1 // SPDX-License-Identifier: GPL-2.0 2 3 #include "bcachefs.h" 4 #include "async_objs.h" 5 #include "bkey_buf.h" 6 #include "bkey_methods.h" 7 #include "bkey_sort.h" 8 #include "btree_cache.h" 9 #include "btree_io.h" 10 #include "btree_iter.h" 11 #include "btree_locking.h" 12 #include "btree_update.h" 13 #include "btree_update_interior.h" 14 #include "buckets.h" 15 #include "checksum.h" 16 #include "debug.h" 17 #include "enumerated_ref.h" 18 #include "error.h" 19 #include "extents.h" 20 #include "io_write.h" 21 #include "journal_reclaim.h" 22 #include "journal_seq_blacklist.h" 23 #include "recovery.h" 24 #include "super-io.h" 25 #include "trace.h" 26 27 #include <linux/sched/mm.h> 28 29 static void bch2_btree_node_header_to_text(struct printbuf *out, struct btree_node *bn) 30 { 31 bch2_btree_id_level_to_text(out, BTREE_NODE_ID(bn), BTREE_NODE_LEVEL(bn)); 32 prt_printf(out, " seq %llx %llu\n", bn->keys.seq, BTREE_NODE_SEQ(bn)); 33 prt_str(out, "min: "); 34 bch2_bpos_to_text(out, bn->min_key); 35 prt_newline(out); 36 prt_str(out, "max: "); 37 bch2_bpos_to_text(out, bn->max_key); 38 } 39 40 void bch2_btree_node_io_unlock(struct btree *b) 41 { 42 EBUG_ON(!btree_node_write_in_flight(b)); 43 44 clear_btree_node_write_in_flight_inner(b); 45 clear_btree_node_write_in_flight(b); 46 smp_mb__after_atomic(); 47 wake_up_bit(&b->flags, BTREE_NODE_write_in_flight); 48 } 49 50 void bch2_btree_node_io_lock(struct btree *b) 51 { 52 wait_on_bit_lock_io(&b->flags, BTREE_NODE_write_in_flight, 53 TASK_UNINTERRUPTIBLE); 54 } 55 56 void __bch2_btree_node_wait_on_read(struct btree *b) 57 { 58 wait_on_bit_io(&b->flags, BTREE_NODE_read_in_flight, 59 TASK_UNINTERRUPTIBLE); 60 } 61 62 void __bch2_btree_node_wait_on_write(struct btree *b) 63 { 64 wait_on_bit_io(&b->flags, BTREE_NODE_write_in_flight, 65 TASK_UNINTERRUPTIBLE); 66 } 67 68 void bch2_btree_node_wait_on_read(struct btree *b) 69 { 70 wait_on_bit_io(&b->flags, BTREE_NODE_read_in_flight, 71 TASK_UNINTERRUPTIBLE); 72 } 73 74 void bch2_btree_node_wait_on_write(struct btree *b) 75 { 76 wait_on_bit_io(&b->flags, BTREE_NODE_write_in_flight, 77 TASK_UNINTERRUPTIBLE); 78 } 79 80 static void verify_no_dups(struct btree *b, 81 struct bkey_packed *start, 82 struct bkey_packed *end) 83 { 84 #ifdef CONFIG_BCACHEFS_DEBUG 85 struct bkey_packed *k, *p; 86 87 if (start == end) 88 return; 89 90 for (p = start, k = bkey_p_next(start); 91 k != end; 92 p = k, k = bkey_p_next(k)) { 93 struct bkey l = bkey_unpack_key(b, p); 94 struct bkey r = bkey_unpack_key(b, k); 95 96 BUG_ON(bpos_ge(l.p, bkey_start_pos(&r))); 97 } 98 #endif 99 } 100 101 static void set_needs_whiteout(struct bset *i, int v) 102 { 103 struct bkey_packed *k; 104 105 for (k = i->start; k != vstruct_last(i); k = bkey_p_next(k)) 106 k->needs_whiteout = v; 107 } 108 109 static void btree_bounce_free(struct bch_fs *c, size_t size, 110 bool used_mempool, void *p) 111 { 112 if (used_mempool) 113 mempool_free(p, &c->btree_bounce_pool); 114 else 115 kvfree(p); 116 } 117 118 static void *btree_bounce_alloc(struct bch_fs *c, size_t size, 119 bool *used_mempool) 120 { 121 unsigned flags = memalloc_nofs_save(); 122 void *p; 123 124 BUG_ON(size > c->opts.btree_node_size); 125 126 *used_mempool = false; 127 p = kvmalloc(size, __GFP_NOWARN|GFP_NOWAIT); 128 if (!p) { 129 *used_mempool = true; 130 p = mempool_alloc(&c->btree_bounce_pool, GFP_NOFS); 131 } 132 memalloc_nofs_restore(flags); 133 return p; 134 } 135 136 static void sort_bkey_ptrs(const struct btree *bt, 137 struct bkey_packed **ptrs, unsigned nr) 138 { 139 unsigned n = nr, a = nr / 2, b, c, d; 140 141 if (!a) 142 return; 143 144 /* Heap sort: see lib/sort.c: */ 145 while (1) { 146 if (a) 147 a--; 148 else if (--n) 149 swap(ptrs[0], ptrs[n]); 150 else 151 break; 152 153 for (b = a; c = 2 * b + 1, (d = c + 1) < n;) 154 b = bch2_bkey_cmp_packed(bt, 155 ptrs[c], 156 ptrs[d]) >= 0 ? c : d; 157 if (d == n) 158 b = c; 159 160 while (b != a && 161 bch2_bkey_cmp_packed(bt, 162 ptrs[a], 163 ptrs[b]) >= 0) 164 b = (b - 1) / 2; 165 c = b; 166 while (b != a) { 167 b = (b - 1) / 2; 168 swap(ptrs[b], ptrs[c]); 169 } 170 } 171 } 172 173 static void bch2_sort_whiteouts(struct bch_fs *c, struct btree *b) 174 { 175 struct bkey_packed *new_whiteouts, **ptrs, **ptrs_end, *k; 176 bool used_mempool = false; 177 size_t bytes = b->whiteout_u64s * sizeof(u64); 178 179 if (!b->whiteout_u64s) 180 return; 181 182 new_whiteouts = btree_bounce_alloc(c, bytes, &used_mempool); 183 184 ptrs = ptrs_end = ((void *) new_whiteouts + bytes); 185 186 for (k = unwritten_whiteouts_start(b); 187 k != unwritten_whiteouts_end(b); 188 k = bkey_p_next(k)) 189 *--ptrs = k; 190 191 sort_bkey_ptrs(b, ptrs, ptrs_end - ptrs); 192 193 k = new_whiteouts; 194 195 while (ptrs != ptrs_end) { 196 bkey_p_copy(k, *ptrs); 197 k = bkey_p_next(k); 198 ptrs++; 199 } 200 201 verify_no_dups(b, new_whiteouts, 202 (void *) ((u64 *) new_whiteouts + b->whiteout_u64s)); 203 204 memcpy_u64s(unwritten_whiteouts_start(b), 205 new_whiteouts, b->whiteout_u64s); 206 207 btree_bounce_free(c, bytes, used_mempool, new_whiteouts); 208 } 209 210 static bool should_compact_bset(struct btree *b, struct bset_tree *t, 211 bool compacting, enum compact_mode mode) 212 { 213 if (!bset_dead_u64s(b, t)) 214 return false; 215 216 switch (mode) { 217 case COMPACT_LAZY: 218 return should_compact_bset_lazy(b, t) || 219 (compacting && !bset_written(b, bset(b, t))); 220 case COMPACT_ALL: 221 return true; 222 default: 223 BUG(); 224 } 225 } 226 227 static bool bch2_drop_whiteouts(struct btree *b, enum compact_mode mode) 228 { 229 bool ret = false; 230 231 for_each_bset(b, t) { 232 struct bset *i = bset(b, t); 233 struct bkey_packed *k, *n, *out, *start, *end; 234 struct btree_node_entry *src = NULL, *dst = NULL; 235 236 if (t != b->set && !bset_written(b, i)) { 237 src = container_of(i, struct btree_node_entry, keys); 238 dst = max(write_block(b), 239 (void *) btree_bkey_last(b, t - 1)); 240 } 241 242 if (src != dst) 243 ret = true; 244 245 if (!should_compact_bset(b, t, ret, mode)) { 246 if (src != dst) { 247 memmove(dst, src, sizeof(*src) + 248 le16_to_cpu(src->keys.u64s) * 249 sizeof(u64)); 250 i = &dst->keys; 251 set_btree_bset(b, t, i); 252 } 253 continue; 254 } 255 256 start = btree_bkey_first(b, t); 257 end = btree_bkey_last(b, t); 258 259 if (src != dst) { 260 memmove(dst, src, sizeof(*src)); 261 i = &dst->keys; 262 set_btree_bset(b, t, i); 263 } 264 265 out = i->start; 266 267 for (k = start; k != end; k = n) { 268 n = bkey_p_next(k); 269 270 if (!bkey_deleted(k)) { 271 bkey_p_copy(out, k); 272 out = bkey_p_next(out); 273 } else { 274 BUG_ON(k->needs_whiteout); 275 } 276 } 277 278 i->u64s = cpu_to_le16((u64 *) out - i->_data); 279 set_btree_bset_end(b, t); 280 bch2_bset_set_no_aux_tree(b, t); 281 ret = true; 282 } 283 284 bch2_verify_btree_nr_keys(b); 285 286 bch2_btree_build_aux_trees(b); 287 288 return ret; 289 } 290 291 bool bch2_compact_whiteouts(struct bch_fs *c, struct btree *b, 292 enum compact_mode mode) 293 { 294 return bch2_drop_whiteouts(b, mode); 295 } 296 297 static void btree_node_sort(struct bch_fs *c, struct btree *b, 298 unsigned start_idx, 299 unsigned end_idx) 300 { 301 struct btree_node *out; 302 struct sort_iter_stack sort_iter; 303 struct bset_tree *t; 304 struct bset *start_bset = bset(b, &b->set[start_idx]); 305 bool used_mempool = false; 306 u64 start_time, seq = 0; 307 unsigned i, u64s = 0, bytes, shift = end_idx - start_idx - 1; 308 bool sorting_entire_node = start_idx == 0 && 309 end_idx == b->nsets; 310 311 sort_iter_stack_init(&sort_iter, b); 312 313 for (t = b->set + start_idx; 314 t < b->set + end_idx; 315 t++) { 316 u64s += le16_to_cpu(bset(b, t)->u64s); 317 sort_iter_add(&sort_iter.iter, 318 btree_bkey_first(b, t), 319 btree_bkey_last(b, t)); 320 } 321 322 bytes = sorting_entire_node 323 ? btree_buf_bytes(b) 324 : __vstruct_bytes(struct btree_node, u64s); 325 326 out = btree_bounce_alloc(c, bytes, &used_mempool); 327 328 start_time = local_clock(); 329 330 u64s = bch2_sort_keys(out->keys.start, &sort_iter.iter); 331 332 out->keys.u64s = cpu_to_le16(u64s); 333 334 BUG_ON(vstruct_end(&out->keys) > (void *) out + bytes); 335 336 if (sorting_entire_node) 337 bch2_time_stats_update(&c->times[BCH_TIME_btree_node_sort], 338 start_time); 339 340 /* Make sure we preserve bset journal_seq: */ 341 for (t = b->set + start_idx; t < b->set + end_idx; t++) 342 seq = max(seq, le64_to_cpu(bset(b, t)->journal_seq)); 343 start_bset->journal_seq = cpu_to_le64(seq); 344 345 if (sorting_entire_node) { 346 u64s = le16_to_cpu(out->keys.u64s); 347 348 BUG_ON(bytes != btree_buf_bytes(b)); 349 350 /* 351 * Our temporary buffer is the same size as the btree node's 352 * buffer, we can just swap buffers instead of doing a big 353 * memcpy() 354 */ 355 *out = *b->data; 356 out->keys.u64s = cpu_to_le16(u64s); 357 swap(out, b->data); 358 set_btree_bset(b, b->set, &b->data->keys); 359 } else { 360 start_bset->u64s = out->keys.u64s; 361 memcpy_u64s(start_bset->start, 362 out->keys.start, 363 le16_to_cpu(out->keys.u64s)); 364 } 365 366 for (i = start_idx + 1; i < end_idx; i++) 367 b->nr.bset_u64s[start_idx] += 368 b->nr.bset_u64s[i]; 369 370 b->nsets -= shift; 371 372 for (i = start_idx + 1; i < b->nsets; i++) { 373 b->nr.bset_u64s[i] = b->nr.bset_u64s[i + shift]; 374 b->set[i] = b->set[i + shift]; 375 } 376 377 for (i = b->nsets; i < MAX_BSETS; i++) 378 b->nr.bset_u64s[i] = 0; 379 380 set_btree_bset_end(b, &b->set[start_idx]); 381 bch2_bset_set_no_aux_tree(b, &b->set[start_idx]); 382 383 btree_bounce_free(c, bytes, used_mempool, out); 384 385 bch2_verify_btree_nr_keys(b); 386 } 387 388 void bch2_btree_sort_into(struct bch_fs *c, 389 struct btree *dst, 390 struct btree *src) 391 { 392 struct btree_nr_keys nr; 393 struct btree_node_iter src_iter; 394 u64 start_time = local_clock(); 395 396 BUG_ON(dst->nsets != 1); 397 398 bch2_bset_set_no_aux_tree(dst, dst->set); 399 400 bch2_btree_node_iter_init_from_start(&src_iter, src); 401 402 nr = bch2_sort_repack(btree_bset_first(dst), 403 src, &src_iter, 404 &dst->format, 405 true); 406 407 bch2_time_stats_update(&c->times[BCH_TIME_btree_node_sort], 408 start_time); 409 410 set_btree_bset_end(dst, dst->set); 411 412 dst->nr.live_u64s += nr.live_u64s; 413 dst->nr.bset_u64s[0] += nr.bset_u64s[0]; 414 dst->nr.packed_keys += nr.packed_keys; 415 dst->nr.unpacked_keys += nr.unpacked_keys; 416 417 bch2_verify_btree_nr_keys(dst); 418 } 419 420 /* 421 * We're about to add another bset to the btree node, so if there's currently 422 * too many bsets - sort some of them together: 423 */ 424 static bool btree_node_compact(struct bch_fs *c, struct btree *b) 425 { 426 unsigned unwritten_idx; 427 bool ret = false; 428 429 for (unwritten_idx = 0; 430 unwritten_idx < b->nsets; 431 unwritten_idx++) 432 if (!bset_written(b, bset(b, &b->set[unwritten_idx]))) 433 break; 434 435 if (b->nsets - unwritten_idx > 1) { 436 btree_node_sort(c, b, unwritten_idx, b->nsets); 437 ret = true; 438 } 439 440 if (unwritten_idx > 1) { 441 btree_node_sort(c, b, 0, unwritten_idx); 442 ret = true; 443 } 444 445 return ret; 446 } 447 448 void bch2_btree_build_aux_trees(struct btree *b) 449 { 450 for_each_bset(b, t) 451 bch2_bset_build_aux_tree(b, t, 452 !bset_written(b, bset(b, t)) && 453 t == bset_tree_last(b)); 454 } 455 456 /* 457 * If we have MAX_BSETS (3) bsets, should we sort them all down to just one? 458 * 459 * The first bset is going to be of similar order to the size of the node, the 460 * last bset is bounded by btree_write_set_buffer(), which is set to keep the 461 * memmove on insert from being too expensive: the middle bset should, ideally, 462 * be the geometric mean of the first and the last. 463 * 464 * Returns true if the middle bset is greater than that geometric mean: 465 */ 466 static inline bool should_compact_all(struct bch_fs *c, struct btree *b) 467 { 468 unsigned mid_u64s_bits = 469 (ilog2(btree_max_u64s(c)) + BTREE_WRITE_SET_U64s_BITS) / 2; 470 471 return bset_u64s(&b->set[1]) > 1U << mid_u64s_bits; 472 } 473 474 /* 475 * @bch_btree_init_next - initialize a new (unwritten) bset that can then be 476 * inserted into 477 * 478 * Safe to call if there already is an unwritten bset - will only add a new bset 479 * if @b doesn't already have one. 480 * 481 * Returns true if we sorted (i.e. invalidated iterators 482 */ 483 void bch2_btree_init_next(struct btree_trans *trans, struct btree *b) 484 { 485 struct bch_fs *c = trans->c; 486 struct btree_node_entry *bne; 487 bool reinit_iter = false; 488 489 EBUG_ON(!six_lock_counts(&b->c.lock).n[SIX_LOCK_write]); 490 BUG_ON(bset_written(b, bset(b, &b->set[1]))); 491 BUG_ON(btree_node_just_written(b)); 492 493 if (b->nsets == MAX_BSETS && 494 !btree_node_write_in_flight(b) && 495 should_compact_all(c, b)) { 496 bch2_btree_node_write_trans(trans, b, SIX_LOCK_write, 497 BTREE_WRITE_init_next_bset); 498 reinit_iter = true; 499 } 500 501 if (b->nsets == MAX_BSETS && 502 btree_node_compact(c, b)) 503 reinit_iter = true; 504 505 BUG_ON(b->nsets >= MAX_BSETS); 506 507 bne = want_new_bset(c, b); 508 if (bne) 509 bch2_bset_init_next(b, bne); 510 511 bch2_btree_build_aux_trees(b); 512 513 if (reinit_iter) 514 bch2_trans_node_reinit_iter(trans, b); 515 } 516 517 static void btree_err_msg(struct printbuf *out, struct bch_fs *c, 518 struct bch_dev *ca, 519 bool print_pos, 520 struct btree *b, struct bset *i, struct bkey_packed *k, 521 unsigned offset, int rw) 522 { 523 if (print_pos) { 524 prt_str(out, rw == READ 525 ? "error validating btree node " 526 : "corrupt btree node before write "); 527 prt_printf(out, "at btree "); 528 bch2_btree_pos_to_text(out, c, b); 529 prt_newline(out); 530 } 531 532 if (ca) 533 prt_printf(out, "%s ", ca->name); 534 535 prt_printf(out, "node offset %u/%u", 536 b->written, btree_ptr_sectors_written(bkey_i_to_s_c(&b->key))); 537 if (i) 538 prt_printf(out, " bset u64s %u", le16_to_cpu(i->u64s)); 539 if (k) 540 prt_printf(out, " bset byte offset %lu", 541 (unsigned long)(void *)k - 542 ((unsigned long)(void *)i & ~511UL)); 543 prt_str(out, ": "); 544 } 545 546 __printf(11, 12) 547 static int __btree_err(int ret, 548 struct bch_fs *c, 549 struct bch_dev *ca, 550 struct btree *b, 551 struct bset *i, 552 struct bkey_packed *k, 553 int rw, 554 enum bch_sb_error_id err_type, 555 struct bch_io_failures *failed, 556 struct printbuf *err_msg, 557 const char *fmt, ...) 558 { 559 if (c->recovery.curr_pass == BCH_RECOVERY_PASS_scan_for_btree_nodes) 560 return ret == -BCH_ERR_btree_node_read_err_fixable 561 ? bch_err_throw(c, fsck_fix) 562 : ret; 563 564 bool have_retry = false; 565 int ret2; 566 567 if (ca) { 568 bch2_mark_btree_validate_failure(failed, ca->dev_idx); 569 570 struct extent_ptr_decoded pick; 571 have_retry = !bch2_bkey_pick_read_device(c, 572 bkey_i_to_s_c(&b->key), 573 failed, &pick, -1); 574 } 575 576 if (!have_retry && ret == -BCH_ERR_btree_node_read_err_want_retry) 577 ret = bch_err_throw(c, btree_node_read_err_fixable); 578 if (!have_retry && ret == -BCH_ERR_btree_node_read_err_must_retry) 579 ret = bch_err_throw(c, btree_node_read_err_bad_node); 580 581 bch2_sb_error_count(c, err_type); 582 583 bool print_deferred = err_msg && 584 rw == READ && 585 !(test_bit(BCH_FS_in_fsck, &c->flags) && 586 c->opts.fix_errors == FSCK_FIX_ask); 587 588 struct printbuf out = PRINTBUF; 589 bch2_log_msg_start(c, &out); 590 591 if (!print_deferred) 592 err_msg = &out; 593 594 btree_err_msg(err_msg, c, ca, !print_deferred, b, i, k, b->written, rw); 595 596 va_list args; 597 va_start(args, fmt); 598 prt_vprintf(err_msg, fmt, args); 599 va_end(args); 600 601 if (print_deferred) { 602 prt_newline(err_msg); 603 604 switch (ret) { 605 case -BCH_ERR_btree_node_read_err_fixable: 606 ret2 = bch2_fsck_err_opt(c, FSCK_CAN_FIX, err_type); 607 if (!bch2_err_matches(ret2, BCH_ERR_fsck_fix) && 608 !bch2_err_matches(ret2, BCH_ERR_fsck_ignore)) { 609 ret = ret2; 610 goto fsck_err; 611 } 612 613 if (!have_retry) 614 ret = bch_err_throw(c, fsck_fix); 615 goto out; 616 case -BCH_ERR_btree_node_read_err_bad_node: 617 prt_str(&out, ", "); 618 ret = __bch2_topology_error(c, &out); 619 break; 620 } 621 622 goto out; 623 } 624 625 if (rw == WRITE) { 626 prt_str(&out, ", "); 627 ret = __bch2_inconsistent_error(c, &out) 628 ? -BCH_ERR_fsck_errors_not_fixed 629 : 0; 630 goto print; 631 } 632 633 switch (ret) { 634 case -BCH_ERR_btree_node_read_err_fixable: 635 ret2 = __bch2_fsck_err(c, NULL, FSCK_CAN_FIX, err_type, "%s", out.buf); 636 if (!bch2_err_matches(ret2, BCH_ERR_fsck_fix) && 637 !bch2_err_matches(ret2, BCH_ERR_fsck_ignore)) { 638 ret = ret2; 639 goto fsck_err; 640 } 641 642 if (!have_retry) 643 ret = bch_err_throw(c, fsck_fix); 644 goto out; 645 case -BCH_ERR_btree_node_read_err_bad_node: 646 prt_str(&out, ", "); 647 ret = __bch2_topology_error(c, &out); 648 break; 649 } 650 print: 651 bch2_print_str(c, KERN_ERR, out.buf); 652 out: 653 fsck_err: 654 printbuf_exit(&out); 655 return ret; 656 } 657 658 #define btree_err(type, c, ca, b, i, k, _err_type, msg, ...) \ 659 ({ \ 660 int _ret = __btree_err(type, c, ca, b, i, k, write, \ 661 BCH_FSCK_ERR_##_err_type, \ 662 failed, err_msg, \ 663 msg, ##__VA_ARGS__); \ 664 \ 665 if (!bch2_err_matches(_ret, BCH_ERR_fsck_fix)) { \ 666 ret = _ret; \ 667 goto fsck_err; \ 668 } \ 669 \ 670 true; \ 671 }) 672 673 #define btree_err_on(cond, ...) ((cond) ? btree_err(__VA_ARGS__) : false) 674 675 /* 676 * When btree topology repair changes the start or end of a node, that might 677 * mean we have to drop keys that are no longer inside the node: 678 */ 679 __cold 680 void bch2_btree_node_drop_keys_outside_node(struct btree *b) 681 { 682 for_each_bset(b, t) { 683 struct bset *i = bset(b, t); 684 struct bkey_packed *k; 685 686 for (k = i->start; k != vstruct_last(i); k = bkey_p_next(k)) 687 if (bkey_cmp_left_packed(b, k, &b->data->min_key) >= 0) 688 break; 689 690 if (k != i->start) { 691 unsigned shift = (u64 *) k - (u64 *) i->start; 692 693 memmove_u64s_down(i->start, k, 694 (u64 *) vstruct_end(i) - (u64 *) k); 695 i->u64s = cpu_to_le16(le16_to_cpu(i->u64s) - shift); 696 set_btree_bset_end(b, t); 697 } 698 699 for (k = i->start; k != vstruct_last(i); k = bkey_p_next(k)) 700 if (bkey_cmp_left_packed(b, k, &b->data->max_key) > 0) 701 break; 702 703 if (k != vstruct_last(i)) { 704 i->u64s = cpu_to_le16((u64 *) k - (u64 *) i->start); 705 set_btree_bset_end(b, t); 706 } 707 } 708 709 /* 710 * Always rebuild search trees: eytzinger search tree nodes directly 711 * depend on the values of min/max key: 712 */ 713 bch2_bset_set_no_aux_tree(b, b->set); 714 bch2_btree_build_aux_trees(b); 715 b->nr = bch2_btree_node_count_keys(b); 716 717 struct bkey_s_c k; 718 struct bkey unpacked; 719 struct btree_node_iter iter; 720 for_each_btree_node_key_unpack(b, k, &iter, &unpacked) { 721 BUG_ON(bpos_lt(k.k->p, b->data->min_key)); 722 BUG_ON(bpos_gt(k.k->p, b->data->max_key)); 723 } 724 } 725 726 static int validate_bset(struct bch_fs *c, struct bch_dev *ca, 727 struct btree *b, struct bset *i, 728 unsigned offset, int write, 729 struct bch_io_failures *failed, 730 struct printbuf *err_msg) 731 { 732 unsigned version = le16_to_cpu(i->version); 733 struct printbuf buf1 = PRINTBUF; 734 struct printbuf buf2 = PRINTBUF; 735 int ret = 0; 736 737 btree_err_on(!bch2_version_compatible(version), 738 -BCH_ERR_btree_node_read_err_incompatible, 739 c, ca, b, i, NULL, 740 btree_node_unsupported_version, 741 "unsupported bset version %u.%u", 742 BCH_VERSION_MAJOR(version), 743 BCH_VERSION_MINOR(version)); 744 745 if (c->recovery.curr_pass != BCH_RECOVERY_PASS_scan_for_btree_nodes && 746 btree_err_on(version < c->sb.version_min, 747 -BCH_ERR_btree_node_read_err_fixable, 748 c, NULL, b, i, NULL, 749 btree_node_bset_older_than_sb_min, 750 "bset version %u older than superblock version_min %u", 751 version, c->sb.version_min)) { 752 if (bch2_version_compatible(version)) { 753 mutex_lock(&c->sb_lock); 754 c->disk_sb.sb->version_min = cpu_to_le16(version); 755 bch2_write_super(c); 756 mutex_unlock(&c->sb_lock); 757 } else { 758 /* We have no idea what's going on: */ 759 i->version = cpu_to_le16(c->sb.version); 760 } 761 } 762 763 if (btree_err_on(BCH_VERSION_MAJOR(version) > 764 BCH_VERSION_MAJOR(c->sb.version), 765 -BCH_ERR_btree_node_read_err_fixable, 766 c, NULL, b, i, NULL, 767 btree_node_bset_newer_than_sb, 768 "bset version %u newer than superblock version %u", 769 version, c->sb.version)) { 770 mutex_lock(&c->sb_lock); 771 c->disk_sb.sb->version = cpu_to_le16(version); 772 bch2_write_super(c); 773 mutex_unlock(&c->sb_lock); 774 } 775 776 btree_err_on(BSET_SEPARATE_WHITEOUTS(i), 777 -BCH_ERR_btree_node_read_err_incompatible, 778 c, ca, b, i, NULL, 779 btree_node_unsupported_version, 780 "BSET_SEPARATE_WHITEOUTS no longer supported"); 781 782 btree_err_on(offset && !i->u64s, 783 -BCH_ERR_btree_node_read_err_fixable, 784 c, ca, b, i, NULL, 785 bset_empty, 786 "empty bset"); 787 788 btree_err_on(BSET_OFFSET(i) && BSET_OFFSET(i) != offset, 789 -BCH_ERR_btree_node_read_err_want_retry, 790 c, ca, b, i, NULL, 791 bset_wrong_sector_offset, 792 "bset at wrong sector offset"); 793 794 if (!offset) { 795 struct btree_node *bn = 796 container_of(i, struct btree_node, keys); 797 /* These indicate that we read the wrong btree node: */ 798 799 if (b->key.k.type == KEY_TYPE_btree_ptr_v2) { 800 struct bch_btree_ptr_v2 *bp = 801 &bkey_i_to_btree_ptr_v2(&b->key)->v; 802 803 /* XXX endianness */ 804 btree_err_on(bp->seq != bn->keys.seq, 805 -BCH_ERR_btree_node_read_err_must_retry, 806 c, ca, b, NULL, NULL, 807 bset_bad_seq, 808 "incorrect sequence number (wrong btree node)"); 809 } 810 811 btree_err_on(BTREE_NODE_ID(bn) != b->c.btree_id, 812 -BCH_ERR_btree_node_read_err_must_retry, 813 c, ca, b, i, NULL, 814 btree_node_bad_btree, 815 "incorrect btree id"); 816 817 btree_err_on(BTREE_NODE_LEVEL(bn) != b->c.level, 818 -BCH_ERR_btree_node_read_err_must_retry, 819 c, ca, b, i, NULL, 820 btree_node_bad_level, 821 "incorrect level"); 822 823 if (!write) 824 compat_btree_node(b->c.level, b->c.btree_id, version, 825 BSET_BIG_ENDIAN(i), write, bn); 826 827 if (b->key.k.type == KEY_TYPE_btree_ptr_v2) { 828 struct bch_btree_ptr_v2 *bp = 829 &bkey_i_to_btree_ptr_v2(&b->key)->v; 830 831 if (BTREE_PTR_RANGE_UPDATED(bp)) { 832 b->data->min_key = bp->min_key; 833 b->data->max_key = b->key.k.p; 834 } 835 836 btree_err_on(!bpos_eq(b->data->min_key, bp->min_key), 837 -BCH_ERR_btree_node_read_err_must_retry, 838 c, ca, b, NULL, NULL, 839 btree_node_bad_min_key, 840 "incorrect min_key: got %s should be %s", 841 (printbuf_reset(&buf1), 842 bch2_bpos_to_text(&buf1, bn->min_key), buf1.buf), 843 (printbuf_reset(&buf2), 844 bch2_bpos_to_text(&buf2, bp->min_key), buf2.buf)); 845 } 846 847 btree_err_on(!bpos_eq(bn->max_key, b->key.k.p), 848 -BCH_ERR_btree_node_read_err_must_retry, 849 c, ca, b, i, NULL, 850 btree_node_bad_max_key, 851 "incorrect max key %s", 852 (printbuf_reset(&buf1), 853 bch2_bpos_to_text(&buf1, bn->max_key), buf1.buf)); 854 855 if (write) 856 compat_btree_node(b->c.level, b->c.btree_id, version, 857 BSET_BIG_ENDIAN(i), write, bn); 858 859 btree_err_on(bch2_bkey_format_invalid(c, &bn->format, write, &buf1), 860 -BCH_ERR_btree_node_read_err_bad_node, 861 c, ca, b, i, NULL, 862 btree_node_bad_format, 863 "invalid bkey format: %s\n%s", buf1.buf, 864 (printbuf_reset(&buf2), 865 bch2_bkey_format_to_text(&buf2, &bn->format), buf2.buf)); 866 printbuf_reset(&buf1); 867 868 compat_bformat(b->c.level, b->c.btree_id, version, 869 BSET_BIG_ENDIAN(i), write, 870 &bn->format); 871 } 872 fsck_err: 873 printbuf_exit(&buf2); 874 printbuf_exit(&buf1); 875 return ret; 876 } 877 878 static int btree_node_bkey_val_validate(struct bch_fs *c, struct btree *b, 879 struct bkey_s_c k, 880 enum bch_validate_flags flags) 881 { 882 return bch2_bkey_val_validate(c, k, (struct bkey_validate_context) { 883 .from = BKEY_VALIDATE_btree_node, 884 .level = b->c.level, 885 .btree = b->c.btree_id, 886 .flags = flags 887 }); 888 } 889 890 static int bset_key_validate(struct bch_fs *c, struct btree *b, 891 struct bkey_s_c k, 892 bool updated_range, 893 enum bch_validate_flags flags) 894 { 895 struct bkey_validate_context from = (struct bkey_validate_context) { 896 .from = BKEY_VALIDATE_btree_node, 897 .level = b->c.level, 898 .btree = b->c.btree_id, 899 .flags = flags, 900 }; 901 return __bch2_bkey_validate(c, k, from) ?: 902 (!updated_range ? bch2_bkey_in_btree_node(c, b, k, from) : 0) ?: 903 (flags & BCH_VALIDATE_write ? btree_node_bkey_val_validate(c, b, k, flags) : 0); 904 } 905 906 static bool bkey_packed_valid(struct bch_fs *c, struct btree *b, 907 struct bset *i, struct bkey_packed *k) 908 { 909 if (bkey_p_next(k) > vstruct_last(i)) 910 return false; 911 912 if (k->format > KEY_FORMAT_CURRENT) 913 return false; 914 915 if (!bkeyp_u64s_valid(&b->format, k)) 916 return false; 917 918 struct bkey tmp; 919 struct bkey_s u = __bkey_disassemble(b, k, &tmp); 920 return !__bch2_bkey_validate(c, u.s_c, 921 (struct bkey_validate_context) { 922 .from = BKEY_VALIDATE_btree_node, 923 .level = b->c.level, 924 .btree = b->c.btree_id, 925 .flags = BCH_VALIDATE_silent 926 }); 927 } 928 929 static inline int btree_node_read_bkey_cmp(const struct btree *b, 930 const struct bkey_packed *l, 931 const struct bkey_packed *r) 932 { 933 return bch2_bkey_cmp_packed(b, l, r) 934 ?: (int) bkey_deleted(r) - (int) bkey_deleted(l); 935 } 936 937 static int validate_bset_keys(struct bch_fs *c, struct btree *b, 938 struct bset *i, int write, 939 struct bch_io_failures *failed, 940 struct printbuf *err_msg) 941 { 942 unsigned version = le16_to_cpu(i->version); 943 struct bkey_packed *k, *prev = NULL; 944 struct printbuf buf = PRINTBUF; 945 bool updated_range = b->key.k.type == KEY_TYPE_btree_ptr_v2 && 946 BTREE_PTR_RANGE_UPDATED(&bkey_i_to_btree_ptr_v2(&b->key)->v); 947 int ret = 0; 948 949 for (k = i->start; 950 k != vstruct_last(i);) { 951 struct bkey_s u; 952 struct bkey tmp; 953 unsigned next_good_key; 954 955 if (btree_err_on(bkey_p_next(k) > vstruct_last(i), 956 -BCH_ERR_btree_node_read_err_fixable, 957 c, NULL, b, i, k, 958 btree_node_bkey_past_bset_end, 959 "key extends past end of bset")) { 960 i->u64s = cpu_to_le16((u64 *) k - i->_data); 961 break; 962 } 963 964 if (btree_err_on(k->format > KEY_FORMAT_CURRENT, 965 -BCH_ERR_btree_node_read_err_fixable, 966 c, NULL, b, i, k, 967 btree_node_bkey_bad_format, 968 "invalid bkey format %u", k->format)) 969 goto drop_this_key; 970 971 if (btree_err_on(!bkeyp_u64s_valid(&b->format, k), 972 -BCH_ERR_btree_node_read_err_fixable, 973 c, NULL, b, i, k, 974 btree_node_bkey_bad_u64s, 975 "bad k->u64s %u (min %u max %zu)", k->u64s, 976 bkeyp_key_u64s(&b->format, k), 977 U8_MAX - BKEY_U64s + bkeyp_key_u64s(&b->format, k))) 978 goto drop_this_key; 979 980 if (!write) 981 bch2_bkey_compat(b->c.level, b->c.btree_id, version, 982 BSET_BIG_ENDIAN(i), write, 983 &b->format, k); 984 985 u = __bkey_disassemble(b, k, &tmp); 986 987 ret = bset_key_validate(c, b, u.s_c, updated_range, write); 988 if (ret == -BCH_ERR_fsck_delete_bkey) 989 goto drop_this_key; 990 if (ret) 991 goto fsck_err; 992 993 if (write) 994 bch2_bkey_compat(b->c.level, b->c.btree_id, version, 995 BSET_BIG_ENDIAN(i), write, 996 &b->format, k); 997 998 if (prev && btree_node_read_bkey_cmp(b, prev, k) >= 0) { 999 struct bkey up = bkey_unpack_key(b, prev); 1000 1001 printbuf_reset(&buf); 1002 prt_printf(&buf, "keys out of order: "); 1003 bch2_bkey_to_text(&buf, &up); 1004 prt_printf(&buf, " > "); 1005 bch2_bkey_to_text(&buf, u.k); 1006 1007 if (btree_err(-BCH_ERR_btree_node_read_err_fixable, 1008 c, NULL, b, i, k, 1009 btree_node_bkey_out_of_order, 1010 "%s", buf.buf)) 1011 goto drop_this_key; 1012 } 1013 1014 prev = k; 1015 k = bkey_p_next(k); 1016 continue; 1017 drop_this_key: 1018 next_good_key = k->u64s; 1019 1020 if (!next_good_key || 1021 (BSET_BIG_ENDIAN(i) == CPU_BIG_ENDIAN && 1022 version >= bcachefs_metadata_version_snapshot)) { 1023 /* 1024 * only do scanning if bch2_bkey_compat() has nothing to 1025 * do 1026 */ 1027 1028 if (!bkey_packed_valid(c, b, i, (void *) ((u64 *) k + next_good_key))) { 1029 for (next_good_key = 1; 1030 next_good_key < (u64 *) vstruct_last(i) - (u64 *) k; 1031 next_good_key++) 1032 if (bkey_packed_valid(c, b, i, (void *) ((u64 *) k + next_good_key))) 1033 goto got_good_key; 1034 } 1035 1036 /* 1037 * didn't find a good key, have to truncate the rest of 1038 * the bset 1039 */ 1040 next_good_key = (u64 *) vstruct_last(i) - (u64 *) k; 1041 } 1042 got_good_key: 1043 le16_add_cpu(&i->u64s, -next_good_key); 1044 memmove_u64s_down(k, (u64 *) k + next_good_key, (u64 *) vstruct_end(i) - (u64 *) k); 1045 set_btree_node_need_rewrite(b); 1046 set_btree_node_need_rewrite_error(b); 1047 } 1048 fsck_err: 1049 printbuf_exit(&buf); 1050 return ret; 1051 } 1052 1053 int bch2_btree_node_read_done(struct bch_fs *c, struct bch_dev *ca, 1054 struct btree *b, 1055 struct bch_io_failures *failed, 1056 struct printbuf *err_msg) 1057 { 1058 struct btree_node_entry *bne; 1059 struct sort_iter *iter; 1060 struct btree_node *sorted; 1061 struct bkey_packed *k; 1062 struct bset *i; 1063 bool used_mempool, blacklisted; 1064 bool updated_range = b->key.k.type == KEY_TYPE_btree_ptr_v2 && 1065 BTREE_PTR_RANGE_UPDATED(&bkey_i_to_btree_ptr_v2(&b->key)->v); 1066 unsigned ptr_written = btree_ptr_sectors_written(bkey_i_to_s_c(&b->key)); 1067 u64 max_journal_seq = 0; 1068 struct printbuf buf = PRINTBUF; 1069 int ret = 0, write = READ; 1070 u64 start_time = local_clock(); 1071 1072 b->version_ondisk = U16_MAX; 1073 /* We might get called multiple times on read retry: */ 1074 b->written = 0; 1075 1076 iter = mempool_alloc(&c->fill_iter, GFP_NOFS); 1077 sort_iter_init(iter, b, (btree_blocks(c) + 1) * 2); 1078 1079 if (bch2_meta_read_fault("btree")) 1080 btree_err(-BCH_ERR_btree_node_read_err_must_retry, 1081 c, ca, b, NULL, NULL, 1082 btree_node_fault_injected, 1083 "dynamic fault"); 1084 1085 btree_err_on(le64_to_cpu(b->data->magic) != bset_magic(c), 1086 -BCH_ERR_btree_node_read_err_must_retry, 1087 c, ca, b, NULL, NULL, 1088 btree_node_bad_magic, 1089 "bad magic: want %llx, got %llx", 1090 bset_magic(c), le64_to_cpu(b->data->magic)); 1091 1092 if (b->key.k.type == KEY_TYPE_btree_ptr_v2) { 1093 struct bch_btree_ptr_v2 *bp = 1094 &bkey_i_to_btree_ptr_v2(&b->key)->v; 1095 1096 bch2_bpos_to_text(&buf, b->data->min_key); 1097 prt_str(&buf, "-"); 1098 bch2_bpos_to_text(&buf, b->data->max_key); 1099 1100 btree_err_on(b->data->keys.seq != bp->seq, 1101 -BCH_ERR_btree_node_read_err_must_retry, 1102 c, ca, b, NULL, NULL, 1103 btree_node_bad_seq, 1104 "got wrong btree node: got\n%s", 1105 (printbuf_reset(&buf), 1106 bch2_btree_node_header_to_text(&buf, b->data), 1107 buf.buf)); 1108 } else { 1109 btree_err_on(!b->data->keys.seq, 1110 -BCH_ERR_btree_node_read_err_must_retry, 1111 c, ca, b, NULL, NULL, 1112 btree_node_bad_seq, 1113 "bad btree header: seq 0\n%s", 1114 (printbuf_reset(&buf), 1115 bch2_btree_node_header_to_text(&buf, b->data), 1116 buf.buf)); 1117 } 1118 1119 while (b->written < (ptr_written ?: btree_sectors(c))) { 1120 unsigned sectors; 1121 bool first = !b->written; 1122 1123 if (first) { 1124 bne = NULL; 1125 i = &b->data->keys; 1126 } else { 1127 bne = write_block(b); 1128 i = &bne->keys; 1129 1130 if (i->seq != b->data->keys.seq) 1131 break; 1132 } 1133 1134 struct nonce nonce = btree_nonce(i, b->written << 9); 1135 bool good_csum_type = bch2_checksum_type_valid(c, BSET_CSUM_TYPE(i)); 1136 1137 btree_err_on(!good_csum_type, 1138 bch2_csum_type_is_encryption(BSET_CSUM_TYPE(i)) 1139 ? -BCH_ERR_btree_node_read_err_must_retry 1140 : -BCH_ERR_btree_node_read_err_want_retry, 1141 c, ca, b, i, NULL, 1142 bset_unknown_csum, 1143 "unknown checksum type %llu", BSET_CSUM_TYPE(i)); 1144 1145 if (first) { 1146 sectors = vstruct_sectors(b->data, c->block_bits); 1147 if (btree_err_on(b->written + sectors > (ptr_written ?: btree_sectors(c)), 1148 -BCH_ERR_btree_node_read_err_fixable, 1149 c, ca, b, i, NULL, 1150 bset_past_end_of_btree_node, 1151 "bset past end of btree node (offset %u len %u but written %zu)", 1152 b->written, sectors, ptr_written ?: btree_sectors(c))) 1153 i->u64s = 0; 1154 if (good_csum_type) { 1155 struct bch_csum csum = csum_vstruct(c, BSET_CSUM_TYPE(i), nonce, b->data); 1156 bool csum_bad = bch2_crc_cmp(b->data->csum, csum); 1157 if (csum_bad) 1158 bch2_io_error(ca, BCH_MEMBER_ERROR_checksum); 1159 1160 btree_err_on(csum_bad, 1161 -BCH_ERR_btree_node_read_err_want_retry, 1162 c, ca, b, i, NULL, 1163 bset_bad_csum, 1164 "%s", 1165 (printbuf_reset(&buf), 1166 bch2_csum_err_msg(&buf, BSET_CSUM_TYPE(i), b->data->csum, csum), 1167 buf.buf)); 1168 1169 ret = bset_encrypt(c, i, b->written << 9); 1170 if (bch2_fs_fatal_err_on(ret, c, 1171 "decrypting btree node: %s", bch2_err_str(ret))) 1172 goto fsck_err; 1173 } 1174 1175 btree_err_on(btree_node_type_is_extents(btree_node_type(b)) && 1176 !BTREE_NODE_NEW_EXTENT_OVERWRITE(b->data), 1177 -BCH_ERR_btree_node_read_err_incompatible, 1178 c, NULL, b, NULL, NULL, 1179 btree_node_unsupported_version, 1180 "btree node does not have NEW_EXTENT_OVERWRITE set"); 1181 } else { 1182 sectors = vstruct_sectors(bne, c->block_bits); 1183 if (btree_err_on(b->written + sectors > (ptr_written ?: btree_sectors(c)), 1184 -BCH_ERR_btree_node_read_err_fixable, 1185 c, ca, b, i, NULL, 1186 bset_past_end_of_btree_node, 1187 "bset past end of btree node (offset %u len %u but written %zu)", 1188 b->written, sectors, ptr_written ?: btree_sectors(c))) 1189 i->u64s = 0; 1190 if (good_csum_type) { 1191 struct bch_csum csum = csum_vstruct(c, BSET_CSUM_TYPE(i), nonce, bne); 1192 bool csum_bad = bch2_crc_cmp(bne->csum, csum); 1193 if (ca && csum_bad) 1194 bch2_io_error(ca, BCH_MEMBER_ERROR_checksum); 1195 1196 btree_err_on(csum_bad, 1197 -BCH_ERR_btree_node_read_err_want_retry, 1198 c, ca, b, i, NULL, 1199 bset_bad_csum, 1200 "%s", 1201 (printbuf_reset(&buf), 1202 bch2_csum_err_msg(&buf, BSET_CSUM_TYPE(i), bne->csum, csum), 1203 buf.buf)); 1204 1205 ret = bset_encrypt(c, i, b->written << 9); 1206 if (bch2_fs_fatal_err_on(ret, c, 1207 "decrypting btree node: %s", bch2_err_str(ret))) 1208 goto fsck_err; 1209 } 1210 } 1211 1212 b->version_ondisk = min(b->version_ondisk, 1213 le16_to_cpu(i->version)); 1214 1215 ret = validate_bset(c, ca, b, i, b->written, READ, failed, err_msg); 1216 if (ret) 1217 goto fsck_err; 1218 1219 if (!b->written) 1220 btree_node_set_format(b, b->data->format); 1221 1222 ret = validate_bset_keys(c, b, i, READ, failed, err_msg); 1223 if (ret) 1224 goto fsck_err; 1225 1226 SET_BSET_BIG_ENDIAN(i, CPU_BIG_ENDIAN); 1227 1228 blacklisted = bch2_journal_seq_is_blacklisted(c, 1229 le64_to_cpu(i->journal_seq), 1230 true); 1231 1232 btree_err_on(blacklisted && first, 1233 -BCH_ERR_btree_node_read_err_fixable, 1234 c, ca, b, i, NULL, 1235 bset_blacklisted_journal_seq, 1236 "first btree node bset has blacklisted journal seq (%llu)", 1237 le64_to_cpu(i->journal_seq)); 1238 1239 btree_err_on(blacklisted && ptr_written, 1240 -BCH_ERR_btree_node_read_err_fixable, 1241 c, ca, b, i, NULL, 1242 first_bset_blacklisted_journal_seq, 1243 "found blacklisted bset (journal seq %llu) in btree node at offset %u-%u/%u", 1244 le64_to_cpu(i->journal_seq), 1245 b->written, b->written + sectors, ptr_written); 1246 1247 b->written = min(b->written + sectors, btree_sectors(c)); 1248 1249 if (blacklisted && !first) 1250 continue; 1251 1252 sort_iter_add(iter, 1253 vstruct_idx(i, 0), 1254 vstruct_last(i)); 1255 1256 max_journal_seq = max(max_journal_seq, le64_to_cpu(i->journal_seq)); 1257 } 1258 1259 if (ptr_written) { 1260 btree_err_on(b->written < ptr_written, 1261 -BCH_ERR_btree_node_read_err_want_retry, 1262 c, ca, b, NULL, NULL, 1263 btree_node_data_missing, 1264 "btree node data missing: expected %u sectors, found %u", 1265 ptr_written, b->written); 1266 } else { 1267 for (bne = write_block(b); 1268 bset_byte_offset(b, bne) < btree_buf_bytes(b); 1269 bne = (void *) bne + block_bytes(c)) 1270 btree_err_on(bne->keys.seq == b->data->keys.seq && 1271 !bch2_journal_seq_is_blacklisted(c, 1272 le64_to_cpu(bne->keys.journal_seq), 1273 true), 1274 -BCH_ERR_btree_node_read_err_want_retry, 1275 c, ca, b, NULL, NULL, 1276 btree_node_bset_after_end, 1277 "found bset signature after last bset"); 1278 } 1279 1280 sorted = btree_bounce_alloc(c, btree_buf_bytes(b), &used_mempool); 1281 sorted->keys.u64s = 0; 1282 1283 b->nr = bch2_key_sort_fix_overlapping(c, &sorted->keys, iter); 1284 memset((uint8_t *)(sorted + 1) + b->nr.live_u64s * sizeof(u64), 0, 1285 btree_buf_bytes(b) - 1286 sizeof(struct btree_node) - 1287 b->nr.live_u64s * sizeof(u64)); 1288 1289 b->data->keys.u64s = sorted->keys.u64s; 1290 *sorted = *b->data; 1291 swap(sorted, b->data); 1292 set_btree_bset(b, b->set, &b->data->keys); 1293 b->nsets = 1; 1294 b->data->keys.journal_seq = cpu_to_le64(max_journal_seq); 1295 1296 BUG_ON(b->nr.live_u64s != le16_to_cpu(b->data->keys.u64s)); 1297 1298 btree_bounce_free(c, btree_buf_bytes(b), used_mempool, sorted); 1299 1300 if (updated_range) 1301 bch2_btree_node_drop_keys_outside_node(b); 1302 1303 i = &b->data->keys; 1304 for (k = i->start; k != vstruct_last(i);) { 1305 struct bkey tmp; 1306 struct bkey_s u = __bkey_disassemble(b, k, &tmp); 1307 1308 ret = btree_node_bkey_val_validate(c, b, u.s_c, READ); 1309 if (ret == -BCH_ERR_fsck_delete_bkey || 1310 (static_branch_unlikely(&bch2_inject_invalid_keys) && 1311 !bversion_cmp(u.k->bversion, MAX_VERSION))) { 1312 btree_keys_account_key_drop(&b->nr, 0, k); 1313 1314 i->u64s = cpu_to_le16(le16_to_cpu(i->u64s) - k->u64s); 1315 memmove_u64s_down(k, bkey_p_next(k), 1316 (u64 *) vstruct_end(i) - (u64 *) k); 1317 set_btree_bset_end(b, b->set); 1318 set_btree_node_need_rewrite(b); 1319 set_btree_node_need_rewrite_error(b); 1320 continue; 1321 } 1322 if (ret) 1323 goto fsck_err; 1324 1325 if (u.k->type == KEY_TYPE_btree_ptr_v2) { 1326 struct bkey_s_btree_ptr_v2 bp = bkey_s_to_btree_ptr_v2(u); 1327 1328 bp.v->mem_ptr = 0; 1329 } 1330 1331 k = bkey_p_next(k); 1332 } 1333 1334 bch2_bset_build_aux_tree(b, b->set, false); 1335 1336 set_needs_whiteout(btree_bset_first(b), true); 1337 1338 btree_node_reset_sib_u64s(b); 1339 1340 scoped_guard(rcu) 1341 bkey_for_each_ptr(bch2_bkey_ptrs(bkey_i_to_s(&b->key)), ptr) { 1342 struct bch_dev *ca2 = bch2_dev_rcu(c, ptr->dev); 1343 1344 if (!ca2 || ca2->mi.state != BCH_MEMBER_STATE_rw) { 1345 set_btree_node_need_rewrite(b); 1346 set_btree_node_need_rewrite_degraded(b); 1347 } 1348 } 1349 1350 if (!ptr_written) { 1351 set_btree_node_need_rewrite(b); 1352 set_btree_node_need_rewrite_ptr_written_zero(b); 1353 } 1354 fsck_err: 1355 mempool_free(iter, &c->fill_iter); 1356 printbuf_exit(&buf); 1357 bch2_time_stats_update(&c->times[BCH_TIME_btree_node_read_done], start_time); 1358 return ret; 1359 } 1360 1361 static void btree_node_read_work(struct work_struct *work) 1362 { 1363 struct btree_read_bio *rb = 1364 container_of(work, struct btree_read_bio, work); 1365 struct bch_fs *c = rb->c; 1366 struct bch_dev *ca = rb->have_ioref ? bch2_dev_have_ref(c, rb->pick.ptr.dev) : NULL; 1367 struct btree *b = rb->b; 1368 struct bio *bio = &rb->bio; 1369 struct bch_io_failures failed = { .nr = 0 }; 1370 int ret = 0; 1371 1372 struct printbuf buf = PRINTBUF; 1373 bch2_log_msg_start(c, &buf); 1374 1375 prt_printf(&buf, "btree node read error at btree "); 1376 bch2_btree_pos_to_text(&buf, c, b); 1377 prt_newline(&buf); 1378 1379 goto start; 1380 while (1) { 1381 ret = bch2_bkey_pick_read_device(c, 1382 bkey_i_to_s_c(&b->key), 1383 &failed, &rb->pick, -1); 1384 if (ret) { 1385 set_btree_node_read_error(b); 1386 break; 1387 } 1388 1389 ca = bch2_dev_get_ioref(c, rb->pick.ptr.dev, READ, BCH_DEV_READ_REF_btree_node_read); 1390 rb->have_ioref = ca != NULL; 1391 rb->start_time = local_clock(); 1392 bio_reset(bio, NULL, REQ_OP_READ|REQ_SYNC|REQ_META); 1393 bio->bi_iter.bi_sector = rb->pick.ptr.offset; 1394 bio->bi_iter.bi_size = btree_buf_bytes(b); 1395 1396 if (rb->have_ioref) { 1397 bio_set_dev(bio, ca->disk_sb.bdev); 1398 submit_bio_wait(bio); 1399 } else { 1400 bio->bi_status = BLK_STS_REMOVED; 1401 } 1402 1403 bch2_account_io_completion(ca, BCH_MEMBER_ERROR_read, 1404 rb->start_time, !bio->bi_status); 1405 start: 1406 if (rb->have_ioref) 1407 enumerated_ref_put(&ca->io_ref[READ], BCH_DEV_READ_REF_btree_node_read); 1408 rb->have_ioref = false; 1409 1410 if (bio->bi_status) { 1411 bch2_mark_io_failure(&failed, &rb->pick, false); 1412 continue; 1413 } 1414 1415 ret = bch2_btree_node_read_done(c, ca, b, &failed, &buf); 1416 if (ret == -BCH_ERR_btree_node_read_err_want_retry || 1417 ret == -BCH_ERR_btree_node_read_err_must_retry) 1418 continue; 1419 1420 if (ret) 1421 set_btree_node_read_error(b); 1422 1423 break; 1424 } 1425 1426 bch2_io_failures_to_text(&buf, c, &failed); 1427 1428 if (btree_node_read_error(b)) 1429 bch2_btree_lost_data(c, &buf, b->c.btree_id); 1430 1431 /* 1432 * only print retry success if we read from a replica with no errors 1433 */ 1434 if (btree_node_read_error(b)) 1435 prt_printf(&buf, "ret %s", bch2_err_str(ret)); 1436 else if (failed.nr) { 1437 if (!bch2_dev_io_failures(&failed, rb->pick.ptr.dev)) 1438 prt_printf(&buf, "retry success"); 1439 else 1440 prt_printf(&buf, "repair success"); 1441 } 1442 1443 if ((failed.nr || 1444 btree_node_need_rewrite(b)) && 1445 !btree_node_read_error(b) && 1446 c->recovery.curr_pass != BCH_RECOVERY_PASS_scan_for_btree_nodes) { 1447 prt_printf(&buf, " (rewriting node)"); 1448 bch2_btree_node_rewrite_async(c, b); 1449 } 1450 prt_newline(&buf); 1451 1452 if (failed.nr) 1453 bch2_print_str_ratelimited(c, KERN_ERR, buf.buf); 1454 1455 async_object_list_del(c, btree_read_bio, rb->list_idx); 1456 bch2_time_stats_update(&c->times[BCH_TIME_btree_node_read], 1457 rb->start_time); 1458 bio_put(&rb->bio); 1459 printbuf_exit(&buf); 1460 clear_btree_node_read_in_flight(b); 1461 smp_mb__after_atomic(); 1462 wake_up_bit(&b->flags, BTREE_NODE_read_in_flight); 1463 } 1464 1465 static void btree_node_read_endio(struct bio *bio) 1466 { 1467 struct btree_read_bio *rb = 1468 container_of(bio, struct btree_read_bio, bio); 1469 struct bch_fs *c = rb->c; 1470 struct bch_dev *ca = rb->have_ioref 1471 ? bch2_dev_have_ref(c, rb->pick.ptr.dev) : NULL; 1472 1473 bch2_account_io_completion(ca, BCH_MEMBER_ERROR_read, 1474 rb->start_time, !bio->bi_status); 1475 1476 queue_work(c->btree_read_complete_wq, &rb->work); 1477 } 1478 1479 void bch2_btree_read_bio_to_text(struct printbuf *out, struct btree_read_bio *rbio) 1480 { 1481 bch2_bio_to_text(out, &rbio->bio); 1482 } 1483 1484 struct btree_node_read_all { 1485 struct closure cl; 1486 struct bch_fs *c; 1487 struct btree *b; 1488 unsigned nr; 1489 void *buf[BCH_REPLICAS_MAX]; 1490 struct bio *bio[BCH_REPLICAS_MAX]; 1491 blk_status_t err[BCH_REPLICAS_MAX]; 1492 }; 1493 1494 static unsigned btree_node_sectors_written(struct bch_fs *c, void *data) 1495 { 1496 struct btree_node *bn = data; 1497 struct btree_node_entry *bne; 1498 unsigned offset = 0; 1499 1500 if (le64_to_cpu(bn->magic) != bset_magic(c)) 1501 return 0; 1502 1503 while (offset < btree_sectors(c)) { 1504 if (!offset) { 1505 offset += vstruct_sectors(bn, c->block_bits); 1506 } else { 1507 bne = data + (offset << 9); 1508 if (bne->keys.seq != bn->keys.seq) 1509 break; 1510 offset += vstruct_sectors(bne, c->block_bits); 1511 } 1512 } 1513 1514 return offset; 1515 } 1516 1517 static bool btree_node_has_extra_bsets(struct bch_fs *c, unsigned offset, void *data) 1518 { 1519 struct btree_node *bn = data; 1520 struct btree_node_entry *bne; 1521 1522 if (!offset) 1523 return false; 1524 1525 while (offset < btree_sectors(c)) { 1526 bne = data + (offset << 9); 1527 if (bne->keys.seq == bn->keys.seq) 1528 return true; 1529 offset++; 1530 } 1531 1532 return false; 1533 return offset; 1534 } 1535 1536 static CLOSURE_CALLBACK(btree_node_read_all_replicas_done) 1537 { 1538 closure_type(ra, struct btree_node_read_all, cl); 1539 struct bch_fs *c = ra->c; 1540 struct btree *b = ra->b; 1541 struct printbuf buf = PRINTBUF; 1542 bool dump_bset_maps = false; 1543 int ret = 0, best = -1, write = READ; 1544 unsigned i, written = 0, written2 = 0; 1545 __le64 seq = b->key.k.type == KEY_TYPE_btree_ptr_v2 1546 ? bkey_i_to_btree_ptr_v2(&b->key)->v.seq : 0; 1547 bool _saw_error = false, *saw_error = &_saw_error; 1548 struct printbuf *err_msg = NULL; 1549 struct bch_io_failures *failed = NULL; 1550 1551 for (i = 0; i < ra->nr; i++) { 1552 struct btree_node *bn = ra->buf[i]; 1553 1554 if (ra->err[i]) 1555 continue; 1556 1557 if (le64_to_cpu(bn->magic) != bset_magic(c) || 1558 (seq && seq != bn->keys.seq)) 1559 continue; 1560 1561 if (best < 0) { 1562 best = i; 1563 written = btree_node_sectors_written(c, bn); 1564 continue; 1565 } 1566 1567 written2 = btree_node_sectors_written(c, ra->buf[i]); 1568 if (btree_err_on(written2 != written, -BCH_ERR_btree_node_read_err_fixable, 1569 c, NULL, b, NULL, NULL, 1570 btree_node_replicas_sectors_written_mismatch, 1571 "btree node sectors written mismatch: %u != %u", 1572 written, written2) || 1573 btree_err_on(btree_node_has_extra_bsets(c, written2, ra->buf[i]), 1574 -BCH_ERR_btree_node_read_err_fixable, 1575 c, NULL, b, NULL, NULL, 1576 btree_node_bset_after_end, 1577 "found bset signature after last bset") || 1578 btree_err_on(memcmp(ra->buf[best], ra->buf[i], written << 9), 1579 -BCH_ERR_btree_node_read_err_fixable, 1580 c, NULL, b, NULL, NULL, 1581 btree_node_replicas_data_mismatch, 1582 "btree node replicas content mismatch")) 1583 dump_bset_maps = true; 1584 1585 if (written2 > written) { 1586 written = written2; 1587 best = i; 1588 } 1589 } 1590 fsck_err: 1591 if (dump_bset_maps) { 1592 for (i = 0; i < ra->nr; i++) { 1593 struct btree_node *bn = ra->buf[i]; 1594 struct btree_node_entry *bne = NULL; 1595 unsigned offset = 0, sectors; 1596 bool gap = false; 1597 1598 if (ra->err[i]) 1599 continue; 1600 1601 printbuf_reset(&buf); 1602 1603 while (offset < btree_sectors(c)) { 1604 if (!offset) { 1605 sectors = vstruct_sectors(bn, c->block_bits); 1606 } else { 1607 bne = ra->buf[i] + (offset << 9); 1608 if (bne->keys.seq != bn->keys.seq) 1609 break; 1610 sectors = vstruct_sectors(bne, c->block_bits); 1611 } 1612 1613 prt_printf(&buf, " %u-%u", offset, offset + sectors); 1614 if (bne && bch2_journal_seq_is_blacklisted(c, 1615 le64_to_cpu(bne->keys.journal_seq), false)) 1616 prt_printf(&buf, "*"); 1617 offset += sectors; 1618 } 1619 1620 while (offset < btree_sectors(c)) { 1621 bne = ra->buf[i] + (offset << 9); 1622 if (bne->keys.seq == bn->keys.seq) { 1623 if (!gap) 1624 prt_printf(&buf, " GAP"); 1625 gap = true; 1626 1627 sectors = vstruct_sectors(bne, c->block_bits); 1628 prt_printf(&buf, " %u-%u", offset, offset + sectors); 1629 if (bch2_journal_seq_is_blacklisted(c, 1630 le64_to_cpu(bne->keys.journal_seq), false)) 1631 prt_printf(&buf, "*"); 1632 } 1633 offset++; 1634 } 1635 1636 bch_err(c, "replica %u:%s", i, buf.buf); 1637 } 1638 } 1639 1640 if (best >= 0) { 1641 memcpy(b->data, ra->buf[best], btree_buf_bytes(b)); 1642 ret = bch2_btree_node_read_done(c, NULL, b, NULL, NULL); 1643 } else { 1644 ret = -1; 1645 } 1646 1647 if (ret) { 1648 set_btree_node_read_error(b); 1649 1650 struct printbuf buf = PRINTBUF; 1651 bch2_btree_lost_data(c, &buf, b->c.btree_id); 1652 if (buf.pos) 1653 bch_err(c, "%s", buf.buf); 1654 printbuf_exit(&buf); 1655 } else if (*saw_error) 1656 bch2_btree_node_rewrite_async(c, b); 1657 1658 for (i = 0; i < ra->nr; i++) { 1659 mempool_free(ra->buf[i], &c->btree_bounce_pool); 1660 bio_put(ra->bio[i]); 1661 } 1662 1663 closure_debug_destroy(&ra->cl); 1664 kfree(ra); 1665 printbuf_exit(&buf); 1666 1667 clear_btree_node_read_in_flight(b); 1668 smp_mb__after_atomic(); 1669 wake_up_bit(&b->flags, BTREE_NODE_read_in_flight); 1670 } 1671 1672 static void btree_node_read_all_replicas_endio(struct bio *bio) 1673 { 1674 struct btree_read_bio *rb = 1675 container_of(bio, struct btree_read_bio, bio); 1676 struct bch_fs *c = rb->c; 1677 struct btree_node_read_all *ra = rb->ra; 1678 1679 if (rb->have_ioref) { 1680 struct bch_dev *ca = bch2_dev_have_ref(c, rb->pick.ptr.dev); 1681 1682 bch2_latency_acct(ca, rb->start_time, READ); 1683 enumerated_ref_put(&ca->io_ref[READ], 1684 BCH_DEV_READ_REF_btree_node_read_all_replicas); 1685 } 1686 1687 ra->err[rb->idx] = bio->bi_status; 1688 closure_put(&ra->cl); 1689 } 1690 1691 /* 1692 * XXX This allocates multiple times from the same mempools, and can deadlock 1693 * under sufficient memory pressure (but is only a debug path) 1694 */ 1695 static int btree_node_read_all_replicas(struct bch_fs *c, struct btree *b, bool sync) 1696 { 1697 struct bkey_s_c k = bkey_i_to_s_c(&b->key); 1698 struct bkey_ptrs_c ptrs = bch2_bkey_ptrs_c(k); 1699 const union bch_extent_entry *entry; 1700 struct extent_ptr_decoded pick; 1701 struct btree_node_read_all *ra; 1702 unsigned i; 1703 1704 ra = kzalloc(sizeof(*ra), GFP_NOFS); 1705 if (!ra) 1706 return bch_err_throw(c, ENOMEM_btree_node_read_all_replicas); 1707 1708 closure_init(&ra->cl, NULL); 1709 ra->c = c; 1710 ra->b = b; 1711 ra->nr = bch2_bkey_nr_ptrs(k); 1712 1713 for (i = 0; i < ra->nr; i++) { 1714 ra->buf[i] = mempool_alloc(&c->btree_bounce_pool, GFP_NOFS); 1715 ra->bio[i] = bio_alloc_bioset(NULL, 1716 buf_pages(ra->buf[i], btree_buf_bytes(b)), 1717 REQ_OP_READ|REQ_SYNC|REQ_META, 1718 GFP_NOFS, 1719 &c->btree_bio); 1720 } 1721 1722 i = 0; 1723 bkey_for_each_ptr_decode(k.k, ptrs, pick, entry) { 1724 struct bch_dev *ca = bch2_dev_get_ioref(c, pick.ptr.dev, READ, 1725 BCH_DEV_READ_REF_btree_node_read_all_replicas); 1726 struct btree_read_bio *rb = 1727 container_of(ra->bio[i], struct btree_read_bio, bio); 1728 rb->c = c; 1729 rb->b = b; 1730 rb->ra = ra; 1731 rb->start_time = local_clock(); 1732 rb->have_ioref = ca != NULL; 1733 rb->idx = i; 1734 rb->pick = pick; 1735 rb->bio.bi_iter.bi_sector = pick.ptr.offset; 1736 rb->bio.bi_end_io = btree_node_read_all_replicas_endio; 1737 bch2_bio_map(&rb->bio, ra->buf[i], btree_buf_bytes(b)); 1738 1739 if (rb->have_ioref) { 1740 this_cpu_add(ca->io_done->sectors[READ][BCH_DATA_btree], 1741 bio_sectors(&rb->bio)); 1742 bio_set_dev(&rb->bio, ca->disk_sb.bdev); 1743 1744 closure_get(&ra->cl); 1745 submit_bio(&rb->bio); 1746 } else { 1747 ra->err[i] = BLK_STS_REMOVED; 1748 } 1749 1750 i++; 1751 } 1752 1753 if (sync) { 1754 closure_sync(&ra->cl); 1755 btree_node_read_all_replicas_done(&ra->cl.work); 1756 } else { 1757 continue_at(&ra->cl, btree_node_read_all_replicas_done, 1758 c->btree_read_complete_wq); 1759 } 1760 1761 return 0; 1762 } 1763 1764 void bch2_btree_node_read(struct btree_trans *trans, struct btree *b, 1765 bool sync) 1766 { 1767 struct bch_fs *c = trans->c; 1768 struct extent_ptr_decoded pick; 1769 struct btree_read_bio *rb; 1770 struct bch_dev *ca; 1771 struct bio *bio; 1772 int ret; 1773 1774 trace_and_count(c, btree_node_read, trans, b); 1775 1776 if (static_branch_unlikely(&bch2_verify_all_btree_replicas) && 1777 !btree_node_read_all_replicas(c, b, sync)) 1778 return; 1779 1780 ret = bch2_bkey_pick_read_device(c, bkey_i_to_s_c(&b->key), 1781 NULL, &pick, -1); 1782 1783 if (ret <= 0) { 1784 bool ratelimit = true; 1785 struct printbuf buf = PRINTBUF; 1786 bch2_log_msg_start(c, &buf); 1787 1788 prt_str(&buf, "btree node read error: no device to read from\n at "); 1789 bch2_btree_pos_to_text(&buf, c, b); 1790 prt_newline(&buf); 1791 bch2_btree_lost_data(c, &buf, b->c.btree_id); 1792 1793 if (c->recovery.passes_complete & BIT_ULL(BCH_RECOVERY_PASS_check_topology) && 1794 bch2_fs_emergency_read_only2(c, &buf)) 1795 ratelimit = false; 1796 1797 static DEFINE_RATELIMIT_STATE(rs, 1798 DEFAULT_RATELIMIT_INTERVAL, 1799 DEFAULT_RATELIMIT_BURST); 1800 if (!ratelimit || __ratelimit(&rs)) 1801 bch2_print_str(c, KERN_ERR, buf.buf); 1802 printbuf_exit(&buf); 1803 1804 set_btree_node_read_error(b); 1805 clear_btree_node_read_in_flight(b); 1806 smp_mb__after_atomic(); 1807 wake_up_bit(&b->flags, BTREE_NODE_read_in_flight); 1808 return; 1809 } 1810 1811 ca = bch2_dev_get_ioref(c, pick.ptr.dev, READ, BCH_DEV_READ_REF_btree_node_read); 1812 1813 bio = bio_alloc_bioset(NULL, 1814 buf_pages(b->data, btree_buf_bytes(b)), 1815 REQ_OP_READ|REQ_SYNC|REQ_META, 1816 GFP_NOFS, 1817 &c->btree_bio); 1818 rb = container_of(bio, struct btree_read_bio, bio); 1819 rb->c = c; 1820 rb->b = b; 1821 rb->ra = NULL; 1822 rb->start_time = local_clock(); 1823 rb->have_ioref = ca != NULL; 1824 rb->pick = pick; 1825 INIT_WORK(&rb->work, btree_node_read_work); 1826 bio->bi_iter.bi_sector = pick.ptr.offset; 1827 bio->bi_end_io = btree_node_read_endio; 1828 bch2_bio_map(bio, b->data, btree_buf_bytes(b)); 1829 1830 async_object_list_add(c, btree_read_bio, rb, &rb->list_idx); 1831 1832 if (rb->have_ioref) { 1833 this_cpu_add(ca->io_done->sectors[READ][BCH_DATA_btree], 1834 bio_sectors(bio)); 1835 bio_set_dev(bio, ca->disk_sb.bdev); 1836 1837 if (sync) { 1838 submit_bio_wait(bio); 1839 bch2_latency_acct(ca, rb->start_time, READ); 1840 btree_node_read_work(&rb->work); 1841 } else { 1842 submit_bio(bio); 1843 } 1844 } else { 1845 bio->bi_status = BLK_STS_REMOVED; 1846 1847 if (sync) 1848 btree_node_read_work(&rb->work); 1849 else 1850 queue_work(c->btree_read_complete_wq, &rb->work); 1851 } 1852 } 1853 1854 static int __bch2_btree_root_read(struct btree_trans *trans, enum btree_id id, 1855 const struct bkey_i *k, unsigned level) 1856 { 1857 struct bch_fs *c = trans->c; 1858 struct closure cl; 1859 struct btree *b; 1860 int ret; 1861 1862 closure_init_stack(&cl); 1863 1864 do { 1865 ret = bch2_btree_cache_cannibalize_lock(trans, &cl); 1866 closure_sync(&cl); 1867 } while (ret); 1868 1869 b = bch2_btree_node_mem_alloc(trans, level != 0); 1870 bch2_btree_cache_cannibalize_unlock(trans); 1871 1872 BUG_ON(IS_ERR(b)); 1873 1874 bkey_copy(&b->key, k); 1875 BUG_ON(bch2_btree_node_hash_insert(&c->btree_cache, b, level, id)); 1876 1877 set_btree_node_read_in_flight(b); 1878 1879 /* we can't pass the trans to read_done() for fsck errors, so it must be unlocked */ 1880 bch2_trans_unlock(trans); 1881 bch2_btree_node_read(trans, b, true); 1882 1883 if (btree_node_read_error(b)) { 1884 mutex_lock(&c->btree_cache.lock); 1885 bch2_btree_node_hash_remove(&c->btree_cache, b); 1886 mutex_unlock(&c->btree_cache.lock); 1887 1888 ret = bch_err_throw(c, btree_node_read_error); 1889 goto err; 1890 } 1891 1892 bch2_btree_set_root_for_read(c, b); 1893 err: 1894 six_unlock_write(&b->c.lock); 1895 six_unlock_intent(&b->c.lock); 1896 1897 return ret; 1898 } 1899 1900 int bch2_btree_root_read(struct bch_fs *c, enum btree_id id, 1901 const struct bkey_i *k, unsigned level) 1902 { 1903 return bch2_trans_run(c, __bch2_btree_root_read(trans, id, k, level)); 1904 } 1905 1906 struct btree_node_scrub { 1907 struct bch_fs *c; 1908 struct bch_dev *ca; 1909 void *buf; 1910 bool used_mempool; 1911 unsigned written; 1912 1913 enum btree_id btree; 1914 unsigned level; 1915 struct bkey_buf key; 1916 __le64 seq; 1917 1918 struct work_struct work; 1919 struct bio bio; 1920 }; 1921 1922 static bool btree_node_scrub_check(struct bch_fs *c, struct btree_node *data, unsigned ptr_written, 1923 struct printbuf *err) 1924 { 1925 unsigned written = 0; 1926 1927 if (le64_to_cpu(data->magic) != bset_magic(c)) { 1928 prt_printf(err, "bad magic: want %llx, got %llx", 1929 bset_magic(c), le64_to_cpu(data->magic)); 1930 return false; 1931 } 1932 1933 while (written < (ptr_written ?: btree_sectors(c))) { 1934 struct btree_node_entry *bne; 1935 struct bset *i; 1936 bool first = !written; 1937 1938 if (first) { 1939 bne = NULL; 1940 i = &data->keys; 1941 } else { 1942 bne = (void *) data + (written << 9); 1943 i = &bne->keys; 1944 1945 if (!ptr_written && i->seq != data->keys.seq) 1946 break; 1947 } 1948 1949 struct nonce nonce = btree_nonce(i, written << 9); 1950 bool good_csum_type = bch2_checksum_type_valid(c, BSET_CSUM_TYPE(i)); 1951 1952 if (first) { 1953 if (good_csum_type) { 1954 struct bch_csum csum = csum_vstruct(c, BSET_CSUM_TYPE(i), nonce, data); 1955 if (bch2_crc_cmp(data->csum, csum)) { 1956 bch2_csum_err_msg(err, BSET_CSUM_TYPE(i), data->csum, csum); 1957 return false; 1958 } 1959 } 1960 1961 written += vstruct_sectors(data, c->block_bits); 1962 } else { 1963 if (good_csum_type) { 1964 struct bch_csum csum = csum_vstruct(c, BSET_CSUM_TYPE(i), nonce, bne); 1965 if (bch2_crc_cmp(bne->csum, csum)) { 1966 bch2_csum_err_msg(err, BSET_CSUM_TYPE(i), bne->csum, csum); 1967 return false; 1968 } 1969 } 1970 1971 written += vstruct_sectors(bne, c->block_bits); 1972 } 1973 } 1974 1975 return true; 1976 } 1977 1978 static void btree_node_scrub_work(struct work_struct *work) 1979 { 1980 struct btree_node_scrub *scrub = container_of(work, struct btree_node_scrub, work); 1981 struct bch_fs *c = scrub->c; 1982 struct printbuf err = PRINTBUF; 1983 1984 __bch2_btree_pos_to_text(&err, c, scrub->btree, scrub->level, 1985 bkey_i_to_s_c(scrub->key.k)); 1986 prt_newline(&err); 1987 1988 if (!btree_node_scrub_check(c, scrub->buf, scrub->written, &err)) { 1989 int ret = bch2_trans_do(c, 1990 bch2_btree_node_rewrite_key(trans, scrub->btree, scrub->level - 1, 1991 scrub->key.k, 0)); 1992 if (!bch2_err_matches(ret, ENOENT) && 1993 !bch2_err_matches(ret, EROFS)) 1994 bch_err_fn_ratelimited(c, ret); 1995 } 1996 1997 printbuf_exit(&err); 1998 bch2_bkey_buf_exit(&scrub->key, c);; 1999 btree_bounce_free(c, c->opts.btree_node_size, scrub->used_mempool, scrub->buf); 2000 enumerated_ref_put(&scrub->ca->io_ref[READ], BCH_DEV_READ_REF_btree_node_scrub); 2001 kfree(scrub); 2002 enumerated_ref_put(&c->writes, BCH_WRITE_REF_btree_node_scrub); 2003 } 2004 2005 static void btree_node_scrub_endio(struct bio *bio) 2006 { 2007 struct btree_node_scrub *scrub = container_of(bio, struct btree_node_scrub, bio); 2008 2009 queue_work(scrub->c->btree_read_complete_wq, &scrub->work); 2010 } 2011 2012 int bch2_btree_node_scrub(struct btree_trans *trans, 2013 enum btree_id btree, unsigned level, 2014 struct bkey_s_c k, unsigned dev) 2015 { 2016 if (k.k->type != KEY_TYPE_btree_ptr_v2) 2017 return 0; 2018 2019 struct bch_fs *c = trans->c; 2020 2021 if (!enumerated_ref_tryget(&c->writes, BCH_WRITE_REF_btree_node_scrub)) 2022 return bch_err_throw(c, erofs_no_writes); 2023 2024 struct extent_ptr_decoded pick; 2025 int ret = bch2_bkey_pick_read_device(c, k, NULL, &pick, dev); 2026 if (ret <= 0) 2027 goto err; 2028 2029 struct bch_dev *ca = bch2_dev_get_ioref(c, pick.ptr.dev, READ, 2030 BCH_DEV_READ_REF_btree_node_scrub); 2031 if (!ca) { 2032 ret = bch_err_throw(c, device_offline); 2033 goto err; 2034 } 2035 2036 bool used_mempool = false; 2037 void *buf = btree_bounce_alloc(c, c->opts.btree_node_size, &used_mempool); 2038 2039 unsigned vecs = buf_pages(buf, c->opts.btree_node_size); 2040 2041 struct btree_node_scrub *scrub = 2042 kzalloc(sizeof(*scrub) + sizeof(struct bio_vec) * vecs, GFP_KERNEL); 2043 if (!scrub) { 2044 ret = -ENOMEM; 2045 goto err_free; 2046 } 2047 2048 scrub->c = c; 2049 scrub->ca = ca; 2050 scrub->buf = buf; 2051 scrub->used_mempool = used_mempool; 2052 scrub->written = btree_ptr_sectors_written(k); 2053 2054 scrub->btree = btree; 2055 scrub->level = level; 2056 bch2_bkey_buf_init(&scrub->key); 2057 bch2_bkey_buf_reassemble(&scrub->key, c, k); 2058 scrub->seq = bkey_s_c_to_btree_ptr_v2(k).v->seq; 2059 2060 INIT_WORK(&scrub->work, btree_node_scrub_work); 2061 2062 bio_init(&scrub->bio, ca->disk_sb.bdev, scrub->bio.bi_inline_vecs, vecs, REQ_OP_READ); 2063 bch2_bio_map(&scrub->bio, scrub->buf, c->opts.btree_node_size); 2064 scrub->bio.bi_iter.bi_sector = pick.ptr.offset; 2065 scrub->bio.bi_end_io = btree_node_scrub_endio; 2066 submit_bio(&scrub->bio); 2067 return 0; 2068 err_free: 2069 btree_bounce_free(c, c->opts.btree_node_size, used_mempool, buf); 2070 enumerated_ref_put(&ca->io_ref[READ], BCH_DEV_READ_REF_btree_node_scrub); 2071 err: 2072 enumerated_ref_put(&c->writes, BCH_WRITE_REF_btree_node_scrub); 2073 return ret; 2074 } 2075 2076 static void bch2_btree_complete_write(struct bch_fs *c, struct btree *b, 2077 struct btree_write *w) 2078 { 2079 unsigned long old, new; 2080 2081 old = READ_ONCE(b->will_make_reachable); 2082 do { 2083 new = old; 2084 if (!(old & 1)) 2085 break; 2086 2087 new &= ~1UL; 2088 } while (!try_cmpxchg(&b->will_make_reachable, &old, new)); 2089 2090 if (old & 1) 2091 closure_put(&((struct btree_update *) new)->cl); 2092 2093 bch2_journal_pin_drop(&c->journal, &w->journal); 2094 } 2095 2096 static void __btree_node_write_done(struct bch_fs *c, struct btree *b, u64 start_time) 2097 { 2098 struct btree_write *w = btree_prev_write(b); 2099 unsigned long old, new; 2100 unsigned type = 0; 2101 2102 bch2_btree_complete_write(c, b, w); 2103 2104 if (start_time) 2105 bch2_time_stats_update(&c->times[BCH_TIME_btree_node_write], start_time); 2106 2107 old = READ_ONCE(b->flags); 2108 do { 2109 new = old; 2110 2111 if ((old & (1U << BTREE_NODE_dirty)) && 2112 (old & (1U << BTREE_NODE_need_write)) && 2113 !(old & (1U << BTREE_NODE_never_write)) && 2114 !(old & (1U << BTREE_NODE_write_blocked)) && 2115 !(old & (1U << BTREE_NODE_will_make_reachable))) { 2116 new &= ~(1U << BTREE_NODE_dirty); 2117 new &= ~(1U << BTREE_NODE_need_write); 2118 new |= (1U << BTREE_NODE_write_in_flight); 2119 new |= (1U << BTREE_NODE_write_in_flight_inner); 2120 new |= (1U << BTREE_NODE_just_written); 2121 new ^= (1U << BTREE_NODE_write_idx); 2122 2123 type = new & BTREE_WRITE_TYPE_MASK; 2124 new &= ~BTREE_WRITE_TYPE_MASK; 2125 } else { 2126 new &= ~(1U << BTREE_NODE_write_in_flight); 2127 new &= ~(1U << BTREE_NODE_write_in_flight_inner); 2128 } 2129 } while (!try_cmpxchg(&b->flags, &old, new)); 2130 2131 if (new & (1U << BTREE_NODE_write_in_flight)) 2132 __bch2_btree_node_write(c, b, BTREE_WRITE_ALREADY_STARTED|type); 2133 else { 2134 smp_mb__after_atomic(); 2135 wake_up_bit(&b->flags, BTREE_NODE_write_in_flight); 2136 } 2137 } 2138 2139 static void btree_node_write_done(struct bch_fs *c, struct btree *b, u64 start_time) 2140 { 2141 struct btree_trans *trans = bch2_trans_get(c); 2142 2143 btree_node_lock_nopath_nofail(trans, &b->c, SIX_LOCK_read); 2144 2145 /* we don't need transaction context anymore after we got the lock. */ 2146 bch2_trans_put(trans); 2147 __btree_node_write_done(c, b, start_time); 2148 six_unlock_read(&b->c.lock); 2149 } 2150 2151 static void btree_node_write_work(struct work_struct *work) 2152 { 2153 struct btree_write_bio *wbio = 2154 container_of(work, struct btree_write_bio, work); 2155 struct bch_fs *c = wbio->wbio.c; 2156 struct btree *b = wbio->wbio.bio.bi_private; 2157 u64 start_time = wbio->start_time; 2158 int ret = 0; 2159 2160 btree_bounce_free(c, 2161 wbio->data_bytes, 2162 wbio->wbio.used_mempool, 2163 wbio->data); 2164 2165 bch2_bkey_drop_ptrs(bkey_i_to_s(&wbio->key), ptr, 2166 bch2_dev_list_has_dev(wbio->wbio.failed, ptr->dev)); 2167 2168 if (!bch2_bkey_nr_ptrs(bkey_i_to_s_c(&wbio->key))) { 2169 ret = bch_err_throw(c, btree_node_write_all_failed); 2170 goto err; 2171 } 2172 2173 if (wbio->wbio.first_btree_write) { 2174 if (wbio->wbio.failed.nr) { 2175 2176 } 2177 } else { 2178 ret = bch2_trans_do(c, 2179 bch2_btree_node_update_key_get_iter(trans, b, &wbio->key, 2180 BCH_WATERMARK_interior_updates| 2181 BCH_TRANS_COMMIT_journal_reclaim| 2182 BCH_TRANS_COMMIT_no_enospc| 2183 BCH_TRANS_COMMIT_no_check_rw, 2184 !wbio->wbio.failed.nr)); 2185 if (ret) 2186 goto err; 2187 } 2188 out: 2189 async_object_list_del(c, btree_write_bio, wbio->list_idx); 2190 bio_put(&wbio->wbio.bio); 2191 btree_node_write_done(c, b, start_time); 2192 return; 2193 err: 2194 set_btree_node_noevict(b); 2195 2196 if (!bch2_err_matches(ret, EROFS)) { 2197 struct printbuf buf = PRINTBUF; 2198 prt_printf(&buf, "writing btree node: %s\n ", bch2_err_str(ret)); 2199 bch2_btree_pos_to_text(&buf, c, b); 2200 bch2_fs_fatal_error(c, "%s", buf.buf); 2201 printbuf_exit(&buf); 2202 } 2203 goto out; 2204 } 2205 2206 static void btree_node_write_endio(struct bio *bio) 2207 { 2208 struct bch_write_bio *wbio = to_wbio(bio); 2209 struct bch_write_bio *parent = wbio->split ? wbio->parent : NULL; 2210 struct bch_write_bio *orig = parent ?: wbio; 2211 struct btree_write_bio *wb = container_of(orig, struct btree_write_bio, wbio); 2212 struct bch_fs *c = wbio->c; 2213 struct btree *b = wbio->bio.bi_private; 2214 struct bch_dev *ca = wbio->have_ioref ? bch2_dev_have_ref(c, wbio->dev) : NULL; 2215 2216 bch2_account_io_completion(ca, BCH_MEMBER_ERROR_write, 2217 wbio->submit_time, !bio->bi_status); 2218 2219 if (ca && bio->bi_status) { 2220 struct printbuf buf = PRINTBUF; 2221 buf.atomic++; 2222 prt_printf(&buf, "btree write error: %s\n ", 2223 bch2_blk_status_to_str(bio->bi_status)); 2224 bch2_btree_pos_to_text(&buf, c, b); 2225 bch_err_dev_ratelimited(ca, "%s", buf.buf); 2226 printbuf_exit(&buf); 2227 } 2228 2229 if (bio->bi_status) { 2230 unsigned long flags; 2231 spin_lock_irqsave(&c->btree_write_error_lock, flags); 2232 bch2_dev_list_add_dev(&orig->failed, wbio->dev); 2233 spin_unlock_irqrestore(&c->btree_write_error_lock, flags); 2234 } 2235 2236 /* 2237 * XXX: we should be using io_ref[WRITE], but we aren't retrying failed 2238 * btree writes yet (due to device removal/ro): 2239 */ 2240 if (wbio->have_ioref) 2241 enumerated_ref_put(&ca->io_ref[READ], 2242 BCH_DEV_READ_REF_btree_node_write); 2243 2244 if (parent) { 2245 bio_put(bio); 2246 bio_endio(&parent->bio); 2247 return; 2248 } 2249 2250 clear_btree_node_write_in_flight_inner(b); 2251 smp_mb__after_atomic(); 2252 wake_up_bit(&b->flags, BTREE_NODE_write_in_flight_inner); 2253 INIT_WORK(&wb->work, btree_node_write_work); 2254 queue_work(c->btree_write_complete_wq, &wb->work); 2255 } 2256 2257 static int validate_bset_for_write(struct bch_fs *c, struct btree *b, 2258 struct bset *i) 2259 { 2260 int ret = bch2_bkey_validate(c, bkey_i_to_s_c(&b->key), 2261 (struct bkey_validate_context) { 2262 .from = BKEY_VALIDATE_btree_node, 2263 .level = b->c.level + 1, 2264 .btree = b->c.btree_id, 2265 .flags = BCH_VALIDATE_write, 2266 }); 2267 if (ret) { 2268 bch2_fs_inconsistent(c, "invalid btree node key before write"); 2269 return ret; 2270 } 2271 2272 ret = validate_bset_keys(c, b, i, WRITE, NULL, NULL) ?: 2273 validate_bset(c, NULL, b, i, b->written, WRITE, NULL, NULL); 2274 if (ret) { 2275 bch2_inconsistent_error(c); 2276 dump_stack(); 2277 } 2278 2279 return ret; 2280 } 2281 2282 static void btree_write_submit(struct work_struct *work) 2283 { 2284 struct btree_write_bio *wbio = container_of(work, struct btree_write_bio, work); 2285 BKEY_PADDED_ONSTACK(k, BKEY_BTREE_PTR_VAL_U64s_MAX) tmp; 2286 2287 bkey_copy(&tmp.k, &wbio->key); 2288 2289 bkey_for_each_ptr(bch2_bkey_ptrs(bkey_i_to_s(&tmp.k)), ptr) 2290 ptr->offset += wbio->sector_offset; 2291 2292 bch2_submit_wbio_replicas(&wbio->wbio, wbio->wbio.c, BCH_DATA_btree, 2293 &tmp.k, false); 2294 } 2295 2296 void __bch2_btree_node_write(struct bch_fs *c, struct btree *b, unsigned flags) 2297 { 2298 struct btree_write_bio *wbio; 2299 struct bset *i; 2300 struct btree_node *bn = NULL; 2301 struct btree_node_entry *bne = NULL; 2302 struct sort_iter_stack sort_iter; 2303 struct nonce nonce; 2304 unsigned bytes_to_write, sectors_to_write, bytes, u64s; 2305 u64 seq = 0; 2306 bool used_mempool; 2307 unsigned long old, new; 2308 bool validate_before_checksum = false; 2309 enum btree_write_type type = flags & BTREE_WRITE_TYPE_MASK; 2310 void *data; 2311 u64 start_time = local_clock(); 2312 int ret; 2313 2314 if (flags & BTREE_WRITE_ALREADY_STARTED) 2315 goto do_write; 2316 2317 /* 2318 * We may only have a read lock on the btree node - the dirty bit is our 2319 * "lock" against racing with other threads that may be trying to start 2320 * a write, we do a write iff we clear the dirty bit. Since setting the 2321 * dirty bit requires a write lock, we can't race with other threads 2322 * redirtying it: 2323 */ 2324 old = READ_ONCE(b->flags); 2325 do { 2326 new = old; 2327 2328 if (!(old & (1 << BTREE_NODE_dirty))) 2329 return; 2330 2331 if ((flags & BTREE_WRITE_ONLY_IF_NEED) && 2332 !(old & (1 << BTREE_NODE_need_write))) 2333 return; 2334 2335 if (old & 2336 ((1 << BTREE_NODE_never_write)| 2337 (1 << BTREE_NODE_write_blocked))) 2338 return; 2339 2340 if (b->written && 2341 (old & (1 << BTREE_NODE_will_make_reachable))) 2342 return; 2343 2344 if (old & (1 << BTREE_NODE_write_in_flight)) 2345 return; 2346 2347 if (flags & BTREE_WRITE_ONLY_IF_NEED) 2348 type = new & BTREE_WRITE_TYPE_MASK; 2349 new &= ~BTREE_WRITE_TYPE_MASK; 2350 2351 new &= ~(1 << BTREE_NODE_dirty); 2352 new &= ~(1 << BTREE_NODE_need_write); 2353 new |= (1 << BTREE_NODE_write_in_flight); 2354 new |= (1 << BTREE_NODE_write_in_flight_inner); 2355 new |= (1 << BTREE_NODE_just_written); 2356 new ^= (1 << BTREE_NODE_write_idx); 2357 } while (!try_cmpxchg_acquire(&b->flags, &old, new)); 2358 2359 if (new & (1U << BTREE_NODE_need_write)) 2360 return; 2361 do_write: 2362 BUG_ON((type == BTREE_WRITE_initial) != (b->written == 0)); 2363 2364 atomic_long_dec(&c->btree_cache.nr_dirty); 2365 2366 BUG_ON(btree_node_fake(b)); 2367 BUG_ON((b->will_make_reachable != 0) != !b->written); 2368 2369 BUG_ON(b->written >= btree_sectors(c)); 2370 BUG_ON(b->written & (block_sectors(c) - 1)); 2371 BUG_ON(bset_written(b, btree_bset_last(b))); 2372 BUG_ON(le64_to_cpu(b->data->magic) != bset_magic(c)); 2373 BUG_ON(memcmp(&b->data->format, &b->format, sizeof(b->format))); 2374 2375 bch2_sort_whiteouts(c, b); 2376 2377 sort_iter_stack_init(&sort_iter, b); 2378 2379 bytes = !b->written 2380 ? sizeof(struct btree_node) 2381 : sizeof(struct btree_node_entry); 2382 2383 bytes += b->whiteout_u64s * sizeof(u64); 2384 2385 for_each_bset(b, t) { 2386 i = bset(b, t); 2387 2388 if (bset_written(b, i)) 2389 continue; 2390 2391 bytes += le16_to_cpu(i->u64s) * sizeof(u64); 2392 sort_iter_add(&sort_iter.iter, 2393 btree_bkey_first(b, t), 2394 btree_bkey_last(b, t)); 2395 seq = max(seq, le64_to_cpu(i->journal_seq)); 2396 } 2397 2398 BUG_ON(b->written && !seq); 2399 2400 /* bch2_varint_decode may read up to 7 bytes past the end of the buffer: */ 2401 bytes += 8; 2402 2403 /* buffer must be a multiple of the block size */ 2404 bytes = round_up(bytes, block_bytes(c)); 2405 2406 data = btree_bounce_alloc(c, bytes, &used_mempool); 2407 2408 if (!b->written) { 2409 bn = data; 2410 *bn = *b->data; 2411 i = &bn->keys; 2412 } else { 2413 bne = data; 2414 bne->keys = b->data->keys; 2415 i = &bne->keys; 2416 } 2417 2418 i->journal_seq = cpu_to_le64(seq); 2419 i->u64s = 0; 2420 2421 sort_iter_add(&sort_iter.iter, 2422 unwritten_whiteouts_start(b), 2423 unwritten_whiteouts_end(b)); 2424 SET_BSET_SEPARATE_WHITEOUTS(i, false); 2425 2426 u64s = bch2_sort_keys_keep_unwritten_whiteouts(i->start, &sort_iter.iter); 2427 le16_add_cpu(&i->u64s, u64s); 2428 2429 b->whiteout_u64s = 0; 2430 2431 BUG_ON(!b->written && i->u64s != b->data->keys.u64s); 2432 2433 set_needs_whiteout(i, false); 2434 2435 /* do we have data to write? */ 2436 if (b->written && !i->u64s) 2437 goto nowrite; 2438 2439 bytes_to_write = vstruct_end(i) - data; 2440 sectors_to_write = round_up(bytes_to_write, block_bytes(c)) >> 9; 2441 2442 if (!b->written && 2443 b->key.k.type == KEY_TYPE_btree_ptr_v2) 2444 BUG_ON(btree_ptr_sectors_written(bkey_i_to_s_c(&b->key)) != sectors_to_write); 2445 2446 memset(data + bytes_to_write, 0, 2447 (sectors_to_write << 9) - bytes_to_write); 2448 2449 BUG_ON(b->written + sectors_to_write > btree_sectors(c)); 2450 BUG_ON(BSET_BIG_ENDIAN(i) != CPU_BIG_ENDIAN); 2451 BUG_ON(i->seq != b->data->keys.seq); 2452 2453 i->version = cpu_to_le16(c->sb.version); 2454 SET_BSET_OFFSET(i, b->written); 2455 SET_BSET_CSUM_TYPE(i, bch2_meta_checksum_type(c)); 2456 2457 if (bch2_csum_type_is_encryption(BSET_CSUM_TYPE(i))) 2458 validate_before_checksum = true; 2459 2460 /* validate_bset will be modifying: */ 2461 if (le16_to_cpu(i->version) < bcachefs_metadata_version_current) 2462 validate_before_checksum = true; 2463 2464 /* if we're going to be encrypting, check metadata validity first: */ 2465 if (validate_before_checksum && 2466 validate_bset_for_write(c, b, i)) 2467 goto err; 2468 2469 ret = bset_encrypt(c, i, b->written << 9); 2470 if (bch2_fs_fatal_err_on(ret, c, 2471 "encrypting btree node: %s", bch2_err_str(ret))) 2472 goto err; 2473 2474 nonce = btree_nonce(i, b->written << 9); 2475 2476 if (bn) 2477 bn->csum = csum_vstruct(c, BSET_CSUM_TYPE(i), nonce, bn); 2478 else 2479 bne->csum = csum_vstruct(c, BSET_CSUM_TYPE(i), nonce, bne); 2480 2481 /* if we're not encrypting, check metadata after checksumming: */ 2482 if (!validate_before_checksum && 2483 validate_bset_for_write(c, b, i)) 2484 goto err; 2485 2486 /* 2487 * We handle btree write errors by immediately halting the journal - 2488 * after we've done that, we can't issue any subsequent btree writes 2489 * because they might have pointers to new nodes that failed to write. 2490 * 2491 * Furthermore, there's no point in doing any more btree writes because 2492 * with the journal stopped, we're never going to update the journal to 2493 * reflect that those writes were done and the data flushed from the 2494 * journal: 2495 * 2496 * Also on journal error, the pending write may have updates that were 2497 * never journalled (interior nodes, see btree_update_nodes_written()) - 2498 * it's critical that we don't do the write in that case otherwise we 2499 * will have updates visible that weren't in the journal: 2500 * 2501 * Make sure to update b->written so bch2_btree_init_next() doesn't 2502 * break: 2503 */ 2504 if (bch2_journal_error(&c->journal) || 2505 c->opts.nochanges) 2506 goto err; 2507 2508 trace_and_count(c, btree_node_write, b, bytes_to_write, sectors_to_write); 2509 2510 wbio = container_of(bio_alloc_bioset(NULL, 2511 buf_pages(data, sectors_to_write << 9), 2512 REQ_OP_WRITE|REQ_META, 2513 GFP_NOFS, 2514 &c->btree_bio), 2515 struct btree_write_bio, wbio.bio); 2516 wbio_init(&wbio->wbio.bio); 2517 wbio->data = data; 2518 wbio->data_bytes = bytes; 2519 wbio->sector_offset = b->written; 2520 wbio->start_time = start_time; 2521 wbio->wbio.c = c; 2522 wbio->wbio.used_mempool = used_mempool; 2523 wbio->wbio.first_btree_write = !b->written; 2524 wbio->wbio.bio.bi_end_io = btree_node_write_endio; 2525 wbio->wbio.bio.bi_private = b; 2526 2527 bch2_bio_map(&wbio->wbio.bio, data, sectors_to_write << 9); 2528 2529 bkey_copy(&wbio->key, &b->key); 2530 2531 b->written += sectors_to_write; 2532 2533 if (wbio->key.k.type == KEY_TYPE_btree_ptr_v2) 2534 bkey_i_to_btree_ptr_v2(&wbio->key)->v.sectors_written = 2535 cpu_to_le16(b->written); 2536 2537 atomic64_inc(&c->btree_write_stats[type].nr); 2538 atomic64_add(bytes_to_write, &c->btree_write_stats[type].bytes); 2539 2540 async_object_list_add(c, btree_write_bio, wbio, &wbio->list_idx); 2541 2542 INIT_WORK(&wbio->work, btree_write_submit); 2543 queue_work(c->btree_write_submit_wq, &wbio->work); 2544 return; 2545 err: 2546 set_btree_node_noevict(b); 2547 b->written += sectors_to_write; 2548 nowrite: 2549 btree_bounce_free(c, bytes, used_mempool, data); 2550 __btree_node_write_done(c, b, 0); 2551 } 2552 2553 /* 2554 * Work that must be done with write lock held: 2555 */ 2556 bool bch2_btree_post_write_cleanup(struct bch_fs *c, struct btree *b) 2557 { 2558 bool invalidated_iter = false; 2559 struct btree_node_entry *bne; 2560 2561 if (!btree_node_just_written(b)) 2562 return false; 2563 2564 BUG_ON(b->whiteout_u64s); 2565 2566 clear_btree_node_just_written(b); 2567 2568 /* 2569 * Note: immediately after write, bset_written() doesn't work - the 2570 * amount of data we had to write after compaction might have been 2571 * smaller than the offset of the last bset. 2572 * 2573 * However, we know that all bsets have been written here, as long as 2574 * we're still holding the write lock: 2575 */ 2576 2577 /* 2578 * XXX: decide if we really want to unconditionally sort down to a 2579 * single bset: 2580 */ 2581 if (b->nsets > 1) { 2582 btree_node_sort(c, b, 0, b->nsets); 2583 invalidated_iter = true; 2584 } else { 2585 invalidated_iter = bch2_drop_whiteouts(b, COMPACT_ALL); 2586 } 2587 2588 for_each_bset(b, t) 2589 set_needs_whiteout(bset(b, t), true); 2590 2591 bch2_btree_verify(c, b); 2592 2593 /* 2594 * If later we don't unconditionally sort down to a single bset, we have 2595 * to ensure this is still true: 2596 */ 2597 BUG_ON((void *) btree_bkey_last(b, bset_tree_last(b)) > write_block(b)); 2598 2599 bne = want_new_bset(c, b); 2600 if (bne) 2601 bch2_bset_init_next(b, bne); 2602 2603 bch2_btree_build_aux_trees(b); 2604 2605 return invalidated_iter; 2606 } 2607 2608 /* 2609 * Use this one if the node is intent locked: 2610 */ 2611 void bch2_btree_node_write(struct bch_fs *c, struct btree *b, 2612 enum six_lock_type lock_type_held, 2613 unsigned flags) 2614 { 2615 if (lock_type_held == SIX_LOCK_intent || 2616 (lock_type_held == SIX_LOCK_read && 2617 six_lock_tryupgrade(&b->c.lock))) { 2618 __bch2_btree_node_write(c, b, flags); 2619 2620 /* don't cycle lock unnecessarily: */ 2621 if (btree_node_just_written(b) && 2622 six_trylock_write(&b->c.lock)) { 2623 bch2_btree_post_write_cleanup(c, b); 2624 six_unlock_write(&b->c.lock); 2625 } 2626 2627 if (lock_type_held == SIX_LOCK_read) 2628 six_lock_downgrade(&b->c.lock); 2629 } else { 2630 __bch2_btree_node_write(c, b, flags); 2631 if (lock_type_held == SIX_LOCK_write && 2632 btree_node_just_written(b)) 2633 bch2_btree_post_write_cleanup(c, b); 2634 } 2635 } 2636 2637 void bch2_btree_node_write_trans(struct btree_trans *trans, struct btree *b, 2638 enum six_lock_type lock_type_held, 2639 unsigned flags) 2640 { 2641 struct bch_fs *c = trans->c; 2642 2643 if (lock_type_held == SIX_LOCK_intent || 2644 (lock_type_held == SIX_LOCK_read && 2645 six_lock_tryupgrade(&b->c.lock))) { 2646 __bch2_btree_node_write(c, b, flags); 2647 2648 /* don't cycle lock unnecessarily: */ 2649 if (btree_node_just_written(b) && 2650 six_trylock_write(&b->c.lock)) { 2651 bch2_btree_post_write_cleanup(c, b); 2652 __bch2_btree_node_unlock_write(trans, b); 2653 } 2654 2655 if (lock_type_held == SIX_LOCK_read) 2656 six_lock_downgrade(&b->c.lock); 2657 } else { 2658 __bch2_btree_node_write(c, b, flags); 2659 if (lock_type_held == SIX_LOCK_write && 2660 btree_node_just_written(b)) 2661 bch2_btree_post_write_cleanup(c, b); 2662 } 2663 } 2664 2665 static bool __bch2_btree_flush_all(struct bch_fs *c, unsigned flag) 2666 { 2667 struct bucket_table *tbl; 2668 struct rhash_head *pos; 2669 struct btree *b; 2670 unsigned i; 2671 bool ret = false; 2672 restart: 2673 rcu_read_lock(); 2674 for_each_cached_btree(b, c, tbl, i, pos) 2675 if (test_bit(flag, &b->flags)) { 2676 rcu_read_unlock(); 2677 wait_on_bit_io(&b->flags, flag, TASK_UNINTERRUPTIBLE); 2678 ret = true; 2679 goto restart; 2680 } 2681 rcu_read_unlock(); 2682 2683 return ret; 2684 } 2685 2686 bool bch2_btree_flush_all_reads(struct bch_fs *c) 2687 { 2688 return __bch2_btree_flush_all(c, BTREE_NODE_read_in_flight); 2689 } 2690 2691 bool bch2_btree_flush_all_writes(struct bch_fs *c) 2692 { 2693 return __bch2_btree_flush_all(c, BTREE_NODE_write_in_flight); 2694 } 2695 2696 static const char * const bch2_btree_write_types[] = { 2697 #define x(t, n) [n] = #t, 2698 BCH_BTREE_WRITE_TYPES() 2699 NULL 2700 }; 2701 2702 void bch2_btree_write_stats_to_text(struct printbuf *out, struct bch_fs *c) 2703 { 2704 printbuf_tabstop_push(out, 20); 2705 printbuf_tabstop_push(out, 10); 2706 2707 prt_printf(out, "\tnr\tsize\n"); 2708 2709 for (unsigned i = 0; i < BTREE_WRITE_TYPE_NR; i++) { 2710 u64 nr = atomic64_read(&c->btree_write_stats[i].nr); 2711 u64 bytes = atomic64_read(&c->btree_write_stats[i].bytes); 2712 2713 prt_printf(out, "%s:\t%llu\t", bch2_btree_write_types[i], nr); 2714 prt_human_readable_u64(out, nr ? div64_u64(bytes, nr) : 0); 2715 prt_newline(out); 2716 } 2717 } 2718