btree_node_scan.c 14 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. #include "bcachefs.h"
  3. #include "btree_cache.h"
  4. #include "btree_io.h"
  5. #include "btree_journal_iter.h"
  6. #include "btree_node_scan.h"
  7. #include "btree_update_interior.h"
  8. #include "buckets.h"
  9. #include "error.h"
  10. #include "journal_io.h"
  11. #include "recovery_passes.h"
  12. #include <linux/kthread.h>
  13. #include <linux/sort.h>
  14. struct find_btree_nodes_worker {
  15. struct closure *cl;
  16. struct find_btree_nodes *f;
  17. struct bch_dev *ca;
  18. };
  19. static void found_btree_node_to_text(struct printbuf *out, struct bch_fs *c, const struct found_btree_node *n)
  20. {
  21. prt_printf(out, "%s l=%u seq=%u journal_seq=%llu cookie=%llx ",
  22. bch2_btree_id_str(n->btree_id), n->level, n->seq,
  23. n->journal_seq, n->cookie);
  24. bch2_bpos_to_text(out, n->min_key);
  25. prt_str(out, "-");
  26. bch2_bpos_to_text(out, n->max_key);
  27. if (n->range_updated)
  28. prt_str(out, " range updated");
  29. if (n->overwritten)
  30. prt_str(out, " overwritten");
  31. for (unsigned i = 0; i < n->nr_ptrs; i++) {
  32. prt_char(out, ' ');
  33. bch2_extent_ptr_to_text(out, c, n->ptrs + i);
  34. }
  35. }
  36. static void found_btree_nodes_to_text(struct printbuf *out, struct bch_fs *c, found_btree_nodes nodes)
  37. {
  38. printbuf_indent_add(out, 2);
  39. darray_for_each(nodes, i) {
  40. found_btree_node_to_text(out, c, i);
  41. prt_newline(out);
  42. }
  43. printbuf_indent_sub(out, 2);
  44. }
  45. static void found_btree_node_to_key(struct bkey_i *k, const struct found_btree_node *f)
  46. {
  47. struct bkey_i_btree_ptr_v2 *bp = bkey_btree_ptr_v2_init(k);
  48. set_bkey_val_u64s(&bp->k, sizeof(struct bch_btree_ptr_v2) / sizeof(u64) + f->nr_ptrs);
  49. bp->k.p = f->max_key;
  50. bp->v.seq = cpu_to_le64(f->cookie);
  51. bp->v.sectors_written = 0;
  52. bp->v.flags = 0;
  53. bp->v.sectors_written = cpu_to_le16(f->sectors_written);
  54. bp->v.min_key = f->min_key;
  55. SET_BTREE_PTR_RANGE_UPDATED(&bp->v, f->range_updated);
  56. memcpy(bp->v.start, f->ptrs, sizeof(struct bch_extent_ptr) * f->nr_ptrs);
  57. }
  58. static inline u64 bkey_journal_seq(struct bkey_s_c k)
  59. {
  60. switch (k.k->type) {
  61. case KEY_TYPE_inode_v3:
  62. return le64_to_cpu(bkey_s_c_to_inode_v3(k).v->bi_journal_seq);
  63. default:
  64. return 0;
  65. }
  66. }
  67. static bool found_btree_node_is_readable(struct btree_trans *trans,
  68. struct found_btree_node *f)
  69. {
  70. struct { __BKEY_PADDED(k, BKEY_BTREE_PTR_VAL_U64s_MAX); } tmp;
  71. found_btree_node_to_key(&tmp.k, f);
  72. struct btree *b = bch2_btree_node_get_noiter(trans, &tmp.k, f->btree_id, f->level, false);
  73. bool ret = !IS_ERR_OR_NULL(b);
  74. if (!ret)
  75. return ret;
  76. f->sectors_written = b->written;
  77. f->journal_seq = le64_to_cpu(b->data->keys.journal_seq);
  78. struct bkey_s_c k;
  79. struct bkey unpacked;
  80. struct btree_node_iter iter;
  81. for_each_btree_node_key_unpack(b, k, &iter, &unpacked)
  82. f->journal_seq = max(f->journal_seq, bkey_journal_seq(k));
  83. six_unlock_read(&b->c.lock);
  84. /*
  85. * We might update this node's range; if that happens, we need the node
  86. * to be re-read so the read path can trim keys that are no longer in
  87. * this node
  88. */
  89. if (b != btree_node_root(trans->c, b))
  90. bch2_btree_node_evict(trans, &tmp.k);
  91. return ret;
  92. }
  93. static int found_btree_node_cmp_cookie(const void *_l, const void *_r)
  94. {
  95. const struct found_btree_node *l = _l;
  96. const struct found_btree_node *r = _r;
  97. return cmp_int(l->btree_id, r->btree_id) ?:
  98. cmp_int(l->level, r->level) ?:
  99. cmp_int(l->cookie, r->cookie);
  100. }
  101. /*
  102. * Given two found btree nodes, if their sequence numbers are equal, take the
  103. * one that's readable:
  104. */
  105. static int found_btree_node_cmp_time(const struct found_btree_node *l,
  106. const struct found_btree_node *r)
  107. {
  108. return cmp_int(l->seq, r->seq) ?:
  109. cmp_int(l->journal_seq, r->journal_seq);
  110. }
  111. static int found_btree_node_cmp_pos(const void *_l, const void *_r)
  112. {
  113. const struct found_btree_node *l = _l;
  114. const struct found_btree_node *r = _r;
  115. return cmp_int(l->btree_id, r->btree_id) ?:
  116. -cmp_int(l->level, r->level) ?:
  117. bpos_cmp(l->min_key, r->min_key) ?:
  118. -found_btree_node_cmp_time(l, r);
  119. }
  120. static void try_read_btree_node(struct find_btree_nodes *f, struct bch_dev *ca,
  121. struct bio *bio, struct btree_node *bn, u64 offset)
  122. {
  123. struct bch_fs *c = container_of(f, struct bch_fs, found_btree_nodes);
  124. bio_reset(bio, ca->disk_sb.bdev, REQ_OP_READ);
  125. bio->bi_iter.bi_sector = offset;
  126. bch2_bio_map(bio, bn, PAGE_SIZE);
  127. submit_bio_wait(bio);
  128. if (bch2_dev_io_err_on(bio->bi_status, ca, BCH_MEMBER_ERROR_read,
  129. "IO error in try_read_btree_node() at %llu: %s",
  130. offset, bch2_blk_status_to_str(bio->bi_status)))
  131. return;
  132. if (le64_to_cpu(bn->magic) != bset_magic(c))
  133. return;
  134. if (bch2_csum_type_is_encryption(BSET_CSUM_TYPE(&bn->keys))) {
  135. struct nonce nonce = btree_nonce(&bn->keys, 0);
  136. unsigned bytes = (void *) &bn->keys - (void *) &bn->flags;
  137. bch2_encrypt(c, BSET_CSUM_TYPE(&bn->keys), nonce, &bn->flags, bytes);
  138. }
  139. if (btree_id_is_alloc(BTREE_NODE_ID(bn)))
  140. return;
  141. if (BTREE_NODE_LEVEL(bn) >= BTREE_MAX_DEPTH)
  142. return;
  143. if (BTREE_NODE_ID(bn) >= BTREE_ID_NR_MAX)
  144. return;
  145. rcu_read_lock();
  146. struct found_btree_node n = {
  147. .btree_id = BTREE_NODE_ID(bn),
  148. .level = BTREE_NODE_LEVEL(bn),
  149. .seq = BTREE_NODE_SEQ(bn),
  150. .cookie = le64_to_cpu(bn->keys.seq),
  151. .min_key = bn->min_key,
  152. .max_key = bn->max_key,
  153. .nr_ptrs = 1,
  154. .ptrs[0].type = 1 << BCH_EXTENT_ENTRY_ptr,
  155. .ptrs[0].offset = offset,
  156. .ptrs[0].dev = ca->dev_idx,
  157. .ptrs[0].gen = bucket_gen_get(ca, sector_to_bucket(ca, offset)),
  158. };
  159. rcu_read_unlock();
  160. if (bch2_trans_run(c, found_btree_node_is_readable(trans, &n))) {
  161. mutex_lock(&f->lock);
  162. if (BSET_BIG_ENDIAN(&bn->keys) != CPU_BIG_ENDIAN) {
  163. bch_err(c, "try_read_btree_node() can't handle endian conversion");
  164. f->ret = -EINVAL;
  165. goto unlock;
  166. }
  167. if (darray_push(&f->nodes, n))
  168. f->ret = -ENOMEM;
  169. unlock:
  170. mutex_unlock(&f->lock);
  171. }
  172. }
  173. static int read_btree_nodes_worker(void *p)
  174. {
  175. struct find_btree_nodes_worker *w = p;
  176. struct bch_fs *c = container_of(w->f, struct bch_fs, found_btree_nodes);
  177. struct bch_dev *ca = w->ca;
  178. void *buf = (void *) __get_free_page(GFP_KERNEL);
  179. struct bio *bio = bio_alloc(NULL, 1, 0, GFP_KERNEL);
  180. unsigned long last_print = jiffies;
  181. if (!buf || !bio) {
  182. bch_err(c, "read_btree_nodes_worker: error allocating bio/buf");
  183. w->f->ret = -ENOMEM;
  184. goto err;
  185. }
  186. for (u64 bucket = ca->mi.first_bucket; bucket < ca->mi.nbuckets; bucket++)
  187. for (unsigned bucket_offset = 0;
  188. bucket_offset + btree_sectors(c) <= ca->mi.bucket_size;
  189. bucket_offset += btree_sectors(c)) {
  190. if (time_after(jiffies, last_print + HZ * 30)) {
  191. u64 cur_sector = bucket * ca->mi.bucket_size + bucket_offset;
  192. u64 end_sector = ca->mi.nbuckets * ca->mi.bucket_size;
  193. bch_info(ca, "%s: %2u%% done", __func__,
  194. (unsigned) div64_u64(cur_sector * 100, end_sector));
  195. last_print = jiffies;
  196. }
  197. u64 sector = bucket * ca->mi.bucket_size + bucket_offset;
  198. if (c->sb.version_upgrade_complete >= bcachefs_metadata_version_mi_btree_bitmap &&
  199. !bch2_dev_btree_bitmap_marked_sectors(ca, sector, btree_sectors(c)))
  200. continue;
  201. try_read_btree_node(w->f, ca, bio, buf, sector);
  202. }
  203. err:
  204. bio_put(bio);
  205. free_page((unsigned long) buf);
  206. percpu_ref_get(&ca->io_ref);
  207. closure_put(w->cl);
  208. kfree(w);
  209. return 0;
  210. }
  211. static int read_btree_nodes(struct find_btree_nodes *f)
  212. {
  213. struct bch_fs *c = container_of(f, struct bch_fs, found_btree_nodes);
  214. struct closure cl;
  215. int ret = 0;
  216. closure_init_stack(&cl);
  217. for_each_online_member(c, ca) {
  218. if (!(ca->mi.data_allowed & BIT(BCH_DATA_btree)))
  219. continue;
  220. struct find_btree_nodes_worker *w = kmalloc(sizeof(*w), GFP_KERNEL);
  221. struct task_struct *t;
  222. if (!w) {
  223. percpu_ref_put(&ca->io_ref);
  224. ret = -ENOMEM;
  225. goto err;
  226. }
  227. percpu_ref_get(&ca->io_ref);
  228. closure_get(&cl);
  229. w->cl = &cl;
  230. w->f = f;
  231. w->ca = ca;
  232. t = kthread_run(read_btree_nodes_worker, w, "read_btree_nodes/%s", ca->name);
  233. ret = PTR_ERR_OR_ZERO(t);
  234. if (ret) {
  235. percpu_ref_put(&ca->io_ref);
  236. closure_put(&cl);
  237. f->ret = ret;
  238. bch_err(c, "error starting kthread: %i", ret);
  239. break;
  240. }
  241. }
  242. err:
  243. closure_sync(&cl);
  244. return f->ret ?: ret;
  245. }
  246. static void bubble_up(struct found_btree_node *n, struct found_btree_node *end)
  247. {
  248. while (n + 1 < end &&
  249. found_btree_node_cmp_pos(n, n + 1) > 0) {
  250. swap(n[0], n[1]);
  251. n++;
  252. }
  253. }
  254. static int handle_overwrites(struct bch_fs *c,
  255. struct found_btree_node *start,
  256. struct found_btree_node *end)
  257. {
  258. struct found_btree_node *n;
  259. again:
  260. for (n = start + 1;
  261. n < end &&
  262. n->btree_id == start->btree_id &&
  263. n->level == start->level &&
  264. bpos_lt(n->min_key, start->max_key);
  265. n++) {
  266. int cmp = found_btree_node_cmp_time(start, n);
  267. if (cmp > 0) {
  268. if (bpos_cmp(start->max_key, n->max_key) >= 0)
  269. n->overwritten = true;
  270. else {
  271. n->range_updated = true;
  272. n->min_key = bpos_successor(start->max_key);
  273. n->range_updated = true;
  274. bubble_up(n, end);
  275. goto again;
  276. }
  277. } else if (cmp < 0) {
  278. BUG_ON(bpos_cmp(n->min_key, start->min_key) <= 0);
  279. start->max_key = bpos_predecessor(n->min_key);
  280. start->range_updated = true;
  281. } else if (n->level) {
  282. n->overwritten = true;
  283. } else {
  284. if (bpos_cmp(start->max_key, n->max_key) >= 0)
  285. n->overwritten = true;
  286. else {
  287. n->range_updated = true;
  288. n->min_key = bpos_successor(start->max_key);
  289. n->range_updated = true;
  290. bubble_up(n, end);
  291. goto again;
  292. }
  293. }
  294. }
  295. return 0;
  296. }
  297. int bch2_scan_for_btree_nodes(struct bch_fs *c)
  298. {
  299. struct find_btree_nodes *f = &c->found_btree_nodes;
  300. struct printbuf buf = PRINTBUF;
  301. size_t dst;
  302. int ret = 0;
  303. if (f->nodes.nr)
  304. return 0;
  305. mutex_init(&f->lock);
  306. ret = read_btree_nodes(f);
  307. if (ret)
  308. return ret;
  309. if (!f->nodes.nr) {
  310. bch_err(c, "%s: no btree nodes found", __func__);
  311. ret = -EINVAL;
  312. goto err;
  313. }
  314. if (0 && c->opts.verbose) {
  315. printbuf_reset(&buf);
  316. prt_printf(&buf, "%s: nodes found:\n", __func__);
  317. found_btree_nodes_to_text(&buf, c, f->nodes);
  318. bch2_print_string_as_lines(KERN_INFO, buf.buf);
  319. }
  320. sort(f->nodes.data, f->nodes.nr, sizeof(f->nodes.data[0]), found_btree_node_cmp_cookie, NULL);
  321. dst = 0;
  322. darray_for_each(f->nodes, i) {
  323. struct found_btree_node *prev = dst ? f->nodes.data + dst - 1 : NULL;
  324. if (prev &&
  325. prev->cookie == i->cookie) {
  326. if (prev->nr_ptrs == ARRAY_SIZE(prev->ptrs)) {
  327. bch_err(c, "%s: found too many replicas for btree node", __func__);
  328. ret = -EINVAL;
  329. goto err;
  330. }
  331. prev->ptrs[prev->nr_ptrs++] = i->ptrs[0];
  332. } else {
  333. f->nodes.data[dst++] = *i;
  334. }
  335. }
  336. f->nodes.nr = dst;
  337. sort(f->nodes.data, f->nodes.nr, sizeof(f->nodes.data[0]), found_btree_node_cmp_pos, NULL);
  338. if (0 && c->opts.verbose) {
  339. printbuf_reset(&buf);
  340. prt_printf(&buf, "%s: nodes after merging replicas:\n", __func__);
  341. found_btree_nodes_to_text(&buf, c, f->nodes);
  342. bch2_print_string_as_lines(KERN_INFO, buf.buf);
  343. }
  344. dst = 0;
  345. darray_for_each(f->nodes, i) {
  346. if (i->overwritten)
  347. continue;
  348. ret = handle_overwrites(c, i, &darray_top(f->nodes));
  349. if (ret)
  350. goto err;
  351. BUG_ON(i->overwritten);
  352. f->nodes.data[dst++] = *i;
  353. }
  354. f->nodes.nr = dst;
  355. if (c->opts.verbose) {
  356. printbuf_reset(&buf);
  357. prt_printf(&buf, "%s: nodes found after overwrites:\n", __func__);
  358. found_btree_nodes_to_text(&buf, c, f->nodes);
  359. bch2_print_string_as_lines(KERN_INFO, buf.buf);
  360. }
  361. eytzinger0_sort(f->nodes.data, f->nodes.nr, sizeof(f->nodes.data[0]), found_btree_node_cmp_pos, NULL);
  362. err:
  363. printbuf_exit(&buf);
  364. return ret;
  365. }
  366. static int found_btree_node_range_start_cmp(const void *_l, const void *_r)
  367. {
  368. const struct found_btree_node *l = _l;
  369. const struct found_btree_node *r = _r;
  370. return cmp_int(l->btree_id, r->btree_id) ?:
  371. -cmp_int(l->level, r->level) ?:
  372. bpos_cmp(l->max_key, r->min_key);
  373. }
  374. #define for_each_found_btree_node_in_range(_f, _search, _idx) \
  375. for (size_t _idx = eytzinger0_find_gt((_f)->nodes.data, (_f)->nodes.nr, \
  376. sizeof((_f)->nodes.data[0]), \
  377. found_btree_node_range_start_cmp, &search); \
  378. _idx < (_f)->nodes.nr && \
  379. (_f)->nodes.data[_idx].btree_id == _search.btree_id && \
  380. (_f)->nodes.data[_idx].level == _search.level && \
  381. bpos_lt((_f)->nodes.data[_idx].min_key, _search.max_key); \
  382. _idx = eytzinger0_next(_idx, (_f)->nodes.nr))
  383. bool bch2_btree_node_is_stale(struct bch_fs *c, struct btree *b)
  384. {
  385. struct find_btree_nodes *f = &c->found_btree_nodes;
  386. struct found_btree_node search = {
  387. .btree_id = b->c.btree_id,
  388. .level = b->c.level,
  389. .min_key = b->data->min_key,
  390. .max_key = b->key.k.p,
  391. };
  392. for_each_found_btree_node_in_range(f, search, idx)
  393. if (f->nodes.data[idx].seq > BTREE_NODE_SEQ(b->data))
  394. return true;
  395. return false;
  396. }
  397. bool bch2_btree_has_scanned_nodes(struct bch_fs *c, enum btree_id btree)
  398. {
  399. struct found_btree_node search = {
  400. .btree_id = btree,
  401. .level = 0,
  402. .min_key = POS_MIN,
  403. .max_key = SPOS_MAX,
  404. };
  405. for_each_found_btree_node_in_range(&c->found_btree_nodes, search, idx)
  406. return true;
  407. return false;
  408. }
  409. int bch2_get_scanned_nodes(struct bch_fs *c, enum btree_id btree,
  410. unsigned level, struct bpos node_min, struct bpos node_max)
  411. {
  412. if (btree_id_is_alloc(btree))
  413. return 0;
  414. struct find_btree_nodes *f = &c->found_btree_nodes;
  415. int ret = bch2_run_explicit_recovery_pass(c, BCH_RECOVERY_PASS_scan_for_btree_nodes);
  416. if (ret)
  417. return ret;
  418. if (c->opts.verbose) {
  419. struct printbuf buf = PRINTBUF;
  420. prt_printf(&buf, "recovering %s l=%u ", bch2_btree_id_str(btree), level);
  421. bch2_bpos_to_text(&buf, node_min);
  422. prt_str(&buf, " - ");
  423. bch2_bpos_to_text(&buf, node_max);
  424. bch_info(c, "%s(): %s", __func__, buf.buf);
  425. printbuf_exit(&buf);
  426. }
  427. struct found_btree_node search = {
  428. .btree_id = btree,
  429. .level = level,
  430. .min_key = node_min,
  431. .max_key = node_max,
  432. };
  433. for_each_found_btree_node_in_range(f, search, idx) {
  434. struct found_btree_node n = f->nodes.data[idx];
  435. n.range_updated |= bpos_lt(n.min_key, node_min);
  436. n.min_key = bpos_max(n.min_key, node_min);
  437. n.range_updated |= bpos_gt(n.max_key, node_max);
  438. n.max_key = bpos_min(n.max_key, node_max);
  439. struct { __BKEY_PADDED(k, BKEY_BTREE_PTR_VAL_U64s_MAX); } tmp;
  440. found_btree_node_to_key(&tmp.k, &n);
  441. struct printbuf buf = PRINTBUF;
  442. bch2_bkey_val_to_text(&buf, c, bkey_i_to_s_c(&tmp.k));
  443. bch_verbose(c, "%s(): recovering %s", __func__, buf.buf);
  444. printbuf_exit(&buf);
  445. BUG_ON(bch2_bkey_validate(c, bkey_i_to_s_c(&tmp.k), BKEY_TYPE_btree, 0));
  446. ret = bch2_journal_key_insert(c, btree, level + 1, &tmp.k);
  447. if (ret)
  448. return ret;
  449. }
  450. return 0;
  451. }
  452. void bch2_find_btree_nodes_exit(struct find_btree_nodes *f)
  453. {
  454. darray_exit(&f->nodes);
  455. }