dir.c 17 KB

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  1. /**
  2. * fs/f2fs/dir.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 "acl.h"
  15. static unsigned long dir_blocks(struct inode *inode)
  16. {
  17. return ((unsigned long long) (i_size_read(inode) + PAGE_CACHE_SIZE - 1))
  18. >> PAGE_CACHE_SHIFT;
  19. }
  20. static unsigned int dir_buckets(unsigned int level)
  21. {
  22. if (level < MAX_DIR_HASH_DEPTH / 2)
  23. return 1 << level;
  24. else
  25. return 1 << ((MAX_DIR_HASH_DEPTH / 2) - 1);
  26. }
  27. static unsigned int bucket_blocks(unsigned int level)
  28. {
  29. if (level < MAX_DIR_HASH_DEPTH / 2)
  30. return 2;
  31. else
  32. return 4;
  33. }
  34. static unsigned char f2fs_filetype_table[F2FS_FT_MAX] = {
  35. [F2FS_FT_UNKNOWN] = DT_UNKNOWN,
  36. [F2FS_FT_REG_FILE] = DT_REG,
  37. [F2FS_FT_DIR] = DT_DIR,
  38. [F2FS_FT_CHRDEV] = DT_CHR,
  39. [F2FS_FT_BLKDEV] = DT_BLK,
  40. [F2FS_FT_FIFO] = DT_FIFO,
  41. [F2FS_FT_SOCK] = DT_SOCK,
  42. [F2FS_FT_SYMLINK] = DT_LNK,
  43. };
  44. #define S_SHIFT 12
  45. static unsigned char f2fs_type_by_mode[S_IFMT >> S_SHIFT] = {
  46. [S_IFREG >> S_SHIFT] = F2FS_FT_REG_FILE,
  47. [S_IFDIR >> S_SHIFT] = F2FS_FT_DIR,
  48. [S_IFCHR >> S_SHIFT] = F2FS_FT_CHRDEV,
  49. [S_IFBLK >> S_SHIFT] = F2FS_FT_BLKDEV,
  50. [S_IFIFO >> S_SHIFT] = F2FS_FT_FIFO,
  51. [S_IFSOCK >> S_SHIFT] = F2FS_FT_SOCK,
  52. [S_IFLNK >> S_SHIFT] = F2FS_FT_SYMLINK,
  53. };
  54. static void set_de_type(struct f2fs_dir_entry *de, struct inode *inode)
  55. {
  56. mode_t mode = inode->i_mode;
  57. de->file_type = f2fs_type_by_mode[(mode & S_IFMT) >> S_SHIFT];
  58. }
  59. static unsigned long dir_block_index(unsigned int level, unsigned int idx)
  60. {
  61. unsigned long i;
  62. unsigned long bidx = 0;
  63. for (i = 0; i < level; i++)
  64. bidx += dir_buckets(i) * bucket_blocks(i);
  65. bidx += idx * bucket_blocks(level);
  66. return bidx;
  67. }
  68. static bool early_match_name(const char *name, int namelen,
  69. f2fs_hash_t namehash, struct f2fs_dir_entry *de)
  70. {
  71. if (le16_to_cpu(de->name_len) != namelen)
  72. return false;
  73. if (de->hash_code != namehash)
  74. return false;
  75. return true;
  76. }
  77. static struct f2fs_dir_entry *find_in_block(struct page *dentry_page,
  78. const char *name, int namelen, int *max_slots,
  79. f2fs_hash_t namehash, struct page **res_page)
  80. {
  81. struct f2fs_dir_entry *de;
  82. unsigned long bit_pos, end_pos, next_pos;
  83. struct f2fs_dentry_block *dentry_blk = kmap(dentry_page);
  84. int slots;
  85. bit_pos = find_next_bit_le(&dentry_blk->dentry_bitmap,
  86. NR_DENTRY_IN_BLOCK, 0);
  87. while (bit_pos < NR_DENTRY_IN_BLOCK) {
  88. de = &dentry_blk->dentry[bit_pos];
  89. slots = (le16_to_cpu(de->name_len) + F2FS_NAME_LEN - 1) /
  90. F2FS_NAME_LEN;
  91. if (early_match_name(name, namelen, namehash, de)) {
  92. if (!memcmp(dentry_blk->filename[bit_pos],
  93. name, namelen)) {
  94. *res_page = dentry_page;
  95. goto found;
  96. }
  97. }
  98. next_pos = bit_pos + slots;
  99. bit_pos = find_next_bit_le(&dentry_blk->dentry_bitmap,
  100. NR_DENTRY_IN_BLOCK, next_pos);
  101. if (bit_pos >= NR_DENTRY_IN_BLOCK)
  102. end_pos = NR_DENTRY_IN_BLOCK;
  103. else
  104. end_pos = bit_pos;
  105. if (*max_slots < end_pos - next_pos)
  106. *max_slots = end_pos - next_pos;
  107. }
  108. de = NULL;
  109. kunmap(dentry_page);
  110. found:
  111. return de;
  112. }
  113. static struct f2fs_dir_entry *find_in_level(struct inode *dir,
  114. unsigned int level, const char *name, int namelen,
  115. f2fs_hash_t namehash, struct page **res_page)
  116. {
  117. int s = (namelen + F2FS_NAME_LEN - 1) / F2FS_NAME_LEN;
  118. unsigned int nbucket, nblock;
  119. unsigned int bidx, end_block;
  120. struct page *dentry_page;
  121. struct f2fs_dir_entry *de = NULL;
  122. bool room = false;
  123. int max_slots = 0;
  124. BUG_ON(level > MAX_DIR_HASH_DEPTH);
  125. nbucket = dir_buckets(level);
  126. nblock = bucket_blocks(level);
  127. bidx = dir_block_index(level, le32_to_cpu(namehash) % nbucket);
  128. end_block = bidx + nblock;
  129. for (; bidx < end_block; bidx++) {
  130. /* no need to allocate new dentry pages to all the indices */
  131. dentry_page = find_data_page(dir, bidx);
  132. if (IS_ERR(dentry_page)) {
  133. room = true;
  134. continue;
  135. }
  136. de = find_in_block(dentry_page, name, namelen,
  137. &max_slots, namehash, res_page);
  138. if (de)
  139. break;
  140. if (max_slots >= s)
  141. room = true;
  142. f2fs_put_page(dentry_page, 0);
  143. }
  144. if (!de && room && F2FS_I(dir)->chash != namehash) {
  145. F2FS_I(dir)->chash = namehash;
  146. F2FS_I(dir)->clevel = level;
  147. }
  148. return de;
  149. }
  150. /*
  151. * Find an entry in the specified directory with the wanted name.
  152. * It returns the page where the entry was found (as a parameter - res_page),
  153. * and the entry itself. Page is returned mapped and unlocked.
  154. * Entry is guaranteed to be valid.
  155. */
  156. struct f2fs_dir_entry *f2fs_find_entry(struct inode *dir,
  157. struct qstr *child, struct page **res_page)
  158. {
  159. const char *name = child->name;
  160. int namelen = child->len;
  161. unsigned long npages = dir_blocks(dir);
  162. struct f2fs_dir_entry *de = NULL;
  163. f2fs_hash_t name_hash;
  164. unsigned int max_depth;
  165. unsigned int level;
  166. if (npages == 0)
  167. return NULL;
  168. *res_page = NULL;
  169. name_hash = f2fs_dentry_hash(name, namelen);
  170. max_depth = F2FS_I(dir)->i_current_depth;
  171. for (level = 0; level < max_depth; level++) {
  172. de = find_in_level(dir, level, name,
  173. namelen, name_hash, res_page);
  174. if (de)
  175. break;
  176. }
  177. if (!de && F2FS_I(dir)->chash != name_hash) {
  178. F2FS_I(dir)->chash = name_hash;
  179. F2FS_I(dir)->clevel = level - 1;
  180. }
  181. return de;
  182. }
  183. struct f2fs_dir_entry *f2fs_parent_dir(struct inode *dir, struct page **p)
  184. {
  185. struct page *page = NULL;
  186. struct f2fs_dir_entry *de = NULL;
  187. struct f2fs_dentry_block *dentry_blk = NULL;
  188. page = get_lock_data_page(dir, 0);
  189. if (IS_ERR(page))
  190. return NULL;
  191. dentry_blk = kmap(page);
  192. de = &dentry_blk->dentry[1];
  193. *p = page;
  194. unlock_page(page);
  195. return de;
  196. }
  197. ino_t f2fs_inode_by_name(struct inode *dir, struct qstr *qstr)
  198. {
  199. ino_t res = 0;
  200. struct f2fs_dir_entry *de;
  201. struct page *page;
  202. de = f2fs_find_entry(dir, qstr, &page);
  203. if (de) {
  204. res = le32_to_cpu(de->ino);
  205. kunmap(page);
  206. f2fs_put_page(page, 0);
  207. }
  208. return res;
  209. }
  210. void f2fs_set_link(struct inode *dir, struct f2fs_dir_entry *de,
  211. struct page *page, struct inode *inode)
  212. {
  213. struct f2fs_sb_info *sbi = F2FS_SB(dir->i_sb);
  214. mutex_lock_op(sbi, DENTRY_OPS);
  215. lock_page(page);
  216. wait_on_page_writeback(page);
  217. de->ino = cpu_to_le32(inode->i_ino);
  218. set_de_type(de, inode);
  219. kunmap(page);
  220. set_page_dirty(page);
  221. dir->i_mtime = dir->i_ctime = CURRENT_TIME;
  222. mark_inode_dirty(dir);
  223. f2fs_put_page(page, 1);
  224. mutex_unlock_op(sbi, DENTRY_OPS);
  225. }
  226. void init_dent_inode(struct dentry *dentry, struct page *ipage)
  227. {
  228. struct inode *dir = dentry->d_parent->d_inode;
  229. struct f2fs_node *rn;
  230. if (IS_ERR(ipage))
  231. return;
  232. wait_on_page_writeback(ipage);
  233. /* copy dentry info. to this inode page */
  234. rn = (struct f2fs_node *)page_address(ipage);
  235. rn->i.i_pino = cpu_to_le32(dir->i_ino);
  236. rn->i.i_namelen = cpu_to_le32(dentry->d_name.len);
  237. memcpy(rn->i.i_name, dentry->d_name.name, dentry->d_name.len);
  238. set_page_dirty(ipage);
  239. }
  240. static int init_inode_metadata(struct inode *inode, struct dentry *dentry)
  241. {
  242. struct inode *dir = dentry->d_parent->d_inode;
  243. if (is_inode_flag_set(F2FS_I(inode), FI_NEW_INODE)) {
  244. int err;
  245. err = new_inode_page(inode, dentry);
  246. if (err)
  247. return err;
  248. if (S_ISDIR(inode->i_mode)) {
  249. err = f2fs_make_empty(inode, dir);
  250. if (err) {
  251. remove_inode_page(inode);
  252. return err;
  253. }
  254. }
  255. err = f2fs_init_acl(inode, dir);
  256. if (err) {
  257. remove_inode_page(inode);
  258. return err;
  259. }
  260. } else {
  261. struct page *ipage;
  262. ipage = get_node_page(F2FS_SB(dir->i_sb), inode->i_ino);
  263. if (IS_ERR(ipage))
  264. return PTR_ERR(ipage);
  265. init_dent_inode(dentry, ipage);
  266. f2fs_put_page(ipage, 1);
  267. }
  268. if (is_inode_flag_set(F2FS_I(inode), FI_INC_LINK)) {
  269. inc_nlink(inode);
  270. f2fs_write_inode(inode, NULL);
  271. }
  272. return 0;
  273. }
  274. static void update_parent_metadata(struct inode *dir, struct inode *inode,
  275. unsigned int current_depth)
  276. {
  277. bool need_dir_update = false;
  278. if (is_inode_flag_set(F2FS_I(inode), FI_NEW_INODE)) {
  279. if (S_ISDIR(inode->i_mode)) {
  280. inc_nlink(dir);
  281. need_dir_update = true;
  282. }
  283. clear_inode_flag(F2FS_I(inode), FI_NEW_INODE);
  284. }
  285. dir->i_mtime = dir->i_ctime = CURRENT_TIME;
  286. if (F2FS_I(dir)->i_current_depth != current_depth) {
  287. F2FS_I(dir)->i_current_depth = current_depth;
  288. need_dir_update = true;
  289. }
  290. if (need_dir_update)
  291. f2fs_write_inode(dir, NULL);
  292. else
  293. mark_inode_dirty(dir);
  294. if (is_inode_flag_set(F2FS_I(inode), FI_INC_LINK))
  295. clear_inode_flag(F2FS_I(inode), FI_INC_LINK);
  296. }
  297. static int room_for_filename(struct f2fs_dentry_block *dentry_blk, int slots)
  298. {
  299. int bit_start = 0;
  300. int zero_start, zero_end;
  301. next:
  302. zero_start = find_next_zero_bit_le(&dentry_blk->dentry_bitmap,
  303. NR_DENTRY_IN_BLOCK,
  304. bit_start);
  305. if (zero_start >= NR_DENTRY_IN_BLOCK)
  306. return NR_DENTRY_IN_BLOCK;
  307. zero_end = find_next_bit_le(&dentry_blk->dentry_bitmap,
  308. NR_DENTRY_IN_BLOCK,
  309. zero_start);
  310. if (zero_end - zero_start >= slots)
  311. return zero_start;
  312. bit_start = zero_end + 1;
  313. if (zero_end + 1 >= NR_DENTRY_IN_BLOCK)
  314. return NR_DENTRY_IN_BLOCK;
  315. goto next;
  316. }
  317. int f2fs_add_link(struct dentry *dentry, struct inode *inode)
  318. {
  319. unsigned int bit_pos;
  320. unsigned int level;
  321. unsigned int current_depth;
  322. unsigned long bidx, block;
  323. f2fs_hash_t dentry_hash;
  324. struct f2fs_dir_entry *de;
  325. unsigned int nbucket, nblock;
  326. struct inode *dir = dentry->d_parent->d_inode;
  327. struct f2fs_sb_info *sbi = F2FS_SB(dir->i_sb);
  328. const char *name = dentry->d_name.name;
  329. int namelen = dentry->d_name.len;
  330. struct page *dentry_page = NULL;
  331. struct f2fs_dentry_block *dentry_blk = NULL;
  332. int slots = (namelen + F2FS_NAME_LEN - 1) / F2FS_NAME_LEN;
  333. int err = 0;
  334. int i;
  335. dentry_hash = f2fs_dentry_hash(name, dentry->d_name.len);
  336. level = 0;
  337. current_depth = F2FS_I(dir)->i_current_depth;
  338. if (F2FS_I(dir)->chash == dentry_hash) {
  339. level = F2FS_I(dir)->clevel;
  340. F2FS_I(dir)->chash = 0;
  341. }
  342. start:
  343. if (current_depth == MAX_DIR_HASH_DEPTH)
  344. return -ENOSPC;
  345. /* Increase the depth, if required */
  346. if (level == current_depth)
  347. ++current_depth;
  348. nbucket = dir_buckets(level);
  349. nblock = bucket_blocks(level);
  350. bidx = dir_block_index(level, (le32_to_cpu(dentry_hash) % nbucket));
  351. for (block = bidx; block <= (bidx + nblock - 1); block++) {
  352. mutex_lock_op(sbi, DENTRY_OPS);
  353. dentry_page = get_new_data_page(dir, block, true);
  354. if (IS_ERR(dentry_page)) {
  355. mutex_unlock_op(sbi, DENTRY_OPS);
  356. return PTR_ERR(dentry_page);
  357. }
  358. dentry_blk = kmap(dentry_page);
  359. bit_pos = room_for_filename(dentry_blk, slots);
  360. if (bit_pos < NR_DENTRY_IN_BLOCK)
  361. goto add_dentry;
  362. kunmap(dentry_page);
  363. f2fs_put_page(dentry_page, 1);
  364. mutex_unlock_op(sbi, DENTRY_OPS);
  365. }
  366. /* Move to next level to find the empty slot for new dentry */
  367. ++level;
  368. goto start;
  369. add_dentry:
  370. err = init_inode_metadata(inode, dentry);
  371. if (err)
  372. goto fail;
  373. wait_on_page_writeback(dentry_page);
  374. de = &dentry_blk->dentry[bit_pos];
  375. de->hash_code = dentry_hash;
  376. de->name_len = cpu_to_le16(namelen);
  377. memcpy(dentry_blk->filename[bit_pos], name, namelen);
  378. de->ino = cpu_to_le32(inode->i_ino);
  379. set_de_type(de, inode);
  380. for (i = 0; i < slots; i++)
  381. test_and_set_bit_le(bit_pos + i, &dentry_blk->dentry_bitmap);
  382. set_page_dirty(dentry_page);
  383. update_parent_metadata(dir, inode, current_depth);
  384. fail:
  385. kunmap(dentry_page);
  386. f2fs_put_page(dentry_page, 1);
  387. mutex_unlock_op(sbi, DENTRY_OPS);
  388. return err;
  389. }
  390. /**
  391. * It only removes the dentry from the dentry page,corresponding name
  392. * entry in name page does not need to be touched during deletion.
  393. */
  394. void f2fs_delete_entry(struct f2fs_dir_entry *dentry, struct page *page,
  395. struct inode *inode)
  396. {
  397. struct f2fs_dentry_block *dentry_blk;
  398. unsigned int bit_pos;
  399. struct address_space *mapping = page->mapping;
  400. struct inode *dir = mapping->host;
  401. struct f2fs_sb_info *sbi = F2FS_SB(dir->i_sb);
  402. int slots = (le16_to_cpu(dentry->name_len) + F2FS_NAME_LEN - 1) /
  403. F2FS_NAME_LEN;
  404. void *kaddr = page_address(page);
  405. int i;
  406. mutex_lock_op(sbi, DENTRY_OPS);
  407. lock_page(page);
  408. wait_on_page_writeback(page);
  409. dentry_blk = (struct f2fs_dentry_block *)kaddr;
  410. bit_pos = dentry - (struct f2fs_dir_entry *)dentry_blk->dentry;
  411. for (i = 0; i < slots; i++)
  412. test_and_clear_bit_le(bit_pos + i, &dentry_blk->dentry_bitmap);
  413. /* Let's check and deallocate this dentry page */
  414. bit_pos = find_next_bit_le(&dentry_blk->dentry_bitmap,
  415. NR_DENTRY_IN_BLOCK,
  416. 0);
  417. kunmap(page); /* kunmap - pair of f2fs_find_entry */
  418. set_page_dirty(page);
  419. dir->i_ctime = dir->i_mtime = CURRENT_TIME;
  420. if (inode && S_ISDIR(inode->i_mode)) {
  421. drop_nlink(dir);
  422. f2fs_write_inode(dir, NULL);
  423. } else {
  424. mark_inode_dirty(dir);
  425. }
  426. if (inode) {
  427. inode->i_ctime = dir->i_ctime = dir->i_mtime = CURRENT_TIME;
  428. drop_nlink(inode);
  429. if (S_ISDIR(inode->i_mode)) {
  430. drop_nlink(inode);
  431. i_size_write(inode, 0);
  432. }
  433. f2fs_write_inode(inode, NULL);
  434. if (inode->i_nlink == 0)
  435. add_orphan_inode(sbi, inode->i_ino);
  436. }
  437. if (bit_pos == NR_DENTRY_IN_BLOCK) {
  438. loff_t page_offset;
  439. truncate_hole(dir, page->index, page->index + 1);
  440. clear_page_dirty_for_io(page);
  441. ClearPageUptodate(page);
  442. dec_page_count(sbi, F2FS_DIRTY_DENTS);
  443. inode_dec_dirty_dents(dir);
  444. page_offset = page->index << PAGE_CACHE_SHIFT;
  445. f2fs_put_page(page, 1);
  446. } else {
  447. f2fs_put_page(page, 1);
  448. }
  449. mutex_unlock_op(sbi, DENTRY_OPS);
  450. }
  451. int f2fs_make_empty(struct inode *inode, struct inode *parent)
  452. {
  453. struct page *dentry_page;
  454. struct f2fs_dentry_block *dentry_blk;
  455. struct f2fs_dir_entry *de;
  456. void *kaddr;
  457. dentry_page = get_new_data_page(inode, 0, true);
  458. if (IS_ERR(dentry_page))
  459. return PTR_ERR(dentry_page);
  460. kaddr = kmap_atomic(dentry_page);
  461. dentry_blk = (struct f2fs_dentry_block *)kaddr;
  462. de = &dentry_blk->dentry[0];
  463. de->name_len = cpu_to_le16(1);
  464. de->hash_code = 0;
  465. de->ino = cpu_to_le32(inode->i_ino);
  466. memcpy(dentry_blk->filename[0], ".", 1);
  467. set_de_type(de, inode);
  468. de = &dentry_blk->dentry[1];
  469. de->hash_code = 0;
  470. de->name_len = cpu_to_le16(2);
  471. de->ino = cpu_to_le32(parent->i_ino);
  472. memcpy(dentry_blk->filename[1], "..", 2);
  473. set_de_type(de, inode);
  474. test_and_set_bit_le(0, &dentry_blk->dentry_bitmap);
  475. test_and_set_bit_le(1, &dentry_blk->dentry_bitmap);
  476. kunmap_atomic(kaddr);
  477. set_page_dirty(dentry_page);
  478. f2fs_put_page(dentry_page, 1);
  479. return 0;
  480. }
  481. bool f2fs_empty_dir(struct inode *dir)
  482. {
  483. unsigned long bidx;
  484. struct page *dentry_page;
  485. unsigned int bit_pos;
  486. struct f2fs_dentry_block *dentry_blk;
  487. unsigned long nblock = dir_blocks(dir);
  488. for (bidx = 0; bidx < nblock; bidx++) {
  489. void *kaddr;
  490. dentry_page = get_lock_data_page(dir, bidx);
  491. if (IS_ERR(dentry_page)) {
  492. if (PTR_ERR(dentry_page) == -ENOENT)
  493. continue;
  494. else
  495. return false;
  496. }
  497. kaddr = kmap_atomic(dentry_page);
  498. dentry_blk = (struct f2fs_dentry_block *)kaddr;
  499. if (bidx == 0)
  500. bit_pos = 2;
  501. else
  502. bit_pos = 0;
  503. bit_pos = find_next_bit_le(&dentry_blk->dentry_bitmap,
  504. NR_DENTRY_IN_BLOCK,
  505. bit_pos);
  506. kunmap_atomic(kaddr);
  507. f2fs_put_page(dentry_page, 1);
  508. if (bit_pos < NR_DENTRY_IN_BLOCK)
  509. return false;
  510. }
  511. return true;
  512. }
  513. static int f2fs_readdir(struct file *file, void *dirent, filldir_t filldir)
  514. {
  515. unsigned long pos = file->f_pos;
  516. struct inode *inode = file->f_dentry->d_inode;
  517. unsigned long npages = dir_blocks(inode);
  518. unsigned char *types = NULL;
  519. unsigned int bit_pos = 0, start_bit_pos = 0;
  520. int over = 0;
  521. struct f2fs_dentry_block *dentry_blk = NULL;
  522. struct f2fs_dir_entry *de = NULL;
  523. struct page *dentry_page = NULL;
  524. unsigned int n = 0;
  525. unsigned char d_type = DT_UNKNOWN;
  526. int slots;
  527. types = f2fs_filetype_table;
  528. bit_pos = (pos % NR_DENTRY_IN_BLOCK);
  529. n = (pos / NR_DENTRY_IN_BLOCK);
  530. for ( ; n < npages; n++) {
  531. dentry_page = get_lock_data_page(inode, n);
  532. if (IS_ERR(dentry_page))
  533. continue;
  534. start_bit_pos = bit_pos;
  535. dentry_blk = kmap(dentry_page);
  536. while (bit_pos < NR_DENTRY_IN_BLOCK) {
  537. d_type = DT_UNKNOWN;
  538. bit_pos = find_next_bit_le(&dentry_blk->dentry_bitmap,
  539. NR_DENTRY_IN_BLOCK,
  540. bit_pos);
  541. if (bit_pos >= NR_DENTRY_IN_BLOCK)
  542. break;
  543. de = &dentry_blk->dentry[bit_pos];
  544. if (types && de->file_type < F2FS_FT_MAX)
  545. d_type = types[de->file_type];
  546. over = filldir(dirent,
  547. dentry_blk->filename[bit_pos],
  548. le16_to_cpu(de->name_len),
  549. (n * NR_DENTRY_IN_BLOCK) + bit_pos,
  550. le32_to_cpu(de->ino), d_type);
  551. if (over) {
  552. file->f_pos += bit_pos - start_bit_pos;
  553. goto success;
  554. }
  555. slots = (le16_to_cpu(de->name_len) + F2FS_NAME_LEN - 1)
  556. / F2FS_NAME_LEN;
  557. bit_pos += slots;
  558. }
  559. bit_pos = 0;
  560. file->f_pos = (n + 1) * NR_DENTRY_IN_BLOCK;
  561. kunmap(dentry_page);
  562. f2fs_put_page(dentry_page, 1);
  563. dentry_page = NULL;
  564. }
  565. success:
  566. if (dentry_page && !IS_ERR(dentry_page)) {
  567. kunmap(dentry_page);
  568. f2fs_put_page(dentry_page, 1);
  569. }
  570. return 0;
  571. }
  572. const struct file_operations f2fs_dir_operations = {
  573. .llseek = generic_file_llseek,
  574. .read = generic_read_dir,
  575. .readdir = f2fs_readdir,
  576. .fsync = f2fs_sync_file,
  577. .unlocked_ioctl = f2fs_ioctl,
  578. };