dm-btree.c 25 KB

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  1. /*
  2. * Copyright (C) 2011 Red Hat, Inc.
  3. *
  4. * This file is released under the GPL.
  5. */
  6. #include "dm-btree-internal.h"
  7. #include "dm-space-map.h"
  8. #include "dm-transaction-manager.h"
  9. #include <linux/export.h>
  10. #include <linux/device-mapper.h>
  11. #define DM_MSG_PREFIX "btree"
  12. /*----------------------------------------------------------------
  13. * Array manipulation
  14. *--------------------------------------------------------------*/
  15. static void memcpy_disk(void *dest, const void *src, size_t len)
  16. __dm_written_to_disk(src)
  17. {
  18. memcpy(dest, src, len);
  19. __dm_unbless_for_disk(src);
  20. }
  21. static void array_insert(void *base, size_t elt_size, unsigned nr_elts,
  22. unsigned index, void *elt)
  23. __dm_written_to_disk(elt)
  24. {
  25. if (index < nr_elts)
  26. memmove(base + (elt_size * (index + 1)),
  27. base + (elt_size * index),
  28. (nr_elts - index) * elt_size);
  29. memcpy_disk(base + (elt_size * index), elt, elt_size);
  30. }
  31. /*----------------------------------------------------------------*/
  32. /* makes the assumption that no two keys are the same. */
  33. static int bsearch(struct btree_node *n, uint64_t key, int want_hi)
  34. {
  35. int lo = -1, hi = le32_to_cpu(n->header.nr_entries);
  36. while (hi - lo > 1) {
  37. int mid = lo + ((hi - lo) / 2);
  38. uint64_t mid_key = le64_to_cpu(n->keys[mid]);
  39. if (mid_key == key)
  40. return mid;
  41. if (mid_key < key)
  42. lo = mid;
  43. else
  44. hi = mid;
  45. }
  46. return want_hi ? hi : lo;
  47. }
  48. int lower_bound(struct btree_node *n, uint64_t key)
  49. {
  50. return bsearch(n, key, 0);
  51. }
  52. static int upper_bound(struct btree_node *n, uint64_t key)
  53. {
  54. return bsearch(n, key, 1);
  55. }
  56. void inc_children(struct dm_transaction_manager *tm, struct btree_node *n,
  57. struct dm_btree_value_type *vt)
  58. {
  59. unsigned i;
  60. uint32_t nr_entries = le32_to_cpu(n->header.nr_entries);
  61. if (le32_to_cpu(n->header.flags) & INTERNAL_NODE)
  62. for (i = 0; i < nr_entries; i++)
  63. dm_tm_inc(tm, value64(n, i));
  64. else if (vt->inc)
  65. for (i = 0; i < nr_entries; i++)
  66. vt->inc(vt->context, value_ptr(n, i));
  67. }
  68. static int insert_at(size_t value_size, struct btree_node *node, unsigned index,
  69. uint64_t key, void *value)
  70. __dm_written_to_disk(value)
  71. {
  72. uint32_t nr_entries = le32_to_cpu(node->header.nr_entries);
  73. __le64 key_le = cpu_to_le64(key);
  74. if (index > nr_entries ||
  75. index >= le32_to_cpu(node->header.max_entries)) {
  76. DMERR("too many entries in btree node for insert");
  77. __dm_unbless_for_disk(value);
  78. return -ENOMEM;
  79. }
  80. __dm_bless_for_disk(&key_le);
  81. array_insert(node->keys, sizeof(*node->keys), nr_entries, index, &key_le);
  82. array_insert(value_base(node), value_size, nr_entries, index, value);
  83. node->header.nr_entries = cpu_to_le32(nr_entries + 1);
  84. return 0;
  85. }
  86. /*----------------------------------------------------------------*/
  87. /*
  88. * We want 3n entries (for some n). This works more nicely for repeated
  89. * insert remove loops than (2n + 1).
  90. */
  91. static uint32_t calc_max_entries(size_t value_size, size_t block_size)
  92. {
  93. uint32_t total, n;
  94. size_t elt_size = sizeof(uint64_t) + value_size; /* key + value */
  95. block_size -= sizeof(struct node_header);
  96. total = block_size / elt_size;
  97. n = total / 3; /* rounds down */
  98. return 3 * n;
  99. }
  100. int dm_btree_empty(struct dm_btree_info *info, dm_block_t *root)
  101. {
  102. int r;
  103. struct dm_block *b;
  104. struct btree_node *n;
  105. size_t block_size;
  106. uint32_t max_entries;
  107. r = new_block(info, &b);
  108. if (r < 0)
  109. return r;
  110. block_size = dm_bm_block_size(dm_tm_get_bm(info->tm));
  111. max_entries = calc_max_entries(info->value_type.size, block_size);
  112. n = dm_block_data(b);
  113. memset(n, 0, block_size);
  114. n->header.flags = cpu_to_le32(LEAF_NODE);
  115. n->header.nr_entries = cpu_to_le32(0);
  116. n->header.max_entries = cpu_to_le32(max_entries);
  117. n->header.value_size = cpu_to_le32(info->value_type.size);
  118. *root = dm_block_location(b);
  119. unlock_block(info, b);
  120. return 0;
  121. }
  122. EXPORT_SYMBOL_GPL(dm_btree_empty);
  123. /*----------------------------------------------------------------*/
  124. /*
  125. * Deletion uses a recursive algorithm, since we have limited stack space
  126. * we explicitly manage our own stack on the heap.
  127. */
  128. #define MAX_SPINE_DEPTH 64
  129. struct frame {
  130. struct dm_block *b;
  131. struct btree_node *n;
  132. unsigned level;
  133. unsigned nr_children;
  134. unsigned current_child;
  135. };
  136. struct del_stack {
  137. struct dm_btree_info *info;
  138. struct dm_transaction_manager *tm;
  139. int top;
  140. struct frame spine[MAX_SPINE_DEPTH];
  141. };
  142. static int top_frame(struct del_stack *s, struct frame **f)
  143. {
  144. if (s->top < 0) {
  145. DMERR("btree deletion stack empty");
  146. return -EINVAL;
  147. }
  148. *f = s->spine + s->top;
  149. return 0;
  150. }
  151. static int unprocessed_frames(struct del_stack *s)
  152. {
  153. return s->top >= 0;
  154. }
  155. static void prefetch_children(struct del_stack *s, struct frame *f)
  156. {
  157. unsigned i;
  158. struct dm_block_manager *bm = dm_tm_get_bm(s->tm);
  159. for (i = 0; i < f->nr_children; i++)
  160. dm_bm_prefetch(bm, value64(f->n, i));
  161. }
  162. static bool is_internal_level(struct dm_btree_info *info, struct frame *f)
  163. {
  164. return f->level < (info->levels - 1);
  165. }
  166. static int push_frame(struct del_stack *s, dm_block_t b, unsigned level)
  167. {
  168. int r;
  169. uint32_t ref_count;
  170. if (s->top >= MAX_SPINE_DEPTH - 1) {
  171. DMERR("btree deletion stack out of memory");
  172. return -ENOMEM;
  173. }
  174. r = dm_tm_ref(s->tm, b, &ref_count);
  175. if (r)
  176. return r;
  177. if (ref_count > 1)
  178. /*
  179. * This is a shared node, so we can just decrement it's
  180. * reference counter and leave the children.
  181. */
  182. dm_tm_dec(s->tm, b);
  183. else {
  184. uint32_t flags;
  185. struct frame *f = s->spine + ++s->top;
  186. r = dm_tm_read_lock(s->tm, b, &btree_node_validator, &f->b);
  187. if (r) {
  188. s->top--;
  189. return r;
  190. }
  191. f->n = dm_block_data(f->b);
  192. f->level = level;
  193. f->nr_children = le32_to_cpu(f->n->header.nr_entries);
  194. f->current_child = 0;
  195. flags = le32_to_cpu(f->n->header.flags);
  196. if (flags & INTERNAL_NODE || is_internal_level(s->info, f))
  197. prefetch_children(s, f);
  198. }
  199. return 0;
  200. }
  201. static void pop_frame(struct del_stack *s)
  202. {
  203. struct frame *f = s->spine + s->top--;
  204. dm_tm_dec(s->tm, dm_block_location(f->b));
  205. dm_tm_unlock(s->tm, f->b);
  206. }
  207. static void unlock_all_frames(struct del_stack *s)
  208. {
  209. struct frame *f;
  210. while (unprocessed_frames(s)) {
  211. f = s->spine + s->top--;
  212. dm_tm_unlock(s->tm, f->b);
  213. }
  214. }
  215. int dm_btree_del(struct dm_btree_info *info, dm_block_t root)
  216. {
  217. int r;
  218. struct del_stack *s;
  219. /*
  220. * dm_btree_del() is called via an ioctl, as such should be
  221. * considered an FS op. We can't recurse back into the FS, so we
  222. * allocate GFP_NOFS.
  223. */
  224. s = kmalloc(sizeof(*s), GFP_NOFS);
  225. if (!s)
  226. return -ENOMEM;
  227. s->info = info;
  228. s->tm = info->tm;
  229. s->top = -1;
  230. r = push_frame(s, root, 0);
  231. if (r)
  232. goto out;
  233. while (unprocessed_frames(s)) {
  234. uint32_t flags;
  235. struct frame *f;
  236. dm_block_t b;
  237. r = top_frame(s, &f);
  238. if (r)
  239. goto out;
  240. if (f->current_child >= f->nr_children) {
  241. pop_frame(s);
  242. continue;
  243. }
  244. flags = le32_to_cpu(f->n->header.flags);
  245. if (flags & INTERNAL_NODE) {
  246. b = value64(f->n, f->current_child);
  247. f->current_child++;
  248. r = push_frame(s, b, f->level);
  249. if (r)
  250. goto out;
  251. } else if (is_internal_level(info, f)) {
  252. b = value64(f->n, f->current_child);
  253. f->current_child++;
  254. r = push_frame(s, b, f->level + 1);
  255. if (r)
  256. goto out;
  257. } else {
  258. if (info->value_type.dec) {
  259. unsigned i;
  260. for (i = 0; i < f->nr_children; i++)
  261. info->value_type.dec(info->value_type.context,
  262. value_ptr(f->n, i));
  263. }
  264. pop_frame(s);
  265. }
  266. }
  267. out:
  268. if (r) {
  269. /* cleanup all frames of del_stack */
  270. unlock_all_frames(s);
  271. }
  272. kfree(s);
  273. return r;
  274. }
  275. EXPORT_SYMBOL_GPL(dm_btree_del);
  276. /*----------------------------------------------------------------*/
  277. static int btree_lookup_raw(struct ro_spine *s, dm_block_t block, uint64_t key,
  278. int (*search_fn)(struct btree_node *, uint64_t),
  279. uint64_t *result_key, void *v, size_t value_size)
  280. {
  281. int i, r;
  282. uint32_t flags, nr_entries;
  283. do {
  284. r = ro_step(s, block);
  285. if (r < 0)
  286. return r;
  287. i = search_fn(ro_node(s), key);
  288. flags = le32_to_cpu(ro_node(s)->header.flags);
  289. nr_entries = le32_to_cpu(ro_node(s)->header.nr_entries);
  290. if (i < 0 || i >= nr_entries)
  291. return -ENODATA;
  292. if (flags & INTERNAL_NODE)
  293. block = value64(ro_node(s), i);
  294. } while (!(flags & LEAF_NODE));
  295. *result_key = le64_to_cpu(ro_node(s)->keys[i]);
  296. memcpy(v, value_ptr(ro_node(s), i), value_size);
  297. return 0;
  298. }
  299. int dm_btree_lookup(struct dm_btree_info *info, dm_block_t root,
  300. uint64_t *keys, void *value_le)
  301. {
  302. unsigned level, last_level = info->levels - 1;
  303. int r = -ENODATA;
  304. uint64_t rkey;
  305. __le64 internal_value_le;
  306. struct ro_spine spine;
  307. init_ro_spine(&spine, info);
  308. for (level = 0; level < info->levels; level++) {
  309. size_t size;
  310. void *value_p;
  311. if (level == last_level) {
  312. value_p = value_le;
  313. size = info->value_type.size;
  314. } else {
  315. value_p = &internal_value_le;
  316. size = sizeof(uint64_t);
  317. }
  318. r = btree_lookup_raw(&spine, root, keys[level],
  319. lower_bound, &rkey,
  320. value_p, size);
  321. if (!r) {
  322. if (rkey != keys[level]) {
  323. exit_ro_spine(&spine);
  324. return -ENODATA;
  325. }
  326. } else {
  327. exit_ro_spine(&spine);
  328. return r;
  329. }
  330. root = le64_to_cpu(internal_value_le);
  331. }
  332. exit_ro_spine(&spine);
  333. return r;
  334. }
  335. EXPORT_SYMBOL_GPL(dm_btree_lookup);
  336. static int dm_btree_lookup_next_single(struct dm_btree_info *info, dm_block_t root,
  337. uint64_t key, uint64_t *rkey, void *value_le)
  338. {
  339. int r, i;
  340. uint32_t flags, nr_entries;
  341. struct dm_block *node;
  342. struct btree_node *n;
  343. r = bn_read_lock(info, root, &node);
  344. if (r)
  345. return r;
  346. n = dm_block_data(node);
  347. flags = le32_to_cpu(n->header.flags);
  348. nr_entries = le32_to_cpu(n->header.nr_entries);
  349. if (flags & INTERNAL_NODE) {
  350. i = lower_bound(n, key);
  351. if (i < 0) {
  352. /*
  353. * avoid early -ENODATA return when all entries are
  354. * higher than the search @key.
  355. */
  356. i = 0;
  357. }
  358. if (i >= nr_entries) {
  359. r = -ENODATA;
  360. goto out;
  361. }
  362. r = dm_btree_lookup_next_single(info, value64(n, i), key, rkey, value_le);
  363. if (r == -ENODATA && i < (nr_entries - 1)) {
  364. i++;
  365. r = dm_btree_lookup_next_single(info, value64(n, i), key, rkey, value_le);
  366. }
  367. } else {
  368. i = upper_bound(n, key);
  369. if (i < 0 || i >= nr_entries) {
  370. r = -ENODATA;
  371. goto out;
  372. }
  373. *rkey = le64_to_cpu(n->keys[i]);
  374. memcpy(value_le, value_ptr(n, i), info->value_type.size);
  375. }
  376. out:
  377. dm_tm_unlock(info->tm, node);
  378. return r;
  379. }
  380. int dm_btree_lookup_next(struct dm_btree_info *info, dm_block_t root,
  381. uint64_t *keys, uint64_t *rkey, void *value_le)
  382. {
  383. unsigned level;
  384. int r = -ENODATA;
  385. __le64 internal_value_le;
  386. struct ro_spine spine;
  387. init_ro_spine(&spine, info);
  388. for (level = 0; level < info->levels - 1u; level++) {
  389. r = btree_lookup_raw(&spine, root, keys[level],
  390. lower_bound, rkey,
  391. &internal_value_le, sizeof(uint64_t));
  392. if (r)
  393. goto out;
  394. if (*rkey != keys[level]) {
  395. r = -ENODATA;
  396. goto out;
  397. }
  398. root = le64_to_cpu(internal_value_le);
  399. }
  400. r = dm_btree_lookup_next_single(info, root, keys[level], rkey, value_le);
  401. out:
  402. exit_ro_spine(&spine);
  403. return r;
  404. }
  405. EXPORT_SYMBOL_GPL(dm_btree_lookup_next);
  406. /*
  407. * Splits a node by creating a sibling node and shifting half the nodes
  408. * contents across. Assumes there is a parent node, and it has room for
  409. * another child.
  410. *
  411. * Before:
  412. * +--------+
  413. * | Parent |
  414. * +--------+
  415. * |
  416. * v
  417. * +----------+
  418. * | A ++++++ |
  419. * +----------+
  420. *
  421. *
  422. * After:
  423. * +--------+
  424. * | Parent |
  425. * +--------+
  426. * | |
  427. * v +------+
  428. * +---------+ |
  429. * | A* +++ | v
  430. * +---------+ +-------+
  431. * | B +++ |
  432. * +-------+
  433. *
  434. * Where A* is a shadow of A.
  435. */
  436. static int btree_split_sibling(struct shadow_spine *s, unsigned parent_index,
  437. uint64_t key)
  438. {
  439. int r;
  440. size_t size;
  441. unsigned nr_left, nr_right;
  442. struct dm_block *left, *right, *parent;
  443. struct btree_node *ln, *rn, *pn;
  444. __le64 location;
  445. left = shadow_current(s);
  446. r = new_block(s->info, &right);
  447. if (r < 0)
  448. return r;
  449. ln = dm_block_data(left);
  450. rn = dm_block_data(right);
  451. nr_left = le32_to_cpu(ln->header.nr_entries) / 2;
  452. nr_right = le32_to_cpu(ln->header.nr_entries) - nr_left;
  453. ln->header.nr_entries = cpu_to_le32(nr_left);
  454. rn->header.flags = ln->header.flags;
  455. rn->header.nr_entries = cpu_to_le32(nr_right);
  456. rn->header.max_entries = ln->header.max_entries;
  457. rn->header.value_size = ln->header.value_size;
  458. memcpy(rn->keys, ln->keys + nr_left, nr_right * sizeof(rn->keys[0]));
  459. size = le32_to_cpu(ln->header.flags) & INTERNAL_NODE ?
  460. sizeof(uint64_t) : s->info->value_type.size;
  461. memcpy(value_ptr(rn, 0), value_ptr(ln, nr_left),
  462. size * nr_right);
  463. /*
  464. * Patch up the parent
  465. */
  466. parent = shadow_parent(s);
  467. pn = dm_block_data(parent);
  468. location = cpu_to_le64(dm_block_location(left));
  469. __dm_bless_for_disk(&location);
  470. memcpy_disk(value_ptr(pn, parent_index),
  471. &location, sizeof(__le64));
  472. location = cpu_to_le64(dm_block_location(right));
  473. __dm_bless_for_disk(&location);
  474. r = insert_at(sizeof(__le64), pn, parent_index + 1,
  475. le64_to_cpu(rn->keys[0]), &location);
  476. if (r) {
  477. unlock_block(s->info, right);
  478. return r;
  479. }
  480. if (key < le64_to_cpu(rn->keys[0])) {
  481. unlock_block(s->info, right);
  482. s->nodes[1] = left;
  483. } else {
  484. unlock_block(s->info, left);
  485. s->nodes[1] = right;
  486. }
  487. return 0;
  488. }
  489. /*
  490. * Splits a node by creating two new children beneath the given node.
  491. *
  492. * Before:
  493. * +----------+
  494. * | A ++++++ |
  495. * +----------+
  496. *
  497. *
  498. * After:
  499. * +------------+
  500. * | A (shadow) |
  501. * +------------+
  502. * | |
  503. * +------+ +----+
  504. * | |
  505. * v v
  506. * +-------+ +-------+
  507. * | B +++ | | C +++ |
  508. * +-------+ +-------+
  509. */
  510. static int btree_split_beneath(struct shadow_spine *s, uint64_t key)
  511. {
  512. int r;
  513. size_t size;
  514. unsigned nr_left, nr_right;
  515. struct dm_block *left, *right, *new_parent;
  516. struct btree_node *pn, *ln, *rn;
  517. __le64 val;
  518. new_parent = shadow_current(s);
  519. r = new_block(s->info, &left);
  520. if (r < 0)
  521. return r;
  522. r = new_block(s->info, &right);
  523. if (r < 0) {
  524. unlock_block(s->info, left);
  525. return r;
  526. }
  527. pn = dm_block_data(new_parent);
  528. ln = dm_block_data(left);
  529. rn = dm_block_data(right);
  530. nr_left = le32_to_cpu(pn->header.nr_entries) / 2;
  531. nr_right = le32_to_cpu(pn->header.nr_entries) - nr_left;
  532. ln->header.flags = pn->header.flags;
  533. ln->header.nr_entries = cpu_to_le32(nr_left);
  534. ln->header.max_entries = pn->header.max_entries;
  535. ln->header.value_size = pn->header.value_size;
  536. rn->header.flags = pn->header.flags;
  537. rn->header.nr_entries = cpu_to_le32(nr_right);
  538. rn->header.max_entries = pn->header.max_entries;
  539. rn->header.value_size = pn->header.value_size;
  540. memcpy(ln->keys, pn->keys, nr_left * sizeof(pn->keys[0]));
  541. memcpy(rn->keys, pn->keys + nr_left, nr_right * sizeof(pn->keys[0]));
  542. size = le32_to_cpu(pn->header.flags) & INTERNAL_NODE ?
  543. sizeof(__le64) : s->info->value_type.size;
  544. memcpy(value_ptr(ln, 0), value_ptr(pn, 0), nr_left * size);
  545. memcpy(value_ptr(rn, 0), value_ptr(pn, nr_left),
  546. nr_right * size);
  547. /* new_parent should just point to l and r now */
  548. pn->header.flags = cpu_to_le32(INTERNAL_NODE);
  549. pn->header.nr_entries = cpu_to_le32(2);
  550. pn->header.max_entries = cpu_to_le32(
  551. calc_max_entries(sizeof(__le64),
  552. dm_bm_block_size(
  553. dm_tm_get_bm(s->info->tm))));
  554. pn->header.value_size = cpu_to_le32(sizeof(__le64));
  555. val = cpu_to_le64(dm_block_location(left));
  556. __dm_bless_for_disk(&val);
  557. pn->keys[0] = ln->keys[0];
  558. memcpy_disk(value_ptr(pn, 0), &val, sizeof(__le64));
  559. val = cpu_to_le64(dm_block_location(right));
  560. __dm_bless_for_disk(&val);
  561. pn->keys[1] = rn->keys[0];
  562. memcpy_disk(value_ptr(pn, 1), &val, sizeof(__le64));
  563. unlock_block(s->info, left);
  564. unlock_block(s->info, right);
  565. return 0;
  566. }
  567. static int btree_insert_raw(struct shadow_spine *s, dm_block_t root,
  568. struct dm_btree_value_type *vt,
  569. uint64_t key, unsigned *index)
  570. {
  571. int r, i = *index, top = 1;
  572. struct btree_node *node;
  573. for (;;) {
  574. r = shadow_step(s, root, vt);
  575. if (r < 0)
  576. return r;
  577. node = dm_block_data(shadow_current(s));
  578. /*
  579. * We have to patch up the parent node, ugly, but I don't
  580. * see a way to do this automatically as part of the spine
  581. * op.
  582. */
  583. if (shadow_has_parent(s) && i >= 0) { /* FIXME: second clause unness. */
  584. __le64 location = cpu_to_le64(dm_block_location(shadow_current(s)));
  585. __dm_bless_for_disk(&location);
  586. memcpy_disk(value_ptr(dm_block_data(shadow_parent(s)), i),
  587. &location, sizeof(__le64));
  588. }
  589. node = dm_block_data(shadow_current(s));
  590. if (node->header.nr_entries == node->header.max_entries) {
  591. if (top)
  592. r = btree_split_beneath(s, key);
  593. else
  594. r = btree_split_sibling(s, i, key);
  595. if (r < 0)
  596. return r;
  597. }
  598. node = dm_block_data(shadow_current(s));
  599. i = lower_bound(node, key);
  600. if (le32_to_cpu(node->header.flags) & LEAF_NODE)
  601. break;
  602. if (i < 0) {
  603. /* change the bounds on the lowest key */
  604. node->keys[0] = cpu_to_le64(key);
  605. i = 0;
  606. }
  607. root = value64(node, i);
  608. top = 0;
  609. }
  610. if (i < 0 || le64_to_cpu(node->keys[i]) != key)
  611. i++;
  612. *index = i;
  613. return 0;
  614. }
  615. static bool need_insert(struct btree_node *node, uint64_t *keys,
  616. unsigned level, unsigned index)
  617. {
  618. return ((index >= le32_to_cpu(node->header.nr_entries)) ||
  619. (le64_to_cpu(node->keys[index]) != keys[level]));
  620. }
  621. static int insert(struct dm_btree_info *info, dm_block_t root,
  622. uint64_t *keys, void *value, dm_block_t *new_root,
  623. int *inserted)
  624. __dm_written_to_disk(value)
  625. {
  626. int r;
  627. unsigned level, index = -1, last_level = info->levels - 1;
  628. dm_block_t block = root;
  629. struct shadow_spine spine;
  630. struct btree_node *n;
  631. struct dm_btree_value_type le64_type;
  632. init_le64_type(info->tm, &le64_type);
  633. init_shadow_spine(&spine, info);
  634. for (level = 0; level < (info->levels - 1); level++) {
  635. r = btree_insert_raw(&spine, block, &le64_type, keys[level], &index);
  636. if (r < 0)
  637. goto bad;
  638. n = dm_block_data(shadow_current(&spine));
  639. if (need_insert(n, keys, level, index)) {
  640. dm_block_t new_tree;
  641. __le64 new_le;
  642. r = dm_btree_empty(info, &new_tree);
  643. if (r < 0)
  644. goto bad;
  645. new_le = cpu_to_le64(new_tree);
  646. __dm_bless_for_disk(&new_le);
  647. r = insert_at(sizeof(uint64_t), n, index,
  648. keys[level], &new_le);
  649. if (r)
  650. goto bad;
  651. }
  652. if (level < last_level)
  653. block = value64(n, index);
  654. }
  655. r = btree_insert_raw(&spine, block, &info->value_type,
  656. keys[level], &index);
  657. if (r < 0)
  658. goto bad;
  659. n = dm_block_data(shadow_current(&spine));
  660. if (need_insert(n, keys, level, index)) {
  661. if (inserted)
  662. *inserted = 1;
  663. r = insert_at(info->value_type.size, n, index,
  664. keys[level], value);
  665. if (r)
  666. goto bad_unblessed;
  667. } else {
  668. if (inserted)
  669. *inserted = 0;
  670. if (info->value_type.dec &&
  671. (!info->value_type.equal ||
  672. !info->value_type.equal(
  673. info->value_type.context,
  674. value_ptr(n, index),
  675. value))) {
  676. info->value_type.dec(info->value_type.context,
  677. value_ptr(n, index));
  678. }
  679. memcpy_disk(value_ptr(n, index),
  680. value, info->value_type.size);
  681. }
  682. *new_root = shadow_root(&spine);
  683. exit_shadow_spine(&spine);
  684. return 0;
  685. bad:
  686. __dm_unbless_for_disk(value);
  687. bad_unblessed:
  688. exit_shadow_spine(&spine);
  689. return r;
  690. }
  691. int dm_btree_insert(struct dm_btree_info *info, dm_block_t root,
  692. uint64_t *keys, void *value, dm_block_t *new_root)
  693. __dm_written_to_disk(value)
  694. {
  695. return insert(info, root, keys, value, new_root, NULL);
  696. }
  697. EXPORT_SYMBOL_GPL(dm_btree_insert);
  698. int dm_btree_insert_notify(struct dm_btree_info *info, dm_block_t root,
  699. uint64_t *keys, void *value, dm_block_t *new_root,
  700. int *inserted)
  701. __dm_written_to_disk(value)
  702. {
  703. return insert(info, root, keys, value, new_root, inserted);
  704. }
  705. EXPORT_SYMBOL_GPL(dm_btree_insert_notify);
  706. /*----------------------------------------------------------------*/
  707. static int find_key(struct ro_spine *s, dm_block_t block, bool find_highest,
  708. uint64_t *result_key, dm_block_t *next_block)
  709. {
  710. int i, r;
  711. uint32_t flags;
  712. do {
  713. r = ro_step(s, block);
  714. if (r < 0)
  715. return r;
  716. flags = le32_to_cpu(ro_node(s)->header.flags);
  717. i = le32_to_cpu(ro_node(s)->header.nr_entries);
  718. if (!i)
  719. return -ENODATA;
  720. else
  721. i--;
  722. if (find_highest)
  723. *result_key = le64_to_cpu(ro_node(s)->keys[i]);
  724. else
  725. *result_key = le64_to_cpu(ro_node(s)->keys[0]);
  726. if (next_block || flags & INTERNAL_NODE) {
  727. if (find_highest)
  728. block = value64(ro_node(s), i);
  729. else
  730. block = value64(ro_node(s), 0);
  731. }
  732. } while (flags & INTERNAL_NODE);
  733. if (next_block)
  734. *next_block = block;
  735. return 0;
  736. }
  737. static int dm_btree_find_key(struct dm_btree_info *info, dm_block_t root,
  738. bool find_highest, uint64_t *result_keys)
  739. {
  740. int r = 0, count = 0, level;
  741. struct ro_spine spine;
  742. init_ro_spine(&spine, info);
  743. for (level = 0; level < info->levels; level++) {
  744. r = find_key(&spine, root, find_highest, result_keys + level,
  745. level == info->levels - 1 ? NULL : &root);
  746. if (r == -ENODATA) {
  747. r = 0;
  748. break;
  749. } else if (r)
  750. break;
  751. count++;
  752. }
  753. exit_ro_spine(&spine);
  754. return r ? r : count;
  755. }
  756. int dm_btree_find_highest_key(struct dm_btree_info *info, dm_block_t root,
  757. uint64_t *result_keys)
  758. {
  759. return dm_btree_find_key(info, root, true, result_keys);
  760. }
  761. EXPORT_SYMBOL_GPL(dm_btree_find_highest_key);
  762. int dm_btree_find_lowest_key(struct dm_btree_info *info, dm_block_t root,
  763. uint64_t *result_keys)
  764. {
  765. return dm_btree_find_key(info, root, false, result_keys);
  766. }
  767. EXPORT_SYMBOL_GPL(dm_btree_find_lowest_key);
  768. /*----------------------------------------------------------------*/
  769. /*
  770. * FIXME: We shouldn't use a recursive algorithm when we have limited stack
  771. * space. Also this only works for single level trees.
  772. */
  773. static int walk_node(struct dm_btree_info *info, dm_block_t block,
  774. int (*fn)(void *context, uint64_t *keys, void *leaf),
  775. void *context)
  776. {
  777. int r;
  778. unsigned i, nr;
  779. struct dm_block *node;
  780. struct btree_node *n;
  781. uint64_t keys;
  782. r = bn_read_lock(info, block, &node);
  783. if (r)
  784. return r;
  785. n = dm_block_data(node);
  786. nr = le32_to_cpu(n->header.nr_entries);
  787. for (i = 0; i < nr; i++) {
  788. if (le32_to_cpu(n->header.flags) & INTERNAL_NODE) {
  789. r = walk_node(info, value64(n, i), fn, context);
  790. if (r)
  791. goto out;
  792. } else {
  793. keys = le64_to_cpu(*key_ptr(n, i));
  794. r = fn(context, &keys, value_ptr(n, i));
  795. if (r)
  796. goto out;
  797. }
  798. }
  799. out:
  800. dm_tm_unlock(info->tm, node);
  801. return r;
  802. }
  803. int dm_btree_walk(struct dm_btree_info *info, dm_block_t root,
  804. int (*fn)(void *context, uint64_t *keys, void *leaf),
  805. void *context)
  806. {
  807. BUG_ON(info->levels > 1);
  808. return walk_node(info, root, fn, context);
  809. }
  810. EXPORT_SYMBOL_GPL(dm_btree_walk);
  811. /*----------------------------------------------------------------*/
  812. static void prefetch_values(struct dm_btree_cursor *c)
  813. {
  814. unsigned i, nr;
  815. __le64 value_le;
  816. struct cursor_node *n = c->nodes + c->depth - 1;
  817. struct btree_node *bn = dm_block_data(n->b);
  818. struct dm_block_manager *bm = dm_tm_get_bm(c->info->tm);
  819. BUG_ON(c->info->value_type.size != sizeof(value_le));
  820. nr = le32_to_cpu(bn->header.nr_entries);
  821. for (i = 0; i < nr; i++) {
  822. memcpy(&value_le, value_ptr(bn, i), sizeof(value_le));
  823. dm_bm_prefetch(bm, le64_to_cpu(value_le));
  824. }
  825. }
  826. static bool leaf_node(struct dm_btree_cursor *c)
  827. {
  828. struct cursor_node *n = c->nodes + c->depth - 1;
  829. struct btree_node *bn = dm_block_data(n->b);
  830. return le32_to_cpu(bn->header.flags) & LEAF_NODE;
  831. }
  832. static int push_node(struct dm_btree_cursor *c, dm_block_t b)
  833. {
  834. int r;
  835. struct cursor_node *n = c->nodes + c->depth;
  836. if (c->depth >= DM_BTREE_CURSOR_MAX_DEPTH - 1) {
  837. DMERR("couldn't push cursor node, stack depth too high");
  838. return -EINVAL;
  839. }
  840. r = bn_read_lock(c->info, b, &n->b);
  841. if (r)
  842. return r;
  843. n->index = 0;
  844. c->depth++;
  845. if (c->prefetch_leaves || !leaf_node(c))
  846. prefetch_values(c);
  847. return 0;
  848. }
  849. static void pop_node(struct dm_btree_cursor *c)
  850. {
  851. c->depth--;
  852. unlock_block(c->info, c->nodes[c->depth].b);
  853. }
  854. static int inc_or_backtrack(struct dm_btree_cursor *c)
  855. {
  856. struct cursor_node *n;
  857. struct btree_node *bn;
  858. for (;;) {
  859. if (!c->depth)
  860. return -ENODATA;
  861. n = c->nodes + c->depth - 1;
  862. bn = dm_block_data(n->b);
  863. n->index++;
  864. if (n->index < le32_to_cpu(bn->header.nr_entries))
  865. break;
  866. pop_node(c);
  867. }
  868. return 0;
  869. }
  870. static int find_leaf(struct dm_btree_cursor *c)
  871. {
  872. int r = 0;
  873. struct cursor_node *n;
  874. struct btree_node *bn;
  875. __le64 value_le;
  876. for (;;) {
  877. n = c->nodes + c->depth - 1;
  878. bn = dm_block_data(n->b);
  879. if (le32_to_cpu(bn->header.flags) & LEAF_NODE)
  880. break;
  881. memcpy(&value_le, value_ptr(bn, n->index), sizeof(value_le));
  882. r = push_node(c, le64_to_cpu(value_le));
  883. if (r) {
  884. DMERR("push_node failed");
  885. break;
  886. }
  887. }
  888. if (!r && (le32_to_cpu(bn->header.nr_entries) == 0))
  889. return -ENODATA;
  890. return r;
  891. }
  892. int dm_btree_cursor_begin(struct dm_btree_info *info, dm_block_t root,
  893. bool prefetch_leaves, struct dm_btree_cursor *c)
  894. {
  895. int r;
  896. c->info = info;
  897. c->root = root;
  898. c->depth = 0;
  899. c->prefetch_leaves = prefetch_leaves;
  900. r = push_node(c, root);
  901. if (r)
  902. return r;
  903. return find_leaf(c);
  904. }
  905. EXPORT_SYMBOL_GPL(dm_btree_cursor_begin);
  906. void dm_btree_cursor_end(struct dm_btree_cursor *c)
  907. {
  908. while (c->depth)
  909. pop_node(c);
  910. }
  911. EXPORT_SYMBOL_GPL(dm_btree_cursor_end);
  912. int dm_btree_cursor_next(struct dm_btree_cursor *c)
  913. {
  914. int r = inc_or_backtrack(c);
  915. if (!r) {
  916. r = find_leaf(c);
  917. if (r)
  918. DMERR("find_leaf failed");
  919. }
  920. return r;
  921. }
  922. EXPORT_SYMBOL_GPL(dm_btree_cursor_next);
  923. int dm_btree_cursor_skip(struct dm_btree_cursor *c, uint32_t count)
  924. {
  925. int r = 0;
  926. while (count-- && !r)
  927. r = dm_btree_cursor_next(c);
  928. return r;
  929. }
  930. EXPORT_SYMBOL_GPL(dm_btree_cursor_skip);
  931. int dm_btree_cursor_get_value(struct dm_btree_cursor *c, uint64_t *key, void *value_le)
  932. {
  933. if (c->depth) {
  934. struct cursor_node *n = c->nodes + c->depth - 1;
  935. struct btree_node *bn = dm_block_data(n->b);
  936. if (le32_to_cpu(bn->header.flags) & INTERNAL_NODE)
  937. return -EINVAL;
  938. *key = le64_to_cpu(*key_ptr(bn, n->index));
  939. memcpy(value_le, value_ptr(bn, n->index), c->info->value_type.size);
  940. return 0;
  941. } else
  942. return -ENODATA;
  943. }
  944. EXPORT_SYMBOL_GPL(dm_btree_cursor_get_value);