1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * raid1.c : Multiple Devices driver for Linux 4 * 5 * Copyright (C) 1999, 2000, 2001 Ingo Molnar, Red Hat 6 * 7 * Copyright (C) 1996, 1997, 1998 Ingo Molnar, Miguel de Icaza, Gadi Oxman 8 * 9 * RAID-1 management functions. 10 * 11 * Better read-balancing code written by Mika Kuoppala <miku@iki.fi>, 2000 12 * 13 * Fixes to reconstruction by Jakob Østergaard" <jakob@ostenfeld.dk> 14 * Various fixes by Neil Brown <neilb@cse.unsw.edu.au> 15 * 16 * Changes by Peter T. Breuer <ptb@it.uc3m.es> 31/1/2003 to support 17 * bitmapped intelligence in resync: 18 * 19 * - bitmap marked during normal i/o 20 * - bitmap used to skip nondirty blocks during sync 21 * 22 * Additions to bitmap code, (C) 2003-2004 Paul Clements, SteelEye Technology: 23 * - persistent bitmap code 24 */ 25 26 #include <linux/slab.h> 27 #include <linux/delay.h> 28 #include <linux/blkdev.h> 29 #include <linux/module.h> 30 #include <linux/seq_file.h> 31 #include <linux/ratelimit.h> 32 #include <linux/interval_tree_generic.h> 33 34 #include <trace/events/block.h> 35 36 #include "md.h" 37 #include "raid1.h" 38 #include "md-bitmap.h" 39 #include "md-cluster.h" 40 41 #define UNSUPPORTED_MDDEV_FLAGS \ 42 ((1L << MD_HAS_JOURNAL) | \ 43 (1L << MD_JOURNAL_CLEAN) | \ 44 (1L << MD_HAS_PPL) | \ 45 (1L << MD_HAS_MULTIPLE_PPLS)) 46 47 static void allow_barrier(struct r1conf *conf, sector_t sector_nr); 48 static void lower_barrier(struct r1conf *conf, sector_t sector_nr); 49 static void raid1_free(struct mddev *mddev, void *priv); 50 51 #define RAID_1_10_NAME "raid1" 52 #include "raid1-10.c" 53 54 #define START(node) ((node)->start) 55 #define LAST(node) ((node)->last) 56 INTERVAL_TREE_DEFINE(struct serial_info, node, sector_t, _subtree_last, 57 START, LAST, static inline, raid1_rb); 58 59 static int check_and_add_serial(struct md_rdev *rdev, struct r1bio *r1_bio, 60 struct serial_info *si) 61 { 62 unsigned long flags; 63 int ret = 0; 64 sector_t lo = r1_bio->sector; 65 sector_t hi = lo + r1_bio->sectors - 1; 66 int idx = sector_to_idx(r1_bio->sector); 67 struct serial_in_rdev *serial = &rdev->serial[idx]; 68 struct serial_info *head_si; 69 70 spin_lock_irqsave(&serial->serial_lock, flags); 71 /* collision happened */ 72 head_si = raid1_rb_iter_first(&serial->serial_rb, lo, hi); 73 if (head_si && head_si != si) { 74 si->start = lo; 75 si->last = hi; 76 si->wnode_start = head_si->wnode_start; 77 list_add_tail(&si->list_node, &head_si->waiters); 78 ret = -EBUSY; 79 } else if (!head_si) { 80 si->start = lo; 81 si->last = hi; 82 si->wnode_start = si->start; 83 raid1_rb_insert(si, &serial->serial_rb); 84 } 85 spin_unlock_irqrestore(&serial->serial_lock, flags); 86 87 return ret; 88 } 89 90 static void wait_for_serialization(struct md_rdev *rdev, struct r1bio *r1_bio) 91 { 92 struct mddev *mddev = rdev->mddev; 93 struct serial_info *si; 94 95 if (WARN_ON(!mddev->serial_info_pool)) 96 return; 97 si = mempool_alloc(mddev->serial_info_pool, GFP_NOIO); 98 INIT_LIST_HEAD(&si->waiters); 99 INIT_LIST_HEAD(&si->list_node); 100 init_completion(&si->ready); 101 while (check_and_add_serial(rdev, r1_bio, si)) { 102 wait_for_completion(&si->ready); 103 reinit_completion(&si->ready); 104 } 105 } 106 107 static void remove_serial(struct md_rdev *rdev, sector_t lo, sector_t hi) 108 { 109 struct serial_info *si, *iter_si; 110 unsigned long flags; 111 int found = 0; 112 struct mddev *mddev = rdev->mddev; 113 int idx = sector_to_idx(lo); 114 struct serial_in_rdev *serial = &rdev->serial[idx]; 115 116 spin_lock_irqsave(&serial->serial_lock, flags); 117 for (si = raid1_rb_iter_first(&serial->serial_rb, lo, hi); 118 si; si = raid1_rb_iter_next(si, lo, hi)) { 119 if (si->start == lo && si->last == hi) { 120 found = 1; 121 break; 122 } 123 } 124 if (found) { 125 raid1_rb_remove(si, &serial->serial_rb); 126 if (!list_empty(&si->waiters)) { 127 list_for_each_entry(iter_si, &si->waiters, list_node) { 128 if (iter_si->wnode_start == si->wnode_start) { 129 list_del_init(&iter_si->list_node); 130 list_splice_init(&si->waiters, &iter_si->waiters); 131 raid1_rb_insert(iter_si, &serial->serial_rb); 132 complete(&iter_si->ready); 133 break; 134 } 135 } 136 } 137 mempool_free(si, mddev->serial_info_pool); 138 } else { 139 WARN(1, "The write IO is not recorded for serialization\n"); 140 } 141 spin_unlock_irqrestore(&serial->serial_lock, flags); 142 } 143 144 /* 145 * for resync bio, r1bio pointer can be retrieved from the per-bio 146 * 'struct resync_pages'. 147 */ 148 static inline struct r1bio *get_resync_r1bio(struct bio *bio) 149 { 150 return get_resync_pages(bio)->raid_bio; 151 } 152 153 static void *r1bio_pool_alloc(gfp_t gfp_flags, struct r1conf *conf) 154 { 155 int size = offsetof(struct r1bio, bios[conf->raid_disks * 2]); 156 157 /* allocate a r1bio with room for raid_disks entries in the bios array */ 158 return kzalloc(size, gfp_flags); 159 } 160 161 #define RESYNC_DEPTH 32 162 #define RESYNC_SECTORS (RESYNC_BLOCK_SIZE >> 9) 163 #define RESYNC_WINDOW (RESYNC_BLOCK_SIZE * RESYNC_DEPTH) 164 #define RESYNC_WINDOW_SECTORS (RESYNC_WINDOW >> 9) 165 #define CLUSTER_RESYNC_WINDOW (16 * RESYNC_WINDOW) 166 #define CLUSTER_RESYNC_WINDOW_SECTORS (CLUSTER_RESYNC_WINDOW >> 9) 167 168 static void * r1buf_pool_alloc(gfp_t gfp_flags, void *data) 169 { 170 struct r1conf *conf = data; 171 struct r1bio *r1_bio; 172 struct bio *bio; 173 int need_pages; 174 int j; 175 struct resync_pages *rps; 176 177 r1_bio = r1bio_pool_alloc(gfp_flags, conf); 178 if (!r1_bio) 179 return NULL; 180 181 rps = kmalloc_objs(struct resync_pages, conf->raid_disks * 2, gfp_flags); 182 if (!rps) 183 goto out_free_r1bio; 184 185 /* 186 * Allocate bios : 1 for reading, n-1 for writing 187 */ 188 for (j = conf->raid_disks * 2; j-- ; ) { 189 bio = bio_kmalloc(RESYNC_PAGES, gfp_flags); 190 if (!bio) 191 goto out_free_bio; 192 bio_init_inline(bio, NULL, RESYNC_PAGES, 0); 193 r1_bio->bios[j] = bio; 194 } 195 /* 196 * Allocate RESYNC_PAGES data pages and attach them to 197 * the first bio. 198 * If this is a user-requested check/repair, allocate 199 * RESYNC_PAGES for each bio. 200 */ 201 if (test_bit(MD_RECOVERY_REQUESTED, &conf->mddev->recovery)) 202 need_pages = conf->raid_disks * 2; 203 else 204 need_pages = 1; 205 for (j = 0; j < conf->raid_disks * 2; j++) { 206 struct resync_pages *rp = &rps[j]; 207 208 bio = r1_bio->bios[j]; 209 210 if (j < need_pages) { 211 if (resync_alloc_pages(rp, gfp_flags)) 212 goto out_free_pages; 213 } else { 214 memcpy(rp, &rps[0], sizeof(*rp)); 215 resync_get_all_pages(rp); 216 } 217 218 rp->raid_bio = r1_bio; 219 bio->bi_private = rp; 220 } 221 222 r1_bio->master_bio = NULL; 223 224 return r1_bio; 225 226 out_free_pages: 227 while (--j >= 0) 228 resync_free_pages(&rps[j]); 229 230 out_free_bio: 231 while (++j < conf->raid_disks * 2) { 232 bio_uninit(r1_bio->bios[j]); 233 kfree(r1_bio->bios[j]); 234 } 235 kfree(rps); 236 237 out_free_r1bio: 238 rbio_pool_free(r1_bio, data); 239 return NULL; 240 } 241 242 static void r1buf_pool_free(void *__r1_bio, void *data) 243 { 244 struct r1conf *conf = data; 245 int i; 246 struct r1bio *r1bio = __r1_bio; 247 struct resync_pages *rp = NULL; 248 249 for (i = conf->raid_disks * 2; i--; ) { 250 rp = get_resync_pages(r1bio->bios[i]); 251 resync_free_pages(rp); 252 bio_uninit(r1bio->bios[i]); 253 kfree(r1bio->bios[i]); 254 } 255 256 /* resync pages array stored in the 1st bio's .bi_private */ 257 kfree(rp); 258 259 rbio_pool_free(r1bio, data); 260 } 261 262 static void put_all_bios(struct r1conf *conf, struct r1bio *r1_bio) 263 { 264 int i; 265 266 for (i = 0; i < conf->raid_disks * 2; i++) { 267 struct bio **bio = r1_bio->bios + i; 268 if (!BIO_SPECIAL(*bio)) 269 bio_put(*bio); 270 *bio = NULL; 271 } 272 } 273 274 static void free_r1bio(struct r1bio *r1_bio) 275 { 276 struct r1conf *conf = r1_bio->mddev->private; 277 278 put_all_bios(conf, r1_bio); 279 mempool_free(r1_bio, conf->r1bio_pool); 280 } 281 282 static void put_buf(struct r1bio *r1_bio) 283 { 284 struct r1conf *conf = r1_bio->mddev->private; 285 sector_t sect = r1_bio->sector; 286 int i; 287 288 for (i = 0; i < conf->raid_disks * 2; i++) { 289 struct bio *bio = r1_bio->bios[i]; 290 if (bio->bi_end_io) 291 rdev_dec_pending(conf->mirrors[i].rdev, r1_bio->mddev); 292 } 293 294 mempool_free(r1_bio, &conf->r1buf_pool); 295 296 lower_barrier(conf, sect); 297 } 298 299 static void reschedule_retry(struct r1bio *r1_bio) 300 { 301 unsigned long flags; 302 struct mddev *mddev = r1_bio->mddev; 303 struct r1conf *conf = mddev->private; 304 int idx; 305 306 idx = sector_to_idx(r1_bio->sector); 307 spin_lock_irqsave(&conf->device_lock, flags); 308 list_add(&r1_bio->retry_list, &conf->retry_list); 309 atomic_inc(&conf->nr_queued[idx]); 310 spin_unlock_irqrestore(&conf->device_lock, flags); 311 312 wake_up(&conf->wait_barrier); 313 md_wakeup_thread(mddev->thread); 314 } 315 316 /* 317 * raid_end_bio_io() is called when we have finished servicing a mirrored 318 * operation and are ready to return a success/failure code to the buffer 319 * cache layer. 320 */ 321 static void call_bio_endio(struct r1bio *r1_bio) 322 { 323 struct bio *bio = r1_bio->master_bio; 324 325 if (!test_bit(R1BIO_Uptodate, &r1_bio->state)) 326 bio->bi_status = BLK_STS_IOERR; 327 328 bio_endio(bio); 329 } 330 331 static void raid_end_bio_io(struct r1bio *r1_bio) 332 { 333 struct bio *bio = r1_bio->master_bio; 334 struct r1conf *conf = r1_bio->mddev->private; 335 sector_t sector = r1_bio->sector; 336 337 /* if nobody has done the final endio yet, do it now */ 338 if (!test_and_set_bit(R1BIO_Returned, &r1_bio->state)) { 339 pr_debug("raid1: sync end %s on sectors %llu-%llu\n", 340 (bio_data_dir(bio) == WRITE) ? "write" : "read", 341 (unsigned long long) bio->bi_iter.bi_sector, 342 (unsigned long long) bio_end_sector(bio) - 1); 343 344 call_bio_endio(r1_bio); 345 } 346 347 free_r1bio(r1_bio); 348 /* 349 * Wake up any possible resync thread that waits for the device 350 * to go idle. All I/Os, even write-behind writes, are done. 351 */ 352 allow_barrier(conf, sector); 353 } 354 355 /* 356 * Update disk head position estimator based on IRQ completion info. 357 */ 358 static inline void update_head_pos(int disk, struct r1bio *r1_bio) 359 { 360 struct r1conf *conf = r1_bio->mddev->private; 361 362 WRITE_ONCE(conf->mirrors[disk].head_position, 363 r1_bio->sector + r1_bio->sectors); 364 } 365 366 /* 367 * Find the disk number which triggered given bio 368 */ 369 static int find_bio_disk(struct r1bio *r1_bio, struct bio *bio) 370 { 371 int mirror; 372 struct r1conf *conf = r1_bio->mddev->private; 373 int raid_disks = conf->raid_disks; 374 375 for (mirror = 0; mirror < raid_disks * 2; mirror++) 376 if (r1_bio->bios[mirror] == bio) 377 break; 378 379 BUG_ON(mirror == raid_disks * 2); 380 update_head_pos(mirror, r1_bio); 381 382 return mirror; 383 } 384 385 static void raid1_end_read_request(struct bio *bio) 386 { 387 int uptodate = !bio->bi_status; 388 struct r1bio *r1_bio = bio->bi_private; 389 struct r1conf *conf = r1_bio->mddev->private; 390 struct md_rdev *rdev = conf->mirrors[r1_bio->read_disk].rdev; 391 392 /* 393 * this branch is our 'one mirror IO has finished' event handler: 394 */ 395 update_head_pos(r1_bio->read_disk, r1_bio); 396 397 if (uptodate) { 398 set_bit(R1BIO_Uptodate, &r1_bio->state); 399 } else if (test_bit(FailFast, &rdev->flags) && 400 test_bit(R1BIO_FailFast, &r1_bio->state)) { 401 /* This was a fail-fast read so we definitely 402 * want to retry */ 403 ; 404 } else if (!raid1_should_handle_error(bio)) { 405 uptodate = 1; 406 } else { 407 /* If all other devices have failed, we want to return 408 * the error upwards rather than fail the last device. 409 * Here we redefine "uptodate" to mean "Don't want to retry" 410 */ 411 unsigned long flags; 412 spin_lock_irqsave(&conf->device_lock, flags); 413 if (r1_bio->mddev->degraded == conf->raid_disks || 414 (r1_bio->mddev->degraded == conf->raid_disks-1 && 415 test_bit(In_sync, &rdev->flags))) 416 uptodate = 1; 417 spin_unlock_irqrestore(&conf->device_lock, flags); 418 } 419 420 if (uptodate) { 421 raid_end_bio_io(r1_bio); 422 rdev_dec_pending(rdev, conf->mddev); 423 } else { 424 /* 425 * oops, read error: 426 */ 427 pr_err_ratelimited("md/raid1:%s: %pg: rescheduling sector %llu\n", 428 mdname(conf->mddev), 429 rdev->bdev, 430 (unsigned long long)r1_bio->sector); 431 set_bit(R1BIO_ReadError, &r1_bio->state); 432 reschedule_retry(r1_bio); 433 /* don't drop the reference on read_disk yet */ 434 } 435 } 436 437 static void close_write(struct r1bio *r1_bio) 438 { 439 struct mddev *mddev = r1_bio->mddev; 440 441 /* it really is the end of this request */ 442 if (test_bit(R1BIO_BehindIO, &r1_bio->state)) { 443 bio_free_pages(r1_bio->behind_master_bio); 444 bio_put(r1_bio->behind_master_bio); 445 r1_bio->behind_master_bio = NULL; 446 } 447 448 if (test_bit(R1BIO_BehindIO, &r1_bio->state)) 449 mddev->bitmap_ops->end_behind_write(mddev); 450 md_write_end(mddev); 451 } 452 453 static void r1_bio_write_done(struct r1bio *r1_bio) 454 { 455 if (!atomic_dec_and_test(&r1_bio->remaining)) 456 return; 457 458 if (test_bit(R1BIO_WriteError, &r1_bio->state)) 459 reschedule_retry(r1_bio); 460 else { 461 close_write(r1_bio); 462 if (test_bit(R1BIO_MadeGood, &r1_bio->state)) 463 reschedule_retry(r1_bio); 464 else 465 raid_end_bio_io(r1_bio); 466 } 467 } 468 469 static void raid1_end_write_request(struct bio *bio) 470 { 471 struct r1bio *r1_bio = bio->bi_private; 472 int behind = test_bit(R1BIO_BehindIO, &r1_bio->state); 473 struct r1conf *conf = r1_bio->mddev->private; 474 struct bio *to_put = NULL; 475 int mirror = find_bio_disk(r1_bio, bio); 476 struct md_rdev *rdev = conf->mirrors[mirror].rdev; 477 sector_t lo = r1_bio->sector; 478 sector_t hi = r1_bio->sector + r1_bio->sectors - 1; 479 bool ignore_error = !raid1_should_handle_error(bio) || 480 (bio->bi_status && bio_op(bio) == REQ_OP_DISCARD); 481 482 /* 483 * 'one mirror IO has finished' event handler: 484 */ 485 if (bio->bi_status && !ignore_error) { 486 set_bit(WriteErrorSeen, &rdev->flags); 487 if (!test_and_set_bit(WantReplacement, &rdev->flags)) 488 set_bit(MD_RECOVERY_NEEDED, & 489 conf->mddev->recovery); 490 491 if (test_bit(FailFast, &rdev->flags) && 492 (bio->bi_opf & MD_FAILFAST) && 493 /* We never try FailFast to WriteMostly devices */ 494 !test_bit(WriteMostly, &rdev->flags)) { 495 md_error(r1_bio->mddev, rdev); 496 } 497 498 /* 499 * When the device is faulty, it is not necessary to 500 * handle write error. 501 */ 502 if (!test_bit(Faulty, &rdev->flags)) 503 set_bit(R1BIO_WriteError, &r1_bio->state); 504 else { 505 /* Finished with this branch */ 506 r1_bio->bios[mirror] = NULL; 507 to_put = bio; 508 } 509 } else { 510 /* 511 * Set R1BIO_Uptodate in our master bio, so that we 512 * will return a good error code for to the higher 513 * levels even if IO on some other mirrored buffer 514 * fails. 515 * 516 * The 'master' represents the composite IO operation 517 * to user-side. So if something waits for IO, then it 518 * will wait for the 'master' bio. 519 */ 520 r1_bio->bios[mirror] = NULL; 521 to_put = bio; 522 /* 523 * Do not set R1BIO_Uptodate if the current device is 524 * rebuilding or Faulty. This is because we cannot use 525 * such device for properly reading the data back (we could 526 * potentially use it, if the current write would have felt 527 * before rdev->recovery_offset, but for simplicity we don't 528 * check this here. 529 */ 530 if (test_bit(In_sync, &rdev->flags) && 531 !test_bit(Faulty, &rdev->flags)) 532 set_bit(R1BIO_Uptodate, &r1_bio->state); 533 534 /* Maybe we can clear some bad blocks. */ 535 if (rdev_has_badblock(rdev, r1_bio->sector, r1_bio->sectors) && 536 !ignore_error) { 537 r1_bio->bios[mirror] = IO_MADE_GOOD; 538 set_bit(R1BIO_MadeGood, &r1_bio->state); 539 } 540 } 541 542 if (behind) { 543 if (test_bit(CollisionCheck, &rdev->flags)) 544 remove_serial(rdev, lo, hi); 545 if (test_bit(WriteMostly, &rdev->flags)) 546 atomic_dec(&r1_bio->behind_remaining); 547 548 /* 549 * In behind mode, we ACK the master bio once the I/O 550 * has safely reached all non-writemostly 551 * disks. Setting the Returned bit ensures that this 552 * gets done only once -- we don't ever want to return 553 * -EIO here, instead we'll wait 554 */ 555 if (atomic_read(&r1_bio->behind_remaining) >= (atomic_read(&r1_bio->remaining)-1) && 556 test_bit(R1BIO_Uptodate, &r1_bio->state)) { 557 /* Maybe we can return now */ 558 if (!test_and_set_bit(R1BIO_Returned, &r1_bio->state)) { 559 struct bio *mbio = r1_bio->master_bio; 560 pr_debug("raid1: behind end write sectors" 561 " %llu-%llu\n", 562 (unsigned long long) mbio->bi_iter.bi_sector, 563 (unsigned long long) bio_end_sector(mbio) - 1); 564 call_bio_endio(r1_bio); 565 } 566 } 567 } else if (test_bit(MD_SERIALIZE_POLICY, &rdev->mddev->flags)) 568 remove_serial(rdev, lo, hi); 569 if (r1_bio->bios[mirror] == NULL) 570 rdev_dec_pending(rdev, conf->mddev); 571 572 /* 573 * Let's see if all mirrored write operations have finished 574 * already. 575 */ 576 r1_bio_write_done(r1_bio); 577 578 if (to_put) 579 bio_put(to_put); 580 } 581 582 static sector_t align_to_barrier_unit_end(sector_t start_sector, 583 sector_t sectors) 584 { 585 sector_t len; 586 587 WARN_ON(sectors == 0); 588 /* 589 * len is the number of sectors from start_sector to end of the 590 * barrier unit which start_sector belongs to. 591 */ 592 len = round_up(start_sector + 1, BARRIER_UNIT_SECTOR_SIZE) - 593 start_sector; 594 595 if (len > sectors) 596 len = sectors; 597 598 return len; 599 } 600 601 static void update_read_sectors(struct r1conf *conf, int disk, 602 sector_t this_sector, int len) 603 { 604 struct raid1_info *info = &conf->mirrors[disk]; 605 606 atomic_inc(&info->rdev->nr_pending); 607 if (info->next_seq_sect != this_sector) 608 info->seq_start = this_sector; 609 info->next_seq_sect = this_sector + len; 610 } 611 612 static int choose_first_rdev(struct r1conf *conf, struct r1bio *r1_bio, 613 int *max_sectors) 614 { 615 sector_t this_sector = r1_bio->sector; 616 int len = r1_bio->sectors; 617 int disk; 618 619 for (disk = 0 ; disk < conf->raid_disks * 2 ; disk++) { 620 struct md_rdev *rdev; 621 int read_len; 622 623 if (r1_bio->bios[disk] == IO_BLOCKED) 624 continue; 625 626 rdev = conf->mirrors[disk].rdev; 627 if (!rdev || test_bit(Faulty, &rdev->flags)) 628 continue; 629 630 /* choose the first disk even if it has some bad blocks. */ 631 read_len = raid1_check_read_range(rdev, this_sector, &len); 632 if (read_len > 0) { 633 update_read_sectors(conf, disk, this_sector, read_len); 634 *max_sectors = read_len; 635 return disk; 636 } 637 } 638 639 return -1; 640 } 641 642 static bool rdev_in_recovery(struct md_rdev *rdev, struct r1bio *r1_bio) 643 { 644 return !test_bit(In_sync, &rdev->flags) && 645 rdev->recovery_offset < r1_bio->sector + r1_bio->sectors; 646 } 647 648 static int choose_bb_rdev(struct r1conf *conf, struct r1bio *r1_bio, 649 int *max_sectors) 650 { 651 sector_t this_sector = r1_bio->sector; 652 int best_disk = -1; 653 int best_len = 0; 654 int disk; 655 656 for (disk = 0 ; disk < conf->raid_disks * 2 ; disk++) { 657 struct md_rdev *rdev; 658 int len; 659 int read_len; 660 661 if (r1_bio->bios[disk] == IO_BLOCKED) 662 continue; 663 664 rdev = conf->mirrors[disk].rdev; 665 if (!rdev || test_bit(Faulty, &rdev->flags) || 666 rdev_in_recovery(rdev, r1_bio) || 667 test_bit(WriteMostly, &rdev->flags)) 668 continue; 669 670 /* keep track of the disk with the most readable sectors. */ 671 len = r1_bio->sectors; 672 read_len = raid1_check_read_range(rdev, this_sector, &len); 673 if (read_len > best_len) { 674 best_disk = disk; 675 best_len = read_len; 676 } 677 } 678 679 if (best_disk != -1) { 680 *max_sectors = best_len; 681 update_read_sectors(conf, best_disk, this_sector, best_len); 682 } 683 684 return best_disk; 685 } 686 687 static int choose_slow_rdev(struct r1conf *conf, struct r1bio *r1_bio, 688 int *max_sectors) 689 { 690 sector_t this_sector = r1_bio->sector; 691 int bb_disk = -1; 692 int bb_read_len = 0; 693 int disk; 694 695 for (disk = 0 ; disk < conf->raid_disks * 2 ; disk++) { 696 struct md_rdev *rdev; 697 int len; 698 int read_len; 699 700 if (r1_bio->bios[disk] == IO_BLOCKED) 701 continue; 702 703 rdev = conf->mirrors[disk].rdev; 704 if (!rdev || test_bit(Faulty, &rdev->flags) || 705 !test_bit(WriteMostly, &rdev->flags) || 706 rdev_in_recovery(rdev, r1_bio)) 707 continue; 708 709 /* there are no bad blocks, we can use this disk */ 710 len = r1_bio->sectors; 711 read_len = raid1_check_read_range(rdev, this_sector, &len); 712 if (read_len == r1_bio->sectors) { 713 *max_sectors = read_len; 714 update_read_sectors(conf, disk, this_sector, read_len); 715 return disk; 716 } 717 718 /* 719 * there are partial bad blocks, choose the rdev with largest 720 * read length. 721 */ 722 if (read_len > bb_read_len) { 723 bb_disk = disk; 724 bb_read_len = read_len; 725 } 726 } 727 728 if (bb_disk != -1) { 729 *max_sectors = bb_read_len; 730 update_read_sectors(conf, bb_disk, this_sector, bb_read_len); 731 } 732 733 return bb_disk; 734 } 735 736 static bool is_sequential(struct r1conf *conf, int disk, struct r1bio *r1_bio) 737 { 738 /* TODO: address issues with this check and concurrency. */ 739 return conf->mirrors[disk].next_seq_sect == r1_bio->sector || 740 READ_ONCE(conf->mirrors[disk].head_position) == r1_bio->sector; 741 } 742 743 /* 744 * If buffered sequential IO size exceeds optimal iosize, check if there is idle 745 * disk. If yes, choose the idle disk. 746 */ 747 static bool should_choose_next(struct r1conf *conf, int disk) 748 { 749 struct raid1_info *mirror = &conf->mirrors[disk]; 750 int opt_iosize; 751 752 if (!test_bit(Nonrot, &mirror->rdev->flags)) 753 return false; 754 755 opt_iosize = bdev_io_opt(mirror->rdev->bdev) >> 9; 756 return opt_iosize > 0 && mirror->seq_start != MaxSector && 757 mirror->next_seq_sect > opt_iosize && 758 mirror->next_seq_sect - opt_iosize >= mirror->seq_start; 759 } 760 761 static bool rdev_readable(struct md_rdev *rdev, struct r1bio *r1_bio) 762 { 763 if (!rdev || test_bit(Faulty, &rdev->flags)) 764 return false; 765 766 if (rdev_in_recovery(rdev, r1_bio)) 767 return false; 768 769 /* don't read from slow disk unless have to */ 770 if (test_bit(WriteMostly, &rdev->flags)) 771 return false; 772 773 /* don't split IO for bad blocks unless have to */ 774 if (rdev_has_badblock(rdev, r1_bio->sector, r1_bio->sectors)) 775 return false; 776 777 return true; 778 } 779 780 struct read_balance_ctl { 781 sector_t closest_dist; 782 int closest_dist_disk; 783 int min_pending; 784 int min_pending_disk; 785 int sequential_disk; 786 int readable_disks; 787 }; 788 789 static int choose_best_rdev(struct r1conf *conf, struct r1bio *r1_bio) 790 { 791 int disk; 792 struct read_balance_ctl ctl = { 793 .closest_dist_disk = -1, 794 .closest_dist = MaxSector, 795 .min_pending_disk = -1, 796 .min_pending = UINT_MAX, 797 .sequential_disk = -1, 798 }; 799 800 for (disk = 0 ; disk < conf->raid_disks * 2 ; disk++) { 801 struct md_rdev *rdev; 802 sector_t dist; 803 unsigned int pending; 804 805 if (r1_bio->bios[disk] == IO_BLOCKED) 806 continue; 807 808 rdev = conf->mirrors[disk].rdev; 809 if (!rdev_readable(rdev, r1_bio)) 810 continue; 811 812 /* At least two disks to choose from so failfast is OK */ 813 if (ctl.readable_disks++ == 1) 814 set_bit(R1BIO_FailFast, &r1_bio->state); 815 816 pending = atomic_read(&rdev->nr_pending); 817 dist = abs(r1_bio->sector - 818 READ_ONCE(conf->mirrors[disk].head_position)); 819 820 /* Don't change to another disk for sequential reads */ 821 if (is_sequential(conf, disk, r1_bio)) { 822 if (!should_choose_next(conf, disk)) 823 return disk; 824 825 /* 826 * Add 'pending' to avoid choosing this disk if 827 * there is other idle disk. 828 */ 829 pending++; 830 /* 831 * If there is no other idle disk, this disk 832 * will be chosen. 833 */ 834 ctl.sequential_disk = disk; 835 } 836 837 if (ctl.min_pending > pending) { 838 ctl.min_pending = pending; 839 ctl.min_pending_disk = disk; 840 } 841 842 if (ctl.closest_dist > dist) { 843 ctl.closest_dist = dist; 844 ctl.closest_dist_disk = disk; 845 } 846 } 847 848 /* 849 * sequential IO size exceeds optimal iosize, however, there is no other 850 * idle disk, so choose the sequential disk. 851 */ 852 if (ctl.sequential_disk != -1 && ctl.min_pending != 0) 853 return ctl.sequential_disk; 854 855 /* 856 * If all disks are rotational, choose the closest disk. If any disk is 857 * non-rotational, choose the disk with less pending request even the 858 * disk is rotational, which might/might not be optimal for raids with 859 * mixed ratation/non-rotational disks depending on workload. 860 */ 861 if (ctl.min_pending_disk != -1 && 862 (READ_ONCE(conf->nonrot_disks) || ctl.min_pending == 0)) 863 return ctl.min_pending_disk; 864 else 865 return ctl.closest_dist_disk; 866 } 867 868 /* 869 * This routine returns the disk from which the requested read should be done. 870 * 871 * 1) If resync is in progress, find the first usable disk and use it even if it 872 * has some bad blocks. 873 * 874 * 2) Now that there is no resync, loop through all disks and skipping slow 875 * disks and disks with bad blocks for now. Only pay attention to key disk 876 * choice. 877 * 878 * 3) If we've made it this far, now look for disks with bad blocks and choose 879 * the one with most number of sectors. 880 * 881 * 4) If we are all the way at the end, we have no choice but to use a disk even 882 * if it is write mostly. 883 * 884 * The rdev for the device selected will have nr_pending incremented. 885 */ 886 static int read_balance(struct r1conf *conf, struct r1bio *r1_bio, 887 int *max_sectors) 888 { 889 int disk; 890 891 clear_bit(R1BIO_FailFast, &r1_bio->state); 892 893 if (raid1_should_read_first(conf->mddev, r1_bio->sector, 894 r1_bio->sectors)) 895 return choose_first_rdev(conf, r1_bio, max_sectors); 896 897 disk = choose_best_rdev(conf, r1_bio); 898 if (disk >= 0) { 899 *max_sectors = r1_bio->sectors; 900 update_read_sectors(conf, disk, r1_bio->sector, 901 r1_bio->sectors); 902 return disk; 903 } 904 905 /* 906 * If we are here it means we didn't find a perfectly good disk so 907 * now spend a bit more time trying to find one with the most good 908 * sectors. 909 */ 910 disk = choose_bb_rdev(conf, r1_bio, max_sectors); 911 if (disk >= 0) 912 return disk; 913 914 return choose_slow_rdev(conf, r1_bio, max_sectors); 915 } 916 917 static void wake_up_barrier(struct r1conf *conf) 918 { 919 if (wq_has_sleeper(&conf->wait_barrier)) 920 wake_up(&conf->wait_barrier); 921 } 922 923 static void flush_bio_list(struct r1conf *conf, struct bio *bio) 924 { 925 /* flush any pending bitmap writes to disk before proceeding w/ I/O */ 926 raid1_prepare_flush_writes(conf->mddev); 927 wake_up_barrier(conf); 928 929 while (bio) { /* submit pending writes */ 930 struct bio *next = bio->bi_next; 931 932 raid1_submit_write(bio); 933 bio = next; 934 cond_resched(); 935 } 936 } 937 938 static void flush_pending_writes(struct r1conf *conf) 939 { 940 /* Any writes that have been queued but are awaiting 941 * bitmap updates get flushed here. 942 */ 943 spin_lock_irq(&conf->device_lock); 944 945 if (conf->pending_bio_list.head) { 946 struct blk_plug plug; 947 struct bio *bio; 948 949 bio = bio_list_get(&conf->pending_bio_list); 950 spin_unlock_irq(&conf->device_lock); 951 952 /* 953 * As this is called in a wait_event() loop (see freeze_array), 954 * current->state might be TASK_UNINTERRUPTIBLE which will 955 * cause a warning when we prepare to wait again. As it is 956 * rare that this path is taken, it is perfectly safe to force 957 * us to go around the wait_event() loop again, so the warning 958 * is a false-positive. Silence the warning by resetting 959 * thread state 960 */ 961 __set_current_state(TASK_RUNNING); 962 blk_start_plug(&plug); 963 flush_bio_list(conf, bio); 964 blk_finish_plug(&plug); 965 } else 966 spin_unlock_irq(&conf->device_lock); 967 } 968 969 /* Barriers.... 970 * Sometimes we need to suspend IO while we do something else, 971 * either some resync/recovery, or reconfigure the array. 972 * To do this we raise a 'barrier'. 973 * The 'barrier' is a counter that can be raised multiple times 974 * to count how many activities are happening which preclude 975 * normal IO. 976 * We can only raise the barrier if there is no pending IO. 977 * i.e. if nr_pending == 0. 978 * We choose only to raise the barrier if no-one is waiting for the 979 * barrier to go down. This means that as soon as an IO request 980 * is ready, no other operations which require a barrier will start 981 * until the IO request has had a chance. 982 * 983 * So: regular IO calls 'wait_barrier'. When that returns there 984 * is no backgroup IO happening, It must arrange to call 985 * allow_barrier when it has finished its IO. 986 * backgroup IO calls must call raise_barrier. Once that returns 987 * there is no normal IO happeing. It must arrange to call 988 * lower_barrier when the particular background IO completes. 989 * 990 * If resync/recovery is interrupted, returns -EINTR; 991 * Otherwise, returns 0. 992 */ 993 static int raise_barrier(struct r1conf *conf, sector_t sector_nr) 994 { 995 int idx = sector_to_idx(sector_nr); 996 997 spin_lock_irq(&conf->resync_lock); 998 999 /* Wait until no block IO is waiting */ 1000 wait_event_lock_irq(conf->wait_barrier, 1001 !atomic_read(&conf->nr_waiting[idx]), 1002 conf->resync_lock); 1003 1004 /* block any new IO from starting */ 1005 atomic_inc(&conf->barrier[idx]); 1006 /* 1007 * In raise_barrier() we firstly increase conf->barrier[idx] then 1008 * check conf->nr_pending[idx]. In _wait_barrier() we firstly 1009 * increase conf->nr_pending[idx] then check conf->barrier[idx]. 1010 * A memory barrier here to make sure conf->nr_pending[idx] won't 1011 * be fetched before conf->barrier[idx] is increased. Otherwise 1012 * there will be a race between raise_barrier() and _wait_barrier(). 1013 */ 1014 smp_mb__after_atomic(); 1015 1016 /* For these conditions we must wait: 1017 * A: while the array is in frozen state 1018 * B: while conf->nr_pending[idx] is not 0, meaning regular I/O 1019 * existing in corresponding I/O barrier bucket. 1020 * C: while conf->barrier[idx] >= RESYNC_DEPTH, meaning reaches 1021 * max resync count which allowed on current I/O barrier bucket. 1022 */ 1023 wait_event_lock_irq(conf->wait_barrier, 1024 (!conf->array_frozen && 1025 !atomic_read(&conf->nr_pending[idx]) && 1026 atomic_read(&conf->barrier[idx]) < RESYNC_DEPTH) || 1027 test_bit(MD_RECOVERY_INTR, &conf->mddev->recovery), 1028 conf->resync_lock); 1029 1030 if (test_bit(MD_RECOVERY_INTR, &conf->mddev->recovery)) { 1031 atomic_dec(&conf->barrier[idx]); 1032 spin_unlock_irq(&conf->resync_lock); 1033 wake_up(&conf->wait_barrier); 1034 return -EINTR; 1035 } 1036 1037 atomic_inc(&conf->nr_sync_pending); 1038 spin_unlock_irq(&conf->resync_lock); 1039 1040 return 0; 1041 } 1042 1043 static void lower_barrier(struct r1conf *conf, sector_t sector_nr) 1044 { 1045 int idx = sector_to_idx(sector_nr); 1046 1047 BUG_ON(atomic_read(&conf->barrier[idx]) <= 0); 1048 1049 atomic_dec(&conf->barrier[idx]); 1050 atomic_dec(&conf->nr_sync_pending); 1051 wake_up(&conf->wait_barrier); 1052 } 1053 1054 static bool _wait_barrier(struct r1conf *conf, int idx, bool nowait) 1055 { 1056 bool ret = true; 1057 1058 /* 1059 * We need to increase conf->nr_pending[idx] very early here, 1060 * then raise_barrier() can be blocked when it waits for 1061 * conf->nr_pending[idx] to be 0. Then we can avoid holding 1062 * conf->resync_lock when there is no barrier raised in same 1063 * barrier unit bucket. Also if the array is frozen, I/O 1064 * should be blocked until array is unfrozen. 1065 */ 1066 atomic_inc(&conf->nr_pending[idx]); 1067 /* 1068 * In _wait_barrier() we firstly increase conf->nr_pending[idx], then 1069 * check conf->barrier[idx]. In raise_barrier() we firstly increase 1070 * conf->barrier[idx], then check conf->nr_pending[idx]. A memory 1071 * barrier is necessary here to make sure conf->barrier[idx] won't be 1072 * fetched before conf->nr_pending[idx] is increased. Otherwise there 1073 * will be a race between _wait_barrier() and raise_barrier(). 1074 */ 1075 smp_mb__after_atomic(); 1076 1077 /* 1078 * Don't worry about checking two atomic_t variables at same time 1079 * here. If during we check conf->barrier[idx], the array is 1080 * frozen (conf->array_frozen is 1), and chonf->barrier[idx] is 1081 * 0, it is safe to return and make the I/O continue. Because the 1082 * array is frozen, all I/O returned here will eventually complete 1083 * or be queued, no race will happen. See code comment in 1084 * frozen_array(). 1085 */ 1086 if (!READ_ONCE(conf->array_frozen) && 1087 !atomic_read(&conf->barrier[idx])) 1088 return ret; 1089 1090 /* 1091 * After holding conf->resync_lock, conf->nr_pending[idx] 1092 * should be decreased before waiting for barrier to drop. 1093 * Otherwise, we may encounter a race condition because 1094 * raise_barrer() might be waiting for conf->nr_pending[idx] 1095 * to be 0 at same time. 1096 */ 1097 spin_lock_irq(&conf->resync_lock); 1098 atomic_inc(&conf->nr_waiting[idx]); 1099 atomic_dec(&conf->nr_pending[idx]); 1100 /* 1101 * In case freeze_array() is waiting for 1102 * get_unqueued_pending() == extra 1103 */ 1104 wake_up_barrier(conf); 1105 /* Wait for the barrier in same barrier unit bucket to drop. */ 1106 1107 /* Return false when nowait flag is set */ 1108 if (nowait) { 1109 ret = false; 1110 } else { 1111 wait_event_lock_irq(conf->wait_barrier, 1112 !conf->array_frozen && 1113 !atomic_read(&conf->barrier[idx]), 1114 conf->resync_lock); 1115 atomic_inc(&conf->nr_pending[idx]); 1116 } 1117 1118 atomic_dec(&conf->nr_waiting[idx]); 1119 spin_unlock_irq(&conf->resync_lock); 1120 return ret; 1121 } 1122 1123 static bool wait_read_barrier(struct r1conf *conf, sector_t sector_nr, bool nowait) 1124 { 1125 int idx = sector_to_idx(sector_nr); 1126 bool ret = true; 1127 1128 /* 1129 * Very similar to _wait_barrier(). The difference is, for read 1130 * I/O we don't need wait for sync I/O, but if the whole array 1131 * is frozen, the read I/O still has to wait until the array is 1132 * unfrozen. Since there is no ordering requirement with 1133 * conf->barrier[idx] here, memory barrier is unnecessary as well. 1134 */ 1135 atomic_inc(&conf->nr_pending[idx]); 1136 1137 if (!READ_ONCE(conf->array_frozen)) 1138 return ret; 1139 1140 spin_lock_irq(&conf->resync_lock); 1141 atomic_inc(&conf->nr_waiting[idx]); 1142 atomic_dec(&conf->nr_pending[idx]); 1143 /* 1144 * In case freeze_array() is waiting for 1145 * get_unqueued_pending() == extra 1146 */ 1147 wake_up_barrier(conf); 1148 /* Wait for array to be unfrozen */ 1149 1150 /* Return false when nowait flag is set */ 1151 if (nowait) { 1152 /* Return false when nowait flag is set */ 1153 ret = false; 1154 } else { 1155 wait_event_lock_irq(conf->wait_barrier, 1156 !conf->array_frozen, 1157 conf->resync_lock); 1158 atomic_inc(&conf->nr_pending[idx]); 1159 } 1160 1161 atomic_dec(&conf->nr_waiting[idx]); 1162 spin_unlock_irq(&conf->resync_lock); 1163 return ret; 1164 } 1165 1166 static bool wait_barrier(struct r1conf *conf, sector_t sector_nr, bool nowait) 1167 { 1168 int idx = sector_to_idx(sector_nr); 1169 1170 return _wait_barrier(conf, idx, nowait); 1171 } 1172 1173 static void _allow_barrier(struct r1conf *conf, int idx) 1174 { 1175 atomic_dec(&conf->nr_pending[idx]); 1176 wake_up_barrier(conf); 1177 } 1178 1179 static void allow_barrier(struct r1conf *conf, sector_t sector_nr) 1180 { 1181 int idx = sector_to_idx(sector_nr); 1182 1183 _allow_barrier(conf, idx); 1184 } 1185 1186 /* conf->resync_lock should be held */ 1187 static int get_unqueued_pending(struct r1conf *conf) 1188 { 1189 int idx, ret; 1190 1191 ret = atomic_read(&conf->nr_sync_pending); 1192 for (idx = 0; idx < BARRIER_BUCKETS_NR; idx++) 1193 ret += atomic_read(&conf->nr_pending[idx]) - 1194 atomic_read(&conf->nr_queued[idx]); 1195 1196 return ret; 1197 } 1198 1199 static void freeze_array(struct r1conf *conf, int extra) 1200 { 1201 /* Stop sync I/O and normal I/O and wait for everything to 1202 * go quiet. 1203 * This is called in two situations: 1204 * 1) management command handlers (reshape, remove disk, quiesce). 1205 * 2) one normal I/O request failed. 1206 1207 * After array_frozen is set to 1, new sync IO will be blocked at 1208 * raise_barrier(), and new normal I/O will blocked at _wait_barrier() 1209 * or wait_read_barrier(). The flying I/Os will either complete or be 1210 * queued. When everything goes quite, there are only queued I/Os left. 1211 1212 * Every flying I/O contributes to a conf->nr_pending[idx], idx is the 1213 * barrier bucket index which this I/O request hits. When all sync and 1214 * normal I/O are queued, sum of all conf->nr_pending[] will match sum 1215 * of all conf->nr_queued[]. But normal I/O failure is an exception, 1216 * in handle_read_error(), we may call freeze_array() before trying to 1217 * fix the read error. In this case, the error read I/O is not queued, 1218 * so get_unqueued_pending() == 1. 1219 * 1220 * Therefore before this function returns, we need to wait until 1221 * get_unqueued_pendings(conf) gets equal to extra. For 1222 * normal I/O context, extra is 1, in rested situations extra is 0. 1223 */ 1224 spin_lock_irq(&conf->resync_lock); 1225 conf->array_frozen = 1; 1226 mddev_add_trace_msg(conf->mddev, "raid1 wait freeze"); 1227 wait_event_lock_irq_cmd( 1228 conf->wait_barrier, 1229 get_unqueued_pending(conf) == extra, 1230 conf->resync_lock, 1231 flush_pending_writes(conf)); 1232 spin_unlock_irq(&conf->resync_lock); 1233 } 1234 static void unfreeze_array(struct r1conf *conf) 1235 { 1236 /* reverse the effect of the freeze */ 1237 spin_lock_irq(&conf->resync_lock); 1238 conf->array_frozen = 0; 1239 spin_unlock_irq(&conf->resync_lock); 1240 wake_up(&conf->wait_barrier); 1241 } 1242 1243 static void alloc_behind_master_bio(struct r1bio *r1_bio, 1244 struct bio *bio) 1245 { 1246 int size = bio->bi_iter.bi_size; 1247 unsigned vcnt = (size + PAGE_SIZE - 1) >> PAGE_SHIFT; 1248 int i = 0; 1249 struct bio *behind_bio = NULL; 1250 1251 behind_bio = bio_alloc_bioset(NULL, vcnt, bio->bi_opf, GFP_NOIO, 1252 &r1_bio->mddev->bio_set); 1253 1254 /* discard op, we don't support writezero/writesame yet */ 1255 if (!bio_has_data(bio)) { 1256 behind_bio->bi_iter.bi_size = size; 1257 goto skip_copy; 1258 } 1259 1260 while (i < vcnt && size) { 1261 struct page *page; 1262 int len = min_t(int, PAGE_SIZE, size); 1263 1264 page = alloc_page(GFP_NOIO); 1265 if (unlikely(!page)) 1266 goto free_pages; 1267 1268 if (!bio_add_page(behind_bio, page, len, 0)) { 1269 put_page(page); 1270 goto free_pages; 1271 } 1272 1273 size -= len; 1274 i++; 1275 } 1276 1277 bio_copy_data(behind_bio, bio); 1278 skip_copy: 1279 r1_bio->behind_master_bio = behind_bio; 1280 set_bit(R1BIO_BehindIO, &r1_bio->state); 1281 1282 return; 1283 1284 free_pages: 1285 pr_debug("%dB behind alloc failed, doing sync I/O\n", 1286 bio->bi_iter.bi_size); 1287 bio_free_pages(behind_bio); 1288 bio_put(behind_bio); 1289 } 1290 1291 static void raid1_unplug(struct blk_plug_cb *cb, bool from_schedule) 1292 { 1293 struct raid1_plug_cb *plug = container_of(cb, struct raid1_plug_cb, 1294 cb); 1295 struct mddev *mddev = plug->cb.data; 1296 struct r1conf *conf = mddev->private; 1297 struct bio *bio; 1298 1299 if (from_schedule) { 1300 spin_lock_irq(&conf->device_lock); 1301 bio_list_merge(&conf->pending_bio_list, &plug->pending); 1302 spin_unlock_irq(&conf->device_lock); 1303 wake_up_barrier(conf); 1304 md_wakeup_thread(mddev->thread); 1305 kfree(plug); 1306 return; 1307 } 1308 1309 /* we aren't scheduling, so we can do the write-out directly. */ 1310 bio = bio_list_get(&plug->pending); 1311 flush_bio_list(conf, bio); 1312 kfree(plug); 1313 } 1314 1315 static void init_r1bio(struct r1bio *r1_bio, struct mddev *mddev, struct bio *bio) 1316 { 1317 r1_bio->master_bio = bio; 1318 r1_bio->sectors = bio_sectors(bio); 1319 r1_bio->state = 0; 1320 r1_bio->mddev = mddev; 1321 r1_bio->sector = bio->bi_iter.bi_sector; 1322 } 1323 1324 static inline struct r1bio * 1325 alloc_r1bio(struct mddev *mddev, struct bio *bio) 1326 { 1327 struct r1conf *conf = mddev->private; 1328 struct r1bio *r1_bio; 1329 1330 r1_bio = mempool_alloc(conf->r1bio_pool, GFP_NOIO); 1331 memset(r1_bio, 0, offsetof(struct r1bio, bios[conf->raid_disks * 2])); 1332 init_r1bio(r1_bio, mddev, bio); 1333 return r1_bio; 1334 } 1335 1336 static void raid1_read_request(struct mddev *mddev, struct bio *bio, 1337 int max_read_sectors, struct r1bio *r1_bio) 1338 { 1339 struct r1conf *conf = mddev->private; 1340 struct raid1_info *mirror; 1341 struct bio *read_bio; 1342 int max_sectors; 1343 int rdisk; 1344 bool r1bio_existed = !!r1_bio; 1345 bool nowait = bio->bi_opf & REQ_NOWAIT; 1346 1347 /* 1348 * An md cloned bio indicates we are in the error path. 1349 * This is more reliable than checking r1_bio, which might 1350 * be NULL even in the error path if a failed bio was split. 1351 */ 1352 bool err_path = md_cloned_bio(mddev, bio); 1353 1354 /* 1355 * If we are in the error path, we are blocking the raid1d 1356 * thread so there is a tiny risk of deadlock. So ask for 1357 * emergency memory if needed. 1358 */ 1359 gfp_t gfp = err_path ? (GFP_NOIO | __GFP_HIGH) : GFP_NOIO; 1360 1361 /* 1362 * Still need barrier for READ in case that whole 1363 * array is frozen. 1364 */ 1365 if (!wait_read_barrier(conf, bio->bi_iter.bi_sector, nowait)) { 1366 bio_wouldblock_error(bio); 1367 1368 if (r1bio_existed) { 1369 set_bit(R1BIO_Returned, &r1_bio->state); 1370 raid_end_bio_io(r1_bio); 1371 } 1372 1373 return; 1374 } 1375 1376 if (!r1_bio) 1377 r1_bio = alloc_r1bio(mddev, bio); 1378 else 1379 init_r1bio(r1_bio, mddev, bio); 1380 r1_bio->sectors = max_read_sectors; 1381 1382 /* 1383 * make_request() can abort the operation when read-ahead is being 1384 * used and no empty request is available. 1385 */ 1386 rdisk = read_balance(conf, r1_bio, &max_sectors); 1387 if (rdisk < 0) { 1388 /* couldn't find anywhere to read from */ 1389 if (r1bio_existed) 1390 pr_crit_ratelimited("md/raid1:%s: %pg: unrecoverable I/O read error for block %llu\n", 1391 mdname(mddev), 1392 conf->mirrors[r1_bio->read_disk].rdev->bdev, 1393 r1_bio->sector); 1394 raid_end_bio_io(r1_bio); 1395 return; 1396 } 1397 mirror = conf->mirrors + rdisk; 1398 1399 if (r1bio_existed) 1400 pr_info_ratelimited("md/raid1:%s: redirecting sector %llu to other mirror: %pg\n", 1401 mdname(mddev), 1402 (unsigned long long)r1_bio->sector, 1403 mirror->rdev->bdev); 1404 1405 if (test_bit(WriteMostly, &mirror->rdev->flags) && 1406 md_bitmap_enabled(mddev, false)) { 1407 /* 1408 * Reading from a write-mostly device must take care not to 1409 * over-take any writes that are 'behind' 1410 */ 1411 mddev_add_trace_msg(mddev, "raid1 wait behind writes"); 1412 if (!mddev->bitmap_ops->wait_behind_writes(mddev, nowait)) { 1413 bio_wouldblock_error(bio); 1414 set_bit(R1BIO_Returned, &r1_bio->state); 1415 goto err_handle; 1416 } 1417 } 1418 1419 if (max_sectors < bio_sectors(bio)) { 1420 bio = bio_submit_split_bioset(bio, max_sectors, 1421 &conf->bio_split); 1422 if (!bio) { 1423 set_bit(R1BIO_Returned, &r1_bio->state); 1424 goto err_handle; 1425 } 1426 1427 r1_bio->master_bio = bio; 1428 r1_bio->sectors = max_sectors; 1429 } 1430 1431 r1_bio->read_disk = rdisk; 1432 if (likely(!md_cloned_bio(mddev, bio))) { 1433 md_account_bio(mddev, &bio); 1434 r1_bio->master_bio = bio; 1435 } 1436 read_bio = bio_alloc_clone(mirror->rdev->bdev, bio, gfp, 1437 &mddev->bio_set); 1438 read_bio->bi_opf &= ~REQ_NOWAIT; 1439 r1_bio->bios[rdisk] = read_bio; 1440 1441 read_bio->bi_iter.bi_sector = r1_bio->sector + 1442 mirror->rdev->data_offset; 1443 read_bio->bi_end_io = raid1_end_read_request; 1444 if (test_bit(FailFast, &mirror->rdev->flags) && 1445 test_bit(R1BIO_FailFast, &r1_bio->state)) 1446 read_bio->bi_opf |= MD_FAILFAST; 1447 read_bio->bi_private = r1_bio; 1448 mddev_trace_remap(mddev, read_bio, r1_bio->sector); 1449 submit_bio_noacct(read_bio); 1450 return; 1451 1452 err_handle: 1453 atomic_dec(&mirror->rdev->nr_pending); 1454 raid_end_bio_io(r1_bio); 1455 } 1456 1457 static bool wait_blocked_rdev(struct mddev *mddev, struct bio *bio) 1458 { 1459 struct r1conf *conf = mddev->private; 1460 int disks = conf->raid_disks * 2; 1461 int i; 1462 1463 retry: 1464 for (i = 0; i < disks; i++) { 1465 struct md_rdev *rdev = conf->mirrors[i].rdev; 1466 1467 if (!rdev) 1468 continue; 1469 1470 /* don't write here until the bad block is acknowledged */ 1471 if (test_bit(WriteErrorSeen, &rdev->flags) && 1472 rdev_has_badblock(rdev, bio->bi_iter.bi_sector, 1473 bio_sectors(bio)) < 0) 1474 set_bit(BlockedBadBlocks, &rdev->flags); 1475 1476 if (rdev_blocked(rdev)) { 1477 if (bio->bi_opf & REQ_NOWAIT) 1478 return false; 1479 1480 mddev_add_trace_msg(rdev->mddev, "raid1 wait rdev %d blocked", 1481 rdev->raid_disk); 1482 atomic_inc(&rdev->nr_pending); 1483 md_wait_for_blocked_rdev(rdev, rdev->mddev); 1484 goto retry; 1485 } 1486 } 1487 1488 return true; 1489 } 1490 1491 static void raid1_start_write_behind(struct mddev *mddev, struct r1bio *r1_bio, 1492 struct bio *bio) 1493 { 1494 unsigned long max_write_behind = mddev->bitmap_info.max_write_behind; 1495 struct md_bitmap_stats stats; 1496 int err; 1497 1498 /* behind write rely on bitmap, see bitmap_operations */ 1499 if (!md_bitmap_enabled(mddev, false)) 1500 return; 1501 1502 err = mddev->bitmap_ops->get_stats(mddev->bitmap, &stats); 1503 if (err) 1504 return; 1505 1506 /* Don't do behind IO if reader is waiting, or there are too many. */ 1507 if (!stats.behind_wait && stats.behind_writes < max_write_behind) 1508 alloc_behind_master_bio(r1_bio, bio); 1509 1510 if (test_bit(R1BIO_BehindIO, &r1_bio->state)) 1511 mddev->bitmap_ops->start_behind_write(mddev); 1512 1513 } 1514 1515 static bool raid1_write_request(struct mddev *mddev, struct bio *bio, 1516 int max_sectors) 1517 { 1518 struct r1conf *conf = mddev->private; 1519 struct r1bio *r1_bio; 1520 int i, disks, k; 1521 unsigned long flags; 1522 int first_clone; 1523 bool write_behind = false; 1524 bool nowait = bio->bi_opf & REQ_NOWAIT; 1525 bool is_discard = op_is_discard(bio->bi_opf); 1526 sector_t sector = bio->bi_iter.bi_sector; 1527 1528 if (mddev_is_clustered(mddev) && 1529 mddev->cluster_ops->area_resyncing(mddev, WRITE, sector, 1530 bio_end_sector(bio))) { 1531 1532 if (nowait) { 1533 bio_wouldblock_error(bio); 1534 return false; 1535 } 1536 wait_event_idle(conf->wait_barrier, 1537 !mddev->cluster_ops->area_resyncing(mddev, WRITE, 1538 sector, 1539 bio_end_sector(bio))); 1540 } 1541 1542 /* 1543 * Register the new request and wait if the reconstruction 1544 * thread has put up a bar for new requests. 1545 * Continue immediately if no resync is active currently. 1546 */ 1547 if (!wait_barrier(conf, sector, nowait)) { 1548 bio_wouldblock_error(bio); 1549 return false; 1550 } 1551 1552 if (!wait_blocked_rdev(mddev, bio)) { 1553 bio_wouldblock_error(bio); 1554 goto err_allow_barrier; 1555 } 1556 1557 r1_bio = alloc_r1bio(mddev, bio); 1558 r1_bio->sectors = max_sectors; 1559 1560 /* first select target devices under rcu_lock and 1561 * inc refcount on their rdev. Record them by setting 1562 * bios[x] to bio 1563 * If there are known/acknowledged bad blocks on any device on 1564 * which we have seen a write error, we want to avoid writing those 1565 * blocks. 1566 * This potentially requires several writes to write around 1567 * the bad blocks. Each set of writes gets it's own r1bio 1568 * with a set of bios attached. 1569 */ 1570 1571 disks = conf->raid_disks * 2; 1572 for (i = 0; i < disks; i++) { 1573 struct md_rdev *rdev = conf->mirrors[i].rdev; 1574 1575 /* 1576 * The write-behind io is only attempted on drives marked as 1577 * write-mostly, which means we could allocate write behind 1578 * bio later. 1579 */ 1580 if (!is_discard && rdev && test_bit(WriteMostly, &rdev->flags)) 1581 write_behind = true; 1582 1583 r1_bio->bios[i] = NULL; 1584 if (!rdev || test_bit(Faulty, &rdev->flags)) 1585 continue; 1586 1587 if (test_bit(WriteErrorSeen, &rdev->flags)) { 1588 sector_t first_bad; 1589 sector_t bad_sectors; 1590 int is_bad; 1591 1592 is_bad = is_badblock(rdev, sector, max_sectors, 1593 &first_bad, &bad_sectors); 1594 if (is_bad && first_bad <= sector) { 1595 /* Cannot write here at all */ 1596 bad_sectors -= (sector - first_bad); 1597 if (bad_sectors < max_sectors) 1598 /* mustn't write more than bad_sectors 1599 * to other devices yet 1600 */ 1601 max_sectors = bad_sectors; 1602 continue; 1603 } 1604 if (is_bad) { 1605 int good_sectors; 1606 1607 /* 1608 * We cannot atomically write this, so just 1609 * error in that case. It could be possible to 1610 * atomically write other mirrors, but the 1611 * complexity of supporting that is not worth 1612 * the benefit. 1613 */ 1614 if (bio->bi_opf & REQ_ATOMIC) { 1615 bio->bi_status = BLK_STS_NOTSUPP; 1616 bio_endio(bio); 1617 goto err_dec_pending; 1618 } 1619 1620 good_sectors = first_bad - sector; 1621 if (good_sectors < max_sectors) 1622 max_sectors = good_sectors; 1623 } 1624 } 1625 1626 atomic_inc(&rdev->nr_pending); 1627 r1_bio->bios[i] = bio; 1628 } 1629 1630 /* 1631 * When using a bitmap, we may call alloc_behind_master_bio below. 1632 * alloc_behind_master_bio allocates a copy of the data payload a page 1633 * at a time and thus needs a new bio that can fit the whole payload 1634 * this bio in page sized chunks. 1635 */ 1636 if (write_behind && mddev->bitmap) 1637 max_sectors = min_t(int, max_sectors, 1638 BIO_MAX_VECS * (PAGE_SIZE >> 9)); 1639 if (max_sectors < bio_sectors(bio)) { 1640 bio = bio_submit_split_bioset(bio, max_sectors, 1641 &conf->bio_split); 1642 if (!bio) 1643 goto err_dec_pending; 1644 1645 r1_bio->master_bio = bio; 1646 r1_bio->sectors = max_sectors; 1647 } 1648 1649 md_account_bio(mddev, &bio); 1650 r1_bio->master_bio = bio; 1651 atomic_set(&r1_bio->remaining, 1); 1652 atomic_set(&r1_bio->behind_remaining, 0); 1653 1654 first_clone = 1; 1655 1656 for (i = 0; i < disks; i++) { 1657 struct bio *mbio = NULL; 1658 struct md_rdev *rdev = conf->mirrors[i].rdev; 1659 if (!r1_bio->bios[i]) 1660 continue; 1661 1662 if (first_clone) { 1663 if (write_behind) 1664 raid1_start_write_behind(mddev, r1_bio, bio); 1665 first_clone = 0; 1666 } 1667 1668 if (r1_bio->behind_master_bio) { 1669 mbio = bio_alloc_clone(rdev->bdev, 1670 r1_bio->behind_master_bio, 1671 GFP_NOIO, &mddev->bio_set); 1672 if (test_bit(CollisionCheck, &rdev->flags)) 1673 wait_for_serialization(rdev, r1_bio); 1674 if (test_bit(WriteMostly, &rdev->flags)) 1675 atomic_inc(&r1_bio->behind_remaining); 1676 } else { 1677 mbio = bio_alloc_clone(rdev->bdev, bio, GFP_NOIO, 1678 &mddev->bio_set); 1679 1680 if (test_bit(MD_SERIALIZE_POLICY, &mddev->flags)) 1681 wait_for_serialization(rdev, r1_bio); 1682 } 1683 1684 mbio->bi_opf &= ~REQ_NOWAIT; 1685 r1_bio->bios[i] = mbio; 1686 1687 mbio->bi_iter.bi_sector = sector + rdev->data_offset; 1688 mbio->bi_end_io = raid1_end_write_request; 1689 if (test_bit(FailFast, &rdev->flags) && 1690 !test_bit(WriteMostly, &rdev->flags) && 1691 conf->raid_disks - mddev->degraded > 1) 1692 mbio->bi_opf |= MD_FAILFAST; 1693 mbio->bi_private = r1_bio; 1694 1695 atomic_inc(&r1_bio->remaining); 1696 mddev_trace_remap(mddev, mbio, sector); 1697 /* flush_pending_writes() needs access to the rdev so...*/ 1698 mbio->bi_bdev = (void *)rdev; 1699 if (!raid1_add_bio_to_plug(mddev, mbio, raid1_unplug, disks)) { 1700 spin_lock_irqsave(&conf->device_lock, flags); 1701 bio_list_add(&conf->pending_bio_list, mbio); 1702 spin_unlock_irqrestore(&conf->device_lock, flags); 1703 md_wakeup_thread(mddev->thread); 1704 } 1705 } 1706 1707 r1_bio_write_done(r1_bio); 1708 1709 /* In case raid1d snuck in to freeze_array */ 1710 wake_up_barrier(conf); 1711 1712 return true; 1713 1714 err_dec_pending: 1715 for (k = 0; k < i; k++) { 1716 if (r1_bio->bios[k]) { 1717 rdev_dec_pending(conf->mirrors[k].rdev, mddev); 1718 r1_bio->bios[k] = NULL; 1719 } 1720 } 1721 1722 free_r1bio(r1_bio); 1723 1724 err_allow_barrier: 1725 allow_barrier(conf, sector); 1726 1727 return false; 1728 } 1729 1730 static bool raid1_make_request(struct mddev *mddev, struct bio *bio) 1731 { 1732 sector_t sectors; 1733 1734 if (unlikely(bio->bi_opf & REQ_PREFLUSH) 1735 && md_flush_request(mddev, bio)) 1736 return true; 1737 1738 /* 1739 * There is a limit to the maximum size, but 1740 * the read/write handler might find a lower limit 1741 * due to bad blocks. To avoid multiple splits, 1742 * we pass the maximum number of sectors down 1743 * and let the lower level perform the split. 1744 */ 1745 sectors = align_to_barrier_unit_end( 1746 bio->bi_iter.bi_sector, bio_sectors(bio)); 1747 1748 if (bio_data_dir(bio) == READ) 1749 raid1_read_request(mddev, bio, sectors, NULL); 1750 else { 1751 md_write_start(mddev, bio); 1752 if (!raid1_write_request(mddev, bio, sectors)) 1753 md_write_end(mddev); 1754 } 1755 return true; 1756 } 1757 1758 static void raid1_status(struct seq_file *seq, struct mddev *mddev) 1759 { 1760 struct r1conf *conf = mddev->private; 1761 int i; 1762 1763 lockdep_assert_held(&mddev->lock); 1764 1765 seq_printf(seq, " [%d/%d] [", conf->raid_disks, 1766 conf->raid_disks - mddev->degraded); 1767 for (i = 0; i < conf->raid_disks; i++) { 1768 struct md_rdev *rdev = READ_ONCE(conf->mirrors[i].rdev); 1769 1770 seq_printf(seq, "%s", 1771 rdev && test_bit(In_sync, &rdev->flags) ? "U" : "_"); 1772 } 1773 seq_printf(seq, "]"); 1774 } 1775 1776 /** 1777 * raid1_error() - RAID1 error handler. 1778 * @mddev: affected md device. 1779 * @rdev: member device to fail. 1780 * 1781 * The routine acknowledges &rdev failure and determines new @mddev state. 1782 * If it failed, then: 1783 * - &MD_BROKEN flag is set in &mddev->flags. 1784 * - recovery is disabled. 1785 * Otherwise, it must be degraded: 1786 * - recovery is interrupted. 1787 * - &mddev->degraded is bumped. 1788 * 1789 * @rdev is marked as &Faulty excluding case when array is failed and 1790 * MD_FAILLAST_DEV is not set. 1791 */ 1792 static void raid1_error(struct mddev *mddev, struct md_rdev *rdev) 1793 { 1794 struct r1conf *conf = mddev->private; 1795 unsigned long flags; 1796 1797 spin_lock_irqsave(&conf->device_lock, flags); 1798 1799 if (test_bit(In_sync, &rdev->flags) && 1800 (conf->raid_disks - mddev->degraded) == 1) { 1801 set_bit(MD_BROKEN, &mddev->flags); 1802 1803 if (!test_bit(MD_FAILLAST_DEV, &mddev->flags)) { 1804 spin_unlock_irqrestore(&conf->device_lock, flags); 1805 return; 1806 } 1807 } 1808 set_bit(Blocked, &rdev->flags); 1809 if (test_and_clear_bit(In_sync, &rdev->flags)) 1810 mddev->degraded++; 1811 set_bit(Faulty, &rdev->flags); 1812 spin_unlock_irqrestore(&conf->device_lock, flags); 1813 /* 1814 * if recovery is running, make sure it aborts. 1815 */ 1816 set_bit(MD_RECOVERY_INTR, &mddev->recovery); 1817 set_mask_bits(&mddev->sb_flags, 0, 1818 BIT(MD_SB_CHANGE_DEVS) | BIT(MD_SB_CHANGE_PENDING)); 1819 pr_crit("md/raid1:%s: Disk failure on %pg, disabling device.\n" 1820 "md/raid1:%s: Operation continuing on %d devices.\n", 1821 mdname(mddev), rdev->bdev, 1822 mdname(mddev), conf->raid_disks - mddev->degraded); 1823 } 1824 1825 static void print_conf(struct r1conf *conf) 1826 { 1827 int i; 1828 1829 pr_debug("RAID1 conf printout:\n"); 1830 if (!conf) { 1831 pr_debug("(!conf)\n"); 1832 return; 1833 } 1834 pr_debug(" --- wd:%d rd:%d\n", conf->raid_disks - conf->mddev->degraded, 1835 conf->raid_disks); 1836 1837 lockdep_assert_held(&conf->mddev->reconfig_mutex); 1838 for (i = 0; i < conf->raid_disks; i++) { 1839 struct md_rdev *rdev = conf->mirrors[i].rdev; 1840 if (rdev) 1841 pr_debug(" disk %d, wo:%d, o:%d, dev:%pg\n", 1842 i, !test_bit(In_sync, &rdev->flags), 1843 !test_bit(Faulty, &rdev->flags), 1844 rdev->bdev); 1845 } 1846 } 1847 1848 static void close_sync(struct r1conf *conf) 1849 { 1850 int idx; 1851 1852 for (idx = 0; idx < BARRIER_BUCKETS_NR; idx++) { 1853 _wait_barrier(conf, idx, false); 1854 _allow_barrier(conf, idx); 1855 } 1856 1857 mempool_exit(&conf->r1buf_pool); 1858 } 1859 1860 static int raid1_spare_active(struct mddev *mddev) 1861 { 1862 int i; 1863 struct r1conf *conf = mddev->private; 1864 int count = 0; 1865 unsigned long flags; 1866 1867 /* 1868 * Find all failed disks within the RAID1 configuration 1869 * and mark them readable. 1870 * Called under mddev lock, so rcu protection not needed. 1871 * device_lock used to avoid races with raid1_end_read_request 1872 * which expects 'In_sync' flags and ->degraded to be consistent. 1873 */ 1874 spin_lock_irqsave(&conf->device_lock, flags); 1875 for (i = 0; i < conf->raid_disks; i++) { 1876 struct md_rdev *rdev = conf->mirrors[i].rdev; 1877 struct md_rdev *repl = conf->mirrors[conf->raid_disks + i].rdev; 1878 if (repl 1879 && !test_bit(Candidate, &repl->flags) 1880 && repl->recovery_offset == MaxSector 1881 && !test_bit(Faulty, &repl->flags) 1882 && !test_and_set_bit(In_sync, &repl->flags)) { 1883 /* replacement has just become active */ 1884 if (!rdev || 1885 !test_and_clear_bit(In_sync, &rdev->flags)) 1886 count++; 1887 if (rdev) { 1888 /* Replaced device not technically 1889 * faulty, but we need to be sure 1890 * it gets removed and never re-added 1891 */ 1892 set_bit(Faulty, &rdev->flags); 1893 sysfs_notify_dirent_safe( 1894 rdev->sysfs_state); 1895 } 1896 } 1897 if (rdev 1898 && rdev->recovery_offset == MaxSector 1899 && !test_bit(Faulty, &rdev->flags) 1900 && !test_and_set_bit(In_sync, &rdev->flags)) { 1901 count++; 1902 sysfs_notify_dirent_safe(rdev->sysfs_state); 1903 } 1904 } 1905 mddev->degraded -= count; 1906 spin_unlock_irqrestore(&conf->device_lock, flags); 1907 1908 print_conf(conf); 1909 return count; 1910 } 1911 1912 static bool raid1_add_conf(struct r1conf *conf, struct md_rdev *rdev, int disk, 1913 bool replacement) 1914 { 1915 struct raid1_info *info = conf->mirrors + disk; 1916 1917 if (replacement) 1918 info += conf->raid_disks; 1919 1920 if (info->rdev) 1921 return false; 1922 1923 if (!bdev_rot(rdev->bdev)) { 1924 set_bit(Nonrot, &rdev->flags); 1925 WRITE_ONCE(conf->nonrot_disks, conf->nonrot_disks + 1); 1926 } 1927 1928 rdev->raid_disk = disk; 1929 info->head_position = 0; 1930 info->seq_start = MaxSector; 1931 WRITE_ONCE(info->rdev, rdev); 1932 1933 return true; 1934 } 1935 1936 static bool raid1_remove_conf(struct r1conf *conf, int disk) 1937 { 1938 struct raid1_info *info = conf->mirrors + disk; 1939 struct md_rdev *rdev = info->rdev; 1940 1941 if (!rdev || test_bit(In_sync, &rdev->flags) || 1942 atomic_read(&rdev->nr_pending)) 1943 return false; 1944 1945 /* Only remove non-faulty devices if recovery is not possible. */ 1946 if (!test_bit(Faulty, &rdev->flags) && 1947 rdev->mddev->degraded < conf->raid_disks) 1948 return false; 1949 1950 if (test_and_clear_bit(Nonrot, &rdev->flags)) 1951 WRITE_ONCE(conf->nonrot_disks, conf->nonrot_disks - 1); 1952 1953 WRITE_ONCE(info->rdev, NULL); 1954 return true; 1955 } 1956 1957 static int raid1_add_disk(struct mddev *mddev, struct md_rdev *rdev) 1958 { 1959 struct r1conf *conf = mddev->private; 1960 int err = -EEXIST; 1961 int mirror = 0, repl_slot = -1; 1962 struct raid1_info *p; 1963 int first = 0; 1964 int last = conf->raid_disks - 1; 1965 1966 if (rdev->raid_disk >= 0) 1967 first = last = rdev->raid_disk; 1968 1969 /* 1970 * find the disk ... but prefer rdev->saved_raid_disk 1971 * if possible. 1972 */ 1973 if (rdev->saved_raid_disk >= 0 && 1974 rdev->saved_raid_disk >= first && 1975 rdev->saved_raid_disk < conf->raid_disks && 1976 conf->mirrors[rdev->saved_raid_disk].rdev == NULL) 1977 first = last = rdev->saved_raid_disk; 1978 1979 for (mirror = first; mirror <= last; mirror++) { 1980 p = conf->mirrors + mirror; 1981 if (!p->rdev) { 1982 err = mddev_stack_new_rdev(mddev, rdev); 1983 if (err) 1984 return err; 1985 1986 raid1_add_conf(conf, rdev, mirror, false); 1987 /* As all devices are equivalent, we don't need a full recovery 1988 * if this was recently any drive of the array 1989 */ 1990 if (rdev->saved_raid_disk < 0) 1991 conf->fullsync = 1; 1992 break; 1993 } 1994 if (test_bit(WantReplacement, &p->rdev->flags) && 1995 p[conf->raid_disks].rdev == NULL && repl_slot < 0) 1996 repl_slot = mirror; 1997 } 1998 1999 if (err && repl_slot >= 0) { 2000 /* Add this device as a replacement */ 2001 clear_bit(In_sync, &rdev->flags); 2002 set_bit(Replacement, &rdev->flags); 2003 raid1_add_conf(conf, rdev, repl_slot, true); 2004 err = 0; 2005 conf->fullsync = 1; 2006 } 2007 2008 print_conf(conf); 2009 return err; 2010 } 2011 2012 static int raid1_remove_disk(struct mddev *mddev, struct md_rdev *rdev) 2013 { 2014 struct r1conf *conf = mddev->private; 2015 int err = 0; 2016 int number = rdev->raid_disk; 2017 struct raid1_info *p = conf->mirrors + number; 2018 2019 if (unlikely(number >= conf->raid_disks)) 2020 goto abort; 2021 2022 if (rdev != p->rdev) { 2023 number += conf->raid_disks; 2024 p = conf->mirrors + number; 2025 } 2026 2027 print_conf(conf); 2028 if (rdev == p->rdev) { 2029 if (!raid1_remove_conf(conf, number)) { 2030 err = -EBUSY; 2031 goto abort; 2032 } 2033 2034 if (number < conf->raid_disks && 2035 conf->mirrors[conf->raid_disks + number].rdev) { 2036 /* We just removed a device that is being replaced. 2037 * Move down the replacement. We drain all IO before 2038 * doing this to avoid confusion. 2039 */ 2040 struct md_rdev *repl = 2041 conf->mirrors[conf->raid_disks + number].rdev; 2042 freeze_array(conf, 0); 2043 if (atomic_read(&repl->nr_pending)) { 2044 /* It means that some queued IO of retry_list 2045 * hold repl. Thus, we cannot set replacement 2046 * as NULL, avoiding rdev NULL pointer 2047 * dereference in sync_request_write and 2048 * handle_write_finished. 2049 */ 2050 err = -EBUSY; 2051 unfreeze_array(conf); 2052 goto abort; 2053 } 2054 clear_bit(Replacement, &repl->flags); 2055 WRITE_ONCE(p->rdev, repl); 2056 conf->mirrors[conf->raid_disks + number].rdev = NULL; 2057 unfreeze_array(conf); 2058 } 2059 2060 clear_bit(WantReplacement, &rdev->flags); 2061 err = md_integrity_register(mddev); 2062 } 2063 abort: 2064 2065 print_conf(conf); 2066 return err; 2067 } 2068 2069 static void end_sync_read(struct bio *bio) 2070 { 2071 struct r1bio *r1_bio = get_resync_r1bio(bio); 2072 2073 update_head_pos(r1_bio->read_disk, r1_bio); 2074 2075 /* 2076 * we have read a block, now it needs to be re-written, 2077 * or re-read if the read failed. 2078 * We don't do much here, just schedule handling by raid1d 2079 */ 2080 if (!bio->bi_status) 2081 set_bit(R1BIO_Uptodate, &r1_bio->state); 2082 2083 if (atomic_dec_and_test(&r1_bio->remaining)) 2084 reschedule_retry(r1_bio); 2085 } 2086 2087 static void abort_sync_write(struct mddev *mddev, struct r1bio *r1_bio) 2088 { 2089 sector_t sync_blocks = 0; 2090 sector_t s = r1_bio->sector; 2091 long sectors_to_go = r1_bio->sectors; 2092 2093 /* make sure these bits don't get cleared. */ 2094 do { 2095 md_bitmap_end_sync(mddev, s, &sync_blocks); 2096 s += sync_blocks; 2097 sectors_to_go -= sync_blocks; 2098 } while (sectors_to_go > 0); 2099 } 2100 2101 static void put_sync_write_buf(struct r1bio *r1_bio) 2102 { 2103 if (atomic_dec_and_test(&r1_bio->remaining)) { 2104 struct mddev *mddev = r1_bio->mddev; 2105 int s = r1_bio->sectors; 2106 2107 if (test_bit(R1BIO_MadeGood, &r1_bio->state) || 2108 test_bit(R1BIO_WriteError, &r1_bio->state)) 2109 reschedule_retry(r1_bio); 2110 else { 2111 put_buf(r1_bio); 2112 md_done_sync(mddev, s); 2113 } 2114 } 2115 } 2116 2117 static void end_sync_write(struct bio *bio) 2118 { 2119 struct r1bio *r1_bio = get_resync_r1bio(bio); 2120 struct mddev *mddev = r1_bio->mddev; 2121 struct r1conf *conf = mddev->private; 2122 struct md_rdev *rdev = conf->mirrors[find_bio_disk(r1_bio, bio)].rdev; 2123 2124 if (bio->bi_status) { 2125 abort_sync_write(mddev, r1_bio); 2126 set_bit(WriteErrorSeen, &rdev->flags); 2127 if (!test_and_set_bit(WantReplacement, &rdev->flags)) 2128 set_bit(MD_RECOVERY_NEEDED, & 2129 mddev->recovery); 2130 set_bit(R1BIO_WriteError, &r1_bio->state); 2131 } else if (rdev_has_badblock(rdev, r1_bio->sector, r1_bio->sectors) && 2132 !rdev_has_badblock(conf->mirrors[r1_bio->read_disk].rdev, 2133 r1_bio->sector, r1_bio->sectors)) { 2134 set_bit(R1BIO_MadeGood, &r1_bio->state); 2135 } 2136 2137 put_sync_write_buf(r1_bio); 2138 } 2139 2140 static int r1_sync_page_io(struct md_rdev *rdev, sector_t sector, 2141 int sectors, struct page *page, blk_opf_t rw) 2142 { 2143 if (sync_page_io(rdev, sector, sectors << 9, page, rw, false)) 2144 /* success */ 2145 return 1; 2146 if (rw == REQ_OP_WRITE) { 2147 set_bit(WriteErrorSeen, &rdev->flags); 2148 if (!test_and_set_bit(WantReplacement, 2149 &rdev->flags)) 2150 set_bit(MD_RECOVERY_NEEDED, & 2151 rdev->mddev->recovery); 2152 } 2153 /* need to record an error - either for the block or the device */ 2154 rdev_set_badblocks(rdev, sector, sectors, 0); 2155 return 0; 2156 } 2157 2158 static int fix_sync_read_error(struct r1bio *r1_bio) 2159 { 2160 /* Try some synchronous reads of other devices to get 2161 * good data, much like with normal read errors. Only 2162 * read into the pages we already have so we don't 2163 * need to re-issue the read request. 2164 * We don't need to freeze the array, because being in an 2165 * active sync request, there is no normal IO, and 2166 * no overlapping syncs. 2167 * We don't need to check is_badblock() again as we 2168 * made sure that anything with a bad block in range 2169 * will have bi_end_io clear. 2170 */ 2171 struct mddev *mddev = r1_bio->mddev; 2172 struct r1conf *conf = mddev->private; 2173 struct bio *bio = r1_bio->bios[r1_bio->read_disk]; 2174 struct page **pages = get_resync_pages(bio)->pages; 2175 sector_t sect = r1_bio->sector; 2176 int sectors = r1_bio->sectors; 2177 int idx = 0; 2178 struct md_rdev *rdev; 2179 2180 rdev = conf->mirrors[r1_bio->read_disk].rdev; 2181 if (test_bit(FailFast, &rdev->flags)) { 2182 /* Don't try recovering from here - just fail it 2183 * ... unless it is the last working device of course */ 2184 md_error(mddev, rdev); 2185 if (test_bit(Faulty, &rdev->flags)) 2186 /* Don't try to read from here, but make sure 2187 * put_buf does it's thing 2188 */ 2189 bio->bi_end_io = end_sync_write; 2190 } 2191 2192 while(sectors) { 2193 int s = sectors; 2194 int d = r1_bio->read_disk; 2195 int success = 0; 2196 int start; 2197 2198 if (s > (PAGE_SIZE>>9)) 2199 s = PAGE_SIZE >> 9; 2200 do { 2201 if (r1_bio->bios[d]->bi_end_io == end_sync_read) { 2202 /* No rcu protection needed here devices 2203 * can only be removed when no resync is 2204 * active, and resync is currently active 2205 */ 2206 rdev = conf->mirrors[d].rdev; 2207 if (sync_page_io(rdev, sect, s<<9, 2208 pages[idx], 2209 REQ_OP_READ, false)) { 2210 success = 1; 2211 break; 2212 } 2213 } 2214 d++; 2215 if (d == conf->raid_disks * 2) 2216 d = 0; 2217 } while (!success && d != r1_bio->read_disk); 2218 2219 if (!success) { 2220 int abort = 0; 2221 /* Cannot read from anywhere, this block is lost. 2222 * Record a bad block on each device. If that doesn't 2223 * work just disable and interrupt the recovery. 2224 * Don't fail devices as that won't really help. 2225 */ 2226 pr_crit_ratelimited("md/raid1:%s: %pg: unrecoverable I/O read error for block %llu\n", 2227 mdname(mddev), bio->bi_bdev, 2228 (unsigned long long)r1_bio->sector); 2229 for (d = 0; d < conf->raid_disks * 2; d++) { 2230 rdev = conf->mirrors[d].rdev; 2231 if (!rdev || test_bit(Faulty, &rdev->flags)) 2232 continue; 2233 if (!rdev_set_badblocks(rdev, sect, s, 0)) 2234 abort = 1; 2235 } 2236 if (abort) 2237 return 0; 2238 2239 /* Try next page */ 2240 sectors -= s; 2241 sect += s; 2242 idx++; 2243 continue; 2244 } 2245 2246 start = d; 2247 /* write it back and re-read */ 2248 while (d != r1_bio->read_disk) { 2249 if (d == 0) 2250 d = conf->raid_disks * 2; 2251 d--; 2252 if (r1_bio->bios[d]->bi_end_io != end_sync_read) 2253 continue; 2254 rdev = conf->mirrors[d].rdev; 2255 if (r1_sync_page_io(rdev, sect, s, 2256 pages[idx], 2257 REQ_OP_WRITE) == 0) { 2258 r1_bio->bios[d]->bi_end_io = NULL; 2259 rdev_dec_pending(rdev, mddev); 2260 } 2261 } 2262 d = start; 2263 while (d != r1_bio->read_disk) { 2264 if (d == 0) 2265 d = conf->raid_disks * 2; 2266 d--; 2267 if (r1_bio->bios[d]->bi_end_io != end_sync_read) 2268 continue; 2269 rdev = conf->mirrors[d].rdev; 2270 if (r1_sync_page_io(rdev, sect, s, 2271 pages[idx], 2272 REQ_OP_READ) != 0) 2273 atomic_add(s, &rdev->corrected_errors); 2274 } 2275 sectors -= s; 2276 sect += s; 2277 idx ++; 2278 } 2279 set_bit(R1BIO_Uptodate, &r1_bio->state); 2280 bio->bi_status = 0; 2281 return 1; 2282 } 2283 2284 static void process_checks(struct r1bio *r1_bio) 2285 { 2286 /* We have read all readable devices. If we haven't 2287 * got the block, then there is no hope left. 2288 * If we have, then we want to do a comparison 2289 * and skip the write if everything is the same. 2290 * If any blocks failed to read, then we need to 2291 * attempt an over-write 2292 */ 2293 struct mddev *mddev = r1_bio->mddev; 2294 struct r1conf *conf = mddev->private; 2295 int primary; 2296 int i; 2297 int vcnt; 2298 2299 /* Fix variable parts of all bios */ 2300 vcnt = (r1_bio->sectors + PAGE_SIZE / 512 - 1) >> (PAGE_SHIFT - 9); 2301 for (i = 0; i < conf->raid_disks * 2; i++) { 2302 blk_status_t status; 2303 struct bio *b = r1_bio->bios[i]; 2304 struct resync_pages *rp = get_resync_pages(b); 2305 if (b->bi_end_io != end_sync_read) 2306 continue; 2307 /* fixup the bio for reuse, but preserve errno */ 2308 status = b->bi_status; 2309 bio_reset(b, conf->mirrors[i].rdev->bdev, REQ_OP_READ); 2310 b->bi_status = status; 2311 b->bi_iter.bi_sector = r1_bio->sector + 2312 conf->mirrors[i].rdev->data_offset; 2313 b->bi_end_io = end_sync_read; 2314 rp->raid_bio = r1_bio; 2315 b->bi_private = rp; 2316 2317 /* initialize bvec table again */ 2318 md_bio_reset_resync_pages(b, rp, r1_bio->sectors << 9); 2319 } 2320 for (primary = 0; primary < conf->raid_disks * 2; primary++) 2321 if (r1_bio->bios[primary]->bi_end_io == end_sync_read && 2322 !r1_bio->bios[primary]->bi_status) { 2323 r1_bio->bios[primary]->bi_end_io = NULL; 2324 rdev_dec_pending(conf->mirrors[primary].rdev, mddev); 2325 break; 2326 } 2327 r1_bio->read_disk = primary; 2328 for (i = 0; i < conf->raid_disks * 2; i++) { 2329 int j = 0; 2330 struct bio *pbio = r1_bio->bios[primary]; 2331 struct bio *sbio = r1_bio->bios[i]; 2332 blk_status_t status = sbio->bi_status; 2333 struct page **ppages = get_resync_pages(pbio)->pages; 2334 struct page **spages = get_resync_pages(sbio)->pages; 2335 struct bio_vec *bi; 2336 int page_len[RESYNC_PAGES] = { 0 }; 2337 struct bvec_iter_all iter_all; 2338 2339 if (sbio->bi_end_io != end_sync_read) 2340 continue; 2341 /* Now we can 'fixup' the error value */ 2342 sbio->bi_status = 0; 2343 2344 bio_for_each_segment_all(bi, sbio, iter_all) 2345 page_len[j++] = bi->bv_len; 2346 2347 if (!status) { 2348 for (j = vcnt; j-- ; ) { 2349 if (memcmp(page_address(ppages[j]), 2350 page_address(spages[j]), 2351 page_len[j])) 2352 break; 2353 } 2354 } else 2355 j = 0; 2356 if (j >= 0) 2357 atomic64_add(r1_bio->sectors, &mddev->resync_mismatches); 2358 if (j < 0 || (test_bit(MD_RECOVERY_CHECK, &mddev->recovery) 2359 && !status)) { 2360 /* No need to write to this device. */ 2361 sbio->bi_end_io = NULL; 2362 rdev_dec_pending(conf->mirrors[i].rdev, mddev); 2363 continue; 2364 } 2365 2366 bio_copy_data(sbio, pbio); 2367 } 2368 } 2369 2370 static void sync_request_write(struct mddev *mddev, struct r1bio *r1_bio) 2371 { 2372 struct r1conf *conf = mddev->private; 2373 int i; 2374 int disks = conf->raid_disks * 2; 2375 struct bio *wbio; 2376 2377 if (!test_bit(R1BIO_Uptodate, &r1_bio->state)) { 2378 /* 2379 * ouch - failed to read all of that. 2380 * No need to fix read error for check/repair 2381 * because all member disks are read. 2382 */ 2383 if (test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery) || 2384 !fix_sync_read_error(r1_bio)) { 2385 md_done_sync(mddev, r1_bio->sectors); 2386 md_sync_error(mddev); 2387 put_buf(r1_bio); 2388 return; 2389 } 2390 } 2391 2392 if (test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) 2393 process_checks(r1_bio); 2394 2395 /* 2396 * schedule writes 2397 */ 2398 atomic_set(&r1_bio->remaining, 1); 2399 for (i = 0; i < disks ; i++) { 2400 wbio = r1_bio->bios[i]; 2401 if (wbio->bi_end_io == NULL || 2402 (wbio->bi_end_io == end_sync_read && 2403 (i == r1_bio->read_disk || 2404 !test_bit(MD_RECOVERY_SYNC, &mddev->recovery)))) 2405 continue; 2406 if (test_bit(Faulty, &conf->mirrors[i].rdev->flags)) { 2407 abort_sync_write(mddev, r1_bio); 2408 continue; 2409 } 2410 2411 wbio->bi_opf = REQ_OP_WRITE; 2412 if (test_bit(FailFast, &conf->mirrors[i].rdev->flags)) 2413 wbio->bi_opf |= MD_FAILFAST; 2414 2415 wbio->bi_end_io = end_sync_write; 2416 atomic_inc(&r1_bio->remaining); 2417 2418 submit_bio_noacct(wbio); 2419 } 2420 2421 put_sync_write_buf(r1_bio); 2422 } 2423 2424 /* 2425 * This is a kernel thread which: 2426 * 2427 * 1. Retries failed read operations on working mirrors. 2428 * 2. Updates the raid superblock when problems encounter. 2429 * 3. Performs writes following reads for array synchronising. 2430 */ 2431 2432 static void fix_read_error(struct r1conf *conf, struct r1bio *r1_bio) 2433 { 2434 sector_t sect = r1_bio->sector; 2435 int sectors = r1_bio->sectors; 2436 int read_disk = r1_bio->read_disk; 2437 struct mddev *mddev = conf->mddev; 2438 struct md_rdev *rdev = conf->mirrors[read_disk].rdev; 2439 2440 while(sectors) { 2441 int s = sectors; 2442 int d = read_disk; 2443 int success = 0; 2444 int start; 2445 2446 if (s > (PAGE_SIZE>>9)) 2447 s = PAGE_SIZE >> 9; 2448 2449 do { 2450 rdev = conf->mirrors[d].rdev; 2451 if (rdev && 2452 (test_bit(In_sync, &rdev->flags) || 2453 (!test_bit(Faulty, &rdev->flags) && 2454 rdev->recovery_offset >= sect + s)) && 2455 rdev_has_badblock(rdev, sect, s) == 0) { 2456 atomic_inc(&rdev->nr_pending); 2457 if (sync_page_io(rdev, sect, s<<9, 2458 conf->tmppage, REQ_OP_READ, false)) 2459 success = 1; 2460 rdev_dec_pending(rdev, mddev); 2461 if (success) 2462 break; 2463 } 2464 2465 d++; 2466 if (d == conf->raid_disks * 2) 2467 d = 0; 2468 } while (d != read_disk); 2469 2470 if (!success) { 2471 /* Cannot read from anywhere - mark it bad */ 2472 struct md_rdev *rdev = conf->mirrors[read_disk].rdev; 2473 rdev_set_badblocks(rdev, sect, s, 0); 2474 break; 2475 } 2476 /* write it back and re-read */ 2477 start = d; 2478 while (d != read_disk) { 2479 if (d==0) 2480 d = conf->raid_disks * 2; 2481 d--; 2482 rdev = conf->mirrors[d].rdev; 2483 if (rdev && 2484 !test_bit(Faulty, &rdev->flags)) { 2485 atomic_inc(&rdev->nr_pending); 2486 r1_sync_page_io(rdev, sect, s, 2487 conf->tmppage, REQ_OP_WRITE); 2488 rdev_dec_pending(rdev, mddev); 2489 } 2490 } 2491 d = start; 2492 while (d != read_disk) { 2493 if (d==0) 2494 d = conf->raid_disks * 2; 2495 d--; 2496 rdev = conf->mirrors[d].rdev; 2497 if (rdev && 2498 !test_bit(Faulty, &rdev->flags)) { 2499 atomic_inc(&rdev->nr_pending); 2500 if (r1_sync_page_io(rdev, sect, s, 2501 conf->tmppage, REQ_OP_READ)) { 2502 atomic_add(s, &rdev->corrected_errors); 2503 pr_info("md/raid1:%s: read error corrected (%d sectors at %llu on %pg)\n", 2504 mdname(mddev), s, 2505 (unsigned long long)(sect + 2506 rdev->data_offset), 2507 rdev->bdev); 2508 } 2509 rdev_dec_pending(rdev, mddev); 2510 } 2511 } 2512 sectors -= s; 2513 sect += s; 2514 } 2515 } 2516 2517 static void narrow_write_error(struct r1bio *r1_bio, int i) 2518 { 2519 struct mddev *mddev = r1_bio->mddev; 2520 struct r1conf *conf = mddev->private; 2521 struct md_rdev *rdev = conf->mirrors[i].rdev; 2522 2523 /* bio has the data to be written to device 'i' where 2524 * we just recently had a write error. 2525 * We repeatedly clone the bio and trim down to one block, 2526 * then try the write. Where the write fails we record 2527 * a bad block. 2528 * It is conceivable that the bio doesn't exactly align with 2529 * blocks. We must handle this somehow. 2530 * 2531 * We currently own a reference on the rdev. 2532 */ 2533 2534 int block_sectors, lbs = bdev_logical_block_size(rdev->bdev) >> 9; 2535 sector_t sector; 2536 int sectors; 2537 int sect_to_write = r1_bio->sectors; 2538 2539 if (rdev->badblocks.shift < 0) 2540 block_sectors = lbs; 2541 else 2542 block_sectors = roundup(1 << rdev->badblocks.shift, lbs); 2543 2544 sector = r1_bio->sector; 2545 sectors = ((sector + block_sectors) 2546 & ~(sector_t)(block_sectors - 1)) 2547 - sector; 2548 2549 while (sect_to_write) { 2550 struct bio *wbio; 2551 if (sectors > sect_to_write) 2552 sectors = sect_to_write; 2553 /* Write at 'sector' for 'sectors'*/ 2554 2555 if (test_bit(R1BIO_BehindIO, &r1_bio->state)) { 2556 wbio = bio_alloc_clone(rdev->bdev, 2557 r1_bio->behind_master_bio, 2558 GFP_NOIO, &mddev->bio_set); 2559 } else { 2560 wbio = bio_alloc_clone(rdev->bdev, r1_bio->master_bio, 2561 GFP_NOIO, &mddev->bio_set); 2562 } 2563 2564 wbio->bi_opf = REQ_OP_WRITE; 2565 wbio->bi_iter.bi_sector = r1_bio->sector; 2566 wbio->bi_iter.bi_size = r1_bio->sectors << 9; 2567 2568 bio_trim(wbio, sector - r1_bio->sector, sectors); 2569 wbio->bi_iter.bi_sector += rdev->data_offset; 2570 2571 if (submit_bio_wait(wbio) && 2572 !rdev_set_badblocks(rdev, sector, sectors, 0)) { 2573 /* 2574 * Badblocks set failed, disk marked Faulty. 2575 * No further operations needed. 2576 */ 2577 bio_put(wbio); 2578 break; 2579 } 2580 2581 bio_put(wbio); 2582 sect_to_write -= sectors; 2583 sector += sectors; 2584 sectors = block_sectors; 2585 } 2586 } 2587 2588 static void handle_sync_write_finished(struct r1conf *conf, struct r1bio *r1_bio) 2589 { 2590 int m; 2591 int s = r1_bio->sectors; 2592 for (m = 0; m < conf->raid_disks * 2 ; m++) { 2593 struct md_rdev *rdev = conf->mirrors[m].rdev; 2594 struct bio *bio = r1_bio->bios[m]; 2595 if (bio->bi_end_io == NULL) 2596 continue; 2597 if (!bio->bi_status && 2598 test_bit(R1BIO_MadeGood, &r1_bio->state)) 2599 rdev_clear_badblocks(rdev, r1_bio->sector, s, 0); 2600 if (bio->bi_status && 2601 test_bit(R1BIO_WriteError, &r1_bio->state)) 2602 rdev_set_badblocks(rdev, r1_bio->sector, s, 0); 2603 } 2604 put_buf(r1_bio); 2605 md_done_sync(conf->mddev, s); 2606 } 2607 2608 static void handle_write_finished(struct r1conf *conf, struct r1bio *r1_bio) 2609 { 2610 int m, idx; 2611 bool fail = false; 2612 2613 for (m = 0; m < conf->raid_disks * 2 ; m++) 2614 if (r1_bio->bios[m] == IO_MADE_GOOD) { 2615 struct md_rdev *rdev = conf->mirrors[m].rdev; 2616 rdev_clear_badblocks(rdev, 2617 r1_bio->sector, 2618 r1_bio->sectors, 0); 2619 rdev_dec_pending(rdev, conf->mddev); 2620 } else if (r1_bio->bios[m] != NULL) { 2621 /* This drive got a write error. We need to 2622 * narrow down and record precise write 2623 * errors. 2624 */ 2625 fail = true; 2626 narrow_write_error(r1_bio, m); 2627 rdev_dec_pending(conf->mirrors[m].rdev, 2628 conf->mddev); 2629 } 2630 if (fail) { 2631 spin_lock_irq(&conf->device_lock); 2632 list_add(&r1_bio->retry_list, &conf->bio_end_io_list); 2633 idx = sector_to_idx(r1_bio->sector); 2634 atomic_inc(&conf->nr_queued[idx]); 2635 spin_unlock_irq(&conf->device_lock); 2636 /* 2637 * In case freeze_array() is waiting for condition 2638 * get_unqueued_pending() == extra to be true. 2639 */ 2640 wake_up(&conf->wait_barrier); 2641 md_wakeup_thread(conf->mddev->thread); 2642 } else { 2643 if (test_bit(R1BIO_WriteError, &r1_bio->state)) 2644 close_write(r1_bio); 2645 raid_end_bio_io(r1_bio); 2646 } 2647 } 2648 2649 static void handle_read_error(struct r1conf *conf, struct r1bio *r1_bio) 2650 { 2651 struct md_rdev *rdev = conf->mirrors[r1_bio->read_disk].rdev; 2652 struct bio *bio = r1_bio->bios[r1_bio->read_disk]; 2653 struct mddev *mddev = conf->mddev; 2654 sector_t sector; 2655 2656 clear_bit(R1BIO_ReadError, &r1_bio->state); 2657 2658 bio_put(bio); 2659 r1_bio->bios[r1_bio->read_disk] = NULL; 2660 2661 /* 2662 * We got a read error. Maybe the drive is bad. Maybe just the block 2663 * and we can fix it. 2664 * 2665 * If allowed, freeze all other IO, and try reading the block from other 2666 * devices. If we find one, we re-write and check it that fixes the 2667 * read error. This is all done synchronously while the array is 2668 * frozen. 2669 */ 2670 if (mddev->ro) { 2671 r1_bio->bios[r1_bio->read_disk] = IO_BLOCKED; 2672 } else if (test_bit(FailFast, &rdev->flags)) { 2673 md_error(mddev, rdev); 2674 } else { 2675 freeze_array(conf, 1); 2676 if (exceed_read_errors(mddev, rdev)) 2677 r1_bio->bios[r1_bio->read_disk] = IO_BLOCKED; 2678 else 2679 fix_read_error(conf, r1_bio); 2680 unfreeze_array(conf); 2681 } 2682 2683 rdev_dec_pending(rdev, conf->mddev); 2684 sector = r1_bio->sector; 2685 bio = r1_bio->master_bio; 2686 2687 /* Reuse the old r1_bio so that the IO_BLOCKED settings are preserved */ 2688 r1_bio->state = 0; 2689 raid1_read_request(mddev, bio, r1_bio->sectors, r1_bio); 2690 allow_barrier(conf, sector); 2691 } 2692 2693 static void raid1d(struct md_thread *thread) 2694 { 2695 struct mddev *mddev = thread->mddev; 2696 struct r1bio *r1_bio; 2697 unsigned long flags; 2698 struct r1conf *conf = mddev->private; 2699 struct list_head *head = &conf->retry_list; 2700 struct blk_plug plug; 2701 int idx; 2702 2703 md_check_recovery(mddev); 2704 2705 if (!list_empty_careful(&conf->bio_end_io_list) && 2706 !test_bit(MD_SB_CHANGE_PENDING, &mddev->sb_flags)) { 2707 LIST_HEAD(tmp); 2708 spin_lock_irqsave(&conf->device_lock, flags); 2709 if (!test_bit(MD_SB_CHANGE_PENDING, &mddev->sb_flags)) 2710 list_splice_init(&conf->bio_end_io_list, &tmp); 2711 spin_unlock_irqrestore(&conf->device_lock, flags); 2712 while (!list_empty(&tmp)) { 2713 r1_bio = list_first_entry(&tmp, struct r1bio, 2714 retry_list); 2715 list_del(&r1_bio->retry_list); 2716 idx = sector_to_idx(r1_bio->sector); 2717 atomic_dec(&conf->nr_queued[idx]); 2718 if (test_bit(R1BIO_WriteError, &r1_bio->state)) 2719 close_write(r1_bio); 2720 raid_end_bio_io(r1_bio); 2721 } 2722 } 2723 2724 blk_start_plug(&plug); 2725 for (;;) { 2726 2727 flush_pending_writes(conf); 2728 2729 spin_lock_irqsave(&conf->device_lock, flags); 2730 if (list_empty(head)) { 2731 spin_unlock_irqrestore(&conf->device_lock, flags); 2732 break; 2733 } 2734 r1_bio = list_entry(head->prev, struct r1bio, retry_list); 2735 list_del(head->prev); 2736 idx = sector_to_idx(r1_bio->sector); 2737 atomic_dec(&conf->nr_queued[idx]); 2738 spin_unlock_irqrestore(&conf->device_lock, flags); 2739 2740 mddev = r1_bio->mddev; 2741 conf = mddev->private; 2742 if (test_bit(R1BIO_IsSync, &r1_bio->state)) { 2743 if (test_bit(R1BIO_MadeGood, &r1_bio->state) || 2744 test_bit(R1BIO_WriteError, &r1_bio->state)) 2745 handle_sync_write_finished(conf, r1_bio); 2746 else 2747 sync_request_write(mddev, r1_bio); 2748 } else if (test_bit(R1BIO_MadeGood, &r1_bio->state) || 2749 test_bit(R1BIO_WriteError, &r1_bio->state)) 2750 handle_write_finished(conf, r1_bio); 2751 else if (test_bit(R1BIO_ReadError, &r1_bio->state)) 2752 handle_read_error(conf, r1_bio); 2753 else 2754 WARN_ON_ONCE(1); 2755 2756 cond_resched(); 2757 if (mddev->sb_flags & ~(1<<MD_SB_CHANGE_PENDING)) 2758 md_check_recovery(mddev); 2759 } 2760 blk_finish_plug(&plug); 2761 } 2762 2763 static int init_resync(struct r1conf *conf) 2764 { 2765 int buffs; 2766 2767 buffs = RESYNC_WINDOW / RESYNC_BLOCK_SIZE; 2768 BUG_ON(mempool_initialized(&conf->r1buf_pool)); 2769 2770 return mempool_init(&conf->r1buf_pool, buffs, r1buf_pool_alloc, 2771 r1buf_pool_free, conf); 2772 } 2773 2774 static struct r1bio *raid1_alloc_init_r1buf(struct r1conf *conf) 2775 { 2776 struct r1bio *r1bio = mempool_alloc(&conf->r1buf_pool, GFP_NOIO); 2777 struct resync_pages *rps; 2778 struct bio *bio; 2779 int i; 2780 2781 for (i = conf->raid_disks * 2; i--; ) { 2782 bio = r1bio->bios[i]; 2783 rps = bio->bi_private; 2784 bio_reset(bio, NULL, 0); 2785 bio->bi_private = rps; 2786 } 2787 r1bio->master_bio = NULL; 2788 return r1bio; 2789 } 2790 2791 /* 2792 * perform a "sync" on one "block" 2793 * 2794 * We need to make sure that no normal I/O request - particularly write 2795 * requests - conflict with active sync requests. 2796 * 2797 * This is achieved by tracking pending requests and a 'barrier' concept 2798 * that can be installed to exclude normal IO requests. 2799 */ 2800 2801 static sector_t raid1_sync_request(struct mddev *mddev, sector_t sector_nr, 2802 sector_t max_sector, int *skipped) 2803 { 2804 struct r1conf *conf = mddev->private; 2805 struct r1bio *r1_bio; 2806 struct bio *bio; 2807 sector_t nr_sectors; 2808 int disk = -1; 2809 int i; 2810 int wonly = -1; 2811 int write_targets = 0, read_targets = 0; 2812 sector_t sync_blocks; 2813 bool still_degraded = false; 2814 int good_sectors = RESYNC_SECTORS; 2815 int min_bad = 0; /* number of sectors that are bad in all devices */ 2816 int idx = sector_to_idx(sector_nr); 2817 int page_idx = 0; 2818 2819 if (!mempool_initialized(&conf->r1buf_pool)) 2820 if (init_resync(conf)) 2821 return 0; 2822 2823 if (sector_nr >= max_sector) { 2824 /* If we aborted, we need to abort the 2825 * sync on the 'current' bitmap chunk (there will 2826 * only be one in raid1 resync. 2827 * We can find the current addess in mddev->curr_resync 2828 */ 2829 if (mddev->curr_resync < max_sector) /* aborted */ 2830 md_bitmap_end_sync(mddev, mddev->curr_resync, 2831 &sync_blocks); 2832 else /* completed sync */ 2833 conf->fullsync = 0; 2834 2835 if (md_bitmap_enabled(mddev, false)) 2836 mddev->bitmap_ops->close_sync(mddev); 2837 close_sync(conf); 2838 2839 if (mddev_is_clustered(mddev)) { 2840 conf->cluster_sync_low = 0; 2841 conf->cluster_sync_high = 0; 2842 } 2843 return 0; 2844 } 2845 2846 if (mddev->bitmap == NULL && 2847 mddev->resync_offset == MaxSector && 2848 !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery) && 2849 conf->fullsync == 0) { 2850 *skipped = 1; 2851 return max_sector - sector_nr; 2852 } 2853 /* before building a request, check if we can skip these blocks.. 2854 * This call the bitmap_start_sync doesn't actually record anything 2855 */ 2856 if (!md_bitmap_start_sync(mddev, sector_nr, &sync_blocks, true) && 2857 !conf->fullsync && !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) { 2858 /* We can skip this block, and probably several more */ 2859 *skipped = 1; 2860 return sync_blocks; 2861 } 2862 2863 /* 2864 * If there is non-resync activity waiting for a turn, then let it 2865 * though before starting on this new sync request. 2866 */ 2867 if (atomic_read(&conf->nr_waiting[idx])) 2868 schedule_timeout_uninterruptible(1); 2869 2870 /* we are incrementing sector_nr below. To be safe, we check against 2871 * sector_nr + two times RESYNC_SECTORS 2872 */ 2873 if (md_bitmap_enabled(mddev, false)) 2874 mddev->bitmap_ops->cond_end_sync(mddev, sector_nr, 2875 mddev_is_clustered(mddev) && 2876 (sector_nr + 2 * RESYNC_SECTORS > 2877 conf->cluster_sync_high)); 2878 2879 if (raise_barrier(conf, sector_nr)) 2880 return 0; 2881 2882 r1_bio = raid1_alloc_init_r1buf(conf); 2883 2884 /* 2885 * If we get a correctably read error during resync or recovery, 2886 * we might want to read from a different device. So we 2887 * flag all drives that could conceivably be read from for READ, 2888 * and any others (which will be non-In_sync devices) for WRITE. 2889 * If a read fails, we try reading from something else for which READ 2890 * is OK. 2891 */ 2892 2893 r1_bio->mddev = mddev; 2894 r1_bio->sector = sector_nr; 2895 r1_bio->state = 0; 2896 set_bit(R1BIO_IsSync, &r1_bio->state); 2897 /* make sure good_sectors won't go across barrier unit boundary */ 2898 good_sectors = align_to_barrier_unit_end(sector_nr, good_sectors); 2899 2900 for (i = 0; i < conf->raid_disks * 2; i++) { 2901 struct md_rdev *rdev; 2902 bio = r1_bio->bios[i]; 2903 2904 rdev = conf->mirrors[i].rdev; 2905 if (rdev == NULL || 2906 test_bit(Faulty, &rdev->flags)) { 2907 if (i < conf->raid_disks) 2908 still_degraded = true; 2909 } else if (!test_bit(In_sync, &rdev->flags)) { 2910 bio->bi_opf = REQ_OP_WRITE; 2911 bio->bi_end_io = end_sync_write; 2912 write_targets ++; 2913 } else { 2914 /* may need to read from here */ 2915 sector_t first_bad = MaxSector; 2916 sector_t bad_sectors; 2917 2918 if (is_badblock(rdev, sector_nr, good_sectors, 2919 &first_bad, &bad_sectors)) { 2920 if (first_bad > sector_nr) 2921 good_sectors = first_bad - sector_nr; 2922 else { 2923 bad_sectors -= (sector_nr - first_bad); 2924 if (min_bad == 0 || 2925 min_bad > bad_sectors) 2926 min_bad = bad_sectors; 2927 } 2928 } 2929 if (sector_nr < first_bad) { 2930 if (test_bit(WriteMostly, &rdev->flags)) { 2931 if (wonly < 0) 2932 wonly = i; 2933 } else { 2934 if (disk < 0) 2935 disk = i; 2936 } 2937 bio->bi_opf = REQ_OP_READ; 2938 bio->bi_end_io = end_sync_read; 2939 read_targets++; 2940 } else if (!test_bit(WriteErrorSeen, &rdev->flags) && 2941 test_bit(MD_RECOVERY_SYNC, &mddev->recovery) && 2942 !test_bit(MD_RECOVERY_CHECK, &mddev->recovery)) { 2943 /* 2944 * The device is suitable for reading (InSync), 2945 * but has bad block(s) here. Let's try to correct them, 2946 * if we are doing resync or repair. Otherwise, leave 2947 * this device alone for this sync request. 2948 */ 2949 bio->bi_opf = REQ_OP_WRITE; 2950 bio->bi_end_io = end_sync_write; 2951 write_targets++; 2952 } 2953 } 2954 if (rdev && bio->bi_end_io) { 2955 atomic_inc(&rdev->nr_pending); 2956 bio->bi_iter.bi_sector = sector_nr + rdev->data_offset; 2957 bio_set_dev(bio, rdev->bdev); 2958 if (test_bit(FailFast, &rdev->flags)) 2959 bio->bi_opf |= MD_FAILFAST; 2960 } 2961 } 2962 if (disk < 0) 2963 disk = wonly; 2964 r1_bio->read_disk = disk; 2965 2966 if (read_targets == 0 && min_bad > 0) { 2967 /* These sectors are bad on all InSync devices, so we 2968 * need to mark them bad on all write targets 2969 */ 2970 int ok = 1; 2971 for (i = 0 ; i < conf->raid_disks * 2 ; i++) 2972 if (r1_bio->bios[i]->bi_end_io == end_sync_write) { 2973 struct md_rdev *rdev = conf->mirrors[i].rdev; 2974 ok = rdev_set_badblocks(rdev, sector_nr, 2975 min_bad, 0 2976 ) && ok; 2977 } 2978 set_bit(MD_SB_CHANGE_DEVS, &mddev->sb_flags); 2979 *skipped = 1; 2980 put_buf(r1_bio); 2981 2982 if (!ok) 2983 /* Cannot record the badblocks, md_error has set INTR, 2984 * abort the resync. 2985 */ 2986 return 0; 2987 else 2988 return min_bad; 2989 2990 } 2991 if (min_bad > 0 && min_bad < good_sectors) { 2992 /* only resync enough to reach the next bad->good 2993 * transition */ 2994 good_sectors = min_bad; 2995 } 2996 2997 if (test_bit(MD_RECOVERY_SYNC, &mddev->recovery) && read_targets > 0) 2998 /* extra read targets are also write targets */ 2999 write_targets += read_targets-1; 3000 3001 if (write_targets == 0 || read_targets == 0) { 3002 /* There is nowhere to write, so all non-sync 3003 * drives must be failed - so we are finished 3004 */ 3005 sector_t rv; 3006 if (min_bad > 0) 3007 max_sector = sector_nr + min_bad; 3008 rv = max_sector - sector_nr; 3009 *skipped = 1; 3010 put_buf(r1_bio); 3011 return rv; 3012 } 3013 3014 if (max_sector > mddev->resync_max) 3015 max_sector = mddev->resync_max; /* Don't do IO beyond here */ 3016 if (max_sector > sector_nr + good_sectors) 3017 max_sector = sector_nr + good_sectors; 3018 nr_sectors = 0; 3019 sync_blocks = 0; 3020 do { 3021 struct page *page; 3022 int len = PAGE_SIZE; 3023 if (sector_nr + (len>>9) > max_sector) 3024 len = (max_sector - sector_nr) << 9; 3025 if (len == 0) 3026 break; 3027 if (sync_blocks == 0) { 3028 if (!md_bitmap_start_sync(mddev, sector_nr, 3029 &sync_blocks, still_degraded) && 3030 !conf->fullsync && 3031 !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) 3032 break; 3033 if ((len >> 9) > sync_blocks) 3034 len = sync_blocks<<9; 3035 } 3036 3037 for (i = 0 ; i < conf->raid_disks * 2; i++) { 3038 struct resync_pages *rp; 3039 3040 bio = r1_bio->bios[i]; 3041 rp = get_resync_pages(bio); 3042 if (bio->bi_end_io) { 3043 page = resync_fetch_page(rp, page_idx); 3044 3045 /* 3046 * won't fail because the vec table is big 3047 * enough to hold all these pages 3048 */ 3049 __bio_add_page(bio, page, len, 0); 3050 } 3051 } 3052 nr_sectors += len>>9; 3053 sector_nr += len>>9; 3054 sync_blocks -= (len>>9); 3055 } while (++page_idx < RESYNC_PAGES); 3056 3057 r1_bio->sectors = nr_sectors; 3058 3059 if (mddev_is_clustered(mddev) && 3060 conf->cluster_sync_high < sector_nr + nr_sectors) { 3061 conf->cluster_sync_low = mddev->curr_resync_completed; 3062 conf->cluster_sync_high = conf->cluster_sync_low + CLUSTER_RESYNC_WINDOW_SECTORS; 3063 /* Send resync message */ 3064 mddev->cluster_ops->resync_info_update(mddev, 3065 conf->cluster_sync_low, 3066 conf->cluster_sync_high); 3067 } 3068 3069 /* For a user-requested sync, we read all readable devices and do a 3070 * compare 3071 */ 3072 if (test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) { 3073 atomic_set(&r1_bio->remaining, read_targets); 3074 for (i = 0; i < conf->raid_disks * 2 && read_targets; i++) { 3075 bio = r1_bio->bios[i]; 3076 if (bio->bi_end_io == end_sync_read) { 3077 read_targets--; 3078 if (read_targets == 1) 3079 bio->bi_opf &= ~MD_FAILFAST; 3080 submit_bio_noacct(bio); 3081 } 3082 } 3083 } else { 3084 atomic_set(&r1_bio->remaining, 1); 3085 bio = r1_bio->bios[r1_bio->read_disk]; 3086 if (read_targets == 1) 3087 bio->bi_opf &= ~MD_FAILFAST; 3088 submit_bio_noacct(bio); 3089 } 3090 return nr_sectors; 3091 } 3092 3093 static sector_t raid1_size(struct mddev *mddev, sector_t sectors, int raid_disks) 3094 { 3095 if (sectors) 3096 return sectors; 3097 3098 return mddev->dev_sectors; 3099 } 3100 3101 static struct r1conf *setup_conf(struct mddev *mddev) 3102 { 3103 struct r1conf *conf; 3104 int i; 3105 struct raid1_info *disk; 3106 struct md_rdev *rdev; 3107 size_t r1bio_size; 3108 int err = -ENOMEM; 3109 3110 conf = kzalloc_obj(struct r1conf); 3111 if (!conf) 3112 goto abort; 3113 3114 conf->nr_pending = kzalloc_objs(atomic_t, BARRIER_BUCKETS_NR); 3115 if (!conf->nr_pending) 3116 goto abort; 3117 3118 conf->nr_waiting = kzalloc_objs(atomic_t, BARRIER_BUCKETS_NR); 3119 if (!conf->nr_waiting) 3120 goto abort; 3121 3122 conf->nr_queued = kzalloc_objs(atomic_t, BARRIER_BUCKETS_NR); 3123 if (!conf->nr_queued) 3124 goto abort; 3125 3126 conf->barrier = kzalloc_objs(atomic_t, BARRIER_BUCKETS_NR); 3127 if (!conf->barrier) 3128 goto abort; 3129 3130 conf->mirrors = kzalloc(array3_size(sizeof(struct raid1_info), 3131 mddev->raid_disks, 2), 3132 GFP_KERNEL); 3133 if (!conf->mirrors) 3134 goto abort; 3135 3136 conf->tmppage = alloc_page(GFP_KERNEL); 3137 if (!conf->tmppage) 3138 goto abort; 3139 3140 r1bio_size = offsetof(struct r1bio, bios[mddev->raid_disks * 2]); 3141 conf->r1bio_pool = mempool_create_kmalloc_pool(NR_RAID_BIOS, r1bio_size); 3142 if (!conf->r1bio_pool) 3143 goto abort; 3144 3145 err = bioset_init(&conf->bio_split, BIO_POOL_SIZE, 0, 0); 3146 if (err) 3147 goto abort; 3148 3149 err = -EINVAL; 3150 spin_lock_init(&conf->device_lock); 3151 conf->raid_disks = mddev->raid_disks; 3152 rdev_for_each(rdev, mddev) { 3153 int disk_idx = rdev->raid_disk; 3154 3155 if (disk_idx >= conf->raid_disks || disk_idx < 0) 3156 continue; 3157 3158 if (!raid1_add_conf(conf, rdev, disk_idx, 3159 test_bit(Replacement, &rdev->flags))) 3160 goto abort; 3161 } 3162 conf->mddev = mddev; 3163 INIT_LIST_HEAD(&conf->retry_list); 3164 INIT_LIST_HEAD(&conf->bio_end_io_list); 3165 3166 spin_lock_init(&conf->resync_lock); 3167 init_waitqueue_head(&conf->wait_barrier); 3168 3169 bio_list_init(&conf->pending_bio_list); 3170 3171 err = -EIO; 3172 for (i = 0; i < conf->raid_disks * 2; i++) { 3173 3174 disk = conf->mirrors + i; 3175 3176 if (i < conf->raid_disks && 3177 disk[conf->raid_disks].rdev) { 3178 /* This slot has a replacement. */ 3179 if (!disk->rdev) { 3180 /* No original, just make the replacement 3181 * a recovering spare 3182 */ 3183 disk->rdev = 3184 disk[conf->raid_disks].rdev; 3185 disk[conf->raid_disks].rdev = NULL; 3186 } else if (!test_bit(In_sync, &disk->rdev->flags)) 3187 /* Original is not in_sync - bad */ 3188 goto abort; 3189 } 3190 3191 if (!disk->rdev || 3192 !test_bit(In_sync, &disk->rdev->flags)) { 3193 disk->head_position = 0; 3194 if (disk->rdev && 3195 (disk->rdev->saved_raid_disk < 0)) 3196 conf->fullsync = 1; 3197 } 3198 } 3199 3200 err = -ENOMEM; 3201 rcu_assign_pointer(conf->thread, 3202 md_register_thread(raid1d, mddev, "raid1")); 3203 if (!conf->thread) 3204 goto abort; 3205 3206 return conf; 3207 3208 abort: 3209 if (conf) { 3210 mempool_destroy(conf->r1bio_pool); 3211 kfree(conf->mirrors); 3212 safe_put_page(conf->tmppage); 3213 kfree(conf->nr_pending); 3214 kfree(conf->nr_waiting); 3215 kfree(conf->nr_queued); 3216 kfree(conf->barrier); 3217 bioset_exit(&conf->bio_split); 3218 kfree(conf); 3219 } 3220 return ERR_PTR(err); 3221 } 3222 3223 static int raid1_set_limits(struct mddev *mddev) 3224 { 3225 struct queue_limits lim; 3226 int err; 3227 3228 md_init_stacking_limits(&lim); 3229 lim.max_write_zeroes_sectors = 0; 3230 lim.max_hw_wzeroes_unmap_sectors = 0; 3231 lim.logical_block_size = mddev->logical_block_size; 3232 lim.features |= BLK_FEAT_ATOMIC_WRITES; 3233 lim.features |= BLK_FEAT_PCI_P2PDMA; 3234 err = mddev_stack_rdev_limits(mddev, &lim, MDDEV_STACK_INTEGRITY); 3235 if (err) 3236 return err; 3237 return queue_limits_set(mddev->gendisk->queue, &lim); 3238 } 3239 3240 static int raid1_run(struct mddev *mddev) 3241 { 3242 struct r1conf *conf; 3243 int i; 3244 int ret; 3245 3246 if (mddev->level != 1) { 3247 pr_warn("md/raid1:%s: raid level not set to mirroring (%d)\n", 3248 mdname(mddev), mddev->level); 3249 return -EIO; 3250 } 3251 if (mddev->reshape_position != MaxSector) { 3252 pr_warn("md/raid1:%s: reshape_position set but not supported\n", 3253 mdname(mddev)); 3254 return -EIO; 3255 } 3256 3257 /* 3258 * copy the already verified devices into our private RAID1 3259 * bookkeeping area. [whatever we allocate in run(), 3260 * should be freed in raid1_free()] 3261 */ 3262 if (mddev->private == NULL) 3263 conf = setup_conf(mddev); 3264 else 3265 conf = mddev->private; 3266 3267 if (IS_ERR(conf)) 3268 return PTR_ERR(conf); 3269 3270 if (!mddev_is_dm(mddev)) { 3271 ret = raid1_set_limits(mddev); 3272 if (ret) { 3273 md_unregister_thread(mddev, &conf->thread); 3274 if (!mddev->private) 3275 raid1_free(mddev, conf); 3276 return ret; 3277 } 3278 } 3279 3280 mddev->degraded = 0; 3281 for (i = 0; i < conf->raid_disks; i++) 3282 if (conf->mirrors[i].rdev == NULL || 3283 !test_bit(In_sync, &conf->mirrors[i].rdev->flags) || 3284 test_bit(Faulty, &conf->mirrors[i].rdev->flags)) 3285 mddev->degraded++; 3286 /* 3287 * RAID1 needs at least one disk in active 3288 */ 3289 if (conf->raid_disks - mddev->degraded < 1) { 3290 md_unregister_thread(mddev, &conf->thread); 3291 if (!mddev->private) 3292 raid1_free(mddev, conf); 3293 return -EINVAL; 3294 } 3295 3296 if (conf->raid_disks - mddev->degraded == 1) 3297 mddev->resync_offset = MaxSector; 3298 3299 if (mddev->resync_offset != MaxSector) 3300 pr_info("md/raid1:%s: not clean -- starting background reconstruction\n", 3301 mdname(mddev)); 3302 pr_info("md/raid1:%s: active with %d out of %d mirrors\n", 3303 mdname(mddev), mddev->raid_disks - mddev->degraded, 3304 mddev->raid_disks); 3305 3306 /* 3307 * Ok, everything is just fine now 3308 */ 3309 rcu_assign_pointer(mddev->thread, conf->thread); 3310 rcu_assign_pointer(conf->thread, NULL); 3311 mddev->private = conf; 3312 set_bit(MD_FAILFAST_SUPPORTED, &mddev->flags); 3313 3314 md_set_array_sectors(mddev, raid1_size(mddev, 0, 0)); 3315 3316 ret = md_integrity_register(mddev); 3317 if (ret) 3318 md_unregister_thread(mddev, &mddev->thread); 3319 return ret; 3320 } 3321 3322 static void raid1_free(struct mddev *mddev, void *priv) 3323 { 3324 struct r1conf *conf = priv; 3325 3326 mempool_destroy(conf->r1bio_pool); 3327 kfree(conf->mirrors); 3328 safe_put_page(conf->tmppage); 3329 kfree(conf->nr_pending); 3330 kfree(conf->nr_waiting); 3331 kfree(conf->nr_queued); 3332 kfree(conf->barrier); 3333 bioset_exit(&conf->bio_split); 3334 kfree(conf); 3335 } 3336 3337 static int raid1_resize(struct mddev *mddev, sector_t sectors) 3338 { 3339 /* no resync is happening, and there is enough space 3340 * on all devices, so we can resize. 3341 * We need to make sure resync covers any new space. 3342 * If the array is shrinking we should possibly wait until 3343 * any io in the removed space completes, but it hardly seems 3344 * worth it. 3345 */ 3346 sector_t newsize = raid1_size(mddev, sectors, 0); 3347 3348 if (mddev->external_size && 3349 mddev->array_sectors > newsize) 3350 return -EINVAL; 3351 3352 if (md_bitmap_enabled(mddev, false)) { 3353 int ret = mddev->bitmap_ops->resize(mddev, newsize, 0); 3354 3355 if (ret) 3356 return ret; 3357 } 3358 3359 md_set_array_sectors(mddev, newsize); 3360 if (sectors > mddev->dev_sectors && 3361 mddev->resync_offset > mddev->dev_sectors) { 3362 mddev->resync_offset = mddev->dev_sectors; 3363 set_bit(MD_RECOVERY_NEEDED, &mddev->recovery); 3364 } 3365 mddev->dev_sectors = sectors; 3366 mddev->resync_max_sectors = sectors; 3367 return 0; 3368 } 3369 3370 static int raid1_reshape(struct mddev *mddev) 3371 { 3372 /* We need to: 3373 * 1/ resize the r1bio_pool 3374 * 2/ resize conf->mirrors 3375 * 3376 * We allocate a new r1bio_pool if we can. 3377 * Then raise a device barrier and wait until all IO stops. 3378 * Then resize conf->mirrors and swap in the new r1bio pool. 3379 * 3380 * At the same time, we "pack" the devices so that all the missing 3381 * devices have the higher raid_disk numbers. 3382 */ 3383 mempool_t *newpool, *oldpool; 3384 size_t new_r1bio_size; 3385 struct raid1_info *newmirrors; 3386 struct r1conf *conf = mddev->private; 3387 int cnt, raid_disks; 3388 unsigned long flags; 3389 int d, d2; 3390 3391 /* Cannot change chunk_size, layout, or level */ 3392 if (mddev->chunk_sectors != mddev->new_chunk_sectors || 3393 mddev->layout != mddev->new_layout || 3394 mddev->level != mddev->new_level) { 3395 mddev->new_chunk_sectors = mddev->chunk_sectors; 3396 mddev->new_layout = mddev->layout; 3397 mddev->new_level = mddev->level; 3398 return -EINVAL; 3399 } 3400 3401 if (!mddev_is_clustered(mddev)) 3402 md_allow_write(mddev); 3403 3404 raid_disks = mddev->raid_disks + mddev->delta_disks; 3405 3406 if (raid_disks < conf->raid_disks) { 3407 cnt=0; 3408 for (d= 0; d < conf->raid_disks; d++) 3409 if (conf->mirrors[d].rdev) 3410 cnt++; 3411 if (cnt > raid_disks) 3412 return -EBUSY; 3413 } 3414 3415 new_r1bio_size = offsetof(struct r1bio, bios[raid_disks * 2]); 3416 newpool = mempool_create_kmalloc_pool(NR_RAID_BIOS, new_r1bio_size); 3417 if (!newpool) { 3418 return -ENOMEM; 3419 } 3420 newmirrors = kzalloc(array3_size(sizeof(struct raid1_info), 3421 raid_disks, 2), 3422 GFP_KERNEL); 3423 if (!newmirrors) { 3424 mempool_destroy(newpool); 3425 return -ENOMEM; 3426 } 3427 3428 freeze_array(conf, 0); 3429 3430 /* ok, everything is stopped */ 3431 oldpool = conf->r1bio_pool; 3432 conf->r1bio_pool = newpool; 3433 3434 for (d = d2 = 0; d < conf->raid_disks; d++) { 3435 struct md_rdev *rdev = conf->mirrors[d].rdev; 3436 if (rdev && rdev->raid_disk != d2) { 3437 sysfs_unlink_rdev(mddev, rdev); 3438 rdev->raid_disk = d2; 3439 sysfs_unlink_rdev(mddev, rdev); 3440 if (sysfs_link_rdev(mddev, rdev)) 3441 pr_warn("md/raid1:%s: cannot register rd%d\n", 3442 mdname(mddev), rdev->raid_disk); 3443 } 3444 if (rdev) 3445 newmirrors[d2++].rdev = rdev; 3446 } 3447 kfree(conf->mirrors); 3448 conf->mirrors = newmirrors; 3449 3450 spin_lock_irqsave(&conf->device_lock, flags); 3451 mddev->degraded += (raid_disks - conf->raid_disks); 3452 spin_unlock_irqrestore(&conf->device_lock, flags); 3453 conf->raid_disks = mddev->raid_disks = raid_disks; 3454 mddev->delta_disks = 0; 3455 3456 unfreeze_array(conf); 3457 3458 set_bit(MD_RECOVERY_RECOVER, &mddev->recovery); 3459 set_bit(MD_RECOVERY_NEEDED, &mddev->recovery); 3460 md_wakeup_thread(mddev->thread); 3461 3462 mempool_destroy(oldpool); 3463 return 0; 3464 } 3465 3466 static void raid1_quiesce(struct mddev *mddev, int quiesce) 3467 { 3468 struct r1conf *conf = mddev->private; 3469 3470 if (quiesce) 3471 freeze_array(conf, 0); 3472 else 3473 unfreeze_array(conf); 3474 } 3475 3476 static void *raid1_takeover(struct mddev *mddev) 3477 { 3478 /* raid1 can take over: 3479 * raid5 with 2 devices, any layout or chunk size 3480 */ 3481 if (mddev->level == 5 && mddev->raid_disks == 2) { 3482 struct r1conf *conf; 3483 mddev->new_level = 1; 3484 mddev->new_layout = 0; 3485 mddev->new_chunk_sectors = 0; 3486 conf = setup_conf(mddev); 3487 if (!IS_ERR(conf)) { 3488 /* Array must appear to be quiesced */ 3489 conf->array_frozen = 1; 3490 mddev_clear_unsupported_flags(mddev, 3491 UNSUPPORTED_MDDEV_FLAGS); 3492 } 3493 return conf; 3494 } 3495 return ERR_PTR(-EINVAL); 3496 } 3497 3498 static struct md_personality raid1_personality = 3499 { 3500 .head = { 3501 .type = MD_PERSONALITY, 3502 .id = ID_RAID1, 3503 .name = "raid1", 3504 .owner = THIS_MODULE, 3505 }, 3506 3507 .make_request = raid1_make_request, 3508 .run = raid1_run, 3509 .free = raid1_free, 3510 .status = raid1_status, 3511 .error_handler = raid1_error, 3512 .hot_add_disk = raid1_add_disk, 3513 .hot_remove_disk= raid1_remove_disk, 3514 .spare_active = raid1_spare_active, 3515 .sync_request = raid1_sync_request, 3516 .resize = raid1_resize, 3517 .size = raid1_size, 3518 .check_reshape = raid1_reshape, 3519 .quiesce = raid1_quiesce, 3520 .takeover = raid1_takeover, 3521 }; 3522 3523 static int __init raid1_init(void) 3524 { 3525 return register_md_submodule(&raid1_personality.head); 3526 } 3527 3528 static void __exit raid1_exit(void) 3529 { 3530 unregister_md_submodule(&raid1_personality.head); 3531 } 3532 3533 module_init(raid1_init); 3534 module_exit(raid1_exit); 3535 MODULE_LICENSE("GPL"); 3536 MODULE_DESCRIPTION("RAID1 (mirroring) personality for MD"); 3537 MODULE_ALIAS("md-personality-3"); /* RAID1 */ 3538 MODULE_ALIAS("md-raid1"); 3539 MODULE_ALIAS("md-level-1"); 3540