raid1.c 78 KB

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  1. /*
  2. * raid1.c : Multiple Devices driver for Linux
  3. *
  4. * Copyright (C) 1999, 2000, 2001 Ingo Molnar, Red Hat
  5. *
  6. * Copyright (C) 1996, 1997, 1998 Ingo Molnar, Miguel de Icaza, Gadi Oxman
  7. *
  8. * RAID-1 management functions.
  9. *
  10. * Better read-balancing code written by Mika Kuoppala <miku@iki.fi>, 2000
  11. *
  12. * Fixes to reconstruction by Jakob Østergaard" <jakob@ostenfeld.dk>
  13. * Various fixes by Neil Brown <neilb@cse.unsw.edu.au>
  14. *
  15. * Changes by Peter T. Breuer <ptb@it.uc3m.es> 31/1/2003 to support
  16. * bitmapped intelligence in resync:
  17. *
  18. * - bitmap marked during normal i/o
  19. * - bitmap used to skip nondirty blocks during sync
  20. *
  21. * Additions to bitmap code, (C) 2003-2004 Paul Clements, SteelEye Technology:
  22. * - persistent bitmap code
  23. *
  24. * This program is free software; you can redistribute it and/or modify
  25. * it under the terms of the GNU General Public License as published by
  26. * the Free Software Foundation; either version 2, or (at your option)
  27. * any later version.
  28. *
  29. * You should have received a copy of the GNU General Public License
  30. * (for example /usr/src/linux/COPYING); if not, write to the Free
  31. * Software Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  32. */
  33. #include <linux/slab.h>
  34. #include <linux/delay.h>
  35. #include <linux/blkdev.h>
  36. #include <linux/module.h>
  37. #include <linux/seq_file.h>
  38. #include <linux/ratelimit.h>
  39. #include "md.h"
  40. #include "raid1.h"
  41. #include "bitmap.h"
  42. /*
  43. * Number of guaranteed r1bios in case of extreme VM load:
  44. */
  45. #define NR_RAID1_BIOS 256
  46. /* When there are this many requests queue to be written by
  47. * the raid1 thread, we become 'congested' to provide back-pressure
  48. * for writeback.
  49. */
  50. static int max_queued_requests = 1024;
  51. static void allow_barrier(struct r1conf *conf);
  52. static void lower_barrier(struct r1conf *conf);
  53. static void * r1bio_pool_alloc(gfp_t gfp_flags, void *data)
  54. {
  55. struct pool_info *pi = data;
  56. int size = offsetof(struct r1bio, bios[pi->raid_disks]);
  57. /* allocate a r1bio with room for raid_disks entries in the bios array */
  58. return kzalloc(size, gfp_flags);
  59. }
  60. static void r1bio_pool_free(void *r1_bio, void *data)
  61. {
  62. kfree(r1_bio);
  63. }
  64. #define RESYNC_BLOCK_SIZE (64*1024)
  65. //#define RESYNC_BLOCK_SIZE PAGE_SIZE
  66. #define RESYNC_SECTORS (RESYNC_BLOCK_SIZE >> 9)
  67. #define RESYNC_PAGES ((RESYNC_BLOCK_SIZE + PAGE_SIZE-1) / PAGE_SIZE)
  68. #define RESYNC_WINDOW (2048*1024)
  69. static void * r1buf_pool_alloc(gfp_t gfp_flags, void *data)
  70. {
  71. struct pool_info *pi = data;
  72. struct page *page;
  73. struct r1bio *r1_bio;
  74. struct bio *bio;
  75. int i, j;
  76. r1_bio = r1bio_pool_alloc(gfp_flags, pi);
  77. if (!r1_bio)
  78. return NULL;
  79. /*
  80. * Allocate bios : 1 for reading, n-1 for writing
  81. */
  82. for (j = pi->raid_disks ; j-- ; ) {
  83. bio = bio_kmalloc(gfp_flags, RESYNC_PAGES);
  84. if (!bio)
  85. goto out_free_bio;
  86. r1_bio->bios[j] = bio;
  87. }
  88. /*
  89. * Allocate RESYNC_PAGES data pages and attach them to
  90. * the first bio.
  91. * If this is a user-requested check/repair, allocate
  92. * RESYNC_PAGES for each bio.
  93. */
  94. if (test_bit(MD_RECOVERY_REQUESTED, &pi->mddev->recovery))
  95. j = pi->raid_disks;
  96. else
  97. j = 1;
  98. while(j--) {
  99. bio = r1_bio->bios[j];
  100. for (i = 0; i < RESYNC_PAGES; i++) {
  101. page = alloc_page(gfp_flags);
  102. if (unlikely(!page))
  103. goto out_free_pages;
  104. bio->bi_io_vec[i].bv_page = page;
  105. bio->bi_vcnt = i+1;
  106. }
  107. }
  108. /* If not user-requests, copy the page pointers to all bios */
  109. if (!test_bit(MD_RECOVERY_REQUESTED, &pi->mddev->recovery)) {
  110. for (i=0; i<RESYNC_PAGES ; i++)
  111. for (j=1; j<pi->raid_disks; j++)
  112. r1_bio->bios[j]->bi_io_vec[i].bv_page =
  113. r1_bio->bios[0]->bi_io_vec[i].bv_page;
  114. }
  115. r1_bio->master_bio = NULL;
  116. return r1_bio;
  117. out_free_pages:
  118. for (j=0 ; j < pi->raid_disks; j++)
  119. for (i=0; i < r1_bio->bios[j]->bi_vcnt ; i++)
  120. put_page(r1_bio->bios[j]->bi_io_vec[i].bv_page);
  121. j = -1;
  122. out_free_bio:
  123. while (++j < pi->raid_disks)
  124. bio_put(r1_bio->bios[j]);
  125. r1bio_pool_free(r1_bio, data);
  126. return NULL;
  127. }
  128. static void r1buf_pool_free(void *__r1_bio, void *data)
  129. {
  130. struct pool_info *pi = data;
  131. int i,j;
  132. struct r1bio *r1bio = __r1_bio;
  133. for (i = 0; i < RESYNC_PAGES; i++)
  134. for (j = pi->raid_disks; j-- ;) {
  135. if (j == 0 ||
  136. r1bio->bios[j]->bi_io_vec[i].bv_page !=
  137. r1bio->bios[0]->bi_io_vec[i].bv_page)
  138. safe_put_page(r1bio->bios[j]->bi_io_vec[i].bv_page);
  139. }
  140. for (i=0 ; i < pi->raid_disks; i++)
  141. bio_put(r1bio->bios[i]);
  142. r1bio_pool_free(r1bio, data);
  143. }
  144. static void put_all_bios(struct r1conf *conf, struct r1bio *r1_bio)
  145. {
  146. int i;
  147. for (i = 0; i < conf->raid_disks * 2; i++) {
  148. struct bio **bio = r1_bio->bios + i;
  149. if (!BIO_SPECIAL(*bio))
  150. bio_put(*bio);
  151. *bio = NULL;
  152. }
  153. }
  154. static void free_r1bio(struct r1bio *r1_bio)
  155. {
  156. struct r1conf *conf = r1_bio->mddev->private;
  157. put_all_bios(conf, r1_bio);
  158. mempool_free(r1_bio, conf->r1bio_pool);
  159. }
  160. static void put_buf(struct r1bio *r1_bio)
  161. {
  162. struct r1conf *conf = r1_bio->mddev->private;
  163. int i;
  164. for (i = 0; i < conf->raid_disks * 2; i++) {
  165. struct bio *bio = r1_bio->bios[i];
  166. if (bio->bi_end_io)
  167. rdev_dec_pending(conf->mirrors[i].rdev, r1_bio->mddev);
  168. }
  169. mempool_free(r1_bio, conf->r1buf_pool);
  170. lower_barrier(conf);
  171. }
  172. static void reschedule_retry(struct r1bio *r1_bio)
  173. {
  174. unsigned long flags;
  175. struct mddev *mddev = r1_bio->mddev;
  176. struct r1conf *conf = mddev->private;
  177. spin_lock_irqsave(&conf->device_lock, flags);
  178. list_add(&r1_bio->retry_list, &conf->retry_list);
  179. conf->nr_queued ++;
  180. spin_unlock_irqrestore(&conf->device_lock, flags);
  181. wake_up(&conf->wait_barrier);
  182. md_wakeup_thread(mddev->thread);
  183. }
  184. /*
  185. * raid_end_bio_io() is called when we have finished servicing a mirrored
  186. * operation and are ready to return a success/failure code to the buffer
  187. * cache layer.
  188. */
  189. static void call_bio_endio(struct r1bio *r1_bio)
  190. {
  191. struct bio *bio = r1_bio->master_bio;
  192. int done;
  193. struct r1conf *conf = r1_bio->mddev->private;
  194. if (bio->bi_phys_segments) {
  195. unsigned long flags;
  196. spin_lock_irqsave(&conf->device_lock, flags);
  197. bio->bi_phys_segments--;
  198. done = (bio->bi_phys_segments == 0);
  199. spin_unlock_irqrestore(&conf->device_lock, flags);
  200. } else
  201. done = 1;
  202. if (!test_bit(R1BIO_Uptodate, &r1_bio->state))
  203. clear_bit(BIO_UPTODATE, &bio->bi_flags);
  204. if (done) {
  205. bio_endio(bio, 0);
  206. /*
  207. * Wake up any possible resync thread that waits for the device
  208. * to go idle.
  209. */
  210. allow_barrier(conf);
  211. }
  212. }
  213. static void raid_end_bio_io(struct r1bio *r1_bio)
  214. {
  215. struct bio *bio = r1_bio->master_bio;
  216. /* if nobody has done the final endio yet, do it now */
  217. if (!test_and_set_bit(R1BIO_Returned, &r1_bio->state)) {
  218. pr_debug("raid1: sync end %s on sectors %llu-%llu\n",
  219. (bio_data_dir(bio) == WRITE) ? "write" : "read",
  220. (unsigned long long) bio->bi_sector,
  221. (unsigned long long) bio->bi_sector +
  222. (bio->bi_size >> 9) - 1);
  223. call_bio_endio(r1_bio);
  224. }
  225. free_r1bio(r1_bio);
  226. }
  227. /*
  228. * Update disk head position estimator based on IRQ completion info.
  229. */
  230. static inline void update_head_pos(int disk, struct r1bio *r1_bio)
  231. {
  232. struct r1conf *conf = r1_bio->mddev->private;
  233. conf->mirrors[disk].head_position =
  234. r1_bio->sector + (r1_bio->sectors);
  235. }
  236. /*
  237. * Find the disk number which triggered given bio
  238. */
  239. static int find_bio_disk(struct r1bio *r1_bio, struct bio *bio)
  240. {
  241. int mirror;
  242. struct r1conf *conf = r1_bio->mddev->private;
  243. int raid_disks = conf->raid_disks;
  244. for (mirror = 0; mirror < raid_disks * 2; mirror++)
  245. if (r1_bio->bios[mirror] == bio)
  246. break;
  247. BUG_ON(mirror == raid_disks * 2);
  248. update_head_pos(mirror, r1_bio);
  249. return mirror;
  250. }
  251. static void raid1_end_read_request(struct bio *bio, int error)
  252. {
  253. int uptodate = test_bit(BIO_UPTODATE, &bio->bi_flags);
  254. struct r1bio *r1_bio = bio->bi_private;
  255. int mirror;
  256. struct r1conf *conf = r1_bio->mddev->private;
  257. mirror = r1_bio->read_disk;
  258. /*
  259. * this branch is our 'one mirror IO has finished' event handler:
  260. */
  261. update_head_pos(mirror, r1_bio);
  262. if (uptodate)
  263. set_bit(R1BIO_Uptodate, &r1_bio->state);
  264. else {
  265. /* If all other devices have failed, we want to return
  266. * the error upwards rather than fail the last device.
  267. * Here we redefine "uptodate" to mean "Don't want to retry"
  268. */
  269. unsigned long flags;
  270. spin_lock_irqsave(&conf->device_lock, flags);
  271. if (r1_bio->mddev->degraded == conf->raid_disks ||
  272. (r1_bio->mddev->degraded == conf->raid_disks-1 &&
  273. !test_bit(Faulty, &conf->mirrors[mirror].rdev->flags)))
  274. uptodate = 1;
  275. spin_unlock_irqrestore(&conf->device_lock, flags);
  276. }
  277. if (uptodate)
  278. raid_end_bio_io(r1_bio);
  279. else {
  280. /*
  281. * oops, read error:
  282. */
  283. char b[BDEVNAME_SIZE];
  284. printk_ratelimited(
  285. KERN_ERR "md/raid1:%s: %s: "
  286. "rescheduling sector %llu\n",
  287. mdname(conf->mddev),
  288. bdevname(conf->mirrors[mirror].rdev->bdev,
  289. b),
  290. (unsigned long long)r1_bio->sector);
  291. set_bit(R1BIO_ReadError, &r1_bio->state);
  292. reschedule_retry(r1_bio);
  293. }
  294. rdev_dec_pending(conf->mirrors[mirror].rdev, conf->mddev);
  295. }
  296. static void close_write(struct r1bio *r1_bio)
  297. {
  298. /* it really is the end of this request */
  299. if (test_bit(R1BIO_BehindIO, &r1_bio->state)) {
  300. /* free extra copy of the data pages */
  301. int i = r1_bio->behind_page_count;
  302. while (i--)
  303. safe_put_page(r1_bio->behind_bvecs[i].bv_page);
  304. kfree(r1_bio->behind_bvecs);
  305. r1_bio->behind_bvecs = NULL;
  306. }
  307. /* clear the bitmap if all writes complete successfully */
  308. bitmap_endwrite(r1_bio->mddev->bitmap, r1_bio->sector,
  309. r1_bio->sectors,
  310. !test_bit(R1BIO_Degraded, &r1_bio->state),
  311. test_bit(R1BIO_BehindIO, &r1_bio->state));
  312. md_write_end(r1_bio->mddev);
  313. }
  314. static void r1_bio_write_done(struct r1bio *r1_bio)
  315. {
  316. if (!atomic_dec_and_test(&r1_bio->remaining))
  317. return;
  318. if (test_bit(R1BIO_WriteError, &r1_bio->state))
  319. reschedule_retry(r1_bio);
  320. else {
  321. close_write(r1_bio);
  322. if (test_bit(R1BIO_MadeGood, &r1_bio->state))
  323. reschedule_retry(r1_bio);
  324. else
  325. raid_end_bio_io(r1_bio);
  326. }
  327. }
  328. static void raid1_end_write_request(struct bio *bio, int error)
  329. {
  330. int uptodate = test_bit(BIO_UPTODATE, &bio->bi_flags);
  331. struct r1bio *r1_bio = bio->bi_private;
  332. int mirror, behind = test_bit(R1BIO_BehindIO, &r1_bio->state);
  333. struct r1conf *conf = r1_bio->mddev->private;
  334. struct bio *to_put = NULL;
  335. mirror = find_bio_disk(r1_bio, bio);
  336. /*
  337. * 'one mirror IO has finished' event handler:
  338. */
  339. if (!uptodate) {
  340. set_bit(WriteErrorSeen,
  341. &conf->mirrors[mirror].rdev->flags);
  342. if (!test_and_set_bit(WantReplacement,
  343. &conf->mirrors[mirror].rdev->flags))
  344. set_bit(MD_RECOVERY_NEEDED, &
  345. conf->mddev->recovery);
  346. set_bit(R1BIO_WriteError, &r1_bio->state);
  347. } else {
  348. /*
  349. * Set R1BIO_Uptodate in our master bio, so that we
  350. * will return a good error code for to the higher
  351. * levels even if IO on some other mirrored buffer
  352. * fails.
  353. *
  354. * The 'master' represents the composite IO operation
  355. * to user-side. So if something waits for IO, then it
  356. * will wait for the 'master' bio.
  357. */
  358. sector_t first_bad;
  359. int bad_sectors;
  360. r1_bio->bios[mirror] = NULL;
  361. to_put = bio;
  362. set_bit(R1BIO_Uptodate, &r1_bio->state);
  363. /* Maybe we can clear some bad blocks. */
  364. if (is_badblock(conf->mirrors[mirror].rdev,
  365. r1_bio->sector, r1_bio->sectors,
  366. &first_bad, &bad_sectors)) {
  367. r1_bio->bios[mirror] = IO_MADE_GOOD;
  368. set_bit(R1BIO_MadeGood, &r1_bio->state);
  369. }
  370. }
  371. if (behind) {
  372. if (test_bit(WriteMostly, &conf->mirrors[mirror].rdev->flags))
  373. atomic_dec(&r1_bio->behind_remaining);
  374. /*
  375. * In behind mode, we ACK the master bio once the I/O
  376. * has safely reached all non-writemostly
  377. * disks. Setting the Returned bit ensures that this
  378. * gets done only once -- we don't ever want to return
  379. * -EIO here, instead we'll wait
  380. */
  381. if (atomic_read(&r1_bio->behind_remaining) >= (atomic_read(&r1_bio->remaining)-1) &&
  382. test_bit(R1BIO_Uptodate, &r1_bio->state)) {
  383. /* Maybe we can return now */
  384. if (!test_and_set_bit(R1BIO_Returned, &r1_bio->state)) {
  385. struct bio *mbio = r1_bio->master_bio;
  386. pr_debug("raid1: behind end write sectors"
  387. " %llu-%llu\n",
  388. (unsigned long long) mbio->bi_sector,
  389. (unsigned long long) mbio->bi_sector +
  390. (mbio->bi_size >> 9) - 1);
  391. call_bio_endio(r1_bio);
  392. }
  393. }
  394. }
  395. if (r1_bio->bios[mirror] == NULL)
  396. rdev_dec_pending(conf->mirrors[mirror].rdev,
  397. conf->mddev);
  398. /*
  399. * Let's see if all mirrored write operations have finished
  400. * already.
  401. */
  402. r1_bio_write_done(r1_bio);
  403. if (to_put)
  404. bio_put(to_put);
  405. }
  406. /*
  407. * This routine returns the disk from which the requested read should
  408. * be done. There is a per-array 'next expected sequential IO' sector
  409. * number - if this matches on the next IO then we use the last disk.
  410. * There is also a per-disk 'last know head position' sector that is
  411. * maintained from IRQ contexts, both the normal and the resync IO
  412. * completion handlers update this position correctly. If there is no
  413. * perfect sequential match then we pick the disk whose head is closest.
  414. *
  415. * If there are 2 mirrors in the same 2 devices, performance degrades
  416. * because position is mirror, not device based.
  417. *
  418. * The rdev for the device selected will have nr_pending incremented.
  419. */
  420. static int read_balance(struct r1conf *conf, struct r1bio *r1_bio, int *max_sectors)
  421. {
  422. const sector_t this_sector = r1_bio->sector;
  423. int sectors;
  424. int best_good_sectors;
  425. int start_disk;
  426. int best_disk;
  427. int i;
  428. sector_t best_dist;
  429. struct md_rdev *rdev;
  430. int choose_first;
  431. rcu_read_lock();
  432. /*
  433. * Check if we can balance. We can balance on the whole
  434. * device if no resync is going on, or below the resync window.
  435. * We take the first readable disk when above the resync window.
  436. */
  437. retry:
  438. sectors = r1_bio->sectors;
  439. best_disk = -1;
  440. best_dist = MaxSector;
  441. best_good_sectors = 0;
  442. if (conf->mddev->recovery_cp < MaxSector &&
  443. (this_sector + sectors >= conf->next_resync)) {
  444. choose_first = 1;
  445. start_disk = 0;
  446. } else {
  447. choose_first = 0;
  448. start_disk = conf->last_used;
  449. }
  450. for (i = 0 ; i < conf->raid_disks * 2 ; i++) {
  451. sector_t dist;
  452. sector_t first_bad;
  453. int bad_sectors;
  454. int disk = start_disk + i;
  455. if (disk >= conf->raid_disks)
  456. disk -= conf->raid_disks;
  457. rdev = rcu_dereference(conf->mirrors[disk].rdev);
  458. if (r1_bio->bios[disk] == IO_BLOCKED
  459. || rdev == NULL
  460. || test_bit(Unmerged, &rdev->flags)
  461. || test_bit(Faulty, &rdev->flags))
  462. continue;
  463. if (!test_bit(In_sync, &rdev->flags) &&
  464. rdev->recovery_offset < this_sector + sectors)
  465. continue;
  466. if (test_bit(WriteMostly, &rdev->flags)) {
  467. /* Don't balance among write-mostly, just
  468. * use the first as a last resort */
  469. if (best_disk < 0) {
  470. if (is_badblock(rdev, this_sector, sectors,
  471. &first_bad, &bad_sectors)) {
  472. if (first_bad < this_sector)
  473. /* Cannot use this */
  474. continue;
  475. best_good_sectors = first_bad - this_sector;
  476. } else
  477. best_good_sectors = sectors;
  478. best_disk = disk;
  479. }
  480. continue;
  481. }
  482. /* This is a reasonable device to use. It might
  483. * even be best.
  484. */
  485. if (is_badblock(rdev, this_sector, sectors,
  486. &first_bad, &bad_sectors)) {
  487. if (best_dist < MaxSector)
  488. /* already have a better device */
  489. continue;
  490. if (first_bad <= this_sector) {
  491. /* cannot read here. If this is the 'primary'
  492. * device, then we must not read beyond
  493. * bad_sectors from another device..
  494. */
  495. bad_sectors -= (this_sector - first_bad);
  496. if (choose_first && sectors > bad_sectors)
  497. sectors = bad_sectors;
  498. if (best_good_sectors > sectors)
  499. best_good_sectors = sectors;
  500. } else {
  501. sector_t good_sectors = first_bad - this_sector;
  502. if (good_sectors > best_good_sectors) {
  503. best_good_sectors = good_sectors;
  504. best_disk = disk;
  505. }
  506. if (choose_first)
  507. break;
  508. }
  509. continue;
  510. } else
  511. best_good_sectors = sectors;
  512. dist = abs(this_sector - conf->mirrors[disk].head_position);
  513. if (choose_first
  514. /* Don't change to another disk for sequential reads */
  515. || conf->next_seq_sect == this_sector
  516. || dist == 0
  517. /* If device is idle, use it */
  518. || atomic_read(&rdev->nr_pending) == 0) {
  519. best_disk = disk;
  520. break;
  521. }
  522. if (dist < best_dist) {
  523. best_dist = dist;
  524. best_disk = disk;
  525. }
  526. }
  527. if (best_disk >= 0) {
  528. rdev = rcu_dereference(conf->mirrors[best_disk].rdev);
  529. if (!rdev)
  530. goto retry;
  531. atomic_inc(&rdev->nr_pending);
  532. if (test_bit(Faulty, &rdev->flags)) {
  533. /* cannot risk returning a device that failed
  534. * before we inc'ed nr_pending
  535. */
  536. rdev_dec_pending(rdev, conf->mddev);
  537. goto retry;
  538. }
  539. sectors = best_good_sectors;
  540. conf->next_seq_sect = this_sector + sectors;
  541. conf->last_used = best_disk;
  542. }
  543. rcu_read_unlock();
  544. *max_sectors = sectors;
  545. return best_disk;
  546. }
  547. static int raid1_mergeable_bvec(struct request_queue *q,
  548. struct bvec_merge_data *bvm,
  549. struct bio_vec *biovec)
  550. {
  551. struct mddev *mddev = q->queuedata;
  552. struct r1conf *conf = mddev->private;
  553. sector_t sector = bvm->bi_sector + get_start_sect(bvm->bi_bdev);
  554. int max = biovec->bv_len;
  555. if (mddev->merge_check_needed) {
  556. int disk;
  557. rcu_read_lock();
  558. for (disk = 0; disk < conf->raid_disks * 2; disk++) {
  559. struct md_rdev *rdev = rcu_dereference(
  560. conf->mirrors[disk].rdev);
  561. if (rdev && !test_bit(Faulty, &rdev->flags)) {
  562. struct request_queue *q =
  563. bdev_get_queue(rdev->bdev);
  564. if (q->merge_bvec_fn) {
  565. bvm->bi_sector = sector +
  566. rdev->data_offset;
  567. bvm->bi_bdev = rdev->bdev;
  568. max = min(max, q->merge_bvec_fn(
  569. q, bvm, biovec));
  570. }
  571. }
  572. }
  573. rcu_read_unlock();
  574. }
  575. return max;
  576. }
  577. int md_raid1_congested(struct mddev *mddev, int bits)
  578. {
  579. struct r1conf *conf = mddev->private;
  580. int i, ret = 0;
  581. if ((bits & (1 << BDI_async_congested)) &&
  582. conf->pending_count >= max_queued_requests)
  583. return 1;
  584. rcu_read_lock();
  585. for (i = 0; i < conf->raid_disks * 2; i++) {
  586. struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
  587. if (rdev && !test_bit(Faulty, &rdev->flags)) {
  588. struct request_queue *q = bdev_get_queue(rdev->bdev);
  589. BUG_ON(!q);
  590. /* Note the '|| 1' - when read_balance prefers
  591. * non-congested targets, it can be removed
  592. */
  593. if ((bits & (1<<BDI_async_congested)) || 1)
  594. ret |= bdi_congested(&q->backing_dev_info, bits);
  595. else
  596. ret &= bdi_congested(&q->backing_dev_info, bits);
  597. }
  598. }
  599. rcu_read_unlock();
  600. return ret;
  601. }
  602. EXPORT_SYMBOL_GPL(md_raid1_congested);
  603. static int raid1_congested(void *data, int bits)
  604. {
  605. struct mddev *mddev = data;
  606. return mddev_congested(mddev, bits) ||
  607. md_raid1_congested(mddev, bits);
  608. }
  609. static void flush_pending_writes(struct r1conf *conf)
  610. {
  611. /* Any writes that have been queued but are awaiting
  612. * bitmap updates get flushed here.
  613. */
  614. spin_lock_irq(&conf->device_lock);
  615. if (conf->pending_bio_list.head) {
  616. struct bio *bio;
  617. bio = bio_list_get(&conf->pending_bio_list);
  618. conf->pending_count = 0;
  619. spin_unlock_irq(&conf->device_lock);
  620. /* flush any pending bitmap writes to
  621. * disk before proceeding w/ I/O */
  622. bitmap_unplug(conf->mddev->bitmap);
  623. wake_up(&conf->wait_barrier);
  624. while (bio) { /* submit pending writes */
  625. struct bio *next = bio->bi_next;
  626. bio->bi_next = NULL;
  627. generic_make_request(bio);
  628. bio = next;
  629. }
  630. } else
  631. spin_unlock_irq(&conf->device_lock);
  632. }
  633. /* Barriers....
  634. * Sometimes we need to suspend IO while we do something else,
  635. * either some resync/recovery, or reconfigure the array.
  636. * To do this we raise a 'barrier'.
  637. * The 'barrier' is a counter that can be raised multiple times
  638. * to count how many activities are happening which preclude
  639. * normal IO.
  640. * We can only raise the barrier if there is no pending IO.
  641. * i.e. if nr_pending == 0.
  642. * We choose only to raise the barrier if no-one is waiting for the
  643. * barrier to go down. This means that as soon as an IO request
  644. * is ready, no other operations which require a barrier will start
  645. * until the IO request has had a chance.
  646. *
  647. * So: regular IO calls 'wait_barrier'. When that returns there
  648. * is no backgroup IO happening, It must arrange to call
  649. * allow_barrier when it has finished its IO.
  650. * backgroup IO calls must call raise_barrier. Once that returns
  651. * there is no normal IO happeing. It must arrange to call
  652. * lower_barrier when the particular background IO completes.
  653. */
  654. #define RESYNC_DEPTH 32
  655. static void raise_barrier(struct r1conf *conf)
  656. {
  657. spin_lock_irq(&conf->resync_lock);
  658. /* Wait until no block IO is waiting */
  659. wait_event_lock_irq(conf->wait_barrier, !conf->nr_waiting,
  660. conf->resync_lock, );
  661. /* block any new IO from starting */
  662. conf->barrier++;
  663. /* Now wait for all pending IO to complete */
  664. wait_event_lock_irq(conf->wait_barrier,
  665. !conf->nr_pending && conf->barrier < RESYNC_DEPTH,
  666. conf->resync_lock, );
  667. spin_unlock_irq(&conf->resync_lock);
  668. }
  669. static void lower_barrier(struct r1conf *conf)
  670. {
  671. unsigned long flags;
  672. BUG_ON(conf->barrier <= 0);
  673. spin_lock_irqsave(&conf->resync_lock, flags);
  674. conf->barrier--;
  675. spin_unlock_irqrestore(&conf->resync_lock, flags);
  676. wake_up(&conf->wait_barrier);
  677. }
  678. static void wait_barrier(struct r1conf *conf)
  679. {
  680. spin_lock_irq(&conf->resync_lock);
  681. if (conf->barrier) {
  682. conf->nr_waiting++;
  683. /* Wait for the barrier to drop.
  684. * However if there are already pending
  685. * requests (preventing the barrier from
  686. * rising completely), and the
  687. * pre-process bio queue isn't empty,
  688. * then don't wait, as we need to empty
  689. * that queue to get the nr_pending
  690. * count down.
  691. */
  692. wait_event_lock_irq(conf->wait_barrier,
  693. !conf->barrier ||
  694. (conf->nr_pending &&
  695. current->bio_list &&
  696. !bio_list_empty(current->bio_list)),
  697. conf->resync_lock,
  698. );
  699. conf->nr_waiting--;
  700. }
  701. conf->nr_pending++;
  702. spin_unlock_irq(&conf->resync_lock);
  703. }
  704. static void allow_barrier(struct r1conf *conf)
  705. {
  706. unsigned long flags;
  707. spin_lock_irqsave(&conf->resync_lock, flags);
  708. conf->nr_pending--;
  709. spin_unlock_irqrestore(&conf->resync_lock, flags);
  710. wake_up(&conf->wait_barrier);
  711. }
  712. static void freeze_array(struct r1conf *conf)
  713. {
  714. /* stop syncio and normal IO and wait for everything to
  715. * go quite.
  716. * We increment barrier and nr_waiting, and then
  717. * wait until nr_pending match nr_queued+1
  718. * This is called in the context of one normal IO request
  719. * that has failed. Thus any sync request that might be pending
  720. * will be blocked by nr_pending, and we need to wait for
  721. * pending IO requests to complete or be queued for re-try.
  722. * Thus the number queued (nr_queued) plus this request (1)
  723. * must match the number of pending IOs (nr_pending) before
  724. * we continue.
  725. */
  726. spin_lock_irq(&conf->resync_lock);
  727. conf->barrier++;
  728. conf->nr_waiting++;
  729. wait_event_lock_irq(conf->wait_barrier,
  730. conf->nr_pending == conf->nr_queued+1,
  731. conf->resync_lock,
  732. flush_pending_writes(conf));
  733. spin_unlock_irq(&conf->resync_lock);
  734. }
  735. static void unfreeze_array(struct r1conf *conf)
  736. {
  737. /* reverse the effect of the freeze */
  738. spin_lock_irq(&conf->resync_lock);
  739. conf->barrier--;
  740. conf->nr_waiting--;
  741. wake_up(&conf->wait_barrier);
  742. spin_unlock_irq(&conf->resync_lock);
  743. }
  744. /* duplicate the data pages for behind I/O
  745. */
  746. static void alloc_behind_pages(struct bio *bio, struct r1bio *r1_bio)
  747. {
  748. int i;
  749. struct bio_vec *bvec;
  750. struct bio_vec *bvecs = kzalloc(bio->bi_vcnt * sizeof(struct bio_vec),
  751. GFP_NOIO);
  752. if (unlikely(!bvecs))
  753. return;
  754. bio_for_each_segment(bvec, bio, i) {
  755. bvecs[i] = *bvec;
  756. bvecs[i].bv_page = alloc_page(GFP_NOIO);
  757. if (unlikely(!bvecs[i].bv_page))
  758. goto do_sync_io;
  759. memcpy(kmap(bvecs[i].bv_page) + bvec->bv_offset,
  760. kmap(bvec->bv_page) + bvec->bv_offset, bvec->bv_len);
  761. kunmap(bvecs[i].bv_page);
  762. kunmap(bvec->bv_page);
  763. }
  764. r1_bio->behind_bvecs = bvecs;
  765. r1_bio->behind_page_count = bio->bi_vcnt;
  766. set_bit(R1BIO_BehindIO, &r1_bio->state);
  767. return;
  768. do_sync_io:
  769. for (i = 0; i < bio->bi_vcnt; i++)
  770. if (bvecs[i].bv_page)
  771. put_page(bvecs[i].bv_page);
  772. kfree(bvecs);
  773. pr_debug("%dB behind alloc failed, doing sync I/O\n", bio->bi_size);
  774. }
  775. static void make_request(struct mddev *mddev, struct bio * bio)
  776. {
  777. struct r1conf *conf = mddev->private;
  778. struct mirror_info *mirror;
  779. struct r1bio *r1_bio;
  780. struct bio *read_bio;
  781. int i, disks;
  782. struct bitmap *bitmap;
  783. unsigned long flags;
  784. const int rw = bio_data_dir(bio);
  785. const unsigned long do_sync = (bio->bi_rw & REQ_SYNC);
  786. const unsigned long do_flush_fua = (bio->bi_rw & (REQ_FLUSH | REQ_FUA));
  787. struct md_rdev *blocked_rdev;
  788. int plugged;
  789. int first_clone;
  790. int sectors_handled;
  791. int max_sectors;
  792. /*
  793. * Register the new request and wait if the reconstruction
  794. * thread has put up a bar for new requests.
  795. * Continue immediately if no resync is active currently.
  796. */
  797. md_write_start(mddev, bio); /* wait on superblock update early */
  798. if (bio_data_dir(bio) == WRITE &&
  799. bio->bi_sector + bio->bi_size/512 > mddev->suspend_lo &&
  800. bio->bi_sector < mddev->suspend_hi) {
  801. /* As the suspend_* range is controlled by
  802. * userspace, we want an interruptible
  803. * wait.
  804. */
  805. DEFINE_WAIT(w);
  806. for (;;) {
  807. flush_signals(current);
  808. prepare_to_wait(&conf->wait_barrier,
  809. &w, TASK_INTERRUPTIBLE);
  810. if (bio->bi_sector + bio->bi_size/512 <= mddev->suspend_lo ||
  811. bio->bi_sector >= mddev->suspend_hi)
  812. break;
  813. schedule();
  814. }
  815. finish_wait(&conf->wait_barrier, &w);
  816. }
  817. wait_barrier(conf);
  818. bitmap = mddev->bitmap;
  819. /*
  820. * make_request() can abort the operation when READA is being
  821. * used and no empty request is available.
  822. *
  823. */
  824. r1_bio = mempool_alloc(conf->r1bio_pool, GFP_NOIO);
  825. r1_bio->master_bio = bio;
  826. r1_bio->sectors = bio->bi_size >> 9;
  827. r1_bio->state = 0;
  828. r1_bio->mddev = mddev;
  829. r1_bio->sector = bio->bi_sector;
  830. /* We might need to issue multiple reads to different
  831. * devices if there are bad blocks around, so we keep
  832. * track of the number of reads in bio->bi_phys_segments.
  833. * If this is 0, there is only one r1_bio and no locking
  834. * will be needed when requests complete. If it is
  835. * non-zero, then it is the number of not-completed requests.
  836. */
  837. bio->bi_phys_segments = 0;
  838. clear_bit(BIO_SEG_VALID, &bio->bi_flags);
  839. if (rw == READ) {
  840. /*
  841. * read balancing logic:
  842. */
  843. int rdisk;
  844. read_again:
  845. rdisk = read_balance(conf, r1_bio, &max_sectors);
  846. if (rdisk < 0) {
  847. /* couldn't find anywhere to read from */
  848. raid_end_bio_io(r1_bio);
  849. return;
  850. }
  851. mirror = conf->mirrors + rdisk;
  852. if (test_bit(WriteMostly, &mirror->rdev->flags) &&
  853. bitmap) {
  854. /* Reading from a write-mostly device must
  855. * take care not to over-take any writes
  856. * that are 'behind'
  857. */
  858. wait_event(bitmap->behind_wait,
  859. atomic_read(&bitmap->behind_writes) == 0);
  860. }
  861. r1_bio->read_disk = rdisk;
  862. read_bio = bio_clone_mddev(bio, GFP_NOIO, mddev);
  863. md_trim_bio(read_bio, r1_bio->sector - bio->bi_sector,
  864. max_sectors);
  865. r1_bio->bios[rdisk] = read_bio;
  866. read_bio->bi_sector = r1_bio->sector + mirror->rdev->data_offset;
  867. read_bio->bi_bdev = mirror->rdev->bdev;
  868. read_bio->bi_end_io = raid1_end_read_request;
  869. read_bio->bi_rw = READ | do_sync;
  870. read_bio->bi_private = r1_bio;
  871. if (max_sectors < r1_bio->sectors) {
  872. /* could not read all from this device, so we will
  873. * need another r1_bio.
  874. */
  875. sectors_handled = (r1_bio->sector + max_sectors
  876. - bio->bi_sector);
  877. r1_bio->sectors = max_sectors;
  878. spin_lock_irq(&conf->device_lock);
  879. if (bio->bi_phys_segments == 0)
  880. bio->bi_phys_segments = 2;
  881. else
  882. bio->bi_phys_segments++;
  883. spin_unlock_irq(&conf->device_lock);
  884. /* Cannot call generic_make_request directly
  885. * as that will be queued in __make_request
  886. * and subsequent mempool_alloc might block waiting
  887. * for it. So hand bio over to raid1d.
  888. */
  889. reschedule_retry(r1_bio);
  890. r1_bio = mempool_alloc(conf->r1bio_pool, GFP_NOIO);
  891. r1_bio->master_bio = bio;
  892. r1_bio->sectors = (bio->bi_size >> 9) - sectors_handled;
  893. r1_bio->state = 0;
  894. r1_bio->mddev = mddev;
  895. r1_bio->sector = bio->bi_sector + sectors_handled;
  896. goto read_again;
  897. } else
  898. generic_make_request(read_bio);
  899. return;
  900. }
  901. /*
  902. * WRITE:
  903. */
  904. if (conf->pending_count >= max_queued_requests) {
  905. md_wakeup_thread(mddev->thread);
  906. wait_event(conf->wait_barrier,
  907. conf->pending_count < max_queued_requests);
  908. }
  909. /* first select target devices under rcu_lock and
  910. * inc refcount on their rdev. Record them by setting
  911. * bios[x] to bio
  912. * If there are known/acknowledged bad blocks on any device on
  913. * which we have seen a write error, we want to avoid writing those
  914. * blocks.
  915. * This potentially requires several writes to write around
  916. * the bad blocks. Each set of writes gets it's own r1bio
  917. * with a set of bios attached.
  918. */
  919. plugged = mddev_check_plugged(mddev);
  920. disks = conf->raid_disks * 2;
  921. retry_write:
  922. blocked_rdev = NULL;
  923. rcu_read_lock();
  924. max_sectors = r1_bio->sectors;
  925. for (i = 0; i < disks; i++) {
  926. struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
  927. if (rdev && unlikely(test_bit(Blocked, &rdev->flags))) {
  928. atomic_inc(&rdev->nr_pending);
  929. blocked_rdev = rdev;
  930. break;
  931. }
  932. r1_bio->bios[i] = NULL;
  933. if (!rdev || test_bit(Faulty, &rdev->flags)
  934. || test_bit(Unmerged, &rdev->flags)) {
  935. if (i < conf->raid_disks)
  936. set_bit(R1BIO_Degraded, &r1_bio->state);
  937. continue;
  938. }
  939. atomic_inc(&rdev->nr_pending);
  940. if (test_bit(WriteErrorSeen, &rdev->flags)) {
  941. sector_t first_bad;
  942. int bad_sectors;
  943. int is_bad;
  944. is_bad = is_badblock(rdev, r1_bio->sector,
  945. max_sectors,
  946. &first_bad, &bad_sectors);
  947. if (is_bad < 0) {
  948. /* mustn't write here until the bad block is
  949. * acknowledged*/
  950. set_bit(BlockedBadBlocks, &rdev->flags);
  951. blocked_rdev = rdev;
  952. break;
  953. }
  954. if (is_bad && first_bad <= r1_bio->sector) {
  955. /* Cannot write here at all */
  956. bad_sectors -= (r1_bio->sector - first_bad);
  957. if (bad_sectors < max_sectors)
  958. /* mustn't write more than bad_sectors
  959. * to other devices yet
  960. */
  961. max_sectors = bad_sectors;
  962. rdev_dec_pending(rdev, mddev);
  963. /* We don't set R1BIO_Degraded as that
  964. * only applies if the disk is
  965. * missing, so it might be re-added,
  966. * and we want to know to recover this
  967. * chunk.
  968. * In this case the device is here,
  969. * and the fact that this chunk is not
  970. * in-sync is recorded in the bad
  971. * block log
  972. */
  973. continue;
  974. }
  975. if (is_bad) {
  976. int good_sectors = first_bad - r1_bio->sector;
  977. if (good_sectors < max_sectors)
  978. max_sectors = good_sectors;
  979. }
  980. }
  981. r1_bio->bios[i] = bio;
  982. }
  983. rcu_read_unlock();
  984. if (unlikely(blocked_rdev)) {
  985. /* Wait for this device to become unblocked */
  986. int j;
  987. for (j = 0; j < i; j++)
  988. if (r1_bio->bios[j])
  989. rdev_dec_pending(conf->mirrors[j].rdev, mddev);
  990. r1_bio->state = 0;
  991. allow_barrier(conf);
  992. md_wait_for_blocked_rdev(blocked_rdev, mddev);
  993. wait_barrier(conf);
  994. goto retry_write;
  995. }
  996. if (max_sectors < r1_bio->sectors) {
  997. /* We are splitting this write into multiple parts, so
  998. * we need to prepare for allocating another r1_bio.
  999. */
  1000. r1_bio->sectors = max_sectors;
  1001. spin_lock_irq(&conf->device_lock);
  1002. if (bio->bi_phys_segments == 0)
  1003. bio->bi_phys_segments = 2;
  1004. else
  1005. bio->bi_phys_segments++;
  1006. spin_unlock_irq(&conf->device_lock);
  1007. }
  1008. sectors_handled = r1_bio->sector + max_sectors - bio->bi_sector;
  1009. atomic_set(&r1_bio->remaining, 1);
  1010. atomic_set(&r1_bio->behind_remaining, 0);
  1011. first_clone = 1;
  1012. for (i = 0; i < disks; i++) {
  1013. struct bio *mbio;
  1014. if (!r1_bio->bios[i])
  1015. continue;
  1016. mbio = bio_clone_mddev(bio, GFP_NOIO, mddev);
  1017. md_trim_bio(mbio, r1_bio->sector - bio->bi_sector, max_sectors);
  1018. if (first_clone) {
  1019. /* do behind I/O ?
  1020. * Not if there are too many, or cannot
  1021. * allocate memory, or a reader on WriteMostly
  1022. * is waiting for behind writes to flush */
  1023. if (bitmap &&
  1024. (atomic_read(&bitmap->behind_writes)
  1025. < mddev->bitmap_info.max_write_behind) &&
  1026. !waitqueue_active(&bitmap->behind_wait))
  1027. alloc_behind_pages(mbio, r1_bio);
  1028. bitmap_startwrite(bitmap, r1_bio->sector,
  1029. r1_bio->sectors,
  1030. test_bit(R1BIO_BehindIO,
  1031. &r1_bio->state));
  1032. first_clone = 0;
  1033. }
  1034. if (r1_bio->behind_bvecs) {
  1035. struct bio_vec *bvec;
  1036. int j;
  1037. /* Yes, I really want the '__' version so that
  1038. * we clear any unused pointer in the io_vec, rather
  1039. * than leave them unchanged. This is important
  1040. * because when we come to free the pages, we won't
  1041. * know the original bi_idx, so we just free
  1042. * them all
  1043. */
  1044. __bio_for_each_segment(bvec, mbio, j, 0)
  1045. bvec->bv_page = r1_bio->behind_bvecs[j].bv_page;
  1046. if (test_bit(WriteMostly, &conf->mirrors[i].rdev->flags))
  1047. atomic_inc(&r1_bio->behind_remaining);
  1048. }
  1049. r1_bio->bios[i] = mbio;
  1050. mbio->bi_sector = (r1_bio->sector +
  1051. conf->mirrors[i].rdev->data_offset);
  1052. mbio->bi_bdev = conf->mirrors[i].rdev->bdev;
  1053. mbio->bi_end_io = raid1_end_write_request;
  1054. mbio->bi_rw = WRITE | do_flush_fua | do_sync;
  1055. mbio->bi_private = r1_bio;
  1056. atomic_inc(&r1_bio->remaining);
  1057. spin_lock_irqsave(&conf->device_lock, flags);
  1058. bio_list_add(&conf->pending_bio_list, mbio);
  1059. conf->pending_count++;
  1060. spin_unlock_irqrestore(&conf->device_lock, flags);
  1061. }
  1062. /* Mustn't call r1_bio_write_done before this next test,
  1063. * as it could result in the bio being freed.
  1064. */
  1065. if (sectors_handled < (bio->bi_size >> 9)) {
  1066. r1_bio_write_done(r1_bio);
  1067. /* We need another r1_bio. It has already been counted
  1068. * in bio->bi_phys_segments
  1069. */
  1070. r1_bio = mempool_alloc(conf->r1bio_pool, GFP_NOIO);
  1071. r1_bio->master_bio = bio;
  1072. r1_bio->sectors = (bio->bi_size >> 9) - sectors_handled;
  1073. r1_bio->state = 0;
  1074. r1_bio->mddev = mddev;
  1075. r1_bio->sector = bio->bi_sector + sectors_handled;
  1076. goto retry_write;
  1077. }
  1078. r1_bio_write_done(r1_bio);
  1079. /* In case raid1d snuck in to freeze_array */
  1080. wake_up(&conf->wait_barrier);
  1081. if (do_sync || !bitmap || !plugged)
  1082. md_wakeup_thread(mddev->thread);
  1083. }
  1084. static void status(struct seq_file *seq, struct mddev *mddev)
  1085. {
  1086. struct r1conf *conf = mddev->private;
  1087. int i;
  1088. seq_printf(seq, " [%d/%d] [", conf->raid_disks,
  1089. conf->raid_disks - mddev->degraded);
  1090. rcu_read_lock();
  1091. for (i = 0; i < conf->raid_disks; i++) {
  1092. struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
  1093. seq_printf(seq, "%s",
  1094. rdev && test_bit(In_sync, &rdev->flags) ? "U" : "_");
  1095. }
  1096. rcu_read_unlock();
  1097. seq_printf(seq, "]");
  1098. }
  1099. static void error(struct mddev *mddev, struct md_rdev *rdev)
  1100. {
  1101. char b[BDEVNAME_SIZE];
  1102. struct r1conf *conf = mddev->private;
  1103. /*
  1104. * If it is not operational, then we have already marked it as dead
  1105. * else if it is the last working disks, ignore the error, let the
  1106. * next level up know.
  1107. * else mark the drive as failed
  1108. */
  1109. if (test_bit(In_sync, &rdev->flags)
  1110. && (conf->raid_disks - mddev->degraded) == 1) {
  1111. /*
  1112. * Don't fail the drive, act as though we were just a
  1113. * normal single drive.
  1114. * However don't try a recovery from this drive as
  1115. * it is very likely to fail.
  1116. */
  1117. conf->recovery_disabled = mddev->recovery_disabled;
  1118. return;
  1119. }
  1120. set_bit(Blocked, &rdev->flags);
  1121. if (test_and_clear_bit(In_sync, &rdev->flags)) {
  1122. unsigned long flags;
  1123. spin_lock_irqsave(&conf->device_lock, flags);
  1124. mddev->degraded++;
  1125. set_bit(Faulty, &rdev->flags);
  1126. spin_unlock_irqrestore(&conf->device_lock, flags);
  1127. /*
  1128. * if recovery is running, make sure it aborts.
  1129. */
  1130. set_bit(MD_RECOVERY_INTR, &mddev->recovery);
  1131. } else
  1132. set_bit(Faulty, &rdev->flags);
  1133. set_bit(MD_CHANGE_DEVS, &mddev->flags);
  1134. printk(KERN_ALERT
  1135. "md/raid1:%s: Disk failure on %s, disabling device.\n"
  1136. "md/raid1:%s: Operation continuing on %d devices.\n",
  1137. mdname(mddev), bdevname(rdev->bdev, b),
  1138. mdname(mddev), conf->raid_disks - mddev->degraded);
  1139. }
  1140. static void print_conf(struct r1conf *conf)
  1141. {
  1142. int i;
  1143. printk(KERN_DEBUG "RAID1 conf printout:\n");
  1144. if (!conf) {
  1145. printk(KERN_DEBUG "(!conf)\n");
  1146. return;
  1147. }
  1148. printk(KERN_DEBUG " --- wd:%d rd:%d\n", conf->raid_disks - conf->mddev->degraded,
  1149. conf->raid_disks);
  1150. rcu_read_lock();
  1151. for (i = 0; i < conf->raid_disks; i++) {
  1152. char b[BDEVNAME_SIZE];
  1153. struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
  1154. if (rdev)
  1155. printk(KERN_DEBUG " disk %d, wo:%d, o:%d, dev:%s\n",
  1156. i, !test_bit(In_sync, &rdev->flags),
  1157. !test_bit(Faulty, &rdev->flags),
  1158. bdevname(rdev->bdev,b));
  1159. }
  1160. rcu_read_unlock();
  1161. }
  1162. static void close_sync(struct r1conf *conf)
  1163. {
  1164. wait_barrier(conf);
  1165. allow_barrier(conf);
  1166. mempool_destroy(conf->r1buf_pool);
  1167. conf->r1buf_pool = NULL;
  1168. }
  1169. static int raid1_spare_active(struct mddev *mddev)
  1170. {
  1171. int i;
  1172. struct r1conf *conf = mddev->private;
  1173. int count = 0;
  1174. unsigned long flags;
  1175. /*
  1176. * Find all failed disks within the RAID1 configuration
  1177. * and mark them readable.
  1178. * Called under mddev lock, so rcu protection not needed.
  1179. */
  1180. for (i = 0; i < conf->raid_disks; i++) {
  1181. struct md_rdev *rdev = conf->mirrors[i].rdev;
  1182. struct md_rdev *repl = conf->mirrors[conf->raid_disks + i].rdev;
  1183. if (repl
  1184. && repl->recovery_offset == MaxSector
  1185. && !test_bit(Faulty, &repl->flags)
  1186. && !test_and_set_bit(In_sync, &repl->flags)) {
  1187. /* replacement has just become active */
  1188. if (!rdev ||
  1189. !test_and_clear_bit(In_sync, &rdev->flags))
  1190. count++;
  1191. if (rdev) {
  1192. /* Replaced device not technically
  1193. * faulty, but we need to be sure
  1194. * it gets removed and never re-added
  1195. */
  1196. set_bit(Faulty, &rdev->flags);
  1197. sysfs_notify_dirent_safe(
  1198. rdev->sysfs_state);
  1199. }
  1200. }
  1201. if (rdev
  1202. && !test_bit(Faulty, &rdev->flags)
  1203. && !test_and_set_bit(In_sync, &rdev->flags)) {
  1204. count++;
  1205. sysfs_notify_dirent_safe(rdev->sysfs_state);
  1206. }
  1207. }
  1208. spin_lock_irqsave(&conf->device_lock, flags);
  1209. mddev->degraded -= count;
  1210. spin_unlock_irqrestore(&conf->device_lock, flags);
  1211. print_conf(conf);
  1212. return count;
  1213. }
  1214. static int raid1_add_disk(struct mddev *mddev, struct md_rdev *rdev)
  1215. {
  1216. struct r1conf *conf = mddev->private;
  1217. int err = -EEXIST;
  1218. int mirror = 0;
  1219. struct mirror_info *p;
  1220. int first = 0;
  1221. int last = conf->raid_disks - 1;
  1222. struct request_queue *q = bdev_get_queue(rdev->bdev);
  1223. if (mddev->recovery_disabled == conf->recovery_disabled)
  1224. return -EBUSY;
  1225. if (rdev->raid_disk >= 0)
  1226. first = last = rdev->raid_disk;
  1227. if (q->merge_bvec_fn) {
  1228. set_bit(Unmerged, &rdev->flags);
  1229. mddev->merge_check_needed = 1;
  1230. }
  1231. for (mirror = first; mirror <= last; mirror++) {
  1232. p = conf->mirrors+mirror;
  1233. if (!p->rdev) {
  1234. disk_stack_limits(mddev->gendisk, rdev->bdev,
  1235. rdev->data_offset << 9);
  1236. p->head_position = 0;
  1237. rdev->raid_disk = mirror;
  1238. err = 0;
  1239. /* As all devices are equivalent, we don't need a full recovery
  1240. * if this was recently any drive of the array
  1241. */
  1242. if (rdev->saved_raid_disk < 0)
  1243. conf->fullsync = 1;
  1244. rcu_assign_pointer(p->rdev, rdev);
  1245. break;
  1246. }
  1247. if (test_bit(WantReplacement, &p->rdev->flags) &&
  1248. p[conf->raid_disks].rdev == NULL) {
  1249. /* Add this device as a replacement */
  1250. clear_bit(In_sync, &rdev->flags);
  1251. set_bit(Replacement, &rdev->flags);
  1252. rdev->raid_disk = mirror;
  1253. err = 0;
  1254. conf->fullsync = 1;
  1255. rcu_assign_pointer(p[conf->raid_disks].rdev, rdev);
  1256. break;
  1257. }
  1258. }
  1259. if (err == 0 && test_bit(Unmerged, &rdev->flags)) {
  1260. /* Some requests might not have seen this new
  1261. * merge_bvec_fn. We must wait for them to complete
  1262. * before merging the device fully.
  1263. * First we make sure any code which has tested
  1264. * our function has submitted the request, then
  1265. * we wait for all outstanding requests to complete.
  1266. */
  1267. synchronize_sched();
  1268. raise_barrier(conf);
  1269. lower_barrier(conf);
  1270. clear_bit(Unmerged, &rdev->flags);
  1271. }
  1272. md_integrity_add_rdev(rdev, mddev);
  1273. print_conf(conf);
  1274. return err;
  1275. }
  1276. static int raid1_remove_disk(struct mddev *mddev, struct md_rdev *rdev)
  1277. {
  1278. struct r1conf *conf = mddev->private;
  1279. int err = 0;
  1280. int number = rdev->raid_disk;
  1281. struct mirror_info *p = conf->mirrors+ number;
  1282. if (rdev != p->rdev)
  1283. p = conf->mirrors + conf->raid_disks + number;
  1284. print_conf(conf);
  1285. if (rdev == p->rdev) {
  1286. if (test_bit(In_sync, &rdev->flags) ||
  1287. atomic_read(&rdev->nr_pending)) {
  1288. err = -EBUSY;
  1289. goto abort;
  1290. }
  1291. /* Only remove non-faulty devices if recovery
  1292. * is not possible.
  1293. */
  1294. if (!test_bit(Faulty, &rdev->flags) &&
  1295. mddev->recovery_disabled != conf->recovery_disabled &&
  1296. mddev->degraded < conf->raid_disks) {
  1297. err = -EBUSY;
  1298. goto abort;
  1299. }
  1300. p->rdev = NULL;
  1301. synchronize_rcu();
  1302. if (atomic_read(&rdev->nr_pending)) {
  1303. /* lost the race, try later */
  1304. err = -EBUSY;
  1305. p->rdev = rdev;
  1306. goto abort;
  1307. } else if (conf->mirrors[conf->raid_disks + number].rdev) {
  1308. /* We just removed a device that is being replaced.
  1309. * Move down the replacement. We drain all IO before
  1310. * doing this to avoid confusion.
  1311. */
  1312. struct md_rdev *repl =
  1313. conf->mirrors[conf->raid_disks + number].rdev;
  1314. raise_barrier(conf);
  1315. clear_bit(Replacement, &repl->flags);
  1316. p->rdev = repl;
  1317. conf->mirrors[conf->raid_disks + number].rdev = NULL;
  1318. lower_barrier(conf);
  1319. clear_bit(WantReplacement, &rdev->flags);
  1320. } else
  1321. clear_bit(WantReplacement, &rdev->flags);
  1322. err = md_integrity_register(mddev);
  1323. }
  1324. abort:
  1325. print_conf(conf);
  1326. return err;
  1327. }
  1328. static void end_sync_read(struct bio *bio, int error)
  1329. {
  1330. struct r1bio *r1_bio = bio->bi_private;
  1331. update_head_pos(r1_bio->read_disk, r1_bio);
  1332. /*
  1333. * we have read a block, now it needs to be re-written,
  1334. * or re-read if the read failed.
  1335. * We don't do much here, just schedule handling by raid1d
  1336. */
  1337. if (test_bit(BIO_UPTODATE, &bio->bi_flags))
  1338. set_bit(R1BIO_Uptodate, &r1_bio->state);
  1339. if (atomic_dec_and_test(&r1_bio->remaining))
  1340. reschedule_retry(r1_bio);
  1341. }
  1342. static void end_sync_write(struct bio *bio, int error)
  1343. {
  1344. int uptodate = test_bit(BIO_UPTODATE, &bio->bi_flags);
  1345. struct r1bio *r1_bio = bio->bi_private;
  1346. struct mddev *mddev = r1_bio->mddev;
  1347. struct r1conf *conf = mddev->private;
  1348. int mirror=0;
  1349. sector_t first_bad;
  1350. int bad_sectors;
  1351. mirror = find_bio_disk(r1_bio, bio);
  1352. if (!uptodate) {
  1353. sector_t sync_blocks = 0;
  1354. sector_t s = r1_bio->sector;
  1355. long sectors_to_go = r1_bio->sectors;
  1356. /* make sure these bits doesn't get cleared. */
  1357. do {
  1358. bitmap_end_sync(mddev->bitmap, s,
  1359. &sync_blocks, 1);
  1360. s += sync_blocks;
  1361. sectors_to_go -= sync_blocks;
  1362. } while (sectors_to_go > 0);
  1363. set_bit(WriteErrorSeen,
  1364. &conf->mirrors[mirror].rdev->flags);
  1365. if (!test_and_set_bit(WantReplacement,
  1366. &conf->mirrors[mirror].rdev->flags))
  1367. set_bit(MD_RECOVERY_NEEDED, &
  1368. mddev->recovery);
  1369. set_bit(R1BIO_WriteError, &r1_bio->state);
  1370. } else if (is_badblock(conf->mirrors[mirror].rdev,
  1371. r1_bio->sector,
  1372. r1_bio->sectors,
  1373. &first_bad, &bad_sectors) &&
  1374. !is_badblock(conf->mirrors[r1_bio->read_disk].rdev,
  1375. r1_bio->sector,
  1376. r1_bio->sectors,
  1377. &first_bad, &bad_sectors)
  1378. )
  1379. set_bit(R1BIO_MadeGood, &r1_bio->state);
  1380. if (atomic_dec_and_test(&r1_bio->remaining)) {
  1381. int s = r1_bio->sectors;
  1382. if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
  1383. test_bit(R1BIO_WriteError, &r1_bio->state))
  1384. reschedule_retry(r1_bio);
  1385. else {
  1386. put_buf(r1_bio);
  1387. md_done_sync(mddev, s, uptodate);
  1388. }
  1389. }
  1390. }
  1391. static int r1_sync_page_io(struct md_rdev *rdev, sector_t sector,
  1392. int sectors, struct page *page, int rw)
  1393. {
  1394. if (sync_page_io(rdev, sector, sectors << 9, page, rw, false))
  1395. /* success */
  1396. return 1;
  1397. if (rw == WRITE) {
  1398. set_bit(WriteErrorSeen, &rdev->flags);
  1399. if (!test_and_set_bit(WantReplacement,
  1400. &rdev->flags))
  1401. set_bit(MD_RECOVERY_NEEDED, &
  1402. rdev->mddev->recovery);
  1403. }
  1404. /* need to record an error - either for the block or the device */
  1405. if (!rdev_set_badblocks(rdev, sector, sectors, 0))
  1406. md_error(rdev->mddev, rdev);
  1407. return 0;
  1408. }
  1409. static int fix_sync_read_error(struct r1bio *r1_bio)
  1410. {
  1411. /* Try some synchronous reads of other devices to get
  1412. * good data, much like with normal read errors. Only
  1413. * read into the pages we already have so we don't
  1414. * need to re-issue the read request.
  1415. * We don't need to freeze the array, because being in an
  1416. * active sync request, there is no normal IO, and
  1417. * no overlapping syncs.
  1418. * We don't need to check is_badblock() again as we
  1419. * made sure that anything with a bad block in range
  1420. * will have bi_end_io clear.
  1421. */
  1422. struct mddev *mddev = r1_bio->mddev;
  1423. struct r1conf *conf = mddev->private;
  1424. struct bio *bio = r1_bio->bios[r1_bio->read_disk];
  1425. sector_t sect = r1_bio->sector;
  1426. int sectors = r1_bio->sectors;
  1427. int idx = 0;
  1428. while(sectors) {
  1429. int s = sectors;
  1430. int d = r1_bio->read_disk;
  1431. int success = 0;
  1432. struct md_rdev *rdev;
  1433. int start;
  1434. if (s > (PAGE_SIZE>>9))
  1435. s = PAGE_SIZE >> 9;
  1436. do {
  1437. if (r1_bio->bios[d]->bi_end_io == end_sync_read) {
  1438. /* No rcu protection needed here devices
  1439. * can only be removed when no resync is
  1440. * active, and resync is currently active
  1441. */
  1442. rdev = conf->mirrors[d].rdev;
  1443. if (sync_page_io(rdev, sect, s<<9,
  1444. bio->bi_io_vec[idx].bv_page,
  1445. READ, false)) {
  1446. success = 1;
  1447. break;
  1448. }
  1449. }
  1450. d++;
  1451. if (d == conf->raid_disks * 2)
  1452. d = 0;
  1453. } while (!success && d != r1_bio->read_disk);
  1454. if (!success) {
  1455. char b[BDEVNAME_SIZE];
  1456. int abort = 0;
  1457. /* Cannot read from anywhere, this block is lost.
  1458. * Record a bad block on each device. If that doesn't
  1459. * work just disable and interrupt the recovery.
  1460. * Don't fail devices as that won't really help.
  1461. */
  1462. printk(KERN_ALERT "md/raid1:%s: %s: unrecoverable I/O read error"
  1463. " for block %llu\n",
  1464. mdname(mddev),
  1465. bdevname(bio->bi_bdev, b),
  1466. (unsigned long long)r1_bio->sector);
  1467. for (d = 0; d < conf->raid_disks * 2; d++) {
  1468. rdev = conf->mirrors[d].rdev;
  1469. if (!rdev || test_bit(Faulty, &rdev->flags))
  1470. continue;
  1471. if (!rdev_set_badblocks(rdev, sect, s, 0))
  1472. abort = 1;
  1473. }
  1474. if (abort) {
  1475. conf->recovery_disabled =
  1476. mddev->recovery_disabled;
  1477. set_bit(MD_RECOVERY_INTR, &mddev->recovery);
  1478. md_done_sync(mddev, r1_bio->sectors, 0);
  1479. put_buf(r1_bio);
  1480. return 0;
  1481. }
  1482. /* Try next page */
  1483. sectors -= s;
  1484. sect += s;
  1485. idx++;
  1486. continue;
  1487. }
  1488. start = d;
  1489. /* write it back and re-read */
  1490. while (d != r1_bio->read_disk) {
  1491. if (d == 0)
  1492. d = conf->raid_disks * 2;
  1493. d--;
  1494. if (r1_bio->bios[d]->bi_end_io != end_sync_read)
  1495. continue;
  1496. rdev = conf->mirrors[d].rdev;
  1497. if (r1_sync_page_io(rdev, sect, s,
  1498. bio->bi_io_vec[idx].bv_page,
  1499. WRITE) == 0) {
  1500. r1_bio->bios[d]->bi_end_io = NULL;
  1501. rdev_dec_pending(rdev, mddev);
  1502. }
  1503. }
  1504. d = start;
  1505. while (d != r1_bio->read_disk) {
  1506. if (d == 0)
  1507. d = conf->raid_disks * 2;
  1508. d--;
  1509. if (r1_bio->bios[d]->bi_end_io != end_sync_read)
  1510. continue;
  1511. rdev = conf->mirrors[d].rdev;
  1512. if (r1_sync_page_io(rdev, sect, s,
  1513. bio->bi_io_vec[idx].bv_page,
  1514. READ) != 0)
  1515. atomic_add(s, &rdev->corrected_errors);
  1516. }
  1517. sectors -= s;
  1518. sect += s;
  1519. idx ++;
  1520. }
  1521. set_bit(R1BIO_Uptodate, &r1_bio->state);
  1522. set_bit(BIO_UPTODATE, &bio->bi_flags);
  1523. return 1;
  1524. }
  1525. static int process_checks(struct r1bio *r1_bio)
  1526. {
  1527. /* We have read all readable devices. If we haven't
  1528. * got the block, then there is no hope left.
  1529. * If we have, then we want to do a comparison
  1530. * and skip the write if everything is the same.
  1531. * If any blocks failed to read, then we need to
  1532. * attempt an over-write
  1533. */
  1534. struct mddev *mddev = r1_bio->mddev;
  1535. struct r1conf *conf = mddev->private;
  1536. int primary;
  1537. int i;
  1538. int vcnt;
  1539. for (primary = 0; primary < conf->raid_disks * 2; primary++)
  1540. if (r1_bio->bios[primary]->bi_end_io == end_sync_read &&
  1541. test_bit(BIO_UPTODATE, &r1_bio->bios[primary]->bi_flags)) {
  1542. r1_bio->bios[primary]->bi_end_io = NULL;
  1543. rdev_dec_pending(conf->mirrors[primary].rdev, mddev);
  1544. break;
  1545. }
  1546. r1_bio->read_disk = primary;
  1547. vcnt = (r1_bio->sectors + PAGE_SIZE / 512 - 1) >> (PAGE_SHIFT - 9);
  1548. for (i = 0; i < conf->raid_disks * 2; i++) {
  1549. int j;
  1550. struct bio *pbio = r1_bio->bios[primary];
  1551. struct bio *sbio = r1_bio->bios[i];
  1552. int size;
  1553. if (r1_bio->bios[i]->bi_end_io != end_sync_read)
  1554. continue;
  1555. if (test_bit(BIO_UPTODATE, &sbio->bi_flags)) {
  1556. for (j = vcnt; j-- ; ) {
  1557. struct page *p, *s;
  1558. p = pbio->bi_io_vec[j].bv_page;
  1559. s = sbio->bi_io_vec[j].bv_page;
  1560. if (memcmp(page_address(p),
  1561. page_address(s),
  1562. sbio->bi_io_vec[j].bv_len))
  1563. break;
  1564. }
  1565. } else
  1566. j = 0;
  1567. if (j >= 0)
  1568. mddev->resync_mismatches += r1_bio->sectors;
  1569. if (j < 0 || (test_bit(MD_RECOVERY_CHECK, &mddev->recovery)
  1570. && test_bit(BIO_UPTODATE, &sbio->bi_flags))) {
  1571. /* No need to write to this device. */
  1572. sbio->bi_end_io = NULL;
  1573. rdev_dec_pending(conf->mirrors[i].rdev, mddev);
  1574. continue;
  1575. }
  1576. /* fixup the bio for reuse */
  1577. sbio->bi_vcnt = vcnt;
  1578. sbio->bi_size = r1_bio->sectors << 9;
  1579. sbio->bi_idx = 0;
  1580. sbio->bi_phys_segments = 0;
  1581. sbio->bi_flags &= ~(BIO_POOL_MASK - 1);
  1582. sbio->bi_flags |= 1 << BIO_UPTODATE;
  1583. sbio->bi_next = NULL;
  1584. sbio->bi_sector = r1_bio->sector +
  1585. conf->mirrors[i].rdev->data_offset;
  1586. sbio->bi_bdev = conf->mirrors[i].rdev->bdev;
  1587. size = sbio->bi_size;
  1588. for (j = 0; j < vcnt ; j++) {
  1589. struct bio_vec *bi;
  1590. bi = &sbio->bi_io_vec[j];
  1591. bi->bv_offset = 0;
  1592. if (size > PAGE_SIZE)
  1593. bi->bv_len = PAGE_SIZE;
  1594. else
  1595. bi->bv_len = size;
  1596. size -= PAGE_SIZE;
  1597. memcpy(page_address(bi->bv_page),
  1598. page_address(pbio->bi_io_vec[j].bv_page),
  1599. PAGE_SIZE);
  1600. }
  1601. }
  1602. return 0;
  1603. }
  1604. static void sync_request_write(struct mddev *mddev, struct r1bio *r1_bio)
  1605. {
  1606. struct r1conf *conf = mddev->private;
  1607. int i;
  1608. int disks = conf->raid_disks * 2;
  1609. struct bio *bio, *wbio;
  1610. bio = r1_bio->bios[r1_bio->read_disk];
  1611. if (!test_bit(R1BIO_Uptodate, &r1_bio->state))
  1612. /* ouch - failed to read all of that. */
  1613. if (!fix_sync_read_error(r1_bio))
  1614. return;
  1615. if (test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery))
  1616. if (process_checks(r1_bio) < 0)
  1617. return;
  1618. /*
  1619. * schedule writes
  1620. */
  1621. atomic_set(&r1_bio->remaining, 1);
  1622. for (i = 0; i < disks ; i++) {
  1623. wbio = r1_bio->bios[i];
  1624. if (wbio->bi_end_io == NULL ||
  1625. (wbio->bi_end_io == end_sync_read &&
  1626. (i == r1_bio->read_disk ||
  1627. !test_bit(MD_RECOVERY_SYNC, &mddev->recovery))))
  1628. continue;
  1629. wbio->bi_rw = WRITE;
  1630. wbio->bi_end_io = end_sync_write;
  1631. atomic_inc(&r1_bio->remaining);
  1632. md_sync_acct(conf->mirrors[i].rdev->bdev, wbio->bi_size >> 9);
  1633. generic_make_request(wbio);
  1634. }
  1635. if (atomic_dec_and_test(&r1_bio->remaining)) {
  1636. /* if we're here, all write(s) have completed, so clean up */
  1637. md_done_sync(mddev, r1_bio->sectors, 1);
  1638. put_buf(r1_bio);
  1639. }
  1640. }
  1641. /*
  1642. * This is a kernel thread which:
  1643. *
  1644. * 1. Retries failed read operations on working mirrors.
  1645. * 2. Updates the raid superblock when problems encounter.
  1646. * 3. Performs writes following reads for array synchronising.
  1647. */
  1648. static void fix_read_error(struct r1conf *conf, int read_disk,
  1649. sector_t sect, int sectors)
  1650. {
  1651. struct mddev *mddev = conf->mddev;
  1652. while(sectors) {
  1653. int s = sectors;
  1654. int d = read_disk;
  1655. int success = 0;
  1656. int start;
  1657. struct md_rdev *rdev;
  1658. if (s > (PAGE_SIZE>>9))
  1659. s = PAGE_SIZE >> 9;
  1660. do {
  1661. /* Note: no rcu protection needed here
  1662. * as this is synchronous in the raid1d thread
  1663. * which is the thread that might remove
  1664. * a device. If raid1d ever becomes multi-threaded....
  1665. */
  1666. sector_t first_bad;
  1667. int bad_sectors;
  1668. rdev = conf->mirrors[d].rdev;
  1669. if (rdev &&
  1670. (test_bit(In_sync, &rdev->flags) ||
  1671. (!test_bit(Faulty, &rdev->flags) &&
  1672. rdev->recovery_offset >= sect + s)) &&
  1673. is_badblock(rdev, sect, s,
  1674. &first_bad, &bad_sectors) == 0 &&
  1675. sync_page_io(rdev, sect, s<<9,
  1676. conf->tmppage, READ, false))
  1677. success = 1;
  1678. else {
  1679. d++;
  1680. if (d == conf->raid_disks * 2)
  1681. d = 0;
  1682. }
  1683. } while (!success && d != read_disk);
  1684. if (!success) {
  1685. /* Cannot read from anywhere - mark it bad */
  1686. struct md_rdev *rdev = conf->mirrors[read_disk].rdev;
  1687. if (!rdev_set_badblocks(rdev, sect, s, 0))
  1688. md_error(mddev, rdev);
  1689. break;
  1690. }
  1691. /* write it back and re-read */
  1692. start = d;
  1693. while (d != read_disk) {
  1694. if (d==0)
  1695. d = conf->raid_disks * 2;
  1696. d--;
  1697. rdev = conf->mirrors[d].rdev;
  1698. if (rdev &&
  1699. test_bit(In_sync, &rdev->flags))
  1700. r1_sync_page_io(rdev, sect, s,
  1701. conf->tmppage, WRITE);
  1702. }
  1703. d = start;
  1704. while (d != read_disk) {
  1705. char b[BDEVNAME_SIZE];
  1706. if (d==0)
  1707. d = conf->raid_disks * 2;
  1708. d--;
  1709. rdev = conf->mirrors[d].rdev;
  1710. if (rdev &&
  1711. test_bit(In_sync, &rdev->flags)) {
  1712. if (r1_sync_page_io(rdev, sect, s,
  1713. conf->tmppage, READ)) {
  1714. atomic_add(s, &rdev->corrected_errors);
  1715. printk(KERN_INFO
  1716. "md/raid1:%s: read error corrected "
  1717. "(%d sectors at %llu on %s)\n",
  1718. mdname(mddev), s,
  1719. (unsigned long long)(sect +
  1720. rdev->data_offset),
  1721. bdevname(rdev->bdev, b));
  1722. }
  1723. }
  1724. }
  1725. sectors -= s;
  1726. sect += s;
  1727. }
  1728. }
  1729. static void bi_complete(struct bio *bio, int error)
  1730. {
  1731. complete((struct completion *)bio->bi_private);
  1732. }
  1733. static int submit_bio_wait(int rw, struct bio *bio)
  1734. {
  1735. struct completion event;
  1736. rw |= REQ_SYNC;
  1737. init_completion(&event);
  1738. bio->bi_private = &event;
  1739. bio->bi_end_io = bi_complete;
  1740. submit_bio(rw, bio);
  1741. wait_for_completion(&event);
  1742. return test_bit(BIO_UPTODATE, &bio->bi_flags);
  1743. }
  1744. static int narrow_write_error(struct r1bio *r1_bio, int i)
  1745. {
  1746. struct mddev *mddev = r1_bio->mddev;
  1747. struct r1conf *conf = mddev->private;
  1748. struct md_rdev *rdev = conf->mirrors[i].rdev;
  1749. int vcnt, idx;
  1750. struct bio_vec *vec;
  1751. /* bio has the data to be written to device 'i' where
  1752. * we just recently had a write error.
  1753. * We repeatedly clone the bio and trim down to one block,
  1754. * then try the write. Where the write fails we record
  1755. * a bad block.
  1756. * It is conceivable that the bio doesn't exactly align with
  1757. * blocks. We must handle this somehow.
  1758. *
  1759. * We currently own a reference on the rdev.
  1760. */
  1761. int block_sectors;
  1762. sector_t sector;
  1763. int sectors;
  1764. int sect_to_write = r1_bio->sectors;
  1765. int ok = 1;
  1766. if (rdev->badblocks.shift < 0)
  1767. return 0;
  1768. block_sectors = 1 << rdev->badblocks.shift;
  1769. sector = r1_bio->sector;
  1770. sectors = ((sector + block_sectors)
  1771. & ~(sector_t)(block_sectors - 1))
  1772. - sector;
  1773. if (test_bit(R1BIO_BehindIO, &r1_bio->state)) {
  1774. vcnt = r1_bio->behind_page_count;
  1775. vec = r1_bio->behind_bvecs;
  1776. idx = 0;
  1777. while (vec[idx].bv_page == NULL)
  1778. idx++;
  1779. } else {
  1780. vcnt = r1_bio->master_bio->bi_vcnt;
  1781. vec = r1_bio->master_bio->bi_io_vec;
  1782. idx = r1_bio->master_bio->bi_idx;
  1783. }
  1784. while (sect_to_write) {
  1785. struct bio *wbio;
  1786. if (sectors > sect_to_write)
  1787. sectors = sect_to_write;
  1788. /* Write at 'sector' for 'sectors'*/
  1789. wbio = bio_alloc_mddev(GFP_NOIO, vcnt, mddev);
  1790. memcpy(wbio->bi_io_vec, vec, vcnt * sizeof(struct bio_vec));
  1791. wbio->bi_sector = r1_bio->sector;
  1792. wbio->bi_rw = WRITE;
  1793. wbio->bi_vcnt = vcnt;
  1794. wbio->bi_size = r1_bio->sectors << 9;
  1795. wbio->bi_idx = idx;
  1796. md_trim_bio(wbio, sector - r1_bio->sector, sectors);
  1797. wbio->bi_sector += rdev->data_offset;
  1798. wbio->bi_bdev = rdev->bdev;
  1799. if (submit_bio_wait(WRITE, wbio) == 0)
  1800. /* failure! */
  1801. ok = rdev_set_badblocks(rdev, sector,
  1802. sectors, 0)
  1803. && ok;
  1804. bio_put(wbio);
  1805. sect_to_write -= sectors;
  1806. sector += sectors;
  1807. sectors = block_sectors;
  1808. }
  1809. return ok;
  1810. }
  1811. static void handle_sync_write_finished(struct r1conf *conf, struct r1bio *r1_bio)
  1812. {
  1813. int m;
  1814. int s = r1_bio->sectors;
  1815. for (m = 0; m < conf->raid_disks * 2 ; m++) {
  1816. struct md_rdev *rdev = conf->mirrors[m].rdev;
  1817. struct bio *bio = r1_bio->bios[m];
  1818. if (bio->bi_end_io == NULL)
  1819. continue;
  1820. if (test_bit(BIO_UPTODATE, &bio->bi_flags) &&
  1821. test_bit(R1BIO_MadeGood, &r1_bio->state)) {
  1822. rdev_clear_badblocks(rdev, r1_bio->sector, s, 0);
  1823. }
  1824. if (!test_bit(BIO_UPTODATE, &bio->bi_flags) &&
  1825. test_bit(R1BIO_WriteError, &r1_bio->state)) {
  1826. if (!rdev_set_badblocks(rdev, r1_bio->sector, s, 0))
  1827. md_error(conf->mddev, rdev);
  1828. }
  1829. }
  1830. put_buf(r1_bio);
  1831. md_done_sync(conf->mddev, s, 1);
  1832. }
  1833. static void handle_write_finished(struct r1conf *conf, struct r1bio *r1_bio)
  1834. {
  1835. int m;
  1836. for (m = 0; m < conf->raid_disks * 2 ; m++)
  1837. if (r1_bio->bios[m] == IO_MADE_GOOD) {
  1838. struct md_rdev *rdev = conf->mirrors[m].rdev;
  1839. rdev_clear_badblocks(rdev,
  1840. r1_bio->sector,
  1841. r1_bio->sectors, 0);
  1842. rdev_dec_pending(rdev, conf->mddev);
  1843. } else if (r1_bio->bios[m] != NULL) {
  1844. /* This drive got a write error. We need to
  1845. * narrow down and record precise write
  1846. * errors.
  1847. */
  1848. if (!narrow_write_error(r1_bio, m)) {
  1849. md_error(conf->mddev,
  1850. conf->mirrors[m].rdev);
  1851. /* an I/O failed, we can't clear the bitmap */
  1852. set_bit(R1BIO_Degraded, &r1_bio->state);
  1853. }
  1854. rdev_dec_pending(conf->mirrors[m].rdev,
  1855. conf->mddev);
  1856. }
  1857. if (test_bit(R1BIO_WriteError, &r1_bio->state))
  1858. close_write(r1_bio);
  1859. raid_end_bio_io(r1_bio);
  1860. }
  1861. static void handle_read_error(struct r1conf *conf, struct r1bio *r1_bio)
  1862. {
  1863. int disk;
  1864. int max_sectors;
  1865. struct mddev *mddev = conf->mddev;
  1866. struct bio *bio;
  1867. char b[BDEVNAME_SIZE];
  1868. struct md_rdev *rdev;
  1869. clear_bit(R1BIO_ReadError, &r1_bio->state);
  1870. /* we got a read error. Maybe the drive is bad. Maybe just
  1871. * the block and we can fix it.
  1872. * We freeze all other IO, and try reading the block from
  1873. * other devices. When we find one, we re-write
  1874. * and check it that fixes the read error.
  1875. * This is all done synchronously while the array is
  1876. * frozen
  1877. */
  1878. if (mddev->ro == 0) {
  1879. freeze_array(conf);
  1880. fix_read_error(conf, r1_bio->read_disk,
  1881. r1_bio->sector, r1_bio->sectors);
  1882. unfreeze_array(conf);
  1883. } else
  1884. md_error(mddev, conf->mirrors[r1_bio->read_disk].rdev);
  1885. bio = r1_bio->bios[r1_bio->read_disk];
  1886. bdevname(bio->bi_bdev, b);
  1887. read_more:
  1888. disk = read_balance(conf, r1_bio, &max_sectors);
  1889. if (disk == -1) {
  1890. printk(KERN_ALERT "md/raid1:%s: %s: unrecoverable I/O"
  1891. " read error for block %llu\n",
  1892. mdname(mddev), b, (unsigned long long)r1_bio->sector);
  1893. raid_end_bio_io(r1_bio);
  1894. } else {
  1895. const unsigned long do_sync
  1896. = r1_bio->master_bio->bi_rw & REQ_SYNC;
  1897. if (bio) {
  1898. r1_bio->bios[r1_bio->read_disk] =
  1899. mddev->ro ? IO_BLOCKED : NULL;
  1900. bio_put(bio);
  1901. }
  1902. r1_bio->read_disk = disk;
  1903. bio = bio_clone_mddev(r1_bio->master_bio, GFP_NOIO, mddev);
  1904. md_trim_bio(bio, r1_bio->sector - bio->bi_sector, max_sectors);
  1905. r1_bio->bios[r1_bio->read_disk] = bio;
  1906. rdev = conf->mirrors[disk].rdev;
  1907. printk_ratelimited(KERN_ERR
  1908. "md/raid1:%s: redirecting sector %llu"
  1909. " to other mirror: %s\n",
  1910. mdname(mddev),
  1911. (unsigned long long)r1_bio->sector,
  1912. bdevname(rdev->bdev, b));
  1913. bio->bi_sector = r1_bio->sector + rdev->data_offset;
  1914. bio->bi_bdev = rdev->bdev;
  1915. bio->bi_end_io = raid1_end_read_request;
  1916. bio->bi_rw = READ | do_sync;
  1917. bio->bi_private = r1_bio;
  1918. if (max_sectors < r1_bio->sectors) {
  1919. /* Drat - have to split this up more */
  1920. struct bio *mbio = r1_bio->master_bio;
  1921. int sectors_handled = (r1_bio->sector + max_sectors
  1922. - mbio->bi_sector);
  1923. r1_bio->sectors = max_sectors;
  1924. spin_lock_irq(&conf->device_lock);
  1925. if (mbio->bi_phys_segments == 0)
  1926. mbio->bi_phys_segments = 2;
  1927. else
  1928. mbio->bi_phys_segments++;
  1929. spin_unlock_irq(&conf->device_lock);
  1930. generic_make_request(bio);
  1931. bio = NULL;
  1932. r1_bio = mempool_alloc(conf->r1bio_pool, GFP_NOIO);
  1933. r1_bio->master_bio = mbio;
  1934. r1_bio->sectors = (mbio->bi_size >> 9)
  1935. - sectors_handled;
  1936. r1_bio->state = 0;
  1937. set_bit(R1BIO_ReadError, &r1_bio->state);
  1938. r1_bio->mddev = mddev;
  1939. r1_bio->sector = mbio->bi_sector + sectors_handled;
  1940. goto read_more;
  1941. } else
  1942. generic_make_request(bio);
  1943. }
  1944. }
  1945. static void raid1d(struct mddev *mddev)
  1946. {
  1947. struct r1bio *r1_bio;
  1948. unsigned long flags;
  1949. struct r1conf *conf = mddev->private;
  1950. struct list_head *head = &conf->retry_list;
  1951. struct blk_plug plug;
  1952. md_check_recovery(mddev);
  1953. blk_start_plug(&plug);
  1954. for (;;) {
  1955. if (atomic_read(&mddev->plug_cnt) == 0)
  1956. flush_pending_writes(conf);
  1957. spin_lock_irqsave(&conf->device_lock, flags);
  1958. if (list_empty(head)) {
  1959. spin_unlock_irqrestore(&conf->device_lock, flags);
  1960. break;
  1961. }
  1962. r1_bio = list_entry(head->prev, struct r1bio, retry_list);
  1963. list_del(head->prev);
  1964. conf->nr_queued--;
  1965. spin_unlock_irqrestore(&conf->device_lock, flags);
  1966. mddev = r1_bio->mddev;
  1967. conf = mddev->private;
  1968. if (test_bit(R1BIO_IsSync, &r1_bio->state)) {
  1969. if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
  1970. test_bit(R1BIO_WriteError, &r1_bio->state))
  1971. handle_sync_write_finished(conf, r1_bio);
  1972. else
  1973. sync_request_write(mddev, r1_bio);
  1974. } else if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
  1975. test_bit(R1BIO_WriteError, &r1_bio->state))
  1976. handle_write_finished(conf, r1_bio);
  1977. else if (test_bit(R1BIO_ReadError, &r1_bio->state))
  1978. handle_read_error(conf, r1_bio);
  1979. else
  1980. /* just a partial read to be scheduled from separate
  1981. * context
  1982. */
  1983. generic_make_request(r1_bio->bios[r1_bio->read_disk]);
  1984. cond_resched();
  1985. if (mddev->flags & ~(1<<MD_CHANGE_PENDING))
  1986. md_check_recovery(mddev);
  1987. }
  1988. blk_finish_plug(&plug);
  1989. }
  1990. static int init_resync(struct r1conf *conf)
  1991. {
  1992. int buffs;
  1993. buffs = RESYNC_WINDOW / RESYNC_BLOCK_SIZE;
  1994. BUG_ON(conf->r1buf_pool);
  1995. conf->r1buf_pool = mempool_create(buffs, r1buf_pool_alloc, r1buf_pool_free,
  1996. conf->poolinfo);
  1997. if (!conf->r1buf_pool)
  1998. return -ENOMEM;
  1999. conf->next_resync = 0;
  2000. return 0;
  2001. }
  2002. /*
  2003. * perform a "sync" on one "block"
  2004. *
  2005. * We need to make sure that no normal I/O request - particularly write
  2006. * requests - conflict with active sync requests.
  2007. *
  2008. * This is achieved by tracking pending requests and a 'barrier' concept
  2009. * that can be installed to exclude normal IO requests.
  2010. */
  2011. static sector_t sync_request(struct mddev *mddev, sector_t sector_nr, int *skipped, int go_faster)
  2012. {
  2013. struct r1conf *conf = mddev->private;
  2014. struct r1bio *r1_bio;
  2015. struct bio *bio;
  2016. sector_t max_sector, nr_sectors;
  2017. int disk = -1;
  2018. int i;
  2019. int wonly = -1;
  2020. int write_targets = 0, read_targets = 0;
  2021. sector_t sync_blocks;
  2022. int still_degraded = 0;
  2023. int good_sectors = RESYNC_SECTORS;
  2024. int min_bad = 0; /* number of sectors that are bad in all devices */
  2025. if (!conf->r1buf_pool)
  2026. if (init_resync(conf))
  2027. return 0;
  2028. max_sector = mddev->dev_sectors;
  2029. if (sector_nr >= max_sector) {
  2030. /* If we aborted, we need to abort the
  2031. * sync on the 'current' bitmap chunk (there will
  2032. * only be one in raid1 resync.
  2033. * We can find the current addess in mddev->curr_resync
  2034. */
  2035. if (mddev->curr_resync < max_sector) /* aborted */
  2036. bitmap_end_sync(mddev->bitmap, mddev->curr_resync,
  2037. &sync_blocks, 1);
  2038. else /* completed sync */
  2039. conf->fullsync = 0;
  2040. bitmap_close_sync(mddev->bitmap);
  2041. close_sync(conf);
  2042. return 0;
  2043. }
  2044. if (mddev->bitmap == NULL &&
  2045. mddev->recovery_cp == MaxSector &&
  2046. !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery) &&
  2047. conf->fullsync == 0) {
  2048. *skipped = 1;
  2049. return max_sector - sector_nr;
  2050. }
  2051. /* before building a request, check if we can skip these blocks..
  2052. * This call the bitmap_start_sync doesn't actually record anything
  2053. */
  2054. if (!bitmap_start_sync(mddev->bitmap, sector_nr, &sync_blocks, 1) &&
  2055. !conf->fullsync && !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) {
  2056. /* We can skip this block, and probably several more */
  2057. *skipped = 1;
  2058. return sync_blocks;
  2059. }
  2060. /*
  2061. * If there is non-resync activity waiting for a turn,
  2062. * and resync is going fast enough,
  2063. * then let it though before starting on this new sync request.
  2064. */
  2065. if (!go_faster && conf->nr_waiting)
  2066. msleep_interruptible(1000);
  2067. bitmap_cond_end_sync(mddev->bitmap, sector_nr);
  2068. r1_bio = mempool_alloc(conf->r1buf_pool, GFP_NOIO);
  2069. raise_barrier(conf);
  2070. conf->next_resync = sector_nr;
  2071. rcu_read_lock();
  2072. /*
  2073. * If we get a correctably read error during resync or recovery,
  2074. * we might want to read from a different device. So we
  2075. * flag all drives that could conceivably be read from for READ,
  2076. * and any others (which will be non-In_sync devices) for WRITE.
  2077. * If a read fails, we try reading from something else for which READ
  2078. * is OK.
  2079. */
  2080. r1_bio->mddev = mddev;
  2081. r1_bio->sector = sector_nr;
  2082. r1_bio->state = 0;
  2083. set_bit(R1BIO_IsSync, &r1_bio->state);
  2084. for (i = 0; i < conf->raid_disks * 2; i++) {
  2085. struct md_rdev *rdev;
  2086. bio = r1_bio->bios[i];
  2087. /* take from bio_init */
  2088. bio->bi_next = NULL;
  2089. bio->bi_flags &= ~(BIO_POOL_MASK-1);
  2090. bio->bi_flags |= 1 << BIO_UPTODATE;
  2091. bio->bi_rw = READ;
  2092. bio->bi_vcnt = 0;
  2093. bio->bi_idx = 0;
  2094. bio->bi_phys_segments = 0;
  2095. bio->bi_size = 0;
  2096. bio->bi_end_io = NULL;
  2097. bio->bi_private = NULL;
  2098. rdev = rcu_dereference(conf->mirrors[i].rdev);
  2099. if (rdev == NULL ||
  2100. test_bit(Faulty, &rdev->flags)) {
  2101. if (i < conf->raid_disks)
  2102. still_degraded = 1;
  2103. } else if (!test_bit(In_sync, &rdev->flags)) {
  2104. bio->bi_rw = WRITE;
  2105. bio->bi_end_io = end_sync_write;
  2106. write_targets ++;
  2107. } else {
  2108. /* may need to read from here */
  2109. sector_t first_bad = MaxSector;
  2110. int bad_sectors;
  2111. if (is_badblock(rdev, sector_nr, good_sectors,
  2112. &first_bad, &bad_sectors)) {
  2113. if (first_bad > sector_nr)
  2114. good_sectors = first_bad - sector_nr;
  2115. else {
  2116. bad_sectors -= (sector_nr - first_bad);
  2117. if (min_bad == 0 ||
  2118. min_bad > bad_sectors)
  2119. min_bad = bad_sectors;
  2120. }
  2121. }
  2122. if (sector_nr < first_bad) {
  2123. if (test_bit(WriteMostly, &rdev->flags)) {
  2124. if (wonly < 0)
  2125. wonly = i;
  2126. } else {
  2127. if (disk < 0)
  2128. disk = i;
  2129. }
  2130. bio->bi_rw = READ;
  2131. bio->bi_end_io = end_sync_read;
  2132. read_targets++;
  2133. }
  2134. }
  2135. if (bio->bi_end_io) {
  2136. atomic_inc(&rdev->nr_pending);
  2137. bio->bi_sector = sector_nr + rdev->data_offset;
  2138. bio->bi_bdev = rdev->bdev;
  2139. bio->bi_private = r1_bio;
  2140. }
  2141. }
  2142. rcu_read_unlock();
  2143. if (disk < 0)
  2144. disk = wonly;
  2145. r1_bio->read_disk = disk;
  2146. if (read_targets == 0 && min_bad > 0) {
  2147. /* These sectors are bad on all InSync devices, so we
  2148. * need to mark them bad on all write targets
  2149. */
  2150. int ok = 1;
  2151. for (i = 0 ; i < conf->raid_disks * 2 ; i++)
  2152. if (r1_bio->bios[i]->bi_end_io == end_sync_write) {
  2153. struct md_rdev *rdev = conf->mirrors[i].rdev;
  2154. ok = rdev_set_badblocks(rdev, sector_nr,
  2155. min_bad, 0
  2156. ) && ok;
  2157. }
  2158. set_bit(MD_CHANGE_DEVS, &mddev->flags);
  2159. *skipped = 1;
  2160. put_buf(r1_bio);
  2161. if (!ok) {
  2162. /* Cannot record the badblocks, so need to
  2163. * abort the resync.
  2164. * If there are multiple read targets, could just
  2165. * fail the really bad ones ???
  2166. */
  2167. conf->recovery_disabled = mddev->recovery_disabled;
  2168. set_bit(MD_RECOVERY_INTR, &mddev->recovery);
  2169. return 0;
  2170. } else
  2171. return min_bad;
  2172. }
  2173. if (min_bad > 0 && min_bad < good_sectors) {
  2174. /* only resync enough to reach the next bad->good
  2175. * transition */
  2176. good_sectors = min_bad;
  2177. }
  2178. if (test_bit(MD_RECOVERY_SYNC, &mddev->recovery) && read_targets > 0)
  2179. /* extra read targets are also write targets */
  2180. write_targets += read_targets-1;
  2181. if (write_targets == 0 || read_targets == 0) {
  2182. /* There is nowhere to write, so all non-sync
  2183. * drives must be failed - so we are finished
  2184. */
  2185. sector_t rv = max_sector - sector_nr;
  2186. *skipped = 1;
  2187. put_buf(r1_bio);
  2188. return rv;
  2189. }
  2190. if (max_sector > mddev->resync_max)
  2191. max_sector = mddev->resync_max; /* Don't do IO beyond here */
  2192. if (max_sector > sector_nr + good_sectors)
  2193. max_sector = sector_nr + good_sectors;
  2194. nr_sectors = 0;
  2195. sync_blocks = 0;
  2196. do {
  2197. struct page *page;
  2198. int len = PAGE_SIZE;
  2199. if (sector_nr + (len>>9) > max_sector)
  2200. len = (max_sector - sector_nr) << 9;
  2201. if (len == 0)
  2202. break;
  2203. if (sync_blocks == 0) {
  2204. if (!bitmap_start_sync(mddev->bitmap, sector_nr,
  2205. &sync_blocks, still_degraded) &&
  2206. !conf->fullsync &&
  2207. !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery))
  2208. break;
  2209. BUG_ON(sync_blocks < (PAGE_SIZE>>9));
  2210. if ((len >> 9) > sync_blocks)
  2211. len = sync_blocks<<9;
  2212. }
  2213. for (i = 0 ; i < conf->raid_disks * 2; i++) {
  2214. bio = r1_bio->bios[i];
  2215. if (bio->bi_end_io) {
  2216. page = bio->bi_io_vec[bio->bi_vcnt].bv_page;
  2217. if (bio_add_page(bio, page, len, 0) == 0) {
  2218. /* stop here */
  2219. bio->bi_io_vec[bio->bi_vcnt].bv_page = page;
  2220. while (i > 0) {
  2221. i--;
  2222. bio = r1_bio->bios[i];
  2223. if (bio->bi_end_io==NULL)
  2224. continue;
  2225. /* remove last page from this bio */
  2226. bio->bi_vcnt--;
  2227. bio->bi_size -= len;
  2228. bio->bi_flags &= ~(1<< BIO_SEG_VALID);
  2229. }
  2230. goto bio_full;
  2231. }
  2232. }
  2233. }
  2234. nr_sectors += len>>9;
  2235. sector_nr += len>>9;
  2236. sync_blocks -= (len>>9);
  2237. } while (r1_bio->bios[disk]->bi_vcnt < RESYNC_PAGES);
  2238. bio_full:
  2239. r1_bio->sectors = nr_sectors;
  2240. /* For a user-requested sync, we read all readable devices and do a
  2241. * compare
  2242. */
  2243. if (test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) {
  2244. atomic_set(&r1_bio->remaining, read_targets);
  2245. for (i = 0; i < conf->raid_disks * 2; i++) {
  2246. bio = r1_bio->bios[i];
  2247. if (bio->bi_end_io == end_sync_read) {
  2248. md_sync_acct(bio->bi_bdev, nr_sectors);
  2249. generic_make_request(bio);
  2250. }
  2251. }
  2252. } else {
  2253. atomic_set(&r1_bio->remaining, 1);
  2254. bio = r1_bio->bios[r1_bio->read_disk];
  2255. md_sync_acct(bio->bi_bdev, nr_sectors);
  2256. generic_make_request(bio);
  2257. }
  2258. return nr_sectors;
  2259. }
  2260. static sector_t raid1_size(struct mddev *mddev, sector_t sectors, int raid_disks)
  2261. {
  2262. if (sectors)
  2263. return sectors;
  2264. return mddev->dev_sectors;
  2265. }
  2266. static struct r1conf *setup_conf(struct mddev *mddev)
  2267. {
  2268. struct r1conf *conf;
  2269. int i;
  2270. struct mirror_info *disk;
  2271. struct md_rdev *rdev;
  2272. int err = -ENOMEM;
  2273. conf = kzalloc(sizeof(struct r1conf), GFP_KERNEL);
  2274. if (!conf)
  2275. goto abort;
  2276. conf->mirrors = kzalloc(sizeof(struct mirror_info)
  2277. * mddev->raid_disks * 2,
  2278. GFP_KERNEL);
  2279. if (!conf->mirrors)
  2280. goto abort;
  2281. conf->tmppage = alloc_page(GFP_KERNEL);
  2282. if (!conf->tmppage)
  2283. goto abort;
  2284. conf->poolinfo = kzalloc(sizeof(*conf->poolinfo), GFP_KERNEL);
  2285. if (!conf->poolinfo)
  2286. goto abort;
  2287. conf->poolinfo->raid_disks = mddev->raid_disks * 2;
  2288. conf->r1bio_pool = mempool_create(NR_RAID1_BIOS, r1bio_pool_alloc,
  2289. r1bio_pool_free,
  2290. conf->poolinfo);
  2291. if (!conf->r1bio_pool)
  2292. goto abort;
  2293. conf->poolinfo->mddev = mddev;
  2294. err = -EINVAL;
  2295. spin_lock_init(&conf->device_lock);
  2296. rdev_for_each(rdev, mddev) {
  2297. int disk_idx = rdev->raid_disk;
  2298. if (disk_idx >= mddev->raid_disks
  2299. || disk_idx < 0)
  2300. continue;
  2301. if (test_bit(Replacement, &rdev->flags))
  2302. disk = conf->mirrors + conf->raid_disks + disk_idx;
  2303. else
  2304. disk = conf->mirrors + disk_idx;
  2305. if (disk->rdev)
  2306. goto abort;
  2307. disk->rdev = rdev;
  2308. disk->head_position = 0;
  2309. }
  2310. conf->raid_disks = mddev->raid_disks;
  2311. conf->mddev = mddev;
  2312. INIT_LIST_HEAD(&conf->retry_list);
  2313. spin_lock_init(&conf->resync_lock);
  2314. init_waitqueue_head(&conf->wait_barrier);
  2315. bio_list_init(&conf->pending_bio_list);
  2316. conf->pending_count = 0;
  2317. conf->recovery_disabled = mddev->recovery_disabled - 1;
  2318. err = -EIO;
  2319. conf->last_used = -1;
  2320. for (i = 0; i < conf->raid_disks * 2; i++) {
  2321. disk = conf->mirrors + i;
  2322. if (i < conf->raid_disks &&
  2323. disk[conf->raid_disks].rdev) {
  2324. /* This slot has a replacement. */
  2325. if (!disk->rdev) {
  2326. /* No original, just make the replacement
  2327. * a recovering spare
  2328. */
  2329. disk->rdev =
  2330. disk[conf->raid_disks].rdev;
  2331. disk[conf->raid_disks].rdev = NULL;
  2332. } else if (!test_bit(In_sync, &disk->rdev->flags))
  2333. /* Original is not in_sync - bad */
  2334. goto abort;
  2335. }
  2336. if (!disk->rdev ||
  2337. !test_bit(In_sync, &disk->rdev->flags)) {
  2338. disk->head_position = 0;
  2339. if (disk->rdev &&
  2340. (disk->rdev->saved_raid_disk < 0))
  2341. conf->fullsync = 1;
  2342. } else if (conf->last_used < 0)
  2343. /*
  2344. * The first working device is used as a
  2345. * starting point to read balancing.
  2346. */
  2347. conf->last_used = i;
  2348. }
  2349. if (conf->last_used < 0) {
  2350. printk(KERN_ERR "md/raid1:%s: no operational mirrors\n",
  2351. mdname(mddev));
  2352. goto abort;
  2353. }
  2354. err = -ENOMEM;
  2355. conf->thread = md_register_thread(raid1d, mddev, NULL);
  2356. if (!conf->thread) {
  2357. printk(KERN_ERR
  2358. "md/raid1:%s: couldn't allocate thread\n",
  2359. mdname(mddev));
  2360. goto abort;
  2361. }
  2362. return conf;
  2363. abort:
  2364. if (conf) {
  2365. if (conf->r1bio_pool)
  2366. mempool_destroy(conf->r1bio_pool);
  2367. kfree(conf->mirrors);
  2368. safe_put_page(conf->tmppage);
  2369. kfree(conf->poolinfo);
  2370. kfree(conf);
  2371. }
  2372. return ERR_PTR(err);
  2373. }
  2374. static int stop(struct mddev *mddev);
  2375. static int run(struct mddev *mddev)
  2376. {
  2377. struct r1conf *conf;
  2378. int i;
  2379. struct md_rdev *rdev;
  2380. int ret;
  2381. if (mddev->level != 1) {
  2382. printk(KERN_ERR "md/raid1:%s: raid level not set to mirroring (%d)\n",
  2383. mdname(mddev), mddev->level);
  2384. return -EIO;
  2385. }
  2386. if (mddev->reshape_position != MaxSector) {
  2387. printk(KERN_ERR "md/raid1:%s: reshape_position set but not supported\n",
  2388. mdname(mddev));
  2389. return -EIO;
  2390. }
  2391. /*
  2392. * copy the already verified devices into our private RAID1
  2393. * bookkeeping area. [whatever we allocate in run(),
  2394. * should be freed in stop()]
  2395. */
  2396. if (mddev->private == NULL)
  2397. conf = setup_conf(mddev);
  2398. else
  2399. conf = mddev->private;
  2400. if (IS_ERR(conf))
  2401. return PTR_ERR(conf);
  2402. rdev_for_each(rdev, mddev) {
  2403. if (!mddev->gendisk)
  2404. continue;
  2405. disk_stack_limits(mddev->gendisk, rdev->bdev,
  2406. rdev->data_offset << 9);
  2407. }
  2408. mddev->degraded = 0;
  2409. for (i=0; i < conf->raid_disks; i++)
  2410. if (conf->mirrors[i].rdev == NULL ||
  2411. !test_bit(In_sync, &conf->mirrors[i].rdev->flags) ||
  2412. test_bit(Faulty, &conf->mirrors[i].rdev->flags))
  2413. mddev->degraded++;
  2414. if (conf->raid_disks - mddev->degraded == 1)
  2415. mddev->recovery_cp = MaxSector;
  2416. if (mddev->recovery_cp != MaxSector)
  2417. printk(KERN_NOTICE "md/raid1:%s: not clean"
  2418. " -- starting background reconstruction\n",
  2419. mdname(mddev));
  2420. printk(KERN_INFO
  2421. "md/raid1:%s: active with %d out of %d mirrors\n",
  2422. mdname(mddev), mddev->raid_disks - mddev->degraded,
  2423. mddev->raid_disks);
  2424. /*
  2425. * Ok, everything is just fine now
  2426. */
  2427. mddev->thread = conf->thread;
  2428. conf->thread = NULL;
  2429. mddev->private = conf;
  2430. md_set_array_sectors(mddev, raid1_size(mddev, 0, 0));
  2431. if (mddev->queue) {
  2432. mddev->queue->backing_dev_info.congested_fn = raid1_congested;
  2433. mddev->queue->backing_dev_info.congested_data = mddev;
  2434. blk_queue_merge_bvec(mddev->queue, raid1_mergeable_bvec);
  2435. }
  2436. ret = md_integrity_register(mddev);
  2437. if (ret)
  2438. stop(mddev);
  2439. return ret;
  2440. }
  2441. static int stop(struct mddev *mddev)
  2442. {
  2443. struct r1conf *conf = mddev->private;
  2444. struct bitmap *bitmap = mddev->bitmap;
  2445. /* wait for behind writes to complete */
  2446. if (bitmap && atomic_read(&bitmap->behind_writes) > 0) {
  2447. printk(KERN_INFO "md/raid1:%s: behind writes in progress - waiting to stop.\n",
  2448. mdname(mddev));
  2449. /* need to kick something here to make sure I/O goes? */
  2450. wait_event(bitmap->behind_wait,
  2451. atomic_read(&bitmap->behind_writes) == 0);
  2452. }
  2453. raise_barrier(conf);
  2454. lower_barrier(conf);
  2455. md_unregister_thread(&mddev->thread);
  2456. if (conf->r1bio_pool)
  2457. mempool_destroy(conf->r1bio_pool);
  2458. kfree(conf->mirrors);
  2459. kfree(conf->poolinfo);
  2460. kfree(conf);
  2461. mddev->private = NULL;
  2462. return 0;
  2463. }
  2464. static int raid1_resize(struct mddev *mddev, sector_t sectors)
  2465. {
  2466. /* no resync is happening, and there is enough space
  2467. * on all devices, so we can resize.
  2468. * We need to make sure resync covers any new space.
  2469. * If the array is shrinking we should possibly wait until
  2470. * any io in the removed space completes, but it hardly seems
  2471. * worth it.
  2472. */
  2473. sector_t newsize = raid1_size(mddev, sectors, 0);
  2474. if (mddev->external_size &&
  2475. mddev->array_sectors > newsize)
  2476. return -EINVAL;
  2477. if (mddev->bitmap) {
  2478. int ret = bitmap_resize(mddev->bitmap, newsize, 0, 0);
  2479. if (ret)
  2480. return ret;
  2481. }
  2482. md_set_array_sectors(mddev, newsize);
  2483. set_capacity(mddev->gendisk, mddev->array_sectors);
  2484. revalidate_disk(mddev->gendisk);
  2485. if (sectors > mddev->dev_sectors &&
  2486. mddev->recovery_cp > mddev->dev_sectors) {
  2487. mddev->recovery_cp = mddev->dev_sectors;
  2488. set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
  2489. }
  2490. mddev->dev_sectors = sectors;
  2491. mddev->resync_max_sectors = sectors;
  2492. return 0;
  2493. }
  2494. static int raid1_reshape(struct mddev *mddev)
  2495. {
  2496. /* We need to:
  2497. * 1/ resize the r1bio_pool
  2498. * 2/ resize conf->mirrors
  2499. *
  2500. * We allocate a new r1bio_pool if we can.
  2501. * Then raise a device barrier and wait until all IO stops.
  2502. * Then resize conf->mirrors and swap in the new r1bio pool.
  2503. *
  2504. * At the same time, we "pack" the devices so that all the missing
  2505. * devices have the higher raid_disk numbers.
  2506. */
  2507. mempool_t *newpool, *oldpool;
  2508. struct pool_info *newpoolinfo;
  2509. struct mirror_info *newmirrors;
  2510. struct r1conf *conf = mddev->private;
  2511. int cnt, raid_disks;
  2512. unsigned long flags;
  2513. int d, d2, err;
  2514. /* Cannot change chunk_size, layout, or level */
  2515. if (mddev->chunk_sectors != mddev->new_chunk_sectors ||
  2516. mddev->layout != mddev->new_layout ||
  2517. mddev->level != mddev->new_level) {
  2518. mddev->new_chunk_sectors = mddev->chunk_sectors;
  2519. mddev->new_layout = mddev->layout;
  2520. mddev->new_level = mddev->level;
  2521. return -EINVAL;
  2522. }
  2523. err = md_allow_write(mddev);
  2524. if (err)
  2525. return err;
  2526. raid_disks = mddev->raid_disks + mddev->delta_disks;
  2527. if (raid_disks < conf->raid_disks) {
  2528. cnt=0;
  2529. for (d= 0; d < conf->raid_disks; d++)
  2530. if (conf->mirrors[d].rdev)
  2531. cnt++;
  2532. if (cnt > raid_disks)
  2533. return -EBUSY;
  2534. }
  2535. newpoolinfo = kmalloc(sizeof(*newpoolinfo), GFP_KERNEL);
  2536. if (!newpoolinfo)
  2537. return -ENOMEM;
  2538. newpoolinfo->mddev = mddev;
  2539. newpoolinfo->raid_disks = raid_disks * 2;
  2540. newpool = mempool_create(NR_RAID1_BIOS, r1bio_pool_alloc,
  2541. r1bio_pool_free, newpoolinfo);
  2542. if (!newpool) {
  2543. kfree(newpoolinfo);
  2544. return -ENOMEM;
  2545. }
  2546. newmirrors = kzalloc(sizeof(struct mirror_info) * raid_disks * 2,
  2547. GFP_KERNEL);
  2548. if (!newmirrors) {
  2549. kfree(newpoolinfo);
  2550. mempool_destroy(newpool);
  2551. return -ENOMEM;
  2552. }
  2553. raise_barrier(conf);
  2554. /* ok, everything is stopped */
  2555. oldpool = conf->r1bio_pool;
  2556. conf->r1bio_pool = newpool;
  2557. for (d = d2 = 0; d < conf->raid_disks; d++) {
  2558. struct md_rdev *rdev = conf->mirrors[d].rdev;
  2559. if (rdev && rdev->raid_disk != d2) {
  2560. sysfs_unlink_rdev(mddev, rdev);
  2561. rdev->raid_disk = d2;
  2562. sysfs_unlink_rdev(mddev, rdev);
  2563. if (sysfs_link_rdev(mddev, rdev))
  2564. printk(KERN_WARNING
  2565. "md/raid1:%s: cannot register rd%d\n",
  2566. mdname(mddev), rdev->raid_disk);
  2567. }
  2568. if (rdev)
  2569. newmirrors[d2++].rdev = rdev;
  2570. }
  2571. kfree(conf->mirrors);
  2572. conf->mirrors = newmirrors;
  2573. kfree(conf->poolinfo);
  2574. conf->poolinfo = newpoolinfo;
  2575. spin_lock_irqsave(&conf->device_lock, flags);
  2576. mddev->degraded += (raid_disks - conf->raid_disks);
  2577. spin_unlock_irqrestore(&conf->device_lock, flags);
  2578. conf->raid_disks = mddev->raid_disks = raid_disks;
  2579. mddev->delta_disks = 0;
  2580. conf->last_used = 0; /* just make sure it is in-range */
  2581. lower_barrier(conf);
  2582. set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
  2583. md_wakeup_thread(mddev->thread);
  2584. mempool_destroy(oldpool);
  2585. return 0;
  2586. }
  2587. static void raid1_quiesce(struct mddev *mddev, int state)
  2588. {
  2589. struct r1conf *conf = mddev->private;
  2590. switch(state) {
  2591. case 2: /* wake for suspend */
  2592. wake_up(&conf->wait_barrier);
  2593. break;
  2594. case 1:
  2595. raise_barrier(conf);
  2596. break;
  2597. case 0:
  2598. lower_barrier(conf);
  2599. break;
  2600. }
  2601. }
  2602. static void *raid1_takeover(struct mddev *mddev)
  2603. {
  2604. /* raid1 can take over:
  2605. * raid5 with 2 devices, any layout or chunk size
  2606. */
  2607. if (mddev->level == 5 && mddev->raid_disks == 2) {
  2608. struct r1conf *conf;
  2609. mddev->new_level = 1;
  2610. mddev->new_layout = 0;
  2611. mddev->new_chunk_sectors = 0;
  2612. conf = setup_conf(mddev);
  2613. if (!IS_ERR(conf))
  2614. conf->barrier = 1;
  2615. return conf;
  2616. }
  2617. return ERR_PTR(-EINVAL);
  2618. }
  2619. static struct md_personality raid1_personality =
  2620. {
  2621. .name = "raid1",
  2622. .level = 1,
  2623. .owner = THIS_MODULE,
  2624. .make_request = make_request,
  2625. .run = run,
  2626. .stop = stop,
  2627. .status = status,
  2628. .error_handler = error,
  2629. .hot_add_disk = raid1_add_disk,
  2630. .hot_remove_disk= raid1_remove_disk,
  2631. .spare_active = raid1_spare_active,
  2632. .sync_request = sync_request,
  2633. .resize = raid1_resize,
  2634. .size = raid1_size,
  2635. .check_reshape = raid1_reshape,
  2636. .quiesce = raid1_quiesce,
  2637. .takeover = raid1_takeover,
  2638. };
  2639. static int __init raid_init(void)
  2640. {
  2641. return register_md_personality(&raid1_personality);
  2642. }
  2643. static void raid_exit(void)
  2644. {
  2645. unregister_md_personality(&raid1_personality);
  2646. }
  2647. module_init(raid_init);
  2648. module_exit(raid_exit);
  2649. MODULE_LICENSE("GPL");
  2650. MODULE_DESCRIPTION("RAID1 (mirroring) personality for MD");
  2651. MODULE_ALIAS("md-personality-3"); /* RAID1 */
  2652. MODULE_ALIAS("md-raid1");
  2653. MODULE_ALIAS("md-level-1");
  2654. module_param(max_queued_requests, int, S_IRUGO|S_IWUSR);