1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (c) 2000-2005 Silicon Graphics, Inc. 4 * All Rights Reserved. 5 */ 6 #include "xfs_platform.h" 7 #include "xfs_fs.h" 8 #include "xfs_shared.h" 9 #include "xfs_format.h" 10 #include "xfs_log_format.h" 11 #include "xfs_trans_resv.h" 12 #include "xfs_bit.h" 13 #include "xfs_sb.h" 14 #include "xfs_mount.h" 15 #include "xfs_inode.h" 16 #include "xfs_dir2.h" 17 #include "xfs_ialloc.h" 18 #include "xfs_alloc.h" 19 #include "xfs_rtalloc.h" 20 #include "xfs_bmap.h" 21 #include "xfs_trans.h" 22 #include "xfs_trans_priv.h" 23 #include "xfs_log.h" 24 #include "xfs_log_priv.h" 25 #include "xfs_error.h" 26 #include "xfs_quota.h" 27 #include "xfs_fsops.h" 28 #include "xfs_icache.h" 29 #include "xfs_sysfs.h" 30 #include "xfs_rmap_btree.h" 31 #include "xfs_refcount_btree.h" 32 #include "xfs_reflink.h" 33 #include "xfs_extent_busy.h" 34 #include "xfs_health.h" 35 #include "xfs_trace.h" 36 #include "xfs_ag.h" 37 #include "xfs_rtbitmap.h" 38 #include "xfs_metafile.h" 39 #include "xfs_rtgroup.h" 40 #include "xfs_rtrmap_btree.h" 41 #include "xfs_rtrefcount_btree.h" 42 #include "scrub/stats.h" 43 #include "xfs_zone_alloc.h" 44 #include "xfs_healthmon.h" 45 46 static DEFINE_MUTEX(xfs_uuid_table_mutex); 47 static int xfs_uuid_table_size; 48 static uuid_t *xfs_uuid_table; 49 50 void 51 xfs_uuid_table_free(void) 52 { 53 if (xfs_uuid_table_size == 0) 54 return; 55 kfree(xfs_uuid_table); 56 xfs_uuid_table = NULL; 57 xfs_uuid_table_size = 0; 58 } 59 60 /* 61 * See if the UUID is unique among mounted XFS filesystems. 62 * Mount fails if UUID is nil or a FS with the same UUID is already mounted. 63 */ 64 STATIC int 65 xfs_uuid_mount( 66 struct xfs_mount *mp) 67 { 68 uuid_t *uuid = &mp->m_sb.sb_uuid; 69 int hole, i; 70 71 /* Publish UUID in struct super_block */ 72 super_set_uuid(mp->m_super, uuid->b, sizeof(*uuid)); 73 74 if (xfs_has_nouuid(mp)) 75 return 0; 76 77 if (uuid_is_null(uuid)) { 78 xfs_warn(mp, "Filesystem has null UUID - can't mount"); 79 return -EINVAL; 80 } 81 82 mutex_lock(&xfs_uuid_table_mutex); 83 for (i = 0, hole = -1; i < xfs_uuid_table_size; i++) { 84 if (uuid_is_null(&xfs_uuid_table[i])) { 85 hole = i; 86 continue; 87 } 88 if (uuid_equal(uuid, &xfs_uuid_table[i])) 89 goto out_duplicate; 90 } 91 92 if (hole < 0) { 93 xfs_uuid_table = krealloc(xfs_uuid_table, 94 (xfs_uuid_table_size + 1) * sizeof(*xfs_uuid_table), 95 GFP_KERNEL | __GFP_NOFAIL); 96 hole = xfs_uuid_table_size++; 97 } 98 xfs_uuid_table[hole] = *uuid; 99 mutex_unlock(&xfs_uuid_table_mutex); 100 101 return 0; 102 103 out_duplicate: 104 mutex_unlock(&xfs_uuid_table_mutex); 105 xfs_warn(mp, "Filesystem has duplicate UUID %pU - can't mount", uuid); 106 return -EINVAL; 107 } 108 109 STATIC void 110 xfs_uuid_unmount( 111 struct xfs_mount *mp) 112 { 113 uuid_t *uuid = &mp->m_sb.sb_uuid; 114 int i; 115 116 if (xfs_has_nouuid(mp)) 117 return; 118 119 mutex_lock(&xfs_uuid_table_mutex); 120 for (i = 0; i < xfs_uuid_table_size; i++) { 121 if (uuid_is_null(&xfs_uuid_table[i])) 122 continue; 123 if (!uuid_equal(uuid, &xfs_uuid_table[i])) 124 continue; 125 memset(&xfs_uuid_table[i], 0, sizeof(uuid_t)); 126 break; 127 } 128 ASSERT(i < xfs_uuid_table_size); 129 mutex_unlock(&xfs_uuid_table_mutex); 130 } 131 132 /* 133 * Check size of device based on the (data/realtime) block count. 134 * Note: this check is used by the growfs code as well as mount. 135 */ 136 int 137 xfs_sb_validate_fsb_count( 138 xfs_sb_t *sbp, 139 uint64_t nblocks) 140 { 141 uint64_t max_bytes; 142 143 ASSERT(sbp->sb_blocklog >= BBSHIFT); 144 145 if (check_shl_overflow(nblocks, sbp->sb_blocklog, &max_bytes)) 146 return -EFBIG; 147 148 /* Limited by ULONG_MAX of page cache index */ 149 if (max_bytes >> PAGE_SHIFT > ULONG_MAX) 150 return -EFBIG; 151 return 0; 152 } 153 154 /* 155 * xfs_readsb 156 * 157 * Does the initial read of the superblock. 158 */ 159 int 160 xfs_readsb( 161 struct xfs_mount *mp, 162 int flags) 163 { 164 unsigned int sector_size; 165 struct xfs_buf *bp; 166 struct xfs_sb *sbp = &mp->m_sb; 167 int error; 168 int loud = !(flags & XFS_MFSI_QUIET); 169 const struct xfs_buf_ops *buf_ops; 170 171 ASSERT(mp->m_sb_bp == NULL); 172 ASSERT(mp->m_ddev_targp != NULL); 173 174 /* 175 * In the first pass, use the device sector size to just read enough 176 * of the superblock to extract the XFS sector size. 177 * 178 * The device sector size must be smaller than or equal to the XFS 179 * sector size and thus we can always read the superblock. Once we know 180 * the XFS sector size, re-read it and run the buffer verifier. 181 */ 182 sector_size = mp->m_ddev_targp->bt_logical_sectorsize; 183 buf_ops = NULL; 184 185 reread: 186 error = xfs_buf_read_uncached(mp->m_ddev_targp, XFS_SB_DADDR, 187 BTOBB(sector_size), &bp, buf_ops); 188 if (error) { 189 if (loud) 190 xfs_warn(mp, "SB validate failed with error %d.", error); 191 /* bad CRC means corrupted metadata */ 192 if (error == -EFSBADCRC) 193 error = -EFSCORRUPTED; 194 return error; 195 } 196 197 /* 198 * Initialize the mount structure from the superblock. 199 */ 200 xfs_sb_from_disk(sbp, bp->b_addr); 201 202 /* 203 * If we haven't validated the superblock, do so now before we try 204 * to check the sector size and reread the superblock appropriately. 205 */ 206 if (sbp->sb_magicnum != XFS_SB_MAGIC) { 207 if (loud) 208 xfs_warn(mp, "Invalid superblock magic number"); 209 error = -EINVAL; 210 goto release_buf; 211 } 212 213 /* 214 * We must be able to do sector-sized and sector-aligned IO. 215 */ 216 if (sector_size > sbp->sb_sectsize) { 217 if (loud) 218 xfs_warn(mp, "device supports %u byte sectors (not %u)", 219 sector_size, sbp->sb_sectsize); 220 error = -ENOSYS; 221 goto release_buf; 222 } 223 224 if (buf_ops == NULL) { 225 /* 226 * Re-read the superblock so the buffer is correctly sized, 227 * and properly verified. 228 */ 229 xfs_buf_relse(bp); 230 sector_size = sbp->sb_sectsize; 231 buf_ops = loud ? &xfs_sb_buf_ops : &xfs_sb_quiet_buf_ops; 232 goto reread; 233 } 234 235 mp->m_features |= xfs_sb_version_to_features(sbp); 236 xfs_reinit_percpu_counters(mp); 237 238 /* 239 * If logged xattrs are enabled after log recovery finishes, then set 240 * the opstate so that log recovery will work properly. 241 */ 242 if (xfs_sb_version_haslogxattrs(&mp->m_sb)) 243 xfs_set_using_logged_xattrs(mp); 244 245 /* no need to be quiet anymore, so reset the buf ops */ 246 bp->b_ops = &xfs_sb_buf_ops; 247 248 /* 249 * Keep a pointer of the sb buffer around instead of caching it in the 250 * buffer cache because we access it frequently. 251 */ 252 mp->m_sb_bp = bp; 253 xfs_buf_unlock(bp); 254 return 0; 255 256 release_buf: 257 xfs_buf_relse(bp); 258 return error; 259 } 260 261 /* 262 * If the sunit/swidth change would move the precomputed root inode value, we 263 * must reject the ondisk change because repair will stumble over that. 264 * However, we allow the mount to proceed because we never rejected this 265 * combination before. Returns true to update the sb, false otherwise. 266 */ 267 static inline int 268 xfs_check_new_dalign( 269 struct xfs_mount *mp, 270 int new_dalign, 271 bool *update_sb) 272 { 273 struct xfs_sb *sbp = &mp->m_sb; 274 xfs_ino_t calc_ino; 275 276 calc_ino = xfs_ialloc_calc_rootino(mp, new_dalign); 277 trace_xfs_check_new_dalign(mp, new_dalign, calc_ino); 278 279 if (sbp->sb_rootino == calc_ino) { 280 *update_sb = true; 281 return 0; 282 } 283 284 xfs_warn(mp, 285 "Cannot change stripe alignment; would require moving root inode."); 286 287 /* 288 * XXX: Next time we add a new incompat feature, this should start 289 * returning -EINVAL to fail the mount. Until then, spit out a warning 290 * that we're ignoring the administrator's instructions. 291 */ 292 xfs_warn(mp, "Skipping superblock stripe alignment update."); 293 *update_sb = false; 294 return 0; 295 } 296 297 /* 298 * If we were provided with new sunit/swidth values as mount options, make sure 299 * that they pass basic alignment and superblock feature checks, and convert 300 * them into the same units (FSB) that everything else expects. This step 301 * /must/ be done before computing the inode geometry. 302 */ 303 STATIC int 304 xfs_validate_new_dalign( 305 struct xfs_mount *mp) 306 { 307 if (mp->m_dalign == 0) 308 return 0; 309 310 /* 311 * If stripe unit and stripe width are not multiples 312 * of the fs blocksize turn off alignment. 313 */ 314 if ((BBTOB(mp->m_dalign) & mp->m_blockmask) || 315 (BBTOB(mp->m_swidth) & mp->m_blockmask)) { 316 xfs_warn(mp, 317 "alignment check failed: sunit/swidth vs. blocksize(%d)", 318 mp->m_sb.sb_blocksize); 319 return -EINVAL; 320 } 321 322 /* 323 * Convert the stripe unit and width to FSBs. 324 */ 325 mp->m_dalign = XFS_BB_TO_FSBT(mp, mp->m_dalign); 326 if (mp->m_dalign && (mp->m_sb.sb_agblocks % mp->m_dalign)) { 327 xfs_warn(mp, 328 "alignment check failed: sunit/swidth vs. agsize(%d)", 329 mp->m_sb.sb_agblocks); 330 return -EINVAL; 331 } 332 333 if (!mp->m_dalign) { 334 xfs_warn(mp, 335 "alignment check failed: sunit(%d) less than bsize(%d)", 336 mp->m_dalign, mp->m_sb.sb_blocksize); 337 return -EINVAL; 338 } 339 340 mp->m_swidth = XFS_BB_TO_FSBT(mp, mp->m_swidth); 341 342 if (!xfs_has_dalign(mp)) { 343 xfs_warn(mp, 344 "cannot change alignment: superblock does not support data alignment"); 345 return -EINVAL; 346 } 347 348 return 0; 349 } 350 351 /* Update alignment values based on mount options and sb values. */ 352 STATIC int 353 xfs_update_alignment( 354 struct xfs_mount *mp) 355 { 356 struct xfs_sb *sbp = &mp->m_sb; 357 358 if (mp->m_dalign) { 359 bool update_sb; 360 int error; 361 362 if (sbp->sb_unit == mp->m_dalign && 363 sbp->sb_width == mp->m_swidth) 364 return 0; 365 366 error = xfs_check_new_dalign(mp, mp->m_dalign, &update_sb); 367 if (error || !update_sb) 368 return error; 369 370 sbp->sb_unit = mp->m_dalign; 371 sbp->sb_width = mp->m_swidth; 372 mp->m_update_sb = true; 373 } else if (!xfs_has_noalign(mp) && xfs_has_dalign(mp)) { 374 mp->m_dalign = sbp->sb_unit; 375 mp->m_swidth = sbp->sb_width; 376 } 377 378 return 0; 379 } 380 381 /* 382 * precalculate the low space thresholds for dynamic speculative preallocation. 383 */ 384 void 385 xfs_set_low_space_thresholds( 386 struct xfs_mount *mp) 387 { 388 uint64_t dblocks = mp->m_sb.sb_dblocks; 389 uint64_t rtexts = mp->m_sb.sb_rextents; 390 int i; 391 392 do_div(dblocks, 100); 393 do_div(rtexts, 100); 394 395 for (i = 0; i < XFS_LOWSP_MAX; i++) { 396 mp->m_low_space[i] = dblocks * (i + 1); 397 mp->m_low_rtexts[i] = rtexts * (i + 1); 398 } 399 } 400 401 /* 402 * Check that the data (and log if separate) is an ok size. 403 */ 404 STATIC int 405 xfs_check_sizes( 406 struct xfs_mount *mp) 407 { 408 struct xfs_buf *bp; 409 xfs_daddr_t d; 410 int error; 411 412 d = (xfs_daddr_t)XFS_FSB_TO_BB(mp, mp->m_sb.sb_dblocks); 413 if (XFS_BB_TO_FSB(mp, d) != mp->m_sb.sb_dblocks) { 414 xfs_warn(mp, "filesystem size mismatch detected"); 415 return -EFBIG; 416 } 417 error = xfs_buf_read_uncached(mp->m_ddev_targp, 418 d - XFS_FSS_TO_BB(mp, 1), 419 XFS_FSS_TO_BB(mp, 1), &bp, NULL); 420 if (error) { 421 xfs_warn(mp, "last sector read failed"); 422 return error; 423 } 424 xfs_buf_relse(bp); 425 426 if (mp->m_logdev_targp == mp->m_ddev_targp) 427 return 0; 428 429 d = (xfs_daddr_t)XFS_FSB_TO_BB(mp, mp->m_sb.sb_logblocks); 430 if (XFS_BB_TO_FSB(mp, d) != mp->m_sb.sb_logblocks) { 431 xfs_warn(mp, "log size mismatch detected"); 432 return -EFBIG; 433 } 434 error = xfs_buf_read_uncached(mp->m_logdev_targp, 435 d - XFS_FSB_TO_BB(mp, 1), 436 XFS_FSB_TO_BB(mp, 1), &bp, NULL); 437 if (error) { 438 xfs_warn(mp, "log device read failed"); 439 return error; 440 } 441 xfs_buf_relse(bp); 442 return 0; 443 } 444 445 /* 446 * Clear the quotaflags in memory and in the superblock. 447 */ 448 int 449 xfs_mount_reset_sbqflags( 450 struct xfs_mount *mp) 451 { 452 mp->m_qflags = 0; 453 454 /* It is OK to look at sb_qflags in the mount path without m_sb_lock. */ 455 if (mp->m_sb.sb_qflags == 0) 456 return 0; 457 spin_lock(&mp->m_sb_lock); 458 mp->m_sb.sb_qflags = 0; 459 spin_unlock(&mp->m_sb_lock); 460 461 if (!xfs_fs_writable(mp, SB_FREEZE_WRITE)) 462 return 0; 463 464 return xfs_sync_sb(mp, false); 465 } 466 467 static const char *const xfs_free_pool_name[] = { 468 [XC_FREE_BLOCKS] = "free blocks", 469 [XC_FREE_RTEXTENTS] = "free rt extents", 470 [XC_FREE_RTAVAILABLE] = "available rt extents", 471 }; 472 473 uint64_t 474 xfs_default_resblks( 475 struct xfs_mount *mp, 476 enum xfs_free_counter ctr) 477 { 478 switch (ctr) { 479 case XC_FREE_BLOCKS: 480 /* 481 * Default to 5% or 8192 FSBs of space reserved, whichever is 482 * smaller. 483 * 484 * This is intended to cover concurrent allocation transactions 485 * when we initially hit ENOSPC. These each require a 4 block 486 * reservation. Hence by default we cover roughly 2000 487 * concurrent allocation reservations. 488 */ 489 return min(div_u64(mp->m_sb.sb_dblocks, 20), 8192ULL); 490 case XC_FREE_RTEXTENTS: 491 case XC_FREE_RTAVAILABLE: 492 if (IS_ENABLED(CONFIG_XFS_RT) && xfs_has_zoned(mp)) 493 return xfs_zoned_default_resblks(mp, ctr); 494 return 0; 495 default: 496 ASSERT(0); 497 return 0; 498 } 499 } 500 501 /* Ensure the summary counts are correct. */ 502 STATIC int 503 xfs_check_summary_counts( 504 struct xfs_mount *mp) 505 { 506 int error = 0; 507 508 /* 509 * The AG0 superblock verifier rejects in-progress filesystems, 510 * so we should never see the flag set this far into mounting. 511 */ 512 if (mp->m_sb.sb_inprogress) { 513 xfs_err(mp, "sb_inprogress set after log recovery??"); 514 WARN_ON(1); 515 return -EFSCORRUPTED; 516 } 517 518 /* 519 * Now the log is mounted, we know if it was an unclean shutdown or 520 * not. If it was, with the first phase of recovery has completed, we 521 * have consistent AG blocks on disk. We have not recovered EFIs yet, 522 * but they are recovered transactionally in the second recovery phase 523 * later. 524 * 525 * If the log was clean when we mounted, we can check the summary 526 * counters. If any of them are obviously incorrect, we can recompute 527 * them from the AGF headers in the next step. 528 */ 529 if (xfs_is_clean(mp) && 530 (mp->m_sb.sb_fdblocks > mp->m_sb.sb_dblocks || 531 !xfs_verify_icount(mp, mp->m_sb.sb_icount) || 532 mp->m_sb.sb_ifree > mp->m_sb.sb_icount)) 533 xfs_fs_mark_sick(mp, XFS_SICK_FS_COUNTERS); 534 535 /* 536 * We can safely re-initialise incore superblock counters from the 537 * per-ag data. These may not be correct if the filesystem was not 538 * cleanly unmounted, so we waited for recovery to finish before doing 539 * this. 540 * 541 * If the filesystem was cleanly unmounted or the previous check did 542 * not flag anything weird, then we can trust the values in the 543 * superblock to be correct and we don't need to do anything here. 544 * Otherwise, recalculate the summary counters. 545 */ 546 if ((xfs_has_lazysbcount(mp) && !xfs_is_clean(mp)) || 547 xfs_fs_has_sickness(mp, XFS_SICK_FS_COUNTERS)) { 548 error = xfs_initialize_perag_data(mp, mp->m_sb.sb_agcount); 549 if (error) 550 return error; 551 } 552 553 /* 554 * Older kernels misused sb_frextents to reflect both incore 555 * reservations made by running transactions and the actual count of 556 * free rt extents in the ondisk metadata. Transactions committed 557 * during runtime can therefore contain a superblock update that 558 * undercounts the number of free rt extents tracked in the rt bitmap. 559 * A clean unmount record will have the correct frextents value since 560 * there can be no other transactions running at that point. 561 * 562 * If we're mounting the rt volume after recovering the log, recompute 563 * frextents from the rtbitmap file to fix the inconsistency. 564 */ 565 if (xfs_has_realtime(mp) && !xfs_has_zoned(mp) && !xfs_is_clean(mp)) { 566 error = xfs_rtalloc_reinit_frextents(mp); 567 if (error) 568 return error; 569 } 570 571 return 0; 572 } 573 574 static void 575 xfs_unmount_check( 576 struct xfs_mount *mp) 577 { 578 if (xfs_is_shutdown(mp)) 579 return; 580 581 if (percpu_counter_sum(&mp->m_ifree) > 582 percpu_counter_sum(&mp->m_icount)) { 583 xfs_alert(mp, "ifree/icount mismatch at unmount"); 584 xfs_fs_mark_sick(mp, XFS_SICK_FS_COUNTERS); 585 } 586 } 587 588 /* 589 * Flush and reclaim dirty inodes in preparation for unmount. Inodes and 590 * internal inode structures can be sitting in the CIL and AIL at this point, 591 * so we need to unpin them, write them back and/or reclaim them before unmount 592 * can proceed. In other words, callers are required to have inactivated all 593 * inodes. 594 * 595 * An inode cluster that has been freed can have its buffer still pinned in 596 * memory because the transaction is still sitting in a iclog. The stale inodes 597 * on that buffer will be pinned to the buffer until the transaction hits the 598 * disk and the callbacks run. Pushing the AIL will skip the stale inodes and 599 * may never see the pinned buffer, so nothing will push out the iclog and 600 * unpin the buffer. 601 * 602 * Hence we need to force the log to unpin everything first. However, log 603 * forces don't wait for the discards they issue to complete, so we have to 604 * explicitly wait for them to complete here as well. 605 * 606 * Then we can tell the world we are unmounting so that error handling knows 607 * that the filesystem is going away and we should error out anything that we 608 * have been retrying in the background. This will prevent never-ending 609 * retries in AIL pushing from hanging the unmount. 610 * 611 * Stop inodegc and background reclaim before pushing the AIL so that they 612 * are not running while the AIL is being flushed. Then push the AIL to 613 * clean all the remaining dirty objects and reclaim the remaining inodes. 614 */ 615 static void 616 xfs_unmount_flush_inodes( 617 struct xfs_mount *mp) 618 { 619 xfs_log_force(mp, XFS_LOG_SYNC); 620 xfs_extent_busy_wait_all(mp); 621 flush_workqueue(xfs_discard_wq); 622 623 xfs_set_unmounting(mp); 624 625 xfs_inodegc_stop(mp); 626 cancel_delayed_work_sync(&mp->m_reclaim_work); 627 xfs_ail_push_all_sync(mp->m_ail); 628 xfs_reclaim_inodes(mp); 629 xfs_health_unmount(mp); 630 xfs_healthmon_unmount(mp); 631 } 632 633 static void 634 xfs_mount_setup_inode_geom( 635 struct xfs_mount *mp) 636 { 637 struct xfs_ino_geometry *igeo = M_IGEO(mp); 638 639 igeo->attr_fork_offset = xfs_bmap_compute_attr_offset(mp); 640 ASSERT(igeo->attr_fork_offset < XFS_LITINO(mp)); 641 642 xfs_ialloc_setup_geometry(mp); 643 } 644 645 /* Mount the metadata directory tree root. */ 646 STATIC int 647 xfs_mount_setup_metadir( 648 struct xfs_mount *mp) 649 { 650 int error; 651 652 /* Load the metadata directory root inode into memory. */ 653 error = xfs_metafile_iget(mp, mp->m_sb.sb_metadirino, XFS_METAFILE_DIR, 654 &mp->m_metadirip); 655 if (error) 656 xfs_warn(mp, "Failed to load metadir root directory, error %d", 657 error); 658 return error; 659 } 660 661 /* Compute maximum possible height for per-AG btree types for this fs. */ 662 static inline void 663 xfs_agbtree_compute_maxlevels( 664 struct xfs_mount *mp) 665 { 666 unsigned int levels; 667 668 levels = max(mp->m_alloc_maxlevels, M_IGEO(mp)->inobt_maxlevels); 669 levels = max(levels, mp->m_rmap_maxlevels); 670 mp->m_agbtree_maxlevels = max(levels, mp->m_refc_maxlevels); 671 } 672 673 /* Maximum atomic write IO size that the kernel allows. */ 674 static inline xfs_extlen_t xfs_calc_atomic_write_max(struct xfs_mount *mp) 675 { 676 return rounddown_pow_of_two(XFS_B_TO_FSB(mp, MAX_RW_COUNT)); 677 } 678 679 /* 680 * If the underlying device advertises atomic write support, limit the size of 681 * atomic writes to the greatest power-of-two factor of the group size so 682 * that every atomic write unit aligns with the start of every group. This is 683 * required so that the allocations for an atomic write will always be 684 * aligned compatibly with the alignment requirements of the storage. 685 * 686 * If the device doesn't advertise atomic writes, then there are no alignment 687 * restrictions and the largest out-of-place write we can do ourselves is the 688 * number of blocks that user files can allocate from any group. 689 */ 690 static xfs_extlen_t 691 xfs_calc_group_awu_max( 692 struct xfs_mount *mp, 693 enum xfs_group_type type) 694 { 695 struct xfs_groups *g = &mp->m_groups[type]; 696 struct xfs_buftarg *btp = xfs_group_type_buftarg(mp, type); 697 698 if (g->blocks == 0) 699 return 0; 700 if (btp && btp->bt_awu_min > 0) 701 return max_pow_of_two_factor(g->blocks); 702 return rounddown_pow_of_two(g->blocks); 703 } 704 705 /* Compute the maximum atomic write unit size for each section. */ 706 static inline void 707 xfs_calc_atomic_write_unit_max( 708 struct xfs_mount *mp, 709 enum xfs_group_type type) 710 { 711 struct xfs_groups *g = &mp->m_groups[type]; 712 713 const xfs_extlen_t max_write = xfs_calc_atomic_write_max(mp); 714 const xfs_extlen_t max_ioend = xfs_reflink_max_atomic_cow(mp); 715 const xfs_extlen_t max_gsize = xfs_calc_group_awu_max(mp, type); 716 717 g->awu_max = min3(max_write, max_ioend, max_gsize); 718 trace_xfs_calc_atomic_write_unit_max(mp, type, max_write, max_ioend, 719 max_gsize, g->awu_max); 720 } 721 722 /* 723 * Try to set the atomic write maximum to a new value that we got from 724 * userspace via mount option. 725 */ 726 int 727 xfs_set_max_atomic_write_opt( 728 struct xfs_mount *mp, 729 unsigned long long new_max_bytes) 730 { 731 const xfs_filblks_t new_max_fsbs = XFS_B_TO_FSBT(mp, new_max_bytes); 732 const xfs_extlen_t max_write = xfs_calc_atomic_write_max(mp); 733 const xfs_extlen_t max_group = 734 max(mp->m_groups[XG_TYPE_AG].blocks, 735 mp->m_groups[XG_TYPE_RTG].blocks); 736 const xfs_extlen_t max_group_write = 737 max(xfs_calc_group_awu_max(mp, XG_TYPE_AG), 738 xfs_calc_group_awu_max(mp, XG_TYPE_RTG)); 739 int error; 740 741 if (new_max_bytes == 0) 742 goto set_limit; 743 744 ASSERT(max_write <= U32_MAX); 745 746 /* generic_atomic_write_valid enforces power of two length */ 747 if (!is_power_of_2(new_max_bytes)) { 748 xfs_warn(mp, 749 "max atomic write size of %llu bytes is not a power of 2", 750 new_max_bytes); 751 return -EINVAL; 752 } 753 754 if (new_max_bytes & mp->m_blockmask) { 755 xfs_warn(mp, 756 "max atomic write size of %llu bytes not aligned with fsblock", 757 new_max_bytes); 758 return -EINVAL; 759 } 760 761 if (new_max_fsbs > max_write) { 762 xfs_warn(mp, 763 "max atomic write size of %lluk cannot be larger than max write size %lluk", 764 new_max_bytes >> 10, 765 XFS_FSB_TO_B(mp, max_write) >> 10); 766 return -EINVAL; 767 } 768 769 if (new_max_fsbs > max_group) { 770 xfs_warn(mp, 771 "max atomic write size of %lluk cannot be larger than allocation group size %lluk", 772 new_max_bytes >> 10, 773 XFS_FSB_TO_B(mp, max_group) >> 10); 774 return -EINVAL; 775 } 776 777 if (new_max_fsbs > max_group_write) { 778 xfs_warn(mp, 779 "max atomic write size of %lluk cannot be larger than max allocation group write size %lluk", 780 new_max_bytes >> 10, 781 XFS_FSB_TO_B(mp, max_group_write) >> 10); 782 return -EINVAL; 783 } 784 785 if (xfs_has_reflink(mp)) 786 goto set_limit; 787 788 if (new_max_fsbs == 1) { 789 if (mp->m_ddev_targp->bt_awu_max || 790 (mp->m_rtdev_targp && mp->m_rtdev_targp->bt_awu_max)) { 791 } else { 792 xfs_warn(mp, 793 "cannot support atomic writes of size %lluk with no reflink or HW support", 794 new_max_bytes >> 10); 795 return -EINVAL; 796 } 797 } else { 798 xfs_warn(mp, 799 "cannot support atomic writes of size %lluk with no reflink support", 800 new_max_bytes >> 10); 801 return -EINVAL; 802 } 803 804 set_limit: 805 error = xfs_calc_atomic_write_reservation(mp, new_max_fsbs); 806 if (error) { 807 xfs_warn(mp, 808 "cannot support completing atomic writes of %lluk", 809 new_max_bytes >> 10); 810 return error; 811 } 812 813 xfs_calc_atomic_write_unit_max(mp, XG_TYPE_AG); 814 xfs_calc_atomic_write_unit_max(mp, XG_TYPE_RTG); 815 mp->m_awu_max_bytes = new_max_bytes; 816 return 0; 817 } 818 819 /* Compute maximum possible height for realtime btree types for this fs. */ 820 static inline void 821 xfs_rtbtree_compute_maxlevels( 822 struct xfs_mount *mp) 823 { 824 mp->m_rtbtree_maxlevels = max(mp->m_rtrmap_maxlevels, 825 mp->m_rtrefc_maxlevels); 826 } 827 828 /* 829 * This function does the following on an initial mount of a file system: 830 * - reads the superblock from disk and init the mount struct 831 * - if we're a 32-bit kernel, do a size check on the superblock 832 * so we don't mount terabyte filesystems 833 * - init mount struct realtime fields 834 * - allocate inode hash table for fs 835 * - init directory manager 836 * - perform recovery and init the log manager 837 */ 838 int 839 xfs_mountfs( 840 struct xfs_mount *mp) 841 { 842 struct xfs_sb *sbp = &(mp->m_sb); 843 struct xfs_inode *rip; 844 struct xfs_ino_geometry *igeo = M_IGEO(mp); 845 uint quotamount = 0; 846 uint quotaflags = 0; 847 int error = 0; 848 int i; 849 850 xfs_sb_mount_common(mp, sbp); 851 852 /* 853 * Check for a mismatched features2 values. Older kernels read & wrote 854 * into the wrong sb offset for sb_features2 on some platforms due to 855 * xfs_sb_t not being 64bit size aligned when sb_features2 was added, 856 * which made older superblock reading/writing routines swap it as a 857 * 64-bit value. 858 * 859 * For backwards compatibility, we make both slots equal. 860 * 861 * If we detect a mismatched field, we OR the set bits into the existing 862 * features2 field in case it has already been modified; we don't want 863 * to lose any features. We then update the bad location with the ORed 864 * value so that older kernels will see any features2 flags. The 865 * superblock writeback code ensures the new sb_features2 is copied to 866 * sb_bad_features2 before it is logged or written to disk. 867 */ 868 if (xfs_sb_has_mismatched_features2(sbp)) { 869 xfs_warn(mp, "correcting sb_features alignment problem"); 870 sbp->sb_features2 |= sbp->sb_bad_features2; 871 mp->m_update_sb = true; 872 } 873 874 875 /* always use v2 inodes by default now */ 876 if (!(mp->m_sb.sb_versionnum & XFS_SB_VERSION_NLINKBIT)) { 877 mp->m_sb.sb_versionnum |= XFS_SB_VERSION_NLINKBIT; 878 mp->m_features |= XFS_FEAT_NLINK; 879 mp->m_update_sb = true; 880 } 881 882 /* 883 * If we were given new sunit/swidth options, do some basic validation 884 * checks and convert the incore dalign and swidth values to the 885 * same units (FSB) that everything else uses. This /must/ happen 886 * before computing the inode geometry. 887 */ 888 error = xfs_validate_new_dalign(mp); 889 if (error) 890 goto out; 891 892 xfs_alloc_compute_maxlevels(mp); 893 xfs_bmap_compute_maxlevels(mp, XFS_DATA_FORK); 894 xfs_bmap_compute_maxlevels(mp, XFS_ATTR_FORK); 895 xfs_mount_setup_inode_geom(mp); 896 xfs_rmapbt_compute_maxlevels(mp); 897 xfs_rtrmapbt_compute_maxlevels(mp); 898 xfs_refcountbt_compute_maxlevels(mp); 899 xfs_rtrefcountbt_compute_maxlevels(mp); 900 901 xfs_agbtree_compute_maxlevels(mp); 902 xfs_rtbtree_compute_maxlevels(mp); 903 904 /* 905 * Check if sb_agblocks is aligned at stripe boundary. If sb_agblocks 906 * is NOT aligned turn off m_dalign since allocator alignment is within 907 * an ag, therefore ag has to be aligned at stripe boundary. Note that 908 * we must compute the free space and rmap btree geometry before doing 909 * this. 910 */ 911 error = xfs_update_alignment(mp); 912 if (error) 913 goto out; 914 915 /* enable fail_at_unmount as default */ 916 mp->m_fail_unmount = true; 917 918 error = xfs_mount_sysfs_init(mp); 919 if (error) 920 goto out_remove_scrub_stats; 921 922 xchk_stats_register(mp->m_scrub_stats, mp->m_debugfs); 923 924 error = xfs_errortag_init(mp); 925 if (error) 926 goto out_remove_sysfs; 927 928 error = xfs_uuid_mount(mp); 929 if (error) 930 goto out_remove_errortag; 931 932 /* 933 * Update the preferred write size based on the information from the 934 * on-disk superblock. 935 */ 936 mp->m_allocsize_log = 937 max_t(uint32_t, sbp->sb_blocklog, mp->m_allocsize_log); 938 mp->m_allocsize_blocks = 1U << (mp->m_allocsize_log - sbp->sb_blocklog); 939 940 /* set the low space thresholds for dynamic preallocation */ 941 xfs_set_low_space_thresholds(mp); 942 943 /* 944 * If enabled, sparse inode chunk alignment is expected to match the 945 * cluster size. Full inode chunk alignment must match the chunk size, 946 * but that is checked on sb read verification... 947 */ 948 if (xfs_has_sparseinodes(mp) && 949 mp->m_sb.sb_spino_align != 950 XFS_B_TO_FSBT(mp, igeo->inode_cluster_size_raw)) { 951 xfs_warn(mp, 952 "Sparse inode block alignment (%u) must match cluster size (%llu).", 953 mp->m_sb.sb_spino_align, 954 XFS_B_TO_FSBT(mp, igeo->inode_cluster_size_raw)); 955 error = -EINVAL; 956 goto out_remove_uuid; 957 } 958 959 /* 960 * Check that the data (and log if separate) is an ok size. 961 */ 962 error = xfs_check_sizes(mp); 963 if (error) 964 goto out_remove_uuid; 965 966 /* 967 * Initialize realtime fields in the mount structure 968 */ 969 error = xfs_rtmount_init(mp); 970 if (error) { 971 xfs_warn(mp, "RT mount failed"); 972 goto out_remove_uuid; 973 } 974 975 /* 976 * Copies the low order bits of the timestamp and the randomly 977 * set "sequence" number out of a UUID. 978 */ 979 mp->m_fixedfsid[0] = 980 (get_unaligned_be16(&sbp->sb_uuid.b[8]) << 16) | 981 get_unaligned_be16(&sbp->sb_uuid.b[4]); 982 mp->m_fixedfsid[1] = get_unaligned_be32(&sbp->sb_uuid.b[0]); 983 984 error = xfs_da_mount(mp); 985 if (error) { 986 xfs_warn(mp, "Failed dir/attr init: %d", error); 987 goto out_remove_uuid; 988 } 989 990 /* 991 * Initialize the precomputed transaction reservations values. 992 */ 993 xfs_trans_init(mp); 994 995 /* 996 * Allocate and initialize the per-ag data. 997 */ 998 error = xfs_initialize_perag(mp, 0, sbp->sb_agcount, 999 mp->m_sb.sb_dblocks, &mp->m_maxagi); 1000 if (error) { 1001 xfs_warn(mp, "Failed per-ag init: %d", error); 1002 goto out_free_dir; 1003 } 1004 1005 error = xfs_initialize_rtgroups(mp, 0, sbp->sb_rgcount, 1006 mp->m_sb.sb_rextents); 1007 if (error) { 1008 xfs_warn(mp, "Failed rtgroup init: %d", error); 1009 goto out_free_perag; 1010 } 1011 1012 if (XFS_IS_CORRUPT(mp, !sbp->sb_logblocks)) { 1013 xfs_warn(mp, "no log defined"); 1014 error = -EFSCORRUPTED; 1015 goto out_free_rtgroup; 1016 } 1017 1018 error = xfs_inodegc_register_shrinker(mp); 1019 if (error) 1020 goto out_fail_wait; 1021 1022 /* 1023 * If we're resuming quota status, pick up the preliminary qflags from 1024 * the ondisk superblock so that we know if we should recover dquots. 1025 */ 1026 if (xfs_is_resuming_quotaon(mp)) 1027 xfs_qm_resume_quotaon(mp); 1028 1029 /* 1030 * Log's mount-time initialization. The first part of recovery can place 1031 * some items on the AIL, to be handled when recovery is finished or 1032 * cancelled. 1033 */ 1034 error = xfs_log_mount(mp, mp->m_logdev_targp, 1035 XFS_FSB_TO_DADDR(mp, sbp->sb_logstart), 1036 XFS_FSB_TO_BB(mp, sbp->sb_logblocks)); 1037 if (error) { 1038 xfs_warn(mp, "log mount failed"); 1039 goto out_inodegc_shrinker; 1040 } 1041 1042 /* 1043 * If we're resuming quota status and recovered the log, re-sample the 1044 * qflags from the ondisk superblock now that we've recovered it, just 1045 * in case someone shut down enforcement just before a crash. 1046 */ 1047 if (xfs_clear_resuming_quotaon(mp) && xlog_recovery_needed(mp->m_log)) 1048 xfs_qm_resume_quotaon(mp); 1049 1050 /* 1051 * If logged xattrs are still enabled after log recovery finishes, then 1052 * they'll be available until unmount. Otherwise, turn them off. 1053 */ 1054 if (xfs_sb_version_haslogxattrs(&mp->m_sb)) 1055 xfs_set_using_logged_xattrs(mp); 1056 else 1057 xfs_clear_using_logged_xattrs(mp); 1058 1059 /* Enable background inode inactivation workers. */ 1060 xfs_inodegc_start(mp); 1061 xfs_blockgc_start(mp); 1062 1063 if (xfs_has_metadir(mp)) { 1064 error = xfs_mount_setup_metadir(mp); 1065 if (error) 1066 goto out_free_metadir; 1067 } 1068 1069 /* 1070 * Get and sanity-check the root inode. 1071 * Save the pointer to it in the mount structure. 1072 */ 1073 error = xfs_iget(mp, NULL, sbp->sb_rootino, XFS_IGET_UNTRUSTED, 1074 XFS_ILOCK_EXCL, &rip); 1075 if (error) { 1076 xfs_warn(mp, 1077 "Failed to read root inode 0x%llx, error %d", 1078 sbp->sb_rootino, -error); 1079 goto out_free_metadir; 1080 } 1081 1082 ASSERT(rip != NULL); 1083 1084 if (XFS_IS_CORRUPT(mp, !S_ISDIR(VFS_I(rip)->i_mode))) { 1085 xfs_warn(mp, "corrupted root inode %llu: not a directory", 1086 (unsigned long long)rip->i_ino); 1087 xfs_iunlock(rip, XFS_ILOCK_EXCL); 1088 error = -EFSCORRUPTED; 1089 goto out_rele_rip; 1090 } 1091 mp->m_rootip = rip; /* save it */ 1092 1093 xfs_iunlock(rip, XFS_ILOCK_EXCL); 1094 1095 /* 1096 * Initialize realtime inode pointers in the mount structure 1097 */ 1098 error = xfs_rtmount_inodes(mp); 1099 if (error) { 1100 /* 1101 * Free up the root inode. 1102 */ 1103 xfs_warn(mp, "failed to read RT inodes"); 1104 goto out_rele_rip; 1105 } 1106 1107 /* Make sure the summary counts are ok. */ 1108 error = xfs_check_summary_counts(mp); 1109 if (error) 1110 goto out_rtunmount; 1111 1112 /* 1113 * If this is a read-only mount defer the superblock updates until 1114 * the next remount into writeable mode. Otherwise we would never 1115 * perform the update e.g. for the root filesystem. 1116 */ 1117 if (mp->m_update_sb && !xfs_is_readonly(mp)) { 1118 error = xfs_sync_sb(mp, false); 1119 if (error) { 1120 xfs_warn(mp, "failed to write sb changes"); 1121 goto out_rtunmount; 1122 } 1123 } 1124 1125 /* 1126 * Initialise the XFS quota management subsystem for this mount 1127 */ 1128 if (XFS_IS_QUOTA_ON(mp)) { 1129 error = xfs_qm_newmount(mp, "amount, "aflags); 1130 if (error) 1131 goto out_rtunmount; 1132 } else { 1133 /* 1134 * If a file system had quotas running earlier, but decided to 1135 * mount without -o uquota/pquota/gquota options, revoke the 1136 * quotachecked license. 1137 */ 1138 if (mp->m_sb.sb_qflags & XFS_ALL_QUOTA_ACCT) { 1139 xfs_notice(mp, "resetting quota flags"); 1140 error = xfs_mount_reset_sbqflags(mp); 1141 if (error) 1142 goto out_rtunmount; 1143 } 1144 } 1145 1146 /* 1147 * Finish recovering the file system. This part needed to be delayed 1148 * until after the root and real-time bitmap inodes were consistently 1149 * read in. Temporarily create per-AG space reservations for metadata 1150 * btree shape changes because space freeing transactions (for inode 1151 * inactivation) require the per-AG reservation in lieu of reserving 1152 * blocks. 1153 */ 1154 error = xfs_fs_reserve_ag_blocks(mp); 1155 if (error && error == -ENOSPC) 1156 xfs_warn(mp, 1157 "ENOSPC reserving per-AG metadata pool, log recovery may fail."); 1158 error = xfs_log_mount_finish(mp); 1159 xfs_fs_unreserve_ag_blocks(mp); 1160 if (error) { 1161 xfs_warn(mp, "log mount finish failed"); 1162 goto out_rtunmount; 1163 } 1164 1165 /* 1166 * Now the log is fully replayed, we can transition to full read-only 1167 * mode for read-only mounts. This will sync all the metadata and clean 1168 * the log so that the recovery we just performed does not have to be 1169 * replayed again on the next mount. 1170 * 1171 * We use the same quiesce mechanism as the rw->ro remount, as they are 1172 * semantically identical operations. 1173 */ 1174 if (xfs_is_readonly(mp) && !xfs_has_norecovery(mp)) 1175 xfs_log_clean(mp); 1176 1177 if (xfs_has_zoned(mp)) { 1178 error = xfs_mount_zones(mp); 1179 if (error) 1180 goto out_rtunmount; 1181 } 1182 1183 /* 1184 * Complete the quota initialisation, post-log-replay component. 1185 */ 1186 if (quotamount) { 1187 ASSERT(mp->m_qflags == 0); 1188 mp->m_qflags = quotaflags; 1189 1190 xfs_qm_mount_quotas(mp); 1191 } 1192 1193 /* 1194 * Now we are mounted, reserve a small amount of unused space for 1195 * privileged transactions. This is needed so that transaction 1196 * space required for critical operations can dip into this pool 1197 * when at ENOSPC. This is needed for operations like create with 1198 * attr, unwritten extent conversion at ENOSPC, garbage collection 1199 * etc. Data allocations are not allowed to use this reserved space. 1200 * 1201 * This may drive us straight to ENOSPC on mount, but that implies 1202 * we were already there on the last unmount. Warn if this occurs. 1203 */ 1204 if (!xfs_is_readonly(mp)) { 1205 for (i = 0; i < XC_FREE_NR; i++) { 1206 error = xfs_reserve_blocks(mp, i, 1207 xfs_default_resblks(mp, i)); 1208 if (error) 1209 xfs_warn(mp, 1210 "Unable to allocate reserve blocks. Continuing without reserve pool for %s.", 1211 xfs_free_pool_name[i]); 1212 } 1213 1214 /* Reserve AG blocks for future btree expansion. */ 1215 error = xfs_fs_reserve_ag_blocks(mp); 1216 if (error && error != -ENOSPC) 1217 goto out_agresv; 1218 1219 xfs_zone_gc_start(mp); 1220 } 1221 1222 /* 1223 * Pre-calculate atomic write unit max. This involves computations 1224 * derived from transaction reservations, so we must do this after the 1225 * log is fully initialized. 1226 */ 1227 error = xfs_set_max_atomic_write_opt(mp, mp->m_awu_max_bytes); 1228 if (error) 1229 goto out_agresv; 1230 1231 return 0; 1232 1233 out_agresv: 1234 xfs_fs_unreserve_ag_blocks(mp); 1235 xfs_qm_unmount_quotas(mp); 1236 if (xfs_has_zoned(mp)) 1237 xfs_unmount_zones(mp); 1238 out_rtunmount: 1239 xfs_rtunmount_inodes(mp); 1240 out_rele_rip: 1241 xfs_irele(rip); 1242 /* Clean out dquots that might be in memory after quotacheck. */ 1243 xfs_qm_unmount(mp); 1244 out_free_metadir: 1245 if (mp->m_metadirip) 1246 xfs_irele(mp->m_metadirip); 1247 1248 /* 1249 * Inactivate all inodes that might still be in memory after a log 1250 * intent recovery failure so that reclaim can free them. Metadata 1251 * inodes and the root directory shouldn't need inactivation, but the 1252 * mount failed for some reason, so pull down all the state and flee. 1253 */ 1254 xfs_inodegc_flush(mp); 1255 1256 /* 1257 * Flush all inode reclamation work and flush the log. 1258 * We have to do this /after/ rtunmount and qm_unmount because those 1259 * two will have scheduled delayed reclaim for the rt/quota inodes. 1260 * 1261 * This is slightly different from the unmountfs call sequence 1262 * because we could be tearing down a partially set up mount. In 1263 * particular, if log_mount_finish fails we bail out without calling 1264 * qm_unmount_quotas and therefore rely on qm_unmount to release the 1265 * quota inodes. 1266 */ 1267 xfs_unmount_flush_inodes(mp); 1268 xfs_log_mount_cancel(mp); 1269 out_inodegc_shrinker: 1270 shrinker_free(mp->m_inodegc_shrinker); 1271 out_fail_wait: 1272 if (mp->m_logdev_targp && mp->m_logdev_targp != mp->m_ddev_targp) 1273 xfs_buftarg_drain(mp->m_logdev_targp); 1274 xfs_buftarg_drain(mp->m_ddev_targp); 1275 out_free_rtgroup: 1276 xfs_free_rtgroups(mp, 0, mp->m_sb.sb_rgcount); 1277 out_free_perag: 1278 xfs_free_perag_range(mp, 0, mp->m_sb.sb_agcount); 1279 out_free_dir: 1280 xfs_da_unmount(mp); 1281 out_remove_uuid: 1282 xfs_uuid_unmount(mp); 1283 out_remove_errortag: 1284 xfs_errortag_del(mp); 1285 out_remove_sysfs: 1286 xfs_mount_sysfs_del(mp); 1287 out_remove_scrub_stats: 1288 xchk_stats_unregister(mp->m_scrub_stats); 1289 out: 1290 return error; 1291 } 1292 1293 /* 1294 * This flushes out the inodes,dquots and the superblock, unmounts the 1295 * log and makes sure that incore structures are freed. 1296 */ 1297 void 1298 xfs_unmountfs( 1299 struct xfs_mount *mp) 1300 { 1301 int error; 1302 1303 /* 1304 * Perform all on-disk metadata updates required to inactivate inodes 1305 * that the VFS evicted earlier in the unmount process. Freeing inodes 1306 * and discarding CoW fork preallocations can cause shape changes to 1307 * the free inode and refcount btrees, respectively, so we must finish 1308 * this before we discard the metadata space reservations. Metadata 1309 * inodes and the root directory do not require inactivation. 1310 */ 1311 xfs_inodegc_flush(mp); 1312 1313 xfs_blockgc_stop(mp); 1314 if (!test_bit(XFS_OPSTATE_READONLY, &mp->m_opstate)) 1315 xfs_zone_gc_stop(mp); 1316 xfs_fs_unreserve_ag_blocks(mp); 1317 xfs_qm_unmount_quotas(mp); 1318 if (xfs_has_zoned(mp)) 1319 xfs_unmount_zones(mp); 1320 xfs_rtunmount_inodes(mp); 1321 xfs_irele(mp->m_rootip); 1322 if (mp->m_metadirip) 1323 xfs_irele(mp->m_metadirip); 1324 1325 xfs_unmount_flush_inodes(mp); 1326 1327 xfs_qm_unmount(mp); 1328 1329 /* 1330 * Unreserve any blocks we have so that when we unmount we don't account 1331 * the reserved free space as used. This is really only necessary for 1332 * lazy superblock counting because it trusts the incore superblock 1333 * counters to be absolutely correct on clean unmount. 1334 * 1335 * We don't bother correcting this elsewhere for lazy superblock 1336 * counting because on mount of an unclean filesystem we reconstruct the 1337 * correct counter value and this is irrelevant. 1338 * 1339 * For non-lazy counter filesystems, this doesn't matter at all because 1340 * we only every apply deltas to the superblock and hence the incore 1341 * value does not matter.... 1342 */ 1343 error = xfs_reserve_blocks(mp, XC_FREE_BLOCKS, 0); 1344 if (error) 1345 xfs_warn(mp, "Unable to free reserved block pool. " 1346 "Freespace may not be correct on next mount."); 1347 xfs_unmount_check(mp); 1348 1349 /* 1350 * Indicate that it's ok to clear log incompat bits before cleaning 1351 * the log and writing the unmount record. 1352 */ 1353 xfs_set_done_with_log_incompat(mp); 1354 xfs_log_unmount(mp); 1355 xfs_da_unmount(mp); 1356 xfs_uuid_unmount(mp); 1357 1358 #if defined(DEBUG) 1359 xfs_errortag_clearall(mp); 1360 #endif 1361 shrinker_free(mp->m_inodegc_shrinker); 1362 xfs_free_rtgroups(mp, 0, mp->m_sb.sb_rgcount); 1363 xfs_free_perag_range(mp, 0, mp->m_sb.sb_agcount); 1364 xfs_errortag_del(mp); 1365 xchk_stats_unregister(mp->m_scrub_stats); 1366 xfs_mount_sysfs_del(mp); 1367 } 1368 1369 /* 1370 * Determine whether modifications can proceed. The caller specifies the minimum 1371 * freeze level for which modifications should not be allowed. This allows 1372 * certain operations to proceed while the freeze sequence is in progress, if 1373 * necessary. 1374 */ 1375 bool 1376 xfs_fs_writable( 1377 struct xfs_mount *mp, 1378 int level) 1379 { 1380 ASSERT(level > SB_UNFROZEN); 1381 if ((mp->m_super->s_writers.frozen >= level) || 1382 xfs_is_shutdown(mp) || xfs_is_readonly(mp)) 1383 return false; 1384 1385 return true; 1386 } 1387 1388 /* 1389 * Estimate the amount of free space that is not available to userspace and is 1390 * not explicitly reserved from the incore fdblocks. This includes: 1391 * 1392 * - The minimum number of blocks needed to support splitting a bmap btree 1393 * - The blocks currently in use by the freespace btrees because they record 1394 * the actual blocks that will fill per-AG metadata space reservations 1395 */ 1396 uint64_t 1397 xfs_freecounter_unavailable( 1398 struct xfs_mount *mp, 1399 enum xfs_free_counter ctr) 1400 { 1401 if (ctr != XC_FREE_BLOCKS) 1402 return 0; 1403 return mp->m_alloc_set_aside + atomic64_read(&mp->m_allocbt_blks); 1404 } 1405 1406 void 1407 xfs_add_freecounter( 1408 struct xfs_mount *mp, 1409 enum xfs_free_counter ctr, 1410 uint64_t delta) 1411 { 1412 struct xfs_freecounter *counter = &mp->m_free[ctr]; 1413 uint64_t res_used; 1414 1415 /* 1416 * If the reserve pool is depleted, put blocks back into it first. 1417 * Most of the time the pool is full. 1418 */ 1419 if (likely(counter->res_avail == counter->res_total)) { 1420 percpu_counter_add(&counter->count, delta); 1421 return; 1422 } 1423 1424 spin_lock(&mp->m_sb_lock); 1425 res_used = counter->res_total - counter->res_avail; 1426 if (res_used > delta) { 1427 counter->res_avail += delta; 1428 } else { 1429 delta -= res_used; 1430 counter->res_avail = counter->res_total; 1431 percpu_counter_add(&counter->count, delta); 1432 } 1433 spin_unlock(&mp->m_sb_lock); 1434 } 1435 1436 1437 /* Adjust in-core free blocks or RT extents. */ 1438 int 1439 xfs_dec_freecounter( 1440 struct xfs_mount *mp, 1441 enum xfs_free_counter ctr, 1442 uint64_t delta, 1443 bool rsvd) 1444 { 1445 struct xfs_freecounter *counter = &mp->m_free[ctr]; 1446 s32 batch; 1447 1448 ASSERT(ctr < XC_FREE_NR); 1449 1450 /* 1451 * Taking blocks away, need to be more accurate the closer we 1452 * are to zero. 1453 * 1454 * If the counter has a value of less than 2 * max batch size, 1455 * then make everything serialise as we are real close to 1456 * ENOSPC. 1457 */ 1458 if (__percpu_counter_compare(&counter->count, 2 * XFS_FDBLOCKS_BATCH, 1459 XFS_FDBLOCKS_BATCH) < 0) 1460 batch = 1; 1461 else 1462 batch = XFS_FDBLOCKS_BATCH; 1463 1464 /* 1465 * Set aside allocbt blocks because these blocks are tracked as free 1466 * space but not available for allocation. Technically this means that a 1467 * single reservation cannot consume all remaining free space, but the 1468 * ratio of allocbt blocks to usable free blocks should be rather small. 1469 * The tradeoff without this is that filesystems that maintain high 1470 * perag block reservations can over reserve physical block availability 1471 * and fail physical allocation, which leads to much more serious 1472 * problems (i.e. transaction abort, pagecache discards, etc.) than 1473 * slightly premature -ENOSPC. 1474 */ 1475 percpu_counter_add_batch(&counter->count, -((int64_t)delta), batch); 1476 if (__percpu_counter_compare(&counter->count, 1477 xfs_freecounter_unavailable(mp, ctr), 1478 XFS_FDBLOCKS_BATCH) < 0) { 1479 /* 1480 * Lock up the sb for dipping into reserves before releasing the 1481 * space that took us to ENOSPC. 1482 */ 1483 spin_lock(&mp->m_sb_lock); 1484 percpu_counter_add(&counter->count, delta); 1485 if (!rsvd) 1486 goto fdblocks_enospc; 1487 if (delta > counter->res_avail) { 1488 if (ctr == XC_FREE_BLOCKS) 1489 xfs_warn_once(mp, 1490 "Reserve blocks depleted! Consider increasing reserve pool size."); 1491 goto fdblocks_enospc; 1492 } 1493 counter->res_avail -= delta; 1494 trace_xfs_freecounter_reserved(mp, ctr, delta, _RET_IP_); 1495 spin_unlock(&mp->m_sb_lock); 1496 } 1497 1498 /* we had space! */ 1499 return 0; 1500 1501 fdblocks_enospc: 1502 trace_xfs_freecounter_enospc(mp, ctr, delta, _RET_IP_); 1503 spin_unlock(&mp->m_sb_lock); 1504 return -ENOSPC; 1505 } 1506 1507 /* 1508 * Used to free the superblock along various error paths. 1509 */ 1510 void 1511 xfs_freesb( 1512 struct xfs_mount *mp) 1513 { 1514 struct xfs_buf *bp = mp->m_sb_bp; 1515 1516 xfs_buf_lock(bp); 1517 mp->m_sb_bp = NULL; 1518 xfs_buf_relse(bp); 1519 } 1520 1521 /* 1522 * If the underlying (data/log/rt) device is readonly, there are some 1523 * operations that cannot proceed. 1524 */ 1525 int 1526 xfs_dev_is_read_only( 1527 struct xfs_mount *mp, 1528 char *message) 1529 { 1530 if (xfs_readonly_buftarg(mp->m_ddev_targp) || 1531 xfs_readonly_buftarg(mp->m_logdev_targp) || 1532 (mp->m_rtdev_targp && xfs_readonly_buftarg(mp->m_rtdev_targp))) { 1533 xfs_notice(mp, "%s required on read-only device.", message); 1534 xfs_notice(mp, "write access unavailable, cannot proceed."); 1535 return -EROFS; 1536 } 1537 return 0; 1538 } 1539 1540 /* Force the summary counters to be recalculated at next mount. */ 1541 void 1542 xfs_force_summary_recalc( 1543 struct xfs_mount *mp) 1544 { 1545 if (!xfs_has_lazysbcount(mp)) 1546 return; 1547 1548 xfs_fs_mark_sick(mp, XFS_SICK_FS_COUNTERS); 1549 } 1550 1551 /* 1552 * Enable a log incompat feature flag in the primary superblock. The caller 1553 * cannot have any other transactions in progress. 1554 */ 1555 int 1556 xfs_add_incompat_log_feature( 1557 struct xfs_mount *mp, 1558 uint32_t feature) 1559 { 1560 struct xfs_dsb *dsb; 1561 int error; 1562 1563 ASSERT(hweight32(feature) == 1); 1564 ASSERT(!(feature & XFS_SB_FEAT_INCOMPAT_LOG_UNKNOWN)); 1565 1566 /* 1567 * Force the log to disk and kick the background AIL thread to reduce 1568 * the chances that the bwrite will stall waiting for the AIL to unpin 1569 * the primary superblock buffer. This isn't a data integrity 1570 * operation, so we don't need a synchronous push. 1571 */ 1572 error = xfs_log_force(mp, XFS_LOG_SYNC); 1573 if (error) 1574 return error; 1575 xfs_ail_push_all(mp->m_ail); 1576 1577 /* 1578 * Lock the primary superblock buffer to serialize all callers that 1579 * are trying to set feature bits. 1580 */ 1581 xfs_buf_lock(mp->m_sb_bp); 1582 xfs_buf_hold(mp->m_sb_bp); 1583 1584 if (xfs_is_shutdown(mp)) { 1585 error = -EIO; 1586 goto rele; 1587 } 1588 1589 if (xfs_sb_has_incompat_log_feature(&mp->m_sb, feature)) 1590 goto rele; 1591 1592 /* 1593 * Write the primary superblock to disk immediately, because we need 1594 * the log_incompat bit to be set in the primary super now to protect 1595 * the log items that we're going to commit later. 1596 */ 1597 dsb = mp->m_sb_bp->b_addr; 1598 xfs_sb_to_disk(dsb, &mp->m_sb); 1599 dsb->sb_features_log_incompat |= cpu_to_be32(feature); 1600 error = xfs_bwrite(mp->m_sb_bp); 1601 if (error) 1602 goto shutdown; 1603 1604 /* 1605 * Add the feature bits to the incore superblock before we unlock the 1606 * buffer. 1607 */ 1608 xfs_sb_add_incompat_log_features(&mp->m_sb, feature); 1609 xfs_buf_relse(mp->m_sb_bp); 1610 1611 /* Log the superblock to disk. */ 1612 return xfs_sync_sb(mp, false); 1613 shutdown: 1614 xfs_force_shutdown(mp, SHUTDOWN_META_IO_ERROR); 1615 rele: 1616 xfs_buf_relse(mp->m_sb_bp); 1617 return error; 1618 } 1619 1620 /* 1621 * Clear all the log incompat flags from the superblock. 1622 * 1623 * The caller cannot be in a transaction, must ensure that the log does not 1624 * contain any log items protected by any log incompat bit, and must ensure 1625 * that there are no other threads that depend on the state of the log incompat 1626 * feature flags in the primary super. 1627 * 1628 * Returns true if the superblock is dirty. 1629 */ 1630 bool 1631 xfs_clear_incompat_log_features( 1632 struct xfs_mount *mp) 1633 { 1634 bool ret = false; 1635 1636 if (!xfs_has_crc(mp) || 1637 !xfs_sb_has_incompat_log_feature(&mp->m_sb, 1638 XFS_SB_FEAT_INCOMPAT_LOG_ALL) || 1639 xfs_is_shutdown(mp) || 1640 !xfs_is_done_with_log_incompat(mp)) 1641 return false; 1642 1643 /* 1644 * Update the incore superblock. We synchronize on the primary super 1645 * buffer lock to be consistent with the add function, though at least 1646 * in theory this shouldn't be necessary. 1647 */ 1648 xfs_buf_lock(mp->m_sb_bp); 1649 xfs_buf_hold(mp->m_sb_bp); 1650 1651 if (xfs_sb_has_incompat_log_feature(&mp->m_sb, 1652 XFS_SB_FEAT_INCOMPAT_LOG_ALL)) { 1653 xfs_sb_remove_incompat_log_features(&mp->m_sb); 1654 ret = true; 1655 } 1656 1657 xfs_buf_relse(mp->m_sb_bp); 1658 return ret; 1659 } 1660 1661 /* 1662 * Update the in-core delayed block counter. 1663 * 1664 * We prefer to update the counter without having to take a spinlock for every 1665 * counter update (i.e. batching). Each change to delayed allocation 1666 * reservations can change can easily exceed the default percpu counter 1667 * batching, so we use a larger batch factor here. 1668 * 1669 * Note that we don't currently have any callers requiring fast summation 1670 * (e.g. percpu_counter_read) so we can use a big batch value here. 1671 */ 1672 #define XFS_DELALLOC_BATCH (4096) 1673 void 1674 xfs_mod_delalloc( 1675 struct xfs_inode *ip, 1676 int64_t data_delta, 1677 int64_t ind_delta) 1678 { 1679 struct xfs_mount *mp = ip->i_mount; 1680 1681 if (XFS_IS_REALTIME_INODE(ip)) { 1682 percpu_counter_add_batch(&mp->m_delalloc_rtextents, 1683 xfs_blen_to_rtbxlen(mp, data_delta), 1684 XFS_DELALLOC_BATCH); 1685 if (!ind_delta) 1686 return; 1687 data_delta = 0; 1688 } 1689 percpu_counter_add_batch(&mp->m_delalloc_blks, data_delta + ind_delta, 1690 XFS_DELALLOC_BATCH); 1691 } 1692