delayed-inode.c 65 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * Copyright (C) 2011 Fujitsu. All rights reserved.
  4. * Written by Miao Xie <miaox@cn.fujitsu.com>
  5. */
  6. #include <linux/slab.h>
  7. #include <linux/iversion.h>
  8. #include "ctree.h"
  9. #include "fs.h"
  10. #include "messages.h"
  11. #include "misc.h"
  12. #include "delayed-inode.h"
  13. #include "disk-io.h"
  14. #include "transaction.h"
  15. #include "qgroup.h"
  16. #include "locking.h"
  17. #include "inode-item.h"
  18. #include "space-info.h"
  19. #include "accessors.h"
  20. #include "file-item.h"
  21. #define BTRFS_DELAYED_WRITEBACK 512
  22. #define BTRFS_DELAYED_BACKGROUND 128
  23. #define BTRFS_DELAYED_BATCH 16
  24. static struct kmem_cache *delayed_node_cache;
  25. int __init btrfs_delayed_inode_init(void)
  26. {
  27. delayed_node_cache = KMEM_CACHE(btrfs_delayed_node, 0);
  28. if (!delayed_node_cache)
  29. return -ENOMEM;
  30. return 0;
  31. }
  32. void __cold btrfs_delayed_inode_exit(void)
  33. {
  34. kmem_cache_destroy(delayed_node_cache);
  35. }
  36. void btrfs_init_delayed_root(struct btrfs_delayed_root *delayed_root)
  37. {
  38. atomic_set(&delayed_root->items, 0);
  39. atomic_set(&delayed_root->items_seq, 0);
  40. delayed_root->nodes = 0;
  41. spin_lock_init(&delayed_root->lock);
  42. init_waitqueue_head(&delayed_root->wait);
  43. INIT_LIST_HEAD(&delayed_root->node_list);
  44. INIT_LIST_HEAD(&delayed_root->prepare_list);
  45. }
  46. static inline void btrfs_init_delayed_node(
  47. struct btrfs_delayed_node *delayed_node,
  48. struct btrfs_root *root, u64 inode_id)
  49. {
  50. delayed_node->root = root;
  51. delayed_node->inode_id = inode_id;
  52. refcount_set(&delayed_node->refs, 0);
  53. btrfs_delayed_node_ref_tracker_dir_init(delayed_node);
  54. delayed_node->ins_root = RB_ROOT_CACHED;
  55. delayed_node->del_root = RB_ROOT_CACHED;
  56. mutex_init(&delayed_node->mutex);
  57. INIT_LIST_HEAD(&delayed_node->n_list);
  58. INIT_LIST_HEAD(&delayed_node->p_list);
  59. }
  60. static struct btrfs_delayed_node *btrfs_get_delayed_node(
  61. struct btrfs_inode *btrfs_inode,
  62. struct btrfs_ref_tracker *tracker)
  63. {
  64. struct btrfs_root *root = btrfs_inode->root;
  65. u64 ino = btrfs_ino(btrfs_inode);
  66. struct btrfs_delayed_node *node;
  67. node = READ_ONCE(btrfs_inode->delayed_node);
  68. if (node) {
  69. refcount_inc(&node->refs);
  70. btrfs_delayed_node_ref_tracker_alloc(node, tracker, GFP_NOFS);
  71. return node;
  72. }
  73. xa_lock(&root->delayed_nodes);
  74. node = xa_load(&root->delayed_nodes, ino);
  75. if (node) {
  76. if (btrfs_inode->delayed_node) {
  77. refcount_inc(&node->refs); /* can be accessed */
  78. btrfs_delayed_node_ref_tracker_alloc(node, tracker, GFP_ATOMIC);
  79. BUG_ON(btrfs_inode->delayed_node != node);
  80. xa_unlock(&root->delayed_nodes);
  81. return node;
  82. }
  83. /*
  84. * It's possible that we're racing into the middle of removing
  85. * this node from the xarray. In this case, the refcount
  86. * was zero and it should never go back to one. Just return
  87. * NULL like it was never in the xarray at all; our release
  88. * function is in the process of removing it.
  89. *
  90. * Some implementations of refcount_inc refuse to bump the
  91. * refcount once it has hit zero. If we don't do this dance
  92. * here, refcount_inc() may decide to just WARN_ONCE() instead
  93. * of actually bumping the refcount.
  94. *
  95. * If this node is properly in the xarray, we want to bump the
  96. * refcount twice, once for the inode and once for this get
  97. * operation.
  98. */
  99. if (refcount_inc_not_zero(&node->refs)) {
  100. refcount_inc(&node->refs);
  101. btrfs_delayed_node_ref_tracker_alloc(node, tracker, GFP_ATOMIC);
  102. btrfs_delayed_node_ref_tracker_alloc(node, &node->inode_cache_tracker,
  103. GFP_ATOMIC);
  104. btrfs_inode->delayed_node = node;
  105. } else {
  106. node = NULL;
  107. }
  108. xa_unlock(&root->delayed_nodes);
  109. return node;
  110. }
  111. xa_unlock(&root->delayed_nodes);
  112. return NULL;
  113. }
  114. /*
  115. * Look up an existing delayed node associated with @btrfs_inode or create a new
  116. * one and insert it to the delayed nodes of the root.
  117. *
  118. * Return the delayed node, or error pointer on failure.
  119. */
  120. static struct btrfs_delayed_node *btrfs_get_or_create_delayed_node(
  121. struct btrfs_inode *btrfs_inode,
  122. struct btrfs_ref_tracker *tracker)
  123. {
  124. struct btrfs_delayed_node *node;
  125. struct btrfs_root *root = btrfs_inode->root;
  126. u64 ino = btrfs_ino(btrfs_inode);
  127. int ret;
  128. void *ptr;
  129. again:
  130. node = btrfs_get_delayed_node(btrfs_inode, tracker);
  131. if (node)
  132. return node;
  133. node = kmem_cache_zalloc(delayed_node_cache, GFP_NOFS);
  134. if (!node)
  135. return ERR_PTR(-ENOMEM);
  136. btrfs_init_delayed_node(node, root, ino);
  137. /* Cached in the inode and can be accessed. */
  138. refcount_set(&node->refs, 2);
  139. btrfs_delayed_node_ref_tracker_alloc(node, tracker, GFP_NOFS);
  140. btrfs_delayed_node_ref_tracker_alloc(node, &node->inode_cache_tracker, GFP_NOFS);
  141. /* Allocate and reserve the slot, from now it can return a NULL from xa_load(). */
  142. ret = xa_reserve(&root->delayed_nodes, ino, GFP_NOFS);
  143. if (ret == -ENOMEM)
  144. goto cleanup;
  145. xa_lock(&root->delayed_nodes);
  146. ptr = xa_load(&root->delayed_nodes, ino);
  147. if (ptr) {
  148. /* Somebody inserted it, go back and read it. */
  149. xa_unlock(&root->delayed_nodes);
  150. goto cleanup;
  151. }
  152. ptr = __xa_store(&root->delayed_nodes, ino, node, GFP_ATOMIC);
  153. ASSERT(xa_err(ptr) != -EINVAL);
  154. ASSERT(xa_err(ptr) != -ENOMEM);
  155. ASSERT(ptr == NULL);
  156. btrfs_inode->delayed_node = node;
  157. xa_unlock(&root->delayed_nodes);
  158. return node;
  159. cleanup:
  160. btrfs_delayed_node_ref_tracker_free(node, tracker);
  161. btrfs_delayed_node_ref_tracker_free(node, &node->inode_cache_tracker);
  162. btrfs_delayed_node_ref_tracker_dir_exit(node);
  163. kmem_cache_free(delayed_node_cache, node);
  164. if (ret)
  165. return ERR_PTR(ret);
  166. goto again;
  167. }
  168. /*
  169. * Call it when holding delayed_node->mutex
  170. *
  171. * If mod = 1, add this node into the prepared list.
  172. */
  173. static void btrfs_queue_delayed_node(struct btrfs_delayed_root *root,
  174. struct btrfs_delayed_node *node,
  175. int mod)
  176. {
  177. spin_lock(&root->lock);
  178. if (test_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags)) {
  179. if (!list_empty(&node->p_list))
  180. list_move_tail(&node->p_list, &root->prepare_list);
  181. else if (mod)
  182. list_add_tail(&node->p_list, &root->prepare_list);
  183. } else {
  184. list_add_tail(&node->n_list, &root->node_list);
  185. list_add_tail(&node->p_list, &root->prepare_list);
  186. refcount_inc(&node->refs); /* inserted into list */
  187. btrfs_delayed_node_ref_tracker_alloc(node, &node->node_list_tracker,
  188. GFP_ATOMIC);
  189. root->nodes++;
  190. set_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags);
  191. }
  192. spin_unlock(&root->lock);
  193. }
  194. /* Call it when holding delayed_node->mutex */
  195. static void btrfs_dequeue_delayed_node(struct btrfs_delayed_root *root,
  196. struct btrfs_delayed_node *node)
  197. {
  198. spin_lock(&root->lock);
  199. if (test_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags)) {
  200. root->nodes--;
  201. btrfs_delayed_node_ref_tracker_free(node, &node->node_list_tracker);
  202. refcount_dec(&node->refs); /* not in the list */
  203. list_del_init(&node->n_list);
  204. if (!list_empty(&node->p_list))
  205. list_del_init(&node->p_list);
  206. clear_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags);
  207. }
  208. spin_unlock(&root->lock);
  209. }
  210. static struct btrfs_delayed_node *btrfs_first_delayed_node(
  211. struct btrfs_fs_info *fs_info,
  212. struct btrfs_ref_tracker *tracker)
  213. {
  214. struct btrfs_delayed_node *node;
  215. spin_lock(&fs_info->delayed_root.lock);
  216. node = list_first_entry_or_null(&fs_info->delayed_root.node_list,
  217. struct btrfs_delayed_node, n_list);
  218. if (node) {
  219. refcount_inc(&node->refs);
  220. btrfs_delayed_node_ref_tracker_alloc(node, tracker, GFP_ATOMIC);
  221. }
  222. spin_unlock(&fs_info->delayed_root.lock);
  223. return node;
  224. }
  225. static struct btrfs_delayed_node *btrfs_next_delayed_node(
  226. struct btrfs_delayed_node *node,
  227. struct btrfs_ref_tracker *tracker)
  228. {
  229. struct btrfs_delayed_root *delayed_root;
  230. struct list_head *p;
  231. struct btrfs_delayed_node *next = NULL;
  232. delayed_root = &node->root->fs_info->delayed_root;
  233. spin_lock(&delayed_root->lock);
  234. if (!test_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags)) {
  235. /* not in the list */
  236. if (list_empty(&delayed_root->node_list))
  237. goto out;
  238. p = delayed_root->node_list.next;
  239. } else if (list_is_last(&node->n_list, &delayed_root->node_list))
  240. goto out;
  241. else
  242. p = node->n_list.next;
  243. next = list_entry(p, struct btrfs_delayed_node, n_list);
  244. refcount_inc(&next->refs);
  245. btrfs_delayed_node_ref_tracker_alloc(next, tracker, GFP_ATOMIC);
  246. out:
  247. spin_unlock(&delayed_root->lock);
  248. return next;
  249. }
  250. static void __btrfs_release_delayed_node(
  251. struct btrfs_delayed_node *delayed_node,
  252. int mod, struct btrfs_ref_tracker *tracker)
  253. {
  254. struct btrfs_delayed_root *delayed_root;
  255. if (!delayed_node)
  256. return;
  257. delayed_root = &delayed_node->root->fs_info->delayed_root;
  258. mutex_lock(&delayed_node->mutex);
  259. if (delayed_node->count)
  260. btrfs_queue_delayed_node(delayed_root, delayed_node, mod);
  261. else
  262. btrfs_dequeue_delayed_node(delayed_root, delayed_node);
  263. mutex_unlock(&delayed_node->mutex);
  264. btrfs_delayed_node_ref_tracker_free(delayed_node, tracker);
  265. if (refcount_dec_and_test(&delayed_node->refs)) {
  266. struct btrfs_root *root = delayed_node->root;
  267. xa_erase(&root->delayed_nodes, delayed_node->inode_id);
  268. /*
  269. * Once our refcount goes to zero, nobody is allowed to bump it
  270. * back up. We can delete it now.
  271. */
  272. ASSERT(refcount_read(&delayed_node->refs) == 0);
  273. btrfs_delayed_node_ref_tracker_dir_exit(delayed_node);
  274. kmem_cache_free(delayed_node_cache, delayed_node);
  275. }
  276. }
  277. static inline void btrfs_release_delayed_node(struct btrfs_delayed_node *node,
  278. struct btrfs_ref_tracker *tracker)
  279. {
  280. __btrfs_release_delayed_node(node, 0, tracker);
  281. }
  282. static struct btrfs_delayed_node *btrfs_first_prepared_delayed_node(
  283. struct btrfs_delayed_root *delayed_root,
  284. struct btrfs_ref_tracker *tracker)
  285. {
  286. struct btrfs_delayed_node *node;
  287. spin_lock(&delayed_root->lock);
  288. node = list_first_entry_or_null(&delayed_root->prepare_list,
  289. struct btrfs_delayed_node, p_list);
  290. if (node) {
  291. list_del_init(&node->p_list);
  292. refcount_inc(&node->refs);
  293. btrfs_delayed_node_ref_tracker_alloc(node, tracker, GFP_ATOMIC);
  294. }
  295. spin_unlock(&delayed_root->lock);
  296. return node;
  297. }
  298. static inline void btrfs_release_prepared_delayed_node(
  299. struct btrfs_delayed_node *node,
  300. struct btrfs_ref_tracker *tracker)
  301. {
  302. __btrfs_release_delayed_node(node, 1, tracker);
  303. }
  304. static struct btrfs_delayed_item *btrfs_alloc_delayed_item(u16 data_len,
  305. struct btrfs_delayed_node *node,
  306. enum btrfs_delayed_item_type type)
  307. {
  308. struct btrfs_delayed_item *item;
  309. item = kmalloc_flex(*item, data, data_len, GFP_NOFS);
  310. if (item) {
  311. item->data_len = data_len;
  312. item->type = type;
  313. item->bytes_reserved = 0;
  314. item->delayed_node = node;
  315. RB_CLEAR_NODE(&item->rb_node);
  316. INIT_LIST_HEAD(&item->log_list);
  317. item->logged = false;
  318. refcount_set(&item->refs, 1);
  319. }
  320. return item;
  321. }
  322. static int delayed_item_index_cmp(const void *key, const struct rb_node *node)
  323. {
  324. const u64 *index = key;
  325. const struct btrfs_delayed_item *delayed_item = rb_entry(node,
  326. struct btrfs_delayed_item, rb_node);
  327. if (delayed_item->index < *index)
  328. return 1;
  329. else if (delayed_item->index > *index)
  330. return -1;
  331. return 0;
  332. }
  333. /*
  334. * Look up the delayed item by key.
  335. *
  336. * @delayed_node: pointer to the delayed node
  337. * @index: the dir index value to lookup (offset of a dir index key)
  338. *
  339. * Note: if we don't find the right item, we will return the prev item and
  340. * the next item.
  341. */
  342. static struct btrfs_delayed_item *__btrfs_lookup_delayed_item(
  343. struct rb_root *root,
  344. u64 index)
  345. {
  346. struct rb_node *node;
  347. node = rb_find(&index, root, delayed_item_index_cmp);
  348. return rb_entry_safe(node, struct btrfs_delayed_item, rb_node);
  349. }
  350. static int btrfs_delayed_item_cmp(const struct rb_node *new,
  351. const struct rb_node *exist)
  352. {
  353. const struct btrfs_delayed_item *new_item =
  354. rb_entry(new, struct btrfs_delayed_item, rb_node);
  355. return delayed_item_index_cmp(&new_item->index, exist);
  356. }
  357. static int __btrfs_add_delayed_item(struct btrfs_delayed_node *delayed_node,
  358. struct btrfs_delayed_item *ins)
  359. {
  360. struct rb_root_cached *root;
  361. struct rb_node *exist;
  362. if (ins->type == BTRFS_DELAYED_INSERTION_ITEM)
  363. root = &delayed_node->ins_root;
  364. else
  365. root = &delayed_node->del_root;
  366. exist = rb_find_add_cached(&ins->rb_node, root, btrfs_delayed_item_cmp);
  367. if (exist)
  368. return -EEXIST;
  369. if (ins->type == BTRFS_DELAYED_INSERTION_ITEM &&
  370. ins->index >= delayed_node->index_cnt)
  371. delayed_node->index_cnt = ins->index + 1;
  372. delayed_node->count++;
  373. atomic_inc(&delayed_node->root->fs_info->delayed_root.items);
  374. return 0;
  375. }
  376. static void finish_one_item(struct btrfs_delayed_root *delayed_root)
  377. {
  378. int seq = atomic_inc_return(&delayed_root->items_seq);
  379. /* atomic_dec_return implies a barrier */
  380. if ((atomic_dec_return(&delayed_root->items) <
  381. BTRFS_DELAYED_BACKGROUND || seq % BTRFS_DELAYED_BATCH == 0))
  382. cond_wake_up_nomb(&delayed_root->wait);
  383. }
  384. static void __btrfs_remove_delayed_item(struct btrfs_delayed_item *delayed_item)
  385. {
  386. struct btrfs_delayed_node *delayed_node = delayed_item->delayed_node;
  387. struct rb_root_cached *root;
  388. /* Not inserted, ignore it. */
  389. if (RB_EMPTY_NODE(&delayed_item->rb_node))
  390. return;
  391. /* If it's in a rbtree, then we need to have delayed node locked. */
  392. lockdep_assert_held(&delayed_node->mutex);
  393. if (delayed_item->type == BTRFS_DELAYED_INSERTION_ITEM)
  394. root = &delayed_node->ins_root;
  395. else
  396. root = &delayed_node->del_root;
  397. rb_erase_cached(&delayed_item->rb_node, root);
  398. RB_CLEAR_NODE(&delayed_item->rb_node);
  399. delayed_node->count--;
  400. finish_one_item(&delayed_node->root->fs_info->delayed_root);
  401. }
  402. static void btrfs_release_delayed_item(struct btrfs_delayed_item *item)
  403. {
  404. if (item) {
  405. __btrfs_remove_delayed_item(item);
  406. if (refcount_dec_and_test(&item->refs))
  407. kfree(item);
  408. }
  409. }
  410. static struct btrfs_delayed_item *__btrfs_first_delayed_insertion_item(
  411. struct btrfs_delayed_node *delayed_node)
  412. {
  413. struct rb_node *p = rb_first_cached(&delayed_node->ins_root);
  414. return rb_entry_safe(p, struct btrfs_delayed_item, rb_node);
  415. }
  416. static struct btrfs_delayed_item *__btrfs_first_delayed_deletion_item(
  417. struct btrfs_delayed_node *delayed_node)
  418. {
  419. struct rb_node *p = rb_first_cached(&delayed_node->del_root);
  420. return rb_entry_safe(p, struct btrfs_delayed_item, rb_node);
  421. }
  422. static struct btrfs_delayed_item *__btrfs_next_delayed_item(
  423. struct btrfs_delayed_item *item)
  424. {
  425. struct rb_node *p = rb_next(&item->rb_node);
  426. return rb_entry_safe(p, struct btrfs_delayed_item, rb_node);
  427. }
  428. static int btrfs_delayed_item_reserve_metadata(struct btrfs_trans_handle *trans,
  429. struct btrfs_delayed_item *item)
  430. {
  431. struct btrfs_block_rsv *src_rsv;
  432. struct btrfs_block_rsv *dst_rsv;
  433. struct btrfs_fs_info *fs_info = trans->fs_info;
  434. u64 num_bytes;
  435. int ret;
  436. if (!trans->bytes_reserved)
  437. return 0;
  438. src_rsv = trans->block_rsv;
  439. dst_rsv = &fs_info->delayed_block_rsv;
  440. num_bytes = btrfs_calc_insert_metadata_size(fs_info, 1);
  441. /*
  442. * Here we migrate space rsv from transaction rsv, since have already
  443. * reserved space when starting a transaction. So no need to reserve
  444. * qgroup space here.
  445. */
  446. ret = btrfs_block_rsv_migrate(src_rsv, dst_rsv, num_bytes, true);
  447. if (!ret) {
  448. trace_btrfs_space_reservation(fs_info, "delayed_item",
  449. item->delayed_node->inode_id,
  450. num_bytes, 1);
  451. /*
  452. * For insertions we track reserved metadata space by accounting
  453. * for the number of leaves that will be used, based on the delayed
  454. * node's curr_index_batch_size and index_item_leaves fields.
  455. */
  456. if (item->type == BTRFS_DELAYED_DELETION_ITEM)
  457. item->bytes_reserved = num_bytes;
  458. }
  459. return ret;
  460. }
  461. static void btrfs_delayed_item_release_metadata(struct btrfs_root *root,
  462. struct btrfs_delayed_item *item)
  463. {
  464. struct btrfs_block_rsv *rsv;
  465. struct btrfs_fs_info *fs_info = root->fs_info;
  466. if (!item->bytes_reserved)
  467. return;
  468. rsv = &fs_info->delayed_block_rsv;
  469. /*
  470. * Check btrfs_delayed_item_reserve_metadata() to see why we don't need
  471. * to release/reserve qgroup space.
  472. */
  473. trace_btrfs_space_reservation(fs_info, "delayed_item",
  474. item->delayed_node->inode_id,
  475. item->bytes_reserved, 0);
  476. btrfs_block_rsv_release(fs_info, rsv, item->bytes_reserved, NULL);
  477. }
  478. static void btrfs_delayed_item_release_leaves(struct btrfs_delayed_node *node,
  479. unsigned int num_leaves)
  480. {
  481. struct btrfs_fs_info *fs_info = node->root->fs_info;
  482. const u64 bytes = btrfs_calc_insert_metadata_size(fs_info, num_leaves);
  483. /* There are no space reservations during log replay, bail out. */
  484. if (test_bit(BTRFS_FS_LOG_RECOVERING, &fs_info->flags))
  485. return;
  486. trace_btrfs_space_reservation(fs_info, "delayed_item", node->inode_id,
  487. bytes, 0);
  488. btrfs_block_rsv_release(fs_info, &fs_info->delayed_block_rsv, bytes, NULL);
  489. }
  490. static int btrfs_delayed_inode_reserve_metadata(
  491. struct btrfs_trans_handle *trans,
  492. struct btrfs_root *root,
  493. struct btrfs_delayed_node *node)
  494. {
  495. struct btrfs_fs_info *fs_info = root->fs_info;
  496. struct btrfs_block_rsv *src_rsv;
  497. struct btrfs_block_rsv *dst_rsv;
  498. u64 num_bytes;
  499. int ret;
  500. src_rsv = trans->block_rsv;
  501. dst_rsv = &fs_info->delayed_block_rsv;
  502. num_bytes = btrfs_calc_metadata_size(fs_info, 1);
  503. /*
  504. * btrfs_dirty_inode will update the inode under btrfs_join_transaction
  505. * which doesn't reserve space for speed. This is a problem since we
  506. * still need to reserve space for this update, so try to reserve the
  507. * space.
  508. *
  509. * Now if src_rsv == delalloc_block_rsv we'll let it just steal since
  510. * we always reserve enough to update the inode item.
  511. */
  512. if (!src_rsv || (!trans->bytes_reserved &&
  513. src_rsv->type != BTRFS_BLOCK_RSV_DELALLOC)) {
  514. ret = btrfs_qgroup_reserve_meta(root, num_bytes,
  515. BTRFS_QGROUP_RSV_META_PREALLOC, true);
  516. if (ret < 0)
  517. return ret;
  518. ret = btrfs_block_rsv_add(fs_info, dst_rsv, num_bytes,
  519. BTRFS_RESERVE_NO_FLUSH);
  520. /* NO_FLUSH could only fail with -ENOSPC */
  521. ASSERT(ret == 0 || ret == -ENOSPC);
  522. if (ret)
  523. btrfs_qgroup_free_meta_prealloc(root, num_bytes);
  524. } else {
  525. ret = btrfs_block_rsv_migrate(src_rsv, dst_rsv, num_bytes, true);
  526. }
  527. if (!ret) {
  528. trace_btrfs_space_reservation(fs_info, "delayed_inode",
  529. node->inode_id, num_bytes, 1);
  530. node->bytes_reserved = num_bytes;
  531. }
  532. return ret;
  533. }
  534. static void btrfs_delayed_inode_release_metadata(struct btrfs_fs_info *fs_info,
  535. struct btrfs_delayed_node *node,
  536. bool qgroup_free)
  537. {
  538. struct btrfs_block_rsv *rsv;
  539. if (!node->bytes_reserved)
  540. return;
  541. rsv = &fs_info->delayed_block_rsv;
  542. trace_btrfs_space_reservation(fs_info, "delayed_inode",
  543. node->inode_id, node->bytes_reserved, 0);
  544. btrfs_block_rsv_release(fs_info, rsv, node->bytes_reserved, NULL);
  545. if (qgroup_free)
  546. btrfs_qgroup_free_meta_prealloc(node->root,
  547. node->bytes_reserved);
  548. else
  549. btrfs_qgroup_convert_reserved_meta(node->root,
  550. node->bytes_reserved);
  551. node->bytes_reserved = 0;
  552. }
  553. /*
  554. * Insert a single delayed item or a batch of delayed items, as many as possible
  555. * that fit in a leaf. The delayed items (dir index keys) are sorted by their key
  556. * in the rbtree, and if there's a gap between two consecutive dir index items,
  557. * then it means at some point we had delayed dir indexes to add but they got
  558. * removed (by btrfs_delete_delayed_dir_index()) before we attempted to flush them
  559. * into the subvolume tree. Dir index keys also have their offsets coming from a
  560. * monotonically increasing counter, so we can't get new keys with an offset that
  561. * fits within a gap between delayed dir index items.
  562. */
  563. static int btrfs_insert_delayed_item(struct btrfs_trans_handle *trans,
  564. struct btrfs_root *root,
  565. struct btrfs_path *path,
  566. struct btrfs_delayed_item *first_item)
  567. {
  568. struct btrfs_fs_info *fs_info = root->fs_info;
  569. struct btrfs_delayed_node *node = first_item->delayed_node;
  570. LIST_HEAD(item_list);
  571. struct btrfs_delayed_item *curr;
  572. struct btrfs_delayed_item *next;
  573. const int max_size = BTRFS_LEAF_DATA_SIZE(fs_info);
  574. struct btrfs_item_batch batch;
  575. struct btrfs_key first_key;
  576. const u32 first_data_size = first_item->data_len;
  577. int total_size;
  578. char AUTO_KFREE(ins_data);
  579. int ret;
  580. bool continuous_keys_only = false;
  581. lockdep_assert_held(&node->mutex);
  582. /*
  583. * During normal operation the delayed index offset is continuously
  584. * increasing, so we can batch insert all items as there will not be any
  585. * overlapping keys in the tree.
  586. *
  587. * The exception to this is log replay, where we may have interleaved
  588. * offsets in the tree, so our batch needs to be continuous keys only in
  589. * order to ensure we do not end up with out of order items in our leaf.
  590. */
  591. if (test_bit(BTRFS_FS_LOG_RECOVERING, &fs_info->flags))
  592. continuous_keys_only = true;
  593. /*
  594. * For delayed items to insert, we track reserved metadata bytes based
  595. * on the number of leaves that we will use.
  596. * See btrfs_insert_delayed_dir_index() and
  597. * btrfs_delayed_item_reserve_metadata()).
  598. */
  599. ASSERT(first_item->bytes_reserved == 0);
  600. list_add_tail(&first_item->tree_list, &item_list);
  601. batch.total_data_size = first_data_size;
  602. batch.nr = 1;
  603. total_size = first_data_size + sizeof(struct btrfs_item);
  604. curr = first_item;
  605. while (true) {
  606. int next_size;
  607. next = __btrfs_next_delayed_item(curr);
  608. if (!next)
  609. break;
  610. /*
  611. * We cannot allow gaps in the key space if we're doing log
  612. * replay.
  613. */
  614. if (continuous_keys_only && (next->index != curr->index + 1))
  615. break;
  616. ASSERT(next->bytes_reserved == 0);
  617. next_size = next->data_len + sizeof(struct btrfs_item);
  618. if (total_size + next_size > max_size)
  619. break;
  620. list_add_tail(&next->tree_list, &item_list);
  621. batch.nr++;
  622. total_size += next_size;
  623. batch.total_data_size += next->data_len;
  624. curr = next;
  625. }
  626. if (batch.nr == 1) {
  627. first_key.objectid = node->inode_id;
  628. first_key.type = BTRFS_DIR_INDEX_KEY;
  629. first_key.offset = first_item->index;
  630. batch.keys = &first_key;
  631. batch.data_sizes = &first_data_size;
  632. } else {
  633. struct btrfs_key *ins_keys;
  634. u32 *ins_sizes;
  635. int i = 0;
  636. ins_data = kmalloc_array(batch.nr,
  637. sizeof(u32) + sizeof(struct btrfs_key), GFP_NOFS);
  638. if (!ins_data)
  639. return -ENOMEM;
  640. ins_sizes = (u32 *)ins_data;
  641. ins_keys = (struct btrfs_key *)(ins_data + batch.nr * sizeof(u32));
  642. batch.keys = ins_keys;
  643. batch.data_sizes = ins_sizes;
  644. list_for_each_entry(curr, &item_list, tree_list) {
  645. ins_keys[i].objectid = node->inode_id;
  646. ins_keys[i].type = BTRFS_DIR_INDEX_KEY;
  647. ins_keys[i].offset = curr->index;
  648. ins_sizes[i] = curr->data_len;
  649. i++;
  650. }
  651. }
  652. ret = btrfs_insert_empty_items(trans, root, path, &batch);
  653. if (ret)
  654. return ret;
  655. list_for_each_entry(curr, &item_list, tree_list) {
  656. char *data_ptr;
  657. data_ptr = btrfs_item_ptr(path->nodes[0], path->slots[0], char);
  658. write_extent_buffer(path->nodes[0], &curr->data,
  659. (unsigned long)data_ptr, curr->data_len);
  660. path->slots[0]++;
  661. }
  662. /*
  663. * Now release our path before releasing the delayed items and their
  664. * metadata reservations, so that we don't block other tasks for more
  665. * time than needed.
  666. */
  667. btrfs_release_path(path);
  668. ASSERT(node->index_item_leaves > 0);
  669. /*
  670. * For normal operations we will batch an entire leaf's worth of delayed
  671. * items, so if there are more items to process we can decrement
  672. * index_item_leaves by 1 as we inserted 1 leaf's worth of items.
  673. *
  674. * However for log replay we may not have inserted an entire leaf's
  675. * worth of items, we may have not had continuous items, so decrementing
  676. * here would mess up the index_item_leaves accounting. For this case
  677. * only clean up the accounting when there are no items left.
  678. */
  679. if (next && !continuous_keys_only) {
  680. /*
  681. * We inserted one batch of items into a leaf a there are more
  682. * items to flush in a future batch, now release one unit of
  683. * metadata space from the delayed block reserve, corresponding
  684. * the leaf we just flushed to.
  685. */
  686. btrfs_delayed_item_release_leaves(node, 1);
  687. node->index_item_leaves--;
  688. } else if (!next) {
  689. /*
  690. * There are no more items to insert. We can have a number of
  691. * reserved leaves > 1 here - this happens when many dir index
  692. * items are added and then removed before they are flushed (file
  693. * names with a very short life, never span a transaction). So
  694. * release all remaining leaves.
  695. */
  696. btrfs_delayed_item_release_leaves(node, node->index_item_leaves);
  697. node->index_item_leaves = 0;
  698. }
  699. list_for_each_entry_safe(curr, next, &item_list, tree_list) {
  700. list_del(&curr->tree_list);
  701. btrfs_release_delayed_item(curr);
  702. }
  703. return 0;
  704. }
  705. static int btrfs_insert_delayed_items(struct btrfs_trans_handle *trans,
  706. struct btrfs_path *path,
  707. struct btrfs_root *root,
  708. struct btrfs_delayed_node *node)
  709. {
  710. int ret = 0;
  711. while (ret == 0) {
  712. struct btrfs_delayed_item *curr;
  713. mutex_lock(&node->mutex);
  714. curr = __btrfs_first_delayed_insertion_item(node);
  715. if (!curr) {
  716. mutex_unlock(&node->mutex);
  717. break;
  718. }
  719. ret = btrfs_insert_delayed_item(trans, root, path, curr);
  720. mutex_unlock(&node->mutex);
  721. }
  722. return ret;
  723. }
  724. static int btrfs_batch_delete_items(struct btrfs_trans_handle *trans,
  725. struct btrfs_root *root,
  726. struct btrfs_path *path,
  727. struct btrfs_delayed_item *item)
  728. {
  729. const u64 ino = item->delayed_node->inode_id;
  730. struct btrfs_fs_info *fs_info = root->fs_info;
  731. struct btrfs_delayed_item *curr, *next;
  732. struct extent_buffer *leaf = path->nodes[0];
  733. LIST_HEAD(batch_list);
  734. int nitems, slot, last_slot;
  735. int ret;
  736. u64 total_reserved_size = item->bytes_reserved;
  737. ASSERT(leaf != NULL);
  738. slot = path->slots[0];
  739. last_slot = btrfs_header_nritems(leaf) - 1;
  740. /*
  741. * Our caller always gives us a path pointing to an existing item, so
  742. * this can not happen.
  743. */
  744. ASSERT(slot <= last_slot);
  745. if (WARN_ON(slot > last_slot))
  746. return -ENOENT;
  747. nitems = 1;
  748. curr = item;
  749. list_add_tail(&curr->tree_list, &batch_list);
  750. /*
  751. * Keep checking if the next delayed item matches the next item in the
  752. * leaf - if so, we can add it to the batch of items to delete from the
  753. * leaf.
  754. */
  755. while (slot < last_slot) {
  756. struct btrfs_key key;
  757. next = __btrfs_next_delayed_item(curr);
  758. if (!next)
  759. break;
  760. slot++;
  761. btrfs_item_key_to_cpu(leaf, &key, slot);
  762. if (key.objectid != ino ||
  763. key.type != BTRFS_DIR_INDEX_KEY ||
  764. key.offset != next->index)
  765. break;
  766. nitems++;
  767. curr = next;
  768. list_add_tail(&curr->tree_list, &batch_list);
  769. total_reserved_size += curr->bytes_reserved;
  770. }
  771. ret = btrfs_del_items(trans, root, path, path->slots[0], nitems);
  772. if (ret)
  773. return ret;
  774. /* In case of BTRFS_FS_LOG_RECOVERING items won't have reserved space */
  775. if (total_reserved_size > 0) {
  776. /*
  777. * Check btrfs_delayed_item_reserve_metadata() to see why we
  778. * don't need to release/reserve qgroup space.
  779. */
  780. trace_btrfs_space_reservation(fs_info, "delayed_item", ino,
  781. total_reserved_size, 0);
  782. btrfs_block_rsv_release(fs_info, &fs_info->delayed_block_rsv,
  783. total_reserved_size, NULL);
  784. }
  785. list_for_each_entry_safe(curr, next, &batch_list, tree_list) {
  786. list_del(&curr->tree_list);
  787. btrfs_release_delayed_item(curr);
  788. }
  789. return 0;
  790. }
  791. static int btrfs_delete_delayed_items(struct btrfs_trans_handle *trans,
  792. struct btrfs_path *path,
  793. struct btrfs_root *root,
  794. struct btrfs_delayed_node *node)
  795. {
  796. struct btrfs_key key;
  797. int ret = 0;
  798. key.objectid = node->inode_id;
  799. key.type = BTRFS_DIR_INDEX_KEY;
  800. while (ret == 0) {
  801. struct btrfs_delayed_item *item;
  802. mutex_lock(&node->mutex);
  803. item = __btrfs_first_delayed_deletion_item(node);
  804. if (!item) {
  805. mutex_unlock(&node->mutex);
  806. break;
  807. }
  808. key.offset = item->index;
  809. ret = btrfs_search_slot(trans, root, &key, path, -1, 1);
  810. if (ret > 0) {
  811. /*
  812. * There's no matching item in the leaf. This means we
  813. * have already deleted this item in a past run of the
  814. * delayed items. We ignore errors when running delayed
  815. * items from an async context, through a work queue job
  816. * running btrfs_async_run_delayed_root(), and don't
  817. * release delayed items that failed to complete. This
  818. * is because we will retry later, and at transaction
  819. * commit time we always run delayed items and will
  820. * then deal with errors if they fail to run again.
  821. *
  822. * So just release delayed items for which we can't find
  823. * an item in the tree, and move to the next item.
  824. */
  825. btrfs_release_path(path);
  826. btrfs_release_delayed_item(item);
  827. ret = 0;
  828. } else if (ret == 0) {
  829. ret = btrfs_batch_delete_items(trans, root, path, item);
  830. btrfs_release_path(path);
  831. }
  832. /*
  833. * We unlock and relock on each iteration, this is to prevent
  834. * blocking other tasks for too long while we are being run from
  835. * the async context (work queue job). Those tasks are typically
  836. * running system calls like creat/mkdir/rename/unlink/etc which
  837. * need to add delayed items to this delayed node.
  838. */
  839. mutex_unlock(&node->mutex);
  840. }
  841. return ret;
  842. }
  843. static void btrfs_release_delayed_inode(struct btrfs_delayed_node *delayed_node)
  844. {
  845. if (delayed_node &&
  846. test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
  847. ASSERT(delayed_node->root);
  848. clear_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags);
  849. delayed_node->count--;
  850. finish_one_item(&delayed_node->root->fs_info->delayed_root);
  851. }
  852. }
  853. static void btrfs_release_delayed_iref(struct btrfs_delayed_node *delayed_node)
  854. {
  855. if (test_and_clear_bit(BTRFS_DELAYED_NODE_DEL_IREF, &delayed_node->flags)) {
  856. ASSERT(delayed_node->root);
  857. delayed_node->count--;
  858. finish_one_item(&delayed_node->root->fs_info->delayed_root);
  859. }
  860. }
  861. static int __btrfs_update_delayed_inode(struct btrfs_trans_handle *trans,
  862. struct btrfs_root *root,
  863. struct btrfs_path *path,
  864. struct btrfs_delayed_node *node)
  865. {
  866. struct btrfs_fs_info *fs_info = root->fs_info;
  867. struct btrfs_key key;
  868. struct btrfs_inode_item *inode_item;
  869. struct extent_buffer *leaf;
  870. int mod;
  871. int ret;
  872. key.objectid = node->inode_id;
  873. key.type = BTRFS_INODE_ITEM_KEY;
  874. key.offset = 0;
  875. if (test_bit(BTRFS_DELAYED_NODE_DEL_IREF, &node->flags))
  876. mod = -1;
  877. else
  878. mod = 1;
  879. ret = btrfs_lookup_inode(trans, root, path, &key, mod);
  880. if (ret > 0)
  881. ret = -ENOENT;
  882. if (ret < 0) {
  883. /*
  884. * If we fail to update the delayed inode we need to abort the
  885. * transaction, because we could leave the inode with the
  886. * improper counts behind.
  887. */
  888. if (unlikely(ret != -ENOENT))
  889. btrfs_abort_transaction(trans, ret);
  890. goto out;
  891. }
  892. leaf = path->nodes[0];
  893. inode_item = btrfs_item_ptr(leaf, path->slots[0],
  894. struct btrfs_inode_item);
  895. write_extent_buffer(leaf, &node->inode_item, (unsigned long)inode_item,
  896. sizeof(struct btrfs_inode_item));
  897. if (!test_bit(BTRFS_DELAYED_NODE_DEL_IREF, &node->flags))
  898. goto out;
  899. /*
  900. * Now we're going to delete the INODE_REF/EXTREF, which should be the
  901. * only one ref left. Check if the next item is an INODE_REF/EXTREF.
  902. *
  903. * But if we're the last item already, release and search for the last
  904. * INODE_REF/EXTREF.
  905. */
  906. if (path->slots[0] + 1 >= btrfs_header_nritems(leaf)) {
  907. key.objectid = node->inode_id;
  908. key.type = BTRFS_INODE_EXTREF_KEY;
  909. key.offset = (u64)-1;
  910. btrfs_release_path(path);
  911. ret = btrfs_search_slot(trans, root, &key, path, -1, 1);
  912. if (unlikely(ret < 0)) {
  913. btrfs_abort_transaction(trans, ret);
  914. goto err_out;
  915. }
  916. ASSERT(ret > 0);
  917. ASSERT(path->slots[0] > 0);
  918. ret = 0;
  919. path->slots[0]--;
  920. leaf = path->nodes[0];
  921. } else {
  922. path->slots[0]++;
  923. }
  924. btrfs_item_key_to_cpu(leaf, &key, path->slots[0]);
  925. if (key.objectid != node->inode_id)
  926. goto out;
  927. if (key.type != BTRFS_INODE_REF_KEY &&
  928. key.type != BTRFS_INODE_EXTREF_KEY)
  929. goto out;
  930. /*
  931. * Delayed iref deletion is for the inode who has only one link,
  932. * so there is only one iref. The case that several irefs are
  933. * in the same item doesn't exist.
  934. */
  935. ret = btrfs_del_item(trans, root, path);
  936. if (ret < 0)
  937. btrfs_abort_transaction(trans, ret);
  938. out:
  939. btrfs_release_delayed_iref(node);
  940. btrfs_release_path(path);
  941. err_out:
  942. btrfs_delayed_inode_release_metadata(fs_info, node, (ret < 0));
  943. btrfs_release_delayed_inode(node);
  944. return ret;
  945. }
  946. static inline int btrfs_update_delayed_inode(struct btrfs_trans_handle *trans,
  947. struct btrfs_root *root,
  948. struct btrfs_path *path,
  949. struct btrfs_delayed_node *node)
  950. {
  951. int ret;
  952. mutex_lock(&node->mutex);
  953. if (!test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &node->flags)) {
  954. mutex_unlock(&node->mutex);
  955. return 0;
  956. }
  957. ret = __btrfs_update_delayed_inode(trans, root, path, node);
  958. mutex_unlock(&node->mutex);
  959. return ret;
  960. }
  961. static inline int
  962. __btrfs_commit_inode_delayed_items(struct btrfs_trans_handle *trans,
  963. struct btrfs_path *path,
  964. struct btrfs_delayed_node *node)
  965. {
  966. int ret;
  967. ret = btrfs_insert_delayed_items(trans, path, node->root, node);
  968. if (ret)
  969. return ret;
  970. ret = btrfs_delete_delayed_items(trans, path, node->root, node);
  971. if (ret)
  972. return ret;
  973. ret = btrfs_record_root_in_trans(trans, node->root);
  974. if (ret)
  975. return ret;
  976. return btrfs_update_delayed_inode(trans, node->root, path, node);
  977. }
  978. /*
  979. * Called when committing the transaction.
  980. * Returns 0 on success.
  981. * Returns < 0 on error and returns with an aborted transaction with any
  982. * outstanding delayed items cleaned up.
  983. */
  984. static int __btrfs_run_delayed_items(struct btrfs_trans_handle *trans, int nr)
  985. {
  986. struct btrfs_fs_info *fs_info = trans->fs_info;
  987. struct btrfs_delayed_node *curr_node, *prev_node;
  988. struct btrfs_ref_tracker curr_delayed_node_tracker, prev_delayed_node_tracker;
  989. struct btrfs_path *path;
  990. struct btrfs_block_rsv *block_rsv;
  991. int ret = 0;
  992. bool count = (nr > 0);
  993. if (TRANS_ABORTED(trans))
  994. return -EIO;
  995. path = btrfs_alloc_path();
  996. if (!path)
  997. return -ENOMEM;
  998. block_rsv = trans->block_rsv;
  999. trans->block_rsv = &fs_info->delayed_block_rsv;
  1000. curr_node = btrfs_first_delayed_node(fs_info, &curr_delayed_node_tracker);
  1001. while (curr_node && (!count || nr--)) {
  1002. ret = __btrfs_commit_inode_delayed_items(trans, path,
  1003. curr_node);
  1004. if (unlikely(ret)) {
  1005. btrfs_abort_transaction(trans, ret);
  1006. break;
  1007. }
  1008. prev_node = curr_node;
  1009. prev_delayed_node_tracker = curr_delayed_node_tracker;
  1010. curr_node = btrfs_next_delayed_node(curr_node, &curr_delayed_node_tracker);
  1011. /*
  1012. * See the comment below about releasing path before releasing
  1013. * node. If the commit of delayed items was successful the path
  1014. * should always be released, but in case of an error, it may
  1015. * point to locked extent buffers (a leaf at the very least).
  1016. */
  1017. ASSERT(path->nodes[0] == NULL);
  1018. btrfs_release_delayed_node(prev_node, &prev_delayed_node_tracker);
  1019. }
  1020. /*
  1021. * Release the path to avoid a potential deadlock and lockdep splat when
  1022. * releasing the delayed node, as that requires taking the delayed node's
  1023. * mutex. If another task starts running delayed items before we take
  1024. * the mutex, it will first lock the mutex and then it may try to lock
  1025. * the same btree path (leaf).
  1026. */
  1027. btrfs_free_path(path);
  1028. if (curr_node)
  1029. btrfs_release_delayed_node(curr_node, &curr_delayed_node_tracker);
  1030. trans->block_rsv = block_rsv;
  1031. return ret;
  1032. }
  1033. int btrfs_run_delayed_items(struct btrfs_trans_handle *trans)
  1034. {
  1035. return __btrfs_run_delayed_items(trans, -1);
  1036. }
  1037. int btrfs_run_delayed_items_nr(struct btrfs_trans_handle *trans, int nr)
  1038. {
  1039. return __btrfs_run_delayed_items(trans, nr);
  1040. }
  1041. int btrfs_commit_inode_delayed_items(struct btrfs_trans_handle *trans,
  1042. struct btrfs_inode *inode)
  1043. {
  1044. struct btrfs_ref_tracker delayed_node_tracker;
  1045. struct btrfs_delayed_node *delayed_node =
  1046. btrfs_get_delayed_node(inode, &delayed_node_tracker);
  1047. BTRFS_PATH_AUTO_FREE(path);
  1048. struct btrfs_block_rsv *block_rsv;
  1049. int ret;
  1050. if (!delayed_node)
  1051. return 0;
  1052. mutex_lock(&delayed_node->mutex);
  1053. if (!delayed_node->count) {
  1054. mutex_unlock(&delayed_node->mutex);
  1055. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1056. return 0;
  1057. }
  1058. mutex_unlock(&delayed_node->mutex);
  1059. path = btrfs_alloc_path();
  1060. if (!path) {
  1061. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1062. return -ENOMEM;
  1063. }
  1064. block_rsv = trans->block_rsv;
  1065. trans->block_rsv = &delayed_node->root->fs_info->delayed_block_rsv;
  1066. ret = __btrfs_commit_inode_delayed_items(trans, path, delayed_node);
  1067. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1068. trans->block_rsv = block_rsv;
  1069. return ret;
  1070. }
  1071. int btrfs_commit_inode_delayed_inode(struct btrfs_inode *inode)
  1072. {
  1073. struct btrfs_fs_info *fs_info = inode->root->fs_info;
  1074. struct btrfs_trans_handle *trans;
  1075. struct btrfs_ref_tracker delayed_node_tracker;
  1076. struct btrfs_delayed_node *delayed_node;
  1077. struct btrfs_path *path;
  1078. struct btrfs_block_rsv *block_rsv;
  1079. int ret;
  1080. delayed_node = btrfs_get_delayed_node(inode, &delayed_node_tracker);
  1081. if (!delayed_node)
  1082. return 0;
  1083. mutex_lock(&delayed_node->mutex);
  1084. if (!test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
  1085. mutex_unlock(&delayed_node->mutex);
  1086. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1087. return 0;
  1088. }
  1089. mutex_unlock(&delayed_node->mutex);
  1090. trans = btrfs_join_transaction(delayed_node->root);
  1091. if (IS_ERR(trans)) {
  1092. ret = PTR_ERR(trans);
  1093. goto out;
  1094. }
  1095. path = btrfs_alloc_path();
  1096. if (!path) {
  1097. ret = -ENOMEM;
  1098. goto trans_out;
  1099. }
  1100. block_rsv = trans->block_rsv;
  1101. trans->block_rsv = &fs_info->delayed_block_rsv;
  1102. mutex_lock(&delayed_node->mutex);
  1103. if (test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags))
  1104. ret = __btrfs_update_delayed_inode(trans, delayed_node->root,
  1105. path, delayed_node);
  1106. else
  1107. ret = 0;
  1108. mutex_unlock(&delayed_node->mutex);
  1109. btrfs_free_path(path);
  1110. trans->block_rsv = block_rsv;
  1111. trans_out:
  1112. btrfs_end_transaction(trans);
  1113. btrfs_btree_balance_dirty(fs_info);
  1114. out:
  1115. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1116. return ret;
  1117. }
  1118. void btrfs_remove_delayed_node(struct btrfs_inode *inode)
  1119. {
  1120. struct btrfs_delayed_node *delayed_node;
  1121. delayed_node = READ_ONCE(inode->delayed_node);
  1122. if (!delayed_node)
  1123. return;
  1124. inode->delayed_node = NULL;
  1125. btrfs_release_delayed_node(delayed_node, &delayed_node->inode_cache_tracker);
  1126. }
  1127. struct btrfs_async_delayed_work {
  1128. struct btrfs_delayed_root *delayed_root;
  1129. int nr;
  1130. struct btrfs_work work;
  1131. };
  1132. static void btrfs_async_run_delayed_root(struct btrfs_work *work)
  1133. {
  1134. struct btrfs_async_delayed_work *async_work;
  1135. struct btrfs_delayed_root *delayed_root;
  1136. struct btrfs_trans_handle *trans;
  1137. struct btrfs_path *path;
  1138. struct btrfs_delayed_node *delayed_node = NULL;
  1139. struct btrfs_ref_tracker delayed_node_tracker;
  1140. struct btrfs_root *root;
  1141. struct btrfs_block_rsv *block_rsv;
  1142. int total_done = 0;
  1143. async_work = container_of(work, struct btrfs_async_delayed_work, work);
  1144. delayed_root = async_work->delayed_root;
  1145. path = btrfs_alloc_path();
  1146. if (!path)
  1147. goto out;
  1148. do {
  1149. if (atomic_read(&delayed_root->items) <
  1150. BTRFS_DELAYED_BACKGROUND / 2)
  1151. break;
  1152. delayed_node = btrfs_first_prepared_delayed_node(delayed_root,
  1153. &delayed_node_tracker);
  1154. if (!delayed_node)
  1155. break;
  1156. root = delayed_node->root;
  1157. trans = btrfs_join_transaction(root);
  1158. if (IS_ERR(trans)) {
  1159. btrfs_release_path(path);
  1160. btrfs_release_prepared_delayed_node(delayed_node,
  1161. &delayed_node_tracker);
  1162. total_done++;
  1163. continue;
  1164. }
  1165. block_rsv = trans->block_rsv;
  1166. trans->block_rsv = &root->fs_info->delayed_block_rsv;
  1167. __btrfs_commit_inode_delayed_items(trans, path, delayed_node);
  1168. trans->block_rsv = block_rsv;
  1169. btrfs_end_transaction(trans);
  1170. btrfs_btree_balance_dirty_nodelay(root->fs_info);
  1171. btrfs_release_path(path);
  1172. btrfs_release_prepared_delayed_node(delayed_node,
  1173. &delayed_node_tracker);
  1174. total_done++;
  1175. } while ((async_work->nr == 0 && total_done < BTRFS_DELAYED_WRITEBACK)
  1176. || total_done < async_work->nr);
  1177. btrfs_free_path(path);
  1178. out:
  1179. wake_up(&delayed_root->wait);
  1180. kfree(async_work);
  1181. }
  1182. static int btrfs_wq_run_delayed_node(struct btrfs_delayed_root *delayed_root,
  1183. struct btrfs_fs_info *fs_info, int nr)
  1184. {
  1185. struct btrfs_async_delayed_work *async_work;
  1186. async_work = kmalloc_obj(*async_work, GFP_NOFS);
  1187. if (!async_work)
  1188. return -ENOMEM;
  1189. async_work->delayed_root = delayed_root;
  1190. btrfs_init_work(&async_work->work, btrfs_async_run_delayed_root, NULL);
  1191. async_work->nr = nr;
  1192. btrfs_queue_work(fs_info->delayed_workers, &async_work->work);
  1193. return 0;
  1194. }
  1195. void btrfs_assert_delayed_root_empty(struct btrfs_fs_info *fs_info)
  1196. {
  1197. struct btrfs_ref_tracker delayed_node_tracker;
  1198. struct btrfs_delayed_node *node;
  1199. node = btrfs_first_delayed_node(fs_info, &delayed_node_tracker);
  1200. if (WARN_ON(node)) {
  1201. btrfs_delayed_node_ref_tracker_free(node,
  1202. &delayed_node_tracker);
  1203. refcount_dec(&node->refs);
  1204. }
  1205. }
  1206. static bool could_end_wait(struct btrfs_delayed_root *delayed_root, int seq)
  1207. {
  1208. int val = atomic_read(&delayed_root->items_seq);
  1209. if (val < seq || val >= seq + BTRFS_DELAYED_BATCH)
  1210. return true;
  1211. if (atomic_read(&delayed_root->items) < BTRFS_DELAYED_BACKGROUND)
  1212. return true;
  1213. return false;
  1214. }
  1215. void btrfs_balance_delayed_items(struct btrfs_fs_info *fs_info)
  1216. {
  1217. struct btrfs_delayed_root *delayed_root = &fs_info->delayed_root;
  1218. if ((atomic_read(&delayed_root->items) < BTRFS_DELAYED_BACKGROUND) ||
  1219. btrfs_workqueue_normal_congested(fs_info->delayed_workers))
  1220. return;
  1221. if (atomic_read(&delayed_root->items) >= BTRFS_DELAYED_WRITEBACK) {
  1222. int seq;
  1223. int ret;
  1224. seq = atomic_read(&delayed_root->items_seq);
  1225. ret = btrfs_wq_run_delayed_node(delayed_root, fs_info, 0);
  1226. if (ret)
  1227. return;
  1228. wait_event_interruptible(delayed_root->wait,
  1229. could_end_wait(delayed_root, seq));
  1230. return;
  1231. }
  1232. btrfs_wq_run_delayed_node(delayed_root, fs_info, BTRFS_DELAYED_BATCH);
  1233. }
  1234. static void btrfs_release_dir_index_item_space(struct btrfs_trans_handle *trans)
  1235. {
  1236. struct btrfs_fs_info *fs_info = trans->fs_info;
  1237. const u64 bytes = btrfs_calc_insert_metadata_size(fs_info, 1);
  1238. if (test_bit(BTRFS_FS_LOG_RECOVERING, &fs_info->flags))
  1239. return;
  1240. /*
  1241. * Adding the new dir index item does not require touching another
  1242. * leaf, so we can release 1 unit of metadata that was previously
  1243. * reserved when starting the transaction. This applies only to
  1244. * the case where we had a transaction start and excludes the
  1245. * transaction join case (when replaying log trees).
  1246. */
  1247. trace_btrfs_space_reservation(fs_info, "transaction",
  1248. trans->transid, bytes, 0);
  1249. btrfs_block_rsv_release(fs_info, trans->block_rsv, bytes, NULL);
  1250. ASSERT(trans->bytes_reserved >= bytes);
  1251. trans->bytes_reserved -= bytes;
  1252. }
  1253. /* Will return 0, -ENOMEM or -EEXIST (index number collision, unexpected). */
  1254. int btrfs_insert_delayed_dir_index(struct btrfs_trans_handle *trans,
  1255. const char *name, int name_len,
  1256. struct btrfs_inode *dir,
  1257. const struct btrfs_disk_key *disk_key, u8 flags,
  1258. u64 index)
  1259. {
  1260. struct btrfs_fs_info *fs_info = trans->fs_info;
  1261. const unsigned int leaf_data_size = BTRFS_LEAF_DATA_SIZE(fs_info);
  1262. struct btrfs_delayed_node *delayed_node;
  1263. struct btrfs_ref_tracker delayed_node_tracker;
  1264. struct btrfs_delayed_item *delayed_item;
  1265. struct btrfs_dir_item *dir_item;
  1266. bool reserve_leaf_space;
  1267. u32 data_len;
  1268. int ret;
  1269. delayed_node = btrfs_get_or_create_delayed_node(dir, &delayed_node_tracker);
  1270. if (IS_ERR(delayed_node))
  1271. return PTR_ERR(delayed_node);
  1272. delayed_item = btrfs_alloc_delayed_item(sizeof(*dir_item) + name_len,
  1273. delayed_node,
  1274. BTRFS_DELAYED_INSERTION_ITEM);
  1275. if (!delayed_item) {
  1276. ret = -ENOMEM;
  1277. goto release_node;
  1278. }
  1279. delayed_item->index = index;
  1280. dir_item = (struct btrfs_dir_item *)delayed_item->data;
  1281. dir_item->location = *disk_key;
  1282. btrfs_set_stack_dir_transid(dir_item, trans->transid);
  1283. btrfs_set_stack_dir_data_len(dir_item, 0);
  1284. btrfs_set_stack_dir_name_len(dir_item, name_len);
  1285. btrfs_set_stack_dir_flags(dir_item, flags);
  1286. memcpy((char *)(dir_item + 1), name, name_len);
  1287. data_len = delayed_item->data_len + sizeof(struct btrfs_item);
  1288. mutex_lock(&delayed_node->mutex);
  1289. /*
  1290. * First attempt to insert the delayed item. This is to make the error
  1291. * handling path simpler in case we fail (-EEXIST). There's no risk of
  1292. * any other task coming in and running the delayed item before we do
  1293. * the metadata space reservation below, because we are holding the
  1294. * delayed node's mutex and that mutex must also be locked before the
  1295. * node's delayed items can be run.
  1296. */
  1297. ret = __btrfs_add_delayed_item(delayed_node, delayed_item);
  1298. if (unlikely(ret)) {
  1299. btrfs_err(trans->fs_info,
  1300. "error adding delayed dir index item, name: %.*s, index: %llu, root: %llu, dir: %llu, dir->index_cnt: %llu, delayed_node->index_cnt: %llu, error: %d",
  1301. name_len, name, index, btrfs_root_id(delayed_node->root),
  1302. delayed_node->inode_id, dir->index_cnt,
  1303. delayed_node->index_cnt, ret);
  1304. btrfs_release_delayed_item(delayed_item);
  1305. btrfs_release_dir_index_item_space(trans);
  1306. mutex_unlock(&delayed_node->mutex);
  1307. goto release_node;
  1308. }
  1309. if (delayed_node->index_item_leaves == 0 ||
  1310. delayed_node->curr_index_batch_size + data_len > leaf_data_size) {
  1311. delayed_node->curr_index_batch_size = data_len;
  1312. reserve_leaf_space = true;
  1313. } else {
  1314. delayed_node->curr_index_batch_size += data_len;
  1315. reserve_leaf_space = false;
  1316. }
  1317. if (reserve_leaf_space) {
  1318. ret = btrfs_delayed_item_reserve_metadata(trans, delayed_item);
  1319. /*
  1320. * Space was reserved for a dir index item insertion when we
  1321. * started the transaction, so getting a failure here should be
  1322. * impossible.
  1323. */
  1324. if (WARN_ON(ret)) {
  1325. btrfs_release_delayed_item(delayed_item);
  1326. mutex_unlock(&delayed_node->mutex);
  1327. goto release_node;
  1328. }
  1329. delayed_node->index_item_leaves++;
  1330. } else {
  1331. btrfs_release_dir_index_item_space(trans);
  1332. }
  1333. mutex_unlock(&delayed_node->mutex);
  1334. release_node:
  1335. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1336. return ret;
  1337. }
  1338. static bool btrfs_delete_delayed_insertion_item(struct btrfs_delayed_node *node,
  1339. u64 index)
  1340. {
  1341. struct btrfs_delayed_item *item;
  1342. mutex_lock(&node->mutex);
  1343. item = __btrfs_lookup_delayed_item(&node->ins_root.rb_root, index);
  1344. if (!item) {
  1345. mutex_unlock(&node->mutex);
  1346. return false;
  1347. }
  1348. /*
  1349. * For delayed items to insert, we track reserved metadata bytes based
  1350. * on the number of leaves that we will use.
  1351. * See btrfs_insert_delayed_dir_index() and
  1352. * btrfs_delayed_item_reserve_metadata()).
  1353. */
  1354. ASSERT(item->bytes_reserved == 0);
  1355. ASSERT(node->index_item_leaves > 0);
  1356. /*
  1357. * If there's only one leaf reserved, we can decrement this item from the
  1358. * current batch, otherwise we can not because we don't know which leaf
  1359. * it belongs to. With the current limit on delayed items, we rarely
  1360. * accumulate enough dir index items to fill more than one leaf (even
  1361. * when using a leaf size of 4K).
  1362. */
  1363. if (node->index_item_leaves == 1) {
  1364. const u32 data_len = item->data_len + sizeof(struct btrfs_item);
  1365. ASSERT(node->curr_index_batch_size >= data_len);
  1366. node->curr_index_batch_size -= data_len;
  1367. }
  1368. btrfs_release_delayed_item(item);
  1369. /* If we now have no more dir index items, we can release all leaves. */
  1370. if (RB_EMPTY_ROOT(&node->ins_root.rb_root)) {
  1371. btrfs_delayed_item_release_leaves(node, node->index_item_leaves);
  1372. node->index_item_leaves = 0;
  1373. }
  1374. mutex_unlock(&node->mutex);
  1375. return true;
  1376. }
  1377. int btrfs_delete_delayed_dir_index(struct btrfs_trans_handle *trans,
  1378. struct btrfs_inode *dir, u64 index)
  1379. {
  1380. struct btrfs_delayed_node *node;
  1381. struct btrfs_ref_tracker delayed_node_tracker;
  1382. struct btrfs_delayed_item *item;
  1383. int ret;
  1384. node = btrfs_get_or_create_delayed_node(dir, &delayed_node_tracker);
  1385. if (IS_ERR(node))
  1386. return PTR_ERR(node);
  1387. if (btrfs_delete_delayed_insertion_item(node, index)) {
  1388. ret = 0;
  1389. goto end;
  1390. }
  1391. item = btrfs_alloc_delayed_item(0, node, BTRFS_DELAYED_DELETION_ITEM);
  1392. if (!item) {
  1393. ret = -ENOMEM;
  1394. goto end;
  1395. }
  1396. item->index = index;
  1397. ret = btrfs_delayed_item_reserve_metadata(trans, item);
  1398. /*
  1399. * we have reserved enough space when we start a new transaction,
  1400. * so reserving metadata failure is impossible.
  1401. */
  1402. if (ret < 0) {
  1403. btrfs_err(trans->fs_info,
  1404. "metadata reservation failed for delayed dir item deletion, index: %llu, root: %llu, inode: %llu, error: %d",
  1405. index, btrfs_root_id(node->root), node->inode_id, ret);
  1406. btrfs_release_delayed_item(item);
  1407. goto end;
  1408. }
  1409. mutex_lock(&node->mutex);
  1410. ret = __btrfs_add_delayed_item(node, item);
  1411. if (unlikely(ret)) {
  1412. btrfs_err(trans->fs_info,
  1413. "failed to add delayed dir index item, root: %llu, inode: %llu, index: %llu, error: %d",
  1414. btrfs_root_id(node->root), node->inode_id, index, ret);
  1415. btrfs_delayed_item_release_metadata(dir->root, item);
  1416. btrfs_release_delayed_item(item);
  1417. }
  1418. mutex_unlock(&node->mutex);
  1419. end:
  1420. btrfs_release_delayed_node(node, &delayed_node_tracker);
  1421. return ret;
  1422. }
  1423. int btrfs_inode_delayed_dir_index_count(struct btrfs_inode *inode)
  1424. {
  1425. struct btrfs_ref_tracker delayed_node_tracker;
  1426. struct btrfs_delayed_node *delayed_node;
  1427. delayed_node = btrfs_get_delayed_node(inode, &delayed_node_tracker);
  1428. if (!delayed_node)
  1429. return -ENOENT;
  1430. /*
  1431. * Since we have held i_mutex of this directory, it is impossible that
  1432. * a new directory index is added into the delayed node and index_cnt
  1433. * is updated now. So we needn't lock the delayed node.
  1434. */
  1435. if (!delayed_node->index_cnt) {
  1436. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1437. return -EINVAL;
  1438. }
  1439. inode->index_cnt = delayed_node->index_cnt;
  1440. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1441. return 0;
  1442. }
  1443. bool btrfs_readdir_get_delayed_items(struct btrfs_inode *inode,
  1444. u64 last_index,
  1445. struct list_head *ins_list,
  1446. struct list_head *del_list)
  1447. {
  1448. struct btrfs_delayed_node *delayed_node;
  1449. struct btrfs_delayed_item *item;
  1450. struct btrfs_ref_tracker delayed_node_tracker;
  1451. delayed_node = btrfs_get_delayed_node(inode, &delayed_node_tracker);
  1452. if (!delayed_node)
  1453. return false;
  1454. /*
  1455. * We can only do one readdir with delayed items at a time because of
  1456. * item->readdir_list.
  1457. */
  1458. btrfs_inode_unlock(inode, BTRFS_ILOCK_SHARED);
  1459. btrfs_inode_lock(inode, 0);
  1460. mutex_lock(&delayed_node->mutex);
  1461. item = __btrfs_first_delayed_insertion_item(delayed_node);
  1462. while (item && item->index <= last_index) {
  1463. refcount_inc(&item->refs);
  1464. list_add_tail(&item->readdir_list, ins_list);
  1465. item = __btrfs_next_delayed_item(item);
  1466. }
  1467. item = __btrfs_first_delayed_deletion_item(delayed_node);
  1468. while (item && item->index <= last_index) {
  1469. refcount_inc(&item->refs);
  1470. list_add_tail(&item->readdir_list, del_list);
  1471. item = __btrfs_next_delayed_item(item);
  1472. }
  1473. mutex_unlock(&delayed_node->mutex);
  1474. /*
  1475. * This delayed node is still cached in the btrfs inode, so refs
  1476. * must be > 1 now, and we needn't check it is going to be freed
  1477. * or not.
  1478. *
  1479. * Besides that, this function is used to read dir, we do not
  1480. * insert/delete delayed items in this period. So we also needn't
  1481. * requeue or dequeue this delayed node.
  1482. */
  1483. btrfs_delayed_node_ref_tracker_free(delayed_node, &delayed_node_tracker);
  1484. refcount_dec(&delayed_node->refs);
  1485. return true;
  1486. }
  1487. void btrfs_readdir_put_delayed_items(struct btrfs_inode *inode,
  1488. struct list_head *ins_list,
  1489. struct list_head *del_list)
  1490. {
  1491. struct btrfs_delayed_item *curr, *next;
  1492. list_for_each_entry_safe(curr, next, ins_list, readdir_list) {
  1493. list_del(&curr->readdir_list);
  1494. if (refcount_dec_and_test(&curr->refs))
  1495. kfree(curr);
  1496. }
  1497. list_for_each_entry_safe(curr, next, del_list, readdir_list) {
  1498. list_del(&curr->readdir_list);
  1499. if (refcount_dec_and_test(&curr->refs))
  1500. kfree(curr);
  1501. }
  1502. /*
  1503. * The VFS is going to do up_read(), so we need to downgrade back to a
  1504. * read lock.
  1505. */
  1506. downgrade_write(&inode->vfs_inode.i_rwsem);
  1507. }
  1508. bool btrfs_should_delete_dir_index(const struct list_head *del_list, u64 index)
  1509. {
  1510. struct btrfs_delayed_item *curr;
  1511. bool ret = false;
  1512. list_for_each_entry(curr, del_list, readdir_list) {
  1513. if (curr->index > index)
  1514. break;
  1515. if (curr->index == index) {
  1516. ret = true;
  1517. break;
  1518. }
  1519. }
  1520. return ret;
  1521. }
  1522. /*
  1523. * Read dir info stored in the delayed tree.
  1524. */
  1525. bool btrfs_readdir_delayed_dir_index(struct dir_context *ctx,
  1526. const struct list_head *ins_list)
  1527. {
  1528. struct btrfs_dir_item *di;
  1529. struct btrfs_delayed_item *curr, *next;
  1530. struct btrfs_key location;
  1531. char *name;
  1532. int name_len;
  1533. unsigned char d_type;
  1534. /*
  1535. * Changing the data of the delayed item is impossible. So
  1536. * we needn't lock them. And we have held i_mutex of the
  1537. * directory, nobody can delete any directory indexes now.
  1538. */
  1539. list_for_each_entry_safe(curr, next, ins_list, readdir_list) {
  1540. bool over;
  1541. list_del(&curr->readdir_list);
  1542. if (curr->index < ctx->pos) {
  1543. if (refcount_dec_and_test(&curr->refs))
  1544. kfree(curr);
  1545. continue;
  1546. }
  1547. ctx->pos = curr->index;
  1548. di = (struct btrfs_dir_item *)curr->data;
  1549. name = (char *)(di + 1);
  1550. name_len = btrfs_stack_dir_name_len(di);
  1551. d_type = fs_ftype_to_dtype(btrfs_dir_flags_to_ftype(di->type));
  1552. btrfs_disk_key_to_cpu(&location, &di->location);
  1553. over = !dir_emit(ctx, name, name_len, location.objectid, d_type);
  1554. if (refcount_dec_and_test(&curr->refs))
  1555. kfree(curr);
  1556. if (over)
  1557. return true;
  1558. ctx->pos++;
  1559. }
  1560. return false;
  1561. }
  1562. static void fill_stack_inode_item(struct btrfs_trans_handle *trans,
  1563. struct btrfs_inode_item *inode_item,
  1564. struct btrfs_inode *inode)
  1565. {
  1566. struct inode *vfs_inode = &inode->vfs_inode;
  1567. u64 flags;
  1568. btrfs_set_stack_inode_uid(inode_item, i_uid_read(vfs_inode));
  1569. btrfs_set_stack_inode_gid(inode_item, i_gid_read(vfs_inode));
  1570. btrfs_set_stack_inode_size(inode_item, inode->disk_i_size);
  1571. btrfs_set_stack_inode_mode(inode_item, vfs_inode->i_mode);
  1572. btrfs_set_stack_inode_nlink(inode_item, vfs_inode->i_nlink);
  1573. btrfs_set_stack_inode_nbytes(inode_item, inode_get_bytes(vfs_inode));
  1574. btrfs_set_stack_inode_generation(inode_item, inode->generation);
  1575. btrfs_set_stack_inode_sequence(inode_item,
  1576. inode_peek_iversion(vfs_inode));
  1577. btrfs_set_stack_inode_transid(inode_item, trans->transid);
  1578. btrfs_set_stack_inode_rdev(inode_item, vfs_inode->i_rdev);
  1579. flags = btrfs_inode_combine_flags(inode->flags, inode->ro_flags);
  1580. btrfs_set_stack_inode_flags(inode_item, flags);
  1581. btrfs_set_stack_inode_block_group(inode_item, 0);
  1582. btrfs_set_stack_timespec_sec(&inode_item->atime,
  1583. inode_get_atime_sec(vfs_inode));
  1584. btrfs_set_stack_timespec_nsec(&inode_item->atime,
  1585. inode_get_atime_nsec(vfs_inode));
  1586. btrfs_set_stack_timespec_sec(&inode_item->mtime,
  1587. inode_get_mtime_sec(vfs_inode));
  1588. btrfs_set_stack_timespec_nsec(&inode_item->mtime,
  1589. inode_get_mtime_nsec(vfs_inode));
  1590. btrfs_set_stack_timespec_sec(&inode_item->ctime,
  1591. inode_get_ctime_sec(vfs_inode));
  1592. btrfs_set_stack_timespec_nsec(&inode_item->ctime,
  1593. inode_get_ctime_nsec(vfs_inode));
  1594. btrfs_set_stack_timespec_sec(&inode_item->otime, inode->i_otime_sec);
  1595. btrfs_set_stack_timespec_nsec(&inode_item->otime, inode->i_otime_nsec);
  1596. }
  1597. int btrfs_fill_inode(struct btrfs_inode *inode, u32 *rdev)
  1598. {
  1599. struct btrfs_delayed_node *delayed_node;
  1600. struct btrfs_ref_tracker delayed_node_tracker;
  1601. struct btrfs_inode_item *inode_item;
  1602. struct inode *vfs_inode = &inode->vfs_inode;
  1603. delayed_node = btrfs_get_delayed_node(inode, &delayed_node_tracker);
  1604. if (!delayed_node)
  1605. return -ENOENT;
  1606. mutex_lock(&delayed_node->mutex);
  1607. if (!test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
  1608. mutex_unlock(&delayed_node->mutex);
  1609. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1610. return -ENOENT;
  1611. }
  1612. inode_item = &delayed_node->inode_item;
  1613. i_uid_write(vfs_inode, btrfs_stack_inode_uid(inode_item));
  1614. i_gid_write(vfs_inode, btrfs_stack_inode_gid(inode_item));
  1615. btrfs_i_size_write(inode, btrfs_stack_inode_size(inode_item));
  1616. vfs_inode->i_mode = btrfs_stack_inode_mode(inode_item);
  1617. set_nlink(vfs_inode, btrfs_stack_inode_nlink(inode_item));
  1618. inode_set_bytes(vfs_inode, btrfs_stack_inode_nbytes(inode_item));
  1619. inode->generation = btrfs_stack_inode_generation(inode_item);
  1620. inode->last_trans = btrfs_stack_inode_transid(inode_item);
  1621. inode_set_iversion_queried(vfs_inode, btrfs_stack_inode_sequence(inode_item));
  1622. vfs_inode->i_rdev = 0;
  1623. *rdev = btrfs_stack_inode_rdev(inode_item);
  1624. btrfs_inode_split_flags(btrfs_stack_inode_flags(inode_item),
  1625. &inode->flags, &inode->ro_flags);
  1626. inode_set_atime(vfs_inode, btrfs_stack_timespec_sec(&inode_item->atime),
  1627. btrfs_stack_timespec_nsec(&inode_item->atime));
  1628. inode_set_mtime(vfs_inode, btrfs_stack_timespec_sec(&inode_item->mtime),
  1629. btrfs_stack_timespec_nsec(&inode_item->mtime));
  1630. inode_set_ctime(vfs_inode, btrfs_stack_timespec_sec(&inode_item->ctime),
  1631. btrfs_stack_timespec_nsec(&inode_item->ctime));
  1632. inode->i_otime_sec = btrfs_stack_timespec_sec(&inode_item->otime);
  1633. inode->i_otime_nsec = btrfs_stack_timespec_nsec(&inode_item->otime);
  1634. vfs_inode->i_generation = inode->generation;
  1635. if (S_ISDIR(vfs_inode->i_mode))
  1636. inode->index_cnt = (u64)-1;
  1637. mutex_unlock(&delayed_node->mutex);
  1638. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1639. return 0;
  1640. }
  1641. int btrfs_delayed_update_inode(struct btrfs_trans_handle *trans,
  1642. struct btrfs_inode *inode)
  1643. {
  1644. struct btrfs_root *root = inode->root;
  1645. struct btrfs_delayed_node *delayed_node;
  1646. struct btrfs_ref_tracker delayed_node_tracker;
  1647. int ret = 0;
  1648. delayed_node = btrfs_get_or_create_delayed_node(inode, &delayed_node_tracker);
  1649. if (IS_ERR(delayed_node))
  1650. return PTR_ERR(delayed_node);
  1651. mutex_lock(&delayed_node->mutex);
  1652. if (test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
  1653. fill_stack_inode_item(trans, &delayed_node->inode_item, inode);
  1654. goto release_node;
  1655. }
  1656. ret = btrfs_delayed_inode_reserve_metadata(trans, root, delayed_node);
  1657. if (ret)
  1658. goto release_node;
  1659. fill_stack_inode_item(trans, &delayed_node->inode_item, inode);
  1660. set_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags);
  1661. delayed_node->count++;
  1662. atomic_inc(&root->fs_info->delayed_root.items);
  1663. release_node:
  1664. mutex_unlock(&delayed_node->mutex);
  1665. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1666. return ret;
  1667. }
  1668. int btrfs_delayed_delete_inode_ref(struct btrfs_inode *inode)
  1669. {
  1670. struct btrfs_fs_info *fs_info = inode->root->fs_info;
  1671. struct btrfs_delayed_node *delayed_node;
  1672. struct btrfs_ref_tracker delayed_node_tracker;
  1673. /*
  1674. * we don't do delayed inode updates during log recovery because it
  1675. * leads to enospc problems. This means we also can't do
  1676. * delayed inode refs
  1677. */
  1678. if (test_bit(BTRFS_FS_LOG_RECOVERING, &fs_info->flags))
  1679. return -EAGAIN;
  1680. delayed_node = btrfs_get_or_create_delayed_node(inode, &delayed_node_tracker);
  1681. if (IS_ERR(delayed_node))
  1682. return PTR_ERR(delayed_node);
  1683. /*
  1684. * We don't reserve space for inode ref deletion is because:
  1685. * - We ONLY do async inode ref deletion for the inode who has only
  1686. * one link(i_nlink == 1), it means there is only one inode ref.
  1687. * And in most case, the inode ref and the inode item are in the
  1688. * same leaf, and we will deal with them at the same time.
  1689. * Since we are sure we will reserve the space for the inode item,
  1690. * it is unnecessary to reserve space for inode ref deletion.
  1691. * - If the inode ref and the inode item are not in the same leaf,
  1692. * We also needn't worry about enospc problem, because we reserve
  1693. * much more space for the inode update than it needs.
  1694. * - At the worst, we can steal some space from the global reservation.
  1695. * It is very rare.
  1696. */
  1697. mutex_lock(&delayed_node->mutex);
  1698. if (!test_and_set_bit(BTRFS_DELAYED_NODE_DEL_IREF, &delayed_node->flags)) {
  1699. delayed_node->count++;
  1700. atomic_inc(&fs_info->delayed_root.items);
  1701. }
  1702. mutex_unlock(&delayed_node->mutex);
  1703. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1704. return 0;
  1705. }
  1706. static void __btrfs_kill_delayed_node(struct btrfs_delayed_node *delayed_node)
  1707. {
  1708. struct btrfs_root *root = delayed_node->root;
  1709. struct btrfs_fs_info *fs_info = root->fs_info;
  1710. struct btrfs_delayed_item *curr_item, *prev_item;
  1711. mutex_lock(&delayed_node->mutex);
  1712. curr_item = __btrfs_first_delayed_insertion_item(delayed_node);
  1713. while (curr_item) {
  1714. prev_item = curr_item;
  1715. curr_item = __btrfs_next_delayed_item(prev_item);
  1716. btrfs_release_delayed_item(prev_item);
  1717. }
  1718. if (delayed_node->index_item_leaves > 0) {
  1719. btrfs_delayed_item_release_leaves(delayed_node,
  1720. delayed_node->index_item_leaves);
  1721. delayed_node->index_item_leaves = 0;
  1722. }
  1723. curr_item = __btrfs_first_delayed_deletion_item(delayed_node);
  1724. while (curr_item) {
  1725. btrfs_delayed_item_release_metadata(root, curr_item);
  1726. prev_item = curr_item;
  1727. curr_item = __btrfs_next_delayed_item(prev_item);
  1728. btrfs_release_delayed_item(prev_item);
  1729. }
  1730. btrfs_release_delayed_iref(delayed_node);
  1731. if (test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
  1732. btrfs_delayed_inode_release_metadata(fs_info, delayed_node, false);
  1733. btrfs_release_delayed_inode(delayed_node);
  1734. }
  1735. mutex_unlock(&delayed_node->mutex);
  1736. }
  1737. void btrfs_kill_delayed_inode_items(struct btrfs_inode *inode)
  1738. {
  1739. struct btrfs_delayed_node *delayed_node;
  1740. struct btrfs_ref_tracker delayed_node_tracker;
  1741. delayed_node = btrfs_get_delayed_node(inode, &delayed_node_tracker);
  1742. if (!delayed_node)
  1743. return;
  1744. __btrfs_kill_delayed_node(delayed_node);
  1745. btrfs_release_delayed_node(delayed_node, &delayed_node_tracker);
  1746. }
  1747. void btrfs_kill_all_delayed_nodes(struct btrfs_root *root)
  1748. {
  1749. unsigned long index = 0;
  1750. struct btrfs_delayed_node *delayed_nodes[8];
  1751. struct btrfs_ref_tracker delayed_node_trackers[8];
  1752. while (1) {
  1753. struct btrfs_delayed_node *node;
  1754. int count;
  1755. xa_lock(&root->delayed_nodes);
  1756. if (xa_empty(&root->delayed_nodes)) {
  1757. xa_unlock(&root->delayed_nodes);
  1758. return;
  1759. }
  1760. count = 0;
  1761. xa_for_each_start(&root->delayed_nodes, index, node, index) {
  1762. /*
  1763. * Don't increase refs in case the node is dead and
  1764. * about to be removed from the tree in the loop below
  1765. */
  1766. if (refcount_inc_not_zero(&node->refs)) {
  1767. btrfs_delayed_node_ref_tracker_alloc(node,
  1768. &delayed_node_trackers[count],
  1769. GFP_ATOMIC);
  1770. delayed_nodes[count] = node;
  1771. count++;
  1772. }
  1773. if (count >= ARRAY_SIZE(delayed_nodes))
  1774. break;
  1775. }
  1776. xa_unlock(&root->delayed_nodes);
  1777. index++;
  1778. for (int i = 0; i < count; i++) {
  1779. __btrfs_kill_delayed_node(delayed_nodes[i]);
  1780. btrfs_delayed_node_ref_tracker_dir_print(delayed_nodes[i]);
  1781. btrfs_release_delayed_node(delayed_nodes[i],
  1782. &delayed_node_trackers[i]);
  1783. }
  1784. }
  1785. }
  1786. void btrfs_destroy_delayed_inodes(struct btrfs_fs_info *fs_info)
  1787. {
  1788. struct btrfs_delayed_node *curr_node, *prev_node;
  1789. struct btrfs_ref_tracker curr_delayed_node_tracker, prev_delayed_node_tracker;
  1790. curr_node = btrfs_first_delayed_node(fs_info, &curr_delayed_node_tracker);
  1791. while (curr_node) {
  1792. __btrfs_kill_delayed_node(curr_node);
  1793. prev_node = curr_node;
  1794. prev_delayed_node_tracker = curr_delayed_node_tracker;
  1795. curr_node = btrfs_next_delayed_node(curr_node, &curr_delayed_node_tracker);
  1796. btrfs_release_delayed_node(prev_node, &prev_delayed_node_tracker);
  1797. }
  1798. }
  1799. void btrfs_log_get_delayed_items(struct btrfs_inode *inode,
  1800. struct list_head *ins_list,
  1801. struct list_head *del_list)
  1802. {
  1803. struct btrfs_delayed_node *node;
  1804. struct btrfs_delayed_item *item;
  1805. struct btrfs_ref_tracker delayed_node_tracker;
  1806. node = btrfs_get_delayed_node(inode, &delayed_node_tracker);
  1807. if (!node)
  1808. return;
  1809. mutex_lock(&node->mutex);
  1810. item = __btrfs_first_delayed_insertion_item(node);
  1811. while (item) {
  1812. /*
  1813. * It's possible that the item is already in a log list. This
  1814. * can happen in case two tasks are trying to log the same
  1815. * directory. For example if we have tasks A and task B:
  1816. *
  1817. * Task A collected the delayed items into a log list while
  1818. * under the inode's log_mutex (at btrfs_log_inode()), but it
  1819. * only releases the items after logging the inodes they point
  1820. * to (if they are new inodes), which happens after unlocking
  1821. * the log mutex;
  1822. *
  1823. * Task B enters btrfs_log_inode() and acquires the log_mutex
  1824. * of the same directory inode, before task B releases the
  1825. * delayed items. This can happen for example when logging some
  1826. * inode we need to trigger logging of its parent directory, so
  1827. * logging two files that have the same parent directory can
  1828. * lead to this.
  1829. *
  1830. * If this happens, just ignore delayed items already in a log
  1831. * list. All the tasks logging the directory are under a log
  1832. * transaction and whichever finishes first can not sync the log
  1833. * before the other completes and leaves the log transaction.
  1834. */
  1835. if (!item->logged && list_empty(&item->log_list)) {
  1836. refcount_inc(&item->refs);
  1837. list_add_tail(&item->log_list, ins_list);
  1838. }
  1839. item = __btrfs_next_delayed_item(item);
  1840. }
  1841. item = __btrfs_first_delayed_deletion_item(node);
  1842. while (item) {
  1843. /* It may be non-empty, for the same reason mentioned above. */
  1844. if (!item->logged && list_empty(&item->log_list)) {
  1845. refcount_inc(&item->refs);
  1846. list_add_tail(&item->log_list, del_list);
  1847. }
  1848. item = __btrfs_next_delayed_item(item);
  1849. }
  1850. mutex_unlock(&node->mutex);
  1851. /*
  1852. * We are called during inode logging, which means the inode is in use
  1853. * and can not be evicted before we finish logging the inode. So we never
  1854. * have the last reference on the delayed inode.
  1855. * Also, we don't use btrfs_release_delayed_node() because that would
  1856. * requeue the delayed inode (change its order in the list of prepared
  1857. * nodes) and we don't want to do such change because we don't create or
  1858. * delete delayed items.
  1859. */
  1860. ASSERT(refcount_read(&node->refs) > 1);
  1861. btrfs_delayed_node_ref_tracker_free(node, &delayed_node_tracker);
  1862. refcount_dec(&node->refs);
  1863. }
  1864. void btrfs_log_put_delayed_items(struct btrfs_inode *inode,
  1865. struct list_head *ins_list,
  1866. struct list_head *del_list)
  1867. {
  1868. struct btrfs_delayed_node *node;
  1869. struct btrfs_delayed_item *item;
  1870. struct btrfs_delayed_item *next;
  1871. struct btrfs_ref_tracker delayed_node_tracker;
  1872. node = btrfs_get_delayed_node(inode, &delayed_node_tracker);
  1873. if (!node)
  1874. return;
  1875. mutex_lock(&node->mutex);
  1876. list_for_each_entry_safe(item, next, ins_list, log_list) {
  1877. item->logged = true;
  1878. list_del_init(&item->log_list);
  1879. if (refcount_dec_and_test(&item->refs))
  1880. kfree(item);
  1881. }
  1882. list_for_each_entry_safe(item, next, del_list, log_list) {
  1883. item->logged = true;
  1884. list_del_init(&item->log_list);
  1885. if (refcount_dec_and_test(&item->refs))
  1886. kfree(item);
  1887. }
  1888. mutex_unlock(&node->mutex);
  1889. /*
  1890. * We are called during inode logging, which means the inode is in use
  1891. * and can not be evicted before we finish logging the inode. So we never
  1892. * have the last reference on the delayed inode.
  1893. * Also, we don't use btrfs_release_delayed_node() because that would
  1894. * requeue the delayed inode (change its order in the list of prepared
  1895. * nodes) and we don't want to do such change because we don't create or
  1896. * delete delayed items.
  1897. */
  1898. ASSERT(refcount_read(&node->refs) > 1);
  1899. btrfs_delayed_node_ref_tracker_free(node, &delayed_node_tracker);
  1900. refcount_dec(&node->refs);
  1901. }