1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (c) 2000-2002,2005 Silicon Graphics, Inc. 4 * Copyright (c) 2008 Dave Chinner 5 * All Rights Reserved. 6 */ 7 #include "xfs_platform.h" 8 #include "xfs_fs.h" 9 #include "xfs_shared.h" 10 #include "xfs_format.h" 11 #include "xfs_log_format.h" 12 #include "xfs_trans_resv.h" 13 #include "xfs_mount.h" 14 #include "xfs_trans.h" 15 #include "xfs_trans_priv.h" 16 #include "xfs_trace.h" 17 #include "xfs_errortag.h" 18 #include "xfs_error.h" 19 #include "xfs_log.h" 20 #include "xfs_log_priv.h" 21 22 #ifdef DEBUG 23 /* 24 * Check that the list is sorted as it should be. 25 * 26 * Called with the ail lock held, but we don't want to assert fail with it 27 * held otherwise we'll lock everything up and won't be able to debug the 28 * cause. Hence we sample and check the state under the AIL lock and return if 29 * everything is fine, otherwise we drop the lock and run the ASSERT checks. 30 * Asserts may not be fatal, so pick the lock back up and continue onwards. 31 */ 32 STATIC void 33 xfs_ail_check( 34 struct xfs_ail *ailp, 35 struct xfs_log_item *lip) 36 __must_hold(&ailp->ail_lock) 37 { 38 struct xfs_log_item *prev_lip; 39 struct xfs_log_item *next_lip; 40 xfs_lsn_t prev_lsn = NULLCOMMITLSN; 41 xfs_lsn_t next_lsn = NULLCOMMITLSN; 42 xfs_lsn_t lsn; 43 bool in_ail; 44 45 46 if (list_empty(&ailp->ail_head)) 47 return; 48 49 /* 50 * Sample then check the next and previous entries are valid. 51 */ 52 in_ail = test_bit(XFS_LI_IN_AIL, &lip->li_flags); 53 prev_lip = list_entry(lip->li_ail.prev, struct xfs_log_item, li_ail); 54 if (&prev_lip->li_ail != &ailp->ail_head) 55 prev_lsn = prev_lip->li_lsn; 56 next_lip = list_entry(lip->li_ail.next, struct xfs_log_item, li_ail); 57 if (&next_lip->li_ail != &ailp->ail_head) 58 next_lsn = next_lip->li_lsn; 59 lsn = lip->li_lsn; 60 61 if (in_ail && 62 (prev_lsn == NULLCOMMITLSN || XFS_LSN_CMP(prev_lsn, lsn) <= 0) && 63 (next_lsn == NULLCOMMITLSN || XFS_LSN_CMP(next_lsn, lsn) >= 0)) 64 return; 65 66 spin_unlock(&ailp->ail_lock); 67 ASSERT(in_ail); 68 ASSERT(prev_lsn == NULLCOMMITLSN || XFS_LSN_CMP(prev_lsn, lsn) <= 0); 69 ASSERT(next_lsn == NULLCOMMITLSN || XFS_LSN_CMP(next_lsn, lsn) >= 0); 70 spin_lock(&ailp->ail_lock); 71 } 72 #else /* !DEBUG */ 73 #define xfs_ail_check(a,l) 74 #endif /* DEBUG */ 75 76 /* 77 * Return a pointer to the last item in the AIL. If the AIL is empty, then 78 * return NULL. 79 */ 80 static struct xfs_log_item * 81 xfs_ail_max( 82 struct xfs_ail *ailp) 83 { 84 if (list_empty(&ailp->ail_head)) 85 return NULL; 86 87 return list_entry(ailp->ail_head.prev, struct xfs_log_item, li_ail); 88 } 89 90 /* 91 * Return a pointer to the item which follows the given item in the AIL. If 92 * the given item is the last item in the list, then return NULL. 93 */ 94 static struct xfs_log_item * 95 xfs_ail_next( 96 struct xfs_ail *ailp, 97 struct xfs_log_item *lip) 98 { 99 if (lip->li_ail.next == &ailp->ail_head) 100 return NULL; 101 102 return list_first_entry(&lip->li_ail, struct xfs_log_item, li_ail); 103 } 104 105 /* 106 * This is called by the log manager code to determine the LSN of the tail of 107 * the log. This is exactly the LSN of the first item in the AIL. If the AIL 108 * is empty, then this function returns 0. 109 * 110 * We need the AIL lock in order to get a coherent read of the lsn of the last 111 * item in the AIL. 112 */ 113 static xfs_lsn_t 114 __xfs_ail_min_lsn( 115 struct xfs_ail *ailp) 116 { 117 struct xfs_log_item *lip = xfs_ail_min(ailp); 118 119 if (lip) 120 return lip->li_lsn; 121 return 0; 122 } 123 124 xfs_lsn_t 125 xfs_ail_min_lsn( 126 struct xfs_ail *ailp) 127 { 128 xfs_lsn_t lsn; 129 130 spin_lock(&ailp->ail_lock); 131 lsn = __xfs_ail_min_lsn(ailp); 132 spin_unlock(&ailp->ail_lock); 133 134 return lsn; 135 } 136 137 /* 138 * The cursor keeps track of where our current traversal is up to by tracking 139 * the next item in the list for us. However, for this to be safe, removing an 140 * object from the AIL needs to invalidate any cursor that points to it. hence 141 * the traversal cursor needs to be linked to the struct xfs_ail so that 142 * deletion can search all the active cursors for invalidation. 143 */ 144 STATIC void 145 xfs_trans_ail_cursor_init( 146 struct xfs_ail *ailp, 147 struct xfs_ail_cursor *cur) 148 { 149 cur->item = NULL; 150 list_add_tail(&cur->list, &ailp->ail_cursors); 151 } 152 153 /* 154 * Get the next item in the traversal and advance the cursor. If the cursor 155 * was invalidated (indicated by a lip of 1), restart the traversal. 156 */ 157 struct xfs_log_item * 158 xfs_trans_ail_cursor_next( 159 struct xfs_ail *ailp, 160 struct xfs_ail_cursor *cur) 161 { 162 struct xfs_log_item *lip = cur->item; 163 164 if ((uintptr_t)lip & 1) 165 lip = xfs_ail_min(ailp); 166 if (lip) 167 cur->item = xfs_ail_next(ailp, lip); 168 return lip; 169 } 170 171 /* 172 * When the traversal is complete, we need to remove the cursor from the list 173 * of traversing cursors. 174 */ 175 void 176 xfs_trans_ail_cursor_done( 177 struct xfs_ail_cursor *cur) 178 { 179 cur->item = NULL; 180 list_del_init(&cur->list); 181 } 182 183 /* 184 * Invalidate any cursor that is pointing to this item. This is called when an 185 * item is removed from the AIL. Any cursor pointing to this object is now 186 * invalid and the traversal needs to be terminated so it doesn't reference a 187 * freed object. We set the low bit of the cursor item pointer so we can 188 * distinguish between an invalidation and the end of the list when getting the 189 * next item from the cursor. 190 */ 191 STATIC void 192 xfs_trans_ail_cursor_clear( 193 struct xfs_ail *ailp, 194 struct xfs_log_item *lip) 195 { 196 struct xfs_ail_cursor *cur; 197 198 list_for_each_entry(cur, &ailp->ail_cursors, list) { 199 if (cur->item == lip) 200 cur->item = (struct xfs_log_item *) 201 ((uintptr_t)cur->item | 1); 202 } 203 } 204 205 /* 206 * Find the first item in the AIL with the given @lsn by searching in ascending 207 * LSN order and initialise the cursor to point to the next item for a 208 * ascending traversal. Pass a @lsn of zero to initialise the cursor to the 209 * first item in the AIL. Returns NULL if the list is empty. 210 */ 211 struct xfs_log_item * 212 xfs_trans_ail_cursor_first( 213 struct xfs_ail *ailp, 214 struct xfs_ail_cursor *cur, 215 xfs_lsn_t lsn) 216 { 217 struct xfs_log_item *lip; 218 219 xfs_trans_ail_cursor_init(ailp, cur); 220 221 if (lsn == 0) { 222 lip = xfs_ail_min(ailp); 223 goto out; 224 } 225 226 list_for_each_entry(lip, &ailp->ail_head, li_ail) { 227 if (XFS_LSN_CMP(lip->li_lsn, lsn) >= 0) 228 goto out; 229 } 230 return NULL; 231 232 out: 233 if (lip) 234 cur->item = xfs_ail_next(ailp, lip); 235 return lip; 236 } 237 238 static struct xfs_log_item * 239 __xfs_trans_ail_cursor_last( 240 struct xfs_ail *ailp, 241 xfs_lsn_t lsn) 242 { 243 struct xfs_log_item *lip; 244 245 list_for_each_entry_reverse(lip, &ailp->ail_head, li_ail) { 246 if (XFS_LSN_CMP(lip->li_lsn, lsn) <= 0) 247 return lip; 248 } 249 return NULL; 250 } 251 252 /* 253 * Find the last item in the AIL with the given @lsn by searching in descending 254 * LSN order and initialise the cursor to point to that item. If there is no 255 * item with the value of @lsn, then it sets the cursor to the last item with an 256 * LSN lower than @lsn. Returns NULL if the list is empty. 257 */ 258 struct xfs_log_item * 259 xfs_trans_ail_cursor_last( 260 struct xfs_ail *ailp, 261 struct xfs_ail_cursor *cur, 262 xfs_lsn_t lsn) 263 { 264 xfs_trans_ail_cursor_init(ailp, cur); 265 cur->item = __xfs_trans_ail_cursor_last(ailp, lsn); 266 return cur->item; 267 } 268 269 /* 270 * Splice the log item list into the AIL at the given LSN. We splice to the 271 * tail of the given LSN to maintain insert order for push traversals. The 272 * cursor is optional, allowing repeated updates to the same LSN to avoid 273 * repeated traversals. This should not be called with an empty list. 274 */ 275 static void 276 xfs_ail_splice( 277 struct xfs_ail *ailp, 278 struct xfs_ail_cursor *cur, 279 struct list_head *list, 280 xfs_lsn_t lsn) 281 { 282 struct xfs_log_item *lip; 283 284 ASSERT(!list_empty(list)); 285 286 /* 287 * Use the cursor to determine the insertion point if one is 288 * provided. If not, or if the one we got is not valid, 289 * find the place in the AIL where the items belong. 290 */ 291 lip = cur ? cur->item : NULL; 292 if (!lip || (uintptr_t)lip & 1) 293 lip = __xfs_trans_ail_cursor_last(ailp, lsn); 294 295 /* 296 * If a cursor is provided, we know we're processing the AIL 297 * in lsn order, and future items to be spliced in will 298 * follow the last one being inserted now. Update the 299 * cursor to point to that last item, now while we have a 300 * reliable pointer to it. 301 */ 302 if (cur) 303 cur->item = list_entry(list->prev, struct xfs_log_item, li_ail); 304 305 /* 306 * Finally perform the splice. Unless the AIL was empty, 307 * lip points to the item in the AIL _after_ which the new 308 * items should go. If lip is null the AIL was empty, so 309 * the new items go at the head of the AIL. 310 */ 311 if (lip) 312 list_splice(list, &lip->li_ail); 313 else 314 list_splice(list, &ailp->ail_head); 315 } 316 317 /* 318 * Delete the given item from the AIL. 319 */ 320 static void 321 xfs_ail_delete( 322 struct xfs_ail *ailp, 323 struct xfs_log_item *lip) 324 { 325 xfs_ail_check(ailp, lip); 326 list_del(&lip->li_ail); 327 xfs_trans_ail_cursor_clear(ailp, lip); 328 } 329 330 /* 331 * Requeue a failed buffer for writeback. 332 * 333 * We clear the log item failed state here as well, but we have to be careful 334 * about reference counts because the only active reference counts on the buffer 335 * may be the failed log items. Hence if we clear the log item failed state 336 * before queuing the buffer for IO we can release all active references to 337 * the buffer and free it, leading to use after free problems in 338 * xfs_buf_delwri_queue. It makes no difference to the buffer or log items which 339 * order we process them in - the buffer is locked, and we own the buffer list 340 * so nothing on them is going to change while we are performing this action. 341 * 342 * Hence we can safely queue the buffer for IO before we clear the failed log 343 * item state, therefore always having an active reference to the buffer and 344 * avoiding the transient zero-reference state that leads to use-after-free. 345 */ 346 static inline int 347 xfsaild_resubmit_item( 348 struct xfs_log_item *lip, 349 struct list_head *buffer_list) 350 { 351 struct xfs_buf *bp = lip->li_buf; 352 353 if (!xfs_buf_trylock(bp)) 354 return XFS_ITEM_LOCKED; 355 356 if (!xfs_buf_delwri_queue(bp, buffer_list)) { 357 xfs_buf_unlock(bp); 358 return XFS_ITEM_FLUSHING; 359 } 360 361 /* protected by ail_lock */ 362 list_for_each_entry(lip, &bp->b_li_list, li_bio_list) 363 clear_bit(XFS_LI_FAILED, &lip->li_flags); 364 xfs_buf_unlock(bp); 365 return XFS_ITEM_SUCCESS; 366 } 367 368 /* 369 * Push a single log item from the AIL. 370 * 371 * @lip may have been released and freed by the time this function returns, 372 * so callers must not dereference the log item afterwards. 373 */ 374 static inline uint 375 xfsaild_push_item( 376 struct xfs_ail *ailp, 377 struct xfs_log_item *lip) 378 { 379 /* 380 * If log item pinning is enabled, skip the push and track the item as 381 * pinned. This can help induce head-behind-tail conditions. 382 */ 383 if (XFS_TEST_ERROR(ailp->ail_log->l_mp, XFS_ERRTAG_LOG_ITEM_PIN)) 384 return XFS_ITEM_PINNED; 385 386 /* 387 * Consider the item pinned if a push callback is not defined so the 388 * caller will force the log. This should only happen for intent items 389 * as they are unpinned once the associated done item is committed to 390 * the on-disk log. 391 */ 392 if (!lip->li_ops->iop_push) 393 return XFS_ITEM_PINNED; 394 if (test_bit(XFS_LI_FAILED, &lip->li_flags)) 395 return xfsaild_resubmit_item(lip, &ailp->ail_buf_list); 396 return lip->li_ops->iop_push(lip, &ailp->ail_buf_list); 397 } 398 399 /* 400 * Compute the LSN that we'd need to push the log tail towards in order to have 401 * at least 25% of the log space free. If the log free space already meets this 402 * threshold, this function returns the lowest LSN in the AIL to slowly keep 403 * writeback ticking over and the tail of the log moving forward. 404 */ 405 static xfs_lsn_t 406 xfs_ail_calc_push_target( 407 struct xfs_ail *ailp) 408 { 409 struct xlog *log = ailp->ail_log; 410 struct xfs_log_item *lip; 411 xfs_lsn_t target_lsn; 412 xfs_lsn_t max_lsn; 413 xfs_lsn_t min_lsn; 414 int32_t free_bytes; 415 uint32_t target_block; 416 uint32_t target_cycle; 417 418 lockdep_assert_held(&ailp->ail_lock); 419 420 lip = xfs_ail_max(ailp); 421 if (!lip) 422 return NULLCOMMITLSN; 423 424 max_lsn = lip->li_lsn; 425 min_lsn = __xfs_ail_min_lsn(ailp); 426 427 /* 428 * If we are supposed to push all the items in the AIL, we want to push 429 * to the current head. We then clear the push flag so that we don't 430 * keep pushing newly queued items beyond where the push all command was 431 * run. If the push waiter wants to empty the ail, it should queue 432 * itself on the ail_empty wait queue. 433 */ 434 if (test_and_clear_bit(XFS_AIL_OPSTATE_PUSH_ALL, &ailp->ail_opstate)) 435 return max_lsn; 436 437 /* If someone wants the AIL empty, keep pushing everything we have. */ 438 if (waitqueue_active(&ailp->ail_empty)) 439 return max_lsn; 440 441 /* 442 * Background pushing - attempt to keep 25% of the log free and if we 443 * have that much free retain the existing target. 444 */ 445 free_bytes = log->l_logsize - xlog_lsn_sub(log, max_lsn, min_lsn); 446 if (free_bytes >= log->l_logsize >> 2) 447 return ailp->ail_target; 448 449 target_cycle = CYCLE_LSN(min_lsn); 450 target_block = BLOCK_LSN(min_lsn) + (log->l_logBBsize >> 2); 451 if (target_block >= log->l_logBBsize) { 452 target_block -= log->l_logBBsize; 453 target_cycle += 1; 454 } 455 target_lsn = xlog_assign_lsn(target_cycle, target_block); 456 457 /* Cap the target to the highest LSN known to be in the AIL. */ 458 if (XFS_LSN_CMP(target_lsn, max_lsn) > 0) 459 return max_lsn; 460 461 /* If the existing target is higher than the new target, keep it. */ 462 if (XFS_LSN_CMP(ailp->ail_target, target_lsn) >= 0) 463 return ailp->ail_target; 464 return target_lsn; 465 } 466 467 static void 468 xfsaild_process_logitem( 469 struct xfs_ail *ailp, 470 struct xfs_log_item *lip, 471 int *stuck, 472 int *flushing) 473 { 474 struct xfs_mount *mp = ailp->ail_log->l_mp; 475 uint type = lip->li_type; 476 unsigned long flags = lip->li_flags; 477 xfs_lsn_t item_lsn = lip->li_lsn; 478 int lock_result; 479 480 /* 481 * Note that iop_push may unlock and reacquire the AIL lock. We 482 * rely on the AIL cursor implementation to be able to deal with 483 * the dropped lock. 484 * 485 * The log item may have been freed by the push, so it must not 486 * be accessed or dereferenced below this line. 487 */ 488 lock_result = xfsaild_push_item(ailp, lip); 489 switch (lock_result) { 490 case XFS_ITEM_SUCCESS: 491 XFS_STATS_INC(mp, xs_push_ail_success); 492 trace_xfs_ail_push(ailp, type, flags, item_lsn); 493 494 ailp->ail_last_pushed_lsn = item_lsn; 495 break; 496 497 case XFS_ITEM_FLUSHING: 498 /* 499 * The item or its backing buffer is already being 500 * flushed. The typical reason for that is that an 501 * inode buffer is locked because we already pushed the 502 * updates to it as part of inode clustering. 503 * 504 * We do not want to stop flushing just because lots 505 * of items are already being flushed, but we need to 506 * re-try the flushing relatively soon if most of the 507 * AIL is being flushed. 508 */ 509 XFS_STATS_INC(mp, xs_push_ail_flushing); 510 trace_xfs_ail_flushing(ailp, type, flags, item_lsn); 511 512 (*flushing)++; 513 ailp->ail_last_pushed_lsn = item_lsn; 514 break; 515 516 case XFS_ITEM_PINNED: 517 XFS_STATS_INC(mp, xs_push_ail_pinned); 518 trace_xfs_ail_pinned(ailp, type, flags, item_lsn); 519 520 (*stuck)++; 521 ailp->ail_log_flush++; 522 break; 523 case XFS_ITEM_LOCKED: 524 XFS_STATS_INC(mp, xs_push_ail_locked); 525 trace_xfs_ail_locked(ailp, type, flags, item_lsn); 526 527 (*stuck)++; 528 break; 529 default: 530 ASSERT(0); 531 break; 532 } 533 } 534 535 static long 536 xfsaild_push( 537 struct xfs_ail *ailp) 538 { 539 struct xfs_mount *mp = ailp->ail_log->l_mp; 540 struct xfs_ail_cursor cur; 541 struct xfs_log_item *lip; 542 xfs_lsn_t lsn; 543 long tout; 544 int stuck = 0; 545 int flushing = 0; 546 int count = 0; 547 548 /* 549 * If we encountered pinned items or did not finish writing out all 550 * buffers the last time we ran, force a background CIL push to get the 551 * items unpinned in the near future. We do not wait on the CIL push as 552 * that could stall us for seconds if there is enough background IO 553 * load. Stalling for that long when the tail of the log is pinned and 554 * needs flushing will hard stop the transaction subsystem when log 555 * space runs out. 556 */ 557 if (ailp->ail_log_flush && ailp->ail_last_pushed_lsn == 0 && 558 (!list_empty_careful(&ailp->ail_buf_list) || 559 xfs_ail_min_lsn(ailp))) { 560 ailp->ail_log_flush = 0; 561 562 XFS_STATS_INC(mp, xs_push_ail_flush); 563 xlog_cil_flush(ailp->ail_log); 564 } 565 566 spin_lock(&ailp->ail_lock); 567 WRITE_ONCE(ailp->ail_target, xfs_ail_calc_push_target(ailp)); 568 if (ailp->ail_target == NULLCOMMITLSN) 569 goto out_done; 570 571 /* we're done if the AIL is empty or our push has reached the end */ 572 lip = xfs_trans_ail_cursor_first(ailp, &cur, ailp->ail_last_pushed_lsn); 573 if (!lip) 574 goto out_done_cursor; 575 576 XFS_STATS_INC(mp, xs_push_ail); 577 578 ASSERT(ailp->ail_target != NULLCOMMITLSN); 579 580 lsn = lip->li_lsn; 581 while ((XFS_LSN_CMP(lip->li_lsn, ailp->ail_target) <= 0)) { 582 583 if (test_bit(XFS_LI_FLUSHING, &lip->li_flags)) 584 goto next_item; 585 586 xfsaild_process_logitem(ailp, lip, &stuck, &flushing); 587 count++; 588 589 /* 590 * Are there too many items we can't do anything with? 591 * 592 * If we are skipping too many items because we can't flush 593 * them or they are already being flushed, we back off and 594 * given them time to complete whatever operation is being 595 * done. i.e. remove pressure from the AIL while we can't make 596 * progress so traversals don't slow down further inserts and 597 * removals to/from the AIL. 598 * 599 * The value of 100 is an arbitrary magic number based on 600 * observation. 601 */ 602 if (stuck > 100) 603 break; 604 605 next_item: 606 lip = xfs_trans_ail_cursor_next(ailp, &cur); 607 if (lip == NULL) 608 break; 609 if (lip->li_lsn != lsn && count > 1000) 610 break; 611 lsn = lip->li_lsn; 612 } 613 614 out_done_cursor: 615 xfs_trans_ail_cursor_done(&cur); 616 out_done: 617 spin_unlock(&ailp->ail_lock); 618 619 if (xfs_buf_delwri_submit_nowait(&ailp->ail_buf_list)) 620 ailp->ail_log_flush++; 621 622 if (!count || XFS_LSN_CMP(lsn, ailp->ail_target) >= 0) { 623 /* 624 * We reached the target or the AIL is empty, so wait a bit 625 * longer for I/O to complete and remove pushed items from the 626 * AIL before we start the next scan from the start of the AIL. 627 */ 628 tout = 50; 629 ailp->ail_last_pushed_lsn = 0; 630 } else if (((stuck + flushing) * 100) / count > 90) { 631 /* 632 * Either there is a lot of contention on the AIL or we are 633 * stuck due to operations in progress. "Stuck" in this case 634 * is defined as >90% of the items we tried to push were stuck. 635 * 636 * Backoff a bit more to allow some I/O to complete before 637 * restarting from the start of the AIL. This prevents us from 638 * spinning on the same items, and if they are pinned will all 639 * the restart to issue a log force to unpin the stuck items. 640 */ 641 tout = 20; 642 ailp->ail_last_pushed_lsn = 0; 643 } else { 644 /* 645 * Assume we have more work to do in a short while. 646 */ 647 tout = 0; 648 } 649 650 return tout; 651 } 652 653 static int 654 xfsaild( 655 void *data) 656 { 657 struct xfs_ail *ailp = data; 658 long tout = 0; /* milliseconds */ 659 unsigned int noreclaim_flag; 660 661 noreclaim_flag = memalloc_noreclaim_save(); 662 set_freezable(); 663 664 while (1) { 665 /* 666 * Long waits of 50ms or more occur when we've run out of items 667 * to push, so we only want uninterruptible state if we're 668 * actually blocked on something. 669 */ 670 if (tout && tout <= 20) 671 set_current_state(TASK_KILLABLE|TASK_FREEZABLE); 672 else 673 set_current_state(TASK_INTERRUPTIBLE|TASK_FREEZABLE); 674 675 /* 676 * Check kthread_should_stop() after we set the task state to 677 * guarantee that we either see the stop bit and exit or the 678 * task state is reset to runnable such that it's not scheduled 679 * out indefinitely and detects the stop bit at next iteration. 680 * A memory barrier is included in above task state set to 681 * serialize again kthread_stop(). 682 */ 683 if (kthread_should_stop()) { 684 __set_current_state(TASK_RUNNING); 685 686 /* 687 * The caller forces out the AIL before stopping the 688 * thread in the common case, which means the delwri 689 * queue is drained. In the shutdown case, the queue may 690 * still hold relogged buffers that haven't been 691 * submitted because they were pinned since added to the 692 * queue. 693 * 694 * Log I/O error processing stales the underlying buffer 695 * and clears the delwri state, expecting the buf to be 696 * removed on the next submission attempt. That won't 697 * happen if we're shutting down, so this is the last 698 * opportunity to release such buffers from the queue. 699 */ 700 ASSERT(list_empty(&ailp->ail_buf_list) || 701 xlog_is_shutdown(ailp->ail_log)); 702 xfs_buf_delwri_cancel(&ailp->ail_buf_list); 703 break; 704 } 705 706 /* Idle if the AIL is empty. */ 707 spin_lock(&ailp->ail_lock); 708 if (!xfs_ail_min(ailp) && list_empty(&ailp->ail_buf_list)) { 709 spin_unlock(&ailp->ail_lock); 710 schedule(); 711 tout = 0; 712 continue; 713 } 714 spin_unlock(&ailp->ail_lock); 715 716 if (tout) 717 schedule_timeout(msecs_to_jiffies(tout)); 718 719 __set_current_state(TASK_RUNNING); 720 721 try_to_freeze(); 722 723 tout = xfsaild_push(ailp); 724 } 725 726 memalloc_noreclaim_restore(noreclaim_flag); 727 return 0; 728 } 729 730 /* 731 * Push out all items in the AIL immediately and wait until the AIL is empty. 732 */ 733 void 734 xfs_ail_push_all_sync( 735 struct xfs_ail *ailp) 736 { 737 DEFINE_WAIT(wait); 738 739 spin_lock(&ailp->ail_lock); 740 while (xfs_ail_max(ailp) != NULL) { 741 prepare_to_wait(&ailp->ail_empty, &wait, TASK_UNINTERRUPTIBLE); 742 wake_up_process(ailp->ail_task); 743 spin_unlock(&ailp->ail_lock); 744 schedule(); 745 spin_lock(&ailp->ail_lock); 746 } 747 spin_unlock(&ailp->ail_lock); 748 749 finish_wait(&ailp->ail_empty, &wait); 750 } 751 752 void 753 __xfs_ail_assign_tail_lsn( 754 struct xfs_ail *ailp) 755 { 756 struct xlog *log = ailp->ail_log; 757 xfs_lsn_t tail_lsn; 758 759 assert_spin_locked(&ailp->ail_lock); 760 761 if (xlog_is_shutdown(log)) 762 return; 763 764 tail_lsn = __xfs_ail_min_lsn(ailp); 765 if (!tail_lsn) 766 tail_lsn = ailp->ail_head_lsn; 767 768 WRITE_ONCE(log->l_tail_space, 769 xlog_lsn_sub(log, ailp->ail_head_lsn, tail_lsn)); 770 trace_xfs_log_assign_tail_lsn(log, tail_lsn); 771 atomic64_set(&log->l_tail_lsn, tail_lsn); 772 } 773 774 /* 775 * Callers should pass the original tail lsn so that we can detect if the tail 776 * has moved as a result of the operation that was performed. If the caller 777 * needs to force a tail space update, it should pass NULLCOMMITLSN to bypass 778 * the "did the tail LSN change?" checks. If the caller wants to avoid a tail 779 * update (e.g. it knows the tail did not change) it should pass an @old_lsn of 780 * 0. 781 */ 782 void 783 xfs_ail_update_finish( 784 struct xfs_ail *ailp, 785 xfs_lsn_t old_lsn) __releases(ailp->ail_lock) 786 { 787 struct xlog *log = ailp->ail_log; 788 789 /* If the tail lsn hasn't changed, don't do updates or wakeups. */ 790 if (!old_lsn || old_lsn == __xfs_ail_min_lsn(ailp)) { 791 spin_unlock(&ailp->ail_lock); 792 return; 793 } 794 795 __xfs_ail_assign_tail_lsn(ailp); 796 if (list_empty(&ailp->ail_head)) 797 wake_up_all(&ailp->ail_empty); 798 spin_unlock(&ailp->ail_lock); 799 xfs_log_space_wake(log->l_mp); 800 } 801 802 /* 803 * xfs_trans_ail_update_bulk - bulk AIL insertion operation. 804 * 805 * @xfs_trans_ail_update_bulk takes an array of log items that all need to be 806 * positioned at the same LSN in the AIL. If an item is not in the AIL, it will 807 * be added. Otherwise, it will be repositioned by removing it and re-adding 808 * it to the AIL. 809 * 810 * If we move the first item in the AIL, update the log tail to match the new 811 * minimum LSN in the AIL. 812 * 813 * This function should be called with the AIL lock held. 814 * 815 * To optimise the insert operation, we add all items to a temporary list, then 816 * splice this list into the correct position in the AIL. 817 * 818 * Items that are already in the AIL are first deleted from their current 819 * location before being added to the temporary list. 820 * 821 * This avoids needing to do an insert operation on every item. 822 * 823 * The AIL lock is dropped by xfs_ail_update_finish() before returning to 824 * the caller. 825 */ 826 void 827 xfs_trans_ail_update_bulk( 828 struct xfs_ail *ailp, 829 struct xfs_ail_cursor *cur, 830 struct xfs_log_item **log_items, 831 int nr_items, 832 xfs_lsn_t lsn) __releases(ailp->ail_lock) 833 { 834 struct xfs_log_item *mlip; 835 xfs_lsn_t tail_lsn = 0; 836 int i; 837 LIST_HEAD(tmp); 838 839 ASSERT(nr_items > 0); /* Not required, but true. */ 840 mlip = xfs_ail_min(ailp); 841 842 for (i = 0; i < nr_items; i++) { 843 struct xfs_log_item *lip = log_items[i]; 844 if (test_and_set_bit(XFS_LI_IN_AIL, &lip->li_flags)) { 845 /* check if we really need to move the item */ 846 if (XFS_LSN_CMP(lsn, lip->li_lsn) <= 0) 847 continue; 848 849 trace_xfs_ail_move(lip, lip->li_lsn, lsn); 850 if (mlip == lip && !tail_lsn) 851 tail_lsn = lip->li_lsn; 852 853 xfs_ail_delete(ailp, lip); 854 } else { 855 trace_xfs_ail_insert(lip, 0, lsn); 856 } 857 lip->li_lsn = lsn; 858 list_add_tail(&lip->li_ail, &tmp); 859 } 860 861 if (!list_empty(&tmp)) 862 xfs_ail_splice(ailp, cur, &tmp, lsn); 863 864 /* 865 * If this is the first insert, wake up the push daemon so it can 866 * actively scan for items to push. We also need to do a log tail 867 * LSN update to ensure that it is correctly tracked by the log, so 868 * set the tail_lsn to NULLCOMMITLSN so that xfs_ail_update_finish() 869 * will see that the tail lsn has changed and will update the tail 870 * appropriately. 871 */ 872 if (!mlip) { 873 wake_up_process(ailp->ail_task); 874 tail_lsn = NULLCOMMITLSN; 875 } 876 877 xfs_ail_update_finish(ailp, tail_lsn); 878 } 879 880 /* Insert a log item into the AIL. */ 881 void 882 xfs_trans_ail_insert( 883 struct xfs_ail *ailp, 884 struct xfs_log_item *lip, 885 xfs_lsn_t lsn) 886 { 887 spin_lock(&ailp->ail_lock); 888 xfs_trans_ail_update_bulk(ailp, NULL, &lip, 1, lsn); 889 } 890 891 /* 892 * Delete one log item from the AIL. 893 * 894 * If this item was at the tail of the AIL, return the LSN of the log item so 895 * that we can use it to check if the LSN of the tail of the log has moved 896 * when finishing up the AIL delete process in xfs_ail_update_finish(). 897 */ 898 xfs_lsn_t 899 xfs_ail_delete_one( 900 struct xfs_ail *ailp, 901 struct xfs_log_item *lip) 902 { 903 struct xfs_log_item *mlip = xfs_ail_min(ailp); 904 xfs_lsn_t lsn = lip->li_lsn; 905 906 trace_xfs_ail_delete(lip, mlip->li_lsn, lip->li_lsn); 907 xfs_ail_delete(ailp, lip); 908 clear_bit(XFS_LI_IN_AIL, &lip->li_flags); 909 lip->li_lsn = 0; 910 911 if (mlip == lip) 912 return lsn; 913 return 0; 914 } 915 916 void 917 xfs_trans_ail_delete( 918 struct xfs_log_item *lip, 919 int shutdown_type) 920 { 921 struct xfs_ail *ailp = lip->li_ailp; 922 struct xlog *log = ailp->ail_log; 923 xfs_lsn_t tail_lsn; 924 925 spin_lock(&ailp->ail_lock); 926 if (!test_bit(XFS_LI_IN_AIL, &lip->li_flags)) { 927 spin_unlock(&ailp->ail_lock); 928 if (shutdown_type && !xlog_is_shutdown(log)) { 929 xfs_alert_tag(log->l_mp, XFS_PTAG_AILDELETE, 930 "%s: attempting to delete a log item that is not in the AIL", 931 __func__); 932 xlog_force_shutdown(log, shutdown_type); 933 } 934 return; 935 } 936 937 clear_bit(XFS_LI_FAILED, &lip->li_flags); 938 tail_lsn = xfs_ail_delete_one(ailp, lip); 939 xfs_ail_update_finish(ailp, tail_lsn); /* drops the AIL lock */ 940 } 941 942 int 943 xfs_trans_ail_init( 944 xfs_mount_t *mp) 945 { 946 struct xfs_ail *ailp; 947 948 ailp = kzalloc_obj(struct xfs_ail, GFP_KERNEL | __GFP_RETRY_MAYFAIL); 949 if (!ailp) 950 return -ENOMEM; 951 952 ailp->ail_log = mp->m_log; 953 INIT_LIST_HEAD(&ailp->ail_head); 954 INIT_LIST_HEAD(&ailp->ail_cursors); 955 spin_lock_init(&ailp->ail_lock); 956 INIT_LIST_HEAD(&ailp->ail_buf_list); 957 init_waitqueue_head(&ailp->ail_empty); 958 959 ailp->ail_task = kthread_run(xfsaild, ailp, "xfsaild/%s", 960 mp->m_super->s_id); 961 if (IS_ERR(ailp->ail_task)) 962 goto out_free_ailp; 963 964 mp->m_ail = ailp; 965 return 0; 966 967 out_free_ailp: 968 kfree(ailp); 969 return -ENOMEM; 970 } 971 972 void 973 xfs_trans_ail_destroy( 974 xfs_mount_t *mp) 975 { 976 struct xfs_ail *ailp = mp->m_ail; 977 978 kthread_stop(ailp->ail_task); 979 kfree(ailp); 980 } 981