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0b61f8a4 | 1 | // SPDX-License-Identifier: GPL-2.0 |
1da177e4 | 2 | /* |
3e57ecf6 | 3 | * Copyright (c) 2000-2006 Silicon Graphics, Inc. |
98c1a7c0 | 4 | * Copyright (c) 2016-2018 Christoph Hellwig. |
7b718769 | 5 | * All Rights Reserved. |
1da177e4 | 6 | */ |
1da177e4 | 7 | #include "xfs.h" |
1da177e4 | 8 | #include "xfs_fs.h" |
70a9883c | 9 | #include "xfs_shared.h" |
239880ef DC |
10 | #include "xfs_format.h" |
11 | #include "xfs_log_format.h" | |
12 | #include "xfs_trans_resv.h" | |
1da177e4 | 13 | #include "xfs_mount.h" |
1da177e4 | 14 | #include "xfs_inode.h" |
a844f451 | 15 | #include "xfs_btree.h" |
a4fbe6ab | 16 | #include "xfs_bmap_btree.h" |
1da177e4 | 17 | #include "xfs_bmap.h" |
68988114 | 18 | #include "xfs_bmap_util.h" |
e9e899a2 | 19 | #include "xfs_errortag.h" |
1da177e4 | 20 | #include "xfs_error.h" |
a4fbe6ab | 21 | #include "xfs_trans.h" |
1da177e4 | 22 | #include "xfs_trans_space.h" |
a39e596b | 23 | #include "xfs_inode_item.h" |
1da177e4 | 24 | #include "xfs_iomap.h" |
0b1b213f | 25 | #include "xfs_trace.h" |
a4fbe6ab | 26 | #include "xfs_quota.h" |
76a4202a BF |
27 | #include "xfs_dquot_item.h" |
28 | #include "xfs_dquot.h" | |
2a06705c | 29 | #include "xfs_reflink.h" |
1196f3f5 | 30 | #include "xfs_health.h" |
1da177e4 | 31 | |
5da8a07c CH |
32 | #define XFS_ALLOC_ALIGN(mp, off) \ |
33 | (((off) >> mp->m_allocsize_log) << mp->m_allocsize_log) | |
1da177e4 | 34 | |
16be1433 CH |
35 | static int |
36 | xfs_alert_fsblock_zero( | |
37 | xfs_inode_t *ip, | |
38 | xfs_bmbt_irec_t *imap) | |
39 | { | |
40 | xfs_alert_tag(ip->i_mount, XFS_PTAG_FSBLOCK_ZERO, | |
41 | "Access to block zero in inode %llu " | |
42 | "start_block: %llx start_off: %llx " | |
43 | "blkcnt: %llx extent-state: %x", | |
44 | (unsigned long long)ip->i_ino, | |
45 | (unsigned long long)imap->br_startblock, | |
46 | (unsigned long long)imap->br_startoff, | |
47 | (unsigned long long)imap->br_blockcount, | |
48 | imap->br_state); | |
1196f3f5 | 49 | xfs_bmap_mark_sick(ip, XFS_DATA_FORK); |
16be1433 CH |
50 | return -EFSCORRUPTED; |
51 | } | |
52 | ||
304a68b9 DC |
53 | u64 |
54 | xfs_iomap_inode_sequence( | |
55 | struct xfs_inode *ip, | |
56 | u16 iomap_flags) | |
57 | { | |
58 | u64 cookie = 0; | |
59 | ||
60 | if (iomap_flags & IOMAP_F_XATTR) | |
61 | return READ_ONCE(ip->i_af.if_seq); | |
62 | if ((iomap_flags & IOMAP_F_SHARED) && ip->i_cowfp) | |
63 | cookie = (u64)READ_ONCE(ip->i_cowfp->if_seq) << 32; | |
64 | return cookie | READ_ONCE(ip->i_df.if_seq); | |
65 | } | |
66 | ||
67 | /* | |
68 | * Check that the iomap passed to us is still valid for the given offset and | |
69 | * length. | |
70 | */ | |
71 | static bool | |
72 | xfs_iomap_valid( | |
73 | struct inode *inode, | |
74 | const struct iomap *iomap) | |
75 | { | |
254e3459 DW |
76 | struct xfs_inode *ip = XFS_I(inode); |
77 | ||
78 | if (iomap->validity_cookie != | |
79 | xfs_iomap_inode_sequence(ip, iomap->flags)) { | |
80 | trace_xfs_iomap_invalid(ip, iomap); | |
81 | return false; | |
82 | } | |
83 | ||
84 | XFS_ERRORTAG_DELAY(ip->i_mount, XFS_ERRTAG_WRITE_DELAY_MS); | |
85 | return true; | |
304a68b9 DC |
86 | } |
87 | ||
471859f5 | 88 | static const struct iomap_folio_ops xfs_iomap_folio_ops = { |
304a68b9 DC |
89 | .iomap_valid = xfs_iomap_valid, |
90 | }; | |
91 | ||
16be1433 | 92 | int |
e9c49736 CH |
93 | xfs_bmbt_to_iomap( |
94 | struct xfs_inode *ip, | |
95 | struct iomap *iomap, | |
16be1433 | 96 | struct xfs_bmbt_irec *imap, |
740fd671 | 97 | unsigned int mapping_flags, |
304a68b9 DC |
98 | u16 iomap_flags, |
99 | u64 sequence_cookie) | |
e9c49736 CH |
100 | { |
101 | struct xfs_mount *mp = ip->i_mount; | |
30fa529e | 102 | struct xfs_buftarg *target = xfs_inode_buftarg(ip); |
e9c49736 | 103 | |
1196f3f5 DW |
104 | if (unlikely(!xfs_valid_startblock(ip, imap->br_startblock))) { |
105 | xfs_bmap_mark_sick(ip, XFS_DATA_FORK); | |
16be1433 | 106 | return xfs_alert_fsblock_zero(ip, imap); |
1196f3f5 | 107 | } |
16be1433 | 108 | |
e9c49736 | 109 | if (imap->br_startblock == HOLESTARTBLOCK) { |
19fe5f64 | 110 | iomap->addr = IOMAP_NULL_ADDR; |
e9c49736 | 111 | iomap->type = IOMAP_HOLE; |
16be1433 CH |
112 | } else if (imap->br_startblock == DELAYSTARTBLOCK || |
113 | isnullstartblock(imap->br_startblock)) { | |
19fe5f64 | 114 | iomap->addr = IOMAP_NULL_ADDR; |
e9c49736 CH |
115 | iomap->type = IOMAP_DELALLOC; |
116 | } else { | |
19fe5f64 | 117 | iomap->addr = BBTOB(xfs_fsb_to_db(ip, imap->br_startblock)); |
de205114 CH |
118 | if (mapping_flags & IOMAP_DAX) |
119 | iomap->addr += target->bt_dax_part_off; | |
120 | ||
e9c49736 CH |
121 | if (imap->br_state == XFS_EXT_UNWRITTEN) |
122 | iomap->type = IOMAP_UNWRITTEN; | |
123 | else | |
124 | iomap->type = IOMAP_MAPPED; | |
de205114 | 125 | |
e9c49736 CH |
126 | } |
127 | iomap->offset = XFS_FSB_TO_B(mp, imap->br_startoff); | |
128 | iomap->length = XFS_FSB_TO_B(mp, imap->br_blockcount); | |
de205114 CH |
129 | if (mapping_flags & IOMAP_DAX) |
130 | iomap->dax_dev = target->bt_daxdev; | |
131 | else | |
132 | iomap->bdev = target->bt_bdev; | |
740fd671 | 133 | iomap->flags = iomap_flags; |
16be1433 CH |
134 | |
135 | if (xfs_ipincount(ip) && | |
136 | (ip->i_itemp->ili_fsync_fields & ~XFS_ILOG_TIMESTAMP)) | |
137 | iomap->flags |= IOMAP_F_DIRTY; | |
304a68b9 DC |
138 | |
139 | iomap->validity_cookie = sequence_cookie; | |
471859f5 | 140 | iomap->folio_ops = &xfs_iomap_folio_ops; |
16be1433 | 141 | return 0; |
e9c49736 CH |
142 | } |
143 | ||
0365c5d6 CH |
144 | static void |
145 | xfs_hole_to_iomap( | |
146 | struct xfs_inode *ip, | |
147 | struct iomap *iomap, | |
148 | xfs_fileoff_t offset_fsb, | |
149 | xfs_fileoff_t end_fsb) | |
150 | { | |
30fa529e CH |
151 | struct xfs_buftarg *target = xfs_inode_buftarg(ip); |
152 | ||
0365c5d6 CH |
153 | iomap->addr = IOMAP_NULL_ADDR; |
154 | iomap->type = IOMAP_HOLE; | |
155 | iomap->offset = XFS_FSB_TO_B(ip->i_mount, offset_fsb); | |
156 | iomap->length = XFS_FSB_TO_B(ip->i_mount, end_fsb - offset_fsb); | |
30fa529e CH |
157 | iomap->bdev = target->bt_bdev; |
158 | iomap->dax_dev = target->bt_daxdev; | |
0365c5d6 CH |
159 | } |
160 | ||
43568226 CH |
161 | static inline xfs_fileoff_t |
162 | xfs_iomap_end_fsb( | |
163 | struct xfs_mount *mp, | |
164 | loff_t offset, | |
165 | loff_t count) | |
166 | { | |
167 | ASSERT(offset <= mp->m_super->s_maxbytes); | |
168 | return min(XFS_B_TO_FSB(mp, offset + count), | |
169 | XFS_B_TO_FSB(mp, mp->m_super->s_maxbytes)); | |
170 | } | |
171 | ||
49bbf8c7 | 172 | static xfs_extlen_t |
f8e3a825 | 173 | xfs_eof_alignment( |
57c49444 | 174 | struct xfs_inode *ip) |
dd9f438e | 175 | { |
f8e3a825 CH |
176 | struct xfs_mount *mp = ip->i_mount; |
177 | xfs_extlen_t align = 0; | |
dd9f438e | 178 | |
bf322d98 CH |
179 | if (!XFS_IS_REALTIME_INODE(ip)) { |
180 | /* | |
181 | * Round up the allocation request to a stripe unit | |
182 | * (m_dalign) boundary if the file size is >= stripe unit | |
183 | * size, and we are allocating past the allocation eof. | |
184 | * | |
185 | * If mounted with the "-o swalloc" option the alignment is | |
186 | * increased from the strip unit size to the stripe width. | |
187 | */ | |
0560f31a | 188 | if (mp->m_swidth && xfs_has_swalloc(mp)) |
bf322d98 CH |
189 | align = mp->m_swidth; |
190 | else if (mp->m_dalign) | |
191 | align = mp->m_dalign; | |
192 | ||
76b57302 PW |
193 | if (align && XFS_ISIZE(ip) < XFS_FSB_TO_B(mp, align)) |
194 | align = 0; | |
bf322d98 | 195 | } |
dd9f438e | 196 | |
f8e3a825 CH |
197 | return align; |
198 | } | |
199 | ||
ae7e403f CH |
200 | /* |
201 | * Check if last_fsb is outside the last extent, and if so grow it to the next | |
202 | * stripe unit boundary. | |
203 | */ | |
e696663a | 204 | xfs_fileoff_t |
f8e3a825 CH |
205 | xfs_iomap_eof_align_last_fsb( |
206 | struct xfs_inode *ip, | |
ae7e403f | 207 | xfs_fileoff_t end_fsb) |
f8e3a825 | 208 | { |
732436ef | 209 | struct xfs_ifork *ifp = xfs_ifork_ptr(ip, XFS_DATA_FORK); |
ae7e403f | 210 | xfs_extlen_t extsz = xfs_get_extsz_hint(ip); |
57c49444 | 211 | xfs_extlen_t align = xfs_eof_alignment(ip); |
ae7e403f CH |
212 | struct xfs_bmbt_irec irec; |
213 | struct xfs_iext_cursor icur; | |
214 | ||
b2197a36 | 215 | ASSERT(!xfs_need_iread_extents(ifp)); |
f8e3a825 | 216 | |
57c49444 CH |
217 | /* |
218 | * Always round up the allocation request to the extent hint boundary. | |
219 | */ | |
220 | if (extsz) { | |
221 | if (align) | |
222 | align = roundup_64(align, extsz); | |
223 | else | |
224 | align = extsz; | |
225 | } | |
226 | ||
76b57302 | 227 | if (align) { |
ae7e403f CH |
228 | xfs_fileoff_t aligned_end_fsb = roundup_64(end_fsb, align); |
229 | ||
230 | xfs_iext_last(ifp, &icur); | |
231 | if (!xfs_iext_get_extent(ifp, &icur, &irec) || | |
232 | aligned_end_fsb >= irec.br_startoff + irec.br_blockcount) | |
233 | return aligned_end_fsb; | |
dd9f438e | 234 | } |
ae7e403f CH |
235 | |
236 | return end_fsb; | |
dd9f438e NS |
237 | } |
238 | ||
a206c817 | 239 | int |
1da177e4 | 240 | xfs_iomap_write_direct( |
e696663a CH |
241 | struct xfs_inode *ip, |
242 | xfs_fileoff_t offset_fsb, | |
243 | xfs_fileoff_t count_fsb, | |
952da063 | 244 | unsigned int flags, |
304a68b9 DC |
245 | struct xfs_bmbt_irec *imap, |
246 | u64 *seq) | |
1da177e4 | 247 | { |
e696663a CH |
248 | struct xfs_mount *mp = ip->i_mount; |
249 | struct xfs_trans *tp; | |
250 | xfs_filblks_t resaligned; | |
251 | int nimaps; | |
02b7ee4e | 252 | unsigned int dblocks, rblocks; |
3de4eb10 | 253 | bool force = false; |
e696663a CH |
254 | int error; |
255 | int bmapi_flags = XFS_BMAPI_PREALLOC; | |
5147ef30 | 256 | int nr_exts = XFS_IEXT_ADD_NOSPLIT_CNT; |
1da177e4 | 257 | |
dd9f438e | 258 | ASSERT(count_fsb > 0); |
dd9f438e | 259 | |
e696663a CH |
260 | resaligned = xfs_aligned_fsb_count(offset_fsb, count_fsb, |
261 | xfs_get_extsz_hint(ip)); | |
262 | if (unlikely(XFS_IS_REALTIME_INODE(ip))) { | |
02b7ee4e DW |
263 | dblocks = XFS_DIOSTRAT_SPACE_RES(mp, 0); |
264 | rblocks = resaligned; | |
84e1e99f | 265 | } else { |
02b7ee4e DW |
266 | dblocks = XFS_DIOSTRAT_SPACE_RES(mp, resaligned); |
267 | rblocks = 0; | |
84e1e99f | 268 | } |
1da177e4 | 269 | |
c14cfcca | 270 | error = xfs_qm_dqattach(ip); |
009c6e87 BF |
271 | if (error) |
272 | return error; | |
273 | ||
1ca19157 DC |
274 | /* |
275 | * For DAX, we do not allocate unwritten extents, but instead we zero | |
276 | * the block before we commit the transaction. Ideally we'd like to do | |
277 | * this outside the transaction context, but if we commit and then crash | |
278 | * we may not have zeroed the blocks and this will be exposed on | |
279 | * recovery of the allocation. Hence we must zero before commit. | |
3b0fe478 | 280 | * |
1ca19157 DC |
281 | * Further, if we are mapping unwritten extents here, we need to zero |
282 | * and convert them to written so that we don't need an unwritten extent | |
283 | * callback for DAX. This also means that we need to be able to dip into | |
3b0fe478 DC |
284 | * the reserve block pool for bmbt block allocation if there is no space |
285 | * left but we need to do unwritten extent conversion. | |
1ca19157 | 286 | */ |
952da063 | 287 | if (flags & IOMAP_DAX) { |
1ca19157 | 288 | bmapi_flags = XFS_BMAPI_CONVERT | XFS_BMAPI_ZERO; |
63fbb4c1 | 289 | if (imap->br_state == XFS_EXT_UNWRITTEN) { |
02b7ee4e | 290 | force = true; |
5147ef30 | 291 | nr_exts = XFS_IEXT_WRITE_UNWRITTEN_CNT; |
02b7ee4e | 292 | dblocks = XFS_DIOSTRAT_SPACE_RES(mp, 0) << 1; |
3b0fe478 | 293 | } |
1ca19157 | 294 | } |
507630b2 | 295 | |
3de4eb10 DW |
296 | error = xfs_trans_alloc_inode(ip, &M_RES(mp)->tr_write, dblocks, |
297 | rblocks, force, &tp); | |
253f4911 | 298 | if (error) |
b474c7ae | 299 | return error; |
507630b2 | 300 | |
5147ef30 | 301 | error = xfs_iext_count_may_overflow(ip, XFS_DATA_FORK, nr_exts); |
4f86bb4b CB |
302 | if (error == -EFBIG) |
303 | error = xfs_iext_count_upgrade(tp, ip, nr_exts); | |
dd9f438e | 304 | if (error) |
507630b2 | 305 | goto out_trans_cancel; |
1da177e4 | 306 | |
1da177e4 | 307 | /* |
3070451e CH |
308 | * From this point onwards we overwrite the imap pointer that the |
309 | * caller gave to us. | |
1da177e4 | 310 | */ |
06d10dd9 | 311 | nimaps = 1; |
da781e64 BF |
312 | error = xfs_bmapi_write(tp, ip, offset_fsb, count_fsb, bmapi_flags, 0, |
313 | imap, &nimaps); | |
06d10dd9 | 314 | if (error) |
35b11010 | 315 | goto out_trans_cancel; |
1da177e4 LT |
316 | |
317 | /* | |
06d10dd9 | 318 | * Complete the transaction |
1da177e4 | 319 | */ |
70393313 | 320 | error = xfs_trans_commit(tp); |
06d10dd9 | 321 | if (error) |
507630b2 | 322 | goto out_unlock; |
1da177e4 | 323 | |
06d10dd9 NS |
324 | /* |
325 | * Copy any maps to caller's array and return any error. | |
326 | */ | |
1da177e4 | 327 | if (nimaps == 0) { |
2451337d | 328 | error = -ENOSPC; |
507630b2 | 329 | goto out_unlock; |
572d95f4 NS |
330 | } |
331 | ||
1196f3f5 DW |
332 | if (unlikely(!xfs_valid_startblock(ip, imap->br_startblock))) { |
333 | xfs_bmap_mark_sick(ip, XFS_DATA_FORK); | |
6d4a8ecb | 334 | error = xfs_alert_fsblock_zero(ip, imap); |
1196f3f5 | 335 | } |
1da177e4 | 336 | |
507630b2 | 337 | out_unlock: |
304a68b9 | 338 | *seq = xfs_iomap_inode_sequence(ip, 0); |
e696663a | 339 | xfs_iunlock(ip, XFS_ILOCK_EXCL); |
507630b2 | 340 | return error; |
1da177e4 | 341 | |
507630b2 | 342 | out_trans_cancel: |
4906e215 | 343 | xfs_trans_cancel(tp); |
507630b2 | 344 | goto out_unlock; |
1da177e4 LT |
345 | } |
346 | ||
76a4202a BF |
347 | STATIC bool |
348 | xfs_quota_need_throttle( | |
1a7ed271 DW |
349 | struct xfs_inode *ip, |
350 | xfs_dqtype_t type, | |
351 | xfs_fsblock_t alloc_blocks) | |
76a4202a | 352 | { |
1a7ed271 | 353 | struct xfs_dquot *dq = xfs_inode_dquot(ip, type); |
76a4202a BF |
354 | |
355 | if (!dq || !xfs_this_quota_on(ip->i_mount, type)) | |
356 | return false; | |
357 | ||
358 | /* no hi watermark, no throttle */ | |
359 | if (!dq->q_prealloc_hi_wmark) | |
360 | return false; | |
361 | ||
362 | /* under the lo watermark, no throttle */ | |
784e80f5 | 363 | if (dq->q_blk.reserved + alloc_blocks < dq->q_prealloc_lo_wmark) |
76a4202a BF |
364 | return false; |
365 | ||
366 | return true; | |
367 | } | |
368 | ||
369 | STATIC void | |
370 | xfs_quota_calc_throttle( | |
1a7ed271 DW |
371 | struct xfs_inode *ip, |
372 | xfs_dqtype_t type, | |
373 | xfs_fsblock_t *qblocks, | |
374 | int *qshift, | |
375 | int64_t *qfreesp) | |
76a4202a | 376 | { |
1a7ed271 DW |
377 | struct xfs_dquot *dq = xfs_inode_dquot(ip, type); |
378 | int64_t freesp; | |
379 | int shift = 0; | |
76a4202a | 380 | |
5cca3f61 | 381 | /* no dq, or over hi wmark, squash the prealloc completely */ |
784e80f5 | 382 | if (!dq || dq->q_blk.reserved >= dq->q_prealloc_hi_wmark) { |
76a4202a | 383 | *qblocks = 0; |
f074051f | 384 | *qfreesp = 0; |
76a4202a BF |
385 | return; |
386 | } | |
387 | ||
784e80f5 | 388 | freesp = dq->q_prealloc_hi_wmark - dq->q_blk.reserved; |
76a4202a BF |
389 | if (freesp < dq->q_low_space[XFS_QLOWSP_5_PCNT]) { |
390 | shift = 2; | |
391 | if (freesp < dq->q_low_space[XFS_QLOWSP_3_PCNT]) | |
392 | shift += 2; | |
393 | if (freesp < dq->q_low_space[XFS_QLOWSP_1_PCNT]) | |
394 | shift += 2; | |
395 | } | |
396 | ||
f074051f BF |
397 | if (freesp < *qfreesp) |
398 | *qfreesp = freesp; | |
399 | ||
76a4202a BF |
400 | /* only overwrite the throttle values if we are more aggressive */ |
401 | if ((freesp >> shift) < (*qblocks >> *qshift)) { | |
402 | *qblocks = freesp; | |
403 | *qshift = shift; | |
404 | } | |
405 | } | |
406 | ||
055388a3 DC |
407 | /* |
408 | * If we don't have a user specified preallocation size, dynamically increase | |
51446f5b | 409 | * the preallocation size as the size of the file grows. Cap the maximum size |
055388a3 | 410 | * at a single extent or less if the filesystem is near full. The closer the |
590b1651 | 411 | * filesystem is to being full, the smaller the maximum preallocation. |
055388a3 DC |
412 | */ |
413 | STATIC xfs_fsblock_t | |
414 | xfs_iomap_prealloc_size( | |
a1e16c26 | 415 | struct xfs_inode *ip, |
66ae56a5 | 416 | int whichfork, |
51446f5b CH |
417 | loff_t offset, |
418 | loff_t count, | |
b2b1712a | 419 | struct xfs_iext_cursor *icur) |
055388a3 | 420 | { |
f0322c7c DW |
421 | struct xfs_iext_cursor ncur = *icur; |
422 | struct xfs_bmbt_irec prev, got; | |
51446f5b | 423 | struct xfs_mount *mp = ip->i_mount; |
732436ef | 424 | struct xfs_ifork *ifp = xfs_ifork_ptr(ip, whichfork); |
51446f5b | 425 | xfs_fileoff_t offset_fsb = XFS_B_TO_FSBT(mp, offset); |
3c58b5f8 | 426 | int64_t freesp; |
76a4202a | 427 | xfs_fsblock_t qblocks; |
51446f5b | 428 | xfs_fsblock_t alloc_blocks = 0; |
f0322c7c DW |
429 | xfs_extlen_t plen; |
430 | int shift = 0; | |
431 | int qshift = 0; | |
51446f5b | 432 | |
590b1651 DW |
433 | /* |
434 | * As an exception we don't do any preallocation at all if the file is | |
435 | * smaller than the minimum preallocation and we are using the default | |
436 | * dynamic preallocation scheme, as it is likely this is the only write | |
437 | * to the file that is going to be done. | |
438 | */ | |
439 | if (XFS_ISIZE(ip) < XFS_FSB_TO_B(mp, mp->m_allocsize_blocks)) | |
51446f5b CH |
440 | return 0; |
441 | ||
442 | /* | |
590b1651 DW |
443 | * Use the minimum preallocation size for small files or if we are |
444 | * writing right after a hole. | |
51446f5b | 445 | */ |
590b1651 | 446 | if (XFS_ISIZE(ip) < XFS_FSB_TO_B(mp, mp->m_dalign) || |
f0322c7c | 447 | !xfs_iext_prev_extent(ifp, &ncur, &prev) || |
656152e5 | 448 | prev.br_startoff + prev.br_blockcount < offset_fsb) |
5da8a07c | 449 | return mp->m_allocsize_blocks; |
055388a3 | 450 | |
51446f5b | 451 | /* |
590b1651 DW |
452 | * Take the size of the preceding data extents as the basis for the |
453 | * preallocation size. Note that we don't care if the previous extents | |
454 | * are written or not. | |
51446f5b | 455 | */ |
f0322c7c DW |
456 | plen = prev.br_blockcount; |
457 | while (xfs_iext_prev_extent(ifp, &ncur, &got)) { | |
95f0b95e | 458 | if (plen > XFS_MAX_BMBT_EXTLEN / 2 || |
f0322c7c DW |
459 | isnullstartblock(got.br_startblock) || |
460 | got.br_startoff + got.br_blockcount != prev.br_startoff || | |
461 | got.br_startblock + got.br_blockcount != prev.br_startblock) | |
462 | break; | |
463 | plen += got.br_blockcount; | |
464 | prev = got; | |
465 | } | |
590b1651 DW |
466 | |
467 | /* | |
468 | * If the size of the extents is greater than half the maximum extent | |
469 | * length, then use the current offset as the basis. This ensures that | |
95f0b95e CB |
470 | * for large files the preallocation size always extends to |
471 | * XFS_BMBT_MAX_EXTLEN rather than falling short due to things like stripe | |
472 | * unit/width alignment of real extents. | |
590b1651 | 473 | */ |
f0322c7c | 474 | alloc_blocks = plen * 2; |
95f0b95e | 475 | if (alloc_blocks > XFS_MAX_BMBT_EXTLEN) |
51446f5b | 476 | alloc_blocks = XFS_B_TO_FSB(mp, offset); |
76a4202a | 477 | qblocks = alloc_blocks; |
3c58b5f8 | 478 | |
c9bdbdc0 | 479 | /* |
95f0b95e CB |
480 | * XFS_BMBT_MAX_EXTLEN is not a power of two value but we round the prealloc |
481 | * down to the nearest power of two value after throttling. To prevent | |
482 | * the round down from unconditionally reducing the maximum supported | |
483 | * prealloc size, we round up first, apply appropriate throttling, round | |
484 | * down and cap the value to XFS_BMBT_MAX_EXTLEN. | |
c9bdbdc0 | 485 | */ |
95f0b95e | 486 | alloc_blocks = XFS_FILEOFF_MIN(roundup_pow_of_two(XFS_MAX_BMBT_EXTLEN), |
c9bdbdc0 | 487 | alloc_blocks); |
3c58b5f8 | 488 | |
0d485ada | 489 | freesp = percpu_counter_read_positive(&mp->m_fdblocks); |
3c58b5f8 BF |
490 | if (freesp < mp->m_low_space[XFS_LOWSP_5_PCNT]) { |
491 | shift = 2; | |
492 | if (freesp < mp->m_low_space[XFS_LOWSP_4_PCNT]) | |
493 | shift++; | |
494 | if (freesp < mp->m_low_space[XFS_LOWSP_3_PCNT]) | |
495 | shift++; | |
496 | if (freesp < mp->m_low_space[XFS_LOWSP_2_PCNT]) | |
497 | shift++; | |
498 | if (freesp < mp->m_low_space[XFS_LOWSP_1_PCNT]) | |
499 | shift++; | |
055388a3 | 500 | } |
76a4202a BF |
501 | |
502 | /* | |
f074051f BF |
503 | * Check each quota to cap the prealloc size, provide a shift value to |
504 | * throttle with and adjust amount of available space. | |
76a4202a | 505 | */ |
8cd4901d DW |
506 | if (xfs_quota_need_throttle(ip, XFS_DQTYPE_USER, alloc_blocks)) |
507 | xfs_quota_calc_throttle(ip, XFS_DQTYPE_USER, &qblocks, &qshift, | |
f074051f | 508 | &freesp); |
8cd4901d DW |
509 | if (xfs_quota_need_throttle(ip, XFS_DQTYPE_GROUP, alloc_blocks)) |
510 | xfs_quota_calc_throttle(ip, XFS_DQTYPE_GROUP, &qblocks, &qshift, | |
f074051f | 511 | &freesp); |
8cd4901d DW |
512 | if (xfs_quota_need_throttle(ip, XFS_DQTYPE_PROJ, alloc_blocks)) |
513 | xfs_quota_calc_throttle(ip, XFS_DQTYPE_PROJ, &qblocks, &qshift, | |
f074051f | 514 | &freesp); |
76a4202a BF |
515 | |
516 | /* | |
517 | * The final prealloc size is set to the minimum of free space available | |
518 | * in each of the quotas and the overall filesystem. | |
519 | * | |
520 | * The shift throttle value is set to the maximum value as determined by | |
521 | * the global low free space values and per-quota low free space values. | |
522 | */ | |
9bb54cb5 DC |
523 | alloc_blocks = min(alloc_blocks, qblocks); |
524 | shift = max(shift, qshift); | |
76a4202a | 525 | |
3c58b5f8 BF |
526 | if (shift) |
527 | alloc_blocks >>= shift; | |
c9bdbdc0 BF |
528 | /* |
529 | * rounddown_pow_of_two() returns an undefined result if we pass in | |
530 | * alloc_blocks = 0. | |
531 | */ | |
532 | if (alloc_blocks) | |
533 | alloc_blocks = rounddown_pow_of_two(alloc_blocks); | |
95f0b95e CB |
534 | if (alloc_blocks > XFS_MAX_BMBT_EXTLEN) |
535 | alloc_blocks = XFS_MAX_BMBT_EXTLEN; | |
3c58b5f8 BF |
536 | |
537 | /* | |
538 | * If we are still trying to allocate more space than is | |
539 | * available, squash the prealloc hard. This can happen if we | |
540 | * have a large file on a small filesystem and the above | |
95f0b95e | 541 | * lowspace thresholds are smaller than XFS_BMBT_MAX_EXTLEN. |
3c58b5f8 BF |
542 | */ |
543 | while (alloc_blocks && alloc_blocks >= freesp) | |
544 | alloc_blocks >>= 4; | |
5da8a07c CH |
545 | if (alloc_blocks < mp->m_allocsize_blocks) |
546 | alloc_blocks = mp->m_allocsize_blocks; | |
19cb7e38 | 547 | trace_xfs_iomap_prealloc_size(ip, alloc_blocks, shift, |
5da8a07c | 548 | mp->m_allocsize_blocks); |
055388a3 DC |
549 | return alloc_blocks; |
550 | } | |
551 | ||
1da177e4 LT |
552 | int |
553 | xfs_iomap_write_unwritten( | |
554 | xfs_inode_t *ip, | |
f403b7f4 | 555 | xfs_off_t offset, |
ee70daab EG |
556 | xfs_off_t count, |
557 | bool update_isize) | |
1da177e4 LT |
558 | { |
559 | xfs_mount_t *mp = ip->i_mount; | |
1da177e4 LT |
560 | xfs_fileoff_t offset_fsb; |
561 | xfs_filblks_t count_fsb; | |
562 | xfs_filblks_t numblks_fsb; | |
dd9f438e NS |
563 | int nimaps; |
564 | xfs_trans_t *tp; | |
565 | xfs_bmbt_irec_t imap; | |
ee70daab | 566 | struct inode *inode = VFS_I(ip); |
84803fb7 | 567 | xfs_fsize_t i_size; |
dd9f438e | 568 | uint resblks; |
1da177e4 | 569 | int error; |
1da177e4 | 570 | |
0b1b213f | 571 | trace_xfs_unwritten_convert(ip, offset, count); |
1da177e4 LT |
572 | |
573 | offset_fsb = XFS_B_TO_FSBT(mp, offset); | |
574 | count_fsb = XFS_B_TO_FSB(mp, (xfs_ufsize_t)offset + count); | |
575 | count_fsb = (xfs_filblks_t)(count_fsb - offset_fsb); | |
576 | ||
4ddd8bb1 LM |
577 | /* |
578 | * Reserve enough blocks in this transaction for two complete extent | |
579 | * btree splits. We may be converting the middle part of an unwritten | |
580 | * extent and in this case we will insert two new extents in the btree | |
581 | * each of which could cause a full split. | |
582 | * | |
583 | * This reservation amount will be used in the first call to | |
584 | * xfs_bmbt_split() to select an AG with enough space to satisfy the | |
585 | * rest of the operation. | |
586 | */ | |
dd9f438e | 587 | resblks = XFS_DIOSTRAT_SPACE_RES(mp, 0) << 1; |
1da177e4 | 588 | |
2815a16d DW |
589 | /* Attach dquots so that bmbt splits are accounted correctly. */ |
590 | error = xfs_qm_dqattach(ip); | |
591 | if (error) | |
592 | return error; | |
593 | ||
dd9f438e | 594 | do { |
1da177e4 | 595 | /* |
253f4911 | 596 | * Set up a transaction to convert the range of extents |
1da177e4 LT |
597 | * from unwritten to real. Do allocations in a loop until |
598 | * we have covered the range passed in. | |
80641dc6 | 599 | * |
253f4911 CH |
600 | * Note that we can't risk to recursing back into the filesystem |
601 | * here as we might be asked to write out the same inode that we | |
602 | * complete here and might deadlock on the iolock. | |
1da177e4 | 603 | */ |
3a1af6c3 | 604 | error = xfs_trans_alloc_inode(ip, &M_RES(mp)->tr_write, resblks, |
3de4eb10 | 605 | 0, true, &tp); |
253f4911 | 606 | if (error) |
b474c7ae | 607 | return error; |
1da177e4 | 608 | |
c442f308 CB |
609 | error = xfs_iext_count_may_overflow(ip, XFS_DATA_FORK, |
610 | XFS_IEXT_WRITE_UNWRITTEN_CNT); | |
4f86bb4b CB |
611 | if (error == -EFBIG) |
612 | error = xfs_iext_count_upgrade(tp, ip, | |
613 | XFS_IEXT_WRITE_UNWRITTEN_CNT); | |
2815a16d DW |
614 | if (error) |
615 | goto error_on_bmapi_transaction; | |
616 | ||
1da177e4 LT |
617 | /* |
618 | * Modify the unwritten extent state of the buffer. | |
619 | */ | |
1da177e4 | 620 | nimaps = 1; |
c0dc7828 | 621 | error = xfs_bmapi_write(tp, ip, offset_fsb, count_fsb, |
a7beabea BF |
622 | XFS_BMAPI_CONVERT, resblks, &imap, |
623 | &nimaps); | |
1da177e4 LT |
624 | if (error) |
625 | goto error_on_bmapi_transaction; | |
626 | ||
84803fb7 CH |
627 | /* |
628 | * Log the updated inode size as we go. We have to be careful | |
629 | * to only log it up to the actual write offset if it is | |
630 | * halfway into a block. | |
631 | */ | |
632 | i_size = XFS_FSB_TO_B(mp, offset_fsb + count_fsb); | |
633 | if (i_size > offset + count) | |
634 | i_size = offset + count; | |
ee70daab EG |
635 | if (update_isize && i_size > i_size_read(inode)) |
636 | i_size_write(inode, i_size); | |
84803fb7 CH |
637 | i_size = xfs_new_eof(ip, i_size); |
638 | if (i_size) { | |
13d2c10b | 639 | ip->i_disk_size = i_size; |
84803fb7 CH |
640 | xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE); |
641 | } | |
642 | ||
70393313 | 643 | error = xfs_trans_commit(tp); |
1da177e4 LT |
644 | xfs_iunlock(ip, XFS_ILOCK_EXCL); |
645 | if (error) | |
b474c7ae | 646 | return error; |
572d95f4 | 647 | |
1196f3f5 DW |
648 | if (unlikely(!xfs_valid_startblock(ip, imap.br_startblock))) { |
649 | xfs_bmap_mark_sick(ip, XFS_DATA_FORK); | |
6d4a8ecb | 650 | return xfs_alert_fsblock_zero(ip, &imap); |
1196f3f5 | 651 | } |
1da177e4 LT |
652 | |
653 | if ((numblks_fsb = imap.br_blockcount) == 0) { | |
654 | /* | |
655 | * The numblks_fsb value should always get | |
656 | * smaller, otherwise the loop is stuck. | |
657 | */ | |
658 | ASSERT(imap.br_blockcount); | |
659 | break; | |
660 | } | |
661 | offset_fsb += numblks_fsb; | |
662 | count_fsb -= numblks_fsb; | |
663 | } while (count_fsb > 0); | |
664 | ||
665 | return 0; | |
666 | ||
667 | error_on_bmapi_transaction: | |
4906e215 | 668 | xfs_trans_cancel(tp); |
1da177e4 | 669 | xfs_iunlock(ip, XFS_ILOCK_EXCL); |
b474c7ae | 670 | return error; |
1da177e4 | 671 | } |
3b3dce05 | 672 | |
dfa03a5f DC |
673 | static inline bool |
674 | imap_needs_alloc( | |
675 | struct inode *inode, | |
5c5b6f75 | 676 | unsigned flags, |
dfa03a5f DC |
677 | struct xfs_bmbt_irec *imap, |
678 | int nimaps) | |
68a9f5e7 | 679 | { |
5c5b6f75 CH |
680 | /* don't allocate blocks when just zeroing */ |
681 | if (flags & IOMAP_ZERO) | |
682 | return false; | |
683 | if (!nimaps || | |
684 | imap->br_startblock == HOLESTARTBLOCK || | |
685 | imap->br_startblock == DELAYSTARTBLOCK) | |
686 | return true; | |
687 | /* we convert unwritten extents before copying the data for DAX */ | |
952da063 | 688 | if ((flags & IOMAP_DAX) && imap->br_state == XFS_EXT_UNWRITTEN) |
5c5b6f75 CH |
689 | return true; |
690 | return false; | |
68a9f5e7 CH |
691 | } |
692 | ||
dfa03a5f | 693 | static inline bool |
5c5b6f75 CH |
694 | imap_needs_cow( |
695 | struct xfs_inode *ip, | |
696 | unsigned int flags, | |
dfa03a5f DC |
697 | struct xfs_bmbt_irec *imap, |
698 | int nimaps) | |
172ed391 | 699 | { |
5c5b6f75 CH |
700 | if (!xfs_is_cow_inode(ip)) |
701 | return false; | |
702 | ||
703 | /* when zeroing we don't have to COW holes or unwritten extents */ | |
704 | if (flags & IOMAP_ZERO) { | |
705 | if (!nimaps || | |
706 | imap->br_startblock == HOLESTARTBLOCK || | |
707 | imap->br_state == XFS_EXT_UNWRITTEN) | |
708 | return false; | |
709 | } | |
710 | ||
711 | return true; | |
172ed391 CH |
712 | } |
713 | ||
dfa03a5f DC |
714 | static int |
715 | xfs_ilock_for_iomap( | |
716 | struct xfs_inode *ip, | |
717 | unsigned flags, | |
718 | unsigned *lockmode) | |
acdda3aa | 719 | { |
9641506b | 720 | unsigned int mode = *lockmode; |
5bd88d15 | 721 | bool is_write = flags & (IOMAP_WRITE | IOMAP_ZERO); |
dfa03a5f | 722 | |
acdda3aa | 723 | /* |
af5b5afe CH |
724 | * COW writes may allocate delalloc space or convert unwritten COW |
725 | * extents, so we need to make sure to take the lock exclusively here. | |
acdda3aa | 726 | */ |
1e190f8e | 727 | if (xfs_is_cow_inode(ip) && is_write) |
dfa03a5f | 728 | mode = XFS_ILOCK_EXCL; |
ff3d8b9c CH |
729 | |
730 | /* | |
dfa03a5f DC |
731 | * Extents not yet cached requires exclusive access, don't block. This |
732 | * is an opencoded xfs_ilock_data_map_shared() call but with | |
ff3d8b9c CH |
733 | * non-blocking behaviour. |
734 | */ | |
b2197a36 | 735 | if (xfs_need_iread_extents(&ip->i_df)) { |
dfa03a5f DC |
736 | if (flags & IOMAP_NOWAIT) |
737 | return -EAGAIN; | |
738 | mode = XFS_ILOCK_EXCL; | |
739 | } | |
740 | ||
5bd88d15 | 741 | relock: |
dfa03a5f DC |
742 | if (flags & IOMAP_NOWAIT) { |
743 | if (!xfs_ilock_nowait(ip, mode)) | |
744 | return -EAGAIN; | |
745 | } else { | |
746 | xfs_ilock(ip, mode); | |
747 | } | |
748 | ||
5bd88d15 DW |
749 | /* |
750 | * The reflink iflag could have changed since the earlier unlocked | |
751 | * check, so if we got ILOCK_SHARED for a write and but we're now a | |
752 | * reflink inode we have to switch to ILOCK_EXCL and relock. | |
753 | */ | |
66ae56a5 | 754 | if (mode == XFS_ILOCK_SHARED && is_write && xfs_is_cow_inode(ip)) { |
5bd88d15 DW |
755 | xfs_iunlock(ip, mode); |
756 | mode = XFS_ILOCK_EXCL; | |
757 | goto relock; | |
758 | } | |
759 | ||
dfa03a5f DC |
760 | *lockmode = mode; |
761 | return 0; | |
acdda3aa CH |
762 | } |
763 | ||
883a790a DC |
764 | /* |
765 | * Check that the imap we are going to return to the caller spans the entire | |
766 | * range that the caller requested for the IO. | |
767 | */ | |
768 | static bool | |
769 | imap_spans_range( | |
770 | struct xfs_bmbt_irec *imap, | |
771 | xfs_fileoff_t offset_fsb, | |
772 | xfs_fileoff_t end_fsb) | |
773 | { | |
774 | if (imap->br_startoff > offset_fsb) | |
775 | return false; | |
776 | if (imap->br_startoff + imap->br_blockcount < end_fsb) | |
777 | return false; | |
778 | return true; | |
779 | } | |
780 | ||
a526c85c | 781 | static int |
f150b423 | 782 | xfs_direct_write_iomap_begin( |
68a9f5e7 CH |
783 | struct inode *inode, |
784 | loff_t offset, | |
785 | loff_t length, | |
786 | unsigned flags, | |
c039b997 GR |
787 | struct iomap *iomap, |
788 | struct iomap *srcmap) | |
68a9f5e7 CH |
789 | { |
790 | struct xfs_inode *ip = XFS_I(inode); | |
791 | struct xfs_mount *mp = ip->i_mount; | |
36adcbac | 792 | struct xfs_bmbt_irec imap, cmap; |
43568226 CH |
793 | xfs_fileoff_t offset_fsb = XFS_B_TO_FSBT(mp, offset); |
794 | xfs_fileoff_t end_fsb = xfs_iomap_end_fsb(mp, offset, length); | |
68a9f5e7 | 795 | int nimaps = 1, error = 0; |
d392bc81 | 796 | bool shared = false; |
2492a606 | 797 | u16 iomap_flags = 0; |
9641506b | 798 | unsigned int lockmode = XFS_ILOCK_SHARED; |
304a68b9 | 799 | u64 seq; |
68a9f5e7 | 800 | |
690c2a38 CH |
801 | ASSERT(flags & (IOMAP_WRITE | IOMAP_ZERO)); |
802 | ||
75c8c50f | 803 | if (xfs_is_shutdown(mp)) |
68a9f5e7 CH |
804 | return -EIO; |
805 | ||
5c5b6f75 CH |
806 | /* |
807 | * Writes that span EOF might trigger an IO size update on completion, | |
808 | * so consider them to be dirty for the purposes of O_DSYNC even if | |
809 | * there is no other metadata changes pending or have been made here. | |
810 | */ | |
811 | if (offset + length > i_size_read(inode)) | |
812 | iomap_flags |= IOMAP_F_DIRTY; | |
813 | ||
dfa03a5f DC |
814 | error = xfs_ilock_for_iomap(ip, flags, &lockmode); |
815 | if (error) | |
816 | return error; | |
29a5d29e | 817 | |
68a9f5e7 | 818 | error = xfs_bmapi_read(ip, offset_fsb, end_fsb - offset_fsb, &imap, |
db1327b1 | 819 | &nimaps, 0); |
3ba020be CH |
820 | if (error) |
821 | goto out_unlock; | |
db1327b1 | 822 | |
5c5b6f75 | 823 | if (imap_needs_cow(ip, flags, &imap, nimaps)) { |
1e190f8e CH |
824 | error = -EAGAIN; |
825 | if (flags & IOMAP_NOWAIT) | |
826 | goto out_unlock; | |
827 | ||
78f0cc9d | 828 | /* may drop and re-acquire the ilock */ |
ffb375a8 | 829 | error = xfs_reflink_allocate_cow(ip, &imap, &cmap, &shared, |
ea6c49b7 SR |
830 | &lockmode, |
831 | (flags & IOMAP_DIRECT) || IS_DAX(inode)); | |
78f0cc9d CH |
832 | if (error) |
833 | goto out_unlock; | |
36adcbac CH |
834 | if (shared) |
835 | goto out_found_cow; | |
3ba020be CH |
836 | end_fsb = imap.br_startoff + imap.br_blockcount; |
837 | length = XFS_FSB_TO_B(mp, end_fsb) - offset; | |
68a9f5e7 CH |
838 | } |
839 | ||
5c5b6f75 CH |
840 | if (imap_needs_alloc(inode, flags, &imap, nimaps)) |
841 | goto allocate_blocks; | |
68a9f5e7 | 842 | |
883a790a | 843 | /* |
ed1128c2 DC |
844 | * NOWAIT and OVERWRITE I/O needs to span the entire requested I/O with |
845 | * a single map so that we avoid partial IO failures due to the rest of | |
846 | * the I/O range not covered by this map triggering an EAGAIN condition | |
847 | * when it is subsequently mapped and aborting the I/O. | |
883a790a | 848 | */ |
ed1128c2 | 849 | if (flags & (IOMAP_NOWAIT | IOMAP_OVERWRITE_ONLY)) { |
883a790a | 850 | error = -EAGAIN; |
ed1128c2 DC |
851 | if (!imap_spans_range(&imap, offset_fsb, end_fsb)) |
852 | goto out_unlock; | |
853 | } | |
854 | ||
855 | /* | |
856 | * For overwrite only I/O, we cannot convert unwritten extents without | |
857 | * requiring sub-block zeroing. This can only be done under an | |
858 | * exclusive IOLOCK, hence return -EAGAIN if this is not a written | |
859 | * extent to tell the caller to try again. | |
860 | */ | |
861 | if (flags & IOMAP_OVERWRITE_ONLY) { | |
862 | error = -EAGAIN; | |
863 | if (imap.br_state != XFS_EXT_NORM && | |
864 | ((offset | length) & mp->m_blockmask)) | |
865 | goto out_unlock; | |
883a790a DC |
866 | } |
867 | ||
304a68b9 | 868 | seq = xfs_iomap_inode_sequence(ip, iomap_flags); |
5c5b6f75 CH |
869 | xfs_iunlock(ip, lockmode); |
870 | trace_xfs_iomap_found(ip, offset, length, XFS_DATA_FORK, &imap); | |
304a68b9 | 871 | return xfs_bmbt_to_iomap(ip, iomap, &imap, flags, iomap_flags, seq); |
b95a2127 | 872 | |
5c5b6f75 CH |
873 | allocate_blocks: |
874 | error = -EAGAIN; | |
ed1128c2 | 875 | if (flags & (IOMAP_NOWAIT | IOMAP_OVERWRITE_ONLY)) |
d0641780 | 876 | goto out_unlock; |
68a9f5e7 | 877 | |
d0641780 DC |
878 | /* |
879 | * We cap the maximum length we map to a sane size to keep the chunks | |
880 | * of work done where somewhat symmetric with the work writeback does. | |
881 | * This is a completely arbitrary number pulled out of thin air as a | |
882 | * best guess for initial testing. | |
883 | * | |
884 | * Note that the values needs to be less than 32-bits wide until the | |
885 | * lower level functions are updated. | |
886 | */ | |
887 | length = min_t(loff_t, length, 1024 * PAGE_SIZE); | |
e696663a | 888 | end_fsb = xfs_iomap_end_fsb(mp, offset, length); |
d0641780 | 889 | |
e696663a CH |
890 | if (offset + length > XFS_ISIZE(ip)) |
891 | end_fsb = xfs_iomap_eof_align_last_fsb(ip, end_fsb); | |
892 | else if (nimaps && imap.br_startblock == HOLESTARTBLOCK) | |
893 | end_fsb = min(end_fsb, imap.br_startoff + imap.br_blockcount); | |
894 | xfs_iunlock(ip, lockmode); | |
895 | ||
896 | error = xfs_iomap_write_direct(ip, offset_fsb, end_fsb - offset_fsb, | |
304a68b9 | 897 | flags, &imap, &seq); |
d0641780 DC |
898 | if (error) |
899 | return error; | |
900 | ||
be225fec | 901 | trace_xfs_iomap_alloc(ip, offset, length, XFS_DATA_FORK, &imap); |
740fd671 | 902 | return xfs_bmbt_to_iomap(ip, iomap, &imap, flags, |
304a68b9 | 903 | iomap_flags | IOMAP_F_NEW, seq); |
d0641780 | 904 | |
36adcbac | 905 | out_found_cow: |
36adcbac CH |
906 | length = XFS_FSB_TO_B(mp, cmap.br_startoff + cmap.br_blockcount); |
907 | trace_xfs_iomap_found(ip, offset, length - offset, XFS_COW_FORK, &cmap); | |
908 | if (imap.br_startblock != HOLESTARTBLOCK) { | |
304a68b9 DC |
909 | seq = xfs_iomap_inode_sequence(ip, 0); |
910 | error = xfs_bmbt_to_iomap(ip, srcmap, &imap, flags, 0, seq); | |
36adcbac | 911 | if (error) |
304a68b9 | 912 | goto out_unlock; |
36adcbac | 913 | } |
304a68b9 DC |
914 | seq = xfs_iomap_inode_sequence(ip, IOMAP_F_SHARED); |
915 | xfs_iunlock(ip, lockmode); | |
916 | return xfs_bmbt_to_iomap(ip, iomap, &cmap, flags, IOMAP_F_SHARED, seq); | |
36adcbac | 917 | |
3ba020be | 918 | out_unlock: |
f273387b DW |
919 | if (lockmode) |
920 | xfs_iunlock(ip, lockmode); | |
3ba020be | 921 | return error; |
68a9f5e7 CH |
922 | } |
923 | ||
f150b423 CH |
924 | const struct iomap_ops xfs_direct_write_iomap_ops = { |
925 | .iomap_begin = xfs_direct_write_iomap_begin, | |
926 | }; | |
927 | ||
ea6c49b7 SR |
928 | static int |
929 | xfs_dax_write_iomap_end( | |
930 | struct inode *inode, | |
931 | loff_t pos, | |
932 | loff_t length, | |
933 | ssize_t written, | |
934 | unsigned flags, | |
935 | struct iomap *iomap) | |
936 | { | |
937 | struct xfs_inode *ip = XFS_I(inode); | |
938 | ||
939 | if (!xfs_is_cow_inode(ip)) | |
940 | return 0; | |
941 | ||
942 | if (!written) { | |
943 | xfs_reflink_cancel_cow_range(ip, pos, length, true); | |
944 | return 0; | |
945 | } | |
946 | ||
947 | return xfs_reflink_end_cow(ip, pos, written); | |
948 | } | |
949 | ||
950 | const struct iomap_ops xfs_dax_write_iomap_ops = { | |
951 | .iomap_begin = xfs_direct_write_iomap_begin, | |
952 | .iomap_end = xfs_dax_write_iomap_end, | |
953 | }; | |
954 | ||
a526c85c | 955 | static int |
f150b423 | 956 | xfs_buffered_write_iomap_begin( |
a526c85c CH |
957 | struct inode *inode, |
958 | loff_t offset, | |
959 | loff_t count, | |
960 | unsigned flags, | |
961 | struct iomap *iomap, | |
962 | struct iomap *srcmap) | |
963 | { | |
964 | struct xfs_inode *ip = XFS_I(inode); | |
965 | struct xfs_mount *mp = ip->i_mount; | |
966 | xfs_fileoff_t offset_fsb = XFS_B_TO_FSBT(mp, offset); | |
967 | xfs_fileoff_t end_fsb = xfs_iomap_end_fsb(mp, offset, count); | |
968 | struct xfs_bmbt_irec imap, cmap; | |
969 | struct xfs_iext_cursor icur, ccur; | |
970 | xfs_fsblock_t prealloc_blocks = 0; | |
971 | bool eof = false, cow_eof = false, shared = false; | |
12dfb58a | 972 | int allocfork = XFS_DATA_FORK; |
a526c85c | 973 | int error = 0; |
1aa91d9c | 974 | unsigned int lockmode = XFS_ILOCK_EXCL; |
304a68b9 | 975 | u64 seq; |
a526c85c | 976 | |
75c8c50f | 977 | if (xfs_is_shutdown(mp)) |
e4826691 BF |
978 | return -EIO; |
979 | ||
f150b423 CH |
980 | /* we can't use delayed allocations when using extent size hints */ |
981 | if (xfs_get_extsz_hint(ip)) | |
982 | return xfs_direct_write_iomap_begin(inode, offset, count, | |
983 | flags, iomap, srcmap); | |
984 | ||
a526c85c | 985 | ASSERT(!XFS_IS_REALTIME_INODE(ip)); |
a526c85c | 986 | |
4c6dbfd2 DW |
987 | error = xfs_qm_dqattach(ip); |
988 | if (error) | |
989 | return error; | |
990 | ||
1aa91d9c SR |
991 | error = xfs_ilock_for_iomap(ip, flags, &lockmode); |
992 | if (error) | |
993 | return error; | |
a526c85c | 994 | |
f7e67b20 | 995 | if (XFS_IS_CORRUPT(mp, !xfs_ifork_has_extents(&ip->i_df)) || |
a71895c5 | 996 | XFS_TEST_ERROR(false, mp, XFS_ERRTAG_BMAPIFORMAT)) { |
1196f3f5 | 997 | xfs_bmap_mark_sick(ip, XFS_DATA_FORK); |
a526c85c CH |
998 | error = -EFSCORRUPTED; |
999 | goto out_unlock; | |
1000 | } | |
1001 | ||
1002 | XFS_STATS_INC(mp, xs_blk_mapw); | |
1003 | ||
862a804a CH |
1004 | error = xfs_iread_extents(NULL, ip, XFS_DATA_FORK); |
1005 | if (error) | |
1006 | goto out_unlock; | |
a526c85c CH |
1007 | |
1008 | /* | |
b63da6c8 | 1009 | * Search the data fork first to look up our source mapping. We |
a526c85c CH |
1010 | * always need the data fork map, as we have to return it to the |
1011 | * iomap code so that the higher level write code can read data in to | |
1012 | * perform read-modify-write cycles for unaligned writes. | |
1013 | */ | |
1014 | eof = !xfs_iext_lookup_extent(ip, &ip->i_df, offset_fsb, &icur, &imap); | |
1015 | if (eof) | |
1016 | imap.br_startoff = end_fsb; /* fake hole until the end */ | |
1017 | ||
1f1397b7 DW |
1018 | /* We never need to allocate blocks for zeroing or unsharing a hole. */ |
1019 | if ((flags & (IOMAP_UNSHARE | IOMAP_ZERO)) && | |
1020 | imap.br_startoff > offset_fsb) { | |
a526c85c CH |
1021 | xfs_hole_to_iomap(ip, iomap, offset_fsb, imap.br_startoff); |
1022 | goto out_unlock; | |
1023 | } | |
1024 | ||
1025 | /* | |
1026 | * Search the COW fork extent list even if we did not find a data fork | |
1027 | * extent. This serves two purposes: first this implements the | |
1028 | * speculative preallocation using cowextsize, so that we also unshare | |
1029 | * block adjacent to shared blocks instead of just the shared blocks | |
1030 | * themselves. Second the lookup in the extent list is generally faster | |
1031 | * than going out to the shared extent tree. | |
1032 | */ | |
1033 | if (xfs_is_cow_inode(ip)) { | |
1034 | if (!ip->i_cowfp) { | |
1035 | ASSERT(!xfs_is_reflink_inode(ip)); | |
1036 | xfs_ifork_init_cow(ip); | |
1037 | } | |
1038 | cow_eof = !xfs_iext_lookup_extent(ip, ip->i_cowfp, offset_fsb, | |
1039 | &ccur, &cmap); | |
1040 | if (!cow_eof && cmap.br_startoff <= offset_fsb) { | |
1041 | trace_xfs_reflink_cow_found(ip, &cmap); | |
1042 | goto found_cow; | |
1043 | } | |
1044 | } | |
1045 | ||
1046 | if (imap.br_startoff <= offset_fsb) { | |
1047 | /* | |
1048 | * For reflink files we may need a delalloc reservation when | |
1049 | * overwriting shared extents. This includes zeroing of | |
1050 | * existing extents that contain data. | |
1051 | */ | |
1052 | if (!xfs_is_cow_inode(ip) || | |
1053 | ((flags & IOMAP_ZERO) && imap.br_state != XFS_EXT_NORM)) { | |
1054 | trace_xfs_iomap_found(ip, offset, count, XFS_DATA_FORK, | |
1055 | &imap); | |
1056 | goto found_imap; | |
1057 | } | |
1058 | ||
1059 | xfs_trim_extent(&imap, offset_fsb, end_fsb - offset_fsb); | |
1060 | ||
1061 | /* Trim the mapping to the nearest shared extent boundary. */ | |
aa124436 | 1062 | error = xfs_bmap_trim_cow(ip, &imap, &shared); |
a526c85c CH |
1063 | if (error) |
1064 | goto out_unlock; | |
1065 | ||
1066 | /* Not shared? Just report the (potentially capped) extent. */ | |
1067 | if (!shared) { | |
1068 | trace_xfs_iomap_found(ip, offset, count, XFS_DATA_FORK, | |
1069 | &imap); | |
1070 | goto found_imap; | |
1071 | } | |
1072 | ||
1073 | /* | |
1074 | * Fork all the shared blocks from our write offset until the | |
1075 | * end of the extent. | |
1076 | */ | |
12dfb58a | 1077 | allocfork = XFS_COW_FORK; |
a526c85c CH |
1078 | end_fsb = imap.br_startoff + imap.br_blockcount; |
1079 | } else { | |
1080 | /* | |
1081 | * We cap the maximum length we map here to MAX_WRITEBACK_PAGES | |
1082 | * pages to keep the chunks of work done where somewhat | |
1083 | * symmetric with the work writeback does. This is a completely | |
1084 | * arbitrary number pulled out of thin air. | |
1085 | * | |
1086 | * Note that the values needs to be less than 32-bits wide until | |
1087 | * the lower level functions are updated. | |
1088 | */ | |
1089 | count = min_t(loff_t, count, 1024 * PAGE_SIZE); | |
1090 | end_fsb = xfs_iomap_end_fsb(mp, offset, count); | |
1091 | ||
1092 | if (xfs_is_always_cow_inode(ip)) | |
12dfb58a | 1093 | allocfork = XFS_COW_FORK; |
a526c85c CH |
1094 | } |
1095 | ||
590b1651 DW |
1096 | if (eof && offset + count > XFS_ISIZE(ip)) { |
1097 | /* | |
1098 | * Determine the initial size of the preallocation. | |
1099 | * We clean up any extra preallocation when the file is closed. | |
1100 | */ | |
0560f31a | 1101 | if (xfs_has_allocsize(mp)) |
590b1651 | 1102 | prealloc_blocks = mp->m_allocsize_blocks; |
fcde88af | 1103 | else if (allocfork == XFS_DATA_FORK) |
590b1651 DW |
1104 | prealloc_blocks = xfs_iomap_prealloc_size(ip, allocfork, |
1105 | offset, count, &icur); | |
fcde88af DW |
1106 | else |
1107 | prealloc_blocks = xfs_iomap_prealloc_size(ip, allocfork, | |
1108 | offset, count, &ccur); | |
a526c85c CH |
1109 | if (prealloc_blocks) { |
1110 | xfs_extlen_t align; | |
1111 | xfs_off_t end_offset; | |
1112 | xfs_fileoff_t p_end_fsb; | |
1113 | ||
5da8a07c | 1114 | end_offset = XFS_ALLOC_ALIGN(mp, offset + count - 1); |
a526c85c CH |
1115 | p_end_fsb = XFS_B_TO_FSBT(mp, end_offset) + |
1116 | prealloc_blocks; | |
1117 | ||
57c49444 | 1118 | align = xfs_eof_alignment(ip); |
a526c85c CH |
1119 | if (align) |
1120 | p_end_fsb = roundup_64(p_end_fsb, align); | |
1121 | ||
1122 | p_end_fsb = min(p_end_fsb, | |
1123 | XFS_B_TO_FSB(mp, mp->m_super->s_maxbytes)); | |
1124 | ASSERT(p_end_fsb > offset_fsb); | |
1125 | prealloc_blocks = p_end_fsb - end_fsb; | |
1126 | } | |
1127 | } | |
1128 | ||
1129 | retry: | |
12dfb58a | 1130 | error = xfs_bmapi_reserve_delalloc(ip, allocfork, offset_fsb, |
a526c85c | 1131 | end_fsb - offset_fsb, prealloc_blocks, |
12dfb58a CH |
1132 | allocfork == XFS_DATA_FORK ? &imap : &cmap, |
1133 | allocfork == XFS_DATA_FORK ? &icur : &ccur, | |
1134 | allocfork == XFS_DATA_FORK ? eof : cow_eof); | |
a526c85c CH |
1135 | switch (error) { |
1136 | case 0: | |
1137 | break; | |
1138 | case -ENOSPC: | |
1139 | case -EDQUOT: | |
1140 | /* retry without any preallocation */ | |
1141 | trace_xfs_delalloc_enospc(ip, offset, count); | |
1142 | if (prealloc_blocks) { | |
1143 | prealloc_blocks = 0; | |
1144 | goto retry; | |
1145 | } | |
53004ee7 | 1146 | fallthrough; |
a526c85c CH |
1147 | default: |
1148 | goto out_unlock; | |
1149 | } | |
1150 | ||
12dfb58a CH |
1151 | if (allocfork == XFS_COW_FORK) { |
1152 | trace_xfs_iomap_alloc(ip, offset, count, allocfork, &cmap); | |
a526c85c CH |
1153 | goto found_cow; |
1154 | } | |
1155 | ||
1156 | /* | |
1157 | * Flag newly allocated delalloc blocks with IOMAP_F_NEW so we punch | |
1158 | * them out if the write happens to fail. | |
1159 | */ | |
304a68b9 | 1160 | seq = xfs_iomap_inode_sequence(ip, IOMAP_F_NEW); |
a526c85c | 1161 | xfs_iunlock(ip, XFS_ILOCK_EXCL); |
12dfb58a | 1162 | trace_xfs_iomap_alloc(ip, offset, count, allocfork, &imap); |
304a68b9 | 1163 | return xfs_bmbt_to_iomap(ip, iomap, &imap, flags, IOMAP_F_NEW, seq); |
a526c85c CH |
1164 | |
1165 | found_imap: | |
304a68b9 | 1166 | seq = xfs_iomap_inode_sequence(ip, 0); |
a526c85c | 1167 | xfs_iunlock(ip, XFS_ILOCK_EXCL); |
304a68b9 | 1168 | return xfs_bmbt_to_iomap(ip, iomap, &imap, flags, 0, seq); |
a526c85c CH |
1169 | |
1170 | found_cow: | |
304a68b9 | 1171 | seq = xfs_iomap_inode_sequence(ip, 0); |
a526c85c | 1172 | if (imap.br_startoff <= offset_fsb) { |
304a68b9 | 1173 | error = xfs_bmbt_to_iomap(ip, srcmap, &imap, flags, 0, seq); |
a526c85c | 1174 | if (error) |
304a68b9 DC |
1175 | goto out_unlock; |
1176 | seq = xfs_iomap_inode_sequence(ip, IOMAP_F_SHARED); | |
1177 | xfs_iunlock(ip, XFS_ILOCK_EXCL); | |
740fd671 | 1178 | return xfs_bmbt_to_iomap(ip, iomap, &cmap, flags, |
304a68b9 | 1179 | IOMAP_F_SHARED, seq); |
a526c85c | 1180 | } |
72a048c1 DW |
1181 | |
1182 | xfs_trim_extent(&cmap, offset_fsb, imap.br_startoff - offset_fsb); | |
304a68b9 DC |
1183 | xfs_iunlock(ip, XFS_ILOCK_EXCL); |
1184 | return xfs_bmbt_to_iomap(ip, iomap, &cmap, flags, 0, seq); | |
a526c85c CH |
1185 | |
1186 | out_unlock: | |
1187 | xfs_iunlock(ip, XFS_ILOCK_EXCL); | |
1188 | return error; | |
1189 | } | |
1190 | ||
b71f889c DC |
1191 | static int |
1192 | xfs_buffered_write_delalloc_punch( | |
1193 | struct inode *inode, | |
9c7babf9 DC |
1194 | loff_t offset, |
1195 | loff_t length) | |
b71f889c | 1196 | { |
7348b322 DC |
1197 | return xfs_bmap_punch_delalloc_range(XFS_I(inode), offset, |
1198 | offset + length); | |
b71f889c DC |
1199 | } |
1200 | ||
68a9f5e7 | 1201 | static int |
f150b423 CH |
1202 | xfs_buffered_write_iomap_end( |
1203 | struct inode *inode, | |
68a9f5e7 CH |
1204 | loff_t offset, |
1205 | loff_t length, | |
f65e6fad | 1206 | ssize_t written, |
f150b423 | 1207 | unsigned flags, |
f65e6fad | 1208 | struct iomap *iomap) |
68a9f5e7 | 1209 | { |
9dbddd7b | 1210 | |
9c7babf9 DC |
1211 | struct xfs_mount *mp = XFS_M(inode->i_sb); |
1212 | int error; | |
68a9f5e7 | 1213 | |
9c7babf9 DC |
1214 | error = iomap_file_buffered_write_punch_delalloc(inode, iomap, offset, |
1215 | length, written, &xfs_buffered_write_delalloc_punch); | |
198dd8ae | 1216 | if (error && !xfs_is_shutdown(mp)) { |
b71f889c DC |
1217 | xfs_alert(mp, "%s: unable to clean up ino 0x%llx", |
1218 | __func__, XFS_I(inode)->i_ino); | |
198dd8ae | 1219 | return error; |
68a9f5e7 | 1220 | } |
68a9f5e7 CH |
1221 | return 0; |
1222 | } | |
1223 | ||
f150b423 CH |
1224 | const struct iomap_ops xfs_buffered_write_iomap_ops = { |
1225 | .iomap_begin = xfs_buffered_write_iomap_begin, | |
1226 | .iomap_end = xfs_buffered_write_iomap_end, | |
68a9f5e7 | 1227 | }; |
1d4795e7 | 1228 | |
118e021b DC |
1229 | /* |
1230 | * iomap_page_mkwrite() will never fail in a way that requires delalloc extents | |
1231 | * that it allocated to be revoked. Hence we do not need an .iomap_end method | |
1232 | * for this operation. | |
1233 | */ | |
1234 | const struct iomap_ops xfs_page_mkwrite_iomap_ops = { | |
1235 | .iomap_begin = xfs_buffered_write_iomap_begin, | |
1236 | }; | |
1237 | ||
690c2a38 CH |
1238 | static int |
1239 | xfs_read_iomap_begin( | |
1240 | struct inode *inode, | |
1241 | loff_t offset, | |
1242 | loff_t length, | |
1243 | unsigned flags, | |
1244 | struct iomap *iomap, | |
1245 | struct iomap *srcmap) | |
1246 | { | |
1247 | struct xfs_inode *ip = XFS_I(inode); | |
1248 | struct xfs_mount *mp = ip->i_mount; | |
1249 | struct xfs_bmbt_irec imap; | |
1250 | xfs_fileoff_t offset_fsb = XFS_B_TO_FSBT(mp, offset); | |
1251 | xfs_fileoff_t end_fsb = xfs_iomap_end_fsb(mp, offset, length); | |
1252 | int nimaps = 1, error = 0; | |
1253 | bool shared = false; | |
9641506b | 1254 | unsigned int lockmode = XFS_ILOCK_SHARED; |
304a68b9 | 1255 | u64 seq; |
690c2a38 CH |
1256 | |
1257 | ASSERT(!(flags & (IOMAP_WRITE | IOMAP_ZERO))); | |
1258 | ||
75c8c50f | 1259 | if (xfs_is_shutdown(mp)) |
690c2a38 CH |
1260 | return -EIO; |
1261 | ||
1262 | error = xfs_ilock_for_iomap(ip, flags, &lockmode); | |
1263 | if (error) | |
1264 | return error; | |
1265 | error = xfs_bmapi_read(ip, offset_fsb, end_fsb - offset_fsb, &imap, | |
1266 | &nimaps, 0); | |
c6f0b395 | 1267 | if (!error && ((flags & IOMAP_REPORT) || IS_DAX(inode))) |
690c2a38 | 1268 | error = xfs_reflink_trim_around_shared(ip, &imap, &shared); |
304a68b9 | 1269 | seq = xfs_iomap_inode_sequence(ip, shared ? IOMAP_F_SHARED : 0); |
690c2a38 CH |
1270 | xfs_iunlock(ip, lockmode); |
1271 | ||
1272 | if (error) | |
1273 | return error; | |
1274 | trace_xfs_iomap_found(ip, offset, length, XFS_DATA_FORK, &imap); | |
740fd671 | 1275 | return xfs_bmbt_to_iomap(ip, iomap, &imap, flags, |
304a68b9 | 1276 | shared ? IOMAP_F_SHARED : 0, seq); |
690c2a38 CH |
1277 | } |
1278 | ||
1279 | const struct iomap_ops xfs_read_iomap_ops = { | |
1280 | .iomap_begin = xfs_read_iomap_begin, | |
1281 | }; | |
1282 | ||
60271ab7 CH |
1283 | static int |
1284 | xfs_seek_iomap_begin( | |
1285 | struct inode *inode, | |
1286 | loff_t offset, | |
1287 | loff_t length, | |
1288 | unsigned flags, | |
c039b997 GR |
1289 | struct iomap *iomap, |
1290 | struct iomap *srcmap) | |
60271ab7 CH |
1291 | { |
1292 | struct xfs_inode *ip = XFS_I(inode); | |
1293 | struct xfs_mount *mp = ip->i_mount; | |
1294 | xfs_fileoff_t offset_fsb = XFS_B_TO_FSBT(mp, offset); | |
1295 | xfs_fileoff_t end_fsb = XFS_B_TO_FSB(mp, offset + length); | |
1296 | xfs_fileoff_t cow_fsb = NULLFILEOFF, data_fsb = NULLFILEOFF; | |
1297 | struct xfs_iext_cursor icur; | |
1298 | struct xfs_bmbt_irec imap, cmap; | |
1299 | int error = 0; | |
1300 | unsigned lockmode; | |
304a68b9 | 1301 | u64 seq; |
60271ab7 | 1302 | |
75c8c50f | 1303 | if (xfs_is_shutdown(mp)) |
60271ab7 CH |
1304 | return -EIO; |
1305 | ||
1306 | lockmode = xfs_ilock_data_map_shared(ip); | |
862a804a CH |
1307 | error = xfs_iread_extents(NULL, ip, XFS_DATA_FORK); |
1308 | if (error) | |
1309 | goto out_unlock; | |
60271ab7 CH |
1310 | |
1311 | if (xfs_iext_lookup_extent(ip, &ip->i_df, offset_fsb, &icur, &imap)) { | |
1312 | /* | |
1313 | * If we found a data extent we are done. | |
1314 | */ | |
1315 | if (imap.br_startoff <= offset_fsb) | |
1316 | goto done; | |
1317 | data_fsb = imap.br_startoff; | |
1318 | } else { | |
1319 | /* | |
1320 | * Fake a hole until the end of the file. | |
1321 | */ | |
43568226 | 1322 | data_fsb = xfs_iomap_end_fsb(mp, offset, length); |
60271ab7 CH |
1323 | } |
1324 | ||
1325 | /* | |
1326 | * If a COW fork extent covers the hole, report it - capped to the next | |
1327 | * data fork extent: | |
1328 | */ | |
1329 | if (xfs_inode_has_cow_data(ip) && | |
1330 | xfs_iext_lookup_extent(ip, ip->i_cowfp, offset_fsb, &icur, &cmap)) | |
1331 | cow_fsb = cmap.br_startoff; | |
1332 | if (cow_fsb != NULLFILEOFF && cow_fsb <= offset_fsb) { | |
1333 | if (data_fsb < cow_fsb + cmap.br_blockcount) | |
1334 | end_fsb = min(end_fsb, data_fsb); | |
4b2f459d | 1335 | xfs_trim_extent(&cmap, offset_fsb, end_fsb - offset_fsb); |
304a68b9 | 1336 | seq = xfs_iomap_inode_sequence(ip, IOMAP_F_SHARED); |
740fd671 | 1337 | error = xfs_bmbt_to_iomap(ip, iomap, &cmap, flags, |
304a68b9 | 1338 | IOMAP_F_SHARED, seq); |
60271ab7 CH |
1339 | /* |
1340 | * This is a COW extent, so we must probe the page cache | |
1341 | * because there could be dirty page cache being backed | |
1342 | * by this extent. | |
1343 | */ | |
1344 | iomap->type = IOMAP_UNWRITTEN; | |
1345 | goto out_unlock; | |
1346 | } | |
1347 | ||
1348 | /* | |
1349 | * Else report a hole, capped to the next found data or COW extent. | |
1350 | */ | |
1351 | if (cow_fsb != NULLFILEOFF && cow_fsb < data_fsb) | |
1352 | imap.br_blockcount = cow_fsb - offset_fsb; | |
1353 | else | |
1354 | imap.br_blockcount = data_fsb - offset_fsb; | |
1355 | imap.br_startoff = offset_fsb; | |
1356 | imap.br_startblock = HOLESTARTBLOCK; | |
1357 | imap.br_state = XFS_EXT_NORM; | |
1358 | done: | |
304a68b9 | 1359 | seq = xfs_iomap_inode_sequence(ip, 0); |
4b2f459d | 1360 | xfs_trim_extent(&imap, offset_fsb, end_fsb - offset_fsb); |
304a68b9 | 1361 | error = xfs_bmbt_to_iomap(ip, iomap, &imap, flags, 0, seq); |
60271ab7 CH |
1362 | out_unlock: |
1363 | xfs_iunlock(ip, lockmode); | |
1364 | return error; | |
1365 | } | |
1366 | ||
1367 | const struct iomap_ops xfs_seek_iomap_ops = { | |
1368 | .iomap_begin = xfs_seek_iomap_begin, | |
1369 | }; | |
1370 | ||
1d4795e7 CH |
1371 | static int |
1372 | xfs_xattr_iomap_begin( | |
1373 | struct inode *inode, | |
1374 | loff_t offset, | |
1375 | loff_t length, | |
1376 | unsigned flags, | |
c039b997 GR |
1377 | struct iomap *iomap, |
1378 | struct iomap *srcmap) | |
1d4795e7 CH |
1379 | { |
1380 | struct xfs_inode *ip = XFS_I(inode); | |
1381 | struct xfs_mount *mp = ip->i_mount; | |
1382 | xfs_fileoff_t offset_fsb = XFS_B_TO_FSBT(mp, offset); | |
1383 | xfs_fileoff_t end_fsb = XFS_B_TO_FSB(mp, offset + length); | |
1384 | struct xfs_bmbt_irec imap; | |
1385 | int nimaps = 1, error = 0; | |
1386 | unsigned lockmode; | |
304a68b9 | 1387 | int seq; |
1d4795e7 | 1388 | |
75c8c50f | 1389 | if (xfs_is_shutdown(mp)) |
1d4795e7 CH |
1390 | return -EIO; |
1391 | ||
84358536 | 1392 | lockmode = xfs_ilock_attr_map_shared(ip); |
1d4795e7 CH |
1393 | |
1394 | /* if there are no attribute fork or extents, return ENOENT */ | |
932b42c6 | 1395 | if (!xfs_inode_has_attr_fork(ip) || !ip->i_af.if_nextents) { |
1d4795e7 CH |
1396 | error = -ENOENT; |
1397 | goto out_unlock; | |
1398 | } | |
1399 | ||
2ed5b09b | 1400 | ASSERT(ip->i_af.if_format != XFS_DINODE_FMT_LOCAL); |
1d4795e7 | 1401 | error = xfs_bmapi_read(ip, offset_fsb, end_fsb - offset_fsb, &imap, |
b7e0b6ff | 1402 | &nimaps, XFS_BMAPI_ATTRFORK); |
1d4795e7 | 1403 | out_unlock: |
304a68b9 DC |
1404 | |
1405 | seq = xfs_iomap_inode_sequence(ip, IOMAP_F_XATTR); | |
1d4795e7 CH |
1406 | xfs_iunlock(ip, lockmode); |
1407 | ||
16be1433 CH |
1408 | if (error) |
1409 | return error; | |
1410 | ASSERT(nimaps); | |
304a68b9 | 1411 | return xfs_bmbt_to_iomap(ip, iomap, &imap, flags, IOMAP_F_XATTR, seq); |
1d4795e7 CH |
1412 | } |
1413 | ||
8ff6daa1 | 1414 | const struct iomap_ops xfs_xattr_iomap_ops = { |
1d4795e7 CH |
1415 | .iomap_begin = xfs_xattr_iomap_begin, |
1416 | }; | |
f1ba5faf SR |
1417 | |
1418 | int | |
1419 | xfs_zero_range( | |
1420 | struct xfs_inode *ip, | |
1421 | loff_t pos, | |
1422 | loff_t len, | |
1423 | bool *did_zero) | |
1424 | { | |
1425 | struct inode *inode = VFS_I(ip); | |
1426 | ||
c6f40468 CH |
1427 | if (IS_DAX(inode)) |
1428 | return dax_zero_range(inode, pos, len, did_zero, | |
64e6edc1 | 1429 | &xfs_dax_write_iomap_ops); |
f1ba5faf SR |
1430 | return iomap_zero_range(inode, pos, len, did_zero, |
1431 | &xfs_buffered_write_iomap_ops); | |
1432 | } | |
1433 | ||
1434 | int | |
1435 | xfs_truncate_page( | |
1436 | struct xfs_inode *ip, | |
1437 | loff_t pos, | |
1438 | bool *did_zero) | |
1439 | { | |
1440 | struct inode *inode = VFS_I(ip); | |
1441 | ||
c6f40468 CH |
1442 | if (IS_DAX(inode)) |
1443 | return dax_truncate_page(inode, pos, did_zero, | |
64e6edc1 | 1444 | &xfs_dax_write_iomap_ops); |
f1ba5faf SR |
1445 | return iomap_truncate_page(inode, pos, did_zero, |
1446 | &xfs_buffered_write_iomap_ops); | |
1447 | } |