request.c 28 KB

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  1. /*
  2. * Main bcache entry point - handle a read or a write request and decide what to
  3. * do with it; the make_request functions are called by the block layer.
  4. *
  5. * Copyright 2010, 2011 Kent Overstreet <kent.overstreet@gmail.com>
  6. * Copyright 2012 Google, Inc.
  7. */
  8. #include "bcache.h"
  9. #include "btree.h"
  10. #include "debug.h"
  11. #include "request.h"
  12. #include "writeback.h"
  13. #include <linux/module.h>
  14. #include <linux/hash.h>
  15. #include <linux/random.h>
  16. #include <linux/backing-dev.h>
  17. #include <trace/events/bcache.h>
  18. #define CUTOFF_CACHE_ADD 95
  19. #define CUTOFF_CACHE_READA 90
  20. struct kmem_cache *bch_search_cache;
  21. static void bch_data_insert_start(struct closure *);
  22. static unsigned cache_mode(struct cached_dev *dc, struct bio *bio)
  23. {
  24. return BDEV_CACHE_MODE(&dc->sb);
  25. }
  26. static bool verify(struct cached_dev *dc, struct bio *bio)
  27. {
  28. return dc->verify;
  29. }
  30. static void bio_csum(struct bio *bio, struct bkey *k)
  31. {
  32. struct bio_vec bv;
  33. struct bvec_iter iter;
  34. uint64_t csum = 0;
  35. bio_for_each_segment(bv, bio, iter) {
  36. void *d = kmap(bv.bv_page) + bv.bv_offset;
  37. csum = bch_crc64_update(csum, d, bv.bv_len);
  38. kunmap(bv.bv_page);
  39. }
  40. k->ptr[KEY_PTRS(k)] = csum & (~0ULL >> 1);
  41. }
  42. /* Insert data into cache */
  43. static void bch_data_insert_keys(struct closure *cl)
  44. {
  45. struct data_insert_op *op = container_of(cl, struct data_insert_op, cl);
  46. atomic_t *journal_ref = NULL;
  47. struct bkey *replace_key = op->replace ? &op->replace_key : NULL;
  48. int ret;
  49. /*
  50. * If we're looping, might already be waiting on
  51. * another journal write - can't wait on more than one journal write at
  52. * a time
  53. *
  54. * XXX: this looks wrong
  55. */
  56. #if 0
  57. while (atomic_read(&s->cl.remaining) & CLOSURE_WAITING)
  58. closure_sync(&s->cl);
  59. #endif
  60. if (!op->replace)
  61. journal_ref = bch_journal(op->c, &op->insert_keys,
  62. op->flush_journal ? cl : NULL);
  63. ret = bch_btree_insert(op->c, &op->insert_keys,
  64. journal_ref, replace_key);
  65. if (ret == -ESRCH) {
  66. op->replace_collision = true;
  67. } else if (ret) {
  68. op->error = -ENOMEM;
  69. op->insert_data_done = true;
  70. }
  71. if (journal_ref)
  72. atomic_dec_bug(journal_ref);
  73. if (!op->insert_data_done) {
  74. continue_at(cl, bch_data_insert_start, op->wq);
  75. return;
  76. }
  77. bch_keylist_free(&op->insert_keys);
  78. closure_return(cl);
  79. }
  80. static int bch_keylist_realloc(struct keylist *l, unsigned u64s,
  81. struct cache_set *c)
  82. {
  83. size_t oldsize = bch_keylist_nkeys(l);
  84. size_t newsize = oldsize + u64s;
  85. /*
  86. * The journalling code doesn't handle the case where the keys to insert
  87. * is bigger than an empty write: If we just return -ENOMEM here,
  88. * bio_insert() and bio_invalidate() will insert the keys created so far
  89. * and finish the rest when the keylist is empty.
  90. */
  91. if (newsize * sizeof(uint64_t) > block_bytes(c) - sizeof(struct jset))
  92. return -ENOMEM;
  93. return __bch_keylist_realloc(l, u64s);
  94. }
  95. static void bch_data_invalidate(struct closure *cl)
  96. {
  97. struct data_insert_op *op = container_of(cl, struct data_insert_op, cl);
  98. struct bio *bio = op->bio;
  99. pr_debug("invalidating %i sectors from %llu",
  100. bio_sectors(bio), (uint64_t) bio->bi_iter.bi_sector);
  101. while (bio_sectors(bio)) {
  102. unsigned sectors = min(bio_sectors(bio),
  103. 1U << (KEY_SIZE_BITS - 1));
  104. if (bch_keylist_realloc(&op->insert_keys, 2, op->c))
  105. goto out;
  106. bio->bi_iter.bi_sector += sectors;
  107. bio->bi_iter.bi_size -= sectors << 9;
  108. bch_keylist_add(&op->insert_keys,
  109. &KEY(op->inode, bio->bi_iter.bi_sector, sectors));
  110. }
  111. op->insert_data_done = true;
  112. bio_put(bio);
  113. out:
  114. continue_at(cl, bch_data_insert_keys, op->wq);
  115. }
  116. static void bch_data_insert_error(struct closure *cl)
  117. {
  118. struct data_insert_op *op = container_of(cl, struct data_insert_op, cl);
  119. /*
  120. * Our data write just errored, which means we've got a bunch of keys to
  121. * insert that point to data that wasn't succesfully written.
  122. *
  123. * We don't have to insert those keys but we still have to invalidate
  124. * that region of the cache - so, if we just strip off all the pointers
  125. * from the keys we'll accomplish just that.
  126. */
  127. struct bkey *src = op->insert_keys.keys, *dst = op->insert_keys.keys;
  128. while (src != op->insert_keys.top) {
  129. struct bkey *n = bkey_next(src);
  130. SET_KEY_PTRS(src, 0);
  131. memmove(dst, src, bkey_bytes(src));
  132. dst = bkey_next(dst);
  133. src = n;
  134. }
  135. op->insert_keys.top = dst;
  136. bch_data_insert_keys(cl);
  137. }
  138. static void bch_data_insert_endio(struct bio *bio, int error)
  139. {
  140. struct closure *cl = bio->bi_private;
  141. struct data_insert_op *op = container_of(cl, struct data_insert_op, cl);
  142. if (error) {
  143. /* TODO: We could try to recover from this. */
  144. if (op->writeback)
  145. op->error = error;
  146. else if (!op->replace)
  147. set_closure_fn(cl, bch_data_insert_error, op->wq);
  148. else
  149. set_closure_fn(cl, NULL, NULL);
  150. }
  151. bch_bbio_endio(op->c, bio, error, "writing data to cache");
  152. }
  153. static void bch_data_insert_start(struct closure *cl)
  154. {
  155. struct data_insert_op *op = container_of(cl, struct data_insert_op, cl);
  156. struct bio *bio = op->bio, *n;
  157. if (atomic_sub_return(bio_sectors(bio), &op->c->sectors_to_gc) < 0) {
  158. set_gc_sectors(op->c);
  159. wake_up_gc(op->c);
  160. }
  161. if (op->bypass)
  162. return bch_data_invalidate(cl);
  163. /*
  164. * Journal writes are marked REQ_FLUSH; if the original write was a
  165. * flush, it'll wait on the journal write.
  166. */
  167. bio->bi_rw &= ~(REQ_FLUSH|REQ_FUA);
  168. do {
  169. unsigned i;
  170. struct bkey *k;
  171. struct bio_set *split = op->c->bio_split;
  172. /* 1 for the device pointer and 1 for the chksum */
  173. if (bch_keylist_realloc(&op->insert_keys,
  174. 3 + (op->csum ? 1 : 0),
  175. op->c)) {
  176. continue_at(cl, bch_data_insert_keys, op->wq);
  177. return;
  178. }
  179. k = op->insert_keys.top;
  180. bkey_init(k);
  181. SET_KEY_INODE(k, op->inode);
  182. SET_KEY_OFFSET(k, bio->bi_iter.bi_sector);
  183. if (!bch_alloc_sectors(op->c, k, bio_sectors(bio),
  184. op->write_point, op->write_prio,
  185. op->writeback))
  186. goto err;
  187. n = bio_next_split(bio, KEY_SIZE(k), GFP_NOIO, split);
  188. n->bi_end_io = bch_data_insert_endio;
  189. n->bi_private = cl;
  190. if (op->writeback) {
  191. SET_KEY_DIRTY(k, true);
  192. for (i = 0; i < KEY_PTRS(k); i++)
  193. SET_GC_MARK(PTR_BUCKET(op->c, k, i),
  194. GC_MARK_DIRTY);
  195. }
  196. SET_KEY_CSUM(k, op->csum);
  197. if (KEY_CSUM(k))
  198. bio_csum(n, k);
  199. trace_bcache_cache_insert(k);
  200. bch_keylist_push(&op->insert_keys);
  201. n->bi_rw |= REQ_WRITE;
  202. bch_submit_bbio(n, op->c, k, 0);
  203. } while (n != bio);
  204. op->insert_data_done = true;
  205. continue_at(cl, bch_data_insert_keys, op->wq);
  206. return;
  207. err:
  208. /* bch_alloc_sectors() blocks if s->writeback = true */
  209. BUG_ON(op->writeback);
  210. /*
  211. * But if it's not a writeback write we'd rather just bail out if
  212. * there aren't any buckets ready to write to - it might take awhile and
  213. * we might be starving btree writes for gc or something.
  214. */
  215. if (!op->replace) {
  216. /*
  217. * Writethrough write: We can't complete the write until we've
  218. * updated the index. But we don't want to delay the write while
  219. * we wait for buckets to be freed up, so just invalidate the
  220. * rest of the write.
  221. */
  222. op->bypass = true;
  223. return bch_data_invalidate(cl);
  224. } else {
  225. /*
  226. * From a cache miss, we can just insert the keys for the data
  227. * we have written or bail out if we didn't do anything.
  228. */
  229. op->insert_data_done = true;
  230. bio_put(bio);
  231. if (!bch_keylist_empty(&op->insert_keys))
  232. continue_at(cl, bch_data_insert_keys, op->wq);
  233. else
  234. closure_return(cl);
  235. }
  236. }
  237. /**
  238. * bch_data_insert - stick some data in the cache
  239. *
  240. * This is the starting point for any data to end up in a cache device; it could
  241. * be from a normal write, or a writeback write, or a write to a flash only
  242. * volume - it's also used by the moving garbage collector to compact data in
  243. * mostly empty buckets.
  244. *
  245. * It first writes the data to the cache, creating a list of keys to be inserted
  246. * (if the data had to be fragmented there will be multiple keys); after the
  247. * data is written it calls bch_journal, and after the keys have been added to
  248. * the next journal write they're inserted into the btree.
  249. *
  250. * It inserts the data in s->cache_bio; bi_sector is used for the key offset,
  251. * and op->inode is used for the key inode.
  252. *
  253. * If s->bypass is true, instead of inserting the data it invalidates the
  254. * region of the cache represented by s->cache_bio and op->inode.
  255. */
  256. void bch_data_insert(struct closure *cl)
  257. {
  258. struct data_insert_op *op = container_of(cl, struct data_insert_op, cl);
  259. trace_bcache_write(op->c, op->inode, op->bio,
  260. op->writeback, op->bypass);
  261. bch_keylist_init(&op->insert_keys);
  262. bio_get(op->bio);
  263. bch_data_insert_start(cl);
  264. }
  265. /* Congested? */
  266. unsigned bch_get_congested(struct cache_set *c)
  267. {
  268. int i;
  269. long rand;
  270. if (!c->congested_read_threshold_us &&
  271. !c->congested_write_threshold_us)
  272. return 0;
  273. i = (local_clock_us() - c->congested_last_us) / 1024;
  274. if (i < 0)
  275. return 0;
  276. i += atomic_read(&c->congested);
  277. if (i >= 0)
  278. return 0;
  279. i += CONGESTED_MAX;
  280. if (i > 0)
  281. i = fract_exp_two(i, 6);
  282. rand = get_random_int();
  283. i -= bitmap_weight(&rand, BITS_PER_LONG);
  284. return i > 0 ? i : 1;
  285. }
  286. static void add_sequential(struct task_struct *t)
  287. {
  288. ewma_add(t->sequential_io_avg,
  289. t->sequential_io, 8, 0);
  290. t->sequential_io = 0;
  291. }
  292. static struct hlist_head *iohash(struct cached_dev *dc, uint64_t k)
  293. {
  294. return &dc->io_hash[hash_64(k, RECENT_IO_BITS)];
  295. }
  296. static bool check_should_bypass(struct cached_dev *dc, struct bio *bio)
  297. {
  298. struct cache_set *c = dc->disk.c;
  299. unsigned mode = cache_mode(dc, bio);
  300. unsigned sectors, congested = bch_get_congested(c);
  301. struct task_struct *task = current;
  302. struct io *i;
  303. if (test_bit(BCACHE_DEV_DETACHING, &dc->disk.flags) ||
  304. c->gc_stats.in_use > CUTOFF_CACHE_ADD ||
  305. (bio->bi_rw & REQ_DISCARD))
  306. goto skip;
  307. if (mode == CACHE_MODE_NONE ||
  308. (mode == CACHE_MODE_WRITEAROUND &&
  309. (bio->bi_rw & REQ_WRITE)))
  310. goto skip;
  311. if (bio->bi_iter.bi_sector & (c->sb.block_size - 1) ||
  312. bio_sectors(bio) & (c->sb.block_size - 1)) {
  313. pr_debug("skipping unaligned io");
  314. goto skip;
  315. }
  316. if (bypass_torture_test(dc)) {
  317. if ((get_random_int() & 3) == 3)
  318. goto skip;
  319. else
  320. goto rescale;
  321. }
  322. if (!congested && !dc->sequential_cutoff)
  323. goto rescale;
  324. if (!congested &&
  325. mode == CACHE_MODE_WRITEBACK &&
  326. (bio->bi_rw & REQ_WRITE) &&
  327. (bio->bi_rw & REQ_SYNC))
  328. goto rescale;
  329. spin_lock(&dc->io_lock);
  330. hlist_for_each_entry(i, iohash(dc, bio->bi_iter.bi_sector), hash)
  331. if (i->last == bio->bi_iter.bi_sector &&
  332. time_before(jiffies, i->jiffies))
  333. goto found;
  334. i = list_first_entry(&dc->io_lru, struct io, lru);
  335. add_sequential(task);
  336. i->sequential = 0;
  337. found:
  338. if (i->sequential + bio->bi_iter.bi_size > i->sequential)
  339. i->sequential += bio->bi_iter.bi_size;
  340. i->last = bio_end_sector(bio);
  341. i->jiffies = jiffies + msecs_to_jiffies(5000);
  342. task->sequential_io = i->sequential;
  343. hlist_del(&i->hash);
  344. hlist_add_head(&i->hash, iohash(dc, i->last));
  345. list_move_tail(&i->lru, &dc->io_lru);
  346. spin_unlock(&dc->io_lock);
  347. sectors = max(task->sequential_io,
  348. task->sequential_io_avg) >> 9;
  349. if (dc->sequential_cutoff &&
  350. sectors >= dc->sequential_cutoff >> 9) {
  351. trace_bcache_bypass_sequential(bio);
  352. goto skip;
  353. }
  354. if (congested && sectors >= congested) {
  355. trace_bcache_bypass_congested(bio);
  356. goto skip;
  357. }
  358. rescale:
  359. bch_rescale_priorities(c, bio_sectors(bio));
  360. return false;
  361. skip:
  362. bch_mark_sectors_bypassed(c, dc, bio_sectors(bio));
  363. return true;
  364. }
  365. /* Cache lookup */
  366. struct search {
  367. /* Stack frame for bio_complete */
  368. struct closure cl;
  369. struct bbio bio;
  370. struct bio *orig_bio;
  371. struct bio *cache_miss;
  372. struct bcache_device *d;
  373. unsigned insert_bio_sectors;
  374. unsigned recoverable:1;
  375. unsigned write:1;
  376. unsigned read_dirty_data:1;
  377. unsigned long start_time;
  378. struct btree_op op;
  379. struct data_insert_op iop;
  380. };
  381. static void bch_cache_read_endio(struct bio *bio, int error)
  382. {
  383. struct bbio *b = container_of(bio, struct bbio, bio);
  384. struct closure *cl = bio->bi_private;
  385. struct search *s = container_of(cl, struct search, cl);
  386. /*
  387. * If the bucket was reused while our bio was in flight, we might have
  388. * read the wrong data. Set s->error but not error so it doesn't get
  389. * counted against the cache device, but we'll still reread the data
  390. * from the backing device.
  391. */
  392. if (error)
  393. s->iop.error = error;
  394. else if (!KEY_DIRTY(&b->key) &&
  395. ptr_stale(s->iop.c, &b->key, 0)) {
  396. atomic_long_inc(&s->iop.c->cache_read_races);
  397. s->iop.error = -EINTR;
  398. }
  399. bch_bbio_endio(s->iop.c, bio, error, "reading from cache");
  400. }
  401. /*
  402. * Read from a single key, handling the initial cache miss if the key starts in
  403. * the middle of the bio
  404. */
  405. static int cache_lookup_fn(struct btree_op *op, struct btree *b, struct bkey *k)
  406. {
  407. struct search *s = container_of(op, struct search, op);
  408. struct bio *n, *bio = &s->bio.bio;
  409. struct bkey *bio_key;
  410. unsigned ptr;
  411. if (bkey_cmp(k, &KEY(s->iop.inode, bio->bi_iter.bi_sector, 0)) <= 0)
  412. return MAP_CONTINUE;
  413. if (KEY_INODE(k) != s->iop.inode ||
  414. KEY_START(k) > bio->bi_iter.bi_sector) {
  415. unsigned bio_sectors = bio_sectors(bio);
  416. unsigned sectors = KEY_INODE(k) == s->iop.inode
  417. ? min_t(uint64_t, INT_MAX,
  418. KEY_START(k) - bio->bi_iter.bi_sector)
  419. : INT_MAX;
  420. int ret = s->d->cache_miss(b, s, bio, sectors);
  421. if (ret != MAP_CONTINUE)
  422. return ret;
  423. /* if this was a complete miss we shouldn't get here */
  424. BUG_ON(bio_sectors <= sectors);
  425. }
  426. if (!KEY_SIZE(k))
  427. return MAP_CONTINUE;
  428. /* XXX: figure out best pointer - for multiple cache devices */
  429. ptr = 0;
  430. PTR_BUCKET(b->c, k, ptr)->prio = INITIAL_PRIO;
  431. if (KEY_DIRTY(k))
  432. s->read_dirty_data = true;
  433. n = bio_next_split(bio, min_t(uint64_t, INT_MAX,
  434. KEY_OFFSET(k) - bio->bi_iter.bi_sector),
  435. GFP_NOIO, s->d->bio_split);
  436. bio_key = &container_of(n, struct bbio, bio)->key;
  437. bch_bkey_copy_single_ptr(bio_key, k, ptr);
  438. bch_cut_front(&KEY(s->iop.inode, n->bi_iter.bi_sector, 0), bio_key);
  439. bch_cut_back(&KEY(s->iop.inode, bio_end_sector(n), 0), bio_key);
  440. n->bi_end_io = bch_cache_read_endio;
  441. n->bi_private = &s->cl;
  442. /*
  443. * The bucket we're reading from might be reused while our bio
  444. * is in flight, and we could then end up reading the wrong
  445. * data.
  446. *
  447. * We guard against this by checking (in cache_read_endio()) if
  448. * the pointer is stale again; if so, we treat it as an error
  449. * and reread from the backing device (but we don't pass that
  450. * error up anywhere).
  451. */
  452. __bch_submit_bbio(n, b->c);
  453. return n == bio ? MAP_DONE : MAP_CONTINUE;
  454. }
  455. static void cache_lookup(struct closure *cl)
  456. {
  457. struct search *s = container_of(cl, struct search, iop.cl);
  458. struct bio *bio = &s->bio.bio;
  459. int ret;
  460. bch_btree_op_init(&s->op, -1);
  461. ret = bch_btree_map_keys(&s->op, s->iop.c,
  462. &KEY(s->iop.inode, bio->bi_iter.bi_sector, 0),
  463. cache_lookup_fn, MAP_END_KEY);
  464. if (ret == -EAGAIN) {
  465. continue_at(cl, cache_lookup, bcache_wq);
  466. return;
  467. }
  468. closure_return(cl);
  469. }
  470. /* Common code for the make_request functions */
  471. static void request_endio(struct bio *bio, int error)
  472. {
  473. struct closure *cl = bio->bi_private;
  474. if (error) {
  475. struct search *s = container_of(cl, struct search, cl);
  476. s->iop.error = error;
  477. /* Only cache read errors are recoverable */
  478. s->recoverable = false;
  479. }
  480. bio_put(bio);
  481. closure_put(cl);
  482. }
  483. static void bio_complete(struct search *s)
  484. {
  485. if (s->orig_bio) {
  486. generic_end_io_acct(bio_data_dir(s->orig_bio),
  487. &s->d->disk->part0, s->start_time);
  488. trace_bcache_request_end(s->d, s->orig_bio);
  489. bio_endio(s->orig_bio, s->iop.error);
  490. s->orig_bio = NULL;
  491. }
  492. }
  493. static void do_bio_hook(struct search *s, struct bio *orig_bio)
  494. {
  495. struct bio *bio = &s->bio.bio;
  496. bio_init(bio);
  497. __bio_clone_fast(bio, orig_bio);
  498. bio->bi_end_io = request_endio;
  499. bio->bi_private = &s->cl;
  500. bio_cnt_set(bio, 3);
  501. }
  502. static void search_free(struct closure *cl)
  503. {
  504. struct search *s = container_of(cl, struct search, cl);
  505. bio_complete(s);
  506. if (s->iop.bio)
  507. bio_put(s->iop.bio);
  508. closure_debug_destroy(cl);
  509. mempool_free(s, s->d->c->search);
  510. }
  511. static inline struct search *search_alloc(struct bio *bio,
  512. struct bcache_device *d)
  513. {
  514. struct search *s;
  515. s = mempool_alloc(d->c->search, GFP_NOIO);
  516. closure_init(&s->cl, NULL);
  517. do_bio_hook(s, bio);
  518. s->orig_bio = bio;
  519. s->cache_miss = NULL;
  520. s->d = d;
  521. s->recoverable = 1;
  522. s->write = (bio->bi_rw & REQ_WRITE) != 0;
  523. s->read_dirty_data = 0;
  524. s->start_time = jiffies;
  525. s->iop.c = d->c;
  526. s->iop.bio = NULL;
  527. s->iop.inode = d->id;
  528. s->iop.write_point = hash_long((unsigned long) current, 16);
  529. s->iop.write_prio = 0;
  530. s->iop.error = 0;
  531. s->iop.flags = 0;
  532. s->iop.flush_journal = (bio->bi_rw & (REQ_FLUSH|REQ_FUA)) != 0;
  533. s->iop.wq = bcache_wq;
  534. return s;
  535. }
  536. /* Cached devices */
  537. static void cached_dev_bio_complete(struct closure *cl)
  538. {
  539. struct search *s = container_of(cl, struct search, cl);
  540. struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);
  541. search_free(cl);
  542. cached_dev_put(dc);
  543. }
  544. /* Process reads */
  545. static void cached_dev_cache_miss_done(struct closure *cl)
  546. {
  547. struct search *s = container_of(cl, struct search, cl);
  548. if (s->iop.replace_collision)
  549. bch_mark_cache_miss_collision(s->iop.c, s->d);
  550. if (s->iop.bio) {
  551. int i;
  552. struct bio_vec *bv;
  553. bio_for_each_segment_all(bv, s->iop.bio, i)
  554. __free_page(bv->bv_page);
  555. }
  556. cached_dev_bio_complete(cl);
  557. }
  558. static void cached_dev_read_error(struct closure *cl)
  559. {
  560. struct search *s = container_of(cl, struct search, cl);
  561. struct bio *bio = &s->bio.bio;
  562. if (s->recoverable) {
  563. /* Retry from the backing device: */
  564. trace_bcache_read_retry(s->orig_bio);
  565. s->iop.error = 0;
  566. do_bio_hook(s, s->orig_bio);
  567. /* XXX: invalidate cache */
  568. closure_bio_submit(bio, cl, s->d);
  569. }
  570. continue_at(cl, cached_dev_cache_miss_done, NULL);
  571. }
  572. static void cached_dev_read_done(struct closure *cl)
  573. {
  574. struct search *s = container_of(cl, struct search, cl);
  575. struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);
  576. /*
  577. * We had a cache miss; cache_bio now contains data ready to be inserted
  578. * into the cache.
  579. *
  580. * First, we copy the data we just read from cache_bio's bounce buffers
  581. * to the buffers the original bio pointed to:
  582. */
  583. if (s->iop.bio) {
  584. bio_reset(s->iop.bio);
  585. s->iop.bio->bi_iter.bi_sector = s->cache_miss->bi_iter.bi_sector;
  586. s->iop.bio->bi_bdev = s->cache_miss->bi_bdev;
  587. s->iop.bio->bi_iter.bi_size = s->insert_bio_sectors << 9;
  588. bch_bio_map(s->iop.bio, NULL);
  589. bio_copy_data(s->cache_miss, s->iop.bio);
  590. bio_put(s->cache_miss);
  591. s->cache_miss = NULL;
  592. }
  593. if (verify(dc, &s->bio.bio) && s->recoverable && !s->read_dirty_data)
  594. bch_data_verify(dc, s->orig_bio);
  595. bio_complete(s);
  596. if (s->iop.bio &&
  597. !test_bit(CACHE_SET_STOPPING, &s->iop.c->flags)) {
  598. BUG_ON(!s->iop.replace);
  599. closure_call(&s->iop.cl, bch_data_insert, NULL, cl);
  600. }
  601. continue_at(cl, cached_dev_cache_miss_done, NULL);
  602. }
  603. static void cached_dev_read_done_bh(struct closure *cl)
  604. {
  605. struct search *s = container_of(cl, struct search, cl);
  606. struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);
  607. bch_mark_cache_accounting(s->iop.c, s->d,
  608. !s->cache_miss, s->iop.bypass);
  609. trace_bcache_read(s->orig_bio, !s->cache_miss, s->iop.bypass);
  610. if (s->iop.error)
  611. continue_at_nobarrier(cl, cached_dev_read_error, bcache_wq);
  612. else if (s->iop.bio || verify(dc, &s->bio.bio))
  613. continue_at_nobarrier(cl, cached_dev_read_done, bcache_wq);
  614. else
  615. continue_at_nobarrier(cl, cached_dev_bio_complete, NULL);
  616. }
  617. static int cached_dev_cache_miss(struct btree *b, struct search *s,
  618. struct bio *bio, unsigned sectors)
  619. {
  620. int ret = MAP_CONTINUE;
  621. unsigned reada = 0;
  622. struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);
  623. struct bio *miss, *cache_bio;
  624. if (s->cache_miss || s->iop.bypass) {
  625. miss = bio_next_split(bio, sectors, GFP_NOIO, s->d->bio_split);
  626. ret = miss == bio ? MAP_DONE : MAP_CONTINUE;
  627. goto out_submit;
  628. }
  629. if (!(bio->bi_rw & REQ_RAHEAD) &&
  630. !(bio->bi_rw & REQ_META) &&
  631. s->iop.c->gc_stats.in_use < CUTOFF_CACHE_READA)
  632. reada = min_t(sector_t, dc->readahead >> 9,
  633. bdev_sectors(bio->bi_bdev) - bio_end_sector(bio));
  634. s->insert_bio_sectors = min(sectors, bio_sectors(bio) + reada);
  635. s->iop.replace_key = KEY(s->iop.inode,
  636. bio->bi_iter.bi_sector + s->insert_bio_sectors,
  637. s->insert_bio_sectors);
  638. ret = bch_btree_insert_check_key(b, &s->op, &s->iop.replace_key);
  639. if (ret)
  640. return ret;
  641. s->iop.replace = true;
  642. miss = bio_next_split(bio, sectors, GFP_NOIO, s->d->bio_split);
  643. /* btree_search_recurse()'s btree iterator is no good anymore */
  644. ret = miss == bio ? MAP_DONE : -EINTR;
  645. cache_bio = bio_alloc_bioset(GFP_NOWAIT,
  646. DIV_ROUND_UP(s->insert_bio_sectors, PAGE_SECTORS),
  647. dc->disk.bio_split);
  648. if (!cache_bio)
  649. goto out_submit;
  650. cache_bio->bi_iter.bi_sector = miss->bi_iter.bi_sector;
  651. cache_bio->bi_bdev = miss->bi_bdev;
  652. cache_bio->bi_iter.bi_size = s->insert_bio_sectors << 9;
  653. cache_bio->bi_end_io = request_endio;
  654. cache_bio->bi_private = &s->cl;
  655. bch_bio_map(cache_bio, NULL);
  656. if (bio_alloc_pages(cache_bio, __GFP_NOWARN|GFP_NOIO))
  657. goto out_put;
  658. if (reada)
  659. bch_mark_cache_readahead(s->iop.c, s->d);
  660. s->cache_miss = miss;
  661. s->iop.bio = cache_bio;
  662. bio_get(cache_bio);
  663. closure_bio_submit(cache_bio, &s->cl, s->d);
  664. return ret;
  665. out_put:
  666. bio_put(cache_bio);
  667. out_submit:
  668. miss->bi_end_io = request_endio;
  669. miss->bi_private = &s->cl;
  670. closure_bio_submit(miss, &s->cl, s->d);
  671. return ret;
  672. }
  673. static void cached_dev_read(struct cached_dev *dc, struct search *s)
  674. {
  675. struct closure *cl = &s->cl;
  676. closure_call(&s->iop.cl, cache_lookup, NULL, cl);
  677. continue_at(cl, cached_dev_read_done_bh, NULL);
  678. }
  679. /* Process writes */
  680. static void cached_dev_write_complete(struct closure *cl)
  681. {
  682. struct search *s = container_of(cl, struct search, cl);
  683. struct cached_dev *dc = container_of(s->d, struct cached_dev, disk);
  684. up_read_non_owner(&dc->writeback_lock);
  685. cached_dev_bio_complete(cl);
  686. }
  687. static void cached_dev_write(struct cached_dev *dc, struct search *s)
  688. {
  689. struct closure *cl = &s->cl;
  690. struct bio *bio = &s->bio.bio;
  691. struct bkey start = KEY(dc->disk.id, bio->bi_iter.bi_sector, 0);
  692. struct bkey end = KEY(dc->disk.id, bio_end_sector(bio), 0);
  693. bch_keybuf_check_overlapping(&s->iop.c->moving_gc_keys, &start, &end);
  694. down_read_non_owner(&dc->writeback_lock);
  695. if (bch_keybuf_check_overlapping(&dc->writeback_keys, &start, &end)) {
  696. /*
  697. * We overlap with some dirty data undergoing background
  698. * writeback, force this write to writeback
  699. */
  700. s->iop.bypass = false;
  701. s->iop.writeback = true;
  702. }
  703. /*
  704. * Discards aren't _required_ to do anything, so skipping if
  705. * check_overlapping returned true is ok
  706. *
  707. * But check_overlapping drops dirty keys for which io hasn't started,
  708. * so we still want to call it.
  709. */
  710. if (bio->bi_rw & REQ_DISCARD)
  711. s->iop.bypass = true;
  712. if (should_writeback(dc, s->orig_bio,
  713. cache_mode(dc, bio),
  714. s->iop.bypass)) {
  715. s->iop.bypass = false;
  716. s->iop.writeback = true;
  717. }
  718. if (s->iop.bypass) {
  719. s->iop.bio = s->orig_bio;
  720. bio_get(s->iop.bio);
  721. if (!(bio->bi_rw & REQ_DISCARD) ||
  722. blk_queue_discard(bdev_get_queue(dc->bdev)))
  723. closure_bio_submit(bio, cl, s->d);
  724. } else if (s->iop.writeback) {
  725. bch_writeback_add(dc);
  726. s->iop.bio = bio;
  727. if (bio->bi_rw & REQ_FLUSH) {
  728. /* Also need to send a flush to the backing device */
  729. struct bio *flush = bio_alloc_bioset(GFP_NOIO, 0,
  730. dc->disk.bio_split);
  731. flush->bi_rw = WRITE_FLUSH;
  732. flush->bi_bdev = bio->bi_bdev;
  733. flush->bi_end_io = request_endio;
  734. flush->bi_private = cl;
  735. closure_bio_submit(flush, cl, s->d);
  736. }
  737. } else {
  738. s->iop.bio = bio_clone_fast(bio, GFP_NOIO, dc->disk.bio_split);
  739. closure_bio_submit(bio, cl, s->d);
  740. }
  741. closure_call(&s->iop.cl, bch_data_insert, NULL, cl);
  742. continue_at(cl, cached_dev_write_complete, NULL);
  743. }
  744. static void cached_dev_nodata(struct closure *cl)
  745. {
  746. struct search *s = container_of(cl, struct search, cl);
  747. struct bio *bio = &s->bio.bio;
  748. if (s->iop.flush_journal)
  749. bch_journal_meta(s->iop.c, cl);
  750. /* If it's a flush, we send the flush to the backing device too */
  751. closure_bio_submit(bio, cl, s->d);
  752. continue_at(cl, cached_dev_bio_complete, NULL);
  753. }
  754. /* Cached devices - read & write stuff */
  755. static void cached_dev_make_request(struct request_queue *q, struct bio *bio)
  756. {
  757. struct search *s;
  758. struct bcache_device *d = bio->bi_bdev->bd_disk->private_data;
  759. struct cached_dev *dc = container_of(d, struct cached_dev, disk);
  760. int rw = bio_data_dir(bio);
  761. generic_start_io_acct(rw, bio_sectors(bio), &d->disk->part0);
  762. bio->bi_bdev = dc->bdev;
  763. bio->bi_iter.bi_sector += dc->sb.data_offset;
  764. if (cached_dev_get(dc)) {
  765. s = search_alloc(bio, d);
  766. trace_bcache_request_start(s->d, bio);
  767. if (!bio->bi_iter.bi_size) {
  768. /*
  769. * can't call bch_journal_meta from under
  770. * generic_make_request
  771. */
  772. continue_at_nobarrier(&s->cl,
  773. cached_dev_nodata,
  774. bcache_wq);
  775. } else {
  776. s->iop.bypass = check_should_bypass(dc, bio);
  777. if (rw)
  778. cached_dev_write(dc, s);
  779. else
  780. cached_dev_read(dc, s);
  781. }
  782. } else {
  783. if ((bio->bi_rw & REQ_DISCARD) &&
  784. !blk_queue_discard(bdev_get_queue(dc->bdev)))
  785. bio_endio(bio, 0);
  786. else
  787. bch_generic_make_request(bio, &d->bio_split_hook);
  788. }
  789. }
  790. static int cached_dev_ioctl(struct bcache_device *d, fmode_t mode,
  791. unsigned int cmd, unsigned long arg)
  792. {
  793. struct cached_dev *dc = container_of(d, struct cached_dev, disk);
  794. return __blkdev_driver_ioctl(dc->bdev, mode, cmd, arg);
  795. }
  796. static int cached_dev_congested(void *data, int bits)
  797. {
  798. struct bcache_device *d = data;
  799. struct cached_dev *dc = container_of(d, struct cached_dev, disk);
  800. struct request_queue *q = bdev_get_queue(dc->bdev);
  801. int ret = 0;
  802. if (bdi_congested(&q->backing_dev_info, bits))
  803. return 1;
  804. if (cached_dev_get(dc)) {
  805. unsigned i;
  806. struct cache *ca;
  807. for_each_cache(ca, d->c, i) {
  808. q = bdev_get_queue(ca->bdev);
  809. ret |= bdi_congested(&q->backing_dev_info, bits);
  810. }
  811. cached_dev_put(dc);
  812. }
  813. return ret;
  814. }
  815. void bch_cached_dev_request_init(struct cached_dev *dc)
  816. {
  817. struct gendisk *g = dc->disk.disk;
  818. g->queue->make_request_fn = cached_dev_make_request;
  819. g->queue->backing_dev_info.congested_fn = cached_dev_congested;
  820. dc->disk.cache_miss = cached_dev_cache_miss;
  821. dc->disk.ioctl = cached_dev_ioctl;
  822. }
  823. /* Flash backed devices */
  824. static int flash_dev_cache_miss(struct btree *b, struct search *s,
  825. struct bio *bio, unsigned sectors)
  826. {
  827. unsigned bytes = min(sectors, bio_sectors(bio)) << 9;
  828. swap(bio->bi_iter.bi_size, bytes);
  829. zero_fill_bio(bio);
  830. swap(bio->bi_iter.bi_size, bytes);
  831. bio_advance(bio, bytes);
  832. if (!bio->bi_iter.bi_size)
  833. return MAP_DONE;
  834. return MAP_CONTINUE;
  835. }
  836. static void flash_dev_nodata(struct closure *cl)
  837. {
  838. struct search *s = container_of(cl, struct search, cl);
  839. if (s->iop.flush_journal)
  840. bch_journal_meta(s->iop.c, cl);
  841. continue_at(cl, search_free, NULL);
  842. }
  843. static void flash_dev_make_request(struct request_queue *q, struct bio *bio)
  844. {
  845. struct search *s;
  846. struct closure *cl;
  847. struct bcache_device *d = bio->bi_bdev->bd_disk->private_data;
  848. int rw = bio_data_dir(bio);
  849. generic_start_io_acct(rw, bio_sectors(bio), &d->disk->part0);
  850. s = search_alloc(bio, d);
  851. cl = &s->cl;
  852. bio = &s->bio.bio;
  853. trace_bcache_request_start(s->d, bio);
  854. if (!bio->bi_iter.bi_size) {
  855. /*
  856. * can't call bch_journal_meta from under
  857. * generic_make_request
  858. */
  859. continue_at_nobarrier(&s->cl,
  860. flash_dev_nodata,
  861. bcache_wq);
  862. return;
  863. } else if (rw) {
  864. bch_keybuf_check_overlapping(&s->iop.c->moving_gc_keys,
  865. &KEY(d->id, bio->bi_iter.bi_sector, 0),
  866. &KEY(d->id, bio_end_sector(bio), 0));
  867. s->iop.bypass = (bio->bi_rw & REQ_DISCARD) != 0;
  868. s->iop.writeback = true;
  869. s->iop.bio = bio;
  870. closure_call(&s->iop.cl, bch_data_insert, NULL, cl);
  871. } else {
  872. closure_call(&s->iop.cl, cache_lookup, NULL, cl);
  873. }
  874. continue_at(cl, search_free, NULL);
  875. }
  876. static int flash_dev_ioctl(struct bcache_device *d, fmode_t mode,
  877. unsigned int cmd, unsigned long arg)
  878. {
  879. return -ENOTTY;
  880. }
  881. static int flash_dev_congested(void *data, int bits)
  882. {
  883. struct bcache_device *d = data;
  884. struct request_queue *q;
  885. struct cache *ca;
  886. unsigned i;
  887. int ret = 0;
  888. for_each_cache(ca, d->c, i) {
  889. q = bdev_get_queue(ca->bdev);
  890. ret |= bdi_congested(&q->backing_dev_info, bits);
  891. }
  892. return ret;
  893. }
  894. void bch_flash_dev_request_init(struct bcache_device *d)
  895. {
  896. struct gendisk *g = d->disk;
  897. g->queue->make_request_fn = flash_dev_make_request;
  898. g->queue->backing_dev_info.congested_fn = flash_dev_congested;
  899. d->cache_miss = flash_dev_cache_miss;
  900. d->ioctl = flash_dev_ioctl;
  901. }
  902. void bch_request_exit(void)
  903. {
  904. if (bch_search_cache)
  905. kmem_cache_destroy(bch_search_cache);
  906. }
  907. int __init bch_request_init(void)
  908. {
  909. bch_search_cache = KMEM_CACHE(search, 0);
  910. if (!bch_search_cache)
  911. return -ENOMEM;
  912. return 0;
  913. }