namei.c 102 KB

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  1. /*
  2. * linux/fs/ext4/namei.c
  3. *
  4. * Copyright (C) 1992, 1993, 1994, 1995
  5. * Remy Card (card@masi.ibp.fr)
  6. * Laboratoire MASI - Institut Blaise Pascal
  7. * Universite Pierre et Marie Curie (Paris VI)
  8. *
  9. * from
  10. *
  11. * linux/fs/minix/namei.c
  12. *
  13. * Copyright (C) 1991, 1992 Linus Torvalds
  14. *
  15. * Big-endian to little-endian byte-swapping/bitmaps by
  16. * David S. Miller (davem@caip.rutgers.edu), 1995
  17. * Directory entry file type support and forward compatibility hooks
  18. * for B-tree directories by Theodore Ts'o (tytso@mit.edu), 1998
  19. * Hash Tree Directory indexing (c)
  20. * Daniel Phillips, 2001
  21. * Hash Tree Directory indexing porting
  22. * Christopher Li, 2002
  23. * Hash Tree Directory indexing cleanup
  24. * Theodore Ts'o, 2002
  25. */
  26. #include <linux/fs.h>
  27. #include <linux/pagemap.h>
  28. #include <linux/time.h>
  29. #include <linux/fcntl.h>
  30. #include <linux/stat.h>
  31. #include <linux/string.h>
  32. #include <linux/quotaops.h>
  33. #include <linux/buffer_head.h>
  34. #include <linux/bio.h>
  35. #include "ext4.h"
  36. #include "ext4_jbd2.h"
  37. #include "xattr.h"
  38. #include "acl.h"
  39. #include <trace/events/ext4.h>
  40. /*
  41. * define how far ahead to read directories while searching them.
  42. */
  43. #define NAMEI_RA_CHUNKS 2
  44. #define NAMEI_RA_BLOCKS 4
  45. #define NAMEI_RA_SIZE (NAMEI_RA_CHUNKS * NAMEI_RA_BLOCKS)
  46. static struct buffer_head *ext4_append(handle_t *handle,
  47. struct inode *inode,
  48. ext4_lblk_t *block)
  49. {
  50. struct buffer_head *bh;
  51. int err;
  52. if (unlikely(EXT4_SB(inode->i_sb)->s_max_dir_size_kb &&
  53. ((inode->i_size >> 10) >=
  54. EXT4_SB(inode->i_sb)->s_max_dir_size_kb)))
  55. return ERR_PTR(-ENOSPC);
  56. *block = inode->i_size >> inode->i_sb->s_blocksize_bits;
  57. bh = ext4_bread(handle, inode, *block, EXT4_GET_BLOCKS_CREATE);
  58. if (IS_ERR(bh))
  59. return bh;
  60. inode->i_size += inode->i_sb->s_blocksize;
  61. EXT4_I(inode)->i_disksize = inode->i_size;
  62. BUFFER_TRACE(bh, "get_write_access");
  63. err = ext4_journal_get_write_access(handle, bh);
  64. if (err) {
  65. brelse(bh);
  66. ext4_std_error(inode->i_sb, err);
  67. return ERR_PTR(err);
  68. }
  69. return bh;
  70. }
  71. static int ext4_dx_csum_verify(struct inode *inode,
  72. struct ext4_dir_entry *dirent);
  73. typedef enum {
  74. EITHER, INDEX, DIRENT
  75. } dirblock_type_t;
  76. #define ext4_read_dirblock(inode, block, type) \
  77. __ext4_read_dirblock((inode), (block), (type), __func__, __LINE__)
  78. static struct buffer_head *__ext4_read_dirblock(struct inode *inode,
  79. ext4_lblk_t block,
  80. dirblock_type_t type,
  81. const char *func,
  82. unsigned int line)
  83. {
  84. struct buffer_head *bh;
  85. struct ext4_dir_entry *dirent;
  86. int is_dx_block = 0;
  87. bh = ext4_bread(NULL, inode, block, 0);
  88. if (IS_ERR(bh)) {
  89. __ext4_warning(inode->i_sb, func, line,
  90. "inode #%lu: lblock %lu: comm %s: "
  91. "error %ld reading directory block",
  92. inode->i_ino, (unsigned long)block,
  93. current->comm, PTR_ERR(bh));
  94. return bh;
  95. }
  96. if (!bh) {
  97. ext4_error_inode(inode, func, line, block,
  98. "Directory hole found");
  99. return ERR_PTR(-EFSCORRUPTED);
  100. }
  101. dirent = (struct ext4_dir_entry *) bh->b_data;
  102. /* Determine whether or not we have an index block */
  103. if (is_dx(inode)) {
  104. if (block == 0)
  105. is_dx_block = 1;
  106. else if (ext4_rec_len_from_disk(dirent->rec_len,
  107. inode->i_sb->s_blocksize) ==
  108. inode->i_sb->s_blocksize)
  109. is_dx_block = 1;
  110. }
  111. if (!is_dx_block && type == INDEX) {
  112. ext4_error_inode(inode, func, line, block,
  113. "directory leaf block found instead of index block");
  114. return ERR_PTR(-EFSCORRUPTED);
  115. }
  116. if (!ext4_has_metadata_csum(inode->i_sb) ||
  117. buffer_verified(bh))
  118. return bh;
  119. /*
  120. * An empty leaf block can get mistaken for a index block; for
  121. * this reason, we can only check the index checksum when the
  122. * caller is sure it should be an index block.
  123. */
  124. if (is_dx_block && type == INDEX) {
  125. if (ext4_dx_csum_verify(inode, dirent))
  126. set_buffer_verified(bh);
  127. else {
  128. ext4_error_inode(inode, func, line, block,
  129. "Directory index failed checksum");
  130. brelse(bh);
  131. return ERR_PTR(-EFSBADCRC);
  132. }
  133. }
  134. if (!is_dx_block) {
  135. if (ext4_dirent_csum_verify(inode, dirent))
  136. set_buffer_verified(bh);
  137. else {
  138. ext4_error_inode(inode, func, line, block,
  139. "Directory block failed checksum");
  140. brelse(bh);
  141. return ERR_PTR(-EFSBADCRC);
  142. }
  143. }
  144. return bh;
  145. }
  146. #ifndef assert
  147. #define assert(test) J_ASSERT(test)
  148. #endif
  149. #ifdef DX_DEBUG
  150. #define dxtrace(command) command
  151. #else
  152. #define dxtrace(command)
  153. #endif
  154. struct fake_dirent
  155. {
  156. __le32 inode;
  157. __le16 rec_len;
  158. u8 name_len;
  159. u8 file_type;
  160. };
  161. struct dx_countlimit
  162. {
  163. __le16 limit;
  164. __le16 count;
  165. };
  166. struct dx_entry
  167. {
  168. __le32 hash;
  169. __le32 block;
  170. };
  171. /*
  172. * dx_root_info is laid out so that if it should somehow get overlaid by a
  173. * dirent the two low bits of the hash version will be zero. Therefore, the
  174. * hash version mod 4 should never be 0. Sincerely, the paranoia department.
  175. */
  176. struct dx_root
  177. {
  178. struct fake_dirent dot;
  179. char dot_name[4];
  180. struct fake_dirent dotdot;
  181. char dotdot_name[4];
  182. struct dx_root_info
  183. {
  184. __le32 reserved_zero;
  185. u8 hash_version;
  186. u8 info_length; /* 8 */
  187. u8 indirect_levels;
  188. u8 unused_flags;
  189. }
  190. info;
  191. struct dx_entry entries[0];
  192. };
  193. struct dx_node
  194. {
  195. struct fake_dirent fake;
  196. struct dx_entry entries[0];
  197. };
  198. struct dx_frame
  199. {
  200. struct buffer_head *bh;
  201. struct dx_entry *entries;
  202. struct dx_entry *at;
  203. };
  204. struct dx_map_entry
  205. {
  206. u32 hash;
  207. u16 offs;
  208. u16 size;
  209. };
  210. /*
  211. * This goes at the end of each htree block.
  212. */
  213. struct dx_tail {
  214. u32 dt_reserved;
  215. __le32 dt_checksum; /* crc32c(uuid+inum+dirblock) */
  216. };
  217. static inline ext4_lblk_t dx_get_block(struct dx_entry *entry);
  218. static void dx_set_block(struct dx_entry *entry, ext4_lblk_t value);
  219. static inline unsigned dx_get_hash(struct dx_entry *entry);
  220. static void dx_set_hash(struct dx_entry *entry, unsigned value);
  221. static unsigned dx_get_count(struct dx_entry *entries);
  222. static unsigned dx_get_limit(struct dx_entry *entries);
  223. static void dx_set_count(struct dx_entry *entries, unsigned value);
  224. static void dx_set_limit(struct dx_entry *entries, unsigned value);
  225. static unsigned dx_root_limit(struct inode *dir, unsigned infosize);
  226. static unsigned dx_node_limit(struct inode *dir);
  227. static struct dx_frame *dx_probe(struct ext4_filename *fname,
  228. struct inode *dir,
  229. struct dx_hash_info *hinfo,
  230. struct dx_frame *frame);
  231. static void dx_release(struct dx_frame *frames);
  232. static int dx_make_map(struct inode *dir, struct ext4_dir_entry_2 *de,
  233. unsigned blocksize, struct dx_hash_info *hinfo,
  234. struct dx_map_entry map[]);
  235. static void dx_sort_map(struct dx_map_entry *map, unsigned count);
  236. static struct ext4_dir_entry_2 *dx_move_dirents(char *from, char *to,
  237. struct dx_map_entry *offsets, int count, unsigned blocksize);
  238. static struct ext4_dir_entry_2* dx_pack_dirents(char *base, unsigned blocksize);
  239. static void dx_insert_block(struct dx_frame *frame,
  240. u32 hash, ext4_lblk_t block);
  241. static int ext4_htree_next_block(struct inode *dir, __u32 hash,
  242. struct dx_frame *frame,
  243. struct dx_frame *frames,
  244. __u32 *start_hash);
  245. static struct buffer_head * ext4_dx_find_entry(struct inode *dir,
  246. struct ext4_filename *fname,
  247. struct ext4_dir_entry_2 **res_dir);
  248. static int ext4_dx_add_entry(handle_t *handle, struct ext4_filename *fname,
  249. struct inode *dir, struct inode *inode);
  250. /* checksumming functions */
  251. void initialize_dirent_tail(struct ext4_dir_entry_tail *t,
  252. unsigned int blocksize)
  253. {
  254. memset(t, 0, sizeof(struct ext4_dir_entry_tail));
  255. t->det_rec_len = ext4_rec_len_to_disk(
  256. sizeof(struct ext4_dir_entry_tail), blocksize);
  257. t->det_reserved_ft = EXT4_FT_DIR_CSUM;
  258. }
  259. /* Walk through a dirent block to find a checksum "dirent" at the tail */
  260. static struct ext4_dir_entry_tail *get_dirent_tail(struct inode *inode,
  261. struct ext4_dir_entry *de)
  262. {
  263. struct ext4_dir_entry_tail *t;
  264. #ifdef PARANOID
  265. struct ext4_dir_entry *d, *top;
  266. d = de;
  267. top = (struct ext4_dir_entry *)(((void *)de) +
  268. (EXT4_BLOCK_SIZE(inode->i_sb) -
  269. sizeof(struct ext4_dir_entry_tail)));
  270. while (d < top && d->rec_len)
  271. d = (struct ext4_dir_entry *)(((void *)d) +
  272. le16_to_cpu(d->rec_len));
  273. if (d != top)
  274. return NULL;
  275. t = (struct ext4_dir_entry_tail *)d;
  276. #else
  277. t = EXT4_DIRENT_TAIL(de, EXT4_BLOCK_SIZE(inode->i_sb));
  278. #endif
  279. if (t->det_reserved_zero1 ||
  280. le16_to_cpu(t->det_rec_len) != sizeof(struct ext4_dir_entry_tail) ||
  281. t->det_reserved_zero2 ||
  282. t->det_reserved_ft != EXT4_FT_DIR_CSUM)
  283. return NULL;
  284. return t;
  285. }
  286. static __le32 ext4_dirent_csum(struct inode *inode,
  287. struct ext4_dir_entry *dirent, int size)
  288. {
  289. struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
  290. struct ext4_inode_info *ei = EXT4_I(inode);
  291. __u32 csum;
  292. csum = ext4_chksum(sbi, ei->i_csum_seed, (__u8 *)dirent, size);
  293. return cpu_to_le32(csum);
  294. }
  295. #define warn_no_space_for_csum(inode) \
  296. __warn_no_space_for_csum((inode), __func__, __LINE__)
  297. static void __warn_no_space_for_csum(struct inode *inode, const char *func,
  298. unsigned int line)
  299. {
  300. __ext4_warning_inode(inode, func, line,
  301. "No space for directory leaf checksum. Please run e2fsck -D.");
  302. }
  303. int ext4_dirent_csum_verify(struct inode *inode, struct ext4_dir_entry *dirent)
  304. {
  305. struct ext4_dir_entry_tail *t;
  306. if (!ext4_has_metadata_csum(inode->i_sb))
  307. return 1;
  308. t = get_dirent_tail(inode, dirent);
  309. if (!t) {
  310. warn_no_space_for_csum(inode);
  311. return 0;
  312. }
  313. if (t->det_checksum != ext4_dirent_csum(inode, dirent,
  314. (void *)t - (void *)dirent))
  315. return 0;
  316. return 1;
  317. }
  318. static void ext4_dirent_csum_set(struct inode *inode,
  319. struct ext4_dir_entry *dirent)
  320. {
  321. struct ext4_dir_entry_tail *t;
  322. if (!ext4_has_metadata_csum(inode->i_sb))
  323. return;
  324. t = get_dirent_tail(inode, dirent);
  325. if (!t) {
  326. warn_no_space_for_csum(inode);
  327. return;
  328. }
  329. t->det_checksum = ext4_dirent_csum(inode, dirent,
  330. (void *)t - (void *)dirent);
  331. }
  332. int ext4_handle_dirty_dirent_node(handle_t *handle,
  333. struct inode *inode,
  334. struct buffer_head *bh)
  335. {
  336. ext4_dirent_csum_set(inode, (struct ext4_dir_entry *)bh->b_data);
  337. return ext4_handle_dirty_metadata(handle, inode, bh);
  338. }
  339. static struct dx_countlimit *get_dx_countlimit(struct inode *inode,
  340. struct ext4_dir_entry *dirent,
  341. int *offset)
  342. {
  343. struct ext4_dir_entry *dp;
  344. struct dx_root_info *root;
  345. int count_offset;
  346. if (le16_to_cpu(dirent->rec_len) == EXT4_BLOCK_SIZE(inode->i_sb))
  347. count_offset = 8;
  348. else if (le16_to_cpu(dirent->rec_len) == 12) {
  349. dp = (struct ext4_dir_entry *)(((void *)dirent) + 12);
  350. if (le16_to_cpu(dp->rec_len) !=
  351. EXT4_BLOCK_SIZE(inode->i_sb) - 12)
  352. return NULL;
  353. root = (struct dx_root_info *)(((void *)dp + 12));
  354. if (root->reserved_zero ||
  355. root->info_length != sizeof(struct dx_root_info))
  356. return NULL;
  357. count_offset = 32;
  358. } else
  359. return NULL;
  360. if (offset)
  361. *offset = count_offset;
  362. return (struct dx_countlimit *)(((void *)dirent) + count_offset);
  363. }
  364. static __le32 ext4_dx_csum(struct inode *inode, struct ext4_dir_entry *dirent,
  365. int count_offset, int count, struct dx_tail *t)
  366. {
  367. struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
  368. struct ext4_inode_info *ei = EXT4_I(inode);
  369. __u32 csum;
  370. __le32 save_csum;
  371. int size;
  372. size = count_offset + (count * sizeof(struct dx_entry));
  373. save_csum = t->dt_checksum;
  374. t->dt_checksum = 0;
  375. csum = ext4_chksum(sbi, ei->i_csum_seed, (__u8 *)dirent, size);
  376. csum = ext4_chksum(sbi, csum, (__u8 *)t, sizeof(struct dx_tail));
  377. t->dt_checksum = save_csum;
  378. return cpu_to_le32(csum);
  379. }
  380. static int ext4_dx_csum_verify(struct inode *inode,
  381. struct ext4_dir_entry *dirent)
  382. {
  383. struct dx_countlimit *c;
  384. struct dx_tail *t;
  385. int count_offset, limit, count;
  386. if (!ext4_has_metadata_csum(inode->i_sb))
  387. return 1;
  388. c = get_dx_countlimit(inode, dirent, &count_offset);
  389. if (!c) {
  390. EXT4_ERROR_INODE(inode, "dir seems corrupt? Run e2fsck -D.");
  391. return 1;
  392. }
  393. limit = le16_to_cpu(c->limit);
  394. count = le16_to_cpu(c->count);
  395. if (count_offset + (limit * sizeof(struct dx_entry)) >
  396. EXT4_BLOCK_SIZE(inode->i_sb) - sizeof(struct dx_tail)) {
  397. warn_no_space_for_csum(inode);
  398. return 1;
  399. }
  400. t = (struct dx_tail *)(((struct dx_entry *)c) + limit);
  401. if (t->dt_checksum != ext4_dx_csum(inode, dirent, count_offset,
  402. count, t))
  403. return 0;
  404. return 1;
  405. }
  406. static void ext4_dx_csum_set(struct inode *inode, struct ext4_dir_entry *dirent)
  407. {
  408. struct dx_countlimit *c;
  409. struct dx_tail *t;
  410. int count_offset, limit, count;
  411. if (!ext4_has_metadata_csum(inode->i_sb))
  412. return;
  413. c = get_dx_countlimit(inode, dirent, &count_offset);
  414. if (!c) {
  415. EXT4_ERROR_INODE(inode, "dir seems corrupt? Run e2fsck -D.");
  416. return;
  417. }
  418. limit = le16_to_cpu(c->limit);
  419. count = le16_to_cpu(c->count);
  420. if (count_offset + (limit * sizeof(struct dx_entry)) >
  421. EXT4_BLOCK_SIZE(inode->i_sb) - sizeof(struct dx_tail)) {
  422. warn_no_space_for_csum(inode);
  423. return;
  424. }
  425. t = (struct dx_tail *)(((struct dx_entry *)c) + limit);
  426. t->dt_checksum = ext4_dx_csum(inode, dirent, count_offset, count, t);
  427. }
  428. static inline int ext4_handle_dirty_dx_node(handle_t *handle,
  429. struct inode *inode,
  430. struct buffer_head *bh)
  431. {
  432. ext4_dx_csum_set(inode, (struct ext4_dir_entry *)bh->b_data);
  433. return ext4_handle_dirty_metadata(handle, inode, bh);
  434. }
  435. /*
  436. * p is at least 6 bytes before the end of page
  437. */
  438. static inline struct ext4_dir_entry_2 *
  439. ext4_next_entry(struct ext4_dir_entry_2 *p, unsigned long blocksize)
  440. {
  441. return (struct ext4_dir_entry_2 *)((char *)p +
  442. ext4_rec_len_from_disk(p->rec_len, blocksize));
  443. }
  444. /*
  445. * Future: use high four bits of block for coalesce-on-delete flags
  446. * Mask them off for now.
  447. */
  448. static inline ext4_lblk_t dx_get_block(struct dx_entry *entry)
  449. {
  450. return le32_to_cpu(entry->block) & 0x00ffffff;
  451. }
  452. static inline void dx_set_block(struct dx_entry *entry, ext4_lblk_t value)
  453. {
  454. entry->block = cpu_to_le32(value);
  455. }
  456. static inline unsigned dx_get_hash(struct dx_entry *entry)
  457. {
  458. return le32_to_cpu(entry->hash);
  459. }
  460. static inline void dx_set_hash(struct dx_entry *entry, unsigned value)
  461. {
  462. entry->hash = cpu_to_le32(value);
  463. }
  464. static inline unsigned dx_get_count(struct dx_entry *entries)
  465. {
  466. return le16_to_cpu(((struct dx_countlimit *) entries)->count);
  467. }
  468. static inline unsigned dx_get_limit(struct dx_entry *entries)
  469. {
  470. return le16_to_cpu(((struct dx_countlimit *) entries)->limit);
  471. }
  472. static inline void dx_set_count(struct dx_entry *entries, unsigned value)
  473. {
  474. ((struct dx_countlimit *) entries)->count = cpu_to_le16(value);
  475. }
  476. static inline void dx_set_limit(struct dx_entry *entries, unsigned value)
  477. {
  478. ((struct dx_countlimit *) entries)->limit = cpu_to_le16(value);
  479. }
  480. static inline unsigned dx_root_limit(struct inode *dir, unsigned infosize)
  481. {
  482. unsigned entry_space = dir->i_sb->s_blocksize - EXT4_DIR_REC_LEN(1) -
  483. EXT4_DIR_REC_LEN(2) - infosize;
  484. if (ext4_has_metadata_csum(dir->i_sb))
  485. entry_space -= sizeof(struct dx_tail);
  486. return entry_space / sizeof(struct dx_entry);
  487. }
  488. static inline unsigned dx_node_limit(struct inode *dir)
  489. {
  490. unsigned entry_space = dir->i_sb->s_blocksize - EXT4_DIR_REC_LEN(0);
  491. if (ext4_has_metadata_csum(dir->i_sb))
  492. entry_space -= sizeof(struct dx_tail);
  493. return entry_space / sizeof(struct dx_entry);
  494. }
  495. /*
  496. * Debug
  497. */
  498. #ifdef DX_DEBUG
  499. static void dx_show_index(char * label, struct dx_entry *entries)
  500. {
  501. int i, n = dx_get_count (entries);
  502. printk(KERN_DEBUG "%s index ", label);
  503. for (i = 0; i < n; i++) {
  504. printk("%x->%lu ", i ? dx_get_hash(entries + i) :
  505. 0, (unsigned long)dx_get_block(entries + i));
  506. }
  507. printk("\n");
  508. }
  509. struct stats
  510. {
  511. unsigned names;
  512. unsigned space;
  513. unsigned bcount;
  514. };
  515. static struct stats dx_show_leaf(struct inode *dir,
  516. struct dx_hash_info *hinfo,
  517. struct ext4_dir_entry_2 *de,
  518. int size, int show_names)
  519. {
  520. unsigned names = 0, space = 0;
  521. char *base = (char *) de;
  522. struct dx_hash_info h = *hinfo;
  523. printk("names: ");
  524. while ((char *) de < base + size)
  525. {
  526. if (de->inode)
  527. {
  528. if (show_names)
  529. {
  530. #ifdef CONFIG_EXT4_FS_ENCRYPTION
  531. int len;
  532. char *name;
  533. struct ext4_str fname_crypto_str
  534. = {.name = NULL, .len = 0};
  535. int res = 0;
  536. name = de->name;
  537. len = de->name_len;
  538. if (ext4_encrypted_inode(inode))
  539. res = ext4_get_encryption_info(dir);
  540. if (res) {
  541. printk(KERN_WARNING "Error setting up"
  542. " fname crypto: %d\n", res);
  543. }
  544. if (ctx == NULL) {
  545. /* Directory is not encrypted */
  546. ext4fs_dirhash(de->name,
  547. de->name_len, &h);
  548. printk("%*.s:(U)%x.%u ", len,
  549. name, h.hash,
  550. (unsigned) ((char *) de
  551. - base));
  552. } else {
  553. /* Directory is encrypted */
  554. res = ext4_fname_crypto_alloc_buffer(
  555. ctx, de->name_len,
  556. &fname_crypto_str);
  557. if (res < 0) {
  558. printk(KERN_WARNING "Error "
  559. "allocating crypto "
  560. "buffer--skipping "
  561. "crypto\n");
  562. ctx = NULL;
  563. }
  564. res = ext4_fname_disk_to_usr(ctx, NULL, de,
  565. &fname_crypto_str);
  566. if (res < 0) {
  567. printk(KERN_WARNING "Error "
  568. "converting filename "
  569. "from disk to usr"
  570. "\n");
  571. name = "??";
  572. len = 2;
  573. } else {
  574. name = fname_crypto_str.name;
  575. len = fname_crypto_str.len;
  576. }
  577. ext4fs_dirhash(de->name, de->name_len,
  578. &h);
  579. printk("%*.s:(E)%x.%u ", len, name,
  580. h.hash, (unsigned) ((char *) de
  581. - base));
  582. ext4_fname_crypto_free_buffer(
  583. &fname_crypto_str);
  584. }
  585. #else
  586. int len = de->name_len;
  587. char *name = de->name;
  588. ext4fs_dirhash(de->name, de->name_len, &h);
  589. printk("%*.s:%x.%u ", len, name, h.hash,
  590. (unsigned) ((char *) de - base));
  591. #endif
  592. }
  593. space += EXT4_DIR_REC_LEN(de->name_len);
  594. names++;
  595. }
  596. de = ext4_next_entry(de, size);
  597. }
  598. printk("(%i)\n", names);
  599. return (struct stats) { names, space, 1 };
  600. }
  601. struct stats dx_show_entries(struct dx_hash_info *hinfo, struct inode *dir,
  602. struct dx_entry *entries, int levels)
  603. {
  604. unsigned blocksize = dir->i_sb->s_blocksize;
  605. unsigned count = dx_get_count(entries), names = 0, space = 0, i;
  606. unsigned bcount = 0;
  607. struct buffer_head *bh;
  608. printk("%i indexed blocks...\n", count);
  609. for (i = 0; i < count; i++, entries++)
  610. {
  611. ext4_lblk_t block = dx_get_block(entries);
  612. ext4_lblk_t hash = i ? dx_get_hash(entries): 0;
  613. u32 range = i < count - 1? (dx_get_hash(entries + 1) - hash): ~hash;
  614. struct stats stats;
  615. printk("%s%3u:%03u hash %8x/%8x ",levels?"":" ", i, block, hash, range);
  616. bh = ext4_bread(NULL,dir, block, 0);
  617. if (!bh || IS_ERR(bh))
  618. continue;
  619. stats = levels?
  620. dx_show_entries(hinfo, dir, ((struct dx_node *) bh->b_data)->entries, levels - 1):
  621. dx_show_leaf(dir, hinfo, (struct ext4_dir_entry_2 *)
  622. bh->b_data, blocksize, 0);
  623. names += stats.names;
  624. space += stats.space;
  625. bcount += stats.bcount;
  626. brelse(bh);
  627. }
  628. if (bcount)
  629. printk(KERN_DEBUG "%snames %u, fullness %u (%u%%)\n",
  630. levels ? "" : " ", names, space/bcount,
  631. (space/bcount)*100/blocksize);
  632. return (struct stats) { names, space, bcount};
  633. }
  634. #endif /* DX_DEBUG */
  635. /*
  636. * Probe for a directory leaf block to search.
  637. *
  638. * dx_probe can return ERR_BAD_DX_DIR, which means there was a format
  639. * error in the directory index, and the caller should fall back to
  640. * searching the directory normally. The callers of dx_probe **MUST**
  641. * check for this error code, and make sure it never gets reflected
  642. * back to userspace.
  643. */
  644. static struct dx_frame *
  645. dx_probe(struct ext4_filename *fname, struct inode *dir,
  646. struct dx_hash_info *hinfo, struct dx_frame *frame_in)
  647. {
  648. unsigned count, indirect;
  649. struct dx_entry *at, *entries, *p, *q, *m;
  650. struct dx_root *root;
  651. struct dx_frame *frame = frame_in;
  652. struct dx_frame *ret_err = ERR_PTR(ERR_BAD_DX_DIR);
  653. u32 hash;
  654. frame->bh = ext4_read_dirblock(dir, 0, INDEX);
  655. if (IS_ERR(frame->bh))
  656. return (struct dx_frame *) frame->bh;
  657. root = (struct dx_root *) frame->bh->b_data;
  658. if (root->info.hash_version != DX_HASH_TEA &&
  659. root->info.hash_version != DX_HASH_HALF_MD4 &&
  660. root->info.hash_version != DX_HASH_LEGACY) {
  661. ext4_warning_inode(dir, "Unrecognised inode hash code %u",
  662. root->info.hash_version);
  663. goto fail;
  664. }
  665. if (fname)
  666. hinfo = &fname->hinfo;
  667. hinfo->hash_version = root->info.hash_version;
  668. if (hinfo->hash_version <= DX_HASH_TEA)
  669. hinfo->hash_version += EXT4_SB(dir->i_sb)->s_hash_unsigned;
  670. hinfo->seed = EXT4_SB(dir->i_sb)->s_hash_seed;
  671. if (fname && fname_name(fname))
  672. ext4fs_dirhash(fname_name(fname), fname_len(fname), hinfo);
  673. hash = hinfo->hash;
  674. if (root->info.unused_flags & 1) {
  675. ext4_warning_inode(dir, "Unimplemented hash flags: %#06x",
  676. root->info.unused_flags);
  677. goto fail;
  678. }
  679. indirect = root->info.indirect_levels;
  680. if (indirect > 1) {
  681. ext4_warning_inode(dir, "Unimplemented hash depth: %#06x",
  682. root->info.indirect_levels);
  683. goto fail;
  684. }
  685. entries = (struct dx_entry *)(((char *)&root->info) +
  686. root->info.info_length);
  687. if (dx_get_limit(entries) != dx_root_limit(dir,
  688. root->info.info_length)) {
  689. ext4_warning_inode(dir, "dx entry: limit %u != root limit %u",
  690. dx_get_limit(entries),
  691. dx_root_limit(dir, root->info.info_length));
  692. goto fail;
  693. }
  694. dxtrace(printk("Look up %x", hash));
  695. while (1) {
  696. count = dx_get_count(entries);
  697. if (!count || count > dx_get_limit(entries)) {
  698. ext4_warning_inode(dir,
  699. "dx entry: count %u beyond limit %u",
  700. count, dx_get_limit(entries));
  701. goto fail;
  702. }
  703. p = entries + 1;
  704. q = entries + count - 1;
  705. while (p <= q) {
  706. m = p + (q - p) / 2;
  707. dxtrace(printk("."));
  708. if (dx_get_hash(m) > hash)
  709. q = m - 1;
  710. else
  711. p = m + 1;
  712. }
  713. if (0) { // linear search cross check
  714. unsigned n = count - 1;
  715. at = entries;
  716. while (n--)
  717. {
  718. dxtrace(printk(","));
  719. if (dx_get_hash(++at) > hash)
  720. {
  721. at--;
  722. break;
  723. }
  724. }
  725. assert (at == p - 1);
  726. }
  727. at = p - 1;
  728. dxtrace(printk(" %x->%u\n", at == entries ? 0 : dx_get_hash(at),
  729. dx_get_block(at)));
  730. frame->entries = entries;
  731. frame->at = at;
  732. if (!indirect--)
  733. return frame;
  734. frame++;
  735. frame->bh = ext4_read_dirblock(dir, dx_get_block(at), INDEX);
  736. if (IS_ERR(frame->bh)) {
  737. ret_err = (struct dx_frame *) frame->bh;
  738. frame->bh = NULL;
  739. goto fail;
  740. }
  741. entries = ((struct dx_node *) frame->bh->b_data)->entries;
  742. if (dx_get_limit(entries) != dx_node_limit(dir)) {
  743. ext4_warning_inode(dir,
  744. "dx entry: limit %u != node limit %u",
  745. dx_get_limit(entries), dx_node_limit(dir));
  746. goto fail;
  747. }
  748. }
  749. fail:
  750. while (frame >= frame_in) {
  751. brelse(frame->bh);
  752. frame--;
  753. }
  754. if (ret_err == ERR_PTR(ERR_BAD_DX_DIR))
  755. ext4_warning_inode(dir,
  756. "Corrupt directory, running e2fsck is recommended");
  757. return ret_err;
  758. }
  759. static void dx_release(struct dx_frame *frames)
  760. {
  761. if (frames[0].bh == NULL)
  762. return;
  763. if (((struct dx_root *)frames[0].bh->b_data)->info.indirect_levels)
  764. brelse(frames[1].bh);
  765. brelse(frames[0].bh);
  766. }
  767. /*
  768. * This function increments the frame pointer to search the next leaf
  769. * block, and reads in the necessary intervening nodes if the search
  770. * should be necessary. Whether or not the search is necessary is
  771. * controlled by the hash parameter. If the hash value is even, then
  772. * the search is only continued if the next block starts with that
  773. * hash value. This is used if we are searching for a specific file.
  774. *
  775. * If the hash value is HASH_NB_ALWAYS, then always go to the next block.
  776. *
  777. * This function returns 1 if the caller should continue to search,
  778. * or 0 if it should not. If there is an error reading one of the
  779. * index blocks, it will a negative error code.
  780. *
  781. * If start_hash is non-null, it will be filled in with the starting
  782. * hash of the next page.
  783. */
  784. static int ext4_htree_next_block(struct inode *dir, __u32 hash,
  785. struct dx_frame *frame,
  786. struct dx_frame *frames,
  787. __u32 *start_hash)
  788. {
  789. struct dx_frame *p;
  790. struct buffer_head *bh;
  791. int num_frames = 0;
  792. __u32 bhash;
  793. p = frame;
  794. /*
  795. * Find the next leaf page by incrementing the frame pointer.
  796. * If we run out of entries in the interior node, loop around and
  797. * increment pointer in the parent node. When we break out of
  798. * this loop, num_frames indicates the number of interior
  799. * nodes need to be read.
  800. */
  801. while (1) {
  802. if (++(p->at) < p->entries + dx_get_count(p->entries))
  803. break;
  804. if (p == frames)
  805. return 0;
  806. num_frames++;
  807. p--;
  808. }
  809. /*
  810. * If the hash is 1, then continue only if the next page has a
  811. * continuation hash of any value. This is used for readdir
  812. * handling. Otherwise, check to see if the hash matches the
  813. * desired contiuation hash. If it doesn't, return since
  814. * there's no point to read in the successive index pages.
  815. */
  816. bhash = dx_get_hash(p->at);
  817. if (start_hash)
  818. *start_hash = bhash;
  819. if ((hash & 1) == 0) {
  820. if ((bhash & ~1) != hash)
  821. return 0;
  822. }
  823. /*
  824. * If the hash is HASH_NB_ALWAYS, we always go to the next
  825. * block so no check is necessary
  826. */
  827. while (num_frames--) {
  828. bh = ext4_read_dirblock(dir, dx_get_block(p->at), INDEX);
  829. if (IS_ERR(bh))
  830. return PTR_ERR(bh);
  831. p++;
  832. brelse(p->bh);
  833. p->bh = bh;
  834. p->at = p->entries = ((struct dx_node *) bh->b_data)->entries;
  835. }
  836. return 1;
  837. }
  838. /*
  839. * This function fills a red-black tree with information from a
  840. * directory block. It returns the number directory entries loaded
  841. * into the tree. If there is an error it is returned in err.
  842. */
  843. static int htree_dirblock_to_tree(struct file *dir_file,
  844. struct inode *dir, ext4_lblk_t block,
  845. struct dx_hash_info *hinfo,
  846. __u32 start_hash, __u32 start_minor_hash)
  847. {
  848. struct buffer_head *bh;
  849. struct ext4_dir_entry_2 *de, *top;
  850. int err = 0, count = 0;
  851. struct ext4_str fname_crypto_str = {.name = NULL, .len = 0}, tmp_str;
  852. dxtrace(printk(KERN_INFO "In htree dirblock_to_tree: block %lu\n",
  853. (unsigned long)block));
  854. bh = ext4_read_dirblock(dir, block, DIRENT);
  855. if (IS_ERR(bh))
  856. return PTR_ERR(bh);
  857. de = (struct ext4_dir_entry_2 *) bh->b_data;
  858. top = (struct ext4_dir_entry_2 *) ((char *) de +
  859. dir->i_sb->s_blocksize -
  860. EXT4_DIR_REC_LEN(0));
  861. #ifdef CONFIG_EXT4_FS_ENCRYPTION
  862. /* Check if the directory is encrypted */
  863. if (ext4_encrypted_inode(dir)) {
  864. err = ext4_get_encryption_info(dir);
  865. if (err < 0) {
  866. brelse(bh);
  867. return err;
  868. }
  869. err = ext4_fname_crypto_alloc_buffer(dir, EXT4_NAME_LEN,
  870. &fname_crypto_str);
  871. if (err < 0) {
  872. brelse(bh);
  873. return err;
  874. }
  875. }
  876. #endif
  877. for (; de < top; de = ext4_next_entry(de, dir->i_sb->s_blocksize)) {
  878. if (ext4_check_dir_entry(dir, NULL, de, bh,
  879. bh->b_data, bh->b_size,
  880. (block<<EXT4_BLOCK_SIZE_BITS(dir->i_sb))
  881. + ((char *)de - bh->b_data))) {
  882. /* silently ignore the rest of the block */
  883. break;
  884. }
  885. ext4fs_dirhash(de->name, de->name_len, hinfo);
  886. if ((hinfo->hash < start_hash) ||
  887. ((hinfo->hash == start_hash) &&
  888. (hinfo->minor_hash < start_minor_hash)))
  889. continue;
  890. if (de->inode == 0)
  891. continue;
  892. if (!ext4_encrypted_inode(dir)) {
  893. tmp_str.name = de->name;
  894. tmp_str.len = de->name_len;
  895. err = ext4_htree_store_dirent(dir_file,
  896. hinfo->hash, hinfo->minor_hash, de,
  897. &tmp_str);
  898. } else {
  899. int save_len = fname_crypto_str.len;
  900. /* Directory is encrypted */
  901. err = ext4_fname_disk_to_usr(dir, hinfo, de,
  902. &fname_crypto_str);
  903. if (err < 0) {
  904. count = err;
  905. goto errout;
  906. }
  907. err = ext4_htree_store_dirent(dir_file,
  908. hinfo->hash, hinfo->minor_hash, de,
  909. &fname_crypto_str);
  910. fname_crypto_str.len = save_len;
  911. }
  912. if (err != 0) {
  913. count = err;
  914. goto errout;
  915. }
  916. count++;
  917. }
  918. errout:
  919. brelse(bh);
  920. #ifdef CONFIG_EXT4_FS_ENCRYPTION
  921. ext4_fname_crypto_free_buffer(&fname_crypto_str);
  922. #endif
  923. return count;
  924. }
  925. /*
  926. * This function fills a red-black tree with information from a
  927. * directory. We start scanning the directory in hash order, starting
  928. * at start_hash and start_minor_hash.
  929. *
  930. * This function returns the number of entries inserted into the tree,
  931. * or a negative error code.
  932. */
  933. int ext4_htree_fill_tree(struct file *dir_file, __u32 start_hash,
  934. __u32 start_minor_hash, __u32 *next_hash)
  935. {
  936. struct dx_hash_info hinfo;
  937. struct ext4_dir_entry_2 *de;
  938. struct dx_frame frames[2], *frame;
  939. struct inode *dir;
  940. ext4_lblk_t block;
  941. int count = 0;
  942. int ret, err;
  943. __u32 hashval;
  944. struct ext4_str tmp_str;
  945. dxtrace(printk(KERN_DEBUG "In htree_fill_tree, start hash: %x:%x\n",
  946. start_hash, start_minor_hash));
  947. dir = file_inode(dir_file);
  948. if (!(ext4_test_inode_flag(dir, EXT4_INODE_INDEX))) {
  949. hinfo.hash_version = EXT4_SB(dir->i_sb)->s_def_hash_version;
  950. if (hinfo.hash_version <= DX_HASH_TEA)
  951. hinfo.hash_version +=
  952. EXT4_SB(dir->i_sb)->s_hash_unsigned;
  953. hinfo.seed = EXT4_SB(dir->i_sb)->s_hash_seed;
  954. if (ext4_has_inline_data(dir)) {
  955. int has_inline_data = 1;
  956. count = htree_inlinedir_to_tree(dir_file, dir, 0,
  957. &hinfo, start_hash,
  958. start_minor_hash,
  959. &has_inline_data);
  960. if (has_inline_data) {
  961. *next_hash = ~0;
  962. return count;
  963. }
  964. }
  965. count = htree_dirblock_to_tree(dir_file, dir, 0, &hinfo,
  966. start_hash, start_minor_hash);
  967. *next_hash = ~0;
  968. return count;
  969. }
  970. hinfo.hash = start_hash;
  971. hinfo.minor_hash = 0;
  972. frame = dx_probe(NULL, dir, &hinfo, frames);
  973. if (IS_ERR(frame))
  974. return PTR_ERR(frame);
  975. /* Add '.' and '..' from the htree header */
  976. if (!start_hash && !start_minor_hash) {
  977. de = (struct ext4_dir_entry_2 *) frames[0].bh->b_data;
  978. tmp_str.name = de->name;
  979. tmp_str.len = de->name_len;
  980. err = ext4_htree_store_dirent(dir_file, 0, 0,
  981. de, &tmp_str);
  982. if (err != 0)
  983. goto errout;
  984. count++;
  985. }
  986. if (start_hash < 2 || (start_hash ==2 && start_minor_hash==0)) {
  987. de = (struct ext4_dir_entry_2 *) frames[0].bh->b_data;
  988. de = ext4_next_entry(de, dir->i_sb->s_blocksize);
  989. tmp_str.name = de->name;
  990. tmp_str.len = de->name_len;
  991. err = ext4_htree_store_dirent(dir_file, 2, 0,
  992. de, &tmp_str);
  993. if (err != 0)
  994. goto errout;
  995. count++;
  996. }
  997. while (1) {
  998. if (fatal_signal_pending(current)) {
  999. err = -ERESTARTSYS;
  1000. goto errout;
  1001. }
  1002. cond_resched();
  1003. block = dx_get_block(frame->at);
  1004. ret = htree_dirblock_to_tree(dir_file, dir, block, &hinfo,
  1005. start_hash, start_minor_hash);
  1006. if (ret < 0) {
  1007. err = ret;
  1008. goto errout;
  1009. }
  1010. count += ret;
  1011. hashval = ~0;
  1012. ret = ext4_htree_next_block(dir, HASH_NB_ALWAYS,
  1013. frame, frames, &hashval);
  1014. *next_hash = hashval;
  1015. if (ret < 0) {
  1016. err = ret;
  1017. goto errout;
  1018. }
  1019. /*
  1020. * Stop if: (a) there are no more entries, or
  1021. * (b) we have inserted at least one entry and the
  1022. * next hash value is not a continuation
  1023. */
  1024. if ((ret == 0) ||
  1025. (count && ((hashval & 1) == 0)))
  1026. break;
  1027. }
  1028. dx_release(frames);
  1029. dxtrace(printk(KERN_DEBUG "Fill tree: returned %d entries, "
  1030. "next hash: %x\n", count, *next_hash));
  1031. return count;
  1032. errout:
  1033. dx_release(frames);
  1034. return (err);
  1035. }
  1036. static inline int search_dirblock(struct buffer_head *bh,
  1037. struct inode *dir,
  1038. struct ext4_filename *fname,
  1039. const struct qstr *d_name,
  1040. unsigned int offset,
  1041. struct ext4_dir_entry_2 **res_dir)
  1042. {
  1043. return ext4_search_dir(bh, bh->b_data, dir->i_sb->s_blocksize, dir,
  1044. fname, d_name, offset, res_dir);
  1045. }
  1046. /*
  1047. * Directory block splitting, compacting
  1048. */
  1049. /*
  1050. * Create map of hash values, offsets, and sizes, stored at end of block.
  1051. * Returns number of entries mapped.
  1052. */
  1053. static int dx_make_map(struct inode *dir, struct ext4_dir_entry_2 *de,
  1054. unsigned blocksize, struct dx_hash_info *hinfo,
  1055. struct dx_map_entry *map_tail)
  1056. {
  1057. int count = 0;
  1058. char *base = (char *) de;
  1059. struct dx_hash_info h = *hinfo;
  1060. while ((char *) de < base + blocksize) {
  1061. if (de->name_len && de->inode) {
  1062. ext4fs_dirhash(de->name, de->name_len, &h);
  1063. map_tail--;
  1064. map_tail->hash = h.hash;
  1065. map_tail->offs = ((char *) de - base)>>2;
  1066. map_tail->size = le16_to_cpu(de->rec_len);
  1067. count++;
  1068. cond_resched();
  1069. }
  1070. /* XXX: do we need to check rec_len == 0 case? -Chris */
  1071. de = ext4_next_entry(de, blocksize);
  1072. }
  1073. return count;
  1074. }
  1075. /* Sort map by hash value */
  1076. static void dx_sort_map (struct dx_map_entry *map, unsigned count)
  1077. {
  1078. struct dx_map_entry *p, *q, *top = map + count - 1;
  1079. int more;
  1080. /* Combsort until bubble sort doesn't suck */
  1081. while (count > 2) {
  1082. count = count*10/13;
  1083. if (count - 9 < 2) /* 9, 10 -> 11 */
  1084. count = 11;
  1085. for (p = top, q = p - count; q >= map; p--, q--)
  1086. if (p->hash < q->hash)
  1087. swap(*p, *q);
  1088. }
  1089. /* Garden variety bubble sort */
  1090. do {
  1091. more = 0;
  1092. q = top;
  1093. while (q-- > map) {
  1094. if (q[1].hash >= q[0].hash)
  1095. continue;
  1096. swap(*(q+1), *q);
  1097. more = 1;
  1098. }
  1099. } while(more);
  1100. }
  1101. static void dx_insert_block(struct dx_frame *frame, u32 hash, ext4_lblk_t block)
  1102. {
  1103. struct dx_entry *entries = frame->entries;
  1104. struct dx_entry *old = frame->at, *new = old + 1;
  1105. int count = dx_get_count(entries);
  1106. assert(count < dx_get_limit(entries));
  1107. assert(old < entries + count);
  1108. memmove(new + 1, new, (char *)(entries + count) - (char *)(new));
  1109. dx_set_hash(new, hash);
  1110. dx_set_block(new, block);
  1111. dx_set_count(entries, count + 1);
  1112. }
  1113. /*
  1114. * NOTE! unlike strncmp, ext4_match returns 1 for success, 0 for failure.
  1115. *
  1116. * `len <= EXT4_NAME_LEN' is guaranteed by caller.
  1117. * `de != NULL' is guaranteed by caller.
  1118. */
  1119. static inline int ext4_match(struct ext4_filename *fname,
  1120. struct ext4_dir_entry_2 *de)
  1121. {
  1122. const void *name = fname_name(fname);
  1123. u32 len = fname_len(fname);
  1124. if (!de->inode)
  1125. return 0;
  1126. #ifdef CONFIG_EXT4_FS_ENCRYPTION
  1127. if (unlikely(!name)) {
  1128. if (fname->usr_fname->name[0] == '_') {
  1129. int ret;
  1130. if (de->name_len < 16)
  1131. return 0;
  1132. ret = memcmp(de->name + de->name_len - 16,
  1133. fname->crypto_buf.name + 8, 16);
  1134. return (ret == 0) ? 1 : 0;
  1135. }
  1136. name = fname->crypto_buf.name;
  1137. len = fname->crypto_buf.len;
  1138. }
  1139. #endif
  1140. if (de->name_len != len)
  1141. return 0;
  1142. return (memcmp(de->name, name, len) == 0) ? 1 : 0;
  1143. }
  1144. /*
  1145. * Returns 0 if not found, -1 on failure, and 1 on success
  1146. */
  1147. int ext4_search_dir(struct buffer_head *bh, char *search_buf, int buf_size,
  1148. struct inode *dir, struct ext4_filename *fname,
  1149. const struct qstr *d_name,
  1150. unsigned int offset, struct ext4_dir_entry_2 **res_dir)
  1151. {
  1152. struct ext4_dir_entry_2 * de;
  1153. char * dlimit;
  1154. int de_len;
  1155. int res;
  1156. de = (struct ext4_dir_entry_2 *)search_buf;
  1157. dlimit = search_buf + buf_size;
  1158. while ((char *) de < dlimit) {
  1159. /* this code is executed quadratically often */
  1160. /* do minimal checking `by hand' */
  1161. if ((char *) de + de->name_len <= dlimit) {
  1162. res = ext4_match(fname, de);
  1163. if (res < 0) {
  1164. res = -1;
  1165. goto return_result;
  1166. }
  1167. if (res > 0) {
  1168. /* found a match - just to be sure, do
  1169. * a full check */
  1170. if (ext4_check_dir_entry(dir, NULL, de, bh,
  1171. bh->b_data,
  1172. bh->b_size, offset)) {
  1173. res = -1;
  1174. goto return_result;
  1175. }
  1176. *res_dir = de;
  1177. res = 1;
  1178. goto return_result;
  1179. }
  1180. }
  1181. /* prevent looping on a bad block */
  1182. de_len = ext4_rec_len_from_disk(de->rec_len,
  1183. dir->i_sb->s_blocksize);
  1184. if (de_len <= 0) {
  1185. res = -1;
  1186. goto return_result;
  1187. }
  1188. offset += de_len;
  1189. de = (struct ext4_dir_entry_2 *) ((char *) de + de_len);
  1190. }
  1191. res = 0;
  1192. return_result:
  1193. return res;
  1194. }
  1195. static int is_dx_internal_node(struct inode *dir, ext4_lblk_t block,
  1196. struct ext4_dir_entry *de)
  1197. {
  1198. struct super_block *sb = dir->i_sb;
  1199. if (!is_dx(dir))
  1200. return 0;
  1201. if (block == 0)
  1202. return 1;
  1203. if (de->inode == 0 &&
  1204. ext4_rec_len_from_disk(de->rec_len, sb->s_blocksize) ==
  1205. sb->s_blocksize)
  1206. return 1;
  1207. return 0;
  1208. }
  1209. /*
  1210. * ext4_find_entry()
  1211. *
  1212. * finds an entry in the specified directory with the wanted name. It
  1213. * returns the cache buffer in which the entry was found, and the entry
  1214. * itself (as a parameter - res_dir). It does NOT read the inode of the
  1215. * entry - you'll have to do that yourself if you want to.
  1216. *
  1217. * The returned buffer_head has ->b_count elevated. The caller is expected
  1218. * to brelse() it when appropriate.
  1219. */
  1220. static struct buffer_head * ext4_find_entry (struct inode *dir,
  1221. const struct qstr *d_name,
  1222. struct ext4_dir_entry_2 **res_dir,
  1223. int *inlined)
  1224. {
  1225. struct super_block *sb;
  1226. struct buffer_head *bh_use[NAMEI_RA_SIZE];
  1227. struct buffer_head *bh, *ret = NULL;
  1228. ext4_lblk_t start, block, b;
  1229. const u8 *name = d_name->name;
  1230. int ra_max = 0; /* Number of bh's in the readahead
  1231. buffer, bh_use[] */
  1232. int ra_ptr = 0; /* Current index into readahead
  1233. buffer */
  1234. int num = 0;
  1235. ext4_lblk_t nblocks;
  1236. int i, namelen, retval;
  1237. struct ext4_filename fname;
  1238. *res_dir = NULL;
  1239. sb = dir->i_sb;
  1240. namelen = d_name->len;
  1241. if (namelen > EXT4_NAME_LEN)
  1242. return NULL;
  1243. retval = ext4_fname_setup_filename(dir, d_name, 1, &fname);
  1244. if (retval)
  1245. return ERR_PTR(retval);
  1246. if (ext4_has_inline_data(dir)) {
  1247. int has_inline_data = 1;
  1248. ret = ext4_find_inline_entry(dir, &fname, d_name, res_dir,
  1249. &has_inline_data);
  1250. if (has_inline_data) {
  1251. if (inlined)
  1252. *inlined = 1;
  1253. goto cleanup_and_exit;
  1254. }
  1255. }
  1256. if ((namelen <= 2) && (name[0] == '.') &&
  1257. (name[1] == '.' || name[1] == '\0')) {
  1258. /*
  1259. * "." or ".." will only be in the first block
  1260. * NFS may look up ".."; "." should be handled by the VFS
  1261. */
  1262. block = start = 0;
  1263. nblocks = 1;
  1264. goto restart;
  1265. }
  1266. if (is_dx(dir)) {
  1267. ret = ext4_dx_find_entry(dir, &fname, res_dir);
  1268. /*
  1269. * On success, or if the error was file not found,
  1270. * return. Otherwise, fall back to doing a search the
  1271. * old fashioned way.
  1272. */
  1273. if (!IS_ERR(ret) || PTR_ERR(ret) != ERR_BAD_DX_DIR)
  1274. goto cleanup_and_exit;
  1275. dxtrace(printk(KERN_DEBUG "ext4_find_entry: dx failed, "
  1276. "falling back\n"));
  1277. }
  1278. nblocks = dir->i_size >> EXT4_BLOCK_SIZE_BITS(sb);
  1279. start = EXT4_I(dir)->i_dir_start_lookup;
  1280. if (start >= nblocks)
  1281. start = 0;
  1282. block = start;
  1283. restart:
  1284. do {
  1285. /*
  1286. * We deal with the read-ahead logic here.
  1287. */
  1288. if (ra_ptr >= ra_max) {
  1289. /* Refill the readahead buffer */
  1290. ra_ptr = 0;
  1291. b = block;
  1292. for (ra_max = 0; ra_max < NAMEI_RA_SIZE; ra_max++) {
  1293. /*
  1294. * Terminate if we reach the end of the
  1295. * directory and must wrap, or if our
  1296. * search has finished at this block.
  1297. */
  1298. if (b >= nblocks || (num && block == start)) {
  1299. bh_use[ra_max] = NULL;
  1300. break;
  1301. }
  1302. num++;
  1303. bh = ext4_getblk(NULL, dir, b++, 0);
  1304. if (IS_ERR(bh)) {
  1305. if (ra_max == 0) {
  1306. ret = bh;
  1307. goto cleanup_and_exit;
  1308. }
  1309. break;
  1310. }
  1311. bh_use[ra_max] = bh;
  1312. if (bh)
  1313. ll_rw_block(READ | REQ_META | REQ_PRIO,
  1314. 1, &bh);
  1315. }
  1316. }
  1317. if ((bh = bh_use[ra_ptr++]) == NULL)
  1318. goto next;
  1319. wait_on_buffer(bh);
  1320. if (!buffer_uptodate(bh)) {
  1321. /* read error, skip block & hope for the best */
  1322. EXT4_ERROR_INODE(dir, "reading directory lblock %lu",
  1323. (unsigned long) block);
  1324. brelse(bh);
  1325. goto next;
  1326. }
  1327. if (!buffer_verified(bh) &&
  1328. !is_dx_internal_node(dir, block,
  1329. (struct ext4_dir_entry *)bh->b_data) &&
  1330. !ext4_dirent_csum_verify(dir,
  1331. (struct ext4_dir_entry *)bh->b_data)) {
  1332. EXT4_ERROR_INODE(dir, "checksumming directory "
  1333. "block %lu", (unsigned long)block);
  1334. brelse(bh);
  1335. goto next;
  1336. }
  1337. set_buffer_verified(bh);
  1338. i = search_dirblock(bh, dir, &fname, d_name,
  1339. block << EXT4_BLOCK_SIZE_BITS(sb), res_dir);
  1340. if (i == 1) {
  1341. EXT4_I(dir)->i_dir_start_lookup = block;
  1342. ret = bh;
  1343. goto cleanup_and_exit;
  1344. } else {
  1345. brelse(bh);
  1346. if (i < 0)
  1347. goto cleanup_and_exit;
  1348. }
  1349. next:
  1350. if (++block >= nblocks)
  1351. block = 0;
  1352. } while (block != start);
  1353. /*
  1354. * If the directory has grown while we were searching, then
  1355. * search the last part of the directory before giving up.
  1356. */
  1357. block = nblocks;
  1358. nblocks = dir->i_size >> EXT4_BLOCK_SIZE_BITS(sb);
  1359. if (block < nblocks) {
  1360. start = 0;
  1361. goto restart;
  1362. }
  1363. cleanup_and_exit:
  1364. /* Clean up the read-ahead blocks */
  1365. for (; ra_ptr < ra_max; ra_ptr++)
  1366. brelse(bh_use[ra_ptr]);
  1367. ext4_fname_free_filename(&fname);
  1368. return ret;
  1369. }
  1370. static struct buffer_head * ext4_dx_find_entry(struct inode *dir,
  1371. struct ext4_filename *fname,
  1372. struct ext4_dir_entry_2 **res_dir)
  1373. {
  1374. struct super_block * sb = dir->i_sb;
  1375. struct dx_frame frames[2], *frame;
  1376. const struct qstr *d_name = fname->usr_fname;
  1377. struct buffer_head *bh;
  1378. ext4_lblk_t block;
  1379. int retval;
  1380. #ifdef CONFIG_EXT4_FS_ENCRYPTION
  1381. *res_dir = NULL;
  1382. #endif
  1383. frame = dx_probe(fname, dir, NULL, frames);
  1384. if (IS_ERR(frame))
  1385. return (struct buffer_head *) frame;
  1386. do {
  1387. block = dx_get_block(frame->at);
  1388. bh = ext4_read_dirblock(dir, block, DIRENT);
  1389. if (IS_ERR(bh))
  1390. goto errout;
  1391. retval = search_dirblock(bh, dir, fname, d_name,
  1392. block << EXT4_BLOCK_SIZE_BITS(sb),
  1393. res_dir);
  1394. if (retval == 1)
  1395. goto success;
  1396. brelse(bh);
  1397. if (retval == -1) {
  1398. bh = ERR_PTR(ERR_BAD_DX_DIR);
  1399. goto errout;
  1400. }
  1401. /* Check to see if we should continue to search */
  1402. retval = ext4_htree_next_block(dir, fname->hinfo.hash, frame,
  1403. frames, NULL);
  1404. if (retval < 0) {
  1405. ext4_warning_inode(dir,
  1406. "error %d reading directory index block",
  1407. retval);
  1408. bh = ERR_PTR(retval);
  1409. goto errout;
  1410. }
  1411. } while (retval == 1);
  1412. bh = NULL;
  1413. errout:
  1414. dxtrace(printk(KERN_DEBUG "%s not found\n", d_name->name));
  1415. success:
  1416. dx_release(frames);
  1417. return bh;
  1418. }
  1419. static struct dentry *ext4_lookup(struct inode *dir, struct dentry *dentry, unsigned int flags)
  1420. {
  1421. struct inode *inode;
  1422. struct ext4_dir_entry_2 *de;
  1423. struct buffer_head *bh;
  1424. if (ext4_encrypted_inode(dir)) {
  1425. int res = ext4_get_encryption_info(dir);
  1426. /*
  1427. * This should be a properly defined flag for
  1428. * dentry->d_flags when we uplift this to the VFS.
  1429. * d_fsdata is set to (void *) 1 if if the dentry is
  1430. * created while the directory was encrypted and we
  1431. * don't have access to the key.
  1432. */
  1433. dentry->d_fsdata = NULL;
  1434. if (ext4_encryption_info(dir))
  1435. dentry->d_fsdata = (void *) 1;
  1436. d_set_d_op(dentry, &ext4_encrypted_d_ops);
  1437. if (res && res != -ENOKEY)
  1438. return ERR_PTR(res);
  1439. }
  1440. if (dentry->d_name.len > EXT4_NAME_LEN)
  1441. return ERR_PTR(-ENAMETOOLONG);
  1442. bh = ext4_find_entry(dir, &dentry->d_name, &de, NULL);
  1443. if (IS_ERR(bh))
  1444. return (struct dentry *) bh;
  1445. inode = NULL;
  1446. if (bh) {
  1447. __u32 ino = le32_to_cpu(de->inode);
  1448. brelse(bh);
  1449. if (!ext4_valid_inum(dir->i_sb, ino)) {
  1450. EXT4_ERROR_INODE(dir, "bad inode number: %u", ino);
  1451. return ERR_PTR(-EFSCORRUPTED);
  1452. }
  1453. if (unlikely(ino == dir->i_ino)) {
  1454. EXT4_ERROR_INODE(dir, "'%pd' linked to parent dir",
  1455. dentry);
  1456. return ERR_PTR(-EFSCORRUPTED);
  1457. }
  1458. inode = ext4_iget_normal(dir->i_sb, ino);
  1459. if (inode == ERR_PTR(-ESTALE)) {
  1460. EXT4_ERROR_INODE(dir,
  1461. "deleted inode referenced: %u",
  1462. ino);
  1463. return ERR_PTR(-EFSCORRUPTED);
  1464. }
  1465. if (!IS_ERR(inode) && ext4_encrypted_inode(dir) &&
  1466. (S_ISDIR(inode->i_mode) || S_ISLNK(inode->i_mode)) &&
  1467. !ext4_is_child_context_consistent_with_parent(dir,
  1468. inode)) {
  1469. int nokey = ext4_encrypted_inode(inode) &&
  1470. !ext4_encryption_info(inode);
  1471. iput(inode);
  1472. if (nokey)
  1473. return ERR_PTR(-ENOKEY);
  1474. ext4_warning(inode->i_sb,
  1475. "Inconsistent encryption contexts: %lu/%lu",
  1476. (unsigned long) dir->i_ino,
  1477. (unsigned long) inode->i_ino);
  1478. return ERR_PTR(-EPERM);
  1479. }
  1480. }
  1481. return d_splice_alias(inode, dentry);
  1482. }
  1483. struct dentry *ext4_get_parent(struct dentry *child)
  1484. {
  1485. __u32 ino;
  1486. static const struct qstr dotdot = QSTR_INIT("..", 2);
  1487. struct ext4_dir_entry_2 * de;
  1488. struct buffer_head *bh;
  1489. bh = ext4_find_entry(d_inode(child), &dotdot, &de, NULL);
  1490. if (IS_ERR(bh))
  1491. return (struct dentry *) bh;
  1492. if (!bh)
  1493. return ERR_PTR(-ENOENT);
  1494. ino = le32_to_cpu(de->inode);
  1495. brelse(bh);
  1496. if (!ext4_valid_inum(child->d_sb, ino)) {
  1497. EXT4_ERROR_INODE(d_inode(child),
  1498. "bad parent inode number: %u", ino);
  1499. return ERR_PTR(-EFSCORRUPTED);
  1500. }
  1501. return d_obtain_alias(ext4_iget_normal(child->d_sb, ino));
  1502. }
  1503. /*
  1504. * Move count entries from end of map between two memory locations.
  1505. * Returns pointer to last entry moved.
  1506. */
  1507. static struct ext4_dir_entry_2 *
  1508. dx_move_dirents(char *from, char *to, struct dx_map_entry *map, int count,
  1509. unsigned blocksize)
  1510. {
  1511. unsigned rec_len = 0;
  1512. while (count--) {
  1513. struct ext4_dir_entry_2 *de = (struct ext4_dir_entry_2 *)
  1514. (from + (map->offs<<2));
  1515. rec_len = EXT4_DIR_REC_LEN(de->name_len);
  1516. memcpy (to, de, rec_len);
  1517. ((struct ext4_dir_entry_2 *) to)->rec_len =
  1518. ext4_rec_len_to_disk(rec_len, blocksize);
  1519. de->inode = 0;
  1520. map++;
  1521. to += rec_len;
  1522. }
  1523. return (struct ext4_dir_entry_2 *) (to - rec_len);
  1524. }
  1525. /*
  1526. * Compact each dir entry in the range to the minimal rec_len.
  1527. * Returns pointer to last entry in range.
  1528. */
  1529. static struct ext4_dir_entry_2* dx_pack_dirents(char *base, unsigned blocksize)
  1530. {
  1531. struct ext4_dir_entry_2 *next, *to, *prev, *de = (struct ext4_dir_entry_2 *) base;
  1532. unsigned rec_len = 0;
  1533. prev = to = de;
  1534. while ((char*)de < base + blocksize) {
  1535. next = ext4_next_entry(de, blocksize);
  1536. if (de->inode && de->name_len) {
  1537. rec_len = EXT4_DIR_REC_LEN(de->name_len);
  1538. if (de > to)
  1539. memmove(to, de, rec_len);
  1540. to->rec_len = ext4_rec_len_to_disk(rec_len, blocksize);
  1541. prev = to;
  1542. to = (struct ext4_dir_entry_2 *) (((char *) to) + rec_len);
  1543. }
  1544. de = next;
  1545. }
  1546. return prev;
  1547. }
  1548. /*
  1549. * Split a full leaf block to make room for a new dir entry.
  1550. * Allocate a new block, and move entries so that they are approx. equally full.
  1551. * Returns pointer to de in block into which the new entry will be inserted.
  1552. */
  1553. static struct ext4_dir_entry_2 *do_split(handle_t *handle, struct inode *dir,
  1554. struct buffer_head **bh,struct dx_frame *frame,
  1555. struct dx_hash_info *hinfo)
  1556. {
  1557. unsigned blocksize = dir->i_sb->s_blocksize;
  1558. unsigned count, continued;
  1559. struct buffer_head *bh2;
  1560. ext4_lblk_t newblock;
  1561. u32 hash2;
  1562. struct dx_map_entry *map;
  1563. char *data1 = (*bh)->b_data, *data2;
  1564. unsigned split, move, size;
  1565. struct ext4_dir_entry_2 *de = NULL, *de2;
  1566. struct ext4_dir_entry_tail *t;
  1567. int csum_size = 0;
  1568. int err = 0, i;
  1569. if (ext4_has_metadata_csum(dir->i_sb))
  1570. csum_size = sizeof(struct ext4_dir_entry_tail);
  1571. bh2 = ext4_append(handle, dir, &newblock);
  1572. if (IS_ERR(bh2)) {
  1573. brelse(*bh);
  1574. *bh = NULL;
  1575. return (struct ext4_dir_entry_2 *) bh2;
  1576. }
  1577. BUFFER_TRACE(*bh, "get_write_access");
  1578. err = ext4_journal_get_write_access(handle, *bh);
  1579. if (err)
  1580. goto journal_error;
  1581. BUFFER_TRACE(frame->bh, "get_write_access");
  1582. err = ext4_journal_get_write_access(handle, frame->bh);
  1583. if (err)
  1584. goto journal_error;
  1585. data2 = bh2->b_data;
  1586. /* create map in the end of data2 block */
  1587. map = (struct dx_map_entry *) (data2 + blocksize);
  1588. count = dx_make_map(dir, (struct ext4_dir_entry_2 *) data1,
  1589. blocksize, hinfo, map);
  1590. map -= count;
  1591. dx_sort_map(map, count);
  1592. /* Split the existing block in the middle, size-wise */
  1593. size = 0;
  1594. move = 0;
  1595. for (i = count-1; i >= 0; i--) {
  1596. /* is more than half of this entry in 2nd half of the block? */
  1597. if (size + map[i].size/2 > blocksize/2)
  1598. break;
  1599. size += map[i].size;
  1600. move++;
  1601. }
  1602. /* map index at which we will split */
  1603. split = count - move;
  1604. hash2 = map[split].hash;
  1605. continued = hash2 == map[split - 1].hash;
  1606. dxtrace(printk(KERN_INFO "Split block %lu at %x, %i/%i\n",
  1607. (unsigned long)dx_get_block(frame->at),
  1608. hash2, split, count-split));
  1609. /* Fancy dance to stay within two buffers */
  1610. de2 = dx_move_dirents(data1, data2, map + split, count - split,
  1611. blocksize);
  1612. de = dx_pack_dirents(data1, blocksize);
  1613. de->rec_len = ext4_rec_len_to_disk(data1 + (blocksize - csum_size) -
  1614. (char *) de,
  1615. blocksize);
  1616. de2->rec_len = ext4_rec_len_to_disk(data2 + (blocksize - csum_size) -
  1617. (char *) de2,
  1618. blocksize);
  1619. if (csum_size) {
  1620. t = EXT4_DIRENT_TAIL(data2, blocksize);
  1621. initialize_dirent_tail(t, blocksize);
  1622. t = EXT4_DIRENT_TAIL(data1, blocksize);
  1623. initialize_dirent_tail(t, blocksize);
  1624. }
  1625. dxtrace(dx_show_leaf(dir, hinfo, (struct ext4_dir_entry_2 *) data1,
  1626. blocksize, 1));
  1627. dxtrace(dx_show_leaf(dir, hinfo, (struct ext4_dir_entry_2 *) data2,
  1628. blocksize, 1));
  1629. /* Which block gets the new entry? */
  1630. if (hinfo->hash >= hash2) {
  1631. swap(*bh, bh2);
  1632. de = de2;
  1633. }
  1634. dx_insert_block(frame, hash2 + continued, newblock);
  1635. err = ext4_handle_dirty_dirent_node(handle, dir, bh2);
  1636. if (err)
  1637. goto journal_error;
  1638. err = ext4_handle_dirty_dx_node(handle, dir, frame->bh);
  1639. if (err)
  1640. goto journal_error;
  1641. brelse(bh2);
  1642. dxtrace(dx_show_index("frame", frame->entries));
  1643. return de;
  1644. journal_error:
  1645. brelse(*bh);
  1646. brelse(bh2);
  1647. *bh = NULL;
  1648. ext4_std_error(dir->i_sb, err);
  1649. return ERR_PTR(err);
  1650. }
  1651. int ext4_find_dest_de(struct inode *dir, struct inode *inode,
  1652. struct buffer_head *bh,
  1653. void *buf, int buf_size,
  1654. struct ext4_filename *fname,
  1655. struct ext4_dir_entry_2 **dest_de)
  1656. {
  1657. struct ext4_dir_entry_2 *de;
  1658. unsigned short reclen = EXT4_DIR_REC_LEN(fname_len(fname));
  1659. int nlen, rlen;
  1660. unsigned int offset = 0;
  1661. char *top;
  1662. int res;
  1663. de = (struct ext4_dir_entry_2 *)buf;
  1664. top = buf + buf_size - reclen;
  1665. while ((char *) de <= top) {
  1666. if (ext4_check_dir_entry(dir, NULL, de, bh,
  1667. buf, buf_size, offset)) {
  1668. res = -EFSCORRUPTED;
  1669. goto return_result;
  1670. }
  1671. /* Provide crypto context and crypto buffer to ext4 match */
  1672. res = ext4_match(fname, de);
  1673. if (res < 0)
  1674. goto return_result;
  1675. if (res > 0) {
  1676. res = -EEXIST;
  1677. goto return_result;
  1678. }
  1679. nlen = EXT4_DIR_REC_LEN(de->name_len);
  1680. rlen = ext4_rec_len_from_disk(de->rec_len, buf_size);
  1681. if ((de->inode ? rlen - nlen : rlen) >= reclen)
  1682. break;
  1683. de = (struct ext4_dir_entry_2 *)((char *)de + rlen);
  1684. offset += rlen;
  1685. }
  1686. if ((char *) de > top)
  1687. res = -ENOSPC;
  1688. else {
  1689. *dest_de = de;
  1690. res = 0;
  1691. }
  1692. return_result:
  1693. return res;
  1694. }
  1695. int ext4_insert_dentry(struct inode *dir,
  1696. struct inode *inode,
  1697. struct ext4_dir_entry_2 *de,
  1698. int buf_size,
  1699. struct ext4_filename *fname)
  1700. {
  1701. int nlen, rlen;
  1702. nlen = EXT4_DIR_REC_LEN(de->name_len);
  1703. rlen = ext4_rec_len_from_disk(de->rec_len, buf_size);
  1704. if (de->inode) {
  1705. struct ext4_dir_entry_2 *de1 =
  1706. (struct ext4_dir_entry_2 *)((char *)de + nlen);
  1707. de1->rec_len = ext4_rec_len_to_disk(rlen - nlen, buf_size);
  1708. de->rec_len = ext4_rec_len_to_disk(nlen, buf_size);
  1709. de = de1;
  1710. }
  1711. de->file_type = EXT4_FT_UNKNOWN;
  1712. de->inode = cpu_to_le32(inode->i_ino);
  1713. ext4_set_de_type(inode->i_sb, de, inode->i_mode);
  1714. de->name_len = fname_len(fname);
  1715. memcpy(de->name, fname_name(fname), fname_len(fname));
  1716. return 0;
  1717. }
  1718. /*
  1719. * Add a new entry into a directory (leaf) block. If de is non-NULL,
  1720. * it points to a directory entry which is guaranteed to be large
  1721. * enough for new directory entry. If de is NULL, then
  1722. * add_dirent_to_buf will attempt search the directory block for
  1723. * space. It will return -ENOSPC if no space is available, and -EIO
  1724. * and -EEXIST if directory entry already exists.
  1725. */
  1726. static int add_dirent_to_buf(handle_t *handle, struct ext4_filename *fname,
  1727. struct inode *dir,
  1728. struct inode *inode, struct ext4_dir_entry_2 *de,
  1729. struct buffer_head *bh)
  1730. {
  1731. unsigned int blocksize = dir->i_sb->s_blocksize;
  1732. int csum_size = 0;
  1733. int err;
  1734. if (ext4_has_metadata_csum(inode->i_sb))
  1735. csum_size = sizeof(struct ext4_dir_entry_tail);
  1736. if (!de) {
  1737. err = ext4_find_dest_de(dir, inode, bh, bh->b_data,
  1738. blocksize - csum_size, fname, &de);
  1739. if (err)
  1740. return err;
  1741. }
  1742. BUFFER_TRACE(bh, "get_write_access");
  1743. err = ext4_journal_get_write_access(handle, bh);
  1744. if (err) {
  1745. ext4_std_error(dir->i_sb, err);
  1746. return err;
  1747. }
  1748. /* By now the buffer is marked for journaling. Due to crypto operations,
  1749. * the following function call may fail */
  1750. err = ext4_insert_dentry(dir, inode, de, blocksize, fname);
  1751. if (err < 0)
  1752. return err;
  1753. /*
  1754. * XXX shouldn't update any times until successful
  1755. * completion of syscall, but too many callers depend
  1756. * on this.
  1757. *
  1758. * XXX similarly, too many callers depend on
  1759. * ext4_new_inode() setting the times, but error
  1760. * recovery deletes the inode, so the worst that can
  1761. * happen is that the times are slightly out of date
  1762. * and/or different from the directory change time.
  1763. */
  1764. dir->i_mtime = dir->i_ctime = ext4_current_time(dir);
  1765. ext4_update_dx_flag(dir);
  1766. dir->i_version++;
  1767. ext4_mark_inode_dirty(handle, dir);
  1768. BUFFER_TRACE(bh, "call ext4_handle_dirty_metadata");
  1769. err = ext4_handle_dirty_dirent_node(handle, dir, bh);
  1770. if (err)
  1771. ext4_std_error(dir->i_sb, err);
  1772. return 0;
  1773. }
  1774. /*
  1775. * This converts a one block unindexed directory to a 3 block indexed
  1776. * directory, and adds the dentry to the indexed directory.
  1777. */
  1778. static int make_indexed_dir(handle_t *handle, struct ext4_filename *fname,
  1779. struct inode *dir,
  1780. struct inode *inode, struct buffer_head *bh)
  1781. {
  1782. struct buffer_head *bh2;
  1783. struct dx_root *root;
  1784. struct dx_frame frames[2], *frame;
  1785. struct dx_entry *entries;
  1786. struct ext4_dir_entry_2 *de, *de2;
  1787. struct ext4_dir_entry_tail *t;
  1788. char *data1, *top;
  1789. unsigned len;
  1790. int retval;
  1791. unsigned blocksize;
  1792. ext4_lblk_t block;
  1793. struct fake_dirent *fde;
  1794. int csum_size = 0;
  1795. if (ext4_has_metadata_csum(inode->i_sb))
  1796. csum_size = sizeof(struct ext4_dir_entry_tail);
  1797. blocksize = dir->i_sb->s_blocksize;
  1798. dxtrace(printk(KERN_DEBUG "Creating index: inode %lu\n", dir->i_ino));
  1799. BUFFER_TRACE(bh, "get_write_access");
  1800. retval = ext4_journal_get_write_access(handle, bh);
  1801. if (retval) {
  1802. ext4_std_error(dir->i_sb, retval);
  1803. brelse(bh);
  1804. return retval;
  1805. }
  1806. root = (struct dx_root *) bh->b_data;
  1807. /* The 0th block becomes the root, move the dirents out */
  1808. fde = &root->dotdot;
  1809. de = (struct ext4_dir_entry_2 *)((char *)fde +
  1810. ext4_rec_len_from_disk(fde->rec_len, blocksize));
  1811. if ((char *) de >= (((char *) root) + blocksize)) {
  1812. EXT4_ERROR_INODE(dir, "invalid rec_len for '..'");
  1813. brelse(bh);
  1814. return -EFSCORRUPTED;
  1815. }
  1816. len = ((char *) root) + (blocksize - csum_size) - (char *) de;
  1817. /* Allocate new block for the 0th block's dirents */
  1818. bh2 = ext4_append(handle, dir, &block);
  1819. if (IS_ERR(bh2)) {
  1820. brelse(bh);
  1821. return PTR_ERR(bh2);
  1822. }
  1823. ext4_set_inode_flag(dir, EXT4_INODE_INDEX);
  1824. data1 = bh2->b_data;
  1825. memcpy (data1, de, len);
  1826. de = (struct ext4_dir_entry_2 *) data1;
  1827. top = data1 + len;
  1828. while ((char *)(de2 = ext4_next_entry(de, blocksize)) < top)
  1829. de = de2;
  1830. de->rec_len = ext4_rec_len_to_disk(data1 + (blocksize - csum_size) -
  1831. (char *) de,
  1832. blocksize);
  1833. if (csum_size) {
  1834. t = EXT4_DIRENT_TAIL(data1, blocksize);
  1835. initialize_dirent_tail(t, blocksize);
  1836. }
  1837. /* Initialize the root; the dot dirents already exist */
  1838. de = (struct ext4_dir_entry_2 *) (&root->dotdot);
  1839. de->rec_len = ext4_rec_len_to_disk(blocksize - EXT4_DIR_REC_LEN(2),
  1840. blocksize);
  1841. memset (&root->info, 0, sizeof(root->info));
  1842. root->info.info_length = sizeof(root->info);
  1843. root->info.hash_version = EXT4_SB(dir->i_sb)->s_def_hash_version;
  1844. entries = root->entries;
  1845. dx_set_block(entries, 1);
  1846. dx_set_count(entries, 1);
  1847. dx_set_limit(entries, dx_root_limit(dir, sizeof(root->info)));
  1848. /* Initialize as for dx_probe */
  1849. fname->hinfo.hash_version = root->info.hash_version;
  1850. if (fname->hinfo.hash_version <= DX_HASH_TEA)
  1851. fname->hinfo.hash_version += EXT4_SB(dir->i_sb)->s_hash_unsigned;
  1852. fname->hinfo.seed = EXT4_SB(dir->i_sb)->s_hash_seed;
  1853. ext4fs_dirhash(fname_name(fname), fname_len(fname), &fname->hinfo);
  1854. memset(frames, 0, sizeof(frames));
  1855. frame = frames;
  1856. frame->entries = entries;
  1857. frame->at = entries;
  1858. frame->bh = bh;
  1859. bh = bh2;
  1860. retval = ext4_handle_dirty_dx_node(handle, dir, frame->bh);
  1861. if (retval)
  1862. goto out_frames;
  1863. retval = ext4_handle_dirty_dirent_node(handle, dir, bh);
  1864. if (retval)
  1865. goto out_frames;
  1866. de = do_split(handle,dir, &bh, frame, &fname->hinfo);
  1867. if (IS_ERR(de)) {
  1868. retval = PTR_ERR(de);
  1869. goto out_frames;
  1870. }
  1871. dx_release(frames);
  1872. retval = add_dirent_to_buf(handle, fname, dir, inode, de, bh);
  1873. brelse(bh);
  1874. return retval;
  1875. out_frames:
  1876. /*
  1877. * Even if the block split failed, we have to properly write
  1878. * out all the changes we did so far. Otherwise we can end up
  1879. * with corrupted filesystem.
  1880. */
  1881. ext4_mark_inode_dirty(handle, dir);
  1882. dx_release(frames);
  1883. return retval;
  1884. }
  1885. /*
  1886. * ext4_add_entry()
  1887. *
  1888. * adds a file entry to the specified directory, using the same
  1889. * semantics as ext4_find_entry(). It returns NULL if it failed.
  1890. *
  1891. * NOTE!! The inode part of 'de' is left at 0 - which means you
  1892. * may not sleep between calling this and putting something into
  1893. * the entry, as someone else might have used it while you slept.
  1894. */
  1895. static int ext4_add_entry(handle_t *handle, struct dentry *dentry,
  1896. struct inode *inode)
  1897. {
  1898. struct inode *dir = d_inode(dentry->d_parent);
  1899. struct buffer_head *bh = NULL;
  1900. struct ext4_dir_entry_2 *de;
  1901. struct ext4_dir_entry_tail *t;
  1902. struct super_block *sb;
  1903. struct ext4_filename fname;
  1904. int retval;
  1905. int dx_fallback=0;
  1906. unsigned blocksize;
  1907. ext4_lblk_t block, blocks;
  1908. int csum_size = 0;
  1909. if (ext4_has_metadata_csum(inode->i_sb))
  1910. csum_size = sizeof(struct ext4_dir_entry_tail);
  1911. sb = dir->i_sb;
  1912. blocksize = sb->s_blocksize;
  1913. if (!dentry->d_name.len)
  1914. return -EINVAL;
  1915. retval = ext4_fname_setup_filename(dir, &dentry->d_name, 0, &fname);
  1916. if (retval)
  1917. return retval;
  1918. if (ext4_has_inline_data(dir)) {
  1919. retval = ext4_try_add_inline_entry(handle, &fname, dir, inode);
  1920. if (retval < 0)
  1921. goto out;
  1922. if (retval == 1) {
  1923. retval = 0;
  1924. goto out;
  1925. }
  1926. }
  1927. if (is_dx(dir)) {
  1928. retval = ext4_dx_add_entry(handle, &fname, dir, inode);
  1929. if (!retval || (retval != ERR_BAD_DX_DIR))
  1930. goto out;
  1931. ext4_clear_inode_flag(dir, EXT4_INODE_INDEX);
  1932. dx_fallback++;
  1933. ext4_mark_inode_dirty(handle, dir);
  1934. }
  1935. blocks = dir->i_size >> sb->s_blocksize_bits;
  1936. for (block = 0; block < blocks; block++) {
  1937. bh = ext4_read_dirblock(dir, block, DIRENT);
  1938. if (IS_ERR(bh)) {
  1939. retval = PTR_ERR(bh);
  1940. bh = NULL;
  1941. goto out;
  1942. }
  1943. retval = add_dirent_to_buf(handle, &fname, dir, inode,
  1944. NULL, bh);
  1945. if (retval != -ENOSPC)
  1946. goto out;
  1947. if (blocks == 1 && !dx_fallback &&
  1948. ext4_has_feature_dir_index(sb)) {
  1949. retval = make_indexed_dir(handle, &fname, dir,
  1950. inode, bh);
  1951. bh = NULL; /* make_indexed_dir releases bh */
  1952. goto out;
  1953. }
  1954. brelse(bh);
  1955. }
  1956. bh = ext4_append(handle, dir, &block);
  1957. if (IS_ERR(bh)) {
  1958. retval = PTR_ERR(bh);
  1959. bh = NULL;
  1960. goto out;
  1961. }
  1962. de = (struct ext4_dir_entry_2 *) bh->b_data;
  1963. de->inode = 0;
  1964. de->rec_len = ext4_rec_len_to_disk(blocksize - csum_size, blocksize);
  1965. if (csum_size) {
  1966. t = EXT4_DIRENT_TAIL(bh->b_data, blocksize);
  1967. initialize_dirent_tail(t, blocksize);
  1968. }
  1969. retval = add_dirent_to_buf(handle, &fname, dir, inode, de, bh);
  1970. out:
  1971. ext4_fname_free_filename(&fname);
  1972. brelse(bh);
  1973. if (retval == 0)
  1974. ext4_set_inode_state(inode, EXT4_STATE_NEWENTRY);
  1975. return retval;
  1976. }
  1977. /*
  1978. * Returns 0 for success, or a negative error value
  1979. */
  1980. static int ext4_dx_add_entry(handle_t *handle, struct ext4_filename *fname,
  1981. struct inode *dir, struct inode *inode)
  1982. {
  1983. struct dx_frame frames[2], *frame;
  1984. struct dx_entry *entries, *at;
  1985. struct buffer_head *bh;
  1986. struct super_block *sb = dir->i_sb;
  1987. struct ext4_dir_entry_2 *de;
  1988. int err;
  1989. frame = dx_probe(fname, dir, NULL, frames);
  1990. if (IS_ERR(frame))
  1991. return PTR_ERR(frame);
  1992. entries = frame->entries;
  1993. at = frame->at;
  1994. bh = ext4_read_dirblock(dir, dx_get_block(frame->at), DIRENT);
  1995. if (IS_ERR(bh)) {
  1996. err = PTR_ERR(bh);
  1997. bh = NULL;
  1998. goto cleanup;
  1999. }
  2000. BUFFER_TRACE(bh, "get_write_access");
  2001. err = ext4_journal_get_write_access(handle, bh);
  2002. if (err)
  2003. goto journal_error;
  2004. err = add_dirent_to_buf(handle, fname, dir, inode, NULL, bh);
  2005. if (err != -ENOSPC)
  2006. goto cleanup;
  2007. /* Block full, should compress but for now just split */
  2008. dxtrace(printk(KERN_DEBUG "using %u of %u node entries\n",
  2009. dx_get_count(entries), dx_get_limit(entries)));
  2010. /* Need to split index? */
  2011. if (dx_get_count(entries) == dx_get_limit(entries)) {
  2012. ext4_lblk_t newblock;
  2013. unsigned icount = dx_get_count(entries);
  2014. int levels = frame - frames;
  2015. struct dx_entry *entries2;
  2016. struct dx_node *node2;
  2017. struct buffer_head *bh2;
  2018. if (levels && (dx_get_count(frames->entries) ==
  2019. dx_get_limit(frames->entries))) {
  2020. ext4_warning_inode(dir, "Directory index full!");
  2021. err = -ENOSPC;
  2022. goto cleanup;
  2023. }
  2024. bh2 = ext4_append(handle, dir, &newblock);
  2025. if (IS_ERR(bh2)) {
  2026. err = PTR_ERR(bh2);
  2027. goto cleanup;
  2028. }
  2029. node2 = (struct dx_node *)(bh2->b_data);
  2030. entries2 = node2->entries;
  2031. memset(&node2->fake, 0, sizeof(struct fake_dirent));
  2032. node2->fake.rec_len = ext4_rec_len_to_disk(sb->s_blocksize,
  2033. sb->s_blocksize);
  2034. BUFFER_TRACE(frame->bh, "get_write_access");
  2035. err = ext4_journal_get_write_access(handle, frame->bh);
  2036. if (err)
  2037. goto journal_error;
  2038. if (levels) {
  2039. unsigned icount1 = icount/2, icount2 = icount - icount1;
  2040. unsigned hash2 = dx_get_hash(entries + icount1);
  2041. dxtrace(printk(KERN_DEBUG "Split index %i/%i\n",
  2042. icount1, icount2));
  2043. BUFFER_TRACE(frame->bh, "get_write_access"); /* index root */
  2044. err = ext4_journal_get_write_access(handle,
  2045. frames[0].bh);
  2046. if (err)
  2047. goto journal_error;
  2048. memcpy((char *) entries2, (char *) (entries + icount1),
  2049. icount2 * sizeof(struct dx_entry));
  2050. dx_set_count(entries, icount1);
  2051. dx_set_count(entries2, icount2);
  2052. dx_set_limit(entries2, dx_node_limit(dir));
  2053. /* Which index block gets the new entry? */
  2054. if (at - entries >= icount1) {
  2055. frame->at = at = at - entries - icount1 + entries2;
  2056. frame->entries = entries = entries2;
  2057. swap(frame->bh, bh2);
  2058. }
  2059. dx_insert_block(frames + 0, hash2, newblock);
  2060. dxtrace(dx_show_index("node", frames[1].entries));
  2061. dxtrace(dx_show_index("node",
  2062. ((struct dx_node *) bh2->b_data)->entries));
  2063. err = ext4_handle_dirty_dx_node(handle, dir, bh2);
  2064. if (err)
  2065. goto journal_error;
  2066. brelse (bh2);
  2067. } else {
  2068. dxtrace(printk(KERN_DEBUG
  2069. "Creating second level index...\n"));
  2070. memcpy((char *) entries2, (char *) entries,
  2071. icount * sizeof(struct dx_entry));
  2072. dx_set_limit(entries2, dx_node_limit(dir));
  2073. /* Set up root */
  2074. dx_set_count(entries, 1);
  2075. dx_set_block(entries + 0, newblock);
  2076. ((struct dx_root *) frames[0].bh->b_data)->info.indirect_levels = 1;
  2077. /* Add new access path frame */
  2078. frame = frames + 1;
  2079. frame->at = at = at - entries + entries2;
  2080. frame->entries = entries = entries2;
  2081. frame->bh = bh2;
  2082. err = ext4_journal_get_write_access(handle,
  2083. frame->bh);
  2084. if (err)
  2085. goto journal_error;
  2086. }
  2087. err = ext4_handle_dirty_dx_node(handle, dir, frames[0].bh);
  2088. if (err) {
  2089. ext4_std_error(inode->i_sb, err);
  2090. goto cleanup;
  2091. }
  2092. }
  2093. de = do_split(handle, dir, &bh, frame, &fname->hinfo);
  2094. if (IS_ERR(de)) {
  2095. err = PTR_ERR(de);
  2096. goto cleanup;
  2097. }
  2098. err = add_dirent_to_buf(handle, fname, dir, inode, de, bh);
  2099. goto cleanup;
  2100. journal_error:
  2101. ext4_std_error(dir->i_sb, err);
  2102. cleanup:
  2103. brelse(bh);
  2104. dx_release(frames);
  2105. return err;
  2106. }
  2107. /*
  2108. * ext4_generic_delete_entry deletes a directory entry by merging it
  2109. * with the previous entry
  2110. */
  2111. int ext4_generic_delete_entry(handle_t *handle,
  2112. struct inode *dir,
  2113. struct ext4_dir_entry_2 *de_del,
  2114. struct buffer_head *bh,
  2115. void *entry_buf,
  2116. int buf_size,
  2117. int csum_size)
  2118. {
  2119. struct ext4_dir_entry_2 *de, *pde;
  2120. unsigned int blocksize = dir->i_sb->s_blocksize;
  2121. int i;
  2122. i = 0;
  2123. pde = NULL;
  2124. de = (struct ext4_dir_entry_2 *)entry_buf;
  2125. while (i < buf_size - csum_size) {
  2126. if (ext4_check_dir_entry(dir, NULL, de, bh,
  2127. bh->b_data, bh->b_size, i))
  2128. return -EFSCORRUPTED;
  2129. if (de == de_del) {
  2130. if (pde)
  2131. pde->rec_len = ext4_rec_len_to_disk(
  2132. ext4_rec_len_from_disk(pde->rec_len,
  2133. blocksize) +
  2134. ext4_rec_len_from_disk(de->rec_len,
  2135. blocksize),
  2136. blocksize);
  2137. else
  2138. de->inode = 0;
  2139. dir->i_version++;
  2140. return 0;
  2141. }
  2142. i += ext4_rec_len_from_disk(de->rec_len, blocksize);
  2143. pde = de;
  2144. de = ext4_next_entry(de, blocksize);
  2145. }
  2146. return -ENOENT;
  2147. }
  2148. static int ext4_delete_entry(handle_t *handle,
  2149. struct inode *dir,
  2150. struct ext4_dir_entry_2 *de_del,
  2151. struct buffer_head *bh)
  2152. {
  2153. int err, csum_size = 0;
  2154. if (ext4_has_inline_data(dir)) {
  2155. int has_inline_data = 1;
  2156. err = ext4_delete_inline_entry(handle, dir, de_del, bh,
  2157. &has_inline_data);
  2158. if (has_inline_data)
  2159. return err;
  2160. }
  2161. if (ext4_has_metadata_csum(dir->i_sb))
  2162. csum_size = sizeof(struct ext4_dir_entry_tail);
  2163. BUFFER_TRACE(bh, "get_write_access");
  2164. err = ext4_journal_get_write_access(handle, bh);
  2165. if (unlikely(err))
  2166. goto out;
  2167. err = ext4_generic_delete_entry(handle, dir, de_del,
  2168. bh, bh->b_data,
  2169. dir->i_sb->s_blocksize, csum_size);
  2170. if (err)
  2171. goto out;
  2172. BUFFER_TRACE(bh, "call ext4_handle_dirty_metadata");
  2173. err = ext4_handle_dirty_dirent_node(handle, dir, bh);
  2174. if (unlikely(err))
  2175. goto out;
  2176. return 0;
  2177. out:
  2178. if (err != -ENOENT)
  2179. ext4_std_error(dir->i_sb, err);
  2180. return err;
  2181. }
  2182. /*
  2183. * DIR_NLINK feature is set if 1) nlinks > EXT4_LINK_MAX or 2) nlinks == 2,
  2184. * since this indicates that nlinks count was previously 1.
  2185. */
  2186. static void ext4_inc_count(handle_t *handle, struct inode *inode)
  2187. {
  2188. inc_nlink(inode);
  2189. if (is_dx(inode) && inode->i_nlink > 1) {
  2190. /* limit is 16-bit i_links_count */
  2191. if (inode->i_nlink >= EXT4_LINK_MAX || inode->i_nlink == 2) {
  2192. set_nlink(inode, 1);
  2193. ext4_set_feature_dir_nlink(inode->i_sb);
  2194. }
  2195. }
  2196. }
  2197. /*
  2198. * If a directory had nlink == 1, then we should let it be 1. This indicates
  2199. * directory has >EXT4_LINK_MAX subdirs.
  2200. */
  2201. static void ext4_dec_count(handle_t *handle, struct inode *inode)
  2202. {
  2203. if (!S_ISDIR(inode->i_mode) || inode->i_nlink > 2)
  2204. drop_nlink(inode);
  2205. }
  2206. static int ext4_add_nondir(handle_t *handle,
  2207. struct dentry *dentry, struct inode *inode)
  2208. {
  2209. int err = ext4_add_entry(handle, dentry, inode);
  2210. if (!err) {
  2211. ext4_mark_inode_dirty(handle, inode);
  2212. unlock_new_inode(inode);
  2213. d_instantiate(dentry, inode);
  2214. return 0;
  2215. }
  2216. drop_nlink(inode);
  2217. unlock_new_inode(inode);
  2218. iput(inode);
  2219. return err;
  2220. }
  2221. /*
  2222. * By the time this is called, we already have created
  2223. * the directory cache entry for the new file, but it
  2224. * is so far negative - it has no inode.
  2225. *
  2226. * If the create succeeds, we fill in the inode information
  2227. * with d_instantiate().
  2228. */
  2229. static int ext4_create(struct inode *dir, struct dentry *dentry, umode_t mode,
  2230. bool excl)
  2231. {
  2232. handle_t *handle;
  2233. struct inode *inode;
  2234. int err, credits, retries = 0;
  2235. err = dquot_initialize(dir);
  2236. if (err)
  2237. return err;
  2238. credits = (EXT4_DATA_TRANS_BLOCKS(dir->i_sb) +
  2239. EXT4_INDEX_EXTRA_TRANS_BLOCKS + 3);
  2240. retry:
  2241. inode = ext4_new_inode_start_handle(dir, mode, &dentry->d_name, 0,
  2242. NULL, EXT4_HT_DIR, credits);
  2243. handle = ext4_journal_current_handle();
  2244. err = PTR_ERR(inode);
  2245. if (!IS_ERR(inode)) {
  2246. inode->i_op = &ext4_file_inode_operations;
  2247. inode->i_fop = &ext4_file_operations;
  2248. ext4_set_aops(inode);
  2249. err = ext4_add_nondir(handle, dentry, inode);
  2250. if (!err && IS_DIRSYNC(dir))
  2251. ext4_handle_sync(handle);
  2252. }
  2253. if (handle)
  2254. ext4_journal_stop(handle);
  2255. if (err == -ENOSPC && ext4_should_retry_alloc(dir->i_sb, &retries))
  2256. goto retry;
  2257. return err;
  2258. }
  2259. static int ext4_mknod(struct inode *dir, struct dentry *dentry,
  2260. umode_t mode, dev_t rdev)
  2261. {
  2262. handle_t *handle;
  2263. struct inode *inode;
  2264. int err, credits, retries = 0;
  2265. err = dquot_initialize(dir);
  2266. if (err)
  2267. return err;
  2268. credits = (EXT4_DATA_TRANS_BLOCKS(dir->i_sb) +
  2269. EXT4_INDEX_EXTRA_TRANS_BLOCKS + 3);
  2270. retry:
  2271. inode = ext4_new_inode_start_handle(dir, mode, &dentry->d_name, 0,
  2272. NULL, EXT4_HT_DIR, credits);
  2273. handle = ext4_journal_current_handle();
  2274. err = PTR_ERR(inode);
  2275. if (!IS_ERR(inode)) {
  2276. init_special_inode(inode, inode->i_mode, rdev);
  2277. inode->i_op = &ext4_special_inode_operations;
  2278. err = ext4_add_nondir(handle, dentry, inode);
  2279. if (!err && IS_DIRSYNC(dir))
  2280. ext4_handle_sync(handle);
  2281. }
  2282. if (handle)
  2283. ext4_journal_stop(handle);
  2284. if (err == -ENOSPC && ext4_should_retry_alloc(dir->i_sb, &retries))
  2285. goto retry;
  2286. return err;
  2287. }
  2288. static int ext4_tmpfile(struct inode *dir, struct dentry *dentry, umode_t mode)
  2289. {
  2290. handle_t *handle;
  2291. struct inode *inode;
  2292. int err, retries = 0;
  2293. err = dquot_initialize(dir);
  2294. if (err)
  2295. return err;
  2296. retry:
  2297. inode = ext4_new_inode_start_handle(dir, mode,
  2298. NULL, 0, NULL,
  2299. EXT4_HT_DIR,
  2300. EXT4_MAXQUOTAS_INIT_BLOCKS(dir->i_sb) +
  2301. 4 + EXT4_XATTR_TRANS_BLOCKS);
  2302. handle = ext4_journal_current_handle();
  2303. err = PTR_ERR(inode);
  2304. if (!IS_ERR(inode)) {
  2305. inode->i_op = &ext4_file_inode_operations;
  2306. inode->i_fop = &ext4_file_operations;
  2307. ext4_set_aops(inode);
  2308. d_tmpfile(dentry, inode);
  2309. err = ext4_orphan_add(handle, inode);
  2310. if (err)
  2311. goto err_unlock_inode;
  2312. mark_inode_dirty(inode);
  2313. unlock_new_inode(inode);
  2314. }
  2315. if (handle)
  2316. ext4_journal_stop(handle);
  2317. if (err == -ENOSPC && ext4_should_retry_alloc(dir->i_sb, &retries))
  2318. goto retry;
  2319. return err;
  2320. err_unlock_inode:
  2321. ext4_journal_stop(handle);
  2322. unlock_new_inode(inode);
  2323. return err;
  2324. }
  2325. struct ext4_dir_entry_2 *ext4_init_dot_dotdot(struct inode *inode,
  2326. struct ext4_dir_entry_2 *de,
  2327. int blocksize, int csum_size,
  2328. unsigned int parent_ino, int dotdot_real_len)
  2329. {
  2330. de->inode = cpu_to_le32(inode->i_ino);
  2331. de->name_len = 1;
  2332. de->rec_len = ext4_rec_len_to_disk(EXT4_DIR_REC_LEN(de->name_len),
  2333. blocksize);
  2334. strcpy(de->name, ".");
  2335. ext4_set_de_type(inode->i_sb, de, S_IFDIR);
  2336. de = ext4_next_entry(de, blocksize);
  2337. de->inode = cpu_to_le32(parent_ino);
  2338. de->name_len = 2;
  2339. if (!dotdot_real_len)
  2340. de->rec_len = ext4_rec_len_to_disk(blocksize -
  2341. (csum_size + EXT4_DIR_REC_LEN(1)),
  2342. blocksize);
  2343. else
  2344. de->rec_len = ext4_rec_len_to_disk(
  2345. EXT4_DIR_REC_LEN(de->name_len), blocksize);
  2346. strcpy(de->name, "..");
  2347. ext4_set_de_type(inode->i_sb, de, S_IFDIR);
  2348. return ext4_next_entry(de, blocksize);
  2349. }
  2350. static int ext4_init_new_dir(handle_t *handle, struct inode *dir,
  2351. struct inode *inode)
  2352. {
  2353. struct buffer_head *dir_block = NULL;
  2354. struct ext4_dir_entry_2 *de;
  2355. struct ext4_dir_entry_tail *t;
  2356. ext4_lblk_t block = 0;
  2357. unsigned int blocksize = dir->i_sb->s_blocksize;
  2358. int csum_size = 0;
  2359. int err;
  2360. if (ext4_has_metadata_csum(dir->i_sb))
  2361. csum_size = sizeof(struct ext4_dir_entry_tail);
  2362. if (ext4_test_inode_state(inode, EXT4_STATE_MAY_INLINE_DATA)) {
  2363. err = ext4_try_create_inline_dir(handle, dir, inode);
  2364. if (err < 0 && err != -ENOSPC)
  2365. goto out;
  2366. if (!err)
  2367. goto out;
  2368. }
  2369. inode->i_size = 0;
  2370. dir_block = ext4_append(handle, inode, &block);
  2371. if (IS_ERR(dir_block))
  2372. return PTR_ERR(dir_block);
  2373. de = (struct ext4_dir_entry_2 *)dir_block->b_data;
  2374. ext4_init_dot_dotdot(inode, de, blocksize, csum_size, dir->i_ino, 0);
  2375. set_nlink(inode, 2);
  2376. if (csum_size) {
  2377. t = EXT4_DIRENT_TAIL(dir_block->b_data, blocksize);
  2378. initialize_dirent_tail(t, blocksize);
  2379. }
  2380. BUFFER_TRACE(dir_block, "call ext4_handle_dirty_metadata");
  2381. err = ext4_handle_dirty_dirent_node(handle, inode, dir_block);
  2382. if (err)
  2383. goto out;
  2384. set_buffer_verified(dir_block);
  2385. out:
  2386. brelse(dir_block);
  2387. return err;
  2388. }
  2389. static int ext4_mkdir(struct inode *dir, struct dentry *dentry, umode_t mode)
  2390. {
  2391. handle_t *handle;
  2392. struct inode *inode;
  2393. int err, credits, retries = 0;
  2394. if (EXT4_DIR_LINK_MAX(dir))
  2395. return -EMLINK;
  2396. err = dquot_initialize(dir);
  2397. if (err)
  2398. return err;
  2399. credits = (EXT4_DATA_TRANS_BLOCKS(dir->i_sb) +
  2400. EXT4_INDEX_EXTRA_TRANS_BLOCKS + 3);
  2401. retry:
  2402. inode = ext4_new_inode_start_handle(dir, S_IFDIR | mode,
  2403. &dentry->d_name,
  2404. 0, NULL, EXT4_HT_DIR, credits);
  2405. handle = ext4_journal_current_handle();
  2406. err = PTR_ERR(inode);
  2407. if (IS_ERR(inode))
  2408. goto out_stop;
  2409. inode->i_op = &ext4_dir_inode_operations;
  2410. inode->i_fop = &ext4_dir_operations;
  2411. err = ext4_init_new_dir(handle, dir, inode);
  2412. if (err)
  2413. goto out_clear_inode;
  2414. err = ext4_mark_inode_dirty(handle, inode);
  2415. if (!err)
  2416. err = ext4_add_entry(handle, dentry, inode);
  2417. if (err) {
  2418. out_clear_inode:
  2419. clear_nlink(inode);
  2420. unlock_new_inode(inode);
  2421. ext4_mark_inode_dirty(handle, inode);
  2422. iput(inode);
  2423. goto out_stop;
  2424. }
  2425. ext4_inc_count(handle, dir);
  2426. ext4_update_dx_flag(dir);
  2427. err = ext4_mark_inode_dirty(handle, dir);
  2428. if (err)
  2429. goto out_clear_inode;
  2430. unlock_new_inode(inode);
  2431. d_instantiate(dentry, inode);
  2432. if (IS_DIRSYNC(dir))
  2433. ext4_handle_sync(handle);
  2434. out_stop:
  2435. if (handle)
  2436. ext4_journal_stop(handle);
  2437. if (err == -ENOSPC && ext4_should_retry_alloc(dir->i_sb, &retries))
  2438. goto retry;
  2439. return err;
  2440. }
  2441. /*
  2442. * routine to check that the specified directory is empty (for rmdir)
  2443. */
  2444. int ext4_empty_dir(struct inode *inode)
  2445. {
  2446. unsigned int offset;
  2447. struct buffer_head *bh;
  2448. struct ext4_dir_entry_2 *de, *de1;
  2449. struct super_block *sb;
  2450. int err = 0;
  2451. if (ext4_has_inline_data(inode)) {
  2452. int has_inline_data = 1;
  2453. err = empty_inline_dir(inode, &has_inline_data);
  2454. if (has_inline_data)
  2455. return err;
  2456. }
  2457. sb = inode->i_sb;
  2458. if (inode->i_size < EXT4_DIR_REC_LEN(1) + EXT4_DIR_REC_LEN(2)) {
  2459. EXT4_ERROR_INODE(inode, "invalid size");
  2460. return 1;
  2461. }
  2462. bh = ext4_read_dirblock(inode, 0, EITHER);
  2463. if (IS_ERR(bh))
  2464. return 1;
  2465. de = (struct ext4_dir_entry_2 *) bh->b_data;
  2466. de1 = ext4_next_entry(de, sb->s_blocksize);
  2467. if (le32_to_cpu(de->inode) != inode->i_ino ||
  2468. le32_to_cpu(de1->inode) == 0 ||
  2469. strcmp(".", de->name) || strcmp("..", de1->name)) {
  2470. ext4_warning_inode(inode, "directory missing '.' and/or '..'");
  2471. brelse(bh);
  2472. return 1;
  2473. }
  2474. offset = ext4_rec_len_from_disk(de->rec_len, sb->s_blocksize) +
  2475. ext4_rec_len_from_disk(de1->rec_len, sb->s_blocksize);
  2476. de = ext4_next_entry(de1, sb->s_blocksize);
  2477. while (offset < inode->i_size) {
  2478. if ((void *) de >= (void *) (bh->b_data+sb->s_blocksize)) {
  2479. unsigned int lblock;
  2480. err = 0;
  2481. brelse(bh);
  2482. lblock = offset >> EXT4_BLOCK_SIZE_BITS(sb);
  2483. bh = ext4_read_dirblock(inode, lblock, EITHER);
  2484. if (IS_ERR(bh))
  2485. return 1;
  2486. de = (struct ext4_dir_entry_2 *) bh->b_data;
  2487. }
  2488. if (ext4_check_dir_entry(inode, NULL, de, bh,
  2489. bh->b_data, bh->b_size, offset)) {
  2490. de = (struct ext4_dir_entry_2 *)(bh->b_data +
  2491. sb->s_blocksize);
  2492. offset = (offset | (sb->s_blocksize - 1)) + 1;
  2493. continue;
  2494. }
  2495. if (le32_to_cpu(de->inode)) {
  2496. brelse(bh);
  2497. return 0;
  2498. }
  2499. offset += ext4_rec_len_from_disk(de->rec_len, sb->s_blocksize);
  2500. de = ext4_next_entry(de, sb->s_blocksize);
  2501. }
  2502. brelse(bh);
  2503. return 1;
  2504. }
  2505. /*
  2506. * ext4_orphan_add() links an unlinked or truncated inode into a list of
  2507. * such inodes, starting at the superblock, in case we crash before the
  2508. * file is closed/deleted, or in case the inode truncate spans multiple
  2509. * transactions and the last transaction is not recovered after a crash.
  2510. *
  2511. * At filesystem recovery time, we walk this list deleting unlinked
  2512. * inodes and truncating linked inodes in ext4_orphan_cleanup().
  2513. *
  2514. * Orphan list manipulation functions must be called under i_mutex unless
  2515. * we are just creating the inode or deleting it.
  2516. */
  2517. int ext4_orphan_add(handle_t *handle, struct inode *inode)
  2518. {
  2519. struct super_block *sb = inode->i_sb;
  2520. struct ext4_sb_info *sbi = EXT4_SB(sb);
  2521. struct ext4_iloc iloc;
  2522. int err = 0, rc;
  2523. bool dirty = false;
  2524. if (!sbi->s_journal || is_bad_inode(inode))
  2525. return 0;
  2526. WARN_ON_ONCE(!(inode->i_state & (I_NEW | I_FREEING)) &&
  2527. !inode_is_locked(inode));
  2528. /*
  2529. * Exit early if inode already is on orphan list. This is a big speedup
  2530. * since we don't have to contend on the global s_orphan_lock.
  2531. */
  2532. if (!list_empty(&EXT4_I(inode)->i_orphan))
  2533. return 0;
  2534. /*
  2535. * Orphan handling is only valid for files with data blocks
  2536. * being truncated, or files being unlinked. Note that we either
  2537. * hold i_mutex, or the inode can not be referenced from outside,
  2538. * so i_nlink should not be bumped due to race
  2539. */
  2540. J_ASSERT((S_ISREG(inode->i_mode) || S_ISDIR(inode->i_mode) ||
  2541. S_ISLNK(inode->i_mode)) || inode->i_nlink == 0);
  2542. BUFFER_TRACE(sbi->s_sbh, "get_write_access");
  2543. err = ext4_journal_get_write_access(handle, sbi->s_sbh);
  2544. if (err)
  2545. goto out;
  2546. err = ext4_reserve_inode_write(handle, inode, &iloc);
  2547. if (err)
  2548. goto out;
  2549. mutex_lock(&sbi->s_orphan_lock);
  2550. /*
  2551. * Due to previous errors inode may be already a part of on-disk
  2552. * orphan list. If so skip on-disk list modification.
  2553. */
  2554. if (!NEXT_ORPHAN(inode) || NEXT_ORPHAN(inode) >
  2555. (le32_to_cpu(sbi->s_es->s_inodes_count))) {
  2556. /* Insert this inode at the head of the on-disk orphan list */
  2557. NEXT_ORPHAN(inode) = le32_to_cpu(sbi->s_es->s_last_orphan);
  2558. sbi->s_es->s_last_orphan = cpu_to_le32(inode->i_ino);
  2559. dirty = true;
  2560. }
  2561. list_add(&EXT4_I(inode)->i_orphan, &sbi->s_orphan);
  2562. mutex_unlock(&sbi->s_orphan_lock);
  2563. if (dirty) {
  2564. err = ext4_handle_dirty_super(handle, sb);
  2565. rc = ext4_mark_iloc_dirty(handle, inode, &iloc);
  2566. if (!err)
  2567. err = rc;
  2568. if (err) {
  2569. /*
  2570. * We have to remove inode from in-memory list if
  2571. * addition to on disk orphan list failed. Stray orphan
  2572. * list entries can cause panics at unmount time.
  2573. */
  2574. mutex_lock(&sbi->s_orphan_lock);
  2575. list_del_init(&EXT4_I(inode)->i_orphan);
  2576. mutex_unlock(&sbi->s_orphan_lock);
  2577. }
  2578. }
  2579. jbd_debug(4, "superblock will point to %lu\n", inode->i_ino);
  2580. jbd_debug(4, "orphan inode %lu will point to %d\n",
  2581. inode->i_ino, NEXT_ORPHAN(inode));
  2582. out:
  2583. ext4_std_error(sb, err);
  2584. return err;
  2585. }
  2586. /*
  2587. * ext4_orphan_del() removes an unlinked or truncated inode from the list
  2588. * of such inodes stored on disk, because it is finally being cleaned up.
  2589. */
  2590. int ext4_orphan_del(handle_t *handle, struct inode *inode)
  2591. {
  2592. struct list_head *prev;
  2593. struct ext4_inode_info *ei = EXT4_I(inode);
  2594. struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
  2595. __u32 ino_next;
  2596. struct ext4_iloc iloc;
  2597. int err = 0;
  2598. if (!sbi->s_journal && !(sbi->s_mount_state & EXT4_ORPHAN_FS))
  2599. return 0;
  2600. WARN_ON_ONCE(!(inode->i_state & (I_NEW | I_FREEING)) &&
  2601. !inode_is_locked(inode));
  2602. /* Do this quick check before taking global s_orphan_lock. */
  2603. if (list_empty(&ei->i_orphan))
  2604. return 0;
  2605. if (handle) {
  2606. /* Grab inode buffer early before taking global s_orphan_lock */
  2607. err = ext4_reserve_inode_write(handle, inode, &iloc);
  2608. }
  2609. mutex_lock(&sbi->s_orphan_lock);
  2610. jbd_debug(4, "remove inode %lu from orphan list\n", inode->i_ino);
  2611. prev = ei->i_orphan.prev;
  2612. list_del_init(&ei->i_orphan);
  2613. /* If we're on an error path, we may not have a valid
  2614. * transaction handle with which to update the orphan list on
  2615. * disk, but we still need to remove the inode from the linked
  2616. * list in memory. */
  2617. if (!handle || err) {
  2618. mutex_unlock(&sbi->s_orphan_lock);
  2619. goto out_err;
  2620. }
  2621. ino_next = NEXT_ORPHAN(inode);
  2622. if (prev == &sbi->s_orphan) {
  2623. jbd_debug(4, "superblock will point to %u\n", ino_next);
  2624. BUFFER_TRACE(sbi->s_sbh, "get_write_access");
  2625. err = ext4_journal_get_write_access(handle, sbi->s_sbh);
  2626. if (err) {
  2627. mutex_unlock(&sbi->s_orphan_lock);
  2628. goto out_brelse;
  2629. }
  2630. sbi->s_es->s_last_orphan = cpu_to_le32(ino_next);
  2631. mutex_unlock(&sbi->s_orphan_lock);
  2632. err = ext4_handle_dirty_super(handle, inode->i_sb);
  2633. } else {
  2634. struct ext4_iloc iloc2;
  2635. struct inode *i_prev =
  2636. &list_entry(prev, struct ext4_inode_info, i_orphan)->vfs_inode;
  2637. jbd_debug(4, "orphan inode %lu will point to %u\n",
  2638. i_prev->i_ino, ino_next);
  2639. err = ext4_reserve_inode_write(handle, i_prev, &iloc2);
  2640. if (err) {
  2641. mutex_unlock(&sbi->s_orphan_lock);
  2642. goto out_brelse;
  2643. }
  2644. NEXT_ORPHAN(i_prev) = ino_next;
  2645. err = ext4_mark_iloc_dirty(handle, i_prev, &iloc2);
  2646. mutex_unlock(&sbi->s_orphan_lock);
  2647. }
  2648. if (err)
  2649. goto out_brelse;
  2650. NEXT_ORPHAN(inode) = 0;
  2651. err = ext4_mark_iloc_dirty(handle, inode, &iloc);
  2652. out_err:
  2653. ext4_std_error(inode->i_sb, err);
  2654. return err;
  2655. out_brelse:
  2656. brelse(iloc.bh);
  2657. goto out_err;
  2658. }
  2659. static int ext4_rmdir(struct inode *dir, struct dentry *dentry)
  2660. {
  2661. int retval;
  2662. struct inode *inode;
  2663. struct buffer_head *bh;
  2664. struct ext4_dir_entry_2 *de;
  2665. handle_t *handle = NULL;
  2666. /* Initialize quotas before so that eventual writes go in
  2667. * separate transaction */
  2668. retval = dquot_initialize(dir);
  2669. if (retval)
  2670. return retval;
  2671. retval = dquot_initialize(d_inode(dentry));
  2672. if (retval)
  2673. return retval;
  2674. retval = -ENOENT;
  2675. bh = ext4_find_entry(dir, &dentry->d_name, &de, NULL);
  2676. if (IS_ERR(bh))
  2677. return PTR_ERR(bh);
  2678. if (!bh)
  2679. goto end_rmdir;
  2680. inode = d_inode(dentry);
  2681. retval = -EFSCORRUPTED;
  2682. if (le32_to_cpu(de->inode) != inode->i_ino)
  2683. goto end_rmdir;
  2684. retval = -ENOTEMPTY;
  2685. if (!ext4_empty_dir(inode))
  2686. goto end_rmdir;
  2687. handle = ext4_journal_start(dir, EXT4_HT_DIR,
  2688. EXT4_DATA_TRANS_BLOCKS(dir->i_sb));
  2689. if (IS_ERR(handle)) {
  2690. retval = PTR_ERR(handle);
  2691. handle = NULL;
  2692. goto end_rmdir;
  2693. }
  2694. if (IS_DIRSYNC(dir))
  2695. ext4_handle_sync(handle);
  2696. retval = ext4_delete_entry(handle, dir, de, bh);
  2697. if (retval)
  2698. goto end_rmdir;
  2699. if (!EXT4_DIR_LINK_EMPTY(inode))
  2700. ext4_warning_inode(inode,
  2701. "empty directory '%.*s' has too many links (%u)",
  2702. dentry->d_name.len, dentry->d_name.name,
  2703. inode->i_nlink);
  2704. inode->i_version++;
  2705. clear_nlink(inode);
  2706. /* There's no need to set i_disksize: the fact that i_nlink is
  2707. * zero will ensure that the right thing happens during any
  2708. * recovery. */
  2709. inode->i_size = 0;
  2710. ext4_orphan_add(handle, inode);
  2711. inode->i_ctime = dir->i_ctime = dir->i_mtime = ext4_current_time(inode);
  2712. ext4_mark_inode_dirty(handle, inode);
  2713. ext4_dec_count(handle, dir);
  2714. ext4_update_dx_flag(dir);
  2715. ext4_mark_inode_dirty(handle, dir);
  2716. end_rmdir:
  2717. brelse(bh);
  2718. if (handle)
  2719. ext4_journal_stop(handle);
  2720. return retval;
  2721. }
  2722. static int ext4_unlink(struct inode *dir, struct dentry *dentry)
  2723. {
  2724. int retval;
  2725. struct inode *inode;
  2726. struct buffer_head *bh;
  2727. struct ext4_dir_entry_2 *de;
  2728. handle_t *handle = NULL;
  2729. trace_ext4_unlink_enter(dir, dentry);
  2730. /* Initialize quotas before so that eventual writes go
  2731. * in separate transaction */
  2732. retval = dquot_initialize(dir);
  2733. if (retval)
  2734. return retval;
  2735. retval = dquot_initialize(d_inode(dentry));
  2736. if (retval)
  2737. return retval;
  2738. retval = -ENOENT;
  2739. bh = ext4_find_entry(dir, &dentry->d_name, &de, NULL);
  2740. if (IS_ERR(bh))
  2741. return PTR_ERR(bh);
  2742. if (!bh)
  2743. goto end_unlink;
  2744. inode = d_inode(dentry);
  2745. retval = -EFSCORRUPTED;
  2746. if (le32_to_cpu(de->inode) != inode->i_ino)
  2747. goto end_unlink;
  2748. handle = ext4_journal_start(dir, EXT4_HT_DIR,
  2749. EXT4_DATA_TRANS_BLOCKS(dir->i_sb));
  2750. if (IS_ERR(handle)) {
  2751. retval = PTR_ERR(handle);
  2752. handle = NULL;
  2753. goto end_unlink;
  2754. }
  2755. if (IS_DIRSYNC(dir))
  2756. ext4_handle_sync(handle);
  2757. if (inode->i_nlink == 0) {
  2758. ext4_warning_inode(inode, "Deleting file '%.*s' with no links",
  2759. dentry->d_name.len, dentry->d_name.name);
  2760. set_nlink(inode, 1);
  2761. }
  2762. retval = ext4_delete_entry(handle, dir, de, bh);
  2763. if (retval)
  2764. goto end_unlink;
  2765. dir->i_ctime = dir->i_mtime = ext4_current_time(dir);
  2766. ext4_update_dx_flag(dir);
  2767. ext4_mark_inode_dirty(handle, dir);
  2768. drop_nlink(inode);
  2769. if (!inode->i_nlink)
  2770. ext4_orphan_add(handle, inode);
  2771. inode->i_ctime = ext4_current_time(inode);
  2772. ext4_mark_inode_dirty(handle, inode);
  2773. end_unlink:
  2774. brelse(bh);
  2775. if (handle)
  2776. ext4_journal_stop(handle);
  2777. trace_ext4_unlink_exit(dentry, retval);
  2778. return retval;
  2779. }
  2780. static int ext4_symlink(struct inode *dir,
  2781. struct dentry *dentry, const char *symname)
  2782. {
  2783. handle_t *handle;
  2784. struct inode *inode;
  2785. int err, len = strlen(symname);
  2786. int credits;
  2787. bool encryption_required;
  2788. struct ext4_str disk_link;
  2789. struct ext4_encrypted_symlink_data *sd = NULL;
  2790. disk_link.len = len + 1;
  2791. disk_link.name = (char *) symname;
  2792. encryption_required = (ext4_encrypted_inode(dir) ||
  2793. DUMMY_ENCRYPTION_ENABLED(EXT4_SB(dir->i_sb)));
  2794. if (encryption_required) {
  2795. err = ext4_get_encryption_info(dir);
  2796. if (err)
  2797. return err;
  2798. if (ext4_encryption_info(dir) == NULL)
  2799. return -EPERM;
  2800. disk_link.len = (ext4_fname_encrypted_size(dir, len) +
  2801. sizeof(struct ext4_encrypted_symlink_data));
  2802. sd = kzalloc(disk_link.len, GFP_KERNEL);
  2803. if (!sd)
  2804. return -ENOMEM;
  2805. }
  2806. if (disk_link.len > dir->i_sb->s_blocksize) {
  2807. err = -ENAMETOOLONG;
  2808. goto err_free_sd;
  2809. }
  2810. err = dquot_initialize(dir);
  2811. if (err)
  2812. goto err_free_sd;
  2813. if ((disk_link.len > EXT4_N_BLOCKS * 4)) {
  2814. /*
  2815. * For non-fast symlinks, we just allocate inode and put it on
  2816. * orphan list in the first transaction => we need bitmap,
  2817. * group descriptor, sb, inode block, quota blocks, and
  2818. * possibly selinux xattr blocks.
  2819. */
  2820. credits = 4 + EXT4_MAXQUOTAS_INIT_BLOCKS(dir->i_sb) +
  2821. EXT4_XATTR_TRANS_BLOCKS;
  2822. } else {
  2823. /*
  2824. * Fast symlink. We have to add entry to directory
  2825. * (EXT4_DATA_TRANS_BLOCKS + EXT4_INDEX_EXTRA_TRANS_BLOCKS),
  2826. * allocate new inode (bitmap, group descriptor, inode block,
  2827. * quota blocks, sb is already counted in previous macros).
  2828. */
  2829. credits = EXT4_DATA_TRANS_BLOCKS(dir->i_sb) +
  2830. EXT4_INDEX_EXTRA_TRANS_BLOCKS + 3;
  2831. }
  2832. inode = ext4_new_inode_start_handle(dir, S_IFLNK|S_IRWXUGO,
  2833. &dentry->d_name, 0, NULL,
  2834. EXT4_HT_DIR, credits);
  2835. handle = ext4_journal_current_handle();
  2836. if (IS_ERR(inode)) {
  2837. if (handle)
  2838. ext4_journal_stop(handle);
  2839. err = PTR_ERR(inode);
  2840. goto err_free_sd;
  2841. }
  2842. if (encryption_required) {
  2843. struct qstr istr;
  2844. struct ext4_str ostr;
  2845. istr.name = (const unsigned char *) symname;
  2846. istr.len = len;
  2847. ostr.name = sd->encrypted_path;
  2848. ostr.len = disk_link.len;
  2849. err = ext4_fname_usr_to_disk(inode, &istr, &ostr);
  2850. if (err < 0)
  2851. goto err_drop_inode;
  2852. sd->len = cpu_to_le16(ostr.len);
  2853. disk_link.name = (char *) sd;
  2854. inode->i_op = &ext4_encrypted_symlink_inode_operations;
  2855. }
  2856. if ((disk_link.len > EXT4_N_BLOCKS * 4)) {
  2857. if (!encryption_required)
  2858. inode->i_op = &ext4_symlink_inode_operations;
  2859. inode_nohighmem(inode);
  2860. ext4_set_aops(inode);
  2861. /*
  2862. * We cannot call page_symlink() with transaction started
  2863. * because it calls into ext4_write_begin() which can wait
  2864. * for transaction commit if we are running out of space
  2865. * and thus we deadlock. So we have to stop transaction now
  2866. * and restart it when symlink contents is written.
  2867. *
  2868. * To keep fs consistent in case of crash, we have to put inode
  2869. * to orphan list in the mean time.
  2870. */
  2871. drop_nlink(inode);
  2872. err = ext4_orphan_add(handle, inode);
  2873. ext4_journal_stop(handle);
  2874. handle = NULL;
  2875. if (err)
  2876. goto err_drop_inode;
  2877. err = __page_symlink(inode, disk_link.name, disk_link.len, 1);
  2878. if (err)
  2879. goto err_drop_inode;
  2880. /*
  2881. * Now inode is being linked into dir (EXT4_DATA_TRANS_BLOCKS
  2882. * + EXT4_INDEX_EXTRA_TRANS_BLOCKS), inode is also modified
  2883. */
  2884. handle = ext4_journal_start(dir, EXT4_HT_DIR,
  2885. EXT4_DATA_TRANS_BLOCKS(dir->i_sb) +
  2886. EXT4_INDEX_EXTRA_TRANS_BLOCKS + 1);
  2887. if (IS_ERR(handle)) {
  2888. err = PTR_ERR(handle);
  2889. handle = NULL;
  2890. goto err_drop_inode;
  2891. }
  2892. set_nlink(inode, 1);
  2893. err = ext4_orphan_del(handle, inode);
  2894. if (err)
  2895. goto err_drop_inode;
  2896. } else {
  2897. /* clear the extent format for fast symlink */
  2898. ext4_clear_inode_flag(inode, EXT4_INODE_EXTENTS);
  2899. if (!encryption_required) {
  2900. inode->i_op = &ext4_fast_symlink_inode_operations;
  2901. inode->i_link = (char *)&EXT4_I(inode)->i_data;
  2902. }
  2903. memcpy((char *)&EXT4_I(inode)->i_data, disk_link.name,
  2904. disk_link.len);
  2905. inode->i_size = disk_link.len - 1;
  2906. }
  2907. EXT4_I(inode)->i_disksize = inode->i_size;
  2908. err = ext4_add_nondir(handle, dentry, inode);
  2909. if (!err && IS_DIRSYNC(dir))
  2910. ext4_handle_sync(handle);
  2911. if (handle)
  2912. ext4_journal_stop(handle);
  2913. kfree(sd);
  2914. return err;
  2915. err_drop_inode:
  2916. if (handle)
  2917. ext4_journal_stop(handle);
  2918. clear_nlink(inode);
  2919. unlock_new_inode(inode);
  2920. iput(inode);
  2921. err_free_sd:
  2922. kfree(sd);
  2923. return err;
  2924. }
  2925. static int ext4_link(struct dentry *old_dentry,
  2926. struct inode *dir, struct dentry *dentry)
  2927. {
  2928. handle_t *handle;
  2929. struct inode *inode = d_inode(old_dentry);
  2930. int err, retries = 0;
  2931. if (inode->i_nlink >= EXT4_LINK_MAX)
  2932. return -EMLINK;
  2933. if (ext4_encrypted_inode(dir) &&
  2934. !ext4_is_child_context_consistent_with_parent(dir, inode))
  2935. return -EPERM;
  2936. if ((ext4_test_inode_flag(dir, EXT4_INODE_PROJINHERIT)) &&
  2937. (!projid_eq(EXT4_I(dir)->i_projid,
  2938. EXT4_I(old_dentry->d_inode)->i_projid)))
  2939. return -EXDEV;
  2940. err = dquot_initialize(dir);
  2941. if (err)
  2942. return err;
  2943. retry:
  2944. handle = ext4_journal_start(dir, EXT4_HT_DIR,
  2945. (EXT4_DATA_TRANS_BLOCKS(dir->i_sb) +
  2946. EXT4_INDEX_EXTRA_TRANS_BLOCKS) + 1);
  2947. if (IS_ERR(handle))
  2948. return PTR_ERR(handle);
  2949. if (IS_DIRSYNC(dir))
  2950. ext4_handle_sync(handle);
  2951. inode->i_ctime = ext4_current_time(inode);
  2952. ext4_inc_count(handle, inode);
  2953. ihold(inode);
  2954. err = ext4_add_entry(handle, dentry, inode);
  2955. if (!err) {
  2956. ext4_mark_inode_dirty(handle, inode);
  2957. /* this can happen only for tmpfile being
  2958. * linked the first time
  2959. */
  2960. if (inode->i_nlink == 1)
  2961. ext4_orphan_del(handle, inode);
  2962. d_instantiate(dentry, inode);
  2963. } else {
  2964. drop_nlink(inode);
  2965. iput(inode);
  2966. }
  2967. ext4_journal_stop(handle);
  2968. if (err == -ENOSPC && ext4_should_retry_alloc(dir->i_sb, &retries))
  2969. goto retry;
  2970. return err;
  2971. }
  2972. /*
  2973. * Try to find buffer head where contains the parent block.
  2974. * It should be the inode block if it is inlined or the 1st block
  2975. * if it is a normal dir.
  2976. */
  2977. static struct buffer_head *ext4_get_first_dir_block(handle_t *handle,
  2978. struct inode *inode,
  2979. int *retval,
  2980. struct ext4_dir_entry_2 **parent_de,
  2981. int *inlined)
  2982. {
  2983. struct buffer_head *bh;
  2984. if (!ext4_has_inline_data(inode)) {
  2985. bh = ext4_read_dirblock(inode, 0, EITHER);
  2986. if (IS_ERR(bh)) {
  2987. *retval = PTR_ERR(bh);
  2988. return NULL;
  2989. }
  2990. *parent_de = ext4_next_entry(
  2991. (struct ext4_dir_entry_2 *)bh->b_data,
  2992. inode->i_sb->s_blocksize);
  2993. return bh;
  2994. }
  2995. *inlined = 1;
  2996. return ext4_get_first_inline_block(inode, parent_de, retval);
  2997. }
  2998. struct ext4_renament {
  2999. struct inode *dir;
  3000. struct dentry *dentry;
  3001. struct inode *inode;
  3002. bool is_dir;
  3003. int dir_nlink_delta;
  3004. /* entry for "dentry" */
  3005. struct buffer_head *bh;
  3006. struct ext4_dir_entry_2 *de;
  3007. int inlined;
  3008. /* entry for ".." in inode if it's a directory */
  3009. struct buffer_head *dir_bh;
  3010. struct ext4_dir_entry_2 *parent_de;
  3011. int dir_inlined;
  3012. };
  3013. static int ext4_rename_dir_prepare(handle_t *handle, struct ext4_renament *ent)
  3014. {
  3015. int retval;
  3016. ent->dir_bh = ext4_get_first_dir_block(handle, ent->inode,
  3017. &retval, &ent->parent_de,
  3018. &ent->dir_inlined);
  3019. if (!ent->dir_bh)
  3020. return retval;
  3021. if (le32_to_cpu(ent->parent_de->inode) != ent->dir->i_ino)
  3022. return -EFSCORRUPTED;
  3023. BUFFER_TRACE(ent->dir_bh, "get_write_access");
  3024. return ext4_journal_get_write_access(handle, ent->dir_bh);
  3025. }
  3026. static int ext4_rename_dir_finish(handle_t *handle, struct ext4_renament *ent,
  3027. unsigned dir_ino)
  3028. {
  3029. int retval;
  3030. ent->parent_de->inode = cpu_to_le32(dir_ino);
  3031. BUFFER_TRACE(ent->dir_bh, "call ext4_handle_dirty_metadata");
  3032. if (!ent->dir_inlined) {
  3033. if (is_dx(ent->inode)) {
  3034. retval = ext4_handle_dirty_dx_node(handle,
  3035. ent->inode,
  3036. ent->dir_bh);
  3037. } else {
  3038. retval = ext4_handle_dirty_dirent_node(handle,
  3039. ent->inode,
  3040. ent->dir_bh);
  3041. }
  3042. } else {
  3043. retval = ext4_mark_inode_dirty(handle, ent->inode);
  3044. }
  3045. if (retval) {
  3046. ext4_std_error(ent->dir->i_sb, retval);
  3047. return retval;
  3048. }
  3049. return 0;
  3050. }
  3051. static int ext4_setent(handle_t *handle, struct ext4_renament *ent,
  3052. unsigned ino, unsigned file_type)
  3053. {
  3054. int retval;
  3055. BUFFER_TRACE(ent->bh, "get write access");
  3056. retval = ext4_journal_get_write_access(handle, ent->bh);
  3057. if (retval)
  3058. return retval;
  3059. ent->de->inode = cpu_to_le32(ino);
  3060. if (ext4_has_feature_filetype(ent->dir->i_sb))
  3061. ent->de->file_type = file_type;
  3062. ent->dir->i_version++;
  3063. ent->dir->i_ctime = ent->dir->i_mtime =
  3064. ext4_current_time(ent->dir);
  3065. ext4_mark_inode_dirty(handle, ent->dir);
  3066. BUFFER_TRACE(ent->bh, "call ext4_handle_dirty_metadata");
  3067. if (!ent->inlined) {
  3068. retval = ext4_handle_dirty_dirent_node(handle,
  3069. ent->dir, ent->bh);
  3070. if (unlikely(retval)) {
  3071. ext4_std_error(ent->dir->i_sb, retval);
  3072. return retval;
  3073. }
  3074. }
  3075. brelse(ent->bh);
  3076. ent->bh = NULL;
  3077. return 0;
  3078. }
  3079. static int ext4_find_delete_entry(handle_t *handle, struct inode *dir,
  3080. const struct qstr *d_name)
  3081. {
  3082. int retval = -ENOENT;
  3083. struct buffer_head *bh;
  3084. struct ext4_dir_entry_2 *de;
  3085. bh = ext4_find_entry(dir, d_name, &de, NULL);
  3086. if (IS_ERR(bh))
  3087. return PTR_ERR(bh);
  3088. if (bh) {
  3089. retval = ext4_delete_entry(handle, dir, de, bh);
  3090. brelse(bh);
  3091. }
  3092. return retval;
  3093. }
  3094. static void ext4_rename_delete(handle_t *handle, struct ext4_renament *ent,
  3095. int force_reread)
  3096. {
  3097. int retval;
  3098. /*
  3099. * ent->de could have moved from under us during htree split, so make
  3100. * sure that we are deleting the right entry. We might also be pointing
  3101. * to a stale entry in the unused part of ent->bh so just checking inum
  3102. * and the name isn't enough.
  3103. */
  3104. if (le32_to_cpu(ent->de->inode) != ent->inode->i_ino ||
  3105. ent->de->name_len != ent->dentry->d_name.len ||
  3106. strncmp(ent->de->name, ent->dentry->d_name.name,
  3107. ent->de->name_len) ||
  3108. force_reread) {
  3109. retval = ext4_find_delete_entry(handle, ent->dir,
  3110. &ent->dentry->d_name);
  3111. } else {
  3112. retval = ext4_delete_entry(handle, ent->dir, ent->de, ent->bh);
  3113. if (retval == -ENOENT) {
  3114. retval = ext4_find_delete_entry(handle, ent->dir,
  3115. &ent->dentry->d_name);
  3116. }
  3117. }
  3118. if (retval) {
  3119. ext4_warning_inode(ent->dir,
  3120. "Deleting old file: nlink %d, error=%d",
  3121. ent->dir->i_nlink, retval);
  3122. }
  3123. }
  3124. static void ext4_update_dir_count(handle_t *handle, struct ext4_renament *ent)
  3125. {
  3126. if (ent->dir_nlink_delta) {
  3127. if (ent->dir_nlink_delta == -1)
  3128. ext4_dec_count(handle, ent->dir);
  3129. else
  3130. ext4_inc_count(handle, ent->dir);
  3131. ext4_mark_inode_dirty(handle, ent->dir);
  3132. }
  3133. }
  3134. static struct inode *ext4_whiteout_for_rename(struct ext4_renament *ent,
  3135. int credits, handle_t **h)
  3136. {
  3137. struct inode *wh;
  3138. handle_t *handle;
  3139. int retries = 0;
  3140. /*
  3141. * for inode block, sb block, group summaries,
  3142. * and inode bitmap
  3143. */
  3144. credits += (EXT4_MAXQUOTAS_TRANS_BLOCKS(ent->dir->i_sb) +
  3145. EXT4_XATTR_TRANS_BLOCKS + 4);
  3146. retry:
  3147. wh = ext4_new_inode_start_handle(ent->dir, S_IFCHR | WHITEOUT_MODE,
  3148. &ent->dentry->d_name, 0, NULL,
  3149. EXT4_HT_DIR, credits);
  3150. handle = ext4_journal_current_handle();
  3151. if (IS_ERR(wh)) {
  3152. if (handle)
  3153. ext4_journal_stop(handle);
  3154. if (PTR_ERR(wh) == -ENOSPC &&
  3155. ext4_should_retry_alloc(ent->dir->i_sb, &retries))
  3156. goto retry;
  3157. } else {
  3158. *h = handle;
  3159. init_special_inode(wh, wh->i_mode, WHITEOUT_DEV);
  3160. wh->i_op = &ext4_special_inode_operations;
  3161. }
  3162. return wh;
  3163. }
  3164. /*
  3165. * Anybody can rename anything with this: the permission checks are left to the
  3166. * higher-level routines.
  3167. *
  3168. * n.b. old_{dentry,inode) refers to the source dentry/inode
  3169. * while new_{dentry,inode) refers to the destination dentry/inode
  3170. * This comes from rename(const char *oldpath, const char *newpath)
  3171. */
  3172. static int ext4_rename(struct inode *old_dir, struct dentry *old_dentry,
  3173. struct inode *new_dir, struct dentry *new_dentry,
  3174. unsigned int flags)
  3175. {
  3176. handle_t *handle = NULL;
  3177. struct ext4_renament old = {
  3178. .dir = old_dir,
  3179. .dentry = old_dentry,
  3180. .inode = d_inode(old_dentry),
  3181. };
  3182. struct ext4_renament new = {
  3183. .dir = new_dir,
  3184. .dentry = new_dentry,
  3185. .inode = d_inode(new_dentry),
  3186. };
  3187. int force_reread;
  3188. int retval;
  3189. struct inode *whiteout = NULL;
  3190. int credits;
  3191. u8 old_file_type;
  3192. if ((ext4_test_inode_flag(new_dir, EXT4_INODE_PROJINHERIT)) &&
  3193. (!projid_eq(EXT4_I(new_dir)->i_projid,
  3194. EXT4_I(old_dentry->d_inode)->i_projid)))
  3195. return -EXDEV;
  3196. retval = dquot_initialize(old.dir);
  3197. if (retval)
  3198. return retval;
  3199. retval = dquot_initialize(new.dir);
  3200. if (retval)
  3201. return retval;
  3202. /* Initialize quotas before so that eventual writes go
  3203. * in separate transaction */
  3204. if (new.inode) {
  3205. retval = dquot_initialize(new.inode);
  3206. if (retval)
  3207. return retval;
  3208. }
  3209. old.bh = ext4_find_entry(old.dir, &old.dentry->d_name, &old.de, NULL);
  3210. if (IS_ERR(old.bh))
  3211. return PTR_ERR(old.bh);
  3212. /*
  3213. * Check for inode number is _not_ due to possible IO errors.
  3214. * We might rmdir the source, keep it as pwd of some process
  3215. * and merrily kill the link to whatever was created under the
  3216. * same name. Goodbye sticky bit ;-<
  3217. */
  3218. retval = -ENOENT;
  3219. if (!old.bh || le32_to_cpu(old.de->inode) != old.inode->i_ino)
  3220. goto end_rename;
  3221. if ((old.dir != new.dir) &&
  3222. ext4_encrypted_inode(new.dir) &&
  3223. !ext4_is_child_context_consistent_with_parent(new.dir,
  3224. old.inode)) {
  3225. retval = -EPERM;
  3226. goto end_rename;
  3227. }
  3228. new.bh = ext4_find_entry(new.dir, &new.dentry->d_name,
  3229. &new.de, &new.inlined);
  3230. if (IS_ERR(new.bh)) {
  3231. retval = PTR_ERR(new.bh);
  3232. new.bh = NULL;
  3233. goto end_rename;
  3234. }
  3235. if (new.bh) {
  3236. if (!new.inode) {
  3237. brelse(new.bh);
  3238. new.bh = NULL;
  3239. }
  3240. }
  3241. if (new.inode && !test_opt(new.dir->i_sb, NO_AUTO_DA_ALLOC))
  3242. ext4_alloc_da_blocks(old.inode);
  3243. credits = (2 * EXT4_DATA_TRANS_BLOCKS(old.dir->i_sb) +
  3244. EXT4_INDEX_EXTRA_TRANS_BLOCKS + 2);
  3245. if (!(flags & RENAME_WHITEOUT)) {
  3246. handle = ext4_journal_start(old.dir, EXT4_HT_DIR, credits);
  3247. if (IS_ERR(handle)) {
  3248. retval = PTR_ERR(handle);
  3249. handle = NULL;
  3250. goto end_rename;
  3251. }
  3252. } else {
  3253. whiteout = ext4_whiteout_for_rename(&old, credits, &handle);
  3254. if (IS_ERR(whiteout)) {
  3255. retval = PTR_ERR(whiteout);
  3256. whiteout = NULL;
  3257. goto end_rename;
  3258. }
  3259. }
  3260. if (IS_DIRSYNC(old.dir) || IS_DIRSYNC(new.dir))
  3261. ext4_handle_sync(handle);
  3262. if (S_ISDIR(old.inode->i_mode)) {
  3263. if (new.inode) {
  3264. retval = -ENOTEMPTY;
  3265. if (!ext4_empty_dir(new.inode))
  3266. goto end_rename;
  3267. } else {
  3268. retval = -EMLINK;
  3269. if (new.dir != old.dir && EXT4_DIR_LINK_MAX(new.dir))
  3270. goto end_rename;
  3271. }
  3272. retval = ext4_rename_dir_prepare(handle, &old);
  3273. if (retval)
  3274. goto end_rename;
  3275. }
  3276. /*
  3277. * If we're renaming a file within an inline_data dir and adding or
  3278. * setting the new dirent causes a conversion from inline_data to
  3279. * extents/blockmap, we need to force the dirent delete code to
  3280. * re-read the directory, or else we end up trying to delete a dirent
  3281. * from what is now the extent tree root (or a block map).
  3282. */
  3283. force_reread = (new.dir->i_ino == old.dir->i_ino &&
  3284. ext4_test_inode_flag(new.dir, EXT4_INODE_INLINE_DATA));
  3285. old_file_type = old.de->file_type;
  3286. if (whiteout) {
  3287. /*
  3288. * Do this before adding a new entry, so the old entry is sure
  3289. * to be still pointing to the valid old entry.
  3290. */
  3291. retval = ext4_setent(handle, &old, whiteout->i_ino,
  3292. EXT4_FT_CHRDEV);
  3293. if (retval)
  3294. goto end_rename;
  3295. ext4_mark_inode_dirty(handle, whiteout);
  3296. }
  3297. if (!new.bh) {
  3298. retval = ext4_add_entry(handle, new.dentry, old.inode);
  3299. if (retval)
  3300. goto end_rename;
  3301. } else {
  3302. retval = ext4_setent(handle, &new,
  3303. old.inode->i_ino, old_file_type);
  3304. if (retval)
  3305. goto end_rename;
  3306. }
  3307. if (force_reread)
  3308. force_reread = !ext4_test_inode_flag(new.dir,
  3309. EXT4_INODE_INLINE_DATA);
  3310. /*
  3311. * Like most other Unix systems, set the ctime for inodes on a
  3312. * rename.
  3313. */
  3314. old.inode->i_ctime = ext4_current_time(old.inode);
  3315. ext4_mark_inode_dirty(handle, old.inode);
  3316. if (!whiteout) {
  3317. /*
  3318. * ok, that's it
  3319. */
  3320. ext4_rename_delete(handle, &old, force_reread);
  3321. }
  3322. if (new.inode) {
  3323. ext4_dec_count(handle, new.inode);
  3324. new.inode->i_ctime = ext4_current_time(new.inode);
  3325. }
  3326. old.dir->i_ctime = old.dir->i_mtime = ext4_current_time(old.dir);
  3327. ext4_update_dx_flag(old.dir);
  3328. if (old.dir_bh) {
  3329. retval = ext4_rename_dir_finish(handle, &old, new.dir->i_ino);
  3330. if (retval)
  3331. goto end_rename;
  3332. ext4_dec_count(handle, old.dir);
  3333. if (new.inode) {
  3334. /* checked ext4_empty_dir above, can't have another
  3335. * parent, ext4_dec_count() won't work for many-linked
  3336. * dirs */
  3337. clear_nlink(new.inode);
  3338. } else {
  3339. ext4_inc_count(handle, new.dir);
  3340. ext4_update_dx_flag(new.dir);
  3341. ext4_mark_inode_dirty(handle, new.dir);
  3342. }
  3343. }
  3344. ext4_mark_inode_dirty(handle, old.dir);
  3345. if (new.inode) {
  3346. ext4_mark_inode_dirty(handle, new.inode);
  3347. if (!new.inode->i_nlink)
  3348. ext4_orphan_add(handle, new.inode);
  3349. }
  3350. retval = 0;
  3351. end_rename:
  3352. brelse(old.dir_bh);
  3353. brelse(old.bh);
  3354. brelse(new.bh);
  3355. if (whiteout) {
  3356. if (retval)
  3357. drop_nlink(whiteout);
  3358. unlock_new_inode(whiteout);
  3359. iput(whiteout);
  3360. }
  3361. if (handle)
  3362. ext4_journal_stop(handle);
  3363. return retval;
  3364. }
  3365. static int ext4_cross_rename(struct inode *old_dir, struct dentry *old_dentry,
  3366. struct inode *new_dir, struct dentry *new_dentry)
  3367. {
  3368. handle_t *handle = NULL;
  3369. struct ext4_renament old = {
  3370. .dir = old_dir,
  3371. .dentry = old_dentry,
  3372. .inode = d_inode(old_dentry),
  3373. };
  3374. struct ext4_renament new = {
  3375. .dir = new_dir,
  3376. .dentry = new_dentry,
  3377. .inode = d_inode(new_dentry),
  3378. };
  3379. u8 new_file_type;
  3380. int retval;
  3381. if ((ext4_encrypted_inode(old_dir) ||
  3382. ext4_encrypted_inode(new_dir)) &&
  3383. (old_dir != new_dir) &&
  3384. (!ext4_is_child_context_consistent_with_parent(new_dir,
  3385. old.inode) ||
  3386. !ext4_is_child_context_consistent_with_parent(old_dir,
  3387. new.inode)))
  3388. return -EPERM;
  3389. if ((ext4_test_inode_flag(new_dir, EXT4_INODE_PROJINHERIT) &&
  3390. !projid_eq(EXT4_I(new_dir)->i_projid,
  3391. EXT4_I(old_dentry->d_inode)->i_projid)) ||
  3392. (ext4_test_inode_flag(old_dir, EXT4_INODE_PROJINHERIT) &&
  3393. !projid_eq(EXT4_I(old_dir)->i_projid,
  3394. EXT4_I(new_dentry->d_inode)->i_projid)))
  3395. return -EXDEV;
  3396. retval = dquot_initialize(old.dir);
  3397. if (retval)
  3398. return retval;
  3399. retval = dquot_initialize(new.dir);
  3400. if (retval)
  3401. return retval;
  3402. old.bh = ext4_find_entry(old.dir, &old.dentry->d_name,
  3403. &old.de, &old.inlined);
  3404. if (IS_ERR(old.bh))
  3405. return PTR_ERR(old.bh);
  3406. /*
  3407. * Check for inode number is _not_ due to possible IO errors.
  3408. * We might rmdir the source, keep it as pwd of some process
  3409. * and merrily kill the link to whatever was created under the
  3410. * same name. Goodbye sticky bit ;-<
  3411. */
  3412. retval = -ENOENT;
  3413. if (!old.bh || le32_to_cpu(old.de->inode) != old.inode->i_ino)
  3414. goto end_rename;
  3415. new.bh = ext4_find_entry(new.dir, &new.dentry->d_name,
  3416. &new.de, &new.inlined);
  3417. if (IS_ERR(new.bh)) {
  3418. retval = PTR_ERR(new.bh);
  3419. new.bh = NULL;
  3420. goto end_rename;
  3421. }
  3422. /* RENAME_EXCHANGE case: old *and* new must both exist */
  3423. if (!new.bh || le32_to_cpu(new.de->inode) != new.inode->i_ino)
  3424. goto end_rename;
  3425. handle = ext4_journal_start(old.dir, EXT4_HT_DIR,
  3426. (2 * EXT4_DATA_TRANS_BLOCKS(old.dir->i_sb) +
  3427. 2 * EXT4_INDEX_EXTRA_TRANS_BLOCKS + 2));
  3428. if (IS_ERR(handle)) {
  3429. retval = PTR_ERR(handle);
  3430. handle = NULL;
  3431. goto end_rename;
  3432. }
  3433. if (IS_DIRSYNC(old.dir) || IS_DIRSYNC(new.dir))
  3434. ext4_handle_sync(handle);
  3435. if (S_ISDIR(old.inode->i_mode)) {
  3436. old.is_dir = true;
  3437. retval = ext4_rename_dir_prepare(handle, &old);
  3438. if (retval)
  3439. goto end_rename;
  3440. }
  3441. if (S_ISDIR(new.inode->i_mode)) {
  3442. new.is_dir = true;
  3443. retval = ext4_rename_dir_prepare(handle, &new);
  3444. if (retval)
  3445. goto end_rename;
  3446. }
  3447. /*
  3448. * Other than the special case of overwriting a directory, parents'
  3449. * nlink only needs to be modified if this is a cross directory rename.
  3450. */
  3451. if (old.dir != new.dir && old.is_dir != new.is_dir) {
  3452. old.dir_nlink_delta = old.is_dir ? -1 : 1;
  3453. new.dir_nlink_delta = -old.dir_nlink_delta;
  3454. retval = -EMLINK;
  3455. if ((old.dir_nlink_delta > 0 && EXT4_DIR_LINK_MAX(old.dir)) ||
  3456. (new.dir_nlink_delta > 0 && EXT4_DIR_LINK_MAX(new.dir)))
  3457. goto end_rename;
  3458. }
  3459. new_file_type = new.de->file_type;
  3460. retval = ext4_setent(handle, &new, old.inode->i_ino, old.de->file_type);
  3461. if (retval)
  3462. goto end_rename;
  3463. retval = ext4_setent(handle, &old, new.inode->i_ino, new_file_type);
  3464. if (retval)
  3465. goto end_rename;
  3466. /*
  3467. * Like most other Unix systems, set the ctime for inodes on a
  3468. * rename.
  3469. */
  3470. old.inode->i_ctime = ext4_current_time(old.inode);
  3471. new.inode->i_ctime = ext4_current_time(new.inode);
  3472. ext4_mark_inode_dirty(handle, old.inode);
  3473. ext4_mark_inode_dirty(handle, new.inode);
  3474. if (old.dir_bh) {
  3475. retval = ext4_rename_dir_finish(handle, &old, new.dir->i_ino);
  3476. if (retval)
  3477. goto end_rename;
  3478. }
  3479. if (new.dir_bh) {
  3480. retval = ext4_rename_dir_finish(handle, &new, old.dir->i_ino);
  3481. if (retval)
  3482. goto end_rename;
  3483. }
  3484. ext4_update_dir_count(handle, &old);
  3485. ext4_update_dir_count(handle, &new);
  3486. retval = 0;
  3487. end_rename:
  3488. brelse(old.dir_bh);
  3489. brelse(new.dir_bh);
  3490. brelse(old.bh);
  3491. brelse(new.bh);
  3492. if (handle)
  3493. ext4_journal_stop(handle);
  3494. return retval;
  3495. }
  3496. static int ext4_rename2(struct inode *old_dir, struct dentry *old_dentry,
  3497. struct inode *new_dir, struct dentry *new_dentry,
  3498. unsigned int flags)
  3499. {
  3500. if (flags & ~(RENAME_NOREPLACE | RENAME_EXCHANGE | RENAME_WHITEOUT))
  3501. return -EINVAL;
  3502. if (flags & RENAME_EXCHANGE) {
  3503. return ext4_cross_rename(old_dir, old_dentry,
  3504. new_dir, new_dentry);
  3505. }
  3506. return ext4_rename(old_dir, old_dentry, new_dir, new_dentry, flags);
  3507. }
  3508. /*
  3509. * directories can handle most operations...
  3510. */
  3511. const struct inode_operations ext4_dir_inode_operations = {
  3512. .create = ext4_create,
  3513. .lookup = ext4_lookup,
  3514. .link = ext4_link,
  3515. .unlink = ext4_unlink,
  3516. .symlink = ext4_symlink,
  3517. .mkdir = ext4_mkdir,
  3518. .rmdir = ext4_rmdir,
  3519. .mknod = ext4_mknod,
  3520. .tmpfile = ext4_tmpfile,
  3521. .rename2 = ext4_rename2,
  3522. .setattr = ext4_setattr,
  3523. .setxattr = generic_setxattr,
  3524. .getxattr = generic_getxattr,
  3525. .listxattr = ext4_listxattr,
  3526. .removexattr = generic_removexattr,
  3527. .get_acl = ext4_get_acl,
  3528. .set_acl = ext4_set_acl,
  3529. .fiemap = ext4_fiemap,
  3530. };
  3531. const struct inode_operations ext4_special_inode_operations = {
  3532. .setattr = ext4_setattr,
  3533. .setxattr = generic_setxattr,
  3534. .getxattr = generic_getxattr,
  3535. .listxattr = ext4_listxattr,
  3536. .removexattr = generic_removexattr,
  3537. .get_acl = ext4_get_acl,
  3538. .set_acl = ext4_set_acl,
  3539. };