  614. remap_to_origin(tc, bio);
  615. issue(tc, bio);
  616. }
  617. static void remap_and_issue(struct thin_c *tc, struct bio *bio,
  618. dm_block_t block)
  619. {
  620. remap(tc, bio, block);
  621. issue(tc, bio);
  622. }
  623. /*----------------------------------------------------------------*/
  624. /*
  625. * Bio endio functions.
  626. */
  627. struct dm_thin_new_mapping {
  628. struct list_head list;
  629. bool pass_discard:1;
  630. bool maybe_shared:1;
  631. /*
  632. * Track quiescing, copying and zeroing preparation actions. When this
  633. * counter hits zero the block is prepared and can be inserted into the
  634. * btree.
  635. */
  636. atomic_t prepare_actions;
  637. int err;
  638. struct thin_c *tc;
  639. dm_block_t virt_begin, virt_end;
  640. dm_block_t data_block;
  641. struct dm_bio_prison_cell *cell;
  642. /*
  643. * If the bio covers the whole area of a block then we can avoid
  644. * zeroing or copying. Instead this bio is hooked. The bio will
  645. * still be in the cell, so care has to be taken to avoid issuing
  646. * the bio twice.
  647. */
  648. struct bio *bio;
  649. bio_end_io_t *saved_bi_end_io;
  650. };
  651. static void __complete_mapping_preparation(struct dm_thin_new_mapping *m)
  652. {
  653. struct pool *pool = m->tc->pool;
  654. if (atomic_dec_and_test(&m->prepare_actions)) {
  655. list_add_tail(&m->list, &pool->prepared_mappings);
  656. wake_worker(pool);
  657. }
  658. }
  659. static void complete_mapping_preparation(struct dm_thin_new_mapping *m)
  660. {
  661. unsigned long flags;
  662. struct pool *pool = m->tc->pool;
  663. spin_lock_irqsave(&pool->lock, flags);
  664. __complete_mapping_preparation(m);
  665. spin_unlock_irqrestore(&pool->lock, flags);
  666. }
  667. static void copy_complete(int read_err, unsigned long write_err, void *context)
  668. {
  669. struct dm_thin_new_mapping *m = context;
  670. m->err = read_err || write_err ? -EIO : 0;
  671. complete_mapping_preparation(m);
  672. }
  673. static void overwrite_endio(struct bio *bio)
  674. {
  675. struct dm_thin_endio_hook *h = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));
  676. struct dm_thin_new_mapping *m = h->overwrite_mapping;
  677. bio->bi_end_io = m->saved_bi_end_io;
  678. m->err = bio->bi_error;
  679. complete_mapping_preparation(m);
  680. }
  681. /*----------------------------------------------------------------*/
  682. /*
  683. * Workqueue.
  684. */
  685. /*
  686. * Prepared mapping jobs.
  687. */
  688. /*
  689. * This sends the bios in the cell, except the original holder, back
  690. * to the deferred_bios list.
  691. */
  692. static void cell_defer_no_holder(struct thin_c *tc, struct dm_bio_prison_cell *cell)
  693. {
  694. struct pool *pool = tc->pool;
  695. unsigned long flags;
  696. spin_lock_irqsave(&tc->lock, flags);
  697. cell_release_no_holder(pool, cell, &tc->deferred_bio_list);
  698. spin_unlock_irqrestore(&tc->lock, flags);
  699. wake_worker(pool);
  700. }
  701. static void thin_defer_bio(struct thin_c *tc, struct bio *bio);
  702. struct remap_info {
  703. struct thin_c *tc;
  704. struct bio_list defer_bios;
  705. struct bio_list issue_bios;
  706. };
  707. static void __inc_remap_and_issue_cell(void *context,
  708. struct dm_bio_prison_cell *cell)
  709. {
  710. struct remap_info *info = context;
  711. struct bio *bio;
  712. while ((bio = bio_list_pop(&cell->bios))) {
  713. if (bio->bi_opf & (REQ_PREFLUSH | REQ_FUA) ||
  714. bio_op(bio) == REQ_OP_DISCARD)
  715. bio_list_add(&info->defer_bios, bio);
  716. else {
  717. inc_all_io_entry(info->tc->pool, bio);
  718. /*
  719. * We can't issue the bios with the bio prison lock
  720. * held, so we add them to a list to issue on
  721. * return from this function.
  722. */
  723. bio_list_add(&info->issue_bios, bio);
  724. }
  725. }
  726. }
  727. static void inc_remap_and_issue_cell(struct thin_c *tc,
  728. struct dm_bio_prison_cell *cell,
  729. dm_block_t block)
  730. {
  731. struct bio *bio;
  732. struct remap_info info;
  733. info.tc = tc;
  734. bio_list_init(&info.defer_bios);
  735. bio_list_init(&info.issue_bios);
  736. /*
  737. * We have to be careful to inc any bios we're about to issue
  738. * before the cell is released, and avoid a race with new bios
  739. * being added to the cell.
  740. */
  741. cell_visit_release(tc->pool, __inc_remap_and_issue_cell,
  742. &info, cell);
  743. while ((bio = bio_list_pop(&info.defer_bios)))
  744. thin_defer_bio(tc, bio);
  745. while ((bio = bio_list_pop(&info.issue_bios)))
  746. remap_and_issue(info.tc, bio, block);
  747. }
  748. static void process_prepared_mapping_fail(struct dm_thin_new_mapping *m)
  749. {
  750. cell_error(m->tc->pool, m->cell);
  751. list_del(&m->list);
  752. mempool_free(m, m->tc->pool->mapping_pool);
  753. }
  754. static void process_prepared_mapping(struct dm_thin_new_mapping *m)
  755. {
  756. struct thin_c *tc = m->tc;
  757. struct pool *pool = tc->pool;
  758. struct bio *bio = m->bio;
  759. int r;
  760. if (m->err) {
  761. cell_error(pool, m->cell);
  762. goto out;
  763. }
  764. /*
  765. * Commit the prepared block into the mapping btree.
  766. * Any I/O for this block arriving after this point will get
  767. * remapped to it directly.
  768. */
  769. r = dm_thin_insert_block(tc->td, m->virt_begin, m->data_block);
  770. if (r) {
  771. metadata_operation_failed(pool, "dm_thin_insert_block", r);
  772. cell_error(pool, m->cell);
  773. goto out;
  774. }
  775. /*
  776. * Release any bios held while the block was being provisioned.
  777. * If we are processing a write bio that completely covers the block,
  778. * we already processed it so can ignore it now when processing
  779. * the bios in the cell.
  780. */
  781. if (bio) {
  782. inc_remap_and_issue_cell(tc, m->cell, m->data_block);
  783. bio_endio(bio);
  784. } else {
  785. inc_all_io_entry(tc->pool, m->cell->holder);
  786. remap_and_issue(tc, m->cell->holder, m->data_block);
  787. inc_remap_and_issue_cell(tc, m->cell, m->data_block);
  788. }
  789. out:
  790. list_del(&m->list);
  791. mempool_free(m, pool->mapping_pool);
  792. }
  793. /*----------------------------------------------------------------*/
  794. static void free_discard_mapping(struct dm_thin_new_mapping *m)
  795. {
  796. struct thin_c *tc = m->tc;
  797. if (m->cell)
  798. cell_defer_no_holder(tc, m->cell);
  799. mempool_free(m, tc->pool->mapping_pool);
  800. }
  801. static void process_prepared_discard_fail(struct dm_thin_new_mapping *m)
  802. {
  803. bio_io_error(m->bio);
  804. free_discard_mapping(m);
  805. }
  806. static void process_prepared_discard_success(struct dm_thin_new_mapping *m)
  807. {
  808. bio_endio(m->bio);
  809. free_discard_mapping(m);
  810. }
  811. static void process_prepared_discard_no_passdown(struct dm_thin_new_mapping *m)
  812. {
  813. int r;
  814. struct thin_c *tc = m->tc;
  815. r = dm_thin_remove_range(tc->td, m->cell->key.block_begin, m->cell->key.block_end);
  816. if (r) {
  817. metadata_operation_failed(tc->pool, "dm_thin_remove_range", r);
  818. bio_io_error(m->bio);
  819. } else
  820. bio_endio(m->bio);
  821. cell_defer_no_holder(tc, m->cell);
  822. mempool_free(m, tc->pool->mapping_pool);
  823. }
  824. /*----------------------------------------------------------------*/
  825. static void passdown_double_checking_shared_status(struct dm_thin_new_mapping *m,
  826. struct bio *discard_parent)
  827. {
  828. /*
  829. * We've already unmapped this range of blocks, but before we
  830. * passdown we have to check that these blocks are now unused.
  831. */
  832. int r = 0;
  833. bool used = true;
  834. struct thin_c *tc = m->tc;
  835. struct pool *pool = tc->pool;
  836. dm_block_t b = m->data_block, e, end = m->data_block + m->virt_end - m->virt_begin;
  837. struct discard_op op;
  838. begin_discard(&op, tc, discard_parent);
  839. while (b != end) {
  840. /* find start of unmapped run */
  841. for (; b < end; b++) {
  842. r = dm_pool_block_is_used(pool->pmd, b, &used);
  843. if (r)
  844. goto out;
  845. if (!used)
  846. break;
  847. }
  848. if (b == end)
  849. break;
  850. /* find end of run */
  851. for (e = b + 1; e != end; e++) {
  852. r = dm_pool_block_is_used(pool->pmd, e, &used);
  853. if (r)
  854. goto out;
  855. if (used)
  856. break;
  857. }
  858. r = issue_discard(&op, b, e);
  859. if (r)
  860. goto out;
  861. b = e;
  862. }
  863. out:
  864. end_discard(&op, r);
  865. }
  866. static void queue_passdown_pt2(struct dm_thin_new_mapping *m)
  867. {
  868. unsigned long flags;
  869. struct pool *pool = m->tc->pool;
  870. spin_lock_irqsave(&pool->lock, flags);
  871. list_add_tail(&m->list, &pool->prepared_discards_pt2);
  872. spin_unlock_irqrestore(&pool->lock, flags);
  873. wake_worker(pool);
  874. }
  875. static void passdown_endio(struct bio *bio)
  876. {
  877. /*
  878. * It doesn't matter if the passdown discard failed, we still want
  879. * to unmap (we ignore err).
  880. */
  881. queue_passdown_pt2(bio->bi_private);
  882. }
  883. static void process_prepared_discard_passdown_pt1(struct dm_thin_new_mapping *m)
  884. {
  885. int r;
  886. struct thin_c *tc = m->tc;
  887. struct pool *pool = tc->pool;
  888. struct bio *discard_parent;
  889. dm_block_t data_end = m->data_block + (m->virt_end - m->virt_begin);
  890. /*
  891. * Only this thread allocates blocks, so we can be sure that the
  892. * newly unmapped blocks will not be allocated before the end of
  893. * the function.
  894. */
  895. r = dm_thin_remove_range(tc->td, m->virt_begin, m->virt_end);
  896. if (r) {
  897. metadata_operation_failed(pool, "dm_thin_remove_range", r);
  898. bio_io_error(m->bio);
  899. cell_defer_no_holder(tc, m->cell);
  900. mempool_free(m, pool->mapping_pool);
  901. return;
  902. }
  903. discard_parent = bio_alloc(GFP_NOIO, 1);
  904. if (!discard_parent) {
  905. DMWARN("%s: unable to allocate top level discard bio for passdown. Skipping passdown.",
  906. dm_device_name(tc->pool->pool_md));
  907. queue_passdown_pt2(m);
  908. } else {
  909. discard_parent->bi_end_io = passdown_endio;
  910. discard_parent->bi_private = m;
  911. if (m->maybe_shared)
  912. passdown_double_checking_shared_status(m, discard_parent);
  913. else {
  914. struct discard_op op;
  915. begin_discard(&op, tc, discard_parent);
  916. r = issue_discard(&op, m->data_block, data_end);
  917. end_discard(&op, r);
  918. }
  919. }
  920. /*
  921. * Increment the unmapped blocks. This prevents a race between the
  922. * passdown io and reallocation of freed blocks.
  923. */
  924. r = dm_pool_inc_data_range(pool->pmd, m->data_block, data_end);
  925. if (r) {
  926. metadata_operation_failed(pool, "dm_pool_inc_data_range", r);
  927. bio_io_error(m->bio);
  928. cell_defer_no_holder(tc, m->cell);
  929. mempool_free(m, pool->mapping_pool);
  930. return;
  931. }
  932. }
  933. static void process_prepared_discard_passdown_pt2(struct dm_thin_new_mapping *m)
  934. {
  935. int r;
  936. struct thin_c *tc = m->tc;
  937. struct pool *pool = tc->pool;
  938. /*
  939. * The passdown has completed, so now we can decrement all those
  940. * unmapped blocks.
  941. */
  942. r = dm_pool_dec_data_range(pool->pmd, m->data_block,
  943. m->data_block + (m->virt_end - m->virt_begin));
  944. if (r) {
  945. metadata_operation_failed(pool, "dm_pool_dec_data_range", r);
  946. bio_io_error(m->bio);
  947. } else
  948. bio_endio(m->bio);
  949. cell_defer_no_holder(tc, m->cell);
  950. mempool_free(m, pool->mapping_pool);
  951. }
  952. static void process_prepared(struct pool *pool, struct list_head *head,
  953. process_mapping_fn *fn)
  954. {
  955. unsigned long flags;
  956. struct list_head maps;
  957. struct dm_thin_new_mapping *m, *tmp;
  958. INIT_LIST_HEAD(&maps);
  959. spin_lock_irqsave(&pool->lock, flags);
  960. list_splice_init(head, &maps);
  961. spin_unlock_irqrestore(&pool->lock, flags);
  962. list_for_each_entry_safe(m, tmp, &maps, list)
  963. (*fn)(m);
  964. }
  965. /*
  966. * Deferred bio jobs.
  967. */
  968. static int io_overlaps_block(struct pool *pool, struct bio *bio)
  969. {
  970. return bio->bi_iter.bi_size ==
  971. (pool->sectors_per_block << SECTOR_SHIFT);
  972. }
  973. static int io_overwrites_block(struct pool *pool, struct bio *bio)
  974. {
  975. return (bio_data_dir(bio) == WRITE) &&
  976. io_overlaps_block(pool, bio);
  977. }
  978. static void save_and_set_endio(struct bio *bio, bio_end_io_t **save,
  979. bio_end_io_t *fn)
  980. {
  981. *save = bio->bi_end_io;
  982. bio->bi_end_io = fn;
  983. }
  984. static int ensure_next_mapping(struct pool *pool)
  985. {
  986. if (pool->next_mapping)
  987. return 0;
  988. pool->next_mapping = mempool_alloc(pool->mapping_pool, GFP_ATOMIC);
  989. return pool->next_mapping ? 0 : -ENOMEM;
  990. }
  991. static struct dm_thin_new_mapping *get_next_mapping(struct pool *pool)
  992. {
  993. struct dm_thin_new_mapping *m = pool->next_mapping;
  994. BUG_ON(!pool->next_mapping);
  995. memset(m, 0, sizeof(struct dm_thin_new_mapping));
  996. INIT_LIST_HEAD(&m->list);
  997. m->bio = NULL;
  998. pool->next_mapping = NULL;
  999. return m;
  1000. }
  1001. static void ll_zero(struct thin_c *tc, struct dm_thin_new_mapping *m,
  1002. sector_t begin, sector_t end)
  1003. {
  1004. int r;
  1005. struct dm_io_region to;
  1006. to.bdev = tc->pool_dev->bdev;
  1007. to.sector = begin;
  1008. to.count = end - begin;
  1009. r = dm_kcopyd_zero(tc->pool->copier, 1, &to, 0, copy_complete, m);
  1010. if (r < 0) {
  1011. DMERR_LIMIT("dm_kcopyd_zero() failed");
  1012. copy_complete(1, 1, m);
  1013. }
  1014. }
  1015. static void remap_and_issue_overwrite(struct thin_c *tc, struct bio *bio,
  1016. dm_block_t data_begin,
  1017. struct dm_thin_new_mapping *m)
  1018. {
  1019. struct pool *pool = tc->pool;
  1020. struct dm_thin_endio_hook *h = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));
  1021. h->overwrite_mapping = m;
  1022. m->bio = bio;
  1023. save_and_set_endio(bio, &m->saved_bi_end_io, overwrite_endio);
  1024. inc_all_io_entry(pool, bio);
  1025. remap_and_issue(tc, bio, data_begin);
  1026. }
  1027. /*
  1028. * A partial copy also needs to zero the uncopied region.
  1029. */
  1030. static void schedule_copy(struct thin_c *tc, dm_block_t virt_block,
  1031. struct dm_dev *origin, dm_block_t data_origin,
  1032. dm_block_t data_dest,
  1033. struct dm_bio_prison_cell *cell, struct bio *bio,
  1034. sector_t len)
  1035. {
  1036. int r;
  1037. struct pool *pool = tc->pool;
  1038. struct dm_thin_new_mapping *m = get_next_mapping(pool);
  1039. m->tc = tc;
  1040. m->virt_begin = virt_block;
  1041. m->virt_end = virt_block + 1u;
  1042. m->data_block = data_dest;
  1043. m->cell = cell;
  1044. /*
  1045. * quiesce action + copy action + an extra reference held for the
  1046. * duration of this function (we may need to inc later for a
  1047. * partial zero).
  1048. */
  1049. atomic_set(&m->prepare_actions, 3);
  1050. if (!dm_deferred_set_add_work(pool->shared_read_ds, &m->list))
  1051. complete_mapping_preparation(m); /* already quiesced */
  1052. /*
  1053. * IO to pool_dev remaps to the pool target's data_dev.
  1054. *
  1055. * If the whole block of data is being overwritten, we can issue the
  1056. * bio immediately. Otherwise we use kcopyd to clone the data first.
  1057. */
  1058. if (io_overwrites_block(pool, bio))
  1059. remap_and_issue_overwrite(tc, bio, data_dest, m);
  1060. else {
  1061. struct dm_io_region from, to;
  1062. from.bdev = origin->bdev;
  1063. from.sector = data_origin * pool->sectors_per_block;
  1064. from.count = len;
  1065. to.bdev = tc->pool_dev->bdev;
  1066. to.sector = data_dest * pool->sectors_per_block;
  1067. to.count = len;
  1068. r = dm_kcopyd_copy(pool->copier, &from, 1, &to,
  1069. 0, copy_complete, m);
  1070. if (r < 0) {
  1071. DMERR_LIMIT("dm_kcopyd_copy() failed");
  1072. copy_complete(1, 1, m);
  1073. /*
  1074. * We allow the zero to be issued, to simplify the
  1075. * error path. Otherwise we'd need to start
  1076. * worrying about decrementing the prepare_actions
  1077. * counter.
  1078. */
  1079. }
  1080. /*
  1081. * Do we need to zero a tail region?
  1082. */
  1083. if (len < pool->sectors_per_block && pool->pf.zero_new_blocks) {
  1084. atomic_inc(&m->prepare_actions);
  1085. ll_zero(tc, m,
  1086. data_dest * pool->sectors_per_block + len,
  1087. (data_dest + 1) * pool->sectors_per_block);
  1088. }
  1089. }
  1090. complete_mapping_preparation(m); /* drop our ref */
  1091. }
  1092. static void schedule_internal_copy(struct thin_c *tc, dm_block_t virt_block,
  1093. dm_block_t data_origin, dm_block_t data_dest,
  1094. struct dm_bio_prison_cell *cell, struct bio *bio)
  1095. {
  1096. schedule_copy(tc, virt_block, tc->pool_dev,
  1097. data_origin, data_dest, cell, bio,
  1098. tc->pool->sectors_per_block);
  1099. }
  1100. static void schedule_zero(struct thin_c *tc, dm_block_t virt_block,
  1101. dm_block_t data_block, struct dm_bio_prison_cell *cell,
  1102. struct bio *bio)
  1103. {
  1104. struct pool *pool = tc->pool;
  1105. struct dm_thin_new_mapping *m = get_next_mapping(pool);
  1106. atomic_set(&m->prepare_actions, 1); /* no need to quiesce */
  1107. m->tc = tc;
  1108. m->virt_begin = virt_block;
  1109. m->virt_end = virt_block + 1u;
  1110. m->data_block = data_block;
  1111. m->cell = cell;
  1112. /*
  1113. * If the whole block of data is being overwritten or we are not
  1114. * zeroing pre-existing data, we can issue the bio immediately.
  1115. * Otherwise we use kcopyd to zero the data first.
  1116. */
  1117. if (pool->pf.zero_new_blocks) {
  1118. if (io_overwrites_block(pool, bio))
  1119. remap_and_issue_overwrite(tc, bio, data_block, m);
  1120. else
  1121. ll_zero(tc, m, data_block * pool->sectors_per_block,
  1122. (data_block + 1) * pool->sectors_per_block);
  1123. } else
  1124. process_prepared_mapping(m);
  1125. }
  1126. static void schedule_external_copy(struct thin_c *tc, dm_block_t virt_block,
  1127. dm_block_t data_dest,
  1128. struct dm_bio_prison_cell *cell, struct bio *bio)
  1129. {
  1130. struct pool *pool = tc->pool;
  1131. sector_t virt_block_begin = virt_block * pool->sectors_per_block;
  1132. sector_t virt_block_end = (virt_block + 1) * pool->sectors_per_block;
  1133. if (virt_block_end <= tc->origin_size)
  1134. schedule_copy(tc, virt_block, tc->origin_dev,
  1135. virt_block, data_dest, cell, bio,
  1136. pool->sectors_per_block);
  1137. else if (virt_block_begin < tc->origin_size)
  1138. schedule_copy(tc, virt_block, tc->origin_dev,
  1139. virt_block, data_dest, cell, bio,
  1140. tc->origin_size - virt_block_begin);
  1141. else
  1142. schedule_zero(tc, virt_block, data_dest, cell, bio);
  1143. }
  1144. static void set_pool_mode(struct pool *pool, enum pool_mode new_mode);
  1145. static void check_for_space(struct pool *pool)
  1146. {
  1147. int r;
  1148. dm_block_t nr_free;
  1149. if (get_pool_mode(pool) != PM_OUT_OF_DATA_SPACE)
  1150. return;
  1151. r = dm_pool_get_free_block_count(pool->pmd, &nr_free);
  1152. if (r)
  1153. return;
  1154. if (nr_free)
  1155. set_pool_mode(pool, PM_WRITE);
  1156. }
  1157. /*
  1158. * A non-zero return indicates read_only or fail_io mode.
  1159. * Many callers don't care about the return value.
  1160. */
  1161. static int commit(struct pool *pool)
  1162. {
  1163. int r;
  1164. if (get_pool_mode(pool) >= PM_READ_ONLY)
  1165. return -EINVAL;
  1166. r = dm_pool_commit_metadata(pool->pmd);
  1167. if (r)
  1168. metadata_operation_failed(pool, "dm_pool_commit_metadata", r);
  1169. else
  1170. check_for_space(pool);
  1171. return r;
  1172. }
  1173. static void check_low_water_mark(struct pool *pool, dm_block_t free_blocks)
  1174. {
  1175. unsigned long flags;
  1176. if (free_blocks <= pool->low_water_blocks && !pool->low_water_triggered) {
  1177. DMWARN("%s: reached low water mark for data device: sending event.",
  1178. dm_device_name(pool->pool_md));
  1179. spin_lock_irqsave(&pool->lock, flags);
  1180. pool->low_water_triggered = true;
  1181. spin_unlock_irqrestore(&pool->lock, flags);
  1182. dm_table_event(pool->ti->table);
  1183. }
  1184. }
  1185. static int alloc_data_block(struct thin_c *tc, dm_block_t *result)
  1186. {
  1187. int r;
  1188. dm_block_t free_blocks;
  1189. struct pool *pool = tc->pool;
  1190. if (WARN_ON(get_pool_mode(pool) != PM_WRITE))
  1191. return -EINVAL;
  1192. r = dm_pool_get_free_block_count(pool->pmd, &free_blocks);
  1193. if (r) {
  1194. metadata_operation_failed(pool, "dm_pool_get_free_block_count", r);
  1195. return r;
  1196. }
  1197. check_low_water_mark(pool, free_blocks);
  1198. if (!free_blocks) {
  1199. /*
  1200. * Try to commit to see if that will free up some
  1201. * more space.
  1202. */
  1203. r = commit(pool);
  1204. if (r)
  1205. return r;
  1206. r = dm_pool_get_free_block_count(pool->pmd, &free_blocks);
  1207. if (r) {
  1208. metadata_operation_failed(pool, "dm_pool_get_free_block_count", r);
  1209. return r;
  1210. }
  1211. if (!free_blocks) {
  1212. set_pool_mode(pool, PM_OUT_OF_DATA_SPACE);
  1213. return -ENOSPC;
  1214. }
  1215. }
  1216. r = dm_pool_alloc_data_block(pool->pmd, result);
  1217. if (r) {
  1218. metadata_operation_failed(pool, "dm_pool_alloc_data_block", r);
  1219. return r;
  1220. }
  1221. return 0;
  1222. }
  1223. /*
  1224. * If we have run out of space, queue bios until the device is
  1225. * resumed, presumably after having been reloaded with more space.
  1226. */
  1227. static void retry_on_resume(struct bio *bio)
  1228. {
  1229. struct dm_thin_endio_hook *h = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));
  1230. struct thin_c *tc = h->tc;
  1231. unsigned long flags;
  1232. spin_lock_irqsave(&tc->lock, flags);
  1233. bio_list_add(&tc->retry_on_resume_list, bio);
  1234. spin_unlock_irqrestore(&tc->lock, flags);
  1235. }
  1236. static int should_error_unserviceable_bio(struct pool *pool)
  1237. {
  1238. enum pool_mode m = get_pool_mode(pool);
  1239. switch (m) {
  1240. case PM_WRITE:
  1241. /* Shouldn't get here */
  1242. DMERR_LIMIT("bio unserviceable, yet pool is in PM_WRITE mode");
  1243. return -EIO;
  1244. case PM_OUT_OF_DATA_SPACE:
  1245. return pool->pf.error_if_no_space ? -ENOSPC : 0;
  1246. case PM_READ_ONLY:
  1247. case PM_FAIL:
  1248. return -EIO;
  1249. default:
  1250. /* Shouldn't get here */
  1251. DMERR_LIMIT("bio unserviceable, yet pool has an unknown mode");
  1252. return -EIO;
  1253. }
  1254. }
  1255. static void handle_unserviceable_bio(struct pool *pool, struct bio *bio)
  1256. {
  1257. int error = should_error_unserviceable_bio(pool);
  1258. if (error) {
  1259. bio->bi_error = error;
  1260. bio_endio(bio);
  1261. } else
  1262. retry_on_resume(bio);
  1263. }
  1264. static void retry_bios_on_resume(struct pool *pool, struct dm_bio_prison_cell *cell)
  1265. {
  1266. struct bio *bio;
  1267. struct bio_list bios;
  1268. int error;
  1269. error = should_error_unserviceable_bio(pool);
  1270. if (error) {
  1271. cell_error_with_code(pool, cell, error);
  1272. return;
  1273. }
  1274. bio_list_init(&bios);
  1275. cell_release(pool, cell, &bios);
  1276. while ((bio = bio_list_pop(&bios)))
  1277. retry_on_resume(bio);
  1278. }
  1279. static void process_discard_cell_no_passdown(struct thin_c *tc,
  1280. struct dm_bio_prison_cell *virt_cell)
  1281. {
  1282. struct pool *pool = tc->pool;
  1283. struct dm_thin_new_mapping *m = get_next_mapping(pool);
  1284. /*
  1285. * We don't need to lock the data blocks, since there's no
  1286. * passdown. We only lock data blocks for allocation and breaking sharing.
  1287. */
  1288. m->tc = tc;
  1289. m->virt_begin = virt_cell->key.block_begin;
  1290. m->virt_end = virt_cell->key.block_end;
  1291. m->cell = virt_cell;
  1292. m->bio = virt_cell->holder;
  1293. if (!dm_deferred_set_add_work(pool->all_io_ds, &m->list))
  1294. pool->process_prepared_discard(m);
  1295. }
  1296. static void break_up_discard_bio(struct thin_c *tc, dm_block_t begin, dm_block_t end,
  1297. struct bio *bio)
  1298. {
  1299. struct pool *pool = tc->pool;
  1300. int r;
  1301. bool maybe_shared;
  1302. struct dm_cell_key data_key;
  1303. struct dm_bio_prison_cell *data_cell;
  1304. struct dm_thin_new_mapping *m;
  1305. dm_block_t virt_begin, virt_end, data_begin;
  1306. while (begin != end) {
  1307. r = ensure_next_mapping(pool);
  1308. if (r)
  1309. /* we did our best */
  1310. return;
  1311. r = dm_thin_find_mapped_range(tc->td, begin, end, &virt_begin, &virt_end,
  1312. &data_begin, &maybe_shared);
  1313. if (r)
  1314. /*
  1315. * Silently fail, letting any mappings we've
  1316. * created complete.
  1317. */
  1318. break;
  1319. build_key(tc->td, PHYSICAL, data_begin, data_begin + (virt_end - virt_begin), &data_key);
  1320. if (bio_detain(tc->pool, &data_key, NULL, &data_cell)) {
  1321. /* contention, we'll give up with this range */
  1322. begin = virt_end;
  1323. continue;
  1324. }
  1325. /*
  1326. * IO may still be going to the destination block. We must
  1327. * quiesce before we can do the removal.
  1328. */
  1329. m = get_next_mapping(pool);
  1330. m->tc = tc;
  1331. m->maybe_shared = maybe_shared;
  1332. m->virt_begin = virt_begin;
  1333. m->virt_end = virt_end;
  1334. m->data_block = data_begin;
  1335. m->cell = data_cell;
  1336. m->bio = bio;
  1337. /*
  1338. * The parent bio must not complete before sub discard bios are
  1339. * chained to it (see end_discard's bio_chain)!
  1340. *
  1341. * This per-mapping bi_remaining increment is paired with
  1342. * the implicit decrement that occurs via bio_endio() in
  1343. * end_discard().
  1344. */
  1345. bio_inc_remaining(bio);
  1346. if (!dm_deferred_set_add_work(pool->all_io_ds, &m->list))
  1347. pool->process_prepared_discard(m);
  1348. begin = virt_end;
  1349. }
  1350. }
  1351. static void process_discard_cell_passdown(struct thin_c *tc, struct dm_bio_prison_cell *virt_cell)
  1352. {
  1353. struct bio *bio = virt_cell->holder;
  1354. struct dm_thin_endio_hook *h = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));
  1355. /*
  1356. * The virt_cell will only get freed once the origin bio completes.
  1357. * This means it will remain locked while all the individual
  1358. * passdown bios are in flight.
  1359. */
  1360. h->cell = virt_cell;
  1361. break_up_discard_bio(tc, virt_cell->key.block_begin, virt_cell->key.block_end, bio);
  1362. /*
  1363. * We complete the bio now, knowing that the bi_remaining field
  1364. * will prevent completion until the sub range discards have
  1365. * completed.
  1366. */
  1367. bio_endio(bio);
  1368. }
  1369. static void process_discard_bio(struct thin_c *tc, struct bio *bio)
  1370. {
  1371. dm_block_t begin, end;
  1372. struct dm_cell_key virt_key;
  1373. struct dm_bio_prison_cell *virt_cell;
  1374. get_bio_block_range(tc, bio, &begin, &end);
  1375. if (begin == end) {
  1376. /*
  1377. * The discard covers less than a block.
  1378. */
  1379. bio_endio(bio);
  1380. return;
  1381. }
  1382. build_key(tc->td, VIRTUAL, begin, end, &virt_key);
  1383. if (bio_detain(tc->pool, &virt_key, bio, &virt_cell))
  1384. /*
  1385. * Potential starvation issue: We're relying on the
  1386. * fs/application being well behaved, and not trying to
  1387. * send IO to a region at the same time as discarding it.
  1388. * If they do this persistently then it's possible this
  1389. * cell will never be granted.
  1390. */
  1391. return;
  1392. tc->pool->process_discard_cell(tc, virt_cell);
  1393. }
  1394. static void break_sharing(struct thin_c *tc, struct bio *bio, dm_block_t block,
  1395. struct dm_cell_key *key,
  1396. struct dm_thin_lookup_result *lookup_result,
  1397. struct dm_bio_prison_cell *cell)
  1398. {
  1399. int r;
  1400. dm_block_t data_block;
  1401. struct pool *pool = tc->pool;
  1402. r = alloc_data_block(tc, &data_block);
  1403. switch (r) {
  1404. case 0:
  1405. schedule_internal_copy(tc, block, lookup_result->block,
  1406. data_block, cell, bio);
  1407. break;
  1408. case -ENOSPC:
  1409. retry_bios_on_resume(pool, cell);
  1410. break;
  1411. default:
  1412. DMERR_LIMIT("%s: alloc_data_block() failed: error = %d",
  1413. __func__, r);
  1414. cell_error(pool, cell);
  1415. break;
  1416. }
  1417. }
  1418. static void __remap_and_issue_shared_cell(void *context,
  1419. struct dm_bio_prison_cell *cell)
  1420. {
  1421. struct remap_info *info = context;
  1422. struct bio *bio;
  1423. while ((bio = bio_list_pop(&cell->bios))) {
  1424. if ((bio_data_dir(bio) == WRITE) ||
  1425. (bio->bi_opf & (REQ_PREFLUSH | REQ_FUA) ||
  1426. bio_op(bio) == REQ_OP_DISCARD))
  1427. bio_list_add(&info->defer_bios, bio);
  1428. else {
  1429. struct dm_thin_endio_hook *h = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));;
  1430. h->shared_read_entry = dm_deferred_entry_inc(info->tc->pool->shared_read_ds);
  1431. inc_all_io_entry(info->tc->pool, bio);
  1432. bio_list_add(&info->issue_bios, bio);
  1433. }
  1434. }
  1435. }
  1436. static void remap_and_issue_shared_cell(struct thin_c *tc,
  1437. struct dm_bio_prison_cell *cell,
  1438. dm_block_t block)
  1439. {
  1440. struct bio *bio;
  1441. struct remap_info info;
  1442. info.tc = tc;
  1443. bio_list_init(&info.defer_bios);
  1444. bio_list_init(&info.issue_bios);
  1445. cell_visit_release(tc->pool, __remap_and_issue_shared_cell,
  1446. &info, cell);
  1447. while ((bio = bio_list_pop(&info.defer_bios)))
  1448. thin_defer_bio(tc, bio);
  1449. while ((bio = bio_list_pop(&info.issue_bios)))
  1450. remap_and_issue(tc, bio, block);
  1451. }
  1452. static void process_shared_bio(struct thin_c *tc, struct bio *bio,
  1453. dm_block_t block,
  1454. struct dm_thin_lookup_result *lookup_result,
  1455. struct dm_bio_prison_cell *virt_cell)
  1456. {
  1457. struct dm_bio_prison_cell *data_cell;
  1458. struct pool *pool = tc->pool;
  1459. struct dm_cell_key key;
  1460. /*
  1461. * If cell is already occupied, then sharing is already in the process
  1462. * of being broken so we have nothing further to do here.
  1463. */
  1464. build_data_key(tc->td, lookup_result->block, &key);
  1465. if (bio_detain(pool, &key, bio, &data_cell)) {
  1466. cell_defer_no_holder(tc, virt_cell);
  1467. return;
  1468. }
  1469. if (bio_data_dir(bio) == WRITE && bio->bi_iter.bi_size) {
  1470. break_sharing(tc, bio, block, &key, lookup_result, data_cell);
  1471. cell_defer_no_holder(tc, virt_cell);
  1472. } else {
  1473. struct dm_thin_endio_hook *h = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));
  1474. h->shared_read_entry = dm_deferred_entry_inc(pool->shared_read_ds);
  1475. inc_all_io_entry(pool, bio);
  1476. remap_and_issue(tc, bio, lookup_result->block);
  1477. remap_and_issue_shared_cell(tc, data_cell, lookup_result->block);
  1478. remap_and_issue_shared_cell(tc, virt_cell, lookup_result->block);
  1479. }
  1480. }
  1481. static void provision_block(struct thin_c *tc, struct bio *bio, dm_block_t block,
  1482. struct dm_bio_prison_cell *cell)
  1483. {
  1484. int r;
  1485. dm_block_t data_block;
  1486. struct pool *pool = tc->pool;
  1487. /*
  1488. * Remap empty bios (flushes) immediately, without provisioning.
  1489. */
  1490. if (!bio->bi_iter.bi_size) {
  1491. inc_all_io_entry(pool, bio);
  1492. cell_defer_no_holder(tc, cell);
  1493. remap_and_issue(tc, bio, 0);
  1494. return;
  1495. }
  1496. /*
  1497. * Fill read bios with zeroes and complete them immediately.
  1498. */
  1499. if (bio_data_dir(bio) == READ) {
  1500. zero_fill_bio(bio);
  1501. cell_defer_no_holder(tc, cell);
  1502. bio_endio(bio);
  1503. return;
  1504. }
  1505. r = alloc_data_block(tc, &data_block);
  1506. switch (r) {
  1507. case 0:
  1508. if (tc->origin_dev)
  1509. schedule_external_copy(tc, block, data_block, cell, bio);
  1510. else
  1511. schedule_zero(tc, block, data_block, cell, bio);
  1512. break;
  1513. case -ENOSPC:
  1514. retry_bios_on_resume(pool, cell);
  1515. break;
  1516. default:
  1517. DMERR_LIMIT("%s: alloc_data_block() failed: error = %d",
  1518. __func__, r);
  1519. cell_error(pool, cell);
  1520. break;
  1521. }
  1522. }
  1523. static void process_cell(struct thin_c *tc, struct dm_bio_prison_cell *cell)
  1524. {
  1525. int r;
  1526. struct pool *pool = tc->pool;
  1527. struct bio *bio = cell->holder;
  1528. dm_block_t block = get_bio_block(tc, bio);
  1529. struct dm_thin_lookup_result lookup_result;
  1530. if (tc->requeue_mode) {
  1531. cell_requeue(pool, cell);
  1532. return;
  1533. }
  1534. r = dm_thin_find_block(tc->td, block, 1, &lookup_result);
  1535. switch (r) {
  1536. case 0:
  1537. if (lookup_result.shared)
  1538. process_shared_bio(tc, bio, block, &lookup_result, cell);
  1539. else {
  1540. inc_all_io_entry(pool, bio);
  1541. remap_and_issue(tc, bio, lookup_result.block);
  1542. inc_remap_and_issue_cell(tc, cell, lookup_result.block);
  1543. }
  1544. break;
  1545. case -ENODATA:
  1546. if (bio_data_dir(bio) == READ && tc->origin_dev) {
  1547. inc_all_io_entry(pool, bio);
  1548. cell_defer_no_holder(tc, cell);
  1549. if (bio_end_sector(bio) <= tc->origin_size)
  1550. remap_to_origin_and_issue(tc, bio);
  1551. else if (bio->bi_iter.bi_sector < tc->origin_size) {
  1552. zero_fill_bio(bio);
  1553. bio->bi_iter.bi_size = (tc->origin_size - bio->bi_iter.bi_sector) << SECTOR_SHIFT;
  1554. remap_to_origin_and_issue(tc, bio);
  1555. } else {
  1556. zero_fill_bio(bio);
  1557. bio_endio(bio);
  1558. }
  1559. } else
  1560. provision_block(tc, bio, block, cell);
  1561. break;
  1562. default:
  1563. DMERR_LIMIT("%s: dm_thin_find_block() failed: error = %d",
  1564. __func__, r);
  1565. cell_defer_no_holder(tc, cell);
  1566. bio_io_error(bio);
  1567. break;
  1568. }
  1569. }
  1570. static void process_bio(struct thin_c *tc, struct bio *bio)
  1571. {
  1572. struct pool *pool = tc->pool;
  1573. dm_block_t block = get_bio_block(tc, bio);
  1574. struct dm_bio_prison_cell *cell;
  1575. struct dm_cell_key key;
  1576. /*
  1577. * If cell is already occupied, then the block is already
  1578. * being provisioned so we have nothing further to do here.
  1579. */
  1580. build_virtual_key(tc->td, block, &key);
  1581. if (bio_detain(pool, &key, bio, &cell))
  1582. return;
  1583. process_cell(tc, cell);
  1584. }
  1585. static void __process_bio_read_only(struct thin_c *tc, struct bio *bio,
  1586. struct dm_bio_prison_cell *cell)
  1587. {
  1588. int r;
  1589. int rw = bio_data_dir(bio);
  1590. dm_block_t block = get_bio_block(tc, bio);
  1591. struct dm_thin_lookup_result lookup_result;
  1592. r = dm_thin_find_block(tc->td, block, 1, &lookup_result);
  1593. switch (r) {
  1594. case 0:
  1595. if (lookup_result.shared && (rw == WRITE) && bio->bi_iter.bi_size) {
  1596. handle_unserviceable_bio(tc->pool, bio);
  1597. if (cell)
  1598. cell_defer_no_holder(tc, cell);
  1599. } else {
  1600. inc_all_io_entry(tc->pool, bio);
  1601. remap_and_issue(tc, bio, lookup_result.block);
  1602. if (cell)
  1603. inc_remap_and_issue_cell(tc, cell, lookup_result.block);
  1604. }
  1605. break;
  1606. case -ENODATA:
  1607. if (cell)
  1608. cell_defer_no_holder(tc, cell);
  1609. if (rw != READ) {
  1610. handle_unserviceable_bio(tc->pool, bio);
  1611. break;
  1612. }
  1613. if (tc->origin_dev) {
  1614. inc_all_io_entry(tc->pool, bio);
  1615. remap_to_origin_and_issue(tc, bio);
  1616. break;
  1617. }
  1618. zero_fill_bio(bio);
  1619. bio_endio(bio);
  1620. break;
  1621. default:
  1622. DMERR_LIMIT("%s: dm_thin_find_block() failed: error = %d",
  1623. __func__, r);
  1624. if (cell)
  1625. cell_defer_no_holder(tc, cell);
  1626. bio_io_error(bio);
  1627. break;
  1628. }
  1629. }
  1630. static void process_bio_read_only(struct thin_c *tc, struct bio *bio)
  1631. {
  1632. __process_bio_read_only(tc, bio, NULL);
  1633. }
  1634. static void process_cell_read_only(struct thin_c *tc, struct dm_bio_prison_cell *cell)
  1635. {
  1636. __process_bio_read_only(tc, cell->holder, cell);
  1637. }
  1638. static void process_bio_success(struct thin_c *tc, struct bio *bio)
  1639. {
  1640. bio_endio(bio);
  1641. }
  1642. static void process_bio_fail(struct thin_c *tc, struct bio *bio)
  1643. {
  1644. bio_io_error(bio);
  1645. }
  1646. static void process_cell_success(struct thin_c *tc, struct dm_bio_prison_cell *cell)
  1647. {
  1648. cell_success(tc->pool, cell);
  1649. }
  1650. static void process_cell_fail(struct thin_c *tc, struct dm_bio_prison_cell *cell)
  1651. {
  1652. cell_error(tc->pool, cell);
  1653. }
  1654. /*
  1655. * FIXME: should we also commit due to size of transaction, measured in
  1656. * metadata blocks?
  1657. */
  1658. static int need_commit_due_to_time(struct pool *pool)
  1659. {
  1660. return !time_in_range(jiffies, pool->last_commit_jiffies,
  1661. pool->last_commit_jiffies + COMMIT_PERIOD);
  1662. }
  1663. #define thin_pbd(node) rb_entry((node), struct dm_thin_endio_hook, rb_node)
  1664. #define thin_bio(pbd) dm_bio_from_per_bio_data((pbd), sizeof(struct dm_thin_endio_hook))
  1665. static void __thin_bio_rb_add(struct thin_c *tc, struct bio *bio)
  1666. {
  1667. struct rb_node **rbp, *parent;
  1668. struct dm_thin_endio_hook *pbd;
  1669. sector_t bi_sector = bio->bi_iter.bi_sector;
  1670. rbp = &tc->sort_bio_list.rb_node;
  1671. parent = NULL;
  1672. while (*rbp) {
  1673. parent = *rbp;
  1674. pbd = thin_pbd(parent);
  1675. if (bi_sector < thin_bio(pbd)->bi_iter.bi_sector)
  1676. rbp = &(*rbp)->rb_left;
  1677. else
  1678. rbp = &(*rbp)->rb_right;
  1679. }
  1680. pbd = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));
  1681. rb_link_node(&pbd->rb_node, parent, rbp);
  1682. rb_insert_color(&pbd->rb_node, &tc->sort_bio_list);
  1683. }
  1684. static void __extract_sorted_bios(struct thin_c *tc)
  1685. {
  1686. struct rb_node *node;
  1687. struct dm_thin_endio_hook *pbd;
  1688. struct bio *bio;
  1689. for (node = rb_first(&tc->sort_bio_list); node; node = rb_next(node)) {
  1690. pbd = thin_pbd(node);
  1691. bio = thin_bio(pbd);
  1692. bio_list_add(&tc->deferred_bio_list, bio);
  1693. rb_erase(&pbd->rb_node, &tc->sort_bio_list);
  1694. }
  1695. WARN_ON(!RB_EMPTY_ROOT(&tc->sort_bio_list));
  1696. }
  1697. static void __sort_thin_deferred_bios(struct thin_c *tc)
  1698. {
  1699. struct bio *bio;
  1700. struct bio_list bios;
  1701. bio_list_init(&bios);
  1702. bio_list_merge(&bios, &tc->deferred_bio_list);
  1703. bio_list_init(&tc->deferred_bio_list);
  1704. /* Sort deferred_bio_list using rb-tree */
  1705. while ((bio = bio_list_pop(&bios)))
  1706. __thin_bio_rb_add(tc, bio);
  1707. /*
  1708. * Transfer the sorted bios in sort_bio_list back to
  1709. * deferred_bio_list to allow lockless submission of
  1710. * all bios.
  1711. */
  1712. __extract_sorted_bios(tc);
  1713. }
  1714. static void process_thin_deferred_bios(struct thin_c *tc)
  1715. {
  1716. struct pool *pool = tc->pool;
  1717. unsigned long flags;
  1718. struct bio *bio;
  1719. struct bio_list bios;
  1720. struct blk_plug plug;
  1721. unsigned count = 0;
  1722. if (tc->requeue_mode) {
  1723. error_thin_bio_list(tc, &tc->deferred_bio_list, DM_ENDIO_REQUEUE);
  1724. return;
  1725. }
  1726. bio_list_init(&bios);
  1727. spin_lock_irqsave(&tc->lock, flags);
  1728. if (bio_list_empty(&tc->deferred_bio_list)) {
  1729. spin_unlock_irqrestore(&tc->lock, flags);
  1730. return;
  1731. }
  1732. __sort_thin_deferred_bios(tc);
  1733. bio_list_merge(&bios, &tc->deferred_bio_list);
  1734. bio_list_init(&tc->deferred_bio_list);
  1735. spin_unlock_irqrestore(&tc->lock, flags);
  1736. blk_start_plug(&plug);
  1737. while ((bio = bio_list_pop(&bios))) {
  1738. /*
  1739. * If we've got no free new_mapping structs, and processing
  1740. * this bio might require one, we pause until there are some
  1741. * prepared mappings to process.
  1742. */
  1743. if (ensure_next_mapping(pool)) {
  1744. spin_lock_irqsave(&tc->lock, flags);
  1745. bio_list_add(&tc->deferred_bio_list, bio);
  1746. bio_list_merge(&tc->deferred_bio_list, &bios);
  1747. spin_unlock_irqrestore(&tc->lock, flags);
  1748. break;
  1749. }
  1750. if (bio_op(bio) == REQ_OP_DISCARD)
  1751. pool->process_discard(tc, bio);
  1752. else
  1753. pool->process_bio(tc, bio);
  1754. if ((count++ & 127) == 0) {
  1755. throttle_work_update(&pool->throttle);
  1756. dm_pool_issue_prefetches(pool->pmd);
  1757. }
  1758. }
  1759. blk_finish_plug(&plug);
  1760. }
  1761. static int cmp_cells(const void *lhs, const void *rhs)
  1762. {
  1763. struct dm_bio_prison_cell *lhs_cell = *((struct dm_bio_prison_cell **) lhs);
  1764. struct dm_bio_prison_cell *rhs_cell = *((struct dm_bio_prison_cell **) rhs);
  1765. BUG_ON(!lhs_cell->holder);
  1766. BUG_ON(!rhs_cell->holder);
  1767. if (lhs_cell->holder->bi_iter.bi_sector < rhs_cell->holder->bi_iter.bi_sector)
  1768. return -1;
  1769. if (lhs_cell->holder->bi_iter.bi_sector > rhs_cell->holder->bi_iter.bi_sector)
  1770. return 1;
  1771. return 0;
  1772. }
  1773. static unsigned sort_cells(struct pool *pool, struct list_head *cells)
  1774. {
  1775. unsigned count = 0;
  1776. struct dm_bio_prison_cell *cell, *tmp;
  1777. list_for_each_entry_safe(cell, tmp, cells, user_list) {
  1778. if (count >= CELL_SORT_ARRAY_SIZE)
  1779. break;
  1780. pool->cell_sort_array[count++] = cell;
  1781. list_del(&cell->user_list);
  1782. }
  1783. sort(pool->cell_sort_array, count, sizeof(cell), cmp_cells, NULL);
  1784. return count;
  1785. }
  1786. static void process_thin_deferred_cells(struct thin_c *tc)
  1787. {
  1788. struct pool *pool = tc->pool;
  1789. unsigned long flags;
  1790. struct list_head cells;
  1791. struct dm_bio_prison_cell *cell;
  1792. unsigned i, j, count;
  1793. INIT_LIST_HEAD(&cells);
  1794. spin_lock_irqsave(&tc->lock, flags);
  1795. list_splice_init(&tc->deferred_cells, &cells);
  1796. spin_unlock_irqrestore(&tc->lock, flags);
  1797. if (list_empty(&cells))
  1798. return;
  1799. do {
  1800. count = sort_cells(tc->pool, &cells);
  1801. for (i = 0; i < count; i++) {
  1802. cell = pool->cell_sort_array[i];
  1803. BUG_ON(!cell->holder);
  1804. /*
  1805. * If we've got no free new_mapping structs, and processing
  1806. * this bio might require one, we pause until there are some
  1807. * prepared mappings to process.
  1808. */
  1809. if (ensure_next_mapping(pool)) {
  1810. for (j = i; j < count; j++)
  1811. list_add(&pool->cell_sort_array[j]->user_list, &cells);
  1812. spin_lock_irqsave(&tc->lock, flags);
  1813. list_splice(&cells, &tc->deferred_cells);
  1814. spin_unlock_irqrestore(&tc->lock, flags);
  1815. return;
  1816. }
  1817. if (bio_op(cell->holder) == REQ_OP_DISCARD)
  1818. pool->process_discard_cell(tc, cell);
  1819. else
  1820. pool->process_cell(tc, cell);
  1821. }
  1822. } while (!list_empty(&cells));
  1823. }
  1824. static void thin_get(struct thin_c *tc);
  1825. static void thin_put(struct thin_c *tc);
  1826. /*
  1827. * We can't hold rcu_read_lock() around code that can block. So we
  1828. * find a thin with the rcu lock held; bump a refcount; then drop
  1829. * the lock.
  1830. */
  1831. static struct thin_c *get_first_thin(struct pool *pool)
  1832. {
  1833. struct thin_c *tc = NULL;
  1834. rcu_read_lock();
  1835. if (!list_empty(&pool->active_thins)) {
  1836. tc = list_entry_rcu(pool->active_thins.next, struct thin_c, list);
  1837. thin_get(tc);
  1838. }
  1839. rcu_read_unlock();
  1840. return tc;
  1841. }
  1842. static struct thin_c *get_next_thin(struct pool *pool, struct thin_c *tc)
  1843. {
  1844. struct thin_c *old_tc = tc;
  1845. rcu_read_lock();
  1846. list_for_each_entry_continue_rcu(tc, &pool->active_thins, list) {
  1847. thin_get(tc);
  1848. thin_put(old_tc);
  1849. rcu_read_unlock();
  1850. return tc;
  1851. }
  1852. thin_put(old_tc);
  1853. rcu_read_unlock();
  1854. return NULL;
  1855. }
  1856. static void process_deferred_bios(struct pool *pool)
  1857. {
  1858. unsigned long flags;
  1859. struct bio *bio;
  1860. struct bio_list bios;
  1861. struct thin_c *tc;
  1862. tc = get_first_thin(pool);
  1863. while (tc) {
  1864. process_thin_deferred_cells(tc);
  1865. process_thin_deferred_bios(tc);
  1866. tc = get_next_thin(pool, tc);
  1867. }
  1868. /*
  1869. * If there are any deferred flush bios, we must commit
  1870. * the metadata before issuing them.
  1871. */
  1872. bio_list_init(&bios);
  1873. spin_lock_irqsave(&pool->lock, flags);
  1874. bio_list_merge(&bios, &pool->deferred_flush_bios);
  1875. bio_list_init(&pool->deferred_flush_bios);
  1876. spin_unlock_irqrestore(&pool->lock, flags);
  1877. if (bio_list_empty(&bios) &&
  1878. !(dm_pool_changed_this_transaction(pool->pmd) && need_commit_due_to_time(pool)))
  1879. return;
  1880. if (commit(pool)) {
  1881. while ((bio = bio_list_pop(&bios)))
  1882. bio_io_error(bio);
  1883. return;
  1884. }
  1885. pool->last_commit_jiffies = jiffies;
  1886. while ((bio = bio_list_pop(&bios)))
  1887. generic_make_request(bio);
  1888. }
  1889. static void do_worker(struct work_struct *ws)
  1890. {
  1891. struct pool *pool = container_of(ws, struct pool, worker);
  1892. throttle_work_start(&pool->throttle);
  1893. dm_pool_issue_prefetches(pool->pmd);
  1894. throttle_work_update(&pool->throttle);
  1895. process_prepared(pool, &pool->prepared_mappings, &pool->process_prepared_mapping);
  1896. throttle_work_update(&pool->throttle);
  1897. process_prepared(pool, &pool->prepared_discards, &pool->process_prepared_discard);
  1898. throttle_work_update(&pool->throttle);
  1899. process_prepared(pool, &pool->prepared_discards_pt2, &pool->process_prepared_discard_pt2);
  1900. throttle_work_update(&pool->throttle);
  1901. process_deferred_bios(pool);
  1902. throttle_work_complete(&pool->throttle);
  1903. }
  1904. /*
  1905. * We want to commit periodically so that not too much
  1906. * unwritten data builds up.
  1907. */
  1908. static void do_waker(struct work_struct *ws)
  1909. {
  1910. struct pool *pool = container_of(to_delayed_work(ws), struct pool, waker);
  1911. wake_worker(pool);
  1912. queue_delayed_work(pool->wq, &pool->waker, COMMIT_PERIOD);
  1913. }
  1914. static void notify_of_pool_mode_change_to_oods(struct pool *pool);
  1915. /*
  1916. * We're holding onto IO to allow userland time to react. After the
  1917. * timeout either the pool will have been resized (and thus back in
  1918. * PM_WRITE mode), or we degrade to PM_OUT_OF_DATA_SPACE w/ error_if_no_space.
  1919. */
  1920. static void do_no_space_timeout(struct work_struct *ws)
  1921. {
  1922. struct pool *pool = container_of(to_delayed_work(ws), struct pool,
  1923. no_space_timeout);
  1924. if (get_pool_mode(pool) == PM_OUT_OF_DATA_SPACE && !pool->pf.error_if_no_space) {
  1925. pool->pf.error_if_no_space = true;
  1926. notify_of_pool_mode_change_to_oods(pool);
  1927. error_retry_list_with_code(pool, -ENOSPC);
  1928. }
  1929. }
  1930. /*----------------------------------------------------------------*/
  1931. struct pool_work {
  1932. struct work_struct worker;
  1933. struct completion complete;
  1934. };
  1935. static struct pool_work *to_pool_work(struct work_struct *ws)
  1936. {
  1937. return container_of(ws, struct pool_work, worker);
  1938. }
  1939. static void pool_work_complete(struct pool_work *pw)
  1940. {
  1941. complete(&pw->complete);
  1942. }
  1943. static void pool_work_wait(struct pool_work *pw, struct pool *pool,
  1944. void (*fn)(struct work_struct *))
  1945. {
  1946. INIT_WORK_ONSTACK(&pw->worker, fn);
  1947. init_completion(&pw->complete);
  1948. queue_work(pool->wq, &pw->worker);
  1949. wait_for_completion(&pw->complete);
  1950. }
  1951. /*----------------------------------------------------------------*/
  1952. struct noflush_work {
  1953. struct pool_work pw;
  1954. struct thin_c *tc;
  1955. };
  1956. static struct noflush_work *to_noflush(struct work_struct *ws)
  1957. {
  1958. return container_of(to_pool_work(ws), struct noflush_work, pw);
  1959. }
  1960. static void do_noflush_start(struct work_struct *ws)
  1961. {
  1962. struct noflush_work *w = to_noflush(ws);
  1963. w->tc->requeue_mode = true;
  1964. requeue_io(w->tc);
  1965. pool_work_complete(&w->pw);
  1966. }
  1967. static void do_noflush_stop(struct work_struct *ws)
  1968. {
  1969. struct noflush_work *w = to_noflush(ws);
  1970. w->tc->requeue_mode = false;
  1971. pool_work_complete(&w->pw);
  1972. }
  1973. static void noflush_work(struct thin_c *tc, void (*fn)(struct work_struct *))
  1974. {
  1975. struct noflush_work w;
  1976. w.tc = tc;
  1977. pool_work_wait(&w.pw, tc->pool, fn);
  1978. }
  1979. /*----------------------------------------------------------------*/
  1980. static enum pool_mode get_pool_mode(struct pool *pool)
  1981. {
  1982. return pool->pf.mode;
  1983. }
  1984. static void notify_of_pool_mode_change(struct pool *pool, const char *new_mode)
  1985. {
  1986. dm_table_event(pool->ti->table);
  1987. DMINFO("%s: switching pool to %s mode",
  1988. dm_device_name(pool->pool_md), new_mode);
  1989. }
  1990. static void notify_of_pool_mode_change_to_oods(struct pool *pool)
  1991. {
  1992. if (!pool->pf.error_if_no_space)
  1993. notify_of_pool_mode_change(pool, "out-of-data-space (queue IO)");
  1994. else
  1995. notify_of_pool_mode_change(pool, "out-of-data-space (error IO)");
  1996. }
  1997. static bool passdown_enabled(struct pool_c *pt)
  1998. {
  1999. return pt->adjusted_pf.discard_passdown;
  2000. }
  2001. static void set_discard_callbacks(struct pool *pool)
  2002. {
  2003. struct pool_c *pt = pool->ti->private;
  2004. if (passdown_enabled(pt)) {
  2005. pool->process_discard_cell = process_discard_cell_passdown;
  2006. pool->process_prepared_discard = process_prepared_discard_passdown_pt1;
  2007. pool->process_prepared_discard_pt2 = process_prepared_discard_passdown_pt2;
  2008. } else {
  2009. pool->process_discard_cell = process_discard_cell_no_passdown;
  2010. pool->process_prepared_discard = process_prepared_discard_no_passdown;
  2011. }
  2012. }
  2013. static void set_pool_mode(struct pool *pool, enum pool_mode new_mode)
  2014. {
  2015. struct pool_c *pt = pool->ti->private;
  2016. bool needs_check = dm_pool_metadata_needs_check(pool->pmd);
  2017. enum pool_mode old_mode = get_pool_mode(pool);
  2018. unsigned long no_space_timeout = ACCESS_ONCE(no_space_timeout_secs) * HZ;
  2019. /*
  2020. * Never allow the pool to transition to PM_WRITE mode if user
  2021. * intervention is required to verify metadata and data consistency.
  2022. */
  2023. if (new_mode == PM_WRITE && needs_check) {
  2024. DMERR("%s: unable to switch pool to write mode until repaired.",
  2025. dm_device_name(pool->pool_md));
  2026. if (old_mode != new_mode)
  2027. new_mode = old_mode;
  2028. else
  2029. new_mode = PM_READ_ONLY;
  2030. }
  2031. /*
  2032. * If we were in PM_FAIL mode, rollback of metadata failed. We're
  2033. * not going to recover without a thin_repair. So we never let the
  2034. * pool move out of the old mode.
  2035. */
  2036. if (old_mode == PM_FAIL)
  2037. new_mode = old_mode;
  2038. switch (new_mode) {
  2039. case PM_FAIL:
  2040. if (old_mode != new_mode)
  2041. notify_of_pool_mode_change(pool, "failure");
  2042. dm_pool_metadata_read_only(pool->pmd);
  2043. pool->process_bio = process_bio_fail;
  2044. pool->process_discard = process_bio_fail;
  2045. pool->process_cell = process_cell_fail;
  2046. pool->process_discard_cell = process_cell_fail;
  2047. pool->process_prepared_mapping = process_prepared_mapping_fail;
  2048. pool->process_prepared_discard = process_prepared_discard_fail;
  2049. error_retry_list(pool);
  2050. break;
  2051. case PM_READ_ONLY:
  2052. if (old_mode != new_mode)
  2053. notify_of_pool_mode_change(pool, "read-only");
  2054. dm_pool_metadata_read_only(pool->pmd);
  2055. pool->process_bio = process_bio_read_only;
  2056. pool->process_discard = process_bio_success;
  2057. pool->process_cell = process_cell_read_only;
  2058. pool->process_discard_cell = process_cell_success;
  2059. pool->process_prepared_mapping = process_prepared_mapping_fail;
  2060. pool->process_prepared_discard = process_prepared_discard_success;
  2061. error_retry_list(pool);
  2062. break;
  2063. case PM_OUT_OF_DATA_SPACE:
  2064. /*
  2065. * Ideally we'd never hit this state; the low water mark
  2066. * would trigger userland to extend the pool before we
  2067. * completely run out of data space. However, many small
  2068. * IOs to unprovisioned space can consume data space at an
  2069. * alarming rate. Adjust your low water mark if you're
  2070. * frequently seeing this mode.
  2071. */
  2072. if (old_mode != new_mode)
  2073. notify_of_pool_mode_change_to_oods(pool);
  2074. pool->out_of_data_space = true;
  2075. pool->process_bio = process_bio_read_only;
  2076. pool->process_discard = process_discard_bio;
  2077. pool->process_cell = process_cell_read_only;
  2078. pool->process_prepared_mapping = process_prepared_mapping;
  2079. set_discard_callbacks(pool);
  2080. if (!pool->pf.error_if_no_space && no_space_timeout)
  2081. queue_delayed_work(pool->wq, &pool->no_space_timeout, no_space_timeout);
  2082. break;
  2083. case PM_WRITE:
  2084. if (old_mode != new_mode)
  2085. notify_of_pool_mode_change(pool, "write");
  2086. pool->out_of_data_space = false;
  2087. pool->pf.error_if_no_space = pt->requested_pf.error_if_no_space;
  2088. dm_pool_metadata_read_write(pool->pmd);
  2089. pool->process_bio = process_bio;
  2090. pool->process_discard = process_discard_bio;
  2091. pool->process_cell = process_cell;
  2092. pool->process_prepared_mapping = process_prepared_mapping;
  2093. set_discard_callbacks(pool);
  2094. break;
  2095. }
  2096. pool->pf.mode = new_mode;
  2097. /*
  2098. * The pool mode may have changed, sync it so bind_control_target()
  2099. * doesn't cause an unexpected mode transition on resume.
  2100. */
  2101. pt->adjusted_pf.mode = new_mode;
  2102. }
  2103. static void abort_transaction(struct pool *pool)
  2104. {
  2105. const char *dev_name = dm_device_name(pool->pool_md);
  2106. DMERR_LIMIT("%s: aborting current metadata transaction", dev_name);
  2107. if (dm_pool_abort_metadata(pool->pmd)) {
  2108. DMERR("%s: failed to abort metadata transaction", dev_name);
  2109. set_pool_mode(pool, PM_FAIL);
  2110. }
  2111. if (dm_pool_metadata_set_needs_check(pool->pmd)) {
  2112. DMERR("%s: failed to set 'needs_check' flag in metadata", dev_name);
  2113. set_pool_mode(pool, PM_FAIL);
  2114. }
  2115. }
  2116. static void metadata_operation_failed(struct pool *pool, const char *op, int r)
  2117. {
  2118. DMERR_LIMIT("%s: metadata operation '%s' failed: error = %d",
  2119. dm_device_name(pool->pool_md), op, r);
  2120. abort_transaction(pool);
  2121. set_pool_mode(pool, PM_READ_ONLY);
  2122. }
  2123. /*----------------------------------------------------------------*/
  2124. /*
  2125. * Mapping functions.
  2126. */
  2127. /*
  2128. * Called only while mapping a thin bio to hand it over to the workqueue.
  2129. */
  2130. static void thin_defer_bio(struct thin_c *tc, struct bio *bio)
  2131. {
  2132. unsigned long flags;
  2133. struct pool *pool = tc->pool;
  2134. spin_lock_irqsave(&tc->lock, flags);
  2135. bio_list_add(&tc->deferred_bio_list, bio);
  2136. spin_unlock_irqrestore(&tc->lock, flags);
  2137. wake_worker(pool);
  2138. }
  2139. static void thin_defer_bio_with_throttle(struct thin_c *tc, struct bio *bio)
  2140. {
  2141. struct pool *pool = tc->pool;
  2142. throttle_lock(&pool->throttle);
  2143. thin_defer_bio(tc, bio);
  2144. throttle_unlock(&pool->throttle);
  2145. }
  2146. static void thin_defer_cell(struct thin_c *tc, struct dm_bio_prison_cell *cell)
  2147. {
  2148. unsigned long flags;
  2149. struct pool *pool = tc->pool;
  2150. throttle_lock(&pool->throttle);
  2151. spin_lock_irqsave(&tc->lock, flags);
  2152. list_add_tail(&cell->user_list, &tc->deferred_cells);
  2153. spin_unlock_irqrestore(&tc->lock, flags);
  2154. throttle_unlock(&pool->throttle);
  2155. wake_worker(pool);
  2156. }
  2157. static void thin_hook_bio(struct thin_c *tc, struct bio *bio)
  2158. {
  2159. struct dm_thin_endio_hook *h = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));
  2160. h->tc = tc;
  2161. h->shared_read_entry = NULL;
  2162. h->all_io_entry = NULL;
  2163. h->overwrite_mapping = NULL;
  2164. h->cell = NULL;
  2165. }
  2166. /*
  2167. * Non-blocking function called from the thin target's map function.
  2168. */
  2169. static int thin_bio_map(struct dm_target *ti, struct bio *bio)
  2170. {
  2171. int r;
  2172. struct thin_c *tc = ti->private;
  2173. dm_block_t block = get_bio_block(tc, bio);
  2174. struct dm_thin_device *td = tc->td;
  2175. struct dm_thin_lookup_result result;
  2176. struct dm_bio_prison_cell *virt_cell, *data_cell;
  2177. struct dm_cell_key key;
  2178. thin_hook_bio(tc, bio);
  2179. if (tc->requeue_mode) {
  2180. bio->bi_error = DM_ENDIO_REQUEUE;
  2181. bio_endio(bio);
  2182. return DM_MAPIO_SUBMITTED;
  2183. }
  2184. if (get_pool_mode(tc->pool) == PM_FAIL) {
  2185. bio_io_error(bio);
  2186. return DM_MAPIO_SUBMITTED;
  2187. }
  2188. if (bio->bi_opf & (REQ_PREFLUSH | REQ_FUA) ||
  2189. bio_op(bio) == REQ_OP_DISCARD) {
  2190. thin_defer_bio_with_throttle(tc, bio);
  2191. return DM_MAPIO_SUBMITTED;
  2192. }
  2193. /*
  2194. * We must hold the virtual cell before doing the lookup, otherwise
  2195. * there's a race with discard.
  2196. */
  2197. build_virtual_key(tc->td, block, &key);
  2198. if (bio_detain(tc->pool, &key, bio, &virt_cell))
  2199. return DM_MAPIO_SUBMITTED;
  2200. r = dm_thin_find_block(td, block, 0, &result);
  2201. /*
  2202. * Note that we defer readahead too.
  2203. */
  2204. switch (r) {
  2205. case 0:
  2206. if (unlikely(result.shared)) {
  2207. /*
  2208. * We have a race condition here between the
  2209. * result.shared value returned by the lookup and
  2210. * snapshot creation, which may cause new
  2211. * sharing.
  2212. *
  2213. * To avoid this always quiesce the origin before
  2214. * taking the snap. You want to do this anyway to
  2215. * ensure a consistent application view
  2216. * (i.e. lockfs).
  2217. *
  2218. * More distant ancestors are irrelevant. The
  2219. * shared flag will be set in their case.
  2220. */
  2221. thin_defer_cell(tc, virt_cell);
  2222. return DM_MAPIO_SUBMITTED;
  2223. }
  2224. build_data_key(tc->td, result.block, &key);
  2225. if (bio_detain(tc->pool, &key, bio, &data_cell)) {
  2226. cell_defer_no_holder(tc, virt_cell);
  2227. return DM_MAPIO_SUBMITTED;
  2228. }
  2229. inc_all_io_entry(tc->pool, bio);
  2230. cell_defer_no_holder(tc, data_cell);
  2231. cell_defer_no_holder(tc, virt_cell);
  2232. remap(tc, bio, result.block);
  2233. return DM_MAPIO_REMAPPED;
  2234. case -ENODATA:
  2235. case -EWOULDBLOCK:
  2236. thin_defer_cell(tc, virt_cell);
  2237. return DM_MAPIO_SUBMITTED;
  2238. default:
  2239. /*
  2240. * Must always call bio_io_error on failure.
  2241. * dm_thin_find_block can fail with -EINVAL if the
  2242. * pool is switched to fail-io mode.
  2243. */
  2244. bio_io_error(bio);
  2245. cell_defer_no_holder(tc, virt_cell);
  2246. return DM_MAPIO_SUBMITTED;
  2247. }
  2248. }
  2249. static int pool_is_congested(struct dm_target_callbacks *cb, int bdi_bits)
  2250. {
  2251. struct pool_c *pt = container_of(cb, struct pool_c, callbacks);
  2252. struct request_queue *q;
  2253. if (get_pool_mode(pt->pool) == PM_OUT_OF_DATA_SPACE)
  2254. return 1;
  2255. q = bdev_get_queue(pt->data_dev->bdev);
  2256. return bdi_congested(&q->backing_dev_info, bdi_bits);
  2257. }
  2258. static void requeue_bios(struct pool *pool)
  2259. {
  2260. unsigned long flags;
  2261. struct thin_c *tc;
  2262. rcu_read_lock();
  2263. list_for_each_entry_rcu(tc, &pool->active_thins, list) {
  2264. spin_lock_irqsave(&tc->lock, flags);
  2265. bio_list_merge(&tc->deferred_bio_list, &tc->retry_on_resume_list);
  2266. bio_list_init(&tc->retry_on_resume_list);
  2267. spin_unlock_irqrestore(&tc->lock, flags);
  2268. }
  2269. rcu_read_unlock();
  2270. }
  2271. /*----------------------------------------------------------------
  2272. * Binding of control targets to a pool object
  2273. *--------------------------------------------------------------*/
  2274. static bool data_dev_supports_discard(struct pool_c *pt)
  2275. {
  2276. struct request_queue *q = bdev_get_queue(pt->data_dev->bdev);
  2277. return q && blk_queue_discard(q);
  2278. }
  2279. static bool is_factor(sector_t block_size, uint32_t n)
  2280. {
  2281. return !sector_div(block_size, n);
  2282. }
  2283. /*
  2284. * If discard_passdown was enabled verify that the data device
  2285. * supports discards. Disable discard_passdown if not.
  2286. */
  2287. static void disable_passdown_if_not_supported(struct pool_c *pt)
  2288. {
  2289. struct pool *pool = pt->pool;
  2290. struct block_device *data_bdev = pt->data_dev->bdev;
  2291. struct queue_limits *data_limits = &bdev_get_queue(data_bdev)->limits;
  2292. const char *reason = NULL;
  2293. char buf[BDEVNAME_SIZE];
  2294. if (!pt->adjusted_pf.discard_passdown)
  2295. return;
  2296. if (!data_dev_supports_discard(pt))
  2297. reason = "discard unsupported";
  2298. else if (data_limits->max_discard_sectors < pool->sectors_per_block)
  2299. reason = "max discard sectors smaller than a block";
  2300. if (reason) {
  2301. DMWARN("Data device (%s) %s: Disabling discard passdown.", bdevname(data_bdev, buf), reason);
  2302. pt->adjusted_pf.discard_passdown = false;
  2303. }
  2304. }
  2305. static int bind_control_target(struct pool *pool, struct dm_target *ti)
  2306. {
  2307. struct pool_c *pt = ti->private;
  2308. /*
  2309. * We want to make sure that a pool in PM_FAIL mode is never upgraded.
  2310. */
  2311. enum pool_mode old_mode = get_pool_mode(pool);
  2312. enum pool_mode new_mode = pt->adjusted_pf.mode;
  2313. /*
  2314. * Don't change the pool's mode until set_pool_mode() below.
  2315. * Otherwise the pool's process_* function pointers may
  2316. * not match the desired pool mode.
  2317. */
  2318. pt->adjusted_pf.mode = old_mode;
  2319. pool->ti = ti;
  2320. pool->pf = pt->adjusted_pf;
  2321. pool->low_water_blocks = pt->low_water_blocks;
  2322. set_pool_mode(pool, new_mode);
  2323. return 0;
  2324. }
  2325. static void unbind_control_target(struct pool *pool, struct dm_target *ti)
  2326. {
  2327. if (pool->ti == ti)
  2328. pool->ti = NULL;
  2329. }
  2330. /*----------------------------------------------------------------
  2331. * Pool creation
  2332. *--------------------------------------------------------------*/
  2333. /* Initialize pool features. */
  2334. static void pool_features_init(struct pool_features *pf)
  2335. {
  2336. pf->mode = PM_WRITE;
  2337. pf->zero_new_blocks = true;
  2338. pf->discard_enabled = true;
  2339. pf->discard_passdown = true;
  2340. pf->error_if_no_space = false;
  2341. }
  2342. static void __pool_destroy(struct pool *pool)
  2343. {
  2344. __pool_table_remove(pool);
  2345. vfree(pool->cell_sort_array);
  2346. if (dm_pool_metadata_close(pool->pmd) < 0)
  2347. DMWARN("%s: dm_pool_metadata_close() failed.", __func__);
  2348. dm_bio_prison_destroy(pool->prison);
  2349. dm_kcopyd_client_destroy(pool->copier);
  2350. if (pool->wq)
  2351. destroy_workqueue(pool->wq);
  2352. if (pool->next_mapping)
  2353. mempool_free(pool->next_mapping, pool->mapping_pool);
  2354. mempool_destroy(pool->mapping_pool);
  2355. dm_deferred_set_destroy(pool->shared_read_ds);
  2356. dm_deferred_set_destroy(pool->all_io_ds);
  2357. kfree(pool);
  2358. }
  2359. static struct kmem_cache *_new_mapping_cache;
  2360. static struct pool *pool_create(struct mapped_device *pool_md,
  2361. struct block_device *metadata_dev,
  2362. unsigned long block_size,
  2363. int read_only, char **error)
  2364. {
  2365. int r;
  2366. void *err_p;
  2367. struct pool *pool;
  2368. struct dm_pool_metadata *pmd;
  2369. bool format_device = read_only ? false : true;
  2370. pmd = dm_pool_metadata_open(metadata_dev, block_size, format_device);
  2371. if (IS_ERR(pmd)) {
  2372. *error = "Error creating metadata object";
  2373. return (struct pool *)pmd;
  2374. }
  2375. pool = kmalloc(sizeof(*pool), GFP_KERNEL);
  2376. if (!pool) {
  2377. *error = "Error allocating memory for pool";
  2378. err_p = ERR_PTR(-ENOMEM);
  2379. goto bad_pool;
  2380. }
  2381. pool->pmd = pmd;
  2382. pool->sectors_per_block = block_size;
  2383. if (block_size & (block_size - 1))
  2384. pool->sectors_per_block_shift = -1;
  2385. else
  2386. pool->sectors_per_block_shift = __ffs(block_size);
  2387. pool->low_water_blocks = 0;
  2388. pool_features_init(&pool->pf);
  2389. pool->prison = dm_bio_prison_create();
  2390. if (!pool->prison) {
  2391. *error = "Error creating pool's bio prison";
  2392. err_p = ERR_PTR(-ENOMEM);
  2393. goto bad_prison;
  2394. }
  2395. pool->copier = dm_kcopyd_client_create(&dm_kcopyd_throttle);
  2396. if (IS_ERR(pool->copier)) {
  2397. r = PTR_ERR(pool->copier);
  2398. *error = "Error creating pool's kcopyd client";
  2399. err_p = ERR_PTR(r);
  2400. goto bad_kcopyd_client;
  2401. }
  2402. /*
  2403. * Create singlethreaded workqueue that will service all devices
  2404. * that use this metadata.
  2405. */
  2406. pool->wq = alloc_ordered_workqueue("dm-" DM_MSG_PREFIX, WQ_MEM_RECLAIM);
  2407. if (!pool->wq) {
  2408. *error = "Error creating pool's workqueue";
  2409. err_p = ERR_PTR(-ENOMEM);
  2410. goto bad_wq;
  2411. }
  2412. throttle_init(&pool->throttle);
  2413. INIT_WORK(&pool->worker, do_worker);
  2414. INIT_DELAYED_WORK(&pool->waker, do_waker);
  2415. INIT_DELAYED_WORK(&pool->no_space_timeout, do_no_space_timeout);
  2416. spin_lock_init(&pool->lock);
  2417. bio_list_init(&pool->deferred_flush_bios);
  2418. INIT_LIST_HEAD(&pool->prepared_mappings);
  2419. INIT_LIST_HEAD(&pool->prepared_discards);
  2420. INIT_LIST_HEAD(&pool->prepared_discards_pt2);
  2421. INIT_LIST_HEAD(&pool->active_thins);
  2422. pool->low_water_triggered = false;
  2423. pool->suspended = true;
  2424. pool->out_of_data_space = false;
  2425. pool->shared_read_ds = dm_deferred_set_create();
  2426. if (!pool->shared_read_ds) {
  2427. *error = "Error creating pool's shared read deferred set";
  2428. err_p = ERR_PTR(-ENOMEM);
  2429. goto bad_shared_read_ds;
  2430. }
  2431. pool->all_io_ds = dm_deferred_set_create();
  2432. if (!pool->all_io_ds) {
  2433. *error = "Error creating pool's all io deferred set";
  2434. err_p = ERR_PTR(-ENOMEM);
  2435. goto bad_all_io_ds;
  2436. }
  2437. pool->next_mapping = NULL;
  2438. pool->mapping_pool = mempool_create_slab_pool(MAPPING_POOL_SIZE,
  2439. _new_mapping_cache);
  2440. if (!pool->mapping_pool) {
  2441. *error = "Error creating pool's mapping mempool";
  2442. err_p = ERR_PTR(-ENOMEM);
  2443. goto bad_mapping_pool;
  2444. }
  2445. pool->cell_sort_array = vmalloc(sizeof(*pool->cell_sort_array) * CELL_SORT_ARRAY_SIZE);
  2446. if (!pool->cell_sort_array) {
  2447. *error = "Error allocating cell sort array";
  2448. err_p = ERR_PTR(-ENOMEM);
  2449. goto bad_sort_array;
  2450. }
  2451. pool->ref_count = 1;
  2452. pool->last_commit_jiffies = jiffies;
  2453. pool->pool_md = pool_md;
  2454. pool->md_dev = metadata_dev;
  2455. __pool_table_insert(pool);
  2456. return pool;
  2457. bad_sort_array:
  2458. mempool_destroy(pool->mapping_pool);
  2459. bad_mapping_pool:
  2460. dm_deferred_set_destroy(pool->all_io_ds);
  2461. bad_all_io_ds:
  2462. dm_deferred_set_destroy(pool->shared_read_ds);
  2463. bad_shared_read_ds:
  2464. destroy_workqueue(pool->wq);
  2465. bad_wq:
  2466. dm_kcopyd_client_destroy(pool->copier);
  2467. bad_kcopyd_client:
  2468. dm_bio_prison_destroy(pool->prison);
  2469. bad_prison:
  2470. kfree(pool);
  2471. bad_pool:
  2472. if (dm_pool_metadata_close(pmd))
  2473. DMWARN("%s: dm_pool_metadata_close() failed.", __func__);
  2474. return err_p;
  2475. }
  2476. static void __pool_inc(struct pool *pool)
  2477. {
  2478. BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex));
  2479. pool->ref_count++;
  2480. }
  2481. static void __pool_dec(struct pool *pool)
  2482. {
  2483. BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex));
  2484. BUG_ON(!pool->ref_count);
  2485. if (!--pool->ref_count)
  2486. __pool_destroy(pool);
  2487. }
  2488. static struct pool *__pool_find(struct mapped_device *pool_md,
  2489. struct block_device *metadata_dev,
  2490. unsigned long block_size, int read_only,
  2491. char **error, int *created)
  2492. {
  2493. struct pool *pool = __pool_table_lookup_metadata_dev(metadata_dev);
  2494. if (pool) {
  2495. if (pool->pool_md != pool_md) {
  2496. *error = "metadata device already in use by a pool";
  2497. return ERR_PTR(-EBUSY);
  2498. }
  2499. __pool_inc(pool);
  2500. } else {
  2501. pool = __pool_table_lookup(pool_md);
  2502. if (pool) {
  2503. if (pool->md_dev != metadata_dev) {
  2504. *error = "different pool cannot replace a pool";
  2505. return ERR_PTR(-EINVAL);
  2506. }
  2507. __pool_inc(pool);
  2508. } else {
  2509. pool = pool_create(pool_md, metadata_dev, block_size, read_only, error);
  2510. *created = 1;
  2511. }
  2512. }
  2513. return pool;
  2514. }
  2515. /*----------------------------------------------------------------
  2516. * Pool target methods
  2517. *--------------------------------------------------------------*/
  2518. static void pool_dtr(struct dm_target *ti)
  2519. {
  2520. struct pool_c *pt = ti->private;
  2521. mutex_lock(&dm_thin_pool_table.mutex);
  2522. unbind_control_target(pt->pool, ti);
  2523. __pool_dec(pt->pool);
  2524. dm_put_device(ti, pt->metadata_dev);
  2525. dm_put_device(ti, pt->data_dev);
  2526. kfree(pt);
  2527. mutex_unlock(&dm_thin_pool_table.mutex);
  2528. }
  2529. static int parse_pool_features(struct dm_arg_set *as, struct pool_features *pf,
  2530. struct dm_target *ti)
  2531. {
  2532. int r;
  2533. unsigned argc;
  2534. const char *arg_name;
  2535. static struct dm_arg _args[] = {
  2536. {0, 4, "Invalid number of pool feature arguments"},
  2537. };
  2538. /*
  2539. * No feature arguments supplied.
  2540. */
  2541. if (!as->argc)
  2542. return 0;
  2543. r = dm_read_arg_group(_args, as, &argc, &ti->error);
  2544. if (r)
  2545. return -EINVAL;
  2546. while (argc && !r) {
  2547. arg_name = dm_shift_arg(as);
  2548. argc--;
  2549. if (!strcasecmp(arg_name, "skip_block_zeroing"))
  2550. pf->zero_new_blocks = false;
  2551. else if (!strcasecmp(arg_name, "ignore_discard"))
  2552. pf->discard_enabled = false;
  2553. else if (!strcasecmp(arg_name, "no_discard_passdown"))
  2554. pf->discard_passdown = false;
  2555. else if (!strcasecmp(arg_name, "read_only"))
  2556. pf->mode = PM_READ_ONLY;
  2557. else if (!strcasecmp(arg_name, "error_if_no_space"))
  2558. pf->error_if_no_space = true;
  2559. else {
  2560. ti->error = "Unrecognised pool feature requested";
  2561. r = -EINVAL;
  2562. break;
  2563. }
  2564. }
  2565. return r;
  2566. }
  2567. static void metadata_low_callback(void *context)
  2568. {
  2569. struct pool *pool = context;
  2570. DMWARN("%s: reached low water mark for metadata device: sending event.",
  2571. dm_device_name(pool->pool_md));
  2572. dm_table_event(pool->ti->table);
  2573. }
  2574. static sector_t get_dev_size(struct block_device *bdev)
  2575. {
  2576. return i_size_read(bdev->bd_inode) >> SECTOR_SHIFT;
  2577. }
  2578. static void warn_if_metadata_device_too_big(struct block_device *bdev)
  2579. {
  2580. sector_t metadata_dev_size = get_dev_size(bdev);
  2581. char buffer[BDEVNAME_SIZE];
  2582. if (metadata_dev_size > THIN_METADATA_MAX_SECTORS_WARNING)
  2583. DMWARN("Metadata device %s is larger than %u sectors: excess space will not be used.",
  2584. bdevname(bdev, buffer), THIN_METADATA_MAX_SECTORS);
  2585. }
  2586. static sector_t get_metadata_dev_size(struct block_device *bdev)
  2587. {
  2588. sector_t metadata_dev_size = get_dev_size(bdev);
  2589. if (metadata_dev_size > THIN_METADATA_MAX_SECTORS)
  2590. metadata_dev_size = THIN_METADATA_MAX_SECTORS;
  2591. return metadata_dev_size;
  2592. }
  2593. static dm_block_t get_metadata_dev_size_in_blocks(struct block_device *bdev)
  2594. {
  2595. sector_t metadata_dev_size = get_metadata_dev_size(bdev);
  2596. sector_div(metadata_dev_size, THIN_METADATA_BLOCK_SIZE);
  2597. return metadata_dev_size;
  2598. }
  2599. /*
  2600. * When a metadata threshold is crossed a dm event is triggered, and
  2601. * userland should respond by growing the metadata device. We could let
  2602. * userland set the threshold, like we do with the data threshold, but I'm
  2603. * not sure they know enough to do this well.
  2604. */
  2605. static dm_block_t calc_metadata_threshold(struct pool_c *pt)
  2606. {
  2607. /*
  2608. * 4M is ample for all ops with the possible exception of thin
  2609. * device deletion which is harmless if it fails (just retry the
  2610. * delete after you've grown the device).
  2611. */
  2612. dm_block_t quarter = get_metadata_dev_size_in_blocks(pt->metadata_dev->bdev) / 4;
  2613. return min((dm_block_t)1024ULL /* 4M */, quarter);
  2614. }
  2615. /*
  2616. * thin-pool <metadata dev> <data dev>
  2617. * <data block size (sectors)>
  2618. * <low water mark (blocks)>
  2619. * [<#feature args> [<arg>]*]
  2620. *
  2621. * Optional feature arguments are:
  2622. * skip_block_zeroing: skips the zeroing of newly-provisioned blocks.
  2623. * ignore_discard: disable discard
  2624. * no_discard_passdown: don't pass discards down to the data device
  2625. * read_only: Don't allow any changes to be made to the pool metadata.
  2626. * error_if_no_space: error IOs, instead of queueing, if no space.
  2627. */
  2628. static int pool_ctr(struct dm_target *ti, unsigned argc, char **argv)
  2629. {
  2630. int r, pool_created = 0;
  2631. struct pool_c *pt;
  2632. struct pool *pool;
  2633. struct pool_features pf;
  2634. struct dm_arg_set as;
  2635. struct dm_dev *data_dev;
  2636. unsigned long block_size;
  2637. dm_block_t low_water_blocks;
  2638. struct dm_dev *metadata_dev;
  2639. fmode_t metadata_mode;
  2640. /*
  2641. * FIXME Remove validation from scope of lock.
  2642. */
  2643. mutex_lock(&dm_thin_pool_table.mutex);
  2644. if (argc < 4) {
  2645. ti->error = "Invalid argument count";
  2646. r = -EINVAL;
  2647. goto out_unlock;
  2648. }
  2649. as.argc = argc;
  2650. as.argv = argv;
  2651. /*
  2652. * Set default pool features.
  2653. */
  2654. pool_features_init(&pf);
  2655. dm_consume_args(&as, 4);
  2656. r = parse_pool_features(&as, &pf, ti);
  2657. if (r)
  2658. goto out_unlock;
  2659. metadata_mode = FMODE_READ | ((pf.mode == PM_READ_ONLY) ? 0 : FMODE_WRITE);
  2660. r = dm_get_device(ti, argv[0], metadata_mode, &metadata_dev);
  2661. if (r) {
  2662. ti->error = "Error opening metadata block device";
  2663. goto out_unlock;
  2664. }
  2665. warn_if_metadata_device_too_big(metadata_dev->bdev);
  2666. r = dm_get_device(ti, argv[1], FMODE_READ | FMODE_WRITE, &data_dev);
  2667. if (r) {
  2668. ti->error = "Error getting data device";
  2669. goto out_metadata;
  2670. }
  2671. if (kstrtoul(argv[2], 10, &block_size) || !block_size ||
  2672. block_size < DATA_DEV_BLOCK_SIZE_MIN_SECTORS ||
  2673. block_size > DATA_DEV_BLOCK_SIZE_MAX_SECTORS ||
  2674. block_size & (DATA_DEV_BLOCK_SIZE_MIN_SECTORS - 1)) {
  2675. ti->error = "Invalid block size";
  2676. r = -EINVAL;
  2677. goto out;
  2678. }
  2679. if (kstrtoull(argv[3], 10, (unsigned long long *)&low_water_blocks)) {
  2680. ti->error = "Invalid low water mark";
  2681. r = -EINVAL;
  2682. goto out;
  2683. }
  2684. pt = kzalloc(sizeof(*pt), GFP_KERNEL);
  2685. if (!pt) {
  2686. r = -ENOMEM;
  2687. goto out;
  2688. }
  2689. pool = __pool_find(dm_table_get_md(ti->table), metadata_dev->bdev,
  2690. block_size, pf.mode == PM_READ_ONLY, &ti->error, &pool_created);
  2691. if (IS_ERR(pool)) {
  2692. r = PTR_ERR(pool);
  2693. goto out_free_pt;
  2694. }
  2695. /*
  2696. * 'pool_created' reflects whether this is the first table load.
  2697. * Top level discard support is not allowed to be changed after
  2698. * initial load. This would require a pool reload to trigger thin
  2699. * device changes.
  2700. */
  2701. if (!pool_created && pf.discard_enabled != pool->pf.discard_enabled) {
  2702. ti->error = "Discard support cannot be disabled once enabled";
  2703. r = -EINVAL;
  2704. goto out_flags_changed;
  2705. }
  2706. pt->pool = pool;
  2707. pt->ti = ti;
  2708. pt->metadata_dev = metadata_dev;
  2709. pt->data_dev = data_dev;
  2710. pt->low_water_blocks = low_water_blocks;
  2711. pt->adjusted_pf = pt->requested_pf = pf;
  2712. ti->num_flush_bios = 1;
  2713. /*
  2714. * Only need to enable discards if the pool should pass
  2715. * them down to the data device. The thin device's discard
  2716. * processing will cause mappings to be removed from the btree.
  2717. */
  2718. ti->discard_zeroes_data_unsupported = true;
  2719. if (pf.discard_enabled && pf.discard_passdown) {
  2720. ti->num_discard_bios = 1;
  2721. /*
  2722. * Setting 'discards_supported' circumvents the normal
  2723. * stacking of discard limits (this keeps the pool and
  2724. * thin devices' discard limits consistent).
  2725. */
  2726. ti->discards_supported = true;
  2727. }
  2728. ti->private = pt;
  2729. r = dm_pool_register_metadata_threshold(pt->pool->pmd,
  2730. calc_metadata_threshold(pt),
  2731. metadata_low_callback,
  2732. pool);
  2733. if (r)
  2734. goto out_flags_changed;
  2735. pt->callbacks.congested_fn = pool_is_congested;
  2736. dm_table_add_target_callbacks(ti->table, &pt->callbacks);
  2737. mutex_unlock(&dm_thin_pool_table.mutex);
  2738. return 0;
  2739. out_flags_changed:
  2740. __pool_dec(pool);
  2741. out_free_pt:
  2742. kfree(pt);
  2743. out:
  2744. dm_put_device(ti, data_dev);
  2745. out_metadata:
  2746. dm_put_device(ti, metadata_dev);
  2747. out_unlock:
  2748. mutex_unlock(&dm_thin_pool_table.mutex);
  2749. return r;
  2750. }
  2751. static int pool_map(struct dm_target *ti, struct bio *bio)
  2752. {
  2753. int r;
  2754. struct pool_c *pt = ti->private;
  2755. struct pool *pool = pt->pool;
  2756. unsigned long flags;
  2757. /*
  2758. * As this is a singleton target, ti->begin is always zero.
  2759. */
  2760. spin_lock_irqsave(&pool->lock, flags);
  2761. bio->bi_bdev = pt->data_dev->bdev;
  2762. r = DM_MAPIO_REMAPPED;
  2763. spin_unlock_irqrestore(&pool->lock, flags);
  2764. return r;
  2765. }
  2766. static int maybe_resize_data_dev(struct dm_target *ti, bool *need_commit)
  2767. {
  2768. int r;
  2769. struct pool_c *pt = ti->private;
  2770. struct pool *pool = pt->pool;
  2771. sector_t data_size = ti->len;
  2772. dm_block_t sb_data_size;
  2773. *need_commit = false;
  2774. (void) sector_div(data_size, pool->sectors_per_block);
  2775. r = dm_pool_get_data_dev_size(pool->pmd, &sb_data_size);
  2776. if (r) {
  2777. DMERR("%s: failed to retrieve data device size",
  2778. dm_device_name(pool->pool_md));
  2779. return r;
  2780. }
  2781. if (data_size < sb_data_size) {
  2782. DMERR("%s: pool target (%llu blocks) too small: expected %llu",
  2783. dm_device_name(pool->pool_md),
  2784. (unsigned long long)data_size, sb_data_size);
  2785. return -EINVAL;
  2786. } else if (data_size > sb_data_size) {
  2787. if (dm_pool_metadata_needs_check(pool->pmd)) {
  2788. DMERR("%s: unable to grow the data device until repaired.",
  2789. dm_device_name(pool->pool_md));
  2790. return 0;
  2791. }
  2792. if (sb_data_size)
  2793. DMINFO("%s: growing the data device from %llu to %llu blocks",
  2794. dm_device_name(pool->pool_md),
  2795. sb_data_size, (unsigned long long)data_size);
  2796. r = dm_pool_resize_data_dev(pool->pmd, data_size);
  2797. if (r) {
  2798. metadata_operation_failed(pool, "dm_pool_resize_data_dev", r);
  2799. return r;
  2800. }
  2801. *need_commit = true;
  2802. }
  2803. return 0;
  2804. }
  2805. static int maybe_resize_metadata_dev(struct dm_target *ti, bool *need_commit)
  2806. {
  2807. int r;
  2808. struct pool_c *pt = ti->private;
  2809. struct pool *pool = pt->pool;
  2810. dm_block_t metadata_dev_size, sb_metadata_dev_size;
  2811. *need_commit = false;
  2812. metadata_dev_size = get_metadata_dev_size_in_blocks(pool->md_dev);
  2813. r = dm_pool_get_metadata_dev_size(pool->pmd, &sb_metadata_dev_size);
  2814. if (r) {
  2815. DMERR("%s: failed to retrieve metadata device size",
  2816. dm_device_name(pool->pool_md));
  2817. return r;
  2818. }
  2819. if (metadata_dev_size < sb_metadata_dev_size) {
  2820. DMERR("%s: metadata device (%llu blocks) too small: expected %llu",
  2821. dm_device_name(pool->pool_md),
  2822. metadata_dev_size, sb_metadata_dev_size);
  2823. return -EINVAL;
  2824. } else if (metadata_dev_size > sb_metadata_dev_size) {
  2825. if (dm_pool_metadata_needs_check(pool->pmd)) {
  2826. DMERR("%s: unable to grow the metadata device until repaired.",
  2827. dm_device_name(pool->pool_md));
  2828. return 0;
  2829. }
  2830. warn_if_metadata_device_too_big(pool->md_dev);
  2831. DMINFO("%s: growing the metadata device from %llu to %llu blocks",
  2832. dm_device_name(pool->pool_md),
  2833. sb_metadata_dev_size, metadata_dev_size);
  2834. r = dm_pool_resize_metadata_dev(pool->pmd, metadata_dev_size);
  2835. if (r) {
  2836. metadata_operation_failed(pool, "dm_pool_resize_metadata_dev", r);
  2837. return r;
  2838. }
  2839. *need_commit = true;
  2840. }
  2841. return 0;
  2842. }
  2843. /*
  2844. * Retrieves the number of blocks of the data device from
  2845. * the superblock and compares it to the actual device size,
  2846. * thus resizing the data device in case it has grown.
  2847. *
  2848. * This both copes with opening preallocated data devices in the ctr
  2849. * being followed by a resume
  2850. * -and-
  2851. * calling the resume method individually after userspace has
  2852. * grown the data device in reaction to a table event.
  2853. */
  2854. static int pool_preresume(struct dm_target *ti)
  2855. {
  2856. int r;
  2857. bool need_commit1, need_commit2;
  2858. struct pool_c *pt = ti->private;
  2859. struct pool *pool = pt->pool;
  2860. /*
  2861. * Take control of the pool object.
  2862. */
  2863. r = bind_control_target(pool, ti);
  2864. if (r)
  2865. return r;
  2866. r = maybe_resize_data_dev(ti, &need_commit1);
  2867. if (r)
  2868. return r;
  2869. r = maybe_resize_metadata_dev(ti, &need_commit2);
  2870. if (r)
  2871. return r;
  2872. if (need_commit1 || need_commit2)
  2873. (void) commit(pool);
  2874. return 0;
  2875. }
  2876. static void pool_suspend_active_thins(struct pool *pool)
  2877. {
  2878. struct thin_c *tc;
  2879. /* Suspend all active thin devices */
  2880. tc = get_first_thin(pool);
  2881. while (tc) {
  2882. dm_internal_suspend_noflush(tc->thin_md);
  2883. tc = get_next_thin(pool, tc);
  2884. }
  2885. }
  2886. static void pool_resume_active_thins(struct pool *pool)
  2887. {
  2888. struct thin_c *tc;
  2889. /* Resume all active thin devices */
  2890. tc = get_first_thin(pool);
  2891. while (tc) {
  2892. dm_internal_resume(tc->thin_md);
  2893. tc = get_next_thin(pool, tc);
  2894. }
  2895. }
  2896. static void pool_resume(struct dm_target *ti)
  2897. {
  2898. struct pool_c *pt = ti->private;
  2899. struct pool *pool = pt->pool;
  2900. unsigned long flags;
  2901. /*
  2902. * Must requeue active_thins' bios and then resume
  2903. * active_thins _before_ clearing 'suspend' flag.
  2904. */
  2905. requeue_bios(pool);
  2906. pool_resume_active_thins(pool);
  2907. spin_lock_irqsave(&pool->lock, flags);
  2908. pool->low_water_triggered = false;
  2909. pool->suspended = false;
  2910. spin_unlock_irqrestore(&pool->lock, flags);
  2911. do_waker(&pool->waker.work);
  2912. }
  2913. static void pool_presuspend(struct dm_target *ti)
  2914. {
  2915. struct pool_c *pt = ti->private;
  2916. struct pool *pool = pt->pool;
  2917. unsigned long flags;
  2918. spin_lock_irqsave(&pool->lock, flags);
  2919. pool->suspended = true;
  2920. spin_unlock_irqrestore(&pool->lock, flags);
  2921. pool_suspend_active_thins(pool);
  2922. }
  2923. static void pool_presuspend_undo(struct dm_target *ti)
  2924. {
  2925. struct pool_c *pt = ti->private;
  2926. struct pool *pool = pt->pool;
  2927. unsigned long flags;
  2928. pool_resume_active_thins(pool);
  2929. spin_lock_irqsave(&pool->lock, flags);
  2930. pool->suspended = false;
  2931. spin_unlock_irqrestore(&pool->lock, flags);
  2932. }
  2933. static void pool_postsuspend(struct dm_target *ti)
  2934. {
  2935. struct pool_c *pt = ti->private;
  2936. struct pool *pool = pt->pool;
  2937. cancel_delayed_work_sync(&pool->waker);
  2938. cancel_delayed_work_sync(&pool->no_space_timeout);
  2939. flush_workqueue(pool->wq);
  2940. (void) commit(pool);
  2941. }
  2942. static int check_arg_count(unsigned argc, unsigned args_required)
  2943. {
  2944. if (argc != args_required) {
  2945. DMWARN("Message received with %u arguments instead of %u.",
  2946. argc, args_required);
  2947. return -EINVAL;
  2948. }
  2949. return 0;
  2950. }
  2951. static int read_dev_id(char *arg, dm_thin_id *dev_id, int warning)
  2952. {
  2953. if (!kstrtoull(arg, 10, (unsigned long long *)dev_id) &&
  2954. *dev_id <= MAX_DEV_ID)
  2955. return 0;
  2956. if (warning)
  2957. DMWARN("Message received with invalid device id: %s", arg);
  2958. return -EINVAL;
  2959. }
  2960. static int process_create_thin_mesg(unsigned argc, char **argv, struct pool *pool)
  2961. {
  2962. dm_thin_id dev_id;
  2963. int r;
  2964. r = check_arg_count(argc, 2);
  2965. if (r)
  2966. return r;
  2967. r = read_dev_id(argv[1], &dev_id, 1);
  2968. if (r)
  2969. return r;
  2970. r = dm_pool_create_thin(pool->pmd, dev_id);
  2971. if (r) {
  2972. DMWARN("Creation of new thinly-provisioned device with id %s failed.",
  2973. argv[1]);
  2974. return r;
  2975. }
  2976. return 0;
  2977. }
  2978. static int process_create_snap_mesg(unsigned argc, char **argv, struct pool *pool)
  2979. {
  2980. dm_thin_id dev_id;
  2981. dm_thin_id origin_dev_id;
  2982. int r;
  2983. r = check_arg_count(argc, 3);
  2984. if (r)
  2985. return r;
  2986. r = read_dev_id(argv[1], &dev_id, 1);
  2987. if (r)
  2988. return r;
  2989. r = read_dev_id(argv[2], &origin_dev_id, 1);
  2990. if (r)
  2991. return r;
  2992. r = dm_pool_create_snap(pool->pmd, dev_id, origin_dev_id);
  2993. if (r) {
  2994. DMWARN("Creation of new snapshot %s of device %s failed.",
  2995. argv[1], argv[2]);
  2996. return r;
  2997. }
  2998. return 0;
  2999. }
  3000. static int process_delete_mesg(unsigned argc, char **argv, struct pool *pool)
  3001. {
  3002. dm_thin_id dev_id;
  3003. int r;
  3004. r = check_arg_count(argc, 2);
  3005. if (r)
  3006. return r;
  3007. r = read_dev_id(argv[1], &dev_id, 1);
  3008. if (r)
  3009. return r;
  3010. r = dm_pool_delete_thin_device(pool->pmd, dev_id);
  3011. if (r)
  3012. DMWARN("Deletion of thin device %s failed.", argv[1]);
  3013. return r;
  3014. }
  3015. static int process_set_transaction_id_mesg(unsigned argc, char **argv, struct pool *pool)
  3016. {
  3017. dm_thin_id old_id, new_id;
  3018. int r;
  3019. r = check_arg_count(argc, 3);
  3020. if (r)
  3021. return r;
  3022. if (kstrtoull(argv[1], 10, (unsigned long long *)&old_id)) {
  3023. DMWARN("set_transaction_id message: Unrecognised id %s.", argv[1]);
  3024. return -EINVAL;
  3025. }
  3026. if (kstrtoull(argv[2], 10, (unsigned long long *)&new_id)) {
  3027. DMWARN("set_transaction_id message: Unrecognised new id %s.", argv[2]);
  3028. return -EINVAL;
  3029. }
  3030. r = dm_pool_set_metadata_transaction_id(pool->pmd, old_id, new_id);
  3031. if (r) {
  3032. DMWARN("Failed to change transaction id from %s to %s.",
  3033. argv[1], argv[2]);
  3034. return r;
  3035. }
  3036. return 0;
  3037. }
  3038. static int process_reserve_metadata_snap_mesg(unsigned argc, char **argv, struct pool *pool)
  3039. {
  3040. int r;
  3041. r = check_arg_count(argc, 1);
  3042. if (r)
  3043. return r;
  3044. (void) commit(pool);
  3045. r = dm_pool_reserve_metadata_snap(pool->pmd);
  3046. if (r)
  3047. DMWARN("reserve_metadata_snap message failed.");
  3048. return r;
  3049. }
  3050. static int process_release_metadata_snap_mesg(unsigned argc, char **argv, struct pool *pool)
  3051. {
  3052. int r;
  3053. r = check_arg_count(argc, 1);
  3054. if (r)
  3055. return r;
  3056. r = dm_pool_release_metadata_snap(pool->pmd);
  3057. if (r)
  3058. DMWARN("release_metadata_snap message failed.");
  3059. return r;
  3060. }
  3061. /*
  3062. * Messages supported:
  3063. * create_thin <dev_id>
  3064. * create_snap <dev_id> <origin_id>
  3065. * delete <dev_id>
  3066. * set_transaction_id <current_trans_id> <new_trans_id>
  3067. * reserve_metadata_snap
  3068. * release_metadata_snap
  3069. */
  3070. static int pool_message(struct dm_target *ti, unsigned argc, char **argv)
  3071. {
  3072. int r = -EINVAL;
  3073. struct pool_c *pt = ti->private;
  3074. struct pool *pool = pt->pool;
  3075. if (get_pool_mode(pool) >= PM_READ_ONLY) {
  3076. DMERR("%s: unable to service pool target messages in READ_ONLY or FAIL mode",
  3077. dm_device_name(pool->pool_md));
  3078. return -EOPNOTSUPP;
  3079. }
  3080. if (!strcasecmp(argv[0], "create_thin"))
  3081. r = process_create_thin_mesg(argc, argv, pool);
  3082. else if (!strcasecmp(argv[0], "create_snap"))
  3083. r = process_create_snap_mesg(argc, argv, pool);
  3084. else if (!strcasecmp(argv[0], "delete"))
  3085. r = process_delete_mesg(argc, argv, pool);
  3086. else if (!strcasecmp(argv[0], "set_transaction_id"))
  3087. r = process_set_transaction_id_mesg(argc, argv, pool);
  3088. else if (!strcasecmp(argv[0], "reserve_metadata_snap"))
  3089. r = process_reserve_metadata_snap_mesg(argc, argv, pool);
  3090. else if (!strcasecmp(argv[0], "release_metadata_snap"))
  3091. r = process_release_metadata_snap_mesg(argc, argv, pool);
  3092. else
  3093. DMWARN("Unrecognised thin pool target message received: %s", argv[0]);
  3094. if (!r)
  3095. (void) commit(pool);
  3096. return r;
  3097. }
  3098. static void emit_flags(struct pool_features *pf, char *result,
  3099. unsigned sz, unsigned maxlen)
  3100. {
  3101. unsigned count = !pf->zero_new_blocks + !pf->discard_enabled +
  3102. !pf->discard_passdown + (pf->mode == PM_READ_ONLY) +
  3103. pf->error_if_no_space;
  3104. DMEMIT("%u ", count);
  3105. if (!pf->zero_new_blocks)
  3106. DMEMIT("skip_block_zeroing ");
  3107. if (!pf->discard_enabled)
  3108. DMEMIT("ignore_discard ");
  3109. if (!pf->discard_passdown)
  3110. DMEMIT("no_discard_passdown ");
  3111. if (pf->mode == PM_READ_ONLY)
  3112. DMEMIT("read_only ");
  3113. if (pf->error_if_no_space)
  3114. DMEMIT("error_if_no_space ");
  3115. }
  3116. /*
  3117. * Status line is:
  3118. * <transaction id> <used metadata sectors>/<total metadata sectors>
  3119. * <used data sectors>/<total data sectors> <held metadata root>
  3120. * <pool mode> <discard config> <no space config> <needs_check>
  3121. */
  3122. static void pool_status(struct dm_target *ti, status_type_t type,
  3123. unsigned status_flags, char *result, unsigned maxlen)
  3124. {
  3125. int r;
  3126. unsigned sz = 0;
  3127. uint64_t transaction_id;
  3128. dm_block_t nr_free_blocks_data;
  3129. dm_block_t nr_free_blocks_metadata;
  3130. dm_block_t nr_blocks_data;
  3131. dm_block_t nr_blocks_metadata;
  3132. dm_block_t held_root;
  3133. char buf[BDEVNAME_SIZE];
  3134. char buf2[BDEVNAME_SIZE];
  3135. struct pool_c *pt = ti->private;
  3136. struct pool *pool = pt->pool;
  3137. switch (type) {
  3138. case STATUSTYPE_INFO:
  3139. if (get_pool_mode(pool) == PM_FAIL) {
  3140. DMEMIT("Fail");
  3141. break;
  3142. }
  3143. /* Commit to ensure statistics aren't out-of-date */
  3144. if (!(status_flags & DM_STATUS_NOFLUSH_FLAG) && !dm_suspended(ti))
  3145. (void) commit(pool);
  3146. r = dm_pool_get_metadata_transaction_id(pool->pmd, &transaction_id);
  3147. if (r) {
  3148. DMERR("%s: dm_pool_get_metadata_transaction_id returned %d",
  3149. dm_device_name(pool->pool_md), r);
  3150. goto err;
  3151. }
  3152. r = dm_pool_get_free_metadata_block_count(pool->pmd, &nr_free_blocks_metadata);
  3153. if (r) {
  3154. DMERR("%s: dm_pool_get_free_metadata_block_count returned %d",
  3155. dm_device_name(pool->pool_md), r);
  3156. goto err;
  3157. }
  3158. r = dm_pool_get_metadata_dev_size(pool->pmd, &nr_blocks_metadata);
  3159. if (r) {
  3160. DMERR("%s: dm_pool_get_metadata_dev_size returned %d",
  3161. dm_device_name(pool->pool_md), r);
  3162. goto err;
  3163. }
  3164. r = dm_pool_get_free_block_count(pool->pmd, &nr_free_blocks_data);
  3165. if (r) {
  3166. DMERR("%s: dm_pool_get_free_block_count returned %d",
  3167. dm_device_name(pool->pool_md), r);
  3168. goto err;
  3169. }
  3170. r = dm_pool_get_data_dev_size(pool->pmd, &nr_blocks_data);
  3171. if (r) {
  3172. DMERR("%s: dm_pool_get_data_dev_size returned %d",
  3173. dm_device_name(pool->pool_md), r);
  3174. goto err;
  3175. }
  3176. r = dm_pool_get_metadata_snap(pool->pmd, &held_root);
  3177. if (r) {
  3178. DMERR("%s: dm_pool_get_metadata_snap returned %d",
  3179. dm_device_name(pool->pool_md), r);
  3180. goto err;
  3181. }
  3182. DMEMIT("%llu %llu/%llu %llu/%llu ",
  3183. (unsigned long long)transaction_id,
  3184. (unsigned long long)(nr_blocks_metadata - nr_free_blocks_metadata),
  3185. (unsigned long long)nr_blocks_metadata,
  3186. (unsigned long long)(nr_blocks_data - nr_free_blocks_data),
  3187. (unsigned long long)nr_blocks_data);
  3188. if (held_root)
  3189. DMEMIT("%llu ", held_root);
  3190. else
  3191. DMEMIT("- ");
  3192. if (pool->pf.mode == PM_OUT_OF_DATA_SPACE)
  3193. DMEMIT("out_of_data_space ");
  3194. else if (pool->pf.mode == PM_READ_ONLY)
  3195. DMEMIT("ro ");
  3196. else
  3197. DMEMIT("rw ");
  3198. if (!pool->pf.discard_enabled)
  3199. DMEMIT("ignore_discard ");
  3200. else if (pool->pf.discard_passdown)
  3201. DMEMIT("discard_passdown ");
  3202. else
  3203. DMEMIT("no_discard_passdown ");
  3204. if (pool->pf.error_if_no_space)
  3205. DMEMIT("error_if_no_space ");
  3206. else
  3207. DMEMIT("queue_if_no_space ");
  3208. if (dm_pool_metadata_needs_check(pool->pmd))
  3209. DMEMIT("needs_check ");
  3210. else
  3211. DMEMIT("- ");
  3212. break;
  3213. case STATUSTYPE_TABLE:
  3214. DMEMIT("%s %s %lu %llu ",
  3215. format_dev_t(buf, pt->metadata_dev->bdev->bd_dev),
  3216. format_dev_t(buf2, pt->data_dev->bdev->bd_dev),
  3217. (unsigned long)pool->sectors_per_block,
  3218. (unsigned long long)pt->low_water_blocks);
  3219. emit_flags(&pt->requested_pf, result, sz, maxlen);
  3220. break;
  3221. }
  3222. return;
  3223. err:
  3224. DMEMIT("Error");
  3225. }
  3226. static int pool_iterate_devices(struct dm_target *ti,
  3227. iterate_devices_callout_fn fn, void *data)
  3228. {
  3229. struct pool_c *pt = ti->private;
  3230. return fn(ti, pt->data_dev, 0, ti->len, data);
  3231. }
  3232. static void pool_io_hints(struct dm_target *ti, struct queue_limits *limits)
  3233. {
  3234. struct pool_c *pt = ti->private;
  3235. struct pool *pool = pt->pool;
  3236. sector_t io_opt_sectors = limits->io_opt >> SECTOR_SHIFT;
  3237. /*
  3238. * If max_sectors is smaller than pool->sectors_per_block adjust it
  3239. * to the highest possible power-of-2 factor of pool->sectors_per_block.
  3240. * This is especially beneficial when the pool's data device is a RAID
  3241. * device that has a full stripe width that matches pool->sectors_per_block
  3242. * -- because even though partial RAID stripe-sized IOs will be issued to a
  3243. * single RAID stripe; when aggregated they will end on a full RAID stripe
  3244. * boundary.. which avoids additional partial RAID stripe writes cascading
  3245. */
  3246. if (limits->max_sectors < pool->sectors_per_block) {
  3247. while (!is_factor(pool->sectors_per_block, limits->max_sectors)) {
  3248. if ((limits->max_sectors & (limits->max_sectors - 1)) == 0)
  3249. limits->max_sectors--;
  3250. limits->max_sectors = rounddown_pow_of_two(limits->max_sectors);
  3251. }
  3252. }
  3253. /*
  3254. * If the system-determined stacked limits are compatible with the
  3255. * pool's blocksize (io_opt is a factor) do not override them.
  3256. */
  3257. if (io_opt_sectors < pool->sectors_per_block ||
  3258. !is_factor(io_opt_sectors, pool->sectors_per_block)) {
  3259. if (is_factor(pool->sectors_per_block, limits->max_sectors))
  3260. blk_limits_io_min(limits, limits->max_sectors << SECTOR_SHIFT);
  3261. else
  3262. blk_limits_io_min(limits, pool->sectors_per_block << SECTOR_SHIFT);
  3263. blk_limits_io_opt(limits, pool->sectors_per_block << SECTOR_SHIFT);
  3264. }
  3265. /*
  3266. * pt->adjusted_pf is a staging area for the actual features to use.
  3267. * They get transferred to the live pool in bind_control_target()
  3268. * called from pool_preresume().
  3269. */
  3270. if (!pt->adjusted_pf.discard_enabled) {
  3271. /*
  3272. * Must explicitly disallow stacking discard limits otherwise the
  3273. * block layer will stack them if pool's data device has support.
  3274. * QUEUE_FLAG_DISCARD wouldn't be set but there is no way for the
  3275. * user to see that, so make sure to set all discard limits to 0.
  3276. */
  3277. limits->discard_granularity = 0;
  3278. return;
  3279. }
  3280. disable_passdown_if_not_supported(pt);
  3281. /*
  3282. * The pool uses the same discard limits as the underlying data
  3283. * device. DM core has already set this up.
  3284. */
  3285. }
  3286. static struct target_type pool_target = {
  3287. .name = "thin-pool",
  3288. .features = DM_TARGET_SINGLETON | DM_TARGET_ALWAYS_WRITEABLE |
  3289. DM_TARGET_IMMUTABLE,
  3290. .version = {1, 19, 0},
  3291. .module = THIS_MODULE,
  3292. .ctr = pool_ctr,
  3293. .dtr = pool_dtr,
  3294. .map = pool_map,
  3295. .presuspend = pool_presuspend,
  3296. .presuspend_undo = pool_presuspend_undo,
  3297. .postsuspend = pool_postsuspend,
  3298. .preresume = pool_preresume,
  3299. .resume = pool_resume,
  3300. .message = pool_message,
  3301. .status = pool_status,
  3302. .iterate_devices = pool_iterate_devices,
  3303. .io_hints = pool_io_hints,
  3304. };
  3305. /*----------------------------------------------------------------
  3306. * Thin target methods
  3307. *--------------------------------------------------------------*/
  3308. static void thin_get(struct thin_c *tc)
  3309. {
  3310. atomic_inc(&tc->refcount);
  3311. }
  3312. static void thin_put(struct thin_c *tc)
  3313. {
  3314. if (atomic_dec_and_test(&tc->refcount))
  3315. complete(&tc->can_destroy);
  3316. }
  3317. static void thin_dtr(struct dm_target *ti)
  3318. {
  3319. struct thin_c *tc = ti->private;
  3320. unsigned long flags;
  3321. spin_lock_irqsave(&tc->pool->lock, flags);
  3322. list_del_rcu(&tc->list);
  3323. spin_unlock_irqrestore(&tc->pool->lock, flags);
  3324. synchronize_rcu();
  3325. thin_put(tc);
  3326. wait_for_completion(&tc->can_destroy);
  3327. mutex_lock(&dm_thin_pool_table.mutex);
  3328. __pool_dec(tc->pool);
  3329. dm_pool_close_thin_device(tc->td);
  3330. dm_put_device(ti, tc->pool_dev);
  3331. if (tc->origin_dev)
  3332. dm_put_device(ti, tc->origin_dev);
  3333. kfree(tc);
  3334. mutex_unlock(&dm_thin_pool_table.mutex);
  3335. }
  3336. /*
  3337. * Thin target parameters:
  3338. *
  3339. * <pool_dev> <dev_id> [origin_dev]
  3340. *
  3341. * pool_dev: the path to the pool (eg, /dev/mapper/my_pool)
  3342. * dev_id: the internal device identifier
  3343. * origin_dev: a device external to the pool that should act as the origin
  3344. *
  3345. * If the pool device has discards disabled, they get disabled for the thin
  3346. * device as well.
  3347. */
  3348. static int thin_ctr(struct dm_target *ti, unsigned argc, char **argv)
  3349. {
  3350. int r;
  3351. struct thin_c *tc;
  3352. struct dm_dev *pool_dev, *origin_dev;
  3353. struct mapped_device *pool_md;
  3354. unsigned long flags;
  3355. mutex_lock(&dm_thin_pool_table.mutex);
  3356. if (argc != 2 && argc != 3) {
  3357. ti->error = "Invalid argument count";
  3358. r = -EINVAL;
  3359. goto out_unlock;
  3360. }
  3361. tc = ti->private = kzalloc(sizeof(*tc), GFP_KERNEL);
  3362. if (!tc) {
  3363. ti->error = "Out of memory";
  3364. r = -ENOMEM;
  3365. goto out_unlock;
  3366. }
  3367. tc->thin_md = dm_table_get_md(ti->table);
  3368. spin_lock_init(&tc->lock);
  3369. INIT_LIST_HEAD(&tc->deferred_cells);
  3370. bio_list_init(&tc->deferred_bio_list);
  3371. bio_list_init(&tc->retry_on_resume_list);
  3372. tc->sort_bio_list = RB_ROOT;
  3373. if (argc == 3) {
  3374. r = dm_get_device(ti, argv[2], FMODE_READ, &origin_dev);
  3375. if (r) {
  3376. ti->error = "Error opening origin device";
  3377. goto bad_origin_dev;
  3378. }
  3379. tc->origin_dev = origin_dev;
  3380. }
  3381. r = dm_get_device(ti, argv[0], dm_table_get_mode(ti->table), &pool_dev);
  3382. if (r) {
  3383. ti->error = "Error opening pool device";
  3384. goto bad_pool_dev;
  3385. }
  3386. tc->pool_dev = pool_dev;
  3387. if (read_dev_id(argv[1], (unsigned long long *)&tc->dev_id, 0)) {
  3388. ti->error = "Invalid device id";
  3389. r = -EINVAL;
  3390. goto bad_common;
  3391. }
  3392. pool_md = dm_get_md(tc->pool_dev->bdev->bd_dev);
  3393. if (!pool_md) {
  3394. ti->error = "Couldn't get pool mapped device";
  3395. r = -EINVAL;
  3396. goto bad_common;
  3397. }
  3398. tc->pool = __pool_table_lookup(pool_md);
  3399. if (!tc->pool) {
  3400. ti->error = "Couldn't find pool object";
  3401. r = -EINVAL;
  3402. goto bad_pool_lookup;
  3403. }
  3404. __pool_inc(tc->pool);
  3405. if (get_pool_mode(tc->pool) == PM_FAIL) {
  3406. ti->error = "Couldn't open thin device, Pool is in fail mode";
  3407. r = -EINVAL;
  3408. goto bad_pool;
  3409. }
  3410. r = dm_pool_open_thin_device(tc->pool->pmd, tc->dev_id, &tc->td);
  3411. if (r) {
  3412. ti->error = "Couldn't open thin internal device";
  3413. goto bad_pool;
  3414. }
  3415. r = dm_set_target_max_io_len(ti, tc->pool->sectors_per_block);
  3416. if (r)
  3417. goto bad;
  3418. ti->num_flush_bios = 1;
  3419. ti->flush_supported = true;
  3420. ti->per_io_data_size = sizeof(struct dm_thin_endio_hook);
  3421. /* In case the pool supports discards, pass them on. */
  3422. ti->discard_zeroes_data_unsupported = true;
  3423. if (tc->pool->pf.discard_enabled) {
  3424. ti->discards_supported = true;
  3425. ti->num_discard_bios = 1;
  3426. ti->split_discard_bios = false;
  3427. }
  3428. mutex_unlock(&dm_thin_pool_table.mutex);
  3429. spin_lock_irqsave(&tc->pool->lock, flags);
  3430. if (tc->pool->suspended) {
  3431. spin_unlock_irqrestore(&tc->pool->lock, flags);
  3432. mutex_lock(&dm_thin_pool_table.mutex); /* reacquire for __pool_dec */
  3433. ti->error = "Unable to activate thin device while pool is suspended";
  3434. r = -EINVAL;
  3435. goto bad;
  3436. }
  3437. atomic_set(&tc->refcount, 1);
  3438. init_completion(&tc->can_destroy);
  3439. list_add_tail_rcu(&tc->list, &tc->pool->active_thins);
  3440. spin_unlock_irqrestore(&tc->pool->lock, flags);
  3441. /*
  3442. * This synchronize_rcu() call is needed here otherwise we risk a
  3443. * wake_worker() call finding no bios to process (because the newly
  3444. * added tc isn't yet visible). So this reduces latency since we
  3445. * aren't then dependent on the periodic commit to wake_worker().
  3446. */
  3447. synchronize_rcu();
  3448. dm_put(pool_md);
  3449. return 0;
  3450. bad:
  3451. dm_pool_close_thin_device(tc->td);
  3452. bad_pool:
  3453. __pool_dec(tc->pool);
  3454. bad_pool_lookup:
  3455. dm_put(pool_md);
  3456. bad_common:
  3457. dm_put_device(ti, tc->pool_dev);
  3458. bad_pool_dev:
  3459. if (tc->origin_dev)
  3460. dm_put_device(ti, tc->origin_dev);
  3461. bad_origin_dev:
  3462. kfree(tc);
  3463. out_unlock:
  3464. mutex_unlock(&dm_thin_pool_table.mutex);
  3465. return r;
  3466. }
  3467. static int thin_map(struct dm_target *ti, struct bio *bio)
  3468. {
  3469. bio->bi_iter.bi_sector = dm_target_offset(ti, bio->bi_iter.bi_sector);
  3470. return thin_bio_map(ti, bio);
  3471. }
  3472. static int thin_endio(struct dm_target *ti, struct bio *bio, int err)
  3473. {
  3474. unsigned long flags;
  3475. struct dm_thin_endio_hook *h = dm_per_bio_data(bio, sizeof(struct dm_thin_endio_hook));
  3476. struct list_head work;
  3477. struct dm_thin_new_mapping *m, *tmp;
  3478. struct pool *pool = h->tc->pool;
  3479. if (h->shared_read_entry) {
  3480. INIT_LIST_HEAD(&work);
  3481. dm_deferred_entry_dec(h->shared_read_entry, &work);
  3482. spin_lock_irqsave(&pool->lock, flags);
  3483. list_for_each_entry_safe(m, tmp, &work, list) {
  3484. list_del(&m->list);
  3485. __complete_mapping_preparation(m);
  3486. }
  3487. spin_unlock_irqrestore(&pool->lock, flags);
  3488. }
  3489. if (h->all_io_entry) {
  3490. INIT_LIST_HEAD(&work);
  3491. dm_deferred_entry_dec(h->all_io_entry, &work);
  3492. if (!list_empty(&work)) {
  3493. spin_lock_irqsave(&pool->lock, flags);
  3494. list_for_each_entry_safe(m, tmp, &work, list)
  3495. list_add_tail(&m->list, &pool->prepared_discards);
  3496. spin_unlock_irqrestore(&pool->lock, flags);
  3497. wake_worker(pool);
  3498. }
  3499. }
  3500. if (h->cell)
  3501. cell_defer_no_holder(h->tc, h->cell);
  3502. return 0;
  3503. }
  3504. static void thin_presuspend(struct dm_target *ti)
  3505. {
  3506. struct thin_c *tc = ti->private;
  3507. if (dm_noflush_suspending(ti))
  3508. noflush_work(tc, do_noflush_start);
  3509. }
  3510. static void thin_postsuspend(struct dm_target *ti)
  3511. {
  3512. struct thin_c *tc = ti->private;
  3513. /*
  3514. * The dm_noflush_suspending flag has been cleared by now, so
  3515. * unfortunately we must always run this.
  3516. */
  3517. noflush_work(tc, do_noflush_stop);
  3518. }
  3519. static int thin_preresume(struct dm_target *ti)
  3520. {
  3521. struct thin_c *tc = ti->private;
  3522. if (tc->origin_dev)
  3523. tc->origin_size = get_dev_size(tc->origin_dev->bdev);
  3524. return 0;
  3525. }
  3526. /*
  3527. * <nr mapped sectors> <highest mapped sector>
  3528. */
  3529. static void thin_status(struct dm_target *ti, status_type_t type,
  3530. unsigned status_flags, char *result, unsigned maxlen)
  3531. {
  3532. int r;
  3533. ssize_t sz = 0;
  3534. dm_block_t mapped, highest;
  3535. char buf[BDEVNAME_SIZE];
  3536. struct thin_c *tc = ti->private;
  3537. if (get_pool_mode(tc->pool) == PM_FAIL) {
  3538. DMEMIT("Fail");
  3539. return;
  3540. }
  3541. if (!tc->td)
  3542. DMEMIT("-");
  3543. else {
  3544. switch (type) {
  3545. case STATUSTYPE_INFO:
  3546. r = dm_thin_get_mapped_count(tc->td, &mapped);
  3547. if (r) {
  3548. DMERR("dm_thin_get_mapped_count returned %d", r);
  3549. goto err;
  3550. }
  3551. r = dm_thin_get_highest_mapped_block(tc->td, &highest);
  3552. if (r < 0) {
  3553. DMERR("dm_thin_get_highest_mapped_block returned %d", r);
  3554. goto err;
  3555. }
  3556. DMEMIT("%llu ", mapped * tc->pool->sectors_per_block);
  3557. if (r)
  3558. DMEMIT("%llu", ((highest + 1) *
  3559. tc->pool->sectors_per_block) - 1);
  3560. else
  3561. DMEMIT("-");
  3562. break;
  3563. case STATUSTYPE_TABLE:
  3564. DMEMIT("%s %lu",
  3565. format_dev_t(buf, tc->pool_dev->bdev->bd_dev),
  3566. (unsigned long) tc->dev_id);
  3567. if (tc->origin_dev)
  3568. DMEMIT(" %s", format_dev_t(buf, tc->origin_dev->bdev->bd_dev));
  3569. break;
  3570. }
  3571. }
  3572. return;
  3573. err:
  3574. DMEMIT("Error");
  3575. }
  3576. static int thin_iterate_devices(struct dm_target *ti,
  3577. iterate_devices_callout_fn fn, void *data)
  3578. {
  3579. sector_t blocks;
  3580. struct thin_c *tc = ti->private;
  3581. struct pool *pool = tc->pool;
  3582. /*
  3583. * We can't call dm_pool_get_data_dev_size() since that blocks. So
  3584. * we follow a more convoluted path through to the pool's target.
  3585. */
  3586. if (!pool->ti)
  3587. return 0; /* nothing is bound */
  3588. blocks = pool->ti->len;
  3589. (void) sector_div(blocks, pool->sectors_per_block);
  3590. if (blocks)
  3591. return fn(ti, tc->pool_dev, 0, pool->sectors_per_block * blocks, data);
  3592. return 0;
  3593. }
  3594. static void thin_io_hints(struct dm_target *ti, struct queue_limits *limits)
  3595. {
  3596. struct thin_c *tc = ti->private;
  3597. struct pool *pool = tc->pool;
  3598. if (!pool->pf.discard_enabled)
  3599. return;
  3600. limits->discard_granularity = pool->sectors_per_block << SECTOR_SHIFT;
  3601. limits->max_discard_sectors = 2048 * 1024 * 16; /* 16G */
  3602. }
  3603. static struct target_type thin_target = {
  3604. .name = "thin",
  3605. .version = {1, 19, 0},
  3606. .module = THIS_MODULE,
  3607. .ctr = thin_ctr,
  3608. .dtr = thin_dtr,
  3609. .map = thin_map,
  3610. .end_io = thin_endio,
  3611. .preresume = thin_preresume,
  3612. .presuspend = thin_presuspend,
  3613. .postsuspend = thin_postsuspend,
  3614. .status = thin_status,
  3615. .iterate_devices = thin_iterate_devices,
  3616. .io_hints = thin_io_hints,
  3617. };
  3618. /*----------------------------------------------------------------*/
  3619. static int __init dm_thin_init(void)
  3620. {
  3621. int r;
  3622. pool_table_init();
  3623. r = dm_register_target(&thin_target);
  3624. if (r)
  3625. return r;
  3626. r = dm_register_target(&pool_target);
  3627. if (r)
  3628. goto bad_pool_target;
  3629. r = -ENOMEM;
  3630. _new_mapping_cache = KMEM_CACHE(dm_thin_new_mapping, 0);
  3631. if (!_new_mapping_cache)
  3632. goto bad_new_mapping_cache;
  3633. return 0;
  3634. bad_new_mapping_cache:
  3635. dm_unregister_target(&pool_target);
  3636. bad_pool_target:
  3637. dm_unregister_target(&thin_target);
  3638. return r;
  3639. }
  3640. static void dm_thin_exit(void)
  3641. {
  3642. dm_unregister_target(&thin_target);
  3643. dm_unregister_target(&pool_target);
  3644. kmem_cache_destroy(_new_mapping_cache);
  3645. }
  3646. module_init(dm_thin_init);
  3647. module_exit(dm_thin_exit);
  3648. module_param_named(no_space_timeout, no_space_timeout_secs, uint, S_IRUGO | S_IWUSR);
  3649. MODULE_PARM_DESC(no_space_timeout, "Out of data space queue IO timeout in seconds");
  3650. MODULE_DESCRIPTION(DM_NAME " thin provisioning target");
  3651. MODULE_AUTHOR("Joe Thornber <dm-devel@redhat.com>");
  3652. MODULE_LICENSE("GPL");