writeback.c 11 KB

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  1. /*
  2. * background writeback - scan btree for dirty data and write it to the backing
  3. * device
  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 "writeback.h"
  12. #include <linux/delay.h>
  13. #include <linux/freezer.h>
  14. #include <linux/kthread.h>
  15. #include <trace/events/bcache.h>
  16. /* Rate limiting */
  17. static void __update_writeback_rate(struct cached_dev *dc)
  18. {
  19. struct cache_set *c = dc->disk.c;
  20. uint64_t cache_sectors = c->nbuckets * c->sb.bucket_size;
  21. uint64_t cache_dirty_target =
  22. div_u64(cache_sectors * dc->writeback_percent, 100);
  23. int64_t target = div64_u64(cache_dirty_target * bdev_sectors(dc->bdev),
  24. c->cached_dev_sectors);
  25. /* PD controller */
  26. int change = 0;
  27. int64_t error;
  28. int64_t dirty = bcache_dev_sectors_dirty(&dc->disk);
  29. int64_t derivative = dirty - dc->disk.sectors_dirty_last;
  30. dc->disk.sectors_dirty_last = dirty;
  31. derivative *= dc->writeback_rate_d_term;
  32. derivative = clamp(derivative, -dirty, dirty);
  33. derivative = ewma_add(dc->disk.sectors_dirty_derivative, derivative,
  34. dc->writeback_rate_d_smooth, 0);
  35. /* Avoid divide by zero */
  36. if (!target)
  37. goto out;
  38. error = div64_s64((dirty + derivative - target) << 8, target);
  39. change = div_s64((dc->writeback_rate.rate * error) >> 8,
  40. dc->writeback_rate_p_term_inverse);
  41. /* Don't increase writeback rate if the device isn't keeping up */
  42. if (change > 0 &&
  43. time_after64(local_clock(),
  44. dc->writeback_rate.next + 10 * NSEC_PER_MSEC))
  45. change = 0;
  46. dc->writeback_rate.rate =
  47. clamp_t(int64_t, dc->writeback_rate.rate + change,
  48. 1, NSEC_PER_MSEC);
  49. out:
  50. dc->writeback_rate_derivative = derivative;
  51. dc->writeback_rate_change = change;
  52. dc->writeback_rate_target = target;
  53. }
  54. static void update_writeback_rate(struct work_struct *work)
  55. {
  56. struct cached_dev *dc = container_of(to_delayed_work(work),
  57. struct cached_dev,
  58. writeback_rate_update);
  59. down_read(&dc->writeback_lock);
  60. if (atomic_read(&dc->has_dirty) &&
  61. dc->writeback_percent)
  62. __update_writeback_rate(dc);
  63. up_read(&dc->writeback_lock);
  64. schedule_delayed_work(&dc->writeback_rate_update,
  65. dc->writeback_rate_update_seconds * HZ);
  66. }
  67. static unsigned writeback_delay(struct cached_dev *dc, unsigned sectors)
  68. {
  69. uint64_t ret;
  70. if (atomic_read(&dc->disk.detaching) ||
  71. !dc->writeback_percent)
  72. return 0;
  73. ret = bch_next_delay(&dc->writeback_rate, sectors * 10000000ULL);
  74. return min_t(uint64_t, ret, HZ);
  75. }
  76. struct dirty_io {
  77. struct closure cl;
  78. struct cached_dev *dc;
  79. struct bio bio;
  80. };
  81. static void dirty_init(struct keybuf_key *w)
  82. {
  83. struct dirty_io *io = w->private;
  84. struct bio *bio = &io->bio;
  85. bio_init(bio);
  86. if (!io->dc->writeback_percent)
  87. bio_set_prio(bio, IOPRIO_PRIO_VALUE(IOPRIO_CLASS_IDLE, 0));
  88. bio->bi_size = KEY_SIZE(&w->key) << 9;
  89. bio->bi_max_vecs = DIV_ROUND_UP(KEY_SIZE(&w->key), PAGE_SECTORS);
  90. bio->bi_private = w;
  91. bio->bi_io_vec = bio->bi_inline_vecs;
  92. bch_bio_map(bio, NULL);
  93. }
  94. static void dirty_io_destructor(struct closure *cl)
  95. {
  96. struct dirty_io *io = container_of(cl, struct dirty_io, cl);
  97. kfree(io);
  98. }
  99. static void write_dirty_finish(struct closure *cl)
  100. {
  101. struct dirty_io *io = container_of(cl, struct dirty_io, cl);
  102. struct keybuf_key *w = io->bio.bi_private;
  103. struct cached_dev *dc = io->dc;
  104. struct bio_vec *bv;
  105. int i;
  106. bio_for_each_segment_all(bv, &io->bio, i)
  107. __free_page(bv->bv_page);
  108. /* This is kind of a dumb way of signalling errors. */
  109. if (KEY_DIRTY(&w->key)) {
  110. unsigned i;
  111. struct btree_op op;
  112. struct keylist keys;
  113. bch_btree_op_init(&op, -1);
  114. bch_keylist_init(&keys);
  115. bkey_copy(keys.top, &w->key);
  116. SET_KEY_DIRTY(keys.top, false);
  117. bch_keylist_push(&keys);
  118. for (i = 0; i < KEY_PTRS(&w->key); i++)
  119. atomic_inc(&PTR_BUCKET(dc->disk.c, &w->key, i)->pin);
  120. bch_btree_insert(&op, dc->disk.c, &keys, NULL, &w->key);
  121. if (op.insert_collision)
  122. trace_bcache_writeback_collision(&w->key);
  123. atomic_long_inc(op.insert_collision
  124. ? &dc->disk.c->writeback_keys_failed
  125. : &dc->disk.c->writeback_keys_done);
  126. }
  127. bch_keybuf_del(&dc->writeback_keys, w);
  128. up(&dc->in_flight);
  129. closure_return_with_destructor(cl, dirty_io_destructor);
  130. }
  131. static void dirty_endio(struct bio *bio, int error)
  132. {
  133. struct keybuf_key *w = bio->bi_private;
  134. struct dirty_io *io = w->private;
  135. if (error)
  136. SET_KEY_DIRTY(&w->key, false);
  137. closure_put(&io->cl);
  138. }
  139. static void write_dirty(struct closure *cl)
  140. {
  141. struct dirty_io *io = container_of(cl, struct dirty_io, cl);
  142. struct keybuf_key *w = io->bio.bi_private;
  143. dirty_init(w);
  144. io->bio.bi_rw = WRITE;
  145. io->bio.bi_sector = KEY_START(&w->key);
  146. io->bio.bi_bdev = io->dc->bdev;
  147. io->bio.bi_end_io = dirty_endio;
  148. closure_bio_submit(&io->bio, cl, &io->dc->disk);
  149. continue_at(cl, write_dirty_finish, system_wq);
  150. }
  151. static void read_dirty_endio(struct bio *bio, int error)
  152. {
  153. struct keybuf_key *w = bio->bi_private;
  154. struct dirty_io *io = w->private;
  155. bch_count_io_errors(PTR_CACHE(io->dc->disk.c, &w->key, 0),
  156. error, "reading dirty data from cache");
  157. dirty_endio(bio, error);
  158. }
  159. static void read_dirty_submit(struct closure *cl)
  160. {
  161. struct dirty_io *io = container_of(cl, struct dirty_io, cl);
  162. closure_bio_submit(&io->bio, cl, &io->dc->disk);
  163. continue_at(cl, write_dirty, system_wq);
  164. }
  165. static void read_dirty(struct cached_dev *dc)
  166. {
  167. unsigned delay = 0;
  168. struct keybuf_key *w;
  169. struct dirty_io *io;
  170. struct closure cl;
  171. closure_init_stack(&cl);
  172. /*
  173. * XXX: if we error, background writeback just spins. Should use some
  174. * mempools.
  175. */
  176. while (!kthread_should_stop()) {
  177. try_to_freeze();
  178. w = bch_keybuf_next(&dc->writeback_keys);
  179. if (!w)
  180. break;
  181. BUG_ON(ptr_stale(dc->disk.c, &w->key, 0));
  182. if (KEY_START(&w->key) != dc->last_read ||
  183. jiffies_to_msecs(delay) > 50)
  184. while (!kthread_should_stop() && delay)
  185. delay = schedule_timeout_interruptible(delay);
  186. dc->last_read = KEY_OFFSET(&w->key);
  187. io = kzalloc(sizeof(struct dirty_io) + sizeof(struct bio_vec)
  188. * DIV_ROUND_UP(KEY_SIZE(&w->key), PAGE_SECTORS),
  189. GFP_KERNEL);
  190. if (!io)
  191. goto err;
  192. w->private = io;
  193. io->dc = dc;
  194. dirty_init(w);
  195. io->bio.bi_sector = PTR_OFFSET(&w->key, 0);
  196. io->bio.bi_bdev = PTR_CACHE(dc->disk.c,
  197. &w->key, 0)->bdev;
  198. io->bio.bi_rw = READ;
  199. io->bio.bi_end_io = read_dirty_endio;
  200. if (bio_alloc_pages(&io->bio, GFP_KERNEL))
  201. goto err_free;
  202. trace_bcache_writeback(&w->key);
  203. down(&dc->in_flight);
  204. closure_call(&io->cl, read_dirty_submit, NULL, &cl);
  205. delay = writeback_delay(dc, KEY_SIZE(&w->key));
  206. }
  207. if (0) {
  208. err_free:
  209. kfree(w->private);
  210. err:
  211. bch_keybuf_del(&dc->writeback_keys, w);
  212. }
  213. /*
  214. * Wait for outstanding writeback IOs to finish (and keybuf slots to be
  215. * freed) before refilling again
  216. */
  217. closure_sync(&cl);
  218. }
  219. /* Scan for dirty data */
  220. void bcache_dev_sectors_dirty_add(struct cache_set *c, unsigned inode,
  221. uint64_t offset, int nr_sectors)
  222. {
  223. struct bcache_device *d = c->devices[inode];
  224. unsigned stripe_offset;
  225. uint64_t stripe = offset;
  226. if (!d)
  227. return;
  228. do_div(stripe, d->stripe_size);
  229. stripe_offset = offset & (d->stripe_size - 1);
  230. while (nr_sectors) {
  231. int s = min_t(unsigned, abs(nr_sectors),
  232. d->stripe_size - stripe_offset);
  233. if (nr_sectors < 0)
  234. s = -s;
  235. atomic_add(s, d->stripe_sectors_dirty + stripe);
  236. nr_sectors -= s;
  237. stripe_offset = 0;
  238. stripe++;
  239. }
  240. }
  241. static bool dirty_pred(struct keybuf *buf, struct bkey *k)
  242. {
  243. return KEY_DIRTY(k);
  244. }
  245. static bool dirty_full_stripe_pred(struct keybuf *buf, struct bkey *k)
  246. {
  247. uint64_t stripe = KEY_START(k);
  248. unsigned nr_sectors = KEY_SIZE(k);
  249. struct cached_dev *dc = container_of(buf, struct cached_dev,
  250. writeback_keys);
  251. if (!KEY_DIRTY(k))
  252. return false;
  253. do_div(stripe, dc->disk.stripe_size);
  254. while (1) {
  255. if (atomic_read(dc->disk.stripe_sectors_dirty + stripe) ==
  256. dc->disk.stripe_size)
  257. return true;
  258. if (nr_sectors <= dc->disk.stripe_size)
  259. return false;
  260. nr_sectors -= dc->disk.stripe_size;
  261. stripe++;
  262. }
  263. }
  264. static bool refill_dirty(struct cached_dev *dc)
  265. {
  266. struct keybuf *buf = &dc->writeback_keys;
  267. bool searched_from_start = false;
  268. struct bkey end = KEY(dc->disk.id, MAX_KEY_OFFSET, 0);
  269. if (bkey_cmp(&buf->last_scanned, &end) >= 0) {
  270. buf->last_scanned = KEY(dc->disk.id, 0, 0);
  271. searched_from_start = true;
  272. }
  273. if (dc->partial_stripes_expensive) {
  274. uint64_t i;
  275. for (i = 0; i < dc->disk.nr_stripes; i++)
  276. if (atomic_read(dc->disk.stripe_sectors_dirty + i) ==
  277. dc->disk.stripe_size)
  278. goto full_stripes;
  279. goto normal_refill;
  280. full_stripes:
  281. searched_from_start = false; /* not searching entire btree */
  282. bch_refill_keybuf(dc->disk.c, buf, &end,
  283. dirty_full_stripe_pred);
  284. } else {
  285. normal_refill:
  286. bch_refill_keybuf(dc->disk.c, buf, &end, dirty_pred);
  287. }
  288. return bkey_cmp(&buf->last_scanned, &end) >= 0 && searched_from_start;
  289. }
  290. static int bch_writeback_thread(void *arg)
  291. {
  292. struct cached_dev *dc = arg;
  293. bool searched_full_index;
  294. while (!kthread_should_stop()) {
  295. down_write(&dc->writeback_lock);
  296. if (!atomic_read(&dc->has_dirty) ||
  297. (!atomic_read(&dc->disk.detaching) &&
  298. !dc->writeback_running)) {
  299. up_write(&dc->writeback_lock);
  300. set_current_state(TASK_INTERRUPTIBLE);
  301. if (kthread_should_stop())
  302. return 0;
  303. try_to_freeze();
  304. schedule();
  305. continue;
  306. }
  307. searched_full_index = refill_dirty(dc);
  308. if (searched_full_index &&
  309. RB_EMPTY_ROOT(&dc->writeback_keys.keys)) {
  310. atomic_set(&dc->has_dirty, 0);
  311. cached_dev_put(dc);
  312. SET_BDEV_STATE(&dc->sb, BDEV_STATE_CLEAN);
  313. bch_write_bdev_super(dc, NULL);
  314. }
  315. up_write(&dc->writeback_lock);
  316. bch_ratelimit_reset(&dc->writeback_rate);
  317. read_dirty(dc);
  318. if (searched_full_index) {
  319. unsigned delay = dc->writeback_delay * HZ;
  320. while (delay &&
  321. !kthread_should_stop() &&
  322. !atomic_read(&dc->disk.detaching))
  323. delay = schedule_timeout_interruptible(delay);
  324. }
  325. }
  326. return 0;
  327. }
  328. /* Init */
  329. struct sectors_dirty_init {
  330. struct btree_op op;
  331. unsigned inode;
  332. };
  333. static int sectors_dirty_init_fn(struct btree_op *_op, struct btree *b,
  334. struct bkey *k)
  335. {
  336. struct sectors_dirty_init *op = container_of(_op,
  337. struct sectors_dirty_init, op);
  338. if (KEY_INODE(k) > op->inode)
  339. return MAP_DONE;
  340. if (KEY_DIRTY(k))
  341. bcache_dev_sectors_dirty_add(b->c, KEY_INODE(k),
  342. KEY_START(k), KEY_SIZE(k));
  343. return MAP_CONTINUE;
  344. }
  345. void bch_sectors_dirty_init(struct cached_dev *dc)
  346. {
  347. struct sectors_dirty_init op;
  348. bch_btree_op_init(&op.op, -1);
  349. op.inode = dc->disk.id;
  350. bch_btree_map_keys(&op.op, dc->disk.c, &KEY(op.inode, 0, 0),
  351. sectors_dirty_init_fn, 0);
  352. }
  353. int bch_cached_dev_writeback_init(struct cached_dev *dc)
  354. {
  355. sema_init(&dc->in_flight, 64);
  356. init_rwsem(&dc->writeback_lock);
  357. bch_keybuf_init(&dc->writeback_keys);
  358. dc->writeback_metadata = true;
  359. dc->writeback_running = true;
  360. dc->writeback_percent = 10;
  361. dc->writeback_delay = 30;
  362. dc->writeback_rate.rate = 1024;
  363. dc->writeback_rate_update_seconds = 30;
  364. dc->writeback_rate_d_term = 16;
  365. dc->writeback_rate_p_term_inverse = 64;
  366. dc->writeback_rate_d_smooth = 8;
  367. dc->writeback_thread = kthread_create(bch_writeback_thread, dc,
  368. "bcache_writeback");
  369. if (IS_ERR(dc->writeback_thread))
  370. return PTR_ERR(dc->writeback_thread);
  371. set_task_state(dc->writeback_thread, TASK_INTERRUPTIBLE);
  372. INIT_DELAYED_WORK(&dc->writeback_rate_update, update_writeback_rate);
  373. schedule_delayed_work(&dc->writeback_rate_update,
  374. dc->writeback_rate_update_seconds * HZ);
  375. return 0;
  376. }