1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (C) 2012 Fusion-io All rights reserved. 4 * Copyright (C) 2012 Intel Corp. All rights reserved. 5 */ 6 7 #include <linux/sched.h> 8 #include <linux/bio.h> 9 #include <linux/slab.h> 10 #include <linux/blkdev.h> 11 #include <linux/raid/pq.h> 12 #include <linux/hash.h> 13 #include <linux/list_sort.h> 14 #include <linux/raid/xor.h> 15 #include <linux/mm.h> 16 #include "messages.h" 17 #include "ctree.h" 18 #include "disk-io.h" 19 #include "volumes.h" 20 #include "raid56.h" 21 #include "async-thread.h" 22 #include "file-item.h" 23 #include "btrfs_inode.h" 24 25 /* set when additional merges to this rbio are not allowed */ 26 #define RBIO_RMW_LOCKED_BIT 1 27 28 /* 29 * set when this rbio is sitting in the hash, but it is just a cache 30 * of past RMW 31 */ 32 #define RBIO_CACHE_BIT 2 33 34 /* 35 * set when it is safe to trust the stripe_pages for caching 36 */ 37 #define RBIO_CACHE_READY_BIT 3 38 39 #define RBIO_CACHE_SIZE 1024 40 41 #define BTRFS_STRIPE_HASH_TABLE_BITS 11 42 43 static void dump_bioc(const struct btrfs_fs_info *fs_info, const struct btrfs_io_context *bioc) 44 { 45 if (unlikely(!bioc)) { 46 btrfs_crit(fs_info, "bioc=NULL"); 47 return; 48 } 49 btrfs_crit(fs_info, 50 "bioc logical=%llu full_stripe=%llu size=%llu map_type=0x%llx mirror=%u replace_nr_stripes=%u replace_stripe_src=%d num_stripes=%u", 51 bioc->logical, bioc->full_stripe_logical, bioc->size, 52 bioc->map_type, bioc->mirror_num, bioc->replace_nr_stripes, 53 bioc->replace_stripe_src, bioc->num_stripes); 54 for (int i = 0; i < bioc->num_stripes; i++) { 55 btrfs_crit(fs_info, " nr=%d devid=%llu physical=%llu", 56 i, bioc->stripes[i].dev->devid, 57 bioc->stripes[i].physical); 58 } 59 } 60 61 static void btrfs_dump_rbio(const struct btrfs_fs_info *fs_info, 62 const struct btrfs_raid_bio *rbio) 63 { 64 if (!IS_ENABLED(CONFIG_BTRFS_ASSERT)) 65 return; 66 67 dump_bioc(fs_info, rbio->bioc); 68 btrfs_crit(fs_info, 69 "rbio flags=0x%lx nr_sectors=%u nr_data=%u real_stripes=%u stripe_nsectors=%u sector_nsteps=%u scrubp=%u dbitmap=0x%lx", 70 rbio->flags, rbio->nr_sectors, rbio->nr_data, 71 rbio->real_stripes, rbio->stripe_nsectors, 72 rbio->sector_nsteps, rbio->scrubp, rbio->dbitmap); 73 } 74 75 #define ASSERT_RBIO(expr, rbio) \ 76 ({ \ 77 if (IS_ENABLED(CONFIG_BTRFS_ASSERT) && unlikely(!(expr))) { \ 78 const struct btrfs_fs_info *__fs_info = (rbio)->bioc ? \ 79 (rbio)->bioc->fs_info : NULL; \ 80 \ 81 btrfs_dump_rbio(__fs_info, (rbio)); \ 82 } \ 83 ASSERT((expr)); \ 84 }) 85 86 #define ASSERT_RBIO_STRIPE(expr, rbio, stripe_nr) \ 87 ({ \ 88 if (IS_ENABLED(CONFIG_BTRFS_ASSERT) && unlikely(!(expr))) { \ 89 const struct btrfs_fs_info *__fs_info = (rbio)->bioc ? \ 90 (rbio)->bioc->fs_info : NULL; \ 91 \ 92 btrfs_dump_rbio(__fs_info, (rbio)); \ 93 btrfs_crit(__fs_info, "stripe_nr=%d", (stripe_nr)); \ 94 } \ 95 ASSERT((expr)); \ 96 }) 97 98 #define ASSERT_RBIO_SECTOR(expr, rbio, sector_nr) \ 99 ({ \ 100 if (IS_ENABLED(CONFIG_BTRFS_ASSERT) && unlikely(!(expr))) { \ 101 const struct btrfs_fs_info *__fs_info = (rbio)->bioc ? \ 102 (rbio)->bioc->fs_info : NULL; \ 103 \ 104 btrfs_dump_rbio(__fs_info, (rbio)); \ 105 btrfs_crit(__fs_info, "sector_nr=%d", (sector_nr)); \ 106 } \ 107 ASSERT((expr)); \ 108 }) 109 110 #define ASSERT_RBIO_LOGICAL(expr, rbio, logical) \ 111 ({ \ 112 if (IS_ENABLED(CONFIG_BTRFS_ASSERT) && unlikely(!(expr))) { \ 113 const struct btrfs_fs_info *__fs_info = (rbio)->bioc ? \ 114 (rbio)->bioc->fs_info : NULL; \ 115 \ 116 btrfs_dump_rbio(__fs_info, (rbio)); \ 117 btrfs_crit(__fs_info, "logical=%llu", (logical)); \ 118 } \ 119 ASSERT((expr)); \ 120 }) 121 122 /* Used by the raid56 code to lock stripes for read/modify/write */ 123 struct btrfs_stripe_hash { 124 struct list_head hash_list; 125 spinlock_t lock; 126 }; 127 128 /* Used by the raid56 code to lock stripes for read/modify/write */ 129 struct btrfs_stripe_hash_table { 130 struct list_head stripe_cache; 131 spinlock_t cache_lock; 132 int cache_size; 133 struct btrfs_stripe_hash table[]; 134 }; 135 136 /* 137 * The PFN may still be valid, but our paddrs should always be block size 138 * aligned, thus such -1 paddr is definitely not a valid one. 139 */ 140 #define INVALID_PADDR (~(phys_addr_t)0) 141 142 static void rmw_rbio_work(struct work_struct *work); 143 static void rmw_rbio_work_locked(struct work_struct *work); 144 static void index_rbio_pages(struct btrfs_raid_bio *rbio); 145 static int alloc_rbio_pages(struct btrfs_raid_bio *rbio); 146 147 static int finish_parity_scrub(struct btrfs_raid_bio *rbio); 148 static void scrub_rbio_work_locked(struct work_struct *work); 149 150 static void free_raid_bio_pointers(struct btrfs_raid_bio *rbio) 151 { 152 bitmap_free(rbio->error_bitmap); 153 bitmap_free(rbio->stripe_uptodate_bitmap); 154 kfree(rbio->stripe_pages); 155 kfree(rbio->bio_paddrs); 156 kfree(rbio->stripe_paddrs); 157 kfree(rbio->finish_pointers); 158 } 159 160 static void free_raid_bio(struct btrfs_raid_bio *rbio) 161 { 162 int i; 163 164 if (!refcount_dec_and_test(&rbio->refs)) 165 return; 166 167 WARN_ON(!list_empty(&rbio->stripe_cache)); 168 WARN_ON(!list_empty(&rbio->hash_list)); 169 WARN_ON(!bio_list_empty(&rbio->bio_list)); 170 171 for (i = 0; i < rbio->nr_pages; i++) { 172 if (rbio->stripe_pages[i]) { 173 __free_page(rbio->stripe_pages[i]); 174 rbio->stripe_pages[i] = NULL; 175 } 176 } 177 178 btrfs_put_bioc(rbio->bioc); 179 free_raid_bio_pointers(rbio); 180 kfree(rbio); 181 } 182 183 static void start_async_work(struct btrfs_raid_bio *rbio, work_func_t work_func) 184 { 185 INIT_WORK(&rbio->work, work_func); 186 queue_work(rbio->bioc->fs_info->rmw_workers, &rbio->work); 187 } 188 189 /* 190 * the stripe hash table is used for locking, and to collect 191 * bios in hopes of making a full stripe 192 */ 193 int btrfs_alloc_stripe_hash_table(struct btrfs_fs_info *info) 194 { 195 struct btrfs_stripe_hash_table *table; 196 struct btrfs_stripe_hash_table *x; 197 struct btrfs_stripe_hash *cur; 198 struct btrfs_stripe_hash *h; 199 unsigned int num_entries = 1U << BTRFS_STRIPE_HASH_TABLE_BITS; 200 201 if (info->stripe_hash_table) 202 return 0; 203 204 /* 205 * The table is large, starting with order 4 and can go as high as 206 * order 7 in case lock debugging is turned on. 207 * 208 * Try harder to allocate and fallback to vmalloc to lower the chance 209 * of a failing mount. 210 */ 211 table = kvzalloc_flex(*table, table, num_entries); 212 if (!table) 213 return -ENOMEM; 214 215 spin_lock_init(&table->cache_lock); 216 INIT_LIST_HEAD(&table->stripe_cache); 217 218 h = table->table; 219 220 for (unsigned int i = 0; i < num_entries; i++) { 221 cur = h + i; 222 INIT_LIST_HEAD(&cur->hash_list); 223 spin_lock_init(&cur->lock); 224 } 225 226 x = cmpxchg(&info->stripe_hash_table, NULL, table); 227 kvfree(x); 228 return 0; 229 } 230 231 static void memcpy_from_bio_to_stripe(struct btrfs_raid_bio *rbio, unsigned int sector_nr) 232 { 233 const u32 step = min(rbio->bioc->fs_info->sectorsize, PAGE_SIZE); 234 235 ASSERT(sector_nr < rbio->nr_sectors); 236 for (int i = 0; i < rbio->sector_nsteps; i++) { 237 unsigned int index = sector_nr * rbio->sector_nsteps + i; 238 phys_addr_t dst = rbio->stripe_paddrs[index]; 239 phys_addr_t src = rbio->bio_paddrs[index]; 240 241 ASSERT(dst != INVALID_PADDR); 242 ASSERT(src != INVALID_PADDR); 243 244 memcpy_page(phys_to_page(dst), offset_in_page(dst), 245 phys_to_page(src), offset_in_page(src), step); 246 } 247 } 248 249 /* 250 * caching an rbio means to copy anything from the 251 * bio_sectors array into the stripe_pages array. We 252 * use the page uptodate bit in the stripe cache array 253 * to indicate if it has valid data 254 * 255 * once the caching is done, we set the cache ready 256 * bit. 257 */ 258 static void cache_rbio_pages(struct btrfs_raid_bio *rbio) 259 { 260 int i; 261 int ret; 262 263 ret = alloc_rbio_pages(rbio); 264 if (ret) 265 return; 266 267 for (i = 0; i < rbio->nr_sectors; i++) { 268 /* Some range not covered by bio (partial write), skip it */ 269 if (rbio->bio_paddrs[i * rbio->sector_nsteps] == INVALID_PADDR) { 270 /* 271 * Even if the sector is not covered by bio, if it is 272 * a data sector it should still be uptodate as it is 273 * read from disk. 274 */ 275 if (i < rbio->nr_data * rbio->stripe_nsectors) 276 ASSERT(test_bit(i, rbio->stripe_uptodate_bitmap)); 277 continue; 278 } 279 280 memcpy_from_bio_to_stripe(rbio, i); 281 set_bit(i, rbio->stripe_uptodate_bitmap); 282 } 283 set_bit(RBIO_CACHE_READY_BIT, &rbio->flags); 284 } 285 286 /* 287 * we hash on the first logical address of the stripe 288 */ 289 static int rbio_bucket(struct btrfs_raid_bio *rbio) 290 { 291 u64 num = rbio->bioc->full_stripe_logical; 292 293 /* 294 * we shift down quite a bit. We're using byte 295 * addressing, and most of the lower bits are zeros. 296 * This tends to upset hash_64, and it consistently 297 * returns just one or two different values. 298 * 299 * shifting off the lower bits fixes things. 300 */ 301 return hash_64(num >> 16, BTRFS_STRIPE_HASH_TABLE_BITS); 302 } 303 304 /* Get the sector number of the first sector covered by @page_nr. */ 305 static u32 page_nr_to_sector_nr(struct btrfs_raid_bio *rbio, unsigned int page_nr) 306 { 307 u32 sector_nr; 308 309 ASSERT(page_nr < rbio->nr_pages); 310 311 sector_nr = (page_nr << PAGE_SHIFT) >> rbio->bioc->fs_info->sectorsize_bits; 312 ASSERT(sector_nr < rbio->nr_sectors); 313 return sector_nr; 314 } 315 316 /* 317 * Get the number of sectors covered by @page_nr. 318 * 319 * For bs > ps cases, the result will always be 1. 320 * For bs <= ps cases, the result will be ps / bs. 321 */ 322 static u32 page_nr_to_num_sectors(struct btrfs_raid_bio *rbio, unsigned int page_nr) 323 { 324 struct btrfs_fs_info *fs_info = rbio->bioc->fs_info; 325 u32 nr_sectors; 326 327 ASSERT(page_nr < rbio->nr_pages); 328 329 nr_sectors = round_up(PAGE_SIZE, fs_info->sectorsize) >> fs_info->sectorsize_bits; 330 ASSERT(nr_sectors > 0); 331 return nr_sectors; 332 } 333 334 static __maybe_unused bool full_page_sectors_uptodate(struct btrfs_raid_bio *rbio, 335 unsigned int page_nr) 336 { 337 const u32 sector_nr = page_nr_to_sector_nr(rbio, page_nr); 338 const u32 nr_bits = page_nr_to_num_sectors(rbio, page_nr); 339 int i; 340 341 ASSERT(page_nr < rbio->nr_pages); 342 ASSERT(sector_nr + nr_bits < rbio->nr_sectors); 343 344 for (i = sector_nr; i < sector_nr + nr_bits; i++) { 345 if (!test_bit(i, rbio->stripe_uptodate_bitmap)) 346 return false; 347 } 348 return true; 349 } 350 351 /* 352 * Update the stripe_sectors[] array to use correct page and pgoff 353 * 354 * Should be called every time any page pointer in stripes_pages[] got modified. 355 */ 356 static void index_stripe_sectors(struct btrfs_raid_bio *rbio) 357 { 358 const u32 step = min(rbio->bioc->fs_info->sectorsize, PAGE_SIZE); 359 u32 offset; 360 int i; 361 362 for (i = 0, offset = 0; i < rbio->nr_sectors * rbio->sector_nsteps; 363 i++, offset += step) { 364 int page_index = offset >> PAGE_SHIFT; 365 366 ASSERT(page_index < rbio->nr_pages); 367 if (!rbio->stripe_pages[page_index]) 368 continue; 369 370 rbio->stripe_paddrs[i] = page_to_phys(rbio->stripe_pages[page_index]) + 371 offset_in_page(offset); 372 } 373 } 374 375 static void steal_rbio_page(struct btrfs_raid_bio *src, 376 struct btrfs_raid_bio *dest, int page_nr) 377 { 378 const u32 sector_nr = page_nr_to_sector_nr(src, page_nr); 379 const u32 nr_bits = page_nr_to_num_sectors(src, page_nr); 380 381 ASSERT(page_nr < src->nr_pages); 382 ASSERT(sector_nr + nr_bits < src->nr_sectors); 383 384 if (dest->stripe_pages[page_nr]) 385 __free_page(dest->stripe_pages[page_nr]); 386 dest->stripe_pages[page_nr] = src->stripe_pages[page_nr]; 387 src->stripe_pages[page_nr] = NULL; 388 389 /* Also update the stripe_uptodate_bitmap bits. */ 390 bitmap_set(dest->stripe_uptodate_bitmap, sector_nr, nr_bits); 391 } 392 393 static bool is_data_stripe_page(struct btrfs_raid_bio *rbio, int page_nr) 394 { 395 const int sector_nr = page_nr_to_sector_nr(rbio, page_nr); 396 397 /* 398 * We have ensured PAGE_SIZE is aligned with sectorsize, thus 399 * we won't have a page which is half data half parity. 400 * 401 * Thus if the first sector of the page belongs to data stripes, then 402 * the full page belongs to data stripes. 403 */ 404 return (sector_nr < rbio->nr_data * rbio->stripe_nsectors); 405 } 406 407 /* 408 * Stealing an rbio means taking all the uptodate pages from the stripe array 409 * in the source rbio and putting them into the destination rbio. 410 * 411 * This will also update the involved stripe_sectors[] which are referring to 412 * the old pages. 413 */ 414 static void steal_rbio(struct btrfs_raid_bio *src, struct btrfs_raid_bio *dest) 415 { 416 int i; 417 418 if (!test_bit(RBIO_CACHE_READY_BIT, &src->flags)) 419 return; 420 421 for (i = 0; i < dest->nr_pages; i++) { 422 struct page *p = src->stripe_pages[i]; 423 424 /* 425 * We don't need to steal P/Q pages as they will always be 426 * regenerated for RMW or full write anyway. 427 */ 428 if (!is_data_stripe_page(src, i)) 429 continue; 430 431 /* 432 * If @src already has RBIO_CACHE_READY_BIT, it should have 433 * all data stripe pages present and uptodate. 434 */ 435 ASSERT(p); 436 ASSERT(full_page_sectors_uptodate(src, i)); 437 steal_rbio_page(src, dest, i); 438 } 439 index_stripe_sectors(dest); 440 index_stripe_sectors(src); 441 } 442 443 /* 444 * merging means we take the bio_list from the victim and 445 * splice it into the destination. The victim should 446 * be discarded afterwards. 447 * 448 * must be called with dest->rbio_list_lock held 449 */ 450 static void merge_rbio(struct btrfs_raid_bio *dest, 451 struct btrfs_raid_bio *victim) 452 { 453 bio_list_merge_init(&dest->bio_list, &victim->bio_list); 454 dest->bio_list_bytes += victim->bio_list_bytes; 455 /* Also inherit the bitmaps from @victim. */ 456 bitmap_or(&dest->dbitmap, &victim->dbitmap, &dest->dbitmap, 457 dest->stripe_nsectors); 458 } 459 460 /* 461 * used to prune items that are in the cache. The caller 462 * must hold the hash table lock. 463 */ 464 static void __remove_rbio_from_cache(struct btrfs_raid_bio *rbio) 465 { 466 int bucket = rbio_bucket(rbio); 467 struct btrfs_stripe_hash_table *table; 468 struct btrfs_stripe_hash *h; 469 int freeit = 0; 470 471 /* 472 * check the bit again under the hash table lock. 473 */ 474 if (!test_bit(RBIO_CACHE_BIT, &rbio->flags)) 475 return; 476 477 table = rbio->bioc->fs_info->stripe_hash_table; 478 h = table->table + bucket; 479 480 /* hold the lock for the bucket because we may be 481 * removing it from the hash table 482 */ 483 spin_lock(&h->lock); 484 485 /* 486 * hold the lock for the bio list because we need 487 * to make sure the bio list is empty 488 */ 489 spin_lock(&rbio->bio_list_lock); 490 491 if (test_and_clear_bit(RBIO_CACHE_BIT, &rbio->flags)) { 492 list_del_init(&rbio->stripe_cache); 493 table->cache_size -= 1; 494 freeit = 1; 495 496 /* if the bio list isn't empty, this rbio is 497 * still involved in an IO. We take it out 498 * of the cache list, and drop the ref that 499 * was held for the list. 500 * 501 * If the bio_list was empty, we also remove 502 * the rbio from the hash_table, and drop 503 * the corresponding ref 504 */ 505 if (bio_list_empty(&rbio->bio_list)) { 506 if (!list_empty(&rbio->hash_list)) { 507 list_del_init(&rbio->hash_list); 508 refcount_dec(&rbio->refs); 509 BUG_ON(!list_empty(&rbio->plug_list)); 510 } 511 } 512 } 513 514 spin_unlock(&rbio->bio_list_lock); 515 spin_unlock(&h->lock); 516 517 if (freeit) 518 free_raid_bio(rbio); 519 } 520 521 /* 522 * prune a given rbio from the cache 523 */ 524 static void remove_rbio_from_cache(struct btrfs_raid_bio *rbio) 525 { 526 struct btrfs_stripe_hash_table *table; 527 528 if (!test_bit(RBIO_CACHE_BIT, &rbio->flags)) 529 return; 530 531 table = rbio->bioc->fs_info->stripe_hash_table; 532 533 spin_lock(&table->cache_lock); 534 __remove_rbio_from_cache(rbio); 535 spin_unlock(&table->cache_lock); 536 } 537 538 /* 539 * remove everything in the cache 540 */ 541 static void btrfs_clear_rbio_cache(struct btrfs_fs_info *info) 542 { 543 struct btrfs_stripe_hash_table *table; 544 struct btrfs_raid_bio *rbio; 545 546 table = info->stripe_hash_table; 547 548 spin_lock(&table->cache_lock); 549 while (!list_empty(&table->stripe_cache)) { 550 rbio = list_first_entry(&table->stripe_cache, 551 struct btrfs_raid_bio, stripe_cache); 552 __remove_rbio_from_cache(rbio); 553 } 554 spin_unlock(&table->cache_lock); 555 } 556 557 /* 558 * remove all cached entries and free the hash table 559 * used by unmount 560 */ 561 void btrfs_free_stripe_hash_table(struct btrfs_fs_info *info) 562 { 563 if (!info->stripe_hash_table) 564 return; 565 btrfs_clear_rbio_cache(info); 566 kvfree(info->stripe_hash_table); 567 info->stripe_hash_table = NULL; 568 } 569 570 /* 571 * insert an rbio into the stripe cache. It 572 * must have already been prepared by calling 573 * cache_rbio_pages 574 * 575 * If this rbio was already cached, it gets 576 * moved to the front of the lru. 577 * 578 * If the size of the rbio cache is too big, we 579 * prune an item. 580 */ 581 static void cache_rbio(struct btrfs_raid_bio *rbio) 582 { 583 struct btrfs_stripe_hash_table *table; 584 585 if (!test_bit(RBIO_CACHE_READY_BIT, &rbio->flags)) 586 return; 587 588 table = rbio->bioc->fs_info->stripe_hash_table; 589 590 spin_lock(&table->cache_lock); 591 spin_lock(&rbio->bio_list_lock); 592 593 /* bump our ref if we were not in the list before */ 594 if (!test_and_set_bit(RBIO_CACHE_BIT, &rbio->flags)) 595 refcount_inc(&rbio->refs); 596 597 if (!list_empty(&rbio->stripe_cache)){ 598 list_move(&rbio->stripe_cache, &table->stripe_cache); 599 } else { 600 list_add(&rbio->stripe_cache, &table->stripe_cache); 601 table->cache_size += 1; 602 } 603 604 spin_unlock(&rbio->bio_list_lock); 605 606 if (table->cache_size > RBIO_CACHE_SIZE) { 607 struct btrfs_raid_bio *found; 608 609 found = list_last_entry(&table->stripe_cache, 610 struct btrfs_raid_bio, 611 stripe_cache); 612 613 if (found != rbio) 614 __remove_rbio_from_cache(found); 615 } 616 617 spin_unlock(&table->cache_lock); 618 } 619 620 /* 621 * Returns true if the bio list inside this rbio covers an entire stripe (no 622 * rmw required). 623 */ 624 static int rbio_is_full(struct btrfs_raid_bio *rbio) 625 { 626 unsigned long size = rbio->bio_list_bytes; 627 int ret = 1; 628 629 spin_lock(&rbio->bio_list_lock); 630 if (size != rbio->nr_data * BTRFS_STRIPE_LEN) 631 ret = 0; 632 BUG_ON(size > rbio->nr_data * BTRFS_STRIPE_LEN); 633 spin_unlock(&rbio->bio_list_lock); 634 635 return ret; 636 } 637 638 /* 639 * returns 1 if it is safe to merge two rbios together. 640 * The merging is safe if the two rbios correspond to 641 * the same stripe and if they are both going in the same 642 * direction (read vs write), and if neither one is 643 * locked for final IO 644 * 645 * The caller is responsible for locking such that 646 * rmw_locked is safe to test 647 */ 648 static int rbio_can_merge(struct btrfs_raid_bio *last, 649 struct btrfs_raid_bio *cur) 650 { 651 if (test_bit(RBIO_RMW_LOCKED_BIT, &last->flags) || 652 test_bit(RBIO_RMW_LOCKED_BIT, &cur->flags)) 653 return 0; 654 655 /* 656 * we can't merge with cached rbios, since the 657 * idea is that when we merge the destination 658 * rbio is going to run our IO for us. We can 659 * steal from cached rbios though, other functions 660 * handle that. 661 */ 662 if (test_bit(RBIO_CACHE_BIT, &last->flags) || 663 test_bit(RBIO_CACHE_BIT, &cur->flags)) 664 return 0; 665 666 if (last->bioc->full_stripe_logical != cur->bioc->full_stripe_logical) 667 return 0; 668 669 /* we can't merge with different operations */ 670 if (last->operation != cur->operation) 671 return 0; 672 /* 673 * We've need read the full stripe from the drive. 674 * check and repair the parity and write the new results. 675 * 676 * We're not allowed to add any new bios to the 677 * bio list here, anyone else that wants to 678 * change this stripe needs to do their own rmw. 679 */ 680 if (last->operation == BTRFS_RBIO_PARITY_SCRUB) 681 return 0; 682 683 if (last->operation == BTRFS_RBIO_READ_REBUILD) 684 return 0; 685 686 return 1; 687 } 688 689 /* Return the sector index for @stripe_nr and @sector_nr. */ 690 static unsigned int rbio_sector_index(const struct btrfs_raid_bio *rbio, 691 unsigned int stripe_nr, 692 unsigned int sector_nr) 693 { 694 unsigned int ret; 695 696 ASSERT_RBIO_STRIPE(stripe_nr < rbio->real_stripes, rbio, stripe_nr); 697 ASSERT_RBIO_SECTOR(sector_nr < rbio->stripe_nsectors, rbio, sector_nr); 698 699 ret = stripe_nr * rbio->stripe_nsectors + sector_nr; 700 ASSERT(ret < rbio->nr_sectors); 701 return ret; 702 } 703 704 /* Return the paddr array index for @stripe_nr, @sector_nr and @step_nr. */ 705 static unsigned int rbio_paddr_index(const struct btrfs_raid_bio *rbio, 706 unsigned int stripe_nr, 707 unsigned int sector_nr, 708 unsigned int step_nr) 709 { 710 unsigned int ret; 711 712 ASSERT_RBIO_SECTOR(step_nr < rbio->sector_nsteps, rbio, step_nr); 713 714 ret = rbio_sector_index(rbio, stripe_nr, sector_nr) * rbio->sector_nsteps + step_nr; 715 ASSERT(ret < rbio->nr_sectors * rbio->sector_nsteps); 716 return ret; 717 } 718 719 static phys_addr_t rbio_stripe_paddr(const struct btrfs_raid_bio *rbio, 720 unsigned int stripe_nr, unsigned int sector_nr, 721 unsigned int step_nr) 722 { 723 return rbio->stripe_paddrs[rbio_paddr_index(rbio, stripe_nr, sector_nr, step_nr)]; 724 } 725 726 static phys_addr_t rbio_pstripe_paddr(const struct btrfs_raid_bio *rbio, 727 unsigned int sector_nr, unsigned int step_nr) 728 { 729 return rbio_stripe_paddr(rbio, rbio->nr_data, sector_nr, step_nr); 730 } 731 732 static phys_addr_t rbio_qstripe_paddr(const struct btrfs_raid_bio *rbio, 733 unsigned int sector_nr, unsigned int step_nr) 734 { 735 if (rbio->nr_data + 1 == rbio->real_stripes) 736 return INVALID_PADDR; 737 return rbio_stripe_paddr(rbio, rbio->nr_data + 1, sector_nr, step_nr); 738 } 739 740 /* Return a paddr pointer into the rbio::stripe_paddrs[] for the specified sector. */ 741 static phys_addr_t *rbio_stripe_paddrs(const struct btrfs_raid_bio *rbio, 742 unsigned int stripe_nr, unsigned int sector_nr) 743 { 744 return &rbio->stripe_paddrs[rbio_paddr_index(rbio, stripe_nr, sector_nr, 0)]; 745 } 746 747 /* 748 * The first stripe in the table for a logical address 749 * has the lock. rbios are added in one of three ways: 750 * 751 * 1) Nobody has the stripe locked yet. The rbio is given 752 * the lock and 0 is returned. The caller must start the IO 753 * themselves. 754 * 755 * 2) Someone has the stripe locked, but we're able to merge 756 * with the lock owner. The rbio is freed and the IO will 757 * start automatically along with the existing rbio. 1 is returned. 758 * 759 * 3) Someone has the stripe locked, but we're not able to merge. 760 * The rbio is added to the lock owner's plug list, or merged into 761 * an rbio already on the plug list. When the lock owner unlocks, 762 * the next rbio on the list is run and the IO is started automatically. 763 * 1 is returned 764 * 765 * If we return 0, the caller still owns the rbio and must continue with 766 * IO submission. If we return 1, the caller must assume the rbio has 767 * already been freed. 768 */ 769 static noinline int lock_stripe_add(struct btrfs_raid_bio *rbio) 770 { 771 struct btrfs_stripe_hash *h; 772 struct btrfs_raid_bio *cur; 773 struct btrfs_raid_bio *pending; 774 struct btrfs_raid_bio *freeit = NULL; 775 struct btrfs_raid_bio *cache_drop = NULL; 776 int ret = 0; 777 778 h = rbio->bioc->fs_info->stripe_hash_table->table + rbio_bucket(rbio); 779 780 spin_lock(&h->lock); 781 list_for_each_entry(cur, &h->hash_list, hash_list) { 782 if (cur->bioc->full_stripe_logical != rbio->bioc->full_stripe_logical) 783 continue; 784 785 spin_lock(&cur->bio_list_lock); 786 787 /* Can we steal this cached rbio's pages? */ 788 if (bio_list_empty(&cur->bio_list) && 789 list_empty(&cur->plug_list) && 790 test_bit(RBIO_CACHE_BIT, &cur->flags) && 791 !test_bit(RBIO_RMW_LOCKED_BIT, &cur->flags)) { 792 list_del_init(&cur->hash_list); 793 refcount_dec(&cur->refs); 794 795 steal_rbio(cur, rbio); 796 cache_drop = cur; 797 spin_unlock(&cur->bio_list_lock); 798 799 goto lockit; 800 } 801 802 /* Can we merge into the lock owner? */ 803 if (rbio_can_merge(cur, rbio)) { 804 merge_rbio(cur, rbio); 805 spin_unlock(&cur->bio_list_lock); 806 freeit = rbio; 807 ret = 1; 808 goto out; 809 } 810 811 812 /* 813 * We couldn't merge with the running rbio, see if we can merge 814 * with the pending ones. We don't have to check for rmw_locked 815 * because there is no way they are inside finish_rmw right now 816 */ 817 list_for_each_entry(pending, &cur->plug_list, plug_list) { 818 if (rbio_can_merge(pending, rbio)) { 819 merge_rbio(pending, rbio); 820 spin_unlock(&cur->bio_list_lock); 821 freeit = rbio; 822 ret = 1; 823 goto out; 824 } 825 } 826 827 /* 828 * No merging, put us on the tail of the plug list, our rbio 829 * will be started with the currently running rbio unlocks 830 */ 831 list_add_tail(&rbio->plug_list, &cur->plug_list); 832 spin_unlock(&cur->bio_list_lock); 833 ret = 1; 834 goto out; 835 } 836 lockit: 837 refcount_inc(&rbio->refs); 838 list_add(&rbio->hash_list, &h->hash_list); 839 out: 840 spin_unlock(&h->lock); 841 if (cache_drop) 842 remove_rbio_from_cache(cache_drop); 843 if (freeit) 844 free_raid_bio(freeit); 845 return ret; 846 } 847 848 static void recover_rbio_work_locked(struct work_struct *work); 849 850 /* 851 * called as rmw or parity rebuild is completed. If the plug list has more 852 * rbios waiting for this stripe, the next one on the list will be started 853 */ 854 static noinline void unlock_stripe(struct btrfs_raid_bio *rbio) 855 { 856 int bucket; 857 struct btrfs_stripe_hash *h; 858 int keep_cache = 0; 859 860 bucket = rbio_bucket(rbio); 861 h = rbio->bioc->fs_info->stripe_hash_table->table + bucket; 862 863 if (list_empty(&rbio->plug_list)) 864 cache_rbio(rbio); 865 866 spin_lock(&h->lock); 867 spin_lock(&rbio->bio_list_lock); 868 869 if (!list_empty(&rbio->hash_list)) { 870 /* 871 * if we're still cached and there is no other IO 872 * to perform, just leave this rbio here for others 873 * to steal from later 874 */ 875 if (list_empty(&rbio->plug_list) && 876 test_bit(RBIO_CACHE_BIT, &rbio->flags)) { 877 keep_cache = 1; 878 clear_bit(RBIO_RMW_LOCKED_BIT, &rbio->flags); 879 BUG_ON(!bio_list_empty(&rbio->bio_list)); 880 goto done; 881 } 882 883 list_del_init(&rbio->hash_list); 884 refcount_dec(&rbio->refs); 885 886 /* 887 * we use the plug list to hold all the rbios 888 * waiting for the chance to lock this stripe. 889 * hand the lock over to one of them. 890 */ 891 if (!list_empty(&rbio->plug_list)) { 892 struct btrfs_raid_bio *next; 893 struct list_head *head = rbio->plug_list.next; 894 895 next = list_entry(head, struct btrfs_raid_bio, 896 plug_list); 897 898 list_del_init(&rbio->plug_list); 899 900 list_add(&next->hash_list, &h->hash_list); 901 refcount_inc(&next->refs); 902 spin_unlock(&rbio->bio_list_lock); 903 spin_unlock(&h->lock); 904 905 if (next->operation == BTRFS_RBIO_READ_REBUILD) { 906 start_async_work(next, recover_rbio_work_locked); 907 } else if (next->operation == BTRFS_RBIO_WRITE) { 908 steal_rbio(rbio, next); 909 start_async_work(next, rmw_rbio_work_locked); 910 } else if (next->operation == BTRFS_RBIO_PARITY_SCRUB) { 911 steal_rbio(rbio, next); 912 start_async_work(next, scrub_rbio_work_locked); 913 } 914 915 goto done_nolock; 916 } 917 } 918 done: 919 spin_unlock(&rbio->bio_list_lock); 920 spin_unlock(&h->lock); 921 922 done_nolock: 923 if (!keep_cache) 924 remove_rbio_from_cache(rbio); 925 } 926 927 static void rbio_endio_bio_list(struct bio *cur, blk_status_t status) 928 { 929 struct bio *next; 930 931 while (cur) { 932 next = cur->bi_next; 933 cur->bi_next = NULL; 934 cur->bi_status = status; 935 bio_endio(cur); 936 cur = next; 937 } 938 } 939 940 /* 941 * this frees the rbio and runs through all the bios in the 942 * bio_list and calls end_io on them 943 */ 944 static void rbio_orig_end_io(struct btrfs_raid_bio *rbio, blk_status_t status) 945 { 946 struct bio *cur = bio_list_get(&rbio->bio_list); 947 struct bio *extra; 948 949 kfree(rbio->csum_buf); 950 bitmap_free(rbio->csum_bitmap); 951 rbio->csum_buf = NULL; 952 rbio->csum_bitmap = NULL; 953 954 /* 955 * Clear the data bitmap, as the rbio may be cached for later usage. 956 * do this before before unlock_stripe() so there will be no new bio 957 * for this bio. 958 */ 959 bitmap_clear(&rbio->dbitmap, 0, rbio->stripe_nsectors); 960 961 /* 962 * At this moment, rbio->bio_list is empty, however since rbio does not 963 * always have RBIO_RMW_LOCKED_BIT set and rbio is still linked on the 964 * hash list, rbio may be merged with others so that rbio->bio_list 965 * becomes non-empty. 966 * Once unlock_stripe() is done, rbio->bio_list will not be updated any 967 * more and we can call bio_endio() on all queued bios. 968 */ 969 unlock_stripe(rbio); 970 extra = bio_list_get(&rbio->bio_list); 971 free_raid_bio(rbio); 972 973 rbio_endio_bio_list(cur, status); 974 if (extra) 975 rbio_endio_bio_list(extra, status); 976 } 977 978 /* 979 * Get paddr pointer for the sector specified by its @stripe_nr and @sector_nr. 980 * 981 * @rbio: The raid bio 982 * @stripe_nr: Stripe number, valid range [0, real_stripe) 983 * @sector_nr: Sector number inside the stripe, 984 * valid range [0, stripe_nsectors) 985 * @bio_list_only: Whether to use sectors inside the bio list only. 986 * 987 * The read/modify/write code wants to reuse the original bio page as much 988 * as possible, and only use stripe_sectors as fallback. 989 * 990 * Return NULL if bio_list_only is set but the specified sector has no 991 * coresponding bio. 992 */ 993 static phys_addr_t *sector_paddrs_in_rbio(struct btrfs_raid_bio *rbio, 994 int stripe_nr, int sector_nr, 995 bool bio_list_only) 996 { 997 phys_addr_t *ret = NULL; 998 const int index = rbio_paddr_index(rbio, stripe_nr, sector_nr, 0); 999 1000 ASSERT(index >= 0 && index < rbio->nr_sectors * rbio->sector_nsteps); 1001 1002 scoped_guard(spinlock, &rbio->bio_list_lock) { 1003 if (rbio->bio_paddrs[index] != INVALID_PADDR || bio_list_only) { 1004 /* Don't return sector without a valid page pointer */ 1005 if (rbio->bio_paddrs[index] != INVALID_PADDR) 1006 ret = &rbio->bio_paddrs[index]; 1007 return ret; 1008 } 1009 } 1010 return &rbio->stripe_paddrs[index]; 1011 } 1012 1013 /* 1014 * Similar to sector_paddr_in_rbio(), but with extra consideration for 1015 * bs > ps cases, where we can have multiple steps for a fs block. 1016 */ 1017 static phys_addr_t sector_paddr_in_rbio(struct btrfs_raid_bio *rbio, 1018 int stripe_nr, int sector_nr, int step_nr, 1019 bool bio_list_only) 1020 { 1021 phys_addr_t ret = INVALID_PADDR; 1022 const int index = rbio_paddr_index(rbio, stripe_nr, sector_nr, step_nr); 1023 1024 ASSERT(index >= 0 && index < rbio->nr_sectors * rbio->sector_nsteps); 1025 1026 scoped_guard(spinlock, &rbio->bio_list_lock) { 1027 if (rbio->bio_paddrs[index] != INVALID_PADDR || bio_list_only) { 1028 /* Don't return sector without a valid page pointer */ 1029 if (rbio->bio_paddrs[index] != INVALID_PADDR) 1030 ret = rbio->bio_paddrs[index]; 1031 return ret; 1032 } 1033 } 1034 return rbio->stripe_paddrs[index]; 1035 } 1036 1037 /* 1038 * allocation and initial setup for the btrfs_raid_bio. Not 1039 * this does not allocate any pages for rbio->pages. 1040 */ 1041 static struct btrfs_raid_bio *alloc_rbio(struct btrfs_fs_info *fs_info, 1042 struct btrfs_io_context *bioc) 1043 { 1044 const unsigned int real_stripes = bioc->num_stripes - bioc->replace_nr_stripes; 1045 const unsigned int stripe_npages = BTRFS_STRIPE_LEN >> PAGE_SHIFT; 1046 const unsigned int num_pages = stripe_npages * real_stripes; 1047 const unsigned int stripe_nsectors = 1048 BTRFS_STRIPE_LEN >> fs_info->sectorsize_bits; 1049 const unsigned int num_sectors = stripe_nsectors * real_stripes; 1050 const unsigned int step = min(fs_info->sectorsize, PAGE_SIZE); 1051 const unsigned int sector_nsteps = fs_info->sectorsize / step; 1052 struct btrfs_raid_bio *rbio; 1053 1054 /* 1055 * For bs <= ps cases, ps must be aligned to bs. 1056 * For bs > ps cases, bs must be aligned to ps. 1057 */ 1058 ASSERT(IS_ALIGNED(PAGE_SIZE, fs_info->sectorsize) || 1059 IS_ALIGNED(fs_info->sectorsize, PAGE_SIZE)); 1060 /* 1061 * Our current stripe len should be fixed to 64k thus stripe_nsectors 1062 * (at most 16) should be no larger than BITS_PER_LONG. 1063 */ 1064 ASSERT(stripe_nsectors <= BITS_PER_LONG); 1065 1066 /* 1067 * Real stripes must be between 2 (2 disks RAID5, aka RAID1) and 256 1068 * (limited by u8). 1069 */ 1070 ASSERT(real_stripes >= 2); 1071 ASSERT(real_stripes <= U8_MAX); 1072 1073 rbio = kzalloc_obj(*rbio, GFP_NOFS); 1074 if (!rbio) 1075 return ERR_PTR(-ENOMEM); 1076 rbio->stripe_pages = kzalloc_objs(struct page *, num_pages, GFP_NOFS); 1077 rbio->bio_paddrs = kzalloc_objs(phys_addr_t, 1078 num_sectors * sector_nsteps, GFP_NOFS); 1079 rbio->stripe_paddrs = kzalloc_objs(phys_addr_t, 1080 num_sectors * sector_nsteps, 1081 GFP_NOFS); 1082 rbio->finish_pointers = kcalloc(real_stripes, sizeof(void *), GFP_NOFS); 1083 rbio->error_bitmap = bitmap_zalloc(num_sectors, GFP_NOFS); 1084 rbio->stripe_uptodate_bitmap = bitmap_zalloc(num_sectors, GFP_NOFS); 1085 1086 if (!rbio->stripe_pages || !rbio->bio_paddrs || !rbio->stripe_paddrs || 1087 !rbio->finish_pointers || !rbio->error_bitmap || !rbio->stripe_uptodate_bitmap) { 1088 free_raid_bio_pointers(rbio); 1089 kfree(rbio); 1090 return ERR_PTR(-ENOMEM); 1091 } 1092 for (int i = 0; i < num_sectors * sector_nsteps; i++) { 1093 rbio->stripe_paddrs[i] = INVALID_PADDR; 1094 rbio->bio_paddrs[i] = INVALID_PADDR; 1095 } 1096 1097 bio_list_init(&rbio->bio_list); 1098 init_waitqueue_head(&rbio->io_wait); 1099 INIT_LIST_HEAD(&rbio->plug_list); 1100 spin_lock_init(&rbio->bio_list_lock); 1101 INIT_LIST_HEAD(&rbio->stripe_cache); 1102 INIT_LIST_HEAD(&rbio->hash_list); 1103 btrfs_get_bioc(bioc); 1104 rbio->bioc = bioc; 1105 rbio->nr_pages = num_pages; 1106 rbio->nr_sectors = num_sectors; 1107 rbio->real_stripes = real_stripes; 1108 rbio->stripe_npages = stripe_npages; 1109 rbio->stripe_nsectors = stripe_nsectors; 1110 rbio->sector_nsteps = sector_nsteps; 1111 refcount_set(&rbio->refs, 1); 1112 atomic_set(&rbio->stripes_pending, 0); 1113 1114 ASSERT(btrfs_nr_parity_stripes(bioc->map_type)); 1115 rbio->nr_data = real_stripes - btrfs_nr_parity_stripes(bioc->map_type); 1116 ASSERT(rbio->nr_data > 0); 1117 1118 return rbio; 1119 } 1120 1121 /* allocate pages for all the stripes in the bio, including parity */ 1122 static int alloc_rbio_pages(struct btrfs_raid_bio *rbio) 1123 { 1124 int ret; 1125 1126 ret = btrfs_alloc_page_array(rbio->nr_pages, rbio->stripe_pages, false); 1127 if (ret < 0) 1128 return ret; 1129 /* Mapping all sectors */ 1130 index_stripe_sectors(rbio); 1131 return 0; 1132 } 1133 1134 /* only allocate pages for p/q stripes */ 1135 static int alloc_rbio_parity_pages(struct btrfs_raid_bio *rbio) 1136 { 1137 const int data_pages = rbio->nr_data * rbio->stripe_npages; 1138 int ret; 1139 1140 ret = btrfs_alloc_page_array(rbio->nr_pages - data_pages, 1141 rbio->stripe_pages + data_pages, false); 1142 if (ret < 0) 1143 return ret; 1144 1145 index_stripe_sectors(rbio); 1146 return 0; 1147 } 1148 1149 /* 1150 * Return the total number of errors found in the vertical stripe of @sector_nr. 1151 * 1152 * @faila and @failb will also be updated to the first and second stripe 1153 * number of the errors. 1154 */ 1155 static int get_rbio_vertical_errors(struct btrfs_raid_bio *rbio, int sector_nr, 1156 int *faila, int *failb) 1157 { 1158 int stripe_nr; 1159 int found_errors = 0; 1160 1161 if (faila || failb) { 1162 /* 1163 * Both @faila and @failb should be valid pointers if any of 1164 * them is specified. 1165 */ 1166 ASSERT(faila && failb); 1167 *faila = -1; 1168 *failb = -1; 1169 } 1170 1171 for (stripe_nr = 0; stripe_nr < rbio->real_stripes; stripe_nr++) { 1172 int total_sector_nr = stripe_nr * rbio->stripe_nsectors + sector_nr; 1173 1174 if (test_bit(total_sector_nr, rbio->error_bitmap)) { 1175 found_errors++; 1176 if (faila) { 1177 /* Update faila and failb. */ 1178 if (*faila < 0) 1179 *faila = stripe_nr; 1180 else if (*failb < 0) 1181 *failb = stripe_nr; 1182 } 1183 } 1184 } 1185 return found_errors; 1186 } 1187 1188 static int bio_add_paddrs(struct bio *bio, phys_addr_t *paddrs, unsigned int nr_steps, 1189 unsigned int step) 1190 { 1191 int added = 0; 1192 int ret; 1193 1194 for (int i = 0; i < nr_steps; i++) { 1195 ret = bio_add_page(bio, phys_to_page(paddrs[i]), step, 1196 offset_in_page(paddrs[i])); 1197 if (ret != step) 1198 goto revert; 1199 added += ret; 1200 } 1201 return added; 1202 revert: 1203 /* 1204 * We don't need to revert the bvec, as the bio will be submitted immediately, 1205 * as long as the size is reduced the extra bvec will not be accessed. 1206 */ 1207 bio->bi_iter.bi_size -= added; 1208 return 0; 1209 } 1210 1211 /* 1212 * Add a single sector @sector into our list of bios for IO. 1213 * 1214 * Return 0 if everything went well. 1215 * Return <0 for error, and no byte will be added to @rbio. 1216 */ 1217 static int rbio_add_io_paddrs(struct btrfs_raid_bio *rbio, struct bio_list *bio_list, 1218 phys_addr_t *paddrs, unsigned int stripe_nr, 1219 unsigned int sector_nr, enum req_op op) 1220 { 1221 const u32 sectorsize = rbio->bioc->fs_info->sectorsize; 1222 const u32 step = min(sectorsize, PAGE_SIZE); 1223 struct bio *last = bio_list->tail; 1224 int ret; 1225 struct bio *bio; 1226 struct btrfs_io_stripe *stripe; 1227 u64 disk_start; 1228 1229 /* 1230 * Note: here stripe_nr has taken device replace into consideration, 1231 * thus it can be larger than rbio->real_stripe. 1232 * So here we check against bioc->num_stripes, not rbio->real_stripes. 1233 */ 1234 ASSERT_RBIO_STRIPE(stripe_nr >= 0 && stripe_nr < rbio->bioc->num_stripes, 1235 rbio, stripe_nr); 1236 ASSERT_RBIO_SECTOR(sector_nr >= 0 && sector_nr < rbio->stripe_nsectors, 1237 rbio, sector_nr); 1238 ASSERT(paddrs != NULL); 1239 1240 stripe = &rbio->bioc->stripes[stripe_nr]; 1241 disk_start = stripe->physical + sector_nr * sectorsize; 1242 1243 /* if the device is missing, just fail this stripe */ 1244 if (!stripe->dev->bdev) { 1245 int found_errors; 1246 1247 set_bit(stripe_nr * rbio->stripe_nsectors + sector_nr, 1248 rbio->error_bitmap); 1249 1250 /* Check if we have reached tolerance early. */ 1251 found_errors = get_rbio_vertical_errors(rbio, sector_nr, 1252 NULL, NULL); 1253 if (unlikely(found_errors > rbio->bioc->max_errors)) 1254 return -EIO; 1255 return 0; 1256 } 1257 1258 /* see if we can add this page onto our existing bio */ 1259 if (last) { 1260 u64 last_end = last->bi_iter.bi_sector << SECTOR_SHIFT; 1261 last_end += last->bi_iter.bi_size; 1262 1263 /* 1264 * we can't merge these if they are from different 1265 * devices or if they are not contiguous 1266 */ 1267 if (last_end == disk_start && !last->bi_status && 1268 last->bi_bdev == stripe->dev->bdev) { 1269 ret = bio_add_paddrs(last, paddrs, rbio->sector_nsteps, step); 1270 if (ret == sectorsize) 1271 return 0; 1272 } 1273 } 1274 1275 /* put a new bio on the list */ 1276 bio = bio_alloc(stripe->dev->bdev, 1277 max(BTRFS_STRIPE_LEN >> PAGE_SHIFT, 1), 1278 op, GFP_NOFS); 1279 bio->bi_iter.bi_sector = disk_start >> SECTOR_SHIFT; 1280 bio->bi_private = rbio; 1281 1282 ret = bio_add_paddrs(bio, paddrs, rbio->sector_nsteps, step); 1283 ASSERT(ret == sectorsize); 1284 bio_list_add(bio_list, bio); 1285 return 0; 1286 } 1287 1288 static void index_one_bio(struct btrfs_raid_bio *rbio, struct bio *bio) 1289 { 1290 struct btrfs_fs_info *fs_info = rbio->bioc->fs_info; 1291 const u32 step = min(fs_info->sectorsize, PAGE_SIZE); 1292 const u32 step_bits = min(fs_info->sectorsize_bits, PAGE_SHIFT); 1293 struct bvec_iter iter = bio->bi_iter; 1294 phys_addr_t paddr; 1295 u32 offset = (bio->bi_iter.bi_sector << SECTOR_SHIFT) - 1296 rbio->bioc->full_stripe_logical; 1297 1298 btrfs_bio_for_each_block(paddr, bio, &iter, step) { 1299 unsigned int index = (offset >> step_bits); 1300 1301 rbio->bio_paddrs[index] = paddr; 1302 offset += step; 1303 } 1304 } 1305 1306 /* 1307 * helper function to walk our bio list and populate the bio_pages array with 1308 * the result. This seems expensive, but it is faster than constantly 1309 * searching through the bio list as we setup the IO in finish_rmw or stripe 1310 * reconstruction. 1311 * 1312 * This must be called before you trust the answers from page_in_rbio 1313 */ 1314 static void index_rbio_pages(struct btrfs_raid_bio *rbio) 1315 { 1316 struct bio *bio; 1317 1318 spin_lock(&rbio->bio_list_lock); 1319 bio_list_for_each(bio, &rbio->bio_list) 1320 index_one_bio(rbio, bio); 1321 1322 spin_unlock(&rbio->bio_list_lock); 1323 } 1324 1325 static void bio_get_trace_info(struct btrfs_raid_bio *rbio, struct bio *bio, 1326 struct raid56_bio_trace_info *trace_info) 1327 { 1328 const struct btrfs_io_context *bioc = rbio->bioc; 1329 int i; 1330 1331 ASSERT(bioc); 1332 1333 /* We rely on bio->bi_bdev to find the stripe number. */ 1334 if (!bio->bi_bdev) 1335 goto not_found; 1336 1337 for (i = 0; i < bioc->num_stripes; i++) { 1338 if (bio->bi_bdev != bioc->stripes[i].dev->bdev) 1339 continue; 1340 trace_info->stripe_nr = i; 1341 trace_info->devid = bioc->stripes[i].dev->devid; 1342 trace_info->offset = (bio->bi_iter.bi_sector << SECTOR_SHIFT) - 1343 bioc->stripes[i].physical; 1344 return; 1345 } 1346 1347 not_found: 1348 trace_info->devid = -1; 1349 trace_info->offset = -1; 1350 trace_info->stripe_nr = -1; 1351 } 1352 1353 static inline void bio_list_put(struct bio_list *bio_list) 1354 { 1355 struct bio *bio; 1356 1357 while ((bio = bio_list_pop(bio_list))) 1358 bio_put(bio); 1359 } 1360 1361 static void assert_rbio(struct btrfs_raid_bio *rbio) 1362 { 1363 if (!IS_ENABLED(CONFIG_BTRFS_ASSERT)) 1364 return; 1365 1366 /* 1367 * At least two stripes (2 disks RAID5), and since real_stripes is U8, 1368 * we won't go beyond 256 disks anyway. 1369 */ 1370 ASSERT_RBIO(rbio->real_stripes >= 2, rbio); 1371 ASSERT_RBIO(rbio->nr_data > 0, rbio); 1372 1373 /* 1374 * This is another check to make sure nr data stripes is smaller 1375 * than total stripes. 1376 */ 1377 ASSERT_RBIO(rbio->nr_data < rbio->real_stripes, rbio); 1378 } 1379 1380 static inline void *kmap_local_paddr(phys_addr_t paddr) 1381 { 1382 /* The sector pointer must have a page mapped to it. */ 1383 ASSERT(paddr != INVALID_PADDR); 1384 1385 return kmap_local_page(phys_to_page(paddr)) + offset_in_page(paddr); 1386 } 1387 1388 static void generate_pq_vertical_step(struct btrfs_raid_bio *rbio, unsigned int sector_nr, 1389 unsigned int step_nr) 1390 { 1391 void **pointers = rbio->finish_pointers; 1392 const u32 step = min(rbio->bioc->fs_info->sectorsize, PAGE_SIZE); 1393 int stripe; 1394 const bool has_qstripe = rbio->bioc->map_type & BTRFS_BLOCK_GROUP_RAID6; 1395 1396 /* First collect one sector from each data stripe */ 1397 for (stripe = 0; stripe < rbio->nr_data; stripe++) 1398 pointers[stripe] = kmap_local_paddr( 1399 sector_paddr_in_rbio(rbio, stripe, sector_nr, step_nr, 0)); 1400 1401 /* Then add the parity stripe */ 1402 pointers[stripe++] = kmap_local_paddr(rbio_pstripe_paddr(rbio, sector_nr, step_nr)); 1403 1404 if (has_qstripe) { 1405 /* 1406 * RAID6, add the qstripe and call the library function 1407 * to fill in our p/q 1408 */ 1409 pointers[stripe++] = kmap_local_paddr( 1410 rbio_qstripe_paddr(rbio, sector_nr, step_nr)); 1411 1412 assert_rbio(rbio); 1413 raid6_call.gen_syndrome(rbio->real_stripes, step, pointers); 1414 } else { 1415 /* raid5 */ 1416 memcpy(pointers[rbio->nr_data], pointers[0], step); 1417 xor_gen(pointers[rbio->nr_data], pointers + 1, rbio->nr_data - 1, 1418 step); 1419 } 1420 for (stripe = stripe - 1; stripe >= 0; stripe--) 1421 kunmap_local(pointers[stripe]); 1422 } 1423 1424 /* Generate PQ for one vertical stripe. */ 1425 static void generate_pq_vertical(struct btrfs_raid_bio *rbio, int sectornr) 1426 { 1427 const bool has_qstripe = (rbio->bioc->map_type & BTRFS_BLOCK_GROUP_RAID6); 1428 1429 for (int i = 0; i < rbio->sector_nsteps; i++) 1430 generate_pq_vertical_step(rbio, sectornr, i); 1431 1432 set_bit(rbio_sector_index(rbio, rbio->nr_data, sectornr), 1433 rbio->stripe_uptodate_bitmap); 1434 if (has_qstripe) 1435 set_bit(rbio_sector_index(rbio, rbio->nr_data + 1, sectornr), 1436 rbio->stripe_uptodate_bitmap); 1437 } 1438 1439 static int rmw_assemble_write_bios(struct btrfs_raid_bio *rbio, 1440 struct bio_list *bio_list) 1441 { 1442 /* The total sector number inside the full stripe. */ 1443 int total_sector_nr; 1444 int sectornr; 1445 int stripe; 1446 int ret; 1447 1448 ASSERT(bio_list_size(bio_list) == 0); 1449 1450 /* We should have at least one data sector. */ 1451 ASSERT(bitmap_weight(&rbio->dbitmap, rbio->stripe_nsectors)); 1452 1453 /* 1454 * Reset errors, as we may have errors inherited from from degraded 1455 * write. 1456 */ 1457 bitmap_clear(rbio->error_bitmap, 0, rbio->nr_sectors); 1458 1459 /* 1460 * Start assembly. Make bios for everything from the higher layers (the 1461 * bio_list in our rbio) and our P/Q. Ignore everything else. 1462 */ 1463 for (total_sector_nr = 0; total_sector_nr < rbio->nr_sectors; 1464 total_sector_nr++) { 1465 phys_addr_t *paddrs; 1466 1467 stripe = total_sector_nr / rbio->stripe_nsectors; 1468 sectornr = total_sector_nr % rbio->stripe_nsectors; 1469 1470 /* This vertical stripe has no data, skip it. */ 1471 if (!test_bit(sectornr, &rbio->dbitmap)) 1472 continue; 1473 1474 if (stripe < rbio->nr_data) { 1475 paddrs = sector_paddrs_in_rbio(rbio, stripe, sectornr, 1); 1476 if (paddrs == NULL) 1477 continue; 1478 } else { 1479 paddrs = rbio_stripe_paddrs(rbio, stripe, sectornr); 1480 } 1481 1482 ret = rbio_add_io_paddrs(rbio, bio_list, paddrs, stripe, 1483 sectornr, REQ_OP_WRITE); 1484 if (ret) 1485 goto error; 1486 } 1487 1488 if (likely(!rbio->bioc->replace_nr_stripes)) 1489 return 0; 1490 1491 /* 1492 * Make a copy for the replace target device. 1493 * 1494 * Thus the source stripe number (in replace_stripe_src) should be valid. 1495 */ 1496 ASSERT(rbio->bioc->replace_stripe_src >= 0); 1497 1498 for (total_sector_nr = 0; total_sector_nr < rbio->nr_sectors; 1499 total_sector_nr++) { 1500 phys_addr_t *paddrs; 1501 1502 stripe = total_sector_nr / rbio->stripe_nsectors; 1503 sectornr = total_sector_nr % rbio->stripe_nsectors; 1504 1505 /* 1506 * For RAID56, there is only one device that can be replaced, 1507 * and replace_stripe_src[0] indicates the stripe number we 1508 * need to copy from. 1509 */ 1510 if (stripe != rbio->bioc->replace_stripe_src) { 1511 /* 1512 * We can skip the whole stripe completely, note 1513 * total_sector_nr will be increased by one anyway. 1514 */ 1515 ASSERT(sectornr == 0); 1516 total_sector_nr += rbio->stripe_nsectors - 1; 1517 continue; 1518 } 1519 1520 /* This vertical stripe has no data, skip it. */ 1521 if (!test_bit(sectornr, &rbio->dbitmap)) 1522 continue; 1523 1524 if (stripe < rbio->nr_data) { 1525 paddrs = sector_paddrs_in_rbio(rbio, stripe, sectornr, 1); 1526 if (paddrs == NULL) 1527 continue; 1528 } else { 1529 paddrs = rbio_stripe_paddrs(rbio, stripe, sectornr); 1530 } 1531 1532 ret = rbio_add_io_paddrs(rbio, bio_list, paddrs, 1533 rbio->real_stripes, 1534 sectornr, REQ_OP_WRITE); 1535 if (ret) 1536 goto error; 1537 } 1538 1539 return 0; 1540 error: 1541 bio_list_put(bio_list); 1542 return -EIO; 1543 } 1544 1545 static void set_rbio_range_error(struct btrfs_raid_bio *rbio, struct bio *bio) 1546 { 1547 struct btrfs_fs_info *fs_info = rbio->bioc->fs_info; 1548 u32 offset = (bio->bi_iter.bi_sector << SECTOR_SHIFT) - 1549 rbio->bioc->full_stripe_logical; 1550 int total_nr_sector = offset >> fs_info->sectorsize_bits; 1551 1552 ASSERT(total_nr_sector < rbio->nr_data * rbio->stripe_nsectors); 1553 1554 bitmap_set(rbio->error_bitmap, total_nr_sector, 1555 bio->bi_iter.bi_size >> fs_info->sectorsize_bits); 1556 1557 /* 1558 * Special handling for raid56_alloc_missing_rbio() used by 1559 * scrub/replace. Unlike call path in raid56_parity_recover(), they 1560 * pass an empty bio here. Thus we have to find out the missing device 1561 * and mark the stripe error instead. 1562 */ 1563 if (bio->bi_iter.bi_size == 0) { 1564 bool found_missing = false; 1565 int stripe_nr; 1566 1567 for (stripe_nr = 0; stripe_nr < rbio->real_stripes; stripe_nr++) { 1568 if (!rbio->bioc->stripes[stripe_nr].dev->bdev) { 1569 found_missing = true; 1570 bitmap_set(rbio->error_bitmap, 1571 stripe_nr * rbio->stripe_nsectors, 1572 rbio->stripe_nsectors); 1573 } 1574 } 1575 ASSERT(found_missing); 1576 } 1577 } 1578 1579 /* 1580 * Return the index inside the rbio->stripe_sectors[] array. 1581 * 1582 * Return -1 if not found. 1583 */ 1584 static int find_stripe_sector_nr(struct btrfs_raid_bio *rbio, phys_addr_t paddr) 1585 { 1586 for (int i = 0; i < rbio->nr_sectors; i++) { 1587 if (rbio->stripe_paddrs[i * rbio->sector_nsteps] == paddr) 1588 return i; 1589 } 1590 return -1; 1591 } 1592 1593 /* 1594 * this sets each page in the bio uptodate. It should only be used on private 1595 * rbio pages, nothing that comes in from the higher layers 1596 */ 1597 static void set_bio_pages_uptodate(struct btrfs_raid_bio *rbio, struct bio *bio) 1598 { 1599 const u32 sectorsize = rbio->bioc->fs_info->sectorsize; 1600 const u32 step = min(sectorsize, PAGE_SIZE); 1601 u32 offset = 0; 1602 phys_addr_t paddr; 1603 1604 ASSERT(!bio_flagged(bio, BIO_CLONED)); 1605 1606 btrfs_bio_for_each_block_all(paddr, bio, step) { 1607 /* Hitting the first step of a sector. */ 1608 if (IS_ALIGNED(offset, sectorsize)) { 1609 int sector_nr = find_stripe_sector_nr(rbio, paddr); 1610 1611 ASSERT(sector_nr >= 0); 1612 if (sector_nr >= 0) 1613 set_bit(sector_nr, rbio->stripe_uptodate_bitmap); 1614 } 1615 offset += step; 1616 } 1617 } 1618 1619 static int get_bio_sector_nr(struct btrfs_raid_bio *rbio, struct bio *bio) 1620 { 1621 phys_addr_t bvec_paddr = bvec_phys(bio_first_bvec_all(bio)); 1622 int i; 1623 1624 for (i = 0; i < rbio->nr_sectors; i++) { 1625 if (rbio->stripe_paddrs[i * rbio->sector_nsteps] == bvec_paddr) 1626 break; 1627 if (rbio->bio_paddrs[i * rbio->sector_nsteps] == bvec_paddr) 1628 break; 1629 } 1630 ASSERT(i < rbio->nr_sectors); 1631 return i; 1632 } 1633 1634 static void rbio_update_error_bitmap(struct btrfs_raid_bio *rbio, struct bio *bio) 1635 { 1636 int total_sector_nr = get_bio_sector_nr(rbio, bio); 1637 u32 bio_size = 0; 1638 struct bio_vec *bvec; 1639 int i; 1640 1641 bio_for_each_bvec_all(bvec, bio, i) 1642 bio_size += bvec->bv_len; 1643 1644 /* 1645 * Since we can have multiple bios touching the error_bitmap, we cannot 1646 * call bitmap_set() without protection. 1647 * 1648 * Instead use set_bit() for each bit, as set_bit() itself is atomic. 1649 */ 1650 for (i = total_sector_nr; i < total_sector_nr + 1651 (bio_size >> rbio->bioc->fs_info->sectorsize_bits); i++) 1652 set_bit(i, rbio->error_bitmap); 1653 } 1654 1655 /* Verify the data sectors at read time. */ 1656 static void verify_bio_data_sectors(struct btrfs_raid_bio *rbio, 1657 struct bio *bio) 1658 { 1659 struct btrfs_fs_info *fs_info = rbio->bioc->fs_info; 1660 const u32 step = min(fs_info->sectorsize, PAGE_SIZE); 1661 const u32 nr_steps = rbio->sector_nsteps; 1662 int total_sector_nr = get_bio_sector_nr(rbio, bio); 1663 u32 offset = 0; 1664 phys_addr_t paddrs[BTRFS_MAX_BLOCKSIZE / PAGE_SIZE]; 1665 phys_addr_t paddr; 1666 1667 /* No data csum for the whole stripe, no need to verify. */ 1668 if (!rbio->csum_bitmap || !rbio->csum_buf) 1669 return; 1670 1671 /* P/Q stripes, they have no data csum to verify against. */ 1672 if (total_sector_nr >= rbio->nr_data * rbio->stripe_nsectors) 1673 return; 1674 1675 btrfs_bio_for_each_block_all(paddr, bio, step) { 1676 u8 csum_buf[BTRFS_CSUM_SIZE]; 1677 u8 *expected_csum; 1678 1679 paddrs[(offset / step) % nr_steps] = paddr; 1680 offset += step; 1681 1682 /* Not yet covering the full fs block, continue to the next step. */ 1683 if (!IS_ALIGNED(offset, fs_info->sectorsize)) 1684 continue; 1685 1686 /* No csum for this sector, skip to the next sector. */ 1687 if (!test_bit(total_sector_nr, rbio->csum_bitmap)) 1688 continue; 1689 1690 expected_csum = rbio->csum_buf + total_sector_nr * fs_info->csum_size; 1691 btrfs_calculate_block_csum_pages(fs_info, paddrs, csum_buf); 1692 if (unlikely(memcmp(csum_buf, expected_csum, fs_info->csum_size) != 0)) 1693 set_bit(total_sector_nr, rbio->error_bitmap); 1694 total_sector_nr++; 1695 } 1696 } 1697 1698 static void raid_wait_read_end_io(struct bio *bio) 1699 { 1700 struct btrfs_raid_bio *rbio = bio->bi_private; 1701 1702 if (bio->bi_status) { 1703 rbio_update_error_bitmap(rbio, bio); 1704 } else { 1705 set_bio_pages_uptodate(rbio, bio); 1706 verify_bio_data_sectors(rbio, bio); 1707 } 1708 1709 bio_put(bio); 1710 if (atomic_dec_and_test(&rbio->stripes_pending)) 1711 wake_up(&rbio->io_wait); 1712 } 1713 1714 static void submit_read_wait_bio_list(struct btrfs_raid_bio *rbio, 1715 struct bio_list *bio_list) 1716 { 1717 struct bio *bio; 1718 1719 atomic_set(&rbio->stripes_pending, bio_list_size(bio_list)); 1720 while ((bio = bio_list_pop(bio_list))) { 1721 bio->bi_end_io = raid_wait_read_end_io; 1722 1723 if (trace_raid56_read_enabled()) { 1724 struct raid56_bio_trace_info trace_info = { 0 }; 1725 1726 bio_get_trace_info(rbio, bio, &trace_info); 1727 trace_raid56_read(rbio, bio, &trace_info); 1728 } 1729 submit_bio(bio); 1730 } 1731 1732 wait_event(rbio->io_wait, atomic_read(&rbio->stripes_pending) == 0); 1733 } 1734 1735 static int alloc_rbio_data_pages(struct btrfs_raid_bio *rbio) 1736 { 1737 const int data_pages = rbio->nr_data * rbio->stripe_npages; 1738 int ret; 1739 1740 ret = btrfs_alloc_page_array(data_pages, rbio->stripe_pages, false); 1741 if (ret < 0) 1742 return ret; 1743 1744 index_stripe_sectors(rbio); 1745 return 0; 1746 } 1747 1748 /* 1749 * We use plugging call backs to collect full stripes. 1750 * Any time we get a partial stripe write while plugged 1751 * we collect it into a list. When the unplug comes down, 1752 * we sort the list by logical block number and merge 1753 * everything we can into the same rbios 1754 */ 1755 struct btrfs_plug_cb { 1756 struct blk_plug_cb cb; 1757 struct btrfs_fs_info *info; 1758 struct list_head rbio_list; 1759 }; 1760 1761 /* 1762 * rbios on the plug list are sorted for easier merging. 1763 */ 1764 static int plug_cmp(void *priv, const struct list_head *a, 1765 const struct list_head *b) 1766 { 1767 const struct btrfs_raid_bio *ra = container_of(a, struct btrfs_raid_bio, 1768 plug_list); 1769 const struct btrfs_raid_bio *rb = container_of(b, struct btrfs_raid_bio, 1770 plug_list); 1771 u64 a_sector = ra->bio_list.head->bi_iter.bi_sector; 1772 u64 b_sector = rb->bio_list.head->bi_iter.bi_sector; 1773 1774 if (a_sector < b_sector) 1775 return -1; 1776 if (a_sector > b_sector) 1777 return 1; 1778 return 0; 1779 } 1780 1781 static void raid_unplug(struct blk_plug_cb *cb, bool from_schedule) 1782 { 1783 struct btrfs_plug_cb *plug = container_of(cb, struct btrfs_plug_cb, cb); 1784 struct btrfs_raid_bio *cur; 1785 struct btrfs_raid_bio *last = NULL; 1786 1787 list_sort(NULL, &plug->rbio_list, plug_cmp); 1788 1789 while (!list_empty(&plug->rbio_list)) { 1790 cur = list_first_entry(&plug->rbio_list, 1791 struct btrfs_raid_bio, plug_list); 1792 list_del_init(&cur->plug_list); 1793 1794 if (rbio_is_full(cur)) { 1795 /* We have a full stripe, queue it down. */ 1796 start_async_work(cur, rmw_rbio_work); 1797 continue; 1798 } 1799 if (last) { 1800 if (rbio_can_merge(last, cur)) { 1801 merge_rbio(last, cur); 1802 free_raid_bio(cur); 1803 continue; 1804 } 1805 start_async_work(last, rmw_rbio_work); 1806 } 1807 last = cur; 1808 } 1809 if (last) 1810 start_async_work(last, rmw_rbio_work); 1811 kfree(plug); 1812 } 1813 1814 /* Add the original bio into rbio->bio_list, and update rbio::dbitmap. */ 1815 static void rbio_add_bio(struct btrfs_raid_bio *rbio, struct bio *orig_bio) 1816 { 1817 const struct btrfs_fs_info *fs_info = rbio->bioc->fs_info; 1818 const u64 orig_logical = orig_bio->bi_iter.bi_sector << SECTOR_SHIFT; 1819 const u64 full_stripe_start = rbio->bioc->full_stripe_logical; 1820 const u32 orig_len = orig_bio->bi_iter.bi_size; 1821 const u32 sectorsize = fs_info->sectorsize; 1822 u64 cur_logical; 1823 1824 ASSERT_RBIO_LOGICAL(orig_logical >= full_stripe_start && 1825 orig_logical + orig_len <= full_stripe_start + 1826 rbio->nr_data * BTRFS_STRIPE_LEN, 1827 rbio, orig_logical); 1828 1829 bio_list_add(&rbio->bio_list, orig_bio); 1830 rbio->bio_list_bytes += orig_bio->bi_iter.bi_size; 1831 1832 /* Update the dbitmap. */ 1833 for (cur_logical = orig_logical; cur_logical < orig_logical + orig_len; 1834 cur_logical += sectorsize) { 1835 int bit = ((u32)(cur_logical - full_stripe_start) >> 1836 fs_info->sectorsize_bits) % rbio->stripe_nsectors; 1837 1838 set_bit(bit, &rbio->dbitmap); 1839 } 1840 } 1841 1842 /* 1843 * our main entry point for writes from the rest of the FS. 1844 */ 1845 void raid56_parity_write(struct bio *bio, struct btrfs_io_context *bioc) 1846 { 1847 struct btrfs_fs_info *fs_info = bioc->fs_info; 1848 struct btrfs_raid_bio *rbio; 1849 struct btrfs_plug_cb *plug = NULL; 1850 struct blk_plug_cb *cb; 1851 1852 rbio = alloc_rbio(fs_info, bioc); 1853 if (IS_ERR(rbio)) { 1854 bio->bi_status = errno_to_blk_status(PTR_ERR(rbio)); 1855 bio_endio(bio); 1856 return; 1857 } 1858 rbio->operation = BTRFS_RBIO_WRITE; 1859 rbio_add_bio(rbio, bio); 1860 1861 /* 1862 * Don't plug on full rbios, just get them out the door 1863 * as quickly as we can 1864 */ 1865 if (!rbio_is_full(rbio)) { 1866 cb = blk_check_plugged(raid_unplug, fs_info, sizeof(*plug)); 1867 if (cb) { 1868 plug = container_of(cb, struct btrfs_plug_cb, cb); 1869 if (!plug->info) { 1870 plug->info = fs_info; 1871 INIT_LIST_HEAD(&plug->rbio_list); 1872 } 1873 list_add_tail(&rbio->plug_list, &plug->rbio_list); 1874 return; 1875 } 1876 } 1877 1878 /* 1879 * Either we don't have any existing plug, or we're doing a full stripe, 1880 * queue the rmw work now. 1881 */ 1882 start_async_work(rbio, rmw_rbio_work); 1883 } 1884 1885 static int verify_one_sector(struct btrfs_raid_bio *rbio, 1886 int stripe_nr, int sector_nr) 1887 { 1888 struct btrfs_fs_info *fs_info = rbio->bioc->fs_info; 1889 phys_addr_t *paddrs; 1890 u8 csum_buf[BTRFS_CSUM_SIZE]; 1891 u8 *csum_expected; 1892 1893 if (!rbio->csum_bitmap || !rbio->csum_buf) 1894 return 0; 1895 1896 /* No way to verify P/Q as they are not covered by data csum. */ 1897 if (stripe_nr >= rbio->nr_data) 1898 return 0; 1899 /* 1900 * If we're rebuilding a read, we have to use pages from the 1901 * bio list if possible. 1902 */ 1903 if (rbio->operation == BTRFS_RBIO_READ_REBUILD) { 1904 paddrs = sector_paddrs_in_rbio(rbio, stripe_nr, sector_nr, 0); 1905 } else { 1906 paddrs = rbio_stripe_paddrs(rbio, stripe_nr, sector_nr); 1907 } 1908 1909 csum_expected = rbio->csum_buf + 1910 (stripe_nr * rbio->stripe_nsectors + sector_nr) * 1911 fs_info->csum_size; 1912 btrfs_calculate_block_csum_pages(fs_info, paddrs, csum_buf); 1913 if (unlikely(memcmp(csum_buf, csum_expected, fs_info->csum_size) != 0)) 1914 return -EIO; 1915 return 0; 1916 } 1917 1918 static void recover_vertical_step(struct btrfs_raid_bio *rbio, 1919 unsigned int sector_nr, 1920 unsigned int step_nr, 1921 int faila, int failb, 1922 void **pointers, void **unmap_array) 1923 { 1924 struct btrfs_fs_info *fs_info = rbio->bioc->fs_info; 1925 const u32 step = min(fs_info->sectorsize, PAGE_SIZE); 1926 int stripe_nr; 1927 1928 ASSERT(step_nr < rbio->sector_nsteps); 1929 ASSERT(sector_nr < rbio->stripe_nsectors); 1930 1931 /* 1932 * Setup our array of pointers with sectors from each stripe 1933 * 1934 * NOTE: store a duplicate array of pointers to preserve the 1935 * pointer order. 1936 */ 1937 for (stripe_nr = 0; stripe_nr < rbio->real_stripes; stripe_nr++) { 1938 phys_addr_t paddr; 1939 1940 /* 1941 * If we're rebuilding a read, we have to use pages from the 1942 * bio list if possible. 1943 */ 1944 if (rbio->operation == BTRFS_RBIO_READ_REBUILD) { 1945 paddr = sector_paddr_in_rbio(rbio, stripe_nr, sector_nr, step_nr, 0); 1946 } else { 1947 paddr = rbio_stripe_paddr(rbio, stripe_nr, sector_nr, step_nr); 1948 } 1949 pointers[stripe_nr] = kmap_local_paddr(paddr); 1950 unmap_array[stripe_nr] = pointers[stripe_nr]; 1951 } 1952 1953 /* All raid6 handling here */ 1954 if (rbio->bioc->map_type & BTRFS_BLOCK_GROUP_RAID6) { 1955 /* Single failure, rebuild from parity raid5 style */ 1956 if (failb < 0) { 1957 if (faila == rbio->nr_data) 1958 /* 1959 * Just the P stripe has failed, without 1960 * a bad data or Q stripe. 1961 * We have nothing to do, just skip the 1962 * recovery for this stripe. 1963 */ 1964 goto cleanup; 1965 /* 1966 * a single failure in raid6 is rebuilt 1967 * in the pstripe code below 1968 */ 1969 goto pstripe; 1970 } 1971 1972 /* 1973 * If the q stripe is failed, do a pstripe reconstruction from 1974 * the xors. 1975 * If both the q stripe and the P stripe are failed, we're 1976 * here due to a crc mismatch and we can't give them the 1977 * data they want. 1978 */ 1979 if (failb == rbio->real_stripes - 1) { 1980 if (faila == rbio->real_stripes - 2) 1981 /* 1982 * Only P and Q are corrupted. 1983 * We only care about data stripes recovery, 1984 * can skip this vertical stripe. 1985 */ 1986 goto cleanup; 1987 /* 1988 * Otherwise we have one bad data stripe and 1989 * a good P stripe. raid5! 1990 */ 1991 goto pstripe; 1992 } 1993 1994 if (failb == rbio->real_stripes - 2) { 1995 raid6_datap_recov(rbio->real_stripes, step, 1996 faila, pointers); 1997 } else { 1998 raid6_2data_recov(rbio->real_stripes, step, 1999 faila, failb, pointers); 2000 } 2001 } else { 2002 void *p; 2003 2004 /* Rebuild from P stripe here (raid5 or raid6). */ 2005 ASSERT(failb == -1); 2006 pstripe: 2007 /* Copy parity block into failed block to start with */ 2008 memcpy(pointers[faila], pointers[rbio->nr_data], step); 2009 2010 /* Rearrange the pointer array */ 2011 p = pointers[faila]; 2012 for (stripe_nr = faila; stripe_nr < rbio->nr_data - 1; 2013 stripe_nr++) 2014 pointers[stripe_nr] = pointers[stripe_nr + 1]; 2015 pointers[rbio->nr_data - 1] = p; 2016 2017 /* Xor in the rest */ 2018 xor_gen(p, pointers, rbio->nr_data - 1, step); 2019 } 2020 2021 cleanup: 2022 for (stripe_nr = rbio->real_stripes - 1; stripe_nr >= 0; stripe_nr--) 2023 kunmap_local(unmap_array[stripe_nr]); 2024 } 2025 2026 /* 2027 * Recover a vertical stripe specified by @sector_nr. 2028 * @*pointers are the pre-allocated pointers by the caller, so we don't 2029 * need to allocate/free the pointers again and again. 2030 */ 2031 static int recover_vertical(struct btrfs_raid_bio *rbio, int sector_nr, 2032 void **pointers, void **unmap_array) 2033 { 2034 int found_errors; 2035 int faila; 2036 int failb; 2037 int ret = 0; 2038 2039 /* 2040 * Now we just use bitmap to mark the horizontal stripes in 2041 * which we have data when doing parity scrub. 2042 */ 2043 if (rbio->operation == BTRFS_RBIO_PARITY_SCRUB && 2044 !test_bit(sector_nr, &rbio->dbitmap)) 2045 return 0; 2046 2047 found_errors = get_rbio_vertical_errors(rbio, sector_nr, &faila, 2048 &failb); 2049 /* 2050 * No errors in the vertical stripe, skip it. Can happen for recovery 2051 * which only part of a stripe failed csum check. 2052 */ 2053 if (!found_errors) 2054 return 0; 2055 2056 if (unlikely(found_errors > rbio->bioc->max_errors)) 2057 return -EIO; 2058 2059 for (int i = 0; i < rbio->sector_nsteps; i++) 2060 recover_vertical_step(rbio, sector_nr, i, faila, failb, 2061 pointers, unmap_array); 2062 if (faila >= 0) { 2063 ret = verify_one_sector(rbio, faila, sector_nr); 2064 if (ret < 0) 2065 return ret; 2066 2067 set_bit(rbio_sector_index(rbio, faila, sector_nr), 2068 rbio->stripe_uptodate_bitmap); 2069 } 2070 if (failb >= 0) { 2071 ret = verify_one_sector(rbio, failb, sector_nr); 2072 if (ret < 0) 2073 return ret; 2074 2075 set_bit(rbio_sector_index(rbio, failb, sector_nr), 2076 rbio->stripe_uptodate_bitmap); 2077 } 2078 return ret; 2079 } 2080 2081 static int recover_sectors(struct btrfs_raid_bio *rbio) 2082 { 2083 void **pointers = NULL; 2084 void **unmap_array = NULL; 2085 int sectornr; 2086 int ret = 0; 2087 2088 /* 2089 * @pointers array stores the pointer for each sector. 2090 * 2091 * @unmap_array stores copy of pointers that does not get reordered 2092 * during reconstruction so that kunmap_local works. 2093 */ 2094 pointers = kcalloc(rbio->real_stripes, sizeof(void *), GFP_NOFS); 2095 unmap_array = kcalloc(rbio->real_stripes, sizeof(void *), GFP_NOFS); 2096 if (!pointers || !unmap_array) { 2097 ret = -ENOMEM; 2098 goto out; 2099 } 2100 2101 if (rbio->operation == BTRFS_RBIO_READ_REBUILD) { 2102 spin_lock(&rbio->bio_list_lock); 2103 set_bit(RBIO_RMW_LOCKED_BIT, &rbio->flags); 2104 spin_unlock(&rbio->bio_list_lock); 2105 } 2106 2107 index_rbio_pages(rbio); 2108 2109 for (sectornr = 0; sectornr < rbio->stripe_nsectors; sectornr++) { 2110 ret = recover_vertical(rbio, sectornr, pointers, unmap_array); 2111 if (ret < 0) 2112 break; 2113 } 2114 2115 out: 2116 kfree(pointers); 2117 kfree(unmap_array); 2118 return ret; 2119 } 2120 2121 static void recover_rbio(struct btrfs_raid_bio *rbio) 2122 { 2123 struct bio_list bio_list = BIO_EMPTY_LIST; 2124 int total_sector_nr; 2125 int ret = 0; 2126 2127 /* 2128 * Either we're doing recover for a read failure or degraded write, 2129 * caller should have set error bitmap correctly. 2130 */ 2131 ASSERT(bitmap_weight(rbio->error_bitmap, rbio->nr_sectors)); 2132 2133 /* For recovery, we need to read all sectors including P/Q. */ 2134 ret = alloc_rbio_pages(rbio); 2135 if (ret < 0) 2136 goto out; 2137 2138 index_rbio_pages(rbio); 2139 2140 /* 2141 * Read everything that hasn't failed. However this time we will 2142 * not trust any cached sector. 2143 * As we may read out some stale data but higher layer is not reading 2144 * that stale part. 2145 * 2146 * So here we always re-read everything in recovery path. 2147 */ 2148 for (total_sector_nr = 0; total_sector_nr < rbio->nr_sectors; 2149 total_sector_nr++) { 2150 int stripe = total_sector_nr / rbio->stripe_nsectors; 2151 int sectornr = total_sector_nr % rbio->stripe_nsectors; 2152 phys_addr_t *paddrs; 2153 2154 /* 2155 * Skip the range which has error. It can be a range which is 2156 * marked error (for csum mismatch), or it can be a missing 2157 * device. 2158 */ 2159 if (!rbio->bioc->stripes[stripe].dev->bdev || 2160 test_bit(total_sector_nr, rbio->error_bitmap)) { 2161 /* 2162 * Also set the error bit for missing device, which 2163 * may not yet have its error bit set. 2164 */ 2165 set_bit(total_sector_nr, rbio->error_bitmap); 2166 continue; 2167 } 2168 2169 paddrs = rbio_stripe_paddrs(rbio, stripe, sectornr); 2170 ret = rbio_add_io_paddrs(rbio, &bio_list, paddrs, stripe, 2171 sectornr, REQ_OP_READ); 2172 if (ret < 0) { 2173 bio_list_put(&bio_list); 2174 goto out; 2175 } 2176 } 2177 2178 submit_read_wait_bio_list(rbio, &bio_list); 2179 ret = recover_sectors(rbio); 2180 out: 2181 rbio_orig_end_io(rbio, errno_to_blk_status(ret)); 2182 } 2183 2184 static void recover_rbio_work(struct work_struct *work) 2185 { 2186 struct btrfs_raid_bio *rbio; 2187 2188 rbio = container_of(work, struct btrfs_raid_bio, work); 2189 if (!lock_stripe_add(rbio)) 2190 recover_rbio(rbio); 2191 } 2192 2193 static void recover_rbio_work_locked(struct work_struct *work) 2194 { 2195 recover_rbio(container_of(work, struct btrfs_raid_bio, work)); 2196 } 2197 2198 static void set_rbio_raid6_extra_error(struct btrfs_raid_bio *rbio, int mirror_num) 2199 { 2200 bool found = false; 2201 int sector_nr; 2202 2203 /* 2204 * This is for RAID6 extra recovery tries, thus mirror number should 2205 * be large than 2. 2206 * Mirror 1 means read from data stripes. Mirror 2 means rebuild using 2207 * RAID5 methods. 2208 */ 2209 ASSERT(mirror_num > 2); 2210 for (sector_nr = 0; sector_nr < rbio->stripe_nsectors; sector_nr++) { 2211 int found_errors; 2212 int faila; 2213 int failb; 2214 2215 found_errors = get_rbio_vertical_errors(rbio, sector_nr, 2216 &faila, &failb); 2217 /* This vertical stripe doesn't have errors. */ 2218 if (!found_errors) 2219 continue; 2220 2221 /* 2222 * If we found errors, there should be only one error marked 2223 * by previous set_rbio_range_error(). 2224 */ 2225 ASSERT(found_errors == 1); 2226 found = true; 2227 2228 /* Now select another stripe to mark as error. */ 2229 failb = rbio->real_stripes - (mirror_num - 1); 2230 if (failb <= faila) 2231 failb--; 2232 2233 /* Set the extra bit in error bitmap. */ 2234 if (failb >= 0) 2235 set_bit(failb * rbio->stripe_nsectors + sector_nr, 2236 rbio->error_bitmap); 2237 } 2238 2239 /* We should found at least one vertical stripe with error.*/ 2240 ASSERT(found); 2241 } 2242 2243 /* 2244 * the main entry point for reads from the higher layers. This 2245 * is really only called when the normal read path had a failure, 2246 * so we assume the bio they send down corresponds to a failed part 2247 * of the drive. 2248 */ 2249 void raid56_parity_recover(struct bio *bio, struct btrfs_io_context *bioc, 2250 int mirror_num) 2251 { 2252 struct btrfs_fs_info *fs_info = bioc->fs_info; 2253 struct btrfs_raid_bio *rbio; 2254 2255 rbio = alloc_rbio(fs_info, bioc); 2256 if (IS_ERR(rbio)) { 2257 bio->bi_status = errno_to_blk_status(PTR_ERR(rbio)); 2258 bio_endio(bio); 2259 return; 2260 } 2261 2262 rbio->operation = BTRFS_RBIO_READ_REBUILD; 2263 rbio_add_bio(rbio, bio); 2264 2265 set_rbio_range_error(rbio, bio); 2266 2267 /* 2268 * Loop retry: 2269 * for 'mirror == 2', reconstruct from all other stripes. 2270 * for 'mirror_num > 2', select a stripe to fail on every retry. 2271 */ 2272 if (mirror_num > 2) 2273 set_rbio_raid6_extra_error(rbio, mirror_num); 2274 2275 start_async_work(rbio, recover_rbio_work); 2276 } 2277 2278 static void fill_data_csums(struct btrfs_raid_bio *rbio) 2279 { 2280 struct btrfs_fs_info *fs_info = rbio->bioc->fs_info; 2281 struct btrfs_root *csum_root; 2282 const u64 start = rbio->bioc->full_stripe_logical; 2283 const u32 len = (rbio->nr_data * rbio->stripe_nsectors) << 2284 fs_info->sectorsize_bits; 2285 int ret; 2286 2287 /* The rbio should not have its csum buffer initialized. */ 2288 ASSERT(!rbio->csum_buf && !rbio->csum_bitmap); 2289 2290 /* 2291 * Skip the csum search if: 2292 * 2293 * - The rbio doesn't belong to data block groups 2294 * Then we are doing IO for tree blocks, no need to search csums. 2295 * 2296 * - The rbio belongs to mixed block groups 2297 * This is to avoid deadlock, as we're already holding the full 2298 * stripe lock, if we trigger a metadata read, and it needs to do 2299 * raid56 recovery, we will deadlock. 2300 */ 2301 if (!(rbio->bioc->map_type & BTRFS_BLOCK_GROUP_DATA) || 2302 rbio->bioc->map_type & BTRFS_BLOCK_GROUP_METADATA) 2303 return; 2304 2305 rbio->csum_buf = kzalloc(rbio->nr_data * rbio->stripe_nsectors * 2306 fs_info->csum_size, GFP_NOFS); 2307 rbio->csum_bitmap = bitmap_zalloc(rbio->nr_data * rbio->stripe_nsectors, 2308 GFP_NOFS); 2309 if (!rbio->csum_buf || !rbio->csum_bitmap) { 2310 ret = -ENOMEM; 2311 goto error; 2312 } 2313 2314 csum_root = btrfs_csum_root(fs_info, rbio->bioc->full_stripe_logical); 2315 if (unlikely(!csum_root)) { 2316 btrfs_err(fs_info, 2317 "missing csum root for extent at bytenr %llu", 2318 rbio->bioc->full_stripe_logical); 2319 ret = -EUCLEAN; 2320 goto error; 2321 } 2322 2323 ret = btrfs_lookup_csums_bitmap(csum_root, NULL, start, start + len - 1, 2324 rbio->csum_buf, rbio->csum_bitmap); 2325 if (ret < 0) 2326 goto error; 2327 if (bitmap_empty(rbio->csum_bitmap, len >> fs_info->sectorsize_bits)) 2328 goto no_csum; 2329 return; 2330 2331 error: 2332 /* 2333 * We failed to allocate memory or grab the csum, but it's not fatal, 2334 * we can still continue. But better to warn users that RMW is no 2335 * longer safe for this particular sub-stripe write. 2336 */ 2337 btrfs_warn_rl(fs_info, 2338 "sub-stripe write for full stripe %llu is not safe, failed to get csum: %d", 2339 rbio->bioc->full_stripe_logical, ret); 2340 no_csum: 2341 kfree(rbio->csum_buf); 2342 bitmap_free(rbio->csum_bitmap); 2343 rbio->csum_buf = NULL; 2344 rbio->csum_bitmap = NULL; 2345 } 2346 2347 static int rmw_read_wait_recover(struct btrfs_raid_bio *rbio) 2348 { 2349 struct bio_list bio_list = BIO_EMPTY_LIST; 2350 int total_sector_nr; 2351 int ret = 0; 2352 2353 /* 2354 * Fill the data csums we need for data verification. We need to fill 2355 * the csum_bitmap/csum_buf first, as our endio function will try to 2356 * verify the data sectors. 2357 */ 2358 fill_data_csums(rbio); 2359 2360 /* 2361 * Build a list of bios to read all sectors (including data and P/Q). 2362 * 2363 * This behavior is to compensate the later csum verification and recovery. 2364 */ 2365 for (total_sector_nr = 0; total_sector_nr < rbio->nr_sectors; 2366 total_sector_nr++) { 2367 int stripe = total_sector_nr / rbio->stripe_nsectors; 2368 int sectornr = total_sector_nr % rbio->stripe_nsectors; 2369 phys_addr_t *paddrs; 2370 2371 paddrs = rbio_stripe_paddrs(rbio, stripe, sectornr); 2372 ret = rbio_add_io_paddrs(rbio, &bio_list, paddrs, stripe, 2373 sectornr, REQ_OP_READ); 2374 if (ret) { 2375 bio_list_put(&bio_list); 2376 return ret; 2377 } 2378 } 2379 2380 /* 2381 * We may or may not have any corrupted sectors (including missing dev 2382 * and csum mismatch), just let recover_sectors() to handle them all. 2383 */ 2384 submit_read_wait_bio_list(rbio, &bio_list); 2385 return recover_sectors(rbio); 2386 } 2387 2388 static void raid_wait_write_end_io(struct bio *bio) 2389 { 2390 struct btrfs_raid_bio *rbio = bio->bi_private; 2391 2392 if (bio->bi_status) 2393 rbio_update_error_bitmap(rbio, bio); 2394 bio_put(bio); 2395 if (atomic_dec_and_test(&rbio->stripes_pending)) 2396 wake_up(&rbio->io_wait); 2397 } 2398 2399 static void submit_write_bios(struct btrfs_raid_bio *rbio, 2400 struct bio_list *bio_list) 2401 { 2402 struct bio *bio; 2403 2404 atomic_set(&rbio->stripes_pending, bio_list_size(bio_list)); 2405 while ((bio = bio_list_pop(bio_list))) { 2406 bio->bi_end_io = raid_wait_write_end_io; 2407 2408 if (trace_raid56_write_enabled()) { 2409 struct raid56_bio_trace_info trace_info = { 0 }; 2410 2411 bio_get_trace_info(rbio, bio, &trace_info); 2412 trace_raid56_write(rbio, bio, &trace_info); 2413 } 2414 submit_bio(bio); 2415 } 2416 } 2417 2418 /* 2419 * To determine if we need to read any sector from the disk. 2420 * Should only be utilized in RMW path, to skip cached rbio. 2421 */ 2422 static bool need_read_stripe_sectors(struct btrfs_raid_bio *rbio) 2423 { 2424 int i; 2425 2426 for (i = 0; i < rbio->nr_data * rbio->stripe_nsectors; i++) { 2427 phys_addr_t paddr = rbio->stripe_paddrs[i * rbio->sector_nsteps]; 2428 2429 /* 2430 * We have a sector which doesn't have page nor uptodate, 2431 * thus this rbio can not be cached one, as cached one must 2432 * have all its data sectors present and uptodate. 2433 */ 2434 if (paddr == INVALID_PADDR || 2435 !test_bit(i, rbio->stripe_uptodate_bitmap)) 2436 return true; 2437 } 2438 return false; 2439 } 2440 2441 static void rmw_rbio(struct btrfs_raid_bio *rbio) 2442 { 2443 struct bio_list bio_list; 2444 int sectornr; 2445 int ret = 0; 2446 2447 /* 2448 * Allocate the pages for parity first, as P/Q pages will always be 2449 * needed for both full-stripe and sub-stripe writes. 2450 */ 2451 ret = alloc_rbio_parity_pages(rbio); 2452 if (ret < 0) 2453 goto out; 2454 2455 /* 2456 * Either full stripe write, or we have every data sector already 2457 * cached, can go to write path immediately. 2458 */ 2459 if (!rbio_is_full(rbio) && need_read_stripe_sectors(rbio)) { 2460 /* 2461 * Now we're doing sub-stripe write, also need all data stripes 2462 * to do the full RMW. 2463 */ 2464 ret = alloc_rbio_data_pages(rbio); 2465 if (ret < 0) 2466 goto out; 2467 2468 index_rbio_pages(rbio); 2469 2470 ret = rmw_read_wait_recover(rbio); 2471 if (ret < 0) 2472 goto out; 2473 } 2474 2475 /* 2476 * At this stage we're not allowed to add any new bios to the 2477 * bio list any more, anyone else that wants to change this stripe 2478 * needs to do their own rmw. 2479 */ 2480 spin_lock(&rbio->bio_list_lock); 2481 set_bit(RBIO_RMW_LOCKED_BIT, &rbio->flags); 2482 spin_unlock(&rbio->bio_list_lock); 2483 2484 bitmap_clear(rbio->error_bitmap, 0, rbio->nr_sectors); 2485 2486 index_rbio_pages(rbio); 2487 2488 /* 2489 * We don't cache full rbios because we're assuming 2490 * the higher layers are unlikely to use this area of 2491 * the disk again soon. If they do use it again, 2492 * hopefully they will send another full bio. 2493 */ 2494 if (!rbio_is_full(rbio)) 2495 cache_rbio_pages(rbio); 2496 else 2497 clear_bit(RBIO_CACHE_READY_BIT, &rbio->flags); 2498 2499 for (sectornr = 0; sectornr < rbio->stripe_nsectors; sectornr++) 2500 generate_pq_vertical(rbio, sectornr); 2501 2502 bio_list_init(&bio_list); 2503 ret = rmw_assemble_write_bios(rbio, &bio_list); 2504 if (ret < 0) 2505 goto out; 2506 2507 /* We should have at least one bio assembled. */ 2508 ASSERT(bio_list_size(&bio_list)); 2509 submit_write_bios(rbio, &bio_list); 2510 wait_event(rbio->io_wait, atomic_read(&rbio->stripes_pending) == 0); 2511 2512 /* We may have more errors than our tolerance during the read. */ 2513 for (sectornr = 0; sectornr < rbio->stripe_nsectors; sectornr++) { 2514 int found_errors; 2515 2516 found_errors = get_rbio_vertical_errors(rbio, sectornr, NULL, NULL); 2517 if (unlikely(found_errors > rbio->bioc->max_errors)) { 2518 ret = -EIO; 2519 break; 2520 } 2521 } 2522 out: 2523 rbio_orig_end_io(rbio, errno_to_blk_status(ret)); 2524 } 2525 2526 static void rmw_rbio_work(struct work_struct *work) 2527 { 2528 struct btrfs_raid_bio *rbio; 2529 2530 rbio = container_of(work, struct btrfs_raid_bio, work); 2531 if (lock_stripe_add(rbio) == 0) 2532 rmw_rbio(rbio); 2533 } 2534 2535 static void rmw_rbio_work_locked(struct work_struct *work) 2536 { 2537 rmw_rbio(container_of(work, struct btrfs_raid_bio, work)); 2538 } 2539 2540 /* 2541 * The following code is used to scrub/replace the parity stripe 2542 * 2543 * Caller must have already increased bio_counter for getting @bioc. 2544 * 2545 * Note: We need make sure all the pages that add into the scrub/replace 2546 * raid bio are correct and not be changed during the scrub/replace. That 2547 * is those pages just hold metadata or file data with checksum. 2548 */ 2549 2550 struct btrfs_raid_bio *raid56_parity_alloc_scrub_rbio(struct bio *bio, 2551 struct btrfs_io_context *bioc, 2552 struct btrfs_device *scrub_dev, 2553 unsigned long *dbitmap, int stripe_nsectors) 2554 { 2555 struct btrfs_fs_info *fs_info = bioc->fs_info; 2556 struct btrfs_raid_bio *rbio; 2557 int i; 2558 2559 rbio = alloc_rbio(fs_info, bioc); 2560 if (IS_ERR(rbio)) 2561 return NULL; 2562 bio_list_add(&rbio->bio_list, bio); 2563 /* 2564 * This is a special bio which is used to hold the completion handler 2565 * and make the scrub rbio is similar to the other types 2566 */ 2567 ASSERT(!bio->bi_iter.bi_size); 2568 rbio->operation = BTRFS_RBIO_PARITY_SCRUB; 2569 2570 /* 2571 * After mapping bioc with BTRFS_MAP_WRITE, parities have been sorted 2572 * to the end position, so this search can start from the first parity 2573 * stripe. 2574 */ 2575 for (i = rbio->nr_data; i < rbio->real_stripes; i++) { 2576 if (bioc->stripes[i].dev == scrub_dev) { 2577 rbio->scrubp = i; 2578 break; 2579 } 2580 } 2581 ASSERT_RBIO_STRIPE(i < rbio->real_stripes, rbio, i); 2582 2583 bitmap_copy(&rbio->dbitmap, dbitmap, stripe_nsectors); 2584 return rbio; 2585 } 2586 2587 static int alloc_rbio_sector_pages(struct btrfs_raid_bio *rbio, 2588 int sector_nr) 2589 { 2590 const u32 step = min(PAGE_SIZE, rbio->bioc->fs_info->sectorsize); 2591 const u32 base = sector_nr * rbio->sector_nsteps; 2592 2593 for (int i = base; i < base + rbio->sector_nsteps; i++) { 2594 const unsigned int page_index = (i * step) >> PAGE_SHIFT; 2595 struct page *page; 2596 2597 if (rbio->stripe_pages[page_index]) 2598 continue; 2599 page = alloc_page(GFP_NOFS); 2600 if (!page) 2601 return -ENOMEM; 2602 rbio->stripe_pages[page_index] = page; 2603 } 2604 return 0; 2605 } 2606 2607 /* 2608 * We just scrub the parity that we have correct data on the same horizontal, 2609 * so we needn't allocate all pages for all the stripes. 2610 */ 2611 static int alloc_rbio_essential_pages(struct btrfs_raid_bio *rbio) 2612 { 2613 int total_sector_nr; 2614 2615 for (total_sector_nr = 0; total_sector_nr < rbio->nr_sectors; 2616 total_sector_nr++) { 2617 int sectornr = total_sector_nr % rbio->stripe_nsectors; 2618 int ret; 2619 2620 if (!test_bit(sectornr, &rbio->dbitmap)) 2621 continue; 2622 ret = alloc_rbio_sector_pages(rbio, total_sector_nr); 2623 if (ret < 0) 2624 return ret; 2625 } 2626 index_stripe_sectors(rbio); 2627 return 0; 2628 } 2629 2630 /* Return true if the content of the step matches the caclulated one. */ 2631 static bool verify_one_parity_step(struct btrfs_raid_bio *rbio, 2632 void *pointers[], unsigned int sector_nr, 2633 unsigned int step_nr) 2634 { 2635 const unsigned int nr_data = rbio->nr_data; 2636 const bool has_qstripe = (rbio->real_stripes - rbio->nr_data == 2); 2637 const u32 step = min(rbio->bioc->fs_info->sectorsize, PAGE_SIZE); 2638 void *parity; 2639 bool ret = false; 2640 2641 ASSERT(step_nr < rbio->sector_nsteps); 2642 2643 /* First collect one page from each data stripe. */ 2644 for (int stripe = 0; stripe < nr_data; stripe++) 2645 pointers[stripe] = kmap_local_paddr( 2646 sector_paddr_in_rbio(rbio, stripe, sector_nr, 2647 step_nr, 0)); 2648 2649 if (has_qstripe) { 2650 assert_rbio(rbio); 2651 /* RAID6, call the library function to fill in our P/Q. */ 2652 raid6_call.gen_syndrome(rbio->real_stripes, step, pointers); 2653 } else { 2654 /* RAID5. */ 2655 memcpy(pointers[nr_data], pointers[0], step); 2656 xor_gen(pointers[nr_data], pointers + 1, nr_data - 1, step); 2657 } 2658 2659 /* Check scrubbing parity and repair it. */ 2660 parity = kmap_local_paddr(rbio_stripe_paddr(rbio, rbio->scrubp, sector_nr, step_nr)); 2661 if (memcmp(parity, pointers[rbio->scrubp], step) != 0) 2662 memcpy(parity, pointers[rbio->scrubp], step); 2663 else 2664 ret = true; 2665 kunmap_local(parity); 2666 2667 for (int stripe = nr_data - 1; stripe >= 0; stripe--) 2668 kunmap_local(pointers[stripe]); 2669 return ret; 2670 } 2671 2672 /* 2673 * The @pointers array should have the P/Q parity already mapped. 2674 */ 2675 static void verify_one_parity_sector(struct btrfs_raid_bio *rbio, 2676 void *pointers[], unsigned int sector_nr) 2677 { 2678 bool found_error = false; 2679 2680 for (int step_nr = 0; step_nr < rbio->sector_nsteps; step_nr++) { 2681 bool match; 2682 2683 match = verify_one_parity_step(rbio, pointers, sector_nr, step_nr); 2684 if (!match) 2685 found_error = true; 2686 } 2687 if (!found_error) 2688 bitmap_clear(&rbio->dbitmap, sector_nr, 1); 2689 } 2690 2691 static int finish_parity_scrub(struct btrfs_raid_bio *rbio) 2692 { 2693 struct btrfs_io_context *bioc = rbio->bioc; 2694 void **pointers = rbio->finish_pointers; 2695 unsigned long *pbitmap = &rbio->finish_pbitmap; 2696 int nr_data = rbio->nr_data; 2697 int sectornr; 2698 bool has_qstripe; 2699 struct page *page; 2700 phys_addr_t p_paddr = INVALID_PADDR; 2701 phys_addr_t q_paddr = INVALID_PADDR; 2702 struct bio_list bio_list; 2703 int is_replace = 0; 2704 int ret; 2705 2706 bio_list_init(&bio_list); 2707 2708 if (rbio->real_stripes - rbio->nr_data == 1) 2709 has_qstripe = false; 2710 else if (rbio->real_stripes - rbio->nr_data == 2) 2711 has_qstripe = true; 2712 else 2713 BUG(); 2714 2715 /* 2716 * Replace is running and our P/Q stripe is being replaced, then we 2717 * need to duplicate the final write to replace target. 2718 */ 2719 if (bioc->replace_nr_stripes && bioc->replace_stripe_src == rbio->scrubp) { 2720 is_replace = 1; 2721 bitmap_copy(pbitmap, &rbio->dbitmap, rbio->stripe_nsectors); 2722 } 2723 2724 /* 2725 * Because the higher layers(scrubber) are unlikely to 2726 * use this area of the disk again soon, so don't cache 2727 * it. 2728 */ 2729 clear_bit(RBIO_CACHE_READY_BIT, &rbio->flags); 2730 2731 page = alloc_page(GFP_NOFS); 2732 if (!page) 2733 return -ENOMEM; 2734 p_paddr = page_to_phys(page); 2735 page = NULL; 2736 pointers[nr_data] = kmap_local_paddr(p_paddr); 2737 2738 if (has_qstripe) { 2739 /* RAID6, allocate and map temp space for the Q stripe */ 2740 page = alloc_page(GFP_NOFS); 2741 if (!page) { 2742 __free_page(phys_to_page(p_paddr)); 2743 p_paddr = INVALID_PADDR; 2744 return -ENOMEM; 2745 } 2746 q_paddr = page_to_phys(page); 2747 page = NULL; 2748 pointers[rbio->real_stripes - 1] = kmap_local_paddr(q_paddr); 2749 } 2750 2751 bitmap_clear(rbio->error_bitmap, 0, rbio->nr_sectors); 2752 2753 /* Map the parity stripe just once */ 2754 2755 for_each_set_bit(sectornr, &rbio->dbitmap, rbio->stripe_nsectors) 2756 verify_one_parity_sector(rbio, pointers, sectornr); 2757 2758 kunmap_local(pointers[nr_data]); 2759 __free_page(phys_to_page(p_paddr)); 2760 p_paddr = INVALID_PADDR; 2761 if (q_paddr != INVALID_PADDR) { 2762 __free_page(phys_to_page(q_paddr)); 2763 q_paddr = INVALID_PADDR; 2764 } 2765 2766 /* 2767 * time to start writing. Make bios for everything from the 2768 * higher layers (the bio_list in our rbio) and our p/q. Ignore 2769 * everything else. 2770 */ 2771 for_each_set_bit(sectornr, &rbio->dbitmap, rbio->stripe_nsectors) { 2772 phys_addr_t *paddrs; 2773 2774 paddrs = rbio_stripe_paddrs(rbio, rbio->scrubp, sectornr); 2775 ret = rbio_add_io_paddrs(rbio, &bio_list, paddrs, rbio->scrubp, 2776 sectornr, REQ_OP_WRITE); 2777 if (ret) 2778 goto cleanup; 2779 } 2780 2781 if (!is_replace) 2782 goto submit_write; 2783 2784 /* 2785 * Replace is running and our parity stripe needs to be duplicated to 2786 * the target device. Check we have a valid source stripe number. 2787 */ 2788 ASSERT_RBIO(rbio->bioc->replace_stripe_src >= 0, rbio); 2789 for_each_set_bit(sectornr, pbitmap, rbio->stripe_nsectors) { 2790 phys_addr_t *paddrs; 2791 2792 paddrs = rbio_stripe_paddrs(rbio, rbio->scrubp, sectornr); 2793 ret = rbio_add_io_paddrs(rbio, &bio_list, paddrs, rbio->real_stripes, 2794 sectornr, REQ_OP_WRITE); 2795 if (ret) 2796 goto cleanup; 2797 } 2798 2799 submit_write: 2800 submit_write_bios(rbio, &bio_list); 2801 return 0; 2802 2803 cleanup: 2804 bio_list_put(&bio_list); 2805 return ret; 2806 } 2807 2808 static inline int is_data_stripe(struct btrfs_raid_bio *rbio, int stripe) 2809 { 2810 if (stripe >= 0 && stripe < rbio->nr_data) 2811 return 1; 2812 return 0; 2813 } 2814 2815 static int recover_scrub_rbio(struct btrfs_raid_bio *rbio) 2816 { 2817 void **pointers = NULL; 2818 void **unmap_array = NULL; 2819 int sector_nr; 2820 int ret = 0; 2821 2822 /* 2823 * @pointers array stores the pointer for each sector. 2824 * 2825 * @unmap_array stores copy of pointers that does not get reordered 2826 * during reconstruction so that kunmap_local works. 2827 */ 2828 pointers = kcalloc(rbio->real_stripes, sizeof(void *), GFP_NOFS); 2829 unmap_array = kcalloc(rbio->real_stripes, sizeof(void *), GFP_NOFS); 2830 if (!pointers || !unmap_array) { 2831 ret = -ENOMEM; 2832 goto out; 2833 } 2834 2835 for (sector_nr = 0; sector_nr < rbio->stripe_nsectors; sector_nr++) { 2836 int dfail = 0, failp = -1; 2837 int faila; 2838 int failb; 2839 int found_errors; 2840 2841 found_errors = get_rbio_vertical_errors(rbio, sector_nr, 2842 &faila, &failb); 2843 if (unlikely(found_errors > rbio->bioc->max_errors)) { 2844 ret = -EIO; 2845 goto out; 2846 } 2847 if (found_errors == 0) 2848 continue; 2849 2850 /* We should have at least one error here. */ 2851 ASSERT(faila >= 0 || failb >= 0); 2852 2853 if (is_data_stripe(rbio, faila)) 2854 dfail++; 2855 else if (is_parity_stripe(faila)) 2856 failp = faila; 2857 2858 if (is_data_stripe(rbio, failb)) 2859 dfail++; 2860 else if (is_parity_stripe(failb)) 2861 failp = failb; 2862 /* 2863 * Because we can not use a scrubbing parity to repair the 2864 * data, so the capability of the repair is declined. (In the 2865 * case of RAID5, we can not repair anything.) 2866 */ 2867 if (unlikely(dfail > rbio->bioc->max_errors - 1)) { 2868 ret = -EIO; 2869 goto out; 2870 } 2871 /* 2872 * If all data is good, only parity is correctly, just repair 2873 * the parity, no need to recover data stripes. 2874 */ 2875 if (dfail == 0) 2876 continue; 2877 2878 /* 2879 * Here means we got one corrupted data stripe and one 2880 * corrupted parity on RAID6, if the corrupted parity is 2881 * scrubbing parity, luckily, use the other one to repair the 2882 * data, or we can not repair the data stripe. 2883 */ 2884 if (unlikely(failp != rbio->scrubp)) { 2885 ret = -EIO; 2886 goto out; 2887 } 2888 2889 ret = recover_vertical(rbio, sector_nr, pointers, unmap_array); 2890 if (ret < 0) 2891 goto out; 2892 } 2893 out: 2894 kfree(pointers); 2895 kfree(unmap_array); 2896 return ret; 2897 } 2898 2899 static int scrub_assemble_read_bios(struct btrfs_raid_bio *rbio) 2900 { 2901 struct bio_list bio_list = BIO_EMPTY_LIST; 2902 int total_sector_nr; 2903 int ret = 0; 2904 2905 /* Build a list of bios to read all the missing parts. */ 2906 for (total_sector_nr = 0; total_sector_nr < rbio->nr_sectors; 2907 total_sector_nr++) { 2908 int sectornr = total_sector_nr % rbio->stripe_nsectors; 2909 int stripe = total_sector_nr / rbio->stripe_nsectors; 2910 phys_addr_t *paddrs; 2911 2912 /* No data in the vertical stripe, no need to read. */ 2913 if (!test_bit(sectornr, &rbio->dbitmap)) 2914 continue; 2915 2916 /* 2917 * We want to find all the sectors missing from the rbio and 2918 * read them from the disk. If sector_paddr_in_rbio() finds a sector 2919 * in the bio list we don't need to read it off the stripe. 2920 */ 2921 paddrs = sector_paddrs_in_rbio(rbio, stripe, sectornr, 1); 2922 if (paddrs == NULL) 2923 continue; 2924 2925 paddrs = rbio_stripe_paddrs(rbio, stripe, sectornr); 2926 /* 2927 * The bio cache may have handed us an uptodate sector. If so, 2928 * use it. 2929 */ 2930 if (test_bit(rbio_sector_index(rbio, stripe, sectornr), 2931 rbio->stripe_uptodate_bitmap)) 2932 continue; 2933 2934 ret = rbio_add_io_paddrs(rbio, &bio_list, paddrs, stripe, 2935 sectornr, REQ_OP_READ); 2936 if (ret) { 2937 bio_list_put(&bio_list); 2938 return ret; 2939 } 2940 } 2941 2942 submit_read_wait_bio_list(rbio, &bio_list); 2943 return 0; 2944 } 2945 2946 static void scrub_rbio(struct btrfs_raid_bio *rbio) 2947 { 2948 int sector_nr; 2949 int ret; 2950 2951 ret = alloc_rbio_essential_pages(rbio); 2952 if (ret) 2953 goto out; 2954 2955 bitmap_clear(rbio->error_bitmap, 0, rbio->nr_sectors); 2956 2957 ret = scrub_assemble_read_bios(rbio); 2958 if (ret < 0) 2959 goto out; 2960 2961 /* We may have some failures, recover the failed sectors first. */ 2962 ret = recover_scrub_rbio(rbio); 2963 if (ret < 0) 2964 goto out; 2965 2966 /* 2967 * We have every sector properly prepared. Can finish the scrub 2968 * and writeback the good content. 2969 */ 2970 ret = finish_parity_scrub(rbio); 2971 wait_event(rbio->io_wait, atomic_read(&rbio->stripes_pending) == 0); 2972 for (sector_nr = 0; sector_nr < rbio->stripe_nsectors; sector_nr++) { 2973 int found_errors; 2974 2975 found_errors = get_rbio_vertical_errors(rbio, sector_nr, NULL, NULL); 2976 if (unlikely(found_errors > rbio->bioc->max_errors)) { 2977 ret = -EIO; 2978 break; 2979 } 2980 } 2981 out: 2982 rbio_orig_end_io(rbio, errno_to_blk_status(ret)); 2983 } 2984 2985 static void scrub_rbio_work_locked(struct work_struct *work) 2986 { 2987 scrub_rbio(container_of(work, struct btrfs_raid_bio, work)); 2988 } 2989 2990 void raid56_parity_submit_scrub_rbio(struct btrfs_raid_bio *rbio) 2991 { 2992 if (!lock_stripe_add(rbio)) 2993 start_async_work(rbio, scrub_rbio_work_locked); 2994 } 2995 2996 /* 2997 * This is for scrub call sites where we already have correct data contents. 2998 * This allows us to avoid reading data stripes again. 2999 * 3000 * Unfortunately here we have to do folio copy, other than reusing the pages. 3001 * This is due to the fact rbio has its own page management for its cache. 3002 */ 3003 void raid56_parity_cache_data_folios(struct btrfs_raid_bio *rbio, 3004 struct folio **data_folios, u64 data_logical) 3005 { 3006 struct btrfs_fs_info *fs_info = rbio->bioc->fs_info; 3007 const u64 offset_in_full_stripe = data_logical - 3008 rbio->bioc->full_stripe_logical; 3009 unsigned int findex = 0; 3010 unsigned int foffset = 0; 3011 int ret; 3012 3013 /* 3014 * If we hit ENOMEM temporarily, but later at 3015 * raid56_parity_submit_scrub_rbio() time it succeeded, we just do 3016 * the extra read, not a big deal. 3017 * 3018 * If we hit ENOMEM later at raid56_parity_submit_scrub_rbio() time, 3019 * the bio would got proper error number set. 3020 */ 3021 ret = alloc_rbio_data_pages(rbio); 3022 if (ret < 0) 3023 return; 3024 3025 /* data_logical must be at stripe boundary and inside the full stripe. */ 3026 ASSERT(IS_ALIGNED(offset_in_full_stripe, BTRFS_STRIPE_LEN)); 3027 ASSERT(offset_in_full_stripe < (rbio->nr_data << BTRFS_STRIPE_LEN_SHIFT)); 3028 3029 for (unsigned int cur_off = offset_in_full_stripe; 3030 cur_off < offset_in_full_stripe + BTRFS_STRIPE_LEN; 3031 cur_off += PAGE_SIZE) { 3032 const unsigned int pindex = cur_off >> PAGE_SHIFT; 3033 void *kaddr; 3034 3035 kaddr = kmap_local_page(rbio->stripe_pages[pindex]); 3036 memcpy_from_folio(kaddr, data_folios[findex], foffset, PAGE_SIZE); 3037 kunmap_local(kaddr); 3038 3039 foffset += PAGE_SIZE; 3040 ASSERT(foffset <= folio_size(data_folios[findex])); 3041 if (foffset == folio_size(data_folios[findex])) { 3042 findex++; 3043 foffset = 0; 3044 } 3045 } 3046 bitmap_set(rbio->stripe_uptodate_bitmap, 3047 offset_in_full_stripe >> fs_info->sectorsize_bits, 3048 BTRFS_STRIPE_LEN >> fs_info->sectorsize_bits); 3049 } 3050