dm-table.c 38 KB

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  1. /*
  2. * Copyright (C) 2001 Sistina Software (UK) Limited.
  3. * Copyright (C) 2004-2008 Red Hat, Inc. All rights reserved.
  4. *
  5. * This file is released under the GPL.
  6. */
  7. #include "dm.h"
  8. #include <linux/module.h>
  9. #include <linux/vmalloc.h>
  10. #include <linux/blkdev.h>
  11. #include <linux/namei.h>
  12. #include <linux/ctype.h>
  13. #include <linux/string.h>
  14. #include <linux/slab.h>
  15. #include <linux/interrupt.h>
  16. #include <linux/mutex.h>
  17. #include <linux/delay.h>
  18. #include <linux/atomic.h>
  19. #define DM_MSG_PREFIX "table"
  20. #define MAX_DEPTH 16
  21. #define NODE_SIZE L1_CACHE_BYTES
  22. #define KEYS_PER_NODE (NODE_SIZE / sizeof(sector_t))
  23. #define CHILDREN_PER_NODE (KEYS_PER_NODE + 1)
  24. struct dm_table {
  25. struct mapped_device *md;
  26. unsigned type;
  27. /* btree table */
  28. unsigned int depth;
  29. unsigned int counts[MAX_DEPTH]; /* in nodes */
  30. sector_t *index[MAX_DEPTH];
  31. unsigned int num_targets;
  32. unsigned int num_allocated;
  33. sector_t *highs;
  34. struct dm_target *targets;
  35. struct target_type *immutable_target_type;
  36. unsigned integrity_supported:1;
  37. unsigned singleton:1;
  38. /*
  39. * Indicates the rw permissions for the new logical
  40. * device. This should be a combination of FMODE_READ
  41. * and FMODE_WRITE.
  42. */
  43. fmode_t mode;
  44. /* a list of devices used by this table */
  45. struct list_head devices;
  46. /* events get handed up using this callback */
  47. void (*event_fn)(void *);
  48. void *event_context;
  49. struct dm_md_mempools *mempools;
  50. struct list_head target_callbacks;
  51. };
  52. /*
  53. * Similar to ceiling(log_size(n))
  54. */
  55. static unsigned int int_log(unsigned int n, unsigned int base)
  56. {
  57. int result = 0;
  58. while (n > 1) {
  59. n = dm_div_up(n, base);
  60. result++;
  61. }
  62. return result;
  63. }
  64. /*
  65. * Calculate the index of the child node of the n'th node k'th key.
  66. */
  67. static inline unsigned int get_child(unsigned int n, unsigned int k)
  68. {
  69. return (n * CHILDREN_PER_NODE) + k;
  70. }
  71. /*
  72. * Return the n'th node of level l from table t.
  73. */
  74. static inline sector_t *get_node(struct dm_table *t,
  75. unsigned int l, unsigned int n)
  76. {
  77. return t->index[l] + (n * KEYS_PER_NODE);
  78. }
  79. /*
  80. * Return the highest key that you could lookup from the n'th
  81. * node on level l of the btree.
  82. */
  83. static sector_t high(struct dm_table *t, unsigned int l, unsigned int n)
  84. {
  85. for (; l < t->depth - 1; l++)
  86. n = get_child(n, CHILDREN_PER_NODE - 1);
  87. if (n >= t->counts[l])
  88. return (sector_t) - 1;
  89. return get_node(t, l, n)[KEYS_PER_NODE - 1];
  90. }
  91. /*
  92. * Fills in a level of the btree based on the highs of the level
  93. * below it.
  94. */
  95. static int setup_btree_index(unsigned int l, struct dm_table *t)
  96. {
  97. unsigned int n, k;
  98. sector_t *node;
  99. for (n = 0U; n < t->counts[l]; n++) {
  100. node = get_node(t, l, n);
  101. for (k = 0U; k < KEYS_PER_NODE; k++)
  102. node[k] = high(t, l + 1, get_child(n, k));
  103. }
  104. return 0;
  105. }
  106. void *dm_vcalloc(unsigned long nmemb, unsigned long elem_size)
  107. {
  108. unsigned long size;
  109. void *addr;
  110. /*
  111. * Check that we're not going to overflow.
  112. */
  113. if (nmemb > (ULONG_MAX / elem_size))
  114. return NULL;
  115. size = nmemb * elem_size;
  116. addr = vzalloc(size);
  117. return addr;
  118. }
  119. EXPORT_SYMBOL(dm_vcalloc);
  120. /*
  121. * highs, and targets are managed as dynamic arrays during a
  122. * table load.
  123. */
  124. static int alloc_targets(struct dm_table *t, unsigned int num)
  125. {
  126. sector_t *n_highs;
  127. struct dm_target *n_targets;
  128. /*
  129. * Allocate both the target array and offset array at once.
  130. * Append an empty entry to catch sectors beyond the end of
  131. * the device.
  132. */
  133. n_highs = (sector_t *) dm_vcalloc(num + 1, sizeof(struct dm_target) +
  134. sizeof(sector_t));
  135. if (!n_highs)
  136. return -ENOMEM;
  137. n_targets = (struct dm_target *) (n_highs + num);
  138. memset(n_highs, -1, sizeof(*n_highs) * num);
  139. vfree(t->highs);
  140. t->num_allocated = num;
  141. t->highs = n_highs;
  142. t->targets = n_targets;
  143. return 0;
  144. }
  145. int dm_table_create(struct dm_table **result, fmode_t mode,
  146. unsigned num_targets, struct mapped_device *md)
  147. {
  148. struct dm_table *t = kzalloc(sizeof(*t), GFP_KERNEL);
  149. if (!t)
  150. return -ENOMEM;
  151. INIT_LIST_HEAD(&t->devices);
  152. INIT_LIST_HEAD(&t->target_callbacks);
  153. if (!num_targets)
  154. num_targets = KEYS_PER_NODE;
  155. num_targets = dm_round_up(num_targets, KEYS_PER_NODE);
  156. if (!num_targets) {
  157. kfree(t);
  158. return -ENOMEM;
  159. }
  160. if (alloc_targets(t, num_targets)) {
  161. kfree(t);
  162. return -ENOMEM;
  163. }
  164. t->mode = mode;
  165. t->md = md;
  166. *result = t;
  167. return 0;
  168. }
  169. static void free_devices(struct list_head *devices)
  170. {
  171. struct list_head *tmp, *next;
  172. list_for_each_safe(tmp, next, devices) {
  173. struct dm_dev_internal *dd =
  174. list_entry(tmp, struct dm_dev_internal, list);
  175. DMWARN("dm_table_destroy: dm_put_device call missing for %s",
  176. dd->dm_dev.name);
  177. kfree(dd);
  178. }
  179. }
  180. void dm_table_destroy(struct dm_table *t)
  181. {
  182. unsigned int i;
  183. if (!t)
  184. return;
  185. /* free the indexes */
  186. if (t->depth >= 2)
  187. vfree(t->index[t->depth - 2]);
  188. /* free the targets */
  189. for (i = 0; i < t->num_targets; i++) {
  190. struct dm_target *tgt = t->targets + i;
  191. if (tgt->type->dtr)
  192. tgt->type->dtr(tgt);
  193. dm_put_target_type(tgt->type);
  194. }
  195. vfree(t->highs);
  196. /* free the device list */
  197. free_devices(&t->devices);
  198. dm_free_md_mempools(t->mempools);
  199. kfree(t);
  200. }
  201. /*
  202. * See if we've already got a device in the list.
  203. */
  204. static struct dm_dev_internal *find_device(struct list_head *l, dev_t dev)
  205. {
  206. struct dm_dev_internal *dd;
  207. list_for_each_entry (dd, l, list)
  208. if (dd->dm_dev.bdev->bd_dev == dev)
  209. return dd;
  210. return NULL;
  211. }
  212. /*
  213. * Open a device so we can use it as a map destination.
  214. */
  215. static int open_dev(struct dm_dev_internal *d, dev_t dev,
  216. struct mapped_device *md)
  217. {
  218. static char *_claim_ptr = "I belong to device-mapper";
  219. struct block_device *bdev;
  220. int r;
  221. BUG_ON(d->dm_dev.bdev);
  222. bdev = blkdev_get_by_dev(dev, d->dm_dev.mode | FMODE_EXCL, _claim_ptr);
  223. if (IS_ERR(bdev))
  224. return PTR_ERR(bdev);
  225. r = bd_link_disk_holder(bdev, dm_disk(md));
  226. if (r) {
  227. blkdev_put(bdev, d->dm_dev.mode | FMODE_EXCL);
  228. return r;
  229. }
  230. d->dm_dev.bdev = bdev;
  231. return 0;
  232. }
  233. /*
  234. * Close a device that we've been using.
  235. */
  236. static void close_dev(struct dm_dev_internal *d, struct mapped_device *md)
  237. {
  238. if (!d->dm_dev.bdev)
  239. return;
  240. bd_unlink_disk_holder(d->dm_dev.bdev, dm_disk(md));
  241. blkdev_put(d->dm_dev.bdev, d->dm_dev.mode | FMODE_EXCL);
  242. d->dm_dev.bdev = NULL;
  243. }
  244. /*
  245. * If possible, this checks an area of a destination device is invalid.
  246. */
  247. static int device_area_is_invalid(struct dm_target *ti, struct dm_dev *dev,
  248. sector_t start, sector_t len, void *data)
  249. {
  250. struct request_queue *q;
  251. struct queue_limits *limits = data;
  252. struct block_device *bdev = dev->bdev;
  253. sector_t dev_size =
  254. i_size_read(bdev->bd_inode) >> SECTOR_SHIFT;
  255. unsigned short logical_block_size_sectors =
  256. limits->logical_block_size >> SECTOR_SHIFT;
  257. char b[BDEVNAME_SIZE];
  258. /*
  259. * Some devices exist without request functions,
  260. * such as loop devices not yet bound to backing files.
  261. * Forbid the use of such devices.
  262. */
  263. q = bdev_get_queue(bdev);
  264. if (!q || !q->make_request_fn) {
  265. DMWARN("%s: %s is not yet initialised: "
  266. "start=%llu, len=%llu, dev_size=%llu",
  267. dm_device_name(ti->table->md), bdevname(bdev, b),
  268. (unsigned long long)start,
  269. (unsigned long long)len,
  270. (unsigned long long)dev_size);
  271. return 1;
  272. }
  273. if (!dev_size)
  274. return 0;
  275. if ((start >= dev_size) || (start + len > dev_size)) {
  276. DMWARN("%s: %s too small for target: "
  277. "start=%llu, len=%llu, dev_size=%llu",
  278. dm_device_name(ti->table->md), bdevname(bdev, b),
  279. (unsigned long long)start,
  280. (unsigned long long)len,
  281. (unsigned long long)dev_size);
  282. return 1;
  283. }
  284. if (logical_block_size_sectors <= 1)
  285. return 0;
  286. if (start & (logical_block_size_sectors - 1)) {
  287. DMWARN("%s: start=%llu not aligned to h/w "
  288. "logical block size %u of %s",
  289. dm_device_name(ti->table->md),
  290. (unsigned long long)start,
  291. limits->logical_block_size, bdevname(bdev, b));
  292. return 1;
  293. }
  294. if (len & (logical_block_size_sectors - 1)) {
  295. DMWARN("%s: len=%llu not aligned to h/w "
  296. "logical block size %u of %s",
  297. dm_device_name(ti->table->md),
  298. (unsigned long long)len,
  299. limits->logical_block_size, bdevname(bdev, b));
  300. return 1;
  301. }
  302. return 0;
  303. }
  304. /*
  305. * This upgrades the mode on an already open dm_dev, being
  306. * careful to leave things as they were if we fail to reopen the
  307. * device and not to touch the existing bdev field in case
  308. * it is accessed concurrently inside dm_table_any_congested().
  309. */
  310. static int upgrade_mode(struct dm_dev_internal *dd, fmode_t new_mode,
  311. struct mapped_device *md)
  312. {
  313. int r;
  314. struct dm_dev_internal dd_new, dd_old;
  315. dd_new = dd_old = *dd;
  316. dd_new.dm_dev.mode |= new_mode;
  317. dd_new.dm_dev.bdev = NULL;
  318. r = open_dev(&dd_new, dd->dm_dev.bdev->bd_dev, md);
  319. if (r)
  320. return r;
  321. dd->dm_dev.mode |= new_mode;
  322. close_dev(&dd_old, md);
  323. return 0;
  324. }
  325. /*
  326. * Add a device to the list, or just increment the usage count if
  327. * it's already present.
  328. */
  329. int dm_get_device(struct dm_target *ti, const char *path, fmode_t mode,
  330. struct dm_dev **result)
  331. {
  332. int r;
  333. dev_t uninitialized_var(dev);
  334. struct dm_dev_internal *dd;
  335. unsigned int major, minor;
  336. struct dm_table *t = ti->table;
  337. char dummy;
  338. BUG_ON(!t);
  339. if (sscanf(path, "%u:%u%c", &major, &minor, &dummy) == 2) {
  340. /* Extract the major/minor numbers */
  341. dev = MKDEV(major, minor);
  342. if (MAJOR(dev) != major || MINOR(dev) != minor)
  343. return -EOVERFLOW;
  344. } else {
  345. /* convert the path to a device */
  346. struct block_device *bdev = lookup_bdev(path);
  347. if (IS_ERR(bdev))
  348. return PTR_ERR(bdev);
  349. dev = bdev->bd_dev;
  350. bdput(bdev);
  351. }
  352. dd = find_device(&t->devices, dev);
  353. if (!dd) {
  354. dd = kmalloc(sizeof(*dd), GFP_KERNEL);
  355. if (!dd)
  356. return -ENOMEM;
  357. dd->dm_dev.mode = mode;
  358. dd->dm_dev.bdev = NULL;
  359. if ((r = open_dev(dd, dev, t->md))) {
  360. kfree(dd);
  361. return r;
  362. }
  363. format_dev_t(dd->dm_dev.name, dev);
  364. atomic_set(&dd->count, 0);
  365. list_add(&dd->list, &t->devices);
  366. } else if (dd->dm_dev.mode != (mode | dd->dm_dev.mode)) {
  367. r = upgrade_mode(dd, mode, t->md);
  368. if (r)
  369. return r;
  370. }
  371. atomic_inc(&dd->count);
  372. *result = &dd->dm_dev;
  373. return 0;
  374. }
  375. EXPORT_SYMBOL(dm_get_device);
  376. int dm_set_device_limits(struct dm_target *ti, struct dm_dev *dev,
  377. sector_t start, sector_t len, void *data)
  378. {
  379. struct queue_limits *limits = data;
  380. struct block_device *bdev = dev->bdev;
  381. struct request_queue *q = bdev_get_queue(bdev);
  382. char b[BDEVNAME_SIZE];
  383. if (unlikely(!q)) {
  384. DMWARN("%s: Cannot set limits for nonexistent device %s",
  385. dm_device_name(ti->table->md), bdevname(bdev, b));
  386. return 0;
  387. }
  388. if (bdev_stack_limits(limits, bdev, start) < 0)
  389. DMWARN("%s: adding target device %s caused an alignment inconsistency: "
  390. "physical_block_size=%u, logical_block_size=%u, "
  391. "alignment_offset=%u, start=%llu",
  392. dm_device_name(ti->table->md), bdevname(bdev, b),
  393. q->limits.physical_block_size,
  394. q->limits.logical_block_size,
  395. q->limits.alignment_offset,
  396. (unsigned long long) start << SECTOR_SHIFT);
  397. /*
  398. * Check if merge fn is supported.
  399. * If not we'll force DM to use PAGE_SIZE or
  400. * smaller I/O, just to be safe.
  401. */
  402. if (dm_queue_merge_is_compulsory(q) && !ti->type->merge)
  403. blk_limits_max_hw_sectors(limits,
  404. (unsigned int) (PAGE_SIZE >> 9));
  405. return 0;
  406. }
  407. EXPORT_SYMBOL_GPL(dm_set_device_limits);
  408. /*
  409. * Decrement a device's use count and remove it if necessary.
  410. */
  411. void dm_put_device(struct dm_target *ti, struct dm_dev *d)
  412. {
  413. struct dm_dev_internal *dd = container_of(d, struct dm_dev_internal,
  414. dm_dev);
  415. if (atomic_dec_and_test(&dd->count)) {
  416. close_dev(dd, ti->table->md);
  417. list_del(&dd->list);
  418. kfree(dd);
  419. }
  420. }
  421. EXPORT_SYMBOL(dm_put_device);
  422. /*
  423. * Checks to see if the target joins onto the end of the table.
  424. */
  425. static int adjoin(struct dm_table *table, struct dm_target *ti)
  426. {
  427. struct dm_target *prev;
  428. if (!table->num_targets)
  429. return !ti->begin;
  430. prev = &table->targets[table->num_targets - 1];
  431. return (ti->begin == (prev->begin + prev->len));
  432. }
  433. /*
  434. * Used to dynamically allocate the arg array.
  435. *
  436. * We do first allocation with GFP_NOIO because dm-mpath and dm-thin must
  437. * process messages even if some device is suspended. These messages have a
  438. * small fixed number of arguments.
  439. *
  440. * On the other hand, dm-switch needs to process bulk data using messages and
  441. * excessive use of GFP_NOIO could cause trouble.
  442. */
  443. static char **realloc_argv(unsigned *array_size, char **old_argv)
  444. {
  445. char **argv;
  446. unsigned new_size;
  447. gfp_t gfp;
  448. if (*array_size) {
  449. new_size = *array_size * 2;
  450. gfp = GFP_KERNEL;
  451. } else {
  452. new_size = 8;
  453. gfp = GFP_NOIO;
  454. }
  455. argv = kmalloc(new_size * sizeof(*argv), gfp);
  456. if (argv) {
  457. memcpy(argv, old_argv, *array_size * sizeof(*argv));
  458. *array_size = new_size;
  459. }
  460. kfree(old_argv);
  461. return argv;
  462. }
  463. /*
  464. * Destructively splits up the argument list to pass to ctr.
  465. */
  466. int dm_split_args(int *argc, char ***argvp, char *input)
  467. {
  468. char *start, *end = input, *out, **argv = NULL;
  469. unsigned array_size = 0;
  470. *argc = 0;
  471. if (!input) {
  472. *argvp = NULL;
  473. return 0;
  474. }
  475. argv = realloc_argv(&array_size, argv);
  476. if (!argv)
  477. return -ENOMEM;
  478. while (1) {
  479. /* Skip whitespace */
  480. start = skip_spaces(end);
  481. if (!*start)
  482. break; /* success, we hit the end */
  483. /* 'out' is used to remove any back-quotes */
  484. end = out = start;
  485. while (*end) {
  486. /* Everything apart from '\0' can be quoted */
  487. if (*end == '\\' && *(end + 1)) {
  488. *out++ = *(end + 1);
  489. end += 2;
  490. continue;
  491. }
  492. if (isspace(*end))
  493. break; /* end of token */
  494. *out++ = *end++;
  495. }
  496. /* have we already filled the array ? */
  497. if ((*argc + 1) > array_size) {
  498. argv = realloc_argv(&array_size, argv);
  499. if (!argv)
  500. return -ENOMEM;
  501. }
  502. /* we know this is whitespace */
  503. if (*end)
  504. end++;
  505. /* terminate the string and put it in the array */
  506. *out = '\0';
  507. argv[*argc] = start;
  508. (*argc)++;
  509. }
  510. *argvp = argv;
  511. return 0;
  512. }
  513. /*
  514. * Impose necessary and sufficient conditions on a devices's table such
  515. * that any incoming bio which respects its logical_block_size can be
  516. * processed successfully. If it falls across the boundary between
  517. * two or more targets, the size of each piece it gets split into must
  518. * be compatible with the logical_block_size of the target processing it.
  519. */
  520. static int validate_hardware_logical_block_alignment(struct dm_table *table,
  521. struct queue_limits *limits)
  522. {
  523. /*
  524. * This function uses arithmetic modulo the logical_block_size
  525. * (in units of 512-byte sectors).
  526. */
  527. unsigned short device_logical_block_size_sects =
  528. limits->logical_block_size >> SECTOR_SHIFT;
  529. /*
  530. * Offset of the start of the next table entry, mod logical_block_size.
  531. */
  532. unsigned short next_target_start = 0;
  533. /*
  534. * Given an aligned bio that extends beyond the end of a
  535. * target, how many sectors must the next target handle?
  536. */
  537. unsigned short remaining = 0;
  538. struct dm_target *uninitialized_var(ti);
  539. struct queue_limits ti_limits;
  540. unsigned i = 0;
  541. /*
  542. * Check each entry in the table in turn.
  543. */
  544. while (i < dm_table_get_num_targets(table)) {
  545. ti = dm_table_get_target(table, i++);
  546. blk_set_stacking_limits(&ti_limits);
  547. /* combine all target devices' limits */
  548. if (ti->type->iterate_devices)
  549. ti->type->iterate_devices(ti, dm_set_device_limits,
  550. &ti_limits);
  551. /*
  552. * If the remaining sectors fall entirely within this
  553. * table entry are they compatible with its logical_block_size?
  554. */
  555. if (remaining < ti->len &&
  556. remaining & ((ti_limits.logical_block_size >>
  557. SECTOR_SHIFT) - 1))
  558. break; /* Error */
  559. next_target_start =
  560. (unsigned short) ((next_target_start + ti->len) &
  561. (device_logical_block_size_sects - 1));
  562. remaining = next_target_start ?
  563. device_logical_block_size_sects - next_target_start : 0;
  564. }
  565. if (remaining) {
  566. DMWARN("%s: table line %u (start sect %llu len %llu) "
  567. "not aligned to h/w logical block size %u",
  568. dm_device_name(table->md), i,
  569. (unsigned long long) ti->begin,
  570. (unsigned long long) ti->len,
  571. limits->logical_block_size);
  572. return -EINVAL;
  573. }
  574. return 0;
  575. }
  576. int dm_table_add_target(struct dm_table *t, const char *type,
  577. sector_t start, sector_t len, char *params)
  578. {
  579. int r = -EINVAL, argc;
  580. char **argv;
  581. struct dm_target *tgt;
  582. if (t->singleton) {
  583. DMERR("%s: target type %s must appear alone in table",
  584. dm_device_name(t->md), t->targets->type->name);
  585. return -EINVAL;
  586. }
  587. BUG_ON(t->num_targets >= t->num_allocated);
  588. tgt = t->targets + t->num_targets;
  589. memset(tgt, 0, sizeof(*tgt));
  590. if (!len) {
  591. DMERR("%s: zero-length target", dm_device_name(t->md));
  592. return -EINVAL;
  593. }
  594. tgt->type = dm_get_target_type(type);
  595. if (!tgt->type) {
  596. DMERR("%s: %s: unknown target type", dm_device_name(t->md),
  597. type);
  598. return -EINVAL;
  599. }
  600. if (dm_target_needs_singleton(tgt->type)) {
  601. if (t->num_targets) {
  602. DMERR("%s: target type %s must appear alone in table",
  603. dm_device_name(t->md), type);
  604. return -EINVAL;
  605. }
  606. t->singleton = 1;
  607. }
  608. if (dm_target_always_writeable(tgt->type) && !(t->mode & FMODE_WRITE)) {
  609. DMERR("%s: target type %s may not be included in read-only tables",
  610. dm_device_name(t->md), type);
  611. return -EINVAL;
  612. }
  613. if (t->immutable_target_type) {
  614. if (t->immutable_target_type != tgt->type) {
  615. DMERR("%s: immutable target type %s cannot be mixed with other target types",
  616. dm_device_name(t->md), t->immutable_target_type->name);
  617. return -EINVAL;
  618. }
  619. } else if (dm_target_is_immutable(tgt->type)) {
  620. if (t->num_targets) {
  621. DMERR("%s: immutable target type %s cannot be mixed with other target types",
  622. dm_device_name(t->md), tgt->type->name);
  623. return -EINVAL;
  624. }
  625. t->immutable_target_type = tgt->type;
  626. }
  627. tgt->table = t;
  628. tgt->begin = start;
  629. tgt->len = len;
  630. tgt->error = "Unknown error";
  631. /*
  632. * Does this target adjoin the previous one ?
  633. */
  634. if (!adjoin(t, tgt)) {
  635. tgt->error = "Gap in table";
  636. r = -EINVAL;
  637. goto bad;
  638. }
  639. r = dm_split_args(&argc, &argv, params);
  640. if (r) {
  641. tgt->error = "couldn't split parameters (insufficient memory)";
  642. goto bad;
  643. }
  644. r = tgt->type->ctr(tgt, argc, argv);
  645. kfree(argv);
  646. if (r)
  647. goto bad;
  648. t->highs[t->num_targets++] = tgt->begin + tgt->len - 1;
  649. if (!tgt->num_discard_bios && tgt->discards_supported)
  650. DMWARN("%s: %s: ignoring discards_supported because num_discard_bios is zero.",
  651. dm_device_name(t->md), type);
  652. return 0;
  653. bad:
  654. DMERR("%s: %s: %s", dm_device_name(t->md), type, tgt->error);
  655. dm_put_target_type(tgt->type);
  656. return r;
  657. }
  658. /*
  659. * Target argument parsing helpers.
  660. */
  661. static int validate_next_arg(struct dm_arg *arg, struct dm_arg_set *arg_set,
  662. unsigned *value, char **error, unsigned grouped)
  663. {
  664. const char *arg_str = dm_shift_arg(arg_set);
  665. char dummy;
  666. if (!arg_str ||
  667. (sscanf(arg_str, "%u%c", value, &dummy) != 1) ||
  668. (*value < arg->min) ||
  669. (*value > arg->max) ||
  670. (grouped && arg_set->argc < *value)) {
  671. *error = arg->error;
  672. return -EINVAL;
  673. }
  674. return 0;
  675. }
  676. int dm_read_arg(struct dm_arg *arg, struct dm_arg_set *arg_set,
  677. unsigned *value, char **error)
  678. {
  679. return validate_next_arg(arg, arg_set, value, error, 0);
  680. }
  681. EXPORT_SYMBOL(dm_read_arg);
  682. int dm_read_arg_group(struct dm_arg *arg, struct dm_arg_set *arg_set,
  683. unsigned *value, char **error)
  684. {
  685. return validate_next_arg(arg, arg_set, value, error, 1);
  686. }
  687. EXPORT_SYMBOL(dm_read_arg_group);
  688. const char *dm_shift_arg(struct dm_arg_set *as)
  689. {
  690. char *r;
  691. if (as->argc) {
  692. as->argc--;
  693. r = *as->argv;
  694. as->argv++;
  695. return r;
  696. }
  697. return NULL;
  698. }
  699. EXPORT_SYMBOL(dm_shift_arg);
  700. void dm_consume_args(struct dm_arg_set *as, unsigned num_args)
  701. {
  702. BUG_ON(as->argc < num_args);
  703. as->argc -= num_args;
  704. as->argv += num_args;
  705. }
  706. EXPORT_SYMBOL(dm_consume_args);
  707. static int dm_table_set_type(struct dm_table *t)
  708. {
  709. unsigned i;
  710. unsigned bio_based = 0, request_based = 0, hybrid = 0;
  711. struct dm_target *tgt;
  712. struct dm_dev_internal *dd;
  713. struct list_head *devices;
  714. unsigned live_md_type;
  715. for (i = 0; i < t->num_targets; i++) {
  716. tgt = t->targets + i;
  717. if (dm_target_hybrid(tgt))
  718. hybrid = 1;
  719. else if (dm_target_request_based(tgt))
  720. request_based = 1;
  721. else
  722. bio_based = 1;
  723. if (bio_based && request_based) {
  724. DMWARN("Inconsistent table: different target types"
  725. " can't be mixed up");
  726. return -EINVAL;
  727. }
  728. }
  729. if (hybrid && !bio_based && !request_based) {
  730. /*
  731. * The targets can work either way.
  732. * Determine the type from the live device.
  733. * Default to bio-based if device is new.
  734. */
  735. live_md_type = dm_get_md_type(t->md);
  736. if (live_md_type == DM_TYPE_REQUEST_BASED)
  737. request_based = 1;
  738. else
  739. bio_based = 1;
  740. }
  741. if (bio_based) {
  742. /* We must use this table as bio-based */
  743. t->type = DM_TYPE_BIO_BASED;
  744. return 0;
  745. }
  746. BUG_ON(!request_based); /* No targets in this table */
  747. /* Non-request-stackable devices can't be used for request-based dm */
  748. devices = dm_table_get_devices(t);
  749. list_for_each_entry(dd, devices, list) {
  750. if (!blk_queue_stackable(bdev_get_queue(dd->dm_dev.bdev))) {
  751. DMWARN("table load rejected: including"
  752. " non-request-stackable devices");
  753. return -EINVAL;
  754. }
  755. }
  756. /*
  757. * Request-based dm supports only tables that have a single target now.
  758. * To support multiple targets, request splitting support is needed,
  759. * and that needs lots of changes in the block-layer.
  760. * (e.g. request completion process for partial completion.)
  761. */
  762. if (t->num_targets > 1) {
  763. DMWARN("Request-based dm doesn't support multiple targets yet");
  764. return -EINVAL;
  765. }
  766. t->type = DM_TYPE_REQUEST_BASED;
  767. return 0;
  768. }
  769. unsigned dm_table_get_type(struct dm_table *t)
  770. {
  771. return t->type;
  772. }
  773. struct target_type *dm_table_get_immutable_target_type(struct dm_table *t)
  774. {
  775. return t->immutable_target_type;
  776. }
  777. bool dm_table_request_based(struct dm_table *t)
  778. {
  779. return dm_table_get_type(t) == DM_TYPE_REQUEST_BASED;
  780. }
  781. int dm_table_alloc_md_mempools(struct dm_table *t)
  782. {
  783. unsigned type = dm_table_get_type(t);
  784. unsigned per_bio_data_size = 0;
  785. struct dm_target *tgt;
  786. unsigned i;
  787. if (unlikely(type == DM_TYPE_NONE)) {
  788. DMWARN("no table type is set, can't allocate mempools");
  789. return -EINVAL;
  790. }
  791. if (type == DM_TYPE_BIO_BASED)
  792. for (i = 0; i < t->num_targets; i++) {
  793. tgt = t->targets + i;
  794. per_bio_data_size = max(per_bio_data_size, tgt->per_bio_data_size);
  795. }
  796. t->mempools = dm_alloc_md_mempools(type, t->integrity_supported, per_bio_data_size);
  797. if (!t->mempools)
  798. return -ENOMEM;
  799. return 0;
  800. }
  801. void dm_table_free_md_mempools(struct dm_table *t)
  802. {
  803. dm_free_md_mempools(t->mempools);
  804. t->mempools = NULL;
  805. }
  806. struct dm_md_mempools *dm_table_get_md_mempools(struct dm_table *t)
  807. {
  808. return t->mempools;
  809. }
  810. static int setup_indexes(struct dm_table *t)
  811. {
  812. int i;
  813. unsigned int total = 0;
  814. sector_t *indexes;
  815. /* allocate the space for *all* the indexes */
  816. for (i = t->depth - 2; i >= 0; i--) {
  817. t->counts[i] = dm_div_up(t->counts[i + 1], CHILDREN_PER_NODE);
  818. total += t->counts[i];
  819. }
  820. indexes = (sector_t *) dm_vcalloc(total, (unsigned long) NODE_SIZE);
  821. if (!indexes)
  822. return -ENOMEM;
  823. /* set up internal nodes, bottom-up */
  824. for (i = t->depth - 2; i >= 0; i--) {
  825. t->index[i] = indexes;
  826. indexes += (KEYS_PER_NODE * t->counts[i]);
  827. setup_btree_index(i, t);
  828. }
  829. return 0;
  830. }
  831. /*
  832. * Builds the btree to index the map.
  833. */
  834. static int dm_table_build_index(struct dm_table *t)
  835. {
  836. int r = 0;
  837. unsigned int leaf_nodes;
  838. /* how many indexes will the btree have ? */
  839. leaf_nodes = dm_div_up(t->num_targets, KEYS_PER_NODE);
  840. t->depth = 1 + int_log(leaf_nodes, CHILDREN_PER_NODE);
  841. /* leaf layer has already been set up */
  842. t->counts[t->depth - 1] = leaf_nodes;
  843. t->index[t->depth - 1] = t->highs;
  844. if (t->depth >= 2)
  845. r = setup_indexes(t);
  846. return r;
  847. }
  848. /*
  849. * Get a disk whose integrity profile reflects the table's profile.
  850. * If %match_all is true, all devices' profiles must match.
  851. * If %match_all is false, all devices must at least have an
  852. * allocated integrity profile; but uninitialized is ok.
  853. * Returns NULL if integrity support was inconsistent or unavailable.
  854. */
  855. static struct gendisk * dm_table_get_integrity_disk(struct dm_table *t,
  856. bool match_all)
  857. {
  858. struct list_head *devices = dm_table_get_devices(t);
  859. struct dm_dev_internal *dd = NULL;
  860. struct gendisk *prev_disk = NULL, *template_disk = NULL;
  861. list_for_each_entry(dd, devices, list) {
  862. template_disk = dd->dm_dev.bdev->bd_disk;
  863. if (!blk_get_integrity(template_disk))
  864. goto no_integrity;
  865. if (!match_all && !blk_integrity_is_initialized(template_disk))
  866. continue; /* skip uninitialized profiles */
  867. else if (prev_disk &&
  868. blk_integrity_compare(prev_disk, template_disk) < 0)
  869. goto no_integrity;
  870. prev_disk = template_disk;
  871. }
  872. return template_disk;
  873. no_integrity:
  874. if (prev_disk)
  875. DMWARN("%s: integrity not set: %s and %s profile mismatch",
  876. dm_device_name(t->md),
  877. prev_disk->disk_name,
  878. template_disk->disk_name);
  879. return NULL;
  880. }
  881. /*
  882. * Register the mapped device for blk_integrity support if
  883. * the underlying devices have an integrity profile. But all devices
  884. * may not have matching profiles (checking all devices isn't reliable
  885. * during table load because this table may use other DM device(s) which
  886. * must be resumed before they will have an initialized integity profile).
  887. * Stacked DM devices force a 2 stage integrity profile validation:
  888. * 1 - during load, validate all initialized integrity profiles match
  889. * 2 - during resume, validate all integrity profiles match
  890. */
  891. static int dm_table_prealloc_integrity(struct dm_table *t, struct mapped_device *md)
  892. {
  893. struct gendisk *template_disk = NULL;
  894. template_disk = dm_table_get_integrity_disk(t, false);
  895. if (!template_disk)
  896. return 0;
  897. if (!blk_integrity_is_initialized(dm_disk(md))) {
  898. t->integrity_supported = 1;
  899. return blk_integrity_register(dm_disk(md), NULL);
  900. }
  901. /*
  902. * If DM device already has an initalized integrity
  903. * profile the new profile should not conflict.
  904. */
  905. if (blk_integrity_is_initialized(template_disk) &&
  906. blk_integrity_compare(dm_disk(md), template_disk) < 0) {
  907. DMWARN("%s: conflict with existing integrity profile: "
  908. "%s profile mismatch",
  909. dm_device_name(t->md),
  910. template_disk->disk_name);
  911. return 1;
  912. }
  913. /* Preserve existing initialized integrity profile */
  914. t->integrity_supported = 1;
  915. return 0;
  916. }
  917. /*
  918. * Prepares the table for use by building the indices,
  919. * setting the type, and allocating mempools.
  920. */
  921. int dm_table_complete(struct dm_table *t)
  922. {
  923. int r;
  924. r = dm_table_set_type(t);
  925. if (r) {
  926. DMERR("unable to set table type");
  927. return r;
  928. }
  929. r = dm_table_build_index(t);
  930. if (r) {
  931. DMERR("unable to build btrees");
  932. return r;
  933. }
  934. r = dm_table_prealloc_integrity(t, t->md);
  935. if (r) {
  936. DMERR("could not register integrity profile.");
  937. return r;
  938. }
  939. r = dm_table_alloc_md_mempools(t);
  940. if (r)
  941. DMERR("unable to allocate mempools");
  942. return r;
  943. }
  944. static DEFINE_MUTEX(_event_lock);
  945. void dm_table_event_callback(struct dm_table *t,
  946. void (*fn)(void *), void *context)
  947. {
  948. mutex_lock(&_event_lock);
  949. t->event_fn = fn;
  950. t->event_context = context;
  951. mutex_unlock(&_event_lock);
  952. }
  953. void dm_table_event(struct dm_table *t)
  954. {
  955. /*
  956. * You can no longer call dm_table_event() from interrupt
  957. * context, use a bottom half instead.
  958. */
  959. BUG_ON(in_interrupt());
  960. mutex_lock(&_event_lock);
  961. if (t->event_fn)
  962. t->event_fn(t->event_context);
  963. mutex_unlock(&_event_lock);
  964. }
  965. EXPORT_SYMBOL(dm_table_event);
  966. sector_t dm_table_get_size(struct dm_table *t)
  967. {
  968. return t->num_targets ? (t->highs[t->num_targets - 1] + 1) : 0;
  969. }
  970. EXPORT_SYMBOL(dm_table_get_size);
  971. struct dm_target *dm_table_get_target(struct dm_table *t, unsigned int index)
  972. {
  973. if (index >= t->num_targets)
  974. return NULL;
  975. return t->targets + index;
  976. }
  977. /*
  978. * Search the btree for the correct target.
  979. *
  980. * Caller should check returned pointer with dm_target_is_valid()
  981. * to trap I/O beyond end of device.
  982. */
  983. struct dm_target *dm_table_find_target(struct dm_table *t, sector_t sector)
  984. {
  985. unsigned int l, n = 0, k = 0;
  986. sector_t *node;
  987. for (l = 0; l < t->depth; l++) {
  988. n = get_child(n, k);
  989. node = get_node(t, l, n);
  990. for (k = 0; k < KEYS_PER_NODE; k++)
  991. if (node[k] >= sector)
  992. break;
  993. }
  994. return &t->targets[(KEYS_PER_NODE * n) + k];
  995. }
  996. static int count_device(struct dm_target *ti, struct dm_dev *dev,
  997. sector_t start, sector_t len, void *data)
  998. {
  999. unsigned *num_devices = data;
  1000. (*num_devices)++;
  1001. return 0;
  1002. }
  1003. /*
  1004. * Check whether a table has no data devices attached using each
  1005. * target's iterate_devices method.
  1006. * Returns false if the result is unknown because a target doesn't
  1007. * support iterate_devices.
  1008. */
  1009. bool dm_table_has_no_data_devices(struct dm_table *table)
  1010. {
  1011. struct dm_target *uninitialized_var(ti);
  1012. unsigned i = 0, num_devices = 0;
  1013. while (i < dm_table_get_num_targets(table)) {
  1014. ti = dm_table_get_target(table, i++);
  1015. if (!ti->type->iterate_devices)
  1016. return false;
  1017. ti->type->iterate_devices(ti, count_device, &num_devices);
  1018. if (num_devices)
  1019. return false;
  1020. }
  1021. return true;
  1022. }
  1023. /*
  1024. * Establish the new table's queue_limits and validate them.
  1025. */
  1026. int dm_calculate_queue_limits(struct dm_table *table,
  1027. struct queue_limits *limits)
  1028. {
  1029. struct dm_target *uninitialized_var(ti);
  1030. struct queue_limits ti_limits;
  1031. unsigned i = 0;
  1032. blk_set_stacking_limits(limits);
  1033. while (i < dm_table_get_num_targets(table)) {
  1034. blk_set_stacking_limits(&ti_limits);
  1035. ti = dm_table_get_target(table, i++);
  1036. if (!ti->type->iterate_devices)
  1037. goto combine_limits;
  1038. /*
  1039. * Combine queue limits of all the devices this target uses.
  1040. */
  1041. ti->type->iterate_devices(ti, dm_set_device_limits,
  1042. &ti_limits);
  1043. /* Set I/O hints portion of queue limits */
  1044. if (ti->type->io_hints)
  1045. ti->type->io_hints(ti, &ti_limits);
  1046. /*
  1047. * Check each device area is consistent with the target's
  1048. * overall queue limits.
  1049. */
  1050. if (ti->type->iterate_devices(ti, device_area_is_invalid,
  1051. &ti_limits))
  1052. return -EINVAL;
  1053. combine_limits:
  1054. /*
  1055. * Merge this target's queue limits into the overall limits
  1056. * for the table.
  1057. */
  1058. if (blk_stack_limits(limits, &ti_limits, 0) < 0)
  1059. DMWARN("%s: adding target device "
  1060. "(start sect %llu len %llu) "
  1061. "caused an alignment inconsistency",
  1062. dm_device_name(table->md),
  1063. (unsigned long long) ti->begin,
  1064. (unsigned long long) ti->len);
  1065. }
  1066. return validate_hardware_logical_block_alignment(table, limits);
  1067. }
  1068. /*
  1069. * Set the integrity profile for this device if all devices used have
  1070. * matching profiles. We're quite deep in the resume path but still
  1071. * don't know if all devices (particularly DM devices this device
  1072. * may be stacked on) have matching profiles. Even if the profiles
  1073. * don't match we have no way to fail (to resume) at this point.
  1074. */
  1075. static void dm_table_set_integrity(struct dm_table *t)
  1076. {
  1077. struct gendisk *template_disk = NULL;
  1078. if (!blk_get_integrity(dm_disk(t->md)))
  1079. return;
  1080. template_disk = dm_table_get_integrity_disk(t, true);
  1081. if (template_disk)
  1082. blk_integrity_register(dm_disk(t->md),
  1083. blk_get_integrity(template_disk));
  1084. else if (blk_integrity_is_initialized(dm_disk(t->md)))
  1085. DMWARN("%s: device no longer has a valid integrity profile",
  1086. dm_device_name(t->md));
  1087. else
  1088. DMWARN("%s: unable to establish an integrity profile",
  1089. dm_device_name(t->md));
  1090. }
  1091. static int device_flush_capable(struct dm_target *ti, struct dm_dev *dev,
  1092. sector_t start, sector_t len, void *data)
  1093. {
  1094. unsigned flush = (*(unsigned *)data);
  1095. struct request_queue *q = bdev_get_queue(dev->bdev);
  1096. return q && (q->flush_flags & flush);
  1097. }
  1098. static bool dm_table_supports_flush(struct dm_table *t, unsigned flush)
  1099. {
  1100. struct dm_target *ti;
  1101. unsigned i = 0;
  1102. /*
  1103. * Require at least one underlying device to support flushes.
  1104. * t->devices includes internal dm devices such as mirror logs
  1105. * so we need to use iterate_devices here, which targets
  1106. * supporting flushes must provide.
  1107. */
  1108. while (i < dm_table_get_num_targets(t)) {
  1109. ti = dm_table_get_target(t, i++);
  1110. if (!ti->num_flush_bios)
  1111. continue;
  1112. if (ti->flush_supported)
  1113. return 1;
  1114. if (ti->type->iterate_devices &&
  1115. ti->type->iterate_devices(ti, device_flush_capable, &flush))
  1116. return 1;
  1117. }
  1118. return 0;
  1119. }
  1120. static bool dm_table_discard_zeroes_data(struct dm_table *t)
  1121. {
  1122. struct dm_target *ti;
  1123. unsigned i = 0;
  1124. /* Ensure that all targets supports discard_zeroes_data. */
  1125. while (i < dm_table_get_num_targets(t)) {
  1126. ti = dm_table_get_target(t, i++);
  1127. if (ti->discard_zeroes_data_unsupported)
  1128. return 0;
  1129. }
  1130. return 1;
  1131. }
  1132. static int device_is_nonrot(struct dm_target *ti, struct dm_dev *dev,
  1133. sector_t start, sector_t len, void *data)
  1134. {
  1135. struct request_queue *q = bdev_get_queue(dev->bdev);
  1136. return q && blk_queue_nonrot(q);
  1137. }
  1138. static int device_is_not_random(struct dm_target *ti, struct dm_dev *dev,
  1139. sector_t start, sector_t len, void *data)
  1140. {
  1141. struct request_queue *q = bdev_get_queue(dev->bdev);
  1142. return q && !blk_queue_add_random(q);
  1143. }
  1144. static bool dm_table_all_devices_attribute(struct dm_table *t,
  1145. iterate_devices_callout_fn func)
  1146. {
  1147. struct dm_target *ti;
  1148. unsigned i = 0;
  1149. while (i < dm_table_get_num_targets(t)) {
  1150. ti = dm_table_get_target(t, i++);
  1151. if (!ti->type->iterate_devices ||
  1152. !ti->type->iterate_devices(ti, func, NULL))
  1153. return 0;
  1154. }
  1155. return 1;
  1156. }
  1157. static int device_not_write_same_capable(struct dm_target *ti, struct dm_dev *dev,
  1158. sector_t start, sector_t len, void *data)
  1159. {
  1160. struct request_queue *q = bdev_get_queue(dev->bdev);
  1161. return q && !q->limits.max_write_same_sectors;
  1162. }
  1163. static bool dm_table_supports_write_same(struct dm_table *t)
  1164. {
  1165. struct dm_target *ti;
  1166. unsigned i = 0;
  1167. while (i < dm_table_get_num_targets(t)) {
  1168. ti = dm_table_get_target(t, i++);
  1169. if (!ti->num_write_same_bios)
  1170. return false;
  1171. if (!ti->type->iterate_devices ||
  1172. ti->type->iterate_devices(ti, device_not_write_same_capable, NULL))
  1173. return false;
  1174. }
  1175. return true;
  1176. }
  1177. void dm_table_set_restrictions(struct dm_table *t, struct request_queue *q,
  1178. struct queue_limits *limits)
  1179. {
  1180. unsigned flush = 0;
  1181. /*
  1182. * Copy table's limits to the DM device's request_queue
  1183. */
  1184. q->limits = *limits;
  1185. if (!dm_table_supports_discards(t))
  1186. queue_flag_clear_unlocked(QUEUE_FLAG_DISCARD, q);
  1187. else
  1188. queue_flag_set_unlocked(QUEUE_FLAG_DISCARD, q);
  1189. if (dm_table_supports_flush(t, REQ_FLUSH)) {
  1190. flush |= REQ_FLUSH;
  1191. if (dm_table_supports_flush(t, REQ_FUA))
  1192. flush |= REQ_FUA;
  1193. }
  1194. blk_queue_flush(q, flush);
  1195. if (!dm_table_discard_zeroes_data(t))
  1196. q->limits.discard_zeroes_data = 0;
  1197. /* Ensure that all underlying devices are non-rotational. */
  1198. if (dm_table_all_devices_attribute(t, device_is_nonrot))
  1199. queue_flag_set_unlocked(QUEUE_FLAG_NONROT, q);
  1200. else
  1201. queue_flag_clear_unlocked(QUEUE_FLAG_NONROT, q);
  1202. if (!dm_table_supports_write_same(t))
  1203. q->limits.max_write_same_sectors = 0;
  1204. dm_table_set_integrity(t);
  1205. /*
  1206. * Determine whether or not this queue's I/O timings contribute
  1207. * to the entropy pool, Only request-based targets use this.
  1208. * Clear QUEUE_FLAG_ADD_RANDOM if any underlying device does not
  1209. * have it set.
  1210. */
  1211. if (blk_queue_add_random(q) && dm_table_all_devices_attribute(t, device_is_not_random))
  1212. queue_flag_clear_unlocked(QUEUE_FLAG_ADD_RANDOM, q);
  1213. /*
  1214. * QUEUE_FLAG_STACKABLE must be set after all queue settings are
  1215. * visible to other CPUs because, once the flag is set, incoming bios
  1216. * are processed by request-based dm, which refers to the queue
  1217. * settings.
  1218. * Until the flag set, bios are passed to bio-based dm and queued to
  1219. * md->deferred where queue settings are not needed yet.
  1220. * Those bios are passed to request-based dm at the resume time.
  1221. */
  1222. smp_mb();
  1223. if (dm_table_request_based(t))
  1224. queue_flag_set_unlocked(QUEUE_FLAG_STACKABLE, q);
  1225. }
  1226. unsigned int dm_table_get_num_targets(struct dm_table *t)
  1227. {
  1228. return t->num_targets;
  1229. }
  1230. struct list_head *dm_table_get_devices(struct dm_table *t)
  1231. {
  1232. return &t->devices;
  1233. }
  1234. fmode_t dm_table_get_mode(struct dm_table *t)
  1235. {
  1236. return t->mode;
  1237. }
  1238. EXPORT_SYMBOL(dm_table_get_mode);
  1239. static void suspend_targets(struct dm_table *t, unsigned postsuspend)
  1240. {
  1241. int i = t->num_targets;
  1242. struct dm_target *ti = t->targets;
  1243. while (i--) {
  1244. if (postsuspend) {
  1245. if (ti->type->postsuspend)
  1246. ti->type->postsuspend(ti);
  1247. } else if (ti->type->presuspend)
  1248. ti->type->presuspend(ti);
  1249. ti++;
  1250. }
  1251. }
  1252. void dm_table_presuspend_targets(struct dm_table *t)
  1253. {
  1254. if (!t)
  1255. return;
  1256. suspend_targets(t, 0);
  1257. }
  1258. void dm_table_postsuspend_targets(struct dm_table *t)
  1259. {
  1260. if (!t)
  1261. return;
  1262. suspend_targets(t, 1);
  1263. }
  1264. int dm_table_resume_targets(struct dm_table *t)
  1265. {
  1266. int i, r = 0;
  1267. for (i = 0; i < t->num_targets; i++) {
  1268. struct dm_target *ti = t->targets + i;
  1269. if (!ti->type->preresume)
  1270. continue;
  1271. r = ti->type->preresume(ti);
  1272. if (r) {
  1273. DMERR("%s: %s: preresume failed, error = %d",
  1274. dm_device_name(t->md), ti->type->name, r);
  1275. return r;
  1276. }
  1277. }
  1278. for (i = 0; i < t->num_targets; i++) {
  1279. struct dm_target *ti = t->targets + i;
  1280. if (ti->type->resume)
  1281. ti->type->resume(ti);
  1282. }
  1283. return 0;
  1284. }
  1285. void dm_table_add_target_callbacks(struct dm_table *t, struct dm_target_callbacks *cb)
  1286. {
  1287. list_add(&cb->list, &t->target_callbacks);
  1288. }
  1289. EXPORT_SYMBOL_GPL(dm_table_add_target_callbacks);
  1290. int dm_table_any_congested(struct dm_table *t, int bdi_bits)
  1291. {
  1292. struct dm_dev_internal *dd;
  1293. struct list_head *devices = dm_table_get_devices(t);
  1294. struct dm_target_callbacks *cb;
  1295. int r = 0;
  1296. list_for_each_entry(dd, devices, list) {
  1297. struct request_queue *q = bdev_get_queue(dd->dm_dev.bdev);
  1298. char b[BDEVNAME_SIZE];
  1299. if (likely(q))
  1300. r |= bdi_congested(&q->backing_dev_info, bdi_bits);
  1301. else
  1302. DMWARN_LIMIT("%s: any_congested: nonexistent device %s",
  1303. dm_device_name(t->md),
  1304. bdevname(dd->dm_dev.bdev, b));
  1305. }
  1306. list_for_each_entry(cb, &t->target_callbacks, list)
  1307. if (cb->congested_fn)
  1308. r |= cb->congested_fn(cb, bdi_bits);
  1309. return r;
  1310. }
  1311. int dm_table_any_busy_target(struct dm_table *t)
  1312. {
  1313. unsigned i;
  1314. struct dm_target *ti;
  1315. for (i = 0; i < t->num_targets; i++) {
  1316. ti = t->targets + i;
  1317. if (ti->type->busy && ti->type->busy(ti))
  1318. return 1;
  1319. }
  1320. return 0;
  1321. }
  1322. struct mapped_device *dm_table_get_md(struct dm_table *t)
  1323. {
  1324. return t->md;
  1325. }
  1326. EXPORT_SYMBOL(dm_table_get_md);
  1327. static int device_discard_capable(struct dm_target *ti, struct dm_dev *dev,
  1328. sector_t start, sector_t len, void *data)
  1329. {
  1330. struct request_queue *q = bdev_get_queue(dev->bdev);
  1331. return q && blk_queue_discard(q);
  1332. }
  1333. bool dm_table_supports_discards(struct dm_table *t)
  1334. {
  1335. struct dm_target *ti;
  1336. unsigned i = 0;
  1337. /*
  1338. * Unless any target used by the table set discards_supported,
  1339. * require at least one underlying device to support discards.
  1340. * t->devices includes internal dm devices such as mirror logs
  1341. * so we need to use iterate_devices here, which targets
  1342. * supporting discard selectively must provide.
  1343. */
  1344. while (i < dm_table_get_num_targets(t)) {
  1345. ti = dm_table_get_target(t, i++);
  1346. if (!ti->num_discard_bios)
  1347. continue;
  1348. if (ti->discards_supported)
  1349. return 1;
  1350. if (ti->type->iterate_devices &&
  1351. ti->type->iterate_devices(ti, device_discard_capable, NULL))
  1352. return 1;
  1353. }
  1354. return 0;
  1355. }