brec.c 13 KB

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  1. /*
  2. * linux/fs/hfsplus/brec.c
  3. *
  4. * Copyright (C) 2001
  5. * Brad Boyer (flar@allandria.com)
  6. * (C) 2003 Ardis Technologies <roman@ardistech.com>
  7. *
  8. * Handle individual btree records
  9. */
  10. #include "hfsplus_fs.h"
  11. #include "hfsplus_raw.h"
  12. static struct hfs_bnode *hfs_bnode_split(struct hfs_find_data *fd);
  13. static int hfs_brec_update_parent(struct hfs_find_data *fd);
  14. static int hfs_btree_inc_height(struct hfs_btree *);
  15. /* Get the length and offset of the given record in the given node */
  16. u16 hfs_brec_lenoff(struct hfs_bnode *node, u16 rec, u16 *off)
  17. {
  18. __be16 retval[2];
  19. u16 dataoff;
  20. dataoff = node->tree->node_size - (rec + 2) * 2;
  21. hfs_bnode_read(node, retval, dataoff, 4);
  22. *off = be16_to_cpu(retval[1]);
  23. return be16_to_cpu(retval[0]) - *off;
  24. }
  25. /* Get the length of the key from a keyed record */
  26. u16 hfs_brec_keylen(struct hfs_bnode *node, u16 rec)
  27. {
  28. u16 retval, recoff;
  29. if (node->type != HFS_NODE_INDEX && node->type != HFS_NODE_LEAF)
  30. return 0;
  31. if ((node->type == HFS_NODE_INDEX) &&
  32. !(node->tree->attributes & HFS_TREE_VARIDXKEYS) &&
  33. (node->tree->cnid != HFSPLUS_ATTR_CNID)) {
  34. retval = node->tree->max_key_len + 2;
  35. } else {
  36. recoff = hfs_bnode_read_u16(node,
  37. node->tree->node_size - (rec + 1) * 2);
  38. if (!recoff)
  39. return 0;
  40. if (recoff > node->tree->node_size - 2) {
  41. printk(KERN_ERR "hfs: recoff %d too large\n", recoff);
  42. return 0;
  43. }
  44. retval = hfs_bnode_read_u16(node, recoff) + 2;
  45. if (retval > node->tree->max_key_len + 2) {
  46. printk(KERN_ERR "hfs: keylen %d too large\n",
  47. retval);
  48. retval = 0;
  49. }
  50. }
  51. return retval;
  52. }
  53. int hfs_brec_insert(struct hfs_find_data *fd, void *entry, int entry_len)
  54. {
  55. struct hfs_btree *tree;
  56. struct hfs_bnode *node, *new_node;
  57. int size, key_len, rec;
  58. int data_off, end_off;
  59. int idx_rec_off, data_rec_off, end_rec_off;
  60. __be32 cnid;
  61. tree = fd->tree;
  62. if (!fd->bnode) {
  63. if (!tree->root)
  64. hfs_btree_inc_height(tree);
  65. fd->bnode = hfs_bnode_find(tree, tree->leaf_head);
  66. if (IS_ERR(fd->bnode))
  67. return PTR_ERR(fd->bnode);
  68. fd->record = -1;
  69. }
  70. new_node = NULL;
  71. key_len = be16_to_cpu(fd->search_key->key_len) + 2;
  72. again:
  73. /* new record idx and complete record size */
  74. rec = fd->record + 1;
  75. size = key_len + entry_len;
  76. node = fd->bnode;
  77. hfs_bnode_dump(node);
  78. /* get last offset */
  79. end_rec_off = tree->node_size - (node->num_recs + 1) * 2;
  80. end_off = hfs_bnode_read_u16(node, end_rec_off);
  81. end_rec_off -= 2;
  82. dprint(DBG_BNODE_MOD, "insert_rec: %d, %d, %d, %d\n",
  83. rec, size, end_off, end_rec_off);
  84. if (size > end_rec_off - end_off) {
  85. if (new_node)
  86. panic("not enough room!\n");
  87. new_node = hfs_bnode_split(fd);
  88. if (IS_ERR(new_node))
  89. return PTR_ERR(new_node);
  90. goto again;
  91. }
  92. if (node->type == HFS_NODE_LEAF) {
  93. tree->leaf_count++;
  94. mark_inode_dirty(tree->inode);
  95. }
  96. node->num_recs++;
  97. /* write new last offset */
  98. hfs_bnode_write_u16(node,
  99. offsetof(struct hfs_bnode_desc, num_recs),
  100. node->num_recs);
  101. hfs_bnode_write_u16(node, end_rec_off, end_off + size);
  102. data_off = end_off;
  103. data_rec_off = end_rec_off + 2;
  104. idx_rec_off = tree->node_size - (rec + 1) * 2;
  105. if (idx_rec_off == data_rec_off)
  106. goto skip;
  107. /* move all following entries */
  108. do {
  109. data_off = hfs_bnode_read_u16(node, data_rec_off + 2);
  110. hfs_bnode_write_u16(node, data_rec_off, data_off + size);
  111. data_rec_off += 2;
  112. } while (data_rec_off < idx_rec_off);
  113. /* move data away */
  114. hfs_bnode_move(node, data_off + size, data_off,
  115. end_off - data_off);
  116. skip:
  117. hfs_bnode_write(node, fd->search_key, data_off, key_len);
  118. hfs_bnode_write(node, entry, data_off + key_len, entry_len);
  119. hfs_bnode_dump(node);
  120. if (new_node) {
  121. /* update parent key if we inserted a key
  122. * at the start of the first node
  123. */
  124. if (!rec && new_node != node)
  125. hfs_brec_update_parent(fd);
  126. hfs_bnode_put(fd->bnode);
  127. if (!new_node->parent) {
  128. hfs_btree_inc_height(tree);
  129. new_node->parent = tree->root;
  130. }
  131. fd->bnode = hfs_bnode_find(tree, new_node->parent);
  132. /* create index data entry */
  133. cnid = cpu_to_be32(new_node->this);
  134. entry = &cnid;
  135. entry_len = sizeof(cnid);
  136. /* get index key */
  137. hfs_bnode_read_key(new_node, fd->search_key, 14);
  138. __hfs_brec_find(fd->bnode, fd, hfs_find_rec_by_key);
  139. hfs_bnode_put(new_node);
  140. new_node = NULL;
  141. if ((tree->attributes & HFS_TREE_VARIDXKEYS) ||
  142. (tree->cnid == HFSPLUS_ATTR_CNID))
  143. key_len = be16_to_cpu(fd->search_key->key_len) + 2;
  144. else {
  145. fd->search_key->key_len =
  146. cpu_to_be16(tree->max_key_len);
  147. key_len = tree->max_key_len + 2;
  148. }
  149. goto again;
  150. }
  151. if (!rec)
  152. hfs_brec_update_parent(fd);
  153. return 0;
  154. }
  155. int hfs_brec_remove(struct hfs_find_data *fd)
  156. {
  157. struct hfs_btree *tree;
  158. struct hfs_bnode *node, *parent;
  159. int end_off, rec_off, data_off, size;
  160. tree = fd->tree;
  161. node = fd->bnode;
  162. again:
  163. rec_off = tree->node_size - (fd->record + 2) * 2;
  164. end_off = tree->node_size - (node->num_recs + 1) * 2;
  165. if (node->type == HFS_NODE_LEAF) {
  166. tree->leaf_count--;
  167. mark_inode_dirty(tree->inode);
  168. }
  169. hfs_bnode_dump(node);
  170. dprint(DBG_BNODE_MOD, "remove_rec: %d, %d\n",
  171. fd->record, fd->keylength + fd->entrylength);
  172. if (!--node->num_recs) {
  173. hfs_bnode_unlink(node);
  174. if (!node->parent)
  175. return 0;
  176. parent = hfs_bnode_find(tree, node->parent);
  177. if (IS_ERR(parent))
  178. return PTR_ERR(parent);
  179. hfs_bnode_put(node);
  180. node = fd->bnode = parent;
  181. __hfs_brec_find(node, fd, hfs_find_rec_by_key);
  182. goto again;
  183. }
  184. hfs_bnode_write_u16(node,
  185. offsetof(struct hfs_bnode_desc, num_recs),
  186. node->num_recs);
  187. if (rec_off == end_off)
  188. goto skip;
  189. size = fd->keylength + fd->entrylength;
  190. do {
  191. data_off = hfs_bnode_read_u16(node, rec_off);
  192. hfs_bnode_write_u16(node, rec_off + 2, data_off - size);
  193. rec_off -= 2;
  194. } while (rec_off >= end_off);
  195. /* fill hole */
  196. hfs_bnode_move(node, fd->keyoffset, fd->keyoffset + size,
  197. data_off - fd->keyoffset - size);
  198. skip:
  199. hfs_bnode_dump(node);
  200. if (!fd->record)
  201. hfs_brec_update_parent(fd);
  202. return 0;
  203. }
  204. static struct hfs_bnode *hfs_bnode_split(struct hfs_find_data *fd)
  205. {
  206. struct hfs_btree *tree;
  207. struct hfs_bnode *node, *new_node, *next_node;
  208. struct hfs_bnode_desc node_desc;
  209. int num_recs, new_rec_off, new_off, old_rec_off;
  210. int data_start, data_end, size;
  211. tree = fd->tree;
  212. node = fd->bnode;
  213. new_node = hfs_bmap_alloc(tree);
  214. if (IS_ERR(new_node))
  215. return new_node;
  216. hfs_bnode_get(node);
  217. dprint(DBG_BNODE_MOD, "split_nodes: %d - %d - %d\n",
  218. node->this, new_node->this, node->next);
  219. new_node->next = node->next;
  220. new_node->prev = node->this;
  221. new_node->parent = node->parent;
  222. new_node->type = node->type;
  223. new_node->height = node->height;
  224. if (node->next)
  225. next_node = hfs_bnode_find(tree, node->next);
  226. else
  227. next_node = NULL;
  228. if (IS_ERR(next_node)) {
  229. hfs_bnode_put(node);
  230. hfs_bnode_put(new_node);
  231. return next_node;
  232. }
  233. size = tree->node_size / 2 - node->num_recs * 2 - 14;
  234. old_rec_off = tree->node_size - 4;
  235. num_recs = 1;
  236. for (;;) {
  237. data_start = hfs_bnode_read_u16(node, old_rec_off);
  238. if (data_start > size)
  239. break;
  240. old_rec_off -= 2;
  241. if (++num_recs < node->num_recs)
  242. continue;
  243. /* panic? */
  244. hfs_bnode_put(node);
  245. hfs_bnode_put(new_node);
  246. if (next_node)
  247. hfs_bnode_put(next_node);
  248. return ERR_PTR(-ENOSPC);
  249. }
  250. if (fd->record + 1 < num_recs) {
  251. /* new record is in the lower half,
  252. * so leave some more space there
  253. */
  254. old_rec_off += 2;
  255. num_recs--;
  256. data_start = hfs_bnode_read_u16(node, old_rec_off);
  257. } else {
  258. hfs_bnode_put(node);
  259. hfs_bnode_get(new_node);
  260. fd->bnode = new_node;
  261. fd->record -= num_recs;
  262. fd->keyoffset -= data_start - 14;
  263. fd->entryoffset -= data_start - 14;
  264. }
  265. new_node->num_recs = node->num_recs - num_recs;
  266. node->num_recs = num_recs;
  267. new_rec_off = tree->node_size - 2;
  268. new_off = 14;
  269. size = data_start - new_off;
  270. num_recs = new_node->num_recs;
  271. data_end = data_start;
  272. while (num_recs) {
  273. hfs_bnode_write_u16(new_node, new_rec_off, new_off);
  274. old_rec_off -= 2;
  275. new_rec_off -= 2;
  276. data_end = hfs_bnode_read_u16(node, old_rec_off);
  277. new_off = data_end - size;
  278. num_recs--;
  279. }
  280. hfs_bnode_write_u16(new_node, new_rec_off, new_off);
  281. hfs_bnode_copy(new_node, 14, node, data_start, data_end - data_start);
  282. /* update new bnode header */
  283. node_desc.next = cpu_to_be32(new_node->next);
  284. node_desc.prev = cpu_to_be32(new_node->prev);
  285. node_desc.type = new_node->type;
  286. node_desc.height = new_node->height;
  287. node_desc.num_recs = cpu_to_be16(new_node->num_recs);
  288. node_desc.reserved = 0;
  289. hfs_bnode_write(new_node, &node_desc, 0, sizeof(node_desc));
  290. /* update previous bnode header */
  291. node->next = new_node->this;
  292. hfs_bnode_read(node, &node_desc, 0, sizeof(node_desc));
  293. node_desc.next = cpu_to_be32(node->next);
  294. node_desc.num_recs = cpu_to_be16(node->num_recs);
  295. hfs_bnode_write(node, &node_desc, 0, sizeof(node_desc));
  296. /* update next bnode header */
  297. if (next_node) {
  298. next_node->prev = new_node->this;
  299. hfs_bnode_read(next_node, &node_desc, 0, sizeof(node_desc));
  300. node_desc.prev = cpu_to_be32(next_node->prev);
  301. hfs_bnode_write(next_node, &node_desc, 0, sizeof(node_desc));
  302. hfs_bnode_put(next_node);
  303. } else if (node->this == tree->leaf_tail) {
  304. /* if there is no next node, this might be the new tail */
  305. tree->leaf_tail = new_node->this;
  306. mark_inode_dirty(tree->inode);
  307. }
  308. hfs_bnode_dump(node);
  309. hfs_bnode_dump(new_node);
  310. hfs_bnode_put(node);
  311. return new_node;
  312. }
  313. static int hfs_brec_update_parent(struct hfs_find_data *fd)
  314. {
  315. struct hfs_btree *tree;
  316. struct hfs_bnode *node, *new_node, *parent;
  317. int newkeylen, diff;
  318. int rec, rec_off, end_rec_off;
  319. int start_off, end_off;
  320. tree = fd->tree;
  321. node = fd->bnode;
  322. new_node = NULL;
  323. if (!node->parent)
  324. return 0;
  325. again:
  326. parent = hfs_bnode_find(tree, node->parent);
  327. if (IS_ERR(parent))
  328. return PTR_ERR(parent);
  329. __hfs_brec_find(parent, fd, hfs_find_rec_by_key);
  330. hfs_bnode_dump(parent);
  331. rec = fd->record;
  332. /* size difference between old and new key */
  333. if ((tree->attributes & HFS_TREE_VARIDXKEYS) ||
  334. (tree->cnid == HFSPLUS_ATTR_CNID))
  335. newkeylen = hfs_bnode_read_u16(node, 14) + 2;
  336. else
  337. fd->keylength = newkeylen = tree->max_key_len + 2;
  338. dprint(DBG_BNODE_MOD, "update_rec: %d, %d, %d\n",
  339. rec, fd->keylength, newkeylen);
  340. rec_off = tree->node_size - (rec + 2) * 2;
  341. end_rec_off = tree->node_size - (parent->num_recs + 1) * 2;
  342. diff = newkeylen - fd->keylength;
  343. if (!diff)
  344. goto skip;
  345. if (diff > 0) {
  346. end_off = hfs_bnode_read_u16(parent, end_rec_off);
  347. if (end_rec_off - end_off < diff) {
  348. dprint(DBG_BNODE_MOD, "hfs: splitting index node.\n");
  349. fd->bnode = parent;
  350. new_node = hfs_bnode_split(fd);
  351. if (IS_ERR(new_node))
  352. return PTR_ERR(new_node);
  353. parent = fd->bnode;
  354. rec = fd->record;
  355. rec_off = tree->node_size - (rec + 2) * 2;
  356. end_rec_off = tree->node_size -
  357. (parent->num_recs + 1) * 2;
  358. }
  359. }
  360. end_off = start_off = hfs_bnode_read_u16(parent, rec_off);
  361. hfs_bnode_write_u16(parent, rec_off, start_off + diff);
  362. start_off -= 4; /* move previous cnid too */
  363. while (rec_off > end_rec_off) {
  364. rec_off -= 2;
  365. end_off = hfs_bnode_read_u16(parent, rec_off);
  366. hfs_bnode_write_u16(parent, rec_off, end_off + diff);
  367. }
  368. hfs_bnode_move(parent, start_off + diff, start_off,
  369. end_off - start_off);
  370. skip:
  371. hfs_bnode_copy(parent, fd->keyoffset, node, 14, newkeylen);
  372. hfs_bnode_dump(parent);
  373. hfs_bnode_put(node);
  374. node = parent;
  375. if (new_node) {
  376. __be32 cnid;
  377. fd->bnode = hfs_bnode_find(tree, new_node->parent);
  378. /* create index key and entry */
  379. hfs_bnode_read_key(new_node, fd->search_key, 14);
  380. cnid = cpu_to_be32(new_node->this);
  381. __hfs_brec_find(fd->bnode, fd, hfs_find_rec_by_key);
  382. hfs_brec_insert(fd, &cnid, sizeof(cnid));
  383. hfs_bnode_put(fd->bnode);
  384. hfs_bnode_put(new_node);
  385. if (!rec) {
  386. if (new_node == node)
  387. goto out;
  388. /* restore search_key */
  389. hfs_bnode_read_key(node, fd->search_key, 14);
  390. }
  391. }
  392. if (!rec && node->parent)
  393. goto again;
  394. out:
  395. fd->bnode = node;
  396. return 0;
  397. }
  398. static int hfs_btree_inc_height(struct hfs_btree *tree)
  399. {
  400. struct hfs_bnode *node, *new_node;
  401. struct hfs_bnode_desc node_desc;
  402. int key_size, rec;
  403. __be32 cnid;
  404. node = NULL;
  405. if (tree->root) {
  406. node = hfs_bnode_find(tree, tree->root);
  407. if (IS_ERR(node))
  408. return PTR_ERR(node);
  409. }
  410. new_node = hfs_bmap_alloc(tree);
  411. if (IS_ERR(new_node)) {
  412. hfs_bnode_put(node);
  413. return PTR_ERR(new_node);
  414. }
  415. tree->root = new_node->this;
  416. if (!tree->depth) {
  417. tree->leaf_head = tree->leaf_tail = new_node->this;
  418. new_node->type = HFS_NODE_LEAF;
  419. new_node->num_recs = 0;
  420. } else {
  421. new_node->type = HFS_NODE_INDEX;
  422. new_node->num_recs = 1;
  423. }
  424. new_node->parent = 0;
  425. new_node->next = 0;
  426. new_node->prev = 0;
  427. new_node->height = ++tree->depth;
  428. node_desc.next = cpu_to_be32(new_node->next);
  429. node_desc.prev = cpu_to_be32(new_node->prev);
  430. node_desc.type = new_node->type;
  431. node_desc.height = new_node->height;
  432. node_desc.num_recs = cpu_to_be16(new_node->num_recs);
  433. node_desc.reserved = 0;
  434. hfs_bnode_write(new_node, &node_desc, 0, sizeof(node_desc));
  435. rec = tree->node_size - 2;
  436. hfs_bnode_write_u16(new_node, rec, 14);
  437. if (node) {
  438. /* insert old root idx into new root */
  439. node->parent = tree->root;
  440. if (node->type == HFS_NODE_LEAF ||
  441. tree->attributes & HFS_TREE_VARIDXKEYS ||
  442. tree->cnid == HFSPLUS_ATTR_CNID)
  443. key_size = hfs_bnode_read_u16(node, 14) + 2;
  444. else
  445. key_size = tree->max_key_len + 2;
  446. hfs_bnode_copy(new_node, 14, node, 14, key_size);
  447. if (!(tree->attributes & HFS_TREE_VARIDXKEYS) &&
  448. (tree->cnid != HFSPLUS_ATTR_CNID)) {
  449. key_size = tree->max_key_len + 2;
  450. hfs_bnode_write_u16(new_node, 14, tree->max_key_len);
  451. }
  452. cnid = cpu_to_be32(node->this);
  453. hfs_bnode_write(new_node, &cnid, 14 + key_size, 4);
  454. rec -= 2;
  455. hfs_bnode_write_u16(new_node, rec, 14 + key_size + 4);
  456. hfs_bnode_put(node);
  457. }
  458. hfs_bnode_put(new_node);
  459. mark_inode_dirty(tree->inode);
  460. return 0;
  461. }