1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (c) 2023-2025 Christoph Hellwig. 4 * Copyright (c) 2024-2025, Western Digital Corporation or its affiliates. 5 */ 6 #include "xfs_platform.h" 7 #include "xfs_shared.h" 8 #include "xfs_format.h" 9 #include "xfs_log_format.h" 10 #include "xfs_trans_resv.h" 11 #include "xfs_mount.h" 12 #include "xfs_inode.h" 13 #include "xfs_btree.h" 14 #include "xfs_trans.h" 15 #include "xfs_icache.h" 16 #include "xfs_rmap.h" 17 #include "xfs_rtbitmap.h" 18 #include "xfs_rtrmap_btree.h" 19 #include "xfs_errortag.h" 20 #include "xfs_error.h" 21 #include "xfs_zone_alloc.h" 22 #include "xfs_zone_priv.h" 23 #include "xfs_zones.h" 24 #include "xfs_trace.h" 25 26 /* 27 * Implement Garbage Collection (GC) of partially used zoned. 28 * 29 * To support the purely sequential writes in each zone, zoned XFS needs to be 30 * able to move data remaining in a zone out of it to reset the zone to prepare 31 * for writing to it again. 32 * 33 * This is done by the GC thread implemented in this file. To support that a 34 * number of zones (XFS_GC_ZONES) is reserved from the user visible capacity to 35 * write the garbage collected data into. 36 * 37 * Whenever the available space is below the chosen threshold, the GC thread 38 * looks for potential non-empty but not fully used zones that are worth 39 * reclaiming. Once found the rmap for the victim zone is queried, and after 40 * a bit of sorting to reduce fragmentation, the still live extents are read 41 * into memory and written to the GC target zone, and the bmap btree of the 42 * files is updated to point to the new location. To avoid taking the IOLOCK 43 * and MMAPLOCK for the entire GC process and thus affecting the latency of 44 * user reads and writes to the files, the GC writes are speculative and the 45 * I/O completion checks that no other writes happened for the affected regions 46 * before remapping. 47 * 48 * Once a zone does not contain any valid data, be that through GC or user 49 * block removal, it is queued for for a zone reset. The reset operation 50 * carefully ensures that the RT device cache is flushed and all transactions 51 * referencing the rmap have been committed to disk. 52 */ 53 54 /* 55 * Size of each GC scratch allocation, and the number of buffers. 56 */ 57 #define XFS_GC_BUF_SIZE SZ_1M 58 #define XFS_GC_NR_BUFS 2 59 static_assert(XFS_GC_NR_BUFS < BIO_MAX_VECS); 60 61 /* 62 * Chunk that is read and written for each GC operation. 63 * 64 * Note that for writes to actual zoned devices, the chunk can be split when 65 * reaching the hardware limit. 66 */ 67 struct xfs_gc_bio { 68 struct xfs_zone_gc_data *data; 69 70 /* 71 * Entry into the reading/writing/resetting list. Only accessed from 72 * the GC thread, so no locking needed. 73 */ 74 struct list_head entry; 75 76 /* 77 * State of this gc_bio. Done means the current I/O completed. 78 * Set from the bio end I/O handler, read from the GC thread. 79 */ 80 enum { 81 XFS_GC_BIO_NEW, 82 XFS_GC_BIO_DONE, 83 } state; 84 85 /* 86 * Pointer to the inode and byte range in the inode that this 87 * GC chunk is operating on. 88 */ 89 struct xfs_inode *ip; 90 loff_t offset; 91 unsigned int len; 92 93 /* 94 * Existing startblock (in the zone to be freed) and newly assigned 95 * daddr in the zone GCed into. 96 */ 97 xfs_fsblock_t old_startblock; 98 xfs_daddr_t new_daddr; 99 struct xfs_zone_scratch *scratch; 100 101 /* Are we writing to a sequential write required zone? */ 102 bool is_seq; 103 104 /* Open Zone being written to */ 105 struct xfs_open_zone *oz; 106 107 struct xfs_rtgroup *victim_rtg; 108 109 /* Bio used for reads and writes, including the bvec used by it */ 110 struct bio bio; /* must be last */ 111 }; 112 113 #define XFS_ZONE_GC_RECS 1024 114 115 /* iterator, needs to be reinitialized for each victim zone */ 116 struct xfs_zone_gc_iter { 117 struct xfs_rtgroup *victim_rtg; 118 unsigned int rec_count; 119 unsigned int rec_idx; 120 xfs_agblock_t next_startblock; 121 struct xfs_rmap_irec *recs; 122 }; 123 124 /* 125 * Per-mount GC state. 126 */ 127 struct xfs_zone_gc_data { 128 struct xfs_mount *mp; 129 130 /* bioset used to allocate the gc_bios */ 131 struct bio_set bio_set; 132 133 /* 134 * Scratchpad to buffer GC data, organized as a ring buffer over 135 * discontiguous folios. scratch_head is where the buffer is filled, 136 * scratch_tail tracks the buffer space freed, and scratch_available 137 * counts the space available in the ring buffer between the head and 138 * the tail. 139 */ 140 struct folio *scratch_folios[XFS_GC_NR_BUFS]; 141 unsigned int scratch_size; 142 unsigned int scratch_available; 143 unsigned int scratch_head; 144 unsigned int scratch_tail; 145 146 /* 147 * List of bios currently being read, written and reset. 148 * These lists are only accessed by the GC thread itself, and must only 149 * be processed in order. 150 */ 151 struct list_head reading; 152 struct list_head writing; 153 struct list_head resetting; 154 155 /* 156 * Iterator for the victim zone. 157 */ 158 struct xfs_zone_gc_iter iter; 159 }; 160 161 /* 162 * We aim to keep enough zones free in stock to fully use the open zone limit 163 * for data placement purposes. Additionally, the m_zonegc_low_space tunable 164 * can be set to make sure a fraction of the unused blocks are available for 165 * writing. 166 */ 167 bool 168 xfs_zoned_need_gc( 169 struct xfs_mount *mp) 170 { 171 s64 available, free, threshold; 172 s32 remainder; 173 174 if (!xfs_zoned_have_reclaimable(mp->m_zone_info)) 175 return false; 176 177 available = xfs_estimate_freecounter(mp, XC_FREE_RTAVAILABLE); 178 179 if (available < 180 xfs_rtgs_to_rfsbs(mp, mp->m_max_open_zones - XFS_OPEN_GC_ZONES)) 181 return true; 182 183 free = xfs_estimate_freecounter(mp, XC_FREE_RTEXTENTS); 184 185 threshold = div_s64_rem(free, 100, &remainder); 186 threshold = threshold * mp->m_zonegc_low_space + 187 remainder * div_s64(mp->m_zonegc_low_space, 100); 188 189 if (available < threshold) 190 return true; 191 192 return false; 193 } 194 195 static struct xfs_zone_gc_data * 196 xfs_zone_gc_data_alloc( 197 struct xfs_mount *mp) 198 { 199 struct xfs_zone_gc_data *data; 200 int i; 201 202 data = kzalloc_obj(*data); 203 if (!data) 204 return NULL; 205 data->iter.recs = kzalloc_objs(*data->iter.recs, XFS_ZONE_GC_RECS); 206 if (!data->iter.recs) 207 goto out_free_data; 208 209 if (bioset_init(&data->bio_set, 16, offsetof(struct xfs_gc_bio, bio), 210 BIOSET_NEED_BVECS)) 211 goto out_free_recs; 212 for (i = 0; i < XFS_GC_NR_BUFS; i++) { 213 data->scratch_folios[i] = 214 folio_alloc(GFP_KERNEL, get_order(XFS_GC_BUF_SIZE)); 215 if (!data->scratch_folios[i]) 216 goto out_free_scratch; 217 } 218 data->scratch_size = XFS_GC_BUF_SIZE * XFS_GC_NR_BUFS; 219 data->scratch_available = data->scratch_size; 220 INIT_LIST_HEAD(&data->reading); 221 INIT_LIST_HEAD(&data->writing); 222 INIT_LIST_HEAD(&data->resetting); 223 data->mp = mp; 224 return data; 225 226 out_free_scratch: 227 while (--i >= 0) 228 folio_put(data->scratch_folios[i]); 229 bioset_exit(&data->bio_set); 230 out_free_recs: 231 kfree(data->iter.recs); 232 out_free_data: 233 kfree(data); 234 return NULL; 235 } 236 237 static void 238 xfs_zone_gc_data_free( 239 struct xfs_zone_gc_data *data) 240 { 241 int i; 242 243 for (i = 0; i < XFS_GC_NR_BUFS; i++) 244 folio_put(data->scratch_folios[i]); 245 bioset_exit(&data->bio_set); 246 kfree(data->iter.recs); 247 kfree(data); 248 } 249 250 static void 251 xfs_zone_gc_iter_init( 252 struct xfs_zone_gc_iter *iter, 253 struct xfs_rtgroup *victim_rtg) 254 255 { 256 iter->next_startblock = 0; 257 iter->rec_count = 0; 258 iter->rec_idx = 0; 259 iter->victim_rtg = victim_rtg; 260 atomic_inc(&victim_rtg->rtg_gccount); 261 } 262 263 /* 264 * Query the rmap of the victim zone to gather the records to evacuate. 265 */ 266 static int 267 xfs_zone_gc_query_cb( 268 struct xfs_btree_cur *cur, 269 const struct xfs_rmap_irec *irec, 270 void *private) 271 { 272 struct xfs_zone_gc_iter *iter = private; 273 274 ASSERT(!XFS_RMAP_NON_INODE_OWNER(irec->rm_owner)); 275 ASSERT(!xfs_is_sb_inum(cur->bc_mp, irec->rm_owner)); 276 ASSERT(!(irec->rm_flags & (XFS_RMAP_ATTR_FORK | XFS_RMAP_BMBT_BLOCK))); 277 278 iter->recs[iter->rec_count] = *irec; 279 if (++iter->rec_count == XFS_ZONE_GC_RECS) { 280 iter->next_startblock = 281 irec->rm_startblock + irec->rm_blockcount; 282 return 1; 283 } 284 return 0; 285 } 286 287 static int 288 xfs_zone_gc_rmap_rec_cmp( 289 const void *a, 290 const void *b) 291 { 292 const struct xfs_rmap_irec *reca = a; 293 const struct xfs_rmap_irec *recb = b; 294 int diff; 295 296 diff = cmp_int(reca->rm_owner, recb->rm_owner); 297 if (diff) 298 return diff; 299 return cmp_int(reca->rm_offset, recb->rm_offset); 300 } 301 302 static int 303 xfs_zone_gc_query( 304 struct xfs_mount *mp, 305 struct xfs_zone_gc_iter *iter) 306 { 307 struct xfs_rtgroup *rtg = iter->victim_rtg; 308 struct xfs_rmap_irec ri_low = { }; 309 struct xfs_rmap_irec ri_high; 310 struct xfs_btree_cur *cur; 311 struct xfs_trans *tp; 312 int error; 313 314 ASSERT(iter->next_startblock <= rtg_blocks(rtg)); 315 if (iter->next_startblock == rtg_blocks(rtg)) 316 goto done; 317 318 ASSERT(iter->next_startblock < rtg_blocks(rtg)); 319 ri_low.rm_startblock = iter->next_startblock; 320 memset(&ri_high, 0xFF, sizeof(ri_high)); 321 322 iter->rec_idx = 0; 323 iter->rec_count = 0; 324 325 tp = xfs_trans_alloc_empty(mp); 326 xfs_rtgroup_lock(rtg, XFS_RTGLOCK_RMAP); 327 cur = xfs_rtrmapbt_init_cursor(tp, rtg); 328 error = xfs_rmap_query_range(cur, &ri_low, &ri_high, 329 xfs_zone_gc_query_cb, iter); 330 xfs_rtgroup_unlock(rtg, XFS_RTGLOCK_RMAP); 331 xfs_btree_del_cursor(cur, error < 0 ? error : 0); 332 xfs_trans_cancel(tp); 333 334 if (error < 0) 335 return error; 336 337 /* 338 * Sort the rmap records by inode number and increasing offset to 339 * defragment the mappings. 340 * 341 * This could be further enhanced by an even bigger look ahead window, 342 * but that's better left until we have better detection of changes to 343 * inode mapping to avoid the potential of GCing already dead data. 344 */ 345 sort(iter->recs, iter->rec_count, sizeof(iter->recs[0]), 346 xfs_zone_gc_rmap_rec_cmp, NULL); 347 348 if (error == 0) { 349 /* 350 * We finished iterating through the zone. 351 */ 352 iter->next_startblock = rtg_blocks(rtg); 353 if (iter->rec_count == 0) 354 goto done; 355 } 356 357 return 0; 358 done: 359 atomic_dec(&iter->victim_rtg->rtg_gccount); 360 xfs_rtgroup_rele(iter->victim_rtg); 361 iter->victim_rtg = NULL; 362 return 0; 363 } 364 365 static bool 366 xfs_zone_gc_iter_next( 367 struct xfs_mount *mp, 368 struct xfs_zone_gc_iter *iter, 369 struct xfs_rmap_irec *chunk_rec, 370 struct xfs_inode **ipp) 371 { 372 struct xfs_rmap_irec *irec; 373 int error; 374 375 if (!iter->victim_rtg) 376 return false; 377 378 retry: 379 if (iter->rec_idx == iter->rec_count) { 380 error = xfs_zone_gc_query(mp, iter); 381 if (error) 382 goto fail; 383 if (!iter->victim_rtg) 384 return false; 385 } 386 387 irec = &iter->recs[iter->rec_idx]; 388 error = xfs_iget(mp, NULL, irec->rm_owner, 389 XFS_IGET_UNTRUSTED | XFS_IGET_DONTCACHE, 0, ipp); 390 if (error) { 391 /* 392 * If the inode was already deleted, skip over it. 393 */ 394 if (error == -ENOENT) { 395 iter->rec_idx++; 396 goto retry; 397 } 398 goto fail; 399 } 400 401 if (!S_ISREG(VFS_I(*ipp)->i_mode) || !XFS_IS_REALTIME_INODE(*ipp)) { 402 iter->rec_idx++; 403 xfs_irele(*ipp); 404 goto retry; 405 } 406 407 *chunk_rec = *irec; 408 return true; 409 410 fail: 411 xfs_force_shutdown(mp, SHUTDOWN_META_IO_ERROR); 412 return false; 413 } 414 415 static void 416 xfs_zone_gc_iter_advance( 417 struct xfs_zone_gc_iter *iter, 418 xfs_extlen_t count_fsb) 419 { 420 struct xfs_rmap_irec *irec = &iter->recs[iter->rec_idx]; 421 422 irec->rm_offset += count_fsb; 423 irec->rm_startblock += count_fsb; 424 irec->rm_blockcount -= count_fsb; 425 if (!irec->rm_blockcount) 426 iter->rec_idx++; 427 } 428 429 static struct xfs_rtgroup * 430 xfs_zone_gc_pick_victim_from( 431 struct xfs_mount *mp, 432 uint32_t bucket) 433 { 434 struct xfs_zone_info *zi = mp->m_zone_info; 435 uint32_t victim_used = U32_MAX; 436 struct xfs_rtgroup *victim_rtg = NULL; 437 uint32_t bit; 438 439 if (!zi->zi_used_bucket_entries[bucket]) 440 return NULL; 441 442 for_each_set_bit(bit, zi->zi_used_bucket_bitmap[bucket], 443 mp->m_sb.sb_rgcount) { 444 struct xfs_rtgroup *rtg = xfs_rtgroup_grab(mp, bit); 445 446 if (!rtg) 447 continue; 448 449 /* 450 * If the zone is already undergoing GC, don't pick it again. 451 * 452 * This prevents us from picking one of the zones for which we 453 * already submitted GC I/O, but for which the remapping hasn't 454 * concluded yet. This won't cause data corruption, but 455 * increases write amplification and slows down GC, so this is 456 * a bad thing. 457 */ 458 if (atomic_read(&rtg->rtg_gccount)) { 459 xfs_rtgroup_rele(rtg); 460 continue; 461 } 462 463 /* skip zones that are just waiting for a reset */ 464 if (rtg_rmap(rtg)->i_used_blocks == 0 || 465 rtg_rmap(rtg)->i_used_blocks >= victim_used) { 466 xfs_rtgroup_rele(rtg); 467 continue; 468 } 469 470 if (victim_rtg) 471 xfs_rtgroup_rele(victim_rtg); 472 victim_rtg = rtg; 473 victim_used = rtg_rmap(rtg)->i_used_blocks; 474 475 /* 476 * Any zone that is less than 1 percent used is fair game for 477 * instant reclaim. All of these zones are in the last 478 * bucket, so avoid the expensive division for the zones 479 * in the other buckets. 480 */ 481 if (bucket == 0 && 482 rtg_rmap(rtg)->i_used_blocks < rtg_blocks(rtg) / 100) 483 break; 484 } 485 486 return victim_rtg; 487 } 488 489 /* 490 * Iterate through all zones marked as reclaimable and find a candidate to 491 * reclaim. 492 */ 493 static bool 494 xfs_zone_gc_select_victim( 495 struct xfs_zone_gc_data *data) 496 { 497 struct xfs_zone_gc_iter *iter = &data->iter; 498 struct xfs_mount *mp = data->mp; 499 struct xfs_zone_info *zi = mp->m_zone_info; 500 struct xfs_rtgroup *victim_rtg = NULL; 501 unsigned int bucket; 502 503 spin_lock(&zi->zi_used_buckets_lock); 504 for (bucket = 0; bucket < XFS_ZONE_USED_BUCKETS; bucket++) { 505 victim_rtg = xfs_zone_gc_pick_victim_from(mp, bucket); 506 if (victim_rtg) 507 break; 508 } 509 spin_unlock(&zi->zi_used_buckets_lock); 510 511 if (!victim_rtg) 512 return false; 513 514 trace_xfs_zone_gc_select_victim(victim_rtg, bucket); 515 xfs_zone_gc_iter_init(iter, victim_rtg); 516 return true; 517 } 518 519 static struct xfs_open_zone * 520 xfs_zone_gc_steal_open( 521 struct xfs_zone_info *zi) 522 { 523 struct xfs_open_zone *oz, *found = NULL; 524 525 spin_lock(&zi->zi_open_zones_lock); 526 list_for_each_entry(oz, &zi->zi_open_zones, oz_entry) { 527 if (!found || oz->oz_allocated < found->oz_allocated) 528 found = oz; 529 } 530 531 if (found) { 532 found->oz_is_gc = true; 533 list_del_init(&found->oz_entry); 534 zi->zi_nr_open_zones--; 535 } 536 537 spin_unlock(&zi->zi_open_zones_lock); 538 return found; 539 } 540 541 static struct xfs_open_zone * 542 xfs_zone_gc_select_target( 543 struct xfs_mount *mp) 544 { 545 struct xfs_zone_info *zi = mp->m_zone_info; 546 struct xfs_open_zone *oz = zi->zi_open_gc_zone; 547 548 /* 549 * We need to wait for pending writes to finish. 550 */ 551 if (oz && oz->oz_written < rtg_blocks(oz->oz_rtg)) 552 return NULL; 553 554 ASSERT(zi->zi_nr_open_zones <= 555 mp->m_max_open_zones - XFS_OPEN_GC_ZONES); 556 oz = xfs_open_zone(mp, WRITE_LIFE_NOT_SET, true); 557 if (oz) 558 trace_xfs_zone_gc_target_opened(oz->oz_rtg); 559 spin_lock(&zi->zi_open_zones_lock); 560 zi->zi_open_gc_zone = oz; 561 spin_unlock(&zi->zi_open_zones_lock); 562 return oz; 563 } 564 565 /* 566 * Ensure we have a valid open zone to write the GC data to. 567 * 568 * If the current target zone has space keep writing to it, else first wait for 569 * all pending writes and then pick a new one. 570 */ 571 static struct xfs_open_zone * 572 xfs_zone_gc_ensure_target( 573 struct xfs_mount *mp) 574 { 575 struct xfs_open_zone *oz = mp->m_zone_info->zi_open_gc_zone; 576 577 if (!oz || oz->oz_allocated == rtg_blocks(oz->oz_rtg)) 578 return xfs_zone_gc_select_target(mp); 579 return oz; 580 } 581 582 static void 583 xfs_zone_gc_end_io( 584 struct bio *bio) 585 { 586 struct xfs_gc_bio *chunk = 587 container_of(bio, struct xfs_gc_bio, bio); 588 struct xfs_zone_gc_data *data = chunk->data; 589 590 WRITE_ONCE(chunk->state, XFS_GC_BIO_DONE); 591 wake_up_process(data->mp->m_zone_info->zi_gc_thread); 592 } 593 594 static struct xfs_open_zone * 595 xfs_zone_gc_alloc_blocks( 596 struct xfs_zone_gc_data *data, 597 xfs_extlen_t *count_fsb, 598 xfs_daddr_t *daddr, 599 bool *is_seq) 600 { 601 struct xfs_mount *mp = data->mp; 602 struct xfs_open_zone *oz; 603 604 oz = xfs_zone_gc_ensure_target(mp); 605 if (!oz) 606 return NULL; 607 608 *count_fsb = min(*count_fsb, XFS_B_TO_FSB(mp, data->scratch_available)); 609 610 /* 611 * Directly allocate GC blocks from the reserved pool. 612 * 613 * If we'd take them from the normal pool we could be stealing blocks 614 * from a regular writer, which would then have to wait for GC and 615 * deadlock. 616 */ 617 spin_lock(&mp->m_sb_lock); 618 *count_fsb = min(*count_fsb, 619 rtg_blocks(oz->oz_rtg) - oz->oz_allocated); 620 *count_fsb = min3(*count_fsb, 621 mp->m_free[XC_FREE_RTEXTENTS].res_avail, 622 mp->m_free[XC_FREE_RTAVAILABLE].res_avail); 623 mp->m_free[XC_FREE_RTEXTENTS].res_avail -= *count_fsb; 624 mp->m_free[XC_FREE_RTAVAILABLE].res_avail -= *count_fsb; 625 spin_unlock(&mp->m_sb_lock); 626 627 if (!*count_fsb) 628 return NULL; 629 630 *daddr = xfs_gbno_to_daddr(&oz->oz_rtg->rtg_group, 0); 631 *is_seq = bdev_zone_is_seq(mp->m_rtdev_targp->bt_bdev, *daddr); 632 if (!*is_seq) 633 *daddr += XFS_FSB_TO_BB(mp, oz->oz_allocated); 634 oz->oz_allocated += *count_fsb; 635 atomic_inc(&oz->oz_ref); 636 return oz; 637 } 638 639 static void 640 xfs_zone_gc_add_data( 641 struct xfs_gc_bio *chunk) 642 { 643 struct xfs_zone_gc_data *data = chunk->data; 644 unsigned int len = chunk->len; 645 unsigned int off = data->scratch_head; 646 647 do { 648 unsigned int this_off = off % XFS_GC_BUF_SIZE; 649 unsigned int this_len = min(len, XFS_GC_BUF_SIZE - this_off); 650 651 bio_add_folio_nofail(&chunk->bio, 652 data->scratch_folios[off / XFS_GC_BUF_SIZE], 653 this_len, this_off); 654 len -= this_len; 655 off += this_len; 656 if (off == data->scratch_size) 657 off = 0; 658 } while (len); 659 } 660 661 static bool 662 xfs_zone_gc_start_chunk( 663 struct xfs_zone_gc_data *data) 664 { 665 struct xfs_zone_gc_iter *iter = &data->iter; 666 struct xfs_mount *mp = data->mp; 667 struct block_device *bdev = mp->m_rtdev_targp->bt_bdev; 668 struct xfs_open_zone *oz; 669 struct xfs_rmap_irec irec; 670 struct xfs_gc_bio *chunk; 671 struct xfs_inode *ip; 672 struct bio *bio; 673 xfs_daddr_t daddr; 674 unsigned int len; 675 bool is_seq; 676 677 if (xfs_is_shutdown(mp)) 678 return false; 679 680 if (!xfs_zone_gc_iter_next(mp, iter, &irec, &ip)) 681 return false; 682 oz = xfs_zone_gc_alloc_blocks(data, &irec.rm_blockcount, &daddr, 683 &is_seq); 684 if (!oz) { 685 xfs_irele(ip); 686 return false; 687 } 688 689 len = XFS_FSB_TO_B(mp, irec.rm_blockcount); 690 bio = bio_alloc_bioset(bdev, 691 min(howmany(len, XFS_GC_BUF_SIZE) + 1, XFS_GC_NR_BUFS), 692 REQ_OP_READ, GFP_NOFS, &data->bio_set); 693 694 chunk = container_of(bio, struct xfs_gc_bio, bio); 695 chunk->ip = ip; 696 chunk->offset = XFS_FSB_TO_B(mp, irec.rm_offset); 697 chunk->len = len; 698 chunk->old_startblock = 699 xfs_rgbno_to_rtb(iter->victim_rtg, irec.rm_startblock); 700 chunk->new_daddr = daddr; 701 chunk->is_seq = is_seq; 702 chunk->data = data; 703 chunk->oz = oz; 704 chunk->victim_rtg = iter->victim_rtg; 705 atomic_inc(&chunk->victim_rtg->rtg_group.xg_active_ref); 706 atomic_inc(&chunk->victim_rtg->rtg_gccount); 707 708 bio->bi_iter.bi_sector = xfs_rtb_to_daddr(mp, chunk->old_startblock); 709 bio->bi_end_io = xfs_zone_gc_end_io; 710 xfs_zone_gc_add_data(chunk); 711 data->scratch_head = (data->scratch_head + len) % data->scratch_size; 712 data->scratch_available -= len; 713 714 XFS_STATS_INC(mp, xs_gc_read_calls); 715 716 WRITE_ONCE(chunk->state, XFS_GC_BIO_NEW); 717 list_add_tail(&chunk->entry, &data->reading); 718 xfs_zone_gc_iter_advance(iter, irec.rm_blockcount); 719 720 submit_bio(bio); 721 return true; 722 } 723 724 static void 725 xfs_zone_gc_free_chunk( 726 struct xfs_gc_bio *chunk) 727 { 728 atomic_dec(&chunk->victim_rtg->rtg_gccount); 729 xfs_rtgroup_rele(chunk->victim_rtg); 730 list_del(&chunk->entry); 731 xfs_open_zone_put(chunk->oz); 732 xfs_irele(chunk->ip); 733 bio_put(&chunk->bio); 734 } 735 736 static void 737 xfs_zone_gc_submit_write( 738 struct xfs_zone_gc_data *data, 739 struct xfs_gc_bio *chunk) 740 { 741 if (chunk->is_seq) { 742 chunk->bio.bi_opf &= ~REQ_OP_WRITE; 743 chunk->bio.bi_opf |= REQ_OP_ZONE_APPEND; 744 } 745 chunk->bio.bi_iter.bi_sector = chunk->new_daddr; 746 chunk->bio.bi_end_io = xfs_zone_gc_end_io; 747 submit_bio(&chunk->bio); 748 } 749 750 static struct xfs_gc_bio * 751 xfs_zone_gc_split_write( 752 struct xfs_zone_gc_data *data, 753 struct xfs_gc_bio *chunk) 754 { 755 struct queue_limits *lim = 756 &bdev_get_queue(chunk->bio.bi_bdev)->limits; 757 struct xfs_gc_bio *split_chunk; 758 int split_sectors; 759 unsigned int split_len; 760 struct bio *split; 761 unsigned int nsegs; 762 763 if (!chunk->is_seq) 764 return NULL; 765 766 split_sectors = bio_split_rw_at(&chunk->bio, lim, &nsegs, 767 lim->max_zone_append_sectors << SECTOR_SHIFT); 768 if (!split_sectors) 769 return NULL; 770 771 /* ensure the split chunk is still block size aligned */ 772 split_sectors = ALIGN_DOWN(split_sectors << SECTOR_SHIFT, 773 data->mp->m_sb.sb_blocksize) >> SECTOR_SHIFT; 774 split_len = split_sectors << SECTOR_SHIFT; 775 776 split = bio_split(&chunk->bio, split_sectors, GFP_NOFS, &data->bio_set); 777 split_chunk = container_of(split, struct xfs_gc_bio, bio); 778 split_chunk->data = data; 779 ihold(VFS_I(chunk->ip)); 780 split_chunk->ip = chunk->ip; 781 split_chunk->is_seq = chunk->is_seq; 782 split_chunk->scratch = chunk->scratch; 783 split_chunk->offset = chunk->offset; 784 split_chunk->len = split_len; 785 split_chunk->old_startblock = chunk->old_startblock; 786 split_chunk->new_daddr = chunk->new_daddr; 787 split_chunk->oz = chunk->oz; 788 atomic_inc(&chunk->oz->oz_ref); 789 790 split_chunk->victim_rtg = chunk->victim_rtg; 791 atomic_inc(&chunk->victim_rtg->rtg_group.xg_active_ref); 792 atomic_inc(&chunk->victim_rtg->rtg_gccount); 793 794 chunk->offset += split_len; 795 chunk->len -= split_len; 796 chunk->old_startblock += XFS_B_TO_FSB(data->mp, split_len); 797 798 /* add right before the original chunk */ 799 WRITE_ONCE(split_chunk->state, XFS_GC_BIO_NEW); 800 list_add_tail(&split_chunk->entry, &chunk->entry); 801 return split_chunk; 802 } 803 804 static void 805 xfs_zone_gc_write_chunk( 806 struct xfs_gc_bio *chunk) 807 { 808 struct xfs_zone_gc_data *data = chunk->data; 809 struct xfs_mount *mp = chunk->ip->i_mount; 810 struct xfs_gc_bio *split_chunk; 811 812 if (chunk->bio.bi_status) 813 xfs_force_shutdown(mp, SHUTDOWN_META_IO_ERROR); 814 if (xfs_is_shutdown(mp)) { 815 xfs_zone_gc_free_chunk(chunk); 816 return; 817 } 818 819 XFS_STATS_INC(mp, xs_gc_write_calls); 820 XFS_STATS_ADD(mp, xs_gc_bytes, chunk->len); 821 822 WRITE_ONCE(chunk->state, XFS_GC_BIO_NEW); 823 list_move_tail(&chunk->entry, &data->writing); 824 825 bio_reuse(&chunk->bio, REQ_OP_WRITE); 826 while ((split_chunk = xfs_zone_gc_split_write(data, chunk))) 827 xfs_zone_gc_submit_write(data, split_chunk); 828 xfs_zone_gc_submit_write(data, chunk); 829 } 830 831 static void 832 xfs_zone_gc_finish_chunk( 833 struct xfs_gc_bio *chunk) 834 { 835 uint iolock = XFS_IOLOCK_EXCL | XFS_MMAPLOCK_EXCL; 836 struct xfs_zone_gc_data *data = chunk->data; 837 struct xfs_inode *ip = chunk->ip; 838 struct xfs_mount *mp = ip->i_mount; 839 int error; 840 841 if (chunk->bio.bi_status) 842 xfs_force_shutdown(mp, SHUTDOWN_META_IO_ERROR); 843 if (xfs_is_shutdown(mp)) { 844 xfs_zone_gc_free_chunk(chunk); 845 return; 846 } 847 848 data->scratch_tail = 849 (data->scratch_tail + chunk->len) % data->scratch_size; 850 data->scratch_available += chunk->len; 851 852 /* 853 * Cycle through the iolock and wait for direct I/O and layouts to 854 * ensure no one is reading from the old mapping before it goes away. 855 * 856 * Note that xfs_zoned_end_io() below checks that no other writer raced 857 * with us to update the mapping by checking that the old startblock 858 * didn't change. 859 */ 860 xfs_ilock(ip, iolock); 861 error = xfs_break_layouts(VFS_I(ip), &iolock, BREAK_UNMAP); 862 if (!error) 863 inode_dio_wait(VFS_I(ip)); 864 xfs_iunlock(ip, iolock); 865 if (error) 866 goto free; 867 868 if (chunk->is_seq) 869 chunk->new_daddr = chunk->bio.bi_iter.bi_sector; 870 error = xfs_zoned_end_io(ip, chunk->offset, chunk->len, 871 chunk->new_daddr, chunk->oz, chunk->old_startblock); 872 free: 873 if (error) 874 xfs_force_shutdown(mp, SHUTDOWN_META_IO_ERROR); 875 xfs_zone_gc_free_chunk(chunk); 876 } 877 878 static void 879 xfs_zone_gc_finish_reset( 880 struct xfs_gc_bio *chunk) 881 { 882 struct xfs_rtgroup *rtg = chunk->bio.bi_private; 883 struct xfs_mount *mp = rtg_mount(rtg); 884 struct xfs_zone_info *zi = mp->m_zone_info; 885 886 if (chunk->bio.bi_status) { 887 xfs_force_shutdown(mp, SHUTDOWN_META_IO_ERROR); 888 goto out; 889 } 890 891 xfs_group_set_mark(&rtg->rtg_group, XFS_RTG_FREE); 892 atomic_inc(&zi->zi_nr_free_zones); 893 894 xfs_zoned_add_available(mp, rtg_blocks(rtg)); 895 896 wake_up_all(&zi->zi_zone_wait); 897 out: 898 list_del(&chunk->entry); 899 bio_put(&chunk->bio); 900 } 901 902 static void 903 xfs_submit_zone_reset_bio( 904 struct xfs_rtgroup *rtg, 905 struct bio *bio) 906 { 907 struct xfs_mount *mp = rtg_mount(rtg); 908 909 trace_xfs_zone_reset(rtg); 910 911 ASSERT(rtg_rmap(rtg)->i_used_blocks == 0); 912 913 if (XFS_TEST_ERROR(mp, XFS_ERRTAG_ZONE_RESET)) { 914 bio_io_error(bio); 915 return; 916 } 917 918 XFS_STATS_INC(mp, xs_gc_zone_reset_calls); 919 920 bio->bi_iter.bi_sector = xfs_gbno_to_daddr(&rtg->rtg_group, 0); 921 if (!bdev_zone_is_seq(bio->bi_bdev, bio->bi_iter.bi_sector)) { 922 /* 923 * Also use the bio to drive the state machine when neither 924 * zone reset nor discard is supported to keep things simple. 925 */ 926 if (!bdev_max_discard_sectors(bio->bi_bdev)) { 927 bio_endio(bio); 928 return; 929 } 930 bio->bi_opf &= ~REQ_OP_ZONE_RESET; 931 bio->bi_opf |= REQ_OP_DISCARD; 932 bio->bi_iter.bi_size = XFS_FSB_TO_B(mp, rtg_blocks(rtg)); 933 } 934 935 submit_bio(bio); 936 } 937 938 static void xfs_bio_wait_endio(struct bio *bio) 939 { 940 complete(bio->bi_private); 941 } 942 943 int 944 xfs_zone_gc_reset_sync( 945 struct xfs_rtgroup *rtg) 946 { 947 DECLARE_COMPLETION_ONSTACK(done); 948 struct bio bio; 949 int error; 950 951 bio_init(&bio, rtg_mount(rtg)->m_rtdev_targp->bt_bdev, NULL, 0, 952 REQ_OP_ZONE_RESET | REQ_SYNC); 953 bio.bi_private = &done; 954 bio.bi_end_io = xfs_bio_wait_endio; 955 xfs_submit_zone_reset_bio(rtg, &bio); 956 wait_for_completion_io(&done); 957 958 error = blk_status_to_errno(bio.bi_status); 959 bio_uninit(&bio); 960 return error; 961 } 962 963 static void 964 xfs_zone_gc_reset_zones( 965 struct xfs_zone_gc_data *data, 966 struct xfs_group *reset_list) 967 { 968 struct xfs_group *next = reset_list; 969 970 if (blkdev_issue_flush(data->mp->m_rtdev_targp->bt_bdev) < 0) { 971 xfs_force_shutdown(data->mp, SHUTDOWN_META_IO_ERROR); 972 return; 973 } 974 975 do { 976 struct xfs_rtgroup *rtg = to_rtg(next); 977 struct xfs_gc_bio *chunk; 978 struct bio *bio; 979 980 xfs_log_force_inode(rtg_rmap(rtg)); 981 982 next = rtg_group(rtg)->xg_next_reset; 983 rtg_group(rtg)->xg_next_reset = NULL; 984 985 bio = bio_alloc_bioset(rtg_mount(rtg)->m_rtdev_targp->bt_bdev, 986 0, REQ_OP_ZONE_RESET, GFP_NOFS, &data->bio_set); 987 bio->bi_private = rtg; 988 bio->bi_end_io = xfs_zone_gc_end_io; 989 990 chunk = container_of(bio, struct xfs_gc_bio, bio); 991 chunk->data = data; 992 WRITE_ONCE(chunk->state, XFS_GC_BIO_NEW); 993 list_add_tail(&chunk->entry, &data->resetting); 994 xfs_submit_zone_reset_bio(rtg, bio); 995 } while (next); 996 } 997 998 static bool 999 xfs_zone_gc_should_start_new_work( 1000 struct xfs_zone_gc_data *data) 1001 { 1002 struct xfs_open_zone *oz; 1003 1004 if (xfs_is_shutdown(data->mp)) 1005 return false; 1006 if (!data->scratch_available) 1007 return false; 1008 1009 oz = xfs_zone_gc_ensure_target(data->mp); 1010 if (!oz || oz->oz_allocated == rtg_blocks(oz->oz_rtg)) 1011 return false; 1012 1013 if (!data->iter.victim_rtg) { 1014 if (kthread_should_stop() || kthread_should_park()) 1015 return false; 1016 if (!xfs_zoned_need_gc(data->mp)) 1017 return false; 1018 if (!xfs_zone_gc_select_victim(data)) 1019 return false; 1020 } 1021 1022 return true; 1023 } 1024 1025 /* 1026 * Handle the work to read and write data for GC and to reset the zones, 1027 * including handling all completions. 1028 * 1029 * Note that the order of the chunks is preserved so that we don't undo the 1030 * optimal order established by xfs_zone_gc_query(). 1031 */ 1032 static void 1033 xfs_zone_gc_handle_work( 1034 struct xfs_zone_gc_data *data) 1035 { 1036 struct xfs_zone_info *zi = data->mp->m_zone_info; 1037 struct xfs_gc_bio *chunk, *next; 1038 struct xfs_group *reset_list; 1039 struct blk_plug plug; 1040 1041 spin_lock(&zi->zi_reset_list_lock); 1042 reset_list = zi->zi_reset_list; 1043 zi->zi_reset_list = NULL; 1044 spin_unlock(&zi->zi_reset_list_lock); 1045 1046 if (reset_list) { 1047 set_current_state(TASK_RUNNING); 1048 xfs_zone_gc_reset_zones(data, reset_list); 1049 } 1050 1051 list_for_each_entry_safe(chunk, next, &data->resetting, entry) { 1052 if (READ_ONCE(chunk->state) != XFS_GC_BIO_DONE) 1053 break; 1054 set_current_state(TASK_RUNNING); 1055 xfs_zone_gc_finish_reset(chunk); 1056 } 1057 1058 list_for_each_entry_safe(chunk, next, &data->writing, entry) { 1059 if (READ_ONCE(chunk->state) != XFS_GC_BIO_DONE) 1060 break; 1061 set_current_state(TASK_RUNNING); 1062 xfs_zone_gc_finish_chunk(chunk); 1063 } 1064 1065 blk_start_plug(&plug); 1066 list_for_each_entry_safe(chunk, next, &data->reading, entry) { 1067 if (READ_ONCE(chunk->state) != XFS_GC_BIO_DONE) 1068 break; 1069 set_current_state(TASK_RUNNING); 1070 xfs_zone_gc_write_chunk(chunk); 1071 } 1072 blk_finish_plug(&plug); 1073 1074 if (xfs_zone_gc_should_start_new_work(data)) { 1075 set_current_state(TASK_RUNNING); 1076 blk_start_plug(&plug); 1077 while (xfs_zone_gc_start_chunk(data)) 1078 ; 1079 blk_finish_plug(&plug); 1080 } 1081 } 1082 1083 /* 1084 * Note that the current GC algorithm would break reflinks and thus duplicate 1085 * data that was shared by multiple owners before. Because of that reflinks 1086 * are currently not supported on zoned file systems and can't be created or 1087 * mounted. 1088 */ 1089 static int 1090 xfs_zoned_gcd( 1091 void *private) 1092 { 1093 struct xfs_zone_gc_data *data = private; 1094 struct xfs_mount *mp = data->mp; 1095 struct xfs_zone_info *zi = mp->m_zone_info; 1096 unsigned int nofs_flag; 1097 1098 nofs_flag = memalloc_nofs_save(); 1099 set_freezable(); 1100 1101 for (;;) { 1102 set_current_state(TASK_INTERRUPTIBLE | TASK_FREEZABLE); 1103 xfs_set_zonegc_running(mp); 1104 1105 xfs_zone_gc_handle_work(data); 1106 1107 /* 1108 * Only sleep if nothing set the state to running. Else check for 1109 * work again as someone might have queued up more work and woken 1110 * us in the meantime. 1111 */ 1112 if (get_current_state() == TASK_RUNNING) { 1113 try_to_freeze(); 1114 continue; 1115 } 1116 1117 if (list_empty(&data->reading) && 1118 list_empty(&data->writing) && 1119 list_empty(&data->resetting) && 1120 !zi->zi_reset_list) { 1121 xfs_clear_zonegc_running(mp); 1122 xfs_zoned_resv_wake_all(mp); 1123 1124 if (kthread_should_stop()) { 1125 __set_current_state(TASK_RUNNING); 1126 break; 1127 } 1128 1129 if (kthread_should_park()) { 1130 __set_current_state(TASK_RUNNING); 1131 kthread_parkme(); 1132 continue; 1133 } 1134 } 1135 1136 schedule(); 1137 } 1138 xfs_clear_zonegc_running(mp); 1139 1140 if (data->iter.victim_rtg) 1141 xfs_rtgroup_rele(data->iter.victim_rtg); 1142 1143 memalloc_nofs_restore(nofs_flag); 1144 xfs_zone_gc_data_free(data); 1145 return 0; 1146 } 1147 1148 void 1149 xfs_zone_gc_start( 1150 struct xfs_mount *mp) 1151 { 1152 if (xfs_has_zoned(mp)) 1153 kthread_unpark(mp->m_zone_info->zi_gc_thread); 1154 } 1155 1156 void 1157 xfs_zone_gc_stop( 1158 struct xfs_mount *mp) 1159 { 1160 if (xfs_has_zoned(mp)) 1161 kthread_park(mp->m_zone_info->zi_gc_thread); 1162 } 1163 1164 int 1165 xfs_zone_gc_mount( 1166 struct xfs_mount *mp) 1167 { 1168 struct xfs_zone_info *zi = mp->m_zone_info; 1169 struct xfs_zone_gc_data *data; 1170 struct xfs_open_zone *oz; 1171 int error; 1172 1173 /* 1174 * If there are no free zones available for GC, pick the open zone with 1175 * the least used space to GC into. This should only happen after an 1176 * unclean shutdown near ENOSPC while GC was ongoing. 1177 * 1178 * We also need to do this for the first gc zone allocation if we 1179 * unmounted while at the open limit. 1180 */ 1181 if (!xfs_group_marked(mp, XG_TYPE_RTG, XFS_RTG_FREE) || 1182 zi->zi_nr_open_zones == mp->m_max_open_zones) 1183 oz = xfs_zone_gc_steal_open(zi); 1184 else 1185 oz = xfs_open_zone(mp, WRITE_LIFE_NOT_SET, true); 1186 if (!oz) { 1187 xfs_warn(mp, "unable to allocate a zone for gc"); 1188 error = -EIO; 1189 goto out; 1190 } 1191 1192 trace_xfs_zone_gc_target_opened(oz->oz_rtg); 1193 zi->zi_open_gc_zone = oz; 1194 1195 data = xfs_zone_gc_data_alloc(mp); 1196 if (!data) { 1197 error = -ENOMEM; 1198 goto out_put_gc_zone; 1199 } 1200 1201 zi->zi_gc_thread = kthread_create(xfs_zoned_gcd, data, 1202 "xfs-zone-gc/%s", mp->m_super->s_id); 1203 if (IS_ERR(zi->zi_gc_thread)) { 1204 xfs_warn(mp, "unable to create zone gc thread"); 1205 error = PTR_ERR(zi->zi_gc_thread); 1206 goto out_free_gc_data; 1207 } 1208 1209 /* xfs_zone_gc_start will unpark for rw mounts */ 1210 kthread_park(zi->zi_gc_thread); 1211 return 0; 1212 1213 out_free_gc_data: 1214 kfree(data); 1215 out_put_gc_zone: 1216 xfs_open_zone_put(zi->zi_open_gc_zone); 1217 out: 1218 return error; 1219 } 1220 1221 void 1222 xfs_zone_gc_unmount( 1223 struct xfs_mount *mp) 1224 { 1225 struct xfs_zone_info *zi = mp->m_zone_info; 1226 1227 kthread_stop(zi->zi_gc_thread); 1228 if (zi->zi_open_gc_zone) 1229 xfs_open_zone_put(zi->zi_open_gc_zone); 1230 } 1231