1 // SPDX-License-Identifier: GPL-2.0 2 #include "bcachefs.h" 3 #include "alloc_background.h" 4 #include "alloc_foreground.h" 5 #include "backpointers.h" 6 #include "bkey_buf.h" 7 #include "btree_cache.h" 8 #include "btree_io.h" 9 #include "btree_key_cache.h" 10 #include "btree_update.h" 11 #include "btree_update_interior.h" 12 #include "btree_gc.h" 13 #include "btree_write_buffer.h" 14 #include "buckets.h" 15 #include "buckets_waiting_for_journal.h" 16 #include "clock.h" 17 #include "debug.h" 18 #include "disk_accounting.h" 19 #include "ec.h" 20 #include "error.h" 21 #include "lru.h" 22 #include "recovery.h" 23 #include "trace.h" 24 #include "varint.h" 25 26 #include <linux/kthread.h> 27 #include <linux/math64.h> 28 #include <linux/random.h> 29 #include <linux/rculist.h> 30 #include <linux/rcupdate.h> 31 #include <linux/sched/task.h> 32 #include <linux/sort.h> 33 #include <linux/jiffies.h> 34 35 static void bch2_discard_one_bucket_fast(struct bch_dev *, u64); 36 37 /* Persistent alloc info: */ 38 39 static const unsigned BCH_ALLOC_V1_FIELD_BYTES[] = { 40 #define x(name, bits) [BCH_ALLOC_FIELD_V1_##name] = bits / 8, 41 BCH_ALLOC_FIELDS_V1() 42 #undef x 43 }; 44 45 struct bkey_alloc_unpacked { 46 u64 journal_seq; 47 u8 gen; 48 u8 oldest_gen; 49 u8 data_type; 50 bool need_discard:1; 51 bool need_inc_gen:1; 52 #define x(_name, _bits) u##_bits _name; 53 BCH_ALLOC_FIELDS_V2() 54 #undef x 55 }; 56 57 static inline u64 alloc_field_v1_get(const struct bch_alloc *a, 58 const void **p, unsigned field) 59 { 60 unsigned bytes = BCH_ALLOC_V1_FIELD_BYTES[field]; 61 u64 v; 62 63 if (!(a->fields & (1 << field))) 64 return 0; 65 66 switch (bytes) { 67 case 1: 68 v = *((const u8 *) *p); 69 break; 70 case 2: 71 v = le16_to_cpup(*p); 72 break; 73 case 4: 74 v = le32_to_cpup(*p); 75 break; 76 case 8: 77 v = le64_to_cpup(*p); 78 break; 79 default: 80 BUG(); 81 } 82 83 *p += bytes; 84 return v; 85 } 86 87 static void bch2_alloc_unpack_v1(struct bkey_alloc_unpacked *out, 88 struct bkey_s_c k) 89 { 90 const struct bch_alloc *in = bkey_s_c_to_alloc(k).v; 91 const void *d = in->data; 92 unsigned idx = 0; 93 94 out->gen = in->gen; 95 96 #define x(_name, _bits) out->_name = alloc_field_v1_get(in, &d, idx++); 97 BCH_ALLOC_FIELDS_V1() 98 #undef x 99 } 100 101 static int bch2_alloc_unpack_v2(struct bkey_alloc_unpacked *out, 102 struct bkey_s_c k) 103 { 104 struct bkey_s_c_alloc_v2 a = bkey_s_c_to_alloc_v2(k); 105 const u8 *in = a.v->data; 106 const u8 *end = bkey_val_end(a); 107 unsigned fieldnr = 0; 108 int ret; 109 u64 v; 110 111 out->gen = a.v->gen; 112 out->oldest_gen = a.v->oldest_gen; 113 out->data_type = a.v->data_type; 114 115 #define x(_name, _bits) \ 116 if (fieldnr < a.v->nr_fields) { \ 117 ret = bch2_varint_decode_fast(in, end, &v); \ 118 if (ret < 0) \ 119 return ret; \ 120 in += ret; \ 121 } else { \ 122 v = 0; \ 123 } \ 124 out->_name = v; \ 125 if (v != out->_name) \ 126 return -1; \ 127 fieldnr++; 128 129 BCH_ALLOC_FIELDS_V2() 130 #undef x 131 return 0; 132 } 133 134 static int bch2_alloc_unpack_v3(struct bkey_alloc_unpacked *out, 135 struct bkey_s_c k) 136 { 137 struct bkey_s_c_alloc_v3 a = bkey_s_c_to_alloc_v3(k); 138 const u8 *in = a.v->data; 139 const u8 *end = bkey_val_end(a); 140 unsigned fieldnr = 0; 141 int ret; 142 u64 v; 143 144 out->gen = a.v->gen; 145 out->oldest_gen = a.v->oldest_gen; 146 out->data_type = a.v->data_type; 147 out->need_discard = BCH_ALLOC_V3_NEED_DISCARD(a.v); 148 out->need_inc_gen = BCH_ALLOC_V3_NEED_INC_GEN(a.v); 149 out->journal_seq = le64_to_cpu(a.v->journal_seq); 150 151 #define x(_name, _bits) \ 152 if (fieldnr < a.v->nr_fields) { \ 153 ret = bch2_varint_decode_fast(in, end, &v); \ 154 if (ret < 0) \ 155 return ret; \ 156 in += ret; \ 157 } else { \ 158 v = 0; \ 159 } \ 160 out->_name = v; \ 161 if (v != out->_name) \ 162 return -1; \ 163 fieldnr++; 164 165 BCH_ALLOC_FIELDS_V2() 166 #undef x 167 return 0; 168 } 169 170 static struct bkey_alloc_unpacked bch2_alloc_unpack(struct bkey_s_c k) 171 { 172 struct bkey_alloc_unpacked ret = { .gen = 0 }; 173 174 switch (k.k->type) { 175 case KEY_TYPE_alloc: 176 bch2_alloc_unpack_v1(&ret, k); 177 break; 178 case KEY_TYPE_alloc_v2: 179 bch2_alloc_unpack_v2(&ret, k); 180 break; 181 case KEY_TYPE_alloc_v3: 182 bch2_alloc_unpack_v3(&ret, k); 183 break; 184 } 185 186 return ret; 187 } 188 189 static unsigned bch_alloc_v1_val_u64s(const struct bch_alloc *a) 190 { 191 unsigned i, bytes = offsetof(struct bch_alloc, data); 192 193 for (i = 0; i < ARRAY_SIZE(BCH_ALLOC_V1_FIELD_BYTES); i++) 194 if (a->fields & (1 << i)) 195 bytes += BCH_ALLOC_V1_FIELD_BYTES[i]; 196 197 return DIV_ROUND_UP(bytes, sizeof(u64)); 198 } 199 200 int bch2_alloc_v1_validate(struct bch_fs *c, struct bkey_s_c k, 201 struct bkey_validate_context from) 202 { 203 struct bkey_s_c_alloc a = bkey_s_c_to_alloc(k); 204 int ret = 0; 205 206 /* allow for unknown fields */ 207 bkey_fsck_err_on(bkey_val_u64s(a.k) < bch_alloc_v1_val_u64s(a.v), 208 c, alloc_v1_val_size_bad, 209 "incorrect value size (%zu < %u)", 210 bkey_val_u64s(a.k), bch_alloc_v1_val_u64s(a.v)); 211 fsck_err: 212 return ret; 213 } 214 215 int bch2_alloc_v2_validate(struct bch_fs *c, struct bkey_s_c k, 216 struct bkey_validate_context from) 217 { 218 struct bkey_alloc_unpacked u; 219 int ret = 0; 220 221 bkey_fsck_err_on(bch2_alloc_unpack_v2(&u, k), 222 c, alloc_v2_unpack_error, 223 "unpack error"); 224 fsck_err: 225 return ret; 226 } 227 228 int bch2_alloc_v3_validate(struct bch_fs *c, struct bkey_s_c k, 229 struct bkey_validate_context from) 230 { 231 struct bkey_alloc_unpacked u; 232 int ret = 0; 233 234 bkey_fsck_err_on(bch2_alloc_unpack_v3(&u, k), 235 c, alloc_v2_unpack_error, 236 "unpack error"); 237 fsck_err: 238 return ret; 239 } 240 241 int bch2_alloc_v4_validate(struct bch_fs *c, struct bkey_s_c k, 242 struct bkey_validate_context from) 243 { 244 struct bch_alloc_v4 a; 245 int ret = 0; 246 247 bkey_val_copy(&a, bkey_s_c_to_alloc_v4(k)); 248 249 bkey_fsck_err_on(alloc_v4_u64s_noerror(&a) > bkey_val_u64s(k.k), 250 c, alloc_v4_val_size_bad, 251 "bad val size (%u > %zu)", 252 alloc_v4_u64s_noerror(&a), bkey_val_u64s(k.k)); 253 254 bkey_fsck_err_on(!BCH_ALLOC_V4_BACKPOINTERS_START(&a) && 255 BCH_ALLOC_V4_NR_BACKPOINTERS(&a), 256 c, alloc_v4_backpointers_start_bad, 257 "invalid backpointers_start"); 258 259 bkey_fsck_err_on(alloc_data_type(a, a.data_type) != a.data_type, 260 c, alloc_key_data_type_bad, 261 "invalid data type (got %u should be %u)", 262 a.data_type, alloc_data_type(a, a.data_type)); 263 264 for (unsigned i = 0; i < 2; i++) 265 bkey_fsck_err_on(a.io_time[i] > LRU_TIME_MAX, 266 c, alloc_key_io_time_bad, 267 "invalid io_time[%s]: %llu, max %llu", 268 i == READ ? "read" : "write", 269 a.io_time[i], LRU_TIME_MAX); 270 271 unsigned stripe_sectors = BCH_ALLOC_V4_BACKPOINTERS_START(&a) * sizeof(u64) > 272 offsetof(struct bch_alloc_v4, stripe_sectors) 273 ? a.stripe_sectors 274 : 0; 275 276 switch (a.data_type) { 277 case BCH_DATA_free: 278 case BCH_DATA_need_gc_gens: 279 case BCH_DATA_need_discard: 280 bkey_fsck_err_on(stripe_sectors || 281 a.dirty_sectors || 282 a.cached_sectors || 283 a.stripe, 284 c, alloc_key_empty_but_have_data, 285 "empty data type free but have data %u.%u.%u %u", 286 stripe_sectors, 287 a.dirty_sectors, 288 a.cached_sectors, 289 a.stripe); 290 break; 291 case BCH_DATA_sb: 292 case BCH_DATA_journal: 293 case BCH_DATA_btree: 294 case BCH_DATA_user: 295 case BCH_DATA_parity: 296 bkey_fsck_err_on(!a.dirty_sectors && 297 !stripe_sectors, 298 c, alloc_key_dirty_sectors_0, 299 "data_type %s but dirty_sectors==0", 300 bch2_data_type_str(a.data_type)); 301 break; 302 case BCH_DATA_cached: 303 bkey_fsck_err_on(!a.cached_sectors || 304 a.dirty_sectors || 305 stripe_sectors || 306 a.stripe, 307 c, alloc_key_cached_inconsistency, 308 "data type inconsistency"); 309 310 bkey_fsck_err_on(!a.io_time[READ] && 311 c->curr_recovery_pass > BCH_RECOVERY_PASS_check_alloc_to_lru_refs, 312 c, alloc_key_cached_but_read_time_zero, 313 "cached bucket with read_time == 0"); 314 break; 315 case BCH_DATA_stripe: 316 break; 317 } 318 fsck_err: 319 return ret; 320 } 321 322 void bch2_alloc_v4_swab(struct bkey_s k) 323 { 324 struct bch_alloc_v4 *a = bkey_s_to_alloc_v4(k).v; 325 326 a->journal_seq_nonempty = swab64(a->journal_seq_nonempty); 327 a->journal_seq_empty = swab64(a->journal_seq_empty); 328 a->flags = swab32(a->flags); 329 a->dirty_sectors = swab32(a->dirty_sectors); 330 a->cached_sectors = swab32(a->cached_sectors); 331 a->io_time[0] = swab64(a->io_time[0]); 332 a->io_time[1] = swab64(a->io_time[1]); 333 a->stripe = swab32(a->stripe); 334 a->nr_external_backpointers = swab32(a->nr_external_backpointers); 335 a->stripe_sectors = swab32(a->stripe_sectors); 336 } 337 338 void bch2_alloc_to_text(struct printbuf *out, struct bch_fs *c, struct bkey_s_c k) 339 { 340 struct bch_alloc_v4 _a; 341 const struct bch_alloc_v4 *a = bch2_alloc_to_v4(k, &_a); 342 struct bch_dev *ca = c ? bch2_dev_bucket_tryget_noerror(c, k.k->p) : NULL; 343 344 prt_newline(out); 345 printbuf_indent_add(out, 2); 346 347 prt_printf(out, "gen %u oldest_gen %u data_type ", a->gen, a->oldest_gen); 348 bch2_prt_data_type(out, a->data_type); 349 prt_newline(out); 350 prt_printf(out, "journal_seq_nonempty %llu\n", a->journal_seq_nonempty); 351 prt_printf(out, "journal_seq_empty %llu\n", a->journal_seq_empty); 352 prt_printf(out, "need_discard %llu\n", BCH_ALLOC_V4_NEED_DISCARD(a)); 353 prt_printf(out, "need_inc_gen %llu\n", BCH_ALLOC_V4_NEED_INC_GEN(a)); 354 prt_printf(out, "dirty_sectors %u\n", a->dirty_sectors); 355 prt_printf(out, "stripe_sectors %u\n", a->stripe_sectors); 356 prt_printf(out, "cached_sectors %u\n", a->cached_sectors); 357 prt_printf(out, "stripe %u\n", a->stripe); 358 prt_printf(out, "stripe_redundancy %u\n", a->stripe_redundancy); 359 prt_printf(out, "io_time[READ] %llu\n", a->io_time[READ]); 360 prt_printf(out, "io_time[WRITE] %llu\n", a->io_time[WRITE]); 361 362 if (ca) 363 prt_printf(out, "fragmentation %llu\n", alloc_lru_idx_fragmentation(*a, ca)); 364 prt_printf(out, "bp_start %llu\n", BCH_ALLOC_V4_BACKPOINTERS_START(a)); 365 printbuf_indent_sub(out, 2); 366 367 bch2_dev_put(ca); 368 } 369 370 void __bch2_alloc_to_v4(struct bkey_s_c k, struct bch_alloc_v4 *out) 371 { 372 if (k.k->type == KEY_TYPE_alloc_v4) { 373 void *src, *dst; 374 375 *out = *bkey_s_c_to_alloc_v4(k).v; 376 377 src = alloc_v4_backpointers(out); 378 SET_BCH_ALLOC_V4_BACKPOINTERS_START(out, BCH_ALLOC_V4_U64s); 379 dst = alloc_v4_backpointers(out); 380 381 if (src < dst) 382 memset(src, 0, dst - src); 383 384 SET_BCH_ALLOC_V4_NR_BACKPOINTERS(out, 0); 385 } else { 386 struct bkey_alloc_unpacked u = bch2_alloc_unpack(k); 387 388 *out = (struct bch_alloc_v4) { 389 .journal_seq_nonempty = u.journal_seq, 390 .flags = u.need_discard, 391 .gen = u.gen, 392 .oldest_gen = u.oldest_gen, 393 .data_type = u.data_type, 394 .stripe_redundancy = u.stripe_redundancy, 395 .dirty_sectors = u.dirty_sectors, 396 .cached_sectors = u.cached_sectors, 397 .io_time[READ] = u.read_time, 398 .io_time[WRITE] = u.write_time, 399 .stripe = u.stripe, 400 }; 401 402 SET_BCH_ALLOC_V4_BACKPOINTERS_START(out, BCH_ALLOC_V4_U64s); 403 } 404 } 405 406 static noinline struct bkey_i_alloc_v4 * 407 __bch2_alloc_to_v4_mut(struct btree_trans *trans, struct bkey_s_c k) 408 { 409 struct bkey_i_alloc_v4 *ret; 410 411 ret = bch2_trans_kmalloc(trans, max(bkey_bytes(k.k), sizeof(struct bkey_i_alloc_v4))); 412 if (IS_ERR(ret)) 413 return ret; 414 415 if (k.k->type == KEY_TYPE_alloc_v4) { 416 void *src, *dst; 417 418 bkey_reassemble(&ret->k_i, k); 419 420 src = alloc_v4_backpointers(&ret->v); 421 SET_BCH_ALLOC_V4_BACKPOINTERS_START(&ret->v, BCH_ALLOC_V4_U64s); 422 dst = alloc_v4_backpointers(&ret->v); 423 424 if (src < dst) 425 memset(src, 0, dst - src); 426 427 SET_BCH_ALLOC_V4_NR_BACKPOINTERS(&ret->v, 0); 428 set_alloc_v4_u64s(ret); 429 } else { 430 bkey_alloc_v4_init(&ret->k_i); 431 ret->k.p = k.k->p; 432 bch2_alloc_to_v4(k, &ret->v); 433 } 434 return ret; 435 } 436 437 static inline struct bkey_i_alloc_v4 *bch2_alloc_to_v4_mut_inlined(struct btree_trans *trans, struct bkey_s_c k) 438 { 439 struct bkey_s_c_alloc_v4 a; 440 441 if (likely(k.k->type == KEY_TYPE_alloc_v4) && 442 ((a = bkey_s_c_to_alloc_v4(k), true) && 443 BCH_ALLOC_V4_NR_BACKPOINTERS(a.v) == 0)) 444 return bch2_bkey_make_mut_noupdate_typed(trans, k, alloc_v4); 445 446 return __bch2_alloc_to_v4_mut(trans, k); 447 } 448 449 struct bkey_i_alloc_v4 *bch2_alloc_to_v4_mut(struct btree_trans *trans, struct bkey_s_c k) 450 { 451 return bch2_alloc_to_v4_mut_inlined(trans, k); 452 } 453 454 struct bkey_i_alloc_v4 * 455 bch2_trans_start_alloc_update_noupdate(struct btree_trans *trans, struct btree_iter *iter, 456 struct bpos pos) 457 { 458 struct bkey_s_c k = bch2_bkey_get_iter(trans, iter, BTREE_ID_alloc, pos, 459 BTREE_ITER_with_updates| 460 BTREE_ITER_cached| 461 BTREE_ITER_intent); 462 int ret = bkey_err(k); 463 if (unlikely(ret)) 464 return ERR_PTR(ret); 465 466 struct bkey_i_alloc_v4 *a = bch2_alloc_to_v4_mut_inlined(trans, k); 467 ret = PTR_ERR_OR_ZERO(a); 468 if (unlikely(ret)) 469 goto err; 470 return a; 471 err: 472 bch2_trans_iter_exit(trans, iter); 473 return ERR_PTR(ret); 474 } 475 476 __flatten 477 struct bkey_i_alloc_v4 *bch2_trans_start_alloc_update(struct btree_trans *trans, struct bpos pos, 478 enum btree_iter_update_trigger_flags flags) 479 { 480 struct btree_iter iter; 481 struct bkey_i_alloc_v4 *a = bch2_trans_start_alloc_update_noupdate(trans, &iter, pos); 482 int ret = PTR_ERR_OR_ZERO(a); 483 if (ret) 484 return ERR_PTR(ret); 485 486 ret = bch2_trans_update(trans, &iter, &a->k_i, flags); 487 bch2_trans_iter_exit(trans, &iter); 488 return unlikely(ret) ? ERR_PTR(ret) : a; 489 } 490 491 static struct bpos alloc_gens_pos(struct bpos pos, unsigned *offset) 492 { 493 *offset = pos.offset & KEY_TYPE_BUCKET_GENS_MASK; 494 495 pos.offset >>= KEY_TYPE_BUCKET_GENS_BITS; 496 return pos; 497 } 498 499 static struct bpos bucket_gens_pos_to_alloc(struct bpos pos, unsigned offset) 500 { 501 pos.offset <<= KEY_TYPE_BUCKET_GENS_BITS; 502 pos.offset += offset; 503 return pos; 504 } 505 506 static unsigned alloc_gen(struct bkey_s_c k, unsigned offset) 507 { 508 return k.k->type == KEY_TYPE_bucket_gens 509 ? bkey_s_c_to_bucket_gens(k).v->gens[offset] 510 : 0; 511 } 512 513 int bch2_bucket_gens_validate(struct bch_fs *c, struct bkey_s_c k, 514 struct bkey_validate_context from) 515 { 516 int ret = 0; 517 518 bkey_fsck_err_on(bkey_val_bytes(k.k) != sizeof(struct bch_bucket_gens), 519 c, bucket_gens_val_size_bad, 520 "bad val size (%zu != %zu)", 521 bkey_val_bytes(k.k), sizeof(struct bch_bucket_gens)); 522 fsck_err: 523 return ret; 524 } 525 526 void bch2_bucket_gens_to_text(struct printbuf *out, struct bch_fs *c, struct bkey_s_c k) 527 { 528 struct bkey_s_c_bucket_gens g = bkey_s_c_to_bucket_gens(k); 529 unsigned i; 530 531 for (i = 0; i < ARRAY_SIZE(g.v->gens); i++) { 532 if (i) 533 prt_char(out, ' '); 534 prt_printf(out, "%u", g.v->gens[i]); 535 } 536 } 537 538 int bch2_bucket_gens_init(struct bch_fs *c) 539 { 540 struct btree_trans *trans = bch2_trans_get(c); 541 struct bkey_i_bucket_gens g; 542 bool have_bucket_gens_key = false; 543 int ret; 544 545 ret = for_each_btree_key(trans, iter, BTREE_ID_alloc, POS_MIN, 546 BTREE_ITER_prefetch, k, ({ 547 /* 548 * Not a fsck error because this is checked/repaired by 549 * bch2_check_alloc_key() which runs later: 550 */ 551 if (!bch2_dev_bucket_exists(c, k.k->p)) 552 continue; 553 554 struct bch_alloc_v4 a; 555 u8 gen = bch2_alloc_to_v4(k, &a)->gen; 556 unsigned offset; 557 struct bpos pos = alloc_gens_pos(iter.pos, &offset); 558 int ret2 = 0; 559 560 if (have_bucket_gens_key && !bkey_eq(g.k.p, pos)) { 561 ret2 = bch2_btree_insert_trans(trans, BTREE_ID_bucket_gens, &g.k_i, 0) ?: 562 bch2_trans_commit(trans, NULL, NULL, BCH_TRANS_COMMIT_no_enospc); 563 if (ret2) 564 goto iter_err; 565 have_bucket_gens_key = false; 566 } 567 568 if (!have_bucket_gens_key) { 569 bkey_bucket_gens_init(&g.k_i); 570 g.k.p = pos; 571 have_bucket_gens_key = true; 572 } 573 574 g.v.gens[offset] = gen; 575 iter_err: 576 ret2; 577 })); 578 579 if (have_bucket_gens_key && !ret) 580 ret = commit_do(trans, NULL, NULL, 581 BCH_TRANS_COMMIT_no_enospc, 582 bch2_btree_insert_trans(trans, BTREE_ID_bucket_gens, &g.k_i, 0)); 583 584 bch2_trans_put(trans); 585 586 bch_err_fn(c, ret); 587 return ret; 588 } 589 590 int bch2_alloc_read(struct bch_fs *c) 591 { 592 struct btree_trans *trans = bch2_trans_get(c); 593 struct bch_dev *ca = NULL; 594 int ret; 595 596 if (c->sb.version_upgrade_complete >= bcachefs_metadata_version_bucket_gens) { 597 ret = for_each_btree_key(trans, iter, BTREE_ID_bucket_gens, POS_MIN, 598 BTREE_ITER_prefetch, k, ({ 599 u64 start = bucket_gens_pos_to_alloc(k.k->p, 0).offset; 600 u64 end = bucket_gens_pos_to_alloc(bpos_nosnap_successor(k.k->p), 0).offset; 601 602 if (k.k->type != KEY_TYPE_bucket_gens) 603 continue; 604 605 ca = bch2_dev_iterate(c, ca, k.k->p.inode); 606 /* 607 * Not a fsck error because this is checked/repaired by 608 * bch2_check_alloc_key() which runs later: 609 */ 610 if (!ca) { 611 bch2_btree_iter_set_pos(&iter, POS(k.k->p.inode + 1, 0)); 612 continue; 613 } 614 615 const struct bch_bucket_gens *g = bkey_s_c_to_bucket_gens(k).v; 616 617 for (u64 b = max_t(u64, ca->mi.first_bucket, start); 618 b < min_t(u64, ca->mi.nbuckets, end); 619 b++) 620 *bucket_gen(ca, b) = g->gens[b & KEY_TYPE_BUCKET_GENS_MASK]; 621 0; 622 })); 623 } else { 624 ret = for_each_btree_key(trans, iter, BTREE_ID_alloc, POS_MIN, 625 BTREE_ITER_prefetch, k, ({ 626 ca = bch2_dev_iterate(c, ca, k.k->p.inode); 627 /* 628 * Not a fsck error because this is checked/repaired by 629 * bch2_check_alloc_key() which runs later: 630 */ 631 if (!ca) { 632 bch2_btree_iter_set_pos(&iter, POS(k.k->p.inode + 1, 0)); 633 continue; 634 } 635 636 if (k.k->p.offset < ca->mi.first_bucket) { 637 bch2_btree_iter_set_pos(&iter, POS(k.k->p.inode, ca->mi.first_bucket)); 638 continue; 639 } 640 641 if (k.k->p.offset >= ca->mi.nbuckets) { 642 bch2_btree_iter_set_pos(&iter, POS(k.k->p.inode + 1, 0)); 643 continue; 644 } 645 646 struct bch_alloc_v4 a; 647 *bucket_gen(ca, k.k->p.offset) = bch2_alloc_to_v4(k, &a)->gen; 648 0; 649 })); 650 } 651 652 bch2_dev_put(ca); 653 bch2_trans_put(trans); 654 655 bch_err_fn(c, ret); 656 return ret; 657 } 658 659 /* Free space/discard btree: */ 660 661 static int __need_discard_or_freespace_err(struct btree_trans *trans, 662 struct bkey_s_c alloc_k, 663 bool set, bool discard, bool repair) 664 { 665 struct bch_fs *c = trans->c; 666 enum bch_fsck_flags flags = FSCK_CAN_IGNORE|(repair ? FSCK_CAN_FIX : 0); 667 enum bch_sb_error_id err_id = discard 668 ? BCH_FSCK_ERR_need_discard_key_wrong 669 : BCH_FSCK_ERR_freespace_key_wrong; 670 enum btree_id btree = discard ? BTREE_ID_need_discard : BTREE_ID_freespace; 671 struct printbuf buf = PRINTBUF; 672 673 bch2_bkey_val_to_text(&buf, c, alloc_k); 674 675 int ret = __bch2_fsck_err(NULL, trans, flags, err_id, 676 "bucket incorrectly %sset in %s btree\n" 677 " %s", 678 set ? "" : "un", 679 bch2_btree_id_str(btree), 680 buf.buf); 681 if (ret == -BCH_ERR_fsck_ignore || 682 ret == -BCH_ERR_fsck_errors_not_fixed) 683 ret = 0; 684 685 printbuf_exit(&buf); 686 return ret; 687 } 688 689 #define need_discard_or_freespace_err(...) \ 690 fsck_err_wrap(__need_discard_or_freespace_err(__VA_ARGS__)) 691 692 #define need_discard_or_freespace_err_on(cond, ...) \ 693 (unlikely(cond) ? need_discard_or_freespace_err(__VA_ARGS__) : false) 694 695 static int bch2_bucket_do_index(struct btree_trans *trans, 696 struct bch_dev *ca, 697 struct bkey_s_c alloc_k, 698 const struct bch_alloc_v4 *a, 699 bool set) 700 { 701 enum btree_id btree; 702 struct bpos pos; 703 704 if (a->data_type != BCH_DATA_free && 705 a->data_type != BCH_DATA_need_discard) 706 return 0; 707 708 switch (a->data_type) { 709 case BCH_DATA_free: 710 btree = BTREE_ID_freespace; 711 pos = alloc_freespace_pos(alloc_k.k->p, *a); 712 break; 713 case BCH_DATA_need_discard: 714 btree = BTREE_ID_need_discard; 715 pos = alloc_k.k->p; 716 break; 717 default: 718 return 0; 719 } 720 721 struct btree_iter iter; 722 struct bkey_s_c old = bch2_bkey_get_iter(trans, &iter, btree, pos, BTREE_ITER_intent); 723 int ret = bkey_err(old); 724 if (ret) 725 return ret; 726 727 need_discard_or_freespace_err_on(ca->mi.freespace_initialized && 728 !old.k->type != set, 729 trans, alloc_k, set, 730 btree == BTREE_ID_need_discard, false); 731 732 ret = bch2_btree_bit_mod_iter(trans, &iter, set); 733 fsck_err: 734 bch2_trans_iter_exit(trans, &iter); 735 return ret; 736 } 737 738 static noinline int bch2_bucket_gen_update(struct btree_trans *trans, 739 struct bpos bucket, u8 gen) 740 { 741 struct btree_iter iter; 742 unsigned offset; 743 struct bpos pos = alloc_gens_pos(bucket, &offset); 744 struct bkey_i_bucket_gens *g; 745 struct bkey_s_c k; 746 int ret; 747 748 g = bch2_trans_kmalloc(trans, sizeof(*g)); 749 ret = PTR_ERR_OR_ZERO(g); 750 if (ret) 751 return ret; 752 753 k = bch2_bkey_get_iter(trans, &iter, BTREE_ID_bucket_gens, pos, 754 BTREE_ITER_intent| 755 BTREE_ITER_with_updates); 756 ret = bkey_err(k); 757 if (ret) 758 return ret; 759 760 if (k.k->type != KEY_TYPE_bucket_gens) { 761 bkey_bucket_gens_init(&g->k_i); 762 g->k.p = iter.pos; 763 } else { 764 bkey_reassemble(&g->k_i, k); 765 } 766 767 g->v.gens[offset] = gen; 768 769 ret = bch2_trans_update(trans, &iter, &g->k_i, 0); 770 bch2_trans_iter_exit(trans, &iter); 771 return ret; 772 } 773 774 static inline int bch2_dev_data_type_accounting_mod(struct btree_trans *trans, struct bch_dev *ca, 775 enum bch_data_type data_type, 776 s64 delta_buckets, 777 s64 delta_sectors, 778 s64 delta_fragmented, unsigned flags) 779 { 780 struct disk_accounting_pos acc = { 781 .type = BCH_DISK_ACCOUNTING_dev_data_type, 782 .dev_data_type.dev = ca->dev_idx, 783 .dev_data_type.data_type = data_type, 784 }; 785 s64 d[3] = { delta_buckets, delta_sectors, delta_fragmented }; 786 787 return bch2_disk_accounting_mod(trans, &acc, d, 3, flags & BTREE_TRIGGER_gc); 788 } 789 790 int bch2_alloc_key_to_dev_counters(struct btree_trans *trans, struct bch_dev *ca, 791 const struct bch_alloc_v4 *old, 792 const struct bch_alloc_v4 *new, 793 unsigned flags) 794 { 795 s64 old_sectors = bch2_bucket_sectors(*old); 796 s64 new_sectors = bch2_bucket_sectors(*new); 797 if (old->data_type != new->data_type) { 798 int ret = bch2_dev_data_type_accounting_mod(trans, ca, new->data_type, 799 1, new_sectors, bch2_bucket_sectors_fragmented(ca, *new), flags) ?: 800 bch2_dev_data_type_accounting_mod(trans, ca, old->data_type, 801 -1, -old_sectors, -bch2_bucket_sectors_fragmented(ca, *old), flags); 802 if (ret) 803 return ret; 804 } else if (old_sectors != new_sectors) { 805 int ret = bch2_dev_data_type_accounting_mod(trans, ca, new->data_type, 806 0, 807 new_sectors - old_sectors, 808 bch2_bucket_sectors_fragmented(ca, *new) - 809 bch2_bucket_sectors_fragmented(ca, *old), flags); 810 if (ret) 811 return ret; 812 } 813 814 s64 old_unstriped = bch2_bucket_sectors_unstriped(*old); 815 s64 new_unstriped = bch2_bucket_sectors_unstriped(*new); 816 if (old_unstriped != new_unstriped) { 817 int ret = bch2_dev_data_type_accounting_mod(trans, ca, BCH_DATA_unstriped, 818 !!new_unstriped - !!old_unstriped, 819 new_unstriped - old_unstriped, 820 0, 821 flags); 822 if (ret) 823 return ret; 824 } 825 826 return 0; 827 } 828 829 int bch2_trigger_alloc(struct btree_trans *trans, 830 enum btree_id btree, unsigned level, 831 struct bkey_s_c old, struct bkey_s new, 832 enum btree_iter_update_trigger_flags flags) 833 { 834 struct bch_fs *c = trans->c; 835 struct printbuf buf = PRINTBUF; 836 int ret = 0; 837 838 struct bch_dev *ca = bch2_dev_bucket_tryget(c, new.k->p); 839 if (!ca) 840 return -EIO; 841 842 struct bch_alloc_v4 old_a_convert; 843 const struct bch_alloc_v4 *old_a = bch2_alloc_to_v4(old, &old_a_convert); 844 845 struct bch_alloc_v4 *new_a; 846 if (likely(new.k->type == KEY_TYPE_alloc_v4)) { 847 new_a = bkey_s_to_alloc_v4(new).v; 848 } else { 849 BUG_ON(!(flags & (BTREE_TRIGGER_gc|BTREE_TRIGGER_check_repair))); 850 851 struct bkey_i_alloc_v4 *new_ka = bch2_alloc_to_v4_mut_inlined(trans, new.s_c); 852 ret = PTR_ERR_OR_ZERO(new_ka); 853 if (unlikely(ret)) 854 goto err; 855 new_a = &new_ka->v; 856 } 857 858 if (flags & BTREE_TRIGGER_transactional) { 859 alloc_data_type_set(new_a, new_a->data_type); 860 861 int is_empty_delta = (int) data_type_is_empty(new_a->data_type) - 862 (int) data_type_is_empty(old_a->data_type); 863 864 if (is_empty_delta < 0) { 865 new_a->io_time[READ] = bch2_current_io_time(c, READ); 866 new_a->io_time[WRITE]= bch2_current_io_time(c, WRITE); 867 SET_BCH_ALLOC_V4_NEED_INC_GEN(new_a, true); 868 SET_BCH_ALLOC_V4_NEED_DISCARD(new_a, true); 869 } 870 871 if (data_type_is_empty(new_a->data_type) && 872 BCH_ALLOC_V4_NEED_INC_GEN(new_a) && 873 !bch2_bucket_is_open_safe(c, new.k->p.inode, new.k->p.offset)) { 874 if (new_a->oldest_gen == new_a->gen && 875 !bch2_bucket_sectors_total(*new_a)) 876 new_a->oldest_gen++; 877 new_a->gen++; 878 SET_BCH_ALLOC_V4_NEED_INC_GEN(new_a, false); 879 alloc_data_type_set(new_a, new_a->data_type); 880 } 881 882 if (old_a->data_type != new_a->data_type || 883 (new_a->data_type == BCH_DATA_free && 884 alloc_freespace_genbits(*old_a) != alloc_freespace_genbits(*new_a))) { 885 ret = bch2_bucket_do_index(trans, ca, old, old_a, false) ?: 886 bch2_bucket_do_index(trans, ca, new.s_c, new_a, true); 887 if (ret) 888 goto err; 889 } 890 891 if (new_a->data_type == BCH_DATA_cached && 892 !new_a->io_time[READ]) 893 new_a->io_time[READ] = bch2_current_io_time(c, READ); 894 895 ret = bch2_lru_change(trans, new.k->p.inode, 896 bucket_to_u64(new.k->p), 897 alloc_lru_idx_read(*old_a), 898 alloc_lru_idx_read(*new_a)); 899 if (ret) 900 goto err; 901 902 ret = bch2_lru_change(trans, 903 BCH_LRU_BUCKET_FRAGMENTATION, 904 bucket_to_u64(new.k->p), 905 alloc_lru_idx_fragmentation(*old_a, ca), 906 alloc_lru_idx_fragmentation(*new_a, ca)); 907 if (ret) 908 goto err; 909 910 if (old_a->gen != new_a->gen) { 911 ret = bch2_bucket_gen_update(trans, new.k->p, new_a->gen); 912 if (ret) 913 goto err; 914 } 915 916 if ((flags & BTREE_TRIGGER_bucket_invalidate) && 917 old_a->cached_sectors) { 918 ret = bch2_mod_dev_cached_sectors(trans, ca->dev_idx, 919 -((s64) old_a->cached_sectors), 920 flags & BTREE_TRIGGER_gc); 921 if (ret) 922 goto err; 923 } 924 925 ret = bch2_alloc_key_to_dev_counters(trans, ca, old_a, new_a, flags); 926 if (ret) 927 goto err; 928 } 929 930 if ((flags & BTREE_TRIGGER_atomic) && (flags & BTREE_TRIGGER_insert)) { 931 u64 transaction_seq = trans->journal_res.seq; 932 BUG_ON(!transaction_seq); 933 934 if (log_fsck_err_on(transaction_seq && new_a->journal_seq_nonempty > transaction_seq, 935 trans, alloc_key_journal_seq_in_future, 936 "bucket journal seq in future (currently at %llu)\n%s", 937 journal_cur_seq(&c->journal), 938 (bch2_bkey_val_to_text(&buf, c, new.s_c), buf.buf))) 939 new_a->journal_seq_nonempty = transaction_seq; 940 941 int is_empty_delta = (int) data_type_is_empty(new_a->data_type) - 942 (int) data_type_is_empty(old_a->data_type); 943 944 /* 945 * Record journal sequence number of empty -> nonempty transition: 946 * Note that there may be multiple empty -> nonempty 947 * transitions, data in a bucket may be overwritten while we're 948 * still writing to it - so be careful to only record the first: 949 * */ 950 if (is_empty_delta < 0 && 951 new_a->journal_seq_empty <= c->journal.flushed_seq_ondisk) { 952 new_a->journal_seq_nonempty = transaction_seq; 953 new_a->journal_seq_empty = 0; 954 } 955 956 /* 957 * Bucket becomes empty: mark it as waiting for a journal flush, 958 * unless updates since empty -> nonempty transition were never 959 * flushed - we may need to ask the journal not to flush 960 * intermediate sequence numbers: 961 */ 962 if (is_empty_delta > 0) { 963 if (new_a->journal_seq_nonempty == transaction_seq || 964 bch2_journal_noflush_seq(&c->journal, 965 new_a->journal_seq_nonempty, 966 transaction_seq)) { 967 new_a->journal_seq_nonempty = new_a->journal_seq_empty = 0; 968 } else { 969 new_a->journal_seq_empty = transaction_seq; 970 971 ret = bch2_set_bucket_needs_journal_commit(&c->buckets_waiting_for_journal, 972 c->journal.flushed_seq_ondisk, 973 new.k->p.inode, new.k->p.offset, 974 transaction_seq); 975 if (bch2_fs_fatal_err_on(ret, c, 976 "setting bucket_needs_journal_commit: %s", 977 bch2_err_str(ret))) 978 goto err; 979 } 980 } 981 982 if (new_a->gen != old_a->gen) { 983 rcu_read_lock(); 984 u8 *gen = bucket_gen(ca, new.k->p.offset); 985 if (unlikely(!gen)) { 986 rcu_read_unlock(); 987 goto invalid_bucket; 988 } 989 *gen = new_a->gen; 990 rcu_read_unlock(); 991 } 992 993 #define eval_state(_a, expr) ({ const struct bch_alloc_v4 *a = _a; expr; }) 994 #define statechange(expr) !eval_state(old_a, expr) && eval_state(new_a, expr) 995 #define bucket_flushed(a) (a->journal_seq_empty <= c->journal.flushed_seq_ondisk) 996 997 if (statechange(a->data_type == BCH_DATA_free) && 998 bucket_flushed(new_a)) 999 closure_wake_up(&c->freelist_wait); 1000 1001 if (statechange(a->data_type == BCH_DATA_need_discard) && 1002 !bch2_bucket_is_open_safe(c, new.k->p.inode, new.k->p.offset) && 1003 bucket_flushed(new_a)) 1004 bch2_discard_one_bucket_fast(ca, new.k->p.offset); 1005 1006 if (statechange(a->data_type == BCH_DATA_cached) && 1007 !bch2_bucket_is_open(c, new.k->p.inode, new.k->p.offset) && 1008 should_invalidate_buckets(ca, bch2_dev_usage_read(ca))) 1009 bch2_dev_do_invalidates(ca); 1010 1011 if (statechange(a->data_type == BCH_DATA_need_gc_gens)) 1012 bch2_gc_gens_async(c); 1013 } 1014 1015 if ((flags & BTREE_TRIGGER_gc) && (flags & BTREE_TRIGGER_insert)) { 1016 rcu_read_lock(); 1017 struct bucket *g = gc_bucket(ca, new.k->p.offset); 1018 if (unlikely(!g)) { 1019 rcu_read_unlock(); 1020 goto invalid_bucket; 1021 } 1022 g->gen_valid = 1; 1023 g->gen = new_a->gen; 1024 rcu_read_unlock(); 1025 } 1026 err: 1027 fsck_err: 1028 printbuf_exit(&buf); 1029 bch2_dev_put(ca); 1030 return ret; 1031 invalid_bucket: 1032 bch2_fs_inconsistent(c, "reference to invalid bucket\n %s", 1033 (bch2_bkey_val_to_text(&buf, c, new.s_c), buf.buf)); 1034 ret = -EIO; 1035 goto err; 1036 } 1037 1038 /* 1039 * This synthesizes deleted extents for holes, similar to BTREE_ITER_slots for 1040 * extents style btrees, but works on non-extents btrees: 1041 */ 1042 static struct bkey_s_c bch2_get_key_or_hole(struct btree_iter *iter, struct bpos end, struct bkey *hole) 1043 { 1044 struct bkey_s_c k = bch2_btree_iter_peek_slot(iter); 1045 1046 if (bkey_err(k)) 1047 return k; 1048 1049 if (k.k->type) { 1050 return k; 1051 } else { 1052 struct btree_iter iter2; 1053 struct bpos next; 1054 1055 bch2_trans_copy_iter(&iter2, iter); 1056 1057 struct btree_path *path = btree_iter_path(iter->trans, iter); 1058 if (!bpos_eq(path->l[0].b->key.k.p, SPOS_MAX)) 1059 end = bkey_min(end, bpos_nosnap_successor(path->l[0].b->key.k.p)); 1060 1061 end = bkey_min(end, POS(iter->pos.inode, iter->pos.offset + U32_MAX - 1)); 1062 1063 /* 1064 * btree node min/max is a closed interval, upto takes a half 1065 * open interval: 1066 */ 1067 k = bch2_btree_iter_peek_max(&iter2, end); 1068 next = iter2.pos; 1069 bch2_trans_iter_exit(iter->trans, &iter2); 1070 1071 BUG_ON(next.offset >= iter->pos.offset + U32_MAX); 1072 1073 if (bkey_err(k)) 1074 return k; 1075 1076 bkey_init(hole); 1077 hole->p = iter->pos; 1078 1079 bch2_key_resize(hole, next.offset - iter->pos.offset); 1080 return (struct bkey_s_c) { hole, NULL }; 1081 } 1082 } 1083 1084 static bool next_bucket(struct bch_fs *c, struct bch_dev **ca, struct bpos *bucket) 1085 { 1086 if (*ca) { 1087 if (bucket->offset < (*ca)->mi.first_bucket) 1088 bucket->offset = (*ca)->mi.first_bucket; 1089 1090 if (bucket->offset < (*ca)->mi.nbuckets) 1091 return true; 1092 1093 bch2_dev_put(*ca); 1094 *ca = NULL; 1095 bucket->inode++; 1096 bucket->offset = 0; 1097 } 1098 1099 rcu_read_lock(); 1100 *ca = __bch2_next_dev_idx(c, bucket->inode, NULL); 1101 if (*ca) { 1102 *bucket = POS((*ca)->dev_idx, (*ca)->mi.first_bucket); 1103 bch2_dev_get(*ca); 1104 } 1105 rcu_read_unlock(); 1106 1107 return *ca != NULL; 1108 } 1109 1110 static struct bkey_s_c bch2_get_key_or_real_bucket_hole(struct btree_iter *iter, 1111 struct bch_dev **ca, struct bkey *hole) 1112 { 1113 struct bch_fs *c = iter->trans->c; 1114 struct bkey_s_c k; 1115 again: 1116 k = bch2_get_key_or_hole(iter, POS_MAX, hole); 1117 if (bkey_err(k)) 1118 return k; 1119 1120 *ca = bch2_dev_iterate_noerror(c, *ca, k.k->p.inode); 1121 1122 if (!k.k->type) { 1123 struct bpos hole_start = bkey_start_pos(k.k); 1124 1125 if (!*ca || !bucket_valid(*ca, hole_start.offset)) { 1126 if (!next_bucket(c, ca, &hole_start)) 1127 return bkey_s_c_null; 1128 1129 bch2_btree_iter_set_pos(iter, hole_start); 1130 goto again; 1131 } 1132 1133 if (k.k->p.offset > (*ca)->mi.nbuckets) 1134 bch2_key_resize(hole, (*ca)->mi.nbuckets - hole_start.offset); 1135 } 1136 1137 return k; 1138 } 1139 1140 static noinline_for_stack 1141 int bch2_check_alloc_key(struct btree_trans *trans, 1142 struct bkey_s_c alloc_k, 1143 struct btree_iter *alloc_iter, 1144 struct btree_iter *discard_iter, 1145 struct btree_iter *freespace_iter, 1146 struct btree_iter *bucket_gens_iter) 1147 { 1148 struct bch_fs *c = trans->c; 1149 struct bch_alloc_v4 a_convert; 1150 const struct bch_alloc_v4 *a; 1151 unsigned gens_offset; 1152 struct bkey_s_c k; 1153 struct printbuf buf = PRINTBUF; 1154 int ret = 0; 1155 1156 struct bch_dev *ca = bch2_dev_bucket_tryget_noerror(c, alloc_k.k->p); 1157 if (fsck_err_on(!ca, 1158 trans, alloc_key_to_missing_dev_bucket, 1159 "alloc key for invalid device:bucket %llu:%llu", 1160 alloc_k.k->p.inode, alloc_k.k->p.offset)) 1161 ret = bch2_btree_delete_at(trans, alloc_iter, 0); 1162 if (!ca) 1163 return ret; 1164 1165 if (!ca->mi.freespace_initialized) 1166 goto out; 1167 1168 a = bch2_alloc_to_v4(alloc_k, &a_convert); 1169 1170 bch2_btree_iter_set_pos(discard_iter, alloc_k.k->p); 1171 k = bch2_btree_iter_peek_slot(discard_iter); 1172 ret = bkey_err(k); 1173 if (ret) 1174 goto err; 1175 1176 bool is_discarded = a->data_type == BCH_DATA_need_discard; 1177 if (need_discard_or_freespace_err_on(!!k.k->type != is_discarded, 1178 trans, alloc_k, !is_discarded, true, true)) { 1179 ret = bch2_btree_bit_mod_iter(trans, discard_iter, is_discarded); 1180 if (ret) 1181 goto err; 1182 } 1183 1184 bch2_btree_iter_set_pos(freespace_iter, alloc_freespace_pos(alloc_k.k->p, *a)); 1185 k = bch2_btree_iter_peek_slot(freespace_iter); 1186 ret = bkey_err(k); 1187 if (ret) 1188 goto err; 1189 1190 bool is_free = a->data_type == BCH_DATA_free; 1191 if (need_discard_or_freespace_err_on(!!k.k->type != is_free, 1192 trans, alloc_k, !is_free, false, true)) { 1193 ret = bch2_btree_bit_mod_iter(trans, freespace_iter, is_free); 1194 if (ret) 1195 goto err; 1196 } 1197 1198 bch2_btree_iter_set_pos(bucket_gens_iter, alloc_gens_pos(alloc_k.k->p, &gens_offset)); 1199 k = bch2_btree_iter_peek_slot(bucket_gens_iter); 1200 ret = bkey_err(k); 1201 if (ret) 1202 goto err; 1203 1204 if (fsck_err_on(a->gen != alloc_gen(k, gens_offset), 1205 trans, bucket_gens_key_wrong, 1206 "incorrect gen in bucket_gens btree (got %u should be %u)\n" 1207 " %s", 1208 alloc_gen(k, gens_offset), a->gen, 1209 (printbuf_reset(&buf), 1210 bch2_bkey_val_to_text(&buf, c, alloc_k), buf.buf))) { 1211 struct bkey_i_bucket_gens *g = 1212 bch2_trans_kmalloc(trans, sizeof(*g)); 1213 1214 ret = PTR_ERR_OR_ZERO(g); 1215 if (ret) 1216 goto err; 1217 1218 if (k.k->type == KEY_TYPE_bucket_gens) { 1219 bkey_reassemble(&g->k_i, k); 1220 } else { 1221 bkey_bucket_gens_init(&g->k_i); 1222 g->k.p = alloc_gens_pos(alloc_k.k->p, &gens_offset); 1223 } 1224 1225 g->v.gens[gens_offset] = a->gen; 1226 1227 ret = bch2_trans_update(trans, bucket_gens_iter, &g->k_i, 0); 1228 if (ret) 1229 goto err; 1230 } 1231 out: 1232 err: 1233 fsck_err: 1234 bch2_dev_put(ca); 1235 printbuf_exit(&buf); 1236 return ret; 1237 } 1238 1239 static noinline_for_stack 1240 int bch2_check_alloc_hole_freespace(struct btree_trans *trans, 1241 struct bch_dev *ca, 1242 struct bpos start, 1243 struct bpos *end, 1244 struct btree_iter *freespace_iter) 1245 { 1246 struct bkey_s_c k; 1247 struct printbuf buf = PRINTBUF; 1248 int ret; 1249 1250 if (!ca->mi.freespace_initialized) 1251 return 0; 1252 1253 bch2_btree_iter_set_pos(freespace_iter, start); 1254 1255 k = bch2_btree_iter_peek_slot(freespace_iter); 1256 ret = bkey_err(k); 1257 if (ret) 1258 goto err; 1259 1260 *end = bkey_min(k.k->p, *end); 1261 1262 if (fsck_err_on(k.k->type != KEY_TYPE_set, 1263 trans, freespace_hole_missing, 1264 "hole in alloc btree missing in freespace btree\n" 1265 " device %llu buckets %llu-%llu", 1266 freespace_iter->pos.inode, 1267 freespace_iter->pos.offset, 1268 end->offset)) { 1269 struct bkey_i *update = 1270 bch2_trans_kmalloc(trans, sizeof(*update)); 1271 1272 ret = PTR_ERR_OR_ZERO(update); 1273 if (ret) 1274 goto err; 1275 1276 bkey_init(&update->k); 1277 update->k.type = KEY_TYPE_set; 1278 update->k.p = freespace_iter->pos; 1279 bch2_key_resize(&update->k, 1280 min_t(u64, U32_MAX, end->offset - 1281 freespace_iter->pos.offset)); 1282 1283 ret = bch2_trans_update(trans, freespace_iter, update, 0); 1284 if (ret) 1285 goto err; 1286 } 1287 err: 1288 fsck_err: 1289 printbuf_exit(&buf); 1290 return ret; 1291 } 1292 1293 static noinline_for_stack 1294 int bch2_check_alloc_hole_bucket_gens(struct btree_trans *trans, 1295 struct bpos start, 1296 struct bpos *end, 1297 struct btree_iter *bucket_gens_iter) 1298 { 1299 struct bkey_s_c k; 1300 struct printbuf buf = PRINTBUF; 1301 unsigned i, gens_offset, gens_end_offset; 1302 int ret; 1303 1304 bch2_btree_iter_set_pos(bucket_gens_iter, alloc_gens_pos(start, &gens_offset)); 1305 1306 k = bch2_btree_iter_peek_slot(bucket_gens_iter); 1307 ret = bkey_err(k); 1308 if (ret) 1309 goto err; 1310 1311 if (bkey_cmp(alloc_gens_pos(start, &gens_offset), 1312 alloc_gens_pos(*end, &gens_end_offset))) 1313 gens_end_offset = KEY_TYPE_BUCKET_GENS_NR; 1314 1315 if (k.k->type == KEY_TYPE_bucket_gens) { 1316 struct bkey_i_bucket_gens g; 1317 bool need_update = false; 1318 1319 bkey_reassemble(&g.k_i, k); 1320 1321 for (i = gens_offset; i < gens_end_offset; i++) { 1322 if (fsck_err_on(g.v.gens[i], trans, 1323 bucket_gens_hole_wrong, 1324 "hole in alloc btree at %llu:%llu with nonzero gen in bucket_gens btree (%u)", 1325 bucket_gens_pos_to_alloc(k.k->p, i).inode, 1326 bucket_gens_pos_to_alloc(k.k->p, i).offset, 1327 g.v.gens[i])) { 1328 g.v.gens[i] = 0; 1329 need_update = true; 1330 } 1331 } 1332 1333 if (need_update) { 1334 struct bkey_i *u = bch2_trans_kmalloc(trans, sizeof(g)); 1335 1336 ret = PTR_ERR_OR_ZERO(u); 1337 if (ret) 1338 goto err; 1339 1340 memcpy(u, &g, sizeof(g)); 1341 1342 ret = bch2_trans_update(trans, bucket_gens_iter, u, 0); 1343 if (ret) 1344 goto err; 1345 } 1346 } 1347 1348 *end = bkey_min(*end, bucket_gens_pos_to_alloc(bpos_nosnap_successor(k.k->p), 0)); 1349 err: 1350 fsck_err: 1351 printbuf_exit(&buf); 1352 return ret; 1353 } 1354 1355 struct check_discard_freespace_key_async { 1356 struct work_struct work; 1357 struct bch_fs *c; 1358 struct bbpos pos; 1359 }; 1360 1361 static int bch2_recheck_discard_freespace_key(struct btree_trans *trans, struct bbpos pos) 1362 { 1363 struct btree_iter iter; 1364 struct bkey_s_c k = bch2_bkey_get_iter(trans, &iter, pos.btree, pos.pos, 0); 1365 int ret = bkey_err(k); 1366 if (ret) 1367 return ret; 1368 1369 u8 gen; 1370 ret = k.k->type != KEY_TYPE_set 1371 ? bch2_check_discard_freespace_key(trans, &iter, &gen, false) 1372 : 0; 1373 bch2_trans_iter_exit(trans, &iter); 1374 return ret; 1375 } 1376 1377 static void check_discard_freespace_key_work(struct work_struct *work) 1378 { 1379 struct check_discard_freespace_key_async *w = 1380 container_of(work, struct check_discard_freespace_key_async, work); 1381 1382 bch2_trans_do(w->c, bch2_recheck_discard_freespace_key(trans, w->pos)); 1383 bch2_write_ref_put(w->c, BCH_WRITE_REF_check_discard_freespace_key); 1384 kfree(w); 1385 } 1386 1387 int bch2_check_discard_freespace_key(struct btree_trans *trans, struct btree_iter *iter, u8 *gen, 1388 bool async_repair) 1389 { 1390 struct bch_fs *c = trans->c; 1391 enum bch_data_type state = iter->btree_id == BTREE_ID_need_discard 1392 ? BCH_DATA_need_discard 1393 : BCH_DATA_free; 1394 struct printbuf buf = PRINTBUF; 1395 1396 struct bpos bucket = iter->pos; 1397 bucket.offset &= ~(~0ULL << 56); 1398 u64 genbits = iter->pos.offset & (~0ULL << 56); 1399 1400 struct btree_iter alloc_iter; 1401 struct bkey_s_c alloc_k = bch2_bkey_get_iter(trans, &alloc_iter, 1402 BTREE_ID_alloc, bucket, 1403 async_repair ? BTREE_ITER_cached : 0); 1404 int ret = bkey_err(alloc_k); 1405 if (ret) 1406 return ret; 1407 1408 if (!bch2_dev_bucket_exists(c, bucket)) { 1409 if (fsck_err(trans, need_discard_freespace_key_to_invalid_dev_bucket, 1410 "entry in %s btree for nonexistant dev:bucket %llu:%llu", 1411 bch2_btree_id_str(iter->btree_id), bucket.inode, bucket.offset)) 1412 goto delete; 1413 ret = 1; 1414 goto out; 1415 } 1416 1417 struct bch_alloc_v4 a_convert; 1418 const struct bch_alloc_v4 *a = bch2_alloc_to_v4(alloc_k, &a_convert); 1419 1420 if (a->data_type != state || 1421 (state == BCH_DATA_free && 1422 genbits != alloc_freespace_genbits(*a))) { 1423 if (fsck_err(trans, need_discard_freespace_key_bad, 1424 "%s\n incorrectly set at %s:%llu:%llu:0 (free %u, genbits %llu should be %llu)", 1425 (bch2_bkey_val_to_text(&buf, c, alloc_k), buf.buf), 1426 bch2_btree_id_str(iter->btree_id), 1427 iter->pos.inode, 1428 iter->pos.offset, 1429 a->data_type == state, 1430 genbits >> 56, alloc_freespace_genbits(*a) >> 56)) 1431 goto delete; 1432 ret = 1; 1433 goto out; 1434 } 1435 1436 *gen = a->gen; 1437 out: 1438 fsck_err: 1439 bch2_set_btree_iter_dontneed(&alloc_iter); 1440 bch2_trans_iter_exit(trans, &alloc_iter); 1441 printbuf_exit(&buf); 1442 return ret; 1443 delete: 1444 if (!async_repair) { 1445 ret = bch2_btree_bit_mod_iter(trans, iter, false) ?: 1446 bch2_trans_commit(trans, NULL, NULL, 1447 BCH_TRANS_COMMIT_no_enospc) ?: 1448 -BCH_ERR_transaction_restart_commit; 1449 goto out; 1450 } else { 1451 /* 1452 * We can't repair here when called from the allocator path: the 1453 * commit will recurse back into the allocator 1454 */ 1455 struct check_discard_freespace_key_async *w = 1456 kzalloc(sizeof(*w), GFP_KERNEL); 1457 if (!w) 1458 goto out; 1459 1460 if (!bch2_write_ref_tryget(c, BCH_WRITE_REF_check_discard_freespace_key)) { 1461 kfree(w); 1462 goto out; 1463 } 1464 1465 INIT_WORK(&w->work, check_discard_freespace_key_work); 1466 w->c = c; 1467 w->pos = BBPOS(iter->btree_id, iter->pos); 1468 queue_work(c->write_ref_wq, &w->work); 1469 goto out; 1470 } 1471 } 1472 1473 static int bch2_check_discard_freespace_key_fsck(struct btree_trans *trans, struct btree_iter *iter) 1474 { 1475 u8 gen; 1476 int ret = bch2_check_discard_freespace_key(trans, iter, &gen, false); 1477 return ret < 0 ? ret : 0; 1478 } 1479 1480 /* 1481 * We've already checked that generation numbers in the bucket_gens btree are 1482 * valid for buckets that exist; this just checks for keys for nonexistent 1483 * buckets. 1484 */ 1485 static noinline_for_stack 1486 int bch2_check_bucket_gens_key(struct btree_trans *trans, 1487 struct btree_iter *iter, 1488 struct bkey_s_c k) 1489 { 1490 struct bch_fs *c = trans->c; 1491 struct bkey_i_bucket_gens g; 1492 u64 start = bucket_gens_pos_to_alloc(k.k->p, 0).offset; 1493 u64 end = bucket_gens_pos_to_alloc(bpos_nosnap_successor(k.k->p), 0).offset; 1494 u64 b; 1495 bool need_update = false; 1496 struct printbuf buf = PRINTBUF; 1497 int ret = 0; 1498 1499 BUG_ON(k.k->type != KEY_TYPE_bucket_gens); 1500 bkey_reassemble(&g.k_i, k); 1501 1502 struct bch_dev *ca = bch2_dev_tryget_noerror(c, k.k->p.inode); 1503 if (!ca) { 1504 if (fsck_err(trans, bucket_gens_to_invalid_dev, 1505 "bucket_gens key for invalid device:\n %s", 1506 (bch2_bkey_val_to_text(&buf, c, k), buf.buf))) 1507 ret = bch2_btree_delete_at(trans, iter, 0); 1508 goto out; 1509 } 1510 1511 if (fsck_err_on(end <= ca->mi.first_bucket || 1512 start >= ca->mi.nbuckets, 1513 trans, bucket_gens_to_invalid_buckets, 1514 "bucket_gens key for invalid buckets:\n %s", 1515 (bch2_bkey_val_to_text(&buf, c, k), buf.buf))) { 1516 ret = bch2_btree_delete_at(trans, iter, 0); 1517 goto out; 1518 } 1519 1520 for (b = start; b < ca->mi.first_bucket; b++) 1521 if (fsck_err_on(g.v.gens[b & KEY_TYPE_BUCKET_GENS_MASK], 1522 trans, bucket_gens_nonzero_for_invalid_buckets, 1523 "bucket_gens key has nonzero gen for invalid bucket")) { 1524 g.v.gens[b & KEY_TYPE_BUCKET_GENS_MASK] = 0; 1525 need_update = true; 1526 } 1527 1528 for (b = ca->mi.nbuckets; b < end; b++) 1529 if (fsck_err_on(g.v.gens[b & KEY_TYPE_BUCKET_GENS_MASK], 1530 trans, bucket_gens_nonzero_for_invalid_buckets, 1531 "bucket_gens key has nonzero gen for invalid bucket")) { 1532 g.v.gens[b & KEY_TYPE_BUCKET_GENS_MASK] = 0; 1533 need_update = true; 1534 } 1535 1536 if (need_update) { 1537 struct bkey_i *u = bch2_trans_kmalloc(trans, sizeof(g)); 1538 1539 ret = PTR_ERR_OR_ZERO(u); 1540 if (ret) 1541 goto out; 1542 1543 memcpy(u, &g, sizeof(g)); 1544 ret = bch2_trans_update(trans, iter, u, 0); 1545 } 1546 out: 1547 fsck_err: 1548 bch2_dev_put(ca); 1549 printbuf_exit(&buf); 1550 return ret; 1551 } 1552 1553 int bch2_check_alloc_info(struct bch_fs *c) 1554 { 1555 struct btree_trans *trans = bch2_trans_get(c); 1556 struct btree_iter iter, discard_iter, freespace_iter, bucket_gens_iter; 1557 struct bch_dev *ca = NULL; 1558 struct bkey hole; 1559 struct bkey_s_c k; 1560 int ret = 0; 1561 1562 bch2_trans_iter_init(trans, &iter, BTREE_ID_alloc, POS_MIN, 1563 BTREE_ITER_prefetch); 1564 bch2_trans_iter_init(trans, &discard_iter, BTREE_ID_need_discard, POS_MIN, 1565 BTREE_ITER_prefetch); 1566 bch2_trans_iter_init(trans, &freespace_iter, BTREE_ID_freespace, POS_MIN, 1567 BTREE_ITER_prefetch); 1568 bch2_trans_iter_init(trans, &bucket_gens_iter, BTREE_ID_bucket_gens, POS_MIN, 1569 BTREE_ITER_prefetch); 1570 1571 while (1) { 1572 struct bpos next; 1573 1574 bch2_trans_begin(trans); 1575 1576 k = bch2_get_key_or_real_bucket_hole(&iter, &ca, &hole); 1577 ret = bkey_err(k); 1578 if (ret) 1579 goto bkey_err; 1580 1581 if (!k.k) 1582 break; 1583 1584 if (k.k->type) { 1585 next = bpos_nosnap_successor(k.k->p); 1586 1587 ret = bch2_check_alloc_key(trans, 1588 k, &iter, 1589 &discard_iter, 1590 &freespace_iter, 1591 &bucket_gens_iter); 1592 if (ret) 1593 goto bkey_err; 1594 } else { 1595 next = k.k->p; 1596 1597 ret = bch2_check_alloc_hole_freespace(trans, ca, 1598 bkey_start_pos(k.k), 1599 &next, 1600 &freespace_iter) ?: 1601 bch2_check_alloc_hole_bucket_gens(trans, 1602 bkey_start_pos(k.k), 1603 &next, 1604 &bucket_gens_iter); 1605 if (ret) 1606 goto bkey_err; 1607 } 1608 1609 ret = bch2_trans_commit(trans, NULL, NULL, 1610 BCH_TRANS_COMMIT_no_enospc); 1611 if (ret) 1612 goto bkey_err; 1613 1614 bch2_btree_iter_set_pos(&iter, next); 1615 bkey_err: 1616 if (bch2_err_matches(ret, BCH_ERR_transaction_restart)) 1617 continue; 1618 if (ret) 1619 break; 1620 } 1621 bch2_trans_iter_exit(trans, &bucket_gens_iter); 1622 bch2_trans_iter_exit(trans, &freespace_iter); 1623 bch2_trans_iter_exit(trans, &discard_iter); 1624 bch2_trans_iter_exit(trans, &iter); 1625 bch2_dev_put(ca); 1626 ca = NULL; 1627 1628 if (ret < 0) 1629 goto err; 1630 1631 ret = for_each_btree_key(trans, iter, 1632 BTREE_ID_need_discard, POS_MIN, 1633 BTREE_ITER_prefetch, k, 1634 bch2_check_discard_freespace_key_fsck(trans, &iter)); 1635 if (ret) 1636 goto err; 1637 1638 bch2_trans_iter_init(trans, &iter, BTREE_ID_freespace, POS_MIN, 1639 BTREE_ITER_prefetch); 1640 while (1) { 1641 bch2_trans_begin(trans); 1642 k = bch2_btree_iter_peek(&iter); 1643 if (!k.k) 1644 break; 1645 1646 ret = bkey_err(k) ?: 1647 bch2_check_discard_freespace_key_fsck(trans, &iter); 1648 if (bch2_err_matches(ret, BCH_ERR_transaction_restart)) { 1649 ret = 0; 1650 continue; 1651 } 1652 if (ret) { 1653 struct printbuf buf = PRINTBUF; 1654 bch2_bkey_val_to_text(&buf, c, k); 1655 1656 bch_err(c, "while checking %s", buf.buf); 1657 printbuf_exit(&buf); 1658 break; 1659 } 1660 1661 bch2_btree_iter_set_pos(&iter, bpos_nosnap_successor(iter.pos)); 1662 } 1663 bch2_trans_iter_exit(trans, &iter); 1664 if (ret) 1665 goto err; 1666 1667 ret = for_each_btree_key_commit(trans, iter, 1668 BTREE_ID_bucket_gens, POS_MIN, 1669 BTREE_ITER_prefetch, k, 1670 NULL, NULL, BCH_TRANS_COMMIT_no_enospc, 1671 bch2_check_bucket_gens_key(trans, &iter, k)); 1672 err: 1673 bch2_trans_put(trans); 1674 bch_err_fn(c, ret); 1675 return ret; 1676 } 1677 1678 static int bch2_check_alloc_to_lru_ref(struct btree_trans *trans, 1679 struct btree_iter *alloc_iter, 1680 struct bkey_buf *last_flushed) 1681 { 1682 struct bch_fs *c = trans->c; 1683 struct bch_alloc_v4 a_convert; 1684 const struct bch_alloc_v4 *a; 1685 struct bkey_s_c alloc_k; 1686 struct printbuf buf = PRINTBUF; 1687 int ret; 1688 1689 alloc_k = bch2_btree_iter_peek(alloc_iter); 1690 if (!alloc_k.k) 1691 return 0; 1692 1693 ret = bkey_err(alloc_k); 1694 if (ret) 1695 return ret; 1696 1697 struct bch_dev *ca = bch2_dev_tryget_noerror(c, alloc_k.k->p.inode); 1698 if (!ca) 1699 return 0; 1700 1701 a = bch2_alloc_to_v4(alloc_k, &a_convert); 1702 1703 u64 lru_idx = alloc_lru_idx_fragmentation(*a, ca); 1704 if (lru_idx) { 1705 ret = bch2_lru_check_set(trans, BCH_LRU_BUCKET_FRAGMENTATION, 1706 bucket_to_u64(alloc_k.k->p), 1707 lru_idx, alloc_k, last_flushed); 1708 if (ret) 1709 goto err; 1710 } 1711 1712 if (a->data_type != BCH_DATA_cached) 1713 goto err; 1714 1715 if (fsck_err_on(!a->io_time[READ], 1716 trans, alloc_key_cached_but_read_time_zero, 1717 "cached bucket with read_time 0\n" 1718 " %s", 1719 (printbuf_reset(&buf), 1720 bch2_bkey_val_to_text(&buf, c, alloc_k), buf.buf))) { 1721 struct bkey_i_alloc_v4 *a_mut = 1722 bch2_alloc_to_v4_mut(trans, alloc_k); 1723 ret = PTR_ERR_OR_ZERO(a_mut); 1724 if (ret) 1725 goto err; 1726 1727 a_mut->v.io_time[READ] = bch2_current_io_time(c, READ); 1728 ret = bch2_trans_update(trans, alloc_iter, 1729 &a_mut->k_i, BTREE_TRIGGER_norun); 1730 if (ret) 1731 goto err; 1732 1733 a = &a_mut->v; 1734 } 1735 1736 ret = bch2_lru_check_set(trans, alloc_k.k->p.inode, 1737 bucket_to_u64(alloc_k.k->p), 1738 a->io_time[READ], 1739 alloc_k, last_flushed); 1740 if (ret) 1741 goto err; 1742 err: 1743 fsck_err: 1744 bch2_dev_put(ca); 1745 printbuf_exit(&buf); 1746 return ret; 1747 } 1748 1749 int bch2_check_alloc_to_lru_refs(struct bch_fs *c) 1750 { 1751 struct bkey_buf last_flushed; 1752 1753 bch2_bkey_buf_init(&last_flushed); 1754 bkey_init(&last_flushed.k->k); 1755 1756 int ret = bch2_trans_run(c, 1757 for_each_btree_key_commit(trans, iter, BTREE_ID_alloc, 1758 POS_MIN, BTREE_ITER_prefetch, k, 1759 NULL, NULL, BCH_TRANS_COMMIT_no_enospc, 1760 bch2_check_alloc_to_lru_ref(trans, &iter, &last_flushed))) ?: 1761 bch2_check_stripe_to_lru_refs(c); 1762 1763 bch2_bkey_buf_exit(&last_flushed, c); 1764 bch_err_fn(c, ret); 1765 return ret; 1766 } 1767 1768 static int discard_in_flight_add(struct bch_dev *ca, u64 bucket, bool in_progress) 1769 { 1770 int ret; 1771 1772 mutex_lock(&ca->discard_buckets_in_flight_lock); 1773 darray_for_each(ca->discard_buckets_in_flight, i) 1774 if (i->bucket == bucket) { 1775 ret = -BCH_ERR_EEXIST_discard_in_flight_add; 1776 goto out; 1777 } 1778 1779 ret = darray_push(&ca->discard_buckets_in_flight, ((struct discard_in_flight) { 1780 .in_progress = in_progress, 1781 .bucket = bucket, 1782 })); 1783 out: 1784 mutex_unlock(&ca->discard_buckets_in_flight_lock); 1785 return ret; 1786 } 1787 1788 static void discard_in_flight_remove(struct bch_dev *ca, u64 bucket) 1789 { 1790 mutex_lock(&ca->discard_buckets_in_flight_lock); 1791 darray_for_each(ca->discard_buckets_in_flight, i) 1792 if (i->bucket == bucket) { 1793 BUG_ON(!i->in_progress); 1794 darray_remove_item(&ca->discard_buckets_in_flight, i); 1795 goto found; 1796 } 1797 BUG(); 1798 found: 1799 mutex_unlock(&ca->discard_buckets_in_flight_lock); 1800 } 1801 1802 struct discard_buckets_state { 1803 u64 seen; 1804 u64 open; 1805 u64 need_journal_commit; 1806 u64 discarded; 1807 }; 1808 1809 static int bch2_discard_one_bucket(struct btree_trans *trans, 1810 struct bch_dev *ca, 1811 struct btree_iter *need_discard_iter, 1812 struct bpos *discard_pos_done, 1813 struct discard_buckets_state *s, 1814 bool fastpath) 1815 { 1816 struct bch_fs *c = trans->c; 1817 struct bpos pos = need_discard_iter->pos; 1818 struct btree_iter iter = { NULL }; 1819 struct bkey_s_c k; 1820 struct bkey_i_alloc_v4 *a; 1821 struct printbuf buf = PRINTBUF; 1822 bool discard_locked = false; 1823 int ret = 0; 1824 1825 if (bch2_bucket_is_open_safe(c, pos.inode, pos.offset)) { 1826 s->open++; 1827 goto out; 1828 } 1829 1830 u64 seq_ready = bch2_bucket_journal_seq_ready(&c->buckets_waiting_for_journal, 1831 pos.inode, pos.offset); 1832 if (seq_ready > c->journal.flushed_seq_ondisk) { 1833 if (seq_ready > c->journal.flushing_seq) 1834 s->need_journal_commit++; 1835 goto out; 1836 } 1837 1838 k = bch2_bkey_get_iter(trans, &iter, BTREE_ID_alloc, 1839 need_discard_iter->pos, 1840 BTREE_ITER_cached); 1841 ret = bkey_err(k); 1842 if (ret) 1843 goto out; 1844 1845 a = bch2_alloc_to_v4_mut(trans, k); 1846 ret = PTR_ERR_OR_ZERO(a); 1847 if (ret) 1848 goto out; 1849 1850 if (a->v.data_type != BCH_DATA_need_discard) { 1851 if (need_discard_or_freespace_err(trans, k, true, true, true)) { 1852 ret = bch2_btree_bit_mod_iter(trans, need_discard_iter, false); 1853 if (ret) 1854 goto out; 1855 goto commit; 1856 } 1857 1858 goto out; 1859 } 1860 1861 if (!fastpath) { 1862 if (discard_in_flight_add(ca, iter.pos.offset, true)) 1863 goto out; 1864 1865 discard_locked = true; 1866 } 1867 1868 if (!bkey_eq(*discard_pos_done, iter.pos)) { 1869 s->discarded++; 1870 *discard_pos_done = iter.pos; 1871 1872 if (ca->mi.discard && !c->opts.nochanges) { 1873 /* 1874 * This works without any other locks because this is the only 1875 * thread that removes items from the need_discard tree 1876 */ 1877 bch2_trans_unlock_long(trans); 1878 blkdev_issue_discard(ca->disk_sb.bdev, 1879 k.k->p.offset * ca->mi.bucket_size, 1880 ca->mi.bucket_size, 1881 GFP_KERNEL); 1882 ret = bch2_trans_relock_notrace(trans); 1883 if (ret) 1884 goto out; 1885 } 1886 } 1887 1888 SET_BCH_ALLOC_V4_NEED_DISCARD(&a->v, false); 1889 alloc_data_type_set(&a->v, a->v.data_type); 1890 1891 ret = bch2_trans_update(trans, &iter, &a->k_i, 0); 1892 if (ret) 1893 goto out; 1894 commit: 1895 ret = bch2_trans_commit(trans, NULL, NULL, 1896 BCH_WATERMARK_btree| 1897 BCH_TRANS_COMMIT_no_enospc); 1898 if (ret) 1899 goto out; 1900 1901 if (!fastpath) 1902 count_event(c, bucket_discard); 1903 else 1904 count_event(c, bucket_discard_fast); 1905 out: 1906 fsck_err: 1907 if (discard_locked) 1908 discard_in_flight_remove(ca, iter.pos.offset); 1909 if (!ret) 1910 s->seen++; 1911 bch2_trans_iter_exit(trans, &iter); 1912 printbuf_exit(&buf); 1913 return ret; 1914 } 1915 1916 static void bch2_do_discards_work(struct work_struct *work) 1917 { 1918 struct bch_dev *ca = container_of(work, struct bch_dev, discard_work); 1919 struct bch_fs *c = ca->fs; 1920 struct discard_buckets_state s = {}; 1921 struct bpos discard_pos_done = POS_MAX; 1922 int ret; 1923 1924 /* 1925 * We're doing the commit in bch2_discard_one_bucket instead of using 1926 * for_each_btree_key_commit() so that we can increment counters after 1927 * successful commit: 1928 */ 1929 ret = bch2_trans_run(c, 1930 for_each_btree_key_max(trans, iter, 1931 BTREE_ID_need_discard, 1932 POS(ca->dev_idx, 0), 1933 POS(ca->dev_idx, U64_MAX), 0, k, 1934 bch2_discard_one_bucket(trans, ca, &iter, &discard_pos_done, &s, false))); 1935 1936 if (s.need_journal_commit > dev_buckets_available(ca, BCH_WATERMARK_normal)) 1937 bch2_journal_flush_async(&c->journal, NULL); 1938 1939 trace_discard_buckets(c, s.seen, s.open, s.need_journal_commit, s.discarded, 1940 bch2_err_str(ret)); 1941 1942 percpu_ref_put(&ca->io_ref); 1943 bch2_write_ref_put(c, BCH_WRITE_REF_discard); 1944 } 1945 1946 void bch2_dev_do_discards(struct bch_dev *ca) 1947 { 1948 struct bch_fs *c = ca->fs; 1949 1950 if (!bch2_write_ref_tryget(c, BCH_WRITE_REF_discard)) 1951 return; 1952 1953 if (!bch2_dev_get_ioref(c, ca->dev_idx, WRITE)) 1954 goto put_write_ref; 1955 1956 if (queue_work(c->write_ref_wq, &ca->discard_work)) 1957 return; 1958 1959 percpu_ref_put(&ca->io_ref); 1960 put_write_ref: 1961 bch2_write_ref_put(c, BCH_WRITE_REF_discard); 1962 } 1963 1964 void bch2_do_discards(struct bch_fs *c) 1965 { 1966 for_each_member_device(c, ca) 1967 bch2_dev_do_discards(ca); 1968 } 1969 1970 static int bch2_do_discards_fast_one(struct btree_trans *trans, 1971 struct bch_dev *ca, 1972 u64 bucket, 1973 struct bpos *discard_pos_done, 1974 struct discard_buckets_state *s) 1975 { 1976 struct btree_iter need_discard_iter; 1977 struct bkey_s_c discard_k = bch2_bkey_get_iter(trans, &need_discard_iter, 1978 BTREE_ID_need_discard, POS(ca->dev_idx, bucket), 0); 1979 int ret = bkey_err(discard_k); 1980 if (ret) 1981 return ret; 1982 1983 if (log_fsck_err_on(discard_k.k->type != KEY_TYPE_set, 1984 trans, discarding_bucket_not_in_need_discard_btree, 1985 "attempting to discard bucket %u:%llu not in need_discard btree", 1986 ca->dev_idx, bucket)) 1987 goto out; 1988 1989 ret = bch2_discard_one_bucket(trans, ca, &need_discard_iter, discard_pos_done, s, true); 1990 out: 1991 fsck_err: 1992 bch2_trans_iter_exit(trans, &need_discard_iter); 1993 return ret; 1994 } 1995 1996 static void bch2_do_discards_fast_work(struct work_struct *work) 1997 { 1998 struct bch_dev *ca = container_of(work, struct bch_dev, discard_fast_work); 1999 struct bch_fs *c = ca->fs; 2000 struct discard_buckets_state s = {}; 2001 struct bpos discard_pos_done = POS_MAX; 2002 struct btree_trans *trans = bch2_trans_get(c); 2003 int ret = 0; 2004 2005 while (1) { 2006 bool got_bucket = false; 2007 u64 bucket; 2008 2009 mutex_lock(&ca->discard_buckets_in_flight_lock); 2010 darray_for_each(ca->discard_buckets_in_flight, i) { 2011 if (i->in_progress) 2012 continue; 2013 2014 got_bucket = true; 2015 bucket = i->bucket; 2016 i->in_progress = true; 2017 break; 2018 } 2019 mutex_unlock(&ca->discard_buckets_in_flight_lock); 2020 2021 if (!got_bucket) 2022 break; 2023 2024 ret = lockrestart_do(trans, 2025 bch2_do_discards_fast_one(trans, ca, bucket, &discard_pos_done, &s)); 2026 bch_err_fn(c, ret); 2027 2028 discard_in_flight_remove(ca, bucket); 2029 2030 if (ret) 2031 break; 2032 } 2033 2034 trace_discard_buckets_fast(c, s.seen, s.open, s.need_journal_commit, s.discarded, bch2_err_str(ret)); 2035 2036 bch2_trans_put(trans); 2037 percpu_ref_put(&ca->io_ref); 2038 bch2_write_ref_put(c, BCH_WRITE_REF_discard_fast); 2039 } 2040 2041 static void bch2_discard_one_bucket_fast(struct bch_dev *ca, u64 bucket) 2042 { 2043 struct bch_fs *c = ca->fs; 2044 2045 if (discard_in_flight_add(ca, bucket, false)) 2046 return; 2047 2048 if (!bch2_write_ref_tryget(c, BCH_WRITE_REF_discard_fast)) 2049 return; 2050 2051 if (!bch2_dev_get_ioref(c, ca->dev_idx, WRITE)) 2052 goto put_ref; 2053 2054 if (queue_work(c->write_ref_wq, &ca->discard_fast_work)) 2055 return; 2056 2057 percpu_ref_put(&ca->io_ref); 2058 put_ref: 2059 bch2_write_ref_put(c, BCH_WRITE_REF_discard_fast); 2060 } 2061 2062 static int invalidate_one_bp(struct btree_trans *trans, 2063 struct bch_dev *ca, 2064 struct bkey_s_c_backpointer bp, 2065 struct bkey_buf *last_flushed) 2066 { 2067 struct btree_iter extent_iter; 2068 struct bkey_s_c extent_k = 2069 bch2_backpointer_get_key(trans, bp, &extent_iter, 0, last_flushed); 2070 int ret = bkey_err(extent_k); 2071 if (ret) 2072 return ret; 2073 2074 struct bkey_i *n = 2075 bch2_bkey_make_mut(trans, &extent_iter, &extent_k, 2076 BTREE_UPDATE_internal_snapshot_node); 2077 ret = PTR_ERR_OR_ZERO(n); 2078 if (ret) 2079 goto err; 2080 2081 bch2_bkey_drop_device(bkey_i_to_s(n), ca->dev_idx); 2082 err: 2083 bch2_trans_iter_exit(trans, &extent_iter); 2084 return ret; 2085 } 2086 2087 static int invalidate_one_bucket_by_bps(struct btree_trans *trans, 2088 struct bch_dev *ca, 2089 struct bpos bucket, 2090 u8 gen, 2091 struct bkey_buf *last_flushed) 2092 { 2093 struct bpos bp_start = bucket_pos_to_bp_start(ca, bucket); 2094 struct bpos bp_end = bucket_pos_to_bp_end(ca, bucket); 2095 2096 return for_each_btree_key_max_commit(trans, iter, BTREE_ID_backpointers, 2097 bp_start, bp_end, 0, k, 2098 NULL, NULL, 2099 BCH_WATERMARK_btree| 2100 BCH_TRANS_COMMIT_no_enospc, ({ 2101 if (k.k->type != KEY_TYPE_backpointer) 2102 continue; 2103 2104 struct bkey_s_c_backpointer bp = bkey_s_c_to_backpointer(k); 2105 2106 if (bp.v->bucket_gen != gen) 2107 continue; 2108 2109 /* filter out bps with gens that don't match */ 2110 2111 invalidate_one_bp(trans, ca, bp, last_flushed); 2112 })); 2113 } 2114 2115 noinline_for_stack 2116 static int invalidate_one_bucket(struct btree_trans *trans, 2117 struct bch_dev *ca, 2118 struct btree_iter *lru_iter, 2119 struct bkey_s_c lru_k, 2120 struct bkey_buf *last_flushed, 2121 s64 *nr_to_invalidate) 2122 { 2123 struct bch_fs *c = trans->c; 2124 struct printbuf buf = PRINTBUF; 2125 struct bpos bucket = u64_to_bucket(lru_k.k->p.offset); 2126 struct btree_iter alloc_iter = {}; 2127 int ret = 0; 2128 2129 if (*nr_to_invalidate <= 0) 2130 return 1; 2131 2132 if (!bch2_dev_bucket_exists(c, bucket)) { 2133 if (fsck_err(trans, lru_entry_to_invalid_bucket, 2134 "lru key points to nonexistent device:bucket %llu:%llu", 2135 bucket.inode, bucket.offset)) 2136 return bch2_btree_bit_mod_buffered(trans, BTREE_ID_lru, lru_iter->pos, false); 2137 goto out; 2138 } 2139 2140 if (bch2_bucket_is_open_safe(c, bucket.inode, bucket.offset)) 2141 return 0; 2142 2143 struct bkey_s_c alloc_k = bch2_bkey_get_iter(trans, &alloc_iter, 2144 BTREE_ID_alloc, bucket, 2145 BTREE_ITER_cached); 2146 ret = bkey_err(alloc_k); 2147 if (ret) 2148 return ret; 2149 2150 struct bch_alloc_v4 a_convert; 2151 const struct bch_alloc_v4 *a = bch2_alloc_to_v4(alloc_k, &a_convert); 2152 2153 /* We expect harmless races here due to the btree write buffer: */ 2154 if (lru_pos_time(lru_iter->pos) != alloc_lru_idx_read(*a)) 2155 goto out; 2156 2157 /* 2158 * Impossible since alloc_lru_idx_read() only returns nonzero if the 2159 * bucket is supposed to be on the cached bucket LRU (i.e. 2160 * BCH_DATA_cached) 2161 * 2162 * bch2_lru_validate() also disallows lru keys with lru_pos_time() == 0 2163 */ 2164 BUG_ON(a->data_type != BCH_DATA_cached); 2165 BUG_ON(a->dirty_sectors); 2166 2167 if (!a->cached_sectors) 2168 bch_err(c, "invalidating empty bucket, confused"); 2169 2170 unsigned cached_sectors = a->cached_sectors; 2171 u8 gen = a->gen; 2172 2173 ret = invalidate_one_bucket_by_bps(trans, ca, bucket, gen, last_flushed); 2174 if (ret) 2175 goto out; 2176 2177 trace_and_count(c, bucket_invalidate, c, bucket.inode, bucket.offset, cached_sectors); 2178 --*nr_to_invalidate; 2179 out: 2180 fsck_err: 2181 bch2_trans_iter_exit(trans, &alloc_iter); 2182 printbuf_exit(&buf); 2183 return ret; 2184 } 2185 2186 static struct bkey_s_c next_lru_key(struct btree_trans *trans, struct btree_iter *iter, 2187 struct bch_dev *ca, bool *wrapped) 2188 { 2189 struct bkey_s_c k; 2190 again: 2191 k = bch2_btree_iter_peek_max(iter, lru_pos(ca->dev_idx, U64_MAX, LRU_TIME_MAX)); 2192 if (!k.k && !*wrapped) { 2193 bch2_btree_iter_set_pos(iter, lru_pos(ca->dev_idx, 0, 0)); 2194 *wrapped = true; 2195 goto again; 2196 } 2197 2198 return k; 2199 } 2200 2201 static void bch2_do_invalidates_work(struct work_struct *work) 2202 { 2203 struct bch_dev *ca = container_of(work, struct bch_dev, invalidate_work); 2204 struct bch_fs *c = ca->fs; 2205 struct btree_trans *trans = bch2_trans_get(c); 2206 int ret = 0; 2207 2208 struct bkey_buf last_flushed; 2209 bch2_bkey_buf_init(&last_flushed); 2210 bkey_init(&last_flushed.k->k); 2211 2212 ret = bch2_btree_write_buffer_tryflush(trans); 2213 if (ret) 2214 goto err; 2215 2216 s64 nr_to_invalidate = 2217 should_invalidate_buckets(ca, bch2_dev_usage_read(ca)); 2218 struct btree_iter iter; 2219 bool wrapped = false; 2220 2221 bch2_trans_iter_init(trans, &iter, BTREE_ID_lru, 2222 lru_pos(ca->dev_idx, 0, 2223 ((bch2_current_io_time(c, READ) + U32_MAX) & 2224 LRU_TIME_MAX)), 0); 2225 2226 while (true) { 2227 bch2_trans_begin(trans); 2228 2229 struct bkey_s_c k = next_lru_key(trans, &iter, ca, &wrapped); 2230 ret = bkey_err(k); 2231 if (ret) 2232 goto restart_err; 2233 if (!k.k) 2234 break; 2235 2236 ret = invalidate_one_bucket(trans, ca, &iter, k, &last_flushed, &nr_to_invalidate); 2237 restart_err: 2238 if (bch2_err_matches(ret, BCH_ERR_transaction_restart)) 2239 continue; 2240 if (ret) 2241 break; 2242 2243 bch2_btree_iter_advance(&iter); 2244 } 2245 bch2_trans_iter_exit(trans, &iter); 2246 err: 2247 bch2_trans_put(trans); 2248 percpu_ref_put(&ca->io_ref); 2249 bch2_bkey_buf_exit(&last_flushed, c); 2250 bch2_write_ref_put(c, BCH_WRITE_REF_invalidate); 2251 } 2252 2253 void bch2_dev_do_invalidates(struct bch_dev *ca) 2254 { 2255 struct bch_fs *c = ca->fs; 2256 2257 if (!bch2_write_ref_tryget(c, BCH_WRITE_REF_invalidate)) 2258 return; 2259 2260 if (!bch2_dev_get_ioref(c, ca->dev_idx, WRITE)) 2261 goto put_ref; 2262 2263 if (queue_work(c->write_ref_wq, &ca->invalidate_work)) 2264 return; 2265 2266 percpu_ref_put(&ca->io_ref); 2267 put_ref: 2268 bch2_write_ref_put(c, BCH_WRITE_REF_invalidate); 2269 } 2270 2271 void bch2_do_invalidates(struct bch_fs *c) 2272 { 2273 for_each_member_device(c, ca) 2274 bch2_dev_do_invalidates(ca); 2275 } 2276 2277 int bch2_dev_freespace_init(struct bch_fs *c, struct bch_dev *ca, 2278 u64 bucket_start, u64 bucket_end) 2279 { 2280 struct btree_trans *trans = bch2_trans_get(c); 2281 struct btree_iter iter; 2282 struct bkey_s_c k; 2283 struct bkey hole; 2284 struct bpos end = POS(ca->dev_idx, bucket_end); 2285 struct bch_member *m; 2286 unsigned long last_updated = jiffies; 2287 int ret; 2288 2289 BUG_ON(bucket_start > bucket_end); 2290 BUG_ON(bucket_end > ca->mi.nbuckets); 2291 2292 bch2_trans_iter_init(trans, &iter, BTREE_ID_alloc, 2293 POS(ca->dev_idx, max_t(u64, ca->mi.first_bucket, bucket_start)), 2294 BTREE_ITER_prefetch); 2295 /* 2296 * Scan the alloc btree for every bucket on @ca, and add buckets to the 2297 * freespace/need_discard/need_gc_gens btrees as needed: 2298 */ 2299 while (1) { 2300 if (time_after(jiffies, last_updated + HZ * 10)) { 2301 bch_info(ca, "%s: currently at %llu/%llu", 2302 __func__, iter.pos.offset, ca->mi.nbuckets); 2303 last_updated = jiffies; 2304 } 2305 2306 bch2_trans_begin(trans); 2307 2308 if (bkey_ge(iter.pos, end)) { 2309 ret = 0; 2310 break; 2311 } 2312 2313 k = bch2_get_key_or_hole(&iter, end, &hole); 2314 ret = bkey_err(k); 2315 if (ret) 2316 goto bkey_err; 2317 2318 if (k.k->type) { 2319 /* 2320 * We process live keys in the alloc btree one at a 2321 * time: 2322 */ 2323 struct bch_alloc_v4 a_convert; 2324 const struct bch_alloc_v4 *a = bch2_alloc_to_v4(k, &a_convert); 2325 2326 ret = bch2_bucket_do_index(trans, ca, k, a, true) ?: 2327 bch2_trans_commit(trans, NULL, NULL, 2328 BCH_TRANS_COMMIT_no_enospc); 2329 if (ret) 2330 goto bkey_err; 2331 2332 bch2_btree_iter_advance(&iter); 2333 } else { 2334 struct bkey_i *freespace; 2335 2336 freespace = bch2_trans_kmalloc(trans, sizeof(*freespace)); 2337 ret = PTR_ERR_OR_ZERO(freespace); 2338 if (ret) 2339 goto bkey_err; 2340 2341 bkey_init(&freespace->k); 2342 freespace->k.type = KEY_TYPE_set; 2343 freespace->k.p = k.k->p; 2344 freespace->k.size = k.k->size; 2345 2346 ret = bch2_btree_insert_trans(trans, BTREE_ID_freespace, freespace, 0) ?: 2347 bch2_trans_commit(trans, NULL, NULL, 2348 BCH_TRANS_COMMIT_no_enospc); 2349 if (ret) 2350 goto bkey_err; 2351 2352 bch2_btree_iter_set_pos(&iter, k.k->p); 2353 } 2354 bkey_err: 2355 if (bch2_err_matches(ret, BCH_ERR_transaction_restart)) 2356 continue; 2357 if (ret) 2358 break; 2359 } 2360 2361 bch2_trans_iter_exit(trans, &iter); 2362 bch2_trans_put(trans); 2363 2364 if (ret < 0) { 2365 bch_err_msg(ca, ret, "initializing free space"); 2366 return ret; 2367 } 2368 2369 mutex_lock(&c->sb_lock); 2370 m = bch2_members_v2_get_mut(c->disk_sb.sb, ca->dev_idx); 2371 SET_BCH_MEMBER_FREESPACE_INITIALIZED(m, true); 2372 mutex_unlock(&c->sb_lock); 2373 2374 return 0; 2375 } 2376 2377 int bch2_fs_freespace_init(struct bch_fs *c) 2378 { 2379 int ret = 0; 2380 bool doing_init = false; 2381 2382 /* 2383 * We can crash during the device add path, so we need to check this on 2384 * every mount: 2385 */ 2386 2387 for_each_member_device(c, ca) { 2388 if (ca->mi.freespace_initialized) 2389 continue; 2390 2391 if (!doing_init) { 2392 bch_info(c, "initializing freespace"); 2393 doing_init = true; 2394 } 2395 2396 ret = bch2_dev_freespace_init(c, ca, 0, ca->mi.nbuckets); 2397 if (ret) { 2398 bch2_dev_put(ca); 2399 bch_err_fn(c, ret); 2400 return ret; 2401 } 2402 } 2403 2404 if (doing_init) { 2405 mutex_lock(&c->sb_lock); 2406 bch2_write_super(c); 2407 mutex_unlock(&c->sb_lock); 2408 bch_verbose(c, "done initializing freespace"); 2409 } 2410 2411 return 0; 2412 } 2413 2414 /* device removal */ 2415 2416 int bch2_dev_remove_alloc(struct bch_fs *c, struct bch_dev *ca) 2417 { 2418 struct bpos start = POS(ca->dev_idx, 0); 2419 struct bpos end = POS(ca->dev_idx, U64_MAX); 2420 int ret; 2421 2422 /* 2423 * We clear the LRU and need_discard btrees first so that we don't race 2424 * with bch2_do_invalidates() and bch2_do_discards() 2425 */ 2426 ret = bch2_dev_remove_stripes(c, ca->dev_idx) ?: 2427 bch2_btree_delete_range(c, BTREE_ID_lru, start, end, 2428 BTREE_TRIGGER_norun, NULL) ?: 2429 bch2_btree_delete_range(c, BTREE_ID_need_discard, start, end, 2430 BTREE_TRIGGER_norun, NULL) ?: 2431 bch2_btree_delete_range(c, BTREE_ID_freespace, start, end, 2432 BTREE_TRIGGER_norun, NULL) ?: 2433 bch2_btree_delete_range(c, BTREE_ID_backpointers, start, end, 2434 BTREE_TRIGGER_norun, NULL) ?: 2435 bch2_btree_delete_range(c, BTREE_ID_bucket_gens, start, end, 2436 BTREE_TRIGGER_norun, NULL) ?: 2437 bch2_btree_delete_range(c, BTREE_ID_alloc, start, end, 2438 BTREE_TRIGGER_norun, NULL) ?: 2439 bch2_dev_usage_remove(c, ca->dev_idx); 2440 bch_err_msg(ca, ret, "removing dev alloc info"); 2441 return ret; 2442 } 2443 2444 /* Bucket IO clocks: */ 2445 2446 static int __bch2_bucket_io_time_reset(struct btree_trans *trans, unsigned dev, 2447 size_t bucket_nr, int rw) 2448 { 2449 struct bch_fs *c = trans->c; 2450 2451 struct btree_iter iter; 2452 struct bkey_i_alloc_v4 *a = 2453 bch2_trans_start_alloc_update_noupdate(trans, &iter, POS(dev, bucket_nr)); 2454 int ret = PTR_ERR_OR_ZERO(a); 2455 if (ret) 2456 return ret; 2457 2458 u64 now = bch2_current_io_time(c, rw); 2459 if (a->v.io_time[rw] == now) 2460 goto out; 2461 2462 a->v.io_time[rw] = now; 2463 2464 ret = bch2_trans_update(trans, &iter, &a->k_i, 0) ?: 2465 bch2_trans_commit(trans, NULL, NULL, 0); 2466 out: 2467 bch2_trans_iter_exit(trans, &iter); 2468 return ret; 2469 } 2470 2471 int bch2_bucket_io_time_reset(struct btree_trans *trans, unsigned dev, 2472 size_t bucket_nr, int rw) 2473 { 2474 if (bch2_trans_relock(trans)) 2475 bch2_trans_begin(trans); 2476 2477 return nested_lockrestart_do(trans, __bch2_bucket_io_time_reset(trans, dev, bucket_nr, rw)); 2478 } 2479 2480 /* Startup/shutdown (ro/rw): */ 2481 2482 void bch2_recalc_capacity(struct bch_fs *c) 2483 { 2484 u64 capacity = 0, reserved_sectors = 0, gc_reserve; 2485 unsigned bucket_size_max = 0; 2486 unsigned long ra_pages = 0; 2487 2488 lockdep_assert_held(&c->state_lock); 2489 2490 for_each_online_member(c, ca) { 2491 struct backing_dev_info *bdi = ca->disk_sb.bdev->bd_disk->bdi; 2492 2493 ra_pages += bdi->ra_pages; 2494 } 2495 2496 bch2_set_ra_pages(c, ra_pages); 2497 2498 for_each_rw_member(c, ca) { 2499 u64 dev_reserve = 0; 2500 2501 /* 2502 * We need to reserve buckets (from the number 2503 * of currently available buckets) against 2504 * foreground writes so that mainly copygc can 2505 * make forward progress. 2506 * 2507 * We need enough to refill the various reserves 2508 * from scratch - copygc will use its entire 2509 * reserve all at once, then run against when 2510 * its reserve is refilled (from the formerly 2511 * available buckets). 2512 * 2513 * This reserve is just used when considering if 2514 * allocations for foreground writes must wait - 2515 * not -ENOSPC calculations. 2516 */ 2517 2518 dev_reserve += ca->nr_btree_reserve * 2; 2519 dev_reserve += ca->mi.nbuckets >> 6; /* copygc reserve */ 2520 2521 dev_reserve += 1; /* btree write point */ 2522 dev_reserve += 1; /* copygc write point */ 2523 dev_reserve += 1; /* rebalance write point */ 2524 2525 dev_reserve *= ca->mi.bucket_size; 2526 2527 capacity += bucket_to_sector(ca, ca->mi.nbuckets - 2528 ca->mi.first_bucket); 2529 2530 reserved_sectors += dev_reserve * 2; 2531 2532 bucket_size_max = max_t(unsigned, bucket_size_max, 2533 ca->mi.bucket_size); 2534 } 2535 2536 gc_reserve = c->opts.gc_reserve_bytes 2537 ? c->opts.gc_reserve_bytes >> 9 2538 : div64_u64(capacity * c->opts.gc_reserve_percent, 100); 2539 2540 reserved_sectors = max(gc_reserve, reserved_sectors); 2541 2542 reserved_sectors = min(reserved_sectors, capacity); 2543 2544 c->reserved = reserved_sectors; 2545 c->capacity = capacity - reserved_sectors; 2546 2547 c->bucket_size_max = bucket_size_max; 2548 2549 /* Wake up case someone was waiting for buckets */ 2550 closure_wake_up(&c->freelist_wait); 2551 } 2552 2553 u64 bch2_min_rw_member_capacity(struct bch_fs *c) 2554 { 2555 u64 ret = U64_MAX; 2556 2557 for_each_rw_member(c, ca) 2558 ret = min(ret, ca->mi.nbuckets * ca->mi.bucket_size); 2559 return ret; 2560 } 2561 2562 static bool bch2_dev_has_open_write_point(struct bch_fs *c, struct bch_dev *ca) 2563 { 2564 struct open_bucket *ob; 2565 bool ret = false; 2566 2567 for (ob = c->open_buckets; 2568 ob < c->open_buckets + ARRAY_SIZE(c->open_buckets); 2569 ob++) { 2570 spin_lock(&ob->lock); 2571 if (ob->valid && !ob->on_partial_list && 2572 ob->dev == ca->dev_idx) 2573 ret = true; 2574 spin_unlock(&ob->lock); 2575 } 2576 2577 return ret; 2578 } 2579 2580 /* device goes ro: */ 2581 void bch2_dev_allocator_remove(struct bch_fs *c, struct bch_dev *ca) 2582 { 2583 lockdep_assert_held(&c->state_lock); 2584 2585 /* First, remove device from allocation groups: */ 2586 2587 for (unsigned i = 0; i < ARRAY_SIZE(c->rw_devs); i++) 2588 clear_bit(ca->dev_idx, c->rw_devs[i].d); 2589 2590 c->rw_devs_change_count++; 2591 2592 /* 2593 * Capacity is calculated based off of devices in allocation groups: 2594 */ 2595 bch2_recalc_capacity(c); 2596 2597 bch2_open_buckets_stop(c, ca, false); 2598 2599 /* 2600 * Wake up threads that were blocked on allocation, so they can notice 2601 * the device can no longer be removed and the capacity has changed: 2602 */ 2603 closure_wake_up(&c->freelist_wait); 2604 2605 /* 2606 * journal_res_get() can block waiting for free space in the journal - 2607 * it needs to notice there may not be devices to allocate from anymore: 2608 */ 2609 wake_up(&c->journal.wait); 2610 2611 /* Now wait for any in flight writes: */ 2612 2613 closure_wait_event(&c->open_buckets_wait, 2614 !bch2_dev_has_open_write_point(c, ca)); 2615 } 2616 2617 /* device goes rw: */ 2618 void bch2_dev_allocator_add(struct bch_fs *c, struct bch_dev *ca) 2619 { 2620 lockdep_assert_held(&c->state_lock); 2621 2622 for (unsigned i = 0; i < ARRAY_SIZE(c->rw_devs); i++) 2623 if (ca->mi.data_allowed & (1 << i)) 2624 set_bit(ca->dev_idx, c->rw_devs[i].d); 2625 2626 c->rw_devs_change_count++; 2627 } 2628 2629 void bch2_dev_allocator_background_exit(struct bch_dev *ca) 2630 { 2631 darray_exit(&ca->discard_buckets_in_flight); 2632 } 2633 2634 void bch2_dev_allocator_background_init(struct bch_dev *ca) 2635 { 2636 mutex_init(&ca->discard_buckets_in_flight_lock); 2637 INIT_WORK(&ca->discard_work, bch2_do_discards_work); 2638 INIT_WORK(&ca->discard_fast_work, bch2_do_discards_fast_work); 2639 INIT_WORK(&ca->invalidate_work, bch2_do_invalidates_work); 2640 } 2641 2642 void bch2_fs_allocator_background_init(struct bch_fs *c) 2643 { 2644 spin_lock_init(&c->freelist_lock); 2645 } 2646