reada.c 23 KB

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  1. /*
  2. * Copyright (C) 2011 STRATO. All rights reserved.
  3. *
  4. * This program is free software; you can redistribute it and/or
  5. * modify it under the terms of the GNU General Public
  6. * License v2 as published by the Free Software Foundation.
  7. *
  8. * This program is distributed in the hope that it will be useful,
  9. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  11. * General Public License for more details.
  12. *
  13. * You should have received a copy of the GNU General Public
  14. * License along with this program; if not, write to the
  15. * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
  16. * Boston, MA 021110-1307, USA.
  17. */
  18. #include <linux/sched.h>
  19. #include <linux/pagemap.h>
  20. #include <linux/writeback.h>
  21. #include <linux/blkdev.h>
  22. #include <linux/rbtree.h>
  23. #include <linux/slab.h>
  24. #include <linux/workqueue.h>
  25. #include "ctree.h"
  26. #include "volumes.h"
  27. #include "disk-io.h"
  28. #include "transaction.h"
  29. #undef DEBUG
  30. /*
  31. * This is the implementation for the generic read ahead framework.
  32. *
  33. * To trigger a readahead, btrfs_reada_add must be called. It will start
  34. * a read ahead for the given range [start, end) on tree root. The returned
  35. * handle can either be used to wait on the readahead to finish
  36. * (btrfs_reada_wait), or to send it to the background (btrfs_reada_detach).
  37. *
  38. * The read ahead works as follows:
  39. * On btrfs_reada_add, the root of the tree is inserted into a radix_tree.
  40. * reada_start_machine will then search for extents to prefetch and trigger
  41. * some reads. When a read finishes for a node, all contained node/leaf
  42. * pointers that lie in the given range will also be enqueued. The reads will
  43. * be triggered in sequential order, thus giving a big win over a naive
  44. * enumeration. It will also make use of multi-device layouts. Each disk
  45. * will have its on read pointer and all disks will by utilized in parallel.
  46. * Also will no two disks read both sides of a mirror simultaneously, as this
  47. * would waste seeking capacity. Instead both disks will read different parts
  48. * of the filesystem.
  49. * Any number of readaheads can be started in parallel. The read order will be
  50. * determined globally, i.e. 2 parallel readaheads will normally finish faster
  51. * than the 2 started one after another.
  52. */
  53. #define MAX_IN_FLIGHT 6
  54. struct reada_extctl {
  55. struct list_head list;
  56. struct reada_control *rc;
  57. u64 generation;
  58. };
  59. struct reada_extent {
  60. u64 logical;
  61. struct btrfs_key top;
  62. u32 blocksize;
  63. int err;
  64. struct list_head extctl;
  65. struct kref refcnt;
  66. spinlock_t lock;
  67. struct reada_zone *zones[BTRFS_MAX_MIRRORS];
  68. int nzones;
  69. struct btrfs_device *scheduled_for;
  70. };
  71. struct reada_zone {
  72. u64 start;
  73. u64 end;
  74. u64 elems;
  75. struct list_head list;
  76. spinlock_t lock;
  77. int locked;
  78. struct btrfs_device *device;
  79. struct btrfs_device *devs[BTRFS_MAX_MIRRORS]; /* full list, incl
  80. * self */
  81. int ndevs;
  82. struct kref refcnt;
  83. };
  84. struct reada_machine_work {
  85. struct btrfs_work work;
  86. struct btrfs_fs_info *fs_info;
  87. };
  88. static void reada_extent_put(struct btrfs_fs_info *, struct reada_extent *);
  89. static void reada_control_release(struct kref *kref);
  90. static void reada_zone_release(struct kref *kref);
  91. static void reada_start_machine(struct btrfs_fs_info *fs_info);
  92. static void __reada_start_machine(struct btrfs_fs_info *fs_info);
  93. static int reada_add_block(struct reada_control *rc, u64 logical,
  94. struct btrfs_key *top, int level, u64 generation);
  95. /* recurses */
  96. /* in case of err, eb might be NULL */
  97. static int __readahead_hook(struct btrfs_root *root, struct extent_buffer *eb,
  98. u64 start, int err)
  99. {
  100. int level = 0;
  101. int nritems;
  102. int i;
  103. u64 bytenr;
  104. u64 generation;
  105. struct reada_extent *re;
  106. struct btrfs_fs_info *fs_info = root->fs_info;
  107. struct list_head list;
  108. unsigned long index = start >> PAGE_CACHE_SHIFT;
  109. struct btrfs_device *for_dev;
  110. if (eb)
  111. level = btrfs_header_level(eb);
  112. /* find extent */
  113. spin_lock(&fs_info->reada_lock);
  114. re = radix_tree_lookup(&fs_info->reada_tree, index);
  115. if (re)
  116. kref_get(&re->refcnt);
  117. spin_unlock(&fs_info->reada_lock);
  118. if (!re)
  119. return -1;
  120. spin_lock(&re->lock);
  121. /*
  122. * just take the full list from the extent. afterwards we
  123. * don't need the lock anymore
  124. */
  125. list_replace_init(&re->extctl, &list);
  126. for_dev = re->scheduled_for;
  127. re->scheduled_for = NULL;
  128. spin_unlock(&re->lock);
  129. if (err == 0) {
  130. nritems = level ? btrfs_header_nritems(eb) : 0;
  131. generation = btrfs_header_generation(eb);
  132. /*
  133. * FIXME: currently we just set nritems to 0 if this is a leaf,
  134. * effectively ignoring the content. In a next step we could
  135. * trigger more readahead depending from the content, e.g.
  136. * fetch the checksums for the extents in the leaf.
  137. */
  138. } else {
  139. /*
  140. * this is the error case, the extent buffer has not been
  141. * read correctly. We won't access anything from it and
  142. * just cleanup our data structures. Effectively this will
  143. * cut the branch below this node from read ahead.
  144. */
  145. nritems = 0;
  146. generation = 0;
  147. }
  148. for (i = 0; i < nritems; i++) {
  149. struct reada_extctl *rec;
  150. u64 n_gen;
  151. struct btrfs_key key;
  152. struct btrfs_key next_key;
  153. btrfs_node_key_to_cpu(eb, &key, i);
  154. if (i + 1 < nritems)
  155. btrfs_node_key_to_cpu(eb, &next_key, i + 1);
  156. else
  157. next_key = re->top;
  158. bytenr = btrfs_node_blockptr(eb, i);
  159. n_gen = btrfs_node_ptr_generation(eb, i);
  160. list_for_each_entry(rec, &list, list) {
  161. struct reada_control *rc = rec->rc;
  162. /*
  163. * if the generation doesn't match, just ignore this
  164. * extctl. This will probably cut off a branch from
  165. * prefetch. Alternatively one could start a new (sub-)
  166. * prefetch for this branch, starting again from root.
  167. * FIXME: move the generation check out of this loop
  168. */
  169. #ifdef DEBUG
  170. if (rec->generation != generation) {
  171. printk(KERN_DEBUG "generation mismatch for "
  172. "(%llu,%d,%llu) %llu != %llu\n",
  173. key.objectid, key.type, key.offset,
  174. rec->generation, generation);
  175. }
  176. #endif
  177. if (rec->generation == generation &&
  178. btrfs_comp_cpu_keys(&key, &rc->key_end) < 0 &&
  179. btrfs_comp_cpu_keys(&next_key, &rc->key_start) > 0)
  180. reada_add_block(rc, bytenr, &next_key,
  181. level - 1, n_gen);
  182. }
  183. }
  184. /*
  185. * free extctl records
  186. */
  187. while (!list_empty(&list)) {
  188. struct reada_control *rc;
  189. struct reada_extctl *rec;
  190. rec = list_first_entry(&list, struct reada_extctl, list);
  191. list_del(&rec->list);
  192. rc = rec->rc;
  193. kfree(rec);
  194. kref_get(&rc->refcnt);
  195. if (atomic_dec_and_test(&rc->elems)) {
  196. kref_put(&rc->refcnt, reada_control_release);
  197. wake_up(&rc->wait);
  198. }
  199. kref_put(&rc->refcnt, reada_control_release);
  200. reada_extent_put(fs_info, re); /* one ref for each entry */
  201. }
  202. reada_extent_put(fs_info, re); /* our ref */
  203. if (for_dev)
  204. atomic_dec(&for_dev->reada_in_flight);
  205. return 0;
  206. }
  207. /*
  208. * start is passed separately in case eb in NULL, which may be the case with
  209. * failed I/O
  210. */
  211. int btree_readahead_hook(struct btrfs_root *root, struct extent_buffer *eb,
  212. u64 start, int err)
  213. {
  214. int ret;
  215. ret = __readahead_hook(root, eb, start, err);
  216. reada_start_machine(root->fs_info);
  217. return ret;
  218. }
  219. static struct reada_zone *reada_find_zone(struct btrfs_fs_info *fs_info,
  220. struct btrfs_device *dev, u64 logical,
  221. struct btrfs_bio *bbio)
  222. {
  223. int ret;
  224. int looped = 0;
  225. struct reada_zone *zone;
  226. struct btrfs_block_group_cache *cache = NULL;
  227. u64 start;
  228. u64 end;
  229. int i;
  230. again:
  231. zone = NULL;
  232. spin_lock(&fs_info->reada_lock);
  233. ret = radix_tree_gang_lookup(&dev->reada_zones, (void **)&zone,
  234. logical >> PAGE_CACHE_SHIFT, 1);
  235. if (ret == 1)
  236. kref_get(&zone->refcnt);
  237. spin_unlock(&fs_info->reada_lock);
  238. if (ret == 1) {
  239. if (logical >= zone->start && logical < zone->end)
  240. return zone;
  241. spin_lock(&fs_info->reada_lock);
  242. kref_put(&zone->refcnt, reada_zone_release);
  243. spin_unlock(&fs_info->reada_lock);
  244. }
  245. if (looped)
  246. return NULL;
  247. cache = btrfs_lookup_block_group(fs_info, logical);
  248. if (!cache)
  249. return NULL;
  250. start = cache->key.objectid;
  251. end = start + cache->key.offset - 1;
  252. btrfs_put_block_group(cache);
  253. zone = kzalloc(sizeof(*zone), GFP_NOFS);
  254. if (!zone)
  255. return NULL;
  256. zone->start = start;
  257. zone->end = end;
  258. INIT_LIST_HEAD(&zone->list);
  259. spin_lock_init(&zone->lock);
  260. zone->locked = 0;
  261. kref_init(&zone->refcnt);
  262. zone->elems = 0;
  263. zone->device = dev; /* our device always sits at index 0 */
  264. for (i = 0; i < bbio->num_stripes; ++i) {
  265. /* bounds have already been checked */
  266. zone->devs[i] = bbio->stripes[i].dev;
  267. }
  268. zone->ndevs = bbio->num_stripes;
  269. spin_lock(&fs_info->reada_lock);
  270. ret = radix_tree_insert(&dev->reada_zones,
  271. (unsigned long)(zone->end >> PAGE_CACHE_SHIFT),
  272. zone);
  273. spin_unlock(&fs_info->reada_lock);
  274. if (ret) {
  275. kfree(zone);
  276. looped = 1;
  277. goto again;
  278. }
  279. return zone;
  280. }
  281. static struct reada_extent *reada_find_extent(struct btrfs_root *root,
  282. u64 logical,
  283. struct btrfs_key *top, int level)
  284. {
  285. int ret;
  286. int looped = 0;
  287. struct reada_extent *re = NULL;
  288. struct btrfs_fs_info *fs_info = root->fs_info;
  289. struct btrfs_mapping_tree *map_tree = &fs_info->mapping_tree;
  290. struct btrfs_bio *bbio = NULL;
  291. struct btrfs_device *dev;
  292. u32 blocksize;
  293. u64 length;
  294. int nzones = 0;
  295. int i;
  296. unsigned long index = logical >> PAGE_CACHE_SHIFT;
  297. again:
  298. spin_lock(&fs_info->reada_lock);
  299. re = radix_tree_lookup(&fs_info->reada_tree, index);
  300. if (re)
  301. kref_get(&re->refcnt);
  302. spin_unlock(&fs_info->reada_lock);
  303. if (re || looped)
  304. return re;
  305. re = kzalloc(sizeof(*re), GFP_NOFS);
  306. if (!re)
  307. return NULL;
  308. blocksize = btrfs_level_size(root, level);
  309. re->logical = logical;
  310. re->blocksize = blocksize;
  311. re->top = *top;
  312. INIT_LIST_HEAD(&re->extctl);
  313. spin_lock_init(&re->lock);
  314. kref_init(&re->refcnt);
  315. /*
  316. * map block
  317. */
  318. length = blocksize;
  319. ret = btrfs_map_block(map_tree, REQ_WRITE, logical, &length, &bbio, 0);
  320. if (ret || !bbio || length < blocksize)
  321. goto error;
  322. if (bbio->num_stripes > BTRFS_MAX_MIRRORS) {
  323. printk(KERN_ERR "btrfs readahead: more than %d copies not "
  324. "supported", BTRFS_MAX_MIRRORS);
  325. goto error;
  326. }
  327. for (nzones = 0; nzones < bbio->num_stripes; ++nzones) {
  328. struct reada_zone *zone;
  329. dev = bbio->stripes[nzones].dev;
  330. zone = reada_find_zone(fs_info, dev, logical, bbio);
  331. if (!zone)
  332. break;
  333. re->zones[nzones] = zone;
  334. spin_lock(&zone->lock);
  335. if (!zone->elems)
  336. kref_get(&zone->refcnt);
  337. ++zone->elems;
  338. spin_unlock(&zone->lock);
  339. spin_lock(&fs_info->reada_lock);
  340. kref_put(&zone->refcnt, reada_zone_release);
  341. spin_unlock(&fs_info->reada_lock);
  342. }
  343. re->nzones = nzones;
  344. if (nzones == 0) {
  345. /* not a single zone found, error and out */
  346. goto error;
  347. }
  348. /* insert extent in reada_tree + all per-device trees, all or nothing */
  349. spin_lock(&fs_info->reada_lock);
  350. ret = radix_tree_insert(&fs_info->reada_tree, index, re);
  351. if (ret) {
  352. spin_unlock(&fs_info->reada_lock);
  353. if (ret != -ENOMEM) {
  354. /* someone inserted the extent in the meantime */
  355. looped = 1;
  356. }
  357. goto error;
  358. }
  359. for (i = 0; i < nzones; ++i) {
  360. dev = bbio->stripes[i].dev;
  361. ret = radix_tree_insert(&dev->reada_extents, index, re);
  362. if (ret) {
  363. while (--i >= 0) {
  364. dev = bbio->stripes[i].dev;
  365. BUG_ON(dev == NULL);
  366. radix_tree_delete(&dev->reada_extents, index);
  367. }
  368. BUG_ON(fs_info == NULL);
  369. radix_tree_delete(&fs_info->reada_tree, index);
  370. spin_unlock(&fs_info->reada_lock);
  371. goto error;
  372. }
  373. }
  374. spin_unlock(&fs_info->reada_lock);
  375. kfree(bbio);
  376. return re;
  377. error:
  378. while (nzones) {
  379. struct reada_zone *zone;
  380. --nzones;
  381. zone = re->zones[nzones];
  382. kref_get(&zone->refcnt);
  383. spin_lock(&zone->lock);
  384. --zone->elems;
  385. if (zone->elems == 0) {
  386. /*
  387. * no fs_info->reada_lock needed, as this can't be
  388. * the last ref
  389. */
  390. kref_put(&zone->refcnt, reada_zone_release);
  391. }
  392. spin_unlock(&zone->lock);
  393. spin_lock(&fs_info->reada_lock);
  394. kref_put(&zone->refcnt, reada_zone_release);
  395. spin_unlock(&fs_info->reada_lock);
  396. }
  397. kfree(bbio);
  398. kfree(re);
  399. if (looped)
  400. goto again;
  401. return NULL;
  402. }
  403. static void reada_kref_dummy(struct kref *kr)
  404. {
  405. }
  406. static void reada_extent_put(struct btrfs_fs_info *fs_info,
  407. struct reada_extent *re)
  408. {
  409. int i;
  410. unsigned long index = re->logical >> PAGE_CACHE_SHIFT;
  411. spin_lock(&fs_info->reada_lock);
  412. if (!kref_put(&re->refcnt, reada_kref_dummy)) {
  413. spin_unlock(&fs_info->reada_lock);
  414. return;
  415. }
  416. radix_tree_delete(&fs_info->reada_tree, index);
  417. for (i = 0; i < re->nzones; ++i) {
  418. struct reada_zone *zone = re->zones[i];
  419. radix_tree_delete(&zone->device->reada_extents, index);
  420. }
  421. spin_unlock(&fs_info->reada_lock);
  422. for (i = 0; i < re->nzones; ++i) {
  423. struct reada_zone *zone = re->zones[i];
  424. kref_get(&zone->refcnt);
  425. spin_lock(&zone->lock);
  426. --zone->elems;
  427. if (zone->elems == 0) {
  428. /* no fs_info->reada_lock needed, as this can't be
  429. * the last ref */
  430. kref_put(&zone->refcnt, reada_zone_release);
  431. }
  432. spin_unlock(&zone->lock);
  433. spin_lock(&fs_info->reada_lock);
  434. kref_put(&zone->refcnt, reada_zone_release);
  435. spin_unlock(&fs_info->reada_lock);
  436. }
  437. if (re->scheduled_for)
  438. atomic_dec(&re->scheduled_for->reada_in_flight);
  439. kfree(re);
  440. }
  441. static void reada_zone_release(struct kref *kref)
  442. {
  443. struct reada_zone *zone = container_of(kref, struct reada_zone, refcnt);
  444. radix_tree_delete(&zone->device->reada_zones,
  445. zone->end >> PAGE_CACHE_SHIFT);
  446. kfree(zone);
  447. }
  448. static void reada_control_release(struct kref *kref)
  449. {
  450. struct reada_control *rc = container_of(kref, struct reada_control,
  451. refcnt);
  452. kfree(rc);
  453. }
  454. static int reada_add_block(struct reada_control *rc, u64 logical,
  455. struct btrfs_key *top, int level, u64 generation)
  456. {
  457. struct btrfs_root *root = rc->root;
  458. struct reada_extent *re;
  459. struct reada_extctl *rec;
  460. re = reada_find_extent(root, logical, top, level); /* takes one ref */
  461. if (!re)
  462. return -1;
  463. rec = kzalloc(sizeof(*rec), GFP_NOFS);
  464. if (!rec) {
  465. reada_extent_put(root->fs_info, re);
  466. return -1;
  467. }
  468. rec->rc = rc;
  469. rec->generation = generation;
  470. atomic_inc(&rc->elems);
  471. spin_lock(&re->lock);
  472. list_add_tail(&rec->list, &re->extctl);
  473. spin_unlock(&re->lock);
  474. /* leave the ref on the extent */
  475. return 0;
  476. }
  477. /*
  478. * called with fs_info->reada_lock held
  479. */
  480. static void reada_peer_zones_set_lock(struct reada_zone *zone, int lock)
  481. {
  482. int i;
  483. unsigned long index = zone->end >> PAGE_CACHE_SHIFT;
  484. for (i = 0; i < zone->ndevs; ++i) {
  485. struct reada_zone *peer;
  486. peer = radix_tree_lookup(&zone->devs[i]->reada_zones, index);
  487. if (peer && peer->device != zone->device)
  488. peer->locked = lock;
  489. }
  490. }
  491. /*
  492. * called with fs_info->reada_lock held
  493. */
  494. static int reada_pick_zone(struct btrfs_device *dev)
  495. {
  496. struct reada_zone *top_zone = NULL;
  497. struct reada_zone *top_locked_zone = NULL;
  498. u64 top_elems = 0;
  499. u64 top_locked_elems = 0;
  500. unsigned long index = 0;
  501. int ret;
  502. if (dev->reada_curr_zone) {
  503. reada_peer_zones_set_lock(dev->reada_curr_zone, 0);
  504. kref_put(&dev->reada_curr_zone->refcnt, reada_zone_release);
  505. dev->reada_curr_zone = NULL;
  506. }
  507. /* pick the zone with the most elements */
  508. while (1) {
  509. struct reada_zone *zone;
  510. ret = radix_tree_gang_lookup(&dev->reada_zones,
  511. (void **)&zone, index, 1);
  512. if (ret == 0)
  513. break;
  514. index = (zone->end >> PAGE_CACHE_SHIFT) + 1;
  515. if (zone->locked) {
  516. if (zone->elems > top_locked_elems) {
  517. top_locked_elems = zone->elems;
  518. top_locked_zone = zone;
  519. }
  520. } else {
  521. if (zone->elems > top_elems) {
  522. top_elems = zone->elems;
  523. top_zone = zone;
  524. }
  525. }
  526. }
  527. if (top_zone)
  528. dev->reada_curr_zone = top_zone;
  529. else if (top_locked_zone)
  530. dev->reada_curr_zone = top_locked_zone;
  531. else
  532. return 0;
  533. dev->reada_next = dev->reada_curr_zone->start;
  534. kref_get(&dev->reada_curr_zone->refcnt);
  535. reada_peer_zones_set_lock(dev->reada_curr_zone, 1);
  536. return 1;
  537. }
  538. static int reada_start_machine_dev(struct btrfs_fs_info *fs_info,
  539. struct btrfs_device *dev)
  540. {
  541. struct reada_extent *re = NULL;
  542. int mirror_num = 0;
  543. struct extent_buffer *eb = NULL;
  544. u64 logical;
  545. u32 blocksize;
  546. int ret;
  547. int i;
  548. int need_kick = 0;
  549. spin_lock(&fs_info->reada_lock);
  550. if (dev->reada_curr_zone == NULL) {
  551. ret = reada_pick_zone(dev);
  552. if (!ret) {
  553. spin_unlock(&fs_info->reada_lock);
  554. return 0;
  555. }
  556. }
  557. /*
  558. * FIXME currently we issue the reads one extent at a time. If we have
  559. * a contiguous block of extents, we could also coagulate them or use
  560. * plugging to speed things up
  561. */
  562. ret = radix_tree_gang_lookup(&dev->reada_extents, (void **)&re,
  563. dev->reada_next >> PAGE_CACHE_SHIFT, 1);
  564. if (ret == 0 || re->logical >= dev->reada_curr_zone->end) {
  565. ret = reada_pick_zone(dev);
  566. if (!ret) {
  567. spin_unlock(&fs_info->reada_lock);
  568. return 0;
  569. }
  570. re = NULL;
  571. ret = radix_tree_gang_lookup(&dev->reada_extents, (void **)&re,
  572. dev->reada_next >> PAGE_CACHE_SHIFT, 1);
  573. }
  574. if (ret == 0) {
  575. spin_unlock(&fs_info->reada_lock);
  576. return 0;
  577. }
  578. dev->reada_next = re->logical + re->blocksize;
  579. kref_get(&re->refcnt);
  580. spin_unlock(&fs_info->reada_lock);
  581. /*
  582. * find mirror num
  583. */
  584. for (i = 0; i < re->nzones; ++i) {
  585. if (re->zones[i]->device == dev) {
  586. mirror_num = i + 1;
  587. break;
  588. }
  589. }
  590. logical = re->logical;
  591. blocksize = re->blocksize;
  592. spin_lock(&re->lock);
  593. if (re->scheduled_for == NULL) {
  594. re->scheduled_for = dev;
  595. need_kick = 1;
  596. }
  597. spin_unlock(&re->lock);
  598. reada_extent_put(fs_info, re);
  599. if (!need_kick)
  600. return 0;
  601. atomic_inc(&dev->reada_in_flight);
  602. ret = reada_tree_block_flagged(fs_info->extent_root, logical, blocksize,
  603. mirror_num, &eb);
  604. if (ret)
  605. __readahead_hook(fs_info->extent_root, NULL, logical, ret);
  606. else if (eb)
  607. __readahead_hook(fs_info->extent_root, eb, eb->start, ret);
  608. if (eb)
  609. free_extent_buffer(eb);
  610. return 1;
  611. }
  612. static void reada_start_machine_worker(struct btrfs_work *work)
  613. {
  614. struct reada_machine_work *rmw;
  615. struct btrfs_fs_info *fs_info;
  616. rmw = container_of(work, struct reada_machine_work, work);
  617. fs_info = rmw->fs_info;
  618. kfree(rmw);
  619. __reada_start_machine(fs_info);
  620. }
  621. static void __reada_start_machine(struct btrfs_fs_info *fs_info)
  622. {
  623. struct btrfs_device *device;
  624. struct btrfs_fs_devices *fs_devices = fs_info->fs_devices;
  625. u64 enqueued;
  626. u64 total = 0;
  627. int i;
  628. do {
  629. enqueued = 0;
  630. list_for_each_entry(device, &fs_devices->devices, dev_list) {
  631. if (atomic_read(&device->reada_in_flight) <
  632. MAX_IN_FLIGHT)
  633. enqueued += reada_start_machine_dev(fs_info,
  634. device);
  635. }
  636. total += enqueued;
  637. } while (enqueued && total < 10000);
  638. if (enqueued == 0)
  639. return;
  640. /*
  641. * If everything is already in the cache, this is effectively single
  642. * threaded. To a) not hold the caller for too long and b) to utilize
  643. * more cores, we broke the loop above after 10000 iterations and now
  644. * enqueue to workers to finish it. This will distribute the load to
  645. * the cores.
  646. */
  647. for (i = 0; i < 2; ++i)
  648. reada_start_machine(fs_info);
  649. }
  650. static void reada_start_machine(struct btrfs_fs_info *fs_info)
  651. {
  652. struct reada_machine_work *rmw;
  653. rmw = kzalloc(sizeof(*rmw), GFP_NOFS);
  654. if (!rmw) {
  655. /* FIXME we cannot handle this properly right now */
  656. BUG();
  657. }
  658. rmw->work.func = reada_start_machine_worker;
  659. rmw->fs_info = fs_info;
  660. btrfs_queue_worker(&fs_info->readahead_workers, &rmw->work);
  661. }
  662. #ifdef DEBUG
  663. static void dump_devs(struct btrfs_fs_info *fs_info, int all)
  664. {
  665. struct btrfs_device *device;
  666. struct btrfs_fs_devices *fs_devices = fs_info->fs_devices;
  667. unsigned long index;
  668. int ret;
  669. int i;
  670. int j;
  671. int cnt;
  672. spin_lock(&fs_info->reada_lock);
  673. list_for_each_entry(device, &fs_devices->devices, dev_list) {
  674. printk(KERN_DEBUG "dev %lld has %d in flight\n", device->devid,
  675. atomic_read(&device->reada_in_flight));
  676. index = 0;
  677. while (1) {
  678. struct reada_zone *zone;
  679. ret = radix_tree_gang_lookup(&device->reada_zones,
  680. (void **)&zone, index, 1);
  681. if (ret == 0)
  682. break;
  683. printk(KERN_DEBUG " zone %llu-%llu elems %llu locked "
  684. "%d devs", zone->start, zone->end, zone->elems,
  685. zone->locked);
  686. for (j = 0; j < zone->ndevs; ++j) {
  687. printk(KERN_CONT " %lld",
  688. zone->devs[j]->devid);
  689. }
  690. if (device->reada_curr_zone == zone)
  691. printk(KERN_CONT " curr off %llu",
  692. device->reada_next - zone->start);
  693. printk(KERN_CONT "\n");
  694. index = (zone->end >> PAGE_CACHE_SHIFT) + 1;
  695. }
  696. cnt = 0;
  697. index = 0;
  698. while (all) {
  699. struct reada_extent *re = NULL;
  700. ret = radix_tree_gang_lookup(&device->reada_extents,
  701. (void **)&re, index, 1);
  702. if (ret == 0)
  703. break;
  704. printk(KERN_DEBUG
  705. " re: logical %llu size %u empty %d for %lld",
  706. re->logical, re->blocksize,
  707. list_empty(&re->extctl), re->scheduled_for ?
  708. re->scheduled_for->devid : -1);
  709. for (i = 0; i < re->nzones; ++i) {
  710. printk(KERN_CONT " zone %llu-%llu devs",
  711. re->zones[i]->start,
  712. re->zones[i]->end);
  713. for (j = 0; j < re->zones[i]->ndevs; ++j) {
  714. printk(KERN_CONT " %lld",
  715. re->zones[i]->devs[j]->devid);
  716. }
  717. }
  718. printk(KERN_CONT "\n");
  719. index = (re->logical >> PAGE_CACHE_SHIFT) + 1;
  720. if (++cnt > 15)
  721. break;
  722. }
  723. }
  724. index = 0;
  725. cnt = 0;
  726. while (all) {
  727. struct reada_extent *re = NULL;
  728. ret = radix_tree_gang_lookup(&fs_info->reada_tree, (void **)&re,
  729. index, 1);
  730. if (ret == 0)
  731. break;
  732. if (!re->scheduled_for) {
  733. index = (re->logical >> PAGE_CACHE_SHIFT) + 1;
  734. continue;
  735. }
  736. printk(KERN_DEBUG
  737. "re: logical %llu size %u list empty %d for %lld",
  738. re->logical, re->blocksize, list_empty(&re->extctl),
  739. re->scheduled_for ? re->scheduled_for->devid : -1);
  740. for (i = 0; i < re->nzones; ++i) {
  741. printk(KERN_CONT " zone %llu-%llu devs",
  742. re->zones[i]->start,
  743. re->zones[i]->end);
  744. for (i = 0; i < re->nzones; ++i) {
  745. printk(KERN_CONT " zone %llu-%llu devs",
  746. re->zones[i]->start,
  747. re->zones[i]->end);
  748. for (j = 0; j < re->zones[i]->ndevs; ++j) {
  749. printk(KERN_CONT " %lld",
  750. re->zones[i]->devs[j]->devid);
  751. }
  752. }
  753. }
  754. printk(KERN_CONT "\n");
  755. index = (re->logical >> PAGE_CACHE_SHIFT) + 1;
  756. }
  757. spin_unlock(&fs_info->reada_lock);
  758. }
  759. #endif
  760. /*
  761. * interface
  762. */
  763. struct reada_control *btrfs_reada_add(struct btrfs_root *root,
  764. struct btrfs_key *key_start, struct btrfs_key *key_end)
  765. {
  766. struct reada_control *rc;
  767. u64 start;
  768. u64 generation;
  769. int level;
  770. struct extent_buffer *node;
  771. static struct btrfs_key max_key = {
  772. .objectid = (u64)-1,
  773. .type = (u8)-1,
  774. .offset = (u64)-1
  775. };
  776. rc = kzalloc(sizeof(*rc), GFP_NOFS);
  777. if (!rc)
  778. return ERR_PTR(-ENOMEM);
  779. rc->root = root;
  780. rc->key_start = *key_start;
  781. rc->key_end = *key_end;
  782. atomic_set(&rc->elems, 0);
  783. init_waitqueue_head(&rc->wait);
  784. kref_init(&rc->refcnt);
  785. kref_get(&rc->refcnt); /* one ref for having elements */
  786. node = btrfs_root_node(root);
  787. start = node->start;
  788. level = btrfs_header_level(node);
  789. generation = btrfs_header_generation(node);
  790. free_extent_buffer(node);
  791. reada_add_block(rc, start, &max_key, level, generation);
  792. reada_start_machine(root->fs_info);
  793. return rc;
  794. }
  795. #ifdef DEBUG
  796. int btrfs_reada_wait(void *handle)
  797. {
  798. struct reada_control *rc = handle;
  799. while (atomic_read(&rc->elems)) {
  800. wait_event_timeout(rc->wait, atomic_read(&rc->elems) == 0,
  801. 5 * HZ);
  802. dump_devs(rc->root->fs_info, rc->elems < 10 ? 1 : 0);
  803. }
  804. dump_devs(rc->root->fs_info, rc->elems < 10 ? 1 : 0);
  805. kref_put(&rc->refcnt, reada_control_release);
  806. return 0;
  807. }
  808. #else
  809. int btrfs_reada_wait(void *handle)
  810. {
  811. struct reada_control *rc = handle;
  812. while (atomic_read(&rc->elems)) {
  813. wait_event(rc->wait, atomic_read(&rc->elems) == 0);
  814. }
  815. kref_put(&rc->refcnt, reada_control_release);
  816. return 0;
  817. }
  818. #endif
  819. void btrfs_reada_detach(void *handle)
  820. {
  821. struct reada_control *rc = handle;
  822. kref_put(&rc->refcnt, reada_control_release);
  823. }