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xfs: attach dquots and reserve quota blocks during unwritten conversion
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CommitLineData
0b61f8a4 1// SPDX-License-Identifier: GPL-2.0
68988114
DC
2/*
3 * Copyright (c) 2000-2006 Silicon Graphics, Inc.
c24b5dfa 4 * Copyright (c) 2012 Red Hat, Inc.
68988114 5 * All Rights Reserved.
68988114
DC
6 */
7#include "xfs.h"
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"
68988114 13#include "xfs_bit.h"
68988114 14#include "xfs_mount.h"
3ab78df2 15#include "xfs_defer.h"
68988114
DC
16#include "xfs_inode.h"
17#include "xfs_btree.h"
239880ef 18#include "xfs_trans.h"
68988114
DC
19#include "xfs_alloc.h"
20#include "xfs_bmap.h"
21#include "xfs_bmap_util.h"
a4fbe6ab 22#include "xfs_bmap_btree.h"
68988114
DC
23#include "xfs_rtalloc.h"
24#include "xfs_error.h"
25#include "xfs_quota.h"
26#include "xfs_trans_space.h"
27#include "xfs_trace.h"
c24b5dfa 28#include "xfs_icache.h"
f86f4037
DW
29#include "xfs_iomap.h"
30#include "xfs_reflink.h"
68988114
DC
31
32/* Kernel only BMAP related definitions and functions */
33
34/*
35 * Convert the given file system block to a disk block. We have to treat it
36 * differently based on whether the file is a real time file or not, because the
37 * bmap code does.
38 */
39xfs_daddr_t
40xfs_fsb_to_db(struct xfs_inode *ip, xfs_fsblock_t fsb)
41{
ecfc28a4
CH
42 if (XFS_IS_REALTIME_INODE(ip))
43 return XFS_FSB_TO_BB(ip->i_mount, fsb);
44 return XFS_FSB_TO_DADDR(ip->i_mount, fsb);
68988114
DC
45}
46
3fbbbea3
DC
47/*
48 * Routine to zero an extent on disk allocated to the specific inode.
49 *
50 * The VFS functions take a linearised filesystem block offset, so we have to
51 * convert the sparse xfs fsb to the right format first.
52 * VFS types are real funky, too.
53 */
54int
55xfs_zero_extent(
30fa529e
CH
56 struct xfs_inode *ip,
57 xfs_fsblock_t start_fsb,
58 xfs_off_t count_fsb)
3fbbbea3 59{
30fa529e
CH
60 struct xfs_mount *mp = ip->i_mount;
61 struct xfs_buftarg *target = xfs_inode_buftarg(ip);
62 xfs_daddr_t sector = xfs_fsb_to_db(ip, start_fsb);
63 sector_t block = XFS_BB_TO_FSBT(mp, sector);
3fbbbea3 64
30fa529e 65 return blkdev_issue_zeroout(target->bt_bdev,
3dc29161
MW
66 block << (mp->m_super->s_blocksize_bits - 9),
67 count_fsb << (mp->m_super->s_blocksize_bits - 9),
ee472d83 68 GFP_NOFS, 0);
3fbbbea3
DC
69}
70
bb9c2e54 71#ifdef CONFIG_XFS_RT
68988114
DC
72int
73xfs_bmap_rtalloc(
74 struct xfs_bmalloca *ap) /* bmap alloc argument struct */
75{
68988114
DC
76 int error; /* error return value */
77 xfs_mount_t *mp; /* mount point structure */
78 xfs_extlen_t prod = 0; /* product factor for allocators */
0703a8e1 79 xfs_extlen_t mod = 0; /* product factor for allocators */
68988114
DC
80 xfs_extlen_t ralen = 0; /* realtime allocation length */
81 xfs_extlen_t align; /* minimum allocation alignment */
82 xfs_rtblock_t rtb;
83
84 mp = ap->ip->i_mount;
85 align = xfs_get_extsz_hint(ap->ip);
86 prod = align / mp->m_sb.sb_rextsize;
87 error = xfs_bmap_extsize_align(mp, &ap->got, &ap->prev,
88 align, 1, ap->eof, 0,
89 ap->conv, &ap->offset, &ap->length);
90 if (error)
91 return error;
92 ASSERT(ap->length);
93 ASSERT(ap->length % mp->m_sb.sb_rextsize == 0);
94
95 /*
96 * If the offset & length are not perfectly aligned
97 * then kill prod, it will just get us in trouble.
98 */
0703a8e1
DC
99 div_u64_rem(ap->offset, align, &mod);
100 if (mod || ap->length % align)
68988114
DC
101 prod = 1;
102 /*
103 * Set ralen to be the actual requested length in rtextents.
104 */
105 ralen = ap->length / mp->m_sb.sb_rextsize;
106 /*
107 * If the old value was close enough to MAXEXTLEN that
108 * we rounded up to it, cut it back so it's valid again.
109 * Note that if it's a really large request (bigger than
110 * MAXEXTLEN), we don't hear about that number, and can't
111 * adjust the starting point to match it.
112 */
113 if (ralen * mp->m_sb.sb_rextsize >= MAXEXTLEN)
114 ralen = MAXEXTLEN / mp->m_sb.sb_rextsize;
115
116 /*
4b680afb 117 * Lock out modifications to both the RT bitmap and summary inodes
68988114 118 */
f4a0660d 119 xfs_ilock(mp->m_rbmip, XFS_ILOCK_EXCL|XFS_ILOCK_RTBITMAP);
68988114 120 xfs_trans_ijoin(ap->tp, mp->m_rbmip, XFS_ILOCK_EXCL);
f4a0660d 121 xfs_ilock(mp->m_rsumip, XFS_ILOCK_EXCL|XFS_ILOCK_RTSUM);
4b680afb 122 xfs_trans_ijoin(ap->tp, mp->m_rsumip, XFS_ILOCK_EXCL);
68988114
DC
123
124 /*
125 * If it's an allocation to an empty file at offset 0,
126 * pick an extent that will space things out in the rt area.
127 */
128 if (ap->eof && ap->offset == 0) {
129 xfs_rtblock_t uninitialized_var(rtx); /* realtime extent no */
130
131 error = xfs_rtpick_extent(mp, ap->tp, ralen, &rtx);
132 if (error)
133 return error;
134 ap->blkno = rtx * mp->m_sb.sb_rextsize;
135 } else {
136 ap->blkno = 0;
137 }
138
139 xfs_bmap_adjacent(ap);
140
141 /*
142 * Realtime allocation, done through xfs_rtallocate_extent.
143 */
68988114
DC
144 do_div(ap->blkno, mp->m_sb.sb_rextsize);
145 rtb = ap->blkno;
146 ap->length = ralen;
089ec2f8
CH
147 error = xfs_rtallocate_extent(ap->tp, ap->blkno, 1, ap->length,
148 &ralen, ap->wasdel, prod, &rtb);
149 if (error)
68988114 150 return error;
089ec2f8 151
68988114
DC
152 ap->blkno = rtb;
153 if (ap->blkno != NULLFSBLOCK) {
154 ap->blkno *= mp->m_sb.sb_rextsize;
155 ralen *= mp->m_sb.sb_rextsize;
156 ap->length = ralen;
157 ap->ip->i_d.di_nblocks += ralen;
158 xfs_trans_log_inode(ap->tp, ap->ip, XFS_ILOG_CORE);
159 if (ap->wasdel)
160 ap->ip->i_delayed_blks -= ralen;
161 /*
162 * Adjust the disk quota also. This was reserved
163 * earlier.
164 */
165 xfs_trans_mod_dquot_byino(ap->tp, ap->ip,
166 ap->wasdel ? XFS_TRANS_DQ_DELRTBCOUNT :
167 XFS_TRANS_DQ_RTBCOUNT, (long) ralen);
168 } else {
169 ap->length = 0;
170 }
171 return 0;
172}
bb9c2e54 173#endif /* CONFIG_XFS_RT */
68988114 174
68988114
DC
175/*
176 * Extent tree block counting routines.
177 */
178
179/*
d29cb3e4
DW
180 * Count leaf blocks given a range of extent records. Delayed allocation
181 * extents are not counted towards the totals.
68988114 182 */
e17a5c6f 183xfs_extnum_t
68988114 184xfs_bmap_count_leaves(
d29cb3e4 185 struct xfs_ifork *ifp,
e7f5d5ca 186 xfs_filblks_t *count)
68988114 187{
b2b1712a 188 struct xfs_iext_cursor icur;
e17a5c6f 189 struct xfs_bmbt_irec got;
b2b1712a 190 xfs_extnum_t numrecs = 0;
68988114 191
b2b1712a 192 for_each_xfs_iext(ifp, &icur, &got) {
e17a5c6f
CH
193 if (!isnullstartblock(got.br_startblock)) {
194 *count += got.br_blockcount;
195 numrecs++;
d29cb3e4 196 }
68988114 197 }
b2b1712a 198
e17a5c6f 199 return numrecs;
68988114
DC
200}
201
68988114 202/*
d29cb3e4
DW
203 * Count fsblocks of the given fork. Delayed allocation extents are
204 * not counted towards the totals.
68988114 205 */
e7f5d5ca 206int
68988114 207xfs_bmap_count_blocks(
e7f5d5ca
DW
208 struct xfs_trans *tp,
209 struct xfs_inode *ip,
210 int whichfork,
211 xfs_extnum_t *nextents,
212 xfs_filblks_t *count)
68988114 213{
fec40e22
DW
214 struct xfs_mount *mp = ip->i_mount;
215 struct xfs_ifork *ifp = XFS_IFORK_PTR(ip, whichfork);
216 struct xfs_btree_cur *cur;
217 xfs_extlen_t btblocks = 0;
e7f5d5ca 218 int error;
68988114 219
e7f5d5ca
DW
220 *nextents = 0;
221 *count = 0;
fec40e22 222
e7f5d5ca 223 if (!ifp)
68988114 224 return 0;
68988114 225
e7f5d5ca 226 switch (XFS_IFORK_FORMAT(ip, whichfork)) {
e7f5d5ca
DW
227 case XFS_DINODE_FMT_BTREE:
228 if (!(ifp->if_flags & XFS_IFEXTENTS)) {
229 error = xfs_iread_extents(tp, ip, whichfork);
230 if (error)
231 return error;
232 }
233
fec40e22
DW
234 cur = xfs_bmbt_init_cursor(mp, tp, ip, whichfork);
235 error = xfs_btree_count_blocks(cur, &btblocks);
236 xfs_btree_del_cursor(cur, error);
237 if (error)
238 return error;
239
e7f5d5ca 240 /*
fec40e22
DW
241 * xfs_btree_count_blocks includes the root block contained in
242 * the inode fork in @btblocks, so subtract one because we're
243 * only interested in allocated disk blocks.
e7f5d5ca 244 */
fec40e22 245 *count += btblocks - 1;
e7f5d5ca 246
fec40e22
DW
247 /* fall through */
248 case XFS_DINODE_FMT_EXTENTS:
249 *nextents = xfs_bmap_count_leaves(ifp, count);
250 break;
68988114
DC
251 }
252
253 return 0;
254}
255
abbf9e8a
CH
256static int
257xfs_getbmap_report_one(
258 struct xfs_inode *ip,
259 struct getbmapx *bmv,
232b5194 260 struct kgetbmap *out,
abbf9e8a
CH
261 int64_t bmv_end,
262 struct xfs_bmbt_irec *got)
f86f4037 263{
232b5194 264 struct kgetbmap *p = out + bmv->bmv_entries;
d392bc81 265 bool shared = false;
abbf9e8a 266 int error;
f86f4037 267
d392bc81 268 error = xfs_reflink_trim_around_shared(ip, got, &shared);
f86f4037
DW
269 if (error)
270 return error;
271
abbf9e8a
CH
272 if (isnullstartblock(got->br_startblock) ||
273 got->br_startblock == DELAYSTARTBLOCK) {
f86f4037 274 /*
abbf9e8a
CH
275 * Delalloc extents that start beyond EOF can occur due to
276 * speculative EOF allocation when the delalloc extent is larger
277 * than the largest freespace extent at conversion time. These
278 * extents cannot be converted by data writeback, so can exist
279 * here even if we are not supposed to be finding delalloc
280 * extents.
f86f4037 281 */
abbf9e8a
CH
282 if (got->br_startoff < XFS_B_TO_FSB(ip->i_mount, XFS_ISIZE(ip)))
283 ASSERT((bmv->bmv_iflags & BMV_IF_DELALLOC) != 0);
284
285 p->bmv_oflags |= BMV_OF_DELALLOC;
286 p->bmv_block = -2;
f86f4037 287 } else {
abbf9e8a 288 p->bmv_block = xfs_fsb_to_db(ip, got->br_startblock);
f86f4037
DW
289 }
290
abbf9e8a
CH
291 if (got->br_state == XFS_EXT_UNWRITTEN &&
292 (bmv->bmv_iflags & BMV_IF_PREALLOC))
293 p->bmv_oflags |= BMV_OF_PREALLOC;
294
295 if (shared)
296 p->bmv_oflags |= BMV_OF_SHARED;
297
298 p->bmv_offset = XFS_FSB_TO_BB(ip->i_mount, got->br_startoff);
299 p->bmv_length = XFS_FSB_TO_BB(ip->i_mount, got->br_blockcount);
300
301 bmv->bmv_offset = p->bmv_offset + p->bmv_length;
302 bmv->bmv_length = max(0LL, bmv_end - bmv->bmv_offset);
303 bmv->bmv_entries++;
f86f4037
DW
304 return 0;
305}
306
abbf9e8a
CH
307static void
308xfs_getbmap_report_hole(
309 struct xfs_inode *ip,
310 struct getbmapx *bmv,
232b5194 311 struct kgetbmap *out,
abbf9e8a
CH
312 int64_t bmv_end,
313 xfs_fileoff_t bno,
314 xfs_fileoff_t end)
315{
232b5194 316 struct kgetbmap *p = out + bmv->bmv_entries;
abbf9e8a
CH
317
318 if (bmv->bmv_iflags & BMV_IF_NO_HOLES)
319 return;
320
321 p->bmv_block = -1;
322 p->bmv_offset = XFS_FSB_TO_BB(ip->i_mount, bno);
323 p->bmv_length = XFS_FSB_TO_BB(ip->i_mount, end - bno);
324
325 bmv->bmv_offset = p->bmv_offset + p->bmv_length;
326 bmv->bmv_length = max(0LL, bmv_end - bmv->bmv_offset);
327 bmv->bmv_entries++;
328}
329
330static inline bool
331xfs_getbmap_full(
332 struct getbmapx *bmv)
333{
334 return bmv->bmv_length == 0 || bmv->bmv_entries >= bmv->bmv_count - 1;
335}
336
337static bool
338xfs_getbmap_next_rec(
339 struct xfs_bmbt_irec *rec,
340 xfs_fileoff_t total_end)
341{
342 xfs_fileoff_t end = rec->br_startoff + rec->br_blockcount;
343
344 if (end == total_end)
345 return false;
346
347 rec->br_startoff += rec->br_blockcount;
348 if (!isnullstartblock(rec->br_startblock) &&
349 rec->br_startblock != DELAYSTARTBLOCK)
350 rec->br_startblock += rec->br_blockcount;
351 rec->br_blockcount = total_end - end;
352 return true;
353}
354
68988114
DC
355/*
356 * Get inode's extents as described in bmv, and format for output.
357 * Calls formatter to fill the user's buffer until all extents
358 * are mapped, until the passed-in bmv->bmv_count slots have
359 * been filled, or until the formatter short-circuits the loop,
360 * if it is tracking filled-in extents on its own.
361 */
362int /* error code */
363xfs_getbmap(
232b5194 364 struct xfs_inode *ip,
68988114 365 struct getbmapx *bmv, /* user bmap structure */
232b5194 366 struct kgetbmap *out)
68988114 367{
abbf9e8a
CH
368 struct xfs_mount *mp = ip->i_mount;
369 int iflags = bmv->bmv_iflags;
232b5194 370 int whichfork, lock, error = 0;
abbf9e8a
CH
371 int64_t bmv_end, max_len;
372 xfs_fileoff_t bno, first_bno;
373 struct xfs_ifork *ifp;
abbf9e8a
CH
374 struct xfs_bmbt_irec got, rec;
375 xfs_filblks_t len;
b2b1712a 376 struct xfs_iext_cursor icur;
68988114 377
232b5194
CH
378 if (bmv->bmv_iflags & ~BMV_IF_VALID)
379 return -EINVAL;
f86f4037
DW
380#ifndef DEBUG
381 /* Only allow CoW fork queries if we're debugging. */
382 if (iflags & BMV_IF_COWFORK)
383 return -EINVAL;
384#endif
385 if ((iflags & BMV_IF_ATTRFORK) && (iflags & BMV_IF_COWFORK))
386 return -EINVAL;
387
abbf9e8a
CH
388 if (bmv->bmv_length < -1)
389 return -EINVAL;
abbf9e8a
CH
390 bmv->bmv_entries = 0;
391 if (bmv->bmv_length == 0)
392 return 0;
393
f86f4037
DW
394 if (iflags & BMV_IF_ATTRFORK)
395 whichfork = XFS_ATTR_FORK;
396 else if (iflags & BMV_IF_COWFORK)
397 whichfork = XFS_COW_FORK;
398 else
399 whichfork = XFS_DATA_FORK;
abbf9e8a 400 ifp = XFS_IFORK_PTR(ip, whichfork);
f86f4037 401
abbf9e8a 402 xfs_ilock(ip, XFS_IOLOCK_SHARED);
f86f4037
DW
403 switch (whichfork) {
404 case XFS_ATTR_FORK:
abbf9e8a
CH
405 if (!XFS_IFORK_Q(ip))
406 goto out_unlock_iolock;
68988114 407
abbf9e8a
CH
408 max_len = 1LL << 32;
409 lock = xfs_ilock_attr_map_shared(ip);
f86f4037
DW
410 break;
411 case XFS_COW_FORK:
abbf9e8a
CH
412 /* No CoW fork? Just return */
413 if (!ifp)
414 goto out_unlock_iolock;
68988114 415
abbf9e8a
CH
416 if (xfs_get_cowextsz_hint(ip))
417 max_len = mp->m_super->s_maxbytes;
418 else
419 max_len = XFS_ISIZE(ip);
68988114 420
abbf9e8a
CH
421 lock = XFS_ILOCK_SHARED;
422 xfs_ilock(ip, lock);
423 break;
f86f4037 424 case XFS_DATA_FORK:
efa70be1
CH
425 if (!(iflags & BMV_IF_DELALLOC) &&
426 (ip->i_delayed_blks || XFS_ISIZE(ip) > ip->i_d.di_size)) {
2451337d 427 error = filemap_write_and_wait(VFS_I(ip)->i_mapping);
68988114
DC
428 if (error)
429 goto out_unlock_iolock;
efa70be1
CH
430
431 /*
432 * Even after flushing the inode, there can still be
433 * delalloc blocks on the inode beyond EOF due to
434 * speculative preallocation. These are not removed
435 * until the release function is called or the inode
436 * is inactivated. Hence we cannot assert here that
437 * ip->i_delayed_blks == 0.
438 */
68988114 439 }
68988114 440
abbf9e8a
CH
441 if (xfs_get_extsz_hint(ip) ||
442 (ip->i_d.di_flags &
443 (XFS_DIFLAG_PREALLOC | XFS_DIFLAG_APPEND)))
444 max_len = mp->m_super->s_maxbytes;
445 else
446 max_len = XFS_ISIZE(ip);
447
efa70be1 448 lock = xfs_ilock_data_map_shared(ip);
f86f4037 449 break;
efa70be1 450 }
68988114 451
abbf9e8a
CH
452 switch (XFS_IFORK_FORMAT(ip, whichfork)) {
453 case XFS_DINODE_FMT_EXTENTS:
454 case XFS_DINODE_FMT_BTREE:
455 break;
456 case XFS_DINODE_FMT_LOCAL:
457 /* Local format inode forks report no extents. */
68988114 458 goto out_unlock_ilock;
abbf9e8a
CH
459 default:
460 error = -EINVAL;
461 goto out_unlock_ilock;
462 }
68988114 463
abbf9e8a
CH
464 if (bmv->bmv_length == -1) {
465 max_len = XFS_FSB_TO_BB(mp, XFS_B_TO_FSB(mp, max_len));
466 bmv->bmv_length = max(0LL, max_len - bmv->bmv_offset);
68988114
DC
467 }
468
abbf9e8a 469 bmv_end = bmv->bmv_offset + bmv->bmv_length;
68988114 470
abbf9e8a
CH
471 first_bno = bno = XFS_BB_TO_FSBT(mp, bmv->bmv_offset);
472 len = XFS_BB_TO_FSB(mp, bmv->bmv_length);
68988114 473
abbf9e8a
CH
474 if (!(ifp->if_flags & XFS_IFEXTENTS)) {
475 error = xfs_iread_extents(NULL, ip, whichfork);
476 if (error)
477 goto out_unlock_ilock;
478 }
f86f4037 479
b2b1712a 480 if (!xfs_iext_lookup_extent(ip, ifp, bno, &icur, &got)) {
abbf9e8a
CH
481 /*
482 * Report a whole-file hole if the delalloc flag is set to
483 * stay compatible with the old implementation.
484 */
485 if (iflags & BMV_IF_DELALLOC)
486 xfs_getbmap_report_hole(ip, bmv, out, bmv_end, bno,
487 XFS_B_TO_FSB(mp, XFS_ISIZE(ip)));
488 goto out_unlock_ilock;
489 }
68988114 490
abbf9e8a
CH
491 while (!xfs_getbmap_full(bmv)) {
492 xfs_trim_extent(&got, first_bno, len);
68988114 493
abbf9e8a
CH
494 /*
495 * Report an entry for a hole if this extent doesn't directly
496 * follow the previous one.
497 */
498 if (got.br_startoff > bno) {
499 xfs_getbmap_report_hole(ip, bmv, out, bmv_end, bno,
500 got.br_startoff);
501 if (xfs_getbmap_full(bmv))
502 break;
503 }
68988114 504
abbf9e8a
CH
505 /*
506 * In order to report shared extents accurately, we report each
507 * distinct shared / unshared part of a single bmbt record with
508 * an individual getbmapx record.
509 */
510 bno = got.br_startoff + got.br_blockcount;
511 rec = got;
512 do {
513 error = xfs_getbmap_report_one(ip, bmv, out, bmv_end,
514 &rec);
515 if (error || xfs_getbmap_full(bmv))
516 goto out_unlock_ilock;
517 } while (xfs_getbmap_next_rec(&rec, bno));
518
b2b1712a 519 if (!xfs_iext_next_extent(ifp, &icur, &got)) {
abbf9e8a
CH
520 xfs_fileoff_t end = XFS_B_TO_FSB(mp, XFS_ISIZE(ip));
521
522 out[bmv->bmv_entries - 1].bmv_oflags |= BMV_OF_LAST;
523
524 if (whichfork != XFS_ATTR_FORK && bno < end &&
525 !xfs_getbmap_full(bmv)) {
526 xfs_getbmap_report_hole(ip, bmv, out, bmv_end,
527 bno, end);
c364b6d0 528 }
abbf9e8a 529 break;
68988114 530 }
68988114 531
abbf9e8a
CH
532 if (bno >= first_bno + len)
533 break;
534 }
535
536out_unlock_ilock:
01f4f327 537 xfs_iunlock(ip, lock);
abbf9e8a 538out_unlock_iolock:
68988114 539 xfs_iunlock(ip, XFS_IOLOCK_SHARED);
68988114
DC
540 return error;
541}
542
543/*
e2ac8363
CH
544 * Dead simple method of punching delalyed allocation blocks from a range in
545 * the inode. This will always punch out both the start and end blocks, even
546 * if the ranges only partially overlap them, so it is up to the caller to
547 * ensure that partial blocks are not passed in.
68988114
DC
548 */
549int
550xfs_bmap_punch_delalloc_range(
551 struct xfs_inode *ip,
552 xfs_fileoff_t start_fsb,
553 xfs_fileoff_t length)
554{
e2ac8363
CH
555 struct xfs_ifork *ifp = &ip->i_df;
556 xfs_fileoff_t end_fsb = start_fsb + length;
557 struct xfs_bmbt_irec got, del;
558 struct xfs_iext_cursor icur;
68988114
DC
559 int error = 0;
560
0065b541 561 ASSERT(ifp->if_flags & XFS_IFEXTENTS);
68988114 562
0065b541 563 xfs_ilock(ip, XFS_ILOCK_EXCL);
e2ac8363 564 if (!xfs_iext_lookup_extent_before(ip, ifp, &end_fsb, &icur, &got))
d4380177 565 goto out_unlock;
68988114 566
e2ac8363
CH
567 while (got.br_startoff + got.br_blockcount > start_fsb) {
568 del = got;
569 xfs_trim_extent(&del, start_fsb, length);
68988114
DC
570
571 /*
e2ac8363
CH
572 * A delete can push the cursor forward. Step back to the
573 * previous extent on non-delalloc or extents outside the
574 * target range.
68988114 575 */
e2ac8363
CH
576 if (!del.br_blockcount ||
577 !isnullstartblock(del.br_startblock)) {
578 if (!xfs_iext_prev_extent(ifp, &icur, &got))
579 break;
580 continue;
581 }
68988114 582
e2ac8363
CH
583 error = xfs_bmap_del_extent_delay(ip, XFS_DATA_FORK, &icur,
584 &got, &del);
585 if (error || !xfs_iext_get_extent(ifp, &icur, &got))
586 break;
587 }
68988114 588
d4380177
CH
589out_unlock:
590 xfs_iunlock(ip, XFS_ILOCK_EXCL);
68988114
DC
591 return error;
592}
c24b5dfa
DC
593
594/*
595 * Test whether it is appropriate to check an inode for and free post EOF
596 * blocks. The 'force' parameter determines whether we should also consider
597 * regular files that are marked preallocated or append-only.
598 */
599bool
600xfs_can_free_eofblocks(struct xfs_inode *ip, bool force)
601{
602 /* prealloc/delalloc exists only on regular files */
c19b3b05 603 if (!S_ISREG(VFS_I(ip)->i_mode))
c24b5dfa
DC
604 return false;
605
606 /*
607 * Zero sized files with no cached pages and delalloc blocks will not
608 * have speculative prealloc/delalloc blocks to remove.
609 */
610 if (VFS_I(ip)->i_size == 0 &&
2667c6f9 611 VFS_I(ip)->i_mapping->nrpages == 0 &&
c24b5dfa
DC
612 ip->i_delayed_blks == 0)
613 return false;
614
615 /* If we haven't read in the extent list, then don't do it now. */
616 if (!(ip->i_df.if_flags & XFS_IFEXTENTS))
617 return false;
618
619 /*
620 * Do not free real preallocated or append-only files unless the file
621 * has delalloc blocks and we are forced to remove them.
622 */
623 if (ip->i_d.di_flags & (XFS_DIFLAG_PREALLOC | XFS_DIFLAG_APPEND))
624 if (!force || ip->i_delayed_blks == 0)
625 return false;
626
627 return true;
628}
629
630/*
3b4683c2
BF
631 * This is called to free any blocks beyond eof. The caller must hold
632 * IOLOCK_EXCL unless we are in the inode reclaim path and have the only
633 * reference to the inode.
c24b5dfa
DC
634 */
635int
636xfs_free_eofblocks(
a36b9261 637 struct xfs_inode *ip)
c24b5dfa 638{
a36b9261
BF
639 struct xfs_trans *tp;
640 int error;
641 xfs_fileoff_t end_fsb;
642 xfs_fileoff_t last_fsb;
643 xfs_filblks_t map_len;
644 int nimaps;
645 struct xfs_bmbt_irec imap;
646 struct xfs_mount *mp = ip->i_mount;
647
c24b5dfa
DC
648 /*
649 * Figure out if there are any blocks beyond the end
650 * of the file. If not, then there is nothing to do.
651 */
652 end_fsb = XFS_B_TO_FSB(mp, (xfs_ufsize_t)XFS_ISIZE(ip));
653 last_fsb = XFS_B_TO_FSB(mp, mp->m_super->s_maxbytes);
654 if (last_fsb <= end_fsb)
655 return 0;
656 map_len = last_fsb - end_fsb;
657
658 nimaps = 1;
659 xfs_ilock(ip, XFS_ILOCK_SHARED);
660 error = xfs_bmapi_read(ip, end_fsb, map_len, &imap, &nimaps, 0);
661 xfs_iunlock(ip, XFS_ILOCK_SHARED);
662
a36b9261
BF
663 /*
664 * If there are blocks after the end of file, truncate the file to its
665 * current size to free them up.
666 */
c24b5dfa
DC
667 if (!error && (nimaps != 0) &&
668 (imap.br_startblock != HOLESTARTBLOCK ||
669 ip->i_delayed_blks)) {
670 /*
671 * Attach the dquots to the inode up front.
672 */
c14cfcca 673 error = xfs_qm_dqattach(ip);
c24b5dfa
DC
674 if (error)
675 return error;
676
e4229d6b
BF
677 /* wait on dio to ensure i_size has settled */
678 inode_dio_wait(VFS_I(ip));
679
253f4911
CH
680 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_itruncate, 0, 0, 0,
681 &tp);
c24b5dfa
DC
682 if (error) {
683 ASSERT(XFS_FORCED_SHUTDOWN(mp));
c24b5dfa
DC
684 return error;
685 }
686
687 xfs_ilock(ip, XFS_ILOCK_EXCL);
688 xfs_trans_ijoin(tp, ip, 0);
689
690 /*
691 * Do not update the on-disk file size. If we update the
692 * on-disk file size and then the system crashes before the
693 * contents of the file are flushed to disk then the files
694 * may be full of holes (ie NULL files bug).
695 */
4e529339
BF
696 error = xfs_itruncate_extents_flags(&tp, ip, XFS_DATA_FORK,
697 XFS_ISIZE(ip), XFS_BMAPI_NODISCARD);
c24b5dfa
DC
698 if (error) {
699 /*
700 * If we get an error at this point we simply don't
701 * bother truncating the file.
702 */
4906e215 703 xfs_trans_cancel(tp);
c24b5dfa 704 } else {
70393313 705 error = xfs_trans_commit(tp);
c24b5dfa
DC
706 if (!error)
707 xfs_inode_clear_eofblocks_tag(ip);
708 }
709
710 xfs_iunlock(ip, XFS_ILOCK_EXCL);
c24b5dfa
DC
711 }
712 return error;
713}
714
83aee9e4 715int
c24b5dfa 716xfs_alloc_file_space(
83aee9e4 717 struct xfs_inode *ip,
c24b5dfa
DC
718 xfs_off_t offset,
719 xfs_off_t len,
5f8aca8b 720 int alloc_type)
c24b5dfa
DC
721{
722 xfs_mount_t *mp = ip->i_mount;
723 xfs_off_t count;
724 xfs_filblks_t allocated_fsb;
725 xfs_filblks_t allocatesize_fsb;
726 xfs_extlen_t extsz, temp;
727 xfs_fileoff_t startoffset_fsb;
e093c4be 728 xfs_fileoff_t endoffset_fsb;
c24b5dfa
DC
729 int nimaps;
730 int quota_flag;
731 int rt;
732 xfs_trans_t *tp;
733 xfs_bmbt_irec_t imaps[1], *imapp;
c24b5dfa 734 uint qblocks, resblks, resrtextents;
c24b5dfa
DC
735 int error;
736
737 trace_xfs_alloc_file_space(ip);
738
739 if (XFS_FORCED_SHUTDOWN(mp))
2451337d 740 return -EIO;
c24b5dfa 741
c14cfcca 742 error = xfs_qm_dqattach(ip);
c24b5dfa
DC
743 if (error)
744 return error;
745
746 if (len <= 0)
2451337d 747 return -EINVAL;
c24b5dfa
DC
748
749 rt = XFS_IS_REALTIME_INODE(ip);
750 extsz = xfs_get_extsz_hint(ip);
751
752 count = len;
753 imapp = &imaps[0];
754 nimaps = 1;
755 startoffset_fsb = XFS_B_TO_FSBT(mp, offset);
e093c4be
MR
756 endoffset_fsb = XFS_B_TO_FSB(mp, offset + count);
757 allocatesize_fsb = endoffset_fsb - startoffset_fsb;
c24b5dfa
DC
758
759 /*
760 * Allocate file space until done or until there is an error
761 */
762 while (allocatesize_fsb && !error) {
763 xfs_fileoff_t s, e;
764
765 /*
766 * Determine space reservations for data/realtime.
767 */
768 if (unlikely(extsz)) {
769 s = startoffset_fsb;
770 do_div(s, extsz);
771 s *= extsz;
772 e = startoffset_fsb + allocatesize_fsb;
0703a8e1
DC
773 div_u64_rem(startoffset_fsb, extsz, &temp);
774 if (temp)
c24b5dfa 775 e += temp;
0703a8e1
DC
776 div_u64_rem(e, extsz, &temp);
777 if (temp)
c24b5dfa
DC
778 e += extsz - temp;
779 } else {
780 s = 0;
781 e = allocatesize_fsb;
782 }
783
784 /*
785 * The transaction reservation is limited to a 32-bit block
786 * count, hence we need to limit the number of blocks we are
787 * trying to reserve to avoid an overflow. We can't allocate
788 * more than @nimaps extents, and an extent is limited on disk
789 * to MAXEXTLEN (21 bits), so use that to enforce the limit.
790 */
791 resblks = min_t(xfs_fileoff_t, (e - s), (MAXEXTLEN * nimaps));
792 if (unlikely(rt)) {
793 resrtextents = qblocks = resblks;
794 resrtextents /= mp->m_sb.sb_rextsize;
795 resblks = XFS_DIOSTRAT_SPACE_RES(mp, 0);
796 quota_flag = XFS_QMOPT_RES_RTBLKS;
797 } else {
798 resrtextents = 0;
799 resblks = qblocks = XFS_DIOSTRAT_SPACE_RES(mp, resblks);
800 quota_flag = XFS_QMOPT_RES_REGBLKS;
801 }
802
803 /*
804 * Allocate and setup the transaction.
805 */
253f4911
CH
806 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_write, resblks,
807 resrtextents, 0, &tp);
808
c24b5dfa
DC
809 /*
810 * Check for running out of space
811 */
812 if (error) {
813 /*
814 * Free the transaction structure.
815 */
2451337d 816 ASSERT(error == -ENOSPC || XFS_FORCED_SHUTDOWN(mp));
c24b5dfa
DC
817 break;
818 }
819 xfs_ilock(ip, XFS_ILOCK_EXCL);
820 error = xfs_trans_reserve_quota_nblks(tp, ip, qblocks,
821 0, quota_flag);
822 if (error)
823 goto error1;
824
825 xfs_trans_ijoin(tp, ip, 0);
826
c24b5dfa 827 error = xfs_bmapi_write(tp, ip, startoffset_fsb,
da781e64
BF
828 allocatesize_fsb, alloc_type, 0, imapp,
829 &nimaps);
f6106efa 830 if (error)
c24b5dfa 831 goto error0;
c24b5dfa
DC
832
833 /*
834 * Complete the transaction
835 */
70393313 836 error = xfs_trans_commit(tp);
c24b5dfa 837 xfs_iunlock(ip, XFS_ILOCK_EXCL);
f6106efa 838 if (error)
c24b5dfa 839 break;
c24b5dfa
DC
840
841 allocated_fsb = imapp->br_blockcount;
842
843 if (nimaps == 0) {
2451337d 844 error = -ENOSPC;
c24b5dfa
DC
845 break;
846 }
847
848 startoffset_fsb += allocated_fsb;
849 allocatesize_fsb -= allocated_fsb;
850 }
851
852 return error;
853
c8eac49e 854error0: /* unlock inode, unreserve quota blocks, cancel trans */
c24b5dfa
DC
855 xfs_trans_unreserve_quota_nblks(tp, ip, (long)qblocks, 0, quota_flag);
856
857error1: /* Just cancel transaction */
4906e215 858 xfs_trans_cancel(tp);
c24b5dfa
DC
859 xfs_iunlock(ip, XFS_ILOCK_EXCL);
860 return error;
861}
862
bdb0d04f
CH
863static int
864xfs_unmap_extent(
865 struct xfs_inode *ip,
866 xfs_fileoff_t startoffset_fsb,
867 xfs_filblks_t len_fsb,
868 int *done)
c24b5dfa 869{
bdb0d04f
CH
870 struct xfs_mount *mp = ip->i_mount;
871 struct xfs_trans *tp;
bdb0d04f
CH
872 uint resblks = XFS_DIOSTRAT_SPACE_RES(mp, 0);
873 int error;
c24b5dfa 874
bdb0d04f
CH
875 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_write, resblks, 0, 0, &tp);
876 if (error) {
877 ASSERT(error == -ENOSPC || XFS_FORCED_SHUTDOWN(mp));
878 return error;
879 }
c24b5dfa 880
bdb0d04f
CH
881 xfs_ilock(ip, XFS_ILOCK_EXCL);
882 error = xfs_trans_reserve_quota(tp, mp, ip->i_udquot, ip->i_gdquot,
883 ip->i_pdquot, resblks, 0, XFS_QMOPT_RES_REGBLKS);
884 if (error)
885 goto out_trans_cancel;
c24b5dfa 886
bdb0d04f 887 xfs_trans_ijoin(tp, ip, 0);
4f317369 888
2af52842 889 error = xfs_bunmapi(tp, ip, startoffset_fsb, len_fsb, 0, 2, done);
bdb0d04f 890 if (error)
c8eac49e 891 goto out_trans_cancel;
4f317369 892
bdb0d04f
CH
893 error = xfs_trans_commit(tp);
894out_unlock:
895 xfs_iunlock(ip, XFS_ILOCK_EXCL);
896 return error;
4f69f578 897
bdb0d04f
CH
898out_trans_cancel:
899 xfs_trans_cancel(tp);
900 goto out_unlock;
901}
4f69f578 902
249bd908 903/* Caller must first wait for the completion of any pending DIOs if required. */
2c307174 904int
bdb0d04f
CH
905xfs_flush_unmap_range(
906 struct xfs_inode *ip,
907 xfs_off_t offset,
908 xfs_off_t len)
909{
910 struct xfs_mount *mp = ip->i_mount;
911 struct inode *inode = VFS_I(ip);
912 xfs_off_t rounding, start, end;
913 int error;
914
bdb0d04f
CH
915 rounding = max_t(xfs_off_t, 1 << mp->m_sb.sb_blocklog, PAGE_SIZE);
916 start = round_down(offset, rounding);
917 end = round_up(offset + len, rounding) - 1;
918
919 error = filemap_write_and_wait_range(inode->i_mapping, start, end);
920 if (error)
921 return error;
922 truncate_pagecache_range(inode, start, end);
923 return 0;
c24b5dfa
DC
924}
925
83aee9e4 926int
c24b5dfa 927xfs_free_file_space(
83aee9e4 928 struct xfs_inode *ip,
c24b5dfa 929 xfs_off_t offset,
5f8aca8b 930 xfs_off_t len)
c24b5dfa 931{
bdb0d04f 932 struct xfs_mount *mp = ip->i_mount;
c24b5dfa 933 xfs_fileoff_t startoffset_fsb;
bdb0d04f 934 xfs_fileoff_t endoffset_fsb;
3c2bdc91 935 int done = 0, error;
c24b5dfa
DC
936
937 trace_xfs_free_file_space(ip);
938
c14cfcca 939 error = xfs_qm_dqattach(ip);
c24b5dfa
DC
940 if (error)
941 return error;
942
c24b5dfa 943 if (len <= 0) /* if nothing being freed */
bdb0d04f 944 return 0;
c24b5dfa 945
bdb0d04f
CH
946 startoffset_fsb = XFS_B_TO_FSB(mp, offset);
947 endoffset_fsb = XFS_B_TO_FSBT(mp, offset + len);
c24b5dfa
DC
948
949 /*
daa79bae 950 * Need to zero the stuff we're not freeing, on disk.
c24b5dfa 951 */
3c2bdc91
CH
952 if (endoffset_fsb > startoffset_fsb) {
953 while (!done) {
954 error = xfs_unmap_extent(ip, startoffset_fsb,
955 endoffset_fsb - startoffset_fsb, &done);
956 if (error)
957 return error;
c24b5dfa 958 }
c24b5dfa
DC
959 }
960
3c2bdc91
CH
961 /*
962 * Now that we've unmap all full blocks we'll have to zero out any
f5c54717
CH
963 * partial block at the beginning and/or end. iomap_zero_range is smart
964 * enough to skip any holes, including those we just created, but we
965 * must take care not to zero beyond EOF and enlarge i_size.
3c2bdc91 966 */
3dd09d5a
CO
967 if (offset >= XFS_ISIZE(ip))
968 return 0;
3dd09d5a
CO
969 if (offset + len > XFS_ISIZE(ip))
970 len = XFS_ISIZE(ip) - offset;
f150b423
CH
971 error = iomap_zero_range(VFS_I(ip), offset, len, NULL,
972 &xfs_buffered_write_iomap_ops);
e53c4b59
DW
973 if (error)
974 return error;
975
976 /*
977 * If we zeroed right up to EOF and EOF straddles a page boundary we
978 * must make sure that the post-EOF area is also zeroed because the
979 * page could be mmap'd and iomap_zero_range doesn't do that for us.
980 * Writeback of the eof page will do this, albeit clumsily.
981 */
a579121f 982 if (offset + len >= XFS_ISIZE(ip) && offset_in_page(offset + len) > 0) {
e53c4b59 983 error = filemap_write_and_wait_range(VFS_I(ip)->i_mapping,
a579121f 984 round_down(offset + len, PAGE_SIZE), LLONG_MAX);
e53c4b59
DW
985 }
986
987 return error;
c24b5dfa
DC
988}
989
72c1a739 990static int
4ed36c6b
CH
991xfs_prepare_shift(
992 struct xfs_inode *ip,
993 loff_t offset)
e1d8fb88 994{
e1d8fb88 995 int error;
e1d8fb88 996
f71721d0
BF
997 /*
998 * Trim eofblocks to avoid shifting uninitialized post-eof preallocation
999 * into the accessible region of the file.
1000 */
41b9d726 1001 if (xfs_can_free_eofblocks(ip, true)) {
a36b9261 1002 error = xfs_free_eofblocks(ip);
41b9d726
BF
1003 if (error)
1004 return error;
1005 }
1669a8ca 1006
f71721d0
BF
1007 /*
1008 * Writeback and invalidate cache for the remainder of the file as we're
a904b1ca 1009 * about to shift down every extent from offset to EOF.
f71721d0 1010 */
7f9f71be 1011 error = xfs_flush_unmap_range(ip, offset, XFS_ISIZE(ip));
1749d1ea
BF
1012 if (error)
1013 return error;
e1d8fb88 1014
a904b1ca 1015 /*
3af423b0
DW
1016 * Clean out anything hanging around in the cow fork now that
1017 * we've flushed all the dirty data out to disk to avoid having
1018 * CoW extents at the wrong offsets.
1019 */
51d62690 1020 if (xfs_inode_has_cow_data(ip)) {
3af423b0
DW
1021 error = xfs_reflink_cancel_cow_range(ip, offset, NULLFILEOFF,
1022 true);
1023 if (error)
1024 return error;
1025 }
1026
4ed36c6b
CH
1027 return 0;
1028}
1029
1030/*
1031 * xfs_collapse_file_space()
1032 * This routine frees disk space and shift extent for the given file.
1033 * The first thing we do is to free data blocks in the specified range
1034 * by calling xfs_free_file_space(). It would also sync dirty data
1035 * and invalidate page cache over the region on which collapse range
1036 * is working. And Shift extent records to the left to cover a hole.
1037 * RETURNS:
1038 * 0 on success
1039 * errno on error
1040 *
1041 */
1042int
1043xfs_collapse_file_space(
1044 struct xfs_inode *ip,
1045 xfs_off_t offset,
1046 xfs_off_t len)
1047{
4ed36c6b
CH
1048 struct xfs_mount *mp = ip->i_mount;
1049 struct xfs_trans *tp;
1050 int error;
4ed36c6b
CH
1051 xfs_fileoff_t next_fsb = XFS_B_TO_FSB(mp, offset + len);
1052 xfs_fileoff_t shift_fsb = XFS_B_TO_FSB(mp, len);
1053 uint resblks = XFS_DIOSTRAT_SPACE_RES(mp, 0);
ecfea3f0 1054 bool done = false;
4ed36c6b
CH
1055
1056 ASSERT(xfs_isilocked(ip, XFS_IOLOCK_EXCL));
9ad1a23a
CH
1057 ASSERT(xfs_isilocked(ip, XFS_MMAPLOCK_EXCL));
1058
4ed36c6b
CH
1059 trace_xfs_collapse_file_space(ip);
1060
1061 error = xfs_free_file_space(ip, offset, len);
1062 if (error)
1063 return error;
1064
1065 error = xfs_prepare_shift(ip, offset);
1066 if (error)
1067 return error;
a904b1ca 1068
e1d8fb88 1069 while (!error && !done) {
48af96ab
BF
1070 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_write, resblks, 0, 0,
1071 &tp);
253f4911 1072 if (error)
e1d8fb88 1073 break;
e1d8fb88
NJ
1074
1075 xfs_ilock(ip, XFS_ILOCK_EXCL);
1076 error = xfs_trans_reserve_quota(tp, mp, ip->i_udquot,
48af96ab 1077 ip->i_gdquot, ip->i_pdquot, resblks, 0,
e1d8fb88
NJ
1078 XFS_QMOPT_RES_REGBLKS);
1079 if (error)
d4a97a04 1080 goto out_trans_cancel;
a904b1ca 1081 xfs_trans_ijoin(tp, ip, XFS_ILOCK_EXCL);
e1d8fb88 1082
ecfea3f0 1083 error = xfs_bmap_collapse_extents(tp, ip, &next_fsb, shift_fsb,
333f950c 1084 &done);
e1d8fb88 1085 if (error)
c8eac49e 1086 goto out_trans_cancel;
e1d8fb88 1087
70393313 1088 error = xfs_trans_commit(tp);
e1d8fb88
NJ
1089 }
1090
1091 return error;
1092
d4a97a04 1093out_trans_cancel:
4906e215 1094 xfs_trans_cancel(tp);
e1d8fb88
NJ
1095 return error;
1096}
1097
a904b1ca
NJ
1098/*
1099 * xfs_insert_file_space()
1100 * This routine create hole space by shifting extents for the given file.
1101 * The first thing we do is to sync dirty data and invalidate page cache
1102 * over the region on which insert range is working. And split an extent
1103 * to two extents at given offset by calling xfs_bmap_split_extent.
1104 * And shift all extent records which are laying between [offset,
1105 * last allocated extent] to the right to reserve hole range.
1106 * RETURNS:
1107 * 0 on success
1108 * errno on error
1109 */
1110int
1111xfs_insert_file_space(
1112 struct xfs_inode *ip,
1113 loff_t offset,
1114 loff_t len)
1115{
4ed36c6b
CH
1116 struct xfs_mount *mp = ip->i_mount;
1117 struct xfs_trans *tp;
1118 int error;
4ed36c6b
CH
1119 xfs_fileoff_t stop_fsb = XFS_B_TO_FSB(mp, offset);
1120 xfs_fileoff_t next_fsb = NULLFSBLOCK;
1121 xfs_fileoff_t shift_fsb = XFS_B_TO_FSB(mp, len);
ecfea3f0 1122 bool done = false;
4ed36c6b 1123
a904b1ca 1124 ASSERT(xfs_isilocked(ip, XFS_IOLOCK_EXCL));
9ad1a23a
CH
1125 ASSERT(xfs_isilocked(ip, XFS_MMAPLOCK_EXCL));
1126
a904b1ca
NJ
1127 trace_xfs_insert_file_space(ip);
1128
f62cb48e
DW
1129 error = xfs_bmap_can_insert_extents(ip, stop_fsb, shift_fsb);
1130 if (error)
1131 return error;
1132
4ed36c6b
CH
1133 error = xfs_prepare_shift(ip, offset);
1134 if (error)
1135 return error;
1136
1137 /*
1138 * The extent shifting code works on extent granularity. So, if stop_fsb
1139 * is not the starting block of extent, we need to split the extent at
1140 * stop_fsb.
1141 */
1142 error = xfs_bmap_split_extent(ip, stop_fsb);
1143 if (error)
1144 return error;
1145
1146 while (!error && !done) {
1147 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_write, 0, 0, 0,
1148 &tp);
1149 if (error)
1150 break;
1151
1152 xfs_ilock(ip, XFS_ILOCK_EXCL);
1153 xfs_trans_ijoin(tp, ip, XFS_ILOCK_EXCL);
ecfea3f0 1154 error = xfs_bmap_insert_extents(tp, ip, &next_fsb, shift_fsb,
333f950c 1155 &done, stop_fsb);
4ed36c6b 1156 if (error)
c8eac49e 1157 goto out_trans_cancel;
4ed36c6b 1158
4ed36c6b
CH
1159 error = xfs_trans_commit(tp);
1160 }
1161
1162 return error;
1163
c8eac49e 1164out_trans_cancel:
4ed36c6b
CH
1165 xfs_trans_cancel(tp);
1166 return error;
a904b1ca
NJ
1167}
1168
a133d952
DC
1169/*
1170 * We need to check that the format of the data fork in the temporary inode is
1171 * valid for the target inode before doing the swap. This is not a problem with
1172 * attr1 because of the fixed fork offset, but attr2 has a dynamically sized
1173 * data fork depending on the space the attribute fork is taking so we can get
1174 * invalid formats on the target inode.
1175 *
1176 * E.g. target has space for 7 extents in extent format, temp inode only has
1177 * space for 6. If we defragment down to 7 extents, then the tmp format is a
1178 * btree, but when swapped it needs to be in extent format. Hence we can't just
1179 * blindly swap data forks on attr2 filesystems.
1180 *
1181 * Note that we check the swap in both directions so that we don't end up with
1182 * a corrupt temporary inode, either.
1183 *
1184 * Note that fixing the way xfs_fsr sets up the attribute fork in the source
1185 * inode will prevent this situation from occurring, so all we do here is
1186 * reject and log the attempt. basically we are putting the responsibility on
1187 * userspace to get this right.
1188 */
1189static int
1190xfs_swap_extents_check_format(
e06259aa
DW
1191 struct xfs_inode *ip, /* target inode */
1192 struct xfs_inode *tip) /* tmp inode */
a133d952
DC
1193{
1194
1195 /* Should never get a local format */
1196 if (ip->i_d.di_format == XFS_DINODE_FMT_LOCAL ||
1197 tip->i_d.di_format == XFS_DINODE_FMT_LOCAL)
2451337d 1198 return -EINVAL;
a133d952
DC
1199
1200 /*
1201 * if the target inode has less extents that then temporary inode then
1202 * why did userspace call us?
1203 */
1204 if (ip->i_d.di_nextents < tip->i_d.di_nextents)
2451337d 1205 return -EINVAL;
a133d952 1206
1f08af52
DW
1207 /*
1208 * If we have to use the (expensive) rmap swap method, we can
1209 * handle any number of extents and any format.
1210 */
1211 if (xfs_sb_version_hasrmapbt(&ip->i_mount->m_sb))
1212 return 0;
1213
a133d952
DC
1214 /*
1215 * if the target inode is in extent form and the temp inode is in btree
1216 * form then we will end up with the target inode in the wrong format
1217 * as we already know there are less extents in the temp inode.
1218 */
1219 if (ip->i_d.di_format == XFS_DINODE_FMT_EXTENTS &&
1220 tip->i_d.di_format == XFS_DINODE_FMT_BTREE)
2451337d 1221 return -EINVAL;
a133d952
DC
1222
1223 /* Check temp in extent form to max in target */
1224 if (tip->i_d.di_format == XFS_DINODE_FMT_EXTENTS &&
1225 XFS_IFORK_NEXTENTS(tip, XFS_DATA_FORK) >
1226 XFS_IFORK_MAXEXT(ip, XFS_DATA_FORK))
2451337d 1227 return -EINVAL;
a133d952
DC
1228
1229 /* Check target in extent form to max in temp */
1230 if (ip->i_d.di_format == XFS_DINODE_FMT_EXTENTS &&
1231 XFS_IFORK_NEXTENTS(ip, XFS_DATA_FORK) >
1232 XFS_IFORK_MAXEXT(tip, XFS_DATA_FORK))
2451337d 1233 return -EINVAL;
a133d952
DC
1234
1235 /*
1236 * If we are in a btree format, check that the temp root block will fit
1237 * in the target and that it has enough extents to be in btree format
1238 * in the target.
1239 *
1240 * Note that we have to be careful to allow btree->extent conversions
1241 * (a common defrag case) which will occur when the temp inode is in
1242 * extent format...
1243 */
1244 if (tip->i_d.di_format == XFS_DINODE_FMT_BTREE) {
0cbe48cc 1245 if (XFS_IFORK_Q(ip) &&
a133d952 1246 XFS_BMAP_BMDR_SPACE(tip->i_df.if_broot) > XFS_IFORK_BOFF(ip))
2451337d 1247 return -EINVAL;
a133d952
DC
1248 if (XFS_IFORK_NEXTENTS(tip, XFS_DATA_FORK) <=
1249 XFS_IFORK_MAXEXT(ip, XFS_DATA_FORK))
2451337d 1250 return -EINVAL;
a133d952
DC
1251 }
1252
1253 /* Reciprocal target->temp btree format checks */
1254 if (ip->i_d.di_format == XFS_DINODE_FMT_BTREE) {
0cbe48cc 1255 if (XFS_IFORK_Q(tip) &&
a133d952 1256 XFS_BMAP_BMDR_SPACE(ip->i_df.if_broot) > XFS_IFORK_BOFF(tip))
2451337d 1257 return -EINVAL;
a133d952
DC
1258 if (XFS_IFORK_NEXTENTS(ip, XFS_DATA_FORK) <=
1259 XFS_IFORK_MAXEXT(tip, XFS_DATA_FORK))
2451337d 1260 return -EINVAL;
a133d952
DC
1261 }
1262
1263 return 0;
1264}
1265
7abbb8f9 1266static int
4ef897a2
DC
1267xfs_swap_extent_flush(
1268 struct xfs_inode *ip)
1269{
1270 int error;
1271
1272 error = filemap_write_and_wait(VFS_I(ip)->i_mapping);
1273 if (error)
1274 return error;
1275 truncate_pagecache_range(VFS_I(ip), 0, -1);
1276
1277 /* Verify O_DIRECT for ftmp */
1278 if (VFS_I(ip)->i_mapping->nrpages)
1279 return -EINVAL;
4ef897a2
DC
1280 return 0;
1281}
1282
1f08af52
DW
1283/*
1284 * Move extents from one file to another, when rmap is enabled.
1285 */
1286STATIC int
1287xfs_swap_extent_rmap(
1288 struct xfs_trans **tpp,
1289 struct xfs_inode *ip,
1290 struct xfs_inode *tip)
1291{
7a7943c7 1292 struct xfs_trans *tp = *tpp;
1f08af52
DW
1293 struct xfs_bmbt_irec irec;
1294 struct xfs_bmbt_irec uirec;
1295 struct xfs_bmbt_irec tirec;
1296 xfs_fileoff_t offset_fsb;
1297 xfs_fileoff_t end_fsb;
1298 xfs_filblks_t count_fsb;
1f08af52
DW
1299 int error;
1300 xfs_filblks_t ilen;
1301 xfs_filblks_t rlen;
1302 int nimaps;
c8ce540d 1303 uint64_t tip_flags2;
1f08af52
DW
1304
1305 /*
1306 * If the source file has shared blocks, we must flag the donor
1307 * file as having shared blocks so that we get the shared-block
1308 * rmap functions when we go to fix up the rmaps. The flags
1309 * will be switch for reals later.
1310 */
1311 tip_flags2 = tip->i_d.di_flags2;
1312 if (ip->i_d.di_flags2 & XFS_DIFLAG2_REFLINK)
1313 tip->i_d.di_flags2 |= XFS_DIFLAG2_REFLINK;
1314
1315 offset_fsb = 0;
1316 end_fsb = XFS_B_TO_FSB(ip->i_mount, i_size_read(VFS_I(ip)));
1317 count_fsb = (xfs_filblks_t)(end_fsb - offset_fsb);
1318
1319 while (count_fsb) {
1320 /* Read extent from the donor file */
1321 nimaps = 1;
1322 error = xfs_bmapi_read(tip, offset_fsb, count_fsb, &tirec,
1323 &nimaps, 0);
1324 if (error)
1325 goto out;
1326 ASSERT(nimaps == 1);
1327 ASSERT(tirec.br_startblock != DELAYSTARTBLOCK);
1328
1329 trace_xfs_swap_extent_rmap_remap(tip, &tirec);
1330 ilen = tirec.br_blockcount;
1331
1332 /* Unmap the old blocks in the source file. */
1333 while (tirec.br_blockcount) {
c8eac49e 1334 ASSERT(tp->t_firstblock == NULLFSBLOCK);
1f08af52
DW
1335 trace_xfs_swap_extent_rmap_remap_piece(tip, &tirec);
1336
1337 /* Read extent from the source file */
1338 nimaps = 1;
1339 error = xfs_bmapi_read(ip, tirec.br_startoff,
1340 tirec.br_blockcount, &irec,
1341 &nimaps, 0);
1342 if (error)
d5a2e289 1343 goto out;
1f08af52
DW
1344 ASSERT(nimaps == 1);
1345 ASSERT(tirec.br_startoff == irec.br_startoff);
1346 trace_xfs_swap_extent_rmap_remap_piece(ip, &irec);
1347
1348 /* Trim the extent. */
1349 uirec = tirec;
1350 uirec.br_blockcount = rlen = min_t(xfs_filblks_t,
1351 tirec.br_blockcount,
1352 irec.br_blockcount);
1353 trace_xfs_swap_extent_rmap_remap_piece(tip, &uirec);
1354
1355 /* Remove the mapping from the donor file. */
3e08f42a 1356 xfs_bmap_unmap_extent(tp, tip, &uirec);
1f08af52
DW
1357
1358 /* Remove the mapping from the source file. */
3e08f42a 1359 xfs_bmap_unmap_extent(tp, ip, &irec);
1f08af52
DW
1360
1361 /* Map the donor file's blocks into the source file. */
3e08f42a 1362 xfs_bmap_map_extent(tp, ip, &uirec);
1f08af52
DW
1363
1364 /* Map the source file's blocks into the donor file. */
3e08f42a 1365 xfs_bmap_map_extent(tp, tip, &irec);
1f08af52 1366
9e28a242 1367 error = xfs_defer_finish(tpp);
7a7943c7 1368 tp = *tpp;
1f08af52 1369 if (error)
9b1f4e98 1370 goto out;
1f08af52
DW
1371
1372 tirec.br_startoff += rlen;
1373 if (tirec.br_startblock != HOLESTARTBLOCK &&
1374 tirec.br_startblock != DELAYSTARTBLOCK)
1375 tirec.br_startblock += rlen;
1376 tirec.br_blockcount -= rlen;
1377 }
1378
1379 /* Roll on... */
1380 count_fsb -= ilen;
1381 offset_fsb += ilen;
1382 }
1383
1384 tip->i_d.di_flags2 = tip_flags2;
1385 return 0;
1386
1f08af52
DW
1387out:
1388 trace_xfs_swap_extent_rmap_error(ip, error, _RET_IP_);
1389 tip->i_d.di_flags2 = tip_flags2;
1390 return error;
1391}
1392
39aff5fd
DW
1393/* Swap the extents of two files by swapping data forks. */
1394STATIC int
1395xfs_swap_extent_forks(
1396 struct xfs_trans *tp,
1397 struct xfs_inode *ip,
1398 struct xfs_inode *tip,
1399 int *src_log_flags,
1400 int *target_log_flags)
a133d952 1401{
e7f5d5ca
DW
1402 xfs_filblks_t aforkblks = 0;
1403 xfs_filblks_t taforkblks = 0;
1404 xfs_extnum_t junk;
c8ce540d 1405 uint64_t tmp;
39aff5fd 1406 int error;
a133d952 1407
a133d952
DC
1408 /*
1409 * Count the number of extended attribute blocks
1410 */
1411 if ( ((XFS_IFORK_Q(ip) != 0) && (ip->i_d.di_anextents > 0)) &&
1412 (ip->i_d.di_aformat != XFS_DINODE_FMT_LOCAL)) {
e7f5d5ca 1413 error = xfs_bmap_count_blocks(tp, ip, XFS_ATTR_FORK, &junk,
39aff5fd 1414 &aforkblks);
a133d952 1415 if (error)
39aff5fd 1416 return error;
a133d952
DC
1417 }
1418 if ( ((XFS_IFORK_Q(tip) != 0) && (tip->i_d.di_anextents > 0)) &&
1419 (tip->i_d.di_aformat != XFS_DINODE_FMT_LOCAL)) {
e7f5d5ca 1420 error = xfs_bmap_count_blocks(tp, tip, XFS_ATTR_FORK, &junk,
39aff5fd 1421 &taforkblks);
a133d952 1422 if (error)
39aff5fd 1423 return error;
a133d952
DC
1424 }
1425
21b5c978 1426 /*
6fb10d6d
BF
1427 * Btree format (v3) inodes have the inode number stamped in the bmbt
1428 * block headers. We can't start changing the bmbt blocks until the
1429 * inode owner change is logged so recovery does the right thing in the
1430 * event of a crash. Set the owner change log flags now and leave the
1431 * bmbt scan as the last step.
21b5c978 1432 */
21b5c978 1433 if (ip->i_d.di_version == 3 &&
6fb10d6d 1434 ip->i_d.di_format == XFS_DINODE_FMT_BTREE)
39aff5fd 1435 (*target_log_flags) |= XFS_ILOG_DOWNER;
21b5c978 1436 if (tip->i_d.di_version == 3 &&
6fb10d6d 1437 tip->i_d.di_format == XFS_DINODE_FMT_BTREE)
39aff5fd 1438 (*src_log_flags) |= XFS_ILOG_DOWNER;
21b5c978 1439
a133d952
DC
1440 /*
1441 * Swap the data forks of the inodes
1442 */
897992b7 1443 swap(ip->i_df, tip->i_df);
a133d952
DC
1444
1445 /*
1446 * Fix the on-disk inode values
1447 */
c8ce540d 1448 tmp = (uint64_t)ip->i_d.di_nblocks;
a133d952
DC
1449 ip->i_d.di_nblocks = tip->i_d.di_nblocks - taforkblks + aforkblks;
1450 tip->i_d.di_nblocks = tmp + taforkblks - aforkblks;
1451
897992b7
GS
1452 swap(ip->i_d.di_nextents, tip->i_d.di_nextents);
1453 swap(ip->i_d.di_format, tip->i_d.di_format);
a133d952
DC
1454
1455 /*
1456 * The extents in the source inode could still contain speculative
1457 * preallocation beyond EOF (e.g. the file is open but not modified
1458 * while defrag is in progress). In that case, we need to copy over the
1459 * number of delalloc blocks the data fork in the source inode is
1460 * tracking beyond EOF so that when the fork is truncated away when the
1461 * temporary inode is unlinked we don't underrun the i_delayed_blks
1462 * counter on that inode.
1463 */
1464 ASSERT(tip->i_delayed_blks == 0);
1465 tip->i_delayed_blks = ip->i_delayed_blks;
1466 ip->i_delayed_blks = 0;
1467
a133d952
DC
1468 switch (ip->i_d.di_format) {
1469 case XFS_DINODE_FMT_EXTENTS:
39aff5fd 1470 (*src_log_flags) |= XFS_ILOG_DEXT;
a133d952
DC
1471 break;
1472 case XFS_DINODE_FMT_BTREE:
21b5c978 1473 ASSERT(ip->i_d.di_version < 3 ||
39aff5fd
DW
1474 (*src_log_flags & XFS_ILOG_DOWNER));
1475 (*src_log_flags) |= XFS_ILOG_DBROOT;
a133d952
DC
1476 break;
1477 }
1478
a133d952
DC
1479 switch (tip->i_d.di_format) {
1480 case XFS_DINODE_FMT_EXTENTS:
39aff5fd 1481 (*target_log_flags) |= XFS_ILOG_DEXT;
a133d952
DC
1482 break;
1483 case XFS_DINODE_FMT_BTREE:
39aff5fd 1484 (*target_log_flags) |= XFS_ILOG_DBROOT;
21b5c978 1485 ASSERT(tip->i_d.di_version < 3 ||
39aff5fd 1486 (*target_log_flags & XFS_ILOG_DOWNER));
a133d952
DC
1487 break;
1488 }
1489
39aff5fd
DW
1490 return 0;
1491}
1492
2dd3d709
BF
1493/*
1494 * Fix up the owners of the bmbt blocks to refer to the current inode. The
1495 * change owner scan attempts to order all modified buffers in the current
1496 * transaction. In the event of ordered buffer failure, the offending buffer is
1497 * physically logged as a fallback and the scan returns -EAGAIN. We must roll
1498 * the transaction in this case to replenish the fallback log reservation and
1499 * restart the scan. This process repeats until the scan completes.
1500 */
1501static int
1502xfs_swap_change_owner(
1503 struct xfs_trans **tpp,
1504 struct xfs_inode *ip,
1505 struct xfs_inode *tmpip)
1506{
1507 int error;
1508 struct xfs_trans *tp = *tpp;
1509
1510 do {
1511 error = xfs_bmbt_change_owner(tp, ip, XFS_DATA_FORK, ip->i_ino,
1512 NULL);
1513 /* success or fatal error */
1514 if (error != -EAGAIN)
1515 break;
1516
1517 error = xfs_trans_roll(tpp);
1518 if (error)
1519 break;
1520 tp = *tpp;
1521
1522 /*
1523 * Redirty both inodes so they can relog and keep the log tail
1524 * moving forward.
1525 */
1526 xfs_trans_ijoin(tp, ip, 0);
1527 xfs_trans_ijoin(tp, tmpip, 0);
1528 xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE);
1529 xfs_trans_log_inode(tp, tmpip, XFS_ILOG_CORE);
1530 } while (true);
1531
1532 return error;
1533}
1534
39aff5fd
DW
1535int
1536xfs_swap_extents(
1537 struct xfs_inode *ip, /* target inode */
1538 struct xfs_inode *tip, /* tmp inode */
1539 struct xfs_swapext *sxp)
1540{
1541 struct xfs_mount *mp = ip->i_mount;
1542 struct xfs_trans *tp;
1543 struct xfs_bstat *sbp = &sxp->sx_stat;
1544 int src_log_flags, target_log_flags;
1545 int error = 0;
1546 int lock_flags;
c8ce540d 1547 uint64_t f;
2dd3d709 1548 int resblks = 0;
39aff5fd
DW
1549
1550 /*
1551 * Lock the inodes against other IO, page faults and truncate to
1552 * begin with. Then we can ensure the inodes are flushed and have no
1553 * page cache safely. Once we have done this we can take the ilocks and
1554 * do the rest of the checks.
1555 */
65523218
CH
1556 lock_two_nondirectories(VFS_I(ip), VFS_I(tip));
1557 lock_flags = XFS_MMAPLOCK_EXCL;
7c2d238a 1558 xfs_lock_two_inodes(ip, XFS_MMAPLOCK_EXCL, tip, XFS_MMAPLOCK_EXCL);
39aff5fd
DW
1559
1560 /* Verify that both files have the same format */
1561 if ((VFS_I(ip)->i_mode & S_IFMT) != (VFS_I(tip)->i_mode & S_IFMT)) {
1562 error = -EINVAL;
1563 goto out_unlock;
1564 }
1565
1566 /* Verify both files are either real-time or non-realtime */
1567 if (XFS_IS_REALTIME_INODE(ip) != XFS_IS_REALTIME_INODE(tip)) {
1568 error = -EINVAL;
1569 goto out_unlock;
1570 }
1571
1572 error = xfs_swap_extent_flush(ip);
1573 if (error)
1574 goto out_unlock;
1575 error = xfs_swap_extent_flush(tip);
1576 if (error)
1577 goto out_unlock;
1578
96987eea
CH
1579 if (xfs_inode_has_cow_data(tip)) {
1580 error = xfs_reflink_cancel_cow_range(tip, 0, NULLFILEOFF, true);
1581 if (error)
1582 return error;
1583 }
1584
1f08af52
DW
1585 /*
1586 * Extent "swapping" with rmap requires a permanent reservation and
1587 * a block reservation because it's really just a remap operation
1588 * performed with log redo items!
1589 */
1590 if (xfs_sb_version_hasrmapbt(&mp->m_sb)) {
b3fed434
BF
1591 int w = XFS_DATA_FORK;
1592 uint32_t ipnext = XFS_IFORK_NEXTENTS(ip, w);
1593 uint32_t tipnext = XFS_IFORK_NEXTENTS(tip, w);
1594
1595 /*
1596 * Conceptually this shouldn't affect the shape of either bmbt,
1597 * but since we atomically move extents one by one, we reserve
1598 * enough space to rebuild both trees.
1599 */
1600 resblks = XFS_SWAP_RMAP_SPACE_RES(mp, ipnext, w);
1601 resblks += XFS_SWAP_RMAP_SPACE_RES(mp, tipnext, w);
1602
1f08af52 1603 /*
b3fed434
BF
1604 * Handle the corner case where either inode might straddle the
1605 * btree format boundary. If so, the inode could bounce between
1606 * btree <-> extent format on unmap -> remap cycles, freeing and
1607 * allocating a bmapbt block each time.
1f08af52 1608 */
b3fed434
BF
1609 if (ipnext == (XFS_IFORK_MAXEXT(ip, w) + 1))
1610 resblks += XFS_IFORK_MAXEXT(ip, w);
1611 if (tipnext == (XFS_IFORK_MAXEXT(tip, w) + 1))
1612 resblks += XFS_IFORK_MAXEXT(tip, w);
2dd3d709
BF
1613 }
1614 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_write, resblks, 0, 0, &tp);
39aff5fd
DW
1615 if (error)
1616 goto out_unlock;
1617
1618 /*
1619 * Lock and join the inodes to the tansaction so that transaction commit
1620 * or cancel will unlock the inodes from this point onwards.
1621 */
7c2d238a 1622 xfs_lock_two_inodes(ip, XFS_ILOCK_EXCL, tip, XFS_ILOCK_EXCL);
39aff5fd
DW
1623 lock_flags |= XFS_ILOCK_EXCL;
1624 xfs_trans_ijoin(tp, ip, 0);
1625 xfs_trans_ijoin(tp, tip, 0);
1626
1627
1628 /* Verify all data are being swapped */
1629 if (sxp->sx_offset != 0 ||
1630 sxp->sx_length != ip->i_d.di_size ||
1631 sxp->sx_length != tip->i_d.di_size) {
1632 error = -EFAULT;
1633 goto out_trans_cancel;
1634 }
1635
1636 trace_xfs_swap_extent_before(ip, 0);
1637 trace_xfs_swap_extent_before(tip, 1);
1638
1639 /* check inode formats now that data is flushed */
1640 error = xfs_swap_extents_check_format(ip, tip);
1641 if (error) {
1642 xfs_notice(mp,
1643 "%s: inode 0x%llx format is incompatible for exchanging.",
1644 __func__, ip->i_ino);
1645 goto out_trans_cancel;
1646 }
1647
1648 /*
1649 * Compare the current change & modify times with that
1650 * passed in. If they differ, we abort this swap.
1651 * This is the mechanism used to ensure the calling
1652 * process that the file was not changed out from
1653 * under it.
1654 */
1655 if ((sbp->bs_ctime.tv_sec != VFS_I(ip)->i_ctime.tv_sec) ||
1656 (sbp->bs_ctime.tv_nsec != VFS_I(ip)->i_ctime.tv_nsec) ||
1657 (sbp->bs_mtime.tv_sec != VFS_I(ip)->i_mtime.tv_sec) ||
1658 (sbp->bs_mtime.tv_nsec != VFS_I(ip)->i_mtime.tv_nsec)) {
1659 error = -EBUSY;
1660 goto out_trans_cancel;
1661 }
1662
1663 /*
1664 * Note the trickiness in setting the log flags - we set the owner log
1665 * flag on the opposite inode (i.e. the inode we are setting the new
1666 * owner to be) because once we swap the forks and log that, log
1667 * recovery is going to see the fork as owned by the swapped inode,
1668 * not the pre-swapped inodes.
1669 */
1670 src_log_flags = XFS_ILOG_CORE;
1671 target_log_flags = XFS_ILOG_CORE;
1672
1f08af52
DW
1673 if (xfs_sb_version_hasrmapbt(&mp->m_sb))
1674 error = xfs_swap_extent_rmap(&tp, ip, tip);
1675 else
1676 error = xfs_swap_extent_forks(tp, ip, tip, &src_log_flags,
1677 &target_log_flags);
39aff5fd
DW
1678 if (error)
1679 goto out_trans_cancel;
1680
f0bc4d13
DW
1681 /* Do we have to swap reflink flags? */
1682 if ((ip->i_d.di_flags2 & XFS_DIFLAG2_REFLINK) ^
1683 (tip->i_d.di_flags2 & XFS_DIFLAG2_REFLINK)) {
1684 f = ip->i_d.di_flags2 & XFS_DIFLAG2_REFLINK;
1685 ip->i_d.di_flags2 &= ~XFS_DIFLAG2_REFLINK;
1686 ip->i_d.di_flags2 |= tip->i_d.di_flags2 & XFS_DIFLAG2_REFLINK;
1687 tip->i_d.di_flags2 &= ~XFS_DIFLAG2_REFLINK;
1688 tip->i_d.di_flags2 |= f & XFS_DIFLAG2_REFLINK;
52bfcdd7
DW
1689 }
1690
1691 /* Swap the cow forks. */
1692 if (xfs_sb_version_hasreflink(&mp->m_sb)) {
52bfcdd7
DW
1693 ASSERT(ip->i_cformat == XFS_DINODE_FMT_EXTENTS);
1694 ASSERT(tip->i_cformat == XFS_DINODE_FMT_EXTENTS);
1695
897992b7
GS
1696 swap(ip->i_cnextents, tip->i_cnextents);
1697 swap(ip->i_cowfp, tip->i_cowfp);
52bfcdd7 1698
5bcffe30 1699 if (ip->i_cowfp && ip->i_cowfp->if_bytes)
52bfcdd7
DW
1700 xfs_inode_set_cowblocks_tag(ip);
1701 else
1702 xfs_inode_clear_cowblocks_tag(ip);
5bcffe30 1703 if (tip->i_cowfp && tip->i_cowfp->if_bytes)
52bfcdd7
DW
1704 xfs_inode_set_cowblocks_tag(tip);
1705 else
1706 xfs_inode_clear_cowblocks_tag(tip);
f0bc4d13
DW
1707 }
1708
a133d952
DC
1709 xfs_trans_log_inode(tp, ip, src_log_flags);
1710 xfs_trans_log_inode(tp, tip, target_log_flags);
1711
6fb10d6d
BF
1712 /*
1713 * The extent forks have been swapped, but crc=1,rmapbt=0 filesystems
1714 * have inode number owner values in the bmbt blocks that still refer to
1715 * the old inode. Scan each bmbt to fix up the owner values with the
1716 * inode number of the current inode.
1717 */
1718 if (src_log_flags & XFS_ILOG_DOWNER) {
2dd3d709 1719 error = xfs_swap_change_owner(&tp, ip, tip);
6fb10d6d
BF
1720 if (error)
1721 goto out_trans_cancel;
1722 }
1723 if (target_log_flags & XFS_ILOG_DOWNER) {
2dd3d709 1724 error = xfs_swap_change_owner(&tp, tip, ip);
6fb10d6d
BF
1725 if (error)
1726 goto out_trans_cancel;
1727 }
1728
a133d952
DC
1729 /*
1730 * If this is a synchronous mount, make sure that the
1731 * transaction goes to disk before returning to the user.
1732 */
1733 if (mp->m_flags & XFS_MOUNT_WSYNC)
1734 xfs_trans_set_sync(tp);
1735
70393313 1736 error = xfs_trans_commit(tp);
a133d952
DC
1737
1738 trace_xfs_swap_extent_after(ip, 0);
1739 trace_xfs_swap_extent_after(tip, 1);
a133d952 1740
65523218 1741out_unlock:
81217683
DC
1742 xfs_iunlock(ip, lock_flags);
1743 xfs_iunlock(tip, lock_flags);
65523218 1744 unlock_two_nondirectories(VFS_I(ip), VFS_I(tip));
39aff5fd 1745 return error;
a133d952
DC
1746
1747out_trans_cancel:
4906e215 1748 xfs_trans_cancel(tp);
65523218 1749 goto out_unlock;
a133d952 1750}