recovery.c 13 KB

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  1. /*
  2. * fs/f2fs/recovery.c
  3. *
  4. * Copyright (c) 2012 Samsung Electronics Co., Ltd.
  5. * http://www.samsung.com/
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License version 2 as
  9. * published by the Free Software Foundation.
  10. */
  11. #include <linux/fs.h>
  12. #include <linux/f2fs_fs.h>
  13. #include "f2fs.h"
  14. #include "node.h"
  15. #include "segment.h"
  16. /*
  17. * Roll forward recovery scenarios.
  18. *
  19. * [Term] F: fsync_mark, D: dentry_mark
  20. *
  21. * 1. inode(x) | CP | inode(x) | dnode(F)
  22. * -> Update the latest inode(x).
  23. *
  24. * 2. inode(x) | CP | inode(F) | dnode(F)
  25. * -> No problem.
  26. *
  27. * 3. inode(x) | CP | dnode(F) | inode(x)
  28. * -> Recover to the latest dnode(F), and drop the last inode(x)
  29. *
  30. * 4. inode(x) | CP | dnode(F) | inode(F)
  31. * -> No problem.
  32. *
  33. * 5. CP | inode(x) | dnode(F)
  34. * -> The inode(DF) was missing. Should drop this dnode(F).
  35. *
  36. * 6. CP | inode(DF) | dnode(F)
  37. * -> No problem.
  38. *
  39. * 7. CP | dnode(F) | inode(DF)
  40. * -> If f2fs_iget fails, then goto next to find inode(DF).
  41. *
  42. * 8. CP | dnode(F) | inode(x)
  43. * -> If f2fs_iget fails, then goto next to find inode(DF).
  44. * But it will fail due to no inode(DF).
  45. */
  46. static struct kmem_cache *fsync_entry_slab;
  47. bool space_for_roll_forward(struct f2fs_sb_info *sbi)
  48. {
  49. if (sbi->last_valid_block_count + sbi->alloc_valid_block_count
  50. > sbi->user_block_count)
  51. return false;
  52. return true;
  53. }
  54. static struct fsync_inode_entry *get_fsync_inode(struct list_head *head,
  55. nid_t ino)
  56. {
  57. struct fsync_inode_entry *entry;
  58. list_for_each_entry(entry, head, list)
  59. if (entry->inode->i_ino == ino)
  60. return entry;
  61. return NULL;
  62. }
  63. static int recover_dentry(struct inode *inode, struct page *ipage)
  64. {
  65. struct f2fs_inode *raw_inode = F2FS_INODE(ipage);
  66. nid_t pino = le32_to_cpu(raw_inode->i_pino);
  67. struct f2fs_dir_entry *de;
  68. struct qstr name;
  69. struct page *page;
  70. struct inode *dir, *einode;
  71. int err = 0;
  72. dir = f2fs_iget(inode->i_sb, pino);
  73. if (IS_ERR(dir)) {
  74. err = PTR_ERR(dir);
  75. goto out;
  76. }
  77. name.len = le32_to_cpu(raw_inode->i_namelen);
  78. name.name = raw_inode->i_name;
  79. if (unlikely(name.len > F2FS_NAME_LEN)) {
  80. WARN_ON(1);
  81. err = -ENAMETOOLONG;
  82. goto out_err;
  83. }
  84. retry:
  85. de = f2fs_find_entry(dir, &name, &page);
  86. if (de && inode->i_ino == le32_to_cpu(de->ino)) {
  87. clear_inode_flag(F2FS_I(inode), FI_INC_LINK);
  88. goto out_unmap_put;
  89. }
  90. if (de) {
  91. einode = f2fs_iget(inode->i_sb, le32_to_cpu(de->ino));
  92. if (IS_ERR(einode)) {
  93. WARN_ON(1);
  94. err = PTR_ERR(einode);
  95. if (err == -ENOENT)
  96. err = -EEXIST;
  97. goto out_unmap_put;
  98. }
  99. err = acquire_orphan_inode(F2FS_I_SB(inode));
  100. if (err) {
  101. iput(einode);
  102. goto out_unmap_put;
  103. }
  104. f2fs_delete_entry(de, page, einode);
  105. iput(einode);
  106. goto retry;
  107. }
  108. err = __f2fs_add_link(dir, &name, inode);
  109. if (err)
  110. goto out_err;
  111. if (is_inode_flag_set(F2FS_I(dir), FI_DELAY_IPUT)) {
  112. iput(dir);
  113. } else {
  114. add_dirty_dir_inode(dir);
  115. set_inode_flag(F2FS_I(dir), FI_DELAY_IPUT);
  116. }
  117. goto out;
  118. out_unmap_put:
  119. kunmap(page);
  120. f2fs_put_page(page, 0);
  121. out_err:
  122. iput(dir);
  123. out:
  124. f2fs_msg(inode->i_sb, KERN_NOTICE,
  125. "%s: ino = %x, name = %s, dir = %lx, err = %d",
  126. __func__, ino_of_node(ipage), raw_inode->i_name,
  127. IS_ERR(dir) ? 0 : dir->i_ino, err);
  128. return err;
  129. }
  130. static void recover_inode(struct inode *inode, struct page *page)
  131. {
  132. struct f2fs_inode *raw = F2FS_INODE(page);
  133. inode->i_mode = le16_to_cpu(raw->i_mode);
  134. i_size_write(inode, le64_to_cpu(raw->i_size));
  135. inode->i_atime.tv_sec = le64_to_cpu(raw->i_mtime);
  136. inode->i_ctime.tv_sec = le64_to_cpu(raw->i_ctime);
  137. inode->i_mtime.tv_sec = le64_to_cpu(raw->i_mtime);
  138. inode->i_atime.tv_nsec = le32_to_cpu(raw->i_mtime_nsec);
  139. inode->i_ctime.tv_nsec = le32_to_cpu(raw->i_ctime_nsec);
  140. inode->i_mtime.tv_nsec = le32_to_cpu(raw->i_mtime_nsec);
  141. f2fs_msg(inode->i_sb, KERN_NOTICE, "recover_inode: ino = %x, name = %s",
  142. ino_of_node(page), F2FS_INODE(page)->i_name);
  143. }
  144. static int find_fsync_dnodes(struct f2fs_sb_info *sbi, struct list_head *head)
  145. {
  146. unsigned long long cp_ver = cur_cp_version(F2FS_CKPT(sbi));
  147. struct curseg_info *curseg;
  148. struct page *page = NULL;
  149. block_t blkaddr;
  150. int err = 0;
  151. /* get node pages in the current segment */
  152. curseg = CURSEG_I(sbi, CURSEG_WARM_NODE);
  153. blkaddr = NEXT_FREE_BLKADDR(sbi, curseg);
  154. while (1) {
  155. struct fsync_inode_entry *entry;
  156. if (blkaddr < MAIN_BLKADDR(sbi) || blkaddr >= MAX_BLKADDR(sbi))
  157. return 0;
  158. page = get_meta_page_ra(sbi, blkaddr);
  159. if (cp_ver != cpver_of_node(page))
  160. break;
  161. if (!is_fsync_dnode(page))
  162. goto next;
  163. entry = get_fsync_inode(head, ino_of_node(page));
  164. if (entry) {
  165. if (IS_INODE(page) && is_dent_dnode(page))
  166. set_inode_flag(F2FS_I(entry->inode),
  167. FI_INC_LINK);
  168. } else {
  169. if (IS_INODE(page) && is_dent_dnode(page)) {
  170. err = recover_inode_page(sbi, page);
  171. if (err)
  172. break;
  173. }
  174. /* add this fsync inode to the list */
  175. entry = kmem_cache_alloc(fsync_entry_slab, GFP_F2FS_ZERO);
  176. if (!entry) {
  177. err = -ENOMEM;
  178. break;
  179. }
  180. /*
  181. * CP | dnode(F) | inode(DF)
  182. * For this case, we should not give up now.
  183. */
  184. entry->inode = f2fs_iget(sbi->sb, ino_of_node(page));
  185. if (IS_ERR(entry->inode)) {
  186. err = PTR_ERR(entry->inode);
  187. kmem_cache_free(fsync_entry_slab, entry);
  188. if (err == -ENOENT)
  189. goto next;
  190. break;
  191. }
  192. list_add_tail(&entry->list, head);
  193. }
  194. entry->blkaddr = blkaddr;
  195. if (IS_INODE(page)) {
  196. entry->last_inode = blkaddr;
  197. if (is_dent_dnode(page))
  198. entry->last_dentry = blkaddr;
  199. }
  200. next:
  201. /* check next segment */
  202. blkaddr = next_blkaddr_of_node(page);
  203. f2fs_put_page(page, 1);
  204. }
  205. f2fs_put_page(page, 1);
  206. return err;
  207. }
  208. static void destroy_fsync_dnodes(struct list_head *head)
  209. {
  210. struct fsync_inode_entry *entry, *tmp;
  211. list_for_each_entry_safe(entry, tmp, head, list) {
  212. iput(entry->inode);
  213. list_del(&entry->list);
  214. kmem_cache_free(fsync_entry_slab, entry);
  215. }
  216. }
  217. static int check_index_in_prev_nodes(struct f2fs_sb_info *sbi,
  218. block_t blkaddr, struct dnode_of_data *dn)
  219. {
  220. struct seg_entry *sentry;
  221. unsigned int segno = GET_SEGNO(sbi, blkaddr);
  222. unsigned short blkoff = GET_BLKOFF_FROM_SEG0(sbi, blkaddr);
  223. struct f2fs_summary_block *sum_node;
  224. struct f2fs_summary sum;
  225. struct page *sum_page, *node_page;
  226. nid_t ino, nid;
  227. struct inode *inode;
  228. unsigned int offset;
  229. block_t bidx;
  230. int i;
  231. sentry = get_seg_entry(sbi, segno);
  232. if (!f2fs_test_bit(blkoff, sentry->cur_valid_map))
  233. return 0;
  234. /* Get the previous summary */
  235. for (i = CURSEG_WARM_DATA; i <= CURSEG_COLD_DATA; i++) {
  236. struct curseg_info *curseg = CURSEG_I(sbi, i);
  237. if (curseg->segno == segno) {
  238. sum = curseg->sum_blk->entries[blkoff];
  239. goto got_it;
  240. }
  241. }
  242. sum_page = get_sum_page(sbi, segno);
  243. sum_node = (struct f2fs_summary_block *)page_address(sum_page);
  244. sum = sum_node->entries[blkoff];
  245. f2fs_put_page(sum_page, 1);
  246. got_it:
  247. /* Use the locked dnode page and inode */
  248. nid = le32_to_cpu(sum.nid);
  249. if (dn->inode->i_ino == nid) {
  250. struct dnode_of_data tdn = *dn;
  251. tdn.nid = nid;
  252. tdn.node_page = dn->inode_page;
  253. tdn.ofs_in_node = le16_to_cpu(sum.ofs_in_node);
  254. truncate_data_blocks_range(&tdn, 1);
  255. return 0;
  256. } else if (dn->nid == nid) {
  257. struct dnode_of_data tdn = *dn;
  258. tdn.ofs_in_node = le16_to_cpu(sum.ofs_in_node);
  259. truncate_data_blocks_range(&tdn, 1);
  260. return 0;
  261. }
  262. /* Get the node page */
  263. node_page = get_node_page(sbi, nid);
  264. if (IS_ERR(node_page))
  265. return PTR_ERR(node_page);
  266. offset = ofs_of_node(node_page);
  267. ino = ino_of_node(node_page);
  268. f2fs_put_page(node_page, 1);
  269. if (ino != dn->inode->i_ino) {
  270. /* Deallocate previous index in the node page */
  271. inode = f2fs_iget(sbi->sb, ino);
  272. if (IS_ERR(inode))
  273. return PTR_ERR(inode);
  274. } else {
  275. inode = dn->inode;
  276. }
  277. bidx = start_bidx_of_node(offset, F2FS_I(inode)) +
  278. le16_to_cpu(sum.ofs_in_node);
  279. if (ino != dn->inode->i_ino) {
  280. truncate_hole(inode, bidx, bidx + 1);
  281. iput(inode);
  282. } else {
  283. struct dnode_of_data tdn;
  284. set_new_dnode(&tdn, inode, dn->inode_page, NULL, 0);
  285. if (get_dnode_of_data(&tdn, bidx, LOOKUP_NODE))
  286. return 0;
  287. if (tdn.data_blkaddr != NULL_ADDR)
  288. truncate_data_blocks_range(&tdn, 1);
  289. f2fs_put_page(tdn.node_page, 1);
  290. }
  291. return 0;
  292. }
  293. static int do_recover_data(struct f2fs_sb_info *sbi, struct inode *inode,
  294. struct page *page, block_t blkaddr)
  295. {
  296. struct f2fs_inode_info *fi = F2FS_I(inode);
  297. unsigned int start, end;
  298. struct dnode_of_data dn;
  299. struct f2fs_summary sum;
  300. struct node_info ni;
  301. int err = 0, recovered = 0;
  302. /* step 1: recover xattr */
  303. if (IS_INODE(page)) {
  304. recover_inline_xattr(inode, page);
  305. } else if (f2fs_has_xattr_block(ofs_of_node(page))) {
  306. recover_xattr_data(inode, page, blkaddr);
  307. goto out;
  308. }
  309. /* step 2: recover inline data */
  310. if (recover_inline_data(inode, page))
  311. goto out;
  312. /* step 3: recover data indices */
  313. start = start_bidx_of_node(ofs_of_node(page), fi);
  314. end = start + ADDRS_PER_PAGE(page, fi);
  315. f2fs_lock_op(sbi);
  316. set_new_dnode(&dn, inode, NULL, NULL, 0);
  317. err = get_dnode_of_data(&dn, start, ALLOC_NODE);
  318. if (err) {
  319. f2fs_unlock_op(sbi);
  320. goto out;
  321. }
  322. f2fs_wait_on_page_writeback(dn.node_page, NODE);
  323. get_node_info(sbi, dn.nid, &ni);
  324. f2fs_bug_on(sbi, ni.ino != ino_of_node(page));
  325. f2fs_bug_on(sbi, ofs_of_node(dn.node_page) != ofs_of_node(page));
  326. for (; start < end; start++) {
  327. block_t src, dest;
  328. src = datablock_addr(dn.node_page, dn.ofs_in_node);
  329. dest = datablock_addr(page, dn.ofs_in_node);
  330. if (src != dest && dest != NEW_ADDR && dest != NULL_ADDR) {
  331. if (src == NULL_ADDR) {
  332. err = reserve_new_block(&dn);
  333. /* We should not get -ENOSPC */
  334. f2fs_bug_on(sbi, err);
  335. }
  336. /* Check the previous node page having this index */
  337. err = check_index_in_prev_nodes(sbi, dest, &dn);
  338. if (err)
  339. goto err;
  340. set_summary(&sum, dn.nid, dn.ofs_in_node, ni.version);
  341. /* write dummy data page */
  342. recover_data_page(sbi, NULL, &sum, src, dest);
  343. update_extent_cache(dest, &dn);
  344. recovered++;
  345. }
  346. dn.ofs_in_node++;
  347. }
  348. /* write node page in place */
  349. set_summary(&sum, dn.nid, 0, 0);
  350. if (IS_INODE(dn.node_page))
  351. sync_inode_page(&dn);
  352. copy_node_footer(dn.node_page, page);
  353. fill_node_footer(dn.node_page, dn.nid, ni.ino,
  354. ofs_of_node(page), false);
  355. set_page_dirty(dn.node_page);
  356. err:
  357. f2fs_put_dnode(&dn);
  358. f2fs_unlock_op(sbi);
  359. out:
  360. f2fs_msg(sbi->sb, KERN_NOTICE,
  361. "recover_data: ino = %lx, recovered = %d blocks, err = %d",
  362. inode->i_ino, recovered, err);
  363. return err;
  364. }
  365. static int recover_data(struct f2fs_sb_info *sbi,
  366. struct list_head *head, int type)
  367. {
  368. unsigned long long cp_ver = cur_cp_version(F2FS_CKPT(sbi));
  369. struct curseg_info *curseg;
  370. struct page *page = NULL;
  371. int err = 0;
  372. block_t blkaddr;
  373. /* get node pages in the current segment */
  374. curseg = CURSEG_I(sbi, type);
  375. blkaddr = NEXT_FREE_BLKADDR(sbi, curseg);
  376. while (1) {
  377. struct fsync_inode_entry *entry;
  378. if (blkaddr < MAIN_BLKADDR(sbi) || blkaddr >= MAX_BLKADDR(sbi))
  379. break;
  380. page = get_meta_page_ra(sbi, blkaddr);
  381. if (cp_ver != cpver_of_node(page)) {
  382. f2fs_put_page(page, 1);
  383. break;
  384. }
  385. entry = get_fsync_inode(head, ino_of_node(page));
  386. if (!entry)
  387. goto next;
  388. /*
  389. * inode(x) | CP | inode(x) | dnode(F)
  390. * In this case, we can lose the latest inode(x).
  391. * So, call recover_inode for the inode update.
  392. */
  393. if (entry->last_inode == blkaddr)
  394. recover_inode(entry->inode, page);
  395. if (entry->last_dentry == blkaddr) {
  396. err = recover_dentry(entry->inode, page);
  397. if (err) {
  398. f2fs_put_page(page, 1);
  399. break;
  400. }
  401. }
  402. err = do_recover_data(sbi, entry->inode, page, blkaddr);
  403. if (err) {
  404. f2fs_put_page(page, 1);
  405. break;
  406. }
  407. if (entry->blkaddr == blkaddr) {
  408. iput(entry->inode);
  409. list_del(&entry->list);
  410. kmem_cache_free(fsync_entry_slab, entry);
  411. }
  412. next:
  413. /* check next segment */
  414. blkaddr = next_blkaddr_of_node(page);
  415. f2fs_put_page(page, 1);
  416. }
  417. if (!err)
  418. allocate_new_segments(sbi);
  419. return err;
  420. }
  421. int recover_fsync_data(struct f2fs_sb_info *sbi)
  422. {
  423. struct curseg_info *curseg = CURSEG_I(sbi, CURSEG_WARM_NODE);
  424. struct list_head inode_list;
  425. block_t blkaddr;
  426. int err;
  427. bool need_writecp = false;
  428. fsync_entry_slab = f2fs_kmem_cache_create("f2fs_fsync_inode_entry",
  429. sizeof(struct fsync_inode_entry));
  430. if (!fsync_entry_slab)
  431. return -ENOMEM;
  432. INIT_LIST_HEAD(&inode_list);
  433. /* step #1: find fsynced inode numbers */
  434. sbi->por_doing = true;
  435. /* prevent checkpoint */
  436. mutex_lock(&sbi->cp_mutex);
  437. blkaddr = NEXT_FREE_BLKADDR(sbi, curseg);
  438. err = find_fsync_dnodes(sbi, &inode_list);
  439. if (err)
  440. goto out;
  441. if (list_empty(&inode_list))
  442. goto out;
  443. need_writecp = true;
  444. /* step #2: recover data */
  445. err = recover_data(sbi, &inode_list, CURSEG_WARM_NODE);
  446. if (!err)
  447. f2fs_bug_on(sbi, !list_empty(&inode_list));
  448. out:
  449. destroy_fsync_dnodes(&inode_list);
  450. kmem_cache_destroy(fsync_entry_slab);
  451. /* truncate meta pages to be used by the recovery */
  452. truncate_inode_pages_range(META_MAPPING(sbi),
  453. MAIN_BLKADDR(sbi) << PAGE_CACHE_SHIFT, -1);
  454. if (err) {
  455. truncate_inode_pages_final(NODE_MAPPING(sbi));
  456. truncate_inode_pages_final(META_MAPPING(sbi));
  457. }
  458. sbi->por_doing = false;
  459. if (err) {
  460. discard_next_dnode(sbi, blkaddr);
  461. /* Flush all the NAT/SIT pages */
  462. while (get_pages(sbi, F2FS_DIRTY_META))
  463. sync_meta_pages(sbi, META, LONG_MAX);
  464. set_ckpt_flags(sbi->ckpt, CP_ERROR_FLAG);
  465. mutex_unlock(&sbi->cp_mutex);
  466. } else if (need_writecp) {
  467. struct cp_control cpc = {
  468. .reason = CP_SYNC,
  469. };
  470. mutex_unlock(&sbi->cp_mutex);
  471. write_checkpoint(sbi, &cpc);
  472. } else {
  473. mutex_unlock(&sbi->cp_mutex);
  474. }
  475. return err;
  476. }