sysfs.c 20 KB

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  1. /*
  2. * bcache sysfs interfaces
  3. *
  4. * Copyright 2010, 2011 Kent Overstreet <kent.overstreet@gmail.com>
  5. * Copyright 2012 Google, Inc.
  6. */
  7. #include "bcache.h"
  8. #include "sysfs.h"
  9. #include "btree.h"
  10. #include "request.h"
  11. #include "writeback.h"
  12. #include <linux/blkdev.h>
  13. #include <linux/sort.h>
  14. static const char * const cache_replacement_policies[] = {
  15. "lru",
  16. "fifo",
  17. "random",
  18. NULL
  19. };
  20. write_attribute(attach);
  21. write_attribute(detach);
  22. write_attribute(unregister);
  23. write_attribute(stop);
  24. write_attribute(clear_stats);
  25. write_attribute(trigger_gc);
  26. write_attribute(prune_cache);
  27. write_attribute(flash_vol_create);
  28. read_attribute(bucket_size);
  29. read_attribute(block_size);
  30. read_attribute(nbuckets);
  31. read_attribute(tree_depth);
  32. read_attribute(root_usage_percent);
  33. read_attribute(priority_stats);
  34. read_attribute(btree_cache_size);
  35. read_attribute(btree_cache_max_chain);
  36. read_attribute(cache_available_percent);
  37. read_attribute(written);
  38. read_attribute(btree_written);
  39. read_attribute(metadata_written);
  40. read_attribute(active_journal_entries);
  41. sysfs_time_stats_attribute(btree_gc, sec, ms);
  42. sysfs_time_stats_attribute(btree_split, sec, us);
  43. sysfs_time_stats_attribute(btree_sort, ms, us);
  44. sysfs_time_stats_attribute(btree_read, ms, us);
  45. sysfs_time_stats_attribute(try_harder, ms, us);
  46. read_attribute(btree_nodes);
  47. read_attribute(btree_used_percent);
  48. read_attribute(average_key_size);
  49. read_attribute(dirty_data);
  50. read_attribute(bset_tree_stats);
  51. read_attribute(state);
  52. read_attribute(cache_read_races);
  53. read_attribute(writeback_keys_done);
  54. read_attribute(writeback_keys_failed);
  55. read_attribute(io_errors);
  56. read_attribute(congested);
  57. rw_attribute(congested_read_threshold_us);
  58. rw_attribute(congested_write_threshold_us);
  59. rw_attribute(sequential_cutoff);
  60. rw_attribute(sequential_merge);
  61. rw_attribute(data_csum);
  62. rw_attribute(cache_mode);
  63. rw_attribute(writeback_metadata);
  64. rw_attribute(writeback_running);
  65. rw_attribute(writeback_percent);
  66. rw_attribute(writeback_delay);
  67. rw_attribute(writeback_rate);
  68. rw_attribute(writeback_rate_update_seconds);
  69. rw_attribute(writeback_rate_d_term);
  70. rw_attribute(writeback_rate_p_term_inverse);
  71. rw_attribute(writeback_rate_d_smooth);
  72. read_attribute(writeback_rate_debug);
  73. read_attribute(stripe_size);
  74. read_attribute(partial_stripes_expensive);
  75. rw_attribute(synchronous);
  76. rw_attribute(journal_delay_ms);
  77. rw_attribute(discard);
  78. rw_attribute(running);
  79. rw_attribute(label);
  80. rw_attribute(readahead);
  81. rw_attribute(io_error_limit);
  82. rw_attribute(io_error_halflife);
  83. rw_attribute(verify);
  84. rw_attribute(key_merging_disabled);
  85. rw_attribute(gc_always_rewrite);
  86. rw_attribute(freelist_percent);
  87. rw_attribute(cache_replacement_policy);
  88. rw_attribute(btree_shrinker_disabled);
  89. rw_attribute(copy_gc_enabled);
  90. rw_attribute(size);
  91. SHOW(__bch_cached_dev)
  92. {
  93. struct cached_dev *dc = container_of(kobj, struct cached_dev,
  94. disk.kobj);
  95. const char *states[] = { "no cache", "clean", "dirty", "inconsistent" };
  96. #define var(stat) (dc->stat)
  97. if (attr == &sysfs_cache_mode)
  98. return bch_snprint_string_list(buf, PAGE_SIZE,
  99. bch_cache_modes + 1,
  100. BDEV_CACHE_MODE(&dc->sb));
  101. sysfs_printf(data_csum, "%i", dc->disk.data_csum);
  102. var_printf(verify, "%i");
  103. var_printf(writeback_metadata, "%i");
  104. var_printf(writeback_running, "%i");
  105. var_print(writeback_delay);
  106. var_print(writeback_percent);
  107. sysfs_print(writeback_rate, dc->writeback_rate.rate);
  108. var_print(writeback_rate_update_seconds);
  109. var_print(writeback_rate_d_term);
  110. var_print(writeback_rate_p_term_inverse);
  111. var_print(writeback_rate_d_smooth);
  112. if (attr == &sysfs_writeback_rate_debug) {
  113. char dirty[20];
  114. char derivative[20];
  115. char target[20];
  116. bch_hprint(dirty,
  117. bcache_dev_sectors_dirty(&dc->disk) << 9);
  118. bch_hprint(derivative, dc->writeback_rate_derivative << 9);
  119. bch_hprint(target, dc->writeback_rate_target << 9);
  120. return sprintf(buf,
  121. "rate:\t\t%u\n"
  122. "change:\t\t%i\n"
  123. "dirty:\t\t%s\n"
  124. "derivative:\t%s\n"
  125. "target:\t\t%s\n",
  126. dc->writeback_rate.rate,
  127. dc->writeback_rate_change,
  128. dirty, derivative, target);
  129. }
  130. sysfs_hprint(dirty_data,
  131. bcache_dev_sectors_dirty(&dc->disk) << 9);
  132. sysfs_hprint(stripe_size, (1 << dc->disk.stripe_size_bits) << 9);
  133. var_printf(partial_stripes_expensive, "%u");
  134. var_printf(sequential_merge, "%i");
  135. var_hprint(sequential_cutoff);
  136. var_hprint(readahead);
  137. sysfs_print(running, atomic_read(&dc->running));
  138. sysfs_print(state, states[BDEV_STATE(&dc->sb)]);
  139. if (attr == &sysfs_label) {
  140. memcpy(buf, dc->sb.label, SB_LABEL_SIZE);
  141. buf[SB_LABEL_SIZE + 1] = '\0';
  142. strcat(buf, "\n");
  143. return strlen(buf);
  144. }
  145. #undef var
  146. return 0;
  147. }
  148. SHOW_LOCKED(bch_cached_dev)
  149. STORE(__cached_dev)
  150. {
  151. struct cached_dev *dc = container_of(kobj, struct cached_dev,
  152. disk.kobj);
  153. unsigned v = size;
  154. struct cache_set *c;
  155. struct kobj_uevent_env *env;
  156. #define d_strtoul(var) sysfs_strtoul(var, dc->var)
  157. #define d_strtoi_h(var) sysfs_hatoi(var, dc->var)
  158. sysfs_strtoul(data_csum, dc->disk.data_csum);
  159. d_strtoul(verify);
  160. d_strtoul(writeback_metadata);
  161. d_strtoul(writeback_running);
  162. d_strtoul(writeback_delay);
  163. sysfs_strtoul_clamp(writeback_rate,
  164. dc->writeback_rate.rate, 1, 1000000);
  165. sysfs_strtoul_clamp(writeback_percent, dc->writeback_percent, 0, 40);
  166. d_strtoul(writeback_rate_update_seconds);
  167. d_strtoul(writeback_rate_d_term);
  168. d_strtoul(writeback_rate_p_term_inverse);
  169. sysfs_strtoul_clamp(writeback_rate_p_term_inverse,
  170. dc->writeback_rate_p_term_inverse, 1, INT_MAX);
  171. d_strtoul(writeback_rate_d_smooth);
  172. d_strtoul(sequential_merge);
  173. d_strtoi_h(sequential_cutoff);
  174. d_strtoi_h(readahead);
  175. if (attr == &sysfs_clear_stats)
  176. bch_cache_accounting_clear(&dc->accounting);
  177. if (attr == &sysfs_running &&
  178. strtoul_or_return(buf))
  179. bch_cached_dev_run(dc);
  180. if (attr == &sysfs_cache_mode) {
  181. ssize_t v = bch_read_string_list(buf, bch_cache_modes + 1);
  182. if (v < 0)
  183. return v;
  184. if ((unsigned) v != BDEV_CACHE_MODE(&dc->sb)) {
  185. SET_BDEV_CACHE_MODE(&dc->sb, v);
  186. bch_write_bdev_super(dc, NULL);
  187. }
  188. }
  189. if (attr == &sysfs_label) {
  190. /* note: endlines are preserved */
  191. memcpy(dc->sb.label, buf, SB_LABEL_SIZE);
  192. bch_write_bdev_super(dc, NULL);
  193. if (dc->disk.c) {
  194. memcpy(dc->disk.c->uuids[dc->disk.id].label,
  195. buf, SB_LABEL_SIZE);
  196. bch_uuid_write(dc->disk.c);
  197. }
  198. env = kzalloc(sizeof(struct kobj_uevent_env), GFP_KERNEL);
  199. add_uevent_var(env, "DRIVER=bcache");
  200. add_uevent_var(env, "CACHED_UUID=%pU", dc->sb.uuid),
  201. add_uevent_var(env, "CACHED_LABEL=%s", buf);
  202. kobject_uevent_env(
  203. &disk_to_dev(dc->disk.disk)->kobj, KOBJ_CHANGE, env->envp);
  204. kfree(env);
  205. }
  206. if (attr == &sysfs_attach) {
  207. if (bch_parse_uuid(buf, dc->sb.set_uuid) < 16)
  208. return -EINVAL;
  209. list_for_each_entry(c, &bch_cache_sets, list) {
  210. v = bch_cached_dev_attach(dc, c);
  211. if (!v)
  212. return size;
  213. }
  214. pr_err("Can't attach %s: cache set not found", buf);
  215. size = v;
  216. }
  217. if (attr == &sysfs_detach && dc->disk.c)
  218. bch_cached_dev_detach(dc);
  219. if (attr == &sysfs_stop)
  220. bcache_device_stop(&dc->disk);
  221. return size;
  222. }
  223. STORE(bch_cached_dev)
  224. {
  225. struct cached_dev *dc = container_of(kobj, struct cached_dev,
  226. disk.kobj);
  227. mutex_lock(&bch_register_lock);
  228. size = __cached_dev_store(kobj, attr, buf, size);
  229. if (attr == &sysfs_writeback_running)
  230. bch_writeback_queue(dc);
  231. if (attr == &sysfs_writeback_percent)
  232. schedule_delayed_work(&dc->writeback_rate_update,
  233. dc->writeback_rate_update_seconds * HZ);
  234. mutex_unlock(&bch_register_lock);
  235. return size;
  236. }
  237. static struct attribute *bch_cached_dev_files[] = {
  238. &sysfs_attach,
  239. &sysfs_detach,
  240. &sysfs_stop,
  241. #if 0
  242. &sysfs_data_csum,
  243. #endif
  244. &sysfs_cache_mode,
  245. &sysfs_writeback_metadata,
  246. &sysfs_writeback_running,
  247. &sysfs_writeback_delay,
  248. &sysfs_writeback_percent,
  249. &sysfs_writeback_rate,
  250. &sysfs_writeback_rate_update_seconds,
  251. &sysfs_writeback_rate_d_term,
  252. &sysfs_writeback_rate_p_term_inverse,
  253. &sysfs_writeback_rate_d_smooth,
  254. &sysfs_writeback_rate_debug,
  255. &sysfs_dirty_data,
  256. &sysfs_stripe_size,
  257. &sysfs_partial_stripes_expensive,
  258. &sysfs_sequential_cutoff,
  259. &sysfs_sequential_merge,
  260. &sysfs_clear_stats,
  261. &sysfs_running,
  262. &sysfs_state,
  263. &sysfs_label,
  264. &sysfs_readahead,
  265. #ifdef CONFIG_BCACHE_DEBUG
  266. &sysfs_verify,
  267. #endif
  268. NULL
  269. };
  270. KTYPE(bch_cached_dev);
  271. SHOW(bch_flash_dev)
  272. {
  273. struct bcache_device *d = container_of(kobj, struct bcache_device,
  274. kobj);
  275. struct uuid_entry *u = &d->c->uuids[d->id];
  276. sysfs_printf(data_csum, "%i", d->data_csum);
  277. sysfs_hprint(size, u->sectors << 9);
  278. if (attr == &sysfs_label) {
  279. memcpy(buf, u->label, SB_LABEL_SIZE);
  280. buf[SB_LABEL_SIZE + 1] = '\0';
  281. strcat(buf, "\n");
  282. return strlen(buf);
  283. }
  284. return 0;
  285. }
  286. STORE(__bch_flash_dev)
  287. {
  288. struct bcache_device *d = container_of(kobj, struct bcache_device,
  289. kobj);
  290. struct uuid_entry *u = &d->c->uuids[d->id];
  291. sysfs_strtoul(data_csum, d->data_csum);
  292. if (attr == &sysfs_size) {
  293. uint64_t v;
  294. strtoi_h_or_return(buf, v);
  295. u->sectors = v >> 9;
  296. bch_uuid_write(d->c);
  297. set_capacity(d->disk, u->sectors);
  298. }
  299. if (attr == &sysfs_label) {
  300. memcpy(u->label, buf, SB_LABEL_SIZE);
  301. bch_uuid_write(d->c);
  302. }
  303. if (attr == &sysfs_unregister) {
  304. atomic_set(&d->detaching, 1);
  305. bcache_device_stop(d);
  306. }
  307. return size;
  308. }
  309. STORE_LOCKED(bch_flash_dev)
  310. static struct attribute *bch_flash_dev_files[] = {
  311. &sysfs_unregister,
  312. #if 0
  313. &sysfs_data_csum,
  314. #endif
  315. &sysfs_label,
  316. &sysfs_size,
  317. NULL
  318. };
  319. KTYPE(bch_flash_dev);
  320. SHOW(__bch_cache_set)
  321. {
  322. unsigned root_usage(struct cache_set *c)
  323. {
  324. unsigned bytes = 0;
  325. struct bkey *k;
  326. struct btree *b;
  327. struct btree_iter iter;
  328. goto lock_root;
  329. do {
  330. rw_unlock(false, b);
  331. lock_root:
  332. b = c->root;
  333. rw_lock(false, b, b->level);
  334. } while (b != c->root);
  335. for_each_key_filter(b, k, &iter, bch_ptr_bad)
  336. bytes += bkey_bytes(k);
  337. rw_unlock(false, b);
  338. return (bytes * 100) / btree_bytes(c);
  339. }
  340. size_t cache_size(struct cache_set *c)
  341. {
  342. size_t ret = 0;
  343. struct btree *b;
  344. mutex_lock(&c->bucket_lock);
  345. list_for_each_entry(b, &c->btree_cache, list)
  346. ret += 1 << (b->page_order + PAGE_SHIFT);
  347. mutex_unlock(&c->bucket_lock);
  348. return ret;
  349. }
  350. unsigned cache_max_chain(struct cache_set *c)
  351. {
  352. unsigned ret = 0;
  353. struct hlist_head *h;
  354. mutex_lock(&c->bucket_lock);
  355. for (h = c->bucket_hash;
  356. h < c->bucket_hash + (1 << BUCKET_HASH_BITS);
  357. h++) {
  358. unsigned i = 0;
  359. struct hlist_node *p;
  360. hlist_for_each(p, h)
  361. i++;
  362. ret = max(ret, i);
  363. }
  364. mutex_unlock(&c->bucket_lock);
  365. return ret;
  366. }
  367. unsigned btree_used(struct cache_set *c)
  368. {
  369. return div64_u64(c->gc_stats.key_bytes * 100,
  370. (c->gc_stats.nodes ?: 1) * btree_bytes(c));
  371. }
  372. unsigned average_key_size(struct cache_set *c)
  373. {
  374. return c->gc_stats.nkeys
  375. ? div64_u64(c->gc_stats.data, c->gc_stats.nkeys)
  376. : 0;
  377. }
  378. struct cache_set *c = container_of(kobj, struct cache_set, kobj);
  379. sysfs_print(synchronous, CACHE_SYNC(&c->sb));
  380. sysfs_print(journal_delay_ms, c->journal_delay_ms);
  381. sysfs_hprint(bucket_size, bucket_bytes(c));
  382. sysfs_hprint(block_size, block_bytes(c));
  383. sysfs_print(tree_depth, c->root->level);
  384. sysfs_print(root_usage_percent, root_usage(c));
  385. sysfs_hprint(btree_cache_size, cache_size(c));
  386. sysfs_print(btree_cache_max_chain, cache_max_chain(c));
  387. sysfs_print(cache_available_percent, 100 - c->gc_stats.in_use);
  388. sysfs_print_time_stats(&c->btree_gc_time, btree_gc, sec, ms);
  389. sysfs_print_time_stats(&c->btree_split_time, btree_split, sec, us);
  390. sysfs_print_time_stats(&c->sort_time, btree_sort, ms, us);
  391. sysfs_print_time_stats(&c->btree_read_time, btree_read, ms, us);
  392. sysfs_print_time_stats(&c->try_harder_time, try_harder, ms, us);
  393. sysfs_print(btree_used_percent, btree_used(c));
  394. sysfs_print(btree_nodes, c->gc_stats.nodes);
  395. sysfs_hprint(dirty_data, c->gc_stats.dirty);
  396. sysfs_hprint(average_key_size, average_key_size(c));
  397. sysfs_print(cache_read_races,
  398. atomic_long_read(&c->cache_read_races));
  399. sysfs_print(writeback_keys_done,
  400. atomic_long_read(&c->writeback_keys_done));
  401. sysfs_print(writeback_keys_failed,
  402. atomic_long_read(&c->writeback_keys_failed));
  403. /* See count_io_errors for why 88 */
  404. sysfs_print(io_error_halflife, c->error_decay * 88);
  405. sysfs_print(io_error_limit, c->error_limit >> IO_ERROR_SHIFT);
  406. sysfs_hprint(congested,
  407. ((uint64_t) bch_get_congested(c)) << 9);
  408. sysfs_print(congested_read_threshold_us,
  409. c->congested_read_threshold_us);
  410. sysfs_print(congested_write_threshold_us,
  411. c->congested_write_threshold_us);
  412. sysfs_print(active_journal_entries, fifo_used(&c->journal.pin));
  413. sysfs_printf(verify, "%i", c->verify);
  414. sysfs_printf(key_merging_disabled, "%i", c->key_merging_disabled);
  415. sysfs_printf(gc_always_rewrite, "%i", c->gc_always_rewrite);
  416. sysfs_printf(btree_shrinker_disabled, "%i", c->shrinker_disabled);
  417. sysfs_printf(copy_gc_enabled, "%i", c->copy_gc_enabled);
  418. if (attr == &sysfs_bset_tree_stats)
  419. return bch_bset_print_stats(c, buf);
  420. return 0;
  421. }
  422. SHOW_LOCKED(bch_cache_set)
  423. STORE(__bch_cache_set)
  424. {
  425. struct cache_set *c = container_of(kobj, struct cache_set, kobj);
  426. if (attr == &sysfs_unregister)
  427. bch_cache_set_unregister(c);
  428. if (attr == &sysfs_stop)
  429. bch_cache_set_stop(c);
  430. if (attr == &sysfs_synchronous) {
  431. bool sync = strtoul_or_return(buf);
  432. if (sync != CACHE_SYNC(&c->sb)) {
  433. SET_CACHE_SYNC(&c->sb, sync);
  434. bcache_write_super(c);
  435. }
  436. }
  437. if (attr == &sysfs_flash_vol_create) {
  438. int r;
  439. uint64_t v;
  440. strtoi_h_or_return(buf, v);
  441. r = bch_flash_dev_create(c, v);
  442. if (r)
  443. return r;
  444. }
  445. if (attr == &sysfs_clear_stats) {
  446. atomic_long_set(&c->writeback_keys_done, 0);
  447. atomic_long_set(&c->writeback_keys_failed, 0);
  448. memset(&c->gc_stats, 0, sizeof(struct gc_stat));
  449. bch_cache_accounting_clear(&c->accounting);
  450. }
  451. if (attr == &sysfs_trigger_gc)
  452. bch_queue_gc(c);
  453. if (attr == &sysfs_prune_cache) {
  454. struct shrink_control sc;
  455. sc.gfp_mask = GFP_KERNEL;
  456. sc.nr_to_scan = strtoul_or_return(buf);
  457. c->shrink.shrink(&c->shrink, &sc);
  458. }
  459. sysfs_strtoul(congested_read_threshold_us,
  460. c->congested_read_threshold_us);
  461. sysfs_strtoul(congested_write_threshold_us,
  462. c->congested_write_threshold_us);
  463. if (attr == &sysfs_io_error_limit)
  464. c->error_limit = strtoul_or_return(buf) << IO_ERROR_SHIFT;
  465. /* See count_io_errors() for why 88 */
  466. if (attr == &sysfs_io_error_halflife)
  467. c->error_decay = strtoul_or_return(buf) / 88;
  468. sysfs_strtoul(journal_delay_ms, c->journal_delay_ms);
  469. sysfs_strtoul(verify, c->verify);
  470. sysfs_strtoul(key_merging_disabled, c->key_merging_disabled);
  471. sysfs_strtoul(gc_always_rewrite, c->gc_always_rewrite);
  472. sysfs_strtoul(btree_shrinker_disabled, c->shrinker_disabled);
  473. sysfs_strtoul(copy_gc_enabled, c->copy_gc_enabled);
  474. return size;
  475. }
  476. STORE_LOCKED(bch_cache_set)
  477. SHOW(bch_cache_set_internal)
  478. {
  479. struct cache_set *c = container_of(kobj, struct cache_set, internal);
  480. return bch_cache_set_show(&c->kobj, attr, buf);
  481. }
  482. STORE(bch_cache_set_internal)
  483. {
  484. struct cache_set *c = container_of(kobj, struct cache_set, internal);
  485. return bch_cache_set_store(&c->kobj, attr, buf, size);
  486. }
  487. static void bch_cache_set_internal_release(struct kobject *k)
  488. {
  489. }
  490. static struct attribute *bch_cache_set_files[] = {
  491. &sysfs_unregister,
  492. &sysfs_stop,
  493. &sysfs_synchronous,
  494. &sysfs_journal_delay_ms,
  495. &sysfs_flash_vol_create,
  496. &sysfs_bucket_size,
  497. &sysfs_block_size,
  498. &sysfs_tree_depth,
  499. &sysfs_root_usage_percent,
  500. &sysfs_btree_cache_size,
  501. &sysfs_cache_available_percent,
  502. &sysfs_average_key_size,
  503. &sysfs_dirty_data,
  504. &sysfs_io_error_limit,
  505. &sysfs_io_error_halflife,
  506. &sysfs_congested,
  507. &sysfs_congested_read_threshold_us,
  508. &sysfs_congested_write_threshold_us,
  509. &sysfs_clear_stats,
  510. NULL
  511. };
  512. KTYPE(bch_cache_set);
  513. static struct attribute *bch_cache_set_internal_files[] = {
  514. &sysfs_active_journal_entries,
  515. sysfs_time_stats_attribute_list(btree_gc, sec, ms)
  516. sysfs_time_stats_attribute_list(btree_split, sec, us)
  517. sysfs_time_stats_attribute_list(btree_sort, ms, us)
  518. sysfs_time_stats_attribute_list(btree_read, ms, us)
  519. sysfs_time_stats_attribute_list(try_harder, ms, us)
  520. &sysfs_btree_nodes,
  521. &sysfs_btree_used_percent,
  522. &sysfs_btree_cache_max_chain,
  523. &sysfs_bset_tree_stats,
  524. &sysfs_cache_read_races,
  525. &sysfs_writeback_keys_done,
  526. &sysfs_writeback_keys_failed,
  527. &sysfs_trigger_gc,
  528. &sysfs_prune_cache,
  529. #ifdef CONFIG_BCACHE_DEBUG
  530. &sysfs_verify,
  531. &sysfs_key_merging_disabled,
  532. #endif
  533. &sysfs_gc_always_rewrite,
  534. &sysfs_btree_shrinker_disabled,
  535. &sysfs_copy_gc_enabled,
  536. NULL
  537. };
  538. KTYPE(bch_cache_set_internal);
  539. SHOW(__bch_cache)
  540. {
  541. struct cache *ca = container_of(kobj, struct cache, kobj);
  542. sysfs_hprint(bucket_size, bucket_bytes(ca));
  543. sysfs_hprint(block_size, block_bytes(ca));
  544. sysfs_print(nbuckets, ca->sb.nbuckets);
  545. sysfs_print(discard, ca->discard);
  546. sysfs_hprint(written, atomic_long_read(&ca->sectors_written) << 9);
  547. sysfs_hprint(btree_written,
  548. atomic_long_read(&ca->btree_sectors_written) << 9);
  549. sysfs_hprint(metadata_written,
  550. (atomic_long_read(&ca->meta_sectors_written) +
  551. atomic_long_read(&ca->btree_sectors_written)) << 9);
  552. sysfs_print(io_errors,
  553. atomic_read(&ca->io_errors) >> IO_ERROR_SHIFT);
  554. sysfs_print(freelist_percent, ca->free.size * 100 /
  555. ((size_t) ca->sb.nbuckets));
  556. if (attr == &sysfs_cache_replacement_policy)
  557. return bch_snprint_string_list(buf, PAGE_SIZE,
  558. cache_replacement_policies,
  559. CACHE_REPLACEMENT(&ca->sb));
  560. if (attr == &sysfs_priority_stats) {
  561. int cmp(const void *l, const void *r)
  562. { return *((uint16_t *) r) - *((uint16_t *) l); }
  563. size_t n = ca->sb.nbuckets, i, unused, btree;
  564. uint64_t sum = 0;
  565. /* Compute 31 quantiles */
  566. uint16_t q[31], *p, *cached;
  567. ssize_t ret;
  568. cached = p = vmalloc(ca->sb.nbuckets * sizeof(uint16_t));
  569. if (!p)
  570. return -ENOMEM;
  571. mutex_lock(&ca->set->bucket_lock);
  572. for (i = ca->sb.first_bucket; i < n; i++)
  573. p[i] = ca->buckets[i].prio;
  574. mutex_unlock(&ca->set->bucket_lock);
  575. sort(p, n, sizeof(uint16_t), cmp, NULL);
  576. while (n &&
  577. !cached[n - 1])
  578. --n;
  579. unused = ca->sb.nbuckets - n;
  580. while (cached < p + n &&
  581. *cached == BTREE_PRIO)
  582. cached++;
  583. btree = cached - p;
  584. n -= btree;
  585. for (i = 0; i < n; i++)
  586. sum += INITIAL_PRIO - cached[i];
  587. if (n)
  588. do_div(sum, n);
  589. for (i = 0; i < ARRAY_SIZE(q); i++)
  590. q[i] = INITIAL_PRIO - cached[n * (i + 1) /
  591. (ARRAY_SIZE(q) + 1)];
  592. vfree(p);
  593. ret = scnprintf(buf, PAGE_SIZE,
  594. "Unused: %zu%%\n"
  595. "Metadata: %zu%%\n"
  596. "Average: %llu\n"
  597. "Sectors per Q: %zu\n"
  598. "Quantiles: [",
  599. unused * 100 / (size_t) ca->sb.nbuckets,
  600. btree * 100 / (size_t) ca->sb.nbuckets, sum,
  601. n * ca->sb.bucket_size / (ARRAY_SIZE(q) + 1));
  602. for (i = 0; i < ARRAY_SIZE(q); i++)
  603. ret += scnprintf(buf + ret, PAGE_SIZE - ret,
  604. "%u ", q[i]);
  605. ret--;
  606. ret += scnprintf(buf + ret, PAGE_SIZE - ret, "]\n");
  607. return ret;
  608. }
  609. return 0;
  610. }
  611. SHOW_LOCKED(bch_cache)
  612. STORE(__bch_cache)
  613. {
  614. struct cache *ca = container_of(kobj, struct cache, kobj);
  615. if (attr == &sysfs_discard) {
  616. bool v = strtoul_or_return(buf);
  617. if (blk_queue_discard(bdev_get_queue(ca->bdev)))
  618. ca->discard = v;
  619. if (v != CACHE_DISCARD(&ca->sb)) {
  620. SET_CACHE_DISCARD(&ca->sb, v);
  621. bcache_write_super(ca->set);
  622. }
  623. }
  624. if (attr == &sysfs_cache_replacement_policy) {
  625. ssize_t v = bch_read_string_list(buf, cache_replacement_policies);
  626. if (v < 0)
  627. return v;
  628. if ((unsigned) v != CACHE_REPLACEMENT(&ca->sb)) {
  629. mutex_lock(&ca->set->bucket_lock);
  630. SET_CACHE_REPLACEMENT(&ca->sb, v);
  631. mutex_unlock(&ca->set->bucket_lock);
  632. bcache_write_super(ca->set);
  633. }
  634. }
  635. if (attr == &sysfs_freelist_percent) {
  636. DECLARE_FIFO(long, free);
  637. long i;
  638. size_t p = strtoul_or_return(buf);
  639. p = clamp_t(size_t,
  640. ((size_t) ca->sb.nbuckets * p) / 100,
  641. roundup_pow_of_two(ca->sb.nbuckets) >> 9,
  642. ca->sb.nbuckets / 2);
  643. if (!init_fifo_exact(&free, p, GFP_KERNEL))
  644. return -ENOMEM;
  645. mutex_lock(&ca->set->bucket_lock);
  646. fifo_move(&free, &ca->free);
  647. fifo_swap(&free, &ca->free);
  648. mutex_unlock(&ca->set->bucket_lock);
  649. while (fifo_pop(&free, i))
  650. atomic_dec(&ca->buckets[i].pin);
  651. free_fifo(&free);
  652. }
  653. if (attr == &sysfs_clear_stats) {
  654. atomic_long_set(&ca->sectors_written, 0);
  655. atomic_long_set(&ca->btree_sectors_written, 0);
  656. atomic_long_set(&ca->meta_sectors_written, 0);
  657. atomic_set(&ca->io_count, 0);
  658. atomic_set(&ca->io_errors, 0);
  659. }
  660. return size;
  661. }
  662. STORE_LOCKED(bch_cache)
  663. static struct attribute *bch_cache_files[] = {
  664. &sysfs_bucket_size,
  665. &sysfs_block_size,
  666. &sysfs_nbuckets,
  667. &sysfs_priority_stats,
  668. &sysfs_discard,
  669. &sysfs_written,
  670. &sysfs_btree_written,
  671. &sysfs_metadata_written,
  672. &sysfs_io_errors,
  673. &sysfs_clear_stats,
  674. &sysfs_freelist_percent,
  675. &sysfs_cache_replacement_policy,
  676. NULL
  677. };
  678. KTYPE(bch_cache);