journal.c 18 KB

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  1. /*
  2. * bcache journalling code, for btree insertions
  3. *
  4. * Copyright 2012 Google, Inc.
  5. */
  6. #include "bcache.h"
  7. #include "btree.h"
  8. #include "debug.h"
  9. #include "request.h"
  10. #include <trace/events/bcache.h>
  11. /*
  12. * Journal replay/recovery:
  13. *
  14. * This code is all driven from run_cache_set(); we first read the journal
  15. * entries, do some other stuff, then we mark all the keys in the journal
  16. * entries (same as garbage collection would), then we replay them - reinserting
  17. * them into the cache in precisely the same order as they appear in the
  18. * journal.
  19. *
  20. * We only journal keys that go in leaf nodes, which simplifies things quite a
  21. * bit.
  22. */
  23. static void journal_read_endio(struct bio *bio, int error)
  24. {
  25. struct closure *cl = bio->bi_private;
  26. closure_put(cl);
  27. }
  28. static int journal_read_bucket(struct cache *ca, struct list_head *list,
  29. struct btree_op *op, unsigned bucket_index)
  30. {
  31. struct journal_device *ja = &ca->journal;
  32. struct bio *bio = &ja->bio;
  33. struct journal_replay *i;
  34. struct jset *j, *data = ca->set->journal.w[0].data;
  35. unsigned len, left, offset = 0;
  36. int ret = 0;
  37. sector_t bucket = bucket_to_sector(ca->set, ca->sb.d[bucket_index]);
  38. pr_debug("reading %llu", (uint64_t) bucket);
  39. while (offset < ca->sb.bucket_size) {
  40. reread: left = ca->sb.bucket_size - offset;
  41. len = min_t(unsigned, left, PAGE_SECTORS * 8);
  42. bio_reset(bio);
  43. bio->bi_sector = bucket + offset;
  44. bio->bi_bdev = ca->bdev;
  45. bio->bi_rw = READ;
  46. bio->bi_size = len << 9;
  47. bio->bi_end_io = journal_read_endio;
  48. bio->bi_private = &op->cl;
  49. bch_bio_map(bio, data);
  50. closure_bio_submit(bio, &op->cl, ca);
  51. closure_sync(&op->cl);
  52. /* This function could be simpler now since we no longer write
  53. * journal entries that overlap bucket boundaries; this means
  54. * the start of a bucket will always have a valid journal entry
  55. * if it has any journal entries at all.
  56. */
  57. j = data;
  58. while (len) {
  59. struct list_head *where;
  60. size_t blocks, bytes = set_bytes(j);
  61. if (j->magic != jset_magic(ca->set))
  62. return ret;
  63. if (bytes > left << 9)
  64. return ret;
  65. if (bytes > len << 9)
  66. goto reread;
  67. if (j->csum != csum_set(j))
  68. return ret;
  69. blocks = set_blocks(j, ca->set);
  70. while (!list_empty(list)) {
  71. i = list_first_entry(list,
  72. struct journal_replay, list);
  73. if (i->j.seq >= j->last_seq)
  74. break;
  75. list_del(&i->list);
  76. kfree(i);
  77. }
  78. list_for_each_entry_reverse(i, list, list) {
  79. if (j->seq == i->j.seq)
  80. goto next_set;
  81. if (j->seq < i->j.last_seq)
  82. goto next_set;
  83. if (j->seq > i->j.seq) {
  84. where = &i->list;
  85. goto add;
  86. }
  87. }
  88. where = list;
  89. add:
  90. i = kmalloc(offsetof(struct journal_replay, j) +
  91. bytes, GFP_KERNEL);
  92. if (!i)
  93. return -ENOMEM;
  94. memcpy(&i->j, j, bytes);
  95. list_add(&i->list, where);
  96. ret = 1;
  97. ja->seq[bucket_index] = j->seq;
  98. next_set:
  99. offset += blocks * ca->sb.block_size;
  100. len -= blocks * ca->sb.block_size;
  101. j = ((void *) j) + blocks * block_bytes(ca);
  102. }
  103. }
  104. return ret;
  105. }
  106. int bch_journal_read(struct cache_set *c, struct list_head *list,
  107. struct btree_op *op)
  108. {
  109. #define read_bucket(b) \
  110. ({ \
  111. int ret = journal_read_bucket(ca, list, op, b); \
  112. __set_bit(b, bitmap); \
  113. if (ret < 0) \
  114. return ret; \
  115. ret; \
  116. })
  117. struct cache *ca;
  118. unsigned iter;
  119. for_each_cache(ca, c, iter) {
  120. struct journal_device *ja = &ca->journal;
  121. unsigned long bitmap[SB_JOURNAL_BUCKETS / BITS_PER_LONG];
  122. unsigned i, l, r, m;
  123. uint64_t seq;
  124. bitmap_zero(bitmap, SB_JOURNAL_BUCKETS);
  125. pr_debug("%u journal buckets", ca->sb.njournal_buckets);
  126. /*
  127. * Read journal buckets ordered by golden ratio hash to quickly
  128. * find a sequence of buckets with valid journal entries
  129. */
  130. for (i = 0; i < ca->sb.njournal_buckets; i++) {
  131. l = (i * 2654435769U) % ca->sb.njournal_buckets;
  132. if (test_bit(l, bitmap))
  133. break;
  134. if (read_bucket(l))
  135. goto bsearch;
  136. }
  137. /*
  138. * If that fails, check all the buckets we haven't checked
  139. * already
  140. */
  141. pr_debug("falling back to linear search");
  142. for (l = find_first_zero_bit(bitmap, ca->sb.njournal_buckets);
  143. l < ca->sb.njournal_buckets;
  144. l = find_next_zero_bit(bitmap, ca->sb.njournal_buckets, l + 1))
  145. if (read_bucket(l))
  146. goto bsearch;
  147. if (list_empty(list))
  148. continue;
  149. bsearch:
  150. /* Binary search */
  151. m = r = find_next_bit(bitmap, ca->sb.njournal_buckets, l + 1);
  152. pr_debug("starting binary search, l %u r %u", l, r);
  153. while (l + 1 < r) {
  154. seq = list_entry(list->prev, struct journal_replay,
  155. list)->j.seq;
  156. m = (l + r) >> 1;
  157. read_bucket(m);
  158. if (seq != list_entry(list->prev, struct journal_replay,
  159. list)->j.seq)
  160. l = m;
  161. else
  162. r = m;
  163. }
  164. /*
  165. * Read buckets in reverse order until we stop finding more
  166. * journal entries
  167. */
  168. pr_debug("finishing up: m %u njournal_buckets %u",
  169. m, ca->sb.njournal_buckets);
  170. l = m;
  171. while (1) {
  172. if (!l--)
  173. l = ca->sb.njournal_buckets - 1;
  174. if (l == m)
  175. break;
  176. if (test_bit(l, bitmap))
  177. continue;
  178. if (!read_bucket(l))
  179. break;
  180. }
  181. seq = 0;
  182. for (i = 0; i < ca->sb.njournal_buckets; i++)
  183. if (ja->seq[i] > seq) {
  184. seq = ja->seq[i];
  185. ja->cur_idx = ja->discard_idx =
  186. ja->last_idx = i;
  187. }
  188. }
  189. if (!list_empty(list))
  190. c->journal.seq = list_entry(list->prev,
  191. struct journal_replay,
  192. list)->j.seq;
  193. return 0;
  194. #undef read_bucket
  195. }
  196. void bch_journal_mark(struct cache_set *c, struct list_head *list)
  197. {
  198. atomic_t p = { 0 };
  199. struct bkey *k;
  200. struct journal_replay *i;
  201. struct journal *j = &c->journal;
  202. uint64_t last = j->seq;
  203. /*
  204. * journal.pin should never fill up - we never write a journal
  205. * entry when it would fill up. But if for some reason it does, we
  206. * iterate over the list in reverse order so that we can just skip that
  207. * refcount instead of bugging.
  208. */
  209. list_for_each_entry_reverse(i, list, list) {
  210. BUG_ON(last < i->j.seq);
  211. i->pin = NULL;
  212. while (last-- != i->j.seq)
  213. if (fifo_free(&j->pin) > 1) {
  214. fifo_push_front(&j->pin, p);
  215. atomic_set(&fifo_front(&j->pin), 0);
  216. }
  217. if (fifo_free(&j->pin) > 1) {
  218. fifo_push_front(&j->pin, p);
  219. i->pin = &fifo_front(&j->pin);
  220. atomic_set(i->pin, 1);
  221. }
  222. for (k = i->j.start;
  223. k < end(&i->j);
  224. k = bkey_next(k)) {
  225. unsigned j;
  226. for (j = 0; j < KEY_PTRS(k); j++) {
  227. struct bucket *g = PTR_BUCKET(c, k, j);
  228. atomic_inc(&g->pin);
  229. if (g->prio == BTREE_PRIO &&
  230. !ptr_stale(c, k, j))
  231. g->prio = INITIAL_PRIO;
  232. }
  233. __bch_btree_mark_key(c, 0, k);
  234. }
  235. }
  236. }
  237. int bch_journal_replay(struct cache_set *s, struct list_head *list,
  238. struct btree_op *op)
  239. {
  240. int ret = 0, keys = 0, entries = 0;
  241. struct bkey *k;
  242. struct journal_replay *i =
  243. list_entry(list->prev, struct journal_replay, list);
  244. uint64_t start = i->j.last_seq, end = i->j.seq, n = start;
  245. list_for_each_entry(i, list, list) {
  246. BUG_ON(i->pin && atomic_read(i->pin) != 1);
  247. if (n != i->j.seq)
  248. pr_err(
  249. "journal entries %llu-%llu missing! (replaying %llu-%llu)\n",
  250. n, i->j.seq - 1, start, end);
  251. for (k = i->j.start;
  252. k < end(&i->j);
  253. k = bkey_next(k)) {
  254. trace_bcache_journal_replay_key(k);
  255. bkey_copy(op->keys.top, k);
  256. bch_keylist_push(&op->keys);
  257. op->journal = i->pin;
  258. atomic_inc(op->journal);
  259. ret = bch_btree_insert(op, s);
  260. if (ret)
  261. goto err;
  262. BUG_ON(!bch_keylist_empty(&op->keys));
  263. keys++;
  264. cond_resched();
  265. }
  266. if (i->pin)
  267. atomic_dec(i->pin);
  268. n = i->j.seq + 1;
  269. entries++;
  270. }
  271. pr_info("journal replay done, %i keys in %i entries, seq %llu",
  272. keys, entries, end);
  273. while (!list_empty(list)) {
  274. i = list_first_entry(list, struct journal_replay, list);
  275. list_del(&i->list);
  276. kfree(i);
  277. }
  278. err:
  279. closure_sync(&op->cl);
  280. return ret;
  281. }
  282. /* Journalling */
  283. static void btree_flush_write(struct cache_set *c)
  284. {
  285. /*
  286. * Try to find the btree node with that references the oldest journal
  287. * entry, best is our current candidate and is locked if non NULL:
  288. */
  289. struct btree *b, *best = NULL;
  290. unsigned iter;
  291. for_each_cached_btree(b, c, iter) {
  292. if (!down_write_trylock(&b->lock))
  293. continue;
  294. if (!btree_node_dirty(b) ||
  295. !btree_current_write(b)->journal) {
  296. rw_unlock(true, b);
  297. continue;
  298. }
  299. if (!best)
  300. best = b;
  301. else if (journal_pin_cmp(c,
  302. btree_current_write(best),
  303. btree_current_write(b))) {
  304. rw_unlock(true, best);
  305. best = b;
  306. } else
  307. rw_unlock(true, b);
  308. }
  309. if (best)
  310. goto out;
  311. /* We can't find the best btree node, just pick the first */
  312. list_for_each_entry(b, &c->btree_cache, list)
  313. if (!b->level && btree_node_dirty(b)) {
  314. best = b;
  315. rw_lock(true, best, best->level);
  316. goto found;
  317. }
  318. out:
  319. if (!best)
  320. return;
  321. found:
  322. if (btree_node_dirty(best))
  323. bch_btree_node_write(best, NULL);
  324. rw_unlock(true, best);
  325. }
  326. #define last_seq(j) ((j)->seq - fifo_used(&(j)->pin) + 1)
  327. static void journal_discard_endio(struct bio *bio, int error)
  328. {
  329. struct journal_device *ja =
  330. container_of(bio, struct journal_device, discard_bio);
  331. struct cache *ca = container_of(ja, struct cache, journal);
  332. atomic_set(&ja->discard_in_flight, DISCARD_DONE);
  333. closure_wake_up(&ca->set->journal.wait);
  334. closure_put(&ca->set->cl);
  335. }
  336. static void journal_discard_work(struct work_struct *work)
  337. {
  338. struct journal_device *ja =
  339. container_of(work, struct journal_device, discard_work);
  340. submit_bio(0, &ja->discard_bio);
  341. }
  342. static void do_journal_discard(struct cache *ca)
  343. {
  344. struct journal_device *ja = &ca->journal;
  345. struct bio *bio = &ja->discard_bio;
  346. if (!ca->discard) {
  347. ja->discard_idx = ja->last_idx;
  348. return;
  349. }
  350. switch (atomic_read(&ja->discard_in_flight)) {
  351. case DISCARD_IN_FLIGHT:
  352. return;
  353. case DISCARD_DONE:
  354. ja->discard_idx = (ja->discard_idx + 1) %
  355. ca->sb.njournal_buckets;
  356. atomic_set(&ja->discard_in_flight, DISCARD_READY);
  357. /* fallthrough */
  358. case DISCARD_READY:
  359. if (ja->discard_idx == ja->last_idx)
  360. return;
  361. atomic_set(&ja->discard_in_flight, DISCARD_IN_FLIGHT);
  362. bio_init(bio);
  363. bio->bi_sector = bucket_to_sector(ca->set,
  364. ca->sb.d[ja->discard_idx]);
  365. bio->bi_bdev = ca->bdev;
  366. bio->bi_rw = REQ_WRITE|REQ_DISCARD;
  367. bio->bi_max_vecs = 1;
  368. bio->bi_io_vec = bio->bi_inline_vecs;
  369. bio->bi_size = bucket_bytes(ca);
  370. bio->bi_end_io = journal_discard_endio;
  371. closure_get(&ca->set->cl);
  372. INIT_WORK(&ja->discard_work, journal_discard_work);
  373. schedule_work(&ja->discard_work);
  374. }
  375. }
  376. static void journal_reclaim(struct cache_set *c)
  377. {
  378. struct bkey *k = &c->journal.key;
  379. struct cache *ca;
  380. uint64_t last_seq;
  381. unsigned iter, n = 0;
  382. atomic_t p;
  383. while (!atomic_read(&fifo_front(&c->journal.pin)))
  384. fifo_pop(&c->journal.pin, p);
  385. last_seq = last_seq(&c->journal);
  386. /* Update last_idx */
  387. for_each_cache(ca, c, iter) {
  388. struct journal_device *ja = &ca->journal;
  389. while (ja->last_idx != ja->cur_idx &&
  390. ja->seq[ja->last_idx] < last_seq)
  391. ja->last_idx = (ja->last_idx + 1) %
  392. ca->sb.njournal_buckets;
  393. }
  394. for_each_cache(ca, c, iter)
  395. do_journal_discard(ca);
  396. if (c->journal.blocks_free)
  397. return;
  398. /*
  399. * Allocate:
  400. * XXX: Sort by free journal space
  401. */
  402. for_each_cache(ca, c, iter) {
  403. struct journal_device *ja = &ca->journal;
  404. unsigned next = (ja->cur_idx + 1) % ca->sb.njournal_buckets;
  405. /* No space available on this device */
  406. if (next == ja->discard_idx)
  407. continue;
  408. ja->cur_idx = next;
  409. k->ptr[n++] = PTR(0,
  410. bucket_to_sector(c, ca->sb.d[ja->cur_idx]),
  411. ca->sb.nr_this_dev);
  412. }
  413. bkey_init(k);
  414. SET_KEY_PTRS(k, n);
  415. if (n)
  416. c->journal.blocks_free = c->sb.bucket_size >> c->block_bits;
  417. if (!journal_full(&c->journal))
  418. __closure_wake_up(&c->journal.wait);
  419. }
  420. void bch_journal_next(struct journal *j)
  421. {
  422. atomic_t p = { 1 };
  423. j->cur = (j->cur == j->w)
  424. ? &j->w[1]
  425. : &j->w[0];
  426. /*
  427. * The fifo_push() needs to happen at the same time as j->seq is
  428. * incremented for last_seq() to be calculated correctly
  429. */
  430. BUG_ON(!fifo_push(&j->pin, p));
  431. atomic_set(&fifo_back(&j->pin), 1);
  432. j->cur->data->seq = ++j->seq;
  433. j->cur->need_write = false;
  434. j->cur->data->keys = 0;
  435. if (fifo_full(&j->pin))
  436. pr_debug("journal_pin full (%zu)", fifo_used(&j->pin));
  437. }
  438. static void journal_write_endio(struct bio *bio, int error)
  439. {
  440. struct journal_write *w = bio->bi_private;
  441. cache_set_err_on(error, w->c, "journal io error");
  442. closure_put(&w->c->journal.io.cl);
  443. }
  444. static void journal_write(struct closure *);
  445. static void journal_write_done(struct closure *cl)
  446. {
  447. struct journal *j = container_of(cl, struct journal, io.cl);
  448. struct cache_set *c = container_of(j, struct cache_set, journal);
  449. struct journal_write *w = (j->cur == j->w)
  450. ? &j->w[1]
  451. : &j->w[0];
  452. __closure_wake_up(&w->wait);
  453. if (c->journal_delay_ms)
  454. closure_delay(&j->io, msecs_to_jiffies(c->journal_delay_ms));
  455. continue_at(cl, journal_write, system_wq);
  456. }
  457. static void journal_write_unlocked(struct closure *cl)
  458. __releases(c->journal.lock)
  459. {
  460. struct cache_set *c = container_of(cl, struct cache_set, journal.io.cl);
  461. struct cache *ca;
  462. struct journal_write *w = c->journal.cur;
  463. struct bkey *k = &c->journal.key;
  464. unsigned i, sectors = set_blocks(w->data, c) * c->sb.block_size;
  465. struct bio *bio;
  466. struct bio_list list;
  467. bio_list_init(&list);
  468. if (!w->need_write) {
  469. /*
  470. * XXX: have to unlock closure before we unlock journal lock,
  471. * else we race with bch_journal(). But this way we race
  472. * against cache set unregister. Doh.
  473. */
  474. set_closure_fn(cl, NULL, NULL);
  475. closure_sub(cl, CLOSURE_RUNNING + 1);
  476. spin_unlock(&c->journal.lock);
  477. return;
  478. } else if (journal_full(&c->journal)) {
  479. journal_reclaim(c);
  480. spin_unlock(&c->journal.lock);
  481. btree_flush_write(c);
  482. continue_at(cl, journal_write, system_wq);
  483. }
  484. c->journal.blocks_free -= set_blocks(w->data, c);
  485. w->data->btree_level = c->root->level;
  486. bkey_copy(&w->data->btree_root, &c->root->key);
  487. bkey_copy(&w->data->uuid_bucket, &c->uuid_bucket);
  488. for_each_cache(ca, c, i)
  489. w->data->prio_bucket[ca->sb.nr_this_dev] = ca->prio_buckets[0];
  490. w->data->magic = jset_magic(c);
  491. w->data->version = BCACHE_JSET_VERSION;
  492. w->data->last_seq = last_seq(&c->journal);
  493. w->data->csum = csum_set(w->data);
  494. for (i = 0; i < KEY_PTRS(k); i++) {
  495. ca = PTR_CACHE(c, k, i);
  496. bio = &ca->journal.bio;
  497. atomic_long_add(sectors, &ca->meta_sectors_written);
  498. bio_reset(bio);
  499. bio->bi_sector = PTR_OFFSET(k, i);
  500. bio->bi_bdev = ca->bdev;
  501. bio->bi_rw = REQ_WRITE|REQ_SYNC|REQ_META|REQ_FLUSH|REQ_FUA;
  502. bio->bi_size = sectors << 9;
  503. bio->bi_end_io = journal_write_endio;
  504. bio->bi_private = w;
  505. bch_bio_map(bio, w->data);
  506. trace_bcache_journal_write(bio);
  507. bio_list_add(&list, bio);
  508. SET_PTR_OFFSET(k, i, PTR_OFFSET(k, i) + sectors);
  509. ca->journal.seq[ca->journal.cur_idx] = w->data->seq;
  510. }
  511. atomic_dec_bug(&fifo_back(&c->journal.pin));
  512. bch_journal_next(&c->journal);
  513. journal_reclaim(c);
  514. spin_unlock(&c->journal.lock);
  515. while ((bio = bio_list_pop(&list)))
  516. closure_bio_submit(bio, cl, c->cache[0]);
  517. continue_at(cl, journal_write_done, NULL);
  518. }
  519. static void journal_write(struct closure *cl)
  520. {
  521. struct cache_set *c = container_of(cl, struct cache_set, journal.io.cl);
  522. spin_lock(&c->journal.lock);
  523. journal_write_unlocked(cl);
  524. }
  525. static void __journal_try_write(struct cache_set *c, bool noflush)
  526. __releases(c->journal.lock)
  527. {
  528. struct closure *cl = &c->journal.io.cl;
  529. if (!closure_trylock(cl, &c->cl))
  530. spin_unlock(&c->journal.lock);
  531. else if (noflush && journal_full(&c->journal)) {
  532. spin_unlock(&c->journal.lock);
  533. continue_at(cl, journal_write, system_wq);
  534. } else
  535. journal_write_unlocked(cl);
  536. }
  537. #define journal_try_write(c) __journal_try_write(c, false)
  538. void bch_journal_meta(struct cache_set *c, struct closure *cl)
  539. {
  540. struct journal_write *w;
  541. if (CACHE_SYNC(&c->sb)) {
  542. spin_lock(&c->journal.lock);
  543. w = c->journal.cur;
  544. w->need_write = true;
  545. if (cl)
  546. BUG_ON(!closure_wait(&w->wait, cl));
  547. closure_flush(&c->journal.io);
  548. __journal_try_write(c, true);
  549. }
  550. }
  551. /*
  552. * Entry point to the journalling code - bio_insert() and btree_invalidate()
  553. * pass bch_journal() a list of keys to be journalled, and then
  554. * bch_journal() hands those same keys off to btree_insert_async()
  555. */
  556. void bch_journal(struct closure *cl)
  557. {
  558. struct btree_op *op = container_of(cl, struct btree_op, cl);
  559. struct cache_set *c = op->c;
  560. struct journal_write *w;
  561. size_t b, n = ((uint64_t *) op->keys.top) - op->keys.list;
  562. if (op->type != BTREE_INSERT ||
  563. !CACHE_SYNC(&c->sb))
  564. goto out;
  565. /*
  566. * If we're looping because we errored, might already be waiting on
  567. * another journal write:
  568. */
  569. while (atomic_read(&cl->parent->remaining) & CLOSURE_WAITING)
  570. closure_sync(cl->parent);
  571. spin_lock(&c->journal.lock);
  572. if (journal_full(&c->journal)) {
  573. trace_bcache_journal_full(c);
  574. closure_wait(&c->journal.wait, cl);
  575. journal_reclaim(c);
  576. spin_unlock(&c->journal.lock);
  577. btree_flush_write(c);
  578. continue_at(cl, bch_journal, bcache_wq);
  579. }
  580. w = c->journal.cur;
  581. w->need_write = true;
  582. b = __set_blocks(w->data, w->data->keys + n, c);
  583. if (b * c->sb.block_size > PAGE_SECTORS << JSET_BITS ||
  584. b > c->journal.blocks_free) {
  585. trace_bcache_journal_entry_full(c);
  586. /*
  587. * XXX: If we were inserting so many keys that they won't fit in
  588. * an _empty_ journal write, we'll deadlock. For now, handle
  589. * this in bch_keylist_realloc() - but something to think about.
  590. */
  591. BUG_ON(!w->data->keys);
  592. BUG_ON(!closure_wait(&w->wait, cl));
  593. closure_flush(&c->journal.io);
  594. journal_try_write(c);
  595. continue_at(cl, bch_journal, bcache_wq);
  596. }
  597. memcpy(end(w->data), op->keys.list, n * sizeof(uint64_t));
  598. w->data->keys += n;
  599. op->journal = &fifo_back(&c->journal.pin);
  600. atomic_inc(op->journal);
  601. if (op->flush_journal) {
  602. closure_flush(&c->journal.io);
  603. closure_wait(&w->wait, cl->parent);
  604. }
  605. journal_try_write(c);
  606. out:
  607. bch_btree_insert_async(cl);
  608. }
  609. void bch_journal_free(struct cache_set *c)
  610. {
  611. free_pages((unsigned long) c->journal.w[1].data, JSET_BITS);
  612. free_pages((unsigned long) c->journal.w[0].data, JSET_BITS);
  613. free_fifo(&c->journal.pin);
  614. }
  615. int bch_journal_alloc(struct cache_set *c)
  616. {
  617. struct journal *j = &c->journal;
  618. closure_init_unlocked(&j->io);
  619. spin_lock_init(&j->lock);
  620. c->journal_delay_ms = 100;
  621. j->w[0].c = c;
  622. j->w[1].c = c;
  623. if (!(init_fifo(&j->pin, JOURNAL_PIN, GFP_KERNEL)) ||
  624. !(j->w[0].data = (void *) __get_free_pages(GFP_KERNEL, JSET_BITS)) ||
  625. !(j->w[1].data = (void *) __get_free_pages(GFP_KERNEL, JSET_BITS)))
  626. return -ENOMEM;
  627. return 0;
  628. }