1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (C) 2010 Red Hat, Inc. 4 * Copyright (C) 2016-2023 Christoph Hellwig. 5 */ 6 #include <linux/iomap.h> 7 #include <linux/buffer_head.h> 8 #include <linux/writeback.h> 9 #include <linux/swap.h> 10 #include <linux/migrate.h> 11 #include <linux/fserror.h> 12 #include "internal.h" 13 #include "trace.h" 14 15 #include "../internal.h" 16 17 /* 18 * Structure allocated for each folio to track per-block uptodate, dirty state 19 * and I/O completions. 20 */ 21 struct iomap_folio_state { 22 spinlock_t state_lock; 23 unsigned int read_bytes_pending; 24 atomic_t write_bytes_pending; 25 26 /* 27 * Each block has two bits in this bitmap: 28 * Bits [0..blocks_per_folio) has the uptodate status. 29 * Bits [b_p_f...(2*b_p_f)) has the dirty status. 30 */ 31 unsigned long state[]; 32 }; 33 34 static inline bool ifs_is_fully_uptodate(struct folio *folio, 35 struct iomap_folio_state *ifs) 36 { 37 struct inode *inode = folio->mapping->host; 38 39 return bitmap_full(ifs->state, i_blocks_per_folio(inode, folio)); 40 } 41 42 /* 43 * Find the next uptodate block in the folio. end_blk is inclusive. 44 * If no uptodate block is found, this will return end_blk + 1. 45 */ 46 static unsigned ifs_next_uptodate_block(struct folio *folio, 47 unsigned start_blk, unsigned end_blk) 48 { 49 struct iomap_folio_state *ifs = folio->private; 50 51 return find_next_bit(ifs->state, end_blk + 1, start_blk); 52 } 53 54 /* 55 * Find the next non-uptodate block in the folio. end_blk is inclusive. 56 * If no non-uptodate block is found, this will return end_blk + 1. 57 */ 58 static unsigned ifs_next_nonuptodate_block(struct folio *folio, 59 unsigned start_blk, unsigned end_blk) 60 { 61 struct iomap_folio_state *ifs = folio->private; 62 63 return find_next_zero_bit(ifs->state, end_blk + 1, start_blk); 64 } 65 66 static bool ifs_set_range_uptodate(struct folio *folio, 67 struct iomap_folio_state *ifs, size_t off, size_t len) 68 { 69 struct inode *inode = folio->mapping->host; 70 unsigned int first_blk = off >> inode->i_blkbits; 71 unsigned int last_blk = (off + len - 1) >> inode->i_blkbits; 72 unsigned int nr_blks = last_blk - first_blk + 1; 73 74 bitmap_set(ifs->state, first_blk, nr_blks); 75 return ifs_is_fully_uptodate(folio, ifs); 76 } 77 78 static void iomap_set_range_uptodate(struct folio *folio, size_t off, 79 size_t len) 80 { 81 struct iomap_folio_state *ifs = folio->private; 82 unsigned long flags; 83 bool mark_uptodate = true; 84 85 if (folio_test_uptodate(folio)) 86 return; 87 88 if (ifs) { 89 spin_lock_irqsave(&ifs->state_lock, flags); 90 /* 91 * If a read with bytes pending is in progress, we must not call 92 * folio_mark_uptodate(). The read completion path 93 * (iomap_read_end()) will call folio_end_read(), which uses XOR 94 * semantics to set the uptodate bit. If we set it here, the XOR 95 * in folio_end_read() will clear it, leaving the folio not 96 * uptodate. 97 */ 98 mark_uptodate = ifs_set_range_uptodate(folio, ifs, off, len) && 99 !ifs->read_bytes_pending; 100 spin_unlock_irqrestore(&ifs->state_lock, flags); 101 } 102 103 if (mark_uptodate) 104 folio_mark_uptodate(folio); 105 } 106 107 /* 108 * Find the next dirty block in the folio. end_blk is inclusive. 109 * If no dirty block is found, this will return end_blk + 1. 110 */ 111 static unsigned ifs_next_dirty_block(struct folio *folio, 112 unsigned start_blk, unsigned end_blk) 113 { 114 struct iomap_folio_state *ifs = folio->private; 115 struct inode *inode = folio->mapping->host; 116 unsigned int blks = i_blocks_per_folio(inode, folio); 117 118 return find_next_bit(ifs->state, blks + end_blk + 1, 119 blks + start_blk) - blks; 120 } 121 122 /* 123 * Find the next clean block in the folio. end_blk is inclusive. 124 * If no clean block is found, this will return end_blk + 1. 125 */ 126 static unsigned ifs_next_clean_block(struct folio *folio, 127 unsigned start_blk, unsigned end_blk) 128 { 129 struct iomap_folio_state *ifs = folio->private; 130 struct inode *inode = folio->mapping->host; 131 unsigned int blks = i_blocks_per_folio(inode, folio); 132 133 return find_next_zero_bit(ifs->state, blks + end_blk + 1, 134 blks + start_blk) - blks; 135 } 136 137 static unsigned ifs_find_dirty_range(struct folio *folio, 138 struct iomap_folio_state *ifs, u64 *range_start, u64 range_end) 139 { 140 struct inode *inode = folio->mapping->host; 141 unsigned start_blk = 142 offset_in_folio(folio, *range_start) >> inode->i_blkbits; 143 unsigned end_blk = min_not_zero( 144 offset_in_folio(folio, range_end) >> inode->i_blkbits, 145 i_blocks_per_folio(inode, folio)) - 1; 146 unsigned nblks; 147 148 start_blk = ifs_next_dirty_block(folio, start_blk, end_blk); 149 if (start_blk > end_blk) 150 return 0; 151 if (start_blk == end_blk) 152 nblks = 1; 153 else 154 nblks = ifs_next_clean_block(folio, start_blk + 1, end_blk) - 155 start_blk; 156 157 *range_start = folio_pos(folio) + (start_blk << inode->i_blkbits); 158 return nblks << inode->i_blkbits; 159 } 160 161 static unsigned iomap_find_dirty_range(struct folio *folio, u64 *range_start, 162 u64 range_end) 163 { 164 struct iomap_folio_state *ifs = folio->private; 165 166 if (*range_start >= range_end) 167 return 0; 168 169 if (ifs) 170 return ifs_find_dirty_range(folio, ifs, range_start, range_end); 171 return range_end - *range_start; 172 } 173 174 static void ifs_clear_range_dirty(struct folio *folio, 175 struct iomap_folio_state *ifs, size_t off, size_t len) 176 { 177 struct inode *inode = folio->mapping->host; 178 unsigned int blks_per_folio = i_blocks_per_folio(inode, folio); 179 unsigned int first_blk = (off >> inode->i_blkbits); 180 unsigned int last_blk = (off + len - 1) >> inode->i_blkbits; 181 unsigned int nr_blks = last_blk - first_blk + 1; 182 unsigned long flags; 183 184 spin_lock_irqsave(&ifs->state_lock, flags); 185 bitmap_clear(ifs->state, first_blk + blks_per_folio, nr_blks); 186 spin_unlock_irqrestore(&ifs->state_lock, flags); 187 } 188 189 static void iomap_clear_range_dirty(struct folio *folio, size_t off, size_t len) 190 { 191 struct iomap_folio_state *ifs = folio->private; 192 193 if (ifs) 194 ifs_clear_range_dirty(folio, ifs, off, len); 195 } 196 197 static void ifs_set_range_dirty(struct folio *folio, 198 struct iomap_folio_state *ifs, size_t off, size_t len) 199 { 200 struct inode *inode = folio->mapping->host; 201 unsigned int blks_per_folio = i_blocks_per_folio(inode, folio); 202 unsigned int first_blk = (off >> inode->i_blkbits); 203 unsigned int last_blk = (off + len - 1) >> inode->i_blkbits; 204 unsigned int nr_blks = last_blk - first_blk + 1; 205 unsigned long flags; 206 207 spin_lock_irqsave(&ifs->state_lock, flags); 208 bitmap_set(ifs->state, first_blk + blks_per_folio, nr_blks); 209 spin_unlock_irqrestore(&ifs->state_lock, flags); 210 } 211 212 static void iomap_set_range_dirty(struct folio *folio, size_t off, size_t len) 213 { 214 struct iomap_folio_state *ifs = folio->private; 215 216 if (ifs) 217 ifs_set_range_dirty(folio, ifs, off, len); 218 } 219 220 static struct iomap_folio_state *ifs_alloc(struct inode *inode, 221 struct folio *folio, unsigned int flags) 222 { 223 struct iomap_folio_state *ifs = folio->private; 224 unsigned int nr_blocks = i_blocks_per_folio(inode, folio); 225 gfp_t gfp; 226 227 if (ifs || nr_blocks <= 1) 228 return ifs; 229 230 if (flags & IOMAP_NOWAIT) 231 gfp = GFP_NOWAIT; 232 else 233 gfp = GFP_NOFS | __GFP_NOFAIL; 234 235 /* 236 * ifs->state tracks two sets of state flags when the 237 * filesystem block size is smaller than the folio size. 238 * The first state tracks per-block uptodate and the 239 * second tracks per-block dirty state. 240 */ 241 ifs = kzalloc_flex(*ifs, state, BITS_TO_LONGS(2 * nr_blocks), gfp); 242 if (!ifs) 243 return ifs; 244 245 spin_lock_init(&ifs->state_lock); 246 if (folio_test_uptodate(folio)) 247 bitmap_set(ifs->state, 0, nr_blocks); 248 if (folio_test_dirty(folio)) 249 bitmap_set(ifs->state, nr_blocks, nr_blocks); 250 folio_attach_private(folio, ifs); 251 252 return ifs; 253 } 254 255 static void ifs_free(struct folio *folio) 256 { 257 struct iomap_folio_state *ifs = folio_detach_private(folio); 258 259 if (!ifs) 260 return; 261 WARN_ON_ONCE(ifs->read_bytes_pending != 0); 262 WARN_ON_ONCE(atomic_read(&ifs->write_bytes_pending)); 263 WARN_ON_ONCE(ifs_is_fully_uptodate(folio, ifs) != 264 folio_test_uptodate(folio)); 265 kfree(ifs); 266 } 267 268 /* 269 * Calculate how many bytes to truncate based off the number of blocks to 270 * truncate and the end position to start truncating from. 271 */ 272 static size_t iomap_bytes_to_truncate(loff_t end_pos, unsigned block_bits, 273 unsigned blocks_truncated) 274 { 275 unsigned block_size = 1 << block_bits; 276 unsigned block_offset = end_pos & (block_size - 1); 277 278 if (!block_offset) 279 return blocks_truncated << block_bits; 280 281 return ((blocks_truncated - 1) << block_bits) + block_offset; 282 } 283 284 /* 285 * Calculate the range inside the folio that we actually need to read. 286 */ 287 static void iomap_adjust_read_range(struct inode *inode, struct folio *folio, 288 loff_t *pos, loff_t length, size_t *offp, size_t *lenp) 289 { 290 struct iomap_folio_state *ifs = folio->private; 291 loff_t orig_pos = *pos; 292 loff_t isize = i_size_read(inode); 293 unsigned block_bits = inode->i_blkbits; 294 unsigned block_size = (1 << block_bits); 295 size_t poff = offset_in_folio(folio, *pos); 296 size_t plen = min_t(loff_t, folio_size(folio) - poff, length); 297 size_t orig_plen = plen; 298 unsigned first = poff >> block_bits; 299 unsigned last = (poff + plen - 1) >> block_bits; 300 301 /* 302 * If the block size is smaller than the page size, we need to check the 303 * per-block uptodate status and adjust the offset and length if needed 304 * to avoid reading in already uptodate ranges. 305 */ 306 if (ifs) { 307 unsigned int next, blocks_skipped; 308 309 next = ifs_next_nonuptodate_block(folio, first, last); 310 blocks_skipped = next - first; 311 312 if (blocks_skipped) { 313 unsigned long block_offset = *pos & (block_size - 1); 314 unsigned bytes_skipped = 315 (blocks_skipped << block_bits) - block_offset; 316 317 *pos += bytes_skipped; 318 poff += bytes_skipped; 319 plen -= bytes_skipped; 320 } 321 first = next; 322 323 /* truncate len if we find any trailing uptodate block(s) */ 324 if (++next <= last) { 325 next = ifs_next_uptodate_block(folio, next, last); 326 if (next <= last) { 327 plen -= iomap_bytes_to_truncate(*pos + plen, 328 block_bits, last - next + 1); 329 last = next - 1; 330 } 331 } 332 } 333 334 /* 335 * If the extent spans the block that contains the i_size, we need to 336 * handle both halves separately so that we properly zero data in the 337 * page cache for blocks that are entirely outside of i_size. 338 */ 339 if (orig_pos <= isize && orig_pos + orig_plen > isize) { 340 unsigned end = offset_in_folio(folio, isize - 1) >> block_bits; 341 342 if (first <= end && last > end) 343 plen -= iomap_bytes_to_truncate(*pos + plen, block_bits, 344 last - end); 345 } 346 347 *offp = poff; 348 *lenp = plen; 349 } 350 351 static inline bool iomap_block_needs_zeroing(const struct iomap_iter *iter, 352 loff_t pos) 353 { 354 const struct iomap *srcmap = iomap_iter_srcmap(iter); 355 356 return srcmap->type != IOMAP_MAPPED || 357 (srcmap->flags & IOMAP_F_NEW) || 358 pos >= i_size_read(iter->inode); 359 } 360 361 /** 362 * iomap_read_inline_data - copy inline data into the page cache 363 * @iter: iteration structure 364 * @folio: folio to copy to 365 * 366 * Copy the inline data in @iter into @folio and zero out the rest of the folio. 367 * Only a single IOMAP_INLINE extent is allowed at the end of each file. 368 * Returns zero for success to complete the read, or the usual negative errno. 369 */ 370 static int iomap_read_inline_data(const struct iomap_iter *iter, 371 struct folio *folio) 372 { 373 const struct iomap *iomap = iomap_iter_srcmap(iter); 374 size_t size = i_size_read(iter->inode) - iomap->offset; 375 size_t offset = offset_in_folio(folio, iomap->offset); 376 377 if (WARN_ON_ONCE(!iomap->inline_data)) 378 return -EIO; 379 380 if (folio_test_uptodate(folio)) 381 return 0; 382 383 if (WARN_ON_ONCE(size > iomap->length)) { 384 fserror_report_io(iter->inode, FSERR_BUFFERED_READ, 385 iomap->offset, size, -EIO, GFP_NOFS); 386 return -EIO; 387 } 388 if (offset > 0) 389 ifs_alloc(iter->inode, folio, iter->flags); 390 391 folio_fill_tail(folio, offset, iomap->inline_data, size); 392 iomap_set_range_uptodate(folio, offset, folio_size(folio) - offset); 393 return 0; 394 } 395 396 void iomap_finish_folio_read(struct folio *folio, size_t off, size_t len, 397 int error) 398 { 399 struct iomap_folio_state *ifs = folio->private; 400 bool uptodate = !error; 401 bool finished = true; 402 403 if (ifs) { 404 unsigned long flags; 405 406 spin_lock_irqsave(&ifs->state_lock, flags); 407 if (!error) 408 uptodate = ifs_set_range_uptodate(folio, ifs, off, len); 409 ifs->read_bytes_pending -= len; 410 finished = !ifs->read_bytes_pending; 411 spin_unlock_irqrestore(&ifs->state_lock, flags); 412 } 413 414 if (error) 415 fserror_report_io(folio->mapping->host, FSERR_BUFFERED_READ, 416 folio_pos(folio) + off, len, error, 417 GFP_ATOMIC); 418 419 if (finished) 420 folio_end_read(folio, uptodate); 421 } 422 EXPORT_SYMBOL_GPL(iomap_finish_folio_read); 423 424 static void iomap_read_init(struct folio *folio) 425 { 426 struct iomap_folio_state *ifs = folio->private; 427 428 if (ifs) { 429 /* 430 * ifs->read_bytes_pending is used to track how many bytes are 431 * read in asynchronously by the IO helper. We need to track 432 * this so that we can know when the IO helper has finished 433 * reading in all the necessary ranges of the folio and can end 434 * the read. 435 * 436 * Increase ->read_bytes_pending by the folio size to start. 437 * We'll subtract any uptodate / zeroed ranges that did not 438 * require IO in iomap_read_end() after we're done processing 439 * the folio. 440 * 441 * We do this because otherwise, we would have to increment 442 * ifs->read_bytes_pending every time a range in the folio needs 443 * to be read in, which can get expensive since the spinlock 444 * needs to be held whenever modifying ifs->read_bytes_pending. 445 */ 446 spin_lock_irq(&ifs->state_lock); 447 WARN_ON_ONCE(ifs->read_bytes_pending != 0); 448 ifs->read_bytes_pending = folio_size(folio); 449 spin_unlock_irq(&ifs->state_lock); 450 } 451 } 452 453 /* 454 * This ends IO if no bytes were submitted to an IO helper. 455 * 456 * Otherwise, this calibrates ifs->read_bytes_pending to represent only the 457 * submitted bytes (see comment in iomap_read_init()). If all bytes submitted 458 * have already been completed by the IO helper, then this will end the read. 459 * Else the IO helper will end the read after all submitted ranges have been 460 * read. 461 */ 462 static void iomap_read_end(struct folio *folio, size_t bytes_submitted) 463 { 464 struct iomap_folio_state *ifs = folio->private; 465 466 if (ifs) { 467 bool end_read, uptodate; 468 469 spin_lock_irq(&ifs->state_lock); 470 if (!ifs->read_bytes_pending) { 471 WARN_ON_ONCE(bytes_submitted); 472 spin_unlock_irq(&ifs->state_lock); 473 folio_unlock(folio); 474 return; 475 } 476 477 /* 478 * Subtract any bytes that were initially accounted to 479 * read_bytes_pending but skipped for IO. 480 */ 481 ifs->read_bytes_pending -= folio_size(folio) - bytes_submitted; 482 483 /* 484 * If !ifs->read_bytes_pending, this means all pending reads by 485 * the IO helper have already completed, which means we need to 486 * end the folio read here. If ifs->read_bytes_pending != 0, 487 * the IO helper will end the folio read. 488 */ 489 end_read = !ifs->read_bytes_pending; 490 if (end_read) 491 uptodate = ifs_is_fully_uptodate(folio, ifs); 492 spin_unlock_irq(&ifs->state_lock); 493 if (end_read) 494 folio_end_read(folio, uptodate); 495 } else { 496 /* 497 * If a folio without an ifs is submitted to the IO helper, the 498 * read must be on the entire folio and the IO helper takes 499 * ownership of the folio. This means we should only enter 500 * iomap_read_end() for the !ifs case if no bytes were submitted 501 * to the IO helper, in which case we are responsible for 502 * unlocking the folio here. 503 */ 504 WARN_ON_ONCE(bytes_submitted); 505 folio_unlock(folio); 506 } 507 } 508 509 static int iomap_read_folio_iter(struct iomap_iter *iter, 510 struct iomap_read_folio_ctx *ctx, size_t *bytes_submitted) 511 { 512 const struct iomap *iomap = &iter->iomap; 513 loff_t pos = iter->pos; 514 loff_t length = iomap_length(iter); 515 struct folio *folio = ctx->cur_folio; 516 size_t folio_len = folio_size(folio); 517 struct iomap_folio_state *ifs; 518 size_t poff, plen; 519 loff_t pos_diff; 520 int ret; 521 522 if (iomap->type == IOMAP_INLINE) { 523 ret = iomap_read_inline_data(iter, folio); 524 if (ret) 525 return ret; 526 return iomap_iter_advance(iter, length); 527 } 528 529 ifs = ifs_alloc(iter->inode, folio, iter->flags); 530 531 length = min_t(loff_t, length, folio_len - offset_in_folio(folio, pos)); 532 while (length) { 533 iomap_adjust_read_range(iter->inode, folio, &pos, length, &poff, 534 &plen); 535 536 pos_diff = pos - iter->pos; 537 if (WARN_ON_ONCE(pos_diff + plen > length)) 538 return -EIO; 539 540 ret = iomap_iter_advance(iter, pos_diff); 541 if (ret) 542 return ret; 543 544 if (plen == 0) 545 return 0; 546 547 /* zero post-eof blocks as the page may be mapped */ 548 if (iomap_block_needs_zeroing(iter, pos)) { 549 folio_zero_range(folio, poff, plen); 550 iomap_set_range_uptodate(folio, poff, plen); 551 } else { 552 if (!*bytes_submitted) 553 iomap_read_init(folio); 554 ret = ctx->ops->read_folio_range(iter, ctx, plen); 555 if (ret < 0) 556 fserror_report_io(iter->inode, 557 FSERR_BUFFERED_READ, pos, 558 plen, ret, GFP_NOFS); 559 if (ret) 560 return ret; 561 562 *bytes_submitted += plen; 563 /* 564 * Hand off folio ownership to the IO helper when: 565 * 1) The entire folio has been submitted for IO, or 566 * 2) There is no ifs attached to the folio 567 * 568 * Case (2) occurs when 1 << i_blkbits matches the folio 569 * size but the underlying filesystem or block device 570 * uses a smaller granularity for IO. 571 */ 572 if (*bytes_submitted == folio_len || !ifs) 573 ctx->cur_folio = NULL; 574 } 575 576 ret = iomap_iter_advance(iter, plen); 577 if (ret) 578 return ret; 579 length -= pos_diff + plen; 580 pos = iter->pos; 581 } 582 return 0; 583 } 584 585 void iomap_read_folio(const struct iomap_ops *ops, 586 struct iomap_read_folio_ctx *ctx, void *private) 587 { 588 struct folio *folio = ctx->cur_folio; 589 struct iomap_iter iter = { 590 .inode = folio->mapping->host, 591 .pos = folio_pos(folio), 592 .len = folio_size(folio), 593 .private = private, 594 }; 595 size_t bytes_submitted = 0; 596 int ret; 597 598 trace_iomap_readpage(iter.inode, 1); 599 600 while ((ret = iomap_iter(&iter, ops)) > 0) 601 iter.status = iomap_read_folio_iter(&iter, ctx, 602 &bytes_submitted); 603 604 if (ctx->ops->submit_read) 605 ctx->ops->submit_read(ctx); 606 607 if (ctx->cur_folio) 608 iomap_read_end(ctx->cur_folio, bytes_submitted); 609 } 610 EXPORT_SYMBOL_GPL(iomap_read_folio); 611 612 static int iomap_readahead_iter(struct iomap_iter *iter, 613 struct iomap_read_folio_ctx *ctx, size_t *cur_bytes_submitted) 614 { 615 int ret; 616 617 while (iomap_length(iter)) { 618 if (ctx->cur_folio && 619 offset_in_folio(ctx->cur_folio, iter->pos) == 0) { 620 iomap_read_end(ctx->cur_folio, *cur_bytes_submitted); 621 ctx->cur_folio = NULL; 622 } 623 if (!ctx->cur_folio) { 624 ctx->cur_folio = readahead_folio(ctx->rac); 625 if (WARN_ON_ONCE(!ctx->cur_folio)) 626 return -EINVAL; 627 *cur_bytes_submitted = 0; 628 } 629 ret = iomap_read_folio_iter(iter, ctx, cur_bytes_submitted); 630 if (ret) 631 return ret; 632 } 633 634 return 0; 635 } 636 637 /** 638 * iomap_readahead - Attempt to read pages from a file. 639 * @ops: The operations vector for the filesystem. 640 * @ctx: The ctx used for issuing readahead. 641 * @private: The filesystem-specific information for issuing iomap_iter. 642 * 643 * This function is for filesystems to call to implement their readahead 644 * address_space operation. 645 * 646 * Context: The @ops callbacks may submit I/O (eg to read the addresses of 647 * blocks from disc), and may wait for it. The caller may be trying to 648 * access a different page, and so sleeping excessively should be avoided. 649 * It may allocate memory, but should avoid costly allocations. This 650 * function is called with memalloc_nofs set, so allocations will not cause 651 * the filesystem to be reentered. 652 */ 653 void iomap_readahead(const struct iomap_ops *ops, 654 struct iomap_read_folio_ctx *ctx, void *private) 655 { 656 struct readahead_control *rac = ctx->rac; 657 struct iomap_iter iter = { 658 .inode = rac->mapping->host, 659 .pos = readahead_pos(rac), 660 .len = readahead_length(rac), 661 .private = private, 662 }; 663 size_t cur_bytes_submitted; 664 665 trace_iomap_readahead(rac->mapping->host, readahead_count(rac)); 666 667 while (iomap_iter(&iter, ops) > 0) 668 iter.status = iomap_readahead_iter(&iter, ctx, 669 &cur_bytes_submitted); 670 671 if (ctx->ops->submit_read) 672 ctx->ops->submit_read(ctx); 673 674 if (ctx->cur_folio) 675 iomap_read_end(ctx->cur_folio, cur_bytes_submitted); 676 } 677 EXPORT_SYMBOL_GPL(iomap_readahead); 678 679 /* 680 * iomap_is_partially_uptodate checks whether blocks within a folio are 681 * uptodate or not. 682 * 683 * Returns true if all blocks which correspond to the specified part 684 * of the folio are uptodate. 685 */ 686 bool iomap_is_partially_uptodate(struct folio *folio, size_t from, size_t count) 687 { 688 struct iomap_folio_state *ifs = folio->private; 689 struct inode *inode = folio->mapping->host; 690 unsigned first, last; 691 692 if (!ifs) 693 return false; 694 695 /* Caller's range may extend past the end of this folio */ 696 count = min(folio_size(folio) - from, count); 697 698 /* First and last blocks in range within folio */ 699 first = from >> inode->i_blkbits; 700 last = (from + count - 1) >> inode->i_blkbits; 701 702 return ifs_next_nonuptodate_block(folio, first, last) > last; 703 } 704 EXPORT_SYMBOL_GPL(iomap_is_partially_uptodate); 705 706 /** 707 * iomap_get_folio - get a folio reference for writing 708 * @iter: iteration structure 709 * @pos: start offset of write 710 * @len: Suggested size of folio to create. 711 * 712 * Returns a locked reference to the folio at @pos, or an error pointer if the 713 * folio could not be obtained. 714 */ 715 struct folio *iomap_get_folio(struct iomap_iter *iter, loff_t pos, size_t len) 716 { 717 fgf_t fgp = FGP_WRITEBEGIN | FGP_NOFS; 718 719 if (iter->flags & IOMAP_NOWAIT) 720 fgp |= FGP_NOWAIT; 721 if (iter->flags & IOMAP_DONTCACHE) 722 fgp |= FGP_DONTCACHE; 723 fgp |= fgf_set_order(len); 724 725 return __filemap_get_folio(iter->inode->i_mapping, pos >> PAGE_SHIFT, 726 fgp, mapping_gfp_mask(iter->inode->i_mapping)); 727 } 728 EXPORT_SYMBOL_GPL(iomap_get_folio); 729 730 bool iomap_release_folio(struct folio *folio, gfp_t gfp_flags) 731 { 732 trace_iomap_release_folio(folio->mapping->host, folio_pos(folio), 733 folio_size(folio)); 734 735 /* 736 * If the folio is dirty, we refuse to release our metadata because 737 * it may be partially dirty. Once we track per-block dirty state, 738 * we can release the metadata if every block is dirty. 739 */ 740 if (folio_test_dirty(folio)) 741 return false; 742 ifs_free(folio); 743 return true; 744 } 745 EXPORT_SYMBOL_GPL(iomap_release_folio); 746 747 void iomap_invalidate_folio(struct folio *folio, size_t offset, size_t len) 748 { 749 trace_iomap_invalidate_folio(folio->mapping->host, 750 folio_pos(folio) + offset, len); 751 752 /* 753 * If we're invalidating the entire folio, clear the dirty state 754 * from it and release it to avoid unnecessary buildup of the LRU. 755 */ 756 if (offset == 0 && len == folio_size(folio)) { 757 WARN_ON_ONCE(folio_test_writeback(folio)); 758 folio_cancel_dirty(folio); 759 ifs_free(folio); 760 } 761 } 762 EXPORT_SYMBOL_GPL(iomap_invalidate_folio); 763 764 bool iomap_dirty_folio(struct address_space *mapping, struct folio *folio) 765 { 766 struct inode *inode = mapping->host; 767 size_t len = folio_size(folio); 768 769 ifs_alloc(inode, folio, 0); 770 iomap_set_range_dirty(folio, 0, len); 771 return filemap_dirty_folio(mapping, folio); 772 } 773 EXPORT_SYMBOL_GPL(iomap_dirty_folio); 774 775 static void 776 iomap_write_failed(struct inode *inode, loff_t pos, unsigned len) 777 { 778 loff_t i_size = i_size_read(inode); 779 780 /* 781 * Only truncate newly allocated pages beyoned EOF, even if the 782 * write started inside the existing inode size. 783 */ 784 if (pos + len > i_size) 785 truncate_pagecache_range(inode, max(pos, i_size), 786 pos + len - 1); 787 } 788 789 static int __iomap_write_begin(const struct iomap_iter *iter, 790 const struct iomap_write_ops *write_ops, size_t len, 791 struct folio *folio) 792 { 793 struct iomap_folio_state *ifs; 794 loff_t pos = iter->pos; 795 loff_t block_size = i_blocksize(iter->inode); 796 loff_t block_start = round_down(pos, block_size); 797 loff_t block_end = round_up(pos + len, block_size); 798 unsigned int nr_blocks = i_blocks_per_folio(iter->inode, folio); 799 size_t from = offset_in_folio(folio, pos), to = from + len; 800 size_t poff, plen; 801 802 /* 803 * If the write or zeroing completely overlaps the current folio, then 804 * entire folio will be dirtied so there is no need for 805 * per-block state tracking structures to be attached to this folio. 806 * For the unshare case, we must read in the ondisk contents because we 807 * are not changing pagecache contents. 808 */ 809 if (!(iter->flags & IOMAP_UNSHARE) && pos <= folio_pos(folio) && 810 pos + len >= folio_next_pos(folio)) 811 return 0; 812 813 ifs = ifs_alloc(iter->inode, folio, iter->flags); 814 if ((iter->flags & IOMAP_NOWAIT) && !ifs && nr_blocks > 1) 815 return -EAGAIN; 816 817 if (folio_test_uptodate(folio)) 818 return 0; 819 820 do { 821 iomap_adjust_read_range(iter->inode, folio, &block_start, 822 block_end - block_start, &poff, &plen); 823 if (plen == 0) 824 break; 825 826 /* 827 * If the read range will be entirely overwritten by the write, 828 * we can skip having to zero/read it in. 829 */ 830 if (!(iter->flags & IOMAP_UNSHARE) && from <= poff && 831 to >= poff + plen) 832 continue; 833 834 if (iomap_block_needs_zeroing(iter, block_start)) { 835 if (WARN_ON_ONCE(iter->flags & IOMAP_UNSHARE)) 836 return -EIO; 837 folio_zero_segments(folio, poff, from, to, poff + plen); 838 } else { 839 int status; 840 841 if (iter->flags & IOMAP_NOWAIT) 842 return -EAGAIN; 843 844 if (write_ops && write_ops->read_folio_range) 845 status = write_ops->read_folio_range(iter, 846 folio, block_start, plen); 847 else 848 status = iomap_bio_read_folio_range_sync(iter, 849 folio, block_start, plen); 850 if (status < 0) 851 fserror_report_io(iter->inode, 852 FSERR_BUFFERED_READ, pos, 853 len, status, GFP_NOFS); 854 if (status) 855 return status; 856 } 857 iomap_set_range_uptodate(folio, poff, plen); 858 } while ((block_start += plen) < block_end); 859 860 return 0; 861 } 862 863 static struct folio *__iomap_get_folio(struct iomap_iter *iter, 864 const struct iomap_write_ops *write_ops, size_t len) 865 { 866 loff_t pos = iter->pos; 867 868 if (!mapping_large_folio_support(iter->inode->i_mapping)) 869 len = min_t(size_t, len, PAGE_SIZE - offset_in_page(pos)); 870 871 if (iter->iomap.flags & IOMAP_F_FOLIO_BATCH) { 872 struct folio *folio = folio_batch_next(iter->fbatch); 873 874 if (!folio) 875 return NULL; 876 877 /* 878 * The folio mapping generally shouldn't have changed based on 879 * fs locks, but be consistent with filemap lookup and retry 880 * the iter if it does. 881 */ 882 folio_lock(folio); 883 if (unlikely(folio->mapping != iter->inode->i_mapping)) { 884 iter->iomap.flags |= IOMAP_F_STALE; 885 folio_unlock(folio); 886 return NULL; 887 } 888 889 folio_get(folio); 890 folio_wait_stable(folio); 891 return folio; 892 } 893 894 if (write_ops && write_ops->get_folio) 895 return write_ops->get_folio(iter, pos, len); 896 return iomap_get_folio(iter, pos, len); 897 } 898 899 static void __iomap_put_folio(struct iomap_iter *iter, 900 const struct iomap_write_ops *write_ops, size_t ret, 901 struct folio *folio) 902 { 903 loff_t pos = iter->pos; 904 905 if (write_ops && write_ops->put_folio) { 906 write_ops->put_folio(iter->inode, pos, ret, folio); 907 } else { 908 folio_unlock(folio); 909 folio_put(folio); 910 } 911 } 912 913 /* trim pos and bytes to within a given folio */ 914 static loff_t iomap_trim_folio_range(struct iomap_iter *iter, 915 struct folio *folio, size_t *offset, u64 *bytes) 916 { 917 loff_t pos = iter->pos; 918 size_t fsize = folio_size(folio); 919 920 WARN_ON_ONCE(pos < folio_pos(folio)); 921 WARN_ON_ONCE(pos >= folio_pos(folio) + fsize); 922 923 *offset = offset_in_folio(folio, pos); 924 *bytes = min(*bytes, fsize - *offset); 925 926 return pos; 927 } 928 929 static int iomap_write_begin_inline(const struct iomap_iter *iter, 930 struct folio *folio) 931 { 932 /* needs more work for the tailpacking case; disable for now */ 933 if (WARN_ON_ONCE(iomap_iter_srcmap(iter)->offset != 0)) 934 return -EIO; 935 return iomap_read_inline_data(iter, folio); 936 } 937 938 /* 939 * Grab and prepare a folio for write based on iter state. Returns the folio, 940 * offset, and length. Callers can optionally pass a max length *plen, 941 * otherwise init to zero. 942 */ 943 static int iomap_write_begin(struct iomap_iter *iter, 944 const struct iomap_write_ops *write_ops, struct folio **foliop, 945 size_t *poffset, u64 *plen) 946 { 947 const struct iomap *srcmap = iomap_iter_srcmap(iter); 948 loff_t pos; 949 u64 len = min_t(u64, SIZE_MAX, iomap_length(iter)); 950 struct folio *folio; 951 int status = 0; 952 953 len = min_not_zero(len, *plen); 954 *foliop = NULL; 955 *plen = 0; 956 957 if (fatal_signal_pending(current)) 958 return -EINTR; 959 960 folio = __iomap_get_folio(iter, write_ops, len); 961 if (IS_ERR(folio)) 962 return PTR_ERR(folio); 963 964 /* 965 * No folio means we're done with a batch. We still have range to 966 * process so return and let the caller iterate and refill the batch. 967 */ 968 if (!folio) { 969 WARN_ON_ONCE(!(iter->iomap.flags & IOMAP_F_FOLIO_BATCH)); 970 return 0; 971 } 972 973 /* 974 * Now we have a locked folio, before we do anything with it we need to 975 * check that the iomap we have cached is not stale. The inode extent 976 * mapping can change due to concurrent IO in flight (e.g. 977 * IOMAP_UNWRITTEN state can change and memory reclaim could have 978 * reclaimed a previously partially written page at this index after IO 979 * completion before this write reaches this file offset) and hence we 980 * could do the wrong thing here (zero a page range incorrectly or fail 981 * to zero) and corrupt data. 982 */ 983 if (write_ops && write_ops->iomap_valid) { 984 bool iomap_valid = write_ops->iomap_valid(iter->inode, 985 &iter->iomap); 986 if (!iomap_valid) { 987 iter->iomap.flags |= IOMAP_F_STALE; 988 status = 0; 989 goto out_unlock; 990 } 991 } 992 993 /* 994 * The folios in a batch may not be contiguous. If we've skipped 995 * forward, advance the iter to the pos of the current folio. If the 996 * folio starts beyond the end of the mapping, it may have been trimmed 997 * since the lookup for whatever reason. Return a NULL folio to 998 * terminate the op. 999 */ 1000 if (folio_pos(folio) > iter->pos) { 1001 len = min_t(u64, folio_pos(folio) - iter->pos, 1002 iomap_length(iter)); 1003 status = iomap_iter_advance(iter, len); 1004 len = iomap_length(iter); 1005 if (status || !len) 1006 goto out_unlock; 1007 } 1008 1009 pos = iomap_trim_folio_range(iter, folio, poffset, &len); 1010 1011 if (srcmap->type == IOMAP_INLINE) 1012 status = iomap_write_begin_inline(iter, folio); 1013 else if (srcmap->flags & IOMAP_F_BUFFER_HEAD) 1014 status = __block_write_begin_int(folio, pos, len, NULL, srcmap); 1015 else 1016 status = __iomap_write_begin(iter, write_ops, len, folio); 1017 1018 if (unlikely(status)) 1019 goto out_unlock; 1020 1021 *foliop = folio; 1022 *plen = len; 1023 return 0; 1024 1025 out_unlock: 1026 __iomap_put_folio(iter, write_ops, 0, folio); 1027 return status; 1028 } 1029 1030 static bool __iomap_write_end(struct inode *inode, loff_t pos, size_t len, 1031 size_t copied, struct folio *folio) 1032 { 1033 flush_dcache_folio(folio); 1034 1035 /* 1036 * The blocks that were entirely written will now be uptodate, so we 1037 * don't have to worry about a read_folio reading them and overwriting a 1038 * partial write. However, if we've encountered a short write and only 1039 * partially written into a block, it will not be marked uptodate, so a 1040 * read_folio might come in and destroy our partial write. 1041 * 1042 * Do the simplest thing and just treat any short write to a 1043 * non-uptodate page as a zero-length write, and force the caller to 1044 * redo the whole thing. 1045 */ 1046 if (unlikely(copied < len && !folio_test_uptodate(folio))) 1047 return false; 1048 iomap_set_range_uptodate(folio, offset_in_folio(folio, pos), len); 1049 iomap_set_range_dirty(folio, offset_in_folio(folio, pos), copied); 1050 filemap_dirty_folio(inode->i_mapping, folio); 1051 return true; 1052 } 1053 1054 static bool iomap_write_end_inline(const struct iomap_iter *iter, 1055 struct folio *folio, loff_t pos, size_t copied) 1056 { 1057 const struct iomap *iomap = &iter->iomap; 1058 void *addr; 1059 1060 WARN_ON_ONCE(!folio_test_uptodate(folio)); 1061 BUG_ON(!iomap_inline_data_valid(iomap)); 1062 1063 if (WARN_ON_ONCE(!iomap->inline_data)) 1064 return false; 1065 1066 flush_dcache_folio(folio); 1067 addr = kmap_local_folio(folio, pos); 1068 memcpy(iomap_inline_data(iomap, pos), addr, copied); 1069 kunmap_local(addr); 1070 1071 mark_inode_dirty(iter->inode); 1072 return true; 1073 } 1074 1075 /* 1076 * Returns true if all copied bytes have been written to the pagecache, 1077 * otherwise return false. 1078 */ 1079 static bool iomap_write_end(struct iomap_iter *iter, size_t len, size_t copied, 1080 struct folio *folio) 1081 { 1082 const struct iomap *srcmap = iomap_iter_srcmap(iter); 1083 loff_t pos = iter->pos; 1084 1085 if (srcmap->type == IOMAP_INLINE) 1086 return iomap_write_end_inline(iter, folio, pos, copied); 1087 1088 if (srcmap->flags & IOMAP_F_BUFFER_HEAD) { 1089 size_t bh_written; 1090 1091 bh_written = block_write_end(pos, len, copied, folio); 1092 WARN_ON_ONCE(bh_written != copied && bh_written != 0); 1093 return bh_written == copied; 1094 } 1095 1096 return __iomap_write_end(iter->inode, pos, len, copied, folio); 1097 } 1098 1099 static int iomap_write_iter(struct iomap_iter *iter, struct iov_iter *i, 1100 const struct iomap_write_ops *write_ops) 1101 { 1102 ssize_t total_written = 0; 1103 int status = 0; 1104 struct address_space *mapping = iter->inode->i_mapping; 1105 size_t chunk = mapping_max_folio_size(mapping); 1106 unsigned int bdp_flags = (iter->flags & IOMAP_NOWAIT) ? BDP_ASYNC : 0; 1107 1108 do { 1109 struct folio *folio; 1110 loff_t old_size; 1111 size_t offset; /* Offset into folio */ 1112 u64 bytes; /* Bytes to write to folio */ 1113 size_t copied; /* Bytes copied from user */ 1114 u64 written; /* Bytes have been written */ 1115 loff_t pos; 1116 1117 bytes = iov_iter_count(i); 1118 retry: 1119 offset = iter->pos & (chunk - 1); 1120 bytes = min(chunk - offset, bytes); 1121 status = balance_dirty_pages_ratelimited_flags(mapping, 1122 bdp_flags); 1123 if (unlikely(status)) 1124 break; 1125 1126 if (bytes > iomap_length(iter)) 1127 bytes = iomap_length(iter); 1128 1129 /* 1130 * Bring in the user page that we'll copy from _first_. 1131 * Otherwise there's a nasty deadlock on copying from the 1132 * same page as we're writing to, without it being marked 1133 * up-to-date. 1134 * 1135 * For async buffered writes the assumption is that the user 1136 * page has already been faulted in. This can be optimized by 1137 * faulting the user page. 1138 */ 1139 if (unlikely(fault_in_iov_iter_readable(i, bytes) == bytes)) { 1140 status = -EFAULT; 1141 break; 1142 } 1143 1144 status = iomap_write_begin(iter, write_ops, &folio, &offset, 1145 &bytes); 1146 if (unlikely(status)) { 1147 iomap_write_failed(iter->inode, iter->pos, bytes); 1148 break; 1149 } 1150 if (iter->iomap.flags & IOMAP_F_STALE) 1151 break; 1152 1153 pos = iter->pos; 1154 1155 if (mapping_writably_mapped(mapping)) 1156 flush_dcache_folio(folio); 1157 1158 copied = copy_folio_from_iter_atomic(folio, offset, bytes, i); 1159 written = iomap_write_end(iter, bytes, copied, folio) ? 1160 copied : 0; 1161 1162 /* 1163 * Update the in-memory inode size after copying the data into 1164 * the page cache. It's up to the file system to write the 1165 * updated size to disk, preferably after I/O completion so that 1166 * no stale data is exposed. Only once that's done can we 1167 * unlock and release the folio. 1168 */ 1169 old_size = iter->inode->i_size; 1170 if (pos + written > old_size) { 1171 i_size_write(iter->inode, pos + written); 1172 iter->iomap.flags |= IOMAP_F_SIZE_CHANGED; 1173 } 1174 __iomap_put_folio(iter, write_ops, written, folio); 1175 1176 if (old_size < pos) 1177 pagecache_isize_extended(iter->inode, old_size, pos); 1178 1179 cond_resched(); 1180 if (unlikely(written == 0)) { 1181 /* 1182 * A short copy made iomap_write_end() reject the 1183 * thing entirely. Might be memory poisoning 1184 * halfway through, might be a race with munmap, 1185 * might be severe memory pressure. 1186 */ 1187 iomap_write_failed(iter->inode, pos, bytes); 1188 iov_iter_revert(i, copied); 1189 1190 if (chunk > PAGE_SIZE) 1191 chunk /= 2; 1192 if (copied) { 1193 bytes = copied; 1194 goto retry; 1195 } 1196 } else { 1197 total_written += written; 1198 iomap_iter_advance(iter, written); 1199 } 1200 } while (iov_iter_count(i) && iomap_length(iter)); 1201 1202 return total_written ? 0 : status; 1203 } 1204 1205 ssize_t 1206 iomap_file_buffered_write(struct kiocb *iocb, struct iov_iter *i, 1207 const struct iomap_ops *ops, 1208 const struct iomap_write_ops *write_ops, void *private) 1209 { 1210 struct iomap_iter iter = { 1211 .inode = iocb->ki_filp->f_mapping->host, 1212 .pos = iocb->ki_pos, 1213 .len = iov_iter_count(i), 1214 .flags = IOMAP_WRITE, 1215 .private = private, 1216 }; 1217 ssize_t ret; 1218 1219 if (iocb->ki_flags & IOCB_NOWAIT) 1220 iter.flags |= IOMAP_NOWAIT; 1221 if (iocb->ki_flags & IOCB_DONTCACHE) 1222 iter.flags |= IOMAP_DONTCACHE; 1223 1224 while ((ret = iomap_iter(&iter, ops)) > 0) 1225 iter.status = iomap_write_iter(&iter, i, write_ops); 1226 1227 if (unlikely(iter.pos == iocb->ki_pos)) 1228 return ret; 1229 ret = iter.pos - iocb->ki_pos; 1230 iocb->ki_pos = iter.pos; 1231 return ret; 1232 } 1233 EXPORT_SYMBOL_GPL(iomap_file_buffered_write); 1234 1235 static void iomap_write_delalloc_ifs_punch(struct inode *inode, 1236 struct folio *folio, loff_t start_byte, loff_t end_byte, 1237 struct iomap *iomap, iomap_punch_t punch) 1238 { 1239 unsigned int first_blk, last_blk; 1240 loff_t last_byte; 1241 u8 blkbits = inode->i_blkbits; 1242 struct iomap_folio_state *ifs; 1243 1244 /* 1245 * When we have per-block dirty tracking, there can be 1246 * blocks within a folio which are marked uptodate 1247 * but not dirty. In that case it is necessary to punch 1248 * out such blocks to avoid leaking any delalloc blocks. 1249 */ 1250 ifs = folio->private; 1251 if (!ifs) 1252 return; 1253 1254 last_byte = min_t(loff_t, end_byte - 1, folio_next_pos(folio) - 1); 1255 first_blk = offset_in_folio(folio, start_byte) >> blkbits; 1256 last_blk = offset_in_folio(folio, last_byte) >> blkbits; 1257 while ((first_blk = ifs_next_clean_block(folio, first_blk, last_blk)) 1258 <= last_blk) { 1259 punch(inode, folio_pos(folio) + (first_blk << blkbits), 1260 1 << blkbits, iomap); 1261 first_blk++; 1262 } 1263 } 1264 1265 static void iomap_write_delalloc_punch(struct inode *inode, struct folio *folio, 1266 loff_t *punch_start_byte, loff_t start_byte, loff_t end_byte, 1267 struct iomap *iomap, iomap_punch_t punch) 1268 { 1269 if (!folio_test_dirty(folio)) 1270 return; 1271 1272 /* if dirty, punch up to offset */ 1273 if (start_byte > *punch_start_byte) { 1274 punch(inode, *punch_start_byte, start_byte - *punch_start_byte, 1275 iomap); 1276 } 1277 1278 /* Punch non-dirty blocks within folio */ 1279 iomap_write_delalloc_ifs_punch(inode, folio, start_byte, end_byte, 1280 iomap, punch); 1281 1282 /* 1283 * Make sure the next punch start is correctly bound to 1284 * the end of this data range, not the end of the folio. 1285 */ 1286 *punch_start_byte = min_t(loff_t, end_byte, folio_next_pos(folio)); 1287 } 1288 1289 /* 1290 * Scan the data range passed to us for dirty page cache folios. If we find a 1291 * dirty folio, punch out the preceding range and update the offset from which 1292 * the next punch will start from. 1293 * 1294 * We can punch out storage reservations under clean pages because they either 1295 * contain data that has been written back - in which case the delalloc punch 1296 * over that range is a no-op - or they have been read faults in which case they 1297 * contain zeroes and we can remove the delalloc backing range and any new 1298 * writes to those pages will do the normal hole filling operation... 1299 * 1300 * This makes the logic simple: we only need to keep the delalloc extents only 1301 * over the dirty ranges of the page cache. 1302 * 1303 * This function uses [start_byte, end_byte) intervals (i.e. open ended) to 1304 * simplify range iterations. 1305 */ 1306 static void iomap_write_delalloc_scan(struct inode *inode, 1307 loff_t *punch_start_byte, loff_t start_byte, loff_t end_byte, 1308 struct iomap *iomap, iomap_punch_t punch) 1309 { 1310 while (start_byte < end_byte) { 1311 struct folio *folio; 1312 1313 /* grab locked page */ 1314 folio = filemap_lock_folio(inode->i_mapping, 1315 start_byte >> PAGE_SHIFT); 1316 if (IS_ERR(folio)) { 1317 start_byte = ALIGN_DOWN(start_byte, PAGE_SIZE) + 1318 PAGE_SIZE; 1319 continue; 1320 } 1321 1322 iomap_write_delalloc_punch(inode, folio, punch_start_byte, 1323 start_byte, end_byte, iomap, punch); 1324 1325 /* move offset to start of next folio in range */ 1326 start_byte = folio_next_pos(folio); 1327 folio_unlock(folio); 1328 folio_put(folio); 1329 } 1330 } 1331 1332 /* 1333 * When a short write occurs, the filesystem might need to use ->iomap_end 1334 * to remove space reservations created in ->iomap_begin. 1335 * 1336 * For filesystems that use delayed allocation, there can be dirty pages over 1337 * the delalloc extent outside the range of a short write but still within the 1338 * delalloc extent allocated for this iomap if the write raced with page 1339 * faults. 1340 * 1341 * Punch out all the delalloc blocks in the range given except for those that 1342 * have dirty data still pending in the page cache - those are going to be 1343 * written and so must still retain the delalloc backing for writeback. 1344 * 1345 * The punch() callback *must* only punch delalloc extents in the range passed 1346 * to it. It must skip over all other types of extents in the range and leave 1347 * them completely unchanged. It must do this punch atomically with respect to 1348 * other extent modifications. 1349 * 1350 * The punch() callback may be called with a folio locked to prevent writeback 1351 * extent allocation racing at the edge of the range we are currently punching. 1352 * The locked folio may or may not cover the range being punched, so it is not 1353 * safe for the punch() callback to lock folios itself. 1354 * 1355 * Lock order is: 1356 * 1357 * inode->i_rwsem (shared or exclusive) 1358 * inode->i_mapping->invalidate_lock (exclusive) 1359 * folio_lock() 1360 * ->punch 1361 * internal filesystem allocation lock 1362 * 1363 * As we are scanning the page cache for data, we don't need to reimplement the 1364 * wheel - mapping_seek_hole_data() does exactly what we need to identify the 1365 * start and end of data ranges correctly even for sub-folio block sizes. This 1366 * byte range based iteration is especially convenient because it means we 1367 * don't have to care about variable size folios, nor where the start or end of 1368 * the data range lies within a folio, if they lie within the same folio or even 1369 * if there are multiple discontiguous data ranges within the folio. 1370 * 1371 * It should be noted that mapping_seek_hole_data() is not aware of EOF, and so 1372 * can return data ranges that exist in the cache beyond EOF. e.g. a page fault 1373 * spanning EOF will initialise the post-EOF data to zeroes and mark it up to 1374 * date. A write page fault can then mark it dirty. If we then fail a write() 1375 * beyond EOF into that up to date cached range, we allocate a delalloc block 1376 * beyond EOF and then have to punch it out. Because the range is up to date, 1377 * mapping_seek_hole_data() will return it, and we will skip the punch because 1378 * the folio is dirty. THis is incorrect - we always need to punch out delalloc 1379 * beyond EOF in this case as writeback will never write back and covert that 1380 * delalloc block beyond EOF. Hence we limit the cached data scan range to EOF, 1381 * resulting in always punching out the range from the EOF to the end of the 1382 * range the iomap spans. 1383 * 1384 * Intervals are of the form [start_byte, end_byte) (i.e. open ended) because it 1385 * matches the intervals returned by mapping_seek_hole_data(). i.e. SEEK_DATA 1386 * returns the start of a data range (start_byte), and SEEK_HOLE(start_byte) 1387 * returns the end of the data range (data_end). Using closed intervals would 1388 * require sprinkling this code with magic "+ 1" and "- 1" arithmetic and expose 1389 * the code to subtle off-by-one bugs.... 1390 */ 1391 void iomap_write_delalloc_release(struct inode *inode, loff_t start_byte, 1392 loff_t end_byte, unsigned flags, struct iomap *iomap, 1393 iomap_punch_t punch) 1394 { 1395 loff_t punch_start_byte = start_byte; 1396 loff_t scan_end_byte = min(i_size_read(inode), end_byte); 1397 1398 /* 1399 * The caller must hold invalidate_lock to avoid races with page faults 1400 * re-instantiating folios and dirtying them via ->page_mkwrite whilst 1401 * we walk the cache and perform delalloc extent removal. Failing to do 1402 * this can leave dirty pages with no space reservation in the cache. 1403 */ 1404 lockdep_assert_held_write(&inode->i_mapping->invalidate_lock); 1405 1406 while (start_byte < scan_end_byte) { 1407 loff_t data_end; 1408 1409 start_byte = mapping_seek_hole_data(inode->i_mapping, 1410 start_byte, scan_end_byte, SEEK_DATA); 1411 /* 1412 * If there is no more data to scan, all that is left is to 1413 * punch out the remaining range. 1414 * 1415 * Note that mapping_seek_hole_data is only supposed to return 1416 * either an offset or -ENXIO, so WARN on any other error as 1417 * that would be an API change without updating the callers. 1418 */ 1419 if (start_byte == -ENXIO || start_byte == scan_end_byte) 1420 break; 1421 if (WARN_ON_ONCE(start_byte < 0)) 1422 return; 1423 WARN_ON_ONCE(start_byte < punch_start_byte); 1424 WARN_ON_ONCE(start_byte > scan_end_byte); 1425 1426 /* 1427 * We find the end of this contiguous cached data range by 1428 * seeking from start_byte to the beginning of the next hole. 1429 */ 1430 data_end = mapping_seek_hole_data(inode->i_mapping, start_byte, 1431 scan_end_byte, SEEK_HOLE); 1432 if (WARN_ON_ONCE(data_end < 0)) 1433 return; 1434 1435 /* 1436 * If we race with post-direct I/O invalidation of the page cache, 1437 * there might be no data left at start_byte. 1438 */ 1439 if (data_end == start_byte) 1440 continue; 1441 1442 WARN_ON_ONCE(data_end < start_byte); 1443 WARN_ON_ONCE(data_end > scan_end_byte); 1444 1445 iomap_write_delalloc_scan(inode, &punch_start_byte, start_byte, 1446 data_end, iomap, punch); 1447 1448 /* The next data search starts at the end of this one. */ 1449 start_byte = data_end; 1450 } 1451 1452 if (punch_start_byte < end_byte) 1453 punch(inode, punch_start_byte, end_byte - punch_start_byte, 1454 iomap); 1455 } 1456 EXPORT_SYMBOL_GPL(iomap_write_delalloc_release); 1457 1458 static int iomap_unshare_iter(struct iomap_iter *iter, 1459 const struct iomap_write_ops *write_ops) 1460 { 1461 struct iomap *iomap = &iter->iomap; 1462 u64 bytes = iomap_length(iter); 1463 int status; 1464 1465 if (!iomap_want_unshare_iter(iter)) 1466 return iomap_iter_advance(iter, bytes); 1467 1468 do { 1469 struct folio *folio; 1470 size_t offset; 1471 bool ret; 1472 1473 bytes = min_t(u64, SIZE_MAX, bytes); 1474 status = iomap_write_begin(iter, write_ops, &folio, &offset, 1475 &bytes); 1476 if (unlikely(status)) 1477 return status; 1478 if (iomap->flags & IOMAP_F_STALE) 1479 break; 1480 1481 ret = iomap_write_end(iter, bytes, bytes, folio); 1482 __iomap_put_folio(iter, write_ops, bytes, folio); 1483 if (WARN_ON_ONCE(!ret)) 1484 return -EIO; 1485 1486 cond_resched(); 1487 1488 balance_dirty_pages_ratelimited(iter->inode->i_mapping); 1489 1490 status = iomap_iter_advance(iter, bytes); 1491 if (status) 1492 break; 1493 } while ((bytes = iomap_length(iter)) > 0); 1494 1495 return status; 1496 } 1497 1498 int 1499 iomap_file_unshare(struct inode *inode, loff_t pos, loff_t len, 1500 const struct iomap_ops *ops, 1501 const struct iomap_write_ops *write_ops) 1502 { 1503 struct iomap_iter iter = { 1504 .inode = inode, 1505 .pos = pos, 1506 .flags = IOMAP_WRITE | IOMAP_UNSHARE, 1507 }; 1508 loff_t size = i_size_read(inode); 1509 int ret; 1510 1511 if (pos < 0 || pos >= size) 1512 return 0; 1513 1514 iter.len = min(len, size - pos); 1515 while ((ret = iomap_iter(&iter, ops)) > 0) 1516 iter.status = iomap_unshare_iter(&iter, write_ops); 1517 return ret; 1518 } 1519 EXPORT_SYMBOL_GPL(iomap_file_unshare); 1520 1521 /* 1522 * Flush the remaining range of the iter and mark the current mapping stale. 1523 * This is used when zero range sees an unwritten mapping that may have had 1524 * dirty pagecache over it. 1525 */ 1526 static inline int iomap_zero_iter_flush_and_stale(struct iomap_iter *i) 1527 { 1528 struct address_space *mapping = i->inode->i_mapping; 1529 loff_t end = i->pos + i->len - 1; 1530 1531 i->iomap.flags |= IOMAP_F_STALE; 1532 return filemap_write_and_wait_range(mapping, i->pos, end); 1533 } 1534 1535 static int iomap_zero_iter(struct iomap_iter *iter, bool *did_zero, 1536 const struct iomap_write_ops *write_ops) 1537 { 1538 u64 bytes = iomap_length(iter); 1539 int status; 1540 1541 do { 1542 struct folio *folio; 1543 size_t offset; 1544 bool ret; 1545 1546 bytes = min_t(u64, SIZE_MAX, bytes); 1547 status = iomap_write_begin(iter, write_ops, &folio, &offset, 1548 &bytes); 1549 if (status) 1550 return status; 1551 if (iter->iomap.flags & IOMAP_F_STALE) 1552 break; 1553 1554 /* a NULL folio means we're done with a folio batch */ 1555 if (!folio) { 1556 status = iomap_iter_advance_full(iter); 1557 break; 1558 } 1559 1560 /* warn about zeroing folios beyond eof that won't write back */ 1561 WARN_ON_ONCE(folio_pos(folio) > iter->inode->i_size); 1562 1563 trace_iomap_zero_iter(iter->inode, folio_pos(folio) + offset, 1564 bytes); 1565 1566 folio_zero_range(folio, offset, bytes); 1567 folio_mark_accessed(folio); 1568 1569 ret = iomap_write_end(iter, bytes, bytes, folio); 1570 __iomap_put_folio(iter, write_ops, bytes, folio); 1571 if (WARN_ON_ONCE(!ret)) 1572 return -EIO; 1573 1574 status = iomap_iter_advance(iter, bytes); 1575 if (status) 1576 break; 1577 } while ((bytes = iomap_length(iter)) > 0); 1578 1579 if (did_zero) 1580 *did_zero = true; 1581 return status; 1582 } 1583 1584 /** 1585 * iomap_fill_dirty_folios - fill a folio batch with dirty folios 1586 * @iter: Iteration structure 1587 * @start: Start offset of range. Updated based on lookup progress. 1588 * @end: End offset of range 1589 * @iomap_flags: Flags to set on the associated iomap to track the batch. 1590 * 1591 * Returns the folio count directly. Also returns the associated control flag if 1592 * the the batch lookup is performed and the expected offset of a subsequent 1593 * lookup via out params. The caller is responsible to set the flag on the 1594 * associated iomap. 1595 */ 1596 unsigned int 1597 iomap_fill_dirty_folios( 1598 struct iomap_iter *iter, 1599 loff_t *start, 1600 loff_t end, 1601 unsigned int *iomap_flags) 1602 { 1603 struct address_space *mapping = iter->inode->i_mapping; 1604 pgoff_t pstart = *start >> PAGE_SHIFT; 1605 pgoff_t pend = (end - 1) >> PAGE_SHIFT; 1606 unsigned int count; 1607 1608 if (!iter->fbatch) { 1609 *start = end; 1610 return 0; 1611 } 1612 1613 count = filemap_get_folios_dirty(mapping, &pstart, pend, iter->fbatch); 1614 *start = (pstart << PAGE_SHIFT); 1615 *iomap_flags |= IOMAP_F_FOLIO_BATCH; 1616 return count; 1617 } 1618 EXPORT_SYMBOL_GPL(iomap_fill_dirty_folios); 1619 1620 int 1621 iomap_zero_range(struct inode *inode, loff_t pos, loff_t len, bool *did_zero, 1622 const struct iomap_ops *ops, 1623 const struct iomap_write_ops *write_ops, void *private) 1624 { 1625 struct folio_batch fbatch; 1626 struct iomap_iter iter = { 1627 .inode = inode, 1628 .pos = pos, 1629 .len = len, 1630 .flags = IOMAP_ZERO, 1631 .private = private, 1632 .fbatch = &fbatch, 1633 }; 1634 struct address_space *mapping = inode->i_mapping; 1635 int ret; 1636 bool range_dirty; 1637 1638 folio_batch_init(&fbatch); 1639 1640 /* 1641 * To avoid an unconditional flush, check pagecache state and only flush 1642 * if dirty and the fs returns a mapping that might convert on 1643 * writeback. 1644 */ 1645 range_dirty = filemap_range_needs_writeback(mapping, iter.pos, 1646 iter.pos + iter.len - 1); 1647 while ((ret = iomap_iter(&iter, ops)) > 0) { 1648 const struct iomap *srcmap = iomap_iter_srcmap(&iter); 1649 1650 if (WARN_ON_ONCE((iter.iomap.flags & IOMAP_F_FOLIO_BATCH) && 1651 srcmap->type != IOMAP_UNWRITTEN)) 1652 return -EIO; 1653 1654 if (!(iter.iomap.flags & IOMAP_F_FOLIO_BATCH) && 1655 (srcmap->type == IOMAP_HOLE || 1656 srcmap->type == IOMAP_UNWRITTEN)) { 1657 s64 status; 1658 1659 if (range_dirty) { 1660 range_dirty = false; 1661 status = iomap_zero_iter_flush_and_stale(&iter); 1662 } else { 1663 status = iomap_iter_advance_full(&iter); 1664 } 1665 iter.status = status; 1666 continue; 1667 } 1668 1669 iter.status = iomap_zero_iter(&iter, did_zero, write_ops); 1670 } 1671 return ret; 1672 } 1673 EXPORT_SYMBOL_GPL(iomap_zero_range); 1674 1675 int 1676 iomap_truncate_page(struct inode *inode, loff_t pos, bool *did_zero, 1677 const struct iomap_ops *ops, 1678 const struct iomap_write_ops *write_ops, void *private) 1679 { 1680 unsigned int blocksize = i_blocksize(inode); 1681 unsigned int off = pos & (blocksize - 1); 1682 1683 /* Block boundary? Nothing to do */ 1684 if (!off) 1685 return 0; 1686 return iomap_zero_range(inode, pos, blocksize - off, did_zero, ops, 1687 write_ops, private); 1688 } 1689 EXPORT_SYMBOL_GPL(iomap_truncate_page); 1690 1691 static int iomap_folio_mkwrite_iter(struct iomap_iter *iter, 1692 struct folio *folio) 1693 { 1694 loff_t length = iomap_length(iter); 1695 int ret; 1696 1697 if (iter->iomap.flags & IOMAP_F_BUFFER_HEAD) { 1698 ret = __block_write_begin_int(folio, iter->pos, length, NULL, 1699 &iter->iomap); 1700 if (ret) 1701 return ret; 1702 block_commit_write(folio, 0, length); 1703 } else { 1704 WARN_ON_ONCE(!folio_test_uptodate(folio)); 1705 folio_mark_dirty(folio); 1706 } 1707 1708 return iomap_iter_advance(iter, length); 1709 } 1710 1711 vm_fault_t iomap_page_mkwrite(struct vm_fault *vmf, const struct iomap_ops *ops, 1712 void *private) 1713 { 1714 struct iomap_iter iter = { 1715 .inode = file_inode(vmf->vma->vm_file), 1716 .flags = IOMAP_WRITE | IOMAP_FAULT, 1717 .private = private, 1718 }; 1719 struct folio *folio = page_folio(vmf->page); 1720 ssize_t ret; 1721 1722 folio_lock(folio); 1723 ret = folio_mkwrite_check_truncate(folio, iter.inode); 1724 if (ret < 0) 1725 goto out_unlock; 1726 iter.pos = folio_pos(folio); 1727 iter.len = ret; 1728 while ((ret = iomap_iter(&iter, ops)) > 0) 1729 iter.status = iomap_folio_mkwrite_iter(&iter, folio); 1730 1731 if (ret < 0) 1732 goto out_unlock; 1733 folio_wait_stable(folio); 1734 return VM_FAULT_LOCKED; 1735 out_unlock: 1736 folio_unlock(folio); 1737 return vmf_fs_error(ret); 1738 } 1739 EXPORT_SYMBOL_GPL(iomap_page_mkwrite); 1740 1741 static void iomap_writeback_init(struct inode *inode, struct folio *folio) 1742 { 1743 struct iomap_folio_state *ifs = folio->private; 1744 1745 WARN_ON_ONCE(i_blocks_per_folio(inode, folio) > 1 && !ifs); 1746 if (ifs) { 1747 WARN_ON_ONCE(atomic_read(&ifs->write_bytes_pending) != 0); 1748 /* 1749 * Set this to the folio size. After processing the folio for 1750 * writeback in iomap_writeback_folio(), we'll subtract any 1751 * ranges not written back. 1752 * 1753 * We do this because otherwise, we would have to atomically 1754 * increment ifs->write_bytes_pending every time a range in the 1755 * folio needs to be written back. 1756 */ 1757 atomic_set(&ifs->write_bytes_pending, folio_size(folio)); 1758 } 1759 } 1760 1761 void iomap_finish_folio_write(struct inode *inode, struct folio *folio, 1762 size_t len) 1763 { 1764 struct iomap_folio_state *ifs = folio->private; 1765 1766 WARN_ON_ONCE(i_blocks_per_folio(inode, folio) > 1 && !ifs); 1767 WARN_ON_ONCE(ifs && atomic_read(&ifs->write_bytes_pending) <= 0); 1768 1769 if (!ifs || atomic_sub_and_test(len, &ifs->write_bytes_pending)) 1770 folio_end_writeback(folio); 1771 } 1772 EXPORT_SYMBOL_GPL(iomap_finish_folio_write); 1773 1774 static int iomap_writeback_range(struct iomap_writepage_ctx *wpc, 1775 struct folio *folio, u64 pos, u32 rlen, u64 end_pos, 1776 size_t *bytes_submitted) 1777 { 1778 do { 1779 ssize_t ret; 1780 1781 ret = wpc->ops->writeback_range(wpc, folio, pos, rlen, end_pos); 1782 if (WARN_ON_ONCE(ret == 0 || ret > rlen)) 1783 return -EIO; 1784 if (ret < 0) 1785 return ret; 1786 rlen -= ret; 1787 pos += ret; 1788 1789 /* 1790 * Holes are not written back by ->writeback_range, so track 1791 * if we did handle anything that is not a hole here. 1792 */ 1793 if (wpc->iomap.type != IOMAP_HOLE) 1794 *bytes_submitted += ret; 1795 } while (rlen); 1796 1797 return 0; 1798 } 1799 1800 /* 1801 * Check interaction of the folio with the file end. 1802 * 1803 * If the folio is entirely beyond i_size, return false. If it straddles 1804 * i_size, adjust end_pos and zero all data beyond i_size. 1805 */ 1806 static bool iomap_writeback_handle_eof(struct folio *folio, struct inode *inode, 1807 u64 *end_pos) 1808 { 1809 u64 isize = i_size_read(inode); 1810 1811 if (*end_pos > isize) { 1812 size_t poff = offset_in_folio(folio, isize); 1813 pgoff_t end_index = isize >> PAGE_SHIFT; 1814 1815 /* 1816 * If the folio is entirely ouside of i_size, skip it. 1817 * 1818 * This can happen due to a truncate operation that is in 1819 * progress and in that case truncate will finish it off once 1820 * we've dropped the folio lock. 1821 * 1822 * Note that the pgoff_t used for end_index is an unsigned long. 1823 * If the given offset is greater than 16TB on a 32-bit system, 1824 * then if we checked if the folio is fully outside i_size with 1825 * "if (folio->index >= end_index + 1)", "end_index + 1" would 1826 * overflow and evaluate to 0. Hence this folio would be 1827 * redirtied and written out repeatedly, which would result in 1828 * an infinite loop; the user program performing this operation 1829 * would hang. Instead, we can detect this situation by 1830 * checking if the folio is totally beyond i_size or if its 1831 * offset is just equal to the EOF. 1832 */ 1833 if (folio->index > end_index || 1834 (folio->index == end_index && poff == 0)) 1835 return false; 1836 1837 /* 1838 * The folio straddles i_size. 1839 * 1840 * It must be zeroed out on each and every writepage invocation 1841 * because it may be mmapped: 1842 * 1843 * A file is mapped in multiples of the page size. For a 1844 * file that is not a multiple of the page size, the 1845 * remaining memory is zeroed when mapped, and writes to that 1846 * region are not written out to the file. 1847 * 1848 * Also adjust the end_pos to the end of file and skip writeback 1849 * for all blocks entirely beyond i_size. 1850 */ 1851 folio_zero_segment(folio, poff, folio_size(folio)); 1852 *end_pos = isize; 1853 } 1854 1855 return true; 1856 } 1857 1858 int iomap_writeback_folio(struct iomap_writepage_ctx *wpc, struct folio *folio) 1859 { 1860 struct iomap_folio_state *ifs = folio->private; 1861 struct inode *inode = wpc->inode; 1862 u64 pos = folio_pos(folio); 1863 u64 end_pos = pos + folio_size(folio); 1864 u64 end_aligned = 0; 1865 loff_t orig_pos = pos; 1866 size_t bytes_submitted = 0; 1867 int error = 0; 1868 u32 rlen; 1869 1870 WARN_ON_ONCE(!folio_test_locked(folio)); 1871 WARN_ON_ONCE(folio_test_dirty(folio)); 1872 WARN_ON_ONCE(folio_test_writeback(folio)); 1873 1874 trace_iomap_writeback_folio(inode, pos, folio_size(folio)); 1875 1876 if (!iomap_writeback_handle_eof(folio, inode, &end_pos)) 1877 return 0; 1878 WARN_ON_ONCE(end_pos <= pos); 1879 1880 if (i_blocks_per_folio(inode, folio) > 1) { 1881 if (!ifs) { 1882 ifs = ifs_alloc(inode, folio, 0); 1883 iomap_set_range_dirty(folio, 0, end_pos - pos); 1884 } 1885 1886 iomap_writeback_init(inode, folio); 1887 } 1888 1889 /* 1890 * Set the writeback bit ASAP, as the I/O completion for the single 1891 * block per folio case happen hit as soon as we're submitting the bio. 1892 */ 1893 folio_start_writeback(folio); 1894 1895 /* 1896 * Walk through the folio to find dirty areas to write back. 1897 */ 1898 end_aligned = round_up(end_pos, i_blocksize(inode)); 1899 while ((rlen = iomap_find_dirty_range(folio, &pos, end_aligned))) { 1900 error = iomap_writeback_range(wpc, folio, pos, rlen, end_pos, 1901 &bytes_submitted); 1902 if (error) 1903 break; 1904 pos += rlen; 1905 } 1906 1907 if (bytes_submitted) 1908 wpc->nr_folios++; 1909 if (error && pos > orig_pos) 1910 fserror_report_io(inode, FSERR_BUFFERED_WRITE, orig_pos, 0, 1911 error, GFP_NOFS); 1912 1913 /* 1914 * We can have dirty bits set past end of file in page_mkwrite path 1915 * while mapping the last partial folio. Hence it's better to clear 1916 * all the dirty bits in the folio here. 1917 */ 1918 iomap_clear_range_dirty(folio, 0, folio_size(folio)); 1919 1920 /* 1921 * Usually the writeback bit is cleared by the I/O completion handler. 1922 * But we may end up either not actually writing any blocks, or (when 1923 * there are multiple blocks in a folio) all I/O might have finished 1924 * already at this point. In that case we need to clear the writeback 1925 * bit ourselves right after unlocking the page. 1926 */ 1927 if (ifs) { 1928 /* 1929 * Subtract any bytes that were initially accounted to 1930 * write_bytes_pending but skipped for writeback. 1931 */ 1932 size_t bytes_not_submitted = folio_size(folio) - 1933 bytes_submitted; 1934 1935 if (bytes_not_submitted) 1936 iomap_finish_folio_write(inode, folio, 1937 bytes_not_submitted); 1938 } else if (!bytes_submitted) { 1939 folio_end_writeback(folio); 1940 } 1941 1942 mapping_set_error(inode->i_mapping, error); 1943 return error; 1944 } 1945 EXPORT_SYMBOL_GPL(iomap_writeback_folio); 1946 1947 int 1948 iomap_writepages(struct iomap_writepage_ctx *wpc) 1949 { 1950 struct address_space *mapping = wpc->inode->i_mapping; 1951 struct folio *folio = NULL; 1952 int error; 1953 1954 /* 1955 * Writeback from reclaim context should never happen except in the case 1956 * of a VM regression so warn about it and refuse to write the data. 1957 */ 1958 if (WARN_ON_ONCE((current->flags & (PF_MEMALLOC | PF_KSWAPD)) == 1959 PF_MEMALLOC)) 1960 return -EIO; 1961 1962 while ((folio = writeback_iter(mapping, wpc->wbc, folio, &error))) { 1963 error = iomap_writeback_folio(wpc, folio); 1964 folio_unlock(folio); 1965 } 1966 1967 /* 1968 * If @error is non-zero, it means that we have a situation where some 1969 * part of the submission process has failed after we've marked pages 1970 * for writeback. 1971 * 1972 * We cannot cancel the writeback directly in that case, so always call 1973 * ->writeback_submit to run the I/O completion handler to clear the 1974 * writeback bit and let the file system proess the errors. 1975 */ 1976 if (wpc->wb_ctx) 1977 return wpc->ops->writeback_submit(wpc, error); 1978 return error; 1979 } 1980 EXPORT_SYMBOL_GPL(iomap_writepages); 1981