raid5.c 159 KB

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  1. /*
  2. * raid5.c : Multiple Devices driver for Linux
  3. * Copyright (C) 1996, 1997 Ingo Molnar, Miguel de Icaza, Gadi Oxman
  4. * Copyright (C) 1999, 2000 Ingo Molnar
  5. * Copyright (C) 2002, 2003 H. Peter Anvin
  6. *
  7. * RAID-4/5/6 management functions.
  8. * Thanks to Penguin Computing for making the RAID-6 development possible
  9. * by donating a test server!
  10. *
  11. * This program is free software; you can redistribute it and/or modify
  12. * it under the terms of the GNU General Public License as published by
  13. * the Free Software Foundation; either version 2, or (at your option)
  14. * any later version.
  15. *
  16. * You should have received a copy of the GNU General Public License
  17. * (for example /usr/src/linux/COPYING); if not, write to the Free
  18. * Software Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  19. */
  20. /*
  21. * BITMAP UNPLUGGING:
  22. *
  23. * The sequencing for updating the bitmap reliably is a little
  24. * subtle (and I got it wrong the first time) so it deserves some
  25. * explanation.
  26. *
  27. * We group bitmap updates into batches. Each batch has a number.
  28. * We may write out several batches at once, but that isn't very important.
  29. * conf->seq_write is the number of the last batch successfully written.
  30. * conf->seq_flush is the number of the last batch that was closed to
  31. * new additions.
  32. * When we discover that we will need to write to any block in a stripe
  33. * (in add_stripe_bio) we update the in-memory bitmap and record in sh->bm_seq
  34. * the number of the batch it will be in. This is seq_flush+1.
  35. * When we are ready to do a write, if that batch hasn't been written yet,
  36. * we plug the array and queue the stripe for later.
  37. * When an unplug happens, we increment bm_flush, thus closing the current
  38. * batch.
  39. * When we notice that bm_flush > bm_write, we write out all pending updates
  40. * to the bitmap, and advance bm_write to where bm_flush was.
  41. * This may occasionally write a bit out twice, but is sure never to
  42. * miss any bits.
  43. */
  44. #include <linux/blkdev.h>
  45. #include <linux/kthread.h>
  46. #include <linux/raid/pq.h>
  47. #include <linux/async_tx.h>
  48. #include <linux/module.h>
  49. #include <linux/async.h>
  50. #include <linux/seq_file.h>
  51. #include <linux/cpu.h>
  52. #include <linux/slab.h>
  53. #include <linux/ratelimit.h>
  54. #include "md.h"
  55. #include "raid5.h"
  56. #include "raid0.h"
  57. #include "bitmap.h"
  58. /*
  59. * Stripe cache
  60. */
  61. #define NR_STRIPES 256
  62. #define STRIPE_SIZE PAGE_SIZE
  63. #define STRIPE_SHIFT (PAGE_SHIFT - 9)
  64. #define STRIPE_SECTORS (STRIPE_SIZE>>9)
  65. #define IO_THRESHOLD 1
  66. #define BYPASS_THRESHOLD 1
  67. #define NR_HASH (PAGE_SIZE / sizeof(struct hlist_head))
  68. #define HASH_MASK (NR_HASH - 1)
  69. static inline struct hlist_head *stripe_hash(struct r5conf *conf, sector_t sect)
  70. {
  71. int hash = (sect >> STRIPE_SHIFT) & HASH_MASK;
  72. return &conf->stripe_hashtbl[hash];
  73. }
  74. /* bio's attached to a stripe+device for I/O are linked together in bi_sector
  75. * order without overlap. There may be several bio's per stripe+device, and
  76. * a bio could span several devices.
  77. * When walking this list for a particular stripe+device, we must never proceed
  78. * beyond a bio that extends past this device, as the next bio might no longer
  79. * be valid.
  80. * This function is used to determine the 'next' bio in the list, given the sector
  81. * of the current stripe+device
  82. */
  83. static inline struct bio *r5_next_bio(struct bio *bio, sector_t sector)
  84. {
  85. int sectors = bio->bi_size >> 9;
  86. if (bio->bi_sector + sectors < sector + STRIPE_SECTORS)
  87. return bio->bi_next;
  88. else
  89. return NULL;
  90. }
  91. /*
  92. * We maintain a biased count of active stripes in the bottom 16 bits of
  93. * bi_phys_segments, and a count of processed stripes in the upper 16 bits
  94. */
  95. static inline int raid5_bi_phys_segments(struct bio *bio)
  96. {
  97. return bio->bi_phys_segments & 0xffff;
  98. }
  99. static inline int raid5_bi_hw_segments(struct bio *bio)
  100. {
  101. return (bio->bi_phys_segments >> 16) & 0xffff;
  102. }
  103. static inline int raid5_dec_bi_phys_segments(struct bio *bio)
  104. {
  105. --bio->bi_phys_segments;
  106. return raid5_bi_phys_segments(bio);
  107. }
  108. static inline int raid5_dec_bi_hw_segments(struct bio *bio)
  109. {
  110. unsigned short val = raid5_bi_hw_segments(bio);
  111. --val;
  112. bio->bi_phys_segments = (val << 16) | raid5_bi_phys_segments(bio);
  113. return val;
  114. }
  115. static inline void raid5_set_bi_hw_segments(struct bio *bio, unsigned int cnt)
  116. {
  117. bio->bi_phys_segments = raid5_bi_phys_segments(bio) | (cnt << 16);
  118. }
  119. /* Find first data disk in a raid6 stripe */
  120. static inline int raid6_d0(struct stripe_head *sh)
  121. {
  122. if (sh->ddf_layout)
  123. /* ddf always start from first device */
  124. return 0;
  125. /* md starts just after Q block */
  126. if (sh->qd_idx == sh->disks - 1)
  127. return 0;
  128. else
  129. return sh->qd_idx + 1;
  130. }
  131. static inline int raid6_next_disk(int disk, int raid_disks)
  132. {
  133. disk++;
  134. return (disk < raid_disks) ? disk : 0;
  135. }
  136. /* When walking through the disks in a raid5, starting at raid6_d0,
  137. * We need to map each disk to a 'slot', where the data disks are slot
  138. * 0 .. raid_disks-3, the parity disk is raid_disks-2 and the Q disk
  139. * is raid_disks-1. This help does that mapping.
  140. */
  141. static int raid6_idx_to_slot(int idx, struct stripe_head *sh,
  142. int *count, int syndrome_disks)
  143. {
  144. int slot = *count;
  145. if (sh->ddf_layout)
  146. (*count)++;
  147. if (idx == sh->pd_idx)
  148. return syndrome_disks;
  149. if (idx == sh->qd_idx)
  150. return syndrome_disks + 1;
  151. if (!sh->ddf_layout)
  152. (*count)++;
  153. return slot;
  154. }
  155. static void return_io(struct bio *return_bi)
  156. {
  157. struct bio *bi = return_bi;
  158. while (bi) {
  159. return_bi = bi->bi_next;
  160. bi->bi_next = NULL;
  161. bi->bi_size = 0;
  162. bio_endio(bi, 0);
  163. bi = return_bi;
  164. }
  165. }
  166. static void print_raid5_conf (struct r5conf *conf);
  167. static int stripe_operations_active(struct stripe_head *sh)
  168. {
  169. return sh->check_state || sh->reconstruct_state ||
  170. test_bit(STRIPE_BIOFILL_RUN, &sh->state) ||
  171. test_bit(STRIPE_COMPUTE_RUN, &sh->state);
  172. }
  173. static void __release_stripe(struct r5conf *conf, struct stripe_head *sh)
  174. {
  175. if (atomic_dec_and_test(&sh->count)) {
  176. BUG_ON(!list_empty(&sh->lru));
  177. BUG_ON(atomic_read(&conf->active_stripes)==0);
  178. if (test_bit(STRIPE_HANDLE, &sh->state)) {
  179. if (test_bit(STRIPE_DELAYED, &sh->state))
  180. list_add_tail(&sh->lru, &conf->delayed_list);
  181. else if (test_bit(STRIPE_BIT_DELAY, &sh->state) &&
  182. sh->bm_seq - conf->seq_write > 0)
  183. list_add_tail(&sh->lru, &conf->bitmap_list);
  184. else {
  185. clear_bit(STRIPE_BIT_DELAY, &sh->state);
  186. list_add_tail(&sh->lru, &conf->handle_list);
  187. }
  188. md_wakeup_thread(conf->mddev->thread);
  189. } else {
  190. BUG_ON(stripe_operations_active(sh));
  191. if (test_and_clear_bit(STRIPE_PREREAD_ACTIVE, &sh->state)) {
  192. atomic_dec(&conf->preread_active_stripes);
  193. if (atomic_read(&conf->preread_active_stripes) < IO_THRESHOLD)
  194. md_wakeup_thread(conf->mddev->thread);
  195. }
  196. atomic_dec(&conf->active_stripes);
  197. if (!test_bit(STRIPE_EXPANDING, &sh->state)) {
  198. list_add_tail(&sh->lru, &conf->inactive_list);
  199. wake_up(&conf->wait_for_stripe);
  200. if (conf->retry_read_aligned)
  201. md_wakeup_thread(conf->mddev->thread);
  202. }
  203. }
  204. }
  205. }
  206. static void release_stripe(struct stripe_head *sh)
  207. {
  208. struct r5conf *conf = sh->raid_conf;
  209. unsigned long flags;
  210. spin_lock_irqsave(&conf->device_lock, flags);
  211. __release_stripe(conf, sh);
  212. spin_unlock_irqrestore(&conf->device_lock, flags);
  213. }
  214. static inline void remove_hash(struct stripe_head *sh)
  215. {
  216. pr_debug("remove_hash(), stripe %llu\n",
  217. (unsigned long long)sh->sector);
  218. hlist_del_init(&sh->hash);
  219. }
  220. static inline void insert_hash(struct r5conf *conf, struct stripe_head *sh)
  221. {
  222. struct hlist_head *hp = stripe_hash(conf, sh->sector);
  223. pr_debug("insert_hash(), stripe %llu\n",
  224. (unsigned long long)sh->sector);
  225. hlist_add_head(&sh->hash, hp);
  226. }
  227. /* find an idle stripe, make sure it is unhashed, and return it. */
  228. static struct stripe_head *get_free_stripe(struct r5conf *conf)
  229. {
  230. struct stripe_head *sh = NULL;
  231. struct list_head *first;
  232. if (list_empty(&conf->inactive_list))
  233. goto out;
  234. first = conf->inactive_list.next;
  235. sh = list_entry(first, struct stripe_head, lru);
  236. list_del_init(first);
  237. remove_hash(sh);
  238. atomic_inc(&conf->active_stripes);
  239. out:
  240. return sh;
  241. }
  242. static void shrink_buffers(struct stripe_head *sh)
  243. {
  244. struct page *p;
  245. int i;
  246. int num = sh->raid_conf->pool_size;
  247. for (i = 0; i < num ; i++) {
  248. p = sh->dev[i].page;
  249. if (!p)
  250. continue;
  251. sh->dev[i].page = NULL;
  252. put_page(p);
  253. }
  254. }
  255. static int grow_buffers(struct stripe_head *sh)
  256. {
  257. int i;
  258. int num = sh->raid_conf->pool_size;
  259. for (i = 0; i < num; i++) {
  260. struct page *page;
  261. if (!(page = alloc_page(GFP_KERNEL))) {
  262. return 1;
  263. }
  264. sh->dev[i].page = page;
  265. }
  266. return 0;
  267. }
  268. static void raid5_build_block(struct stripe_head *sh, int i, int previous);
  269. static void stripe_set_idx(sector_t stripe, struct r5conf *conf, int previous,
  270. struct stripe_head *sh);
  271. static void init_stripe(struct stripe_head *sh, sector_t sector, int previous)
  272. {
  273. struct r5conf *conf = sh->raid_conf;
  274. int i;
  275. BUG_ON(atomic_read(&sh->count) != 0);
  276. BUG_ON(test_bit(STRIPE_HANDLE, &sh->state));
  277. BUG_ON(stripe_operations_active(sh));
  278. pr_debug("init_stripe called, stripe %llu\n",
  279. (unsigned long long)sh->sector);
  280. remove_hash(sh);
  281. sh->generation = conf->generation - previous;
  282. sh->disks = previous ? conf->previous_raid_disks : conf->raid_disks;
  283. sh->sector = sector;
  284. stripe_set_idx(sector, conf, previous, sh);
  285. sh->state = 0;
  286. for (i = sh->disks; i--; ) {
  287. struct r5dev *dev = &sh->dev[i];
  288. if (dev->toread || dev->read || dev->towrite || dev->written ||
  289. test_bit(R5_LOCKED, &dev->flags)) {
  290. printk(KERN_ERR "sector=%llx i=%d %p %p %p %p %d\n",
  291. (unsigned long long)sh->sector, i, dev->toread,
  292. dev->read, dev->towrite, dev->written,
  293. test_bit(R5_LOCKED, &dev->flags));
  294. WARN_ON(1);
  295. }
  296. dev->flags = 0;
  297. raid5_build_block(sh, i, previous);
  298. }
  299. insert_hash(conf, sh);
  300. }
  301. static struct stripe_head *__find_stripe(struct r5conf *conf, sector_t sector,
  302. short generation)
  303. {
  304. struct stripe_head *sh;
  305. struct hlist_node *hn;
  306. pr_debug("__find_stripe, sector %llu\n", (unsigned long long)sector);
  307. hlist_for_each_entry(sh, hn, stripe_hash(conf, sector), hash)
  308. if (sh->sector == sector && sh->generation == generation)
  309. return sh;
  310. pr_debug("__stripe %llu not in cache\n", (unsigned long long)sector);
  311. return NULL;
  312. }
  313. /*
  314. * Need to check if array has failed when deciding whether to:
  315. * - start an array
  316. * - remove non-faulty devices
  317. * - add a spare
  318. * - allow a reshape
  319. * This determination is simple when no reshape is happening.
  320. * However if there is a reshape, we need to carefully check
  321. * both the before and after sections.
  322. * This is because some failed devices may only affect one
  323. * of the two sections, and some non-in_sync devices may
  324. * be insync in the section most affected by failed devices.
  325. */
  326. static int calc_degraded(struct r5conf *conf)
  327. {
  328. int degraded, degraded2;
  329. int i;
  330. rcu_read_lock();
  331. degraded = 0;
  332. for (i = 0; i < conf->previous_raid_disks; i++) {
  333. struct md_rdev *rdev = rcu_dereference(conf->disks[i].rdev);
  334. if (!rdev || test_bit(Faulty, &rdev->flags))
  335. degraded++;
  336. else if (test_bit(In_sync, &rdev->flags))
  337. ;
  338. else
  339. /* not in-sync or faulty.
  340. * If the reshape increases the number of devices,
  341. * this is being recovered by the reshape, so
  342. * this 'previous' section is not in_sync.
  343. * If the number of devices is being reduced however,
  344. * the device can only be part of the array if
  345. * we are reverting a reshape, so this section will
  346. * be in-sync.
  347. */
  348. if (conf->raid_disks >= conf->previous_raid_disks)
  349. degraded++;
  350. }
  351. rcu_read_unlock();
  352. if (conf->raid_disks == conf->previous_raid_disks)
  353. return degraded;
  354. rcu_read_lock();
  355. degraded2 = 0;
  356. for (i = 0; i < conf->raid_disks; i++) {
  357. struct md_rdev *rdev = rcu_dereference(conf->disks[i].rdev);
  358. if (!rdev || test_bit(Faulty, &rdev->flags))
  359. degraded2++;
  360. else if (test_bit(In_sync, &rdev->flags))
  361. ;
  362. else
  363. /* not in-sync or faulty.
  364. * If reshape increases the number of devices, this
  365. * section has already been recovered, else it
  366. * almost certainly hasn't.
  367. */
  368. if (conf->raid_disks <= conf->previous_raid_disks)
  369. degraded2++;
  370. }
  371. rcu_read_unlock();
  372. if (degraded2 > degraded)
  373. return degraded2;
  374. return degraded;
  375. }
  376. static int has_failed(struct r5conf *conf)
  377. {
  378. int degraded;
  379. if (conf->mddev->reshape_position == MaxSector)
  380. return conf->mddev->degraded > conf->max_degraded;
  381. degraded = calc_degraded(conf);
  382. if (degraded > conf->max_degraded)
  383. return 1;
  384. return 0;
  385. }
  386. static struct stripe_head *
  387. get_active_stripe(struct r5conf *conf, sector_t sector,
  388. int previous, int noblock, int noquiesce)
  389. {
  390. struct stripe_head *sh;
  391. pr_debug("get_stripe, sector %llu\n", (unsigned long long)sector);
  392. spin_lock_irq(&conf->device_lock);
  393. do {
  394. wait_event_lock_irq(conf->wait_for_stripe,
  395. conf->quiesce == 0 || noquiesce,
  396. conf->device_lock, /* nothing */);
  397. sh = __find_stripe(conf, sector, conf->generation - previous);
  398. if (!sh) {
  399. if (!conf->inactive_blocked)
  400. sh = get_free_stripe(conf);
  401. if (noblock && sh == NULL)
  402. break;
  403. if (!sh) {
  404. conf->inactive_blocked = 1;
  405. wait_event_lock_irq(conf->wait_for_stripe,
  406. !list_empty(&conf->inactive_list) &&
  407. (atomic_read(&conf->active_stripes)
  408. < (conf->max_nr_stripes *3/4)
  409. || !conf->inactive_blocked),
  410. conf->device_lock,
  411. );
  412. conf->inactive_blocked = 0;
  413. } else
  414. init_stripe(sh, sector, previous);
  415. } else {
  416. if (atomic_read(&sh->count)) {
  417. BUG_ON(!list_empty(&sh->lru)
  418. && !test_bit(STRIPE_EXPANDING, &sh->state));
  419. } else {
  420. if (!test_bit(STRIPE_HANDLE, &sh->state))
  421. atomic_inc(&conf->active_stripes);
  422. if (list_empty(&sh->lru) &&
  423. !test_bit(STRIPE_EXPANDING, &sh->state))
  424. BUG();
  425. list_del_init(&sh->lru);
  426. }
  427. }
  428. } while (sh == NULL);
  429. if (sh)
  430. atomic_inc(&sh->count);
  431. spin_unlock_irq(&conf->device_lock);
  432. return sh;
  433. }
  434. static void
  435. raid5_end_read_request(struct bio *bi, int error);
  436. static void
  437. raid5_end_write_request(struct bio *bi, int error);
  438. static void ops_run_io(struct stripe_head *sh, struct stripe_head_state *s)
  439. {
  440. struct r5conf *conf = sh->raid_conf;
  441. int i, disks = sh->disks;
  442. might_sleep();
  443. for (i = disks; i--; ) {
  444. int rw;
  445. struct bio *bi;
  446. struct md_rdev *rdev;
  447. if (test_and_clear_bit(R5_Wantwrite, &sh->dev[i].flags)) {
  448. if (test_and_clear_bit(R5_WantFUA, &sh->dev[i].flags))
  449. rw = WRITE_FUA;
  450. else
  451. rw = WRITE;
  452. } else if (test_and_clear_bit(R5_Wantread, &sh->dev[i].flags))
  453. rw = READ;
  454. else
  455. continue;
  456. bi = &sh->dev[i].req;
  457. bi->bi_rw = rw;
  458. if (rw & WRITE)
  459. bi->bi_end_io = raid5_end_write_request;
  460. else
  461. bi->bi_end_io = raid5_end_read_request;
  462. rcu_read_lock();
  463. rdev = rcu_dereference(conf->disks[i].rdev);
  464. if (rdev && test_bit(Faulty, &rdev->flags))
  465. rdev = NULL;
  466. if (rdev)
  467. atomic_inc(&rdev->nr_pending);
  468. rcu_read_unlock();
  469. /* We have already checked bad blocks for reads. Now
  470. * need to check for writes.
  471. */
  472. while ((rw & WRITE) && rdev &&
  473. test_bit(WriteErrorSeen, &rdev->flags)) {
  474. sector_t first_bad;
  475. int bad_sectors;
  476. int bad = is_badblock(rdev, sh->sector, STRIPE_SECTORS,
  477. &first_bad, &bad_sectors);
  478. if (!bad)
  479. break;
  480. if (bad < 0) {
  481. set_bit(BlockedBadBlocks, &rdev->flags);
  482. if (!conf->mddev->external &&
  483. conf->mddev->flags) {
  484. /* It is very unlikely, but we might
  485. * still need to write out the
  486. * bad block log - better give it
  487. * a chance*/
  488. md_check_recovery(conf->mddev);
  489. }
  490. md_wait_for_blocked_rdev(rdev, conf->mddev);
  491. } else {
  492. /* Acknowledged bad block - skip the write */
  493. rdev_dec_pending(rdev, conf->mddev);
  494. rdev = NULL;
  495. }
  496. }
  497. if (rdev) {
  498. if (s->syncing || s->expanding || s->expanded)
  499. md_sync_acct(rdev->bdev, STRIPE_SECTORS);
  500. set_bit(STRIPE_IO_STARTED, &sh->state);
  501. bi->bi_bdev = rdev->bdev;
  502. pr_debug("%s: for %llu schedule op %ld on disc %d\n",
  503. __func__, (unsigned long long)sh->sector,
  504. bi->bi_rw, i);
  505. atomic_inc(&sh->count);
  506. bi->bi_sector = sh->sector + rdev->data_offset;
  507. bi->bi_flags = 1 << BIO_UPTODATE;
  508. bi->bi_idx = 0;
  509. bi->bi_io_vec[0].bv_len = STRIPE_SIZE;
  510. bi->bi_io_vec[0].bv_offset = 0;
  511. bi->bi_size = STRIPE_SIZE;
  512. bi->bi_next = NULL;
  513. generic_make_request(bi);
  514. } else {
  515. if (rw & WRITE)
  516. set_bit(STRIPE_DEGRADED, &sh->state);
  517. pr_debug("skip op %ld on disc %d for sector %llu\n",
  518. bi->bi_rw, i, (unsigned long long)sh->sector);
  519. clear_bit(R5_LOCKED, &sh->dev[i].flags);
  520. set_bit(STRIPE_HANDLE, &sh->state);
  521. }
  522. }
  523. }
  524. static struct dma_async_tx_descriptor *
  525. async_copy_data(int frombio, struct bio *bio, struct page *page,
  526. sector_t sector, struct dma_async_tx_descriptor *tx)
  527. {
  528. struct bio_vec *bvl;
  529. struct page *bio_page;
  530. int i;
  531. int page_offset;
  532. struct async_submit_ctl submit;
  533. enum async_tx_flags flags = 0;
  534. if (bio->bi_sector >= sector)
  535. page_offset = (signed)(bio->bi_sector - sector) * 512;
  536. else
  537. page_offset = (signed)(sector - bio->bi_sector) * -512;
  538. if (frombio)
  539. flags |= ASYNC_TX_FENCE;
  540. init_async_submit(&submit, flags, tx, NULL, NULL, NULL);
  541. bio_for_each_segment(bvl, bio, i) {
  542. int len = bvl->bv_len;
  543. int clen;
  544. int b_offset = 0;
  545. if (page_offset < 0) {
  546. b_offset = -page_offset;
  547. page_offset += b_offset;
  548. len -= b_offset;
  549. }
  550. if (len > 0 && page_offset + len > STRIPE_SIZE)
  551. clen = STRIPE_SIZE - page_offset;
  552. else
  553. clen = len;
  554. if (clen > 0) {
  555. b_offset += bvl->bv_offset;
  556. bio_page = bvl->bv_page;
  557. if (frombio)
  558. tx = async_memcpy(page, bio_page, page_offset,
  559. b_offset, clen, &submit);
  560. else
  561. tx = async_memcpy(bio_page, page, b_offset,
  562. page_offset, clen, &submit);
  563. }
  564. /* chain the operations */
  565. submit.depend_tx = tx;
  566. if (clen < len) /* hit end of page */
  567. break;
  568. page_offset += len;
  569. }
  570. return tx;
  571. }
  572. static void ops_complete_biofill(void *stripe_head_ref)
  573. {
  574. struct stripe_head *sh = stripe_head_ref;
  575. struct bio *return_bi = NULL;
  576. struct r5conf *conf = sh->raid_conf;
  577. int i;
  578. pr_debug("%s: stripe %llu\n", __func__,
  579. (unsigned long long)sh->sector);
  580. /* clear completed biofills */
  581. spin_lock_irq(&conf->device_lock);
  582. for (i = sh->disks; i--; ) {
  583. struct r5dev *dev = &sh->dev[i];
  584. /* acknowledge completion of a biofill operation */
  585. /* and check if we need to reply to a read request,
  586. * new R5_Wantfill requests are held off until
  587. * !STRIPE_BIOFILL_RUN
  588. */
  589. if (test_and_clear_bit(R5_Wantfill, &dev->flags)) {
  590. struct bio *rbi, *rbi2;
  591. BUG_ON(!dev->read);
  592. rbi = dev->read;
  593. dev->read = NULL;
  594. while (rbi && rbi->bi_sector <
  595. dev->sector + STRIPE_SECTORS) {
  596. rbi2 = r5_next_bio(rbi, dev->sector);
  597. if (!raid5_dec_bi_phys_segments(rbi)) {
  598. rbi->bi_next = return_bi;
  599. return_bi = rbi;
  600. }
  601. rbi = rbi2;
  602. }
  603. }
  604. }
  605. spin_unlock_irq(&conf->device_lock);
  606. clear_bit(STRIPE_BIOFILL_RUN, &sh->state);
  607. return_io(return_bi);
  608. set_bit(STRIPE_HANDLE, &sh->state);
  609. release_stripe(sh);
  610. }
  611. static void ops_run_biofill(struct stripe_head *sh)
  612. {
  613. struct dma_async_tx_descriptor *tx = NULL;
  614. struct r5conf *conf = sh->raid_conf;
  615. struct async_submit_ctl submit;
  616. int i;
  617. pr_debug("%s: stripe %llu\n", __func__,
  618. (unsigned long long)sh->sector);
  619. for (i = sh->disks; i--; ) {
  620. struct r5dev *dev = &sh->dev[i];
  621. if (test_bit(R5_Wantfill, &dev->flags)) {
  622. struct bio *rbi;
  623. spin_lock_irq(&conf->device_lock);
  624. dev->read = rbi = dev->toread;
  625. dev->toread = NULL;
  626. spin_unlock_irq(&conf->device_lock);
  627. while (rbi && rbi->bi_sector <
  628. dev->sector + STRIPE_SECTORS) {
  629. tx = async_copy_data(0, rbi, dev->page,
  630. dev->sector, tx);
  631. rbi = r5_next_bio(rbi, dev->sector);
  632. }
  633. }
  634. }
  635. atomic_inc(&sh->count);
  636. init_async_submit(&submit, ASYNC_TX_ACK, tx, ops_complete_biofill, sh, NULL);
  637. async_trigger_callback(&submit);
  638. }
  639. static void mark_target_uptodate(struct stripe_head *sh, int target)
  640. {
  641. struct r5dev *tgt;
  642. if (target < 0)
  643. return;
  644. tgt = &sh->dev[target];
  645. set_bit(R5_UPTODATE, &tgt->flags);
  646. BUG_ON(!test_bit(R5_Wantcompute, &tgt->flags));
  647. clear_bit(R5_Wantcompute, &tgt->flags);
  648. }
  649. static void ops_complete_compute(void *stripe_head_ref)
  650. {
  651. struct stripe_head *sh = stripe_head_ref;
  652. pr_debug("%s: stripe %llu\n", __func__,
  653. (unsigned long long)sh->sector);
  654. /* mark the computed target(s) as uptodate */
  655. mark_target_uptodate(sh, sh->ops.target);
  656. mark_target_uptodate(sh, sh->ops.target2);
  657. clear_bit(STRIPE_COMPUTE_RUN, &sh->state);
  658. if (sh->check_state == check_state_compute_run)
  659. sh->check_state = check_state_compute_result;
  660. set_bit(STRIPE_HANDLE, &sh->state);
  661. release_stripe(sh);
  662. }
  663. /* return a pointer to the address conversion region of the scribble buffer */
  664. static addr_conv_t *to_addr_conv(struct stripe_head *sh,
  665. struct raid5_percpu *percpu)
  666. {
  667. return percpu->scribble + sizeof(struct page *) * (sh->disks + 2);
  668. }
  669. static struct dma_async_tx_descriptor *
  670. ops_run_compute5(struct stripe_head *sh, struct raid5_percpu *percpu)
  671. {
  672. int disks = sh->disks;
  673. struct page **xor_srcs = percpu->scribble;
  674. int target = sh->ops.target;
  675. struct r5dev *tgt = &sh->dev[target];
  676. struct page *xor_dest = tgt->page;
  677. int count = 0;
  678. struct dma_async_tx_descriptor *tx;
  679. struct async_submit_ctl submit;
  680. int i;
  681. pr_debug("%s: stripe %llu block: %d\n",
  682. __func__, (unsigned long long)sh->sector, target);
  683. BUG_ON(!test_bit(R5_Wantcompute, &tgt->flags));
  684. for (i = disks; i--; )
  685. if (i != target)
  686. xor_srcs[count++] = sh->dev[i].page;
  687. atomic_inc(&sh->count);
  688. init_async_submit(&submit, ASYNC_TX_FENCE|ASYNC_TX_XOR_ZERO_DST, NULL,
  689. ops_complete_compute, sh, to_addr_conv(sh, percpu));
  690. if (unlikely(count == 1))
  691. tx = async_memcpy(xor_dest, xor_srcs[0], 0, 0, STRIPE_SIZE, &submit);
  692. else
  693. tx = async_xor(xor_dest, xor_srcs, 0, count, STRIPE_SIZE, &submit);
  694. return tx;
  695. }
  696. /* set_syndrome_sources - populate source buffers for gen_syndrome
  697. * @srcs - (struct page *) array of size sh->disks
  698. * @sh - stripe_head to parse
  699. *
  700. * Populates srcs in proper layout order for the stripe and returns the
  701. * 'count' of sources to be used in a call to async_gen_syndrome. The P
  702. * destination buffer is recorded in srcs[count] and the Q destination
  703. * is recorded in srcs[count+1]].
  704. */
  705. static int set_syndrome_sources(struct page **srcs, struct stripe_head *sh)
  706. {
  707. int disks = sh->disks;
  708. int syndrome_disks = sh->ddf_layout ? disks : (disks - 2);
  709. int d0_idx = raid6_d0(sh);
  710. int count;
  711. int i;
  712. for (i = 0; i < disks; i++)
  713. srcs[i] = NULL;
  714. count = 0;
  715. i = d0_idx;
  716. do {
  717. int slot = raid6_idx_to_slot(i, sh, &count, syndrome_disks);
  718. srcs[slot] = sh->dev[i].page;
  719. i = raid6_next_disk(i, disks);
  720. } while (i != d0_idx);
  721. return syndrome_disks;
  722. }
  723. static struct dma_async_tx_descriptor *
  724. ops_run_compute6_1(struct stripe_head *sh, struct raid5_percpu *percpu)
  725. {
  726. int disks = sh->disks;
  727. struct page **blocks = percpu->scribble;
  728. int target;
  729. int qd_idx = sh->qd_idx;
  730. struct dma_async_tx_descriptor *tx;
  731. struct async_submit_ctl submit;
  732. struct r5dev *tgt;
  733. struct page *dest;
  734. int i;
  735. int count;
  736. if (sh->ops.target < 0)
  737. target = sh->ops.target2;
  738. else if (sh->ops.target2 < 0)
  739. target = sh->ops.target;
  740. else
  741. /* we should only have one valid target */
  742. BUG();
  743. BUG_ON(target < 0);
  744. pr_debug("%s: stripe %llu block: %d\n",
  745. __func__, (unsigned long long)sh->sector, target);
  746. tgt = &sh->dev[target];
  747. BUG_ON(!test_bit(R5_Wantcompute, &tgt->flags));
  748. dest = tgt->page;
  749. atomic_inc(&sh->count);
  750. if (target == qd_idx) {
  751. count = set_syndrome_sources(blocks, sh);
  752. blocks[count] = NULL; /* regenerating p is not necessary */
  753. BUG_ON(blocks[count+1] != dest); /* q should already be set */
  754. init_async_submit(&submit, ASYNC_TX_FENCE, NULL,
  755. ops_complete_compute, sh,
  756. to_addr_conv(sh, percpu));
  757. tx = async_gen_syndrome(blocks, 0, count+2, STRIPE_SIZE, &submit);
  758. } else {
  759. /* Compute any data- or p-drive using XOR */
  760. count = 0;
  761. for (i = disks; i-- ; ) {
  762. if (i == target || i == qd_idx)
  763. continue;
  764. blocks[count++] = sh->dev[i].page;
  765. }
  766. init_async_submit(&submit, ASYNC_TX_FENCE|ASYNC_TX_XOR_ZERO_DST,
  767. NULL, ops_complete_compute, sh,
  768. to_addr_conv(sh, percpu));
  769. tx = async_xor(dest, blocks, 0, count, STRIPE_SIZE, &submit);
  770. }
  771. return tx;
  772. }
  773. static struct dma_async_tx_descriptor *
  774. ops_run_compute6_2(struct stripe_head *sh, struct raid5_percpu *percpu)
  775. {
  776. int i, count, disks = sh->disks;
  777. int syndrome_disks = sh->ddf_layout ? disks : disks-2;
  778. int d0_idx = raid6_d0(sh);
  779. int faila = -1, failb = -1;
  780. int target = sh->ops.target;
  781. int target2 = sh->ops.target2;
  782. struct r5dev *tgt = &sh->dev[target];
  783. struct r5dev *tgt2 = &sh->dev[target2];
  784. struct dma_async_tx_descriptor *tx;
  785. struct page **blocks = percpu->scribble;
  786. struct async_submit_ctl submit;
  787. pr_debug("%s: stripe %llu block1: %d block2: %d\n",
  788. __func__, (unsigned long long)sh->sector, target, target2);
  789. BUG_ON(target < 0 || target2 < 0);
  790. BUG_ON(!test_bit(R5_Wantcompute, &tgt->flags));
  791. BUG_ON(!test_bit(R5_Wantcompute, &tgt2->flags));
  792. /* we need to open-code set_syndrome_sources to handle the
  793. * slot number conversion for 'faila' and 'failb'
  794. */
  795. for (i = 0; i < disks ; i++)
  796. blocks[i] = NULL;
  797. count = 0;
  798. i = d0_idx;
  799. do {
  800. int slot = raid6_idx_to_slot(i, sh, &count, syndrome_disks);
  801. blocks[slot] = sh->dev[i].page;
  802. if (i == target)
  803. faila = slot;
  804. if (i == target2)
  805. failb = slot;
  806. i = raid6_next_disk(i, disks);
  807. } while (i != d0_idx);
  808. BUG_ON(faila == failb);
  809. if (failb < faila)
  810. swap(faila, failb);
  811. pr_debug("%s: stripe: %llu faila: %d failb: %d\n",
  812. __func__, (unsigned long long)sh->sector, faila, failb);
  813. atomic_inc(&sh->count);
  814. if (failb == syndrome_disks+1) {
  815. /* Q disk is one of the missing disks */
  816. if (faila == syndrome_disks) {
  817. /* Missing P+Q, just recompute */
  818. init_async_submit(&submit, ASYNC_TX_FENCE, NULL,
  819. ops_complete_compute, sh,
  820. to_addr_conv(sh, percpu));
  821. return async_gen_syndrome(blocks, 0, syndrome_disks+2,
  822. STRIPE_SIZE, &submit);
  823. } else {
  824. struct page *dest;
  825. int data_target;
  826. int qd_idx = sh->qd_idx;
  827. /* Missing D+Q: recompute D from P, then recompute Q */
  828. if (target == qd_idx)
  829. data_target = target2;
  830. else
  831. data_target = target;
  832. count = 0;
  833. for (i = disks; i-- ; ) {
  834. if (i == data_target || i == qd_idx)
  835. continue;
  836. blocks[count++] = sh->dev[i].page;
  837. }
  838. dest = sh->dev[data_target].page;
  839. init_async_submit(&submit,
  840. ASYNC_TX_FENCE|ASYNC_TX_XOR_ZERO_DST,
  841. NULL, NULL, NULL,
  842. to_addr_conv(sh, percpu));
  843. tx = async_xor(dest, blocks, 0, count, STRIPE_SIZE,
  844. &submit);
  845. count = set_syndrome_sources(blocks, sh);
  846. init_async_submit(&submit, ASYNC_TX_FENCE, tx,
  847. ops_complete_compute, sh,
  848. to_addr_conv(sh, percpu));
  849. return async_gen_syndrome(blocks, 0, count+2,
  850. STRIPE_SIZE, &submit);
  851. }
  852. } else {
  853. init_async_submit(&submit, ASYNC_TX_FENCE, NULL,
  854. ops_complete_compute, sh,
  855. to_addr_conv(sh, percpu));
  856. if (failb == syndrome_disks) {
  857. /* We're missing D+P. */
  858. return async_raid6_datap_recov(syndrome_disks+2,
  859. STRIPE_SIZE, faila,
  860. blocks, &submit);
  861. } else {
  862. /* We're missing D+D. */
  863. return async_raid6_2data_recov(syndrome_disks+2,
  864. STRIPE_SIZE, faila, failb,
  865. blocks, &submit);
  866. }
  867. }
  868. }
  869. static void ops_complete_prexor(void *stripe_head_ref)
  870. {
  871. struct stripe_head *sh = stripe_head_ref;
  872. pr_debug("%s: stripe %llu\n", __func__,
  873. (unsigned long long)sh->sector);
  874. }
  875. static struct dma_async_tx_descriptor *
  876. ops_run_prexor(struct stripe_head *sh, struct raid5_percpu *percpu,
  877. struct dma_async_tx_descriptor *tx)
  878. {
  879. int disks = sh->disks;
  880. struct page **xor_srcs = percpu->scribble;
  881. int count = 0, pd_idx = sh->pd_idx, i;
  882. struct async_submit_ctl submit;
  883. /* existing parity data subtracted */
  884. struct page *xor_dest = xor_srcs[count++] = sh->dev[pd_idx].page;
  885. pr_debug("%s: stripe %llu\n", __func__,
  886. (unsigned long long)sh->sector);
  887. for (i = disks; i--; ) {
  888. struct r5dev *dev = &sh->dev[i];
  889. /* Only process blocks that are known to be uptodate */
  890. if (test_bit(R5_Wantdrain, &dev->flags))
  891. xor_srcs[count++] = dev->page;
  892. }
  893. init_async_submit(&submit, ASYNC_TX_FENCE|ASYNC_TX_XOR_DROP_DST, tx,
  894. ops_complete_prexor, sh, to_addr_conv(sh, percpu));
  895. tx = async_xor(xor_dest, xor_srcs, 0, count, STRIPE_SIZE, &submit);
  896. return tx;
  897. }
  898. static struct dma_async_tx_descriptor *
  899. ops_run_biodrain(struct stripe_head *sh, struct dma_async_tx_descriptor *tx)
  900. {
  901. int disks = sh->disks;
  902. int i;
  903. pr_debug("%s: stripe %llu\n", __func__,
  904. (unsigned long long)sh->sector);
  905. for (i = disks; i--; ) {
  906. struct r5dev *dev = &sh->dev[i];
  907. struct bio *chosen;
  908. if (test_and_clear_bit(R5_Wantdrain, &dev->flags)) {
  909. struct bio *wbi;
  910. spin_lock_irq(&sh->raid_conf->device_lock);
  911. chosen = dev->towrite;
  912. dev->towrite = NULL;
  913. BUG_ON(dev->written);
  914. wbi = dev->written = chosen;
  915. spin_unlock_irq(&sh->raid_conf->device_lock);
  916. while (wbi && wbi->bi_sector <
  917. dev->sector + STRIPE_SECTORS) {
  918. if (wbi->bi_rw & REQ_FUA)
  919. set_bit(R5_WantFUA, &dev->flags);
  920. tx = async_copy_data(1, wbi, dev->page,
  921. dev->sector, tx);
  922. wbi = r5_next_bio(wbi, dev->sector);
  923. }
  924. }
  925. }
  926. return tx;
  927. }
  928. static void ops_complete_reconstruct(void *stripe_head_ref)
  929. {
  930. struct stripe_head *sh = stripe_head_ref;
  931. int disks = sh->disks;
  932. int pd_idx = sh->pd_idx;
  933. int qd_idx = sh->qd_idx;
  934. int i;
  935. bool fua = false;
  936. pr_debug("%s: stripe %llu\n", __func__,
  937. (unsigned long long)sh->sector);
  938. for (i = disks; i--; )
  939. fua |= test_bit(R5_WantFUA, &sh->dev[i].flags);
  940. for (i = disks; i--; ) {
  941. struct r5dev *dev = &sh->dev[i];
  942. if (dev->written || i == pd_idx || i == qd_idx) {
  943. set_bit(R5_UPTODATE, &dev->flags);
  944. if (fua)
  945. set_bit(R5_WantFUA, &dev->flags);
  946. }
  947. }
  948. if (sh->reconstruct_state == reconstruct_state_drain_run)
  949. sh->reconstruct_state = reconstruct_state_drain_result;
  950. else if (sh->reconstruct_state == reconstruct_state_prexor_drain_run)
  951. sh->reconstruct_state = reconstruct_state_prexor_drain_result;
  952. else {
  953. BUG_ON(sh->reconstruct_state != reconstruct_state_run);
  954. sh->reconstruct_state = reconstruct_state_result;
  955. }
  956. set_bit(STRIPE_HANDLE, &sh->state);
  957. release_stripe(sh);
  958. }
  959. static void
  960. ops_run_reconstruct5(struct stripe_head *sh, struct raid5_percpu *percpu,
  961. struct dma_async_tx_descriptor *tx)
  962. {
  963. int disks = sh->disks;
  964. struct page **xor_srcs = percpu->scribble;
  965. struct async_submit_ctl submit;
  966. int count = 0, pd_idx = sh->pd_idx, i;
  967. struct page *xor_dest;
  968. int prexor = 0;
  969. unsigned long flags;
  970. pr_debug("%s: stripe %llu\n", __func__,
  971. (unsigned long long)sh->sector);
  972. /* check if prexor is active which means only process blocks
  973. * that are part of a read-modify-write (written)
  974. */
  975. if (sh->reconstruct_state == reconstruct_state_prexor_drain_run) {
  976. prexor = 1;
  977. xor_dest = xor_srcs[count++] = sh->dev[pd_idx].page;
  978. for (i = disks; i--; ) {
  979. struct r5dev *dev = &sh->dev[i];
  980. if (dev->written)
  981. xor_srcs[count++] = dev->page;
  982. }
  983. } else {
  984. xor_dest = sh->dev[pd_idx].page;
  985. for (i = disks; i--; ) {
  986. struct r5dev *dev = &sh->dev[i];
  987. if (i != pd_idx)
  988. xor_srcs[count++] = dev->page;
  989. }
  990. }
  991. /* 1/ if we prexor'd then the dest is reused as a source
  992. * 2/ if we did not prexor then we are redoing the parity
  993. * set ASYNC_TX_XOR_DROP_DST and ASYNC_TX_XOR_ZERO_DST
  994. * for the synchronous xor case
  995. */
  996. flags = ASYNC_TX_ACK |
  997. (prexor ? ASYNC_TX_XOR_DROP_DST : ASYNC_TX_XOR_ZERO_DST);
  998. atomic_inc(&sh->count);
  999. init_async_submit(&submit, flags, tx, ops_complete_reconstruct, sh,
  1000. to_addr_conv(sh, percpu));
  1001. if (unlikely(count == 1))
  1002. tx = async_memcpy(xor_dest, xor_srcs[0], 0, 0, STRIPE_SIZE, &submit);
  1003. else
  1004. tx = async_xor(xor_dest, xor_srcs, 0, count, STRIPE_SIZE, &submit);
  1005. }
  1006. static void
  1007. ops_run_reconstruct6(struct stripe_head *sh, struct raid5_percpu *percpu,
  1008. struct dma_async_tx_descriptor *tx)
  1009. {
  1010. struct async_submit_ctl submit;
  1011. struct page **blocks = percpu->scribble;
  1012. int count;
  1013. pr_debug("%s: stripe %llu\n", __func__, (unsigned long long)sh->sector);
  1014. count = set_syndrome_sources(blocks, sh);
  1015. atomic_inc(&sh->count);
  1016. init_async_submit(&submit, ASYNC_TX_ACK, tx, ops_complete_reconstruct,
  1017. sh, to_addr_conv(sh, percpu));
  1018. async_gen_syndrome(blocks, 0, count+2, STRIPE_SIZE, &submit);
  1019. }
  1020. static void ops_complete_check(void *stripe_head_ref)
  1021. {
  1022. struct stripe_head *sh = stripe_head_ref;
  1023. pr_debug("%s: stripe %llu\n", __func__,
  1024. (unsigned long long)sh->sector);
  1025. sh->check_state = check_state_check_result;
  1026. set_bit(STRIPE_HANDLE, &sh->state);
  1027. release_stripe(sh);
  1028. }
  1029. static void ops_run_check_p(struct stripe_head *sh, struct raid5_percpu *percpu)
  1030. {
  1031. int disks = sh->disks;
  1032. int pd_idx = sh->pd_idx;
  1033. int qd_idx = sh->qd_idx;
  1034. struct page *xor_dest;
  1035. struct page **xor_srcs = percpu->scribble;
  1036. struct dma_async_tx_descriptor *tx;
  1037. struct async_submit_ctl submit;
  1038. int count;
  1039. int i;
  1040. pr_debug("%s: stripe %llu\n", __func__,
  1041. (unsigned long long)sh->sector);
  1042. count = 0;
  1043. xor_dest = sh->dev[pd_idx].page;
  1044. xor_srcs[count++] = xor_dest;
  1045. for (i = disks; i--; ) {
  1046. if (i == pd_idx || i == qd_idx)
  1047. continue;
  1048. xor_srcs[count++] = sh->dev[i].page;
  1049. }
  1050. init_async_submit(&submit, 0, NULL, NULL, NULL,
  1051. to_addr_conv(sh, percpu));
  1052. tx = async_xor_val(xor_dest, xor_srcs, 0, count, STRIPE_SIZE,
  1053. &sh->ops.zero_sum_result, &submit);
  1054. atomic_inc(&sh->count);
  1055. init_async_submit(&submit, ASYNC_TX_ACK, tx, ops_complete_check, sh, NULL);
  1056. tx = async_trigger_callback(&submit);
  1057. }
  1058. static void ops_run_check_pq(struct stripe_head *sh, struct raid5_percpu *percpu, int checkp)
  1059. {
  1060. struct page **srcs = percpu->scribble;
  1061. struct async_submit_ctl submit;
  1062. int count;
  1063. pr_debug("%s: stripe %llu checkp: %d\n", __func__,
  1064. (unsigned long long)sh->sector, checkp);
  1065. count = set_syndrome_sources(srcs, sh);
  1066. if (!checkp)
  1067. srcs[count] = NULL;
  1068. atomic_inc(&sh->count);
  1069. init_async_submit(&submit, ASYNC_TX_ACK, NULL, ops_complete_check,
  1070. sh, to_addr_conv(sh, percpu));
  1071. async_syndrome_val(srcs, 0, count+2, STRIPE_SIZE,
  1072. &sh->ops.zero_sum_result, percpu->spare_page, &submit);
  1073. }
  1074. static void __raid_run_ops(struct stripe_head *sh, unsigned long ops_request)
  1075. {
  1076. int overlap_clear = 0, i, disks = sh->disks;
  1077. struct dma_async_tx_descriptor *tx = NULL;
  1078. struct r5conf *conf = sh->raid_conf;
  1079. int level = conf->level;
  1080. struct raid5_percpu *percpu;
  1081. unsigned long cpu;
  1082. cpu = get_cpu();
  1083. percpu = per_cpu_ptr(conf->percpu, cpu);
  1084. if (test_bit(STRIPE_OP_BIOFILL, &ops_request)) {
  1085. ops_run_biofill(sh);
  1086. overlap_clear++;
  1087. }
  1088. if (test_bit(STRIPE_OP_COMPUTE_BLK, &ops_request)) {
  1089. if (level < 6)
  1090. tx = ops_run_compute5(sh, percpu);
  1091. else {
  1092. if (sh->ops.target2 < 0 || sh->ops.target < 0)
  1093. tx = ops_run_compute6_1(sh, percpu);
  1094. else
  1095. tx = ops_run_compute6_2(sh, percpu);
  1096. }
  1097. /* terminate the chain if reconstruct is not set to be run */
  1098. if (tx && !test_bit(STRIPE_OP_RECONSTRUCT, &ops_request))
  1099. async_tx_ack(tx);
  1100. }
  1101. if (test_bit(STRIPE_OP_PREXOR, &ops_request))
  1102. tx = ops_run_prexor(sh, percpu, tx);
  1103. if (test_bit(STRIPE_OP_BIODRAIN, &ops_request)) {
  1104. tx = ops_run_biodrain(sh, tx);
  1105. overlap_clear++;
  1106. }
  1107. if (test_bit(STRIPE_OP_RECONSTRUCT, &ops_request)) {
  1108. if (level < 6)
  1109. ops_run_reconstruct5(sh, percpu, tx);
  1110. else
  1111. ops_run_reconstruct6(sh, percpu, tx);
  1112. }
  1113. if (test_bit(STRIPE_OP_CHECK, &ops_request)) {
  1114. if (sh->check_state == check_state_run)
  1115. ops_run_check_p(sh, percpu);
  1116. else if (sh->check_state == check_state_run_q)
  1117. ops_run_check_pq(sh, percpu, 0);
  1118. else if (sh->check_state == check_state_run_pq)
  1119. ops_run_check_pq(sh, percpu, 1);
  1120. else
  1121. BUG();
  1122. }
  1123. if (overlap_clear)
  1124. for (i = disks; i--; ) {
  1125. struct r5dev *dev = &sh->dev[i];
  1126. if (test_and_clear_bit(R5_Overlap, &dev->flags))
  1127. wake_up(&sh->raid_conf->wait_for_overlap);
  1128. }
  1129. put_cpu();
  1130. }
  1131. #ifdef CONFIG_MULTICORE_RAID456
  1132. static void async_run_ops(void *param, async_cookie_t cookie)
  1133. {
  1134. struct stripe_head *sh = param;
  1135. unsigned long ops_request = sh->ops.request;
  1136. clear_bit_unlock(STRIPE_OPS_REQ_PENDING, &sh->state);
  1137. wake_up(&sh->ops.wait_for_ops);
  1138. __raid_run_ops(sh, ops_request);
  1139. release_stripe(sh);
  1140. }
  1141. static void raid_run_ops(struct stripe_head *sh, unsigned long ops_request)
  1142. {
  1143. /* since handle_stripe can be called outside of raid5d context
  1144. * we need to ensure sh->ops.request is de-staged before another
  1145. * request arrives
  1146. */
  1147. wait_event(sh->ops.wait_for_ops,
  1148. !test_and_set_bit_lock(STRIPE_OPS_REQ_PENDING, &sh->state));
  1149. sh->ops.request = ops_request;
  1150. atomic_inc(&sh->count);
  1151. async_schedule(async_run_ops, sh);
  1152. }
  1153. #else
  1154. #define raid_run_ops __raid_run_ops
  1155. #endif
  1156. static int grow_one_stripe(struct r5conf *conf)
  1157. {
  1158. struct stripe_head *sh;
  1159. sh = kmem_cache_zalloc(conf->slab_cache, GFP_KERNEL);
  1160. if (!sh)
  1161. return 0;
  1162. sh->raid_conf = conf;
  1163. #ifdef CONFIG_MULTICORE_RAID456
  1164. init_waitqueue_head(&sh->ops.wait_for_ops);
  1165. #endif
  1166. if (grow_buffers(sh)) {
  1167. shrink_buffers(sh);
  1168. kmem_cache_free(conf->slab_cache, sh);
  1169. return 0;
  1170. }
  1171. /* we just created an active stripe so... */
  1172. atomic_set(&sh->count, 1);
  1173. atomic_inc(&conf->active_stripes);
  1174. INIT_LIST_HEAD(&sh->lru);
  1175. release_stripe(sh);
  1176. return 1;
  1177. }
  1178. static int grow_stripes(struct r5conf *conf, int num)
  1179. {
  1180. struct kmem_cache *sc;
  1181. int devs = max(conf->raid_disks, conf->previous_raid_disks);
  1182. if (conf->mddev->gendisk)
  1183. sprintf(conf->cache_name[0],
  1184. "raid%d-%s", conf->level, mdname(conf->mddev));
  1185. else
  1186. sprintf(conf->cache_name[0],
  1187. "raid%d-%p", conf->level, conf->mddev);
  1188. sprintf(conf->cache_name[1], "%s-alt", conf->cache_name[0]);
  1189. conf->active_name = 0;
  1190. sc = kmem_cache_create(conf->cache_name[conf->active_name],
  1191. sizeof(struct stripe_head)+(devs-1)*sizeof(struct r5dev),
  1192. 0, 0, NULL);
  1193. if (!sc)
  1194. return 1;
  1195. conf->slab_cache = sc;
  1196. conf->pool_size = devs;
  1197. while (num--)
  1198. if (!grow_one_stripe(conf))
  1199. return 1;
  1200. return 0;
  1201. }
  1202. /**
  1203. * scribble_len - return the required size of the scribble region
  1204. * @num - total number of disks in the array
  1205. *
  1206. * The size must be enough to contain:
  1207. * 1/ a struct page pointer for each device in the array +2
  1208. * 2/ room to convert each entry in (1) to its corresponding dma
  1209. * (dma_map_page()) or page (page_address()) address.
  1210. *
  1211. * Note: the +2 is for the destination buffers of the ddf/raid6 case where we
  1212. * calculate over all devices (not just the data blocks), using zeros in place
  1213. * of the P and Q blocks.
  1214. */
  1215. static size_t scribble_len(int num)
  1216. {
  1217. size_t len;
  1218. len = sizeof(struct page *) * (num+2) + sizeof(addr_conv_t) * (num+2);
  1219. return len;
  1220. }
  1221. static int resize_stripes(struct r5conf *conf, int newsize)
  1222. {
  1223. /* Make all the stripes able to hold 'newsize' devices.
  1224. * New slots in each stripe get 'page' set to a new page.
  1225. *
  1226. * This happens in stages:
  1227. * 1/ create a new kmem_cache and allocate the required number of
  1228. * stripe_heads.
  1229. * 2/ gather all the old stripe_heads and tranfer the pages across
  1230. * to the new stripe_heads. This will have the side effect of
  1231. * freezing the array as once all stripe_heads have been collected,
  1232. * no IO will be possible. Old stripe heads are freed once their
  1233. * pages have been transferred over, and the old kmem_cache is
  1234. * freed when all stripes are done.
  1235. * 3/ reallocate conf->disks to be suitable bigger. If this fails,
  1236. * we simple return a failre status - no need to clean anything up.
  1237. * 4/ allocate new pages for the new slots in the new stripe_heads.
  1238. * If this fails, we don't bother trying the shrink the
  1239. * stripe_heads down again, we just leave them as they are.
  1240. * As each stripe_head is processed the new one is released into
  1241. * active service.
  1242. *
  1243. * Once step2 is started, we cannot afford to wait for a write,
  1244. * so we use GFP_NOIO allocations.
  1245. */
  1246. struct stripe_head *osh, *nsh;
  1247. LIST_HEAD(newstripes);
  1248. struct disk_info *ndisks;
  1249. unsigned long cpu;
  1250. int err;
  1251. struct kmem_cache *sc;
  1252. int i;
  1253. if (newsize <= conf->pool_size)
  1254. return 0; /* never bother to shrink */
  1255. err = md_allow_write(conf->mddev);
  1256. if (err)
  1257. return err;
  1258. /* Step 1 */
  1259. sc = kmem_cache_create(conf->cache_name[1-conf->active_name],
  1260. sizeof(struct stripe_head)+(newsize-1)*sizeof(struct r5dev),
  1261. 0, 0, NULL);
  1262. if (!sc)
  1263. return -ENOMEM;
  1264. for (i = conf->max_nr_stripes; i; i--) {
  1265. nsh = kmem_cache_zalloc(sc, GFP_KERNEL);
  1266. if (!nsh)
  1267. break;
  1268. nsh->raid_conf = conf;
  1269. #ifdef CONFIG_MULTICORE_RAID456
  1270. init_waitqueue_head(&nsh->ops.wait_for_ops);
  1271. #endif
  1272. list_add(&nsh->lru, &newstripes);
  1273. }
  1274. if (i) {
  1275. /* didn't get enough, give up */
  1276. while (!list_empty(&newstripes)) {
  1277. nsh = list_entry(newstripes.next, struct stripe_head, lru);
  1278. list_del(&nsh->lru);
  1279. kmem_cache_free(sc, nsh);
  1280. }
  1281. kmem_cache_destroy(sc);
  1282. return -ENOMEM;
  1283. }
  1284. /* Step 2 - Must use GFP_NOIO now.
  1285. * OK, we have enough stripes, start collecting inactive
  1286. * stripes and copying them over
  1287. */
  1288. list_for_each_entry(nsh, &newstripes, lru) {
  1289. spin_lock_irq(&conf->device_lock);
  1290. wait_event_lock_irq(conf->wait_for_stripe,
  1291. !list_empty(&conf->inactive_list),
  1292. conf->device_lock,
  1293. );
  1294. osh = get_free_stripe(conf);
  1295. spin_unlock_irq(&conf->device_lock);
  1296. atomic_set(&nsh->count, 1);
  1297. for(i=0; i<conf->pool_size; i++)
  1298. nsh->dev[i].page = osh->dev[i].page;
  1299. for( ; i<newsize; i++)
  1300. nsh->dev[i].page = NULL;
  1301. kmem_cache_free(conf->slab_cache, osh);
  1302. }
  1303. kmem_cache_destroy(conf->slab_cache);
  1304. /* Step 3.
  1305. * At this point, we are holding all the stripes so the array
  1306. * is completely stalled, so now is a good time to resize
  1307. * conf->disks and the scribble region
  1308. */
  1309. ndisks = kzalloc(newsize * sizeof(struct disk_info), GFP_NOIO);
  1310. if (ndisks) {
  1311. for (i=0; i<conf->raid_disks; i++)
  1312. ndisks[i] = conf->disks[i];
  1313. kfree(conf->disks);
  1314. conf->disks = ndisks;
  1315. } else
  1316. err = -ENOMEM;
  1317. get_online_cpus();
  1318. conf->scribble_len = scribble_len(newsize);
  1319. for_each_present_cpu(cpu) {
  1320. struct raid5_percpu *percpu;
  1321. void *scribble;
  1322. percpu = per_cpu_ptr(conf->percpu, cpu);
  1323. scribble = kmalloc(conf->scribble_len, GFP_NOIO);
  1324. if (scribble) {
  1325. kfree(percpu->scribble);
  1326. percpu->scribble = scribble;
  1327. } else {
  1328. err = -ENOMEM;
  1329. break;
  1330. }
  1331. }
  1332. put_online_cpus();
  1333. /* Step 4, return new stripes to service */
  1334. while(!list_empty(&newstripes)) {
  1335. nsh = list_entry(newstripes.next, struct stripe_head, lru);
  1336. list_del_init(&nsh->lru);
  1337. for (i=conf->raid_disks; i < newsize; i++)
  1338. if (nsh->dev[i].page == NULL) {
  1339. struct page *p = alloc_page(GFP_NOIO);
  1340. nsh->dev[i].page = p;
  1341. if (!p)
  1342. err = -ENOMEM;
  1343. }
  1344. release_stripe(nsh);
  1345. }
  1346. /* critical section pass, GFP_NOIO no longer needed */
  1347. conf->slab_cache = sc;
  1348. conf->active_name = 1-conf->active_name;
  1349. conf->pool_size = newsize;
  1350. return err;
  1351. }
  1352. static int drop_one_stripe(struct r5conf *conf)
  1353. {
  1354. struct stripe_head *sh;
  1355. spin_lock_irq(&conf->device_lock);
  1356. sh = get_free_stripe(conf);
  1357. spin_unlock_irq(&conf->device_lock);
  1358. if (!sh)
  1359. return 0;
  1360. BUG_ON(atomic_read(&sh->count));
  1361. shrink_buffers(sh);
  1362. kmem_cache_free(conf->slab_cache, sh);
  1363. atomic_dec(&conf->active_stripes);
  1364. return 1;
  1365. }
  1366. static void shrink_stripes(struct r5conf *conf)
  1367. {
  1368. while (drop_one_stripe(conf))
  1369. ;
  1370. if (conf->slab_cache)
  1371. kmem_cache_destroy(conf->slab_cache);
  1372. conf->slab_cache = NULL;
  1373. }
  1374. static void raid5_end_read_request(struct bio * bi, int error)
  1375. {
  1376. struct stripe_head *sh = bi->bi_private;
  1377. struct r5conf *conf = sh->raid_conf;
  1378. int disks = sh->disks, i;
  1379. int uptodate = test_bit(BIO_UPTODATE, &bi->bi_flags);
  1380. char b[BDEVNAME_SIZE];
  1381. struct md_rdev *rdev;
  1382. for (i=0 ; i<disks; i++)
  1383. if (bi == &sh->dev[i].req)
  1384. break;
  1385. pr_debug("end_read_request %llu/%d, count: %d, uptodate %d.\n",
  1386. (unsigned long long)sh->sector, i, atomic_read(&sh->count),
  1387. uptodate);
  1388. if (i == disks) {
  1389. BUG();
  1390. return;
  1391. }
  1392. if (uptodate) {
  1393. set_bit(R5_UPTODATE, &sh->dev[i].flags);
  1394. if (test_bit(R5_ReadError, &sh->dev[i].flags)) {
  1395. rdev = conf->disks[i].rdev;
  1396. printk_ratelimited(
  1397. KERN_INFO
  1398. "md/raid:%s: read error corrected"
  1399. " (%lu sectors at %llu on %s)\n",
  1400. mdname(conf->mddev), STRIPE_SECTORS,
  1401. (unsigned long long)(sh->sector
  1402. + rdev->data_offset),
  1403. bdevname(rdev->bdev, b));
  1404. atomic_add(STRIPE_SECTORS, &rdev->corrected_errors);
  1405. clear_bit(R5_ReadError, &sh->dev[i].flags);
  1406. clear_bit(R5_ReWrite, &sh->dev[i].flags);
  1407. }
  1408. if (atomic_read(&conf->disks[i].rdev->read_errors))
  1409. atomic_set(&conf->disks[i].rdev->read_errors, 0);
  1410. } else {
  1411. const char *bdn = bdevname(conf->disks[i].rdev->bdev, b);
  1412. int retry = 0;
  1413. rdev = conf->disks[i].rdev;
  1414. clear_bit(R5_UPTODATE, &sh->dev[i].flags);
  1415. atomic_inc(&rdev->read_errors);
  1416. if (conf->mddev->degraded >= conf->max_degraded)
  1417. printk_ratelimited(
  1418. KERN_WARNING
  1419. "md/raid:%s: read error not correctable "
  1420. "(sector %llu on %s).\n",
  1421. mdname(conf->mddev),
  1422. (unsigned long long)(sh->sector
  1423. + rdev->data_offset),
  1424. bdn);
  1425. else if (test_bit(R5_ReWrite, &sh->dev[i].flags))
  1426. /* Oh, no!!! */
  1427. printk_ratelimited(
  1428. KERN_WARNING
  1429. "md/raid:%s: read error NOT corrected!! "
  1430. "(sector %llu on %s).\n",
  1431. mdname(conf->mddev),
  1432. (unsigned long long)(sh->sector
  1433. + rdev->data_offset),
  1434. bdn);
  1435. else if (atomic_read(&rdev->read_errors)
  1436. > conf->max_nr_stripes)
  1437. printk(KERN_WARNING
  1438. "md/raid:%s: Too many read errors, failing device %s.\n",
  1439. mdname(conf->mddev), bdn);
  1440. else
  1441. retry = 1;
  1442. if (retry)
  1443. set_bit(R5_ReadError, &sh->dev[i].flags);
  1444. else {
  1445. clear_bit(R5_ReadError, &sh->dev[i].flags);
  1446. clear_bit(R5_ReWrite, &sh->dev[i].flags);
  1447. md_error(conf->mddev, rdev);
  1448. }
  1449. }
  1450. rdev_dec_pending(conf->disks[i].rdev, conf->mddev);
  1451. clear_bit(R5_LOCKED, &sh->dev[i].flags);
  1452. set_bit(STRIPE_HANDLE, &sh->state);
  1453. release_stripe(sh);
  1454. }
  1455. static void raid5_end_write_request(struct bio *bi, int error)
  1456. {
  1457. struct stripe_head *sh = bi->bi_private;
  1458. struct r5conf *conf = sh->raid_conf;
  1459. int disks = sh->disks, i;
  1460. int uptodate = test_bit(BIO_UPTODATE, &bi->bi_flags);
  1461. sector_t first_bad;
  1462. int bad_sectors;
  1463. for (i=0 ; i<disks; i++)
  1464. if (bi == &sh->dev[i].req)
  1465. break;
  1466. pr_debug("end_write_request %llu/%d, count %d, uptodate: %d.\n",
  1467. (unsigned long long)sh->sector, i, atomic_read(&sh->count),
  1468. uptodate);
  1469. if (i == disks) {
  1470. BUG();
  1471. return;
  1472. }
  1473. if (!uptodate) {
  1474. set_bit(WriteErrorSeen, &conf->disks[i].rdev->flags);
  1475. set_bit(R5_WriteError, &sh->dev[i].flags);
  1476. } else if (is_badblock(conf->disks[i].rdev, sh->sector, STRIPE_SECTORS,
  1477. &first_bad, &bad_sectors))
  1478. set_bit(R5_MadeGood, &sh->dev[i].flags);
  1479. rdev_dec_pending(conf->disks[i].rdev, conf->mddev);
  1480. clear_bit(R5_LOCKED, &sh->dev[i].flags);
  1481. set_bit(STRIPE_HANDLE, &sh->state);
  1482. release_stripe(sh);
  1483. }
  1484. static sector_t compute_blocknr(struct stripe_head *sh, int i, int previous);
  1485. static void raid5_build_block(struct stripe_head *sh, int i, int previous)
  1486. {
  1487. struct r5dev *dev = &sh->dev[i];
  1488. bio_init(&dev->req);
  1489. dev->req.bi_io_vec = &dev->vec;
  1490. dev->req.bi_vcnt++;
  1491. dev->req.bi_max_vecs++;
  1492. dev->req.bi_private = sh;
  1493. dev->vec.bv_page = dev->page;
  1494. dev->flags = 0;
  1495. dev->sector = compute_blocknr(sh, i, previous);
  1496. }
  1497. static void error(struct mddev *mddev, struct md_rdev *rdev)
  1498. {
  1499. char b[BDEVNAME_SIZE];
  1500. struct r5conf *conf = mddev->private;
  1501. unsigned long flags;
  1502. pr_debug("raid456: error called\n");
  1503. spin_lock_irqsave(&conf->device_lock, flags);
  1504. clear_bit(In_sync, &rdev->flags);
  1505. mddev->degraded = calc_degraded(conf);
  1506. spin_unlock_irqrestore(&conf->device_lock, flags);
  1507. set_bit(MD_RECOVERY_INTR, &mddev->recovery);
  1508. set_bit(Blocked, &rdev->flags);
  1509. set_bit(Faulty, &rdev->flags);
  1510. set_bit(MD_CHANGE_DEVS, &mddev->flags);
  1511. printk(KERN_ALERT
  1512. "md/raid:%s: Disk failure on %s, disabling device.\n"
  1513. "md/raid:%s: Operation continuing on %d devices.\n",
  1514. mdname(mddev),
  1515. bdevname(rdev->bdev, b),
  1516. mdname(mddev),
  1517. conf->raid_disks - mddev->degraded);
  1518. }
  1519. /*
  1520. * Input: a 'big' sector number,
  1521. * Output: index of the data and parity disk, and the sector # in them.
  1522. */
  1523. static sector_t raid5_compute_sector(struct r5conf *conf, sector_t r_sector,
  1524. int previous, int *dd_idx,
  1525. struct stripe_head *sh)
  1526. {
  1527. sector_t stripe, stripe2;
  1528. sector_t chunk_number;
  1529. unsigned int chunk_offset;
  1530. int pd_idx, qd_idx;
  1531. int ddf_layout = 0;
  1532. sector_t new_sector;
  1533. int algorithm = previous ? conf->prev_algo
  1534. : conf->algorithm;
  1535. int sectors_per_chunk = previous ? conf->prev_chunk_sectors
  1536. : conf->chunk_sectors;
  1537. int raid_disks = previous ? conf->previous_raid_disks
  1538. : conf->raid_disks;
  1539. int data_disks = raid_disks - conf->max_degraded;
  1540. /* First compute the information on this sector */
  1541. /*
  1542. * Compute the chunk number and the sector offset inside the chunk
  1543. */
  1544. chunk_offset = sector_div(r_sector, sectors_per_chunk);
  1545. chunk_number = r_sector;
  1546. /*
  1547. * Compute the stripe number
  1548. */
  1549. stripe = chunk_number;
  1550. *dd_idx = sector_div(stripe, data_disks);
  1551. stripe2 = stripe;
  1552. /*
  1553. * Select the parity disk based on the user selected algorithm.
  1554. */
  1555. pd_idx = qd_idx = -1;
  1556. switch(conf->level) {
  1557. case 4:
  1558. pd_idx = data_disks;
  1559. break;
  1560. case 5:
  1561. switch (algorithm) {
  1562. case ALGORITHM_LEFT_ASYMMETRIC:
  1563. pd_idx = data_disks - sector_div(stripe2, raid_disks);
  1564. if (*dd_idx >= pd_idx)
  1565. (*dd_idx)++;
  1566. break;
  1567. case ALGORITHM_RIGHT_ASYMMETRIC:
  1568. pd_idx = sector_div(stripe2, raid_disks);
  1569. if (*dd_idx >= pd_idx)
  1570. (*dd_idx)++;
  1571. break;
  1572. case ALGORITHM_LEFT_SYMMETRIC:
  1573. pd_idx = data_disks - sector_div(stripe2, raid_disks);
  1574. *dd_idx = (pd_idx + 1 + *dd_idx) % raid_disks;
  1575. break;
  1576. case ALGORITHM_RIGHT_SYMMETRIC:
  1577. pd_idx = sector_div(stripe2, raid_disks);
  1578. *dd_idx = (pd_idx + 1 + *dd_idx) % raid_disks;
  1579. break;
  1580. case ALGORITHM_PARITY_0:
  1581. pd_idx = 0;
  1582. (*dd_idx)++;
  1583. break;
  1584. case ALGORITHM_PARITY_N:
  1585. pd_idx = data_disks;
  1586. break;
  1587. default:
  1588. BUG();
  1589. }
  1590. break;
  1591. case 6:
  1592. switch (algorithm) {
  1593. case ALGORITHM_LEFT_ASYMMETRIC:
  1594. pd_idx = raid_disks - 1 - sector_div(stripe2, raid_disks);
  1595. qd_idx = pd_idx + 1;
  1596. if (pd_idx == raid_disks-1) {
  1597. (*dd_idx)++; /* Q D D D P */
  1598. qd_idx = 0;
  1599. } else if (*dd_idx >= pd_idx)
  1600. (*dd_idx) += 2; /* D D P Q D */
  1601. break;
  1602. case ALGORITHM_RIGHT_ASYMMETRIC:
  1603. pd_idx = sector_div(stripe2, raid_disks);
  1604. qd_idx = pd_idx + 1;
  1605. if (pd_idx == raid_disks-1) {
  1606. (*dd_idx)++; /* Q D D D P */
  1607. qd_idx = 0;
  1608. } else if (*dd_idx >= pd_idx)
  1609. (*dd_idx) += 2; /* D D P Q D */
  1610. break;
  1611. case ALGORITHM_LEFT_SYMMETRIC:
  1612. pd_idx = raid_disks - 1 - sector_div(stripe2, raid_disks);
  1613. qd_idx = (pd_idx + 1) % raid_disks;
  1614. *dd_idx = (pd_idx + 2 + *dd_idx) % raid_disks;
  1615. break;
  1616. case ALGORITHM_RIGHT_SYMMETRIC:
  1617. pd_idx = sector_div(stripe2, raid_disks);
  1618. qd_idx = (pd_idx + 1) % raid_disks;
  1619. *dd_idx = (pd_idx + 2 + *dd_idx) % raid_disks;
  1620. break;
  1621. case ALGORITHM_PARITY_0:
  1622. pd_idx = 0;
  1623. qd_idx = 1;
  1624. (*dd_idx) += 2;
  1625. break;
  1626. case ALGORITHM_PARITY_N:
  1627. pd_idx = data_disks;
  1628. qd_idx = data_disks + 1;
  1629. break;
  1630. case ALGORITHM_ROTATING_ZERO_RESTART:
  1631. /* Exactly the same as RIGHT_ASYMMETRIC, but or
  1632. * of blocks for computing Q is different.
  1633. */
  1634. pd_idx = sector_div(stripe2, raid_disks);
  1635. qd_idx = pd_idx + 1;
  1636. if (pd_idx == raid_disks-1) {
  1637. (*dd_idx)++; /* Q D D D P */
  1638. qd_idx = 0;
  1639. } else if (*dd_idx >= pd_idx)
  1640. (*dd_idx) += 2; /* D D P Q D */
  1641. ddf_layout = 1;
  1642. break;
  1643. case ALGORITHM_ROTATING_N_RESTART:
  1644. /* Same a left_asymmetric, by first stripe is
  1645. * D D D P Q rather than
  1646. * Q D D D P
  1647. */
  1648. stripe2 += 1;
  1649. pd_idx = raid_disks - 1 - sector_div(stripe2, raid_disks);
  1650. qd_idx = pd_idx + 1;
  1651. if (pd_idx == raid_disks-1) {
  1652. (*dd_idx)++; /* Q D D D P */
  1653. qd_idx = 0;
  1654. } else if (*dd_idx >= pd_idx)
  1655. (*dd_idx) += 2; /* D D P Q D */
  1656. ddf_layout = 1;
  1657. break;
  1658. case ALGORITHM_ROTATING_N_CONTINUE:
  1659. /* Same as left_symmetric but Q is before P */
  1660. pd_idx = raid_disks - 1 - sector_div(stripe2, raid_disks);
  1661. qd_idx = (pd_idx + raid_disks - 1) % raid_disks;
  1662. *dd_idx = (pd_idx + 1 + *dd_idx) % raid_disks;
  1663. ddf_layout = 1;
  1664. break;
  1665. case ALGORITHM_LEFT_ASYMMETRIC_6:
  1666. /* RAID5 left_asymmetric, with Q on last device */
  1667. pd_idx = data_disks - sector_div(stripe2, raid_disks-1);
  1668. if (*dd_idx >= pd_idx)
  1669. (*dd_idx)++;
  1670. qd_idx = raid_disks - 1;
  1671. break;
  1672. case ALGORITHM_RIGHT_ASYMMETRIC_6:
  1673. pd_idx = sector_div(stripe2, raid_disks-1);
  1674. if (*dd_idx >= pd_idx)
  1675. (*dd_idx)++;
  1676. qd_idx = raid_disks - 1;
  1677. break;
  1678. case ALGORITHM_LEFT_SYMMETRIC_6:
  1679. pd_idx = data_disks - sector_div(stripe2, raid_disks-1);
  1680. *dd_idx = (pd_idx + 1 + *dd_idx) % (raid_disks-1);
  1681. qd_idx = raid_disks - 1;
  1682. break;
  1683. case ALGORITHM_RIGHT_SYMMETRIC_6:
  1684. pd_idx = sector_div(stripe2, raid_disks-1);
  1685. *dd_idx = (pd_idx + 1 + *dd_idx) % (raid_disks-1);
  1686. qd_idx = raid_disks - 1;
  1687. break;
  1688. case ALGORITHM_PARITY_0_6:
  1689. pd_idx = 0;
  1690. (*dd_idx)++;
  1691. qd_idx = raid_disks - 1;
  1692. break;
  1693. default:
  1694. BUG();
  1695. }
  1696. break;
  1697. }
  1698. if (sh) {
  1699. sh->pd_idx = pd_idx;
  1700. sh->qd_idx = qd_idx;
  1701. sh->ddf_layout = ddf_layout;
  1702. }
  1703. /*
  1704. * Finally, compute the new sector number
  1705. */
  1706. new_sector = (sector_t)stripe * sectors_per_chunk + chunk_offset;
  1707. return new_sector;
  1708. }
  1709. static sector_t compute_blocknr(struct stripe_head *sh, int i, int previous)
  1710. {
  1711. struct r5conf *conf = sh->raid_conf;
  1712. int raid_disks = sh->disks;
  1713. int data_disks = raid_disks - conf->max_degraded;
  1714. sector_t new_sector = sh->sector, check;
  1715. int sectors_per_chunk = previous ? conf->prev_chunk_sectors
  1716. : conf->chunk_sectors;
  1717. int algorithm = previous ? conf->prev_algo
  1718. : conf->algorithm;
  1719. sector_t stripe;
  1720. int chunk_offset;
  1721. sector_t chunk_number;
  1722. int dummy1, dd_idx = i;
  1723. sector_t r_sector;
  1724. struct stripe_head sh2;
  1725. chunk_offset = sector_div(new_sector, sectors_per_chunk);
  1726. stripe = new_sector;
  1727. if (i == sh->pd_idx)
  1728. return 0;
  1729. switch(conf->level) {
  1730. case 4: break;
  1731. case 5:
  1732. switch (algorithm) {
  1733. case ALGORITHM_LEFT_ASYMMETRIC:
  1734. case ALGORITHM_RIGHT_ASYMMETRIC:
  1735. if (i > sh->pd_idx)
  1736. i--;
  1737. break;
  1738. case ALGORITHM_LEFT_SYMMETRIC:
  1739. case ALGORITHM_RIGHT_SYMMETRIC:
  1740. if (i < sh->pd_idx)
  1741. i += raid_disks;
  1742. i -= (sh->pd_idx + 1);
  1743. break;
  1744. case ALGORITHM_PARITY_0:
  1745. i -= 1;
  1746. break;
  1747. case ALGORITHM_PARITY_N:
  1748. break;
  1749. default:
  1750. BUG();
  1751. }
  1752. break;
  1753. case 6:
  1754. if (i == sh->qd_idx)
  1755. return 0; /* It is the Q disk */
  1756. switch (algorithm) {
  1757. case ALGORITHM_LEFT_ASYMMETRIC:
  1758. case ALGORITHM_RIGHT_ASYMMETRIC:
  1759. case ALGORITHM_ROTATING_ZERO_RESTART:
  1760. case ALGORITHM_ROTATING_N_RESTART:
  1761. if (sh->pd_idx == raid_disks-1)
  1762. i--; /* Q D D D P */
  1763. else if (i > sh->pd_idx)
  1764. i -= 2; /* D D P Q D */
  1765. break;
  1766. case ALGORITHM_LEFT_SYMMETRIC:
  1767. case ALGORITHM_RIGHT_SYMMETRIC:
  1768. if (sh->pd_idx == raid_disks-1)
  1769. i--; /* Q D D D P */
  1770. else {
  1771. /* D D P Q D */
  1772. if (i < sh->pd_idx)
  1773. i += raid_disks;
  1774. i -= (sh->pd_idx + 2);
  1775. }
  1776. break;
  1777. case ALGORITHM_PARITY_0:
  1778. i -= 2;
  1779. break;
  1780. case ALGORITHM_PARITY_N:
  1781. break;
  1782. case ALGORITHM_ROTATING_N_CONTINUE:
  1783. /* Like left_symmetric, but P is before Q */
  1784. if (sh->pd_idx == 0)
  1785. i--; /* P D D D Q */
  1786. else {
  1787. /* D D Q P D */
  1788. if (i < sh->pd_idx)
  1789. i += raid_disks;
  1790. i -= (sh->pd_idx + 1);
  1791. }
  1792. break;
  1793. case ALGORITHM_LEFT_ASYMMETRIC_6:
  1794. case ALGORITHM_RIGHT_ASYMMETRIC_6:
  1795. if (i > sh->pd_idx)
  1796. i--;
  1797. break;
  1798. case ALGORITHM_LEFT_SYMMETRIC_6:
  1799. case ALGORITHM_RIGHT_SYMMETRIC_6:
  1800. if (i < sh->pd_idx)
  1801. i += data_disks + 1;
  1802. i -= (sh->pd_idx + 1);
  1803. break;
  1804. case ALGORITHM_PARITY_0_6:
  1805. i -= 1;
  1806. break;
  1807. default:
  1808. BUG();
  1809. }
  1810. break;
  1811. }
  1812. chunk_number = stripe * data_disks + i;
  1813. r_sector = chunk_number * sectors_per_chunk + chunk_offset;
  1814. check = raid5_compute_sector(conf, r_sector,
  1815. previous, &dummy1, &sh2);
  1816. if (check != sh->sector || dummy1 != dd_idx || sh2.pd_idx != sh->pd_idx
  1817. || sh2.qd_idx != sh->qd_idx) {
  1818. printk(KERN_ERR "md/raid:%s: compute_blocknr: map not correct\n",
  1819. mdname(conf->mddev));
  1820. return 0;
  1821. }
  1822. return r_sector;
  1823. }
  1824. static void
  1825. schedule_reconstruction(struct stripe_head *sh, struct stripe_head_state *s,
  1826. int rcw, int expand)
  1827. {
  1828. int i, pd_idx = sh->pd_idx, disks = sh->disks;
  1829. struct r5conf *conf = sh->raid_conf;
  1830. int level = conf->level;
  1831. if (rcw) {
  1832. /* if we are not expanding this is a proper write request, and
  1833. * there will be bios with new data to be drained into the
  1834. * stripe cache
  1835. */
  1836. if (!expand) {
  1837. sh->reconstruct_state = reconstruct_state_drain_run;
  1838. set_bit(STRIPE_OP_BIODRAIN, &s->ops_request);
  1839. } else
  1840. sh->reconstruct_state = reconstruct_state_run;
  1841. set_bit(STRIPE_OP_RECONSTRUCT, &s->ops_request);
  1842. for (i = disks; i--; ) {
  1843. struct r5dev *dev = &sh->dev[i];
  1844. if (dev->towrite) {
  1845. set_bit(R5_LOCKED, &dev->flags);
  1846. set_bit(R5_Wantdrain, &dev->flags);
  1847. if (!expand)
  1848. clear_bit(R5_UPTODATE, &dev->flags);
  1849. s->locked++;
  1850. }
  1851. }
  1852. if (s->locked + conf->max_degraded == disks)
  1853. if (!test_and_set_bit(STRIPE_FULL_WRITE, &sh->state))
  1854. atomic_inc(&conf->pending_full_writes);
  1855. } else {
  1856. BUG_ON(level == 6);
  1857. BUG_ON(!(test_bit(R5_UPTODATE, &sh->dev[pd_idx].flags) ||
  1858. test_bit(R5_Wantcompute, &sh->dev[pd_idx].flags)));
  1859. sh->reconstruct_state = reconstruct_state_prexor_drain_run;
  1860. set_bit(STRIPE_OP_PREXOR, &s->ops_request);
  1861. set_bit(STRIPE_OP_BIODRAIN, &s->ops_request);
  1862. set_bit(STRIPE_OP_RECONSTRUCT, &s->ops_request);
  1863. for (i = disks; i--; ) {
  1864. struct r5dev *dev = &sh->dev[i];
  1865. if (i == pd_idx)
  1866. continue;
  1867. if (dev->towrite &&
  1868. (test_bit(R5_UPTODATE, &dev->flags) ||
  1869. test_bit(R5_Wantcompute, &dev->flags))) {
  1870. set_bit(R5_Wantdrain, &dev->flags);
  1871. set_bit(R5_LOCKED, &dev->flags);
  1872. clear_bit(R5_UPTODATE, &dev->flags);
  1873. s->locked++;
  1874. }
  1875. }
  1876. }
  1877. /* keep the parity disk(s) locked while asynchronous operations
  1878. * are in flight
  1879. */
  1880. set_bit(R5_LOCKED, &sh->dev[pd_idx].flags);
  1881. clear_bit(R5_UPTODATE, &sh->dev[pd_idx].flags);
  1882. s->locked++;
  1883. if (level == 6) {
  1884. int qd_idx = sh->qd_idx;
  1885. struct r5dev *dev = &sh->dev[qd_idx];
  1886. set_bit(R5_LOCKED, &dev->flags);
  1887. clear_bit(R5_UPTODATE, &dev->flags);
  1888. s->locked++;
  1889. }
  1890. pr_debug("%s: stripe %llu locked: %d ops_request: %lx\n",
  1891. __func__, (unsigned long long)sh->sector,
  1892. s->locked, s->ops_request);
  1893. }
  1894. /*
  1895. * Each stripe/dev can have one or more bion attached.
  1896. * toread/towrite point to the first in a chain.
  1897. * The bi_next chain must be in order.
  1898. */
  1899. static int add_stripe_bio(struct stripe_head *sh, struct bio *bi, int dd_idx, int forwrite)
  1900. {
  1901. struct bio **bip;
  1902. struct r5conf *conf = sh->raid_conf;
  1903. int firstwrite=0;
  1904. pr_debug("adding bi b#%llu to stripe s#%llu\n",
  1905. (unsigned long long)bi->bi_sector,
  1906. (unsigned long long)sh->sector);
  1907. spin_lock_irq(&conf->device_lock);
  1908. if (forwrite) {
  1909. bip = &sh->dev[dd_idx].towrite;
  1910. if (*bip == NULL && sh->dev[dd_idx].written == NULL)
  1911. firstwrite = 1;
  1912. } else
  1913. bip = &sh->dev[dd_idx].toread;
  1914. while (*bip && (*bip)->bi_sector < bi->bi_sector) {
  1915. if ((*bip)->bi_sector + ((*bip)->bi_size >> 9) > bi->bi_sector)
  1916. goto overlap;
  1917. bip = & (*bip)->bi_next;
  1918. }
  1919. if (*bip && (*bip)->bi_sector < bi->bi_sector + ((bi->bi_size)>>9))
  1920. goto overlap;
  1921. BUG_ON(*bip && bi->bi_next && (*bip) != bi->bi_next);
  1922. if (*bip)
  1923. bi->bi_next = *bip;
  1924. *bip = bi;
  1925. bi->bi_phys_segments++;
  1926. if (forwrite) {
  1927. /* check if page is covered */
  1928. sector_t sector = sh->dev[dd_idx].sector;
  1929. for (bi=sh->dev[dd_idx].towrite;
  1930. sector < sh->dev[dd_idx].sector + STRIPE_SECTORS &&
  1931. bi && bi->bi_sector <= sector;
  1932. bi = r5_next_bio(bi, sh->dev[dd_idx].sector)) {
  1933. if (bi->bi_sector + (bi->bi_size>>9) >= sector)
  1934. sector = bi->bi_sector + (bi->bi_size>>9);
  1935. }
  1936. if (sector >= sh->dev[dd_idx].sector + STRIPE_SECTORS)
  1937. set_bit(R5_OVERWRITE, &sh->dev[dd_idx].flags);
  1938. }
  1939. spin_unlock_irq(&conf->device_lock);
  1940. pr_debug("added bi b#%llu to stripe s#%llu, disk %d.\n",
  1941. (unsigned long long)(*bip)->bi_sector,
  1942. (unsigned long long)sh->sector, dd_idx);
  1943. if (conf->mddev->bitmap && firstwrite) {
  1944. bitmap_startwrite(conf->mddev->bitmap, sh->sector,
  1945. STRIPE_SECTORS, 0);
  1946. sh->bm_seq = conf->seq_flush+1;
  1947. set_bit(STRIPE_BIT_DELAY, &sh->state);
  1948. }
  1949. return 1;
  1950. overlap:
  1951. set_bit(R5_Overlap, &sh->dev[dd_idx].flags);
  1952. spin_unlock_irq(&conf->device_lock);
  1953. return 0;
  1954. }
  1955. static void end_reshape(struct r5conf *conf);
  1956. static void stripe_set_idx(sector_t stripe, struct r5conf *conf, int previous,
  1957. struct stripe_head *sh)
  1958. {
  1959. int sectors_per_chunk =
  1960. previous ? conf->prev_chunk_sectors : conf->chunk_sectors;
  1961. int dd_idx;
  1962. int chunk_offset = sector_div(stripe, sectors_per_chunk);
  1963. int disks = previous ? conf->previous_raid_disks : conf->raid_disks;
  1964. raid5_compute_sector(conf,
  1965. stripe * (disks - conf->max_degraded)
  1966. *sectors_per_chunk + chunk_offset,
  1967. previous,
  1968. &dd_idx, sh);
  1969. }
  1970. static void
  1971. handle_failed_stripe(struct r5conf *conf, struct stripe_head *sh,
  1972. struct stripe_head_state *s, int disks,
  1973. struct bio **return_bi)
  1974. {
  1975. int i;
  1976. for (i = disks; i--; ) {
  1977. struct bio *bi;
  1978. int bitmap_end = 0;
  1979. if (test_bit(R5_ReadError, &sh->dev[i].flags)) {
  1980. struct md_rdev *rdev;
  1981. rcu_read_lock();
  1982. rdev = rcu_dereference(conf->disks[i].rdev);
  1983. if (rdev && test_bit(In_sync, &rdev->flags))
  1984. atomic_inc(&rdev->nr_pending);
  1985. else
  1986. rdev = NULL;
  1987. rcu_read_unlock();
  1988. if (rdev) {
  1989. if (!rdev_set_badblocks(
  1990. rdev,
  1991. sh->sector,
  1992. STRIPE_SECTORS, 0))
  1993. md_error(conf->mddev, rdev);
  1994. rdev_dec_pending(rdev, conf->mddev);
  1995. }
  1996. }
  1997. spin_lock_irq(&conf->device_lock);
  1998. /* fail all writes first */
  1999. bi = sh->dev[i].towrite;
  2000. sh->dev[i].towrite = NULL;
  2001. if (bi) {
  2002. s->to_write--;
  2003. bitmap_end = 1;
  2004. }
  2005. if (test_and_clear_bit(R5_Overlap, &sh->dev[i].flags))
  2006. wake_up(&conf->wait_for_overlap);
  2007. while (bi && bi->bi_sector <
  2008. sh->dev[i].sector + STRIPE_SECTORS) {
  2009. struct bio *nextbi = r5_next_bio(bi, sh->dev[i].sector);
  2010. clear_bit(BIO_UPTODATE, &bi->bi_flags);
  2011. if (!raid5_dec_bi_phys_segments(bi)) {
  2012. md_write_end(conf->mddev);
  2013. bi->bi_next = *return_bi;
  2014. *return_bi = bi;
  2015. }
  2016. bi = nextbi;
  2017. }
  2018. /* and fail all 'written' */
  2019. bi = sh->dev[i].written;
  2020. sh->dev[i].written = NULL;
  2021. if (bi) bitmap_end = 1;
  2022. while (bi && bi->bi_sector <
  2023. sh->dev[i].sector + STRIPE_SECTORS) {
  2024. struct bio *bi2 = r5_next_bio(bi, sh->dev[i].sector);
  2025. clear_bit(BIO_UPTODATE, &bi->bi_flags);
  2026. if (!raid5_dec_bi_phys_segments(bi)) {
  2027. md_write_end(conf->mddev);
  2028. bi->bi_next = *return_bi;
  2029. *return_bi = bi;
  2030. }
  2031. bi = bi2;
  2032. }
  2033. /* fail any reads if this device is non-operational and
  2034. * the data has not reached the cache yet.
  2035. */
  2036. if (!test_bit(R5_Wantfill, &sh->dev[i].flags) &&
  2037. (!test_bit(R5_Insync, &sh->dev[i].flags) ||
  2038. test_bit(R5_ReadError, &sh->dev[i].flags))) {
  2039. bi = sh->dev[i].toread;
  2040. sh->dev[i].toread = NULL;
  2041. if (test_and_clear_bit(R5_Overlap, &sh->dev[i].flags))
  2042. wake_up(&conf->wait_for_overlap);
  2043. if (bi) s->to_read--;
  2044. while (bi && bi->bi_sector <
  2045. sh->dev[i].sector + STRIPE_SECTORS) {
  2046. struct bio *nextbi =
  2047. r5_next_bio(bi, sh->dev[i].sector);
  2048. clear_bit(BIO_UPTODATE, &bi->bi_flags);
  2049. if (!raid5_dec_bi_phys_segments(bi)) {
  2050. bi->bi_next = *return_bi;
  2051. *return_bi = bi;
  2052. }
  2053. bi = nextbi;
  2054. }
  2055. }
  2056. spin_unlock_irq(&conf->device_lock);
  2057. if (bitmap_end)
  2058. bitmap_endwrite(conf->mddev->bitmap, sh->sector,
  2059. STRIPE_SECTORS, 0, 0);
  2060. /* If we were in the middle of a write the parity block might
  2061. * still be locked - so just clear all R5_LOCKED flags
  2062. */
  2063. clear_bit(R5_LOCKED, &sh->dev[i].flags);
  2064. }
  2065. if (test_and_clear_bit(STRIPE_FULL_WRITE, &sh->state))
  2066. if (atomic_dec_and_test(&conf->pending_full_writes))
  2067. md_wakeup_thread(conf->mddev->thread);
  2068. }
  2069. static void
  2070. handle_failed_sync(struct r5conf *conf, struct stripe_head *sh,
  2071. struct stripe_head_state *s)
  2072. {
  2073. int abort = 0;
  2074. int i;
  2075. md_done_sync(conf->mddev, STRIPE_SECTORS, 0);
  2076. clear_bit(STRIPE_SYNCING, &sh->state);
  2077. s->syncing = 0;
  2078. /* There is nothing more to do for sync/check/repair.
  2079. * For recover we need to record a bad block on all
  2080. * non-sync devices, or abort the recovery
  2081. */
  2082. if (!test_bit(MD_RECOVERY_RECOVER, &conf->mddev->recovery))
  2083. return;
  2084. /* During recovery devices cannot be removed, so locking and
  2085. * refcounting of rdevs is not needed
  2086. */
  2087. for (i = 0; i < conf->raid_disks; i++) {
  2088. struct md_rdev *rdev = conf->disks[i].rdev;
  2089. if (!rdev
  2090. || test_bit(Faulty, &rdev->flags)
  2091. || test_bit(In_sync, &rdev->flags))
  2092. continue;
  2093. if (!rdev_set_badblocks(rdev, sh->sector,
  2094. STRIPE_SECTORS, 0))
  2095. abort = 1;
  2096. }
  2097. if (abort) {
  2098. conf->recovery_disabled = conf->mddev->recovery_disabled;
  2099. set_bit(MD_RECOVERY_INTR, &conf->mddev->recovery);
  2100. }
  2101. }
  2102. /* fetch_block - checks the given member device to see if its data needs
  2103. * to be read or computed to satisfy a request.
  2104. *
  2105. * Returns 1 when no more member devices need to be checked, otherwise returns
  2106. * 0 to tell the loop in handle_stripe_fill to continue
  2107. */
  2108. static int fetch_block(struct stripe_head *sh, struct stripe_head_state *s,
  2109. int disk_idx, int disks)
  2110. {
  2111. struct r5dev *dev = &sh->dev[disk_idx];
  2112. struct r5dev *fdev[2] = { &sh->dev[s->failed_num[0]],
  2113. &sh->dev[s->failed_num[1]] };
  2114. /* is the data in this block needed, and can we get it? */
  2115. if (!test_bit(R5_LOCKED, &dev->flags) &&
  2116. !test_bit(R5_UPTODATE, &dev->flags) &&
  2117. (dev->toread ||
  2118. (dev->towrite && !test_bit(R5_OVERWRITE, &dev->flags)) ||
  2119. s->syncing || s->expanding ||
  2120. (s->failed >= 1 && fdev[0]->toread) ||
  2121. (s->failed >= 2 && fdev[1]->toread) ||
  2122. (sh->raid_conf->level <= 5 && s->failed && fdev[0]->towrite &&
  2123. !test_bit(R5_OVERWRITE, &fdev[0]->flags)) ||
  2124. (sh->raid_conf->level == 6 && s->failed && s->to_write))) {
  2125. /* we would like to get this block, possibly by computing it,
  2126. * otherwise read it if the backing disk is insync
  2127. */
  2128. BUG_ON(test_bit(R5_Wantcompute, &dev->flags));
  2129. BUG_ON(test_bit(R5_Wantread, &dev->flags));
  2130. if ((s->uptodate == disks - 1) &&
  2131. (s->failed && (disk_idx == s->failed_num[0] ||
  2132. disk_idx == s->failed_num[1]))) {
  2133. /* have disk failed, and we're requested to fetch it;
  2134. * do compute it
  2135. */
  2136. pr_debug("Computing stripe %llu block %d\n",
  2137. (unsigned long long)sh->sector, disk_idx);
  2138. set_bit(STRIPE_COMPUTE_RUN, &sh->state);
  2139. set_bit(STRIPE_OP_COMPUTE_BLK, &s->ops_request);
  2140. set_bit(R5_Wantcompute, &dev->flags);
  2141. sh->ops.target = disk_idx;
  2142. sh->ops.target2 = -1; /* no 2nd target */
  2143. s->req_compute = 1;
  2144. /* Careful: from this point on 'uptodate' is in the eye
  2145. * of raid_run_ops which services 'compute' operations
  2146. * before writes. R5_Wantcompute flags a block that will
  2147. * be R5_UPTODATE by the time it is needed for a
  2148. * subsequent operation.
  2149. */
  2150. s->uptodate++;
  2151. return 1;
  2152. } else if (s->uptodate == disks-2 && s->failed >= 2) {
  2153. /* Computing 2-failure is *very* expensive; only
  2154. * do it if failed >= 2
  2155. */
  2156. int other;
  2157. for (other = disks; other--; ) {
  2158. if (other == disk_idx)
  2159. continue;
  2160. if (!test_bit(R5_UPTODATE,
  2161. &sh->dev[other].flags))
  2162. break;
  2163. }
  2164. BUG_ON(other < 0);
  2165. pr_debug("Computing stripe %llu blocks %d,%d\n",
  2166. (unsigned long long)sh->sector,
  2167. disk_idx, other);
  2168. set_bit(STRIPE_COMPUTE_RUN, &sh->state);
  2169. set_bit(STRIPE_OP_COMPUTE_BLK, &s->ops_request);
  2170. set_bit(R5_Wantcompute, &sh->dev[disk_idx].flags);
  2171. set_bit(R5_Wantcompute, &sh->dev[other].flags);
  2172. sh->ops.target = disk_idx;
  2173. sh->ops.target2 = other;
  2174. s->uptodate += 2;
  2175. s->req_compute = 1;
  2176. return 1;
  2177. } else if (test_bit(R5_Insync, &dev->flags)) {
  2178. set_bit(R5_LOCKED, &dev->flags);
  2179. set_bit(R5_Wantread, &dev->flags);
  2180. s->locked++;
  2181. pr_debug("Reading block %d (sync=%d)\n",
  2182. disk_idx, s->syncing);
  2183. }
  2184. }
  2185. return 0;
  2186. }
  2187. /**
  2188. * handle_stripe_fill - read or compute data to satisfy pending requests.
  2189. */
  2190. static void handle_stripe_fill(struct stripe_head *sh,
  2191. struct stripe_head_state *s,
  2192. int disks)
  2193. {
  2194. int i;
  2195. /* look for blocks to read/compute, skip this if a compute
  2196. * is already in flight, or if the stripe contents are in the
  2197. * midst of changing due to a write
  2198. */
  2199. if (!test_bit(STRIPE_COMPUTE_RUN, &sh->state) && !sh->check_state &&
  2200. !sh->reconstruct_state)
  2201. for (i = disks; i--; )
  2202. if (fetch_block(sh, s, i, disks))
  2203. break;
  2204. set_bit(STRIPE_HANDLE, &sh->state);
  2205. }
  2206. /* handle_stripe_clean_event
  2207. * any written block on an uptodate or failed drive can be returned.
  2208. * Note that if we 'wrote' to a failed drive, it will be UPTODATE, but
  2209. * never LOCKED, so we don't need to test 'failed' directly.
  2210. */
  2211. static void handle_stripe_clean_event(struct r5conf *conf,
  2212. struct stripe_head *sh, int disks, struct bio **return_bi)
  2213. {
  2214. int i;
  2215. struct r5dev *dev;
  2216. for (i = disks; i--; )
  2217. if (sh->dev[i].written) {
  2218. dev = &sh->dev[i];
  2219. if (!test_bit(R5_LOCKED, &dev->flags) &&
  2220. test_bit(R5_UPTODATE, &dev->flags)) {
  2221. /* We can return any write requests */
  2222. struct bio *wbi, *wbi2;
  2223. int bitmap_end = 0;
  2224. pr_debug("Return write for disc %d\n", i);
  2225. spin_lock_irq(&conf->device_lock);
  2226. wbi = dev->written;
  2227. dev->written = NULL;
  2228. while (wbi && wbi->bi_sector <
  2229. dev->sector + STRIPE_SECTORS) {
  2230. wbi2 = r5_next_bio(wbi, dev->sector);
  2231. if (!raid5_dec_bi_phys_segments(wbi)) {
  2232. md_write_end(conf->mddev);
  2233. wbi->bi_next = *return_bi;
  2234. *return_bi = wbi;
  2235. }
  2236. wbi = wbi2;
  2237. }
  2238. if (dev->towrite == NULL)
  2239. bitmap_end = 1;
  2240. spin_unlock_irq(&conf->device_lock);
  2241. if (bitmap_end)
  2242. bitmap_endwrite(conf->mddev->bitmap,
  2243. sh->sector,
  2244. STRIPE_SECTORS,
  2245. !test_bit(STRIPE_DEGRADED, &sh->state),
  2246. 0);
  2247. }
  2248. }
  2249. if (test_and_clear_bit(STRIPE_FULL_WRITE, &sh->state))
  2250. if (atomic_dec_and_test(&conf->pending_full_writes))
  2251. md_wakeup_thread(conf->mddev->thread);
  2252. }
  2253. static void handle_stripe_dirtying(struct r5conf *conf,
  2254. struct stripe_head *sh,
  2255. struct stripe_head_state *s,
  2256. int disks)
  2257. {
  2258. int rmw = 0, rcw = 0, i;
  2259. if (conf->max_degraded == 2) {
  2260. /* RAID6 requires 'rcw' in current implementation
  2261. * Calculate the real rcw later - for now fake it
  2262. * look like rcw is cheaper
  2263. */
  2264. rcw = 1; rmw = 2;
  2265. } else for (i = disks; i--; ) {
  2266. /* would I have to read this buffer for read_modify_write */
  2267. struct r5dev *dev = &sh->dev[i];
  2268. if ((dev->towrite || i == sh->pd_idx) &&
  2269. !test_bit(R5_LOCKED, &dev->flags) &&
  2270. !(test_bit(R5_UPTODATE, &dev->flags) ||
  2271. test_bit(R5_Wantcompute, &dev->flags))) {
  2272. if (test_bit(R5_Insync, &dev->flags))
  2273. rmw++;
  2274. else
  2275. rmw += 2*disks; /* cannot read it */
  2276. }
  2277. /* Would I have to read this buffer for reconstruct_write */
  2278. if (!test_bit(R5_OVERWRITE, &dev->flags) && i != sh->pd_idx &&
  2279. !test_bit(R5_LOCKED, &dev->flags) &&
  2280. !(test_bit(R5_UPTODATE, &dev->flags) ||
  2281. test_bit(R5_Wantcompute, &dev->flags))) {
  2282. if (test_bit(R5_Insync, &dev->flags)) rcw++;
  2283. else
  2284. rcw += 2*disks;
  2285. }
  2286. }
  2287. pr_debug("for sector %llu, rmw=%d rcw=%d\n",
  2288. (unsigned long long)sh->sector, rmw, rcw);
  2289. set_bit(STRIPE_HANDLE, &sh->state);
  2290. if (rmw < rcw && rmw > 0)
  2291. /* prefer read-modify-write, but need to get some data */
  2292. for (i = disks; i--; ) {
  2293. struct r5dev *dev = &sh->dev[i];
  2294. if ((dev->towrite || i == sh->pd_idx) &&
  2295. !test_bit(R5_LOCKED, &dev->flags) &&
  2296. !(test_bit(R5_UPTODATE, &dev->flags) ||
  2297. test_bit(R5_Wantcompute, &dev->flags)) &&
  2298. test_bit(R5_Insync, &dev->flags)) {
  2299. if (
  2300. test_bit(STRIPE_PREREAD_ACTIVE, &sh->state)) {
  2301. pr_debug("Read_old block "
  2302. "%d for r-m-w\n", i);
  2303. set_bit(R5_LOCKED, &dev->flags);
  2304. set_bit(R5_Wantread, &dev->flags);
  2305. s->locked++;
  2306. } else {
  2307. set_bit(STRIPE_DELAYED, &sh->state);
  2308. set_bit(STRIPE_HANDLE, &sh->state);
  2309. }
  2310. }
  2311. }
  2312. if (rcw <= rmw && rcw > 0) {
  2313. /* want reconstruct write, but need to get some data */
  2314. rcw = 0;
  2315. for (i = disks; i--; ) {
  2316. struct r5dev *dev = &sh->dev[i];
  2317. if (!test_bit(R5_OVERWRITE, &dev->flags) &&
  2318. i != sh->pd_idx && i != sh->qd_idx &&
  2319. !test_bit(R5_LOCKED, &dev->flags) &&
  2320. !(test_bit(R5_UPTODATE, &dev->flags) ||
  2321. test_bit(R5_Wantcompute, &dev->flags))) {
  2322. rcw++;
  2323. if (!test_bit(R5_Insync, &dev->flags))
  2324. continue; /* it's a failed drive */
  2325. if (
  2326. test_bit(STRIPE_PREREAD_ACTIVE, &sh->state)) {
  2327. pr_debug("Read_old block "
  2328. "%d for Reconstruct\n", i);
  2329. set_bit(R5_LOCKED, &dev->flags);
  2330. set_bit(R5_Wantread, &dev->flags);
  2331. s->locked++;
  2332. } else {
  2333. set_bit(STRIPE_DELAYED, &sh->state);
  2334. set_bit(STRIPE_HANDLE, &sh->state);
  2335. }
  2336. }
  2337. }
  2338. }
  2339. /* now if nothing is locked, and if we have enough data,
  2340. * we can start a write request
  2341. */
  2342. /* since handle_stripe can be called at any time we need to handle the
  2343. * case where a compute block operation has been submitted and then a
  2344. * subsequent call wants to start a write request. raid_run_ops only
  2345. * handles the case where compute block and reconstruct are requested
  2346. * simultaneously. If this is not the case then new writes need to be
  2347. * held off until the compute completes.
  2348. */
  2349. if ((s->req_compute || !test_bit(STRIPE_COMPUTE_RUN, &sh->state)) &&
  2350. (s->locked == 0 && (rcw == 0 || rmw == 0) &&
  2351. !test_bit(STRIPE_BIT_DELAY, &sh->state)))
  2352. schedule_reconstruction(sh, s, rcw == 0, 0);
  2353. }
  2354. static void handle_parity_checks5(struct r5conf *conf, struct stripe_head *sh,
  2355. struct stripe_head_state *s, int disks)
  2356. {
  2357. struct r5dev *dev = NULL;
  2358. set_bit(STRIPE_HANDLE, &sh->state);
  2359. switch (sh->check_state) {
  2360. case check_state_idle:
  2361. /* start a new check operation if there are no failures */
  2362. if (s->failed == 0) {
  2363. BUG_ON(s->uptodate != disks);
  2364. sh->check_state = check_state_run;
  2365. set_bit(STRIPE_OP_CHECK, &s->ops_request);
  2366. clear_bit(R5_UPTODATE, &sh->dev[sh->pd_idx].flags);
  2367. s->uptodate--;
  2368. break;
  2369. }
  2370. dev = &sh->dev[s->failed_num[0]];
  2371. /* fall through */
  2372. case check_state_compute_result:
  2373. sh->check_state = check_state_idle;
  2374. if (!dev)
  2375. dev = &sh->dev[sh->pd_idx];
  2376. /* check that a write has not made the stripe insync */
  2377. if (test_bit(STRIPE_INSYNC, &sh->state))
  2378. break;
  2379. /* either failed parity check, or recovery is happening */
  2380. BUG_ON(!test_bit(R5_UPTODATE, &dev->flags));
  2381. BUG_ON(s->uptodate != disks);
  2382. set_bit(R5_LOCKED, &dev->flags);
  2383. s->locked++;
  2384. set_bit(R5_Wantwrite, &dev->flags);
  2385. clear_bit(STRIPE_DEGRADED, &sh->state);
  2386. set_bit(STRIPE_INSYNC, &sh->state);
  2387. break;
  2388. case check_state_run:
  2389. break; /* we will be called again upon completion */
  2390. case check_state_check_result:
  2391. sh->check_state = check_state_idle;
  2392. /* if a failure occurred during the check operation, leave
  2393. * STRIPE_INSYNC not set and let the stripe be handled again
  2394. */
  2395. if (s->failed)
  2396. break;
  2397. /* handle a successful check operation, if parity is correct
  2398. * we are done. Otherwise update the mismatch count and repair
  2399. * parity if !MD_RECOVERY_CHECK
  2400. */
  2401. if ((sh->ops.zero_sum_result & SUM_CHECK_P_RESULT) == 0)
  2402. /* parity is correct (on disc,
  2403. * not in buffer any more)
  2404. */
  2405. set_bit(STRIPE_INSYNC, &sh->state);
  2406. else {
  2407. conf->mddev->resync_mismatches += STRIPE_SECTORS;
  2408. if (test_bit(MD_RECOVERY_CHECK, &conf->mddev->recovery))
  2409. /* don't try to repair!! */
  2410. set_bit(STRIPE_INSYNC, &sh->state);
  2411. else {
  2412. sh->check_state = check_state_compute_run;
  2413. set_bit(STRIPE_COMPUTE_RUN, &sh->state);
  2414. set_bit(STRIPE_OP_COMPUTE_BLK, &s->ops_request);
  2415. set_bit(R5_Wantcompute,
  2416. &sh->dev[sh->pd_idx].flags);
  2417. sh->ops.target = sh->pd_idx;
  2418. sh->ops.target2 = -1;
  2419. s->uptodate++;
  2420. }
  2421. }
  2422. break;
  2423. case check_state_compute_run:
  2424. break;
  2425. default:
  2426. printk(KERN_ERR "%s: unknown check_state: %d sector: %llu\n",
  2427. __func__, sh->check_state,
  2428. (unsigned long long) sh->sector);
  2429. BUG();
  2430. }
  2431. }
  2432. static void handle_parity_checks6(struct r5conf *conf, struct stripe_head *sh,
  2433. struct stripe_head_state *s,
  2434. int disks)
  2435. {
  2436. int pd_idx = sh->pd_idx;
  2437. int qd_idx = sh->qd_idx;
  2438. struct r5dev *dev;
  2439. set_bit(STRIPE_HANDLE, &sh->state);
  2440. BUG_ON(s->failed > 2);
  2441. /* Want to check and possibly repair P and Q.
  2442. * However there could be one 'failed' device, in which
  2443. * case we can only check one of them, possibly using the
  2444. * other to generate missing data
  2445. */
  2446. switch (sh->check_state) {
  2447. case check_state_idle:
  2448. /* start a new check operation if there are < 2 failures */
  2449. if (s->failed == s->q_failed) {
  2450. /* The only possible failed device holds Q, so it
  2451. * makes sense to check P (If anything else were failed,
  2452. * we would have used P to recreate it).
  2453. */
  2454. sh->check_state = check_state_run;
  2455. }
  2456. if (!s->q_failed && s->failed < 2) {
  2457. /* Q is not failed, and we didn't use it to generate
  2458. * anything, so it makes sense to check it
  2459. */
  2460. if (sh->check_state == check_state_run)
  2461. sh->check_state = check_state_run_pq;
  2462. else
  2463. sh->check_state = check_state_run_q;
  2464. }
  2465. /* discard potentially stale zero_sum_result */
  2466. sh->ops.zero_sum_result = 0;
  2467. if (sh->check_state == check_state_run) {
  2468. /* async_xor_zero_sum destroys the contents of P */
  2469. clear_bit(R5_UPTODATE, &sh->dev[pd_idx].flags);
  2470. s->uptodate--;
  2471. }
  2472. if (sh->check_state >= check_state_run &&
  2473. sh->check_state <= check_state_run_pq) {
  2474. /* async_syndrome_zero_sum preserves P and Q, so
  2475. * no need to mark them !uptodate here
  2476. */
  2477. set_bit(STRIPE_OP_CHECK, &s->ops_request);
  2478. break;
  2479. }
  2480. /* we have 2-disk failure */
  2481. BUG_ON(s->failed != 2);
  2482. /* fall through */
  2483. case check_state_compute_result:
  2484. sh->check_state = check_state_idle;
  2485. /* check that a write has not made the stripe insync */
  2486. if (test_bit(STRIPE_INSYNC, &sh->state))
  2487. break;
  2488. /* now write out any block on a failed drive,
  2489. * or P or Q if they were recomputed
  2490. */
  2491. BUG_ON(s->uptodate < disks - 1); /* We don't need Q to recover */
  2492. if (s->failed == 2) {
  2493. dev = &sh->dev[s->failed_num[1]];
  2494. s->locked++;
  2495. set_bit(R5_LOCKED, &dev->flags);
  2496. set_bit(R5_Wantwrite, &dev->flags);
  2497. }
  2498. if (s->failed >= 1) {
  2499. dev = &sh->dev[s->failed_num[0]];
  2500. s->locked++;
  2501. set_bit(R5_LOCKED, &dev->flags);
  2502. set_bit(R5_Wantwrite, &dev->flags);
  2503. }
  2504. if (sh->ops.zero_sum_result & SUM_CHECK_P_RESULT) {
  2505. dev = &sh->dev[pd_idx];
  2506. s->locked++;
  2507. set_bit(R5_LOCKED, &dev->flags);
  2508. set_bit(R5_Wantwrite, &dev->flags);
  2509. }
  2510. if (sh->ops.zero_sum_result & SUM_CHECK_Q_RESULT) {
  2511. dev = &sh->dev[qd_idx];
  2512. s->locked++;
  2513. set_bit(R5_LOCKED, &dev->flags);
  2514. set_bit(R5_Wantwrite, &dev->flags);
  2515. }
  2516. clear_bit(STRIPE_DEGRADED, &sh->state);
  2517. set_bit(STRIPE_INSYNC, &sh->state);
  2518. break;
  2519. case check_state_run:
  2520. case check_state_run_q:
  2521. case check_state_run_pq:
  2522. break; /* we will be called again upon completion */
  2523. case check_state_check_result:
  2524. sh->check_state = check_state_idle;
  2525. /* handle a successful check operation, if parity is correct
  2526. * we are done. Otherwise update the mismatch count and repair
  2527. * parity if !MD_RECOVERY_CHECK
  2528. */
  2529. if (sh->ops.zero_sum_result == 0) {
  2530. /* both parities are correct */
  2531. if (!s->failed)
  2532. set_bit(STRIPE_INSYNC, &sh->state);
  2533. else {
  2534. /* in contrast to the raid5 case we can validate
  2535. * parity, but still have a failure to write
  2536. * back
  2537. */
  2538. sh->check_state = check_state_compute_result;
  2539. /* Returning at this point means that we may go
  2540. * off and bring p and/or q uptodate again so
  2541. * we make sure to check zero_sum_result again
  2542. * to verify if p or q need writeback
  2543. */
  2544. }
  2545. } else {
  2546. conf->mddev->resync_mismatches += STRIPE_SECTORS;
  2547. if (test_bit(MD_RECOVERY_CHECK, &conf->mddev->recovery))
  2548. /* don't try to repair!! */
  2549. set_bit(STRIPE_INSYNC, &sh->state);
  2550. else {
  2551. int *target = &sh->ops.target;
  2552. sh->ops.target = -1;
  2553. sh->ops.target2 = -1;
  2554. sh->check_state = check_state_compute_run;
  2555. set_bit(STRIPE_COMPUTE_RUN, &sh->state);
  2556. set_bit(STRIPE_OP_COMPUTE_BLK, &s->ops_request);
  2557. if (sh->ops.zero_sum_result & SUM_CHECK_P_RESULT) {
  2558. set_bit(R5_Wantcompute,
  2559. &sh->dev[pd_idx].flags);
  2560. *target = pd_idx;
  2561. target = &sh->ops.target2;
  2562. s->uptodate++;
  2563. }
  2564. if (sh->ops.zero_sum_result & SUM_CHECK_Q_RESULT) {
  2565. set_bit(R5_Wantcompute,
  2566. &sh->dev[qd_idx].flags);
  2567. *target = qd_idx;
  2568. s->uptodate++;
  2569. }
  2570. }
  2571. }
  2572. break;
  2573. case check_state_compute_run:
  2574. break;
  2575. default:
  2576. printk(KERN_ERR "%s: unknown check_state: %d sector: %llu\n",
  2577. __func__, sh->check_state,
  2578. (unsigned long long) sh->sector);
  2579. BUG();
  2580. }
  2581. }
  2582. static void handle_stripe_expansion(struct r5conf *conf, struct stripe_head *sh)
  2583. {
  2584. int i;
  2585. /* We have read all the blocks in this stripe and now we need to
  2586. * copy some of them into a target stripe for expand.
  2587. */
  2588. struct dma_async_tx_descriptor *tx = NULL;
  2589. clear_bit(STRIPE_EXPAND_SOURCE, &sh->state);
  2590. for (i = 0; i < sh->disks; i++)
  2591. if (i != sh->pd_idx && i != sh->qd_idx) {
  2592. int dd_idx, j;
  2593. struct stripe_head *sh2;
  2594. struct async_submit_ctl submit;
  2595. sector_t bn = compute_blocknr(sh, i, 1);
  2596. sector_t s = raid5_compute_sector(conf, bn, 0,
  2597. &dd_idx, NULL);
  2598. sh2 = get_active_stripe(conf, s, 0, 1, 1);
  2599. if (sh2 == NULL)
  2600. /* so far only the early blocks of this stripe
  2601. * have been requested. When later blocks
  2602. * get requested, we will try again
  2603. */
  2604. continue;
  2605. if (!test_bit(STRIPE_EXPANDING, &sh2->state) ||
  2606. test_bit(R5_Expanded, &sh2->dev[dd_idx].flags)) {
  2607. /* must have already done this block */
  2608. release_stripe(sh2);
  2609. continue;
  2610. }
  2611. /* place all the copies on one channel */
  2612. init_async_submit(&submit, 0, tx, NULL, NULL, NULL);
  2613. tx = async_memcpy(sh2->dev[dd_idx].page,
  2614. sh->dev[i].page, 0, 0, STRIPE_SIZE,
  2615. &submit);
  2616. set_bit(R5_Expanded, &sh2->dev[dd_idx].flags);
  2617. set_bit(R5_UPTODATE, &sh2->dev[dd_idx].flags);
  2618. for (j = 0; j < conf->raid_disks; j++)
  2619. if (j != sh2->pd_idx &&
  2620. j != sh2->qd_idx &&
  2621. !test_bit(R5_Expanded, &sh2->dev[j].flags))
  2622. break;
  2623. if (j == conf->raid_disks) {
  2624. set_bit(STRIPE_EXPAND_READY, &sh2->state);
  2625. set_bit(STRIPE_HANDLE, &sh2->state);
  2626. }
  2627. release_stripe(sh2);
  2628. }
  2629. /* done submitting copies, wait for them to complete */
  2630. if (tx) {
  2631. async_tx_ack(tx);
  2632. dma_wait_for_async_tx(tx);
  2633. }
  2634. }
  2635. /*
  2636. * handle_stripe - do things to a stripe.
  2637. *
  2638. * We lock the stripe and then examine the state of various bits
  2639. * to see what needs to be done.
  2640. * Possible results:
  2641. * return some read request which now have data
  2642. * return some write requests which are safely on disc
  2643. * schedule a read on some buffers
  2644. * schedule a write of some buffers
  2645. * return confirmation of parity correctness
  2646. *
  2647. * buffers are taken off read_list or write_list, and bh_cache buffers
  2648. * get BH_Lock set before the stripe lock is released.
  2649. *
  2650. */
  2651. static void analyse_stripe(struct stripe_head *sh, struct stripe_head_state *s)
  2652. {
  2653. struct r5conf *conf = sh->raid_conf;
  2654. int disks = sh->disks;
  2655. struct r5dev *dev;
  2656. int i;
  2657. memset(s, 0, sizeof(*s));
  2658. s->syncing = test_bit(STRIPE_SYNCING, &sh->state);
  2659. s->expanding = test_bit(STRIPE_EXPAND_SOURCE, &sh->state);
  2660. s->expanded = test_bit(STRIPE_EXPAND_READY, &sh->state);
  2661. s->failed_num[0] = -1;
  2662. s->failed_num[1] = -1;
  2663. /* Now to look around and see what can be done */
  2664. rcu_read_lock();
  2665. spin_lock_irq(&conf->device_lock);
  2666. for (i=disks; i--; ) {
  2667. struct md_rdev *rdev;
  2668. sector_t first_bad;
  2669. int bad_sectors;
  2670. int is_bad = 0;
  2671. dev = &sh->dev[i];
  2672. pr_debug("check %d: state 0x%lx read %p write %p written %p\n",
  2673. i, dev->flags, dev->toread, dev->towrite, dev->written);
  2674. /* maybe we can reply to a read
  2675. *
  2676. * new wantfill requests are only permitted while
  2677. * ops_complete_biofill is guaranteed to be inactive
  2678. */
  2679. if (test_bit(R5_UPTODATE, &dev->flags) && dev->toread &&
  2680. !test_bit(STRIPE_BIOFILL_RUN, &sh->state))
  2681. set_bit(R5_Wantfill, &dev->flags);
  2682. /* now count some things */
  2683. if (test_bit(R5_LOCKED, &dev->flags))
  2684. s->locked++;
  2685. if (test_bit(R5_UPTODATE, &dev->flags))
  2686. s->uptodate++;
  2687. if (test_bit(R5_Wantcompute, &dev->flags)) {
  2688. s->compute++;
  2689. BUG_ON(s->compute > 2);
  2690. }
  2691. if (test_bit(R5_Wantfill, &dev->flags))
  2692. s->to_fill++;
  2693. else if (dev->toread)
  2694. s->to_read++;
  2695. if (dev->towrite) {
  2696. s->to_write++;
  2697. if (!test_bit(R5_OVERWRITE, &dev->flags))
  2698. s->non_overwrite++;
  2699. }
  2700. if (dev->written)
  2701. s->written++;
  2702. rdev = rcu_dereference(conf->disks[i].rdev);
  2703. if (rdev && test_bit(Faulty, &rdev->flags))
  2704. rdev = NULL;
  2705. if (rdev) {
  2706. is_bad = is_badblock(rdev, sh->sector, STRIPE_SECTORS,
  2707. &first_bad, &bad_sectors);
  2708. if (s->blocked_rdev == NULL
  2709. && (test_bit(Blocked, &rdev->flags)
  2710. || is_bad < 0)) {
  2711. if (is_bad < 0)
  2712. set_bit(BlockedBadBlocks,
  2713. &rdev->flags);
  2714. s->blocked_rdev = rdev;
  2715. atomic_inc(&rdev->nr_pending);
  2716. }
  2717. }
  2718. clear_bit(R5_Insync, &dev->flags);
  2719. if (!rdev)
  2720. /* Not in-sync */;
  2721. else if (is_bad) {
  2722. /* also not in-sync */
  2723. if (!test_bit(WriteErrorSeen, &rdev->flags)) {
  2724. /* treat as in-sync, but with a read error
  2725. * which we can now try to correct
  2726. */
  2727. set_bit(R5_Insync, &dev->flags);
  2728. set_bit(R5_ReadError, &dev->flags);
  2729. }
  2730. } else if (test_bit(In_sync, &rdev->flags))
  2731. set_bit(R5_Insync, &dev->flags);
  2732. else if (sh->sector + STRIPE_SECTORS <= rdev->recovery_offset)
  2733. /* in sync if before recovery_offset */
  2734. set_bit(R5_Insync, &dev->flags);
  2735. else if (test_bit(R5_UPTODATE, &dev->flags) &&
  2736. test_bit(R5_Expanded, &dev->flags))
  2737. /* If we've reshaped into here, we assume it is Insync.
  2738. * We will shortly update recovery_offset to make
  2739. * it official.
  2740. */
  2741. set_bit(R5_Insync, &dev->flags);
  2742. if (rdev && test_bit(R5_WriteError, &dev->flags)) {
  2743. clear_bit(R5_Insync, &dev->flags);
  2744. if (!test_bit(Faulty, &rdev->flags)) {
  2745. s->handle_bad_blocks = 1;
  2746. atomic_inc(&rdev->nr_pending);
  2747. } else
  2748. clear_bit(R5_WriteError, &dev->flags);
  2749. }
  2750. if (rdev && test_bit(R5_MadeGood, &dev->flags)) {
  2751. if (!test_bit(Faulty, &rdev->flags)) {
  2752. s->handle_bad_blocks = 1;
  2753. atomic_inc(&rdev->nr_pending);
  2754. } else
  2755. clear_bit(R5_MadeGood, &dev->flags);
  2756. }
  2757. if (!test_bit(R5_Insync, &dev->flags)) {
  2758. /* The ReadError flag will just be confusing now */
  2759. clear_bit(R5_ReadError, &dev->flags);
  2760. clear_bit(R5_ReWrite, &dev->flags);
  2761. }
  2762. if (test_bit(R5_ReadError, &dev->flags))
  2763. clear_bit(R5_Insync, &dev->flags);
  2764. if (!test_bit(R5_Insync, &dev->flags)) {
  2765. if (s->failed < 2)
  2766. s->failed_num[s->failed] = i;
  2767. s->failed++;
  2768. }
  2769. }
  2770. spin_unlock_irq(&conf->device_lock);
  2771. rcu_read_unlock();
  2772. }
  2773. static void handle_stripe(struct stripe_head *sh)
  2774. {
  2775. struct stripe_head_state s;
  2776. struct r5conf *conf = sh->raid_conf;
  2777. int i;
  2778. int prexor;
  2779. int disks = sh->disks;
  2780. struct r5dev *pdev, *qdev;
  2781. clear_bit(STRIPE_HANDLE, &sh->state);
  2782. if (test_and_set_bit_lock(STRIPE_ACTIVE, &sh->state)) {
  2783. /* already being handled, ensure it gets handled
  2784. * again when current action finishes */
  2785. set_bit(STRIPE_HANDLE, &sh->state);
  2786. return;
  2787. }
  2788. if (test_and_clear_bit(STRIPE_SYNC_REQUESTED, &sh->state)) {
  2789. set_bit(STRIPE_SYNCING, &sh->state);
  2790. clear_bit(STRIPE_INSYNC, &sh->state);
  2791. }
  2792. clear_bit(STRIPE_DELAYED, &sh->state);
  2793. pr_debug("handling stripe %llu, state=%#lx cnt=%d, "
  2794. "pd_idx=%d, qd_idx=%d\n, check:%d, reconstruct:%d\n",
  2795. (unsigned long long)sh->sector, sh->state,
  2796. atomic_read(&sh->count), sh->pd_idx, sh->qd_idx,
  2797. sh->check_state, sh->reconstruct_state);
  2798. analyse_stripe(sh, &s);
  2799. if (s.handle_bad_blocks) {
  2800. set_bit(STRIPE_HANDLE, &sh->state);
  2801. goto finish;
  2802. }
  2803. if (unlikely(s.blocked_rdev)) {
  2804. if (s.syncing || s.expanding || s.expanded ||
  2805. s.to_write || s.written) {
  2806. set_bit(STRIPE_HANDLE, &sh->state);
  2807. goto finish;
  2808. }
  2809. /* There is nothing for the blocked_rdev to block */
  2810. rdev_dec_pending(s.blocked_rdev, conf->mddev);
  2811. s.blocked_rdev = NULL;
  2812. }
  2813. if (s.to_fill && !test_bit(STRIPE_BIOFILL_RUN, &sh->state)) {
  2814. set_bit(STRIPE_OP_BIOFILL, &s.ops_request);
  2815. set_bit(STRIPE_BIOFILL_RUN, &sh->state);
  2816. }
  2817. pr_debug("locked=%d uptodate=%d to_read=%d"
  2818. " to_write=%d failed=%d failed_num=%d,%d\n",
  2819. s.locked, s.uptodate, s.to_read, s.to_write, s.failed,
  2820. s.failed_num[0], s.failed_num[1]);
  2821. /* check if the array has lost more than max_degraded devices and,
  2822. * if so, some requests might need to be failed.
  2823. */
  2824. if (s.failed > conf->max_degraded) {
  2825. sh->check_state = 0;
  2826. sh->reconstruct_state = 0;
  2827. if (s.to_read+s.to_write+s.written)
  2828. handle_failed_stripe(conf, sh, &s, disks, &s.return_bi);
  2829. if (s.syncing)
  2830. handle_failed_sync(conf, sh, &s);
  2831. }
  2832. /*
  2833. * might be able to return some write requests if the parity blocks
  2834. * are safe, or on a failed drive
  2835. */
  2836. pdev = &sh->dev[sh->pd_idx];
  2837. s.p_failed = (s.failed >= 1 && s.failed_num[0] == sh->pd_idx)
  2838. || (s.failed >= 2 && s.failed_num[1] == sh->pd_idx);
  2839. qdev = &sh->dev[sh->qd_idx];
  2840. s.q_failed = (s.failed >= 1 && s.failed_num[0] == sh->qd_idx)
  2841. || (s.failed >= 2 && s.failed_num[1] == sh->qd_idx)
  2842. || conf->level < 6;
  2843. if (s.written &&
  2844. (s.p_failed || ((test_bit(R5_Insync, &pdev->flags)
  2845. && !test_bit(R5_LOCKED, &pdev->flags)
  2846. && test_bit(R5_UPTODATE, &pdev->flags)))) &&
  2847. (s.q_failed || ((test_bit(R5_Insync, &qdev->flags)
  2848. && !test_bit(R5_LOCKED, &qdev->flags)
  2849. && test_bit(R5_UPTODATE, &qdev->flags)))))
  2850. handle_stripe_clean_event(conf, sh, disks, &s.return_bi);
  2851. /* Now we might consider reading some blocks, either to check/generate
  2852. * parity, or to satisfy requests
  2853. * or to load a block that is being partially written.
  2854. */
  2855. if (s.to_read || s.non_overwrite
  2856. || (conf->level == 6 && s.to_write && s.failed)
  2857. || (s.syncing && (s.uptodate + s.compute < disks)) || s.expanding)
  2858. handle_stripe_fill(sh, &s, disks);
  2859. /* Now we check to see if any write operations have recently
  2860. * completed
  2861. */
  2862. prexor = 0;
  2863. if (sh->reconstruct_state == reconstruct_state_prexor_drain_result)
  2864. prexor = 1;
  2865. if (sh->reconstruct_state == reconstruct_state_drain_result ||
  2866. sh->reconstruct_state == reconstruct_state_prexor_drain_result) {
  2867. sh->reconstruct_state = reconstruct_state_idle;
  2868. /* All the 'written' buffers and the parity block are ready to
  2869. * be written back to disk
  2870. */
  2871. BUG_ON(!test_bit(R5_UPTODATE, &sh->dev[sh->pd_idx].flags));
  2872. BUG_ON(sh->qd_idx >= 0 &&
  2873. !test_bit(R5_UPTODATE, &sh->dev[sh->qd_idx].flags));
  2874. for (i = disks; i--; ) {
  2875. struct r5dev *dev = &sh->dev[i];
  2876. if (test_bit(R5_LOCKED, &dev->flags) &&
  2877. (i == sh->pd_idx || i == sh->qd_idx ||
  2878. dev->written)) {
  2879. pr_debug("Writing block %d\n", i);
  2880. set_bit(R5_Wantwrite, &dev->flags);
  2881. if (prexor)
  2882. continue;
  2883. if (!test_bit(R5_Insync, &dev->flags) ||
  2884. ((i == sh->pd_idx || i == sh->qd_idx) &&
  2885. s.failed == 0))
  2886. set_bit(STRIPE_INSYNC, &sh->state);
  2887. }
  2888. }
  2889. if (test_and_clear_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
  2890. s.dec_preread_active = 1;
  2891. }
  2892. /* Now to consider new write requests and what else, if anything
  2893. * should be read. We do not handle new writes when:
  2894. * 1/ A 'write' operation (copy+xor) is already in flight.
  2895. * 2/ A 'check' operation is in flight, as it may clobber the parity
  2896. * block.
  2897. */
  2898. if (s.to_write && !sh->reconstruct_state && !sh->check_state)
  2899. handle_stripe_dirtying(conf, sh, &s, disks);
  2900. /* maybe we need to check and possibly fix the parity for this stripe
  2901. * Any reads will already have been scheduled, so we just see if enough
  2902. * data is available. The parity check is held off while parity
  2903. * dependent operations are in flight.
  2904. */
  2905. if (sh->check_state ||
  2906. (s.syncing && s.locked == 0 &&
  2907. !test_bit(STRIPE_COMPUTE_RUN, &sh->state) &&
  2908. !test_bit(STRIPE_INSYNC, &sh->state))) {
  2909. if (conf->level == 6)
  2910. handle_parity_checks6(conf, sh, &s, disks);
  2911. else
  2912. handle_parity_checks5(conf, sh, &s, disks);
  2913. }
  2914. if (s.syncing && s.locked == 0 && test_bit(STRIPE_INSYNC, &sh->state)) {
  2915. md_done_sync(conf->mddev, STRIPE_SECTORS, 1);
  2916. clear_bit(STRIPE_SYNCING, &sh->state);
  2917. }
  2918. /* If the failed drives are just a ReadError, then we might need
  2919. * to progress the repair/check process
  2920. */
  2921. if (s.failed <= conf->max_degraded && !conf->mddev->ro)
  2922. for (i = 0; i < s.failed; i++) {
  2923. struct r5dev *dev = &sh->dev[s.failed_num[i]];
  2924. if (test_bit(R5_ReadError, &dev->flags)
  2925. && !test_bit(R5_LOCKED, &dev->flags)
  2926. && test_bit(R5_UPTODATE, &dev->flags)
  2927. ) {
  2928. if (!test_bit(R5_ReWrite, &dev->flags)) {
  2929. set_bit(R5_Wantwrite, &dev->flags);
  2930. set_bit(R5_ReWrite, &dev->flags);
  2931. set_bit(R5_LOCKED, &dev->flags);
  2932. s.locked++;
  2933. } else {
  2934. /* let's read it back */
  2935. set_bit(R5_Wantread, &dev->flags);
  2936. set_bit(R5_LOCKED, &dev->flags);
  2937. s.locked++;
  2938. }
  2939. }
  2940. }
  2941. /* Finish reconstruct operations initiated by the expansion process */
  2942. if (sh->reconstruct_state == reconstruct_state_result) {
  2943. struct stripe_head *sh_src
  2944. = get_active_stripe(conf, sh->sector, 1, 1, 1);
  2945. if (sh_src && test_bit(STRIPE_EXPAND_SOURCE, &sh_src->state)) {
  2946. /* sh cannot be written until sh_src has been read.
  2947. * so arrange for sh to be delayed a little
  2948. */
  2949. set_bit(STRIPE_DELAYED, &sh->state);
  2950. set_bit(STRIPE_HANDLE, &sh->state);
  2951. if (!test_and_set_bit(STRIPE_PREREAD_ACTIVE,
  2952. &sh_src->state))
  2953. atomic_inc(&conf->preread_active_stripes);
  2954. release_stripe(sh_src);
  2955. goto finish;
  2956. }
  2957. if (sh_src)
  2958. release_stripe(sh_src);
  2959. sh->reconstruct_state = reconstruct_state_idle;
  2960. clear_bit(STRIPE_EXPANDING, &sh->state);
  2961. for (i = conf->raid_disks; i--; ) {
  2962. set_bit(R5_Wantwrite, &sh->dev[i].flags);
  2963. set_bit(R5_LOCKED, &sh->dev[i].flags);
  2964. s.locked++;
  2965. }
  2966. }
  2967. if (s.expanded && test_bit(STRIPE_EXPANDING, &sh->state) &&
  2968. !sh->reconstruct_state) {
  2969. /* Need to write out all blocks after computing parity */
  2970. sh->disks = conf->raid_disks;
  2971. stripe_set_idx(sh->sector, conf, 0, sh);
  2972. schedule_reconstruction(sh, &s, 1, 1);
  2973. } else if (s.expanded && !sh->reconstruct_state && s.locked == 0) {
  2974. clear_bit(STRIPE_EXPAND_READY, &sh->state);
  2975. atomic_dec(&conf->reshape_stripes);
  2976. wake_up(&conf->wait_for_overlap);
  2977. md_done_sync(conf->mddev, STRIPE_SECTORS, 1);
  2978. }
  2979. if (s.expanding && s.locked == 0 &&
  2980. !test_bit(STRIPE_COMPUTE_RUN, &sh->state))
  2981. handle_stripe_expansion(conf, sh);
  2982. finish:
  2983. /* wait for this device to become unblocked */
  2984. if (conf->mddev->external && unlikely(s.blocked_rdev))
  2985. md_wait_for_blocked_rdev(s.blocked_rdev, conf->mddev);
  2986. if (s.handle_bad_blocks)
  2987. for (i = disks; i--; ) {
  2988. struct md_rdev *rdev;
  2989. struct r5dev *dev = &sh->dev[i];
  2990. if (test_and_clear_bit(R5_WriteError, &dev->flags)) {
  2991. /* We own a safe reference to the rdev */
  2992. rdev = conf->disks[i].rdev;
  2993. if (!rdev_set_badblocks(rdev, sh->sector,
  2994. STRIPE_SECTORS, 0))
  2995. md_error(conf->mddev, rdev);
  2996. rdev_dec_pending(rdev, conf->mddev);
  2997. }
  2998. if (test_and_clear_bit(R5_MadeGood, &dev->flags)) {
  2999. rdev = conf->disks[i].rdev;
  3000. rdev_clear_badblocks(rdev, sh->sector,
  3001. STRIPE_SECTORS);
  3002. rdev_dec_pending(rdev, conf->mddev);
  3003. }
  3004. }
  3005. if (s.ops_request)
  3006. raid_run_ops(sh, s.ops_request);
  3007. ops_run_io(sh, &s);
  3008. if (s.dec_preread_active) {
  3009. /* We delay this until after ops_run_io so that if make_request
  3010. * is waiting on a flush, it won't continue until the writes
  3011. * have actually been submitted.
  3012. */
  3013. atomic_dec(&conf->preread_active_stripes);
  3014. if (atomic_read(&conf->preread_active_stripes) <
  3015. IO_THRESHOLD)
  3016. md_wakeup_thread(conf->mddev->thread);
  3017. }
  3018. return_io(s.return_bi);
  3019. clear_bit_unlock(STRIPE_ACTIVE, &sh->state);
  3020. }
  3021. static void raid5_activate_delayed(struct r5conf *conf)
  3022. {
  3023. if (atomic_read(&conf->preread_active_stripes) < IO_THRESHOLD) {
  3024. while (!list_empty(&conf->delayed_list)) {
  3025. struct list_head *l = conf->delayed_list.next;
  3026. struct stripe_head *sh;
  3027. sh = list_entry(l, struct stripe_head, lru);
  3028. list_del_init(l);
  3029. clear_bit(STRIPE_DELAYED, &sh->state);
  3030. if (!test_and_set_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
  3031. atomic_inc(&conf->preread_active_stripes);
  3032. list_add_tail(&sh->lru, &conf->hold_list);
  3033. }
  3034. }
  3035. }
  3036. static void activate_bit_delay(struct r5conf *conf)
  3037. {
  3038. /* device_lock is held */
  3039. struct list_head head;
  3040. list_add(&head, &conf->bitmap_list);
  3041. list_del_init(&conf->bitmap_list);
  3042. while (!list_empty(&head)) {
  3043. struct stripe_head *sh = list_entry(head.next, struct stripe_head, lru);
  3044. list_del_init(&sh->lru);
  3045. atomic_inc(&sh->count);
  3046. __release_stripe(conf, sh);
  3047. }
  3048. }
  3049. int md_raid5_congested(struct mddev *mddev, int bits)
  3050. {
  3051. struct r5conf *conf = mddev->private;
  3052. /* No difference between reads and writes. Just check
  3053. * how busy the stripe_cache is
  3054. */
  3055. if (conf->inactive_blocked)
  3056. return 1;
  3057. if (conf->quiesce)
  3058. return 1;
  3059. if (list_empty_careful(&conf->inactive_list))
  3060. return 1;
  3061. return 0;
  3062. }
  3063. EXPORT_SYMBOL_GPL(md_raid5_congested);
  3064. static int raid5_congested(void *data, int bits)
  3065. {
  3066. struct mddev *mddev = data;
  3067. return mddev_congested(mddev, bits) ||
  3068. md_raid5_congested(mddev, bits);
  3069. }
  3070. /* We want read requests to align with chunks where possible,
  3071. * but write requests don't need to.
  3072. */
  3073. static int raid5_mergeable_bvec(struct request_queue *q,
  3074. struct bvec_merge_data *bvm,
  3075. struct bio_vec *biovec)
  3076. {
  3077. struct mddev *mddev = q->queuedata;
  3078. sector_t sector = bvm->bi_sector + get_start_sect(bvm->bi_bdev);
  3079. int max;
  3080. unsigned int chunk_sectors = mddev->chunk_sectors;
  3081. unsigned int bio_sectors = bvm->bi_size >> 9;
  3082. if ((bvm->bi_rw & 1) == WRITE)
  3083. return biovec->bv_len; /* always allow writes to be mergeable */
  3084. if (mddev->new_chunk_sectors < mddev->chunk_sectors)
  3085. chunk_sectors = mddev->new_chunk_sectors;
  3086. max = (chunk_sectors - ((sector & (chunk_sectors - 1)) + bio_sectors)) << 9;
  3087. if (max < 0) max = 0;
  3088. if (max <= biovec->bv_len && bio_sectors == 0)
  3089. return biovec->bv_len;
  3090. else
  3091. return max;
  3092. }
  3093. static int in_chunk_boundary(struct mddev *mddev, struct bio *bio)
  3094. {
  3095. sector_t sector = bio->bi_sector + get_start_sect(bio->bi_bdev);
  3096. unsigned int chunk_sectors = mddev->chunk_sectors;
  3097. unsigned int bio_sectors = bio->bi_size >> 9;
  3098. if (mddev->new_chunk_sectors < mddev->chunk_sectors)
  3099. chunk_sectors = mddev->new_chunk_sectors;
  3100. return chunk_sectors >=
  3101. ((sector & (chunk_sectors - 1)) + bio_sectors);
  3102. }
  3103. /*
  3104. * add bio to the retry LIFO ( in O(1) ... we are in interrupt )
  3105. * later sampled by raid5d.
  3106. */
  3107. static void add_bio_to_retry(struct bio *bi,struct r5conf *conf)
  3108. {
  3109. unsigned long flags;
  3110. spin_lock_irqsave(&conf->device_lock, flags);
  3111. bi->bi_next = conf->retry_read_aligned_list;
  3112. conf->retry_read_aligned_list = bi;
  3113. spin_unlock_irqrestore(&conf->device_lock, flags);
  3114. md_wakeup_thread(conf->mddev->thread);
  3115. }
  3116. static struct bio *remove_bio_from_retry(struct r5conf *conf)
  3117. {
  3118. struct bio *bi;
  3119. bi = conf->retry_read_aligned;
  3120. if (bi) {
  3121. conf->retry_read_aligned = NULL;
  3122. return bi;
  3123. }
  3124. bi = conf->retry_read_aligned_list;
  3125. if(bi) {
  3126. conf->retry_read_aligned_list = bi->bi_next;
  3127. bi->bi_next = NULL;
  3128. /*
  3129. * this sets the active strip count to 1 and the processed
  3130. * strip count to zero (upper 8 bits)
  3131. */
  3132. bi->bi_phys_segments = 1; /* biased count of active stripes */
  3133. }
  3134. return bi;
  3135. }
  3136. /*
  3137. * The "raid5_align_endio" should check if the read succeeded and if it
  3138. * did, call bio_endio on the original bio (having bio_put the new bio
  3139. * first).
  3140. * If the read failed..
  3141. */
  3142. static void raid5_align_endio(struct bio *bi, int error)
  3143. {
  3144. struct bio* raid_bi = bi->bi_private;
  3145. struct mddev *mddev;
  3146. struct r5conf *conf;
  3147. int uptodate = test_bit(BIO_UPTODATE, &bi->bi_flags);
  3148. struct md_rdev *rdev;
  3149. bio_put(bi);
  3150. rdev = (void*)raid_bi->bi_next;
  3151. raid_bi->bi_next = NULL;
  3152. mddev = rdev->mddev;
  3153. conf = mddev->private;
  3154. rdev_dec_pending(rdev, conf->mddev);
  3155. if (!error && uptodate) {
  3156. bio_endio(raid_bi, 0);
  3157. if (atomic_dec_and_test(&conf->active_aligned_reads))
  3158. wake_up(&conf->wait_for_stripe);
  3159. return;
  3160. }
  3161. pr_debug("raid5_align_endio : io error...handing IO for a retry\n");
  3162. add_bio_to_retry(raid_bi, conf);
  3163. }
  3164. static int bio_fits_rdev(struct bio *bi)
  3165. {
  3166. struct request_queue *q = bdev_get_queue(bi->bi_bdev);
  3167. if ((bi->bi_size>>9) > queue_max_sectors(q))
  3168. return 0;
  3169. blk_recount_segments(q, bi);
  3170. if (bi->bi_phys_segments > queue_max_segments(q))
  3171. return 0;
  3172. if (q->merge_bvec_fn)
  3173. /* it's too hard to apply the merge_bvec_fn at this stage,
  3174. * just just give up
  3175. */
  3176. return 0;
  3177. return 1;
  3178. }
  3179. static int chunk_aligned_read(struct mddev *mddev, struct bio * raid_bio)
  3180. {
  3181. struct r5conf *conf = mddev->private;
  3182. int dd_idx;
  3183. struct bio* align_bi;
  3184. struct md_rdev *rdev;
  3185. sector_t end_sector;
  3186. if (!in_chunk_boundary(mddev, raid_bio)) {
  3187. pr_debug("chunk_aligned_read : non aligned\n");
  3188. return 0;
  3189. }
  3190. /*
  3191. * use bio_clone_mddev to make a copy of the bio
  3192. */
  3193. align_bi = bio_clone_mddev(raid_bio, GFP_NOIO, mddev);
  3194. if (!align_bi)
  3195. return 0;
  3196. /*
  3197. * set bi_end_io to a new function, and set bi_private to the
  3198. * original bio.
  3199. */
  3200. align_bi->bi_end_io = raid5_align_endio;
  3201. align_bi->bi_private = raid_bio;
  3202. /*
  3203. * compute position
  3204. */
  3205. align_bi->bi_sector = raid5_compute_sector(conf, raid_bio->bi_sector,
  3206. 0,
  3207. &dd_idx, NULL);
  3208. end_sector = align_bi->bi_sector + (align_bi->bi_size >> 9);
  3209. rcu_read_lock();
  3210. rdev = rcu_dereference(conf->disks[dd_idx].replacement);
  3211. if (!rdev || test_bit(Faulty, &rdev->flags) ||
  3212. rdev->recovery_offset < end_sector) {
  3213. rdev = rcu_dereference(conf->disks[dd_idx].rdev);
  3214. if (rdev &&
  3215. (test_bit(Faulty, &rdev->flags) ||
  3216. !(test_bit(In_sync, &rdev->flags) ||
  3217. rdev->recovery_offset >= end_sector)))
  3218. rdev = NULL;
  3219. }
  3220. if (rdev) {
  3221. sector_t first_bad;
  3222. int bad_sectors;
  3223. atomic_inc(&rdev->nr_pending);
  3224. rcu_read_unlock();
  3225. raid_bio->bi_next = (void*)rdev;
  3226. align_bi->bi_bdev = rdev->bdev;
  3227. align_bi->bi_flags &= ~(1 << BIO_SEG_VALID);
  3228. align_bi->bi_sector += rdev->data_offset;
  3229. if (!bio_fits_rdev(align_bi) ||
  3230. is_badblock(rdev, align_bi->bi_sector, align_bi->bi_size>>9,
  3231. &first_bad, &bad_sectors)) {
  3232. /* too big in some way, or has a known bad block */
  3233. bio_put(align_bi);
  3234. rdev_dec_pending(rdev, mddev);
  3235. return 0;
  3236. }
  3237. spin_lock_irq(&conf->device_lock);
  3238. wait_event_lock_irq(conf->wait_for_stripe,
  3239. conf->quiesce == 0,
  3240. conf->device_lock, /* nothing */);
  3241. atomic_inc(&conf->active_aligned_reads);
  3242. spin_unlock_irq(&conf->device_lock);
  3243. generic_make_request(align_bi);
  3244. return 1;
  3245. } else {
  3246. rcu_read_unlock();
  3247. bio_put(align_bi);
  3248. return 0;
  3249. }
  3250. }
  3251. /* __get_priority_stripe - get the next stripe to process
  3252. *
  3253. * Full stripe writes are allowed to pass preread active stripes up until
  3254. * the bypass_threshold is exceeded. In general the bypass_count
  3255. * increments when the handle_list is handled before the hold_list; however, it
  3256. * will not be incremented when STRIPE_IO_STARTED is sampled set signifying a
  3257. * stripe with in flight i/o. The bypass_count will be reset when the
  3258. * head of the hold_list has changed, i.e. the head was promoted to the
  3259. * handle_list.
  3260. */
  3261. static struct stripe_head *__get_priority_stripe(struct r5conf *conf)
  3262. {
  3263. struct stripe_head *sh;
  3264. pr_debug("%s: handle: %s hold: %s full_writes: %d bypass_count: %d\n",
  3265. __func__,
  3266. list_empty(&conf->handle_list) ? "empty" : "busy",
  3267. list_empty(&conf->hold_list) ? "empty" : "busy",
  3268. atomic_read(&conf->pending_full_writes), conf->bypass_count);
  3269. if (!list_empty(&conf->handle_list)) {
  3270. sh = list_entry(conf->handle_list.next, typeof(*sh), lru);
  3271. if (list_empty(&conf->hold_list))
  3272. conf->bypass_count = 0;
  3273. else if (!test_bit(STRIPE_IO_STARTED, &sh->state)) {
  3274. if (conf->hold_list.next == conf->last_hold)
  3275. conf->bypass_count++;
  3276. else {
  3277. conf->last_hold = conf->hold_list.next;
  3278. conf->bypass_count -= conf->bypass_threshold;
  3279. if (conf->bypass_count < 0)
  3280. conf->bypass_count = 0;
  3281. }
  3282. }
  3283. } else if (!list_empty(&conf->hold_list) &&
  3284. ((conf->bypass_threshold &&
  3285. conf->bypass_count > conf->bypass_threshold) ||
  3286. atomic_read(&conf->pending_full_writes) == 0)) {
  3287. sh = list_entry(conf->hold_list.next,
  3288. typeof(*sh), lru);
  3289. conf->bypass_count -= conf->bypass_threshold;
  3290. if (conf->bypass_count < 0)
  3291. conf->bypass_count = 0;
  3292. } else
  3293. return NULL;
  3294. list_del_init(&sh->lru);
  3295. atomic_inc(&sh->count);
  3296. BUG_ON(atomic_read(&sh->count) != 1);
  3297. return sh;
  3298. }
  3299. static void make_request(struct mddev *mddev, struct bio * bi)
  3300. {
  3301. struct r5conf *conf = mddev->private;
  3302. int dd_idx;
  3303. sector_t new_sector;
  3304. sector_t logical_sector, last_sector;
  3305. struct stripe_head *sh;
  3306. const int rw = bio_data_dir(bi);
  3307. int remaining;
  3308. int plugged;
  3309. if (unlikely(bi->bi_rw & REQ_FLUSH)) {
  3310. md_flush_request(mddev, bi);
  3311. return;
  3312. }
  3313. md_write_start(mddev, bi);
  3314. if (rw == READ &&
  3315. mddev->reshape_position == MaxSector &&
  3316. chunk_aligned_read(mddev,bi))
  3317. return;
  3318. logical_sector = bi->bi_sector & ~((sector_t)STRIPE_SECTORS-1);
  3319. last_sector = bi->bi_sector + (bi->bi_size>>9);
  3320. bi->bi_next = NULL;
  3321. bi->bi_phys_segments = 1; /* over-loaded to count active stripes */
  3322. plugged = mddev_check_plugged(mddev);
  3323. for (;logical_sector < last_sector; logical_sector += STRIPE_SECTORS) {
  3324. DEFINE_WAIT(w);
  3325. int disks, data_disks;
  3326. int previous;
  3327. retry:
  3328. previous = 0;
  3329. disks = conf->raid_disks;
  3330. prepare_to_wait(&conf->wait_for_overlap, &w, TASK_UNINTERRUPTIBLE);
  3331. if (unlikely(conf->reshape_progress != MaxSector)) {
  3332. /* spinlock is needed as reshape_progress may be
  3333. * 64bit on a 32bit platform, and so it might be
  3334. * possible to see a half-updated value
  3335. * Of course reshape_progress could change after
  3336. * the lock is dropped, so once we get a reference
  3337. * to the stripe that we think it is, we will have
  3338. * to check again.
  3339. */
  3340. spin_lock_irq(&conf->device_lock);
  3341. if (mddev->delta_disks < 0
  3342. ? logical_sector < conf->reshape_progress
  3343. : logical_sector >= conf->reshape_progress) {
  3344. disks = conf->previous_raid_disks;
  3345. previous = 1;
  3346. } else {
  3347. if (mddev->delta_disks < 0
  3348. ? logical_sector < conf->reshape_safe
  3349. : logical_sector >= conf->reshape_safe) {
  3350. spin_unlock_irq(&conf->device_lock);
  3351. schedule();
  3352. goto retry;
  3353. }
  3354. }
  3355. spin_unlock_irq(&conf->device_lock);
  3356. }
  3357. data_disks = disks - conf->max_degraded;
  3358. new_sector = raid5_compute_sector(conf, logical_sector,
  3359. previous,
  3360. &dd_idx, NULL);
  3361. pr_debug("raid456: make_request, sector %llu logical %llu\n",
  3362. (unsigned long long)new_sector,
  3363. (unsigned long long)logical_sector);
  3364. sh = get_active_stripe(conf, new_sector, previous,
  3365. (bi->bi_rw&RWA_MASK), 0);
  3366. if (sh) {
  3367. if (unlikely(previous)) {
  3368. /* expansion might have moved on while waiting for a
  3369. * stripe, so we must do the range check again.
  3370. * Expansion could still move past after this
  3371. * test, but as we are holding a reference to
  3372. * 'sh', we know that if that happens,
  3373. * STRIPE_EXPANDING will get set and the expansion
  3374. * won't proceed until we finish with the stripe.
  3375. */
  3376. int must_retry = 0;
  3377. spin_lock_irq(&conf->device_lock);
  3378. if (mddev->delta_disks < 0
  3379. ? logical_sector >= conf->reshape_progress
  3380. : logical_sector < conf->reshape_progress)
  3381. /* mismatch, need to try again */
  3382. must_retry = 1;
  3383. spin_unlock_irq(&conf->device_lock);
  3384. if (must_retry) {
  3385. release_stripe(sh);
  3386. schedule();
  3387. goto retry;
  3388. }
  3389. }
  3390. if (rw == WRITE &&
  3391. logical_sector >= mddev->suspend_lo &&
  3392. logical_sector < mddev->suspend_hi) {
  3393. release_stripe(sh);
  3394. /* As the suspend_* range is controlled by
  3395. * userspace, we want an interruptible
  3396. * wait.
  3397. */
  3398. flush_signals(current);
  3399. prepare_to_wait(&conf->wait_for_overlap,
  3400. &w, TASK_INTERRUPTIBLE);
  3401. if (logical_sector >= mddev->suspend_lo &&
  3402. logical_sector < mddev->suspend_hi)
  3403. schedule();
  3404. goto retry;
  3405. }
  3406. if (test_bit(STRIPE_EXPANDING, &sh->state) ||
  3407. !add_stripe_bio(sh, bi, dd_idx, rw)) {
  3408. /* Stripe is busy expanding or
  3409. * add failed due to overlap. Flush everything
  3410. * and wait a while
  3411. */
  3412. md_wakeup_thread(mddev->thread);
  3413. release_stripe(sh);
  3414. schedule();
  3415. goto retry;
  3416. }
  3417. finish_wait(&conf->wait_for_overlap, &w);
  3418. set_bit(STRIPE_HANDLE, &sh->state);
  3419. clear_bit(STRIPE_DELAYED, &sh->state);
  3420. if ((bi->bi_rw & REQ_SYNC) &&
  3421. !test_and_set_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
  3422. atomic_inc(&conf->preread_active_stripes);
  3423. release_stripe(sh);
  3424. } else {
  3425. /* cannot get stripe for read-ahead, just give-up */
  3426. clear_bit(BIO_UPTODATE, &bi->bi_flags);
  3427. finish_wait(&conf->wait_for_overlap, &w);
  3428. break;
  3429. }
  3430. }
  3431. if (!plugged)
  3432. md_wakeup_thread(mddev->thread);
  3433. spin_lock_irq(&conf->device_lock);
  3434. remaining = raid5_dec_bi_phys_segments(bi);
  3435. spin_unlock_irq(&conf->device_lock);
  3436. if (remaining == 0) {
  3437. if ( rw == WRITE )
  3438. md_write_end(mddev);
  3439. bio_endio(bi, 0);
  3440. }
  3441. }
  3442. static sector_t raid5_size(struct mddev *mddev, sector_t sectors, int raid_disks);
  3443. static sector_t reshape_request(struct mddev *mddev, sector_t sector_nr, int *skipped)
  3444. {
  3445. /* reshaping is quite different to recovery/resync so it is
  3446. * handled quite separately ... here.
  3447. *
  3448. * On each call to sync_request, we gather one chunk worth of
  3449. * destination stripes and flag them as expanding.
  3450. * Then we find all the source stripes and request reads.
  3451. * As the reads complete, handle_stripe will copy the data
  3452. * into the destination stripe and release that stripe.
  3453. */
  3454. struct r5conf *conf = mddev->private;
  3455. struct stripe_head *sh;
  3456. sector_t first_sector, last_sector;
  3457. int raid_disks = conf->previous_raid_disks;
  3458. int data_disks = raid_disks - conf->max_degraded;
  3459. int new_data_disks = conf->raid_disks - conf->max_degraded;
  3460. int i;
  3461. int dd_idx;
  3462. sector_t writepos, readpos, safepos;
  3463. sector_t stripe_addr;
  3464. int reshape_sectors;
  3465. struct list_head stripes;
  3466. if (sector_nr == 0) {
  3467. /* If restarting in the middle, skip the initial sectors */
  3468. if (mddev->delta_disks < 0 &&
  3469. conf->reshape_progress < raid5_size(mddev, 0, 0)) {
  3470. sector_nr = raid5_size(mddev, 0, 0)
  3471. - conf->reshape_progress;
  3472. } else if (mddev->delta_disks >= 0 &&
  3473. conf->reshape_progress > 0)
  3474. sector_nr = conf->reshape_progress;
  3475. sector_div(sector_nr, new_data_disks);
  3476. if (sector_nr) {
  3477. mddev->curr_resync_completed = sector_nr;
  3478. sysfs_notify(&mddev->kobj, NULL, "sync_completed");
  3479. *skipped = 1;
  3480. return sector_nr;
  3481. }
  3482. }
  3483. /* We need to process a full chunk at a time.
  3484. * If old and new chunk sizes differ, we need to process the
  3485. * largest of these
  3486. */
  3487. if (mddev->new_chunk_sectors > mddev->chunk_sectors)
  3488. reshape_sectors = mddev->new_chunk_sectors;
  3489. else
  3490. reshape_sectors = mddev->chunk_sectors;
  3491. /* we update the metadata when there is more than 3Meg
  3492. * in the block range (that is rather arbitrary, should
  3493. * probably be time based) or when the data about to be
  3494. * copied would over-write the source of the data at
  3495. * the front of the range.
  3496. * i.e. one new_stripe along from reshape_progress new_maps
  3497. * to after where reshape_safe old_maps to
  3498. */
  3499. writepos = conf->reshape_progress;
  3500. sector_div(writepos, new_data_disks);
  3501. readpos = conf->reshape_progress;
  3502. sector_div(readpos, data_disks);
  3503. safepos = conf->reshape_safe;
  3504. sector_div(safepos, data_disks);
  3505. if (mddev->delta_disks < 0) {
  3506. writepos -= min_t(sector_t, reshape_sectors, writepos);
  3507. readpos += reshape_sectors;
  3508. safepos += reshape_sectors;
  3509. } else {
  3510. writepos += reshape_sectors;
  3511. readpos -= min_t(sector_t, reshape_sectors, readpos);
  3512. safepos -= min_t(sector_t, reshape_sectors, safepos);
  3513. }
  3514. /* 'writepos' is the most advanced device address we might write.
  3515. * 'readpos' is the least advanced device address we might read.
  3516. * 'safepos' is the least address recorded in the metadata as having
  3517. * been reshaped.
  3518. * If 'readpos' is behind 'writepos', then there is no way that we can
  3519. * ensure safety in the face of a crash - that must be done by userspace
  3520. * making a backup of the data. So in that case there is no particular
  3521. * rush to update metadata.
  3522. * Otherwise if 'safepos' is behind 'writepos', then we really need to
  3523. * update the metadata to advance 'safepos' to match 'readpos' so that
  3524. * we can be safe in the event of a crash.
  3525. * So we insist on updating metadata if safepos is behind writepos and
  3526. * readpos is beyond writepos.
  3527. * In any case, update the metadata every 10 seconds.
  3528. * Maybe that number should be configurable, but I'm not sure it is
  3529. * worth it.... maybe it could be a multiple of safemode_delay???
  3530. */
  3531. if ((mddev->delta_disks < 0
  3532. ? (safepos > writepos && readpos < writepos)
  3533. : (safepos < writepos && readpos > writepos)) ||
  3534. time_after(jiffies, conf->reshape_checkpoint + 10*HZ)) {
  3535. /* Cannot proceed until we've updated the superblock... */
  3536. wait_event(conf->wait_for_overlap,
  3537. atomic_read(&conf->reshape_stripes)==0);
  3538. mddev->reshape_position = conf->reshape_progress;
  3539. mddev->curr_resync_completed = sector_nr;
  3540. conf->reshape_checkpoint = jiffies;
  3541. set_bit(MD_CHANGE_DEVS, &mddev->flags);
  3542. md_wakeup_thread(mddev->thread);
  3543. wait_event(mddev->sb_wait, mddev->flags == 0 ||
  3544. kthread_should_stop());
  3545. spin_lock_irq(&conf->device_lock);
  3546. conf->reshape_safe = mddev->reshape_position;
  3547. spin_unlock_irq(&conf->device_lock);
  3548. wake_up(&conf->wait_for_overlap);
  3549. sysfs_notify(&mddev->kobj, NULL, "sync_completed");
  3550. }
  3551. if (mddev->delta_disks < 0) {
  3552. BUG_ON(conf->reshape_progress == 0);
  3553. stripe_addr = writepos;
  3554. BUG_ON((mddev->dev_sectors &
  3555. ~((sector_t)reshape_sectors - 1))
  3556. - reshape_sectors - stripe_addr
  3557. != sector_nr);
  3558. } else {
  3559. BUG_ON(writepos != sector_nr + reshape_sectors);
  3560. stripe_addr = sector_nr;
  3561. }
  3562. INIT_LIST_HEAD(&stripes);
  3563. for (i = 0; i < reshape_sectors; i += STRIPE_SECTORS) {
  3564. int j;
  3565. int skipped_disk = 0;
  3566. sh = get_active_stripe(conf, stripe_addr+i, 0, 0, 1);
  3567. set_bit(STRIPE_EXPANDING, &sh->state);
  3568. atomic_inc(&conf->reshape_stripes);
  3569. /* If any of this stripe is beyond the end of the old
  3570. * array, then we need to zero those blocks
  3571. */
  3572. for (j=sh->disks; j--;) {
  3573. sector_t s;
  3574. if (j == sh->pd_idx)
  3575. continue;
  3576. if (conf->level == 6 &&
  3577. j == sh->qd_idx)
  3578. continue;
  3579. s = compute_blocknr(sh, j, 0);
  3580. if (s < raid5_size(mddev, 0, 0)) {
  3581. skipped_disk = 1;
  3582. continue;
  3583. }
  3584. memset(page_address(sh->dev[j].page), 0, STRIPE_SIZE);
  3585. set_bit(R5_Expanded, &sh->dev[j].flags);
  3586. set_bit(R5_UPTODATE, &sh->dev[j].flags);
  3587. }
  3588. if (!skipped_disk) {
  3589. set_bit(STRIPE_EXPAND_READY, &sh->state);
  3590. set_bit(STRIPE_HANDLE, &sh->state);
  3591. }
  3592. list_add(&sh->lru, &stripes);
  3593. }
  3594. spin_lock_irq(&conf->device_lock);
  3595. if (mddev->delta_disks < 0)
  3596. conf->reshape_progress -= reshape_sectors * new_data_disks;
  3597. else
  3598. conf->reshape_progress += reshape_sectors * new_data_disks;
  3599. spin_unlock_irq(&conf->device_lock);
  3600. /* Ok, those stripe are ready. We can start scheduling
  3601. * reads on the source stripes.
  3602. * The source stripes are determined by mapping the first and last
  3603. * block on the destination stripes.
  3604. */
  3605. first_sector =
  3606. raid5_compute_sector(conf, stripe_addr*(new_data_disks),
  3607. 1, &dd_idx, NULL);
  3608. last_sector =
  3609. raid5_compute_sector(conf, ((stripe_addr+reshape_sectors)
  3610. * new_data_disks - 1),
  3611. 1, &dd_idx, NULL);
  3612. if (last_sector >= mddev->dev_sectors)
  3613. last_sector = mddev->dev_sectors - 1;
  3614. while (first_sector <= last_sector) {
  3615. sh = get_active_stripe(conf, first_sector, 1, 0, 1);
  3616. set_bit(STRIPE_EXPAND_SOURCE, &sh->state);
  3617. set_bit(STRIPE_HANDLE, &sh->state);
  3618. release_stripe(sh);
  3619. first_sector += STRIPE_SECTORS;
  3620. }
  3621. /* Now that the sources are clearly marked, we can release
  3622. * the destination stripes
  3623. */
  3624. while (!list_empty(&stripes)) {
  3625. sh = list_entry(stripes.next, struct stripe_head, lru);
  3626. list_del_init(&sh->lru);
  3627. release_stripe(sh);
  3628. }
  3629. /* If this takes us to the resync_max point where we have to pause,
  3630. * then we need to write out the superblock.
  3631. */
  3632. sector_nr += reshape_sectors;
  3633. if ((sector_nr - mddev->curr_resync_completed) * 2
  3634. >= mddev->resync_max - mddev->curr_resync_completed) {
  3635. /* Cannot proceed until we've updated the superblock... */
  3636. wait_event(conf->wait_for_overlap,
  3637. atomic_read(&conf->reshape_stripes) == 0);
  3638. mddev->reshape_position = conf->reshape_progress;
  3639. mddev->curr_resync_completed = sector_nr;
  3640. conf->reshape_checkpoint = jiffies;
  3641. set_bit(MD_CHANGE_DEVS, &mddev->flags);
  3642. md_wakeup_thread(mddev->thread);
  3643. wait_event(mddev->sb_wait,
  3644. !test_bit(MD_CHANGE_DEVS, &mddev->flags)
  3645. || kthread_should_stop());
  3646. spin_lock_irq(&conf->device_lock);
  3647. conf->reshape_safe = mddev->reshape_position;
  3648. spin_unlock_irq(&conf->device_lock);
  3649. wake_up(&conf->wait_for_overlap);
  3650. sysfs_notify(&mddev->kobj, NULL, "sync_completed");
  3651. }
  3652. return reshape_sectors;
  3653. }
  3654. /* FIXME go_faster isn't used */
  3655. static inline sector_t sync_request(struct mddev *mddev, sector_t sector_nr, int *skipped, int go_faster)
  3656. {
  3657. struct r5conf *conf = mddev->private;
  3658. struct stripe_head *sh;
  3659. sector_t max_sector = mddev->dev_sectors;
  3660. sector_t sync_blocks;
  3661. int still_degraded = 0;
  3662. int i;
  3663. if (sector_nr >= max_sector) {
  3664. /* just being told to finish up .. nothing much to do */
  3665. if (test_bit(MD_RECOVERY_RESHAPE, &mddev->recovery)) {
  3666. end_reshape(conf);
  3667. return 0;
  3668. }
  3669. if (mddev->curr_resync < max_sector) /* aborted */
  3670. bitmap_end_sync(mddev->bitmap, mddev->curr_resync,
  3671. &sync_blocks, 1);
  3672. else /* completed sync */
  3673. conf->fullsync = 0;
  3674. bitmap_close_sync(mddev->bitmap);
  3675. return 0;
  3676. }
  3677. /* Allow raid5_quiesce to complete */
  3678. wait_event(conf->wait_for_overlap, conf->quiesce != 2);
  3679. if (test_bit(MD_RECOVERY_RESHAPE, &mddev->recovery))
  3680. return reshape_request(mddev, sector_nr, skipped);
  3681. /* No need to check resync_max as we never do more than one
  3682. * stripe, and as resync_max will always be on a chunk boundary,
  3683. * if the check in md_do_sync didn't fire, there is no chance
  3684. * of overstepping resync_max here
  3685. */
  3686. /* if there is too many failed drives and we are trying
  3687. * to resync, then assert that we are finished, because there is
  3688. * nothing we can do.
  3689. */
  3690. if (mddev->degraded >= conf->max_degraded &&
  3691. test_bit(MD_RECOVERY_SYNC, &mddev->recovery)) {
  3692. sector_t rv = mddev->dev_sectors - sector_nr;
  3693. *skipped = 1;
  3694. return rv;
  3695. }
  3696. if (!bitmap_start_sync(mddev->bitmap, sector_nr, &sync_blocks, 1) &&
  3697. !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery) &&
  3698. !conf->fullsync && sync_blocks >= STRIPE_SECTORS) {
  3699. /* we can skip this block, and probably more */
  3700. sync_blocks /= STRIPE_SECTORS;
  3701. *skipped = 1;
  3702. return sync_blocks * STRIPE_SECTORS; /* keep things rounded to whole stripes */
  3703. }
  3704. bitmap_cond_end_sync(mddev->bitmap, sector_nr);
  3705. sh = get_active_stripe(conf, sector_nr, 0, 1, 0);
  3706. if (sh == NULL) {
  3707. sh = get_active_stripe(conf, sector_nr, 0, 0, 0);
  3708. /* make sure we don't swamp the stripe cache if someone else
  3709. * is trying to get access
  3710. */
  3711. schedule_timeout_uninterruptible(1);
  3712. }
  3713. /* Need to check if array will still be degraded after recovery/resync
  3714. * We don't need to check the 'failed' flag as when that gets set,
  3715. * recovery aborts.
  3716. */
  3717. for (i = 0; i < conf->raid_disks; i++)
  3718. if (conf->disks[i].rdev == NULL)
  3719. still_degraded = 1;
  3720. bitmap_start_sync(mddev->bitmap, sector_nr, &sync_blocks, still_degraded);
  3721. set_bit(STRIPE_SYNC_REQUESTED, &sh->state);
  3722. handle_stripe(sh);
  3723. release_stripe(sh);
  3724. return STRIPE_SECTORS;
  3725. }
  3726. static int retry_aligned_read(struct r5conf *conf, struct bio *raid_bio)
  3727. {
  3728. /* We may not be able to submit a whole bio at once as there
  3729. * may not be enough stripe_heads available.
  3730. * We cannot pre-allocate enough stripe_heads as we may need
  3731. * more than exist in the cache (if we allow ever large chunks).
  3732. * So we do one stripe head at a time and record in
  3733. * ->bi_hw_segments how many have been done.
  3734. *
  3735. * We *know* that this entire raid_bio is in one chunk, so
  3736. * it will be only one 'dd_idx' and only need one call to raid5_compute_sector.
  3737. */
  3738. struct stripe_head *sh;
  3739. int dd_idx;
  3740. sector_t sector, logical_sector, last_sector;
  3741. int scnt = 0;
  3742. int remaining;
  3743. int handled = 0;
  3744. logical_sector = raid_bio->bi_sector & ~((sector_t)STRIPE_SECTORS-1);
  3745. sector = raid5_compute_sector(conf, logical_sector,
  3746. 0, &dd_idx, NULL);
  3747. last_sector = raid_bio->bi_sector + (raid_bio->bi_size>>9);
  3748. for (; logical_sector < last_sector;
  3749. logical_sector += STRIPE_SECTORS,
  3750. sector += STRIPE_SECTORS,
  3751. scnt++) {
  3752. if (scnt < raid5_bi_hw_segments(raid_bio))
  3753. /* already done this stripe */
  3754. continue;
  3755. sh = get_active_stripe(conf, sector, 0, 1, 0);
  3756. if (!sh) {
  3757. /* failed to get a stripe - must wait */
  3758. raid5_set_bi_hw_segments(raid_bio, scnt);
  3759. conf->retry_read_aligned = raid_bio;
  3760. return handled;
  3761. }
  3762. set_bit(R5_ReadError, &sh->dev[dd_idx].flags);
  3763. if (!add_stripe_bio(sh, raid_bio, dd_idx, 0)) {
  3764. release_stripe(sh);
  3765. raid5_set_bi_hw_segments(raid_bio, scnt);
  3766. conf->retry_read_aligned = raid_bio;
  3767. return handled;
  3768. }
  3769. handle_stripe(sh);
  3770. release_stripe(sh);
  3771. handled++;
  3772. }
  3773. spin_lock_irq(&conf->device_lock);
  3774. remaining = raid5_dec_bi_phys_segments(raid_bio);
  3775. spin_unlock_irq(&conf->device_lock);
  3776. if (remaining == 0)
  3777. bio_endio(raid_bio, 0);
  3778. if (atomic_dec_and_test(&conf->active_aligned_reads))
  3779. wake_up(&conf->wait_for_stripe);
  3780. return handled;
  3781. }
  3782. /*
  3783. * This is our raid5 kernel thread.
  3784. *
  3785. * We scan the hash table for stripes which can be handled now.
  3786. * During the scan, completed stripes are saved for us by the interrupt
  3787. * handler, so that they will not have to wait for our next wakeup.
  3788. */
  3789. static void raid5d(struct mddev *mddev)
  3790. {
  3791. struct stripe_head *sh;
  3792. struct r5conf *conf = mddev->private;
  3793. int handled;
  3794. struct blk_plug plug;
  3795. pr_debug("+++ raid5d active\n");
  3796. md_check_recovery(mddev);
  3797. blk_start_plug(&plug);
  3798. handled = 0;
  3799. spin_lock_irq(&conf->device_lock);
  3800. while (1) {
  3801. struct bio *bio;
  3802. if (atomic_read(&mddev->plug_cnt) == 0 &&
  3803. !list_empty(&conf->bitmap_list)) {
  3804. /* Now is a good time to flush some bitmap updates */
  3805. conf->seq_flush++;
  3806. spin_unlock_irq(&conf->device_lock);
  3807. bitmap_unplug(mddev->bitmap);
  3808. spin_lock_irq(&conf->device_lock);
  3809. conf->seq_write = conf->seq_flush;
  3810. activate_bit_delay(conf);
  3811. }
  3812. if (atomic_read(&mddev->plug_cnt) == 0)
  3813. raid5_activate_delayed(conf);
  3814. while ((bio = remove_bio_from_retry(conf))) {
  3815. int ok;
  3816. spin_unlock_irq(&conf->device_lock);
  3817. ok = retry_aligned_read(conf, bio);
  3818. spin_lock_irq(&conf->device_lock);
  3819. if (!ok)
  3820. break;
  3821. handled++;
  3822. }
  3823. sh = __get_priority_stripe(conf);
  3824. if (!sh)
  3825. break;
  3826. spin_unlock_irq(&conf->device_lock);
  3827. handled++;
  3828. handle_stripe(sh);
  3829. release_stripe(sh);
  3830. cond_resched();
  3831. if (mddev->flags & ~(1<<MD_CHANGE_PENDING))
  3832. md_check_recovery(mddev);
  3833. spin_lock_irq(&conf->device_lock);
  3834. }
  3835. pr_debug("%d stripes handled\n", handled);
  3836. spin_unlock_irq(&conf->device_lock);
  3837. async_tx_issue_pending_all();
  3838. blk_finish_plug(&plug);
  3839. pr_debug("--- raid5d inactive\n");
  3840. }
  3841. static ssize_t
  3842. raid5_show_stripe_cache_size(struct mddev *mddev, char *page)
  3843. {
  3844. struct r5conf *conf = mddev->private;
  3845. if (conf)
  3846. return sprintf(page, "%d\n", conf->max_nr_stripes);
  3847. else
  3848. return 0;
  3849. }
  3850. int
  3851. raid5_set_cache_size(struct mddev *mddev, int size)
  3852. {
  3853. struct r5conf *conf = mddev->private;
  3854. int err;
  3855. if (size <= 16 || size > 32768)
  3856. return -EINVAL;
  3857. while (size < conf->max_nr_stripes) {
  3858. if (drop_one_stripe(conf))
  3859. conf->max_nr_stripes--;
  3860. else
  3861. break;
  3862. }
  3863. err = md_allow_write(mddev);
  3864. if (err)
  3865. return err;
  3866. while (size > conf->max_nr_stripes) {
  3867. if (grow_one_stripe(conf))
  3868. conf->max_nr_stripes++;
  3869. else break;
  3870. }
  3871. return 0;
  3872. }
  3873. EXPORT_SYMBOL(raid5_set_cache_size);
  3874. static ssize_t
  3875. raid5_store_stripe_cache_size(struct mddev *mddev, const char *page, size_t len)
  3876. {
  3877. struct r5conf *conf = mddev->private;
  3878. unsigned long new;
  3879. int err;
  3880. if (len >= PAGE_SIZE)
  3881. return -EINVAL;
  3882. if (!conf)
  3883. return -ENODEV;
  3884. if (strict_strtoul(page, 10, &new))
  3885. return -EINVAL;
  3886. err = raid5_set_cache_size(mddev, new);
  3887. if (err)
  3888. return err;
  3889. return len;
  3890. }
  3891. static struct md_sysfs_entry
  3892. raid5_stripecache_size = __ATTR(stripe_cache_size, S_IRUGO | S_IWUSR,
  3893. raid5_show_stripe_cache_size,
  3894. raid5_store_stripe_cache_size);
  3895. static ssize_t
  3896. raid5_show_preread_threshold(struct mddev *mddev, char *page)
  3897. {
  3898. struct r5conf *conf = mddev->private;
  3899. if (conf)
  3900. return sprintf(page, "%d\n", conf->bypass_threshold);
  3901. else
  3902. return 0;
  3903. }
  3904. static ssize_t
  3905. raid5_store_preread_threshold(struct mddev *mddev, const char *page, size_t len)
  3906. {
  3907. struct r5conf *conf = mddev->private;
  3908. unsigned long new;
  3909. if (len >= PAGE_SIZE)
  3910. return -EINVAL;
  3911. if (!conf)
  3912. return -ENODEV;
  3913. if (strict_strtoul(page, 10, &new))
  3914. return -EINVAL;
  3915. if (new > conf->max_nr_stripes)
  3916. return -EINVAL;
  3917. conf->bypass_threshold = new;
  3918. return len;
  3919. }
  3920. static struct md_sysfs_entry
  3921. raid5_preread_bypass_threshold = __ATTR(preread_bypass_threshold,
  3922. S_IRUGO | S_IWUSR,
  3923. raid5_show_preread_threshold,
  3924. raid5_store_preread_threshold);
  3925. static ssize_t
  3926. stripe_cache_active_show(struct mddev *mddev, char *page)
  3927. {
  3928. struct r5conf *conf = mddev->private;
  3929. if (conf)
  3930. return sprintf(page, "%d\n", atomic_read(&conf->active_stripes));
  3931. else
  3932. return 0;
  3933. }
  3934. static struct md_sysfs_entry
  3935. raid5_stripecache_active = __ATTR_RO(stripe_cache_active);
  3936. static struct attribute *raid5_attrs[] = {
  3937. &raid5_stripecache_size.attr,
  3938. &raid5_stripecache_active.attr,
  3939. &raid5_preread_bypass_threshold.attr,
  3940. NULL,
  3941. };
  3942. static struct attribute_group raid5_attrs_group = {
  3943. .name = NULL,
  3944. .attrs = raid5_attrs,
  3945. };
  3946. static sector_t
  3947. raid5_size(struct mddev *mddev, sector_t sectors, int raid_disks)
  3948. {
  3949. struct r5conf *conf = mddev->private;
  3950. if (!sectors)
  3951. sectors = mddev->dev_sectors;
  3952. if (!raid_disks)
  3953. /* size is defined by the smallest of previous and new size */
  3954. raid_disks = min(conf->raid_disks, conf->previous_raid_disks);
  3955. sectors &= ~((sector_t)mddev->chunk_sectors - 1);
  3956. sectors &= ~((sector_t)mddev->new_chunk_sectors - 1);
  3957. return sectors * (raid_disks - conf->max_degraded);
  3958. }
  3959. static void raid5_free_percpu(struct r5conf *conf)
  3960. {
  3961. struct raid5_percpu *percpu;
  3962. unsigned long cpu;
  3963. if (!conf->percpu)
  3964. return;
  3965. get_online_cpus();
  3966. for_each_possible_cpu(cpu) {
  3967. percpu = per_cpu_ptr(conf->percpu, cpu);
  3968. safe_put_page(percpu->spare_page);
  3969. kfree(percpu->scribble);
  3970. }
  3971. #ifdef CONFIG_HOTPLUG_CPU
  3972. unregister_cpu_notifier(&conf->cpu_notify);
  3973. #endif
  3974. put_online_cpus();
  3975. free_percpu(conf->percpu);
  3976. }
  3977. static void free_conf(struct r5conf *conf)
  3978. {
  3979. shrink_stripes(conf);
  3980. raid5_free_percpu(conf);
  3981. kfree(conf->disks);
  3982. kfree(conf->stripe_hashtbl);
  3983. kfree(conf);
  3984. }
  3985. #ifdef CONFIG_HOTPLUG_CPU
  3986. static int raid456_cpu_notify(struct notifier_block *nfb, unsigned long action,
  3987. void *hcpu)
  3988. {
  3989. struct r5conf *conf = container_of(nfb, struct r5conf, cpu_notify);
  3990. long cpu = (long)hcpu;
  3991. struct raid5_percpu *percpu = per_cpu_ptr(conf->percpu, cpu);
  3992. switch (action) {
  3993. case CPU_UP_PREPARE:
  3994. case CPU_UP_PREPARE_FROZEN:
  3995. if (conf->level == 6 && !percpu->spare_page)
  3996. percpu->spare_page = alloc_page(GFP_KERNEL);
  3997. if (!percpu->scribble)
  3998. percpu->scribble = kmalloc(conf->scribble_len, GFP_KERNEL);
  3999. if (!percpu->scribble ||
  4000. (conf->level == 6 && !percpu->spare_page)) {
  4001. safe_put_page(percpu->spare_page);
  4002. kfree(percpu->scribble);
  4003. pr_err("%s: failed memory allocation for cpu%ld\n",
  4004. __func__, cpu);
  4005. return notifier_from_errno(-ENOMEM);
  4006. }
  4007. break;
  4008. case CPU_DEAD:
  4009. case CPU_DEAD_FROZEN:
  4010. safe_put_page(percpu->spare_page);
  4011. kfree(percpu->scribble);
  4012. percpu->spare_page = NULL;
  4013. percpu->scribble = NULL;
  4014. break;
  4015. default:
  4016. break;
  4017. }
  4018. return NOTIFY_OK;
  4019. }
  4020. #endif
  4021. static int raid5_alloc_percpu(struct r5conf *conf)
  4022. {
  4023. unsigned long cpu;
  4024. struct page *spare_page;
  4025. struct raid5_percpu __percpu *allcpus;
  4026. void *scribble;
  4027. int err;
  4028. allcpus = alloc_percpu(struct raid5_percpu);
  4029. if (!allcpus)
  4030. return -ENOMEM;
  4031. conf->percpu = allcpus;
  4032. get_online_cpus();
  4033. err = 0;
  4034. for_each_present_cpu(cpu) {
  4035. if (conf->level == 6) {
  4036. spare_page = alloc_page(GFP_KERNEL);
  4037. if (!spare_page) {
  4038. err = -ENOMEM;
  4039. break;
  4040. }
  4041. per_cpu_ptr(conf->percpu, cpu)->spare_page = spare_page;
  4042. }
  4043. scribble = kmalloc(conf->scribble_len, GFP_KERNEL);
  4044. if (!scribble) {
  4045. err = -ENOMEM;
  4046. break;
  4047. }
  4048. per_cpu_ptr(conf->percpu, cpu)->scribble = scribble;
  4049. }
  4050. #ifdef CONFIG_HOTPLUG_CPU
  4051. conf->cpu_notify.notifier_call = raid456_cpu_notify;
  4052. conf->cpu_notify.priority = 0;
  4053. if (err == 0)
  4054. err = register_cpu_notifier(&conf->cpu_notify);
  4055. #endif
  4056. put_online_cpus();
  4057. return err;
  4058. }
  4059. static struct r5conf *setup_conf(struct mddev *mddev)
  4060. {
  4061. struct r5conf *conf;
  4062. int raid_disk, memory, max_disks;
  4063. struct md_rdev *rdev;
  4064. struct disk_info *disk;
  4065. if (mddev->new_level != 5
  4066. && mddev->new_level != 4
  4067. && mddev->new_level != 6) {
  4068. printk(KERN_ERR "md/raid:%s: raid level not set to 4/5/6 (%d)\n",
  4069. mdname(mddev), mddev->new_level);
  4070. return ERR_PTR(-EIO);
  4071. }
  4072. if ((mddev->new_level == 5
  4073. && !algorithm_valid_raid5(mddev->new_layout)) ||
  4074. (mddev->new_level == 6
  4075. && !algorithm_valid_raid6(mddev->new_layout))) {
  4076. printk(KERN_ERR "md/raid:%s: layout %d not supported\n",
  4077. mdname(mddev), mddev->new_layout);
  4078. return ERR_PTR(-EIO);
  4079. }
  4080. if (mddev->new_level == 6 && mddev->raid_disks < 4) {
  4081. printk(KERN_ERR "md/raid:%s: not enough configured devices (%d, minimum 4)\n",
  4082. mdname(mddev), mddev->raid_disks);
  4083. return ERR_PTR(-EINVAL);
  4084. }
  4085. if (!mddev->new_chunk_sectors ||
  4086. (mddev->new_chunk_sectors << 9) % PAGE_SIZE ||
  4087. !is_power_of_2(mddev->new_chunk_sectors)) {
  4088. printk(KERN_ERR "md/raid:%s: invalid chunk size %d\n",
  4089. mdname(mddev), mddev->new_chunk_sectors << 9);
  4090. return ERR_PTR(-EINVAL);
  4091. }
  4092. conf = kzalloc(sizeof(struct r5conf), GFP_KERNEL);
  4093. if (conf == NULL)
  4094. goto abort;
  4095. spin_lock_init(&conf->device_lock);
  4096. init_waitqueue_head(&conf->wait_for_stripe);
  4097. init_waitqueue_head(&conf->wait_for_overlap);
  4098. INIT_LIST_HEAD(&conf->handle_list);
  4099. INIT_LIST_HEAD(&conf->hold_list);
  4100. INIT_LIST_HEAD(&conf->delayed_list);
  4101. INIT_LIST_HEAD(&conf->bitmap_list);
  4102. INIT_LIST_HEAD(&conf->inactive_list);
  4103. atomic_set(&conf->active_stripes, 0);
  4104. atomic_set(&conf->preread_active_stripes, 0);
  4105. atomic_set(&conf->active_aligned_reads, 0);
  4106. conf->bypass_threshold = BYPASS_THRESHOLD;
  4107. conf->recovery_disabled = mddev->recovery_disabled - 1;
  4108. conf->raid_disks = mddev->raid_disks;
  4109. if (mddev->reshape_position == MaxSector)
  4110. conf->previous_raid_disks = mddev->raid_disks;
  4111. else
  4112. conf->previous_raid_disks = mddev->raid_disks - mddev->delta_disks;
  4113. max_disks = max(conf->raid_disks, conf->previous_raid_disks);
  4114. conf->scribble_len = scribble_len(max_disks);
  4115. conf->disks = kzalloc(max_disks * sizeof(struct disk_info),
  4116. GFP_KERNEL);
  4117. if (!conf->disks)
  4118. goto abort;
  4119. conf->mddev = mddev;
  4120. if ((conf->stripe_hashtbl = kzalloc(PAGE_SIZE, GFP_KERNEL)) == NULL)
  4121. goto abort;
  4122. conf->level = mddev->new_level;
  4123. if (raid5_alloc_percpu(conf) != 0)
  4124. goto abort;
  4125. pr_debug("raid456: run(%s) called.\n", mdname(mddev));
  4126. list_for_each_entry(rdev, &mddev->disks, same_set) {
  4127. raid_disk = rdev->raid_disk;
  4128. if (raid_disk >= max_disks
  4129. || raid_disk < 0)
  4130. continue;
  4131. disk = conf->disks + raid_disk;
  4132. disk->rdev = rdev;
  4133. if (test_bit(In_sync, &rdev->flags)) {
  4134. char b[BDEVNAME_SIZE];
  4135. printk(KERN_INFO "md/raid:%s: device %s operational as raid"
  4136. " disk %d\n",
  4137. mdname(mddev), bdevname(rdev->bdev, b), raid_disk);
  4138. } else if (rdev->saved_raid_disk != raid_disk)
  4139. /* Cannot rely on bitmap to complete recovery */
  4140. conf->fullsync = 1;
  4141. }
  4142. conf->chunk_sectors = mddev->new_chunk_sectors;
  4143. conf->level = mddev->new_level;
  4144. if (conf->level == 6)
  4145. conf->max_degraded = 2;
  4146. else
  4147. conf->max_degraded = 1;
  4148. conf->algorithm = mddev->new_layout;
  4149. conf->max_nr_stripes = NR_STRIPES;
  4150. conf->reshape_progress = mddev->reshape_position;
  4151. if (conf->reshape_progress != MaxSector) {
  4152. conf->prev_chunk_sectors = mddev->chunk_sectors;
  4153. conf->prev_algo = mddev->layout;
  4154. }
  4155. memory = conf->max_nr_stripes * (sizeof(struct stripe_head) +
  4156. max_disks * ((sizeof(struct bio) + PAGE_SIZE))) / 1024;
  4157. if (grow_stripes(conf, conf->max_nr_stripes)) {
  4158. printk(KERN_ERR
  4159. "md/raid:%s: couldn't allocate %dkB for buffers\n",
  4160. mdname(mddev), memory);
  4161. goto abort;
  4162. } else
  4163. printk(KERN_INFO "md/raid:%s: allocated %dkB\n",
  4164. mdname(mddev), memory);
  4165. conf->thread = md_register_thread(raid5d, mddev, NULL);
  4166. if (!conf->thread) {
  4167. printk(KERN_ERR
  4168. "md/raid:%s: couldn't allocate thread.\n",
  4169. mdname(mddev));
  4170. goto abort;
  4171. }
  4172. return conf;
  4173. abort:
  4174. if (conf) {
  4175. free_conf(conf);
  4176. return ERR_PTR(-EIO);
  4177. } else
  4178. return ERR_PTR(-ENOMEM);
  4179. }
  4180. static int only_parity(int raid_disk, int algo, int raid_disks, int max_degraded)
  4181. {
  4182. switch (algo) {
  4183. case ALGORITHM_PARITY_0:
  4184. if (raid_disk < max_degraded)
  4185. return 1;
  4186. break;
  4187. case ALGORITHM_PARITY_N:
  4188. if (raid_disk >= raid_disks - max_degraded)
  4189. return 1;
  4190. break;
  4191. case ALGORITHM_PARITY_0_6:
  4192. if (raid_disk == 0 ||
  4193. raid_disk == raid_disks - 1)
  4194. return 1;
  4195. break;
  4196. case ALGORITHM_LEFT_ASYMMETRIC_6:
  4197. case ALGORITHM_RIGHT_ASYMMETRIC_6:
  4198. case ALGORITHM_LEFT_SYMMETRIC_6:
  4199. case ALGORITHM_RIGHT_SYMMETRIC_6:
  4200. if (raid_disk == raid_disks - 1)
  4201. return 1;
  4202. }
  4203. return 0;
  4204. }
  4205. static int run(struct mddev *mddev)
  4206. {
  4207. struct r5conf *conf;
  4208. int working_disks = 0;
  4209. int dirty_parity_disks = 0;
  4210. struct md_rdev *rdev;
  4211. sector_t reshape_offset = 0;
  4212. if (mddev->recovery_cp != MaxSector)
  4213. printk(KERN_NOTICE "md/raid:%s: not clean"
  4214. " -- starting background reconstruction\n",
  4215. mdname(mddev));
  4216. if (mddev->reshape_position != MaxSector) {
  4217. /* Check that we can continue the reshape.
  4218. * Currently only disks can change, it must
  4219. * increase, and we must be past the point where
  4220. * a stripe over-writes itself
  4221. */
  4222. sector_t here_new, here_old;
  4223. int old_disks;
  4224. int max_degraded = (mddev->level == 6 ? 2 : 1);
  4225. if (mddev->new_level != mddev->level) {
  4226. printk(KERN_ERR "md/raid:%s: unsupported reshape "
  4227. "required - aborting.\n",
  4228. mdname(mddev));
  4229. return -EINVAL;
  4230. }
  4231. old_disks = mddev->raid_disks - mddev->delta_disks;
  4232. /* reshape_position must be on a new-stripe boundary, and one
  4233. * further up in new geometry must map after here in old
  4234. * geometry.
  4235. */
  4236. here_new = mddev->reshape_position;
  4237. if (sector_div(here_new, mddev->new_chunk_sectors *
  4238. (mddev->raid_disks - max_degraded))) {
  4239. printk(KERN_ERR "md/raid:%s: reshape_position not "
  4240. "on a stripe boundary\n", mdname(mddev));
  4241. return -EINVAL;
  4242. }
  4243. reshape_offset = here_new * mddev->new_chunk_sectors;
  4244. /* here_new is the stripe we will write to */
  4245. here_old = mddev->reshape_position;
  4246. sector_div(here_old, mddev->chunk_sectors *
  4247. (old_disks-max_degraded));
  4248. /* here_old is the first stripe that we might need to read
  4249. * from */
  4250. if (mddev->delta_disks == 0) {
  4251. /* We cannot be sure it is safe to start an in-place
  4252. * reshape. It is only safe if user-space if monitoring
  4253. * and taking constant backups.
  4254. * mdadm always starts a situation like this in
  4255. * readonly mode so it can take control before
  4256. * allowing any writes. So just check for that.
  4257. */
  4258. if ((here_new * mddev->new_chunk_sectors !=
  4259. here_old * mddev->chunk_sectors) ||
  4260. mddev->ro == 0) {
  4261. printk(KERN_ERR "md/raid:%s: in-place reshape must be started"
  4262. " in read-only mode - aborting\n",
  4263. mdname(mddev));
  4264. return -EINVAL;
  4265. }
  4266. } else if (mddev->delta_disks < 0
  4267. ? (here_new * mddev->new_chunk_sectors <=
  4268. here_old * mddev->chunk_sectors)
  4269. : (here_new * mddev->new_chunk_sectors >=
  4270. here_old * mddev->chunk_sectors)) {
  4271. /* Reading from the same stripe as writing to - bad */
  4272. printk(KERN_ERR "md/raid:%s: reshape_position too early for "
  4273. "auto-recovery - aborting.\n",
  4274. mdname(mddev));
  4275. return -EINVAL;
  4276. }
  4277. printk(KERN_INFO "md/raid:%s: reshape will continue\n",
  4278. mdname(mddev));
  4279. /* OK, we should be able to continue; */
  4280. } else {
  4281. BUG_ON(mddev->level != mddev->new_level);
  4282. BUG_ON(mddev->layout != mddev->new_layout);
  4283. BUG_ON(mddev->chunk_sectors != mddev->new_chunk_sectors);
  4284. BUG_ON(mddev->delta_disks != 0);
  4285. }
  4286. if (mddev->private == NULL)
  4287. conf = setup_conf(mddev);
  4288. else
  4289. conf = mddev->private;
  4290. if (IS_ERR(conf))
  4291. return PTR_ERR(conf);
  4292. mddev->thread = conf->thread;
  4293. conf->thread = NULL;
  4294. mddev->private = conf;
  4295. /*
  4296. * 0 for a fully functional array, 1 or 2 for a degraded array.
  4297. */
  4298. list_for_each_entry(rdev, &mddev->disks, same_set) {
  4299. if (rdev->raid_disk < 0)
  4300. continue;
  4301. if (test_bit(In_sync, &rdev->flags)) {
  4302. working_disks++;
  4303. continue;
  4304. }
  4305. /* This disc is not fully in-sync. However if it
  4306. * just stored parity (beyond the recovery_offset),
  4307. * when we don't need to be concerned about the
  4308. * array being dirty.
  4309. * When reshape goes 'backwards', we never have
  4310. * partially completed devices, so we only need
  4311. * to worry about reshape going forwards.
  4312. */
  4313. /* Hack because v0.91 doesn't store recovery_offset properly. */
  4314. if (mddev->major_version == 0 &&
  4315. mddev->minor_version > 90)
  4316. rdev->recovery_offset = reshape_offset;
  4317. if (rdev->recovery_offset < reshape_offset) {
  4318. /* We need to check old and new layout */
  4319. if (!only_parity(rdev->raid_disk,
  4320. conf->algorithm,
  4321. conf->raid_disks,
  4322. conf->max_degraded))
  4323. continue;
  4324. }
  4325. if (!only_parity(rdev->raid_disk,
  4326. conf->prev_algo,
  4327. conf->previous_raid_disks,
  4328. conf->max_degraded))
  4329. continue;
  4330. dirty_parity_disks++;
  4331. }
  4332. mddev->degraded = calc_degraded(conf);
  4333. if (has_failed(conf)) {
  4334. printk(KERN_ERR "md/raid:%s: not enough operational devices"
  4335. " (%d/%d failed)\n",
  4336. mdname(mddev), mddev->degraded, conf->raid_disks);
  4337. goto abort;
  4338. }
  4339. /* device size must be a multiple of chunk size */
  4340. mddev->dev_sectors &= ~(mddev->chunk_sectors - 1);
  4341. mddev->resync_max_sectors = mddev->dev_sectors;
  4342. if (mddev->degraded > dirty_parity_disks &&
  4343. mddev->recovery_cp != MaxSector) {
  4344. if (mddev->ok_start_degraded)
  4345. printk(KERN_WARNING
  4346. "md/raid:%s: starting dirty degraded array"
  4347. " - data corruption possible.\n",
  4348. mdname(mddev));
  4349. else {
  4350. printk(KERN_ERR
  4351. "md/raid:%s: cannot start dirty degraded array.\n",
  4352. mdname(mddev));
  4353. goto abort;
  4354. }
  4355. }
  4356. if (mddev->degraded == 0)
  4357. printk(KERN_INFO "md/raid:%s: raid level %d active with %d out of %d"
  4358. " devices, algorithm %d\n", mdname(mddev), conf->level,
  4359. mddev->raid_disks-mddev->degraded, mddev->raid_disks,
  4360. mddev->new_layout);
  4361. else
  4362. printk(KERN_ALERT "md/raid:%s: raid level %d active with %d"
  4363. " out of %d devices, algorithm %d\n",
  4364. mdname(mddev), conf->level,
  4365. mddev->raid_disks - mddev->degraded,
  4366. mddev->raid_disks, mddev->new_layout);
  4367. print_raid5_conf(conf);
  4368. if (conf->reshape_progress != MaxSector) {
  4369. conf->reshape_safe = conf->reshape_progress;
  4370. atomic_set(&conf->reshape_stripes, 0);
  4371. clear_bit(MD_RECOVERY_SYNC, &mddev->recovery);
  4372. clear_bit(MD_RECOVERY_CHECK, &mddev->recovery);
  4373. set_bit(MD_RECOVERY_RESHAPE, &mddev->recovery);
  4374. set_bit(MD_RECOVERY_RUNNING, &mddev->recovery);
  4375. mddev->sync_thread = md_register_thread(md_do_sync, mddev,
  4376. "reshape");
  4377. }
  4378. /* Ok, everything is just fine now */
  4379. if (mddev->to_remove == &raid5_attrs_group)
  4380. mddev->to_remove = NULL;
  4381. else if (mddev->kobj.sd &&
  4382. sysfs_create_group(&mddev->kobj, &raid5_attrs_group))
  4383. printk(KERN_WARNING
  4384. "raid5: failed to create sysfs attributes for %s\n",
  4385. mdname(mddev));
  4386. md_set_array_sectors(mddev, raid5_size(mddev, 0, 0));
  4387. if (mddev->queue) {
  4388. int chunk_size;
  4389. /* read-ahead size must cover two whole stripes, which
  4390. * is 2 * (datadisks) * chunksize where 'n' is the
  4391. * number of raid devices
  4392. */
  4393. int data_disks = conf->previous_raid_disks - conf->max_degraded;
  4394. int stripe = data_disks *
  4395. ((mddev->chunk_sectors << 9) / PAGE_SIZE);
  4396. if (mddev->queue->backing_dev_info.ra_pages < 2 * stripe)
  4397. mddev->queue->backing_dev_info.ra_pages = 2 * stripe;
  4398. blk_queue_merge_bvec(mddev->queue, raid5_mergeable_bvec);
  4399. mddev->queue->backing_dev_info.congested_data = mddev;
  4400. mddev->queue->backing_dev_info.congested_fn = raid5_congested;
  4401. chunk_size = mddev->chunk_sectors << 9;
  4402. blk_queue_io_min(mddev->queue, chunk_size);
  4403. blk_queue_io_opt(mddev->queue, chunk_size *
  4404. (conf->raid_disks - conf->max_degraded));
  4405. list_for_each_entry(rdev, &mddev->disks, same_set)
  4406. disk_stack_limits(mddev->gendisk, rdev->bdev,
  4407. rdev->data_offset << 9);
  4408. }
  4409. return 0;
  4410. abort:
  4411. md_unregister_thread(&mddev->thread);
  4412. print_raid5_conf(conf);
  4413. free_conf(conf);
  4414. mddev->private = NULL;
  4415. printk(KERN_ALERT "md/raid:%s: failed to run raid set.\n", mdname(mddev));
  4416. return -EIO;
  4417. }
  4418. static int stop(struct mddev *mddev)
  4419. {
  4420. struct r5conf *conf = mddev->private;
  4421. md_unregister_thread(&mddev->thread);
  4422. if (mddev->queue)
  4423. mddev->queue->backing_dev_info.congested_fn = NULL;
  4424. free_conf(conf);
  4425. mddev->private = NULL;
  4426. mddev->to_remove = &raid5_attrs_group;
  4427. return 0;
  4428. }
  4429. static void status(struct seq_file *seq, struct mddev *mddev)
  4430. {
  4431. struct r5conf *conf = mddev->private;
  4432. int i;
  4433. seq_printf(seq, " level %d, %dk chunk, algorithm %d", mddev->level,
  4434. mddev->chunk_sectors / 2, mddev->layout);
  4435. seq_printf (seq, " [%d/%d] [", conf->raid_disks, conf->raid_disks - mddev->degraded);
  4436. for (i = 0; i < conf->raid_disks; i++)
  4437. seq_printf (seq, "%s",
  4438. conf->disks[i].rdev &&
  4439. test_bit(In_sync, &conf->disks[i].rdev->flags) ? "U" : "_");
  4440. seq_printf (seq, "]");
  4441. }
  4442. static void print_raid5_conf (struct r5conf *conf)
  4443. {
  4444. int i;
  4445. struct disk_info *tmp;
  4446. printk(KERN_DEBUG "RAID conf printout:\n");
  4447. if (!conf) {
  4448. printk("(conf==NULL)\n");
  4449. return;
  4450. }
  4451. printk(KERN_DEBUG " --- level:%d rd:%d wd:%d\n", conf->level,
  4452. conf->raid_disks,
  4453. conf->raid_disks - conf->mddev->degraded);
  4454. for (i = 0; i < conf->raid_disks; i++) {
  4455. char b[BDEVNAME_SIZE];
  4456. tmp = conf->disks + i;
  4457. if (tmp->rdev)
  4458. printk(KERN_DEBUG " disk %d, o:%d, dev:%s\n",
  4459. i, !test_bit(Faulty, &tmp->rdev->flags),
  4460. bdevname(tmp->rdev->bdev, b));
  4461. }
  4462. }
  4463. static int raid5_spare_active(struct mddev *mddev)
  4464. {
  4465. int i;
  4466. struct r5conf *conf = mddev->private;
  4467. struct disk_info *tmp;
  4468. int count = 0;
  4469. unsigned long flags;
  4470. for (i = 0; i < conf->raid_disks; i++) {
  4471. tmp = conf->disks + i;
  4472. if (tmp->rdev
  4473. && tmp->rdev->recovery_offset == MaxSector
  4474. && !test_bit(Faulty, &tmp->rdev->flags)
  4475. && !test_and_set_bit(In_sync, &tmp->rdev->flags)) {
  4476. count++;
  4477. sysfs_notify_dirent_safe(tmp->rdev->sysfs_state);
  4478. }
  4479. }
  4480. spin_lock_irqsave(&conf->device_lock, flags);
  4481. mddev->degraded = calc_degraded(conf);
  4482. spin_unlock_irqrestore(&conf->device_lock, flags);
  4483. print_raid5_conf(conf);
  4484. return count;
  4485. }
  4486. static int raid5_remove_disk(struct mddev *mddev, struct md_rdev *rdev)
  4487. {
  4488. struct r5conf *conf = mddev->private;
  4489. int err = 0;
  4490. int number = rdev->raid_disk;
  4491. struct disk_info *p = conf->disks + number;
  4492. print_raid5_conf(conf);
  4493. if (rdev == p->rdev) {
  4494. if (number >= conf->raid_disks &&
  4495. conf->reshape_progress == MaxSector)
  4496. clear_bit(In_sync, &rdev->flags);
  4497. if (test_bit(In_sync, &rdev->flags) ||
  4498. atomic_read(&rdev->nr_pending)) {
  4499. err = -EBUSY;
  4500. goto abort;
  4501. }
  4502. /* Only remove non-faulty devices if recovery
  4503. * isn't possible.
  4504. */
  4505. if (!test_bit(Faulty, &rdev->flags) &&
  4506. mddev->recovery_disabled != conf->recovery_disabled &&
  4507. !has_failed(conf) &&
  4508. number < conf->raid_disks) {
  4509. err = -EBUSY;
  4510. goto abort;
  4511. }
  4512. p->rdev = NULL;
  4513. synchronize_rcu();
  4514. if (atomic_read(&rdev->nr_pending)) {
  4515. /* lost the race, try later */
  4516. err = -EBUSY;
  4517. p->rdev = rdev;
  4518. }
  4519. }
  4520. abort:
  4521. print_raid5_conf(conf);
  4522. return err;
  4523. }
  4524. static int raid5_add_disk(struct mddev *mddev, struct md_rdev *rdev)
  4525. {
  4526. struct r5conf *conf = mddev->private;
  4527. int err = -EEXIST;
  4528. int disk;
  4529. struct disk_info *p;
  4530. int first = 0;
  4531. int last = conf->raid_disks - 1;
  4532. if (mddev->recovery_disabled == conf->recovery_disabled)
  4533. return -EBUSY;
  4534. if (has_failed(conf))
  4535. /* no point adding a device */
  4536. return -EINVAL;
  4537. if (rdev->raid_disk >= 0)
  4538. first = last = rdev->raid_disk;
  4539. /*
  4540. * find the disk ... but prefer rdev->saved_raid_disk
  4541. * if possible.
  4542. */
  4543. if (rdev->saved_raid_disk >= 0 &&
  4544. rdev->saved_raid_disk >= first &&
  4545. conf->disks[rdev->saved_raid_disk].rdev == NULL)
  4546. disk = rdev->saved_raid_disk;
  4547. else
  4548. disk = first;
  4549. for ( ; disk <= last ; disk++)
  4550. if ((p=conf->disks + disk)->rdev == NULL) {
  4551. clear_bit(In_sync, &rdev->flags);
  4552. rdev->raid_disk = disk;
  4553. err = 0;
  4554. if (rdev->saved_raid_disk != disk)
  4555. conf->fullsync = 1;
  4556. rcu_assign_pointer(p->rdev, rdev);
  4557. break;
  4558. }
  4559. print_raid5_conf(conf);
  4560. return err;
  4561. }
  4562. static int raid5_resize(struct mddev *mddev, sector_t sectors)
  4563. {
  4564. /* no resync is happening, and there is enough space
  4565. * on all devices, so we can resize.
  4566. * We need to make sure resync covers any new space.
  4567. * If the array is shrinking we should possibly wait until
  4568. * any io in the removed space completes, but it hardly seems
  4569. * worth it.
  4570. */
  4571. sectors &= ~((sector_t)mddev->chunk_sectors - 1);
  4572. md_set_array_sectors(mddev, raid5_size(mddev, sectors,
  4573. mddev->raid_disks));
  4574. if (mddev->array_sectors >
  4575. raid5_size(mddev, sectors, mddev->raid_disks))
  4576. return -EINVAL;
  4577. set_capacity(mddev->gendisk, mddev->array_sectors);
  4578. revalidate_disk(mddev->gendisk);
  4579. if (sectors > mddev->dev_sectors &&
  4580. mddev->recovery_cp > mddev->dev_sectors) {
  4581. mddev->recovery_cp = mddev->dev_sectors;
  4582. set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
  4583. }
  4584. mddev->dev_sectors = sectors;
  4585. mddev->resync_max_sectors = sectors;
  4586. return 0;
  4587. }
  4588. static int check_stripe_cache(struct mddev *mddev)
  4589. {
  4590. /* Can only proceed if there are plenty of stripe_heads.
  4591. * We need a minimum of one full stripe,, and for sensible progress
  4592. * it is best to have about 4 times that.
  4593. * If we require 4 times, then the default 256 4K stripe_heads will
  4594. * allow for chunk sizes up to 256K, which is probably OK.
  4595. * If the chunk size is greater, user-space should request more
  4596. * stripe_heads first.
  4597. */
  4598. struct r5conf *conf = mddev->private;
  4599. if (((mddev->chunk_sectors << 9) / STRIPE_SIZE) * 4
  4600. > conf->max_nr_stripes ||
  4601. ((mddev->new_chunk_sectors << 9) / STRIPE_SIZE) * 4
  4602. > conf->max_nr_stripes) {
  4603. printk(KERN_WARNING "md/raid:%s: reshape: not enough stripes. Needed %lu\n",
  4604. mdname(mddev),
  4605. ((max(mddev->chunk_sectors, mddev->new_chunk_sectors) << 9)
  4606. / STRIPE_SIZE)*4);
  4607. return 0;
  4608. }
  4609. return 1;
  4610. }
  4611. static int check_reshape(struct mddev *mddev)
  4612. {
  4613. struct r5conf *conf = mddev->private;
  4614. if (mddev->delta_disks == 0 &&
  4615. mddev->new_layout == mddev->layout &&
  4616. mddev->new_chunk_sectors == mddev->chunk_sectors)
  4617. return 0; /* nothing to do */
  4618. if (mddev->bitmap)
  4619. /* Cannot grow a bitmap yet */
  4620. return -EBUSY;
  4621. if (has_failed(conf))
  4622. return -EINVAL;
  4623. if (mddev->delta_disks < 0) {
  4624. /* We might be able to shrink, but the devices must
  4625. * be made bigger first.
  4626. * For raid6, 4 is the minimum size.
  4627. * Otherwise 2 is the minimum
  4628. */
  4629. int min = 2;
  4630. if (mddev->level == 6)
  4631. min = 4;
  4632. if (mddev->raid_disks + mddev->delta_disks < min)
  4633. return -EINVAL;
  4634. }
  4635. if (!check_stripe_cache(mddev))
  4636. return -ENOSPC;
  4637. return resize_stripes(conf, conf->raid_disks + mddev->delta_disks);
  4638. }
  4639. static int raid5_start_reshape(struct mddev *mddev)
  4640. {
  4641. struct r5conf *conf = mddev->private;
  4642. struct md_rdev *rdev;
  4643. int spares = 0;
  4644. unsigned long flags;
  4645. if (test_bit(MD_RECOVERY_RUNNING, &mddev->recovery))
  4646. return -EBUSY;
  4647. if (!check_stripe_cache(mddev))
  4648. return -ENOSPC;
  4649. list_for_each_entry(rdev, &mddev->disks, same_set)
  4650. if (!test_bit(In_sync, &rdev->flags)
  4651. && !test_bit(Faulty, &rdev->flags))
  4652. spares++;
  4653. if (spares - mddev->degraded < mddev->delta_disks - conf->max_degraded)
  4654. /* Not enough devices even to make a degraded array
  4655. * of that size
  4656. */
  4657. return -EINVAL;
  4658. /* Refuse to reduce size of the array. Any reductions in
  4659. * array size must be through explicit setting of array_size
  4660. * attribute.
  4661. */
  4662. if (raid5_size(mddev, 0, conf->raid_disks + mddev->delta_disks)
  4663. < mddev->array_sectors) {
  4664. printk(KERN_ERR "md/raid:%s: array size must be reduced "
  4665. "before number of disks\n", mdname(mddev));
  4666. return -EINVAL;
  4667. }
  4668. atomic_set(&conf->reshape_stripes, 0);
  4669. spin_lock_irq(&conf->device_lock);
  4670. conf->previous_raid_disks = conf->raid_disks;
  4671. conf->raid_disks += mddev->delta_disks;
  4672. conf->prev_chunk_sectors = conf->chunk_sectors;
  4673. conf->chunk_sectors = mddev->new_chunk_sectors;
  4674. conf->prev_algo = conf->algorithm;
  4675. conf->algorithm = mddev->new_layout;
  4676. if (mddev->delta_disks < 0)
  4677. conf->reshape_progress = raid5_size(mddev, 0, 0);
  4678. else
  4679. conf->reshape_progress = 0;
  4680. conf->reshape_safe = conf->reshape_progress;
  4681. conf->generation++;
  4682. spin_unlock_irq(&conf->device_lock);
  4683. /* Add some new drives, as many as will fit.
  4684. * We know there are enough to make the newly sized array work.
  4685. * Don't add devices if we are reducing the number of
  4686. * devices in the array. This is because it is not possible
  4687. * to correctly record the "partially reconstructed" state of
  4688. * such devices during the reshape and confusion could result.
  4689. */
  4690. if (mddev->delta_disks >= 0) {
  4691. int added_devices = 0;
  4692. list_for_each_entry(rdev, &mddev->disks, same_set)
  4693. if (rdev->raid_disk < 0 &&
  4694. !test_bit(Faulty, &rdev->flags)) {
  4695. if (raid5_add_disk(mddev, rdev) == 0) {
  4696. if (rdev->raid_disk
  4697. >= conf->previous_raid_disks) {
  4698. set_bit(In_sync, &rdev->flags);
  4699. added_devices++;
  4700. } else
  4701. rdev->recovery_offset = 0;
  4702. if (sysfs_link_rdev(mddev, rdev))
  4703. /* Failure here is OK */;
  4704. }
  4705. } else if (rdev->raid_disk >= conf->previous_raid_disks
  4706. && !test_bit(Faulty, &rdev->flags)) {
  4707. /* This is a spare that was manually added */
  4708. set_bit(In_sync, &rdev->flags);
  4709. added_devices++;
  4710. }
  4711. /* When a reshape changes the number of devices,
  4712. * ->degraded is measured against the larger of the
  4713. * pre and post number of devices.
  4714. */
  4715. spin_lock_irqsave(&conf->device_lock, flags);
  4716. mddev->degraded = calc_degraded(conf);
  4717. spin_unlock_irqrestore(&conf->device_lock, flags);
  4718. }
  4719. mddev->raid_disks = conf->raid_disks;
  4720. mddev->reshape_position = conf->reshape_progress;
  4721. set_bit(MD_CHANGE_DEVS, &mddev->flags);
  4722. clear_bit(MD_RECOVERY_SYNC, &mddev->recovery);
  4723. clear_bit(MD_RECOVERY_CHECK, &mddev->recovery);
  4724. set_bit(MD_RECOVERY_RESHAPE, &mddev->recovery);
  4725. set_bit(MD_RECOVERY_RUNNING, &mddev->recovery);
  4726. mddev->sync_thread = md_register_thread(md_do_sync, mddev,
  4727. "reshape");
  4728. if (!mddev->sync_thread) {
  4729. mddev->recovery = 0;
  4730. spin_lock_irq(&conf->device_lock);
  4731. mddev->raid_disks = conf->raid_disks = conf->previous_raid_disks;
  4732. conf->reshape_progress = MaxSector;
  4733. spin_unlock_irq(&conf->device_lock);
  4734. return -EAGAIN;
  4735. }
  4736. conf->reshape_checkpoint = jiffies;
  4737. md_wakeup_thread(mddev->sync_thread);
  4738. md_new_event(mddev);
  4739. return 0;
  4740. }
  4741. /* This is called from the reshape thread and should make any
  4742. * changes needed in 'conf'
  4743. */
  4744. static void end_reshape(struct r5conf *conf)
  4745. {
  4746. if (!test_bit(MD_RECOVERY_INTR, &conf->mddev->recovery)) {
  4747. spin_lock_irq(&conf->device_lock);
  4748. conf->previous_raid_disks = conf->raid_disks;
  4749. conf->reshape_progress = MaxSector;
  4750. spin_unlock_irq(&conf->device_lock);
  4751. wake_up(&conf->wait_for_overlap);
  4752. /* read-ahead size must cover two whole stripes, which is
  4753. * 2 * (datadisks) * chunksize where 'n' is the number of raid devices
  4754. */
  4755. if (conf->mddev->queue) {
  4756. int data_disks = conf->raid_disks - conf->max_degraded;
  4757. int stripe = data_disks * ((conf->chunk_sectors << 9)
  4758. / PAGE_SIZE);
  4759. if (conf->mddev->queue->backing_dev_info.ra_pages < 2 * stripe)
  4760. conf->mddev->queue->backing_dev_info.ra_pages = 2 * stripe;
  4761. }
  4762. }
  4763. }
  4764. /* This is called from the raid5d thread with mddev_lock held.
  4765. * It makes config changes to the device.
  4766. */
  4767. static void raid5_finish_reshape(struct mddev *mddev)
  4768. {
  4769. struct r5conf *conf = mddev->private;
  4770. if (!test_bit(MD_RECOVERY_INTR, &mddev->recovery)) {
  4771. if (mddev->delta_disks > 0) {
  4772. md_set_array_sectors(mddev, raid5_size(mddev, 0, 0));
  4773. set_capacity(mddev->gendisk, mddev->array_sectors);
  4774. revalidate_disk(mddev->gendisk);
  4775. } else {
  4776. int d;
  4777. spin_lock_irq(&conf->device_lock);
  4778. mddev->degraded = calc_degraded(conf);
  4779. spin_unlock_irq(&conf->device_lock);
  4780. for (d = conf->raid_disks ;
  4781. d < conf->raid_disks - mddev->delta_disks;
  4782. d++) {
  4783. struct md_rdev *rdev = conf->disks[d].rdev;
  4784. if (rdev &&
  4785. raid5_remove_disk(mddev, rdev) == 0) {
  4786. sysfs_unlink_rdev(mddev, rdev);
  4787. rdev->raid_disk = -1;
  4788. }
  4789. }
  4790. }
  4791. mddev->layout = conf->algorithm;
  4792. mddev->chunk_sectors = conf->chunk_sectors;
  4793. mddev->reshape_position = MaxSector;
  4794. mddev->delta_disks = 0;
  4795. }
  4796. }
  4797. static void raid5_quiesce(struct mddev *mddev, int state)
  4798. {
  4799. struct r5conf *conf = mddev->private;
  4800. switch(state) {
  4801. case 2: /* resume for a suspend */
  4802. wake_up(&conf->wait_for_overlap);
  4803. break;
  4804. case 1: /* stop all writes */
  4805. spin_lock_irq(&conf->device_lock);
  4806. /* '2' tells resync/reshape to pause so that all
  4807. * active stripes can drain
  4808. */
  4809. conf->quiesce = 2;
  4810. wait_event_lock_irq(conf->wait_for_stripe,
  4811. atomic_read(&conf->active_stripes) == 0 &&
  4812. atomic_read(&conf->active_aligned_reads) == 0,
  4813. conf->device_lock, /* nothing */);
  4814. conf->quiesce = 1;
  4815. spin_unlock_irq(&conf->device_lock);
  4816. /* allow reshape to continue */
  4817. wake_up(&conf->wait_for_overlap);
  4818. break;
  4819. case 0: /* re-enable writes */
  4820. spin_lock_irq(&conf->device_lock);
  4821. conf->quiesce = 0;
  4822. wake_up(&conf->wait_for_stripe);
  4823. wake_up(&conf->wait_for_overlap);
  4824. spin_unlock_irq(&conf->device_lock);
  4825. break;
  4826. }
  4827. }
  4828. static void *raid45_takeover_raid0(struct mddev *mddev, int level)
  4829. {
  4830. struct r0conf *raid0_conf = mddev->private;
  4831. sector_t sectors;
  4832. /* for raid0 takeover only one zone is supported */
  4833. if (raid0_conf->nr_strip_zones > 1) {
  4834. printk(KERN_ERR "md/raid:%s: cannot takeover raid0 with more than one zone.\n",
  4835. mdname(mddev));
  4836. return ERR_PTR(-EINVAL);
  4837. }
  4838. sectors = raid0_conf->strip_zone[0].zone_end;
  4839. sector_div(sectors, raid0_conf->strip_zone[0].nb_dev);
  4840. mddev->dev_sectors = sectors;
  4841. mddev->new_level = level;
  4842. mddev->new_layout = ALGORITHM_PARITY_N;
  4843. mddev->new_chunk_sectors = mddev->chunk_sectors;
  4844. mddev->raid_disks += 1;
  4845. mddev->delta_disks = 1;
  4846. /* make sure it will be not marked as dirty */
  4847. mddev->recovery_cp = MaxSector;
  4848. return setup_conf(mddev);
  4849. }
  4850. static void *raid5_takeover_raid1(struct mddev *mddev)
  4851. {
  4852. int chunksect;
  4853. if (mddev->raid_disks != 2 ||
  4854. mddev->degraded > 1)
  4855. return ERR_PTR(-EINVAL);
  4856. /* Should check if there are write-behind devices? */
  4857. chunksect = 64*2; /* 64K by default */
  4858. /* The array must be an exact multiple of chunksize */
  4859. while (chunksect && (mddev->array_sectors & (chunksect-1)))
  4860. chunksect >>= 1;
  4861. if ((chunksect<<9) < STRIPE_SIZE)
  4862. /* array size does not allow a suitable chunk size */
  4863. return ERR_PTR(-EINVAL);
  4864. mddev->new_level = 5;
  4865. mddev->new_layout = ALGORITHM_LEFT_SYMMETRIC;
  4866. mddev->new_chunk_sectors = chunksect;
  4867. return setup_conf(mddev);
  4868. }
  4869. static void *raid5_takeover_raid6(struct mddev *mddev)
  4870. {
  4871. int new_layout;
  4872. switch (mddev->layout) {
  4873. case ALGORITHM_LEFT_ASYMMETRIC_6:
  4874. new_layout = ALGORITHM_LEFT_ASYMMETRIC;
  4875. break;
  4876. case ALGORITHM_RIGHT_ASYMMETRIC_6:
  4877. new_layout = ALGORITHM_RIGHT_ASYMMETRIC;
  4878. break;
  4879. case ALGORITHM_LEFT_SYMMETRIC_6:
  4880. new_layout = ALGORITHM_LEFT_SYMMETRIC;
  4881. break;
  4882. case ALGORITHM_RIGHT_SYMMETRIC_6:
  4883. new_layout = ALGORITHM_RIGHT_SYMMETRIC;
  4884. break;
  4885. case ALGORITHM_PARITY_0_6:
  4886. new_layout = ALGORITHM_PARITY_0;
  4887. break;
  4888. case ALGORITHM_PARITY_N:
  4889. new_layout = ALGORITHM_PARITY_N;
  4890. break;
  4891. default:
  4892. return ERR_PTR(-EINVAL);
  4893. }
  4894. mddev->new_level = 5;
  4895. mddev->new_layout = new_layout;
  4896. mddev->delta_disks = -1;
  4897. mddev->raid_disks -= 1;
  4898. return setup_conf(mddev);
  4899. }
  4900. static int raid5_check_reshape(struct mddev *mddev)
  4901. {
  4902. /* For a 2-drive array, the layout and chunk size can be changed
  4903. * immediately as not restriping is needed.
  4904. * For larger arrays we record the new value - after validation
  4905. * to be used by a reshape pass.
  4906. */
  4907. struct r5conf *conf = mddev->private;
  4908. int new_chunk = mddev->new_chunk_sectors;
  4909. if (mddev->new_layout >= 0 && !algorithm_valid_raid5(mddev->new_layout))
  4910. return -EINVAL;
  4911. if (new_chunk > 0) {
  4912. if (!is_power_of_2(new_chunk))
  4913. return -EINVAL;
  4914. if (new_chunk < (PAGE_SIZE>>9))
  4915. return -EINVAL;
  4916. if (mddev->array_sectors & (new_chunk-1))
  4917. /* not factor of array size */
  4918. return -EINVAL;
  4919. }
  4920. /* They look valid */
  4921. if (mddev->raid_disks == 2) {
  4922. /* can make the change immediately */
  4923. if (mddev->new_layout >= 0) {
  4924. conf->algorithm = mddev->new_layout;
  4925. mddev->layout = mddev->new_layout;
  4926. }
  4927. if (new_chunk > 0) {
  4928. conf->chunk_sectors = new_chunk ;
  4929. mddev->chunk_sectors = new_chunk;
  4930. }
  4931. set_bit(MD_CHANGE_DEVS, &mddev->flags);
  4932. md_wakeup_thread(mddev->thread);
  4933. }
  4934. return check_reshape(mddev);
  4935. }
  4936. static int raid6_check_reshape(struct mddev *mddev)
  4937. {
  4938. int new_chunk = mddev->new_chunk_sectors;
  4939. if (mddev->new_layout >= 0 && !algorithm_valid_raid6(mddev->new_layout))
  4940. return -EINVAL;
  4941. if (new_chunk > 0) {
  4942. if (!is_power_of_2(new_chunk))
  4943. return -EINVAL;
  4944. if (new_chunk < (PAGE_SIZE >> 9))
  4945. return -EINVAL;
  4946. if (mddev->array_sectors & (new_chunk-1))
  4947. /* not factor of array size */
  4948. return -EINVAL;
  4949. }
  4950. /* They look valid */
  4951. return check_reshape(mddev);
  4952. }
  4953. static void *raid5_takeover(struct mddev *mddev)
  4954. {
  4955. /* raid5 can take over:
  4956. * raid0 - if there is only one strip zone - make it a raid4 layout
  4957. * raid1 - if there are two drives. We need to know the chunk size
  4958. * raid4 - trivial - just use a raid4 layout.
  4959. * raid6 - Providing it is a *_6 layout
  4960. */
  4961. if (mddev->level == 0)
  4962. return raid45_takeover_raid0(mddev, 5);
  4963. if (mddev->level == 1)
  4964. return raid5_takeover_raid1(mddev);
  4965. if (mddev->level == 4) {
  4966. mddev->new_layout = ALGORITHM_PARITY_N;
  4967. mddev->new_level = 5;
  4968. return setup_conf(mddev);
  4969. }
  4970. if (mddev->level == 6)
  4971. return raid5_takeover_raid6(mddev);
  4972. return ERR_PTR(-EINVAL);
  4973. }
  4974. static void *raid4_takeover(struct mddev *mddev)
  4975. {
  4976. /* raid4 can take over:
  4977. * raid0 - if there is only one strip zone
  4978. * raid5 - if layout is right
  4979. */
  4980. if (mddev->level == 0)
  4981. return raid45_takeover_raid0(mddev, 4);
  4982. if (mddev->level == 5 &&
  4983. mddev->layout == ALGORITHM_PARITY_N) {
  4984. mddev->new_layout = 0;
  4985. mddev->new_level = 4;
  4986. return setup_conf(mddev);
  4987. }
  4988. return ERR_PTR(-EINVAL);
  4989. }
  4990. static struct md_personality raid5_personality;
  4991. static void *raid6_takeover(struct mddev *mddev)
  4992. {
  4993. /* Currently can only take over a raid5. We map the
  4994. * personality to an equivalent raid6 personality
  4995. * with the Q block at the end.
  4996. */
  4997. int new_layout;
  4998. if (mddev->pers != &raid5_personality)
  4999. return ERR_PTR(-EINVAL);
  5000. if (mddev->degraded > 1)
  5001. return ERR_PTR(-EINVAL);
  5002. if (mddev->raid_disks > 253)
  5003. return ERR_PTR(-EINVAL);
  5004. if (mddev->raid_disks < 3)
  5005. return ERR_PTR(-EINVAL);
  5006. switch (mddev->layout) {
  5007. case ALGORITHM_LEFT_ASYMMETRIC:
  5008. new_layout = ALGORITHM_LEFT_ASYMMETRIC_6;
  5009. break;
  5010. case ALGORITHM_RIGHT_ASYMMETRIC:
  5011. new_layout = ALGORITHM_RIGHT_ASYMMETRIC_6;
  5012. break;
  5013. case ALGORITHM_LEFT_SYMMETRIC:
  5014. new_layout = ALGORITHM_LEFT_SYMMETRIC_6;
  5015. break;
  5016. case ALGORITHM_RIGHT_SYMMETRIC:
  5017. new_layout = ALGORITHM_RIGHT_SYMMETRIC_6;
  5018. break;
  5019. case ALGORITHM_PARITY_0:
  5020. new_layout = ALGORITHM_PARITY_0_6;
  5021. break;
  5022. case ALGORITHM_PARITY_N:
  5023. new_layout = ALGORITHM_PARITY_N;
  5024. break;
  5025. default:
  5026. return ERR_PTR(-EINVAL);
  5027. }
  5028. mddev->new_level = 6;
  5029. mddev->new_layout = new_layout;
  5030. mddev->delta_disks = 1;
  5031. mddev->raid_disks += 1;
  5032. return setup_conf(mddev);
  5033. }
  5034. static struct md_personality raid6_personality =
  5035. {
  5036. .name = "raid6",
  5037. .level = 6,
  5038. .owner = THIS_MODULE,
  5039. .make_request = make_request,
  5040. .run = run,
  5041. .stop = stop,
  5042. .status = status,
  5043. .error_handler = error,
  5044. .hot_add_disk = raid5_add_disk,
  5045. .hot_remove_disk= raid5_remove_disk,
  5046. .spare_active = raid5_spare_active,
  5047. .sync_request = sync_request,
  5048. .resize = raid5_resize,
  5049. .size = raid5_size,
  5050. .check_reshape = raid6_check_reshape,
  5051. .start_reshape = raid5_start_reshape,
  5052. .finish_reshape = raid5_finish_reshape,
  5053. .quiesce = raid5_quiesce,
  5054. .takeover = raid6_takeover,
  5055. };
  5056. static struct md_personality raid5_personality =
  5057. {
  5058. .name = "raid5",
  5059. .level = 5,
  5060. .owner = THIS_MODULE,
  5061. .make_request = make_request,
  5062. .run = run,
  5063. .stop = stop,
  5064. .status = status,
  5065. .error_handler = error,
  5066. .hot_add_disk = raid5_add_disk,
  5067. .hot_remove_disk= raid5_remove_disk,
  5068. .spare_active = raid5_spare_active,
  5069. .sync_request = sync_request,
  5070. .resize = raid5_resize,
  5071. .size = raid5_size,
  5072. .check_reshape = raid5_check_reshape,
  5073. .start_reshape = raid5_start_reshape,
  5074. .finish_reshape = raid5_finish_reshape,
  5075. .quiesce = raid5_quiesce,
  5076. .takeover = raid5_takeover,
  5077. };
  5078. static struct md_personality raid4_personality =
  5079. {
  5080. .name = "raid4",
  5081. .level = 4,
  5082. .owner = THIS_MODULE,
  5083. .make_request = make_request,
  5084. .run = run,
  5085. .stop = stop,
  5086. .status = status,
  5087. .error_handler = error,
  5088. .hot_add_disk = raid5_add_disk,
  5089. .hot_remove_disk= raid5_remove_disk,
  5090. .spare_active = raid5_spare_active,
  5091. .sync_request = sync_request,
  5092. .resize = raid5_resize,
  5093. .size = raid5_size,
  5094. .check_reshape = raid5_check_reshape,
  5095. .start_reshape = raid5_start_reshape,
  5096. .finish_reshape = raid5_finish_reshape,
  5097. .quiesce = raid5_quiesce,
  5098. .takeover = raid4_takeover,
  5099. };
  5100. static int __init raid5_init(void)
  5101. {
  5102. register_md_personality(&raid6_personality);
  5103. register_md_personality(&raid5_personality);
  5104. register_md_personality(&raid4_personality);
  5105. return 0;
  5106. }
  5107. static void raid5_exit(void)
  5108. {
  5109. unregister_md_personality(&raid6_personality);
  5110. unregister_md_personality(&raid5_personality);
  5111. unregister_md_personality(&raid4_personality);
  5112. }
  5113. module_init(raid5_init);
  5114. module_exit(raid5_exit);
  5115. MODULE_LICENSE("GPL");
  5116. MODULE_DESCRIPTION("RAID4/5/6 (striping with parity) personality for MD");
  5117. MODULE_ALIAS("md-personality-4"); /* RAID5 */
  5118. MODULE_ALIAS("md-raid5");
  5119. MODULE_ALIAS("md-raid4");
  5120. MODULE_ALIAS("md-level-5");
  5121. MODULE_ALIAS("md-level-4");
  5122. MODULE_ALIAS("md-personality-8"); /* RAID6 */
  5123. MODULE_ALIAS("md-raid6");
  5124. MODULE_ALIAS("md-level-6");
  5125. /* This used to be two separate modules, they were: */
  5126. MODULE_ALIAS("raid5");
  5127. MODULE_ALIAS("raid6");