btree.c 22 KB

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  1. /*
  2. * linux/fs/befs/btree.c
  3. *
  4. * Copyright (C) 2001-2002 Will Dyson <will_dyson@pobox.com>
  5. *
  6. * Licensed under the GNU GPL. See the file COPYING for details.
  7. *
  8. * 2002-02-05: Sergey S. Kostyliov added binary search within
  9. * btree nodes.
  10. *
  11. * Many thanks to:
  12. *
  13. * Dominic Giampaolo, author of "Practical File System
  14. * Design with the Be File System", for such a helpful book.
  15. *
  16. * Marcus J. Ranum, author of the b+tree package in
  17. * comp.sources.misc volume 10. This code is not copied from that
  18. * work, but it is partially based on it.
  19. *
  20. * Makoto Kato, author of the original BeFS for linux filesystem
  21. * driver.
  22. */
  23. #include <linux/kernel.h>
  24. #include <linux/string.h>
  25. #include <linux/slab.h>
  26. #include <linux/mm.h>
  27. #include <linux/buffer_head.h>
  28. #include "befs.h"
  29. #include "btree.h"
  30. #include "datastream.h"
  31. /*
  32. * The btree functions in this file are built on top of the
  33. * datastream.c interface, which is in turn built on top of the
  34. * io.c interface.
  35. */
  36. /* Befs B+tree structure:
  37. *
  38. * The first thing in the tree is the tree superblock. It tells you
  39. * all kinds of useful things about the tree, like where the rootnode
  40. * is located, and the size of the nodes (always 1024 with current version
  41. * of BeOS).
  42. *
  43. * The rest of the tree consists of a series of nodes. Nodes contain a header
  44. * (struct befs_btree_nodehead), the packed key data, an array of shorts
  45. * containing the ending offsets for each of the keys, and an array of
  46. * befs_off_t values. In interior nodes, the keys are the ending keys for
  47. * the childnode they point to, and the values are offsets into the
  48. * datastream containing the tree.
  49. */
  50. /* Note:
  51. *
  52. * The book states 2 confusing things about befs b+trees. First,
  53. * it states that the overflow field of node headers is used by internal nodes
  54. * to point to another node that "effectively continues this one". Here is what
  55. * I believe that means. Each key in internal nodes points to another node that
  56. * contains key values less than itself. Inspection reveals that the last key
  57. * in the internal node is not the last key in the index. Keys that are
  58. * greater than the last key in the internal node go into the overflow node.
  59. * I imagine there is a performance reason for this.
  60. *
  61. * Second, it states that the header of a btree node is sufficient to
  62. * distinguish internal nodes from leaf nodes. Without saying exactly how.
  63. * After figuring out the first, it becomes obvious that internal nodes have
  64. * overflow nodes and leafnodes do not.
  65. */
  66. /*
  67. * Currently, this code is only good for directory B+trees.
  68. * In order to be used for other BFS indexes, it needs to be extended to handle
  69. * duplicate keys and non-string keytypes (int32, int64, float, double).
  70. */
  71. /*
  72. * In memory structure of each btree node
  73. */
  74. struct befs_btree_node {
  75. befs_host_btree_nodehead head; /* head of node converted to cpu byteorder */
  76. struct buffer_head *bh;
  77. befs_btree_nodehead *od_node; /* on disk node */
  78. };
  79. /* local constants */
  80. static const befs_off_t BEFS_BT_INVAL = 0xffffffffffffffffULL;
  81. /* local functions */
  82. static int befs_btree_seekleaf(struct super_block *sb, const befs_data_stream *ds,
  83. befs_btree_super * bt_super,
  84. struct befs_btree_node *this_node,
  85. befs_off_t * node_off);
  86. static int befs_bt_read_super(struct super_block *sb, const befs_data_stream *ds,
  87. befs_btree_super * sup);
  88. static int befs_bt_read_node(struct super_block *sb, const befs_data_stream *ds,
  89. struct befs_btree_node *node,
  90. befs_off_t node_off);
  91. static int befs_leafnode(struct befs_btree_node *node);
  92. static fs16 *befs_bt_keylen_index(struct befs_btree_node *node);
  93. static fs64 *befs_bt_valarray(struct befs_btree_node *node);
  94. static char *befs_bt_keydata(struct befs_btree_node *node);
  95. static int befs_find_key(struct super_block *sb,
  96. struct befs_btree_node *node,
  97. const char *findkey, befs_off_t * value);
  98. static char *befs_bt_get_key(struct super_block *sb,
  99. struct befs_btree_node *node,
  100. int index, u16 * keylen);
  101. static int befs_compare_strings(const void *key1, int keylen1,
  102. const void *key2, int keylen2);
  103. /**
  104. * befs_bt_read_super() - read in btree superblock convert to cpu byteorder
  105. * @sb: Filesystem superblock
  106. * @ds: Datastream to read from
  107. * @sup: Buffer in which to place the btree superblock
  108. *
  109. * Calls befs_read_datastream to read in the btree superblock and
  110. * makes sure it is in cpu byteorder, byteswapping if necessary.
  111. * Return: BEFS_OK on success and if *@sup contains the btree superblock in cpu
  112. * byte order. Otherwise return BEFS_ERR on error.
  113. */
  114. static int
  115. befs_bt_read_super(struct super_block *sb, const befs_data_stream *ds,
  116. befs_btree_super * sup)
  117. {
  118. struct buffer_head *bh;
  119. befs_disk_btree_super *od_sup;
  120. befs_debug(sb, "---> %s", __func__);
  121. bh = befs_read_datastream(sb, ds, 0, NULL);
  122. if (!bh) {
  123. befs_error(sb, "Couldn't read index header.");
  124. goto error;
  125. }
  126. od_sup = (befs_disk_btree_super *) bh->b_data;
  127. befs_dump_index_entry(sb, od_sup);
  128. sup->magic = fs32_to_cpu(sb, od_sup->magic);
  129. sup->node_size = fs32_to_cpu(sb, od_sup->node_size);
  130. sup->max_depth = fs32_to_cpu(sb, od_sup->max_depth);
  131. sup->data_type = fs32_to_cpu(sb, od_sup->data_type);
  132. sup->root_node_ptr = fs64_to_cpu(sb, od_sup->root_node_ptr);
  133. brelse(bh);
  134. if (sup->magic != BEFS_BTREE_MAGIC) {
  135. befs_error(sb, "Index header has bad magic.");
  136. goto error;
  137. }
  138. befs_debug(sb, "<--- %s", __func__);
  139. return BEFS_OK;
  140. error:
  141. befs_debug(sb, "<--- %s ERROR", __func__);
  142. return BEFS_ERR;
  143. }
  144. /**
  145. * befs_bt_read_node - read in btree node and convert to cpu byteorder
  146. * @sb: Filesystem superblock
  147. * @ds: Datastream to read from
  148. * @node: Buffer in which to place the btree node
  149. * @node_off: Starting offset (in bytes) of the node in @ds
  150. *
  151. * Calls befs_read_datastream to read in the indicated btree node and
  152. * makes sure its header fields are in cpu byteorder, byteswapping if
  153. * necessary.
  154. * Note: node->bh must be NULL when this function is called the first time.
  155. * Don't forget brelse(node->bh) after last call.
  156. *
  157. * On success, returns BEFS_OK and *@node contains the btree node that
  158. * starts at @node_off, with the node->head fields in cpu byte order.
  159. *
  160. * On failure, BEFS_ERR is returned.
  161. */
  162. static int
  163. befs_bt_read_node(struct super_block *sb, const befs_data_stream *ds,
  164. struct befs_btree_node *node, befs_off_t node_off)
  165. {
  166. uint off = 0;
  167. befs_debug(sb, "---> %s", __func__);
  168. if (node->bh)
  169. brelse(node->bh);
  170. node->bh = befs_read_datastream(sb, ds, node_off, &off);
  171. if (!node->bh) {
  172. befs_error(sb, "%s failed to read "
  173. "node at %llu", __func__, node_off);
  174. befs_debug(sb, "<--- %s ERROR", __func__);
  175. return BEFS_ERR;
  176. }
  177. node->od_node =
  178. (befs_btree_nodehead *) ((void *) node->bh->b_data + off);
  179. befs_dump_index_node(sb, node->od_node);
  180. node->head.left = fs64_to_cpu(sb, node->od_node->left);
  181. node->head.right = fs64_to_cpu(sb, node->od_node->right);
  182. node->head.overflow = fs64_to_cpu(sb, node->od_node->overflow);
  183. node->head.all_key_count =
  184. fs16_to_cpu(sb, node->od_node->all_key_count);
  185. node->head.all_key_length =
  186. fs16_to_cpu(sb, node->od_node->all_key_length);
  187. befs_debug(sb, "<--- %s", __func__);
  188. return BEFS_OK;
  189. }
  190. /**
  191. * befs_btree_find - Find a key in a befs B+tree
  192. * @sb: Filesystem superblock
  193. * @ds: Datastream containing btree
  194. * @key: Key string to lookup in btree
  195. * @value: Value stored with @key
  196. *
  197. * On success, returns BEFS_OK and sets *@value to the value stored
  198. * with @key (usually the disk block number of an inode).
  199. *
  200. * On failure, returns BEFS_ERR or BEFS_BT_NOT_FOUND.
  201. *
  202. * Algorithm:
  203. * Read the superblock and rootnode of the b+tree.
  204. * Drill down through the interior nodes using befs_find_key().
  205. * Once at the correct leaf node, use befs_find_key() again to get the
  206. * actual value stored with the key.
  207. */
  208. int
  209. befs_btree_find(struct super_block *sb, const befs_data_stream *ds,
  210. const char *key, befs_off_t * value)
  211. {
  212. struct befs_btree_node *this_node;
  213. befs_btree_super bt_super;
  214. befs_off_t node_off;
  215. int res;
  216. befs_debug(sb, "---> %s Key: %s", __func__, key);
  217. if (befs_bt_read_super(sb, ds, &bt_super) != BEFS_OK) {
  218. befs_error(sb,
  219. "befs_btree_find() failed to read index superblock");
  220. goto error;
  221. }
  222. this_node = kmalloc_obj(struct befs_btree_node, GFP_NOFS);
  223. if (!this_node) {
  224. befs_error(sb, "befs_btree_find() failed to allocate %zu "
  225. "bytes of memory", sizeof(struct befs_btree_node));
  226. goto error;
  227. }
  228. this_node->bh = NULL;
  229. /* read in root node */
  230. node_off = bt_super.root_node_ptr;
  231. if (befs_bt_read_node(sb, ds, this_node, node_off) != BEFS_OK) {
  232. befs_error(sb, "befs_btree_find() failed to read "
  233. "node at %llu", node_off);
  234. goto error_alloc;
  235. }
  236. while (!befs_leafnode(this_node)) {
  237. res = befs_find_key(sb, this_node, key, &node_off);
  238. /* if no key set, try the overflow node */
  239. if (res == BEFS_BT_OVERFLOW)
  240. node_off = this_node->head.overflow;
  241. if (befs_bt_read_node(sb, ds, this_node, node_off) != BEFS_OK) {
  242. befs_error(sb, "befs_btree_find() failed to read "
  243. "node at %llu", node_off);
  244. goto error_alloc;
  245. }
  246. }
  247. /* at a leaf node now, check if it is correct */
  248. res = befs_find_key(sb, this_node, key, value);
  249. brelse(this_node->bh);
  250. kfree(this_node);
  251. if (res != BEFS_BT_MATCH) {
  252. befs_error(sb, "<--- %s Key %s not found", __func__, key);
  253. befs_debug(sb, "<--- %s ERROR", __func__);
  254. *value = 0;
  255. return BEFS_BT_NOT_FOUND;
  256. }
  257. befs_debug(sb, "<--- %s Found key %s, value %llu", __func__,
  258. key, *value);
  259. return BEFS_OK;
  260. error_alloc:
  261. kfree(this_node);
  262. error:
  263. *value = 0;
  264. befs_debug(sb, "<--- %s ERROR", __func__);
  265. return BEFS_ERR;
  266. }
  267. /**
  268. * befs_find_key - Search for a key within a node
  269. * @sb: Filesystem superblock
  270. * @node: Node to find the key within
  271. * @findkey: Keystring to search for
  272. * @value: If key is found, the value stored with the key is put here
  273. *
  274. * Finds exact match if one exists, and returns BEFS_BT_MATCH.
  275. * If there is no match and node's value array is too small for key, return
  276. * BEFS_BT_OVERFLOW.
  277. * If no match and node should countain this key, return BEFS_BT_NOT_FOUND.
  278. *
  279. * Uses binary search instead of a linear.
  280. */
  281. static int
  282. befs_find_key(struct super_block *sb, struct befs_btree_node *node,
  283. const char *findkey, befs_off_t * value)
  284. {
  285. int first, last, mid;
  286. int eq;
  287. u16 keylen;
  288. int findkey_len;
  289. char *thiskey;
  290. fs64 *valarray;
  291. befs_debug(sb, "---> %s %s", __func__, findkey);
  292. findkey_len = strlen(findkey);
  293. /* if node can not contain key, just skip this node */
  294. last = node->head.all_key_count - 1;
  295. thiskey = befs_bt_get_key(sb, node, last, &keylen);
  296. eq = befs_compare_strings(thiskey, keylen, findkey, findkey_len);
  297. if (eq < 0) {
  298. befs_debug(sb, "<--- node can't contain %s", findkey);
  299. return BEFS_BT_OVERFLOW;
  300. }
  301. valarray = befs_bt_valarray(node);
  302. /* simple binary search */
  303. first = 0;
  304. mid = 0;
  305. while (last >= first) {
  306. mid = (last + first) / 2;
  307. befs_debug(sb, "first: %d, last: %d, mid: %d", first, last,
  308. mid);
  309. thiskey = befs_bt_get_key(sb, node, mid, &keylen);
  310. eq = befs_compare_strings(thiskey, keylen, findkey,
  311. findkey_len);
  312. if (eq == 0) {
  313. befs_debug(sb, "<--- %s found %s at %d",
  314. __func__, thiskey, mid);
  315. *value = fs64_to_cpu(sb, valarray[mid]);
  316. return BEFS_BT_MATCH;
  317. }
  318. if (eq > 0)
  319. last = mid - 1;
  320. else
  321. first = mid + 1;
  322. }
  323. /* return an existing value so caller can arrive to a leaf node */
  324. if (eq < 0)
  325. *value = fs64_to_cpu(sb, valarray[mid + 1]);
  326. else
  327. *value = fs64_to_cpu(sb, valarray[mid]);
  328. befs_error(sb, "<--- %s %s not found", __func__, findkey);
  329. befs_debug(sb, "<--- %s ERROR", __func__);
  330. return BEFS_BT_NOT_FOUND;
  331. }
  332. /**
  333. * befs_btree_read - Traverse leafnodes of a btree
  334. * @sb: Filesystem superblock
  335. * @ds: Datastream containing btree
  336. * @key_no: Key number (alphabetical order) of key to read
  337. * @bufsize: Size of the buffer to return key in
  338. * @keybuf: Pointer to a buffer to put the key in
  339. * @keysize: Length of the returned key
  340. * @value: Value stored with the returned key
  341. *
  342. * Here's how it works: Key_no is the index of the key/value pair to
  343. * return in keybuf/value.
  344. * Bufsize is the size of keybuf (BEFS_NAME_LEN+1 is a good size). Keysize is
  345. * the number of characters in the key (just a convenience).
  346. *
  347. * Algorithm:
  348. * Get the first leafnode of the tree. See if the requested key is in that
  349. * node. If not, follow the node->right link to the next leafnode. Repeat
  350. * until the (key_no)th key is found or the tree is out of keys.
  351. */
  352. int
  353. befs_btree_read(struct super_block *sb, const befs_data_stream *ds,
  354. loff_t key_no, size_t bufsize, char *keybuf, size_t * keysize,
  355. befs_off_t * value)
  356. {
  357. struct befs_btree_node *this_node;
  358. befs_btree_super bt_super;
  359. befs_off_t node_off;
  360. int cur_key;
  361. fs64 *valarray;
  362. char *keystart;
  363. u16 keylen;
  364. int res;
  365. uint key_sum = 0;
  366. befs_debug(sb, "---> %s", __func__);
  367. if (befs_bt_read_super(sb, ds, &bt_super) != BEFS_OK) {
  368. befs_error(sb,
  369. "befs_btree_read() failed to read index superblock");
  370. goto error;
  371. }
  372. this_node = kmalloc_obj(struct befs_btree_node, GFP_NOFS);
  373. if (this_node == NULL) {
  374. befs_error(sb, "befs_btree_read() failed to allocate %zu "
  375. "bytes of memory", sizeof(struct befs_btree_node));
  376. goto error;
  377. }
  378. node_off = bt_super.root_node_ptr;
  379. this_node->bh = NULL;
  380. /* seeks down to first leafnode, reads it into this_node */
  381. res = befs_btree_seekleaf(sb, ds, &bt_super, this_node, &node_off);
  382. if (res == BEFS_BT_EMPTY) {
  383. brelse(this_node->bh);
  384. kfree(this_node);
  385. *value = 0;
  386. *keysize = 0;
  387. befs_debug(sb, "<--- %s Tree is EMPTY", __func__);
  388. return BEFS_BT_EMPTY;
  389. } else if (res == BEFS_ERR) {
  390. goto error_alloc;
  391. }
  392. /* find the leaf node containing the key_no key */
  393. while (key_sum + this_node->head.all_key_count <= key_no) {
  394. /* no more nodes to look in: key_no is too large */
  395. if (this_node->head.right == BEFS_BT_INVAL) {
  396. *keysize = 0;
  397. *value = 0;
  398. befs_debug(sb,
  399. "<--- %s END of keys at %llu", __func__,
  400. (unsigned long long)
  401. key_sum + this_node->head.all_key_count);
  402. brelse(this_node->bh);
  403. kfree(this_node);
  404. return BEFS_BT_END;
  405. }
  406. key_sum += this_node->head.all_key_count;
  407. node_off = this_node->head.right;
  408. if (befs_bt_read_node(sb, ds, this_node, node_off) != BEFS_OK) {
  409. befs_error(sb, "%s failed to read node at %llu",
  410. __func__, (unsigned long long)node_off);
  411. goto error_alloc;
  412. }
  413. }
  414. /* how many keys into this_node is key_no */
  415. cur_key = key_no - key_sum;
  416. /* get pointers to datastructures within the node body */
  417. valarray = befs_bt_valarray(this_node);
  418. keystart = befs_bt_get_key(sb, this_node, cur_key, &keylen);
  419. befs_debug(sb, "Read [%llu,%d]: keysize %d",
  420. (long long unsigned int)node_off, (int)cur_key,
  421. (int)keylen);
  422. if (bufsize < keylen + 1) {
  423. befs_error(sb, "%s keybuf too small (%zu) "
  424. "for key of size %d", __func__, bufsize, keylen);
  425. brelse(this_node->bh);
  426. goto error_alloc;
  427. }
  428. strscpy(keybuf, keystart, keylen + 1);
  429. *value = fs64_to_cpu(sb, valarray[cur_key]);
  430. *keysize = keylen;
  431. befs_debug(sb, "Read [%llu,%d]: Key \"%.*s\", Value %llu", node_off,
  432. cur_key, keylen, keybuf, *value);
  433. brelse(this_node->bh);
  434. kfree(this_node);
  435. befs_debug(sb, "<--- %s", __func__);
  436. return BEFS_OK;
  437. error_alloc:
  438. kfree(this_node);
  439. error:
  440. *keysize = 0;
  441. *value = 0;
  442. befs_debug(sb, "<--- %s ERROR", __func__);
  443. return BEFS_ERR;
  444. }
  445. /**
  446. * befs_btree_seekleaf - Find the first leafnode in the btree
  447. * @sb: Filesystem superblock
  448. * @ds: Datastream containing btree
  449. * @bt_super: Pointer to the superblock of the btree
  450. * @this_node: Buffer to return the leafnode in
  451. * @node_off: Pointer to offset of current node within datastream. Modified
  452. * by the function.
  453. *
  454. * Helper function for btree traverse. Moves the current position to the
  455. * start of the first leaf node.
  456. *
  457. * Also checks for an empty tree. If there are no keys, returns BEFS_BT_EMPTY.
  458. */
  459. static int
  460. befs_btree_seekleaf(struct super_block *sb, const befs_data_stream *ds,
  461. befs_btree_super *bt_super,
  462. struct befs_btree_node *this_node,
  463. befs_off_t * node_off)
  464. {
  465. befs_debug(sb, "---> %s", __func__);
  466. if (befs_bt_read_node(sb, ds, this_node, *node_off) != BEFS_OK) {
  467. befs_error(sb, "%s failed to read "
  468. "node at %llu", __func__, *node_off);
  469. goto error;
  470. }
  471. befs_debug(sb, "Seekleaf to root node %llu", *node_off);
  472. if (this_node->head.all_key_count == 0 && befs_leafnode(this_node)) {
  473. befs_debug(sb, "<--- %s Tree is EMPTY", __func__);
  474. return BEFS_BT_EMPTY;
  475. }
  476. while (!befs_leafnode(this_node)) {
  477. if (this_node->head.all_key_count == 0) {
  478. befs_debug(sb, "%s encountered "
  479. "an empty interior node: %llu. Using Overflow "
  480. "node: %llu", __func__, *node_off,
  481. this_node->head.overflow);
  482. *node_off = this_node->head.overflow;
  483. } else {
  484. fs64 *valarray = befs_bt_valarray(this_node);
  485. *node_off = fs64_to_cpu(sb, valarray[0]);
  486. }
  487. if (befs_bt_read_node(sb, ds, this_node, *node_off) != BEFS_OK) {
  488. befs_error(sb, "%s failed to read "
  489. "node at %llu", __func__, *node_off);
  490. goto error;
  491. }
  492. befs_debug(sb, "Seekleaf to child node %llu", *node_off);
  493. }
  494. befs_debug(sb, "Node %llu is a leaf node", *node_off);
  495. return BEFS_OK;
  496. error:
  497. befs_debug(sb, "<--- %s ERROR", __func__);
  498. return BEFS_ERR;
  499. }
  500. /**
  501. * befs_leafnode - Determine if the btree node is a leaf node or an
  502. * interior node
  503. * @node: Pointer to node structure to test
  504. *
  505. * Return 1 if leaf, 0 if interior
  506. */
  507. static int
  508. befs_leafnode(struct befs_btree_node *node)
  509. {
  510. /* all interior nodes (and only interior nodes) have an overflow node */
  511. if (node->head.overflow == BEFS_BT_INVAL)
  512. return 1;
  513. else
  514. return 0;
  515. }
  516. /**
  517. * befs_bt_keylen_index - Finds start of keylen index in a node
  518. * @node: Pointer to the node structure to find the keylen index within
  519. *
  520. * Returns a pointer to the start of the key length index array
  521. * of the B+tree node *@node
  522. *
  523. * "The length of all the keys in the node is added to the size of the
  524. * header and then rounded up to a multiple of four to get the beginning
  525. * of the key length index" (p.88, practical filesystem design).
  526. *
  527. * Except that rounding up to 8 works, and rounding up to 4 doesn't.
  528. */
  529. static fs16 *
  530. befs_bt_keylen_index(struct befs_btree_node *node)
  531. {
  532. const int keylen_align = 8;
  533. unsigned long int off =
  534. (sizeof (befs_btree_nodehead) + node->head.all_key_length);
  535. ulong tmp = off % keylen_align;
  536. if (tmp)
  537. off += keylen_align - tmp;
  538. return (fs16 *) ((void *) node->od_node + off);
  539. }
  540. /**
  541. * befs_bt_valarray - Finds the start of value array in a node
  542. * @node: Pointer to the node structure to find the value array within
  543. *
  544. * Returns a pointer to the start of the value array
  545. * of the node pointed to by the node header
  546. */
  547. static fs64 *
  548. befs_bt_valarray(struct befs_btree_node *node)
  549. {
  550. void *keylen_index_start = (void *) befs_bt_keylen_index(node);
  551. size_t keylen_index_size = node->head.all_key_count * sizeof (fs16);
  552. return (fs64 *) (keylen_index_start + keylen_index_size);
  553. }
  554. /**
  555. * befs_bt_keydata - Finds start of keydata array in a node
  556. * @node: Pointer to the node structure to find the keydata array within
  557. *
  558. * Returns a pointer to the start of the keydata array
  559. * of the node pointed to by the node header
  560. */
  561. static char *
  562. befs_bt_keydata(struct befs_btree_node *node)
  563. {
  564. return (char *) ((void *) node->od_node + sizeof (befs_btree_nodehead));
  565. }
  566. /**
  567. * befs_bt_get_key - returns a pointer to the start of a key
  568. * @sb: filesystem superblock
  569. * @node: node in which to look for the key
  570. * @index: the index of the key to get
  571. * @keylen: modified to be the length of the key at @index
  572. *
  573. * Returns a valid pointer into @node on success.
  574. * Returns NULL on failure (bad input) and sets *@keylen = 0
  575. */
  576. static char *
  577. befs_bt_get_key(struct super_block *sb, struct befs_btree_node *node,
  578. int index, u16 * keylen)
  579. {
  580. int prev_key_end;
  581. char *keystart;
  582. fs16 *keylen_index;
  583. if (index < 0 || index > node->head.all_key_count) {
  584. *keylen = 0;
  585. return NULL;
  586. }
  587. keystart = befs_bt_keydata(node);
  588. keylen_index = befs_bt_keylen_index(node);
  589. if (index == 0)
  590. prev_key_end = 0;
  591. else
  592. prev_key_end = fs16_to_cpu(sb, keylen_index[index - 1]);
  593. *keylen = fs16_to_cpu(sb, keylen_index[index]) - prev_key_end;
  594. return keystart + prev_key_end;
  595. }
  596. /**
  597. * befs_compare_strings - compare two strings
  598. * @key1: pointer to the first key to be compared
  599. * @keylen1: length in bytes of key1
  600. * @key2: pointer to the second key to be compared
  601. * @keylen2: length in bytes of key2
  602. *
  603. * Returns 0 if @key1 and @key2 are equal.
  604. * Returns >0 if @key1 is greater.
  605. * Returns <0 if @key2 is greater.
  606. */
  607. static int
  608. befs_compare_strings(const void *key1, int keylen1,
  609. const void *key2, int keylen2)
  610. {
  611. int len = min_t(int, keylen1, keylen2);
  612. int result = strncmp(key1, key2, len);
  613. if (result == 0)
  614. result = keylen1 - keylen2;
  615. return result;
  616. }
  617. /* These will be used for non-string keyed btrees */
  618. #if 0
  619. static int
  620. btree_compare_int32(cont void *key1, int keylen1, const void *key2, int keylen2)
  621. {
  622. return *(int32_t *) key1 - *(int32_t *) key2;
  623. }
  624. static int
  625. btree_compare_uint32(cont void *key1, int keylen1,
  626. const void *key2, int keylen2)
  627. {
  628. if (*(u_int32_t *) key1 == *(u_int32_t *) key2)
  629. return 0;
  630. else if (*(u_int32_t *) key1 > *(u_int32_t *) key2)
  631. return 1;
  632. return -1;
  633. }
  634. static int
  635. btree_compare_int64(cont void *key1, int keylen1, const void *key2, int keylen2)
  636. {
  637. if (*(int64_t *) key1 == *(int64_t *) key2)
  638. return 0;
  639. else if (*(int64_t *) key1 > *(int64_t *) key2)
  640. return 1;
  641. return -1;
  642. }
  643. static int
  644. btree_compare_uint64(cont void *key1, int keylen1,
  645. const void *key2, int keylen2)
  646. {
  647. if (*(u_int64_t *) key1 == *(u_int64_t *) key2)
  648. return 0;
  649. else if (*(u_int64_t *) key1 > *(u_int64_t *) key2)
  650. return 1;
  651. return -1;
  652. }
  653. static int
  654. btree_compare_float(cont void *key1, int keylen1, const void *key2, int keylen2)
  655. {
  656. float result = *(float *) key1 - *(float *) key2;
  657. if (result == 0.0f)
  658. return 0;
  659. return (result < 0.0f) ? -1 : 1;
  660. }
  661. static int
  662. btree_compare_double(cont void *key1, int keylen1,
  663. const void *key2, int keylen2)
  664. {
  665. double result = *(double *) key1 - *(double *) key2;
  666. if (result == 0.0)
  667. return 0;
  668. return (result < 0.0) ? -1 : 1;
  669. }
  670. #endif //0