super.c 46 KB

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  1. /*
  2. * bcache setup/teardown code, and some metadata io - read a superblock and
  3. * figure out what to do with it.
  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 <linux/buffer_head.h>
  13. #include <linux/debugfs.h>
  14. #include <linux/genhd.h>
  15. #include <linux/module.h>
  16. #include <linux/random.h>
  17. #include <linux/reboot.h>
  18. #include <linux/sysfs.h>
  19. MODULE_LICENSE("GPL");
  20. MODULE_AUTHOR("Kent Overstreet <kent.overstreet@gmail.com>");
  21. static const char bcache_magic[] = {
  22. 0xc6, 0x85, 0x73, 0xf6, 0x4e, 0x1a, 0x45, 0xca,
  23. 0x82, 0x65, 0xf5, 0x7f, 0x48, 0xba, 0x6d, 0x81
  24. };
  25. static const char invalid_uuid[] = {
  26. 0xa0, 0x3e, 0xf8, 0xed, 0x3e, 0xe1, 0xb8, 0x78,
  27. 0xc8, 0x50, 0xfc, 0x5e, 0xcb, 0x16, 0xcd, 0x99
  28. };
  29. /* Default is -1; we skip past it for struct cached_dev's cache mode */
  30. const char * const bch_cache_modes[] = {
  31. "default",
  32. "writethrough",
  33. "writeback",
  34. "writearound",
  35. "none",
  36. NULL
  37. };
  38. struct uuid_entry_v0 {
  39. uint8_t uuid[16];
  40. uint8_t label[32];
  41. uint32_t first_reg;
  42. uint32_t last_reg;
  43. uint32_t invalidated;
  44. uint32_t pad;
  45. };
  46. static struct kobject *bcache_kobj;
  47. struct mutex bch_register_lock;
  48. LIST_HEAD(bch_cache_sets);
  49. static LIST_HEAD(uncached_devices);
  50. static int bcache_major, bcache_minor;
  51. static wait_queue_head_t unregister_wait;
  52. struct workqueue_struct *bcache_wq;
  53. #define BTREE_MAX_PAGES (256 * 1024 / PAGE_SIZE)
  54. static void bio_split_pool_free(struct bio_split_pool *p)
  55. {
  56. if (p->bio_split_hook)
  57. mempool_destroy(p->bio_split_hook);
  58. if (p->bio_split)
  59. bioset_free(p->bio_split);
  60. }
  61. static int bio_split_pool_init(struct bio_split_pool *p)
  62. {
  63. p->bio_split = bioset_create(4, 0);
  64. if (!p->bio_split)
  65. return -ENOMEM;
  66. p->bio_split_hook = mempool_create_kmalloc_pool(4,
  67. sizeof(struct bio_split_hook));
  68. if (!p->bio_split_hook)
  69. return -ENOMEM;
  70. return 0;
  71. }
  72. /* Superblock */
  73. static const char *read_super(struct cache_sb *sb, struct block_device *bdev,
  74. struct page **res)
  75. {
  76. const char *err;
  77. struct cache_sb *s;
  78. struct buffer_head *bh = __bread(bdev, 1, SB_SIZE);
  79. unsigned i;
  80. if (!bh)
  81. return "IO error";
  82. s = (struct cache_sb *) bh->b_data;
  83. sb->offset = le64_to_cpu(s->offset);
  84. sb->version = le64_to_cpu(s->version);
  85. memcpy(sb->magic, s->magic, 16);
  86. memcpy(sb->uuid, s->uuid, 16);
  87. memcpy(sb->set_uuid, s->set_uuid, 16);
  88. memcpy(sb->label, s->label, SB_LABEL_SIZE);
  89. sb->flags = le64_to_cpu(s->flags);
  90. sb->seq = le64_to_cpu(s->seq);
  91. sb->nbuckets = le64_to_cpu(s->nbuckets);
  92. sb->block_size = le16_to_cpu(s->block_size);
  93. sb->bucket_size = le16_to_cpu(s->bucket_size);
  94. sb->nr_in_set = le16_to_cpu(s->nr_in_set);
  95. sb->nr_this_dev = le16_to_cpu(s->nr_this_dev);
  96. sb->last_mount = le32_to_cpu(s->last_mount);
  97. sb->first_bucket = le16_to_cpu(s->first_bucket);
  98. sb->keys = le16_to_cpu(s->keys);
  99. for (i = 0; i < SB_JOURNAL_BUCKETS; i++)
  100. sb->d[i] = le64_to_cpu(s->d[i]);
  101. pr_debug("read sb version %llu, flags %llu, seq %llu, journal size %u",
  102. sb->version, sb->flags, sb->seq, sb->keys);
  103. err = "Not a bcache superblock";
  104. if (sb->offset != SB_SECTOR)
  105. goto err;
  106. if (memcmp(sb->magic, bcache_magic, 16))
  107. goto err;
  108. err = "Too many journal buckets";
  109. if (sb->keys > SB_JOURNAL_BUCKETS)
  110. goto err;
  111. err = "Bad checksum";
  112. if (s->csum != csum_set(s))
  113. goto err;
  114. err = "Bad UUID";
  115. if (bch_is_zero(sb->uuid, 16))
  116. goto err;
  117. err = "Unsupported superblock version";
  118. if (sb->version > BCACHE_SB_VERSION)
  119. goto err;
  120. err = "Bad block/bucket size";
  121. if (!is_power_of_2(sb->block_size) || sb->block_size > PAGE_SECTORS ||
  122. !is_power_of_2(sb->bucket_size) || sb->bucket_size < PAGE_SECTORS)
  123. goto err;
  124. err = "Too many buckets";
  125. if (sb->nbuckets > LONG_MAX)
  126. goto err;
  127. err = "Not enough buckets";
  128. if (sb->nbuckets < 1 << 7)
  129. goto err;
  130. err = "Invalid superblock: device too small";
  131. if (get_capacity(bdev->bd_disk) < sb->bucket_size * sb->nbuckets)
  132. goto err;
  133. if (sb->version == CACHE_BACKING_DEV)
  134. goto out;
  135. err = "Bad UUID";
  136. if (bch_is_zero(sb->set_uuid, 16))
  137. goto err;
  138. err = "Bad cache device number in set";
  139. if (!sb->nr_in_set ||
  140. sb->nr_in_set <= sb->nr_this_dev ||
  141. sb->nr_in_set > MAX_CACHES_PER_SET)
  142. goto err;
  143. err = "Journal buckets not sequential";
  144. for (i = 0; i < sb->keys; i++)
  145. if (sb->d[i] != sb->first_bucket + i)
  146. goto err;
  147. err = "Too many journal buckets";
  148. if (sb->first_bucket + sb->keys > sb->nbuckets)
  149. goto err;
  150. err = "Invalid superblock: first bucket comes before end of super";
  151. if (sb->first_bucket * sb->bucket_size < 16)
  152. goto err;
  153. out:
  154. sb->last_mount = get_seconds();
  155. err = NULL;
  156. get_page(bh->b_page);
  157. *res = bh->b_page;
  158. err:
  159. put_bh(bh);
  160. return err;
  161. }
  162. static void write_bdev_super_endio(struct bio *bio, int error)
  163. {
  164. struct cached_dev *dc = bio->bi_private;
  165. /* XXX: error checking */
  166. closure_put(&dc->sb_write.cl);
  167. }
  168. static void __write_super(struct cache_sb *sb, struct bio *bio)
  169. {
  170. struct cache_sb *out = page_address(bio->bi_io_vec[0].bv_page);
  171. unsigned i;
  172. bio->bi_sector = SB_SECTOR;
  173. bio->bi_rw = REQ_SYNC|REQ_META;
  174. bio->bi_size = SB_SIZE;
  175. bch_bio_map(bio, NULL);
  176. out->offset = cpu_to_le64(sb->offset);
  177. out->version = cpu_to_le64(sb->version);
  178. memcpy(out->uuid, sb->uuid, 16);
  179. memcpy(out->set_uuid, sb->set_uuid, 16);
  180. memcpy(out->label, sb->label, SB_LABEL_SIZE);
  181. out->flags = cpu_to_le64(sb->flags);
  182. out->seq = cpu_to_le64(sb->seq);
  183. out->last_mount = cpu_to_le32(sb->last_mount);
  184. out->first_bucket = cpu_to_le16(sb->first_bucket);
  185. out->keys = cpu_to_le16(sb->keys);
  186. for (i = 0; i < sb->keys; i++)
  187. out->d[i] = cpu_to_le64(sb->d[i]);
  188. out->csum = csum_set(out);
  189. pr_debug("ver %llu, flags %llu, seq %llu",
  190. sb->version, sb->flags, sb->seq);
  191. submit_bio(REQ_WRITE, bio);
  192. }
  193. void bch_write_bdev_super(struct cached_dev *dc, struct closure *parent)
  194. {
  195. struct closure *cl = &dc->sb_write.cl;
  196. struct bio *bio = &dc->sb_bio;
  197. closure_lock(&dc->sb_write, parent);
  198. bio_reset(bio);
  199. bio->bi_bdev = dc->bdev;
  200. bio->bi_end_io = write_bdev_super_endio;
  201. bio->bi_private = dc;
  202. closure_get(cl);
  203. __write_super(&dc->sb, bio);
  204. closure_return(cl);
  205. }
  206. static void write_super_endio(struct bio *bio, int error)
  207. {
  208. struct cache *ca = bio->bi_private;
  209. bch_count_io_errors(ca, error, "writing superblock");
  210. closure_put(&ca->set->sb_write.cl);
  211. }
  212. void bcache_write_super(struct cache_set *c)
  213. {
  214. struct closure *cl = &c->sb_write.cl;
  215. struct cache *ca;
  216. unsigned i;
  217. closure_lock(&c->sb_write, &c->cl);
  218. c->sb.seq++;
  219. for_each_cache(ca, c, i) {
  220. struct bio *bio = &ca->sb_bio;
  221. ca->sb.version = BCACHE_SB_VERSION;
  222. ca->sb.seq = c->sb.seq;
  223. ca->sb.last_mount = c->sb.last_mount;
  224. SET_CACHE_SYNC(&ca->sb, CACHE_SYNC(&c->sb));
  225. bio_reset(bio);
  226. bio->bi_bdev = ca->bdev;
  227. bio->bi_end_io = write_super_endio;
  228. bio->bi_private = ca;
  229. closure_get(cl);
  230. __write_super(&ca->sb, bio);
  231. }
  232. closure_return(cl);
  233. }
  234. /* UUID io */
  235. static void uuid_endio(struct bio *bio, int error)
  236. {
  237. struct closure *cl = bio->bi_private;
  238. struct cache_set *c = container_of(cl, struct cache_set, uuid_write.cl);
  239. cache_set_err_on(error, c, "accessing uuids");
  240. bch_bbio_free(bio, c);
  241. closure_put(cl);
  242. }
  243. static void uuid_io(struct cache_set *c, unsigned long rw,
  244. struct bkey *k, struct closure *parent)
  245. {
  246. struct closure *cl = &c->uuid_write.cl;
  247. struct uuid_entry *u;
  248. unsigned i;
  249. BUG_ON(!parent);
  250. closure_lock(&c->uuid_write, parent);
  251. for (i = 0; i < KEY_PTRS(k); i++) {
  252. struct bio *bio = bch_bbio_alloc(c);
  253. bio->bi_rw = REQ_SYNC|REQ_META|rw;
  254. bio->bi_size = KEY_SIZE(k) << 9;
  255. bio->bi_end_io = uuid_endio;
  256. bio->bi_private = cl;
  257. bch_bio_map(bio, c->uuids);
  258. bch_submit_bbio(bio, c, k, i);
  259. if (!(rw & WRITE))
  260. break;
  261. }
  262. pr_debug("%s UUIDs at %s", rw & REQ_WRITE ? "wrote" : "read",
  263. pkey(&c->uuid_bucket));
  264. for (u = c->uuids; u < c->uuids + c->nr_uuids; u++)
  265. if (!bch_is_zero(u->uuid, 16))
  266. pr_debug("Slot %zi: %pU: %s: 1st: %u last: %u inv: %u",
  267. u - c->uuids, u->uuid, u->label,
  268. u->first_reg, u->last_reg, u->invalidated);
  269. closure_return(cl);
  270. }
  271. static char *uuid_read(struct cache_set *c, struct jset *j, struct closure *cl)
  272. {
  273. struct bkey *k = &j->uuid_bucket;
  274. if (__bch_ptr_invalid(c, 1, k))
  275. return "bad uuid pointer";
  276. bkey_copy(&c->uuid_bucket, k);
  277. uuid_io(c, READ_SYNC, k, cl);
  278. if (j->version < BCACHE_JSET_VERSION_UUIDv1) {
  279. struct uuid_entry_v0 *u0 = (void *) c->uuids;
  280. struct uuid_entry *u1 = (void *) c->uuids;
  281. int i;
  282. closure_sync(cl);
  283. /*
  284. * Since the new uuid entry is bigger than the old, we have to
  285. * convert starting at the highest memory address and work down
  286. * in order to do it in place
  287. */
  288. for (i = c->nr_uuids - 1;
  289. i >= 0;
  290. --i) {
  291. memcpy(u1[i].uuid, u0[i].uuid, 16);
  292. memcpy(u1[i].label, u0[i].label, 32);
  293. u1[i].first_reg = u0[i].first_reg;
  294. u1[i].last_reg = u0[i].last_reg;
  295. u1[i].invalidated = u0[i].invalidated;
  296. u1[i].flags = 0;
  297. u1[i].sectors = 0;
  298. }
  299. }
  300. return NULL;
  301. }
  302. static int __uuid_write(struct cache_set *c)
  303. {
  304. BKEY_PADDED(key) k;
  305. struct closure cl;
  306. closure_init_stack(&cl);
  307. lockdep_assert_held(&bch_register_lock);
  308. if (bch_bucket_alloc_set(c, WATERMARK_METADATA, &k.key, 1, &cl))
  309. return 1;
  310. SET_KEY_SIZE(&k.key, c->sb.bucket_size);
  311. uuid_io(c, REQ_WRITE, &k.key, &cl);
  312. closure_sync(&cl);
  313. bkey_copy(&c->uuid_bucket, &k.key);
  314. __bkey_put(c, &k.key);
  315. return 0;
  316. }
  317. int bch_uuid_write(struct cache_set *c)
  318. {
  319. int ret = __uuid_write(c);
  320. if (!ret)
  321. bch_journal_meta(c, NULL);
  322. return ret;
  323. }
  324. static struct uuid_entry *uuid_find(struct cache_set *c, const char *uuid)
  325. {
  326. struct uuid_entry *u;
  327. for (u = c->uuids;
  328. u < c->uuids + c->nr_uuids; u++)
  329. if (!memcmp(u->uuid, uuid, 16))
  330. return u;
  331. return NULL;
  332. }
  333. static struct uuid_entry *uuid_find_empty(struct cache_set *c)
  334. {
  335. static const char zero_uuid[16] = "\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0";
  336. return uuid_find(c, zero_uuid);
  337. }
  338. /*
  339. * Bucket priorities/gens:
  340. *
  341. * For each bucket, we store on disk its
  342. * 8 bit gen
  343. * 16 bit priority
  344. *
  345. * See alloc.c for an explanation of the gen. The priority is used to implement
  346. * lru (and in the future other) cache replacement policies; for most purposes
  347. * it's just an opaque integer.
  348. *
  349. * The gens and the priorities don't have a whole lot to do with each other, and
  350. * it's actually the gens that must be written out at specific times - it's no
  351. * big deal if the priorities don't get written, if we lose them we just reuse
  352. * buckets in suboptimal order.
  353. *
  354. * On disk they're stored in a packed array, and in as many buckets are required
  355. * to fit them all. The buckets we use to store them form a list; the journal
  356. * header points to the first bucket, the first bucket points to the second
  357. * bucket, et cetera.
  358. *
  359. * This code is used by the allocation code; periodically (whenever it runs out
  360. * of buckets to allocate from) the allocation code will invalidate some
  361. * buckets, but it can't use those buckets until their new gens are safely on
  362. * disk.
  363. */
  364. static void prio_endio(struct bio *bio, int error)
  365. {
  366. struct cache *ca = bio->bi_private;
  367. cache_set_err_on(error, ca->set, "accessing priorities");
  368. bch_bbio_free(bio, ca->set);
  369. closure_put(&ca->prio);
  370. }
  371. static void prio_io(struct cache *ca, uint64_t bucket, unsigned long rw)
  372. {
  373. struct closure *cl = &ca->prio;
  374. struct bio *bio = bch_bbio_alloc(ca->set);
  375. closure_init_stack(cl);
  376. bio->bi_sector = bucket * ca->sb.bucket_size;
  377. bio->bi_bdev = ca->bdev;
  378. bio->bi_rw = REQ_SYNC|REQ_META|rw;
  379. bio->bi_size = bucket_bytes(ca);
  380. bio->bi_end_io = prio_endio;
  381. bio->bi_private = ca;
  382. bch_bio_map(bio, ca->disk_buckets);
  383. closure_bio_submit(bio, &ca->prio, ca);
  384. closure_sync(cl);
  385. }
  386. #define buckets_free(c) "free %zu, free_inc %zu, unused %zu", \
  387. fifo_used(&c->free), fifo_used(&c->free_inc), fifo_used(&c->unused)
  388. void bch_prio_write(struct cache *ca)
  389. {
  390. int i;
  391. struct bucket *b;
  392. struct closure cl;
  393. closure_init_stack(&cl);
  394. lockdep_assert_held(&ca->set->bucket_lock);
  395. for (b = ca->buckets;
  396. b < ca->buckets + ca->sb.nbuckets; b++)
  397. b->disk_gen = b->gen;
  398. ca->disk_buckets->seq++;
  399. atomic_long_add(ca->sb.bucket_size * prio_buckets(ca),
  400. &ca->meta_sectors_written);
  401. pr_debug("free %zu, free_inc %zu, unused %zu", fifo_used(&ca->free),
  402. fifo_used(&ca->free_inc), fifo_used(&ca->unused));
  403. blktrace_msg(ca, "Starting priorities: " buckets_free(ca));
  404. for (i = prio_buckets(ca) - 1; i >= 0; --i) {
  405. long bucket;
  406. struct prio_set *p = ca->disk_buckets;
  407. struct bucket_disk *d = p->data;
  408. struct bucket_disk *end = d + prios_per_bucket(ca);
  409. for (b = ca->buckets + i * prios_per_bucket(ca);
  410. b < ca->buckets + ca->sb.nbuckets && d < end;
  411. b++, d++) {
  412. d->prio = cpu_to_le16(b->prio);
  413. d->gen = b->gen;
  414. }
  415. p->next_bucket = ca->prio_buckets[i + 1];
  416. p->magic = pset_magic(ca);
  417. p->csum = bch_crc64(&p->magic, bucket_bytes(ca) - 8);
  418. bucket = bch_bucket_alloc(ca, WATERMARK_PRIO, &cl);
  419. BUG_ON(bucket == -1);
  420. mutex_unlock(&ca->set->bucket_lock);
  421. prio_io(ca, bucket, REQ_WRITE);
  422. mutex_lock(&ca->set->bucket_lock);
  423. ca->prio_buckets[i] = bucket;
  424. atomic_dec_bug(&ca->buckets[bucket].pin);
  425. }
  426. mutex_unlock(&ca->set->bucket_lock);
  427. bch_journal_meta(ca->set, &cl);
  428. closure_sync(&cl);
  429. mutex_lock(&ca->set->bucket_lock);
  430. ca->need_save_prio = 0;
  431. /*
  432. * Don't want the old priorities to get garbage collected until after we
  433. * finish writing the new ones, and they're journalled
  434. */
  435. for (i = 0; i < prio_buckets(ca); i++)
  436. ca->prio_last_buckets[i] = ca->prio_buckets[i];
  437. }
  438. static void prio_read(struct cache *ca, uint64_t bucket)
  439. {
  440. struct prio_set *p = ca->disk_buckets;
  441. struct bucket_disk *d = p->data + prios_per_bucket(ca), *end = d;
  442. struct bucket *b;
  443. unsigned bucket_nr = 0;
  444. for (b = ca->buckets;
  445. b < ca->buckets + ca->sb.nbuckets;
  446. b++, d++) {
  447. if (d == end) {
  448. ca->prio_buckets[bucket_nr] = bucket;
  449. ca->prio_last_buckets[bucket_nr] = bucket;
  450. bucket_nr++;
  451. prio_io(ca, bucket, READ_SYNC);
  452. if (p->csum != bch_crc64(&p->magic, bucket_bytes(ca) - 8))
  453. pr_warn("bad csum reading priorities");
  454. if (p->magic != pset_magic(ca))
  455. pr_warn("bad magic reading priorities");
  456. bucket = p->next_bucket;
  457. d = p->data;
  458. }
  459. b->prio = le16_to_cpu(d->prio);
  460. b->gen = b->disk_gen = b->last_gc = b->gc_gen = d->gen;
  461. }
  462. }
  463. /* Bcache device */
  464. static int open_dev(struct block_device *b, fmode_t mode)
  465. {
  466. struct bcache_device *d = b->bd_disk->private_data;
  467. if (atomic_read(&d->closing))
  468. return -ENXIO;
  469. closure_get(&d->cl);
  470. return 0;
  471. }
  472. static int release_dev(struct gendisk *b, fmode_t mode)
  473. {
  474. struct bcache_device *d = b->private_data;
  475. closure_put(&d->cl);
  476. return 0;
  477. }
  478. static int ioctl_dev(struct block_device *b, fmode_t mode,
  479. unsigned int cmd, unsigned long arg)
  480. {
  481. struct bcache_device *d = b->bd_disk->private_data;
  482. return d->ioctl(d, mode, cmd, arg);
  483. }
  484. static const struct block_device_operations bcache_ops = {
  485. .open = open_dev,
  486. .release = release_dev,
  487. .ioctl = ioctl_dev,
  488. .owner = THIS_MODULE,
  489. };
  490. void bcache_device_stop(struct bcache_device *d)
  491. {
  492. if (!atomic_xchg(&d->closing, 1))
  493. closure_queue(&d->cl);
  494. }
  495. static void bcache_device_detach(struct bcache_device *d)
  496. {
  497. lockdep_assert_held(&bch_register_lock);
  498. if (atomic_read(&d->detaching)) {
  499. struct uuid_entry *u = d->c->uuids + d->id;
  500. SET_UUID_FLASH_ONLY(u, 0);
  501. memcpy(u->uuid, invalid_uuid, 16);
  502. u->invalidated = cpu_to_le32(get_seconds());
  503. bch_uuid_write(d->c);
  504. atomic_set(&d->detaching, 0);
  505. }
  506. d->c->devices[d->id] = NULL;
  507. closure_put(&d->c->caching);
  508. d->c = NULL;
  509. }
  510. static void bcache_device_attach(struct bcache_device *d, struct cache_set *c,
  511. unsigned id)
  512. {
  513. BUG_ON(test_bit(CACHE_SET_STOPPING, &c->flags));
  514. d->id = id;
  515. d->c = c;
  516. c->devices[id] = d;
  517. closure_get(&c->caching);
  518. }
  519. static void bcache_device_link(struct bcache_device *d, struct cache_set *c,
  520. const char *name)
  521. {
  522. snprintf(d->name, BCACHEDEVNAME_SIZE,
  523. "%s%u", name, d->id);
  524. WARN(sysfs_create_link(&d->kobj, &c->kobj, "cache") ||
  525. sysfs_create_link(&c->kobj, &d->kobj, d->name),
  526. "Couldn't create device <-> cache set symlinks");
  527. }
  528. static void bcache_device_free(struct bcache_device *d)
  529. {
  530. lockdep_assert_held(&bch_register_lock);
  531. pr_info("%s stopped", d->disk->disk_name);
  532. if (d->c)
  533. bcache_device_detach(d);
  534. if (d->disk)
  535. del_gendisk(d->disk);
  536. if (d->disk && d->disk->queue)
  537. blk_cleanup_queue(d->disk->queue);
  538. if (d->disk)
  539. put_disk(d->disk);
  540. bio_split_pool_free(&d->bio_split_hook);
  541. if (d->unaligned_bvec)
  542. mempool_destroy(d->unaligned_bvec);
  543. if (d->bio_split)
  544. bioset_free(d->bio_split);
  545. closure_debug_destroy(&d->cl);
  546. }
  547. static int bcache_device_init(struct bcache_device *d, unsigned block_size)
  548. {
  549. struct request_queue *q;
  550. if (!(d->bio_split = bioset_create(4, offsetof(struct bbio, bio))) ||
  551. !(d->unaligned_bvec = mempool_create_kmalloc_pool(1,
  552. sizeof(struct bio_vec) * BIO_MAX_PAGES)) ||
  553. bio_split_pool_init(&d->bio_split_hook))
  554. return -ENOMEM;
  555. d->disk = alloc_disk(1);
  556. if (!d->disk)
  557. return -ENOMEM;
  558. snprintf(d->disk->disk_name, DISK_NAME_LEN, "bcache%i", bcache_minor);
  559. d->disk->major = bcache_major;
  560. d->disk->first_minor = bcache_minor++;
  561. d->disk->fops = &bcache_ops;
  562. d->disk->private_data = d;
  563. q = blk_alloc_queue(GFP_KERNEL);
  564. if (!q)
  565. return -ENOMEM;
  566. blk_queue_make_request(q, NULL);
  567. d->disk->queue = q;
  568. q->queuedata = d;
  569. q->backing_dev_info.congested_data = d;
  570. q->limits.max_hw_sectors = UINT_MAX;
  571. q->limits.max_sectors = UINT_MAX;
  572. q->limits.max_segment_size = UINT_MAX;
  573. q->limits.max_segments = BIO_MAX_PAGES;
  574. q->limits.max_discard_sectors = UINT_MAX;
  575. q->limits.io_min = block_size;
  576. q->limits.logical_block_size = block_size;
  577. q->limits.physical_block_size = block_size;
  578. set_bit(QUEUE_FLAG_NONROT, &d->disk->queue->queue_flags);
  579. set_bit(QUEUE_FLAG_DISCARD, &d->disk->queue->queue_flags);
  580. return 0;
  581. }
  582. /* Cached device */
  583. static void calc_cached_dev_sectors(struct cache_set *c)
  584. {
  585. uint64_t sectors = 0;
  586. struct cached_dev *dc;
  587. list_for_each_entry(dc, &c->cached_devs, list)
  588. sectors += bdev_sectors(dc->bdev);
  589. c->cached_dev_sectors = sectors;
  590. }
  591. void bch_cached_dev_run(struct cached_dev *dc)
  592. {
  593. struct bcache_device *d = &dc->disk;
  594. if (atomic_xchg(&dc->running, 1))
  595. return;
  596. if (!d->c &&
  597. BDEV_STATE(&dc->sb) != BDEV_STATE_NONE) {
  598. struct closure cl;
  599. closure_init_stack(&cl);
  600. SET_BDEV_STATE(&dc->sb, BDEV_STATE_STALE);
  601. bch_write_bdev_super(dc, &cl);
  602. closure_sync(&cl);
  603. }
  604. add_disk(d->disk);
  605. #if 0
  606. char *env[] = { "SYMLINK=label" , NULL };
  607. kobject_uevent_env(&disk_to_dev(d->disk)->kobj, KOBJ_CHANGE, env);
  608. #endif
  609. if (sysfs_create_link(&d->kobj, &disk_to_dev(d->disk)->kobj, "dev") ||
  610. sysfs_create_link(&disk_to_dev(d->disk)->kobj, &d->kobj, "bcache"))
  611. pr_debug("error creating sysfs link");
  612. }
  613. static void cached_dev_detach_finish(struct work_struct *w)
  614. {
  615. struct cached_dev *dc = container_of(w, struct cached_dev, detach);
  616. char buf[BDEVNAME_SIZE];
  617. struct closure cl;
  618. closure_init_stack(&cl);
  619. BUG_ON(!atomic_read(&dc->disk.detaching));
  620. BUG_ON(atomic_read(&dc->count));
  621. sysfs_remove_link(&dc->disk.c->kobj, dc->disk.name);
  622. sysfs_remove_link(&dc->disk.kobj, "cache");
  623. mutex_lock(&bch_register_lock);
  624. memset(&dc->sb.set_uuid, 0, 16);
  625. SET_BDEV_STATE(&dc->sb, BDEV_STATE_NONE);
  626. bch_write_bdev_super(dc, &cl);
  627. closure_sync(&cl);
  628. bcache_device_detach(&dc->disk);
  629. list_move(&dc->list, &uncached_devices);
  630. mutex_unlock(&bch_register_lock);
  631. pr_info("Caching disabled for %s", bdevname(dc->bdev, buf));
  632. /* Drop ref we took in cached_dev_detach() */
  633. closure_put(&dc->disk.cl);
  634. }
  635. void bch_cached_dev_detach(struct cached_dev *dc)
  636. {
  637. lockdep_assert_held(&bch_register_lock);
  638. if (atomic_read(&dc->disk.closing))
  639. return;
  640. if (atomic_xchg(&dc->disk.detaching, 1))
  641. return;
  642. /*
  643. * Block the device from being closed and freed until we're finished
  644. * detaching
  645. */
  646. closure_get(&dc->disk.cl);
  647. bch_writeback_queue(dc);
  648. cached_dev_put(dc);
  649. }
  650. int bch_cached_dev_attach(struct cached_dev *dc, struct cache_set *c)
  651. {
  652. uint32_t rtime = cpu_to_le32(get_seconds());
  653. struct uuid_entry *u;
  654. char buf[BDEVNAME_SIZE];
  655. bdevname(dc->bdev, buf);
  656. if (memcmp(dc->sb.set_uuid, c->sb.set_uuid, 16))
  657. return -ENOENT;
  658. if (dc->disk.c) {
  659. pr_err("Can't attach %s: already attached", buf);
  660. return -EINVAL;
  661. }
  662. if (test_bit(CACHE_SET_STOPPING, &c->flags)) {
  663. pr_err("Can't attach %s: shutting down", buf);
  664. return -EINVAL;
  665. }
  666. if (dc->sb.block_size < c->sb.block_size) {
  667. /* Will die */
  668. pr_err("Couldn't attach %s: block size less than set's block size",
  669. buf);
  670. return -EINVAL;
  671. }
  672. u = uuid_find(c, dc->sb.uuid);
  673. if (u &&
  674. (BDEV_STATE(&dc->sb) == BDEV_STATE_STALE ||
  675. BDEV_STATE(&dc->sb) == BDEV_STATE_NONE)) {
  676. memcpy(u->uuid, invalid_uuid, 16);
  677. u->invalidated = cpu_to_le32(get_seconds());
  678. u = NULL;
  679. }
  680. if (!u) {
  681. if (BDEV_STATE(&dc->sb) == BDEV_STATE_DIRTY) {
  682. pr_err("Couldn't find uuid for %s in set", buf);
  683. return -ENOENT;
  684. }
  685. u = uuid_find_empty(c);
  686. if (!u) {
  687. pr_err("Not caching %s, no room for UUID", buf);
  688. return -EINVAL;
  689. }
  690. }
  691. /* Deadlocks since we're called via sysfs...
  692. sysfs_remove_file(&dc->kobj, &sysfs_attach);
  693. */
  694. if (bch_is_zero(u->uuid, 16)) {
  695. struct closure cl;
  696. closure_init_stack(&cl);
  697. memcpy(u->uuid, dc->sb.uuid, 16);
  698. memcpy(u->label, dc->sb.label, SB_LABEL_SIZE);
  699. u->first_reg = u->last_reg = rtime;
  700. bch_uuid_write(c);
  701. memcpy(dc->sb.set_uuid, c->sb.set_uuid, 16);
  702. SET_BDEV_STATE(&dc->sb, BDEV_STATE_CLEAN);
  703. bch_write_bdev_super(dc, &cl);
  704. closure_sync(&cl);
  705. } else {
  706. u->last_reg = rtime;
  707. bch_uuid_write(c);
  708. }
  709. bcache_device_attach(&dc->disk, c, u - c->uuids);
  710. bcache_device_link(&dc->disk, c, "bdev");
  711. list_move(&dc->list, &c->cached_devs);
  712. calc_cached_dev_sectors(c);
  713. smp_wmb();
  714. /*
  715. * dc->c must be set before dc->count != 0 - paired with the mb in
  716. * cached_dev_get()
  717. */
  718. atomic_set(&dc->count, 1);
  719. if (BDEV_STATE(&dc->sb) == BDEV_STATE_DIRTY) {
  720. atomic_set(&dc->has_dirty, 1);
  721. atomic_inc(&dc->count);
  722. bch_writeback_queue(dc);
  723. }
  724. bch_cached_dev_run(dc);
  725. pr_info("Caching %s as %s on set %pU",
  726. bdevname(dc->bdev, buf), dc->disk.disk->disk_name,
  727. dc->disk.c->sb.set_uuid);
  728. return 0;
  729. }
  730. void bch_cached_dev_release(struct kobject *kobj)
  731. {
  732. struct cached_dev *dc = container_of(kobj, struct cached_dev,
  733. disk.kobj);
  734. kfree(dc);
  735. module_put(THIS_MODULE);
  736. }
  737. static void cached_dev_free(struct closure *cl)
  738. {
  739. struct cached_dev *dc = container_of(cl, struct cached_dev, disk.cl);
  740. cancel_delayed_work_sync(&dc->writeback_rate_update);
  741. mutex_lock(&bch_register_lock);
  742. bcache_device_free(&dc->disk);
  743. list_del(&dc->list);
  744. mutex_unlock(&bch_register_lock);
  745. if (!IS_ERR_OR_NULL(dc->bdev)) {
  746. blk_sync_queue(bdev_get_queue(dc->bdev));
  747. blkdev_put(dc->bdev, FMODE_READ|FMODE_WRITE|FMODE_EXCL);
  748. }
  749. wake_up(&unregister_wait);
  750. kobject_put(&dc->disk.kobj);
  751. }
  752. static void cached_dev_flush(struct closure *cl)
  753. {
  754. struct cached_dev *dc = container_of(cl, struct cached_dev, disk.cl);
  755. struct bcache_device *d = &dc->disk;
  756. bch_cache_accounting_destroy(&dc->accounting);
  757. kobject_del(&d->kobj);
  758. continue_at(cl, cached_dev_free, system_wq);
  759. }
  760. static int cached_dev_init(struct cached_dev *dc, unsigned block_size)
  761. {
  762. int err;
  763. struct io *io;
  764. closure_init(&dc->disk.cl, NULL);
  765. set_closure_fn(&dc->disk.cl, cached_dev_flush, system_wq);
  766. __module_get(THIS_MODULE);
  767. INIT_LIST_HEAD(&dc->list);
  768. kobject_init(&dc->disk.kobj, &bch_cached_dev_ktype);
  769. bch_cache_accounting_init(&dc->accounting, &dc->disk.cl);
  770. err = bcache_device_init(&dc->disk, block_size);
  771. if (err)
  772. goto err;
  773. spin_lock_init(&dc->io_lock);
  774. closure_init_unlocked(&dc->sb_write);
  775. INIT_WORK(&dc->detach, cached_dev_detach_finish);
  776. dc->sequential_merge = true;
  777. dc->sequential_cutoff = 4 << 20;
  778. INIT_LIST_HEAD(&dc->io_lru);
  779. dc->sb_bio.bi_max_vecs = 1;
  780. dc->sb_bio.bi_io_vec = dc->sb_bio.bi_inline_vecs;
  781. for (io = dc->io; io < dc->io + RECENT_IO; io++) {
  782. list_add(&io->lru, &dc->io_lru);
  783. hlist_add_head(&io->hash, dc->io_hash + RECENT_IO);
  784. }
  785. bch_writeback_init_cached_dev(dc);
  786. return 0;
  787. err:
  788. bcache_device_stop(&dc->disk);
  789. return err;
  790. }
  791. /* Cached device - bcache superblock */
  792. static const char *register_bdev(struct cache_sb *sb, struct page *sb_page,
  793. struct block_device *bdev,
  794. struct cached_dev *dc)
  795. {
  796. char name[BDEVNAME_SIZE];
  797. const char *err = "cannot allocate memory";
  798. struct gendisk *g;
  799. struct cache_set *c;
  800. if (!dc || cached_dev_init(dc, sb->block_size << 9) != 0)
  801. return err;
  802. memcpy(&dc->sb, sb, sizeof(struct cache_sb));
  803. dc->sb_bio.bi_io_vec[0].bv_page = sb_page;
  804. dc->bdev = bdev;
  805. dc->bdev->bd_holder = dc;
  806. g = dc->disk.disk;
  807. set_capacity(g, dc->bdev->bd_part->nr_sects - 16);
  808. bch_cached_dev_request_init(dc);
  809. err = "error creating kobject";
  810. if (kobject_add(&dc->disk.kobj, &part_to_dev(bdev->bd_part)->kobj,
  811. "bcache"))
  812. goto err;
  813. if (bch_cache_accounting_add_kobjs(&dc->accounting, &dc->disk.kobj))
  814. goto err;
  815. list_add(&dc->list, &uncached_devices);
  816. list_for_each_entry(c, &bch_cache_sets, list)
  817. bch_cached_dev_attach(dc, c);
  818. if (BDEV_STATE(&dc->sb) == BDEV_STATE_NONE ||
  819. BDEV_STATE(&dc->sb) == BDEV_STATE_STALE)
  820. bch_cached_dev_run(dc);
  821. return NULL;
  822. err:
  823. kobject_put(&dc->disk.kobj);
  824. pr_notice("error opening %s: %s", bdevname(bdev, name), err);
  825. /*
  826. * Return NULL instead of an error because kobject_put() cleans
  827. * everything up
  828. */
  829. return NULL;
  830. }
  831. /* Flash only volumes */
  832. void bch_flash_dev_release(struct kobject *kobj)
  833. {
  834. struct bcache_device *d = container_of(kobj, struct bcache_device,
  835. kobj);
  836. kfree(d);
  837. }
  838. static void flash_dev_free(struct closure *cl)
  839. {
  840. struct bcache_device *d = container_of(cl, struct bcache_device, cl);
  841. bcache_device_free(d);
  842. kobject_put(&d->kobj);
  843. }
  844. static void flash_dev_flush(struct closure *cl)
  845. {
  846. struct bcache_device *d = container_of(cl, struct bcache_device, cl);
  847. sysfs_remove_link(&d->c->kobj, d->name);
  848. sysfs_remove_link(&d->kobj, "cache");
  849. kobject_del(&d->kobj);
  850. continue_at(cl, flash_dev_free, system_wq);
  851. }
  852. static int flash_dev_run(struct cache_set *c, struct uuid_entry *u)
  853. {
  854. struct bcache_device *d = kzalloc(sizeof(struct bcache_device),
  855. GFP_KERNEL);
  856. if (!d)
  857. return -ENOMEM;
  858. closure_init(&d->cl, NULL);
  859. set_closure_fn(&d->cl, flash_dev_flush, system_wq);
  860. kobject_init(&d->kobj, &bch_flash_dev_ktype);
  861. if (bcache_device_init(d, block_bytes(c)))
  862. goto err;
  863. bcache_device_attach(d, c, u - c->uuids);
  864. set_capacity(d->disk, u->sectors);
  865. bch_flash_dev_request_init(d);
  866. add_disk(d->disk);
  867. if (kobject_add(&d->kobj, &disk_to_dev(d->disk)->kobj, "bcache"))
  868. goto err;
  869. bcache_device_link(d, c, "volume");
  870. return 0;
  871. err:
  872. kobject_put(&d->kobj);
  873. return -ENOMEM;
  874. }
  875. static int flash_devs_run(struct cache_set *c)
  876. {
  877. int ret = 0;
  878. struct uuid_entry *u;
  879. for (u = c->uuids;
  880. u < c->uuids + c->nr_uuids && !ret;
  881. u++)
  882. if (UUID_FLASH_ONLY(u))
  883. ret = flash_dev_run(c, u);
  884. return ret;
  885. }
  886. int bch_flash_dev_create(struct cache_set *c, uint64_t size)
  887. {
  888. struct uuid_entry *u;
  889. if (test_bit(CACHE_SET_STOPPING, &c->flags))
  890. return -EINTR;
  891. u = uuid_find_empty(c);
  892. if (!u) {
  893. pr_err("Can't create volume, no room for UUID");
  894. return -EINVAL;
  895. }
  896. get_random_bytes(u->uuid, 16);
  897. memset(u->label, 0, 32);
  898. u->first_reg = u->last_reg = cpu_to_le32(get_seconds());
  899. SET_UUID_FLASH_ONLY(u, 1);
  900. u->sectors = size >> 9;
  901. bch_uuid_write(c);
  902. return flash_dev_run(c, u);
  903. }
  904. /* Cache set */
  905. __printf(2, 3)
  906. bool bch_cache_set_error(struct cache_set *c, const char *fmt, ...)
  907. {
  908. va_list args;
  909. if (test_bit(CACHE_SET_STOPPING, &c->flags))
  910. return false;
  911. /* XXX: we can be called from atomic context
  912. acquire_console_sem();
  913. */
  914. printk(KERN_ERR "bcache: error on %pU: ", c->sb.set_uuid);
  915. va_start(args, fmt);
  916. vprintk(fmt, args);
  917. va_end(args);
  918. printk(", disabling caching\n");
  919. bch_cache_set_unregister(c);
  920. return true;
  921. }
  922. void bch_cache_set_release(struct kobject *kobj)
  923. {
  924. struct cache_set *c = container_of(kobj, struct cache_set, kobj);
  925. kfree(c);
  926. module_put(THIS_MODULE);
  927. }
  928. static void cache_set_free(struct closure *cl)
  929. {
  930. struct cache_set *c = container_of(cl, struct cache_set, cl);
  931. struct cache *ca;
  932. unsigned i;
  933. if (!IS_ERR_OR_NULL(c->debug))
  934. debugfs_remove(c->debug);
  935. bch_open_buckets_free(c);
  936. bch_btree_cache_free(c);
  937. bch_journal_free(c);
  938. for_each_cache(ca, c, i)
  939. if (ca)
  940. kobject_put(&ca->kobj);
  941. free_pages((unsigned long) c->uuids, ilog2(bucket_pages(c)));
  942. free_pages((unsigned long) c->sort, ilog2(bucket_pages(c)));
  943. kfree(c->fill_iter);
  944. if (c->bio_split)
  945. bioset_free(c->bio_split);
  946. if (c->bio_meta)
  947. mempool_destroy(c->bio_meta);
  948. if (c->search)
  949. mempool_destroy(c->search);
  950. kfree(c->devices);
  951. mutex_lock(&bch_register_lock);
  952. list_del(&c->list);
  953. mutex_unlock(&bch_register_lock);
  954. pr_info("Cache set %pU unregistered", c->sb.set_uuid);
  955. wake_up(&unregister_wait);
  956. closure_debug_destroy(&c->cl);
  957. kobject_put(&c->kobj);
  958. }
  959. static void cache_set_flush(struct closure *cl)
  960. {
  961. struct cache_set *c = container_of(cl, struct cache_set, caching);
  962. struct btree *b;
  963. /* Shut down allocator threads */
  964. set_bit(CACHE_SET_STOPPING_2, &c->flags);
  965. wake_up(&c->alloc_wait);
  966. bch_cache_accounting_destroy(&c->accounting);
  967. kobject_put(&c->internal);
  968. kobject_del(&c->kobj);
  969. if (!IS_ERR_OR_NULL(c->root))
  970. list_add(&c->root->list, &c->btree_cache);
  971. /* Should skip this if we're unregistering because of an error */
  972. list_for_each_entry(b, &c->btree_cache, list)
  973. if (btree_node_dirty(b))
  974. bch_btree_write(b, true, NULL);
  975. closure_return(cl);
  976. }
  977. static void __cache_set_unregister(struct closure *cl)
  978. {
  979. struct cache_set *c = container_of(cl, struct cache_set, caching);
  980. struct cached_dev *dc, *t;
  981. size_t i;
  982. mutex_lock(&bch_register_lock);
  983. if (test_bit(CACHE_SET_UNREGISTERING, &c->flags))
  984. list_for_each_entry_safe(dc, t, &c->cached_devs, list)
  985. bch_cached_dev_detach(dc);
  986. for (i = 0; i < c->nr_uuids; i++)
  987. if (c->devices[i] && UUID_FLASH_ONLY(&c->uuids[i]))
  988. bcache_device_stop(c->devices[i]);
  989. mutex_unlock(&bch_register_lock);
  990. continue_at(cl, cache_set_flush, system_wq);
  991. }
  992. void bch_cache_set_stop(struct cache_set *c)
  993. {
  994. if (!test_and_set_bit(CACHE_SET_STOPPING, &c->flags))
  995. closure_queue(&c->caching);
  996. }
  997. void bch_cache_set_unregister(struct cache_set *c)
  998. {
  999. set_bit(CACHE_SET_UNREGISTERING, &c->flags);
  1000. bch_cache_set_stop(c);
  1001. }
  1002. #define alloc_bucket_pages(gfp, c) \
  1003. ((void *) __get_free_pages(__GFP_ZERO|gfp, ilog2(bucket_pages(c))))
  1004. struct cache_set *bch_cache_set_alloc(struct cache_sb *sb)
  1005. {
  1006. int iter_size;
  1007. struct cache_set *c = kzalloc(sizeof(struct cache_set), GFP_KERNEL);
  1008. if (!c)
  1009. return NULL;
  1010. __module_get(THIS_MODULE);
  1011. closure_init(&c->cl, NULL);
  1012. set_closure_fn(&c->cl, cache_set_free, system_wq);
  1013. closure_init(&c->caching, &c->cl);
  1014. set_closure_fn(&c->caching, __cache_set_unregister, system_wq);
  1015. /* Maybe create continue_at_noreturn() and use it here? */
  1016. closure_set_stopped(&c->cl);
  1017. closure_put(&c->cl);
  1018. kobject_init(&c->kobj, &bch_cache_set_ktype);
  1019. kobject_init(&c->internal, &bch_cache_set_internal_ktype);
  1020. bch_cache_accounting_init(&c->accounting, &c->cl);
  1021. memcpy(c->sb.set_uuid, sb->set_uuid, 16);
  1022. c->sb.block_size = sb->block_size;
  1023. c->sb.bucket_size = sb->bucket_size;
  1024. c->sb.nr_in_set = sb->nr_in_set;
  1025. c->sb.last_mount = sb->last_mount;
  1026. c->bucket_bits = ilog2(sb->bucket_size);
  1027. c->block_bits = ilog2(sb->block_size);
  1028. c->nr_uuids = bucket_bytes(c) / sizeof(struct uuid_entry);
  1029. c->btree_pages = c->sb.bucket_size / PAGE_SECTORS;
  1030. if (c->btree_pages > BTREE_MAX_PAGES)
  1031. c->btree_pages = max_t(int, c->btree_pages / 4,
  1032. BTREE_MAX_PAGES);
  1033. init_waitqueue_head(&c->alloc_wait);
  1034. mutex_init(&c->bucket_lock);
  1035. mutex_init(&c->fill_lock);
  1036. mutex_init(&c->sort_lock);
  1037. spin_lock_init(&c->sort_time_lock);
  1038. closure_init_unlocked(&c->sb_write);
  1039. closure_init_unlocked(&c->uuid_write);
  1040. spin_lock_init(&c->btree_read_time_lock);
  1041. bch_moving_init_cache_set(c);
  1042. INIT_LIST_HEAD(&c->list);
  1043. INIT_LIST_HEAD(&c->cached_devs);
  1044. INIT_LIST_HEAD(&c->btree_cache);
  1045. INIT_LIST_HEAD(&c->btree_cache_freeable);
  1046. INIT_LIST_HEAD(&c->btree_cache_freed);
  1047. INIT_LIST_HEAD(&c->data_buckets);
  1048. c->search = mempool_create_slab_pool(32, bch_search_cache);
  1049. if (!c->search)
  1050. goto err;
  1051. iter_size = (sb->bucket_size / sb->block_size + 1) *
  1052. sizeof(struct btree_iter_set);
  1053. if (!(c->devices = kzalloc(c->nr_uuids * sizeof(void *), GFP_KERNEL)) ||
  1054. !(c->bio_meta = mempool_create_kmalloc_pool(2,
  1055. sizeof(struct bbio) + sizeof(struct bio_vec) *
  1056. bucket_pages(c))) ||
  1057. !(c->bio_split = bioset_create(4, offsetof(struct bbio, bio))) ||
  1058. !(c->fill_iter = kmalloc(iter_size, GFP_KERNEL)) ||
  1059. !(c->sort = alloc_bucket_pages(GFP_KERNEL, c)) ||
  1060. !(c->uuids = alloc_bucket_pages(GFP_KERNEL, c)) ||
  1061. bch_journal_alloc(c) ||
  1062. bch_btree_cache_alloc(c) ||
  1063. bch_open_buckets_alloc(c))
  1064. goto err;
  1065. c->fill_iter->size = sb->bucket_size / sb->block_size;
  1066. c->congested_read_threshold_us = 2000;
  1067. c->congested_write_threshold_us = 20000;
  1068. c->error_limit = 8 << IO_ERROR_SHIFT;
  1069. return c;
  1070. err:
  1071. bch_cache_set_unregister(c);
  1072. return NULL;
  1073. }
  1074. static void run_cache_set(struct cache_set *c)
  1075. {
  1076. const char *err = "cannot allocate memory";
  1077. struct cached_dev *dc, *t;
  1078. struct cache *ca;
  1079. unsigned i;
  1080. struct btree_op op;
  1081. bch_btree_op_init_stack(&op);
  1082. op.lock = SHRT_MAX;
  1083. for_each_cache(ca, c, i)
  1084. c->nbuckets += ca->sb.nbuckets;
  1085. if (CACHE_SYNC(&c->sb)) {
  1086. LIST_HEAD(journal);
  1087. struct bkey *k;
  1088. struct jset *j;
  1089. err = "cannot allocate memory for journal";
  1090. if (bch_journal_read(c, &journal, &op))
  1091. goto err;
  1092. pr_debug("btree_journal_read() done");
  1093. err = "no journal entries found";
  1094. if (list_empty(&journal))
  1095. goto err;
  1096. j = &list_entry(journal.prev, struct journal_replay, list)->j;
  1097. err = "IO error reading priorities";
  1098. for_each_cache(ca, c, i)
  1099. prio_read(ca, j->prio_bucket[ca->sb.nr_this_dev]);
  1100. /*
  1101. * If prio_read() fails it'll call cache_set_error and we'll
  1102. * tear everything down right away, but if we perhaps checked
  1103. * sooner we could avoid journal replay.
  1104. */
  1105. k = &j->btree_root;
  1106. err = "bad btree root";
  1107. if (__bch_ptr_invalid(c, j->btree_level + 1, k))
  1108. goto err;
  1109. err = "error reading btree root";
  1110. c->root = bch_btree_node_get(c, k, j->btree_level, &op);
  1111. if (IS_ERR_OR_NULL(c->root))
  1112. goto err;
  1113. list_del_init(&c->root->list);
  1114. rw_unlock(true, c->root);
  1115. err = uuid_read(c, j, &op.cl);
  1116. if (err)
  1117. goto err;
  1118. err = "error in recovery";
  1119. if (bch_btree_check(c, &op))
  1120. goto err;
  1121. bch_journal_mark(c, &journal);
  1122. bch_btree_gc_finish(c);
  1123. pr_debug("btree_check() done");
  1124. /*
  1125. * bcache_journal_next() can't happen sooner, or
  1126. * btree_gc_finish() will give spurious errors about last_gc >
  1127. * gc_gen - this is a hack but oh well.
  1128. */
  1129. bch_journal_next(&c->journal);
  1130. for_each_cache(ca, c, i)
  1131. closure_call(&ca->alloc, bch_allocator_thread,
  1132. system_wq, &c->cl);
  1133. /*
  1134. * First place it's safe to allocate: btree_check() and
  1135. * btree_gc_finish() have to run before we have buckets to
  1136. * allocate, and bch_bucket_alloc_set() might cause a journal
  1137. * entry to be written so bcache_journal_next() has to be called
  1138. * first.
  1139. *
  1140. * If the uuids were in the old format we have to rewrite them
  1141. * before the next journal entry is written:
  1142. */
  1143. if (j->version < BCACHE_JSET_VERSION_UUID)
  1144. __uuid_write(c);
  1145. bch_journal_replay(c, &journal, &op);
  1146. } else {
  1147. pr_notice("invalidating existing data");
  1148. /* Don't want invalidate_buckets() to queue a gc yet */
  1149. closure_lock(&c->gc, NULL);
  1150. for_each_cache(ca, c, i) {
  1151. unsigned j;
  1152. ca->sb.keys = clamp_t(int, ca->sb.nbuckets >> 7,
  1153. 2, SB_JOURNAL_BUCKETS);
  1154. for (j = 0; j < ca->sb.keys; j++)
  1155. ca->sb.d[j] = ca->sb.first_bucket + j;
  1156. }
  1157. bch_btree_gc_finish(c);
  1158. for_each_cache(ca, c, i)
  1159. closure_call(&ca->alloc, bch_allocator_thread,
  1160. ca->alloc_workqueue, &c->cl);
  1161. mutex_lock(&c->bucket_lock);
  1162. for_each_cache(ca, c, i)
  1163. bch_prio_write(ca);
  1164. mutex_unlock(&c->bucket_lock);
  1165. wake_up(&c->alloc_wait);
  1166. err = "cannot allocate new UUID bucket";
  1167. if (__uuid_write(c))
  1168. goto err_unlock_gc;
  1169. err = "cannot allocate new btree root";
  1170. c->root = bch_btree_node_alloc(c, 0, &op.cl);
  1171. if (IS_ERR_OR_NULL(c->root))
  1172. goto err_unlock_gc;
  1173. bkey_copy_key(&c->root->key, &MAX_KEY);
  1174. bch_btree_write(c->root, true, &op);
  1175. bch_btree_set_root(c->root);
  1176. rw_unlock(true, c->root);
  1177. /*
  1178. * We don't want to write the first journal entry until
  1179. * everything is set up - fortunately journal entries won't be
  1180. * written until the SET_CACHE_SYNC() here:
  1181. */
  1182. SET_CACHE_SYNC(&c->sb, true);
  1183. bch_journal_next(&c->journal);
  1184. bch_journal_meta(c, &op.cl);
  1185. /* Unlock */
  1186. closure_set_stopped(&c->gc.cl);
  1187. closure_put(&c->gc.cl);
  1188. }
  1189. closure_sync(&op.cl);
  1190. c->sb.last_mount = get_seconds();
  1191. bcache_write_super(c);
  1192. list_for_each_entry_safe(dc, t, &uncached_devices, list)
  1193. bch_cached_dev_attach(dc, c);
  1194. flash_devs_run(c);
  1195. return;
  1196. err_unlock_gc:
  1197. closure_set_stopped(&c->gc.cl);
  1198. closure_put(&c->gc.cl);
  1199. err:
  1200. closure_sync(&op.cl);
  1201. /* XXX: test this, it's broken */
  1202. bch_cache_set_error(c, err);
  1203. }
  1204. static bool can_attach_cache(struct cache *ca, struct cache_set *c)
  1205. {
  1206. return ca->sb.block_size == c->sb.block_size &&
  1207. ca->sb.bucket_size == c->sb.block_size &&
  1208. ca->sb.nr_in_set == c->sb.nr_in_set;
  1209. }
  1210. static const char *register_cache_set(struct cache *ca)
  1211. {
  1212. char buf[12];
  1213. const char *err = "cannot allocate memory";
  1214. struct cache_set *c;
  1215. list_for_each_entry(c, &bch_cache_sets, list)
  1216. if (!memcmp(c->sb.set_uuid, ca->sb.set_uuid, 16)) {
  1217. if (c->cache[ca->sb.nr_this_dev])
  1218. return "duplicate cache set member";
  1219. if (!can_attach_cache(ca, c))
  1220. return "cache sb does not match set";
  1221. if (!CACHE_SYNC(&ca->sb))
  1222. SET_CACHE_SYNC(&c->sb, false);
  1223. goto found;
  1224. }
  1225. c = bch_cache_set_alloc(&ca->sb);
  1226. if (!c)
  1227. return err;
  1228. err = "error creating kobject";
  1229. if (kobject_add(&c->kobj, bcache_kobj, "%pU", c->sb.set_uuid) ||
  1230. kobject_add(&c->internal, &c->kobj, "internal"))
  1231. goto err;
  1232. if (bch_cache_accounting_add_kobjs(&c->accounting, &c->kobj))
  1233. goto err;
  1234. bch_debug_init_cache_set(c);
  1235. list_add(&c->list, &bch_cache_sets);
  1236. found:
  1237. sprintf(buf, "cache%i", ca->sb.nr_this_dev);
  1238. if (sysfs_create_link(&ca->kobj, &c->kobj, "set") ||
  1239. sysfs_create_link(&c->kobj, &ca->kobj, buf))
  1240. goto err;
  1241. if (ca->sb.seq > c->sb.seq) {
  1242. c->sb.version = ca->sb.version;
  1243. memcpy(c->sb.set_uuid, ca->sb.set_uuid, 16);
  1244. c->sb.flags = ca->sb.flags;
  1245. c->sb.seq = ca->sb.seq;
  1246. pr_debug("set version = %llu", c->sb.version);
  1247. }
  1248. ca->set = c;
  1249. ca->set->cache[ca->sb.nr_this_dev] = ca;
  1250. c->cache_by_alloc[c->caches_loaded++] = ca;
  1251. if (c->caches_loaded == c->sb.nr_in_set)
  1252. run_cache_set(c);
  1253. return NULL;
  1254. err:
  1255. bch_cache_set_unregister(c);
  1256. return err;
  1257. }
  1258. /* Cache device */
  1259. void bch_cache_release(struct kobject *kobj)
  1260. {
  1261. struct cache *ca = container_of(kobj, struct cache, kobj);
  1262. if (ca->set)
  1263. ca->set->cache[ca->sb.nr_this_dev] = NULL;
  1264. bch_cache_allocator_exit(ca);
  1265. bio_split_pool_free(&ca->bio_split_hook);
  1266. if (ca->alloc_workqueue)
  1267. destroy_workqueue(ca->alloc_workqueue);
  1268. free_pages((unsigned long) ca->disk_buckets, ilog2(bucket_pages(ca)));
  1269. kfree(ca->prio_buckets);
  1270. vfree(ca->buckets);
  1271. free_heap(&ca->heap);
  1272. free_fifo(&ca->unused);
  1273. free_fifo(&ca->free_inc);
  1274. free_fifo(&ca->free);
  1275. if (ca->sb_bio.bi_inline_vecs[0].bv_page)
  1276. put_page(ca->sb_bio.bi_io_vec[0].bv_page);
  1277. if (!IS_ERR_OR_NULL(ca->bdev)) {
  1278. blk_sync_queue(bdev_get_queue(ca->bdev));
  1279. blkdev_put(ca->bdev, FMODE_READ|FMODE_WRITE|FMODE_EXCL);
  1280. }
  1281. kfree(ca);
  1282. module_put(THIS_MODULE);
  1283. }
  1284. static int cache_alloc(struct cache_sb *sb, struct cache *ca)
  1285. {
  1286. size_t free;
  1287. struct bucket *b;
  1288. if (!ca)
  1289. return -ENOMEM;
  1290. __module_get(THIS_MODULE);
  1291. kobject_init(&ca->kobj, &bch_cache_ktype);
  1292. memcpy(&ca->sb, sb, sizeof(struct cache_sb));
  1293. INIT_LIST_HEAD(&ca->discards);
  1294. bio_init(&ca->sb_bio);
  1295. ca->sb_bio.bi_max_vecs = 1;
  1296. ca->sb_bio.bi_io_vec = ca->sb_bio.bi_inline_vecs;
  1297. bio_init(&ca->journal.bio);
  1298. ca->journal.bio.bi_max_vecs = 8;
  1299. ca->journal.bio.bi_io_vec = ca->journal.bio.bi_inline_vecs;
  1300. free = roundup_pow_of_two(ca->sb.nbuckets) >> 9;
  1301. free = max_t(size_t, free, (prio_buckets(ca) + 8) * 2);
  1302. if (!init_fifo(&ca->free, free, GFP_KERNEL) ||
  1303. !init_fifo(&ca->free_inc, free << 2, GFP_KERNEL) ||
  1304. !init_fifo(&ca->unused, free << 2, GFP_KERNEL) ||
  1305. !init_heap(&ca->heap, free << 3, GFP_KERNEL) ||
  1306. !(ca->buckets = vmalloc(sizeof(struct bucket) *
  1307. ca->sb.nbuckets)) ||
  1308. !(ca->prio_buckets = kzalloc(sizeof(uint64_t) * prio_buckets(ca) *
  1309. 2, GFP_KERNEL)) ||
  1310. !(ca->disk_buckets = alloc_bucket_pages(GFP_KERNEL, ca)) ||
  1311. !(ca->alloc_workqueue = alloc_workqueue("bch_allocator", 0, 1)) ||
  1312. bio_split_pool_init(&ca->bio_split_hook))
  1313. goto err;
  1314. ca->prio_last_buckets = ca->prio_buckets + prio_buckets(ca);
  1315. memset(ca->buckets, 0, ca->sb.nbuckets * sizeof(struct bucket));
  1316. for_each_bucket(b, ca)
  1317. atomic_set(&b->pin, 0);
  1318. if (bch_cache_allocator_init(ca))
  1319. goto err;
  1320. return 0;
  1321. err:
  1322. kobject_put(&ca->kobj);
  1323. return -ENOMEM;
  1324. }
  1325. static const char *register_cache(struct cache_sb *sb, struct page *sb_page,
  1326. struct block_device *bdev, struct cache *ca)
  1327. {
  1328. char name[BDEVNAME_SIZE];
  1329. const char *err = "cannot allocate memory";
  1330. if (cache_alloc(sb, ca) != 0)
  1331. return err;
  1332. ca->sb_bio.bi_io_vec[0].bv_page = sb_page;
  1333. ca->bdev = bdev;
  1334. ca->bdev->bd_holder = ca;
  1335. if (blk_queue_discard(bdev_get_queue(ca->bdev)))
  1336. ca->discard = CACHE_DISCARD(&ca->sb);
  1337. err = "error creating kobject";
  1338. if (kobject_add(&ca->kobj, &part_to_dev(bdev->bd_part)->kobj, "bcache"))
  1339. goto err;
  1340. err = register_cache_set(ca);
  1341. if (err)
  1342. goto err;
  1343. pr_info("registered cache device %s", bdevname(bdev, name));
  1344. return NULL;
  1345. err:
  1346. kobject_put(&ca->kobj);
  1347. pr_info("error opening %s: %s", bdevname(bdev, name), err);
  1348. /* Return NULL instead of an error because kobject_put() cleans
  1349. * everything up
  1350. */
  1351. return NULL;
  1352. }
  1353. /* Global interfaces/init */
  1354. static ssize_t register_bcache(struct kobject *, struct kobj_attribute *,
  1355. const char *, size_t);
  1356. kobj_attribute_write(register, register_bcache);
  1357. kobj_attribute_write(register_quiet, register_bcache);
  1358. static ssize_t register_bcache(struct kobject *k, struct kobj_attribute *attr,
  1359. const char *buffer, size_t size)
  1360. {
  1361. ssize_t ret = size;
  1362. const char *err = "cannot allocate memory";
  1363. char *path = NULL;
  1364. struct cache_sb *sb = NULL;
  1365. struct block_device *bdev = NULL;
  1366. struct page *sb_page = NULL;
  1367. if (!try_module_get(THIS_MODULE))
  1368. return -EBUSY;
  1369. mutex_lock(&bch_register_lock);
  1370. if (!(path = kstrndup(buffer, size, GFP_KERNEL)) ||
  1371. !(sb = kmalloc(sizeof(struct cache_sb), GFP_KERNEL)))
  1372. goto err;
  1373. err = "failed to open device";
  1374. bdev = blkdev_get_by_path(strim(path),
  1375. FMODE_READ|FMODE_WRITE|FMODE_EXCL,
  1376. sb);
  1377. if (bdev == ERR_PTR(-EBUSY))
  1378. err = "device busy";
  1379. if (IS_ERR(bdev) ||
  1380. set_blocksize(bdev, 4096))
  1381. goto err;
  1382. err = read_super(sb, bdev, &sb_page);
  1383. if (err)
  1384. goto err_close;
  1385. if (sb->version == CACHE_BACKING_DEV) {
  1386. struct cached_dev *dc = kzalloc(sizeof(*dc), GFP_KERNEL);
  1387. err = register_bdev(sb, sb_page, bdev, dc);
  1388. } else {
  1389. struct cache *ca = kzalloc(sizeof(*ca), GFP_KERNEL);
  1390. err = register_cache(sb, sb_page, bdev, ca);
  1391. }
  1392. if (err) {
  1393. /* register_(bdev|cache) will only return an error if they
  1394. * didn't get far enough to create the kobject - if they did,
  1395. * the kobject destructor will do this cleanup.
  1396. */
  1397. put_page(sb_page);
  1398. err_close:
  1399. blkdev_put(bdev, FMODE_READ|FMODE_WRITE|FMODE_EXCL);
  1400. err:
  1401. if (attr != &ksysfs_register_quiet)
  1402. pr_info("error opening %s: %s", path, err);
  1403. ret = -EINVAL;
  1404. }
  1405. kfree(sb);
  1406. kfree(path);
  1407. mutex_unlock(&bch_register_lock);
  1408. module_put(THIS_MODULE);
  1409. return ret;
  1410. }
  1411. static int bcache_reboot(struct notifier_block *n, unsigned long code, void *x)
  1412. {
  1413. if (code == SYS_DOWN ||
  1414. code == SYS_HALT ||
  1415. code == SYS_POWER_OFF) {
  1416. DEFINE_WAIT(wait);
  1417. unsigned long start = jiffies;
  1418. bool stopped = false;
  1419. struct cache_set *c, *tc;
  1420. struct cached_dev *dc, *tdc;
  1421. mutex_lock(&bch_register_lock);
  1422. if (list_empty(&bch_cache_sets) &&
  1423. list_empty(&uncached_devices))
  1424. goto out;
  1425. pr_info("Stopping all devices:");
  1426. list_for_each_entry_safe(c, tc, &bch_cache_sets, list)
  1427. bch_cache_set_stop(c);
  1428. list_for_each_entry_safe(dc, tdc, &uncached_devices, list)
  1429. bcache_device_stop(&dc->disk);
  1430. /* What's a condition variable? */
  1431. while (1) {
  1432. long timeout = start + 2 * HZ - jiffies;
  1433. stopped = list_empty(&bch_cache_sets) &&
  1434. list_empty(&uncached_devices);
  1435. if (timeout < 0 || stopped)
  1436. break;
  1437. prepare_to_wait(&unregister_wait, &wait,
  1438. TASK_UNINTERRUPTIBLE);
  1439. mutex_unlock(&bch_register_lock);
  1440. schedule_timeout(timeout);
  1441. mutex_lock(&bch_register_lock);
  1442. }
  1443. finish_wait(&unregister_wait, &wait);
  1444. if (stopped)
  1445. pr_info("All devices stopped");
  1446. else
  1447. pr_notice("Timeout waiting for devices to be closed");
  1448. out:
  1449. mutex_unlock(&bch_register_lock);
  1450. }
  1451. return NOTIFY_DONE;
  1452. }
  1453. static struct notifier_block reboot = {
  1454. .notifier_call = bcache_reboot,
  1455. .priority = INT_MAX, /* before any real devices */
  1456. };
  1457. static void bcache_exit(void)
  1458. {
  1459. bch_debug_exit();
  1460. bch_writeback_exit();
  1461. bch_request_exit();
  1462. bch_btree_exit();
  1463. if (bcache_kobj)
  1464. kobject_put(bcache_kobj);
  1465. if (bcache_wq)
  1466. destroy_workqueue(bcache_wq);
  1467. unregister_blkdev(bcache_major, "bcache");
  1468. unregister_reboot_notifier(&reboot);
  1469. }
  1470. static int __init bcache_init(void)
  1471. {
  1472. static const struct attribute *files[] = {
  1473. &ksysfs_register.attr,
  1474. &ksysfs_register_quiet.attr,
  1475. NULL
  1476. };
  1477. mutex_init(&bch_register_lock);
  1478. init_waitqueue_head(&unregister_wait);
  1479. register_reboot_notifier(&reboot);
  1480. closure_debug_init();
  1481. bcache_major = register_blkdev(0, "bcache");
  1482. if (bcache_major < 0)
  1483. return bcache_major;
  1484. if (!(bcache_wq = create_workqueue("bcache")) ||
  1485. !(bcache_kobj = kobject_create_and_add("bcache", fs_kobj)) ||
  1486. sysfs_create_files(bcache_kobj, files) ||
  1487. bch_btree_init() ||
  1488. bch_request_init() ||
  1489. bch_writeback_init() ||
  1490. bch_debug_init(bcache_kobj))
  1491. goto err;
  1492. return 0;
  1493. err:
  1494. bcache_exit();
  1495. return -ENOMEM;
  1496. }
  1497. module_exit(bcache_exit);
  1498. module_init(bcache_init);