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iomap: clean up writeback state logic on writepage error
[linux.git] / fs / xfs / xfs_aops.c
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0b61f8a4 1// SPDX-License-Identifier: GPL-2.0
1da177e4 2/*
7b718769 3 * Copyright (c) 2000-2005 Silicon Graphics, Inc.
98c1a7c0 4 * Copyright (c) 2016-2018 Christoph Hellwig.
7b718769 5 * All Rights Reserved.
1da177e4 6 */
1da177e4 7#include "xfs.h"
70a9883c 8#include "xfs_shared.h"
239880ef
DC
9#include "xfs_format.h"
10#include "xfs_log_format.h"
11#include "xfs_trans_resv.h"
1da177e4 12#include "xfs_mount.h"
1da177e4 13#include "xfs_inode.h"
239880ef 14#include "xfs_trans.h"
1da177e4 15#include "xfs_iomap.h"
0b1b213f 16#include "xfs_trace.h"
3ed3a434 17#include "xfs_bmap.h"
68988114 18#include "xfs_bmap_util.h"
ef473667 19#include "xfs_reflink.h"
1da177e4 20
fbcc0256 21struct xfs_writepage_ctx {
598ecfba 22 struct iomap_writepage_ctx ctx;
d9252d52 23 unsigned int data_seq;
e666aa37 24 unsigned int cow_seq;
fbcc0256
DC
25};
26
598ecfba
CH
27static inline struct xfs_writepage_ctx *
28XFS_WPC(struct iomap_writepage_ctx *ctx)
29{
30 return container_of(ctx, struct xfs_writepage_ctx, ctx);
31}
32
fc0063c4
CH
33/*
34 * Fast and loose check if this write could update the on-disk inode size.
35 */
598ecfba 36static inline bool xfs_ioend_is_append(struct iomap_ioend *ioend)
fc0063c4
CH
37{
38 return ioend->io_offset + ioend->io_size >
39 XFS_I(ioend->io_inode)->i_d.di_size;
40}
41
281627df
CH
42STATIC int
43xfs_setfilesize_trans_alloc(
598ecfba 44 struct iomap_ioend *ioend)
281627df
CH
45{
46 struct xfs_mount *mp = XFS_I(ioend->io_inode)->i_mount;
47 struct xfs_trans *tp;
48 int error;
49
73d30d48 50 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_fsyncts, 0, 0, 0, &tp);
253f4911 51 if (error)
281627df 52 return error;
281627df 53
5653017b 54 ioend->io_private = tp;
281627df 55
d9457dc0 56 /*
437a255a 57 * We may pass freeze protection with a transaction. So tell lockdep
d9457dc0
JK
58 * we released it.
59 */
bee9182d 60 __sb_writers_release(ioend->io_inode->i_sb, SB_FREEZE_FS);
281627df
CH
61 /*
62 * We hand off the transaction to the completion thread now, so
63 * clear the flag here.
64 */
9070733b 65 current_restore_flags_nested(&tp->t_pflags, PF_MEMALLOC_NOFS);
281627df
CH
66 return 0;
67}
68
ba87ea69 69/*
2813d682 70 * Update on-disk file size now that data has been written to disk.
ba87ea69 71 */
281627df 72STATIC int
e372843a 73__xfs_setfilesize(
2ba66237
CH
74 struct xfs_inode *ip,
75 struct xfs_trans *tp,
76 xfs_off_t offset,
77 size_t size)
ba87ea69 78{
ba87ea69 79 xfs_fsize_t isize;
ba87ea69 80
aa6bf01d 81 xfs_ilock(ip, XFS_ILOCK_EXCL);
2ba66237 82 isize = xfs_new_eof(ip, offset + size);
281627df
CH
83 if (!isize) {
84 xfs_iunlock(ip, XFS_ILOCK_EXCL);
4906e215 85 xfs_trans_cancel(tp);
281627df 86 return 0;
ba87ea69
LM
87 }
88
2ba66237 89 trace_xfs_setfilesize(ip, offset, size);
281627df
CH
90
91 ip->i_d.di_size = isize;
92 xfs_trans_ijoin(tp, ip, XFS_ILOCK_EXCL);
93 xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE);
94
70393313 95 return xfs_trans_commit(tp);
77d7a0c2
DC
96}
97
e372843a
CH
98int
99xfs_setfilesize(
100 struct xfs_inode *ip,
101 xfs_off_t offset,
102 size_t size)
103{
104 struct xfs_mount *mp = ip->i_mount;
105 struct xfs_trans *tp;
106 int error;
107
108 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_fsyncts, 0, 0, 0, &tp);
109 if (error)
110 return error;
111
112 return __xfs_setfilesize(ip, tp, offset, size);
113}
114
2ba66237
CH
115STATIC int
116xfs_setfilesize_ioend(
598ecfba 117 struct iomap_ioend *ioend,
0e51a8e1 118 int error)
2ba66237
CH
119{
120 struct xfs_inode *ip = XFS_I(ioend->io_inode);
5653017b 121 struct xfs_trans *tp = ioend->io_private;
2ba66237
CH
122
123 /*
124 * The transaction may have been allocated in the I/O submission thread,
125 * thus we need to mark ourselves as being in a transaction manually.
126 * Similarly for freeze protection.
127 */
9070733b 128 current_set_flags_nested(&tp->t_pflags, PF_MEMALLOC_NOFS);
bee9182d 129 __sb_writers_acquired(VFS_I(ip)->i_sb, SB_FREEZE_FS);
2ba66237 130
5cb13dcd 131 /* we abort the update if there was an IO error */
0e51a8e1 132 if (error) {
5cb13dcd 133 xfs_trans_cancel(tp);
0e51a8e1 134 return error;
5cb13dcd
Z
135 }
136
e372843a 137 return __xfs_setfilesize(ip, tp, ioend->io_offset, ioend->io_size);
2ba66237
CH
138}
139
0829c360 140/*
5ec4fabb 141 * IO write completion.
f6d6d4fc
CH
142 */
143STATIC void
cb357bf3 144xfs_end_ioend(
598ecfba 145 struct iomap_ioend *ioend)
0829c360 146{
0e51a8e1 147 struct xfs_inode *ip = XFS_I(ioend->io_inode);
787eb485
CH
148 xfs_off_t offset = ioend->io_offset;
149 size_t size = ioend->io_size;
73d30d48 150 unsigned int nofs_flag;
4e4cbee9 151 int error;
ba87ea69 152
73d30d48
CH
153 /*
154 * We can allocate memory here while doing writeback on behalf of
155 * memory reclaim. To avoid memory allocation deadlocks set the
156 * task-wide nofs context for the following operations.
157 */
158 nofs_flag = memalloc_nofs_save();
159
af055e37 160 /*
787eb485 161 * Just clean up the in-memory strutures if the fs has been shut down.
af055e37 162 */
787eb485 163 if (XFS_FORCED_SHUTDOWN(ip->i_mount)) {
0e51a8e1 164 error = -EIO;
787eb485
CH
165 goto done;
166 }
04f658ee 167
43caeb18 168 /*
787eb485 169 * Clean up any COW blocks on an I/O error.
43caeb18 170 */
4e4cbee9 171 error = blk_status_to_errno(ioend->io_bio->bi_status);
787eb485 172 if (unlikely(error)) {
760fea8b 173 if (ioend->io_flags & IOMAP_F_SHARED)
787eb485 174 xfs_reflink_cancel_cow_range(ip, offset, size, true);
787eb485 175 goto done;
43caeb18
DW
176 }
177
5ec4fabb 178 /*
be225fec 179 * Success: commit the COW or unwritten blocks if needed.
5ec4fabb 180 */
760fea8b 181 if (ioend->io_flags & IOMAP_F_SHARED)
787eb485 182 error = xfs_reflink_end_cow(ip, offset, size);
4e087a3b 183 else if (ioend->io_type == IOMAP_UNWRITTEN)
ee70daab 184 error = xfs_iomap_write_unwritten(ip, offset, size, false);
be225fec 185 else
5653017b 186 ASSERT(!xfs_ioend_is_append(ioend) || ioend->io_private);
ba87ea69 187
04f658ee 188done:
5653017b 189 if (ioend->io_private)
787eb485 190 error = xfs_setfilesize_ioend(ioend, error);
598ecfba 191 iomap_finish_ioends(ioend, error);
73d30d48 192 memalloc_nofs_restore(nofs_flag);
3994fc48
DW
193}
194
7dbae9fb
CH
195/*
196 * If the to be merged ioend has a preallocated transaction for file
197 * size updates we need to ensure the ioend it is merged into also
198 * has one. If it already has one we can simply cancel the transaction
199 * as it is guaranteed to be clean.
200 */
201static void
5653017b 202xfs_ioend_merge_private(
598ecfba
CH
203 struct iomap_ioend *ioend,
204 struct iomap_ioend *next)
7dbae9fb 205{
5653017b
CH
206 if (!ioend->io_private) {
207 ioend->io_private = next->io_private;
208 next->io_private = NULL;
7dbae9fb
CH
209 } else {
210 xfs_setfilesize_ioend(next, -ECANCELED);
211 }
212}
213
cb357bf3
DW
214/* Finish all pending io completions. */
215void
216xfs_end_io(
217 struct work_struct *work)
218{
433dad94
CH
219 struct xfs_inode *ip =
220 container_of(work, struct xfs_inode, i_ioend_work);
598ecfba 221 struct iomap_ioend *ioend;
433dad94 222 struct list_head tmp;
cb357bf3
DW
223 unsigned long flags;
224
cb357bf3 225 spin_lock_irqsave(&ip->i_ioend_lock, flags);
433dad94 226 list_replace_init(&ip->i_ioend_list, &tmp);
cb357bf3
DW
227 spin_unlock_irqrestore(&ip->i_ioend_lock, flags);
228
598ecfba
CH
229 iomap_sort_ioends(&tmp);
230 while ((ioend = list_first_entry_or_null(&tmp, struct iomap_ioend,
433dad94 231 io_list))) {
cb357bf3 232 list_del_init(&ioend->io_list);
598ecfba 233 iomap_ioend_try_merge(ioend, &tmp, xfs_ioend_merge_private);
cb357bf3
DW
234 xfs_end_ioend(ioend);
235 }
236}
237
598ecfba 238static inline bool xfs_ioend_needs_workqueue(struct iomap_ioend *ioend)
760fea8b
CH
239{
240 return ioend->io_private ||
241 ioend->io_type == IOMAP_UNWRITTEN ||
242 (ioend->io_flags & IOMAP_F_SHARED);
243}
244
0e51a8e1
CH
245STATIC void
246xfs_end_bio(
247 struct bio *bio)
0829c360 248{
598ecfba 249 struct iomap_ioend *ioend = bio->bi_private;
cb357bf3 250 struct xfs_inode *ip = XFS_I(ioend->io_inode);
cb357bf3 251 unsigned long flags;
0829c360 252
598ecfba
CH
253 ASSERT(xfs_ioend_needs_workqueue(ioend));
254
255 spin_lock_irqsave(&ip->i_ioend_lock, flags);
256 if (list_empty(&ip->i_ioend_list))
257 WARN_ON_ONCE(!queue_work(ip->i_mount->m_unwritten_workqueue,
258 &ip->i_ioend_work));
259 list_add_tail(&ioend->io_list, &ip->i_ioend_list);
260 spin_unlock_irqrestore(&ip->i_ioend_lock, flags);
0829c360
CH
261}
262
d9252d52
BF
263/*
264 * Fast revalidation of the cached writeback mapping. Return true if the current
265 * mapping is valid, false otherwise.
266 */
267static bool
268xfs_imap_valid(
598ecfba 269 struct iomap_writepage_ctx *wpc,
d9252d52 270 struct xfs_inode *ip,
4e087a3b 271 loff_t offset)
d9252d52 272{
4e087a3b
CH
273 if (offset < wpc->iomap.offset ||
274 offset >= wpc->iomap.offset + wpc->iomap.length)
d9252d52
BF
275 return false;
276 /*
277 * If this is a COW mapping, it is sufficient to check that the mapping
278 * covers the offset. Be careful to check this first because the caller
279 * can revalidate a COW mapping without updating the data seqno.
280 */
760fea8b 281 if (wpc->iomap.flags & IOMAP_F_SHARED)
d9252d52
BF
282 return true;
283
284 /*
285 * This is not a COW mapping. Check the sequence number of the data fork
286 * because concurrent changes could have invalidated the extent. Check
287 * the COW fork because concurrent changes since the last time we
288 * checked (and found nothing at this offset) could have added
289 * overlapping blocks.
290 */
598ecfba 291 if (XFS_WPC(wpc)->data_seq != READ_ONCE(ip->i_df.if_seq))
d9252d52
BF
292 return false;
293 if (xfs_inode_has_cow_data(ip) &&
598ecfba 294 XFS_WPC(wpc)->cow_seq != READ_ONCE(ip->i_cowfp->if_seq))
d9252d52
BF
295 return false;
296 return true;
297}
298
4ad765ed
CH
299/*
300 * Pass in a dellalloc extent and convert it to real extents, return the real
4e087a3b 301 * extent that maps offset_fsb in wpc->iomap.
4ad765ed
CH
302 *
303 * The current page is held locked so nothing could have removed the block
7588cbee
CH
304 * backing offset_fsb, although it could have moved from the COW to the data
305 * fork by another thread.
4ad765ed
CH
306 */
307static int
308xfs_convert_blocks(
598ecfba 309 struct iomap_writepage_ctx *wpc,
4ad765ed 310 struct xfs_inode *ip,
760fea8b 311 int whichfork,
4e087a3b 312 loff_t offset)
4ad765ed
CH
313{
314 int error;
598ecfba
CH
315 unsigned *seq;
316
317 if (whichfork == XFS_COW_FORK)
318 seq = &XFS_WPC(wpc)->cow_seq;
319 else
320 seq = &XFS_WPC(wpc)->data_seq;
4ad765ed
CH
321
322 /*
4e087a3b
CH
323 * Attempt to allocate whatever delalloc extent currently backs offset
324 * and put the result into wpc->iomap. Allocate in a loop because it
325 * may take several attempts to allocate real blocks for a contiguous
326 * delalloc extent if free space is sufficiently fragmented.
4ad765ed
CH
327 */
328 do {
760fea8b 329 error = xfs_bmapi_convert_delalloc(ip, whichfork, offset,
598ecfba 330 &wpc->iomap, seq);
4ad765ed
CH
331 if (error)
332 return error;
4e087a3b 333 } while (wpc->iomap.offset + wpc->iomap.length <= offset);
4ad765ed
CH
334
335 return 0;
336}
337
598ecfba 338static int
1da177e4 339xfs_map_blocks(
598ecfba 340 struct iomap_writepage_ctx *wpc,
1da177e4 341 struct inode *inode,
5c665e5b 342 loff_t offset)
1da177e4 343{
a206c817
CH
344 struct xfs_inode *ip = XFS_I(inode);
345 struct xfs_mount *mp = ip->i_mount;
93407472 346 ssize_t count = i_blocksize(inode);
b4e29032
CH
347 xfs_fileoff_t offset_fsb = XFS_B_TO_FSBT(mp, offset);
348 xfs_fileoff_t end_fsb = XFS_B_TO_FSB(mp, offset + count);
e666aa37 349 xfs_fileoff_t cow_fsb = NULLFILEOFF;
760fea8b 350 int whichfork = XFS_DATA_FORK;
5c665e5b 351 struct xfs_bmbt_irec imap;
060d4eaa 352 struct xfs_iext_cursor icur;
7588cbee 353 int retries = 0;
a206c817 354 int error = 0;
a206c817 355
d9252d52
BF
356 if (XFS_FORCED_SHUTDOWN(mp))
357 return -EIO;
358
889c65b3
CH
359 /*
360 * COW fork blocks can overlap data fork blocks even if the blocks
361 * aren't shared. COW I/O always takes precedent, so we must always
362 * check for overlap on reflink inodes unless the mapping is already a
e666aa37
CH
363 * COW one, or the COW fork hasn't changed from the last time we looked
364 * at it.
365 *
366 * It's safe to check the COW fork if_seq here without the ILOCK because
367 * we've indirectly protected against concurrent updates: writeback has
368 * the page locked, which prevents concurrent invalidations by reflink
369 * and directio and prevents concurrent buffered writes to the same
370 * page. Changes to if_seq always happen under i_lock, which protects
371 * against concurrent updates and provides a memory barrier on the way
372 * out that ensures that we always see the current value.
889c65b3 373 */
4e087a3b 374 if (xfs_imap_valid(wpc, ip, offset))
889c65b3
CH
375 return 0;
376
889c65b3
CH
377 /*
378 * If we don't have a valid map, now it's time to get a new one for this
379 * offset. This will convert delayed allocations (including COW ones)
380 * into real extents. If we return without a valid map, it means we
381 * landed in a hole and we skip the block.
382 */
7588cbee 383retry:
988ef927 384 xfs_ilock(ip, XFS_ILOCK_SHARED);
f7e67b20 385 ASSERT(ip->i_df.if_format != XFS_DINODE_FMT_BTREE ||
8ff2957d 386 (ip->i_df.if_flags & XFS_IFEXTENTS));
060d4eaa
CH
387
388 /*
389 * Check if this is offset is covered by a COW extents, and if yes use
390 * it directly instead of looking up anything in the data fork.
391 */
51d62690 392 if (xfs_inode_has_cow_data(ip) &&
e666aa37
CH
393 xfs_iext_lookup_extent(ip, ip->i_cowfp, offset_fsb, &icur, &imap))
394 cow_fsb = imap.br_startoff;
395 if (cow_fsb != NULLFILEOFF && cow_fsb <= offset_fsb) {
598ecfba 396 XFS_WPC(wpc)->cow_seq = READ_ONCE(ip->i_cowfp->if_seq);
5c665e5b 397 xfs_iunlock(ip, XFS_ILOCK_SHARED);
be225fec 398
760fea8b 399 whichfork = XFS_COW_FORK;
5c665e5b
CH
400 goto allocate_blocks;
401 }
402
403 /*
d9252d52
BF
404 * No COW extent overlap. Revalidate now that we may have updated
405 * ->cow_seq. If the data mapping is still valid, we're done.
5c665e5b 406 */
4e087a3b 407 if (xfs_imap_valid(wpc, ip, offset)) {
5c665e5b
CH
408 xfs_iunlock(ip, XFS_ILOCK_SHARED);
409 return 0;
410 }
411
412 /*
413 * If we don't have a valid map, now it's time to get a new one for this
414 * offset. This will convert delayed allocations (including COW ones)
415 * into real extents.
416 */
3345746e
CH
417 if (!xfs_iext_lookup_extent(ip, &ip->i_df, offset_fsb, &icur, &imap))
418 imap.br_startoff = end_fsb; /* fake a hole past EOF */
598ecfba 419 XFS_WPC(wpc)->data_seq = READ_ONCE(ip->i_df.if_seq);
8ff2957d 420 xfs_iunlock(ip, XFS_ILOCK_SHARED);
a206c817 421
12df89f2 422 /* landed in a hole or beyond EOF? */
3345746e 423 if (imap.br_startoff > offset_fsb) {
3345746e 424 imap.br_blockcount = imap.br_startoff - offset_fsb;
5c665e5b 425 imap.br_startoff = offset_fsb;
5c665e5b 426 imap.br_startblock = HOLESTARTBLOCK;
be225fec 427 imap.br_state = XFS_EXT_NORM;
8ff2957d 428 }
e2f6ad46 429
12df89f2
CH
430 /*
431 * Truncate to the next COW extent if there is one. This is the only
432 * opportunity to do this because we can skip COW fork lookups for the
433 * subsequent blocks in the mapping; however, the requirement to treat
434 * the COW range separately remains.
435 */
436 if (cow_fsb != NULLFILEOFF &&
437 cow_fsb < imap.br_startoff + imap.br_blockcount)
438 imap.br_blockcount = cow_fsb - imap.br_startoff;
439
440 /* got a delalloc extent? */
441 if (imap.br_startblock != HOLESTARTBLOCK &&
442 isnullstartblock(imap.br_startblock))
443 goto allocate_blocks;
444
4e087a3b 445 xfs_bmbt_to_iomap(ip, &wpc->iomap, &imap, 0);
760fea8b 446 trace_xfs_map_blocks_found(ip, offset, count, whichfork, &imap);
5c665e5b
CH
447 return 0;
448allocate_blocks:
760fea8b 449 error = xfs_convert_blocks(wpc, ip, whichfork, offset);
7588cbee
CH
450 if (error) {
451 /*
452 * If we failed to find the extent in the COW fork we might have
453 * raced with a COW to data fork conversion or truncate.
454 * Restart the lookup to catch the extent in the data fork for
455 * the former case, but prevent additional retries to avoid
456 * looping forever for the latter case.
457 */
760fea8b 458 if (error == -EAGAIN && whichfork == XFS_COW_FORK && !retries++)
7588cbee
CH
459 goto retry;
460 ASSERT(error != -EAGAIN);
5c665e5b 461 return error;
7588cbee 462 }
4ad765ed
CH
463
464 /*
465 * Due to merging the return real extent might be larger than the
466 * original delalloc one. Trim the return extent to the next COW
467 * boundary again to force a re-lookup.
468 */
760fea8b 469 if (whichfork != XFS_COW_FORK && cow_fsb != NULLFILEOFF) {
4e087a3b
CH
470 loff_t cow_offset = XFS_FSB_TO_B(mp, cow_fsb);
471
472 if (cow_offset < wpc->iomap.offset + wpc->iomap.length)
473 wpc->iomap.length = cow_offset - wpc->iomap.offset;
474 }
4ad765ed 475
4e087a3b
CH
476 ASSERT(wpc->iomap.offset <= offset);
477 ASSERT(wpc->iomap.offset + wpc->iomap.length > offset);
760fea8b 478 trace_xfs_map_blocks_alloc(ip, offset, count, whichfork, &imap);
8ff2957d 479 return 0;
1da177e4
LT
480}
481
598ecfba
CH
482static int
483xfs_prepare_ioend(
484 struct iomap_ioend *ioend,
e10de372 485 int status)
f6d6d4fc 486{
73d30d48
CH
487 unsigned int nofs_flag;
488
489 /*
490 * We can allocate memory here while doing writeback on behalf of
491 * memory reclaim. To avoid memory allocation deadlocks set the
492 * task-wide nofs context for the following operations.
493 */
494 nofs_flag = memalloc_nofs_save();
495
5eda4300 496 /* Convert CoW extents to regular */
760fea8b 497 if (!status && (ioend->io_flags & IOMAP_F_SHARED)) {
5eda4300
DW
498 status = xfs_reflink_convert_cow(XFS_I(ioend->io_inode),
499 ioend->io_offset, ioend->io_size);
500 }
501
e10de372
DC
502 /* Reserve log space if we might write beyond the on-disk inode size. */
503 if (!status &&
760fea8b 504 ((ioend->io_flags & IOMAP_F_SHARED) ||
4e087a3b 505 ioend->io_type != IOMAP_UNWRITTEN) &&
bb18782a 506 xfs_ioend_is_append(ioend) &&
5653017b 507 !ioend->io_private)
e10de372 508 status = xfs_setfilesize_trans_alloc(ioend);
bb18782a 509
73d30d48
CH
510 memalloc_nofs_restore(nofs_flag);
511
598ecfba
CH
512 if (xfs_ioend_needs_workqueue(ioend))
513 ioend->io_bio->bi_end_io = xfs_end_bio;
514 return status;
f6d6d4fc
CH
515}
516
3ed3a434 517/*
82cb1417
CH
518 * If the page has delalloc blocks on it, we need to punch them out before we
519 * invalidate the page. If we don't, we leave a stale delalloc mapping on the
520 * inode that can trip up a later direct I/O read operation on the same region.
3ed3a434 521 *
82cb1417
CH
522 * We prevent this by truncating away the delalloc regions on the page. Because
523 * they are delalloc, we can do this without needing a transaction. Indeed - if
524 * we get ENOSPC errors, we have to be able to do this truncation without a
525 * transaction as there is no space left for block reservation (typically why we
526 * see a ENOSPC in writeback).
3ed3a434 527 */
598ecfba
CH
528static void
529xfs_discard_page(
763e4cdc
BF
530 struct page *page,
531 loff_t fileoff)
3ed3a434
DC
532{
533 struct inode *inode = page->mapping->host;
534 struct xfs_inode *ip = XFS_I(inode);
03625721 535 struct xfs_mount *mp = ip->i_mount;
763e4cdc
BF
536 unsigned int pageoff = offset_in_page(fileoff);
537 xfs_fileoff_t start_fsb = XFS_B_TO_FSBT(mp, fileoff);
538 xfs_fileoff_t pageoff_fsb = XFS_B_TO_FSBT(mp, pageoff);
03625721 539 int error;
3ed3a434 540
03625721 541 if (XFS_FORCED_SHUTDOWN(mp))
e8c3753c
DC
542 goto out_invalidate;
543
4ab45e25 544 xfs_alert_ratelimited(mp,
c9690043 545 "page discard on page "PTR_FMT", inode 0x%llx, offset %llu.",
763e4cdc 546 page, ip->i_ino, fileoff);
3ed3a434 547
03625721 548 error = xfs_bmap_punch_delalloc_range(ip, start_fsb,
763e4cdc 549 i_blocks_per_page(inode, page) - pageoff_fsb);
03625721
CH
550 if (error && !XFS_FORCED_SHUTDOWN(mp))
551 xfs_alert(mp, "page discard unable to remove delalloc mapping.");
3ed3a434 552out_invalidate:
763e4cdc 553 iomap_invalidatepage(page, pageoff, PAGE_SIZE - pageoff);
3ed3a434
DC
554}
555
598ecfba
CH
556static const struct iomap_writeback_ops xfs_writeback_ops = {
557 .map_blocks = xfs_map_blocks,
558 .prepare_ioend = xfs_prepare_ioend,
559 .discard_page = xfs_discard_page,
560};
f51623b2 561
fbcc0256
DC
562STATIC int
563xfs_vm_writepage(
564 struct page *page,
565 struct writeback_control *wbc)
566{
be225fec 567 struct xfs_writepage_ctx wpc = { };
fbcc0256 568
598ecfba 569 return iomap_writepage(page, wbc, &wpc.ctx, &xfs_writeback_ops);
fbcc0256
DC
570}
571
7d4fb40a
NS
572STATIC int
573xfs_vm_writepages(
574 struct address_space *mapping,
575 struct writeback_control *wbc)
576{
be225fec 577 struct xfs_writepage_ctx wpc = { };
fbcc0256 578
b3aea4ed 579 xfs_iflags_clear(XFS_I(mapping->host), XFS_ITRUNCATED);
598ecfba 580 return iomap_writepages(mapping, wbc, &wpc.ctx, &xfs_writeback_ops);
7d4fb40a
NS
581}
582
6e2608df
DW
583STATIC int
584xfs_dax_writepages(
585 struct address_space *mapping,
586 struct writeback_control *wbc)
587{
30fa529e
CH
588 struct xfs_inode *ip = XFS_I(mapping->host);
589
590 xfs_iflags_clear(ip, XFS_ITRUNCATED);
6e2608df 591 return dax_writeback_mapping_range(mapping,
3f666c56 592 xfs_inode_buftarg(ip)->bt_daxdev, wbc);
6e2608df
DW
593}
594
1da177e4 595STATIC sector_t
e4c573bb 596xfs_vm_bmap(
1da177e4
LT
597 struct address_space *mapping,
598 sector_t block)
599{
b84e7722 600 struct xfs_inode *ip = XFS_I(mapping->host);
1da177e4 601
b84e7722 602 trace_xfs_vm_bmap(ip);
db1327b1
DW
603
604 /*
605 * The swap code (ab-)uses ->bmap to get a block mapping and then
793057e1 606 * bypasses the file system for actual I/O. We really can't allow
db1327b1 607 * that on reflinks inodes, so we have to skip out here. And yes,
eb5e248d
DW
608 * 0 is the magic code for a bmap error.
609 *
610 * Since we don't pass back blockdev info, we can't return bmap
611 * information for rt files either.
db1327b1 612 */
66ae56a5 613 if (xfs_is_cow_inode(ip) || XFS_IS_REALTIME_INODE(ip))
db1327b1 614 return 0;
690c2a38 615 return iomap_bmap(mapping, block, &xfs_read_iomap_ops);
1da177e4
LT
616}
617
618STATIC int
e4c573bb 619xfs_vm_readpage(
1da177e4
LT
620 struct file *unused,
621 struct page *page)
622{
690c2a38 623 return iomap_readpage(page, &xfs_read_iomap_ops);
1da177e4
LT
624}
625
9d24a13a
MWO
626STATIC void
627xfs_vm_readahead(
628 struct readahead_control *rac)
1da177e4 629{
9d24a13a 630 iomap_readahead(rac, &xfs_read_iomap_ops);
22e757a4
DC
631}
632
67482129
DW
633static int
634xfs_iomap_swapfile_activate(
635 struct swap_info_struct *sis,
636 struct file *swap_file,
637 sector_t *span)
638{
30fa529e 639 sis->bdev = xfs_inode_buftarg(XFS_I(file_inode(swap_file)))->bt_bdev;
690c2a38
CH
640 return iomap_swapfile_activate(sis, swap_file, span,
641 &xfs_read_iomap_ops);
67482129
DW
642}
643
f5e54d6e 644const struct address_space_operations xfs_address_space_operations = {
e4c573bb 645 .readpage = xfs_vm_readpage,
9d24a13a 646 .readahead = xfs_vm_readahead,
e4c573bb 647 .writepage = xfs_vm_writepage,
7d4fb40a 648 .writepages = xfs_vm_writepages,
82cb1417 649 .set_page_dirty = iomap_set_page_dirty,
9e91c572
CH
650 .releasepage = iomap_releasepage,
651 .invalidatepage = iomap_invalidatepage,
e4c573bb 652 .bmap = xfs_vm_bmap,
6e2608df 653 .direct_IO = noop_direct_IO,
82cb1417
CH
654 .migratepage = iomap_migrate_page,
655 .is_partially_uptodate = iomap_is_partially_uptodate,
aa261f54 656 .error_remove_page = generic_error_remove_page,
67482129 657 .swap_activate = xfs_iomap_swapfile_activate,
1da177e4 658};
6e2608df
DW
659
660const struct address_space_operations xfs_dax_aops = {
661 .writepages = xfs_dax_writepages,
662 .direct_IO = noop_direct_IO,
663 .set_page_dirty = noop_set_page_dirty,
664 .invalidatepage = noop_invalidatepage,
67482129 665 .swap_activate = xfs_iomap_swapfile_activate,
6e2608df 666};
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