dm-thin-metadata.c 35 KB

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  1. /*
  2. * Copyright (C) 2011 Red Hat, Inc.
  3. *
  4. * This file is released under the GPL.
  5. */
  6. #include "dm-thin-metadata.h"
  7. #include "persistent-data/dm-btree.h"
  8. #include "persistent-data/dm-space-map.h"
  9. #include "persistent-data/dm-space-map-disk.h"
  10. #include "persistent-data/dm-transaction-manager.h"
  11. #include <linux/list.h>
  12. #include <linux/device-mapper.h>
  13. #include <linux/workqueue.h>
  14. /*--------------------------------------------------------------------------
  15. * As far as the metadata goes, there is:
  16. *
  17. * - A superblock in block zero, taking up fewer than 512 bytes for
  18. * atomic writes.
  19. *
  20. * - A space map managing the metadata blocks.
  21. *
  22. * - A space map managing the data blocks.
  23. *
  24. * - A btree mapping our internal thin dev ids onto struct disk_device_details.
  25. *
  26. * - A hierarchical btree, with 2 levels which effectively maps (thin
  27. * dev id, virtual block) -> block_time. Block time is a 64-bit
  28. * field holding the time in the low 24 bits, and block in the top 48
  29. * bits.
  30. *
  31. * BTrees consist solely of btree_nodes, that fill a block. Some are
  32. * internal nodes, as such their values are a __le64 pointing to other
  33. * nodes. Leaf nodes can store data of any reasonable size (ie. much
  34. * smaller than the block size). The nodes consist of the header,
  35. * followed by an array of keys, followed by an array of values. We have
  36. * to binary search on the keys so they're all held together to help the
  37. * cpu cache.
  38. *
  39. * Space maps have 2 btrees:
  40. *
  41. * - One maps a uint64_t onto a struct index_entry. Which points to a
  42. * bitmap block, and has some details about how many free entries there
  43. * are etc.
  44. *
  45. * - The bitmap blocks have a header (for the checksum). Then the rest
  46. * of the block is pairs of bits. With the meaning being:
  47. *
  48. * 0 - ref count is 0
  49. * 1 - ref count is 1
  50. * 2 - ref count is 2
  51. * 3 - ref count is higher than 2
  52. *
  53. * - If the count is higher than 2 then the ref count is entered in a
  54. * second btree that directly maps the block_address to a uint32_t ref
  55. * count.
  56. *
  57. * The space map metadata variant doesn't have a bitmaps btree. Instead
  58. * it has one single blocks worth of index_entries. This avoids
  59. * recursive issues with the bitmap btree needing to allocate space in
  60. * order to insert. With a small data block size such as 64k the
  61. * metadata support data devices that are hundreds of terrabytes.
  62. *
  63. * The space maps allocate space linearly from front to back. Space that
  64. * is freed in a transaction is never recycled within that transaction.
  65. * To try and avoid fragmenting _free_ space the allocator always goes
  66. * back and fills in gaps.
  67. *
  68. * All metadata io is in THIN_METADATA_BLOCK_SIZE sized/aligned chunks
  69. * from the block manager.
  70. *--------------------------------------------------------------------------*/
  71. #define DM_MSG_PREFIX "thin metadata"
  72. #define THIN_SUPERBLOCK_MAGIC 27022010
  73. #define THIN_SUPERBLOCK_LOCATION 0
  74. #define THIN_VERSION 1
  75. #define THIN_METADATA_CACHE_SIZE 64
  76. #define SECTOR_TO_BLOCK_SHIFT 3
  77. /*
  78. * 3 for btree insert +
  79. * 2 for btree lookup used within space map
  80. */
  81. #define THIN_MAX_CONCURRENT_LOCKS 5
  82. /* This should be plenty */
  83. #define SPACE_MAP_ROOT_SIZE 128
  84. /*
  85. * Little endian on-disk superblock and device details.
  86. */
  87. struct thin_disk_superblock {
  88. __le32 csum; /* Checksum of superblock except for this field. */
  89. __le32 flags;
  90. __le64 blocknr; /* This block number, dm_block_t. */
  91. __u8 uuid[16];
  92. __le64 magic;
  93. __le32 version;
  94. __le32 time;
  95. __le64 trans_id;
  96. /*
  97. * Root held by userspace transactions.
  98. */
  99. __le64 held_root;
  100. __u8 data_space_map_root[SPACE_MAP_ROOT_SIZE];
  101. __u8 metadata_space_map_root[SPACE_MAP_ROOT_SIZE];
  102. /*
  103. * 2-level btree mapping (dev_id, (dev block, time)) -> data block
  104. */
  105. __le64 data_mapping_root;
  106. /*
  107. * Device detail root mapping dev_id -> device_details
  108. */
  109. __le64 device_details_root;
  110. __le32 data_block_size; /* In 512-byte sectors. */
  111. __le32 metadata_block_size; /* In 512-byte sectors. */
  112. __le64 metadata_nr_blocks;
  113. __le32 compat_flags;
  114. __le32 compat_ro_flags;
  115. __le32 incompat_flags;
  116. } __packed;
  117. struct disk_device_details {
  118. __le64 mapped_blocks;
  119. __le64 transaction_id; /* When created. */
  120. __le32 creation_time;
  121. __le32 snapshotted_time;
  122. } __packed;
  123. struct dm_pool_metadata {
  124. struct hlist_node hash;
  125. struct block_device *bdev;
  126. struct dm_block_manager *bm;
  127. struct dm_space_map *metadata_sm;
  128. struct dm_space_map *data_sm;
  129. struct dm_transaction_manager *tm;
  130. struct dm_transaction_manager *nb_tm;
  131. /*
  132. * Two-level btree.
  133. * First level holds thin_dev_t.
  134. * Second level holds mappings.
  135. */
  136. struct dm_btree_info info;
  137. /*
  138. * Non-blocking version of the above.
  139. */
  140. struct dm_btree_info nb_info;
  141. /*
  142. * Just the top level for deleting whole devices.
  143. */
  144. struct dm_btree_info tl_info;
  145. /*
  146. * Just the bottom level for creating new devices.
  147. */
  148. struct dm_btree_info bl_info;
  149. /*
  150. * Describes the device details btree.
  151. */
  152. struct dm_btree_info details_info;
  153. struct rw_semaphore root_lock;
  154. uint32_t time;
  155. dm_block_t root;
  156. dm_block_t details_root;
  157. struct list_head thin_devices;
  158. uint64_t trans_id;
  159. unsigned long flags;
  160. sector_t data_block_size;
  161. };
  162. struct dm_thin_device {
  163. struct list_head list;
  164. struct dm_pool_metadata *pmd;
  165. dm_thin_id id;
  166. int open_count;
  167. int changed;
  168. uint64_t mapped_blocks;
  169. uint64_t transaction_id;
  170. uint32_t creation_time;
  171. uint32_t snapshotted_time;
  172. };
  173. /*----------------------------------------------------------------
  174. * superblock validator
  175. *--------------------------------------------------------------*/
  176. #define SUPERBLOCK_CSUM_XOR 160774
  177. static void sb_prepare_for_write(struct dm_block_validator *v,
  178. struct dm_block *b,
  179. size_t block_size)
  180. {
  181. struct thin_disk_superblock *disk_super = dm_block_data(b);
  182. disk_super->blocknr = cpu_to_le64(dm_block_location(b));
  183. disk_super->csum = cpu_to_le32(dm_bm_checksum(&disk_super->flags,
  184. block_size - sizeof(__le32),
  185. SUPERBLOCK_CSUM_XOR));
  186. }
  187. static int sb_check(struct dm_block_validator *v,
  188. struct dm_block *b,
  189. size_t block_size)
  190. {
  191. struct thin_disk_superblock *disk_super = dm_block_data(b);
  192. __le32 csum_le;
  193. if (dm_block_location(b) != le64_to_cpu(disk_super->blocknr)) {
  194. DMERR("sb_check failed: blocknr %llu: "
  195. "wanted %llu", le64_to_cpu(disk_super->blocknr),
  196. (unsigned long long)dm_block_location(b));
  197. return -ENOTBLK;
  198. }
  199. if (le64_to_cpu(disk_super->magic) != THIN_SUPERBLOCK_MAGIC) {
  200. DMERR("sb_check failed: magic %llu: "
  201. "wanted %llu", le64_to_cpu(disk_super->magic),
  202. (unsigned long long)THIN_SUPERBLOCK_MAGIC);
  203. return -EILSEQ;
  204. }
  205. csum_le = cpu_to_le32(dm_bm_checksum(&disk_super->flags,
  206. block_size - sizeof(__le32),
  207. SUPERBLOCK_CSUM_XOR));
  208. if (csum_le != disk_super->csum) {
  209. DMERR("sb_check failed: csum %u: wanted %u",
  210. le32_to_cpu(csum_le), le32_to_cpu(disk_super->csum));
  211. return -EILSEQ;
  212. }
  213. return 0;
  214. }
  215. static struct dm_block_validator sb_validator = {
  216. .name = "superblock",
  217. .prepare_for_write = sb_prepare_for_write,
  218. .check = sb_check
  219. };
  220. /*----------------------------------------------------------------
  221. * Methods for the btree value types
  222. *--------------------------------------------------------------*/
  223. static uint64_t pack_block_time(dm_block_t b, uint32_t t)
  224. {
  225. return (b << 24) | t;
  226. }
  227. static void unpack_block_time(uint64_t v, dm_block_t *b, uint32_t *t)
  228. {
  229. *b = v >> 24;
  230. *t = v & ((1 << 24) - 1);
  231. }
  232. static void data_block_inc(void *context, void *value_le)
  233. {
  234. struct dm_space_map *sm = context;
  235. __le64 v_le;
  236. uint64_t b;
  237. uint32_t t;
  238. memcpy(&v_le, value_le, sizeof(v_le));
  239. unpack_block_time(le64_to_cpu(v_le), &b, &t);
  240. dm_sm_inc_block(sm, b);
  241. }
  242. static void data_block_dec(void *context, void *value_le)
  243. {
  244. struct dm_space_map *sm = context;
  245. __le64 v_le;
  246. uint64_t b;
  247. uint32_t t;
  248. memcpy(&v_le, value_le, sizeof(v_le));
  249. unpack_block_time(le64_to_cpu(v_le), &b, &t);
  250. dm_sm_dec_block(sm, b);
  251. }
  252. static int data_block_equal(void *context, void *value1_le, void *value2_le)
  253. {
  254. __le64 v1_le, v2_le;
  255. uint64_t b1, b2;
  256. uint32_t t;
  257. memcpy(&v1_le, value1_le, sizeof(v1_le));
  258. memcpy(&v2_le, value2_le, sizeof(v2_le));
  259. unpack_block_time(le64_to_cpu(v1_le), &b1, &t);
  260. unpack_block_time(le64_to_cpu(v2_le), &b2, &t);
  261. return b1 == b2;
  262. }
  263. static void subtree_inc(void *context, void *value)
  264. {
  265. struct dm_btree_info *info = context;
  266. __le64 root_le;
  267. uint64_t root;
  268. memcpy(&root_le, value, sizeof(root_le));
  269. root = le64_to_cpu(root_le);
  270. dm_tm_inc(info->tm, root);
  271. }
  272. static void subtree_dec(void *context, void *value)
  273. {
  274. struct dm_btree_info *info = context;
  275. __le64 root_le;
  276. uint64_t root;
  277. memcpy(&root_le, value, sizeof(root_le));
  278. root = le64_to_cpu(root_le);
  279. if (dm_btree_del(info, root))
  280. DMERR("btree delete failed\n");
  281. }
  282. static int subtree_equal(void *context, void *value1_le, void *value2_le)
  283. {
  284. __le64 v1_le, v2_le;
  285. memcpy(&v1_le, value1_le, sizeof(v1_le));
  286. memcpy(&v2_le, value2_le, sizeof(v2_le));
  287. return v1_le == v2_le;
  288. }
  289. /*----------------------------------------------------------------*/
  290. static int superblock_lock_zero(struct dm_pool_metadata *pmd,
  291. struct dm_block **sblock)
  292. {
  293. return dm_bm_write_lock_zero(pmd->bm, THIN_SUPERBLOCK_LOCATION,
  294. &sb_validator, sblock);
  295. }
  296. static int superblock_lock(struct dm_pool_metadata *pmd,
  297. struct dm_block **sblock)
  298. {
  299. return dm_bm_write_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION,
  300. &sb_validator, sblock);
  301. }
  302. static int __superblock_all_zeroes(struct dm_block_manager *bm, int *result)
  303. {
  304. int r;
  305. unsigned i;
  306. struct dm_block *b;
  307. __le64 *data_le, zero = cpu_to_le64(0);
  308. unsigned block_size = dm_bm_block_size(bm) / sizeof(__le64);
  309. /*
  310. * We can't use a validator here - it may be all zeroes.
  311. */
  312. r = dm_bm_read_lock(bm, THIN_SUPERBLOCK_LOCATION, NULL, &b);
  313. if (r)
  314. return r;
  315. data_le = dm_block_data(b);
  316. *result = 1;
  317. for (i = 0; i < block_size; i++) {
  318. if (data_le[i] != zero) {
  319. *result = 0;
  320. break;
  321. }
  322. }
  323. return dm_bm_unlock(b);
  324. }
  325. static void __setup_btree_details(struct dm_pool_metadata *pmd)
  326. {
  327. pmd->info.tm = pmd->tm;
  328. pmd->info.levels = 2;
  329. pmd->info.value_type.context = pmd->data_sm;
  330. pmd->info.value_type.size = sizeof(__le64);
  331. pmd->info.value_type.inc = data_block_inc;
  332. pmd->info.value_type.dec = data_block_dec;
  333. pmd->info.value_type.equal = data_block_equal;
  334. memcpy(&pmd->nb_info, &pmd->info, sizeof(pmd->nb_info));
  335. pmd->nb_info.tm = pmd->nb_tm;
  336. pmd->tl_info.tm = pmd->tm;
  337. pmd->tl_info.levels = 1;
  338. pmd->tl_info.value_type.context = &pmd->info;
  339. pmd->tl_info.value_type.size = sizeof(__le64);
  340. pmd->tl_info.value_type.inc = subtree_inc;
  341. pmd->tl_info.value_type.dec = subtree_dec;
  342. pmd->tl_info.value_type.equal = subtree_equal;
  343. pmd->bl_info.tm = pmd->tm;
  344. pmd->bl_info.levels = 1;
  345. pmd->bl_info.value_type.context = pmd->data_sm;
  346. pmd->bl_info.value_type.size = sizeof(__le64);
  347. pmd->bl_info.value_type.inc = data_block_inc;
  348. pmd->bl_info.value_type.dec = data_block_dec;
  349. pmd->bl_info.value_type.equal = data_block_equal;
  350. pmd->details_info.tm = pmd->tm;
  351. pmd->details_info.levels = 1;
  352. pmd->details_info.value_type.context = NULL;
  353. pmd->details_info.value_type.size = sizeof(struct disk_device_details);
  354. pmd->details_info.value_type.inc = NULL;
  355. pmd->details_info.value_type.dec = NULL;
  356. pmd->details_info.value_type.equal = NULL;
  357. }
  358. static int __write_initial_superblock(struct dm_pool_metadata *pmd)
  359. {
  360. int r;
  361. struct dm_block *sblock;
  362. size_t metadata_len, data_len;
  363. struct thin_disk_superblock *disk_super;
  364. sector_t bdev_size = i_size_read(pmd->bdev->bd_inode) >> SECTOR_SHIFT;
  365. if (bdev_size > THIN_METADATA_MAX_SECTORS)
  366. bdev_size = THIN_METADATA_MAX_SECTORS;
  367. r = dm_sm_root_size(pmd->metadata_sm, &metadata_len);
  368. if (r < 0)
  369. return r;
  370. r = dm_sm_root_size(pmd->data_sm, &data_len);
  371. if (r < 0)
  372. return r;
  373. r = dm_sm_commit(pmd->data_sm);
  374. if (r < 0)
  375. return r;
  376. r = dm_tm_pre_commit(pmd->tm);
  377. if (r < 0)
  378. return r;
  379. r = superblock_lock_zero(pmd, &sblock);
  380. if (r)
  381. return r;
  382. disk_super = dm_block_data(sblock);
  383. disk_super->flags = 0;
  384. disk_super->magic = cpu_to_le64(THIN_SUPERBLOCK_MAGIC);
  385. disk_super->version = cpu_to_le32(THIN_VERSION);
  386. disk_super->time = 0;
  387. disk_super->trans_id = 0;
  388. disk_super->held_root = 0;
  389. r = dm_sm_copy_root(pmd->metadata_sm, &disk_super->metadata_space_map_root,
  390. metadata_len);
  391. if (r < 0)
  392. goto bad_locked;
  393. r = dm_sm_copy_root(pmd->data_sm, &disk_super->data_space_map_root,
  394. data_len);
  395. if (r < 0)
  396. goto bad_locked;
  397. disk_super->data_mapping_root = cpu_to_le64(pmd->root);
  398. disk_super->device_details_root = cpu_to_le64(pmd->details_root);
  399. disk_super->metadata_block_size = cpu_to_le32(THIN_METADATA_BLOCK_SIZE >> SECTOR_SHIFT);
  400. disk_super->metadata_nr_blocks = cpu_to_le64(bdev_size >> SECTOR_TO_BLOCK_SHIFT);
  401. disk_super->data_block_size = cpu_to_le32(pmd->data_block_size);
  402. return dm_tm_commit(pmd->tm, sblock);
  403. bad_locked:
  404. dm_bm_unlock(sblock);
  405. return r;
  406. }
  407. static int __open_or_format_metadata(struct dm_pool_metadata *pmd,
  408. struct dm_block_manager *bm,
  409. dm_block_t nr_blocks, int create)
  410. {
  411. int r;
  412. struct dm_space_map *sm, *data_sm;
  413. struct dm_transaction_manager *tm;
  414. struct dm_block *sblock;
  415. if (create) {
  416. r = dm_tm_create_with_sm(bm, THIN_SUPERBLOCK_LOCATION, &tm, &sm);
  417. if (r < 0) {
  418. DMERR("tm_create_with_sm failed");
  419. return r;
  420. }
  421. data_sm = dm_sm_disk_create(tm, nr_blocks);
  422. if (IS_ERR(data_sm)) {
  423. DMERR("sm_disk_create failed");
  424. r = PTR_ERR(data_sm);
  425. goto bad;
  426. }
  427. } else {
  428. struct thin_disk_superblock *disk_super;
  429. r = dm_bm_read_lock(bm, THIN_SUPERBLOCK_LOCATION,
  430. &sb_validator, &sblock);
  431. if (r < 0) {
  432. DMERR("couldn't read superblock");
  433. return r;
  434. }
  435. disk_super = dm_block_data(sblock);
  436. r = dm_tm_open_with_sm(bm, THIN_SUPERBLOCK_LOCATION,
  437. disk_super->metadata_space_map_root,
  438. sizeof(disk_super->metadata_space_map_root),
  439. &tm, &sm);
  440. if (r < 0) {
  441. DMERR("tm_open_with_sm failed");
  442. dm_bm_unlock(sblock);
  443. return r;
  444. }
  445. data_sm = dm_sm_disk_open(tm, disk_super->data_space_map_root,
  446. sizeof(disk_super->data_space_map_root));
  447. if (IS_ERR(data_sm)) {
  448. DMERR("sm_disk_open failed");
  449. dm_bm_unlock(sblock);
  450. r = PTR_ERR(data_sm);
  451. goto bad;
  452. }
  453. dm_bm_unlock(sblock);
  454. }
  455. pmd->bm = bm;
  456. pmd->metadata_sm = sm;
  457. pmd->data_sm = data_sm;
  458. pmd->tm = tm;
  459. pmd->nb_tm = dm_tm_create_non_blocking_clone(tm);
  460. if (!pmd->nb_tm) {
  461. DMERR("could not create clone tm");
  462. r = -ENOMEM;
  463. goto bad_data_sm;
  464. }
  465. __setup_btree_details(pmd);
  466. pmd->root = 0;
  467. pmd->details_root = 0;
  468. pmd->trans_id = 0;
  469. pmd->flags = 0;
  470. if (!create)
  471. return 0;
  472. r = dm_btree_empty(&pmd->info, &pmd->root);
  473. if (r < 0)
  474. goto bad_data_sm;
  475. r = dm_btree_empty(&pmd->details_info, &pmd->details_root);
  476. if (r < 0) {
  477. DMERR("couldn't create devices root");
  478. goto bad_data_sm;
  479. }
  480. r = __write_initial_superblock(pmd);
  481. if (r)
  482. goto bad_data_sm;
  483. return 0;
  484. bad_data_sm:
  485. dm_sm_destroy(data_sm);
  486. bad:
  487. dm_tm_destroy(tm);
  488. dm_sm_destroy(sm);
  489. return r;
  490. }
  491. static int __create_persistent_data_objects(struct dm_pool_metadata *pmd,
  492. dm_block_t nr_blocks, int *create)
  493. {
  494. int r;
  495. pmd->bm = dm_block_manager_create(pmd->bdev, THIN_METADATA_BLOCK_SIZE,
  496. THIN_METADATA_CACHE_SIZE,
  497. THIN_MAX_CONCURRENT_LOCKS);
  498. if (IS_ERR(pmd->bm)) {
  499. DMERR("could not create block manager");
  500. return PTR_ERR(pmd->bm);
  501. }
  502. r = __superblock_all_zeroes(pmd->bm, create);
  503. if (r) {
  504. dm_block_manager_destroy(pmd->bm);
  505. return r;
  506. }
  507. r = __open_or_format_metadata(pmd, pmd->bm, nr_blocks, *create);
  508. if (r)
  509. dm_block_manager_destroy(pmd->bm);
  510. return r;
  511. }
  512. static void __destroy_persistent_data_objects(struct dm_pool_metadata *pmd)
  513. {
  514. dm_sm_destroy(pmd->data_sm);
  515. dm_sm_destroy(pmd->metadata_sm);
  516. dm_tm_destroy(pmd->nb_tm);
  517. dm_tm_destroy(pmd->tm);
  518. dm_block_manager_destroy(pmd->bm);
  519. }
  520. static int __begin_transaction(struct dm_pool_metadata *pmd)
  521. {
  522. int r;
  523. u32 features;
  524. struct thin_disk_superblock *disk_super;
  525. struct dm_block *sblock;
  526. /*
  527. * We re-read the superblock every time. Shouldn't need to do this
  528. * really.
  529. */
  530. r = dm_bm_read_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION,
  531. &sb_validator, &sblock);
  532. if (r)
  533. return r;
  534. disk_super = dm_block_data(sblock);
  535. pmd->time = le32_to_cpu(disk_super->time);
  536. pmd->root = le64_to_cpu(disk_super->data_mapping_root);
  537. pmd->details_root = le64_to_cpu(disk_super->device_details_root);
  538. pmd->trans_id = le64_to_cpu(disk_super->trans_id);
  539. pmd->flags = le32_to_cpu(disk_super->flags);
  540. pmd->data_block_size = le32_to_cpu(disk_super->data_block_size);
  541. features = le32_to_cpu(disk_super->incompat_flags) & ~THIN_FEATURE_INCOMPAT_SUPP;
  542. if (features) {
  543. DMERR("could not access metadata due to "
  544. "unsupported optional features (%lx).",
  545. (unsigned long)features);
  546. r = -EINVAL;
  547. goto out;
  548. }
  549. /*
  550. * Check for read-only metadata to skip the following RDWR checks.
  551. */
  552. if (get_disk_ro(pmd->bdev->bd_disk))
  553. goto out;
  554. features = le32_to_cpu(disk_super->compat_ro_flags) & ~THIN_FEATURE_COMPAT_RO_SUPP;
  555. if (features) {
  556. DMERR("could not access metadata RDWR due to "
  557. "unsupported optional features (%lx).",
  558. (unsigned long)features);
  559. r = -EINVAL;
  560. }
  561. out:
  562. dm_bm_unlock(sblock);
  563. return r;
  564. }
  565. static int __write_changed_details(struct dm_pool_metadata *pmd)
  566. {
  567. int r;
  568. struct dm_thin_device *td, *tmp;
  569. struct disk_device_details details;
  570. uint64_t key;
  571. list_for_each_entry_safe(td, tmp, &pmd->thin_devices, list) {
  572. if (!td->changed)
  573. continue;
  574. key = td->id;
  575. details.mapped_blocks = cpu_to_le64(td->mapped_blocks);
  576. details.transaction_id = cpu_to_le64(td->transaction_id);
  577. details.creation_time = cpu_to_le32(td->creation_time);
  578. details.snapshotted_time = cpu_to_le32(td->snapshotted_time);
  579. __dm_bless_for_disk(&details);
  580. r = dm_btree_insert(&pmd->details_info, pmd->details_root,
  581. &key, &details, &pmd->details_root);
  582. if (r)
  583. return r;
  584. if (td->open_count)
  585. td->changed = 0;
  586. else {
  587. list_del(&td->list);
  588. kfree(td);
  589. }
  590. }
  591. return 0;
  592. }
  593. static int __commit_transaction(struct dm_pool_metadata *pmd)
  594. {
  595. /*
  596. * FIXME: Associated pool should be made read-only on failure.
  597. */
  598. int r;
  599. size_t metadata_len, data_len;
  600. struct thin_disk_superblock *disk_super;
  601. struct dm_block *sblock;
  602. /*
  603. * We need to know if the thin_disk_superblock exceeds a 512-byte sector.
  604. */
  605. BUILD_BUG_ON(sizeof(struct thin_disk_superblock) > 512);
  606. r = __write_changed_details(pmd);
  607. if (r < 0)
  608. return r;
  609. r = dm_sm_commit(pmd->data_sm);
  610. if (r < 0)
  611. return r;
  612. r = dm_tm_pre_commit(pmd->tm);
  613. if (r < 0)
  614. return r;
  615. r = dm_sm_root_size(pmd->metadata_sm, &metadata_len);
  616. if (r < 0)
  617. return r;
  618. r = dm_sm_root_size(pmd->data_sm, &data_len);
  619. if (r < 0)
  620. return r;
  621. r = superblock_lock(pmd, &sblock);
  622. if (r)
  623. return r;
  624. disk_super = dm_block_data(sblock);
  625. disk_super->time = cpu_to_le32(pmd->time);
  626. disk_super->data_mapping_root = cpu_to_le64(pmd->root);
  627. disk_super->device_details_root = cpu_to_le64(pmd->details_root);
  628. disk_super->trans_id = cpu_to_le64(pmd->trans_id);
  629. disk_super->flags = cpu_to_le32(pmd->flags);
  630. r = dm_sm_copy_root(pmd->metadata_sm, &disk_super->metadata_space_map_root,
  631. metadata_len);
  632. if (r < 0)
  633. goto out_locked;
  634. r = dm_sm_copy_root(pmd->data_sm, &disk_super->data_space_map_root,
  635. data_len);
  636. if (r < 0)
  637. goto out_locked;
  638. return dm_tm_commit(pmd->tm, sblock);
  639. out_locked:
  640. dm_bm_unlock(sblock);
  641. return r;
  642. }
  643. struct dm_pool_metadata *dm_pool_metadata_open(struct block_device *bdev,
  644. sector_t data_block_size)
  645. {
  646. int r;
  647. struct dm_pool_metadata *pmd;
  648. int create;
  649. pmd = kmalloc(sizeof(*pmd), GFP_KERNEL);
  650. if (!pmd) {
  651. DMERR("could not allocate metadata struct");
  652. return ERR_PTR(-ENOMEM);
  653. }
  654. init_rwsem(&pmd->root_lock);
  655. pmd->time = 0;
  656. INIT_LIST_HEAD(&pmd->thin_devices);
  657. pmd->bdev = bdev;
  658. pmd->data_block_size = data_block_size;
  659. r = __create_persistent_data_objects(pmd, 0, &create);
  660. if (r) {
  661. kfree(pmd);
  662. return ERR_PTR(r);
  663. }
  664. r = __begin_transaction(pmd);
  665. if (r < 0) {
  666. if (dm_pool_metadata_close(pmd) < 0)
  667. DMWARN("%s: dm_pool_metadata_close() failed.", __func__);
  668. return ERR_PTR(r);
  669. }
  670. return pmd;
  671. }
  672. int dm_pool_metadata_close(struct dm_pool_metadata *pmd)
  673. {
  674. int r;
  675. unsigned open_devices = 0;
  676. struct dm_thin_device *td, *tmp;
  677. down_read(&pmd->root_lock);
  678. list_for_each_entry_safe(td, tmp, &pmd->thin_devices, list) {
  679. if (td->open_count)
  680. open_devices++;
  681. else {
  682. list_del(&td->list);
  683. kfree(td);
  684. }
  685. }
  686. up_read(&pmd->root_lock);
  687. if (open_devices) {
  688. DMERR("attempt to close pmd when %u device(s) are still open",
  689. open_devices);
  690. return -EBUSY;
  691. }
  692. r = __commit_transaction(pmd);
  693. if (r < 0)
  694. DMWARN("%s: __commit_transaction() failed, error = %d",
  695. __func__, r);
  696. __destroy_persistent_data_objects(pmd);
  697. kfree(pmd);
  698. return 0;
  699. }
  700. /*
  701. * __open_device: Returns @td corresponding to device with id @dev,
  702. * creating it if @create is set and incrementing @td->open_count.
  703. * On failure, @td is undefined.
  704. */
  705. static int __open_device(struct dm_pool_metadata *pmd,
  706. dm_thin_id dev, int create,
  707. struct dm_thin_device **td)
  708. {
  709. int r, changed = 0;
  710. struct dm_thin_device *td2;
  711. uint64_t key = dev;
  712. struct disk_device_details details_le;
  713. /*
  714. * If the device is already open, return it.
  715. */
  716. list_for_each_entry(td2, &pmd->thin_devices, list)
  717. if (td2->id == dev) {
  718. /*
  719. * May not create an already-open device.
  720. */
  721. if (create)
  722. return -EEXIST;
  723. td2->open_count++;
  724. *td = td2;
  725. return 0;
  726. }
  727. /*
  728. * Check the device exists.
  729. */
  730. r = dm_btree_lookup(&pmd->details_info, pmd->details_root,
  731. &key, &details_le);
  732. if (r) {
  733. if (r != -ENODATA || !create)
  734. return r;
  735. /*
  736. * Create new device.
  737. */
  738. changed = 1;
  739. details_le.mapped_blocks = 0;
  740. details_le.transaction_id = cpu_to_le64(pmd->trans_id);
  741. details_le.creation_time = cpu_to_le32(pmd->time);
  742. details_le.snapshotted_time = cpu_to_le32(pmd->time);
  743. }
  744. *td = kmalloc(sizeof(**td), GFP_NOIO);
  745. if (!*td)
  746. return -ENOMEM;
  747. (*td)->pmd = pmd;
  748. (*td)->id = dev;
  749. (*td)->open_count = 1;
  750. (*td)->changed = changed;
  751. (*td)->mapped_blocks = le64_to_cpu(details_le.mapped_blocks);
  752. (*td)->transaction_id = le64_to_cpu(details_le.transaction_id);
  753. (*td)->creation_time = le32_to_cpu(details_le.creation_time);
  754. (*td)->snapshotted_time = le32_to_cpu(details_le.snapshotted_time);
  755. list_add(&(*td)->list, &pmd->thin_devices);
  756. return 0;
  757. }
  758. static void __close_device(struct dm_thin_device *td)
  759. {
  760. --td->open_count;
  761. }
  762. static int __create_thin(struct dm_pool_metadata *pmd,
  763. dm_thin_id dev)
  764. {
  765. int r;
  766. dm_block_t dev_root;
  767. uint64_t key = dev;
  768. struct disk_device_details details_le;
  769. struct dm_thin_device *td;
  770. __le64 value;
  771. r = dm_btree_lookup(&pmd->details_info, pmd->details_root,
  772. &key, &details_le);
  773. if (!r)
  774. return -EEXIST;
  775. /*
  776. * Create an empty btree for the mappings.
  777. */
  778. r = dm_btree_empty(&pmd->bl_info, &dev_root);
  779. if (r)
  780. return r;
  781. /*
  782. * Insert it into the main mapping tree.
  783. */
  784. value = cpu_to_le64(dev_root);
  785. __dm_bless_for_disk(&value);
  786. r = dm_btree_insert(&pmd->tl_info, pmd->root, &key, &value, &pmd->root);
  787. if (r) {
  788. dm_btree_del(&pmd->bl_info, dev_root);
  789. return r;
  790. }
  791. r = __open_device(pmd, dev, 1, &td);
  792. if (r) {
  793. dm_btree_remove(&pmd->tl_info, pmd->root, &key, &pmd->root);
  794. dm_btree_del(&pmd->bl_info, dev_root);
  795. return r;
  796. }
  797. __close_device(td);
  798. return r;
  799. }
  800. int dm_pool_create_thin(struct dm_pool_metadata *pmd, dm_thin_id dev)
  801. {
  802. int r;
  803. down_write(&pmd->root_lock);
  804. r = __create_thin(pmd, dev);
  805. up_write(&pmd->root_lock);
  806. return r;
  807. }
  808. static int __set_snapshot_details(struct dm_pool_metadata *pmd,
  809. struct dm_thin_device *snap,
  810. dm_thin_id origin, uint32_t time)
  811. {
  812. int r;
  813. struct dm_thin_device *td;
  814. r = __open_device(pmd, origin, 0, &td);
  815. if (r)
  816. return r;
  817. td->changed = 1;
  818. td->snapshotted_time = time;
  819. snap->mapped_blocks = td->mapped_blocks;
  820. snap->snapshotted_time = time;
  821. __close_device(td);
  822. return 0;
  823. }
  824. static int __create_snap(struct dm_pool_metadata *pmd,
  825. dm_thin_id dev, dm_thin_id origin)
  826. {
  827. int r;
  828. dm_block_t origin_root;
  829. uint64_t key = origin, dev_key = dev;
  830. struct dm_thin_device *td;
  831. struct disk_device_details details_le;
  832. __le64 value;
  833. /* check this device is unused */
  834. r = dm_btree_lookup(&pmd->details_info, pmd->details_root,
  835. &dev_key, &details_le);
  836. if (!r)
  837. return -EEXIST;
  838. /* find the mapping tree for the origin */
  839. r = dm_btree_lookup(&pmd->tl_info, pmd->root, &key, &value);
  840. if (r)
  841. return r;
  842. origin_root = le64_to_cpu(value);
  843. /* clone the origin, an inc will do */
  844. dm_tm_inc(pmd->tm, origin_root);
  845. /* insert into the main mapping tree */
  846. value = cpu_to_le64(origin_root);
  847. __dm_bless_for_disk(&value);
  848. key = dev;
  849. r = dm_btree_insert(&pmd->tl_info, pmd->root, &key, &value, &pmd->root);
  850. if (r) {
  851. dm_tm_dec(pmd->tm, origin_root);
  852. return r;
  853. }
  854. pmd->time++;
  855. r = __open_device(pmd, dev, 1, &td);
  856. if (r)
  857. goto bad;
  858. r = __set_snapshot_details(pmd, td, origin, pmd->time);
  859. __close_device(td);
  860. if (r)
  861. goto bad;
  862. return 0;
  863. bad:
  864. dm_btree_remove(&pmd->tl_info, pmd->root, &key, &pmd->root);
  865. dm_btree_remove(&pmd->details_info, pmd->details_root,
  866. &key, &pmd->details_root);
  867. return r;
  868. }
  869. int dm_pool_create_snap(struct dm_pool_metadata *pmd,
  870. dm_thin_id dev,
  871. dm_thin_id origin)
  872. {
  873. int r;
  874. down_write(&pmd->root_lock);
  875. r = __create_snap(pmd, dev, origin);
  876. up_write(&pmd->root_lock);
  877. return r;
  878. }
  879. static int __delete_device(struct dm_pool_metadata *pmd, dm_thin_id dev)
  880. {
  881. int r;
  882. uint64_t key = dev;
  883. struct dm_thin_device *td;
  884. /* TODO: failure should mark the transaction invalid */
  885. r = __open_device(pmd, dev, 0, &td);
  886. if (r)
  887. return r;
  888. if (td->open_count > 1) {
  889. __close_device(td);
  890. return -EBUSY;
  891. }
  892. list_del(&td->list);
  893. kfree(td);
  894. r = dm_btree_remove(&pmd->details_info, pmd->details_root,
  895. &key, &pmd->details_root);
  896. if (r)
  897. return r;
  898. r = dm_btree_remove(&pmd->tl_info, pmd->root, &key, &pmd->root);
  899. if (r)
  900. return r;
  901. return 0;
  902. }
  903. int dm_pool_delete_thin_device(struct dm_pool_metadata *pmd,
  904. dm_thin_id dev)
  905. {
  906. int r;
  907. down_write(&pmd->root_lock);
  908. r = __delete_device(pmd, dev);
  909. up_write(&pmd->root_lock);
  910. return r;
  911. }
  912. int dm_pool_set_metadata_transaction_id(struct dm_pool_metadata *pmd,
  913. uint64_t current_id,
  914. uint64_t new_id)
  915. {
  916. down_write(&pmd->root_lock);
  917. if (pmd->trans_id != current_id) {
  918. up_write(&pmd->root_lock);
  919. DMERR("mismatched transaction id");
  920. return -EINVAL;
  921. }
  922. pmd->trans_id = new_id;
  923. up_write(&pmd->root_lock);
  924. return 0;
  925. }
  926. int dm_pool_get_metadata_transaction_id(struct dm_pool_metadata *pmd,
  927. uint64_t *result)
  928. {
  929. down_read(&pmd->root_lock);
  930. *result = pmd->trans_id;
  931. up_read(&pmd->root_lock);
  932. return 0;
  933. }
  934. static int __reserve_metadata_snap(struct dm_pool_metadata *pmd)
  935. {
  936. int r, inc;
  937. struct thin_disk_superblock *disk_super;
  938. struct dm_block *copy, *sblock;
  939. dm_block_t held_root;
  940. /*
  941. * Copy the superblock.
  942. */
  943. dm_sm_inc_block(pmd->metadata_sm, THIN_SUPERBLOCK_LOCATION);
  944. r = dm_tm_shadow_block(pmd->tm, THIN_SUPERBLOCK_LOCATION,
  945. &sb_validator, &copy, &inc);
  946. if (r)
  947. return r;
  948. BUG_ON(!inc);
  949. held_root = dm_block_location(copy);
  950. disk_super = dm_block_data(copy);
  951. if (le64_to_cpu(disk_super->held_root)) {
  952. DMWARN("Pool metadata snapshot already exists: release this before taking another.");
  953. dm_tm_dec(pmd->tm, held_root);
  954. dm_tm_unlock(pmd->tm, copy);
  955. return -EBUSY;
  956. }
  957. /*
  958. * Wipe the spacemap since we're not publishing this.
  959. */
  960. memset(&disk_super->data_space_map_root, 0,
  961. sizeof(disk_super->data_space_map_root));
  962. memset(&disk_super->metadata_space_map_root, 0,
  963. sizeof(disk_super->metadata_space_map_root));
  964. /*
  965. * Increment the data structures that need to be preserved.
  966. */
  967. dm_tm_inc(pmd->tm, le64_to_cpu(disk_super->data_mapping_root));
  968. dm_tm_inc(pmd->tm, le64_to_cpu(disk_super->device_details_root));
  969. dm_tm_unlock(pmd->tm, copy);
  970. /*
  971. * Write the held root into the superblock.
  972. */
  973. r = superblock_lock(pmd, &sblock);
  974. if (r) {
  975. dm_tm_dec(pmd->tm, held_root);
  976. return r;
  977. }
  978. disk_super = dm_block_data(sblock);
  979. disk_super->held_root = cpu_to_le64(held_root);
  980. dm_bm_unlock(sblock);
  981. return 0;
  982. }
  983. int dm_pool_reserve_metadata_snap(struct dm_pool_metadata *pmd)
  984. {
  985. int r;
  986. down_write(&pmd->root_lock);
  987. r = __reserve_metadata_snap(pmd);
  988. up_write(&pmd->root_lock);
  989. return r;
  990. }
  991. static int __release_metadata_snap(struct dm_pool_metadata *pmd)
  992. {
  993. int r;
  994. struct thin_disk_superblock *disk_super;
  995. struct dm_block *sblock, *copy;
  996. dm_block_t held_root;
  997. r = superblock_lock(pmd, &sblock);
  998. if (r)
  999. return r;
  1000. disk_super = dm_block_data(sblock);
  1001. held_root = le64_to_cpu(disk_super->held_root);
  1002. disk_super->held_root = cpu_to_le64(0);
  1003. dm_bm_unlock(sblock);
  1004. if (!held_root) {
  1005. DMWARN("No pool metadata snapshot found: nothing to release.");
  1006. return -EINVAL;
  1007. }
  1008. r = dm_tm_read_lock(pmd->tm, held_root, &sb_validator, &copy);
  1009. if (r)
  1010. return r;
  1011. disk_super = dm_block_data(copy);
  1012. dm_sm_dec_block(pmd->metadata_sm, le64_to_cpu(disk_super->data_mapping_root));
  1013. dm_sm_dec_block(pmd->metadata_sm, le64_to_cpu(disk_super->device_details_root));
  1014. dm_sm_dec_block(pmd->metadata_sm, held_root);
  1015. return dm_tm_unlock(pmd->tm, copy);
  1016. }
  1017. int dm_pool_release_metadata_snap(struct dm_pool_metadata *pmd)
  1018. {
  1019. int r;
  1020. down_write(&pmd->root_lock);
  1021. r = __release_metadata_snap(pmd);
  1022. up_write(&pmd->root_lock);
  1023. return r;
  1024. }
  1025. static int __get_metadata_snap(struct dm_pool_metadata *pmd,
  1026. dm_block_t *result)
  1027. {
  1028. int r;
  1029. struct thin_disk_superblock *disk_super;
  1030. struct dm_block *sblock;
  1031. r = dm_bm_read_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION,
  1032. &sb_validator, &sblock);
  1033. if (r)
  1034. return r;
  1035. disk_super = dm_block_data(sblock);
  1036. *result = le64_to_cpu(disk_super->held_root);
  1037. return dm_bm_unlock(sblock);
  1038. }
  1039. int dm_pool_get_metadata_snap(struct dm_pool_metadata *pmd,
  1040. dm_block_t *result)
  1041. {
  1042. int r;
  1043. down_read(&pmd->root_lock);
  1044. r = __get_metadata_snap(pmd, result);
  1045. up_read(&pmd->root_lock);
  1046. return r;
  1047. }
  1048. int dm_pool_open_thin_device(struct dm_pool_metadata *pmd, dm_thin_id dev,
  1049. struct dm_thin_device **td)
  1050. {
  1051. int r;
  1052. down_write(&pmd->root_lock);
  1053. r = __open_device(pmd, dev, 0, td);
  1054. up_write(&pmd->root_lock);
  1055. return r;
  1056. }
  1057. int dm_pool_close_thin_device(struct dm_thin_device *td)
  1058. {
  1059. down_write(&td->pmd->root_lock);
  1060. __close_device(td);
  1061. up_write(&td->pmd->root_lock);
  1062. return 0;
  1063. }
  1064. dm_thin_id dm_thin_dev_id(struct dm_thin_device *td)
  1065. {
  1066. return td->id;
  1067. }
  1068. static bool __snapshotted_since(struct dm_thin_device *td, uint32_t time)
  1069. {
  1070. return td->snapshotted_time > time;
  1071. }
  1072. int dm_thin_find_block(struct dm_thin_device *td, dm_block_t block,
  1073. int can_block, struct dm_thin_lookup_result *result)
  1074. {
  1075. int r;
  1076. uint64_t block_time = 0;
  1077. __le64 value;
  1078. struct dm_pool_metadata *pmd = td->pmd;
  1079. dm_block_t keys[2] = { td->id, block };
  1080. if (can_block) {
  1081. down_read(&pmd->root_lock);
  1082. r = dm_btree_lookup(&pmd->info, pmd->root, keys, &value);
  1083. if (!r)
  1084. block_time = le64_to_cpu(value);
  1085. up_read(&pmd->root_lock);
  1086. } else if (down_read_trylock(&pmd->root_lock)) {
  1087. r = dm_btree_lookup(&pmd->nb_info, pmd->root, keys, &value);
  1088. if (!r)
  1089. block_time = le64_to_cpu(value);
  1090. up_read(&pmd->root_lock);
  1091. } else
  1092. return -EWOULDBLOCK;
  1093. if (!r) {
  1094. dm_block_t exception_block;
  1095. uint32_t exception_time;
  1096. unpack_block_time(block_time, &exception_block,
  1097. &exception_time);
  1098. result->block = exception_block;
  1099. result->shared = __snapshotted_since(td, exception_time);
  1100. }
  1101. return r;
  1102. }
  1103. static int __insert(struct dm_thin_device *td, dm_block_t block,
  1104. dm_block_t data_block)
  1105. {
  1106. int r, inserted;
  1107. __le64 value;
  1108. struct dm_pool_metadata *pmd = td->pmd;
  1109. dm_block_t keys[2] = { td->id, block };
  1110. value = cpu_to_le64(pack_block_time(data_block, pmd->time));
  1111. __dm_bless_for_disk(&value);
  1112. r = dm_btree_insert_notify(&pmd->info, pmd->root, keys, &value,
  1113. &pmd->root, &inserted);
  1114. if (r)
  1115. return r;
  1116. if (inserted) {
  1117. td->mapped_blocks++;
  1118. td->changed = 1;
  1119. }
  1120. return 0;
  1121. }
  1122. int dm_thin_insert_block(struct dm_thin_device *td, dm_block_t block,
  1123. dm_block_t data_block)
  1124. {
  1125. int r;
  1126. down_write(&td->pmd->root_lock);
  1127. r = __insert(td, block, data_block);
  1128. up_write(&td->pmd->root_lock);
  1129. return r;
  1130. }
  1131. static int __remove(struct dm_thin_device *td, dm_block_t block)
  1132. {
  1133. int r;
  1134. struct dm_pool_metadata *pmd = td->pmd;
  1135. dm_block_t keys[2] = { td->id, block };
  1136. r = dm_btree_remove(&pmd->info, pmd->root, keys, &pmd->root);
  1137. if (r)
  1138. return r;
  1139. td->mapped_blocks--;
  1140. td->changed = 1;
  1141. return 0;
  1142. }
  1143. int dm_thin_remove_block(struct dm_thin_device *td, dm_block_t block)
  1144. {
  1145. int r;
  1146. down_write(&td->pmd->root_lock);
  1147. r = __remove(td, block);
  1148. up_write(&td->pmd->root_lock);
  1149. return r;
  1150. }
  1151. int dm_pool_alloc_data_block(struct dm_pool_metadata *pmd, dm_block_t *result)
  1152. {
  1153. int r;
  1154. down_write(&pmd->root_lock);
  1155. r = dm_sm_new_block(pmd->data_sm, result);
  1156. up_write(&pmd->root_lock);
  1157. return r;
  1158. }
  1159. int dm_pool_commit_metadata(struct dm_pool_metadata *pmd)
  1160. {
  1161. int r;
  1162. down_write(&pmd->root_lock);
  1163. r = __commit_transaction(pmd);
  1164. if (r <= 0)
  1165. goto out;
  1166. /*
  1167. * Open the next transaction.
  1168. */
  1169. r = __begin_transaction(pmd);
  1170. out:
  1171. up_write(&pmd->root_lock);
  1172. return r;
  1173. }
  1174. int dm_pool_get_free_block_count(struct dm_pool_metadata *pmd, dm_block_t *result)
  1175. {
  1176. int r;
  1177. down_read(&pmd->root_lock);
  1178. r = dm_sm_get_nr_free(pmd->data_sm, result);
  1179. up_read(&pmd->root_lock);
  1180. return r;
  1181. }
  1182. int dm_pool_get_free_metadata_block_count(struct dm_pool_metadata *pmd,
  1183. dm_block_t *result)
  1184. {
  1185. int r;
  1186. down_read(&pmd->root_lock);
  1187. r = dm_sm_get_nr_free(pmd->metadata_sm, result);
  1188. up_read(&pmd->root_lock);
  1189. return r;
  1190. }
  1191. int dm_pool_get_metadata_dev_size(struct dm_pool_metadata *pmd,
  1192. dm_block_t *result)
  1193. {
  1194. int r;
  1195. down_read(&pmd->root_lock);
  1196. r = dm_sm_get_nr_blocks(pmd->metadata_sm, result);
  1197. up_read(&pmd->root_lock);
  1198. return r;
  1199. }
  1200. int dm_pool_get_data_block_size(struct dm_pool_metadata *pmd, sector_t *result)
  1201. {
  1202. down_read(&pmd->root_lock);
  1203. *result = pmd->data_block_size;
  1204. up_read(&pmd->root_lock);
  1205. return 0;
  1206. }
  1207. int dm_pool_get_data_dev_size(struct dm_pool_metadata *pmd, dm_block_t *result)
  1208. {
  1209. int r;
  1210. down_read(&pmd->root_lock);
  1211. r = dm_sm_get_nr_blocks(pmd->data_sm, result);
  1212. up_read(&pmd->root_lock);
  1213. return r;
  1214. }
  1215. int dm_thin_get_mapped_count(struct dm_thin_device *td, dm_block_t *result)
  1216. {
  1217. struct dm_pool_metadata *pmd = td->pmd;
  1218. down_read(&pmd->root_lock);
  1219. *result = td->mapped_blocks;
  1220. up_read(&pmd->root_lock);
  1221. return 0;
  1222. }
  1223. static int __highest_block(struct dm_thin_device *td, dm_block_t *result)
  1224. {
  1225. int r;
  1226. __le64 value_le;
  1227. dm_block_t thin_root;
  1228. struct dm_pool_metadata *pmd = td->pmd;
  1229. r = dm_btree_lookup(&pmd->tl_info, pmd->root, &td->id, &value_le);
  1230. if (r)
  1231. return r;
  1232. thin_root = le64_to_cpu(value_le);
  1233. return dm_btree_find_highest_key(&pmd->bl_info, thin_root, result);
  1234. }
  1235. int dm_thin_get_highest_mapped_block(struct dm_thin_device *td,
  1236. dm_block_t *result)
  1237. {
  1238. int r;
  1239. struct dm_pool_metadata *pmd = td->pmd;
  1240. down_read(&pmd->root_lock);
  1241. r = __highest_block(td, result);
  1242. up_read(&pmd->root_lock);
  1243. return r;
  1244. }
  1245. static int __resize_data_dev(struct dm_pool_metadata *pmd, dm_block_t new_count)
  1246. {
  1247. int r;
  1248. dm_block_t old_count;
  1249. r = dm_sm_get_nr_blocks(pmd->data_sm, &old_count);
  1250. if (r)
  1251. return r;
  1252. if (new_count == old_count)
  1253. return 0;
  1254. if (new_count < old_count) {
  1255. DMERR("cannot reduce size of data device");
  1256. return -EINVAL;
  1257. }
  1258. return dm_sm_extend(pmd->data_sm, new_count - old_count);
  1259. }
  1260. int dm_pool_resize_data_dev(struct dm_pool_metadata *pmd, dm_block_t new_count)
  1261. {
  1262. int r;
  1263. down_write(&pmd->root_lock);
  1264. r = __resize_data_dev(pmd, new_count);
  1265. up_write(&pmd->root_lock);
  1266. return r;
  1267. }