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_mount.h" 13 #include "xfs_inode.h" 14 #include "xfs_trans.h" 15 #include "xfs_trans_priv.h" 16 #include "xfs_inode_item.h" 17 #include "xfs_quota.h" 18 #include "xfs_trace.h" 19 #include "xfs_icache.h" 20 #include "xfs_bmap_util.h" 21 #include "xfs_dquot_item.h" 22 #include "xfs_dquot.h" 23 #include "xfs_reflink.h" 24 #include "xfs_ialloc.h" 25 #include "xfs_ag.h" 26 #include "xfs_log_priv.h" 27 #include "xfs_health.h" 28 #include "xfs_da_format.h" 29 #include "xfs_dir2.h" 30 #include "xfs_metafile.h" 31 32 #include <linux/iversion.h> 33 34 /* Radix tree tags for incore inode tree. */ 35 36 /* inode is to be reclaimed */ 37 #define XFS_ICI_RECLAIM_TAG 0 38 /* Inode has speculative preallocations (posteof or cow) to clean. */ 39 #define XFS_ICI_BLOCKGC_TAG 1 40 41 /* 42 * The goal for walking incore inodes. These can correspond with incore inode 43 * radix tree tags when convenient. Avoid existing XFS_IWALK namespace. 44 */ 45 enum xfs_icwalk_goal { 46 /* Goals directly associated with tagged inodes. */ 47 XFS_ICWALK_BLOCKGC = XFS_ICI_BLOCKGC_TAG, 48 XFS_ICWALK_RECLAIM = XFS_ICI_RECLAIM_TAG, 49 }; 50 51 static int xfs_icwalk(struct xfs_mount *mp, 52 enum xfs_icwalk_goal goal, struct xfs_icwalk *icw); 53 static int xfs_icwalk_ag(struct xfs_perag *pag, 54 enum xfs_icwalk_goal goal, struct xfs_icwalk *icw); 55 56 /* 57 * Private inode cache walk flags for struct xfs_icwalk. Must not 58 * coincide with XFS_ICWALK_FLAGS_VALID. 59 */ 60 61 /* Stop scanning after icw_scan_limit inodes. */ 62 #define XFS_ICWALK_FLAG_SCAN_LIMIT (1U << 28) 63 64 #define XFS_ICWALK_FLAG_RECLAIM_SICK (1U << 27) 65 #define XFS_ICWALK_FLAG_UNION (1U << 26) /* union filter algorithm */ 66 67 #define XFS_ICWALK_PRIVATE_FLAGS (XFS_ICWALK_FLAG_SCAN_LIMIT | \ 68 XFS_ICWALK_FLAG_RECLAIM_SICK | \ 69 XFS_ICWALK_FLAG_UNION) 70 71 /* Marks for the perag xarray */ 72 #define XFS_PERAG_RECLAIM_MARK XA_MARK_0 73 #define XFS_PERAG_BLOCKGC_MARK XA_MARK_1 74 75 static inline xa_mark_t ici_tag_to_mark(unsigned int tag) 76 { 77 if (tag == XFS_ICI_RECLAIM_TAG) 78 return XFS_PERAG_RECLAIM_MARK; 79 ASSERT(tag == XFS_ICI_BLOCKGC_TAG); 80 return XFS_PERAG_BLOCKGC_MARK; 81 } 82 83 /* 84 * Allocate and initialise an xfs_inode. 85 * 86 * This can happen in context of already dirtied transactions, so the memory 87 * allocations must not fail. 88 */ 89 struct xfs_inode * 90 xfs_inode_alloc( 91 struct xfs_mount *mp, 92 xfs_ino_t ino) 93 { 94 gfp_t gfp = GFP_KERNEL | __GFP_NOFAIL; 95 struct xfs_inode *ip; 96 97 ip = alloc_inode_sb(mp->m_super, xfs_inode_cache, gfp); 98 inode_init_always_gfp(mp->m_super, VFS_I(ip), gfp); 99 100 VFS_I(ip)->i_ino = ino; 101 /* VFS doesn't initialise i_mode! */ 102 VFS_I(ip)->i_mode = 0; 103 mapping_set_folio_min_order(VFS_I(ip)->i_mapping, 104 M_IGEO(mp)->min_folio_order); 105 106 XFS_STATS_INC(mp, xs_inodes_active); 107 ASSERT(atomic_read(&ip->i_pincount) == 0); 108 109 /* initialise the xfs inode */ 110 ip->i_mount = mp; 111 memset(&ip->i_imap, 0, sizeof(struct xfs_imap)); 112 ip->i_cowfp = NULL; 113 memset(&ip->i_af, 0, sizeof(ip->i_af)); 114 ip->i_af.if_format = XFS_DINODE_FMT_EXTENTS; 115 memset(&ip->i_df, 0, sizeof(ip->i_df)); 116 ip->i_flags = 0; 117 ip->i_delayed_blks = 0; 118 ip->i_diflags2 = mp->m_ino_geo.new_diflags2; 119 ip->i_nblocks = 0; 120 ip->i_forkoff = 0; 121 ip->i_sick = 0; 122 ip->i_checked = 0; 123 INIT_WORK(&ip->i_ioend_work, xfs_end_io); 124 INIT_LIST_HEAD(&ip->i_ioend_list); 125 spin_lock_init(&ip->i_ioend_lock); 126 ip->i_next_unlinked = NULLAGINO; 127 ip->i_prev_unlinked = 0; 128 129 return ip; 130 } 131 132 STATIC void 133 xfs_inode_free_callback( 134 struct rcu_head *head) 135 { 136 struct inode *inode = container_of(head, struct inode, i_rcu); 137 struct xfs_inode *ip = XFS_I(inode); 138 139 switch (VFS_I(ip)->i_mode & S_IFMT) { 140 case S_IFREG: 141 case S_IFDIR: 142 case S_IFLNK: 143 xfs_idestroy_fork(&ip->i_df); 144 break; 145 } 146 147 xfs_ifork_zap_attr(ip); 148 149 if (ip->i_cowfp) { 150 xfs_idestroy_fork(ip->i_cowfp); 151 kmem_cache_free(xfs_ifork_cache, ip->i_cowfp); 152 } 153 if (ip->i_itemp) { 154 ASSERT(!test_bit(XFS_LI_IN_AIL, 155 &ip->i_itemp->ili_item.li_flags)); 156 xfs_inode_item_destroy(ip); 157 } 158 159 kmem_cache_free(xfs_inode_cache, ip); 160 } 161 162 static void 163 __xfs_inode_free( 164 struct xfs_inode *ip) 165 { 166 /* asserts to verify all state is correct here */ 167 ASSERT(atomic_read(&ip->i_pincount) == 0); 168 ASSERT(!ip->i_itemp || list_empty(&ip->i_itemp->ili_item.li_bio_list)); 169 if (xfs_is_metadir_inode(ip)) 170 XFS_STATS_DEC(ip->i_mount, xs_inodes_meta); 171 else 172 XFS_STATS_DEC(ip->i_mount, xs_inodes_active); 173 174 call_rcu(&VFS_I(ip)->i_rcu, xfs_inode_free_callback); 175 } 176 177 void 178 xfs_inode_free( 179 struct xfs_inode *ip) 180 { 181 ASSERT(!xfs_iflags_test(ip, XFS_IFLUSHING)); 182 183 /* 184 * Because we use RCU freeing we need to ensure the inode always 185 * appears to be reclaimed with an invalid inode number when in the 186 * free state. The ip->i_flags_lock provides the barrier against lookup 187 * races. 188 */ 189 spin_lock(&ip->i_flags_lock); 190 ip->i_flags = XFS_IRECLAIM; 191 VFS_I(ip)->i_ino = 0; 192 spin_unlock(&ip->i_flags_lock); 193 194 __xfs_inode_free(ip); 195 } 196 197 /* 198 * Queue background inode reclaim work if there are reclaimable inodes and there 199 * isn't reclaim work already scheduled or in progress. 200 */ 201 static void 202 xfs_reclaim_work_queue( 203 struct xfs_mount *mp) 204 { 205 206 rcu_read_lock(); 207 if (xfs_group_marked(mp, XG_TYPE_AG, XFS_PERAG_RECLAIM_MARK)) { 208 queue_delayed_work(mp->m_reclaim_workqueue, &mp->m_reclaim_work, 209 msecs_to_jiffies(xfs_syncd_centisecs / 6 * 10)); 210 } 211 rcu_read_unlock(); 212 } 213 214 /* 215 * Background scanning to trim preallocated space. This is queued based on the 216 * 'speculative_prealloc_lifetime' tunable (5m by default). 217 */ 218 static inline void 219 xfs_blockgc_queue( 220 struct xfs_perag *pag) 221 { 222 struct xfs_mount *mp = pag_mount(pag); 223 224 if (!xfs_is_blockgc_enabled(mp)) 225 return; 226 227 rcu_read_lock(); 228 if (radix_tree_tagged(&pag->pag_ici_root, XFS_ICI_BLOCKGC_TAG)) 229 queue_delayed_work(mp->m_blockgc_wq, &pag->pag_blockgc_work, 230 secs_to_jiffies(xfs_blockgc_secs)); 231 rcu_read_unlock(); 232 } 233 234 /* Set a tag on both the AG incore inode tree and the AG radix tree. */ 235 static void 236 xfs_perag_set_inode_tag( 237 struct xfs_perag *pag, 238 xfs_agino_t agino, 239 unsigned int tag) 240 { 241 bool was_tagged; 242 243 lockdep_assert_held(&pag->pag_ici_lock); 244 245 was_tagged = radix_tree_tagged(&pag->pag_ici_root, tag); 246 radix_tree_tag_set(&pag->pag_ici_root, agino, tag); 247 248 if (tag == XFS_ICI_RECLAIM_TAG) 249 pag->pag_ici_reclaimable++; 250 251 if (was_tagged) 252 return; 253 254 /* propagate the tag up into the pag xarray tree */ 255 xfs_group_set_mark(pag_group(pag), ici_tag_to_mark(tag)); 256 257 /* start background work */ 258 switch (tag) { 259 case XFS_ICI_RECLAIM_TAG: 260 xfs_reclaim_work_queue(pag_mount(pag)); 261 break; 262 case XFS_ICI_BLOCKGC_TAG: 263 xfs_blockgc_queue(pag); 264 break; 265 } 266 267 trace_xfs_perag_set_inode_tag(pag, _RET_IP_); 268 } 269 270 /* Clear a tag on both the AG incore inode tree and the AG radix tree. */ 271 static void 272 xfs_perag_clear_inode_tag( 273 struct xfs_perag *pag, 274 xfs_agino_t agino, 275 unsigned int tag) 276 { 277 lockdep_assert_held(&pag->pag_ici_lock); 278 279 /* 280 * Reclaim can signal (with a null agino) that it cleared its own tag 281 * by removing the inode from the radix tree. 282 */ 283 if (agino != NULLAGINO) 284 radix_tree_tag_clear(&pag->pag_ici_root, agino, tag); 285 else 286 ASSERT(tag == XFS_ICI_RECLAIM_TAG); 287 288 if (tag == XFS_ICI_RECLAIM_TAG) 289 pag->pag_ici_reclaimable--; 290 291 if (radix_tree_tagged(&pag->pag_ici_root, tag)) 292 return; 293 294 /* clear the tag from the pag xarray */ 295 xfs_group_clear_mark(pag_group(pag), ici_tag_to_mark(tag)); 296 trace_xfs_perag_clear_inode_tag(pag, _RET_IP_); 297 } 298 299 /* 300 * Find the next AG after @pag, or the first AG if @pag is NULL. 301 */ 302 static struct xfs_perag * 303 xfs_perag_grab_next_tag( 304 struct xfs_mount *mp, 305 struct xfs_perag *pag, 306 int tag) 307 { 308 return to_perag(xfs_group_grab_next_mark(mp, 309 pag ? pag_group(pag) : NULL, 310 ici_tag_to_mark(tag), XG_TYPE_AG)); 311 } 312 313 /* 314 * When we recycle a reclaimable inode, we need to re-initialise the VFS inode 315 * part of the structure. This is made more complex by the fact we store 316 * information about the on-disk values in the VFS inode and so we can't just 317 * overwrite the values unconditionally. Hence we save the parameters we 318 * need to retain across reinitialisation, and rewrite them into the VFS inode 319 * after reinitialisation even if it fails. 320 */ 321 static int 322 xfs_reinit_inode( 323 struct xfs_mount *mp, 324 struct inode *inode) 325 { 326 int error; 327 u64 ino = inode->i_ino; 328 uint32_t nlink = inode->i_nlink; 329 uint32_t generation = inode->i_generation; 330 uint64_t version = inode_peek_iversion(inode); 331 umode_t mode = inode->i_mode; 332 dev_t dev = inode->i_rdev; 333 kuid_t uid = inode->i_uid; 334 kgid_t gid = inode->i_gid; 335 unsigned long state = inode_state_read_once(inode); 336 337 error = inode_init_always(mp->m_super, inode); 338 339 inode->i_ino = ino; 340 set_nlink(inode, nlink); 341 inode->i_generation = generation; 342 inode_set_iversion_queried(inode, version); 343 inode->i_mode = mode; 344 inode->i_rdev = dev; 345 inode->i_uid = uid; 346 inode->i_gid = gid; 347 inode_state_assign_raw(inode, state); 348 mapping_set_folio_min_order(inode->i_mapping, 349 M_IGEO(mp)->min_folio_order); 350 return error; 351 } 352 353 /* 354 * Carefully nudge an inode whose VFS state has been torn down back into a 355 * usable state. Drops the i_flags_lock and the rcu read lock. 356 */ 357 static int 358 xfs_iget_recycle( 359 struct xfs_perag *pag, 360 struct xfs_inode *ip) 361 { 362 struct xfs_mount *mp = ip->i_mount; 363 struct inode *inode = VFS_I(ip); 364 int error; 365 366 trace_xfs_iget_recycle(ip); 367 368 ASSERT(!rwsem_is_locked(&inode->i_rwsem)); 369 error = xfs_reinit_inode(mp, inode); 370 xfs_iunlock(ip, XFS_ILOCK_EXCL); 371 if (error) { 372 /* 373 * Re-initializing the inode failed, and we are in deep 374 * trouble. Try to re-add it to the reclaim list. 375 */ 376 rcu_read_lock(); 377 spin_lock(&ip->i_flags_lock); 378 ip->i_flags &= ~(XFS_INEW | XFS_IRECLAIM); 379 ASSERT(ip->i_flags & XFS_IRECLAIMABLE); 380 spin_unlock(&ip->i_flags_lock); 381 rcu_read_unlock(); 382 383 trace_xfs_iget_recycle_fail(ip); 384 return error; 385 } 386 387 spin_lock(&pag->pag_ici_lock); 388 spin_lock(&ip->i_flags_lock); 389 390 /* 391 * Clear the per-lifetime state in the inode as we are now effectively 392 * a new inode and need to return to the initial state before reuse 393 * occurs. 394 */ 395 ip->i_flags &= ~XFS_IRECLAIM_RESET_FLAGS; 396 ip->i_flags |= XFS_INEW; 397 xfs_perag_clear_inode_tag(pag, XFS_INODE_TO_AGINO(ip), 398 XFS_ICI_RECLAIM_TAG); 399 inode_state_assign_raw(inode, I_NEW); 400 spin_unlock(&ip->i_flags_lock); 401 spin_unlock(&pag->pag_ici_lock); 402 403 return 0; 404 } 405 406 /* 407 * If we are allocating a new inode, then check what was returned is 408 * actually a free, empty inode. If we are not allocating an inode, 409 * then check we didn't find a free inode. 410 * 411 * Returns: 412 * 0 if the inode free state matches the lookup context 413 * -ENOENT if the inode is free and we are not allocating 414 * -EFSCORRUPTED if there is any state mismatch at all 415 */ 416 static int 417 xfs_iget_check_free_state( 418 struct xfs_inode *ip, 419 int flags) 420 { 421 if (flags & XFS_IGET_CREATE) { 422 /* should be a free inode */ 423 if (VFS_I(ip)->i_mode != 0) { 424 xfs_warn(ip->i_mount, 425 "Corruption detected! Free inode 0x%llx not marked free! (mode 0x%x)", 426 I_INO(ip), VFS_I(ip)->i_mode); 427 xfs_agno_mark_sick(ip->i_mount, XFS_INODE_TO_AGNO(ip), 428 XFS_SICK_AG_INOBT); 429 return -EFSCORRUPTED; 430 } 431 432 if (ip->i_nblocks != 0) { 433 xfs_warn(ip->i_mount, 434 "Corruption detected! Free inode 0x%llx has blocks allocated!", 435 I_INO(ip)); 436 xfs_agno_mark_sick(ip->i_mount, XFS_INODE_TO_AGNO(ip), 437 XFS_SICK_AG_INOBT); 438 return -EFSCORRUPTED; 439 } 440 return 0; 441 } 442 443 /* should be an allocated inode */ 444 if (VFS_I(ip)->i_mode == 0) 445 return -ENOENT; 446 447 return 0; 448 } 449 450 /* Make all pending inactivation work start immediately. */ 451 static bool 452 xfs_inodegc_queue_all( 453 struct xfs_mount *mp) 454 { 455 struct xfs_inodegc *gc; 456 int cpu; 457 bool ret = false; 458 459 for_each_cpu(cpu, &mp->m_inodegc_cpumask) { 460 gc = per_cpu_ptr(mp->m_inodegc, cpu); 461 if (!llist_empty(&gc->list)) { 462 mod_delayed_work_on(cpu, mp->m_inodegc_wq, &gc->work, 0); 463 ret = true; 464 } 465 } 466 467 return ret; 468 } 469 470 /* Wait for all queued work and collect errors */ 471 static int 472 xfs_inodegc_wait_all( 473 struct xfs_mount *mp) 474 { 475 int cpu; 476 int error = 0; 477 478 flush_workqueue(mp->m_inodegc_wq); 479 for_each_cpu(cpu, &mp->m_inodegc_cpumask) { 480 struct xfs_inodegc *gc; 481 482 gc = per_cpu_ptr(mp->m_inodegc, cpu); 483 if (gc->error && !error) 484 error = gc->error; 485 gc->error = 0; 486 } 487 488 return error; 489 } 490 491 /* 492 * Check the validity of the inode we just found it the cache 493 */ 494 static int 495 xfs_iget_cache_hit( 496 struct xfs_perag *pag, 497 struct xfs_inode *ip, 498 xfs_ino_t ino, 499 int flags, 500 int lock_flags) 501 __releases_shared(RCU) 502 { 503 struct inode *inode = VFS_I(ip); 504 struct xfs_mount *mp = ip->i_mount; 505 int error; 506 507 /* 508 * check for re-use of an inode within an RCU grace period due to the 509 * radix tree nodes not being updated yet. We monitor for this by 510 * setting the inode number to zero before freeing the inode structure. 511 * If the inode has been reallocated and set up, then the inode number 512 * will not match, so check for that, too. 513 */ 514 spin_lock(&ip->i_flags_lock); 515 if (I_INO(ip) != ino) 516 goto out_skip; 517 518 /* 519 * If we are racing with another cache hit that is currently 520 * instantiating this inode or currently recycling it out of 521 * reclaimable state, wait for the initialisation to complete 522 * before continuing. 523 * 524 * If we're racing with the inactivation worker we also want to wait. 525 * If we're creating a new file, it's possible that the worker 526 * previously marked the inode as free on disk but hasn't finished 527 * updating the incore state yet. The AGI buffer will be dirty and 528 * locked to the icreate transaction, so a synchronous push of the 529 * inodegc workers would result in deadlock. For a regular iget, the 530 * worker is running already, so we might as well wait. 531 * 532 * XXX(hch): eventually we should do something equivalent to 533 * wait_on_inode to wait for these flags to be cleared 534 * instead of polling for it. 535 */ 536 if (ip->i_flags & (XFS_INEW | XFS_IRECLAIM | XFS_INACTIVATING)) 537 goto out_skip; 538 539 if (ip->i_flags & XFS_NEED_INACTIVE) { 540 /* Unlinked inodes cannot be re-grabbed. */ 541 if (VFS_I(ip)->i_nlink == 0) { 542 error = -ENOENT; 543 goto out_error; 544 } 545 goto out_inodegc_flush; 546 } 547 548 /* 549 * Check the inode free state is valid. This also detects lookup 550 * racing with unlinks. 551 */ 552 error = xfs_iget_check_free_state(ip, flags); 553 if (error) 554 goto out_error; 555 556 /* Skip inodes that have no vfs state. */ 557 if ((flags & XFS_IGET_INCORE) && 558 (ip->i_flags & XFS_IRECLAIMABLE)) 559 goto out_skip; 560 561 /* The inode fits the selection criteria; process it. */ 562 if (ip->i_flags & XFS_IRECLAIMABLE) { 563 /* 564 * We need to make it look like the inode is being reclaimed to 565 * prevent the actual reclaim workers from stomping over us 566 * while we recycle the inode. We can't clear the radix tree 567 * tag yet as it requires pag_ici_lock to be held exclusive. 568 */ 569 if (!xfs_ilock_nowait(ip, XFS_ILOCK_EXCL)) 570 goto out_skip; 571 ip->i_flags |= XFS_IRECLAIM; 572 spin_unlock(&ip->i_flags_lock); 573 rcu_read_unlock(); 574 575 error = xfs_iget_recycle(pag, ip); 576 if (error) 577 return error; 578 } else { 579 /* If the VFS inode is being torn down, pause and try again. */ 580 if (!igrab(inode)) 581 goto out_skip; 582 583 /* We've got a live one. */ 584 spin_unlock(&ip->i_flags_lock); 585 rcu_read_unlock(); 586 trace_xfs_iget_hit(ip); 587 } 588 589 if (lock_flags != 0) 590 xfs_ilock(ip, lock_flags); 591 592 if (!(flags & XFS_IGET_INCORE)) 593 xfs_iflags_clear(ip, XFS_ISTALE); 594 XFS_STATS_INC(mp, xs_ig_found); 595 596 return 0; 597 598 out_skip: 599 trace_xfs_iget_skip(ip); 600 XFS_STATS_INC(mp, xs_ig_frecycle); 601 error = -EAGAIN; 602 out_error: 603 spin_unlock(&ip->i_flags_lock); 604 rcu_read_unlock(); 605 return error; 606 607 out_inodegc_flush: 608 spin_unlock(&ip->i_flags_lock); 609 rcu_read_unlock(); 610 /* 611 * Do not wait for the workers, because the caller could hold an AGI 612 * buffer lock. We're just going to sleep in a loop anyway. 613 */ 614 if (xfs_is_inodegc_enabled(mp)) 615 xfs_inodegc_queue_all(mp); 616 return -EAGAIN; 617 } 618 619 static int 620 xfs_iget_cache_miss( 621 struct xfs_mount *mp, 622 struct xfs_perag *pag, 623 xfs_trans_t *tp, 624 xfs_ino_t ino, 625 struct xfs_inode **ipp, 626 int flags, 627 int lock_flags) 628 { 629 struct xfs_inode *ip; 630 int error; 631 xfs_agino_t agino = XFS_INO_TO_AGINO(mp, ino); 632 633 ip = xfs_inode_alloc(mp, ino); 634 if (!ip) 635 return -ENOMEM; 636 637 /* 638 * Set XFS_INEW as early as possible so that the health code won't pass 639 * the inode to the fserror code if the ondisk inode cannot be loaded. 640 * We're going to free the xfs_inode immediately if that happens, which 641 * would lead to UAF problems. 642 */ 643 xfs_iflags_set(ip, XFS_INEW); 644 645 error = xfs_imap(pag, tp, I_INO(ip), &ip->i_imap, flags); 646 if (error) 647 goto out_destroy; 648 649 /* 650 * For version 5 superblocks, if we are initialising a new inode, we 651 * simply build the new inode core with a random generation number. 652 * 653 * For version 4 (and older) superblocks, log recovery is dependent on 654 * the i_flushiter field being initialised from the current on-disk 655 * value and hence we must also read the inode off disk even when 656 * initializing new inodes. 657 */ 658 if (xfs_has_v3inodes(mp) && (flags & XFS_IGET_CREATE)) { 659 VFS_I(ip)->i_generation = get_random_u32(); 660 } else { 661 struct xfs_buf *bp; 662 663 error = xfs_read_icluster(pag, tp, ip->i_imap.im_agbno, &bp); 664 if (error) 665 goto out_destroy; 666 667 error = xfs_inode_from_disk(ip, 668 xfs_buf_offset(bp, ip->i_imap.im_boffset)); 669 if (!error) 670 xfs_buf_set_ref(bp, XFS_INO_REF); 671 else 672 xfs_inode_mark_sick(ip, XFS_SICK_INO_CORE); 673 xfs_trans_brelse(tp, bp); 674 675 if (error) 676 goto out_destroy; 677 } 678 679 trace_xfs_iget_miss(ip); 680 681 /* 682 * Check the inode free state is valid. This also detects lookup 683 * racing with unlinks. 684 */ 685 error = xfs_iget_check_free_state(ip, flags); 686 if (error) 687 goto out_destroy; 688 689 /* 690 * Preload the radix tree so we can insert safely under the 691 * write spinlock. Note that we cannot sleep inside the preload 692 * region. 693 */ 694 if (radix_tree_preload(GFP_KERNEL | __GFP_NOLOCKDEP)) { 695 error = -EAGAIN; 696 goto out_destroy; 697 } 698 699 /* 700 * Because the inode hasn't been added to the radix-tree yet it can't 701 * be found by another thread, so we can do the non-sleeping lock here. 702 */ 703 if (lock_flags) { 704 if (!xfs_ilock_nowait(ip, lock_flags)) 705 BUG(); 706 } 707 708 /* 709 * These values must be set before inserting the inode into the radix 710 * tree as the moment it is inserted a concurrent lookup (allowed by the 711 * RCU locking mechanism) can find it and that lookup must see that this 712 * is an inode currently under construction (i.e. that XFS_INEW is set). 713 * The ip->i_flags_lock that protects the XFS_INEW flag forms the 714 * memory barrier that ensures this detection works correctly at lookup 715 * time. 716 */ 717 if (flags & XFS_IGET_DONTCACHE) 718 d_mark_dontcache(VFS_I(ip)); 719 ip->i_udquot = NULL; 720 ip->i_gdquot = NULL; 721 ip->i_pdquot = NULL; 722 723 /* insert the new inode */ 724 spin_lock(&pag->pag_ici_lock); 725 error = radix_tree_insert(&pag->pag_ici_root, agino, ip); 726 if (unlikely(error)) { 727 WARN_ON(error != -EEXIST); 728 XFS_STATS_INC(mp, xs_ig_dup); 729 error = -EAGAIN; 730 goto out_preload_end; 731 } 732 spin_unlock(&pag->pag_ici_lock); 733 radix_tree_preload_end(); 734 735 *ipp = ip; 736 return 0; 737 738 out_preload_end: 739 spin_unlock(&pag->pag_ici_lock); 740 radix_tree_preload_end(); 741 if (lock_flags) 742 xfs_iunlock(ip, lock_flags); 743 out_destroy: 744 __destroy_inode(VFS_I(ip)); 745 xfs_inode_free(ip); 746 return error; 747 } 748 749 /* 750 * Look up an inode by number in the given file system. The inode is looked up 751 * in the cache held in each AG. If the inode is found in the cache, initialise 752 * the vfs inode if necessary. 753 * 754 * If it is not in core, read it in from the file system's device, add it to the 755 * cache and initialise the vfs inode. 756 * 757 * The inode is locked according to the value of the lock_flags parameter. 758 * Inode lookup is only done during metadata operations and not as part of the 759 * data IO path. Hence we only allow locking of the XFS_ILOCK during lookup. 760 */ 761 int 762 xfs_iget( 763 struct xfs_mount *mp, 764 struct xfs_trans *tp, 765 xfs_ino_t ino, 766 uint flags, 767 uint lock_flags, 768 struct xfs_inode **ipp) 769 { 770 struct xfs_inode *ip; 771 struct xfs_perag *pag; 772 xfs_agino_t agino; 773 int error; 774 775 ASSERT((lock_flags & (XFS_IOLOCK_EXCL | XFS_IOLOCK_SHARED)) == 0); 776 777 /* reject inode numbers outside existing AGs */ 778 if (!xfs_verify_ino(mp, ino)) 779 return -EINVAL; 780 781 XFS_STATS_INC(mp, xs_ig_attempts); 782 783 /* get the perag structure and ensure that it's inode capable */ 784 pag = xfs_perag_get(mp, XFS_INO_TO_AGNO(mp, ino)); 785 agino = XFS_INO_TO_AGINO(mp, ino); 786 787 again: 788 error = 0; 789 rcu_read_lock(); 790 ip = radix_tree_lookup(&pag->pag_ici_root, agino); 791 792 if (ip) { 793 error = xfs_iget_cache_hit(pag, ip, ino, flags, lock_flags); 794 if (error) 795 goto out_error_or_again; 796 } else { 797 rcu_read_unlock(); 798 if (flags & XFS_IGET_INCORE) { 799 error = -ENODATA; 800 goto out_error_or_again; 801 } 802 XFS_STATS_INC(mp, xs_ig_missed); 803 804 error = xfs_iget_cache_miss(mp, pag, tp, ino, &ip, 805 flags, lock_flags); 806 if (error) 807 goto out_error_or_again; 808 } 809 xfs_perag_put(pag); 810 811 *ipp = ip; 812 813 /* 814 * If we have a real type for an on-disk inode, we can setup the inode 815 * now. If it's a new inode being created, xfs_init_new_inode will 816 * handle it. 817 */ 818 if (xfs_iflags_test(ip, XFS_INEW) && VFS_I(ip)->i_mode != 0) { 819 xfs_setup_inode(ip); 820 xfs_setup_iops(ip); 821 xfs_finish_inode_setup(ip); 822 } 823 return 0; 824 825 out_error_or_again: 826 if (!(flags & (XFS_IGET_INCORE | XFS_IGET_NORETRY)) && 827 error == -EAGAIN) { 828 delay(1); 829 goto again; 830 } 831 xfs_perag_put(pag); 832 return error; 833 } 834 835 /* 836 * Get a metadata inode. 837 * 838 * The metafile type must match the file mode exactly, and for files in the 839 * metadata directory tree, it must match the inode's metatype exactly. 840 */ 841 int 842 xfs_trans_metafile_iget( 843 struct xfs_trans *tp, 844 xfs_ino_t ino, 845 enum xfs_metafile_type metafile_type, 846 struct xfs_inode **ipp) 847 { 848 struct xfs_mount *mp = tp->t_mountp; 849 struct xfs_inode *ip; 850 umode_t mode; 851 int error; 852 853 error = xfs_iget(mp, tp, ino, 0, 0, &ip); 854 if (error == -EFSCORRUPTED || error == -EINVAL) 855 goto whine; 856 if (error) 857 return error; 858 859 if (VFS_I(ip)->i_nlink == 0) 860 goto bad_rele; 861 862 if (metafile_type == XFS_METAFILE_DIR) 863 mode = S_IFDIR; 864 else 865 mode = S_IFREG; 866 if (inode_wrong_type(VFS_I(ip), mode)) 867 goto bad_rele; 868 if (xfs_has_metadir(mp)) { 869 if (!xfs_is_metadir_inode(ip)) 870 goto bad_rele; 871 if (metafile_type != ip->i_metatype) 872 goto bad_rele; 873 } 874 875 *ipp = ip; 876 return 0; 877 bad_rele: 878 xfs_irele(ip); 879 whine: 880 xfs_err(mp, "metadata inode 0x%llx type %u is corrupt", ino, 881 metafile_type); 882 xfs_fs_mark_sick(mp, XFS_SICK_FS_METADIR); 883 return -EFSCORRUPTED; 884 } 885 886 /* Grab a metadata file if the caller doesn't already have a transaction. */ 887 int 888 xfs_metafile_iget( 889 struct xfs_mount *mp, 890 xfs_ino_t ino, 891 enum xfs_metafile_type metafile_type, 892 struct xfs_inode **ipp) 893 { 894 struct xfs_trans *tp; 895 int error; 896 897 tp = xfs_trans_alloc_empty(mp); 898 error = xfs_trans_metafile_iget(tp, ino, metafile_type, ipp); 899 xfs_trans_cancel(tp); 900 return error; 901 } 902 903 /* 904 * Grab the inode for reclaim exclusively. 905 * 906 * We have found this inode via a lookup under RCU, so the inode may have 907 * already been freed, or it may be in the process of being recycled by 908 * xfs_iget(). In both cases, the inode will have XFS_IRECLAIM set. If the inode 909 * has been fully recycled by the time we get the i_flags_lock, XFS_IRECLAIMABLE 910 * will not be set. Hence we need to check for both these flag conditions to 911 * avoid inodes that are no longer reclaim candidates. 912 * 913 * Note: checking for other state flags here, under the i_flags_lock or not, is 914 * racy and should be avoided. Those races should be resolved only after we have 915 * ensured that we are able to reclaim this inode and the world can see that we 916 * are going to reclaim it. 917 * 918 * Return true if we grabbed it, false otherwise. 919 */ 920 static bool 921 xfs_reclaim_igrab( 922 struct xfs_inode *ip, 923 struct xfs_icwalk *icw) 924 { 925 ASSERT(rcu_read_lock_held()); 926 927 spin_lock(&ip->i_flags_lock); 928 if (!__xfs_iflags_test(ip, XFS_IRECLAIMABLE) || 929 __xfs_iflags_test(ip, XFS_IRECLAIM)) { 930 /* not a reclaim candidate. */ 931 spin_unlock(&ip->i_flags_lock); 932 return false; 933 } 934 935 /* Don't reclaim a sick inode unless the caller asked for it. */ 936 if (ip->i_sick && 937 (!icw || !(icw->icw_flags & XFS_ICWALK_FLAG_RECLAIM_SICK))) { 938 spin_unlock(&ip->i_flags_lock); 939 return false; 940 } 941 942 __xfs_iflags_set(ip, XFS_IRECLAIM); 943 spin_unlock(&ip->i_flags_lock); 944 return true; 945 } 946 947 /* 948 * Inode reclaim is non-blocking, so the default action if progress cannot be 949 * made is to "requeue" the inode for reclaim by unlocking it and clearing the 950 * XFS_IRECLAIM flag. If we are in a shutdown state, we don't care about 951 * blocking anymore and hence we can wait for the inode to be able to reclaim 952 * it. 953 * 954 * We do no IO here - if callers require inodes to be cleaned they must push the 955 * AIL first to trigger writeback of dirty inodes. This enables writeback to be 956 * done in the background in a non-blocking manner, and enables memory reclaim 957 * to make progress without blocking. 958 */ 959 static void 960 xfs_reclaim_inode( 961 struct xfs_inode *ip, 962 struct xfs_perag *pag) 963 { 964 xfs_ino_t ino = I_INO(ip); /* for radix_tree_delete */ 965 966 if (!xfs_ilock_nowait(ip, XFS_ILOCK_EXCL)) 967 goto out; 968 if (xfs_iflags_test_and_set(ip, XFS_IFLUSHING)) 969 goto out_iunlock; 970 971 /* 972 * Check for log shutdown because aborting the inode can move the log 973 * tail and corrupt in memory state. This is fine if the log is shut 974 * down, but if the log is still active and only the mount is shut down 975 * then the in-memory log tail movement caused by the abort can be 976 * incorrectly propagated to disk. 977 */ 978 if (xlog_is_shutdown(ip->i_mount->m_log)) { 979 xfs_iunpin_wait(ip); 980 /* 981 * Avoid a ABBA deadlock on the inode cluster buffer vs 982 * concurrent xfs_ifree_cluster() trying to mark the inode 983 * stale. We don't need the inode locked to run the flush abort 984 * code, but the flush abort needs to lock the cluster buffer. 985 */ 986 xfs_iunlock(ip, XFS_ILOCK_EXCL); 987 xfs_iflush_shutdown_abort(ip); 988 xfs_ilock(ip, XFS_ILOCK_EXCL); 989 goto reclaim; 990 } 991 if (xfs_ipincount(ip)) 992 goto out_clear_flush; 993 if (!xfs_inode_clean(ip)) 994 goto out_clear_flush; 995 996 xfs_iflags_clear(ip, XFS_IFLUSHING); 997 reclaim: 998 trace_xfs_inode_reclaiming(ip); 999 1000 /* 1001 * Because we use RCU freeing we need to ensure the inode always appears 1002 * to be reclaimed with an invalid inode number when in the free state. 1003 * We do this as early as possible under the ILOCK so that 1004 * xfs_iflush_cluster() and xfs_ifree_cluster() can be guaranteed to 1005 * detect races with us here. By doing this, we guarantee that once 1006 * xfs_iflush_cluster() or xfs_ifree_cluster() has locked XFS_ILOCK that 1007 * it will see either a valid inode that will serialise correctly, or it 1008 * will see an invalid inode that it can skip. 1009 */ 1010 spin_lock(&ip->i_flags_lock); 1011 ip->i_flags = XFS_IRECLAIM; 1012 VFS_I(ip)->i_ino = 0; 1013 ip->i_sick = 0; 1014 ip->i_checked = 0; 1015 spin_unlock(&ip->i_flags_lock); 1016 1017 ASSERT(!ip->i_itemp || ip->i_itemp->ili_item.li_buf == NULL); 1018 xfs_iunlock(ip, XFS_ILOCK_EXCL); 1019 1020 XFS_STATS_INC(ip->i_mount, xs_ig_reclaims); 1021 /* 1022 * Remove the inode from the per-AG radix tree. 1023 * 1024 * Because radix_tree_delete won't complain even if the item was never 1025 * added to the tree assert that it's been there before to catch 1026 * problems with the inode life time early on. 1027 */ 1028 spin_lock(&pag->pag_ici_lock); 1029 if (!radix_tree_delete(&pag->pag_ici_root, 1030 XFS_INO_TO_AGINO(ip->i_mount, ino))) 1031 ASSERT(0); 1032 xfs_perag_clear_inode_tag(pag, NULLAGINO, XFS_ICI_RECLAIM_TAG); 1033 spin_unlock(&pag->pag_ici_lock); 1034 1035 /* 1036 * Here we do an (almost) spurious inode lock in order to coordinate 1037 * with inode cache radix tree lookups. This is because the lookup 1038 * can reference the inodes in the cache without taking references. 1039 * 1040 * We make that OK here by ensuring that we wait until the inode is 1041 * unlocked after the lookup before we go ahead and free it. 1042 */ 1043 xfs_ilock(ip, XFS_ILOCK_EXCL); 1044 ASSERT(!ip->i_udquot && !ip->i_gdquot && !ip->i_pdquot); 1045 xfs_iunlock(ip, XFS_ILOCK_EXCL); 1046 ASSERT(xfs_inode_clean(ip)); 1047 1048 __xfs_inode_free(ip); 1049 return; 1050 1051 out_clear_flush: 1052 xfs_iflags_clear(ip, XFS_IFLUSHING); 1053 out_iunlock: 1054 xfs_iunlock(ip, XFS_ILOCK_EXCL); 1055 out: 1056 xfs_iflags_clear(ip, XFS_IRECLAIM); 1057 } 1058 1059 /* Reclaim sick inodes if we're unmounting or the fs went down. */ 1060 static inline bool 1061 xfs_want_reclaim_sick( 1062 struct xfs_mount *mp) 1063 { 1064 return xfs_is_unmounting(mp) || xfs_has_norecovery(mp) || 1065 xfs_is_shutdown(mp); 1066 } 1067 1068 void 1069 xfs_reclaim_inodes( 1070 struct xfs_mount *mp) 1071 { 1072 struct xfs_icwalk icw = { 1073 .icw_flags = 0, 1074 }; 1075 1076 if (xfs_want_reclaim_sick(mp)) 1077 icw.icw_flags |= XFS_ICWALK_FLAG_RECLAIM_SICK; 1078 1079 while (xfs_group_marked(mp, XG_TYPE_AG, XFS_PERAG_RECLAIM_MARK)) { 1080 xfs_ail_push_all_sync(mp->m_ail); 1081 xfs_icwalk(mp, XFS_ICWALK_RECLAIM, &icw); 1082 } 1083 } 1084 1085 /* 1086 * The shrinker infrastructure determines how many inodes we should scan for 1087 * reclaim. We want as many clean inodes ready to reclaim as possible, so we 1088 * push the AIL here. We also want to proactively free up memory if we can to 1089 * minimise the amount of work memory reclaim has to do so we kick the 1090 * background reclaim if it isn't already scheduled. 1091 */ 1092 long 1093 xfs_reclaim_inodes_nr( 1094 struct xfs_mount *mp, 1095 unsigned long nr_to_scan) 1096 { 1097 struct xfs_icwalk icw = { 1098 .icw_flags = XFS_ICWALK_FLAG_SCAN_LIMIT, 1099 .icw_scan_limit = min_t(unsigned long, LONG_MAX, nr_to_scan), 1100 }; 1101 1102 if (xfs_want_reclaim_sick(mp)) 1103 icw.icw_flags |= XFS_ICWALK_FLAG_RECLAIM_SICK; 1104 1105 /* kick background reclaimer and push the AIL */ 1106 xfs_reclaim_work_queue(mp); 1107 xfs_ail_push_all(mp->m_ail); 1108 1109 xfs_icwalk(mp, XFS_ICWALK_RECLAIM, &icw); 1110 return 0; 1111 } 1112 1113 /* 1114 * Return the number of reclaimable inodes in the filesystem for 1115 * the shrinker to determine how much to reclaim. 1116 */ 1117 long 1118 xfs_reclaim_inodes_count( 1119 struct xfs_mount *mp) 1120 { 1121 XA_STATE (xas, &mp->m_groups[XG_TYPE_AG].xa, 0); 1122 long reclaimable = 0; 1123 struct xfs_perag *pag; 1124 1125 rcu_read_lock(); 1126 xas_for_each_marked(&xas, pag, ULONG_MAX, XFS_PERAG_RECLAIM_MARK) { 1127 trace_xfs_reclaim_inodes_count(pag, _THIS_IP_); 1128 reclaimable += pag->pag_ici_reclaimable; 1129 } 1130 rcu_read_unlock(); 1131 1132 return reclaimable; 1133 } 1134 1135 STATIC bool 1136 xfs_icwalk_match_id( 1137 struct xfs_inode *ip, 1138 struct xfs_icwalk *icw) 1139 { 1140 if ((icw->icw_flags & XFS_ICWALK_FLAG_UID) && 1141 !uid_eq(VFS_I(ip)->i_uid, icw->icw_uid)) 1142 return false; 1143 1144 if ((icw->icw_flags & XFS_ICWALK_FLAG_GID) && 1145 !gid_eq(VFS_I(ip)->i_gid, icw->icw_gid)) 1146 return false; 1147 1148 if ((icw->icw_flags & XFS_ICWALK_FLAG_PRID) && 1149 ip->i_projid != icw->icw_prid) 1150 return false; 1151 1152 return true; 1153 } 1154 1155 /* 1156 * A union-based inode filtering algorithm. Process the inode if any of the 1157 * criteria match. This is for global/internal scans only. 1158 */ 1159 STATIC bool 1160 xfs_icwalk_match_id_union( 1161 struct xfs_inode *ip, 1162 struct xfs_icwalk *icw) 1163 { 1164 if ((icw->icw_flags & XFS_ICWALK_FLAG_UID) && 1165 uid_eq(VFS_I(ip)->i_uid, icw->icw_uid)) 1166 return true; 1167 1168 if ((icw->icw_flags & XFS_ICWALK_FLAG_GID) && 1169 gid_eq(VFS_I(ip)->i_gid, icw->icw_gid)) 1170 return true; 1171 1172 if ((icw->icw_flags & XFS_ICWALK_FLAG_PRID) && 1173 ip->i_projid == icw->icw_prid) 1174 return true; 1175 1176 return false; 1177 } 1178 1179 /* 1180 * Is this inode @ip eligible for eof/cow block reclamation, given some 1181 * filtering parameters @icw? The inode is eligible if @icw is null or 1182 * if the predicate functions match. 1183 */ 1184 static bool 1185 xfs_icwalk_match( 1186 struct xfs_inode *ip, 1187 struct xfs_icwalk *icw) 1188 { 1189 bool match; 1190 1191 if (!icw) 1192 return true; 1193 1194 if (icw->icw_flags & XFS_ICWALK_FLAG_UNION) 1195 match = xfs_icwalk_match_id_union(ip, icw); 1196 else 1197 match = xfs_icwalk_match_id(ip, icw); 1198 if (!match) 1199 return false; 1200 1201 /* skip the inode if the file size is too small */ 1202 if ((icw->icw_flags & XFS_ICWALK_FLAG_MINFILESIZE) && 1203 XFS_ISIZE(ip) < icw->icw_min_file_size) 1204 return false; 1205 1206 return true; 1207 } 1208 1209 /* 1210 * This is a fast pass over the inode cache to try to get reclaim moving on as 1211 * many inodes as possible in a short period of time. It kicks itself every few 1212 * seconds, as well as being kicked by the inode cache shrinker when memory 1213 * goes low. 1214 */ 1215 void 1216 xfs_reclaim_worker( 1217 struct work_struct *work) 1218 { 1219 struct xfs_mount *mp = container_of(to_delayed_work(work), 1220 struct xfs_mount, m_reclaim_work); 1221 1222 xfs_icwalk(mp, XFS_ICWALK_RECLAIM, NULL); 1223 xfs_reclaim_work_queue(mp); 1224 } 1225 1226 STATIC int 1227 xfs_inode_free_eofblocks( 1228 struct xfs_inode *ip, 1229 struct xfs_icwalk *icw, 1230 unsigned int *lockflags) 1231 { 1232 bool wait; 1233 1234 wait = icw && (icw->icw_flags & XFS_ICWALK_FLAG_SYNC); 1235 1236 if (!xfs_iflags_test(ip, XFS_IEOFBLOCKS)) 1237 return 0; 1238 1239 /* 1240 * If the mapping is dirty the operation can block and wait for some 1241 * time. Unless we are waiting, skip it. 1242 */ 1243 if (!wait && mapping_tagged(VFS_I(ip)->i_mapping, PAGECACHE_TAG_DIRTY)) 1244 return 0; 1245 1246 if (!xfs_icwalk_match(ip, icw)) 1247 return 0; 1248 1249 /* 1250 * If the caller is waiting, return -EAGAIN to keep the background 1251 * scanner moving and revisit the inode in a subsequent pass. 1252 */ 1253 if (!xfs_ilock_nowait(ip, XFS_IOLOCK_EXCL)) { 1254 if (wait) 1255 return -EAGAIN; 1256 return 0; 1257 } 1258 *lockflags |= XFS_IOLOCK_EXCL; 1259 1260 if (xfs_can_free_eofblocks(ip)) 1261 return xfs_free_eofblocks(ip); 1262 1263 /* inode could be preallocated */ 1264 trace_xfs_inode_free_eofblocks_invalid(ip); 1265 xfs_inode_clear_eofblocks_tag(ip); 1266 return 0; 1267 } 1268 1269 static void 1270 xfs_blockgc_set_iflag( 1271 struct xfs_inode *ip, 1272 unsigned long iflag) 1273 { 1274 struct xfs_mount *mp = ip->i_mount; 1275 struct xfs_perag *pag; 1276 1277 ASSERT((iflag & ~(XFS_IEOFBLOCKS | XFS_ICOWBLOCKS)) == 0); 1278 1279 /* 1280 * Don't bother locking the AG and looking up in the radix trees 1281 * if we already know that we have the tag set. 1282 */ 1283 if (ip->i_flags & iflag) 1284 return; 1285 spin_lock(&ip->i_flags_lock); 1286 ip->i_flags |= iflag; 1287 spin_unlock(&ip->i_flags_lock); 1288 1289 pag = xfs_perag_get(mp, XFS_INODE_TO_AGNO(ip)); 1290 spin_lock(&pag->pag_ici_lock); 1291 1292 xfs_perag_set_inode_tag(pag, XFS_INODE_TO_AGINO(ip), 1293 XFS_ICI_BLOCKGC_TAG); 1294 1295 spin_unlock(&pag->pag_ici_lock); 1296 xfs_perag_put(pag); 1297 } 1298 1299 void 1300 xfs_inode_set_eofblocks_tag( 1301 xfs_inode_t *ip) 1302 { 1303 trace_xfs_inode_set_eofblocks_tag(ip); 1304 return xfs_blockgc_set_iflag(ip, XFS_IEOFBLOCKS); 1305 } 1306 1307 static void 1308 xfs_blockgc_clear_iflag( 1309 struct xfs_inode *ip, 1310 unsigned long iflag) 1311 { 1312 struct xfs_mount *mp = ip->i_mount; 1313 struct xfs_perag *pag; 1314 bool clear_tag; 1315 1316 ASSERT((iflag & ~(XFS_IEOFBLOCKS | XFS_ICOWBLOCKS)) == 0); 1317 1318 spin_lock(&ip->i_flags_lock); 1319 ip->i_flags &= ~iflag; 1320 clear_tag = (ip->i_flags & (XFS_IEOFBLOCKS | XFS_ICOWBLOCKS)) == 0; 1321 spin_unlock(&ip->i_flags_lock); 1322 1323 if (!clear_tag) 1324 return; 1325 1326 pag = xfs_perag_get(mp, XFS_INODE_TO_AGNO(ip)); 1327 spin_lock(&pag->pag_ici_lock); 1328 1329 xfs_perag_clear_inode_tag(pag, XFS_INODE_TO_AGINO(ip), 1330 XFS_ICI_BLOCKGC_TAG); 1331 1332 spin_unlock(&pag->pag_ici_lock); 1333 xfs_perag_put(pag); 1334 } 1335 1336 void 1337 xfs_inode_clear_eofblocks_tag( 1338 xfs_inode_t *ip) 1339 { 1340 trace_xfs_inode_clear_eofblocks_tag(ip); 1341 return xfs_blockgc_clear_iflag(ip, XFS_IEOFBLOCKS); 1342 } 1343 1344 /* 1345 * Prepare to free COW fork blocks from an inode. 1346 */ 1347 static bool 1348 xfs_prep_free_cowblocks( 1349 struct xfs_inode *ip, 1350 struct xfs_icwalk *icw) 1351 { 1352 bool sync; 1353 1354 sync = icw && (icw->icw_flags & XFS_ICWALK_FLAG_SYNC); 1355 1356 /* 1357 * Just clear the tag if we have an empty cow fork or none at all. It's 1358 * possible the inode was fully unshared since it was originally tagged. 1359 */ 1360 if (!xfs_inode_has_cow_data(ip)) { 1361 trace_xfs_inode_free_cowblocks_invalid(ip); 1362 xfs_inode_clear_cowblocks_tag(ip); 1363 return false; 1364 } 1365 1366 /* 1367 * A cowblocks trim of an inode can have a significant effect on 1368 * fragmentation even when a reasonable COW extent size hint is set. 1369 * Therefore, we prefer to not process cowblocks unless they are clean 1370 * and idle. We can never process a cowblocks inode that is dirty or has 1371 * in-flight I/O under any circumstances, because outstanding writeback 1372 * or dio expects targeted COW fork blocks exist through write 1373 * completion where they can be remapped into the data fork. 1374 * 1375 * Therefore, the heuristic used here is to never process inodes 1376 * currently opened for write from background (i.e. non-sync) scans. For 1377 * sync scans, use the pagecache/dio state of the inode to ensure we 1378 * never free COW fork blocks out from under pending I/O. 1379 */ 1380 if (!sync && inode_is_open_for_write(VFS_I(ip))) 1381 return false; 1382 return xfs_can_free_cowblocks(ip); 1383 } 1384 1385 /* 1386 * Automatic CoW Reservation Freeing 1387 * 1388 * These functions automatically garbage collect leftover CoW reservations 1389 * that were made on behalf of a cowextsize hint when we start to run out 1390 * of quota or when the reservations sit around for too long. If the file 1391 * has dirty pages or is undergoing writeback, its CoW reservations will 1392 * be retained. 1393 * 1394 * The actual garbage collection piggybacks off the same code that runs 1395 * the speculative EOF preallocation garbage collector. 1396 */ 1397 STATIC int 1398 xfs_inode_free_cowblocks( 1399 struct xfs_inode *ip, 1400 struct xfs_icwalk *icw, 1401 unsigned int *lockflags) 1402 { 1403 bool wait; 1404 int ret = 0; 1405 1406 wait = icw && (icw->icw_flags & XFS_ICWALK_FLAG_SYNC); 1407 1408 if (!xfs_iflags_test(ip, XFS_ICOWBLOCKS)) 1409 return 0; 1410 1411 if (!xfs_prep_free_cowblocks(ip, icw)) 1412 return 0; 1413 1414 if (!xfs_icwalk_match(ip, icw)) 1415 return 0; 1416 1417 /* 1418 * If the caller is waiting, return -EAGAIN to keep the background 1419 * scanner moving and revisit the inode in a subsequent pass. 1420 */ 1421 if (!(*lockflags & XFS_IOLOCK_EXCL) && 1422 !xfs_ilock_nowait(ip, XFS_IOLOCK_EXCL)) { 1423 if (wait) 1424 return -EAGAIN; 1425 return 0; 1426 } 1427 *lockflags |= XFS_IOLOCK_EXCL; 1428 1429 if (!xfs_ilock_nowait(ip, XFS_MMAPLOCK_EXCL)) { 1430 if (wait) 1431 return -EAGAIN; 1432 return 0; 1433 } 1434 *lockflags |= XFS_MMAPLOCK_EXCL; 1435 1436 /* 1437 * Check again, nobody else should be able to dirty blocks or change 1438 * the reflink iflag now that we have the first two locks held. 1439 */ 1440 if (xfs_prep_free_cowblocks(ip, icw)) 1441 ret = xfs_reflink_cancel_cow_range(ip, 0, NULLFILEOFF, false); 1442 return ret; 1443 } 1444 1445 void 1446 xfs_inode_set_cowblocks_tag( 1447 xfs_inode_t *ip) 1448 { 1449 trace_xfs_inode_set_cowblocks_tag(ip); 1450 return xfs_blockgc_set_iflag(ip, XFS_ICOWBLOCKS); 1451 } 1452 1453 void 1454 xfs_inode_clear_cowblocks_tag( 1455 xfs_inode_t *ip) 1456 { 1457 trace_xfs_inode_clear_cowblocks_tag(ip); 1458 return xfs_blockgc_clear_iflag(ip, XFS_ICOWBLOCKS); 1459 } 1460 1461 /* Disable post-EOF and CoW block auto-reclamation. */ 1462 void 1463 xfs_blockgc_stop( 1464 struct xfs_mount *mp) 1465 { 1466 struct xfs_perag *pag = NULL; 1467 1468 if (!xfs_clear_blockgc_enabled(mp)) 1469 return; 1470 1471 while ((pag = xfs_perag_next(mp, pag))) 1472 cancel_delayed_work_sync(&pag->pag_blockgc_work); 1473 trace_xfs_blockgc_stop(mp, __return_address); 1474 } 1475 1476 /* Enable post-EOF and CoW block auto-reclamation. */ 1477 void 1478 xfs_blockgc_start( 1479 struct xfs_mount *mp) 1480 { 1481 struct xfs_perag *pag = NULL; 1482 1483 if (xfs_set_blockgc_enabled(mp)) 1484 return; 1485 1486 trace_xfs_blockgc_start(mp, __return_address); 1487 while ((pag = xfs_perag_grab_next_tag(mp, pag, XFS_ICI_BLOCKGC_TAG))) 1488 xfs_blockgc_queue(pag); 1489 } 1490 1491 /* Don't try to run block gc on an inode that's in any of these states. */ 1492 #define XFS_BLOCKGC_NOGRAB_IFLAGS (XFS_INEW | \ 1493 XFS_NEED_INACTIVE | \ 1494 XFS_INACTIVATING | \ 1495 XFS_IRECLAIMABLE | \ 1496 XFS_IRECLAIM) 1497 /* 1498 * Decide if the given @ip is eligible for garbage collection of speculative 1499 * preallocations, and grab it if so. Returns true if it's ready to go or 1500 * false if we should just ignore it. 1501 */ 1502 static bool 1503 xfs_blockgc_igrab( 1504 struct xfs_inode *ip) 1505 { 1506 struct inode *inode = VFS_I(ip); 1507 1508 ASSERT(rcu_read_lock_held()); 1509 1510 /* Check for stale RCU freed inode */ 1511 spin_lock(&ip->i_flags_lock); 1512 if (!I_INO(ip)) 1513 goto out_unlock_noent; 1514 1515 if (ip->i_flags & XFS_BLOCKGC_NOGRAB_IFLAGS) 1516 goto out_unlock_noent; 1517 spin_unlock(&ip->i_flags_lock); 1518 1519 /* nothing to sync during shutdown */ 1520 if (xfs_is_shutdown(ip->i_mount)) 1521 return false; 1522 1523 /* If we can't grab the inode, it must on it's way to reclaim. */ 1524 if (!igrab(inode)) 1525 return false; 1526 1527 /* inode is valid */ 1528 return true; 1529 1530 out_unlock_noent: 1531 spin_unlock(&ip->i_flags_lock); 1532 return false; 1533 } 1534 1535 /* Scan one incore inode for block preallocations that we can remove. */ 1536 static int 1537 xfs_blockgc_scan_inode( 1538 struct xfs_inode *ip, 1539 struct xfs_icwalk *icw) 1540 { 1541 unsigned int lockflags = 0; 1542 int error; 1543 1544 error = xfs_inode_free_eofblocks(ip, icw, &lockflags); 1545 if (error) 1546 goto unlock; 1547 1548 error = xfs_inode_free_cowblocks(ip, icw, &lockflags); 1549 unlock: 1550 if (lockflags) 1551 xfs_iunlock(ip, lockflags); 1552 xfs_irele(ip); 1553 return error; 1554 } 1555 1556 /* Background worker that trims preallocated space. */ 1557 void 1558 xfs_blockgc_worker( 1559 struct work_struct *work) 1560 { 1561 struct xfs_perag *pag = container_of(to_delayed_work(work), 1562 struct xfs_perag, pag_blockgc_work); 1563 struct xfs_mount *mp = pag_mount(pag); 1564 int error; 1565 1566 trace_xfs_blockgc_worker(mp, __return_address); 1567 1568 error = xfs_icwalk_ag(pag, XFS_ICWALK_BLOCKGC, NULL); 1569 if (error) 1570 xfs_info(mp, "AG %u preallocation gc worker failed, err=%d", 1571 pag_agno(pag), error); 1572 xfs_blockgc_queue(pag); 1573 } 1574 1575 /* 1576 * Try to free space in the filesystem by purging inactive inodes, eofblocks 1577 * and cowblocks. 1578 */ 1579 int 1580 xfs_blockgc_free_space( 1581 struct xfs_mount *mp, 1582 struct xfs_icwalk *icw) 1583 { 1584 int error; 1585 1586 trace_xfs_blockgc_free_space(mp, icw, _RET_IP_); 1587 1588 error = xfs_icwalk(mp, XFS_ICWALK_BLOCKGC, icw); 1589 if (error) 1590 return error; 1591 1592 return xfs_inodegc_flush(mp); 1593 } 1594 1595 /* 1596 * Reclaim all the free space that we can by scheduling the background blockgc 1597 * and inodegc workers immediately and waiting for them all to clear. 1598 */ 1599 int 1600 xfs_blockgc_flush_all( 1601 struct xfs_mount *mp) 1602 { 1603 struct xfs_perag *pag = NULL; 1604 1605 trace_xfs_blockgc_flush_all(mp, __return_address); 1606 1607 /* 1608 * For each blockgc worker, move its queue time up to now. If it wasn't 1609 * queued, it will not be requeued. Then flush whatever is left. 1610 */ 1611 while ((pag = xfs_perag_grab_next_tag(mp, pag, XFS_ICI_BLOCKGC_TAG))) 1612 mod_delayed_work(mp->m_blockgc_wq, &pag->pag_blockgc_work, 0); 1613 1614 while ((pag = xfs_perag_grab_next_tag(mp, pag, XFS_ICI_BLOCKGC_TAG))) 1615 flush_delayed_work(&pag->pag_blockgc_work); 1616 1617 return xfs_inodegc_flush(mp); 1618 } 1619 1620 /* 1621 * Run cow/eofblocks scans on the supplied dquots. We don't know exactly which 1622 * quota caused an allocation failure, so we make a best effort by including 1623 * each quota under low free space conditions (less than 1% free space) in the 1624 * scan. 1625 * 1626 * Callers must not hold any inode's ILOCK. If requesting a synchronous scan 1627 * (XFS_ICWALK_FLAG_SYNC), the caller also must not hold any inode's IOLOCK or 1628 * MMAPLOCK. 1629 */ 1630 int 1631 xfs_blockgc_free_dquots( 1632 struct xfs_mount *mp, 1633 struct xfs_dquot *udqp, 1634 struct xfs_dquot *gdqp, 1635 struct xfs_dquot *pdqp, 1636 unsigned int iwalk_flags) 1637 { 1638 struct xfs_icwalk icw = {0}; 1639 bool do_work = false; 1640 1641 if (!udqp && !gdqp && !pdqp) 1642 return 0; 1643 1644 /* 1645 * Run a scan to free blocks using the union filter to cover all 1646 * applicable quotas in a single scan. 1647 */ 1648 icw.icw_flags = XFS_ICWALK_FLAG_UNION | iwalk_flags; 1649 1650 if (XFS_IS_UQUOTA_ENFORCED(mp) && udqp && xfs_dquot_lowsp(udqp)) { 1651 icw.icw_uid = make_kuid(mp->m_super->s_user_ns, udqp->q_id); 1652 icw.icw_flags |= XFS_ICWALK_FLAG_UID; 1653 do_work = true; 1654 } 1655 1656 if (XFS_IS_UQUOTA_ENFORCED(mp) && gdqp && xfs_dquot_lowsp(gdqp)) { 1657 icw.icw_gid = make_kgid(mp->m_super->s_user_ns, gdqp->q_id); 1658 icw.icw_flags |= XFS_ICWALK_FLAG_GID; 1659 do_work = true; 1660 } 1661 1662 if (XFS_IS_PQUOTA_ENFORCED(mp) && pdqp && xfs_dquot_lowsp(pdqp)) { 1663 icw.icw_prid = pdqp->q_id; 1664 icw.icw_flags |= XFS_ICWALK_FLAG_PRID; 1665 do_work = true; 1666 } 1667 1668 if (!do_work) 1669 return 0; 1670 1671 return xfs_blockgc_free_space(mp, &icw); 1672 } 1673 1674 /* Run cow/eofblocks scans on the quotas attached to the inode. */ 1675 int 1676 xfs_blockgc_free_quota( 1677 struct xfs_inode *ip, 1678 unsigned int iwalk_flags) 1679 { 1680 return xfs_blockgc_free_dquots(ip->i_mount, 1681 xfs_inode_dquot(ip, XFS_DQTYPE_USER), 1682 xfs_inode_dquot(ip, XFS_DQTYPE_GROUP), 1683 xfs_inode_dquot(ip, XFS_DQTYPE_PROJ), iwalk_flags); 1684 } 1685 1686 /* XFS Inode Cache Walking Code */ 1687 1688 /* 1689 * The inode lookup is done in batches to keep the amount of lock traffic and 1690 * radix tree lookups to a minimum. The batch size is a trade off between 1691 * lookup reduction and stack usage. This is in the reclaim path, so we can't 1692 * be too greedy. 1693 */ 1694 #define XFS_LOOKUP_BATCH 32 1695 1696 1697 /* 1698 * Decide if we want to grab this inode in anticipation of doing work towards 1699 * the goal. 1700 */ 1701 static inline bool 1702 xfs_icwalk_igrab( 1703 enum xfs_icwalk_goal goal, 1704 struct xfs_inode *ip, 1705 struct xfs_icwalk *icw) 1706 { 1707 switch (goal) { 1708 case XFS_ICWALK_BLOCKGC: 1709 return xfs_blockgc_igrab(ip); 1710 case XFS_ICWALK_RECLAIM: 1711 return xfs_reclaim_igrab(ip, icw); 1712 default: 1713 return false; 1714 } 1715 } 1716 1717 /* 1718 * Process an inode. Each processing function must handle any state changes 1719 * made by the icwalk igrab function. Return -EAGAIN to skip an inode. 1720 */ 1721 static inline int 1722 xfs_icwalk_process_inode( 1723 enum xfs_icwalk_goal goal, 1724 struct xfs_inode *ip, 1725 struct xfs_perag *pag, 1726 struct xfs_icwalk *icw) 1727 { 1728 int error = 0; 1729 1730 switch (goal) { 1731 case XFS_ICWALK_BLOCKGC: 1732 error = xfs_blockgc_scan_inode(ip, icw); 1733 break; 1734 case XFS_ICWALK_RECLAIM: 1735 xfs_reclaim_inode(ip, pag); 1736 break; 1737 } 1738 return error; 1739 } 1740 1741 /* 1742 * For a given per-AG structure @pag and a goal, grab qualifying inodes and 1743 * process them in some manner. 1744 */ 1745 static int 1746 xfs_icwalk_ag( 1747 struct xfs_perag *pag, 1748 enum xfs_icwalk_goal goal, 1749 struct xfs_icwalk *icw) 1750 { 1751 struct xfs_mount *mp = pag_mount(pag); 1752 uint32_t first_index; 1753 int last_error = 0; 1754 int skipped; 1755 bool done; 1756 int nr_found; 1757 1758 restart: 1759 done = false; 1760 skipped = 0; 1761 if (goal == XFS_ICWALK_RECLAIM) 1762 first_index = READ_ONCE(pag->pag_ici_reclaim_cursor); 1763 else 1764 first_index = 0; 1765 nr_found = 0; 1766 do { 1767 struct xfs_inode *batch[XFS_LOOKUP_BATCH]; 1768 int error = 0; 1769 int i; 1770 1771 rcu_read_lock(); 1772 1773 nr_found = radix_tree_gang_lookup_tag(&pag->pag_ici_root, 1774 (void **) batch, first_index, 1775 XFS_LOOKUP_BATCH, goal); 1776 if (!nr_found) { 1777 done = true; 1778 rcu_read_unlock(); 1779 break; 1780 } 1781 1782 /* 1783 * Grab the inodes before we drop the lock. if we found 1784 * nothing, nr == 0 and the loop will be skipped. 1785 */ 1786 for (i = 0; i < nr_found; i++) { 1787 struct xfs_inode *ip = batch[i]; 1788 1789 if (done || !xfs_icwalk_igrab(goal, ip, icw)) 1790 batch[i] = NULL; 1791 1792 /* 1793 * Update the index for the next lookup. Catch 1794 * overflows into the next AG range which can occur if 1795 * we have inodes in the last block of the AG and we 1796 * are currently pointing to the last inode. 1797 * 1798 * Because we may see inodes that are from the wrong AG 1799 * due to RCU freeing and reallocation, only update the 1800 * index if it lies in this AG. It was a race that lead 1801 * us to see this inode, so another lookup from the 1802 * same index will not find it again. 1803 */ 1804 if (XFS_INODE_TO_AGNO(ip) != pag_agno(pag)) 1805 continue; 1806 first_index = XFS_INO_TO_AGINO(mp, I_INO(ip) + 1); 1807 if (first_index < XFS_INODE_TO_AGINO(ip)) 1808 done = true; 1809 } 1810 1811 /* unlock now we've grabbed the inodes. */ 1812 rcu_read_unlock(); 1813 1814 for (i = 0; i < nr_found; i++) { 1815 if (!batch[i]) 1816 continue; 1817 error = xfs_icwalk_process_inode(goal, batch[i], pag, 1818 icw); 1819 if (error == -EAGAIN) { 1820 skipped++; 1821 continue; 1822 } 1823 if (error && last_error != -EFSCORRUPTED) 1824 last_error = error; 1825 } 1826 1827 /* bail out if the filesystem is corrupted. */ 1828 if (error == -EFSCORRUPTED) 1829 break; 1830 1831 cond_resched(); 1832 1833 if (icw && (icw->icw_flags & XFS_ICWALK_FLAG_SCAN_LIMIT)) { 1834 icw->icw_scan_limit -= XFS_LOOKUP_BATCH; 1835 if (icw->icw_scan_limit <= 0) 1836 break; 1837 } 1838 } while (nr_found && !done); 1839 1840 if (goal == XFS_ICWALK_RECLAIM) { 1841 if (done) 1842 first_index = 0; 1843 WRITE_ONCE(pag->pag_ici_reclaim_cursor, first_index); 1844 } 1845 1846 if (skipped) { 1847 delay(1); 1848 goto restart; 1849 } 1850 return last_error; 1851 } 1852 1853 /* Walk all incore inodes to achieve a given goal. */ 1854 static int 1855 xfs_icwalk( 1856 struct xfs_mount *mp, 1857 enum xfs_icwalk_goal goal, 1858 struct xfs_icwalk *icw) 1859 { 1860 struct xfs_perag *pag = NULL; 1861 int error = 0; 1862 int last_error = 0; 1863 1864 while ((pag = xfs_perag_grab_next_tag(mp, pag, goal))) { 1865 error = xfs_icwalk_ag(pag, goal, icw); 1866 if (error) { 1867 last_error = error; 1868 if (error == -EFSCORRUPTED) { 1869 xfs_perag_rele(pag); 1870 break; 1871 } 1872 } 1873 } 1874 return last_error; 1875 BUILD_BUG_ON(XFS_ICWALK_PRIVATE_FLAGS & XFS_ICWALK_FLAGS_VALID); 1876 } 1877 1878 #ifdef DEBUG 1879 static void 1880 xfs_check_delalloc( 1881 struct xfs_inode *ip, 1882 int whichfork) 1883 { 1884 struct xfs_ifork *ifp = xfs_ifork_ptr(ip, whichfork); 1885 struct xfs_bmbt_irec got; 1886 struct xfs_iext_cursor icur; 1887 1888 if (!ifp || !xfs_iext_lookup_extent(ip, ifp, 0, &icur, &got)) 1889 return; 1890 do { 1891 if (isnullstartblock(got.br_startblock)) { 1892 xfs_warn(ip->i_mount, 1893 "ino %llx %s fork has delalloc extent at [0x%llx:0x%llx]", 1894 I_INO(ip), 1895 whichfork == XFS_DATA_FORK ? "data" : "cow", 1896 got.br_startoff, got.br_blockcount); 1897 } 1898 } while (xfs_iext_next_extent(ifp, &icur, &got)); 1899 } 1900 #else 1901 #define xfs_check_delalloc(ip, whichfork) do { } while (0) 1902 #endif 1903 1904 /* Schedule the inode for reclaim. */ 1905 static void 1906 xfs_inodegc_set_reclaimable( 1907 struct xfs_inode *ip) 1908 { 1909 struct xfs_mount *mp = ip->i_mount; 1910 struct xfs_perag *pag; 1911 1912 if (!xfs_is_shutdown(mp) && ip->i_delayed_blks) { 1913 xfs_check_delalloc(ip, XFS_DATA_FORK); 1914 xfs_check_delalloc(ip, XFS_COW_FORK); 1915 ASSERT(0); 1916 } 1917 1918 pag = xfs_perag_get(mp, XFS_INODE_TO_AGNO(ip)); 1919 spin_lock(&pag->pag_ici_lock); 1920 spin_lock(&ip->i_flags_lock); 1921 1922 trace_xfs_inode_set_reclaimable(ip); 1923 ip->i_flags &= ~(XFS_NEED_INACTIVE | XFS_INACTIVATING); 1924 ip->i_flags |= XFS_IRECLAIMABLE; 1925 xfs_perag_set_inode_tag(pag, XFS_INODE_TO_AGINO(ip), 1926 XFS_ICI_RECLAIM_TAG); 1927 1928 spin_unlock(&ip->i_flags_lock); 1929 spin_unlock(&pag->pag_ici_lock); 1930 xfs_perag_put(pag); 1931 } 1932 1933 /* 1934 * Free all speculative preallocations and possibly even the inode itself. 1935 * This is the last chance to make changes to an otherwise unreferenced file 1936 * before incore reclamation happens. 1937 */ 1938 static int 1939 xfs_inodegc_inactivate( 1940 struct xfs_inode *ip) 1941 { 1942 int error; 1943 1944 trace_xfs_inode_inactivating(ip); 1945 error = xfs_inactive(ip); 1946 xfs_inodegc_set_reclaimable(ip); 1947 return error; 1948 1949 } 1950 1951 void 1952 xfs_inodegc_worker( 1953 struct work_struct *work) 1954 { 1955 struct xfs_inodegc *gc = container_of(to_delayed_work(work), 1956 struct xfs_inodegc, work); 1957 struct llist_node *node = llist_del_all(&gc->list); 1958 struct xfs_inode *ip, *n; 1959 struct xfs_mount *mp = gc->mp; 1960 unsigned int nofs_flag; 1961 1962 /* 1963 * Clear the cpu mask bit and ensure that we have seen the latest 1964 * update of the gc structure associated with this CPU. This matches 1965 * with the release semantics used when setting the cpumask bit in 1966 * xfs_inodegc_queue. 1967 */ 1968 cpumask_clear_cpu(gc->cpu, &mp->m_inodegc_cpumask); 1969 smp_mb__after_atomic(); 1970 1971 WRITE_ONCE(gc->items, 0); 1972 1973 if (!node) 1974 return; 1975 1976 /* 1977 * We can allocate memory here while doing writeback on behalf of 1978 * memory reclaim. To avoid memory allocation deadlocks set the 1979 * task-wide nofs context for the following operations. 1980 */ 1981 nofs_flag = memalloc_nofs_save(); 1982 1983 ip = llist_entry(node, struct xfs_inode, i_gclist); 1984 trace_xfs_inodegc_worker(mp, READ_ONCE(gc->shrinker_hits)); 1985 1986 WRITE_ONCE(gc->shrinker_hits, 0); 1987 llist_for_each_entry_safe(ip, n, node, i_gclist) { 1988 int error; 1989 1990 xfs_iflags_set(ip, XFS_INACTIVATING); 1991 error = xfs_inodegc_inactivate(ip); 1992 if (error && !gc->error) 1993 gc->error = error; 1994 } 1995 1996 memalloc_nofs_restore(nofs_flag); 1997 } 1998 1999 /* 2000 * Expedite all pending inodegc work to run immediately. This does not wait for 2001 * completion of the work. 2002 */ 2003 void 2004 xfs_inodegc_push( 2005 struct xfs_mount *mp) 2006 { 2007 if (!xfs_is_inodegc_enabled(mp)) 2008 return; 2009 trace_xfs_inodegc_push(mp, __return_address); 2010 xfs_inodegc_queue_all(mp); 2011 } 2012 2013 /* 2014 * Force all currently queued inode inactivation work to run immediately and 2015 * wait for the work to finish. 2016 */ 2017 int 2018 xfs_inodegc_flush( 2019 struct xfs_mount *mp) 2020 { 2021 xfs_inodegc_push(mp); 2022 trace_xfs_inodegc_flush(mp, __return_address); 2023 return xfs_inodegc_wait_all(mp); 2024 } 2025 2026 /* 2027 * Flush all the pending work and then disable the inode inactivation background 2028 * workers and wait for them to stop. Caller must hold sb->s_umount to 2029 * coordinate changes in the inodegc_enabled state. 2030 */ 2031 void 2032 xfs_inodegc_stop( 2033 struct xfs_mount *mp) 2034 { 2035 bool rerun; 2036 2037 if (!xfs_clear_inodegc_enabled(mp)) 2038 return; 2039 2040 /* 2041 * Drain all pending inodegc work, including inodes that could be 2042 * queued by racing xfs_inodegc_queue or xfs_inodegc_shrinker_scan 2043 * threads that sample the inodegc state just prior to us clearing it. 2044 * The inodegc flag state prevents new threads from queuing more 2045 * inodes, so we queue pending work items and flush the workqueue until 2046 * all inodegc lists are empty. IOWs, we cannot use drain_workqueue 2047 * here because it does not allow other unserialized mechanisms to 2048 * reschedule inodegc work while this draining is in progress. 2049 */ 2050 xfs_inodegc_queue_all(mp); 2051 do { 2052 flush_workqueue(mp->m_inodegc_wq); 2053 rerun = xfs_inodegc_queue_all(mp); 2054 } while (rerun); 2055 2056 trace_xfs_inodegc_stop(mp, __return_address); 2057 } 2058 2059 /* 2060 * Enable the inode inactivation background workers and schedule deferred inode 2061 * inactivation work if there is any. Caller must hold sb->s_umount to 2062 * coordinate changes in the inodegc_enabled state. 2063 */ 2064 void 2065 xfs_inodegc_start( 2066 struct xfs_mount *mp) 2067 { 2068 if (xfs_set_inodegc_enabled(mp)) 2069 return; 2070 2071 trace_xfs_inodegc_start(mp, __return_address); 2072 xfs_inodegc_queue_all(mp); 2073 } 2074 2075 #ifdef CONFIG_XFS_RT 2076 static inline bool 2077 xfs_inodegc_want_queue_rt_file( 2078 struct xfs_inode *ip) 2079 { 2080 struct xfs_mount *mp = ip->i_mount; 2081 2082 if (!XFS_IS_REALTIME_INODE(ip) || xfs_has_zoned(mp)) 2083 return false; 2084 2085 if (xfs_compare_freecounter(mp, XC_FREE_RTEXTENTS, 2086 mp->m_low_rtexts[XFS_LOWSP_5_PCNT], 2087 XFS_FDBLOCKS_BATCH) < 0) 2088 return true; 2089 2090 return false; 2091 } 2092 #else 2093 # define xfs_inodegc_want_queue_rt_file(ip) (false) 2094 #endif /* CONFIG_XFS_RT */ 2095 2096 /* 2097 * Schedule the inactivation worker when: 2098 * 2099 * - We've accumulated more than one inode cluster buffer's worth of inodes. 2100 * - There is less than 5% free space left. 2101 * - Any of the quotas for this inode are near an enforcement limit. 2102 */ 2103 static inline bool 2104 xfs_inodegc_want_queue_work( 2105 struct xfs_inode *ip, 2106 unsigned int items) 2107 { 2108 struct xfs_mount *mp = ip->i_mount; 2109 2110 if (items > mp->m_ino_geo.inodes_per_cluster) 2111 return true; 2112 2113 if (xfs_compare_freecounter(mp, XC_FREE_BLOCKS, 2114 mp->m_low_space[XFS_LOWSP_5_PCNT], 2115 XFS_FDBLOCKS_BATCH) < 0) 2116 return true; 2117 2118 if (xfs_inodegc_want_queue_rt_file(ip)) 2119 return true; 2120 2121 if (xfs_inode_near_dquot_enforcement(ip, XFS_DQTYPE_USER)) 2122 return true; 2123 2124 if (xfs_inode_near_dquot_enforcement(ip, XFS_DQTYPE_GROUP)) 2125 return true; 2126 2127 if (xfs_inode_near_dquot_enforcement(ip, XFS_DQTYPE_PROJ)) 2128 return true; 2129 2130 return false; 2131 } 2132 2133 /* 2134 * Upper bound on the number of inodes in each AG that can be queued for 2135 * inactivation at any given time, to avoid monopolizing the workqueue. 2136 */ 2137 #define XFS_INODEGC_MAX_BACKLOG (4 * XFS_INODES_PER_CHUNK) 2138 2139 /* 2140 * Make the frontend wait for inactivations when: 2141 * 2142 * - Memory shrinkers queued the inactivation worker and it hasn't finished. 2143 * - The queue depth exceeds the maximum allowable percpu backlog. 2144 * 2145 * Note: If we are in a NOFS context here (e.g. current thread is running a 2146 * transaction) the we don't want to block here as inodegc progress may require 2147 * filesystem resources we hold to make progress and that could result in a 2148 * deadlock. Hence we skip out of here if we are in a scoped NOFS context. 2149 */ 2150 static inline bool 2151 xfs_inodegc_want_flush_work( 2152 struct xfs_inode *ip, 2153 unsigned int items, 2154 unsigned int shrinker_hits) 2155 { 2156 if (current->flags & PF_MEMALLOC_NOFS) 2157 return false; 2158 2159 if (shrinker_hits > 0) 2160 return true; 2161 2162 if (items > XFS_INODEGC_MAX_BACKLOG) 2163 return true; 2164 2165 return false; 2166 } 2167 2168 /* 2169 * Queue a background inactivation worker if there are inodes that need to be 2170 * inactivated and higher level xfs code hasn't disabled the background 2171 * workers. 2172 */ 2173 static void 2174 xfs_inodegc_queue( 2175 struct xfs_inode *ip) 2176 { 2177 struct xfs_mount *mp = ip->i_mount; 2178 struct xfs_inodegc *gc; 2179 int items; 2180 unsigned int shrinker_hits; 2181 unsigned int cpu_nr; 2182 unsigned long queue_delay = 1; 2183 2184 trace_xfs_inode_set_need_inactive(ip); 2185 spin_lock(&ip->i_flags_lock); 2186 ip->i_flags |= XFS_NEED_INACTIVE; 2187 spin_unlock(&ip->i_flags_lock); 2188 2189 cpu_nr = get_cpu(); 2190 gc = this_cpu_ptr(mp->m_inodegc); 2191 llist_add(&ip->i_gclist, &gc->list); 2192 items = READ_ONCE(gc->items); 2193 WRITE_ONCE(gc->items, items + 1); 2194 shrinker_hits = READ_ONCE(gc->shrinker_hits); 2195 2196 /* 2197 * Ensure the list add is always seen by anyone who finds the cpumask 2198 * bit set. This effectively gives the cpumask bit set operation 2199 * release ordering semantics. 2200 */ 2201 smp_mb__before_atomic(); 2202 if (!cpumask_test_cpu(cpu_nr, &mp->m_inodegc_cpumask)) 2203 cpumask_test_and_set_cpu(cpu_nr, &mp->m_inodegc_cpumask); 2204 2205 /* 2206 * We queue the work while holding the current CPU so that the work 2207 * is scheduled to run on this CPU. 2208 */ 2209 if (!xfs_is_inodegc_enabled(mp)) { 2210 put_cpu(); 2211 return; 2212 } 2213 2214 if (xfs_inodegc_want_queue_work(ip, items)) 2215 queue_delay = 0; 2216 2217 trace_xfs_inodegc_queue(mp, __return_address); 2218 mod_delayed_work_on(current_cpu(), mp->m_inodegc_wq, &gc->work, 2219 queue_delay); 2220 put_cpu(); 2221 2222 if (xfs_inodegc_want_flush_work(ip, items, shrinker_hits)) { 2223 trace_xfs_inodegc_throttle(mp, __return_address); 2224 flush_delayed_work(&gc->work); 2225 } 2226 } 2227 2228 /* 2229 * We set the inode flag atomically with the radix tree tag. Once we get tag 2230 * lookups on the radix tree, this inode flag can go away. 2231 * 2232 * We always use background reclaim here because even if the inode is clean, it 2233 * still may be under IO and hence we have wait for IO completion to occur 2234 * before we can reclaim the inode. The background reclaim path handles this 2235 * more efficiently than we can here, so simply let background reclaim tear down 2236 * all inodes. 2237 */ 2238 void 2239 xfs_inode_mark_reclaimable( 2240 struct xfs_inode *ip) 2241 { 2242 struct xfs_mount *mp = ip->i_mount; 2243 bool need_inactive; 2244 2245 XFS_STATS_INC(mp, xs_inode_mark_reclaimable); 2246 2247 /* 2248 * We should never get here with any of the reclaim flags already set. 2249 */ 2250 ASSERT_ALWAYS(!xfs_iflags_test(ip, XFS_ALL_IRECLAIM_FLAGS)); 2251 2252 need_inactive = xfs_inode_needs_inactive(ip); 2253 if (need_inactive) { 2254 xfs_inodegc_queue(ip); 2255 return; 2256 } 2257 2258 /* Going straight to reclaim, so drop the dquots. */ 2259 xfs_qm_dqdetach(ip); 2260 xfs_inodegc_set_reclaimable(ip); 2261 } 2262 2263 /* 2264 * Register a phony shrinker so that we can run background inodegc sooner when 2265 * there's memory pressure. Inactivation does not itself free any memory but 2266 * it does make inodes reclaimable, which eventually frees memory. 2267 * 2268 * The count function, seek value, and batch value are crafted to trigger the 2269 * scan function during the second round of scanning. Hopefully this means 2270 * that we reclaimed enough memory that initiating metadata transactions won't 2271 * make things worse. 2272 */ 2273 #define XFS_INODEGC_SHRINKER_COUNT (1UL << DEF_PRIORITY) 2274 #define XFS_INODEGC_SHRINKER_BATCH ((XFS_INODEGC_SHRINKER_COUNT / 2) + 1) 2275 2276 static unsigned long 2277 xfs_inodegc_shrinker_count( 2278 struct shrinker *shrink, 2279 struct shrink_control *sc) 2280 { 2281 struct xfs_mount *mp = shrink->private_data; 2282 struct xfs_inodegc *gc; 2283 int cpu; 2284 2285 if (!xfs_is_inodegc_enabled(mp)) 2286 return 0; 2287 2288 for_each_cpu(cpu, &mp->m_inodegc_cpumask) { 2289 gc = per_cpu_ptr(mp->m_inodegc, cpu); 2290 if (!llist_empty(&gc->list)) 2291 return XFS_INODEGC_SHRINKER_COUNT; 2292 } 2293 2294 return 0; 2295 } 2296 2297 static unsigned long 2298 xfs_inodegc_shrinker_scan( 2299 struct shrinker *shrink, 2300 struct shrink_control *sc) 2301 { 2302 struct xfs_mount *mp = shrink->private_data; 2303 struct xfs_inodegc *gc; 2304 int cpu; 2305 bool no_items = true; 2306 2307 if (!xfs_is_inodegc_enabled(mp)) 2308 return SHRINK_STOP; 2309 2310 trace_xfs_inodegc_shrinker_scan(mp, sc, __return_address); 2311 2312 for_each_cpu(cpu, &mp->m_inodegc_cpumask) { 2313 gc = per_cpu_ptr(mp->m_inodegc, cpu); 2314 if (!llist_empty(&gc->list)) { 2315 unsigned int h = READ_ONCE(gc->shrinker_hits); 2316 2317 WRITE_ONCE(gc->shrinker_hits, h + 1); 2318 mod_delayed_work_on(cpu, mp->m_inodegc_wq, &gc->work, 0); 2319 no_items = false; 2320 } 2321 } 2322 2323 /* 2324 * If there are no inodes to inactivate, we don't want the shrinker 2325 * to think there's deferred work to call us back about. 2326 */ 2327 if (no_items) 2328 return LONG_MAX; 2329 2330 return SHRINK_STOP; 2331 } 2332 2333 /* Register a shrinker so we can accelerate inodegc and throttle queuing. */ 2334 int 2335 xfs_inodegc_register_shrinker( 2336 struct xfs_mount *mp) 2337 { 2338 mp->m_inodegc_shrinker = shrinker_alloc(SHRINKER_NONSLAB, 2339 "xfs-inodegc:%s", 2340 mp->m_super->s_id); 2341 if (!mp->m_inodegc_shrinker) 2342 return -ENOMEM; 2343 2344 mp->m_inodegc_shrinker->count_objects = xfs_inodegc_shrinker_count; 2345 mp->m_inodegc_shrinker->scan_objects = xfs_inodegc_shrinker_scan; 2346 mp->m_inodegc_shrinker->seeks = 0; 2347 mp->m_inodegc_shrinker->batch = XFS_INODEGC_SHRINKER_BATCH; 2348 mp->m_inodegc_shrinker->private_data = mp; 2349 2350 shrinker_register(mp->m_inodegc_shrinker); 2351 2352 return 0; 2353 } 2354