btree_trans_commit.c 32 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. #include "bcachefs.h"
  3. #include "alloc_foreground.h"
  4. #include "btree_gc.h"
  5. #include "btree_io.h"
  6. #include "btree_iter.h"
  7. #include "btree_journal_iter.h"
  8. #include "btree_key_cache.h"
  9. #include "btree_update_interior.h"
  10. #include "btree_write_buffer.h"
  11. #include "buckets.h"
  12. #include "disk_accounting.h"
  13. #include "errcode.h"
  14. #include "error.h"
  15. #include "journal.h"
  16. #include "journal_io.h"
  17. #include "journal_reclaim.h"
  18. #include "replicas.h"
  19. #include "snapshot.h"
  20. #include <linux/prefetch.h>
  21. static const char * const trans_commit_flags_strs[] = {
  22. #define x(n, ...) #n,
  23. BCH_TRANS_COMMIT_FLAGS()
  24. #undef x
  25. NULL
  26. };
  27. void bch2_trans_commit_flags_to_text(struct printbuf *out, enum bch_trans_commit_flags flags)
  28. {
  29. enum bch_watermark watermark = flags & BCH_WATERMARK_MASK;
  30. prt_printf(out, "watermark=%s", bch2_watermarks[watermark]);
  31. flags >>= BCH_WATERMARK_BITS;
  32. if (flags) {
  33. prt_char(out, ' ');
  34. bch2_prt_bitflags(out, trans_commit_flags_strs, flags);
  35. }
  36. }
  37. static void verify_update_old_key(struct btree_trans *trans, struct btree_insert_entry *i)
  38. {
  39. #ifdef CONFIG_BCACHEFS_DEBUG
  40. struct bch_fs *c = trans->c;
  41. struct bkey u;
  42. struct bkey_s_c k = bch2_btree_path_peek_slot_exact(trans->paths + i->path, &u);
  43. if (unlikely(trans->journal_replay_not_finished)) {
  44. struct bkey_i *j_k =
  45. bch2_journal_keys_peek_slot(c, i->btree_id, i->level, i->k->k.p);
  46. if (j_k)
  47. k = bkey_i_to_s_c(j_k);
  48. }
  49. u = *k.k;
  50. u.needs_whiteout = i->old_k.needs_whiteout;
  51. BUG_ON(memcmp(&i->old_k, &u, sizeof(struct bkey)));
  52. BUG_ON(i->old_v != k.v);
  53. #endif
  54. }
  55. static inline struct btree_path_level *insert_l(struct btree_trans *trans, struct btree_insert_entry *i)
  56. {
  57. return (trans->paths + i->path)->l + i->level;
  58. }
  59. static inline bool same_leaf_as_prev(struct btree_trans *trans,
  60. struct btree_insert_entry *i)
  61. {
  62. return i != trans->updates &&
  63. insert_l(trans, &i[0])->b == insert_l(trans, &i[-1])->b;
  64. }
  65. static inline bool same_leaf_as_next(struct btree_trans *trans,
  66. struct btree_insert_entry *i)
  67. {
  68. return i + 1 < trans->updates + trans->nr_updates &&
  69. insert_l(trans, &i[0])->b == insert_l(trans, &i[1])->b;
  70. }
  71. inline void bch2_btree_node_prep_for_write(struct btree_trans *trans,
  72. struct btree_path *path,
  73. struct btree *b)
  74. {
  75. struct bch_fs *c = trans->c;
  76. if (unlikely(btree_node_just_written(b)) &&
  77. bch2_btree_post_write_cleanup(c, b))
  78. bch2_trans_node_reinit_iter(trans, b);
  79. /*
  80. * If the last bset has been written, or if it's gotten too big - start
  81. * a new bset to insert into:
  82. */
  83. if (want_new_bset(c, b))
  84. bch2_btree_init_next(trans, b);
  85. }
  86. static noinline int trans_lock_write_fail(struct btree_trans *trans, struct btree_insert_entry *i)
  87. {
  88. while (--i >= trans->updates) {
  89. if (same_leaf_as_prev(trans, i))
  90. continue;
  91. bch2_btree_node_unlock_write(trans, trans->paths + i->path, insert_l(trans, i)->b);
  92. }
  93. trace_and_count(trans->c, trans_restart_would_deadlock_write, trans);
  94. return btree_trans_restart(trans, BCH_ERR_transaction_restart_would_deadlock_write);
  95. }
  96. static inline int bch2_trans_lock_write(struct btree_trans *trans)
  97. {
  98. EBUG_ON(trans->write_locked);
  99. trans_for_each_update(trans, i) {
  100. if (same_leaf_as_prev(trans, i))
  101. continue;
  102. if (bch2_btree_node_lock_write(trans, trans->paths + i->path, &insert_l(trans, i)->b->c))
  103. return trans_lock_write_fail(trans, i);
  104. if (!i->cached)
  105. bch2_btree_node_prep_for_write(trans, trans->paths + i->path, insert_l(trans, i)->b);
  106. }
  107. trans->write_locked = true;
  108. return 0;
  109. }
  110. static inline void bch2_trans_unlock_write(struct btree_trans *trans)
  111. {
  112. if (likely(trans->write_locked)) {
  113. trans_for_each_update(trans, i)
  114. if (btree_node_locked_type(trans->paths + i->path, i->level) ==
  115. BTREE_NODE_WRITE_LOCKED)
  116. bch2_btree_node_unlock_write_inlined(trans,
  117. trans->paths + i->path, insert_l(trans, i)->b);
  118. trans->write_locked = false;
  119. }
  120. }
  121. /* Inserting into a given leaf node (last stage of insert): */
  122. /* Handle overwrites and do insert, for non extents: */
  123. bool bch2_btree_bset_insert_key(struct btree_trans *trans,
  124. struct btree_path *path,
  125. struct btree *b,
  126. struct btree_node_iter *node_iter,
  127. struct bkey_i *insert)
  128. {
  129. struct bkey_packed *k;
  130. unsigned clobber_u64s = 0, new_u64s = 0;
  131. EBUG_ON(btree_node_just_written(b));
  132. EBUG_ON(bset_written(b, btree_bset_last(b)));
  133. EBUG_ON(bkey_deleted(&insert->k) && bkey_val_u64s(&insert->k));
  134. EBUG_ON(bpos_lt(insert->k.p, b->data->min_key));
  135. EBUG_ON(bpos_gt(insert->k.p, b->data->max_key));
  136. EBUG_ON(insert->k.u64s > bch2_btree_keys_u64s_remaining(b));
  137. EBUG_ON(!b->c.level && !bpos_eq(insert->k.p, path->pos));
  138. k = bch2_btree_node_iter_peek_all(node_iter, b);
  139. if (k && bkey_cmp_left_packed(b, k, &insert->k.p))
  140. k = NULL;
  141. /* @k is the key being overwritten/deleted, if any: */
  142. EBUG_ON(k && bkey_deleted(k));
  143. /* Deleting, but not found? nothing to do: */
  144. if (bkey_deleted(&insert->k) && !k)
  145. return false;
  146. if (bkey_deleted(&insert->k)) {
  147. /* Deleting: */
  148. btree_account_key_drop(b, k);
  149. k->type = KEY_TYPE_deleted;
  150. if (k->needs_whiteout)
  151. push_whiteout(b, insert->k.p);
  152. k->needs_whiteout = false;
  153. if (k >= btree_bset_last(b)->start) {
  154. clobber_u64s = k->u64s;
  155. bch2_bset_delete(b, k, clobber_u64s);
  156. goto fix_iter;
  157. } else {
  158. bch2_btree_path_fix_key_modified(trans, b, k);
  159. }
  160. return true;
  161. }
  162. if (k) {
  163. /* Overwriting: */
  164. btree_account_key_drop(b, k);
  165. k->type = KEY_TYPE_deleted;
  166. insert->k.needs_whiteout = k->needs_whiteout;
  167. k->needs_whiteout = false;
  168. if (k >= btree_bset_last(b)->start) {
  169. clobber_u64s = k->u64s;
  170. goto overwrite;
  171. } else {
  172. bch2_btree_path_fix_key_modified(trans, b, k);
  173. }
  174. }
  175. k = bch2_btree_node_iter_bset_pos(node_iter, b, bset_tree_last(b));
  176. overwrite:
  177. bch2_bset_insert(b, k, insert, clobber_u64s);
  178. new_u64s = k->u64s;
  179. fix_iter:
  180. if (clobber_u64s != new_u64s)
  181. bch2_btree_node_iter_fix(trans, path, b, node_iter, k,
  182. clobber_u64s, new_u64s);
  183. return true;
  184. }
  185. static int __btree_node_flush(struct journal *j, struct journal_entry_pin *pin,
  186. unsigned i, u64 seq)
  187. {
  188. struct bch_fs *c = container_of(j, struct bch_fs, journal);
  189. struct btree_write *w = container_of(pin, struct btree_write, journal);
  190. struct btree *b = container_of(w, struct btree, writes[i]);
  191. struct btree_trans *trans = bch2_trans_get(c);
  192. unsigned long old, new;
  193. unsigned idx = w - b->writes;
  194. btree_node_lock_nopath_nofail(trans, &b->c, SIX_LOCK_read);
  195. old = READ_ONCE(b->flags);
  196. do {
  197. new = old;
  198. if (!(old & (1 << BTREE_NODE_dirty)) ||
  199. !!(old & (1 << BTREE_NODE_write_idx)) != idx ||
  200. w->journal.seq != seq)
  201. break;
  202. new &= ~BTREE_WRITE_TYPE_MASK;
  203. new |= BTREE_WRITE_journal_reclaim;
  204. new |= 1 << BTREE_NODE_need_write;
  205. } while (!try_cmpxchg(&b->flags, &old, new));
  206. btree_node_write_if_need(c, b, SIX_LOCK_read);
  207. six_unlock_read(&b->c.lock);
  208. bch2_trans_put(trans);
  209. return 0;
  210. }
  211. int bch2_btree_node_flush0(struct journal *j, struct journal_entry_pin *pin, u64 seq)
  212. {
  213. return __btree_node_flush(j, pin, 0, seq);
  214. }
  215. int bch2_btree_node_flush1(struct journal *j, struct journal_entry_pin *pin, u64 seq)
  216. {
  217. return __btree_node_flush(j, pin, 1, seq);
  218. }
  219. inline void bch2_btree_add_journal_pin(struct bch_fs *c,
  220. struct btree *b, u64 seq)
  221. {
  222. struct btree_write *w = btree_current_write(b);
  223. bch2_journal_pin_add(&c->journal, seq, &w->journal,
  224. btree_node_write_idx(b) == 0
  225. ? bch2_btree_node_flush0
  226. : bch2_btree_node_flush1);
  227. }
  228. /**
  229. * bch2_btree_insert_key_leaf() - insert a key one key into a leaf node
  230. * @trans: btree transaction object
  231. * @path: path pointing to @insert's pos
  232. * @insert: key to insert
  233. * @journal_seq: sequence number of journal reservation
  234. */
  235. inline void bch2_btree_insert_key_leaf(struct btree_trans *trans,
  236. struct btree_path *path,
  237. struct bkey_i *insert,
  238. u64 journal_seq)
  239. {
  240. struct bch_fs *c = trans->c;
  241. struct btree *b = path_l(path)->b;
  242. struct bset_tree *t = bset_tree_last(b);
  243. struct bset *i = bset(b, t);
  244. int old_u64s = bset_u64s(t);
  245. int old_live_u64s = b->nr.live_u64s;
  246. int live_u64s_added, u64s_added;
  247. if (unlikely(!bch2_btree_bset_insert_key(trans, path, b,
  248. &path_l(path)->iter, insert)))
  249. return;
  250. i->journal_seq = cpu_to_le64(max(journal_seq, le64_to_cpu(i->journal_seq)));
  251. bch2_btree_add_journal_pin(c, b, journal_seq);
  252. if (unlikely(!btree_node_dirty(b))) {
  253. EBUG_ON(test_bit(BCH_FS_clean_shutdown, &c->flags));
  254. set_btree_node_dirty_acct(c, b);
  255. }
  256. live_u64s_added = (int) b->nr.live_u64s - old_live_u64s;
  257. u64s_added = (int) bset_u64s(t) - old_u64s;
  258. if (b->sib_u64s[0] != U16_MAX && live_u64s_added < 0)
  259. b->sib_u64s[0] = max(0, (int) b->sib_u64s[0] + live_u64s_added);
  260. if (b->sib_u64s[1] != U16_MAX && live_u64s_added < 0)
  261. b->sib_u64s[1] = max(0, (int) b->sib_u64s[1] + live_u64s_added);
  262. if (u64s_added > live_u64s_added &&
  263. bch2_maybe_compact_whiteouts(c, b))
  264. bch2_trans_node_reinit_iter(trans, b);
  265. }
  266. /* Cached btree updates: */
  267. /* Normal update interface: */
  268. static inline void btree_insert_entry_checks(struct btree_trans *trans,
  269. struct btree_insert_entry *i)
  270. {
  271. struct btree_path *path = trans->paths + i->path;
  272. BUG_ON(!bpos_eq(i->k->k.p, path->pos));
  273. BUG_ON(i->cached != path->cached);
  274. BUG_ON(i->level != path->level);
  275. BUG_ON(i->btree_id != path->btree_id);
  276. EBUG_ON(!i->level &&
  277. btree_type_has_snapshots(i->btree_id) &&
  278. !(i->flags & BTREE_UPDATE_internal_snapshot_node) &&
  279. test_bit(JOURNAL_replay_done, &trans->c->journal.flags) &&
  280. i->k->k.p.snapshot &&
  281. bch2_snapshot_is_internal_node(trans->c, i->k->k.p.snapshot) > 0);
  282. }
  283. static __always_inline int bch2_trans_journal_res_get(struct btree_trans *trans,
  284. unsigned flags)
  285. {
  286. return bch2_journal_res_get(&trans->c->journal, &trans->journal_res,
  287. trans->journal_u64s, flags);
  288. }
  289. #define JSET_ENTRY_LOG_U64s 4
  290. static noinline void journal_transaction_name(struct btree_trans *trans)
  291. {
  292. struct bch_fs *c = trans->c;
  293. struct journal *j = &c->journal;
  294. struct jset_entry *entry =
  295. bch2_journal_add_entry(j, &trans->journal_res,
  296. BCH_JSET_ENTRY_log, 0, 0,
  297. JSET_ENTRY_LOG_U64s);
  298. struct jset_entry_log *l =
  299. container_of(entry, struct jset_entry_log, entry);
  300. strncpy(l->d, trans->fn, JSET_ENTRY_LOG_U64s * sizeof(u64));
  301. }
  302. static inline int btree_key_can_insert(struct btree_trans *trans,
  303. struct btree *b, unsigned u64s)
  304. {
  305. if (!bch2_btree_node_insert_fits(b, u64s))
  306. return -BCH_ERR_btree_insert_btree_node_full;
  307. return 0;
  308. }
  309. noinline static int
  310. btree_key_can_insert_cached_slowpath(struct btree_trans *trans, unsigned flags,
  311. struct btree_path *path, unsigned new_u64s)
  312. {
  313. struct bkey_cached *ck = (void *) path->l[0].b;
  314. struct bkey_i *new_k;
  315. int ret;
  316. bch2_trans_unlock_write(trans);
  317. bch2_trans_unlock(trans);
  318. new_k = kmalloc(new_u64s * sizeof(u64), GFP_KERNEL);
  319. if (!new_k) {
  320. bch_err(trans->c, "error allocating memory for key cache key, btree %s u64s %u",
  321. bch2_btree_id_str(path->btree_id), new_u64s);
  322. return -BCH_ERR_ENOMEM_btree_key_cache_insert;
  323. }
  324. ret = bch2_trans_relock(trans) ?:
  325. bch2_trans_lock_write(trans);
  326. if (unlikely(ret)) {
  327. kfree(new_k);
  328. return ret;
  329. }
  330. memcpy(new_k, ck->k, ck->u64s * sizeof(u64));
  331. trans_for_each_update(trans, i)
  332. if (i->old_v == &ck->k->v)
  333. i->old_v = &new_k->v;
  334. kfree(ck->k);
  335. ck->u64s = new_u64s;
  336. ck->k = new_k;
  337. return 0;
  338. }
  339. static int btree_key_can_insert_cached(struct btree_trans *trans, unsigned flags,
  340. struct btree_path *path, unsigned u64s)
  341. {
  342. struct bch_fs *c = trans->c;
  343. struct bkey_cached *ck = (void *) path->l[0].b;
  344. unsigned new_u64s;
  345. struct bkey_i *new_k;
  346. unsigned watermark = flags & BCH_WATERMARK_MASK;
  347. EBUG_ON(path->level);
  348. if (watermark < BCH_WATERMARK_reclaim &&
  349. !test_bit(BKEY_CACHED_DIRTY, &ck->flags) &&
  350. bch2_btree_key_cache_must_wait(c))
  351. return -BCH_ERR_btree_insert_need_journal_reclaim;
  352. /*
  353. * bch2_varint_decode can read past the end of the buffer by at most 7
  354. * bytes (it won't be used):
  355. */
  356. u64s += 1;
  357. if (u64s <= ck->u64s)
  358. return 0;
  359. new_u64s = roundup_pow_of_two(u64s);
  360. new_k = krealloc(ck->k, new_u64s * sizeof(u64), GFP_NOWAIT|__GFP_NOWARN);
  361. if (unlikely(!new_k))
  362. return btree_key_can_insert_cached_slowpath(trans, flags, path, new_u64s);
  363. trans_for_each_update(trans, i)
  364. if (i->old_v == &ck->k->v)
  365. i->old_v = &new_k->v;
  366. ck->u64s = new_u64s;
  367. ck->k = new_k;
  368. return 0;
  369. }
  370. /* Triggers: */
  371. static int run_one_mem_trigger(struct btree_trans *trans,
  372. struct btree_insert_entry *i,
  373. unsigned flags)
  374. {
  375. verify_update_old_key(trans, i);
  376. if (unlikely(flags & BTREE_TRIGGER_norun))
  377. return 0;
  378. struct bkey_s_c old = { &i->old_k, i->old_v };
  379. struct bkey_i *new = i->k;
  380. const struct bkey_ops *old_ops = bch2_bkey_type_ops(old.k->type);
  381. const struct bkey_ops *new_ops = bch2_bkey_type_ops(i->k->k.type);
  382. if (old_ops->trigger == new_ops->trigger)
  383. return bch2_key_trigger(trans, i->btree_id, i->level,
  384. old, bkey_i_to_s(new),
  385. BTREE_TRIGGER_insert|BTREE_TRIGGER_overwrite|flags);
  386. else
  387. return bch2_key_trigger_new(trans, i->btree_id, i->level,
  388. bkey_i_to_s(new), flags) ?:
  389. bch2_key_trigger_old(trans, i->btree_id, i->level,
  390. old, flags);
  391. }
  392. static int run_one_trans_trigger(struct btree_trans *trans, struct btree_insert_entry *i,
  393. bool overwrite)
  394. {
  395. verify_update_old_key(trans, i);
  396. if ((i->flags & BTREE_TRIGGER_norun) ||
  397. !btree_node_type_has_trans_triggers(i->bkey_type))
  398. return 0;
  399. /*
  400. * Transactional triggers create new btree_insert_entries, so we can't
  401. * pass them a pointer to a btree_insert_entry, that memory is going to
  402. * move:
  403. */
  404. struct bkey old_k = i->old_k;
  405. struct bkey_s_c old = { &old_k, i->old_v };
  406. const struct bkey_ops *old_ops = bch2_bkey_type_ops(old.k->type);
  407. const struct bkey_ops *new_ops = bch2_bkey_type_ops(i->k->k.type);
  408. unsigned flags = i->flags|BTREE_TRIGGER_transactional;
  409. if (!i->insert_trigger_run &&
  410. !i->overwrite_trigger_run &&
  411. old_ops->trigger == new_ops->trigger) {
  412. i->overwrite_trigger_run = true;
  413. i->insert_trigger_run = true;
  414. return bch2_key_trigger(trans, i->btree_id, i->level, old, bkey_i_to_s(i->k),
  415. BTREE_TRIGGER_insert|
  416. BTREE_TRIGGER_overwrite|flags) ?: 1;
  417. } else if (overwrite && !i->overwrite_trigger_run) {
  418. i->overwrite_trigger_run = true;
  419. return bch2_key_trigger_old(trans, i->btree_id, i->level, old, flags) ?: 1;
  420. } else if (!overwrite && !i->insert_trigger_run) {
  421. i->insert_trigger_run = true;
  422. return bch2_key_trigger_new(trans, i->btree_id, i->level, bkey_i_to_s(i->k), flags) ?: 1;
  423. } else {
  424. return 0;
  425. }
  426. }
  427. static int run_btree_triggers(struct btree_trans *trans, enum btree_id btree_id,
  428. unsigned btree_id_start)
  429. {
  430. for (int overwrite = 1; overwrite >= 0; --overwrite) {
  431. bool trans_trigger_run;
  432. /*
  433. * Running triggers will append more updates to the list of updates as
  434. * we're walking it:
  435. */
  436. do {
  437. trans_trigger_run = false;
  438. for (unsigned i = btree_id_start;
  439. i < trans->nr_updates && trans->updates[i].btree_id <= btree_id;
  440. i++) {
  441. if (trans->updates[i].btree_id != btree_id)
  442. continue;
  443. int ret = run_one_trans_trigger(trans, trans->updates + i, overwrite);
  444. if (ret < 0)
  445. return ret;
  446. if (ret)
  447. trans_trigger_run = true;
  448. }
  449. } while (trans_trigger_run);
  450. }
  451. return 0;
  452. }
  453. static int bch2_trans_commit_run_triggers(struct btree_trans *trans)
  454. {
  455. unsigned btree_id = 0, btree_id_start = 0;
  456. int ret = 0;
  457. /*
  458. *
  459. * For a given btree, this algorithm runs insert triggers before
  460. * overwrite triggers: this is so that when extents are being moved
  461. * (e.g. by FALLOCATE_FL_INSERT_RANGE), we don't drop references before
  462. * they are re-added.
  463. */
  464. for (btree_id = 0; btree_id < BTREE_ID_NR; btree_id++) {
  465. if (btree_id == BTREE_ID_alloc)
  466. continue;
  467. while (btree_id_start < trans->nr_updates &&
  468. trans->updates[btree_id_start].btree_id < btree_id)
  469. btree_id_start++;
  470. ret = run_btree_triggers(trans, btree_id, btree_id_start);
  471. if (ret)
  472. return ret;
  473. }
  474. for (unsigned idx = 0; idx < trans->nr_updates; idx++) {
  475. struct btree_insert_entry *i = trans->updates + idx;
  476. if (i->btree_id > BTREE_ID_alloc)
  477. break;
  478. if (i->btree_id == BTREE_ID_alloc) {
  479. ret = run_btree_triggers(trans, BTREE_ID_alloc, idx);
  480. if (ret)
  481. return ret;
  482. break;
  483. }
  484. }
  485. #ifdef CONFIG_BCACHEFS_DEBUG
  486. trans_for_each_update(trans, i)
  487. BUG_ON(!(i->flags & BTREE_TRIGGER_norun) &&
  488. btree_node_type_has_trans_triggers(i->bkey_type) &&
  489. (!i->insert_trigger_run || !i->overwrite_trigger_run));
  490. #endif
  491. return 0;
  492. }
  493. static noinline int bch2_trans_commit_run_gc_triggers(struct btree_trans *trans)
  494. {
  495. trans_for_each_update(trans, i)
  496. if (btree_node_type_has_triggers(i->bkey_type) &&
  497. gc_visited(trans->c, gc_pos_btree(i->btree_id, i->level, i->k->k.p))) {
  498. int ret = run_one_mem_trigger(trans, i, i->flags|BTREE_TRIGGER_gc);
  499. if (ret)
  500. return ret;
  501. }
  502. return 0;
  503. }
  504. static struct bversion journal_pos_to_bversion(struct journal_res *res, unsigned offset)
  505. {
  506. return (struct bversion) {
  507. .hi = res->seq >> 32,
  508. .lo = (res->seq << 32) | (res->offset + offset),
  509. };
  510. }
  511. static inline int
  512. bch2_trans_commit_write_locked(struct btree_trans *trans, unsigned flags,
  513. struct btree_insert_entry **stopped_at,
  514. unsigned long trace_ip)
  515. {
  516. struct bch_fs *c = trans->c;
  517. struct btree_trans_commit_hook *h;
  518. unsigned u64s = 0;
  519. int ret = 0;
  520. bch2_trans_verify_not_unlocked(trans);
  521. bch2_trans_verify_not_in_restart(trans);
  522. if (race_fault()) {
  523. trace_and_count(c, trans_restart_fault_inject, trans, trace_ip);
  524. return btree_trans_restart_nounlock(trans, BCH_ERR_transaction_restart_fault_inject);
  525. }
  526. /*
  527. * Check if the insert will fit in the leaf node with the write lock
  528. * held, otherwise another thread could write the node changing the
  529. * amount of space available:
  530. */
  531. prefetch(&trans->c->journal.flags);
  532. trans_for_each_update(trans, i) {
  533. /* Multiple inserts might go to same leaf: */
  534. if (!same_leaf_as_prev(trans, i))
  535. u64s = 0;
  536. u64s += i->k->k.u64s;
  537. ret = !i->cached
  538. ? btree_key_can_insert(trans, insert_l(trans, i)->b, u64s)
  539. : btree_key_can_insert_cached(trans, flags, trans->paths + i->path, u64s);
  540. if (ret) {
  541. *stopped_at = i;
  542. return ret;
  543. }
  544. i->k->k.needs_whiteout = false;
  545. }
  546. /*
  547. * Don't get journal reservation until after we know insert will
  548. * succeed:
  549. */
  550. if (likely(!(flags & BCH_TRANS_COMMIT_no_journal_res))) {
  551. ret = bch2_trans_journal_res_get(trans,
  552. (flags & BCH_WATERMARK_MASK)|
  553. JOURNAL_RES_GET_NONBLOCK);
  554. if (ret)
  555. return ret;
  556. if (unlikely(trans->journal_transaction_names))
  557. journal_transaction_name(trans);
  558. }
  559. /*
  560. * Not allowed to fail after we've gotten our journal reservation - we
  561. * have to use it:
  562. */
  563. if (IS_ENABLED(CONFIG_BCACHEFS_DEBUG) &&
  564. !(flags & BCH_TRANS_COMMIT_no_journal_res)) {
  565. if (bch2_journal_seq_verify)
  566. trans_for_each_update(trans, i)
  567. i->k->k.bversion.lo = trans->journal_res.seq;
  568. else if (bch2_inject_invalid_keys)
  569. trans_for_each_update(trans, i)
  570. i->k->k.bversion = MAX_VERSION;
  571. }
  572. h = trans->hooks;
  573. while (h) {
  574. ret = h->fn(trans, h);
  575. if (ret)
  576. return ret;
  577. h = h->next;
  578. }
  579. struct jset_entry *entry = trans->journal_entries;
  580. percpu_down_read(&c->mark_lock);
  581. for (entry = trans->journal_entries;
  582. entry != (void *) ((u64 *) trans->journal_entries + trans->journal_entries_u64s);
  583. entry = vstruct_next(entry))
  584. if (entry->type == BCH_JSET_ENTRY_write_buffer_keys &&
  585. entry->start->k.type == KEY_TYPE_accounting) {
  586. BUG_ON(!trans->journal_res.ref);
  587. struct bkey_i_accounting *a = bkey_i_to_accounting(entry->start);
  588. a->k.bversion = journal_pos_to_bversion(&trans->journal_res,
  589. (u64 *) entry - (u64 *) trans->journal_entries);
  590. BUG_ON(bversion_zero(a->k.bversion));
  591. if (likely(!(flags & BCH_TRANS_COMMIT_skip_accounting_apply))) {
  592. ret = bch2_accounting_mem_mod_locked(trans, accounting_i_to_s_c(a), BCH_ACCOUNTING_normal);
  593. if (ret)
  594. goto revert_fs_usage;
  595. }
  596. }
  597. percpu_up_read(&c->mark_lock);
  598. /* XXX: we only want to run this if deltas are nonzero */
  599. bch2_trans_account_disk_usage_change(trans);
  600. trans_for_each_update(trans, i)
  601. if (btree_node_type_has_atomic_triggers(i->bkey_type)) {
  602. ret = run_one_mem_trigger(trans, i, BTREE_TRIGGER_atomic|i->flags);
  603. if (ret)
  604. goto fatal_err;
  605. }
  606. if (unlikely(c->gc_pos.phase)) {
  607. ret = bch2_trans_commit_run_gc_triggers(trans);
  608. if (ret)
  609. goto fatal_err;
  610. }
  611. trans_for_each_update(trans, i) {
  612. enum bch_validate_flags invalid_flags = 0;
  613. if (!(flags & BCH_TRANS_COMMIT_no_journal_res))
  614. invalid_flags |= BCH_VALIDATE_write|BCH_VALIDATE_commit;
  615. ret = bch2_bkey_validate(c, bkey_i_to_s_c(i->k),
  616. i->bkey_type, invalid_flags);
  617. if (unlikely(ret)){
  618. bch2_trans_inconsistent(trans, "invalid bkey on insert from %s -> %ps\n",
  619. trans->fn, (void *) i->ip_allocated);
  620. goto fatal_err;
  621. }
  622. btree_insert_entry_checks(trans, i);
  623. }
  624. for (struct jset_entry *i = trans->journal_entries;
  625. i != (void *) ((u64 *) trans->journal_entries + trans->journal_entries_u64s);
  626. i = vstruct_next(i)) {
  627. enum bch_validate_flags invalid_flags = 0;
  628. if (!(flags & BCH_TRANS_COMMIT_no_journal_res))
  629. invalid_flags |= BCH_VALIDATE_write|BCH_VALIDATE_commit;
  630. ret = bch2_journal_entry_validate(c, NULL, i,
  631. bcachefs_metadata_version_current,
  632. CPU_BIG_ENDIAN, invalid_flags);
  633. if (unlikely(ret)) {
  634. bch2_trans_inconsistent(trans, "invalid journal entry on insert from %s\n",
  635. trans->fn);
  636. goto fatal_err;
  637. }
  638. }
  639. if (likely(!(flags & BCH_TRANS_COMMIT_no_journal_res))) {
  640. struct journal *j = &c->journal;
  641. struct jset_entry *entry;
  642. trans_for_each_update(trans, i) {
  643. if (i->key_cache_already_flushed)
  644. continue;
  645. if (i->flags & BTREE_UPDATE_nojournal)
  646. continue;
  647. verify_update_old_key(trans, i);
  648. if (trans->journal_transaction_names) {
  649. entry = bch2_journal_add_entry(j, &trans->journal_res,
  650. BCH_JSET_ENTRY_overwrite,
  651. i->btree_id, i->level,
  652. i->old_k.u64s);
  653. bkey_reassemble((struct bkey_i *) entry->start,
  654. (struct bkey_s_c) { &i->old_k, i->old_v });
  655. }
  656. entry = bch2_journal_add_entry(j, &trans->journal_res,
  657. BCH_JSET_ENTRY_btree_keys,
  658. i->btree_id, i->level,
  659. i->k->k.u64s);
  660. bkey_copy((struct bkey_i *) entry->start, i->k);
  661. }
  662. memcpy_u64s_small(journal_res_entry(&c->journal, &trans->journal_res),
  663. trans->journal_entries,
  664. trans->journal_entries_u64s);
  665. trans->journal_res.offset += trans->journal_entries_u64s;
  666. trans->journal_res.u64s -= trans->journal_entries_u64s;
  667. if (trans->journal_seq)
  668. *trans->journal_seq = trans->journal_res.seq;
  669. }
  670. trans_for_each_update(trans, i) {
  671. struct btree_path *path = trans->paths + i->path;
  672. if (!i->cached)
  673. bch2_btree_insert_key_leaf(trans, path, i->k, trans->journal_res.seq);
  674. else if (!i->key_cache_already_flushed)
  675. bch2_btree_insert_key_cached(trans, flags, i);
  676. else
  677. bch2_btree_key_cache_drop(trans, path);
  678. }
  679. return 0;
  680. fatal_err:
  681. bch2_fs_fatal_error(c, "fatal error in transaction commit: %s", bch2_err_str(ret));
  682. percpu_down_read(&c->mark_lock);
  683. revert_fs_usage:
  684. for (struct jset_entry *entry2 = trans->journal_entries;
  685. entry2 != entry;
  686. entry2 = vstruct_next(entry2))
  687. if (entry2->type == BCH_JSET_ENTRY_write_buffer_keys &&
  688. entry2->start->k.type == KEY_TYPE_accounting) {
  689. struct bkey_s_accounting a = bkey_i_to_s_accounting(entry2->start);
  690. bch2_accounting_neg(a);
  691. bch2_accounting_mem_mod_locked(trans, a.c, BCH_ACCOUNTING_normal);
  692. bch2_accounting_neg(a);
  693. }
  694. percpu_up_read(&c->mark_lock);
  695. return ret;
  696. }
  697. static noinline void bch2_drop_overwrites_from_journal(struct btree_trans *trans)
  698. {
  699. /*
  700. * Accounting keys aren't deduped in the journal: we have to compare
  701. * each individual update against what's in the btree to see if it has
  702. * been applied yet, and accounting updates also don't overwrite,
  703. * they're deltas that accumulate.
  704. */
  705. trans_for_each_update(trans, i)
  706. if (i->k->k.type != KEY_TYPE_accounting)
  707. bch2_journal_key_overwritten(trans->c, i->btree_id, i->level, i->k->k.p);
  708. }
  709. static int bch2_trans_commit_journal_pin_flush(struct journal *j,
  710. struct journal_entry_pin *_pin, u64 seq)
  711. {
  712. return 0;
  713. }
  714. /*
  715. * Get journal reservation, take write locks, and attempt to do btree update(s):
  716. */
  717. static inline int do_bch2_trans_commit(struct btree_trans *trans, unsigned flags,
  718. struct btree_insert_entry **stopped_at,
  719. unsigned long trace_ip)
  720. {
  721. struct bch_fs *c = trans->c;
  722. int ret = 0, u64s_delta = 0;
  723. for (unsigned idx = 0; idx < trans->nr_updates; idx++) {
  724. struct btree_insert_entry *i = trans->updates + idx;
  725. if (i->cached)
  726. continue;
  727. u64s_delta += !bkey_deleted(&i->k->k) ? i->k->k.u64s : 0;
  728. u64s_delta -= i->old_btree_u64s;
  729. if (!same_leaf_as_next(trans, i)) {
  730. if (u64s_delta <= 0) {
  731. ret = bch2_foreground_maybe_merge(trans, i->path,
  732. i->level, flags);
  733. if (unlikely(ret))
  734. return ret;
  735. }
  736. u64s_delta = 0;
  737. }
  738. }
  739. ret = bch2_trans_lock_write(trans);
  740. if (unlikely(ret))
  741. return ret;
  742. ret = bch2_trans_commit_write_locked(trans, flags, stopped_at, trace_ip);
  743. if (!ret && unlikely(trans->journal_replay_not_finished))
  744. bch2_drop_overwrites_from_journal(trans);
  745. bch2_trans_unlock_write(trans);
  746. if (!ret && trans->journal_pin)
  747. bch2_journal_pin_add(&c->journal, trans->journal_res.seq,
  748. trans->journal_pin,
  749. bch2_trans_commit_journal_pin_flush);
  750. /*
  751. * Drop journal reservation after dropping write locks, since dropping
  752. * the journal reservation may kick off a journal write:
  753. */
  754. if (likely(!(flags & BCH_TRANS_COMMIT_no_journal_res)))
  755. bch2_journal_res_put(&c->journal, &trans->journal_res);
  756. return ret;
  757. }
  758. static int journal_reclaim_wait_done(struct bch_fs *c)
  759. {
  760. int ret = bch2_journal_error(&c->journal) ?:
  761. bch2_btree_key_cache_wait_done(c);
  762. if (!ret)
  763. journal_reclaim_kick(&c->journal);
  764. return ret;
  765. }
  766. static noinline
  767. int bch2_trans_commit_error(struct btree_trans *trans, unsigned flags,
  768. struct btree_insert_entry *i,
  769. int ret, unsigned long trace_ip)
  770. {
  771. struct bch_fs *c = trans->c;
  772. enum bch_watermark watermark = flags & BCH_WATERMARK_MASK;
  773. switch (ret) {
  774. case -BCH_ERR_btree_insert_btree_node_full:
  775. ret = bch2_btree_split_leaf(trans, i->path, flags);
  776. if (bch2_err_matches(ret, BCH_ERR_transaction_restart))
  777. trace_and_count(c, trans_restart_btree_node_split, trans,
  778. trace_ip, trans->paths + i->path);
  779. break;
  780. case -BCH_ERR_btree_insert_need_mark_replicas:
  781. ret = drop_locks_do(trans,
  782. bch2_accounting_update_sb(trans));
  783. break;
  784. case -BCH_ERR_journal_res_get_blocked:
  785. /*
  786. * XXX: this should probably be a separate BTREE_INSERT_NONBLOCK
  787. * flag
  788. */
  789. if ((flags & BCH_TRANS_COMMIT_journal_reclaim) &&
  790. watermark < BCH_WATERMARK_reclaim) {
  791. ret = -BCH_ERR_journal_reclaim_would_deadlock;
  792. break;
  793. }
  794. ret = drop_locks_do(trans,
  795. bch2_trans_journal_res_get(trans,
  796. (flags & BCH_WATERMARK_MASK)|
  797. JOURNAL_RES_GET_CHECK));
  798. break;
  799. case -BCH_ERR_btree_insert_need_journal_reclaim:
  800. bch2_trans_unlock(trans);
  801. trace_and_count(c, trans_blocked_journal_reclaim, trans, trace_ip);
  802. track_event_change(&c->times[BCH_TIME_blocked_key_cache_flush], true);
  803. wait_event_freezable(c->journal.reclaim_wait,
  804. (ret = journal_reclaim_wait_done(c)));
  805. track_event_change(&c->times[BCH_TIME_blocked_key_cache_flush], false);
  806. if (ret < 0)
  807. break;
  808. ret = bch2_trans_relock(trans);
  809. break;
  810. default:
  811. BUG_ON(ret >= 0);
  812. break;
  813. }
  814. BUG_ON(bch2_err_matches(ret, BCH_ERR_transaction_restart) != !!trans->restarted);
  815. bch2_fs_inconsistent_on(bch2_err_matches(ret, ENOSPC) &&
  816. (flags & BCH_TRANS_COMMIT_no_enospc), c,
  817. "%s: incorrectly got %s\n", __func__, bch2_err_str(ret));
  818. return ret;
  819. }
  820. static noinline int
  821. bch2_trans_commit_get_rw_cold(struct btree_trans *trans, unsigned flags)
  822. {
  823. struct bch_fs *c = trans->c;
  824. int ret;
  825. if (likely(!(flags & BCH_TRANS_COMMIT_lazy_rw)) ||
  826. test_bit(BCH_FS_started, &c->flags))
  827. return -BCH_ERR_erofs_trans_commit;
  828. ret = drop_locks_do(trans, bch2_fs_read_write_early(c));
  829. if (ret)
  830. return ret;
  831. bch2_write_ref_get(c, BCH_WRITE_REF_trans);
  832. return 0;
  833. }
  834. /*
  835. * This is for updates done in the early part of fsck - btree_gc - before we've
  836. * gone RW. we only add the new key to the list of keys for journal replay to
  837. * do.
  838. */
  839. static noinline int
  840. do_bch2_trans_commit_to_journal_replay(struct btree_trans *trans)
  841. {
  842. struct bch_fs *c = trans->c;
  843. trans_for_each_update(trans, i) {
  844. int ret = bch2_journal_key_insert(c, i->btree_id, i->level, i->k);
  845. if (ret)
  846. return ret;
  847. }
  848. for (struct jset_entry *i = trans->journal_entries;
  849. i != (void *) ((u64 *) trans->journal_entries + trans->journal_entries_u64s);
  850. i = vstruct_next(i))
  851. if (i->type == BCH_JSET_ENTRY_btree_keys ||
  852. i->type == BCH_JSET_ENTRY_write_buffer_keys) {
  853. int ret = bch2_journal_key_insert(c, i->btree_id, i->level, i->start);
  854. if (ret)
  855. return ret;
  856. }
  857. return 0;
  858. }
  859. int __bch2_trans_commit(struct btree_trans *trans, unsigned flags)
  860. {
  861. struct btree_insert_entry *errored_at = NULL;
  862. struct bch_fs *c = trans->c;
  863. int ret = 0;
  864. bch2_trans_verify_not_unlocked(trans);
  865. bch2_trans_verify_not_in_restart(trans);
  866. if (!trans->nr_updates &&
  867. !trans->journal_entries_u64s)
  868. goto out_reset;
  869. ret = bch2_trans_commit_run_triggers(trans);
  870. if (ret)
  871. goto out_reset;
  872. if (unlikely(!test_bit(BCH_FS_may_go_rw, &c->flags))) {
  873. ret = do_bch2_trans_commit_to_journal_replay(trans);
  874. goto out_reset;
  875. }
  876. if (!(flags & BCH_TRANS_COMMIT_no_check_rw) &&
  877. unlikely(!bch2_write_ref_tryget(c, BCH_WRITE_REF_trans))) {
  878. ret = bch2_trans_commit_get_rw_cold(trans, flags);
  879. if (ret)
  880. goto out_reset;
  881. }
  882. EBUG_ON(test_bit(BCH_FS_clean_shutdown, &c->flags));
  883. trans->journal_u64s = trans->journal_entries_u64s;
  884. trans->journal_transaction_names = READ_ONCE(c->opts.journal_transaction_names);
  885. if (trans->journal_transaction_names)
  886. trans->journal_u64s += jset_u64s(JSET_ENTRY_LOG_U64s);
  887. trans_for_each_update(trans, i) {
  888. struct btree_path *path = trans->paths + i->path;
  889. EBUG_ON(!path->should_be_locked);
  890. ret = bch2_btree_path_upgrade(trans, path, i->level + 1);
  891. if (unlikely(ret))
  892. goto out;
  893. EBUG_ON(!btree_node_intent_locked(path, i->level));
  894. if (i->key_cache_already_flushed)
  895. continue;
  896. if (i->flags & BTREE_UPDATE_nojournal)
  897. continue;
  898. /* we're going to journal the key being updated: */
  899. trans->journal_u64s += jset_u64s(i->k->k.u64s);
  900. /* and we're also going to log the overwrite: */
  901. if (trans->journal_transaction_names)
  902. trans->journal_u64s += jset_u64s(i->old_k.u64s);
  903. }
  904. if (trans->extra_disk_res) {
  905. ret = bch2_disk_reservation_add(c, trans->disk_res,
  906. trans->extra_disk_res,
  907. (flags & BCH_TRANS_COMMIT_no_enospc)
  908. ? BCH_DISK_RESERVATION_NOFAIL : 0);
  909. if (ret)
  910. goto err;
  911. }
  912. retry:
  913. errored_at = NULL;
  914. bch2_trans_verify_not_unlocked(trans);
  915. bch2_trans_verify_not_in_restart(trans);
  916. if (likely(!(flags & BCH_TRANS_COMMIT_no_journal_res)))
  917. memset(&trans->journal_res, 0, sizeof(trans->journal_res));
  918. memset(&trans->fs_usage_delta, 0, sizeof(trans->fs_usage_delta));
  919. ret = do_bch2_trans_commit(trans, flags, &errored_at, _RET_IP_);
  920. /* make sure we didn't drop or screw up locks: */
  921. bch2_trans_verify_locks(trans);
  922. if (ret)
  923. goto err;
  924. trace_and_count(c, transaction_commit, trans, _RET_IP_);
  925. out:
  926. if (likely(!(flags & BCH_TRANS_COMMIT_no_check_rw)))
  927. bch2_write_ref_put(c, BCH_WRITE_REF_trans);
  928. out_reset:
  929. if (!ret)
  930. bch2_trans_downgrade(trans);
  931. bch2_trans_reset_updates(trans);
  932. return ret;
  933. err:
  934. ret = bch2_trans_commit_error(trans, flags, errored_at, ret, _RET_IP_);
  935. if (ret)
  936. goto out;
  937. /*
  938. * We might have done another transaction commit in the error path -
  939. * i.e. btree write buffer flush - which will have made use of
  940. * trans->journal_res, but with BCH_TRANS_COMMIT_no_journal_res that is
  941. * how the journal sequence number to pin is passed in - so we must
  942. * restart:
  943. */
  944. if (flags & BCH_TRANS_COMMIT_no_journal_res) {
  945. ret = -BCH_ERR_transaction_restart_nested;
  946. goto out;
  947. }
  948. goto retry;
  949. }