disk-io.c 110 KB

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  1. /*
  2. * Copyright (C) 2007 Oracle. All rights reserved.
  3. *
  4. * This program is free software; you can redistribute it and/or
  5. * modify it under the terms of the GNU General Public
  6. * License v2 as published by the Free Software Foundation.
  7. *
  8. * This program is distributed in the hope that it will be useful,
  9. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  11. * General Public License for more details.
  12. *
  13. * You should have received a copy of the GNU General Public
  14. * License along with this program; if not, write to the
  15. * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
  16. * Boston, MA 021110-1307, USA.
  17. */
  18. #include <linux/fs.h>
  19. #include <linux/blkdev.h>
  20. #include <linux/scatterlist.h>
  21. #include <linux/swap.h>
  22. #include <linux/radix-tree.h>
  23. #include <linux/writeback.h>
  24. #include <linux/buffer_head.h>
  25. #include <linux/workqueue.h>
  26. #include <linux/kthread.h>
  27. #include <linux/freezer.h>
  28. #include <linux/crc32c.h>
  29. #include <linux/slab.h>
  30. #include <linux/migrate.h>
  31. #include <linux/ratelimit.h>
  32. #include <linux/uuid.h>
  33. #include <linux/semaphore.h>
  34. #include <asm/unaligned.h>
  35. #include "ctree.h"
  36. #include "disk-io.h"
  37. #include "transaction.h"
  38. #include "btrfs_inode.h"
  39. #include "volumes.h"
  40. #include "print-tree.h"
  41. #include "async-thread.h"
  42. #include "locking.h"
  43. #include "tree-log.h"
  44. #include "free-space-cache.h"
  45. #include "inode-map.h"
  46. #include "check-integrity.h"
  47. #include "rcu-string.h"
  48. #include "dev-replace.h"
  49. #include "raid56.h"
  50. #include "sysfs.h"
  51. #ifdef CONFIG_X86
  52. #include <asm/cpufeature.h>
  53. #endif
  54. static struct extent_io_ops btree_extent_io_ops;
  55. static void end_workqueue_fn(struct btrfs_work *work);
  56. static void free_fs_root(struct btrfs_root *root);
  57. static int btrfs_check_super_valid(struct btrfs_fs_info *fs_info,
  58. int read_only);
  59. static void btrfs_destroy_ordered_operations(struct btrfs_transaction *t,
  60. struct btrfs_root *root);
  61. static void btrfs_destroy_ordered_extents(struct btrfs_root *root);
  62. static int btrfs_destroy_delayed_refs(struct btrfs_transaction *trans,
  63. struct btrfs_root *root);
  64. static void btrfs_destroy_delalloc_inodes(struct btrfs_root *root);
  65. static int btrfs_destroy_marked_extents(struct btrfs_root *root,
  66. struct extent_io_tree *dirty_pages,
  67. int mark);
  68. static int btrfs_destroy_pinned_extent(struct btrfs_root *root,
  69. struct extent_io_tree *pinned_extents);
  70. static int btrfs_cleanup_transaction(struct btrfs_root *root);
  71. static void btrfs_error_commit_super(struct btrfs_root *root);
  72. /*
  73. * end_io_wq structs are used to do processing in task context when an IO is
  74. * complete. This is used during reads to verify checksums, and it is used
  75. * by writes to insert metadata for new file extents after IO is complete.
  76. */
  77. struct end_io_wq {
  78. struct bio *bio;
  79. bio_end_io_t *end_io;
  80. void *private;
  81. struct btrfs_fs_info *info;
  82. int error;
  83. int metadata;
  84. struct list_head list;
  85. struct btrfs_work work;
  86. };
  87. /*
  88. * async submit bios are used to offload expensive checksumming
  89. * onto the worker threads. They checksum file and metadata bios
  90. * just before they are sent down the IO stack.
  91. */
  92. struct async_submit_bio {
  93. struct inode *inode;
  94. struct bio *bio;
  95. struct list_head list;
  96. extent_submit_bio_hook_t *submit_bio_start;
  97. extent_submit_bio_hook_t *submit_bio_done;
  98. int rw;
  99. int mirror_num;
  100. unsigned long bio_flags;
  101. /*
  102. * bio_offset is optional, can be used if the pages in the bio
  103. * can't tell us where in the file the bio should go
  104. */
  105. u64 bio_offset;
  106. struct btrfs_work work;
  107. int error;
  108. };
  109. /*
  110. * Lockdep class keys for extent_buffer->lock's in this root. For a given
  111. * eb, the lockdep key is determined by the btrfs_root it belongs to and
  112. * the level the eb occupies in the tree.
  113. *
  114. * Different roots are used for different purposes and may nest inside each
  115. * other and they require separate keysets. As lockdep keys should be
  116. * static, assign keysets according to the purpose of the root as indicated
  117. * by btrfs_root->objectid. This ensures that all special purpose roots
  118. * have separate keysets.
  119. *
  120. * Lock-nesting across peer nodes is always done with the immediate parent
  121. * node locked thus preventing deadlock. As lockdep doesn't know this, use
  122. * subclass to avoid triggering lockdep warning in such cases.
  123. *
  124. * The key is set by the readpage_end_io_hook after the buffer has passed
  125. * csum validation but before the pages are unlocked. It is also set by
  126. * btrfs_init_new_buffer on freshly allocated blocks.
  127. *
  128. * We also add a check to make sure the highest level of the tree is the
  129. * same as our lockdep setup here. If BTRFS_MAX_LEVEL changes, this code
  130. * needs update as well.
  131. */
  132. #ifdef CONFIG_DEBUG_LOCK_ALLOC
  133. # if BTRFS_MAX_LEVEL != 8
  134. # error
  135. # endif
  136. static struct btrfs_lockdep_keyset {
  137. u64 id; /* root objectid */
  138. const char *name_stem; /* lock name stem */
  139. char names[BTRFS_MAX_LEVEL + 1][20];
  140. struct lock_class_key keys[BTRFS_MAX_LEVEL + 1];
  141. } btrfs_lockdep_keysets[] = {
  142. { .id = BTRFS_ROOT_TREE_OBJECTID, .name_stem = "root" },
  143. { .id = BTRFS_EXTENT_TREE_OBJECTID, .name_stem = "extent" },
  144. { .id = BTRFS_CHUNK_TREE_OBJECTID, .name_stem = "chunk" },
  145. { .id = BTRFS_DEV_TREE_OBJECTID, .name_stem = "dev" },
  146. { .id = BTRFS_FS_TREE_OBJECTID, .name_stem = "fs" },
  147. { .id = BTRFS_CSUM_TREE_OBJECTID, .name_stem = "csum" },
  148. { .id = BTRFS_QUOTA_TREE_OBJECTID, .name_stem = "quota" },
  149. { .id = BTRFS_TREE_LOG_OBJECTID, .name_stem = "log" },
  150. { .id = BTRFS_TREE_RELOC_OBJECTID, .name_stem = "treloc" },
  151. { .id = BTRFS_DATA_RELOC_TREE_OBJECTID, .name_stem = "dreloc" },
  152. { .id = BTRFS_UUID_TREE_OBJECTID, .name_stem = "uuid" },
  153. { .id = 0, .name_stem = "tree" },
  154. };
  155. void __init btrfs_init_lockdep(void)
  156. {
  157. int i, j;
  158. /* initialize lockdep class names */
  159. for (i = 0; i < ARRAY_SIZE(btrfs_lockdep_keysets); i++) {
  160. struct btrfs_lockdep_keyset *ks = &btrfs_lockdep_keysets[i];
  161. for (j = 0; j < ARRAY_SIZE(ks->names); j++)
  162. snprintf(ks->names[j], sizeof(ks->names[j]),
  163. "btrfs-%s-%02d", ks->name_stem, j);
  164. }
  165. }
  166. void btrfs_set_buffer_lockdep_class(u64 objectid, struct extent_buffer *eb,
  167. int level)
  168. {
  169. struct btrfs_lockdep_keyset *ks;
  170. BUG_ON(level >= ARRAY_SIZE(ks->keys));
  171. /* find the matching keyset, id 0 is the default entry */
  172. for (ks = btrfs_lockdep_keysets; ks->id; ks++)
  173. if (ks->id == objectid)
  174. break;
  175. lockdep_set_class_and_name(&eb->lock,
  176. &ks->keys[level], ks->names[level]);
  177. }
  178. #endif
  179. /*
  180. * extents on the btree inode are pretty simple, there's one extent
  181. * that covers the entire device
  182. */
  183. static struct extent_map *btree_get_extent(struct inode *inode,
  184. struct page *page, size_t pg_offset, u64 start, u64 len,
  185. int create)
  186. {
  187. struct extent_map_tree *em_tree = &BTRFS_I(inode)->extent_tree;
  188. struct extent_map *em;
  189. int ret;
  190. read_lock(&em_tree->lock);
  191. em = lookup_extent_mapping(em_tree, start, len);
  192. if (em) {
  193. em->bdev =
  194. BTRFS_I(inode)->root->fs_info->fs_devices->latest_bdev;
  195. read_unlock(&em_tree->lock);
  196. goto out;
  197. }
  198. read_unlock(&em_tree->lock);
  199. em = alloc_extent_map();
  200. if (!em) {
  201. em = ERR_PTR(-ENOMEM);
  202. goto out;
  203. }
  204. em->start = 0;
  205. em->len = (u64)-1;
  206. em->block_len = (u64)-1;
  207. em->block_start = 0;
  208. em->bdev = BTRFS_I(inode)->root->fs_info->fs_devices->latest_bdev;
  209. write_lock(&em_tree->lock);
  210. ret = add_extent_mapping(em_tree, em, 0);
  211. if (ret == -EEXIST) {
  212. free_extent_map(em);
  213. em = lookup_extent_mapping(em_tree, start, len);
  214. if (!em)
  215. em = ERR_PTR(-EIO);
  216. } else if (ret) {
  217. free_extent_map(em);
  218. em = ERR_PTR(ret);
  219. }
  220. write_unlock(&em_tree->lock);
  221. out:
  222. return em;
  223. }
  224. u32 btrfs_csum_data(char *data, u32 seed, size_t len)
  225. {
  226. return crc32c(seed, data, len);
  227. }
  228. void btrfs_csum_final(u32 crc, char *result)
  229. {
  230. put_unaligned_le32(~crc, result);
  231. }
  232. /*
  233. * compute the csum for a btree block, and either verify it or write it
  234. * into the csum field of the block.
  235. */
  236. static int csum_tree_block(struct btrfs_root *root, struct extent_buffer *buf,
  237. int verify)
  238. {
  239. u16 csum_size = btrfs_super_csum_size(root->fs_info->super_copy);
  240. char *result = NULL;
  241. unsigned long len;
  242. unsigned long cur_len;
  243. unsigned long offset = BTRFS_CSUM_SIZE;
  244. char *kaddr;
  245. unsigned long map_start;
  246. unsigned long map_len;
  247. int err;
  248. u32 crc = ~(u32)0;
  249. unsigned long inline_result;
  250. len = buf->len - offset;
  251. while (len > 0) {
  252. err = map_private_extent_buffer(buf, offset, 32,
  253. &kaddr, &map_start, &map_len);
  254. if (err)
  255. return 1;
  256. cur_len = min(len, map_len - (offset - map_start));
  257. crc = btrfs_csum_data(kaddr + offset - map_start,
  258. crc, cur_len);
  259. len -= cur_len;
  260. offset += cur_len;
  261. }
  262. if (csum_size > sizeof(inline_result)) {
  263. result = kzalloc(csum_size * sizeof(char), GFP_NOFS);
  264. if (!result)
  265. return 1;
  266. } else {
  267. result = (char *)&inline_result;
  268. }
  269. btrfs_csum_final(crc, result);
  270. if (verify) {
  271. if (memcmp_extent_buffer(buf, result, 0, csum_size)) {
  272. u32 val;
  273. u32 found = 0;
  274. memcpy(&found, result, csum_size);
  275. read_extent_buffer(buf, &val, 0, csum_size);
  276. printk_ratelimited(KERN_INFO "btrfs: %s checksum verify "
  277. "failed on %llu wanted %X found %X "
  278. "level %d\n",
  279. root->fs_info->sb->s_id, buf->start,
  280. val, found, btrfs_header_level(buf));
  281. if (result != (char *)&inline_result)
  282. kfree(result);
  283. return 1;
  284. }
  285. } else {
  286. write_extent_buffer(buf, result, 0, csum_size);
  287. }
  288. if (result != (char *)&inline_result)
  289. kfree(result);
  290. return 0;
  291. }
  292. /*
  293. * we can't consider a given block up to date unless the transid of the
  294. * block matches the transid in the parent node's pointer. This is how we
  295. * detect blocks that either didn't get written at all or got written
  296. * in the wrong place.
  297. */
  298. static int verify_parent_transid(struct extent_io_tree *io_tree,
  299. struct extent_buffer *eb, u64 parent_transid,
  300. int atomic)
  301. {
  302. struct extent_state *cached_state = NULL;
  303. int ret;
  304. if (!parent_transid || btrfs_header_generation(eb) == parent_transid)
  305. return 0;
  306. if (atomic)
  307. return -EAGAIN;
  308. lock_extent_bits(io_tree, eb->start, eb->start + eb->len - 1,
  309. 0, &cached_state);
  310. if (extent_buffer_uptodate(eb) &&
  311. btrfs_header_generation(eb) == parent_transid) {
  312. ret = 0;
  313. goto out;
  314. }
  315. printk_ratelimited("parent transid verify failed on %llu wanted %llu "
  316. "found %llu\n",
  317. eb->start, parent_transid, btrfs_header_generation(eb));
  318. ret = 1;
  319. clear_extent_buffer_uptodate(eb);
  320. out:
  321. unlock_extent_cached(io_tree, eb->start, eb->start + eb->len - 1,
  322. &cached_state, GFP_NOFS);
  323. return ret;
  324. }
  325. /*
  326. * Return 0 if the superblock checksum type matches the checksum value of that
  327. * algorithm. Pass the raw disk superblock data.
  328. */
  329. static int btrfs_check_super_csum(char *raw_disk_sb)
  330. {
  331. struct btrfs_super_block *disk_sb =
  332. (struct btrfs_super_block *)raw_disk_sb;
  333. u16 csum_type = btrfs_super_csum_type(disk_sb);
  334. int ret = 0;
  335. if (csum_type == BTRFS_CSUM_TYPE_CRC32) {
  336. u32 crc = ~(u32)0;
  337. const int csum_size = sizeof(crc);
  338. char result[csum_size];
  339. /*
  340. * The super_block structure does not span the whole
  341. * BTRFS_SUPER_INFO_SIZE range, we expect that the unused space
  342. * is filled with zeros and is included in the checkum.
  343. */
  344. crc = btrfs_csum_data(raw_disk_sb + BTRFS_CSUM_SIZE,
  345. crc, BTRFS_SUPER_INFO_SIZE - BTRFS_CSUM_SIZE);
  346. btrfs_csum_final(crc, result);
  347. if (memcmp(raw_disk_sb, result, csum_size))
  348. ret = 1;
  349. if (ret && btrfs_super_generation(disk_sb) < 10) {
  350. printk(KERN_WARNING "btrfs: super block crcs don't match, older mkfs detected\n");
  351. ret = 0;
  352. }
  353. }
  354. if (csum_type >= ARRAY_SIZE(btrfs_csum_sizes)) {
  355. printk(KERN_ERR "btrfs: unsupported checksum algorithm %u\n",
  356. csum_type);
  357. ret = 1;
  358. }
  359. return ret;
  360. }
  361. /*
  362. * helper to read a given tree block, doing retries as required when
  363. * the checksums don't match and we have alternate mirrors to try.
  364. */
  365. static int btree_read_extent_buffer_pages(struct btrfs_root *root,
  366. struct extent_buffer *eb,
  367. u64 start, u64 parent_transid)
  368. {
  369. struct extent_io_tree *io_tree;
  370. int failed = 0;
  371. int ret;
  372. int num_copies = 0;
  373. int mirror_num = 0;
  374. int failed_mirror = 0;
  375. clear_bit(EXTENT_BUFFER_CORRUPT, &eb->bflags);
  376. io_tree = &BTRFS_I(root->fs_info->btree_inode)->io_tree;
  377. while (1) {
  378. ret = read_extent_buffer_pages(io_tree, eb, start,
  379. WAIT_COMPLETE,
  380. btree_get_extent, mirror_num);
  381. if (!ret) {
  382. if (!verify_parent_transid(io_tree, eb,
  383. parent_transid, 0))
  384. break;
  385. else
  386. ret = -EIO;
  387. }
  388. /*
  389. * This buffer's crc is fine, but its contents are corrupted, so
  390. * there is no reason to read the other copies, they won't be
  391. * any less wrong.
  392. */
  393. if (test_bit(EXTENT_BUFFER_CORRUPT, &eb->bflags))
  394. break;
  395. num_copies = btrfs_num_copies(root->fs_info,
  396. eb->start, eb->len);
  397. if (num_copies == 1)
  398. break;
  399. if (!failed_mirror) {
  400. failed = 1;
  401. failed_mirror = eb->read_mirror;
  402. }
  403. mirror_num++;
  404. if (mirror_num == failed_mirror)
  405. mirror_num++;
  406. if (mirror_num > num_copies)
  407. break;
  408. }
  409. if (failed && !ret && failed_mirror)
  410. repair_eb_io_failure(root, eb, failed_mirror);
  411. return ret;
  412. }
  413. /*
  414. * checksum a dirty tree block before IO. This has extra checks to make sure
  415. * we only fill in the checksum field in the first page of a multi-page block
  416. */
  417. static int csum_dirty_buffer(struct btrfs_root *root, struct page *page)
  418. {
  419. u64 start = page_offset(page);
  420. u64 found_start;
  421. struct extent_buffer *eb;
  422. eb = (struct extent_buffer *)page->private;
  423. if (page != eb->pages[0])
  424. return 0;
  425. found_start = btrfs_header_bytenr(eb);
  426. if (WARN_ON(found_start != start || !PageUptodate(page)))
  427. return 0;
  428. csum_tree_block(root, eb, 0);
  429. return 0;
  430. }
  431. static int check_tree_block_fsid(struct btrfs_root *root,
  432. struct extent_buffer *eb)
  433. {
  434. struct btrfs_fs_devices *fs_devices = root->fs_info->fs_devices;
  435. u8 fsid[BTRFS_UUID_SIZE];
  436. int ret = 1;
  437. read_extent_buffer(eb, fsid, btrfs_header_fsid(), BTRFS_FSID_SIZE);
  438. while (fs_devices) {
  439. if (!memcmp(fsid, fs_devices->fsid, BTRFS_FSID_SIZE)) {
  440. ret = 0;
  441. break;
  442. }
  443. fs_devices = fs_devices->seed;
  444. }
  445. return ret;
  446. }
  447. #define CORRUPT(reason, eb, root, slot) \
  448. printk(KERN_CRIT "btrfs: corrupt leaf, %s: block=%llu," \
  449. "root=%llu, slot=%d\n", reason, \
  450. btrfs_header_bytenr(eb), root->objectid, slot)
  451. static noinline int check_leaf(struct btrfs_root *root,
  452. struct extent_buffer *leaf)
  453. {
  454. struct btrfs_key key;
  455. struct btrfs_key leaf_key;
  456. u32 nritems = btrfs_header_nritems(leaf);
  457. int slot;
  458. if (nritems == 0)
  459. return 0;
  460. /* Check the 0 item */
  461. if (btrfs_item_offset_nr(leaf, 0) + btrfs_item_size_nr(leaf, 0) !=
  462. BTRFS_LEAF_DATA_SIZE(root)) {
  463. CORRUPT("invalid item offset size pair", leaf, root, 0);
  464. return -EIO;
  465. }
  466. /*
  467. * Check to make sure each items keys are in the correct order and their
  468. * offsets make sense. We only have to loop through nritems-1 because
  469. * we check the current slot against the next slot, which verifies the
  470. * next slot's offset+size makes sense and that the current's slot
  471. * offset is correct.
  472. */
  473. for (slot = 0; slot < nritems - 1; slot++) {
  474. btrfs_item_key_to_cpu(leaf, &leaf_key, slot);
  475. btrfs_item_key_to_cpu(leaf, &key, slot + 1);
  476. /* Make sure the keys are in the right order */
  477. if (btrfs_comp_cpu_keys(&leaf_key, &key) >= 0) {
  478. CORRUPT("bad key order", leaf, root, slot);
  479. return -EIO;
  480. }
  481. /*
  482. * Make sure the offset and ends are right, remember that the
  483. * item data starts at the end of the leaf and grows towards the
  484. * front.
  485. */
  486. if (btrfs_item_offset_nr(leaf, slot) !=
  487. btrfs_item_end_nr(leaf, slot + 1)) {
  488. CORRUPT("slot offset bad", leaf, root, slot);
  489. return -EIO;
  490. }
  491. /*
  492. * Check to make sure that we don't point outside of the leaf,
  493. * just incase all the items are consistent to eachother, but
  494. * all point outside of the leaf.
  495. */
  496. if (btrfs_item_end_nr(leaf, slot) >
  497. BTRFS_LEAF_DATA_SIZE(root)) {
  498. CORRUPT("slot end outside of leaf", leaf, root, slot);
  499. return -EIO;
  500. }
  501. }
  502. return 0;
  503. }
  504. static int btree_readpage_end_io_hook(struct btrfs_io_bio *io_bio,
  505. u64 phy_offset, struct page *page,
  506. u64 start, u64 end, int mirror)
  507. {
  508. u64 found_start;
  509. int found_level;
  510. struct extent_buffer *eb;
  511. struct btrfs_root *root = BTRFS_I(page->mapping->host)->root;
  512. int ret = 0;
  513. int reads_done;
  514. if (!page->private)
  515. goto out;
  516. eb = (struct extent_buffer *)page->private;
  517. /* the pending IO might have been the only thing that kept this buffer
  518. * in memory. Make sure we have a ref for all this other checks
  519. */
  520. extent_buffer_get(eb);
  521. reads_done = atomic_dec_and_test(&eb->io_pages);
  522. if (!reads_done)
  523. goto err;
  524. eb->read_mirror = mirror;
  525. if (test_bit(EXTENT_BUFFER_IOERR, &eb->bflags)) {
  526. ret = -EIO;
  527. goto err;
  528. }
  529. found_start = btrfs_header_bytenr(eb);
  530. if (found_start != eb->start) {
  531. printk_ratelimited(KERN_INFO "btrfs bad tree block start "
  532. "%llu %llu\n",
  533. found_start, eb->start);
  534. ret = -EIO;
  535. goto err;
  536. }
  537. if (check_tree_block_fsid(root, eb)) {
  538. printk_ratelimited(KERN_INFO "btrfs bad fsid on block %llu\n",
  539. eb->start);
  540. ret = -EIO;
  541. goto err;
  542. }
  543. found_level = btrfs_header_level(eb);
  544. if (found_level >= BTRFS_MAX_LEVEL) {
  545. btrfs_info(root->fs_info, "bad tree block level %d\n",
  546. (int)btrfs_header_level(eb));
  547. ret = -EIO;
  548. goto err;
  549. }
  550. btrfs_set_buffer_lockdep_class(btrfs_header_owner(eb),
  551. eb, found_level);
  552. ret = csum_tree_block(root, eb, 1);
  553. if (ret) {
  554. ret = -EIO;
  555. goto err;
  556. }
  557. /*
  558. * If this is a leaf block and it is corrupt, set the corrupt bit so
  559. * that we don't try and read the other copies of this block, just
  560. * return -EIO.
  561. */
  562. if (found_level == 0 && check_leaf(root, eb)) {
  563. set_bit(EXTENT_BUFFER_CORRUPT, &eb->bflags);
  564. ret = -EIO;
  565. }
  566. if (!ret)
  567. set_extent_buffer_uptodate(eb);
  568. err:
  569. if (reads_done &&
  570. test_and_clear_bit(EXTENT_BUFFER_READAHEAD, &eb->bflags))
  571. btree_readahead_hook(root, eb, eb->start, ret);
  572. if (ret) {
  573. /*
  574. * our io error hook is going to dec the io pages
  575. * again, we have to make sure it has something
  576. * to decrement
  577. */
  578. atomic_inc(&eb->io_pages);
  579. clear_extent_buffer_uptodate(eb);
  580. }
  581. free_extent_buffer(eb);
  582. out:
  583. return ret;
  584. }
  585. static int btree_io_failed_hook(struct page *page, int failed_mirror)
  586. {
  587. struct extent_buffer *eb;
  588. struct btrfs_root *root = BTRFS_I(page->mapping->host)->root;
  589. eb = (struct extent_buffer *)page->private;
  590. set_bit(EXTENT_BUFFER_IOERR, &eb->bflags);
  591. eb->read_mirror = failed_mirror;
  592. atomic_dec(&eb->io_pages);
  593. if (test_and_clear_bit(EXTENT_BUFFER_READAHEAD, &eb->bflags))
  594. btree_readahead_hook(root, eb, eb->start, -EIO);
  595. return -EIO; /* we fixed nothing */
  596. }
  597. static void end_workqueue_bio(struct bio *bio, int err)
  598. {
  599. struct end_io_wq *end_io_wq = bio->bi_private;
  600. struct btrfs_fs_info *fs_info;
  601. fs_info = end_io_wq->info;
  602. end_io_wq->error = err;
  603. end_io_wq->work.func = end_workqueue_fn;
  604. end_io_wq->work.flags = 0;
  605. if (bio->bi_rw & REQ_WRITE) {
  606. if (end_io_wq->metadata == BTRFS_WQ_ENDIO_METADATA)
  607. btrfs_queue_worker(&fs_info->endio_meta_write_workers,
  608. &end_io_wq->work);
  609. else if (end_io_wq->metadata == BTRFS_WQ_ENDIO_FREE_SPACE)
  610. btrfs_queue_worker(&fs_info->endio_freespace_worker,
  611. &end_io_wq->work);
  612. else if (end_io_wq->metadata == BTRFS_WQ_ENDIO_RAID56)
  613. btrfs_queue_worker(&fs_info->endio_raid56_workers,
  614. &end_io_wq->work);
  615. else
  616. btrfs_queue_worker(&fs_info->endio_write_workers,
  617. &end_io_wq->work);
  618. } else {
  619. if (end_io_wq->metadata == BTRFS_WQ_ENDIO_RAID56)
  620. btrfs_queue_worker(&fs_info->endio_raid56_workers,
  621. &end_io_wq->work);
  622. else if (end_io_wq->metadata)
  623. btrfs_queue_worker(&fs_info->endio_meta_workers,
  624. &end_io_wq->work);
  625. else
  626. btrfs_queue_worker(&fs_info->endio_workers,
  627. &end_io_wq->work);
  628. }
  629. }
  630. /*
  631. * For the metadata arg you want
  632. *
  633. * 0 - if data
  634. * 1 - if normal metadta
  635. * 2 - if writing to the free space cache area
  636. * 3 - raid parity work
  637. */
  638. int btrfs_bio_wq_end_io(struct btrfs_fs_info *info, struct bio *bio,
  639. int metadata)
  640. {
  641. struct end_io_wq *end_io_wq;
  642. end_io_wq = kmalloc(sizeof(*end_io_wq), GFP_NOFS);
  643. if (!end_io_wq)
  644. return -ENOMEM;
  645. end_io_wq->private = bio->bi_private;
  646. end_io_wq->end_io = bio->bi_end_io;
  647. end_io_wq->info = info;
  648. end_io_wq->error = 0;
  649. end_io_wq->bio = bio;
  650. end_io_wq->metadata = metadata;
  651. bio->bi_private = end_io_wq;
  652. bio->bi_end_io = end_workqueue_bio;
  653. return 0;
  654. }
  655. unsigned long btrfs_async_submit_limit(struct btrfs_fs_info *info)
  656. {
  657. unsigned long limit = min_t(unsigned long,
  658. info->workers.max_workers,
  659. info->fs_devices->open_devices);
  660. return 256 * limit;
  661. }
  662. static void run_one_async_start(struct btrfs_work *work)
  663. {
  664. struct async_submit_bio *async;
  665. int ret;
  666. async = container_of(work, struct async_submit_bio, work);
  667. ret = async->submit_bio_start(async->inode, async->rw, async->bio,
  668. async->mirror_num, async->bio_flags,
  669. async->bio_offset);
  670. if (ret)
  671. async->error = ret;
  672. }
  673. static void run_one_async_done(struct btrfs_work *work)
  674. {
  675. struct btrfs_fs_info *fs_info;
  676. struct async_submit_bio *async;
  677. int limit;
  678. async = container_of(work, struct async_submit_bio, work);
  679. fs_info = BTRFS_I(async->inode)->root->fs_info;
  680. limit = btrfs_async_submit_limit(fs_info);
  681. limit = limit * 2 / 3;
  682. if (atomic_dec_return(&fs_info->nr_async_submits) < limit &&
  683. waitqueue_active(&fs_info->async_submit_wait))
  684. wake_up(&fs_info->async_submit_wait);
  685. /* If an error occured we just want to clean up the bio and move on */
  686. if (async->error) {
  687. bio_endio(async->bio, async->error);
  688. return;
  689. }
  690. async->submit_bio_done(async->inode, async->rw, async->bio,
  691. async->mirror_num, async->bio_flags,
  692. async->bio_offset);
  693. }
  694. static void run_one_async_free(struct btrfs_work *work)
  695. {
  696. struct async_submit_bio *async;
  697. async = container_of(work, struct async_submit_bio, work);
  698. kfree(async);
  699. }
  700. int btrfs_wq_submit_bio(struct btrfs_fs_info *fs_info, struct inode *inode,
  701. int rw, struct bio *bio, int mirror_num,
  702. unsigned long bio_flags,
  703. u64 bio_offset,
  704. extent_submit_bio_hook_t *submit_bio_start,
  705. extent_submit_bio_hook_t *submit_bio_done)
  706. {
  707. struct async_submit_bio *async;
  708. async = kmalloc(sizeof(*async), GFP_NOFS);
  709. if (!async)
  710. return -ENOMEM;
  711. async->inode = inode;
  712. async->rw = rw;
  713. async->bio = bio;
  714. async->mirror_num = mirror_num;
  715. async->submit_bio_start = submit_bio_start;
  716. async->submit_bio_done = submit_bio_done;
  717. async->work.func = run_one_async_start;
  718. async->work.ordered_func = run_one_async_done;
  719. async->work.ordered_free = run_one_async_free;
  720. async->work.flags = 0;
  721. async->bio_flags = bio_flags;
  722. async->bio_offset = bio_offset;
  723. async->error = 0;
  724. atomic_inc(&fs_info->nr_async_submits);
  725. if (rw & REQ_SYNC)
  726. btrfs_set_work_high_prio(&async->work);
  727. btrfs_queue_worker(&fs_info->workers, &async->work);
  728. while (atomic_read(&fs_info->async_submit_draining) &&
  729. atomic_read(&fs_info->nr_async_submits)) {
  730. wait_event(fs_info->async_submit_wait,
  731. (atomic_read(&fs_info->nr_async_submits) == 0));
  732. }
  733. return 0;
  734. }
  735. static int btree_csum_one_bio(struct bio *bio)
  736. {
  737. struct bio_vec *bvec = bio->bi_io_vec;
  738. int bio_index = 0;
  739. struct btrfs_root *root;
  740. int ret = 0;
  741. WARN_ON(bio->bi_vcnt <= 0);
  742. while (bio_index < bio->bi_vcnt) {
  743. root = BTRFS_I(bvec->bv_page->mapping->host)->root;
  744. ret = csum_dirty_buffer(root, bvec->bv_page);
  745. if (ret)
  746. break;
  747. bio_index++;
  748. bvec++;
  749. }
  750. return ret;
  751. }
  752. static int __btree_submit_bio_start(struct inode *inode, int rw,
  753. struct bio *bio, int mirror_num,
  754. unsigned long bio_flags,
  755. u64 bio_offset)
  756. {
  757. /*
  758. * when we're called for a write, we're already in the async
  759. * submission context. Just jump into btrfs_map_bio
  760. */
  761. return btree_csum_one_bio(bio);
  762. }
  763. static int __btree_submit_bio_done(struct inode *inode, int rw, struct bio *bio,
  764. int mirror_num, unsigned long bio_flags,
  765. u64 bio_offset)
  766. {
  767. int ret;
  768. /*
  769. * when we're called for a write, we're already in the async
  770. * submission context. Just jump into btrfs_map_bio
  771. */
  772. ret = btrfs_map_bio(BTRFS_I(inode)->root, rw, bio, mirror_num, 1);
  773. if (ret)
  774. bio_endio(bio, ret);
  775. return ret;
  776. }
  777. static int check_async_write(struct inode *inode, unsigned long bio_flags)
  778. {
  779. if (bio_flags & EXTENT_BIO_TREE_LOG)
  780. return 0;
  781. #ifdef CONFIG_X86
  782. if (cpu_has_xmm4_2)
  783. return 0;
  784. #endif
  785. return 1;
  786. }
  787. static int btree_submit_bio_hook(struct inode *inode, int rw, struct bio *bio,
  788. int mirror_num, unsigned long bio_flags,
  789. u64 bio_offset)
  790. {
  791. int async = check_async_write(inode, bio_flags);
  792. int ret;
  793. if (!(rw & REQ_WRITE)) {
  794. /*
  795. * called for a read, do the setup so that checksum validation
  796. * can happen in the async kernel threads
  797. */
  798. ret = btrfs_bio_wq_end_io(BTRFS_I(inode)->root->fs_info,
  799. bio, 1);
  800. if (ret)
  801. goto out_w_error;
  802. ret = btrfs_map_bio(BTRFS_I(inode)->root, rw, bio,
  803. mirror_num, 0);
  804. } else if (!async) {
  805. ret = btree_csum_one_bio(bio);
  806. if (ret)
  807. goto out_w_error;
  808. ret = btrfs_map_bio(BTRFS_I(inode)->root, rw, bio,
  809. mirror_num, 0);
  810. } else {
  811. /*
  812. * kthread helpers are used to submit writes so that
  813. * checksumming can happen in parallel across all CPUs
  814. */
  815. ret = btrfs_wq_submit_bio(BTRFS_I(inode)->root->fs_info,
  816. inode, rw, bio, mirror_num, 0,
  817. bio_offset,
  818. __btree_submit_bio_start,
  819. __btree_submit_bio_done);
  820. }
  821. if (ret) {
  822. out_w_error:
  823. bio_endio(bio, ret);
  824. }
  825. return ret;
  826. }
  827. #ifdef CONFIG_MIGRATION
  828. static int btree_migratepage(struct address_space *mapping,
  829. struct page *newpage, struct page *page,
  830. enum migrate_mode mode)
  831. {
  832. /*
  833. * we can't safely write a btree page from here,
  834. * we haven't done the locking hook
  835. */
  836. if (PageDirty(page))
  837. return -EAGAIN;
  838. /*
  839. * Buffers may be managed in a filesystem specific way.
  840. * We must have no buffers or drop them.
  841. */
  842. if (page_has_private(page) &&
  843. !try_to_release_page(page, GFP_KERNEL))
  844. return -EAGAIN;
  845. return migrate_page(mapping, newpage, page, mode);
  846. }
  847. #endif
  848. static int btree_writepages(struct address_space *mapping,
  849. struct writeback_control *wbc)
  850. {
  851. struct btrfs_fs_info *fs_info;
  852. int ret;
  853. if (wbc->sync_mode == WB_SYNC_NONE) {
  854. if (wbc->for_kupdate)
  855. return 0;
  856. fs_info = BTRFS_I(mapping->host)->root->fs_info;
  857. /* this is a bit racy, but that's ok */
  858. ret = percpu_counter_compare(&fs_info->dirty_metadata_bytes,
  859. BTRFS_DIRTY_METADATA_THRESH);
  860. if (ret < 0)
  861. return 0;
  862. }
  863. return btree_write_cache_pages(mapping, wbc);
  864. }
  865. static int btree_readpage(struct file *file, struct page *page)
  866. {
  867. struct extent_io_tree *tree;
  868. tree = &BTRFS_I(page->mapping->host)->io_tree;
  869. return extent_read_full_page(tree, page, btree_get_extent, 0);
  870. }
  871. static int btree_releasepage(struct page *page, gfp_t gfp_flags)
  872. {
  873. if (PageWriteback(page) || PageDirty(page))
  874. return 0;
  875. return try_release_extent_buffer(page);
  876. }
  877. static void btree_invalidatepage(struct page *page, unsigned int offset,
  878. unsigned int length)
  879. {
  880. struct extent_io_tree *tree;
  881. tree = &BTRFS_I(page->mapping->host)->io_tree;
  882. extent_invalidatepage(tree, page, offset);
  883. btree_releasepage(page, GFP_NOFS);
  884. if (PagePrivate(page)) {
  885. printk(KERN_WARNING "btrfs warning page private not zero "
  886. "on page %llu\n", (unsigned long long)page_offset(page));
  887. ClearPagePrivate(page);
  888. set_page_private(page, 0);
  889. page_cache_release(page);
  890. }
  891. }
  892. static int btree_set_page_dirty(struct page *page)
  893. {
  894. #ifdef DEBUG
  895. struct extent_buffer *eb;
  896. BUG_ON(!PagePrivate(page));
  897. eb = (struct extent_buffer *)page->private;
  898. BUG_ON(!eb);
  899. BUG_ON(!test_bit(EXTENT_BUFFER_DIRTY, &eb->bflags));
  900. BUG_ON(!atomic_read(&eb->refs));
  901. btrfs_assert_tree_locked(eb);
  902. #endif
  903. return __set_page_dirty_nobuffers(page);
  904. }
  905. static const struct address_space_operations btree_aops = {
  906. .readpage = btree_readpage,
  907. .writepages = btree_writepages,
  908. .releasepage = btree_releasepage,
  909. .invalidatepage = btree_invalidatepage,
  910. #ifdef CONFIG_MIGRATION
  911. .migratepage = btree_migratepage,
  912. #endif
  913. .set_page_dirty = btree_set_page_dirty,
  914. };
  915. int readahead_tree_block(struct btrfs_root *root, u64 bytenr, u32 blocksize,
  916. u64 parent_transid)
  917. {
  918. struct extent_buffer *buf = NULL;
  919. struct inode *btree_inode = root->fs_info->btree_inode;
  920. int ret = 0;
  921. buf = btrfs_find_create_tree_block(root, bytenr, blocksize);
  922. if (!buf)
  923. return 0;
  924. read_extent_buffer_pages(&BTRFS_I(btree_inode)->io_tree,
  925. buf, 0, WAIT_NONE, btree_get_extent, 0);
  926. free_extent_buffer(buf);
  927. return ret;
  928. }
  929. int reada_tree_block_flagged(struct btrfs_root *root, u64 bytenr, u32 blocksize,
  930. int mirror_num, struct extent_buffer **eb)
  931. {
  932. struct extent_buffer *buf = NULL;
  933. struct inode *btree_inode = root->fs_info->btree_inode;
  934. struct extent_io_tree *io_tree = &BTRFS_I(btree_inode)->io_tree;
  935. int ret;
  936. buf = btrfs_find_create_tree_block(root, bytenr, blocksize);
  937. if (!buf)
  938. return 0;
  939. set_bit(EXTENT_BUFFER_READAHEAD, &buf->bflags);
  940. ret = read_extent_buffer_pages(io_tree, buf, 0, WAIT_PAGE_LOCK,
  941. btree_get_extent, mirror_num);
  942. if (ret) {
  943. free_extent_buffer(buf);
  944. return ret;
  945. }
  946. if (test_bit(EXTENT_BUFFER_CORRUPT, &buf->bflags)) {
  947. free_extent_buffer(buf);
  948. return -EIO;
  949. } else if (extent_buffer_uptodate(buf)) {
  950. *eb = buf;
  951. } else {
  952. free_extent_buffer(buf);
  953. }
  954. return 0;
  955. }
  956. struct extent_buffer *btrfs_find_tree_block(struct btrfs_root *root,
  957. u64 bytenr, u32 blocksize)
  958. {
  959. struct inode *btree_inode = root->fs_info->btree_inode;
  960. struct extent_buffer *eb;
  961. eb = find_extent_buffer(&BTRFS_I(btree_inode)->io_tree, bytenr);
  962. return eb;
  963. }
  964. struct extent_buffer *btrfs_find_create_tree_block(struct btrfs_root *root,
  965. u64 bytenr, u32 blocksize)
  966. {
  967. struct inode *btree_inode = root->fs_info->btree_inode;
  968. struct extent_buffer *eb;
  969. eb = alloc_extent_buffer(&BTRFS_I(btree_inode)->io_tree,
  970. bytenr, blocksize);
  971. return eb;
  972. }
  973. int btrfs_write_tree_block(struct extent_buffer *buf)
  974. {
  975. return filemap_fdatawrite_range(buf->pages[0]->mapping, buf->start,
  976. buf->start + buf->len - 1);
  977. }
  978. int btrfs_wait_tree_block_writeback(struct extent_buffer *buf)
  979. {
  980. return filemap_fdatawait_range(buf->pages[0]->mapping,
  981. buf->start, buf->start + buf->len - 1);
  982. }
  983. struct extent_buffer *read_tree_block(struct btrfs_root *root, u64 bytenr,
  984. u32 blocksize, u64 parent_transid)
  985. {
  986. struct extent_buffer *buf = NULL;
  987. int ret;
  988. buf = btrfs_find_create_tree_block(root, bytenr, blocksize);
  989. if (!buf)
  990. return NULL;
  991. ret = btree_read_extent_buffer_pages(root, buf, 0, parent_transid);
  992. if (ret) {
  993. free_extent_buffer(buf);
  994. return NULL;
  995. }
  996. return buf;
  997. }
  998. void clean_tree_block(struct btrfs_trans_handle *trans, struct btrfs_root *root,
  999. struct extent_buffer *buf)
  1000. {
  1001. struct btrfs_fs_info *fs_info = root->fs_info;
  1002. if (btrfs_header_generation(buf) ==
  1003. fs_info->running_transaction->transid) {
  1004. btrfs_assert_tree_locked(buf);
  1005. if (test_and_clear_bit(EXTENT_BUFFER_DIRTY, &buf->bflags)) {
  1006. __percpu_counter_add(&fs_info->dirty_metadata_bytes,
  1007. -buf->len,
  1008. fs_info->dirty_metadata_batch);
  1009. /* ugh, clear_extent_buffer_dirty needs to lock the page */
  1010. btrfs_set_lock_blocking(buf);
  1011. clear_extent_buffer_dirty(buf);
  1012. }
  1013. }
  1014. }
  1015. static void __setup_root(u32 nodesize, u32 leafsize, u32 sectorsize,
  1016. u32 stripesize, struct btrfs_root *root,
  1017. struct btrfs_fs_info *fs_info,
  1018. u64 objectid)
  1019. {
  1020. root->node = NULL;
  1021. root->commit_root = NULL;
  1022. root->sectorsize = sectorsize;
  1023. root->nodesize = nodesize;
  1024. root->leafsize = leafsize;
  1025. root->stripesize = stripesize;
  1026. root->ref_cows = 0;
  1027. root->track_dirty = 0;
  1028. root->in_radix = 0;
  1029. root->orphan_item_inserted = 0;
  1030. root->orphan_cleanup_state = 0;
  1031. root->objectid = objectid;
  1032. root->last_trans = 0;
  1033. root->highest_objectid = 0;
  1034. root->nr_delalloc_inodes = 0;
  1035. root->nr_ordered_extents = 0;
  1036. root->name = NULL;
  1037. root->inode_tree = RB_ROOT;
  1038. INIT_RADIX_TREE(&root->delayed_nodes_tree, GFP_ATOMIC);
  1039. root->block_rsv = NULL;
  1040. root->orphan_block_rsv = NULL;
  1041. INIT_LIST_HEAD(&root->dirty_list);
  1042. INIT_LIST_HEAD(&root->root_list);
  1043. INIT_LIST_HEAD(&root->delalloc_inodes);
  1044. INIT_LIST_HEAD(&root->delalloc_root);
  1045. INIT_LIST_HEAD(&root->ordered_extents);
  1046. INIT_LIST_HEAD(&root->ordered_root);
  1047. INIT_LIST_HEAD(&root->logged_list[0]);
  1048. INIT_LIST_HEAD(&root->logged_list[1]);
  1049. spin_lock_init(&root->orphan_lock);
  1050. spin_lock_init(&root->inode_lock);
  1051. spin_lock_init(&root->delalloc_lock);
  1052. spin_lock_init(&root->ordered_extent_lock);
  1053. spin_lock_init(&root->accounting_lock);
  1054. spin_lock_init(&root->log_extents_lock[0]);
  1055. spin_lock_init(&root->log_extents_lock[1]);
  1056. mutex_init(&root->objectid_mutex);
  1057. mutex_init(&root->log_mutex);
  1058. init_waitqueue_head(&root->log_writer_wait);
  1059. init_waitqueue_head(&root->log_commit_wait[0]);
  1060. init_waitqueue_head(&root->log_commit_wait[1]);
  1061. atomic_set(&root->log_commit[0], 0);
  1062. atomic_set(&root->log_commit[1], 0);
  1063. atomic_set(&root->log_writers, 0);
  1064. atomic_set(&root->log_batch, 0);
  1065. atomic_set(&root->orphan_inodes, 0);
  1066. atomic_set(&root->refs, 1);
  1067. root->log_transid = 0;
  1068. root->last_log_commit = 0;
  1069. if (fs_info)
  1070. extent_io_tree_init(&root->dirty_log_pages,
  1071. fs_info->btree_inode->i_mapping);
  1072. memset(&root->root_key, 0, sizeof(root->root_key));
  1073. memset(&root->root_item, 0, sizeof(root->root_item));
  1074. memset(&root->defrag_progress, 0, sizeof(root->defrag_progress));
  1075. memset(&root->root_kobj, 0, sizeof(root->root_kobj));
  1076. if (fs_info)
  1077. root->defrag_trans_start = fs_info->generation;
  1078. else
  1079. root->defrag_trans_start = 0;
  1080. init_completion(&root->kobj_unregister);
  1081. root->defrag_running = 0;
  1082. root->root_key.objectid = objectid;
  1083. root->anon_dev = 0;
  1084. spin_lock_init(&root->root_item_lock);
  1085. }
  1086. static struct btrfs_root *btrfs_alloc_root(struct btrfs_fs_info *fs_info)
  1087. {
  1088. struct btrfs_root *root = kzalloc(sizeof(*root), GFP_NOFS);
  1089. if (root)
  1090. root->fs_info = fs_info;
  1091. return root;
  1092. }
  1093. #ifdef CONFIG_BTRFS_FS_RUN_SANITY_TESTS
  1094. /* Should only be used by the testing infrastructure */
  1095. struct btrfs_root *btrfs_alloc_dummy_root(void)
  1096. {
  1097. struct btrfs_root *root;
  1098. root = btrfs_alloc_root(NULL);
  1099. if (!root)
  1100. return ERR_PTR(-ENOMEM);
  1101. __setup_root(4096, 4096, 4096, 4096, root, NULL, 1);
  1102. root->dummy_root = 1;
  1103. return root;
  1104. }
  1105. #endif
  1106. struct btrfs_root *btrfs_create_tree(struct btrfs_trans_handle *trans,
  1107. struct btrfs_fs_info *fs_info,
  1108. u64 objectid)
  1109. {
  1110. struct extent_buffer *leaf;
  1111. struct btrfs_root *tree_root = fs_info->tree_root;
  1112. struct btrfs_root *root;
  1113. struct btrfs_key key;
  1114. int ret = 0;
  1115. uuid_le uuid;
  1116. root = btrfs_alloc_root(fs_info);
  1117. if (!root)
  1118. return ERR_PTR(-ENOMEM);
  1119. __setup_root(tree_root->nodesize, tree_root->leafsize,
  1120. tree_root->sectorsize, tree_root->stripesize,
  1121. root, fs_info, objectid);
  1122. root->root_key.objectid = objectid;
  1123. root->root_key.type = BTRFS_ROOT_ITEM_KEY;
  1124. root->root_key.offset = 0;
  1125. leaf = btrfs_alloc_free_block(trans, root, root->leafsize,
  1126. 0, objectid, NULL, 0, 0, 0);
  1127. if (IS_ERR(leaf)) {
  1128. ret = PTR_ERR(leaf);
  1129. leaf = NULL;
  1130. goto fail;
  1131. }
  1132. memset_extent_buffer(leaf, 0, 0, sizeof(struct btrfs_header));
  1133. btrfs_set_header_bytenr(leaf, leaf->start);
  1134. btrfs_set_header_generation(leaf, trans->transid);
  1135. btrfs_set_header_backref_rev(leaf, BTRFS_MIXED_BACKREF_REV);
  1136. btrfs_set_header_owner(leaf, objectid);
  1137. root->node = leaf;
  1138. write_extent_buffer(leaf, fs_info->fsid, btrfs_header_fsid(),
  1139. BTRFS_FSID_SIZE);
  1140. write_extent_buffer(leaf, fs_info->chunk_tree_uuid,
  1141. btrfs_header_chunk_tree_uuid(leaf),
  1142. BTRFS_UUID_SIZE);
  1143. btrfs_mark_buffer_dirty(leaf);
  1144. root->commit_root = btrfs_root_node(root);
  1145. root->track_dirty = 1;
  1146. root->root_item.flags = 0;
  1147. root->root_item.byte_limit = 0;
  1148. btrfs_set_root_bytenr(&root->root_item, leaf->start);
  1149. btrfs_set_root_generation(&root->root_item, trans->transid);
  1150. btrfs_set_root_level(&root->root_item, 0);
  1151. btrfs_set_root_refs(&root->root_item, 1);
  1152. btrfs_set_root_used(&root->root_item, leaf->len);
  1153. btrfs_set_root_last_snapshot(&root->root_item, 0);
  1154. btrfs_set_root_dirid(&root->root_item, 0);
  1155. uuid_le_gen(&uuid);
  1156. memcpy(root->root_item.uuid, uuid.b, BTRFS_UUID_SIZE);
  1157. root->root_item.drop_level = 0;
  1158. key.objectid = objectid;
  1159. key.type = BTRFS_ROOT_ITEM_KEY;
  1160. key.offset = 0;
  1161. ret = btrfs_insert_root(trans, tree_root, &key, &root->root_item);
  1162. if (ret)
  1163. goto fail;
  1164. btrfs_tree_unlock(leaf);
  1165. return root;
  1166. fail:
  1167. if (leaf) {
  1168. btrfs_tree_unlock(leaf);
  1169. free_extent_buffer(leaf);
  1170. }
  1171. kfree(root);
  1172. return ERR_PTR(ret);
  1173. }
  1174. static struct btrfs_root *alloc_log_tree(struct btrfs_trans_handle *trans,
  1175. struct btrfs_fs_info *fs_info)
  1176. {
  1177. struct btrfs_root *root;
  1178. struct btrfs_root *tree_root = fs_info->tree_root;
  1179. struct extent_buffer *leaf;
  1180. root = btrfs_alloc_root(fs_info);
  1181. if (!root)
  1182. return ERR_PTR(-ENOMEM);
  1183. __setup_root(tree_root->nodesize, tree_root->leafsize,
  1184. tree_root->sectorsize, tree_root->stripesize,
  1185. root, fs_info, BTRFS_TREE_LOG_OBJECTID);
  1186. root->root_key.objectid = BTRFS_TREE_LOG_OBJECTID;
  1187. root->root_key.type = BTRFS_ROOT_ITEM_KEY;
  1188. root->root_key.offset = BTRFS_TREE_LOG_OBJECTID;
  1189. /*
  1190. * log trees do not get reference counted because they go away
  1191. * before a real commit is actually done. They do store pointers
  1192. * to file data extents, and those reference counts still get
  1193. * updated (along with back refs to the log tree).
  1194. */
  1195. root->ref_cows = 0;
  1196. leaf = btrfs_alloc_free_block(trans, root, root->leafsize, 0,
  1197. BTRFS_TREE_LOG_OBJECTID, NULL,
  1198. 0, 0, 0);
  1199. if (IS_ERR(leaf)) {
  1200. kfree(root);
  1201. return ERR_CAST(leaf);
  1202. }
  1203. memset_extent_buffer(leaf, 0, 0, sizeof(struct btrfs_header));
  1204. btrfs_set_header_bytenr(leaf, leaf->start);
  1205. btrfs_set_header_generation(leaf, trans->transid);
  1206. btrfs_set_header_backref_rev(leaf, BTRFS_MIXED_BACKREF_REV);
  1207. btrfs_set_header_owner(leaf, BTRFS_TREE_LOG_OBJECTID);
  1208. root->node = leaf;
  1209. write_extent_buffer(root->node, root->fs_info->fsid,
  1210. btrfs_header_fsid(), BTRFS_FSID_SIZE);
  1211. btrfs_mark_buffer_dirty(root->node);
  1212. btrfs_tree_unlock(root->node);
  1213. return root;
  1214. }
  1215. int btrfs_init_log_root_tree(struct btrfs_trans_handle *trans,
  1216. struct btrfs_fs_info *fs_info)
  1217. {
  1218. struct btrfs_root *log_root;
  1219. log_root = alloc_log_tree(trans, fs_info);
  1220. if (IS_ERR(log_root))
  1221. return PTR_ERR(log_root);
  1222. WARN_ON(fs_info->log_root_tree);
  1223. fs_info->log_root_tree = log_root;
  1224. return 0;
  1225. }
  1226. int btrfs_add_log_tree(struct btrfs_trans_handle *trans,
  1227. struct btrfs_root *root)
  1228. {
  1229. struct btrfs_root *log_root;
  1230. struct btrfs_inode_item *inode_item;
  1231. log_root = alloc_log_tree(trans, root->fs_info);
  1232. if (IS_ERR(log_root))
  1233. return PTR_ERR(log_root);
  1234. log_root->last_trans = trans->transid;
  1235. log_root->root_key.offset = root->root_key.objectid;
  1236. inode_item = &log_root->root_item.inode;
  1237. btrfs_set_stack_inode_generation(inode_item, 1);
  1238. btrfs_set_stack_inode_size(inode_item, 3);
  1239. btrfs_set_stack_inode_nlink(inode_item, 1);
  1240. btrfs_set_stack_inode_nbytes(inode_item, root->leafsize);
  1241. btrfs_set_stack_inode_mode(inode_item, S_IFDIR | 0755);
  1242. btrfs_set_root_node(&log_root->root_item, log_root->node);
  1243. WARN_ON(root->log_root);
  1244. root->log_root = log_root;
  1245. root->log_transid = 0;
  1246. root->last_log_commit = 0;
  1247. return 0;
  1248. }
  1249. static struct btrfs_root *btrfs_read_tree_root(struct btrfs_root *tree_root,
  1250. struct btrfs_key *key)
  1251. {
  1252. struct btrfs_root *root;
  1253. struct btrfs_fs_info *fs_info = tree_root->fs_info;
  1254. struct btrfs_path *path;
  1255. u64 generation;
  1256. u32 blocksize;
  1257. int ret;
  1258. path = btrfs_alloc_path();
  1259. if (!path)
  1260. return ERR_PTR(-ENOMEM);
  1261. root = btrfs_alloc_root(fs_info);
  1262. if (!root) {
  1263. ret = -ENOMEM;
  1264. goto alloc_fail;
  1265. }
  1266. __setup_root(tree_root->nodesize, tree_root->leafsize,
  1267. tree_root->sectorsize, tree_root->stripesize,
  1268. root, fs_info, key->objectid);
  1269. ret = btrfs_find_root(tree_root, key, path,
  1270. &root->root_item, &root->root_key);
  1271. if (ret) {
  1272. if (ret > 0)
  1273. ret = -ENOENT;
  1274. goto find_fail;
  1275. }
  1276. generation = btrfs_root_generation(&root->root_item);
  1277. blocksize = btrfs_level_size(root, btrfs_root_level(&root->root_item));
  1278. root->node = read_tree_block(root, btrfs_root_bytenr(&root->root_item),
  1279. blocksize, generation);
  1280. if (!root->node) {
  1281. ret = -ENOMEM;
  1282. goto find_fail;
  1283. } else if (!btrfs_buffer_uptodate(root->node, generation, 0)) {
  1284. ret = -EIO;
  1285. goto read_fail;
  1286. }
  1287. root->commit_root = btrfs_root_node(root);
  1288. out:
  1289. btrfs_free_path(path);
  1290. return root;
  1291. read_fail:
  1292. free_extent_buffer(root->node);
  1293. find_fail:
  1294. kfree(root);
  1295. alloc_fail:
  1296. root = ERR_PTR(ret);
  1297. goto out;
  1298. }
  1299. struct btrfs_root *btrfs_read_fs_root(struct btrfs_root *tree_root,
  1300. struct btrfs_key *location)
  1301. {
  1302. struct btrfs_root *root;
  1303. root = btrfs_read_tree_root(tree_root, location);
  1304. if (IS_ERR(root))
  1305. return root;
  1306. if (root->root_key.objectid != BTRFS_TREE_LOG_OBJECTID) {
  1307. root->ref_cows = 1;
  1308. btrfs_check_and_init_root_item(&root->root_item);
  1309. }
  1310. return root;
  1311. }
  1312. int btrfs_init_fs_root(struct btrfs_root *root)
  1313. {
  1314. int ret;
  1315. root->free_ino_ctl = kzalloc(sizeof(*root->free_ino_ctl), GFP_NOFS);
  1316. root->free_ino_pinned = kzalloc(sizeof(*root->free_ino_pinned),
  1317. GFP_NOFS);
  1318. if (!root->free_ino_pinned || !root->free_ino_ctl) {
  1319. ret = -ENOMEM;
  1320. goto fail;
  1321. }
  1322. btrfs_init_free_ino_ctl(root);
  1323. mutex_init(&root->fs_commit_mutex);
  1324. spin_lock_init(&root->cache_lock);
  1325. init_waitqueue_head(&root->cache_wait);
  1326. ret = get_anon_bdev(&root->anon_dev);
  1327. if (ret)
  1328. goto fail;
  1329. return 0;
  1330. fail:
  1331. kfree(root->free_ino_ctl);
  1332. kfree(root->free_ino_pinned);
  1333. return ret;
  1334. }
  1335. static struct btrfs_root *btrfs_lookup_fs_root(struct btrfs_fs_info *fs_info,
  1336. u64 root_id)
  1337. {
  1338. struct btrfs_root *root;
  1339. spin_lock(&fs_info->fs_roots_radix_lock);
  1340. root = radix_tree_lookup(&fs_info->fs_roots_radix,
  1341. (unsigned long)root_id);
  1342. spin_unlock(&fs_info->fs_roots_radix_lock);
  1343. return root;
  1344. }
  1345. int btrfs_insert_fs_root(struct btrfs_fs_info *fs_info,
  1346. struct btrfs_root *root)
  1347. {
  1348. int ret;
  1349. ret = radix_tree_preload(GFP_NOFS & ~__GFP_HIGHMEM);
  1350. if (ret)
  1351. return ret;
  1352. spin_lock(&fs_info->fs_roots_radix_lock);
  1353. ret = radix_tree_insert(&fs_info->fs_roots_radix,
  1354. (unsigned long)root->root_key.objectid,
  1355. root);
  1356. if (ret == 0)
  1357. root->in_radix = 1;
  1358. spin_unlock(&fs_info->fs_roots_radix_lock);
  1359. radix_tree_preload_end();
  1360. return ret;
  1361. }
  1362. struct btrfs_root *btrfs_get_fs_root(struct btrfs_fs_info *fs_info,
  1363. struct btrfs_key *location,
  1364. bool check_ref)
  1365. {
  1366. struct btrfs_root *root;
  1367. int ret;
  1368. if (location->objectid == BTRFS_ROOT_TREE_OBJECTID)
  1369. return fs_info->tree_root;
  1370. if (location->objectid == BTRFS_EXTENT_TREE_OBJECTID)
  1371. return fs_info->extent_root;
  1372. if (location->objectid == BTRFS_CHUNK_TREE_OBJECTID)
  1373. return fs_info->chunk_root;
  1374. if (location->objectid == BTRFS_DEV_TREE_OBJECTID)
  1375. return fs_info->dev_root;
  1376. if (location->objectid == BTRFS_CSUM_TREE_OBJECTID)
  1377. return fs_info->csum_root;
  1378. if (location->objectid == BTRFS_QUOTA_TREE_OBJECTID)
  1379. return fs_info->quota_root ? fs_info->quota_root :
  1380. ERR_PTR(-ENOENT);
  1381. if (location->objectid == BTRFS_UUID_TREE_OBJECTID)
  1382. return fs_info->uuid_root ? fs_info->uuid_root :
  1383. ERR_PTR(-ENOENT);
  1384. again:
  1385. root = btrfs_lookup_fs_root(fs_info, location->objectid);
  1386. if (root) {
  1387. if (check_ref && btrfs_root_refs(&root->root_item) == 0)
  1388. return ERR_PTR(-ENOENT);
  1389. return root;
  1390. }
  1391. root = btrfs_read_fs_root(fs_info->tree_root, location);
  1392. if (IS_ERR(root))
  1393. return root;
  1394. if (check_ref && btrfs_root_refs(&root->root_item) == 0) {
  1395. ret = -ENOENT;
  1396. goto fail;
  1397. }
  1398. ret = btrfs_init_fs_root(root);
  1399. if (ret)
  1400. goto fail;
  1401. ret = btrfs_find_item(fs_info->tree_root, NULL, BTRFS_ORPHAN_OBJECTID,
  1402. location->objectid, BTRFS_ORPHAN_ITEM_KEY, NULL);
  1403. if (ret < 0)
  1404. goto fail;
  1405. if (ret == 0)
  1406. root->orphan_item_inserted = 1;
  1407. ret = btrfs_insert_fs_root(fs_info, root);
  1408. if (ret) {
  1409. if (ret == -EEXIST) {
  1410. free_fs_root(root);
  1411. goto again;
  1412. }
  1413. goto fail;
  1414. }
  1415. return root;
  1416. fail:
  1417. free_fs_root(root);
  1418. return ERR_PTR(ret);
  1419. }
  1420. static int btrfs_congested_fn(void *congested_data, int bdi_bits)
  1421. {
  1422. struct btrfs_fs_info *info = (struct btrfs_fs_info *)congested_data;
  1423. int ret = 0;
  1424. struct btrfs_device *device;
  1425. struct backing_dev_info *bdi;
  1426. rcu_read_lock();
  1427. list_for_each_entry_rcu(device, &info->fs_devices->devices, dev_list) {
  1428. if (!device->bdev)
  1429. continue;
  1430. bdi = blk_get_backing_dev_info(device->bdev);
  1431. if (bdi && bdi_congested(bdi, bdi_bits)) {
  1432. ret = 1;
  1433. break;
  1434. }
  1435. }
  1436. rcu_read_unlock();
  1437. return ret;
  1438. }
  1439. /*
  1440. * If this fails, caller must call bdi_destroy() to get rid of the
  1441. * bdi again.
  1442. */
  1443. static int setup_bdi(struct btrfs_fs_info *info, struct backing_dev_info *bdi)
  1444. {
  1445. int err;
  1446. bdi->capabilities = BDI_CAP_MAP_COPY;
  1447. err = bdi_setup_and_register(bdi, "btrfs", BDI_CAP_MAP_COPY);
  1448. if (err)
  1449. return err;
  1450. bdi->ra_pages = default_backing_dev_info.ra_pages;
  1451. bdi->congested_fn = btrfs_congested_fn;
  1452. bdi->congested_data = info;
  1453. return 0;
  1454. }
  1455. /*
  1456. * called by the kthread helper functions to finally call the bio end_io
  1457. * functions. This is where read checksum verification actually happens
  1458. */
  1459. static void end_workqueue_fn(struct btrfs_work *work)
  1460. {
  1461. struct bio *bio;
  1462. struct end_io_wq *end_io_wq;
  1463. int error;
  1464. end_io_wq = container_of(work, struct end_io_wq, work);
  1465. bio = end_io_wq->bio;
  1466. error = end_io_wq->error;
  1467. bio->bi_private = end_io_wq->private;
  1468. bio->bi_end_io = end_io_wq->end_io;
  1469. kfree(end_io_wq);
  1470. bio_endio(bio, error);
  1471. }
  1472. static int cleaner_kthread(void *arg)
  1473. {
  1474. struct btrfs_root *root = arg;
  1475. int again;
  1476. do {
  1477. again = 0;
  1478. /* Make the cleaner go to sleep early. */
  1479. if (btrfs_need_cleaner_sleep(root))
  1480. goto sleep;
  1481. if (!mutex_trylock(&root->fs_info->cleaner_mutex))
  1482. goto sleep;
  1483. /*
  1484. * Avoid the problem that we change the status of the fs
  1485. * during the above check and trylock.
  1486. */
  1487. if (btrfs_need_cleaner_sleep(root)) {
  1488. mutex_unlock(&root->fs_info->cleaner_mutex);
  1489. goto sleep;
  1490. }
  1491. btrfs_run_delayed_iputs(root);
  1492. again = btrfs_clean_one_deleted_snapshot(root);
  1493. mutex_unlock(&root->fs_info->cleaner_mutex);
  1494. /*
  1495. * The defragger has dealt with the R/O remount and umount,
  1496. * needn't do anything special here.
  1497. */
  1498. btrfs_run_defrag_inodes(root->fs_info);
  1499. sleep:
  1500. if (!try_to_freeze() && !again) {
  1501. set_current_state(TASK_INTERRUPTIBLE);
  1502. if (!kthread_should_stop())
  1503. schedule();
  1504. __set_current_state(TASK_RUNNING);
  1505. }
  1506. } while (!kthread_should_stop());
  1507. return 0;
  1508. }
  1509. static int transaction_kthread(void *arg)
  1510. {
  1511. struct btrfs_root *root = arg;
  1512. struct btrfs_trans_handle *trans;
  1513. struct btrfs_transaction *cur;
  1514. u64 transid;
  1515. unsigned long now;
  1516. unsigned long delay;
  1517. bool cannot_commit;
  1518. do {
  1519. cannot_commit = false;
  1520. delay = HZ * root->fs_info->commit_interval;
  1521. mutex_lock(&root->fs_info->transaction_kthread_mutex);
  1522. spin_lock(&root->fs_info->trans_lock);
  1523. cur = root->fs_info->running_transaction;
  1524. if (!cur) {
  1525. spin_unlock(&root->fs_info->trans_lock);
  1526. goto sleep;
  1527. }
  1528. now = get_seconds();
  1529. if (cur->state < TRANS_STATE_BLOCKED &&
  1530. (now < cur->start_time ||
  1531. now - cur->start_time < root->fs_info->commit_interval)) {
  1532. spin_unlock(&root->fs_info->trans_lock);
  1533. delay = HZ * 5;
  1534. goto sleep;
  1535. }
  1536. transid = cur->transid;
  1537. spin_unlock(&root->fs_info->trans_lock);
  1538. /* If the file system is aborted, this will always fail. */
  1539. trans = btrfs_attach_transaction(root);
  1540. if (IS_ERR(trans)) {
  1541. if (PTR_ERR(trans) != -ENOENT)
  1542. cannot_commit = true;
  1543. goto sleep;
  1544. }
  1545. if (transid == trans->transid) {
  1546. btrfs_commit_transaction(trans, root);
  1547. } else {
  1548. btrfs_end_transaction(trans, root);
  1549. }
  1550. sleep:
  1551. wake_up_process(root->fs_info->cleaner_kthread);
  1552. mutex_unlock(&root->fs_info->transaction_kthread_mutex);
  1553. if (unlikely(test_bit(BTRFS_FS_STATE_ERROR,
  1554. &root->fs_info->fs_state)))
  1555. btrfs_cleanup_transaction(root);
  1556. if (!try_to_freeze()) {
  1557. set_current_state(TASK_INTERRUPTIBLE);
  1558. if (!kthread_should_stop() &&
  1559. (!btrfs_transaction_blocked(root->fs_info) ||
  1560. cannot_commit))
  1561. schedule_timeout(delay);
  1562. __set_current_state(TASK_RUNNING);
  1563. }
  1564. } while (!kthread_should_stop());
  1565. return 0;
  1566. }
  1567. /*
  1568. * this will find the highest generation in the array of
  1569. * root backups. The index of the highest array is returned,
  1570. * or -1 if we can't find anything.
  1571. *
  1572. * We check to make sure the array is valid by comparing the
  1573. * generation of the latest root in the array with the generation
  1574. * in the super block. If they don't match we pitch it.
  1575. */
  1576. static int find_newest_super_backup(struct btrfs_fs_info *info, u64 newest_gen)
  1577. {
  1578. u64 cur;
  1579. int newest_index = -1;
  1580. struct btrfs_root_backup *root_backup;
  1581. int i;
  1582. for (i = 0; i < BTRFS_NUM_BACKUP_ROOTS; i++) {
  1583. root_backup = info->super_copy->super_roots + i;
  1584. cur = btrfs_backup_tree_root_gen(root_backup);
  1585. if (cur == newest_gen)
  1586. newest_index = i;
  1587. }
  1588. /* check to see if we actually wrapped around */
  1589. if (newest_index == BTRFS_NUM_BACKUP_ROOTS - 1) {
  1590. root_backup = info->super_copy->super_roots;
  1591. cur = btrfs_backup_tree_root_gen(root_backup);
  1592. if (cur == newest_gen)
  1593. newest_index = 0;
  1594. }
  1595. return newest_index;
  1596. }
  1597. /*
  1598. * find the oldest backup so we know where to store new entries
  1599. * in the backup array. This will set the backup_root_index
  1600. * field in the fs_info struct
  1601. */
  1602. static void find_oldest_super_backup(struct btrfs_fs_info *info,
  1603. u64 newest_gen)
  1604. {
  1605. int newest_index = -1;
  1606. newest_index = find_newest_super_backup(info, newest_gen);
  1607. /* if there was garbage in there, just move along */
  1608. if (newest_index == -1) {
  1609. info->backup_root_index = 0;
  1610. } else {
  1611. info->backup_root_index = (newest_index + 1) % BTRFS_NUM_BACKUP_ROOTS;
  1612. }
  1613. }
  1614. /*
  1615. * copy all the root pointers into the super backup array.
  1616. * this will bump the backup pointer by one when it is
  1617. * done
  1618. */
  1619. static void backup_super_roots(struct btrfs_fs_info *info)
  1620. {
  1621. int next_backup;
  1622. struct btrfs_root_backup *root_backup;
  1623. int last_backup;
  1624. next_backup = info->backup_root_index;
  1625. last_backup = (next_backup + BTRFS_NUM_BACKUP_ROOTS - 1) %
  1626. BTRFS_NUM_BACKUP_ROOTS;
  1627. /*
  1628. * just overwrite the last backup if we're at the same generation
  1629. * this happens only at umount
  1630. */
  1631. root_backup = info->super_for_commit->super_roots + last_backup;
  1632. if (btrfs_backup_tree_root_gen(root_backup) ==
  1633. btrfs_header_generation(info->tree_root->node))
  1634. next_backup = last_backup;
  1635. root_backup = info->super_for_commit->super_roots + next_backup;
  1636. /*
  1637. * make sure all of our padding and empty slots get zero filled
  1638. * regardless of which ones we use today
  1639. */
  1640. memset(root_backup, 0, sizeof(*root_backup));
  1641. info->backup_root_index = (next_backup + 1) % BTRFS_NUM_BACKUP_ROOTS;
  1642. btrfs_set_backup_tree_root(root_backup, info->tree_root->node->start);
  1643. btrfs_set_backup_tree_root_gen(root_backup,
  1644. btrfs_header_generation(info->tree_root->node));
  1645. btrfs_set_backup_tree_root_level(root_backup,
  1646. btrfs_header_level(info->tree_root->node));
  1647. btrfs_set_backup_chunk_root(root_backup, info->chunk_root->node->start);
  1648. btrfs_set_backup_chunk_root_gen(root_backup,
  1649. btrfs_header_generation(info->chunk_root->node));
  1650. btrfs_set_backup_chunk_root_level(root_backup,
  1651. btrfs_header_level(info->chunk_root->node));
  1652. btrfs_set_backup_extent_root(root_backup, info->extent_root->node->start);
  1653. btrfs_set_backup_extent_root_gen(root_backup,
  1654. btrfs_header_generation(info->extent_root->node));
  1655. btrfs_set_backup_extent_root_level(root_backup,
  1656. btrfs_header_level(info->extent_root->node));
  1657. /*
  1658. * we might commit during log recovery, which happens before we set
  1659. * the fs_root. Make sure it is valid before we fill it in.
  1660. */
  1661. if (info->fs_root && info->fs_root->node) {
  1662. btrfs_set_backup_fs_root(root_backup,
  1663. info->fs_root->node->start);
  1664. btrfs_set_backup_fs_root_gen(root_backup,
  1665. btrfs_header_generation(info->fs_root->node));
  1666. btrfs_set_backup_fs_root_level(root_backup,
  1667. btrfs_header_level(info->fs_root->node));
  1668. }
  1669. btrfs_set_backup_dev_root(root_backup, info->dev_root->node->start);
  1670. btrfs_set_backup_dev_root_gen(root_backup,
  1671. btrfs_header_generation(info->dev_root->node));
  1672. btrfs_set_backup_dev_root_level(root_backup,
  1673. btrfs_header_level(info->dev_root->node));
  1674. btrfs_set_backup_csum_root(root_backup, info->csum_root->node->start);
  1675. btrfs_set_backup_csum_root_gen(root_backup,
  1676. btrfs_header_generation(info->csum_root->node));
  1677. btrfs_set_backup_csum_root_level(root_backup,
  1678. btrfs_header_level(info->csum_root->node));
  1679. btrfs_set_backup_total_bytes(root_backup,
  1680. btrfs_super_total_bytes(info->super_copy));
  1681. btrfs_set_backup_bytes_used(root_backup,
  1682. btrfs_super_bytes_used(info->super_copy));
  1683. btrfs_set_backup_num_devices(root_backup,
  1684. btrfs_super_num_devices(info->super_copy));
  1685. /*
  1686. * if we don't copy this out to the super_copy, it won't get remembered
  1687. * for the next commit
  1688. */
  1689. memcpy(&info->super_copy->super_roots,
  1690. &info->super_for_commit->super_roots,
  1691. sizeof(*root_backup) * BTRFS_NUM_BACKUP_ROOTS);
  1692. }
  1693. /*
  1694. * this copies info out of the root backup array and back into
  1695. * the in-memory super block. It is meant to help iterate through
  1696. * the array, so you send it the number of backups you've already
  1697. * tried and the last backup index you used.
  1698. *
  1699. * this returns -1 when it has tried all the backups
  1700. */
  1701. static noinline int next_root_backup(struct btrfs_fs_info *info,
  1702. struct btrfs_super_block *super,
  1703. int *num_backups_tried, int *backup_index)
  1704. {
  1705. struct btrfs_root_backup *root_backup;
  1706. int newest = *backup_index;
  1707. if (*num_backups_tried == 0) {
  1708. u64 gen = btrfs_super_generation(super);
  1709. newest = find_newest_super_backup(info, gen);
  1710. if (newest == -1)
  1711. return -1;
  1712. *backup_index = newest;
  1713. *num_backups_tried = 1;
  1714. } else if (*num_backups_tried == BTRFS_NUM_BACKUP_ROOTS) {
  1715. /* we've tried all the backups, all done */
  1716. return -1;
  1717. } else {
  1718. /* jump to the next oldest backup */
  1719. newest = (*backup_index + BTRFS_NUM_BACKUP_ROOTS - 1) %
  1720. BTRFS_NUM_BACKUP_ROOTS;
  1721. *backup_index = newest;
  1722. *num_backups_tried += 1;
  1723. }
  1724. root_backup = super->super_roots + newest;
  1725. btrfs_set_super_generation(super,
  1726. btrfs_backup_tree_root_gen(root_backup));
  1727. btrfs_set_super_root(super, btrfs_backup_tree_root(root_backup));
  1728. btrfs_set_super_root_level(super,
  1729. btrfs_backup_tree_root_level(root_backup));
  1730. btrfs_set_super_bytes_used(super, btrfs_backup_bytes_used(root_backup));
  1731. /*
  1732. * fixme: the total bytes and num_devices need to match or we should
  1733. * need a fsck
  1734. */
  1735. btrfs_set_super_total_bytes(super, btrfs_backup_total_bytes(root_backup));
  1736. btrfs_set_super_num_devices(super, btrfs_backup_num_devices(root_backup));
  1737. return 0;
  1738. }
  1739. /* helper to cleanup workers */
  1740. static void btrfs_stop_all_workers(struct btrfs_fs_info *fs_info)
  1741. {
  1742. btrfs_stop_workers(&fs_info->generic_worker);
  1743. btrfs_stop_workers(&fs_info->fixup_workers);
  1744. btrfs_stop_workers(&fs_info->delalloc_workers);
  1745. btrfs_stop_workers(&fs_info->workers);
  1746. btrfs_stop_workers(&fs_info->endio_workers);
  1747. btrfs_stop_workers(&fs_info->endio_meta_workers);
  1748. btrfs_stop_workers(&fs_info->endio_raid56_workers);
  1749. btrfs_stop_workers(&fs_info->rmw_workers);
  1750. btrfs_stop_workers(&fs_info->endio_meta_write_workers);
  1751. btrfs_stop_workers(&fs_info->endio_write_workers);
  1752. btrfs_stop_workers(&fs_info->endio_freespace_worker);
  1753. btrfs_stop_workers(&fs_info->submit_workers);
  1754. btrfs_stop_workers(&fs_info->delayed_workers);
  1755. btrfs_stop_workers(&fs_info->caching_workers);
  1756. btrfs_stop_workers(&fs_info->readahead_workers);
  1757. btrfs_stop_workers(&fs_info->flush_workers);
  1758. btrfs_stop_workers(&fs_info->qgroup_rescan_workers);
  1759. }
  1760. static void free_root_extent_buffers(struct btrfs_root *root)
  1761. {
  1762. if (root) {
  1763. free_extent_buffer(root->node);
  1764. free_extent_buffer(root->commit_root);
  1765. root->node = NULL;
  1766. root->commit_root = NULL;
  1767. }
  1768. }
  1769. /* helper to cleanup tree roots */
  1770. static void free_root_pointers(struct btrfs_fs_info *info, int chunk_root)
  1771. {
  1772. free_root_extent_buffers(info->tree_root);
  1773. free_root_extent_buffers(info->dev_root);
  1774. free_root_extent_buffers(info->extent_root);
  1775. free_root_extent_buffers(info->csum_root);
  1776. free_root_extent_buffers(info->quota_root);
  1777. free_root_extent_buffers(info->uuid_root);
  1778. if (chunk_root)
  1779. free_root_extent_buffers(info->chunk_root);
  1780. }
  1781. static void del_fs_roots(struct btrfs_fs_info *fs_info)
  1782. {
  1783. int ret;
  1784. struct btrfs_root *gang[8];
  1785. int i;
  1786. while (!list_empty(&fs_info->dead_roots)) {
  1787. gang[0] = list_entry(fs_info->dead_roots.next,
  1788. struct btrfs_root, root_list);
  1789. list_del(&gang[0]->root_list);
  1790. if (gang[0]->in_radix) {
  1791. btrfs_drop_and_free_fs_root(fs_info, gang[0]);
  1792. } else {
  1793. free_extent_buffer(gang[0]->node);
  1794. free_extent_buffer(gang[0]->commit_root);
  1795. btrfs_put_fs_root(gang[0]);
  1796. }
  1797. }
  1798. while (1) {
  1799. ret = radix_tree_gang_lookup(&fs_info->fs_roots_radix,
  1800. (void **)gang, 0,
  1801. ARRAY_SIZE(gang));
  1802. if (!ret)
  1803. break;
  1804. for (i = 0; i < ret; i++)
  1805. btrfs_drop_and_free_fs_root(fs_info, gang[i]);
  1806. }
  1807. }
  1808. int open_ctree(struct super_block *sb,
  1809. struct btrfs_fs_devices *fs_devices,
  1810. char *options)
  1811. {
  1812. u32 sectorsize;
  1813. u32 nodesize;
  1814. u32 leafsize;
  1815. u32 blocksize;
  1816. u32 stripesize;
  1817. u64 generation;
  1818. u64 features;
  1819. struct btrfs_key location;
  1820. struct buffer_head *bh;
  1821. struct btrfs_super_block *disk_super;
  1822. struct btrfs_fs_info *fs_info = btrfs_sb(sb);
  1823. struct btrfs_root *tree_root;
  1824. struct btrfs_root *extent_root;
  1825. struct btrfs_root *csum_root;
  1826. struct btrfs_root *chunk_root;
  1827. struct btrfs_root *dev_root;
  1828. struct btrfs_root *quota_root;
  1829. struct btrfs_root *uuid_root;
  1830. struct btrfs_root *log_tree_root;
  1831. int ret;
  1832. int err = -EINVAL;
  1833. int num_backups_tried = 0;
  1834. int backup_index = 0;
  1835. bool create_uuid_tree;
  1836. bool check_uuid_tree;
  1837. tree_root = fs_info->tree_root = btrfs_alloc_root(fs_info);
  1838. chunk_root = fs_info->chunk_root = btrfs_alloc_root(fs_info);
  1839. if (!tree_root || !chunk_root) {
  1840. err = -ENOMEM;
  1841. goto fail;
  1842. }
  1843. ret = init_srcu_struct(&fs_info->subvol_srcu);
  1844. if (ret) {
  1845. err = ret;
  1846. goto fail;
  1847. }
  1848. ret = setup_bdi(fs_info, &fs_info->bdi);
  1849. if (ret) {
  1850. err = ret;
  1851. goto fail_srcu;
  1852. }
  1853. ret = percpu_counter_init(&fs_info->dirty_metadata_bytes, 0);
  1854. if (ret) {
  1855. err = ret;
  1856. goto fail_bdi;
  1857. }
  1858. fs_info->dirty_metadata_batch = PAGE_CACHE_SIZE *
  1859. (1 + ilog2(nr_cpu_ids));
  1860. ret = percpu_counter_init(&fs_info->delalloc_bytes, 0);
  1861. if (ret) {
  1862. err = ret;
  1863. goto fail_dirty_metadata_bytes;
  1864. }
  1865. fs_info->btree_inode = new_inode(sb);
  1866. if (!fs_info->btree_inode) {
  1867. err = -ENOMEM;
  1868. goto fail_delalloc_bytes;
  1869. }
  1870. mapping_set_gfp_mask(fs_info->btree_inode->i_mapping, GFP_NOFS);
  1871. INIT_RADIX_TREE(&fs_info->fs_roots_radix, GFP_ATOMIC);
  1872. INIT_LIST_HEAD(&fs_info->trans_list);
  1873. INIT_LIST_HEAD(&fs_info->dead_roots);
  1874. INIT_LIST_HEAD(&fs_info->delayed_iputs);
  1875. INIT_LIST_HEAD(&fs_info->delalloc_roots);
  1876. INIT_LIST_HEAD(&fs_info->caching_block_groups);
  1877. spin_lock_init(&fs_info->delalloc_root_lock);
  1878. spin_lock_init(&fs_info->trans_lock);
  1879. spin_lock_init(&fs_info->fs_roots_radix_lock);
  1880. spin_lock_init(&fs_info->delayed_iput_lock);
  1881. spin_lock_init(&fs_info->defrag_inodes_lock);
  1882. spin_lock_init(&fs_info->free_chunk_lock);
  1883. spin_lock_init(&fs_info->tree_mod_seq_lock);
  1884. spin_lock_init(&fs_info->super_lock);
  1885. rwlock_init(&fs_info->tree_mod_log_lock);
  1886. mutex_init(&fs_info->reloc_mutex);
  1887. seqlock_init(&fs_info->profiles_lock);
  1888. init_completion(&fs_info->kobj_unregister);
  1889. INIT_LIST_HEAD(&fs_info->dirty_cowonly_roots);
  1890. INIT_LIST_HEAD(&fs_info->space_info);
  1891. INIT_LIST_HEAD(&fs_info->tree_mod_seq_list);
  1892. btrfs_mapping_init(&fs_info->mapping_tree);
  1893. btrfs_init_block_rsv(&fs_info->global_block_rsv,
  1894. BTRFS_BLOCK_RSV_GLOBAL);
  1895. btrfs_init_block_rsv(&fs_info->delalloc_block_rsv,
  1896. BTRFS_BLOCK_RSV_DELALLOC);
  1897. btrfs_init_block_rsv(&fs_info->trans_block_rsv, BTRFS_BLOCK_RSV_TRANS);
  1898. btrfs_init_block_rsv(&fs_info->chunk_block_rsv, BTRFS_BLOCK_RSV_CHUNK);
  1899. btrfs_init_block_rsv(&fs_info->empty_block_rsv, BTRFS_BLOCK_RSV_EMPTY);
  1900. btrfs_init_block_rsv(&fs_info->delayed_block_rsv,
  1901. BTRFS_BLOCK_RSV_DELOPS);
  1902. atomic_set(&fs_info->nr_async_submits, 0);
  1903. atomic_set(&fs_info->async_delalloc_pages, 0);
  1904. atomic_set(&fs_info->async_submit_draining, 0);
  1905. atomic_set(&fs_info->nr_async_bios, 0);
  1906. atomic_set(&fs_info->defrag_running, 0);
  1907. atomic64_set(&fs_info->tree_mod_seq, 0);
  1908. fs_info->sb = sb;
  1909. fs_info->max_inline = 8192 * 1024;
  1910. fs_info->metadata_ratio = 0;
  1911. fs_info->defrag_inodes = RB_ROOT;
  1912. fs_info->free_chunk_space = 0;
  1913. fs_info->tree_mod_log = RB_ROOT;
  1914. fs_info->commit_interval = BTRFS_DEFAULT_COMMIT_INTERVAL;
  1915. /* readahead state */
  1916. INIT_RADIX_TREE(&fs_info->reada_tree, GFP_NOFS & ~__GFP_WAIT);
  1917. spin_lock_init(&fs_info->reada_lock);
  1918. fs_info->thread_pool_size = min_t(unsigned long,
  1919. num_online_cpus() + 2, 8);
  1920. INIT_LIST_HEAD(&fs_info->ordered_roots);
  1921. spin_lock_init(&fs_info->ordered_root_lock);
  1922. fs_info->delayed_root = kmalloc(sizeof(struct btrfs_delayed_root),
  1923. GFP_NOFS);
  1924. if (!fs_info->delayed_root) {
  1925. err = -ENOMEM;
  1926. goto fail_iput;
  1927. }
  1928. btrfs_init_delayed_root(fs_info->delayed_root);
  1929. mutex_init(&fs_info->scrub_lock);
  1930. atomic_set(&fs_info->scrubs_running, 0);
  1931. atomic_set(&fs_info->scrub_pause_req, 0);
  1932. atomic_set(&fs_info->scrubs_paused, 0);
  1933. atomic_set(&fs_info->scrub_cancel_req, 0);
  1934. init_waitqueue_head(&fs_info->scrub_pause_wait);
  1935. fs_info->scrub_workers_refcnt = 0;
  1936. #ifdef CONFIG_BTRFS_FS_CHECK_INTEGRITY
  1937. fs_info->check_integrity_print_mask = 0;
  1938. #endif
  1939. spin_lock_init(&fs_info->balance_lock);
  1940. mutex_init(&fs_info->balance_mutex);
  1941. atomic_set(&fs_info->balance_running, 0);
  1942. atomic_set(&fs_info->balance_pause_req, 0);
  1943. atomic_set(&fs_info->balance_cancel_req, 0);
  1944. fs_info->balance_ctl = NULL;
  1945. init_waitqueue_head(&fs_info->balance_wait_q);
  1946. sb->s_blocksize = 4096;
  1947. sb->s_blocksize_bits = blksize_bits(4096);
  1948. sb->s_bdi = &fs_info->bdi;
  1949. fs_info->btree_inode->i_ino = BTRFS_BTREE_INODE_OBJECTID;
  1950. set_nlink(fs_info->btree_inode, 1);
  1951. /*
  1952. * we set the i_size on the btree inode to the max possible int.
  1953. * the real end of the address space is determined by all of
  1954. * the devices in the system
  1955. */
  1956. fs_info->btree_inode->i_size = OFFSET_MAX;
  1957. fs_info->btree_inode->i_mapping->a_ops = &btree_aops;
  1958. fs_info->btree_inode->i_mapping->backing_dev_info = &fs_info->bdi;
  1959. RB_CLEAR_NODE(&BTRFS_I(fs_info->btree_inode)->rb_node);
  1960. extent_io_tree_init(&BTRFS_I(fs_info->btree_inode)->io_tree,
  1961. fs_info->btree_inode->i_mapping);
  1962. BTRFS_I(fs_info->btree_inode)->io_tree.track_uptodate = 0;
  1963. extent_map_tree_init(&BTRFS_I(fs_info->btree_inode)->extent_tree);
  1964. BTRFS_I(fs_info->btree_inode)->io_tree.ops = &btree_extent_io_ops;
  1965. BTRFS_I(fs_info->btree_inode)->root = tree_root;
  1966. memset(&BTRFS_I(fs_info->btree_inode)->location, 0,
  1967. sizeof(struct btrfs_key));
  1968. set_bit(BTRFS_INODE_DUMMY,
  1969. &BTRFS_I(fs_info->btree_inode)->runtime_flags);
  1970. btrfs_insert_inode_hash(fs_info->btree_inode);
  1971. spin_lock_init(&fs_info->block_group_cache_lock);
  1972. fs_info->block_group_cache_tree = RB_ROOT;
  1973. fs_info->first_logical_byte = (u64)-1;
  1974. extent_io_tree_init(&fs_info->freed_extents[0],
  1975. fs_info->btree_inode->i_mapping);
  1976. extent_io_tree_init(&fs_info->freed_extents[1],
  1977. fs_info->btree_inode->i_mapping);
  1978. fs_info->pinned_extents = &fs_info->freed_extents[0];
  1979. fs_info->do_barriers = 1;
  1980. mutex_init(&fs_info->ordered_operations_mutex);
  1981. mutex_init(&fs_info->ordered_extent_flush_mutex);
  1982. mutex_init(&fs_info->tree_log_mutex);
  1983. mutex_init(&fs_info->chunk_mutex);
  1984. mutex_init(&fs_info->transaction_kthread_mutex);
  1985. mutex_init(&fs_info->cleaner_mutex);
  1986. mutex_init(&fs_info->volume_mutex);
  1987. init_rwsem(&fs_info->extent_commit_sem);
  1988. init_rwsem(&fs_info->cleanup_work_sem);
  1989. init_rwsem(&fs_info->subvol_sem);
  1990. sema_init(&fs_info->uuid_tree_rescan_sem, 1);
  1991. fs_info->dev_replace.lock_owner = 0;
  1992. atomic_set(&fs_info->dev_replace.nesting_level, 0);
  1993. mutex_init(&fs_info->dev_replace.lock_finishing_cancel_unmount);
  1994. mutex_init(&fs_info->dev_replace.lock_management_lock);
  1995. mutex_init(&fs_info->dev_replace.lock);
  1996. spin_lock_init(&fs_info->qgroup_lock);
  1997. mutex_init(&fs_info->qgroup_ioctl_lock);
  1998. fs_info->qgroup_tree = RB_ROOT;
  1999. INIT_LIST_HEAD(&fs_info->dirty_qgroups);
  2000. fs_info->qgroup_seq = 1;
  2001. fs_info->quota_enabled = 0;
  2002. fs_info->pending_quota_state = 0;
  2003. fs_info->qgroup_ulist = NULL;
  2004. mutex_init(&fs_info->qgroup_rescan_lock);
  2005. btrfs_init_free_cluster(&fs_info->meta_alloc_cluster);
  2006. btrfs_init_free_cluster(&fs_info->data_alloc_cluster);
  2007. init_waitqueue_head(&fs_info->transaction_throttle);
  2008. init_waitqueue_head(&fs_info->transaction_wait);
  2009. init_waitqueue_head(&fs_info->transaction_blocked_wait);
  2010. init_waitqueue_head(&fs_info->async_submit_wait);
  2011. ret = btrfs_alloc_stripe_hash_table(fs_info);
  2012. if (ret) {
  2013. err = ret;
  2014. goto fail_alloc;
  2015. }
  2016. __setup_root(4096, 4096, 4096, 4096, tree_root,
  2017. fs_info, BTRFS_ROOT_TREE_OBJECTID);
  2018. invalidate_bdev(fs_devices->latest_bdev);
  2019. /*
  2020. * Read super block and check the signature bytes only
  2021. */
  2022. bh = btrfs_read_dev_super(fs_devices->latest_bdev);
  2023. if (!bh) {
  2024. err = -EINVAL;
  2025. goto fail_alloc;
  2026. }
  2027. /*
  2028. * We want to check superblock checksum, the type is stored inside.
  2029. * Pass the whole disk block of size BTRFS_SUPER_INFO_SIZE (4k).
  2030. */
  2031. if (btrfs_check_super_csum(bh->b_data)) {
  2032. printk(KERN_ERR "btrfs: superblock checksum mismatch\n");
  2033. err = -EINVAL;
  2034. goto fail_alloc;
  2035. }
  2036. /*
  2037. * super_copy is zeroed at allocation time and we never touch the
  2038. * following bytes up to INFO_SIZE, the checksum is calculated from
  2039. * the whole block of INFO_SIZE
  2040. */
  2041. memcpy(fs_info->super_copy, bh->b_data, sizeof(*fs_info->super_copy));
  2042. memcpy(fs_info->super_for_commit, fs_info->super_copy,
  2043. sizeof(*fs_info->super_for_commit));
  2044. brelse(bh);
  2045. memcpy(fs_info->fsid, fs_info->super_copy->fsid, BTRFS_FSID_SIZE);
  2046. ret = btrfs_check_super_valid(fs_info, sb->s_flags & MS_RDONLY);
  2047. if (ret) {
  2048. printk(KERN_ERR "btrfs: superblock contains fatal errors\n");
  2049. err = -EINVAL;
  2050. goto fail_alloc;
  2051. }
  2052. disk_super = fs_info->super_copy;
  2053. if (!btrfs_super_root(disk_super))
  2054. goto fail_alloc;
  2055. /* check FS state, whether FS is broken. */
  2056. if (btrfs_super_flags(disk_super) & BTRFS_SUPER_FLAG_ERROR)
  2057. set_bit(BTRFS_FS_STATE_ERROR, &fs_info->fs_state);
  2058. /*
  2059. * run through our array of backup supers and setup
  2060. * our ring pointer to the oldest one
  2061. */
  2062. generation = btrfs_super_generation(disk_super);
  2063. find_oldest_super_backup(fs_info, generation);
  2064. /*
  2065. * In the long term, we'll store the compression type in the super
  2066. * block, and it'll be used for per file compression control.
  2067. */
  2068. fs_info->compress_type = BTRFS_COMPRESS_ZLIB;
  2069. ret = btrfs_parse_options(tree_root, options);
  2070. if (ret) {
  2071. err = ret;
  2072. goto fail_alloc;
  2073. }
  2074. features = btrfs_super_incompat_flags(disk_super) &
  2075. ~BTRFS_FEATURE_INCOMPAT_SUPP;
  2076. if (features) {
  2077. printk(KERN_ERR "BTRFS: couldn't mount because of "
  2078. "unsupported optional features (%Lx).\n",
  2079. features);
  2080. err = -EINVAL;
  2081. goto fail_alloc;
  2082. }
  2083. if (btrfs_super_leafsize(disk_super) !=
  2084. btrfs_super_nodesize(disk_super)) {
  2085. printk(KERN_ERR "BTRFS: couldn't mount because metadata "
  2086. "blocksizes don't match. node %d leaf %d\n",
  2087. btrfs_super_nodesize(disk_super),
  2088. btrfs_super_leafsize(disk_super));
  2089. err = -EINVAL;
  2090. goto fail_alloc;
  2091. }
  2092. if (btrfs_super_leafsize(disk_super) > BTRFS_MAX_METADATA_BLOCKSIZE) {
  2093. printk(KERN_ERR "BTRFS: couldn't mount because metadata "
  2094. "blocksize (%d) was too large\n",
  2095. btrfs_super_leafsize(disk_super));
  2096. err = -EINVAL;
  2097. goto fail_alloc;
  2098. }
  2099. features = btrfs_super_incompat_flags(disk_super);
  2100. features |= BTRFS_FEATURE_INCOMPAT_MIXED_BACKREF;
  2101. if (tree_root->fs_info->compress_type == BTRFS_COMPRESS_LZO)
  2102. features |= BTRFS_FEATURE_INCOMPAT_COMPRESS_LZO;
  2103. if (features & BTRFS_FEATURE_INCOMPAT_SKINNY_METADATA)
  2104. printk(KERN_ERR "btrfs: has skinny extents\n");
  2105. /*
  2106. * flag our filesystem as having big metadata blocks if
  2107. * they are bigger than the page size
  2108. */
  2109. if (btrfs_super_leafsize(disk_super) > PAGE_CACHE_SIZE) {
  2110. if (!(features & BTRFS_FEATURE_INCOMPAT_BIG_METADATA))
  2111. printk(KERN_INFO "btrfs flagging fs with big metadata feature\n");
  2112. features |= BTRFS_FEATURE_INCOMPAT_BIG_METADATA;
  2113. }
  2114. nodesize = btrfs_super_nodesize(disk_super);
  2115. leafsize = btrfs_super_leafsize(disk_super);
  2116. sectorsize = btrfs_super_sectorsize(disk_super);
  2117. stripesize = btrfs_super_stripesize(disk_super);
  2118. fs_info->dirty_metadata_batch = leafsize * (1 + ilog2(nr_cpu_ids));
  2119. fs_info->delalloc_batch = sectorsize * 512 * (1 + ilog2(nr_cpu_ids));
  2120. /*
  2121. * mixed block groups end up with duplicate but slightly offset
  2122. * extent buffers for the same range. It leads to corruptions
  2123. */
  2124. if ((features & BTRFS_FEATURE_INCOMPAT_MIXED_GROUPS) &&
  2125. (sectorsize != leafsize)) {
  2126. printk(KERN_WARNING "btrfs: unequal leaf/node/sector sizes "
  2127. "are not allowed for mixed block groups on %s\n",
  2128. sb->s_id);
  2129. goto fail_alloc;
  2130. }
  2131. /*
  2132. * Needn't use the lock because there is no other task which will
  2133. * update the flag.
  2134. */
  2135. btrfs_set_super_incompat_flags(disk_super, features);
  2136. features = btrfs_super_compat_ro_flags(disk_super) &
  2137. ~BTRFS_FEATURE_COMPAT_RO_SUPP;
  2138. if (!(sb->s_flags & MS_RDONLY) && features) {
  2139. printk(KERN_ERR "BTRFS: couldn't mount RDWR because of "
  2140. "unsupported option features (%Lx).\n",
  2141. features);
  2142. err = -EINVAL;
  2143. goto fail_alloc;
  2144. }
  2145. btrfs_init_workers(&fs_info->generic_worker,
  2146. "genwork", 1, NULL);
  2147. btrfs_init_workers(&fs_info->workers, "worker",
  2148. fs_info->thread_pool_size,
  2149. &fs_info->generic_worker);
  2150. btrfs_init_workers(&fs_info->delalloc_workers, "delalloc",
  2151. fs_info->thread_pool_size, NULL);
  2152. btrfs_init_workers(&fs_info->flush_workers, "flush_delalloc",
  2153. fs_info->thread_pool_size, NULL);
  2154. btrfs_init_workers(&fs_info->submit_workers, "submit",
  2155. min_t(u64, fs_devices->num_devices,
  2156. fs_info->thread_pool_size), NULL);
  2157. btrfs_init_workers(&fs_info->caching_workers, "cache",
  2158. fs_info->thread_pool_size, NULL);
  2159. /* a higher idle thresh on the submit workers makes it much more
  2160. * likely that bios will be send down in a sane order to the
  2161. * devices
  2162. */
  2163. fs_info->submit_workers.idle_thresh = 64;
  2164. fs_info->workers.idle_thresh = 16;
  2165. fs_info->workers.ordered = 1;
  2166. fs_info->delalloc_workers.idle_thresh = 2;
  2167. fs_info->delalloc_workers.ordered = 1;
  2168. btrfs_init_workers(&fs_info->fixup_workers, "fixup", 1,
  2169. &fs_info->generic_worker);
  2170. btrfs_init_workers(&fs_info->endio_workers, "endio",
  2171. fs_info->thread_pool_size,
  2172. &fs_info->generic_worker);
  2173. btrfs_init_workers(&fs_info->endio_meta_workers, "endio-meta",
  2174. fs_info->thread_pool_size,
  2175. &fs_info->generic_worker);
  2176. btrfs_init_workers(&fs_info->endio_meta_write_workers,
  2177. "endio-meta-write", fs_info->thread_pool_size,
  2178. &fs_info->generic_worker);
  2179. btrfs_init_workers(&fs_info->endio_raid56_workers,
  2180. "endio-raid56", fs_info->thread_pool_size,
  2181. &fs_info->generic_worker);
  2182. btrfs_init_workers(&fs_info->rmw_workers,
  2183. "rmw", fs_info->thread_pool_size,
  2184. &fs_info->generic_worker);
  2185. btrfs_init_workers(&fs_info->endio_write_workers, "endio-write",
  2186. fs_info->thread_pool_size,
  2187. &fs_info->generic_worker);
  2188. btrfs_init_workers(&fs_info->endio_freespace_worker, "freespace-write",
  2189. 1, &fs_info->generic_worker);
  2190. btrfs_init_workers(&fs_info->delayed_workers, "delayed-meta",
  2191. fs_info->thread_pool_size,
  2192. &fs_info->generic_worker);
  2193. btrfs_init_workers(&fs_info->readahead_workers, "readahead",
  2194. fs_info->thread_pool_size,
  2195. &fs_info->generic_worker);
  2196. btrfs_init_workers(&fs_info->qgroup_rescan_workers, "qgroup-rescan", 1,
  2197. &fs_info->generic_worker);
  2198. /*
  2199. * endios are largely parallel and should have a very
  2200. * low idle thresh
  2201. */
  2202. fs_info->endio_workers.idle_thresh = 4;
  2203. fs_info->endio_meta_workers.idle_thresh = 4;
  2204. fs_info->endio_raid56_workers.idle_thresh = 4;
  2205. fs_info->rmw_workers.idle_thresh = 2;
  2206. fs_info->endio_write_workers.idle_thresh = 2;
  2207. fs_info->endio_meta_write_workers.idle_thresh = 2;
  2208. fs_info->readahead_workers.idle_thresh = 2;
  2209. /*
  2210. * btrfs_start_workers can really only fail because of ENOMEM so just
  2211. * return -ENOMEM if any of these fail.
  2212. */
  2213. ret = btrfs_start_workers(&fs_info->workers);
  2214. ret |= btrfs_start_workers(&fs_info->generic_worker);
  2215. ret |= btrfs_start_workers(&fs_info->submit_workers);
  2216. ret |= btrfs_start_workers(&fs_info->delalloc_workers);
  2217. ret |= btrfs_start_workers(&fs_info->fixup_workers);
  2218. ret |= btrfs_start_workers(&fs_info->endio_workers);
  2219. ret |= btrfs_start_workers(&fs_info->endio_meta_workers);
  2220. ret |= btrfs_start_workers(&fs_info->rmw_workers);
  2221. ret |= btrfs_start_workers(&fs_info->endio_raid56_workers);
  2222. ret |= btrfs_start_workers(&fs_info->endio_meta_write_workers);
  2223. ret |= btrfs_start_workers(&fs_info->endio_write_workers);
  2224. ret |= btrfs_start_workers(&fs_info->endio_freespace_worker);
  2225. ret |= btrfs_start_workers(&fs_info->delayed_workers);
  2226. ret |= btrfs_start_workers(&fs_info->caching_workers);
  2227. ret |= btrfs_start_workers(&fs_info->readahead_workers);
  2228. ret |= btrfs_start_workers(&fs_info->flush_workers);
  2229. ret |= btrfs_start_workers(&fs_info->qgroup_rescan_workers);
  2230. if (ret) {
  2231. err = -ENOMEM;
  2232. goto fail_sb_buffer;
  2233. }
  2234. fs_info->bdi.ra_pages *= btrfs_super_num_devices(disk_super);
  2235. fs_info->bdi.ra_pages = max(fs_info->bdi.ra_pages,
  2236. 4 * 1024 * 1024 / PAGE_CACHE_SIZE);
  2237. tree_root->nodesize = nodesize;
  2238. tree_root->leafsize = leafsize;
  2239. tree_root->sectorsize = sectorsize;
  2240. tree_root->stripesize = stripesize;
  2241. sb->s_blocksize = sectorsize;
  2242. sb->s_blocksize_bits = blksize_bits(sectorsize);
  2243. if (btrfs_super_magic(disk_super) != BTRFS_MAGIC) {
  2244. printk(KERN_INFO "btrfs: valid FS not found on %s\n", sb->s_id);
  2245. goto fail_sb_buffer;
  2246. }
  2247. if (sectorsize != PAGE_SIZE) {
  2248. printk(KERN_WARNING "btrfs: Incompatible sector size(%lu) "
  2249. "found on %s\n", (unsigned long)sectorsize, sb->s_id);
  2250. goto fail_sb_buffer;
  2251. }
  2252. mutex_lock(&fs_info->chunk_mutex);
  2253. ret = btrfs_read_sys_array(tree_root);
  2254. mutex_unlock(&fs_info->chunk_mutex);
  2255. if (ret) {
  2256. printk(KERN_WARNING "btrfs: failed to read the system "
  2257. "array on %s\n", sb->s_id);
  2258. goto fail_sb_buffer;
  2259. }
  2260. blocksize = btrfs_level_size(tree_root,
  2261. btrfs_super_chunk_root_level(disk_super));
  2262. generation = btrfs_super_chunk_root_generation(disk_super);
  2263. __setup_root(nodesize, leafsize, sectorsize, stripesize,
  2264. chunk_root, fs_info, BTRFS_CHUNK_TREE_OBJECTID);
  2265. chunk_root->node = read_tree_block(chunk_root,
  2266. btrfs_super_chunk_root(disk_super),
  2267. blocksize, generation);
  2268. if (!chunk_root->node ||
  2269. !test_bit(EXTENT_BUFFER_UPTODATE, &chunk_root->node->bflags)) {
  2270. printk(KERN_WARNING "btrfs: failed to read chunk root on %s\n",
  2271. sb->s_id);
  2272. goto fail_tree_roots;
  2273. }
  2274. btrfs_set_root_node(&chunk_root->root_item, chunk_root->node);
  2275. chunk_root->commit_root = btrfs_root_node(chunk_root);
  2276. read_extent_buffer(chunk_root->node, fs_info->chunk_tree_uuid,
  2277. btrfs_header_chunk_tree_uuid(chunk_root->node), BTRFS_UUID_SIZE);
  2278. ret = btrfs_read_chunk_tree(chunk_root);
  2279. if (ret) {
  2280. printk(KERN_WARNING "btrfs: failed to read chunk tree on %s\n",
  2281. sb->s_id);
  2282. goto fail_tree_roots;
  2283. }
  2284. /*
  2285. * keep the device that is marked to be the target device for the
  2286. * dev_replace procedure
  2287. */
  2288. btrfs_close_extra_devices(fs_info, fs_devices, 0);
  2289. if (!fs_devices->latest_bdev) {
  2290. printk(KERN_CRIT "btrfs: failed to read devices on %s\n",
  2291. sb->s_id);
  2292. goto fail_tree_roots;
  2293. }
  2294. retry_root_backup:
  2295. blocksize = btrfs_level_size(tree_root,
  2296. btrfs_super_root_level(disk_super));
  2297. generation = btrfs_super_generation(disk_super);
  2298. tree_root->node = read_tree_block(tree_root,
  2299. btrfs_super_root(disk_super),
  2300. blocksize, generation);
  2301. if (!tree_root->node ||
  2302. !test_bit(EXTENT_BUFFER_UPTODATE, &tree_root->node->bflags)) {
  2303. printk(KERN_WARNING "btrfs: failed to read tree root on %s\n",
  2304. sb->s_id);
  2305. goto recovery_tree_root;
  2306. }
  2307. btrfs_set_root_node(&tree_root->root_item, tree_root->node);
  2308. tree_root->commit_root = btrfs_root_node(tree_root);
  2309. btrfs_set_root_refs(&tree_root->root_item, 1);
  2310. location.objectid = BTRFS_EXTENT_TREE_OBJECTID;
  2311. location.type = BTRFS_ROOT_ITEM_KEY;
  2312. location.offset = 0;
  2313. extent_root = btrfs_read_tree_root(tree_root, &location);
  2314. if (IS_ERR(extent_root)) {
  2315. ret = PTR_ERR(extent_root);
  2316. goto recovery_tree_root;
  2317. }
  2318. extent_root->track_dirty = 1;
  2319. fs_info->extent_root = extent_root;
  2320. location.objectid = BTRFS_DEV_TREE_OBJECTID;
  2321. dev_root = btrfs_read_tree_root(tree_root, &location);
  2322. if (IS_ERR(dev_root)) {
  2323. ret = PTR_ERR(dev_root);
  2324. goto recovery_tree_root;
  2325. }
  2326. dev_root->track_dirty = 1;
  2327. fs_info->dev_root = dev_root;
  2328. btrfs_init_devices_late(fs_info);
  2329. location.objectid = BTRFS_CSUM_TREE_OBJECTID;
  2330. csum_root = btrfs_read_tree_root(tree_root, &location);
  2331. if (IS_ERR(csum_root)) {
  2332. ret = PTR_ERR(csum_root);
  2333. goto recovery_tree_root;
  2334. }
  2335. csum_root->track_dirty = 1;
  2336. fs_info->csum_root = csum_root;
  2337. location.objectid = BTRFS_QUOTA_TREE_OBJECTID;
  2338. quota_root = btrfs_read_tree_root(tree_root, &location);
  2339. if (!IS_ERR(quota_root)) {
  2340. quota_root->track_dirty = 1;
  2341. fs_info->quota_enabled = 1;
  2342. fs_info->pending_quota_state = 1;
  2343. fs_info->quota_root = quota_root;
  2344. }
  2345. location.objectid = BTRFS_UUID_TREE_OBJECTID;
  2346. uuid_root = btrfs_read_tree_root(tree_root, &location);
  2347. if (IS_ERR(uuid_root)) {
  2348. ret = PTR_ERR(uuid_root);
  2349. if (ret != -ENOENT)
  2350. goto recovery_tree_root;
  2351. create_uuid_tree = true;
  2352. check_uuid_tree = false;
  2353. } else {
  2354. uuid_root->track_dirty = 1;
  2355. fs_info->uuid_root = uuid_root;
  2356. create_uuid_tree = false;
  2357. check_uuid_tree =
  2358. generation != btrfs_super_uuid_tree_generation(disk_super);
  2359. }
  2360. fs_info->generation = generation;
  2361. fs_info->last_trans_committed = generation;
  2362. ret = btrfs_recover_balance(fs_info);
  2363. if (ret) {
  2364. printk(KERN_WARNING "btrfs: failed to recover balance\n");
  2365. goto fail_block_groups;
  2366. }
  2367. ret = btrfs_init_dev_stats(fs_info);
  2368. if (ret) {
  2369. printk(KERN_ERR "btrfs: failed to init dev_stats: %d\n",
  2370. ret);
  2371. goto fail_block_groups;
  2372. }
  2373. ret = btrfs_init_dev_replace(fs_info);
  2374. if (ret) {
  2375. pr_err("btrfs: failed to init dev_replace: %d\n", ret);
  2376. goto fail_block_groups;
  2377. }
  2378. btrfs_close_extra_devices(fs_info, fs_devices, 1);
  2379. ret = btrfs_sysfs_add_one(fs_info);
  2380. if (ret) {
  2381. pr_err("btrfs: failed to init sysfs interface: %d\n", ret);
  2382. goto fail_block_groups;
  2383. }
  2384. ret = btrfs_init_space_info(fs_info);
  2385. if (ret) {
  2386. printk(KERN_ERR "Failed to initial space info: %d\n", ret);
  2387. goto fail_block_groups;
  2388. }
  2389. ret = btrfs_read_block_groups(extent_root);
  2390. if (ret) {
  2391. printk(KERN_ERR "Failed to read block groups: %d\n", ret);
  2392. goto fail_block_groups;
  2393. }
  2394. fs_info->num_tolerated_disk_barrier_failures =
  2395. btrfs_calc_num_tolerated_disk_barrier_failures(fs_info);
  2396. if (fs_info->fs_devices->missing_devices >
  2397. fs_info->num_tolerated_disk_barrier_failures &&
  2398. !(sb->s_flags & MS_RDONLY)) {
  2399. printk(KERN_WARNING
  2400. "Btrfs: too many missing devices, writeable mount is not allowed\n");
  2401. goto fail_block_groups;
  2402. }
  2403. fs_info->cleaner_kthread = kthread_run(cleaner_kthread, tree_root,
  2404. "btrfs-cleaner");
  2405. if (IS_ERR(fs_info->cleaner_kthread))
  2406. goto fail_block_groups;
  2407. fs_info->transaction_kthread = kthread_run(transaction_kthread,
  2408. tree_root,
  2409. "btrfs-transaction");
  2410. if (IS_ERR(fs_info->transaction_kthread))
  2411. goto fail_cleaner;
  2412. if (!btrfs_test_opt(tree_root, SSD) &&
  2413. !btrfs_test_opt(tree_root, NOSSD) &&
  2414. !fs_info->fs_devices->rotating) {
  2415. printk(KERN_INFO "Btrfs detected SSD devices, enabling SSD "
  2416. "mode\n");
  2417. btrfs_set_opt(fs_info->mount_opt, SSD);
  2418. }
  2419. #ifdef CONFIG_BTRFS_FS_CHECK_INTEGRITY
  2420. if (btrfs_test_opt(tree_root, CHECK_INTEGRITY)) {
  2421. ret = btrfsic_mount(tree_root, fs_devices,
  2422. btrfs_test_opt(tree_root,
  2423. CHECK_INTEGRITY_INCLUDING_EXTENT_DATA) ?
  2424. 1 : 0,
  2425. fs_info->check_integrity_print_mask);
  2426. if (ret)
  2427. printk(KERN_WARNING "btrfs: failed to initialize"
  2428. " integrity check module %s\n", sb->s_id);
  2429. }
  2430. #endif
  2431. ret = btrfs_read_qgroup_config(fs_info);
  2432. if (ret)
  2433. goto fail_trans_kthread;
  2434. /* do not make disk changes in broken FS */
  2435. if (btrfs_super_log_root(disk_super) != 0) {
  2436. u64 bytenr = btrfs_super_log_root(disk_super);
  2437. if (fs_devices->rw_devices == 0) {
  2438. printk(KERN_WARNING "Btrfs log replay required "
  2439. "on RO media\n");
  2440. err = -EIO;
  2441. goto fail_qgroup;
  2442. }
  2443. blocksize =
  2444. btrfs_level_size(tree_root,
  2445. btrfs_super_log_root_level(disk_super));
  2446. log_tree_root = btrfs_alloc_root(fs_info);
  2447. if (!log_tree_root) {
  2448. err = -ENOMEM;
  2449. goto fail_qgroup;
  2450. }
  2451. __setup_root(nodesize, leafsize, sectorsize, stripesize,
  2452. log_tree_root, fs_info, BTRFS_TREE_LOG_OBJECTID);
  2453. log_tree_root->node = read_tree_block(tree_root, bytenr,
  2454. blocksize,
  2455. generation + 1);
  2456. if (!log_tree_root->node ||
  2457. !extent_buffer_uptodate(log_tree_root->node)) {
  2458. printk(KERN_ERR "btrfs: failed to read log tree\n");
  2459. free_extent_buffer(log_tree_root->node);
  2460. kfree(log_tree_root);
  2461. goto fail_trans_kthread;
  2462. }
  2463. /* returns with log_tree_root freed on success */
  2464. ret = btrfs_recover_log_trees(log_tree_root);
  2465. if (ret) {
  2466. btrfs_error(tree_root->fs_info, ret,
  2467. "Failed to recover log tree");
  2468. free_extent_buffer(log_tree_root->node);
  2469. kfree(log_tree_root);
  2470. goto fail_trans_kthread;
  2471. }
  2472. if (sb->s_flags & MS_RDONLY) {
  2473. ret = btrfs_commit_super(tree_root);
  2474. if (ret)
  2475. goto fail_trans_kthread;
  2476. }
  2477. }
  2478. ret = btrfs_find_orphan_roots(tree_root);
  2479. if (ret)
  2480. goto fail_trans_kthread;
  2481. if (!(sb->s_flags & MS_RDONLY)) {
  2482. ret = btrfs_cleanup_fs_roots(fs_info);
  2483. if (ret)
  2484. goto fail_trans_kthread;
  2485. ret = btrfs_recover_relocation(tree_root);
  2486. if (ret < 0) {
  2487. printk(KERN_WARNING
  2488. "btrfs: failed to recover relocation\n");
  2489. err = -EINVAL;
  2490. goto fail_qgroup;
  2491. }
  2492. }
  2493. location.objectid = BTRFS_FS_TREE_OBJECTID;
  2494. location.type = BTRFS_ROOT_ITEM_KEY;
  2495. location.offset = 0;
  2496. fs_info->fs_root = btrfs_read_fs_root_no_name(fs_info, &location);
  2497. if (IS_ERR(fs_info->fs_root)) {
  2498. err = PTR_ERR(fs_info->fs_root);
  2499. goto fail_qgroup;
  2500. }
  2501. if (sb->s_flags & MS_RDONLY)
  2502. return 0;
  2503. down_read(&fs_info->cleanup_work_sem);
  2504. if ((ret = btrfs_orphan_cleanup(fs_info->fs_root)) ||
  2505. (ret = btrfs_orphan_cleanup(fs_info->tree_root))) {
  2506. up_read(&fs_info->cleanup_work_sem);
  2507. close_ctree(tree_root);
  2508. return ret;
  2509. }
  2510. up_read(&fs_info->cleanup_work_sem);
  2511. ret = btrfs_resume_balance_async(fs_info);
  2512. if (ret) {
  2513. printk(KERN_WARNING "btrfs: failed to resume balance\n");
  2514. close_ctree(tree_root);
  2515. return ret;
  2516. }
  2517. ret = btrfs_resume_dev_replace_async(fs_info);
  2518. if (ret) {
  2519. pr_warn("btrfs: failed to resume dev_replace\n");
  2520. close_ctree(tree_root);
  2521. return ret;
  2522. }
  2523. btrfs_qgroup_rescan_resume(fs_info);
  2524. if (create_uuid_tree) {
  2525. pr_info("btrfs: creating UUID tree\n");
  2526. ret = btrfs_create_uuid_tree(fs_info);
  2527. if (ret) {
  2528. pr_warn("btrfs: failed to create the UUID tree %d\n",
  2529. ret);
  2530. close_ctree(tree_root);
  2531. return ret;
  2532. }
  2533. } else if (check_uuid_tree ||
  2534. btrfs_test_opt(tree_root, RESCAN_UUID_TREE)) {
  2535. pr_info("btrfs: checking UUID tree\n");
  2536. ret = btrfs_check_uuid_tree(fs_info);
  2537. if (ret) {
  2538. pr_warn("btrfs: failed to check the UUID tree %d\n",
  2539. ret);
  2540. close_ctree(tree_root);
  2541. return ret;
  2542. }
  2543. } else {
  2544. fs_info->update_uuid_tree_gen = 1;
  2545. }
  2546. return 0;
  2547. fail_qgroup:
  2548. btrfs_free_qgroup_config(fs_info);
  2549. fail_trans_kthread:
  2550. kthread_stop(fs_info->transaction_kthread);
  2551. btrfs_cleanup_transaction(fs_info->tree_root);
  2552. del_fs_roots(fs_info);
  2553. fail_cleaner:
  2554. kthread_stop(fs_info->cleaner_kthread);
  2555. /*
  2556. * make sure we're done with the btree inode before we stop our
  2557. * kthreads
  2558. */
  2559. filemap_write_and_wait(fs_info->btree_inode->i_mapping);
  2560. fail_block_groups:
  2561. btrfs_put_block_group_cache(fs_info);
  2562. btrfs_free_block_groups(fs_info);
  2563. fail_tree_roots:
  2564. free_root_pointers(fs_info, 1);
  2565. invalidate_inode_pages2(fs_info->btree_inode->i_mapping);
  2566. fail_sb_buffer:
  2567. btrfs_stop_all_workers(fs_info);
  2568. fail_alloc:
  2569. fail_iput:
  2570. btrfs_mapping_tree_free(&fs_info->mapping_tree);
  2571. iput(fs_info->btree_inode);
  2572. fail_delalloc_bytes:
  2573. percpu_counter_destroy(&fs_info->delalloc_bytes);
  2574. fail_dirty_metadata_bytes:
  2575. percpu_counter_destroy(&fs_info->dirty_metadata_bytes);
  2576. fail_bdi:
  2577. bdi_destroy(&fs_info->bdi);
  2578. fail_srcu:
  2579. cleanup_srcu_struct(&fs_info->subvol_srcu);
  2580. fail:
  2581. btrfs_free_stripe_hash_table(fs_info);
  2582. btrfs_close_devices(fs_info->fs_devices);
  2583. return err;
  2584. recovery_tree_root:
  2585. if (!btrfs_test_opt(tree_root, RECOVERY))
  2586. goto fail_tree_roots;
  2587. free_root_pointers(fs_info, 0);
  2588. /* don't use the log in recovery mode, it won't be valid */
  2589. btrfs_set_super_log_root(disk_super, 0);
  2590. /* we can't trust the free space cache either */
  2591. btrfs_set_opt(fs_info->mount_opt, CLEAR_CACHE);
  2592. ret = next_root_backup(fs_info, fs_info->super_copy,
  2593. &num_backups_tried, &backup_index);
  2594. if (ret == -1)
  2595. goto fail_block_groups;
  2596. goto retry_root_backup;
  2597. }
  2598. static void btrfs_end_buffer_write_sync(struct buffer_head *bh, int uptodate)
  2599. {
  2600. if (uptodate) {
  2601. set_buffer_uptodate(bh);
  2602. } else {
  2603. struct btrfs_device *device = (struct btrfs_device *)
  2604. bh->b_private;
  2605. printk_ratelimited_in_rcu(KERN_WARNING "lost page write due to "
  2606. "I/O error on %s\n",
  2607. rcu_str_deref(device->name));
  2608. /* note, we dont' set_buffer_write_io_error because we have
  2609. * our own ways of dealing with the IO errors
  2610. */
  2611. clear_buffer_uptodate(bh);
  2612. btrfs_dev_stat_inc_and_print(device, BTRFS_DEV_STAT_WRITE_ERRS);
  2613. }
  2614. unlock_buffer(bh);
  2615. put_bh(bh);
  2616. }
  2617. struct buffer_head *btrfs_read_dev_super(struct block_device *bdev)
  2618. {
  2619. struct buffer_head *bh;
  2620. struct buffer_head *latest = NULL;
  2621. struct btrfs_super_block *super;
  2622. int i;
  2623. u64 transid = 0;
  2624. u64 bytenr;
  2625. /* we would like to check all the supers, but that would make
  2626. * a btrfs mount succeed after a mkfs from a different FS.
  2627. * So, we need to add a special mount option to scan for
  2628. * later supers, using BTRFS_SUPER_MIRROR_MAX instead
  2629. */
  2630. for (i = 0; i < 1; i++) {
  2631. bytenr = btrfs_sb_offset(i);
  2632. if (bytenr + BTRFS_SUPER_INFO_SIZE >=
  2633. i_size_read(bdev->bd_inode))
  2634. break;
  2635. bh = __bread(bdev, bytenr / 4096,
  2636. BTRFS_SUPER_INFO_SIZE);
  2637. if (!bh)
  2638. continue;
  2639. super = (struct btrfs_super_block *)bh->b_data;
  2640. if (btrfs_super_bytenr(super) != bytenr ||
  2641. btrfs_super_magic(super) != BTRFS_MAGIC) {
  2642. brelse(bh);
  2643. continue;
  2644. }
  2645. if (!latest || btrfs_super_generation(super) > transid) {
  2646. brelse(latest);
  2647. latest = bh;
  2648. transid = btrfs_super_generation(super);
  2649. } else {
  2650. brelse(bh);
  2651. }
  2652. }
  2653. return latest;
  2654. }
  2655. /*
  2656. * this should be called twice, once with wait == 0 and
  2657. * once with wait == 1. When wait == 0 is done, all the buffer heads
  2658. * we write are pinned.
  2659. *
  2660. * They are released when wait == 1 is done.
  2661. * max_mirrors must be the same for both runs, and it indicates how
  2662. * many supers on this one device should be written.
  2663. *
  2664. * max_mirrors == 0 means to write them all.
  2665. */
  2666. static int write_dev_supers(struct btrfs_device *device,
  2667. struct btrfs_super_block *sb,
  2668. int do_barriers, int wait, int max_mirrors)
  2669. {
  2670. struct buffer_head *bh;
  2671. int i;
  2672. int ret;
  2673. int errors = 0;
  2674. u32 crc;
  2675. u64 bytenr;
  2676. if (max_mirrors == 0)
  2677. max_mirrors = BTRFS_SUPER_MIRROR_MAX;
  2678. for (i = 0; i < max_mirrors; i++) {
  2679. bytenr = btrfs_sb_offset(i);
  2680. if (bytenr + BTRFS_SUPER_INFO_SIZE >= device->total_bytes)
  2681. break;
  2682. if (wait) {
  2683. bh = __find_get_block(device->bdev, bytenr / 4096,
  2684. BTRFS_SUPER_INFO_SIZE);
  2685. if (!bh) {
  2686. errors++;
  2687. continue;
  2688. }
  2689. wait_on_buffer(bh);
  2690. if (!buffer_uptodate(bh))
  2691. errors++;
  2692. /* drop our reference */
  2693. brelse(bh);
  2694. /* drop the reference from the wait == 0 run */
  2695. brelse(bh);
  2696. continue;
  2697. } else {
  2698. btrfs_set_super_bytenr(sb, bytenr);
  2699. crc = ~(u32)0;
  2700. crc = btrfs_csum_data((char *)sb +
  2701. BTRFS_CSUM_SIZE, crc,
  2702. BTRFS_SUPER_INFO_SIZE -
  2703. BTRFS_CSUM_SIZE);
  2704. btrfs_csum_final(crc, sb->csum);
  2705. /*
  2706. * one reference for us, and we leave it for the
  2707. * caller
  2708. */
  2709. bh = __getblk(device->bdev, bytenr / 4096,
  2710. BTRFS_SUPER_INFO_SIZE);
  2711. if (!bh) {
  2712. printk(KERN_ERR "btrfs: couldn't get super "
  2713. "buffer head for bytenr %Lu\n", bytenr);
  2714. errors++;
  2715. continue;
  2716. }
  2717. memcpy(bh->b_data, sb, BTRFS_SUPER_INFO_SIZE);
  2718. /* one reference for submit_bh */
  2719. get_bh(bh);
  2720. set_buffer_uptodate(bh);
  2721. lock_buffer(bh);
  2722. bh->b_end_io = btrfs_end_buffer_write_sync;
  2723. bh->b_private = device;
  2724. }
  2725. /*
  2726. * we fua the first super. The others we allow
  2727. * to go down lazy.
  2728. */
  2729. ret = btrfsic_submit_bh(WRITE_FUA, bh);
  2730. if (ret)
  2731. errors++;
  2732. }
  2733. return errors < i ? 0 : -1;
  2734. }
  2735. /*
  2736. * endio for the write_dev_flush, this will wake anyone waiting
  2737. * for the barrier when it is done
  2738. */
  2739. static void btrfs_end_empty_barrier(struct bio *bio, int err)
  2740. {
  2741. if (err) {
  2742. if (err == -EOPNOTSUPP)
  2743. set_bit(BIO_EOPNOTSUPP, &bio->bi_flags);
  2744. clear_bit(BIO_UPTODATE, &bio->bi_flags);
  2745. }
  2746. if (bio->bi_private)
  2747. complete(bio->bi_private);
  2748. bio_put(bio);
  2749. }
  2750. /*
  2751. * trigger flushes for one the devices. If you pass wait == 0, the flushes are
  2752. * sent down. With wait == 1, it waits for the previous flush.
  2753. *
  2754. * any device where the flush fails with eopnotsupp are flagged as not-barrier
  2755. * capable
  2756. */
  2757. static int write_dev_flush(struct btrfs_device *device, int wait)
  2758. {
  2759. struct bio *bio;
  2760. int ret = 0;
  2761. if (device->nobarriers)
  2762. return 0;
  2763. if (wait) {
  2764. bio = device->flush_bio;
  2765. if (!bio)
  2766. return 0;
  2767. wait_for_completion(&device->flush_wait);
  2768. if (bio_flagged(bio, BIO_EOPNOTSUPP)) {
  2769. printk_in_rcu("btrfs: disabling barriers on dev %s\n",
  2770. rcu_str_deref(device->name));
  2771. device->nobarriers = 1;
  2772. } else if (!bio_flagged(bio, BIO_UPTODATE)) {
  2773. ret = -EIO;
  2774. btrfs_dev_stat_inc_and_print(device,
  2775. BTRFS_DEV_STAT_FLUSH_ERRS);
  2776. }
  2777. /* drop the reference from the wait == 0 run */
  2778. bio_put(bio);
  2779. device->flush_bio = NULL;
  2780. return ret;
  2781. }
  2782. /*
  2783. * one reference for us, and we leave it for the
  2784. * caller
  2785. */
  2786. device->flush_bio = NULL;
  2787. bio = btrfs_io_bio_alloc(GFP_NOFS, 0);
  2788. if (!bio)
  2789. return -ENOMEM;
  2790. bio->bi_end_io = btrfs_end_empty_barrier;
  2791. bio->bi_bdev = device->bdev;
  2792. init_completion(&device->flush_wait);
  2793. bio->bi_private = &device->flush_wait;
  2794. device->flush_bio = bio;
  2795. bio_get(bio);
  2796. btrfsic_submit_bio(WRITE_FLUSH, bio);
  2797. return 0;
  2798. }
  2799. /*
  2800. * send an empty flush down to each device in parallel,
  2801. * then wait for them
  2802. */
  2803. static int barrier_all_devices(struct btrfs_fs_info *info)
  2804. {
  2805. struct list_head *head;
  2806. struct btrfs_device *dev;
  2807. int errors_send = 0;
  2808. int errors_wait = 0;
  2809. int ret;
  2810. /* send down all the barriers */
  2811. head = &info->fs_devices->devices;
  2812. list_for_each_entry_rcu(dev, head, dev_list) {
  2813. if (!dev->bdev) {
  2814. errors_send++;
  2815. continue;
  2816. }
  2817. if (!dev->in_fs_metadata || !dev->writeable)
  2818. continue;
  2819. ret = write_dev_flush(dev, 0);
  2820. if (ret)
  2821. errors_send++;
  2822. }
  2823. /* wait for all the barriers */
  2824. list_for_each_entry_rcu(dev, head, dev_list) {
  2825. if (!dev->bdev) {
  2826. errors_wait++;
  2827. continue;
  2828. }
  2829. if (!dev->in_fs_metadata || !dev->writeable)
  2830. continue;
  2831. ret = write_dev_flush(dev, 1);
  2832. if (ret)
  2833. errors_wait++;
  2834. }
  2835. if (errors_send > info->num_tolerated_disk_barrier_failures ||
  2836. errors_wait > info->num_tolerated_disk_barrier_failures)
  2837. return -EIO;
  2838. return 0;
  2839. }
  2840. int btrfs_calc_num_tolerated_disk_barrier_failures(
  2841. struct btrfs_fs_info *fs_info)
  2842. {
  2843. struct btrfs_ioctl_space_info space;
  2844. struct btrfs_space_info *sinfo;
  2845. u64 types[] = {BTRFS_BLOCK_GROUP_DATA,
  2846. BTRFS_BLOCK_GROUP_SYSTEM,
  2847. BTRFS_BLOCK_GROUP_METADATA,
  2848. BTRFS_BLOCK_GROUP_DATA | BTRFS_BLOCK_GROUP_METADATA};
  2849. int num_types = 4;
  2850. int i;
  2851. int c;
  2852. int num_tolerated_disk_barrier_failures =
  2853. (int)fs_info->fs_devices->num_devices;
  2854. for (i = 0; i < num_types; i++) {
  2855. struct btrfs_space_info *tmp;
  2856. sinfo = NULL;
  2857. rcu_read_lock();
  2858. list_for_each_entry_rcu(tmp, &fs_info->space_info, list) {
  2859. if (tmp->flags == types[i]) {
  2860. sinfo = tmp;
  2861. break;
  2862. }
  2863. }
  2864. rcu_read_unlock();
  2865. if (!sinfo)
  2866. continue;
  2867. down_read(&sinfo->groups_sem);
  2868. for (c = 0; c < BTRFS_NR_RAID_TYPES; c++) {
  2869. if (!list_empty(&sinfo->block_groups[c])) {
  2870. u64 flags;
  2871. btrfs_get_block_group_info(
  2872. &sinfo->block_groups[c], &space);
  2873. if (space.total_bytes == 0 ||
  2874. space.used_bytes == 0)
  2875. continue;
  2876. flags = space.flags;
  2877. /*
  2878. * return
  2879. * 0: if dup, single or RAID0 is configured for
  2880. * any of metadata, system or data, else
  2881. * 1: if RAID5 is configured, or if RAID1 or
  2882. * RAID10 is configured and only two mirrors
  2883. * are used, else
  2884. * 2: if RAID6 is configured, else
  2885. * num_mirrors - 1: if RAID1 or RAID10 is
  2886. * configured and more than
  2887. * 2 mirrors are used.
  2888. */
  2889. if (num_tolerated_disk_barrier_failures > 0 &&
  2890. ((flags & (BTRFS_BLOCK_GROUP_DUP |
  2891. BTRFS_BLOCK_GROUP_RAID0)) ||
  2892. ((flags & BTRFS_BLOCK_GROUP_PROFILE_MASK)
  2893. == 0)))
  2894. num_tolerated_disk_barrier_failures = 0;
  2895. else if (num_tolerated_disk_barrier_failures > 1) {
  2896. if (flags & (BTRFS_BLOCK_GROUP_RAID1 |
  2897. BTRFS_BLOCK_GROUP_RAID5 |
  2898. BTRFS_BLOCK_GROUP_RAID10)) {
  2899. num_tolerated_disk_barrier_failures = 1;
  2900. } else if (flags &
  2901. BTRFS_BLOCK_GROUP_RAID6) {
  2902. num_tolerated_disk_barrier_failures = 2;
  2903. }
  2904. }
  2905. }
  2906. }
  2907. up_read(&sinfo->groups_sem);
  2908. }
  2909. return num_tolerated_disk_barrier_failures;
  2910. }
  2911. static int write_all_supers(struct btrfs_root *root, int max_mirrors)
  2912. {
  2913. struct list_head *head;
  2914. struct btrfs_device *dev;
  2915. struct btrfs_super_block *sb;
  2916. struct btrfs_dev_item *dev_item;
  2917. int ret;
  2918. int do_barriers;
  2919. int max_errors;
  2920. int total_errors = 0;
  2921. u64 flags;
  2922. do_barriers = !btrfs_test_opt(root, NOBARRIER);
  2923. backup_super_roots(root->fs_info);
  2924. sb = root->fs_info->super_for_commit;
  2925. dev_item = &sb->dev_item;
  2926. mutex_lock(&root->fs_info->fs_devices->device_list_mutex);
  2927. head = &root->fs_info->fs_devices->devices;
  2928. max_errors = btrfs_super_num_devices(root->fs_info->super_copy) - 1;
  2929. if (do_barriers) {
  2930. ret = barrier_all_devices(root->fs_info);
  2931. if (ret) {
  2932. mutex_unlock(
  2933. &root->fs_info->fs_devices->device_list_mutex);
  2934. btrfs_error(root->fs_info, ret,
  2935. "errors while submitting device barriers.");
  2936. return ret;
  2937. }
  2938. }
  2939. list_for_each_entry_rcu(dev, head, dev_list) {
  2940. if (!dev->bdev) {
  2941. total_errors++;
  2942. continue;
  2943. }
  2944. if (!dev->in_fs_metadata || !dev->writeable)
  2945. continue;
  2946. btrfs_set_stack_device_generation(dev_item, 0);
  2947. btrfs_set_stack_device_type(dev_item, dev->type);
  2948. btrfs_set_stack_device_id(dev_item, dev->devid);
  2949. btrfs_set_stack_device_total_bytes(dev_item, dev->total_bytes);
  2950. btrfs_set_stack_device_bytes_used(dev_item, dev->bytes_used);
  2951. btrfs_set_stack_device_io_align(dev_item, dev->io_align);
  2952. btrfs_set_stack_device_io_width(dev_item, dev->io_width);
  2953. btrfs_set_stack_device_sector_size(dev_item, dev->sector_size);
  2954. memcpy(dev_item->uuid, dev->uuid, BTRFS_UUID_SIZE);
  2955. memcpy(dev_item->fsid, dev->fs_devices->fsid, BTRFS_UUID_SIZE);
  2956. flags = btrfs_super_flags(sb);
  2957. btrfs_set_super_flags(sb, flags | BTRFS_HEADER_FLAG_WRITTEN);
  2958. ret = write_dev_supers(dev, sb, do_barriers, 0, max_mirrors);
  2959. if (ret)
  2960. total_errors++;
  2961. }
  2962. if (total_errors > max_errors) {
  2963. printk(KERN_ERR "btrfs: %d errors while writing supers\n",
  2964. total_errors);
  2965. mutex_unlock(&root->fs_info->fs_devices->device_list_mutex);
  2966. /* FUA is masked off if unsupported and can't be the reason */
  2967. btrfs_error(root->fs_info, -EIO,
  2968. "%d errors while writing supers", total_errors);
  2969. return -EIO;
  2970. }
  2971. total_errors = 0;
  2972. list_for_each_entry_rcu(dev, head, dev_list) {
  2973. if (!dev->bdev)
  2974. continue;
  2975. if (!dev->in_fs_metadata || !dev->writeable)
  2976. continue;
  2977. ret = write_dev_supers(dev, sb, do_barriers, 1, max_mirrors);
  2978. if (ret)
  2979. total_errors++;
  2980. }
  2981. mutex_unlock(&root->fs_info->fs_devices->device_list_mutex);
  2982. if (total_errors > max_errors) {
  2983. btrfs_error(root->fs_info, -EIO,
  2984. "%d errors while writing supers", total_errors);
  2985. return -EIO;
  2986. }
  2987. return 0;
  2988. }
  2989. int write_ctree_super(struct btrfs_trans_handle *trans,
  2990. struct btrfs_root *root, int max_mirrors)
  2991. {
  2992. return write_all_supers(root, max_mirrors);
  2993. }
  2994. /* Drop a fs root from the radix tree and free it. */
  2995. void btrfs_drop_and_free_fs_root(struct btrfs_fs_info *fs_info,
  2996. struct btrfs_root *root)
  2997. {
  2998. spin_lock(&fs_info->fs_roots_radix_lock);
  2999. radix_tree_delete(&fs_info->fs_roots_radix,
  3000. (unsigned long)root->root_key.objectid);
  3001. spin_unlock(&fs_info->fs_roots_radix_lock);
  3002. if (btrfs_root_refs(&root->root_item) == 0)
  3003. synchronize_srcu(&fs_info->subvol_srcu);
  3004. if (test_bit(BTRFS_FS_STATE_ERROR, &fs_info->fs_state)) {
  3005. btrfs_free_log(NULL, root);
  3006. btrfs_free_log_root_tree(NULL, fs_info);
  3007. }
  3008. __btrfs_remove_free_space_cache(root->free_ino_pinned);
  3009. __btrfs_remove_free_space_cache(root->free_ino_ctl);
  3010. free_fs_root(root);
  3011. }
  3012. static void free_fs_root(struct btrfs_root *root)
  3013. {
  3014. iput(root->cache_inode);
  3015. WARN_ON(!RB_EMPTY_ROOT(&root->inode_tree));
  3016. btrfs_free_block_rsv(root, root->orphan_block_rsv);
  3017. root->orphan_block_rsv = NULL;
  3018. if (root->anon_dev)
  3019. free_anon_bdev(root->anon_dev);
  3020. free_extent_buffer(root->node);
  3021. free_extent_buffer(root->commit_root);
  3022. kfree(root->free_ino_ctl);
  3023. kfree(root->free_ino_pinned);
  3024. kfree(root->name);
  3025. btrfs_put_fs_root(root);
  3026. }
  3027. void btrfs_free_fs_root(struct btrfs_root *root)
  3028. {
  3029. free_fs_root(root);
  3030. }
  3031. int btrfs_cleanup_fs_roots(struct btrfs_fs_info *fs_info)
  3032. {
  3033. u64 root_objectid = 0;
  3034. struct btrfs_root *gang[8];
  3035. int i;
  3036. int ret;
  3037. while (1) {
  3038. ret = radix_tree_gang_lookup(&fs_info->fs_roots_radix,
  3039. (void **)gang, root_objectid,
  3040. ARRAY_SIZE(gang));
  3041. if (!ret)
  3042. break;
  3043. root_objectid = gang[ret - 1]->root_key.objectid + 1;
  3044. for (i = 0; i < ret; i++) {
  3045. int err;
  3046. root_objectid = gang[i]->root_key.objectid;
  3047. err = btrfs_orphan_cleanup(gang[i]);
  3048. if (err)
  3049. return err;
  3050. }
  3051. root_objectid++;
  3052. }
  3053. return 0;
  3054. }
  3055. int btrfs_commit_super(struct btrfs_root *root)
  3056. {
  3057. struct btrfs_trans_handle *trans;
  3058. mutex_lock(&root->fs_info->cleaner_mutex);
  3059. btrfs_run_delayed_iputs(root);
  3060. mutex_unlock(&root->fs_info->cleaner_mutex);
  3061. wake_up_process(root->fs_info->cleaner_kthread);
  3062. /* wait until ongoing cleanup work done */
  3063. down_write(&root->fs_info->cleanup_work_sem);
  3064. up_write(&root->fs_info->cleanup_work_sem);
  3065. trans = btrfs_join_transaction(root);
  3066. if (IS_ERR(trans))
  3067. return PTR_ERR(trans);
  3068. return btrfs_commit_transaction(trans, root);
  3069. }
  3070. int close_ctree(struct btrfs_root *root)
  3071. {
  3072. struct btrfs_fs_info *fs_info = root->fs_info;
  3073. int ret;
  3074. fs_info->closing = 1;
  3075. smp_mb();
  3076. /* wait for the uuid_scan task to finish */
  3077. down(&fs_info->uuid_tree_rescan_sem);
  3078. /* avoid complains from lockdep et al., set sem back to initial state */
  3079. up(&fs_info->uuid_tree_rescan_sem);
  3080. /* pause restriper - we want to resume on mount */
  3081. btrfs_pause_balance(fs_info);
  3082. btrfs_dev_replace_suspend_for_unmount(fs_info);
  3083. btrfs_scrub_cancel(fs_info);
  3084. /* wait for any defraggers to finish */
  3085. wait_event(fs_info->transaction_wait,
  3086. (atomic_read(&fs_info->defrag_running) == 0));
  3087. /* clear out the rbtree of defraggable inodes */
  3088. btrfs_cleanup_defrag_inodes(fs_info);
  3089. if (!(fs_info->sb->s_flags & MS_RDONLY)) {
  3090. ret = btrfs_commit_super(root);
  3091. if (ret)
  3092. printk(KERN_ERR "btrfs: commit super ret %d\n", ret);
  3093. }
  3094. if (test_bit(BTRFS_FS_STATE_ERROR, &fs_info->fs_state))
  3095. btrfs_error_commit_super(root);
  3096. btrfs_put_block_group_cache(fs_info);
  3097. kthread_stop(fs_info->transaction_kthread);
  3098. kthread_stop(fs_info->cleaner_kthread);
  3099. fs_info->closing = 2;
  3100. smp_mb();
  3101. btrfs_free_qgroup_config(root->fs_info);
  3102. if (percpu_counter_sum(&fs_info->delalloc_bytes)) {
  3103. printk(KERN_INFO "btrfs: at unmount delalloc count %lld\n",
  3104. percpu_counter_sum(&fs_info->delalloc_bytes));
  3105. }
  3106. btrfs_sysfs_remove_one(fs_info);
  3107. del_fs_roots(fs_info);
  3108. btrfs_free_block_groups(fs_info);
  3109. btrfs_stop_all_workers(fs_info);
  3110. free_root_pointers(fs_info, 1);
  3111. iput(fs_info->btree_inode);
  3112. #ifdef CONFIG_BTRFS_FS_CHECK_INTEGRITY
  3113. if (btrfs_test_opt(root, CHECK_INTEGRITY))
  3114. btrfsic_unmount(root, fs_info->fs_devices);
  3115. #endif
  3116. btrfs_close_devices(fs_info->fs_devices);
  3117. btrfs_mapping_tree_free(&fs_info->mapping_tree);
  3118. percpu_counter_destroy(&fs_info->dirty_metadata_bytes);
  3119. percpu_counter_destroy(&fs_info->delalloc_bytes);
  3120. bdi_destroy(&fs_info->bdi);
  3121. cleanup_srcu_struct(&fs_info->subvol_srcu);
  3122. btrfs_free_stripe_hash_table(fs_info);
  3123. btrfs_free_block_rsv(root, root->orphan_block_rsv);
  3124. root->orphan_block_rsv = NULL;
  3125. return 0;
  3126. }
  3127. int btrfs_buffer_uptodate(struct extent_buffer *buf, u64 parent_transid,
  3128. int atomic)
  3129. {
  3130. int ret;
  3131. struct inode *btree_inode = buf->pages[0]->mapping->host;
  3132. ret = extent_buffer_uptodate(buf);
  3133. if (!ret)
  3134. return ret;
  3135. ret = verify_parent_transid(&BTRFS_I(btree_inode)->io_tree, buf,
  3136. parent_transid, atomic);
  3137. if (ret == -EAGAIN)
  3138. return ret;
  3139. return !ret;
  3140. }
  3141. int btrfs_set_buffer_uptodate(struct extent_buffer *buf)
  3142. {
  3143. return set_extent_buffer_uptodate(buf);
  3144. }
  3145. void btrfs_mark_buffer_dirty(struct extent_buffer *buf)
  3146. {
  3147. struct btrfs_root *root;
  3148. u64 transid = btrfs_header_generation(buf);
  3149. int was_dirty;
  3150. #ifdef CONFIG_BTRFS_FS_RUN_SANITY_TESTS
  3151. /*
  3152. * This is a fast path so only do this check if we have sanity tests
  3153. * enabled. Normal people shouldn't be marking dummy buffers as dirty
  3154. * outside of the sanity tests.
  3155. */
  3156. if (unlikely(test_bit(EXTENT_BUFFER_DUMMY, &buf->bflags)))
  3157. return;
  3158. #endif
  3159. root = BTRFS_I(buf->pages[0]->mapping->host)->root;
  3160. btrfs_assert_tree_locked(buf);
  3161. if (transid != root->fs_info->generation)
  3162. WARN(1, KERN_CRIT "btrfs transid mismatch buffer %llu, "
  3163. "found %llu running %llu\n",
  3164. buf->start, transid, root->fs_info->generation);
  3165. was_dirty = set_extent_buffer_dirty(buf);
  3166. if (!was_dirty)
  3167. __percpu_counter_add(&root->fs_info->dirty_metadata_bytes,
  3168. buf->len,
  3169. root->fs_info->dirty_metadata_batch);
  3170. }
  3171. static void __btrfs_btree_balance_dirty(struct btrfs_root *root,
  3172. int flush_delayed)
  3173. {
  3174. /*
  3175. * looks as though older kernels can get into trouble with
  3176. * this code, they end up stuck in balance_dirty_pages forever
  3177. */
  3178. int ret;
  3179. if (current->flags & PF_MEMALLOC)
  3180. return;
  3181. if (flush_delayed)
  3182. btrfs_balance_delayed_items(root);
  3183. ret = percpu_counter_compare(&root->fs_info->dirty_metadata_bytes,
  3184. BTRFS_DIRTY_METADATA_THRESH);
  3185. if (ret > 0) {
  3186. balance_dirty_pages_ratelimited(
  3187. root->fs_info->btree_inode->i_mapping);
  3188. }
  3189. return;
  3190. }
  3191. void btrfs_btree_balance_dirty(struct btrfs_root *root)
  3192. {
  3193. __btrfs_btree_balance_dirty(root, 1);
  3194. }
  3195. void btrfs_btree_balance_dirty_nodelay(struct btrfs_root *root)
  3196. {
  3197. __btrfs_btree_balance_dirty(root, 0);
  3198. }
  3199. int btrfs_read_buffer(struct extent_buffer *buf, u64 parent_transid)
  3200. {
  3201. struct btrfs_root *root = BTRFS_I(buf->pages[0]->mapping->host)->root;
  3202. return btree_read_extent_buffer_pages(root, buf, 0, parent_transid);
  3203. }
  3204. static int btrfs_check_super_valid(struct btrfs_fs_info *fs_info,
  3205. int read_only)
  3206. {
  3207. /*
  3208. * Placeholder for checks
  3209. */
  3210. return 0;
  3211. }
  3212. static void btrfs_error_commit_super(struct btrfs_root *root)
  3213. {
  3214. mutex_lock(&root->fs_info->cleaner_mutex);
  3215. btrfs_run_delayed_iputs(root);
  3216. mutex_unlock(&root->fs_info->cleaner_mutex);
  3217. down_write(&root->fs_info->cleanup_work_sem);
  3218. up_write(&root->fs_info->cleanup_work_sem);
  3219. /* cleanup FS via transaction */
  3220. btrfs_cleanup_transaction(root);
  3221. }
  3222. static void btrfs_destroy_ordered_operations(struct btrfs_transaction *t,
  3223. struct btrfs_root *root)
  3224. {
  3225. struct btrfs_inode *btrfs_inode;
  3226. struct list_head splice;
  3227. INIT_LIST_HEAD(&splice);
  3228. mutex_lock(&root->fs_info->ordered_operations_mutex);
  3229. spin_lock(&root->fs_info->ordered_root_lock);
  3230. list_splice_init(&t->ordered_operations, &splice);
  3231. while (!list_empty(&splice)) {
  3232. btrfs_inode = list_entry(splice.next, struct btrfs_inode,
  3233. ordered_operations);
  3234. list_del_init(&btrfs_inode->ordered_operations);
  3235. spin_unlock(&root->fs_info->ordered_root_lock);
  3236. btrfs_invalidate_inodes(btrfs_inode->root);
  3237. spin_lock(&root->fs_info->ordered_root_lock);
  3238. }
  3239. spin_unlock(&root->fs_info->ordered_root_lock);
  3240. mutex_unlock(&root->fs_info->ordered_operations_mutex);
  3241. }
  3242. static void btrfs_destroy_ordered_extents(struct btrfs_root *root)
  3243. {
  3244. struct btrfs_ordered_extent *ordered;
  3245. spin_lock(&root->ordered_extent_lock);
  3246. /*
  3247. * This will just short circuit the ordered completion stuff which will
  3248. * make sure the ordered extent gets properly cleaned up.
  3249. */
  3250. list_for_each_entry(ordered, &root->ordered_extents,
  3251. root_extent_list)
  3252. set_bit(BTRFS_ORDERED_IOERR, &ordered->flags);
  3253. spin_unlock(&root->ordered_extent_lock);
  3254. }
  3255. static void btrfs_destroy_all_ordered_extents(struct btrfs_fs_info *fs_info)
  3256. {
  3257. struct btrfs_root *root;
  3258. struct list_head splice;
  3259. INIT_LIST_HEAD(&splice);
  3260. spin_lock(&fs_info->ordered_root_lock);
  3261. list_splice_init(&fs_info->ordered_roots, &splice);
  3262. while (!list_empty(&splice)) {
  3263. root = list_first_entry(&splice, struct btrfs_root,
  3264. ordered_root);
  3265. list_move_tail(&root->ordered_root,
  3266. &fs_info->ordered_roots);
  3267. btrfs_destroy_ordered_extents(root);
  3268. cond_resched_lock(&fs_info->ordered_root_lock);
  3269. }
  3270. spin_unlock(&fs_info->ordered_root_lock);
  3271. }
  3272. static int btrfs_destroy_delayed_refs(struct btrfs_transaction *trans,
  3273. struct btrfs_root *root)
  3274. {
  3275. struct rb_node *node;
  3276. struct btrfs_delayed_ref_root *delayed_refs;
  3277. struct btrfs_delayed_ref_node *ref;
  3278. int ret = 0;
  3279. delayed_refs = &trans->delayed_refs;
  3280. spin_lock(&delayed_refs->lock);
  3281. if (delayed_refs->num_entries == 0) {
  3282. spin_unlock(&delayed_refs->lock);
  3283. printk(KERN_INFO "delayed_refs has NO entry\n");
  3284. return ret;
  3285. }
  3286. while ((node = rb_first(&delayed_refs->root)) != NULL) {
  3287. struct btrfs_delayed_ref_head *head = NULL;
  3288. bool pin_bytes = false;
  3289. ref = rb_entry(node, struct btrfs_delayed_ref_node, rb_node);
  3290. atomic_set(&ref->refs, 1);
  3291. if (btrfs_delayed_ref_is_head(ref)) {
  3292. head = btrfs_delayed_node_to_head(ref);
  3293. if (!mutex_trylock(&head->mutex)) {
  3294. atomic_inc(&ref->refs);
  3295. spin_unlock(&delayed_refs->lock);
  3296. /* Need to wait for the delayed ref to run */
  3297. mutex_lock(&head->mutex);
  3298. mutex_unlock(&head->mutex);
  3299. btrfs_put_delayed_ref(ref);
  3300. spin_lock(&delayed_refs->lock);
  3301. continue;
  3302. }
  3303. if (head->must_insert_reserved)
  3304. pin_bytes = true;
  3305. btrfs_free_delayed_extent_op(head->extent_op);
  3306. delayed_refs->num_heads--;
  3307. if (list_empty(&head->cluster))
  3308. delayed_refs->num_heads_ready--;
  3309. list_del_init(&head->cluster);
  3310. }
  3311. ref->in_tree = 0;
  3312. rb_erase(&ref->rb_node, &delayed_refs->root);
  3313. if (head)
  3314. rb_erase(&head->href_node, &delayed_refs->href_root);
  3315. delayed_refs->num_entries--;
  3316. spin_unlock(&delayed_refs->lock);
  3317. if (head) {
  3318. if (pin_bytes)
  3319. btrfs_pin_extent(root, ref->bytenr,
  3320. ref->num_bytes, 1);
  3321. mutex_unlock(&head->mutex);
  3322. }
  3323. btrfs_put_delayed_ref(ref);
  3324. cond_resched();
  3325. spin_lock(&delayed_refs->lock);
  3326. }
  3327. spin_unlock(&delayed_refs->lock);
  3328. return ret;
  3329. }
  3330. static void btrfs_destroy_delalloc_inodes(struct btrfs_root *root)
  3331. {
  3332. struct btrfs_inode *btrfs_inode;
  3333. struct list_head splice;
  3334. INIT_LIST_HEAD(&splice);
  3335. spin_lock(&root->delalloc_lock);
  3336. list_splice_init(&root->delalloc_inodes, &splice);
  3337. while (!list_empty(&splice)) {
  3338. btrfs_inode = list_first_entry(&splice, struct btrfs_inode,
  3339. delalloc_inodes);
  3340. list_del_init(&btrfs_inode->delalloc_inodes);
  3341. clear_bit(BTRFS_INODE_IN_DELALLOC_LIST,
  3342. &btrfs_inode->runtime_flags);
  3343. spin_unlock(&root->delalloc_lock);
  3344. btrfs_invalidate_inodes(btrfs_inode->root);
  3345. spin_lock(&root->delalloc_lock);
  3346. }
  3347. spin_unlock(&root->delalloc_lock);
  3348. }
  3349. static void btrfs_destroy_all_delalloc_inodes(struct btrfs_fs_info *fs_info)
  3350. {
  3351. struct btrfs_root *root;
  3352. struct list_head splice;
  3353. INIT_LIST_HEAD(&splice);
  3354. spin_lock(&fs_info->delalloc_root_lock);
  3355. list_splice_init(&fs_info->delalloc_roots, &splice);
  3356. while (!list_empty(&splice)) {
  3357. root = list_first_entry(&splice, struct btrfs_root,
  3358. delalloc_root);
  3359. list_del_init(&root->delalloc_root);
  3360. root = btrfs_grab_fs_root(root);
  3361. BUG_ON(!root);
  3362. spin_unlock(&fs_info->delalloc_root_lock);
  3363. btrfs_destroy_delalloc_inodes(root);
  3364. btrfs_put_fs_root(root);
  3365. spin_lock(&fs_info->delalloc_root_lock);
  3366. }
  3367. spin_unlock(&fs_info->delalloc_root_lock);
  3368. }
  3369. static int btrfs_destroy_marked_extents(struct btrfs_root *root,
  3370. struct extent_io_tree *dirty_pages,
  3371. int mark)
  3372. {
  3373. int ret;
  3374. struct extent_buffer *eb;
  3375. u64 start = 0;
  3376. u64 end;
  3377. while (1) {
  3378. ret = find_first_extent_bit(dirty_pages, start, &start, &end,
  3379. mark, NULL);
  3380. if (ret)
  3381. break;
  3382. clear_extent_bits(dirty_pages, start, end, mark, GFP_NOFS);
  3383. while (start <= end) {
  3384. eb = btrfs_find_tree_block(root, start,
  3385. root->leafsize);
  3386. start += root->leafsize;
  3387. if (!eb)
  3388. continue;
  3389. wait_on_extent_buffer_writeback(eb);
  3390. if (test_and_clear_bit(EXTENT_BUFFER_DIRTY,
  3391. &eb->bflags))
  3392. clear_extent_buffer_dirty(eb);
  3393. free_extent_buffer_stale(eb);
  3394. }
  3395. }
  3396. return ret;
  3397. }
  3398. static int btrfs_destroy_pinned_extent(struct btrfs_root *root,
  3399. struct extent_io_tree *pinned_extents)
  3400. {
  3401. struct extent_io_tree *unpin;
  3402. u64 start;
  3403. u64 end;
  3404. int ret;
  3405. bool loop = true;
  3406. unpin = pinned_extents;
  3407. again:
  3408. while (1) {
  3409. ret = find_first_extent_bit(unpin, 0, &start, &end,
  3410. EXTENT_DIRTY, NULL);
  3411. if (ret)
  3412. break;
  3413. /* opt_discard */
  3414. if (btrfs_test_opt(root, DISCARD))
  3415. ret = btrfs_error_discard_extent(root, start,
  3416. end + 1 - start,
  3417. NULL);
  3418. clear_extent_dirty(unpin, start, end, GFP_NOFS);
  3419. btrfs_error_unpin_extent_range(root, start, end);
  3420. cond_resched();
  3421. }
  3422. if (loop) {
  3423. if (unpin == &root->fs_info->freed_extents[0])
  3424. unpin = &root->fs_info->freed_extents[1];
  3425. else
  3426. unpin = &root->fs_info->freed_extents[0];
  3427. loop = false;
  3428. goto again;
  3429. }
  3430. return 0;
  3431. }
  3432. void btrfs_cleanup_one_transaction(struct btrfs_transaction *cur_trans,
  3433. struct btrfs_root *root)
  3434. {
  3435. btrfs_destroy_ordered_operations(cur_trans, root);
  3436. btrfs_destroy_delayed_refs(cur_trans, root);
  3437. cur_trans->state = TRANS_STATE_COMMIT_START;
  3438. wake_up(&root->fs_info->transaction_blocked_wait);
  3439. cur_trans->state = TRANS_STATE_UNBLOCKED;
  3440. wake_up(&root->fs_info->transaction_wait);
  3441. btrfs_destroy_delayed_inodes(root);
  3442. btrfs_assert_delayed_root_empty(root);
  3443. btrfs_destroy_marked_extents(root, &cur_trans->dirty_pages,
  3444. EXTENT_DIRTY);
  3445. btrfs_destroy_pinned_extent(root,
  3446. root->fs_info->pinned_extents);
  3447. cur_trans->state =TRANS_STATE_COMPLETED;
  3448. wake_up(&cur_trans->commit_wait);
  3449. /*
  3450. memset(cur_trans, 0, sizeof(*cur_trans));
  3451. kmem_cache_free(btrfs_transaction_cachep, cur_trans);
  3452. */
  3453. }
  3454. static int btrfs_cleanup_transaction(struct btrfs_root *root)
  3455. {
  3456. struct btrfs_transaction *t;
  3457. mutex_lock(&root->fs_info->transaction_kthread_mutex);
  3458. spin_lock(&root->fs_info->trans_lock);
  3459. while (!list_empty(&root->fs_info->trans_list)) {
  3460. t = list_first_entry(&root->fs_info->trans_list,
  3461. struct btrfs_transaction, list);
  3462. if (t->state >= TRANS_STATE_COMMIT_START) {
  3463. atomic_inc(&t->use_count);
  3464. spin_unlock(&root->fs_info->trans_lock);
  3465. btrfs_wait_for_commit(root, t->transid);
  3466. btrfs_put_transaction(t);
  3467. spin_lock(&root->fs_info->trans_lock);
  3468. continue;
  3469. }
  3470. if (t == root->fs_info->running_transaction) {
  3471. t->state = TRANS_STATE_COMMIT_DOING;
  3472. spin_unlock(&root->fs_info->trans_lock);
  3473. /*
  3474. * We wait for 0 num_writers since we don't hold a trans
  3475. * handle open currently for this transaction.
  3476. */
  3477. wait_event(t->writer_wait,
  3478. atomic_read(&t->num_writers) == 0);
  3479. } else {
  3480. spin_unlock(&root->fs_info->trans_lock);
  3481. }
  3482. btrfs_cleanup_one_transaction(t, root);
  3483. spin_lock(&root->fs_info->trans_lock);
  3484. if (t == root->fs_info->running_transaction)
  3485. root->fs_info->running_transaction = NULL;
  3486. list_del_init(&t->list);
  3487. spin_unlock(&root->fs_info->trans_lock);
  3488. btrfs_put_transaction(t);
  3489. trace_btrfs_transaction_commit(root);
  3490. spin_lock(&root->fs_info->trans_lock);
  3491. }
  3492. spin_unlock(&root->fs_info->trans_lock);
  3493. btrfs_destroy_all_ordered_extents(root->fs_info);
  3494. btrfs_destroy_delayed_inodes(root);
  3495. btrfs_assert_delayed_root_empty(root);
  3496. btrfs_destroy_pinned_extent(root, root->fs_info->pinned_extents);
  3497. btrfs_destroy_all_delalloc_inodes(root->fs_info);
  3498. mutex_unlock(&root->fs_info->transaction_kthread_mutex);
  3499. return 0;
  3500. }
  3501. static struct extent_io_ops btree_extent_io_ops = {
  3502. .readpage_end_io_hook = btree_readpage_end_io_hook,
  3503. .readpage_io_failed_hook = btree_io_failed_hook,
  3504. .submit_bio_hook = btree_submit_bio_hook,
  3505. /* note we're sharing with inode.c for the merge bio hook */
  3506. .merge_bio_hook = btrfs_merge_bio_hook,
  3507. };