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[mirror_ubuntu-artful-kernel.git] / fs / xfs / xfs_mount.c
CommitLineData
1da177e4 1/*
7b718769
NS
2 * Copyright (c) 2000-2005 Silicon Graphics, Inc.
3 * All Rights Reserved.
1da177e4 4 *
7b718769
NS
5 * This program is free software; you can redistribute it and/or
6 * modify it under the terms of the GNU General Public License as
1da177e4
LT
7 * published by the Free Software Foundation.
8 *
7b718769
NS
9 * This program is distributed in the hope that it would be useful,
10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
12 * GNU General Public License for more details.
1da177e4 13 *
7b718769
NS
14 * You should have received a copy of the GNU General Public License
15 * along with this program; if not, write the Free Software Foundation,
16 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
1da177e4 17 */
1da177e4 18#include "xfs.h"
a844f451 19#include "xfs_fs.h"
70a9883c 20#include "xfs_shared.h"
239880ef
DC
21#include "xfs_format.h"
22#include "xfs_log_format.h"
23#include "xfs_trans_resv.h"
a844f451 24#include "xfs_bit.h"
1da177e4 25#include "xfs_sb.h"
1da177e4 26#include "xfs_mount.h"
3ab78df2 27#include "xfs_defer.h"
57062787 28#include "xfs_da_format.h"
9a2cc41c 29#include "xfs_da_btree.h"
1da177e4 30#include "xfs_inode.h"
a4fbe6ab 31#include "xfs_dir2.h"
a844f451 32#include "xfs_ialloc.h"
1da177e4
LT
33#include "xfs_alloc.h"
34#include "xfs_rtalloc.h"
35#include "xfs_bmap.h"
a4fbe6ab
DC
36#include "xfs_trans.h"
37#include "xfs_trans_priv.h"
38#include "xfs_log.h"
1da177e4 39#include "xfs_error.h"
1da177e4
LT
40#include "xfs_quota.h"
41#include "xfs_fsops.h"
0b1b213f 42#include "xfs_trace.h"
6d8b79cf 43#include "xfs_icache.h"
a31b1d3d 44#include "xfs_sysfs.h"
035e00ac 45#include "xfs_rmap_btree.h"
1946b91c 46#include "xfs_refcount_btree.h"
174edb0e 47#include "xfs_reflink.h"
ebf55872 48#include "xfs_extent_busy.h"
0b1b213f 49
1da177e4 50
27174203
CH
51static DEFINE_MUTEX(xfs_uuid_table_mutex);
52static int xfs_uuid_table_size;
53static uuid_t *xfs_uuid_table;
54
af3b6382
DW
55void
56xfs_uuid_table_free(void)
57{
58 if (xfs_uuid_table_size == 0)
59 return;
60 kmem_free(xfs_uuid_table);
61 xfs_uuid_table = NULL;
62 xfs_uuid_table_size = 0;
63}
64
27174203
CH
65/*
66 * See if the UUID is unique among mounted XFS filesystems.
67 * Mount fails if UUID is nil or a FS with the same UUID is already mounted.
68 */
69STATIC int
70xfs_uuid_mount(
71 struct xfs_mount *mp)
72{
73 uuid_t *uuid = &mp->m_sb.sb_uuid;
74 int hole, i;
75
8f720d9f 76 /* Publish UUID in struct super_block */
85787090 77 uuid_copy(&mp->m_super->s_uuid, uuid);
8f720d9f 78
27174203
CH
79 if (mp->m_flags & XFS_MOUNT_NOUUID)
80 return 0;
81
d905fdaa
AG
82 if (uuid_is_null(uuid)) {
83 xfs_warn(mp, "Filesystem has null UUID - can't mount");
2451337d 84 return -EINVAL;
27174203
CH
85 }
86
87 mutex_lock(&xfs_uuid_table_mutex);
88 for (i = 0, hole = -1; i < xfs_uuid_table_size; i++) {
d905fdaa 89 if (uuid_is_null(&xfs_uuid_table[i])) {
27174203
CH
90 hole = i;
91 continue;
92 }
93 if (uuid_equal(uuid, &xfs_uuid_table[i]))
94 goto out_duplicate;
95 }
96
97 if (hole < 0) {
98 xfs_uuid_table = kmem_realloc(xfs_uuid_table,
99 (xfs_uuid_table_size + 1) * sizeof(*xfs_uuid_table),
27174203
CH
100 KM_SLEEP);
101 hole = xfs_uuid_table_size++;
102 }
103 xfs_uuid_table[hole] = *uuid;
104 mutex_unlock(&xfs_uuid_table_mutex);
105
106 return 0;
107
108 out_duplicate:
109 mutex_unlock(&xfs_uuid_table_mutex);
021000e5 110 xfs_warn(mp, "Filesystem has duplicate UUID %pU - can't mount", uuid);
2451337d 111 return -EINVAL;
27174203
CH
112}
113
114STATIC void
115xfs_uuid_unmount(
116 struct xfs_mount *mp)
117{
118 uuid_t *uuid = &mp->m_sb.sb_uuid;
119 int i;
120
121 if (mp->m_flags & XFS_MOUNT_NOUUID)
122 return;
123
124 mutex_lock(&xfs_uuid_table_mutex);
125 for (i = 0; i < xfs_uuid_table_size; i++) {
d905fdaa 126 if (uuid_is_null(&xfs_uuid_table[i]))
27174203
CH
127 continue;
128 if (!uuid_equal(uuid, &xfs_uuid_table[i]))
129 continue;
130 memset(&xfs_uuid_table[i], 0, sizeof(uuid_t));
131 break;
132 }
133 ASSERT(i < xfs_uuid_table_size);
134 mutex_unlock(&xfs_uuid_table_mutex);
135}
136
137
e176579e
DC
138STATIC void
139__xfs_free_perag(
140 struct rcu_head *head)
141{
142 struct xfs_perag *pag = container_of(head, struct xfs_perag, rcu_head);
143
144 ASSERT(atomic_read(&pag->pag_ref) == 0);
145 kmem_free(pag);
146}
147
1da177e4 148/*
e176579e 149 * Free up the per-ag resources associated with the mount structure.
1da177e4 150 */
c962fb79 151STATIC void
ff4f038c 152xfs_free_perag(
745f6919 153 xfs_mount_t *mp)
1da177e4 154{
1c1c6ebc
DC
155 xfs_agnumber_t agno;
156 struct xfs_perag *pag;
157
158 for (agno = 0; agno < mp->m_sb.sb_agcount; agno++) {
159 spin_lock(&mp->m_perag_lock);
160 pag = radix_tree_delete(&mp->m_perag_tree, agno);
161 spin_unlock(&mp->m_perag_lock);
e176579e 162 ASSERT(pag);
f83282a8 163 ASSERT(atomic_read(&pag->pag_ref) == 0);
6031e73a 164 xfs_buf_hash_destroy(pag);
e176579e 165 call_rcu(&pag->rcu_head, __xfs_free_perag);
1da177e4 166 }
1da177e4
LT
167}
168
4cc929ee
NS
169/*
170 * Check size of device based on the (data/realtime) block count.
171 * Note: this check is used by the growfs code as well as mount.
172 */
173int
174xfs_sb_validate_fsb_count(
175 xfs_sb_t *sbp,
c8ce540d 176 uint64_t nblocks)
4cc929ee
NS
177{
178 ASSERT(PAGE_SHIFT >= sbp->sb_blocklog);
179 ASSERT(sbp->sb_blocklog >= BBSHIFT);
180
d5cf09ba 181 /* Limited by ULONG_MAX of page cache index */
09cbfeaf 182 if (nblocks >> (PAGE_SHIFT - sbp->sb_blocklog) > ULONG_MAX)
2451337d 183 return -EFBIG;
4cc929ee
NS
184 return 0;
185}
1da177e4 186
1c1c6ebc 187int
c11e2c36 188xfs_initialize_perag(
c11e2c36 189 xfs_mount_t *mp,
1c1c6ebc
DC
190 xfs_agnumber_t agcount,
191 xfs_agnumber_t *maxagi)
1da177e4 192{
2d2194f6 193 xfs_agnumber_t index;
b20fe473 194 xfs_agnumber_t first_initialised = NULLAGNUMBER;
1da177e4 195 xfs_perag_t *pag;
8b26c582 196 int error = -ENOMEM;
1da177e4 197
1c1c6ebc
DC
198 /*
199 * Walk the current per-ag tree so we don't try to initialise AGs
200 * that already exist (growfs case). Allocate and insert all the
201 * AGs we don't find ready for initialisation.
202 */
203 for (index = 0; index < agcount; index++) {
204 pag = xfs_perag_get(mp, index);
205 if (pag) {
206 xfs_perag_put(pag);
207 continue;
208 }
fb3b504a 209
1c1c6ebc
DC
210 pag = kmem_zalloc(sizeof(*pag), KM_MAYFAIL);
211 if (!pag)
b20fe473 212 goto out_unwind_new_pags;
fb3b504a
CH
213 pag->pag_agno = index;
214 pag->pag_mount = mp;
1a427ab0 215 spin_lock_init(&pag->pag_ici_lock);
69b491c2 216 mutex_init(&pag->pag_ici_reclaim_lock);
fb3b504a 217 INIT_RADIX_TREE(&pag->pag_ici_root, GFP_ATOMIC);
6031e73a 218 if (xfs_buf_hash_init(pag))
b20fe473 219 goto out_free_pag;
ebf55872 220 init_waitqueue_head(&pag->pagb_wait);
fb3b504a 221
1c1c6ebc 222 if (radix_tree_preload(GFP_NOFS))
b20fe473 223 goto out_hash_destroy;
fb3b504a 224
1c1c6ebc
DC
225 spin_lock(&mp->m_perag_lock);
226 if (radix_tree_insert(&mp->m_perag_tree, index, pag)) {
227 BUG();
228 spin_unlock(&mp->m_perag_lock);
8b26c582
DC
229 radix_tree_preload_end();
230 error = -EEXIST;
b20fe473 231 goto out_hash_destroy;
1c1c6ebc
DC
232 }
233 spin_unlock(&mp->m_perag_lock);
234 radix_tree_preload_end();
b20fe473
BD
235 /* first new pag is fully initialized */
236 if (first_initialised == NULLAGNUMBER)
237 first_initialised = index;
1c1c6ebc
DC
238 }
239
12c3f05c 240 index = xfs_set_inode_alloc(mp, agcount);
fb3b504a 241
1c1c6ebc
DC
242 if (maxagi)
243 *maxagi = index;
8018026e
DW
244
245 mp->m_ag_prealloc_blocks = xfs_prealloc_blocks(mp);
1c1c6ebc 246 return 0;
8b26c582 247
b20fe473 248out_hash_destroy:
6031e73a 249 xfs_buf_hash_destroy(pag);
b20fe473 250out_free_pag:
8b26c582 251 kmem_free(pag);
b20fe473
BD
252out_unwind_new_pags:
253 /* unwind any prior newly initialized pags */
254 for (index = first_initialised; index < agcount; index++) {
8b26c582 255 pag = radix_tree_delete(&mp->m_perag_tree, index);
b20fe473
BD
256 if (!pag)
257 break;
6031e73a 258 xfs_buf_hash_destroy(pag);
8b26c582
DC
259 kmem_free(pag);
260 }
261 return error;
1da177e4
LT
262}
263
1da177e4
LT
264/*
265 * xfs_readsb
266 *
267 * Does the initial read of the superblock.
268 */
269int
ff55068c
DC
270xfs_readsb(
271 struct xfs_mount *mp,
272 int flags)
1da177e4
LT
273{
274 unsigned int sector_size;
04a1e6c5
DC
275 struct xfs_buf *bp;
276 struct xfs_sb *sbp = &mp->m_sb;
1da177e4 277 int error;
af34e09d 278 int loud = !(flags & XFS_MFSI_QUIET);
daba5427 279 const struct xfs_buf_ops *buf_ops;
1da177e4
LT
280
281 ASSERT(mp->m_sb_bp == NULL);
282 ASSERT(mp->m_ddev_targp != NULL);
283
daba5427
ES
284 /*
285 * For the initial read, we must guess at the sector
286 * size based on the block device. It's enough to
287 * get the sb_sectsize out of the superblock and
288 * then reread with the proper length.
289 * We don't verify it yet, because it may not be complete.
290 */
291 sector_size = xfs_getsize_buftarg(mp->m_ddev_targp);
292 buf_ops = NULL;
293
1da177e4 294 /*
c891c30a
BF
295 * Allocate a (locked) buffer to hold the superblock. This will be kept
296 * around at all times to optimize access to the superblock. Therefore,
297 * set XBF_NO_IOACCT to make sure it doesn't hold the buftarg count
298 * elevated.
1da177e4 299 */
26af6552 300reread:
ba372674 301 error = xfs_buf_read_uncached(mp->m_ddev_targp, XFS_SB_DADDR,
c891c30a
BF
302 BTOBB(sector_size), XBF_NO_IOACCT, &bp,
303 buf_ops);
ba372674 304 if (error) {
eab4e633 305 if (loud)
e721f504 306 xfs_warn(mp, "SB validate failed with error %d.", error);
ac75a1f7 307 /* bad CRC means corrupted metadata */
2451337d
DC
308 if (error == -EFSBADCRC)
309 error = -EFSCORRUPTED;
ba372674 310 return error;
eab4e633 311 }
1da177e4
LT
312
313 /*
314 * Initialize the mount structure from the superblock.
1da177e4 315 */
556b8883 316 xfs_sb_from_disk(sbp, XFS_BUF_TO_SBP(bp));
556b8883
DC
317
318 /*
319 * If we haven't validated the superblock, do so now before we try
320 * to check the sector size and reread the superblock appropriately.
321 */
322 if (sbp->sb_magicnum != XFS_SB_MAGIC) {
323 if (loud)
324 xfs_warn(mp, "Invalid superblock magic number");
2451337d 325 error = -EINVAL;
556b8883
DC
326 goto release_buf;
327 }
ff55068c 328
1da177e4
LT
329 /*
330 * We must be able to do sector-sized and sector-aligned IO.
331 */
04a1e6c5 332 if (sector_size > sbp->sb_sectsize) {
af34e09d
DC
333 if (loud)
334 xfs_warn(mp, "device supports %u byte sectors (not %u)",
04a1e6c5 335 sector_size, sbp->sb_sectsize);
2451337d 336 error = -ENOSYS;
26af6552 337 goto release_buf;
1da177e4
LT
338 }
339
daba5427 340 if (buf_ops == NULL) {
556b8883
DC
341 /*
342 * Re-read the superblock so the buffer is correctly sized,
343 * and properly verified.
344 */
1da177e4 345 xfs_buf_relse(bp);
04a1e6c5 346 sector_size = sbp->sb_sectsize;
daba5427 347 buf_ops = loud ? &xfs_sb_buf_ops : &xfs_sb_quiet_buf_ops;
26af6552 348 goto reread;
1da177e4
LT
349 }
350
5681ca40 351 xfs_reinit_percpu_counters(mp);
8d280b98 352
04a1e6c5
DC
353 /* no need to be quiet anymore, so reset the buf ops */
354 bp->b_ops = &xfs_sb_buf_ops;
355
1da177e4 356 mp->m_sb_bp = bp;
26af6552 357 xfs_buf_unlock(bp);
1da177e4
LT
358 return 0;
359
26af6552
DC
360release_buf:
361 xfs_buf_relse(bp);
1da177e4
LT
362 return error;
363}
364
1da177e4 365/*
0771fb45 366 * Update alignment values based on mount options and sb values
1da177e4 367 */
0771fb45 368STATIC int
7884bc86 369xfs_update_alignment(xfs_mount_t *mp)
1da177e4 370{
1da177e4 371 xfs_sb_t *sbp = &(mp->m_sb);
1da177e4 372
4249023a 373 if (mp->m_dalign) {
1da177e4
LT
374 /*
375 * If stripe unit and stripe width are not multiples
376 * of the fs blocksize turn off alignment.
377 */
378 if ((BBTOB(mp->m_dalign) & mp->m_blockmask) ||
379 (BBTOB(mp->m_swidth) & mp->m_blockmask)) {
39a45d84
JL
380 xfs_warn(mp,
381 "alignment check failed: sunit/swidth vs. blocksize(%d)",
382 sbp->sb_blocksize);
2451337d 383 return -EINVAL;
1da177e4
LT
384 } else {
385 /*
386 * Convert the stripe unit and width to FSBs.
387 */
388 mp->m_dalign = XFS_BB_TO_FSBT(mp, mp->m_dalign);
389 if (mp->m_dalign && (sbp->sb_agblocks % mp->m_dalign)) {
53487786 390 xfs_warn(mp,
39a45d84
JL
391 "alignment check failed: sunit/swidth vs. agsize(%d)",
392 sbp->sb_agblocks);
2451337d 393 return -EINVAL;
1da177e4
LT
394 } else if (mp->m_dalign) {
395 mp->m_swidth = XFS_BB_TO_FSBT(mp, mp->m_swidth);
396 } else {
39a45d84
JL
397 xfs_warn(mp,
398 "alignment check failed: sunit(%d) less than bsize(%d)",
399 mp->m_dalign, sbp->sb_blocksize);
2451337d 400 return -EINVAL;
1da177e4
LT
401 }
402 }
403
404 /*
405 * Update superblock with new values
406 * and log changes
407 */
62118709 408 if (xfs_sb_version_hasdalign(sbp)) {
1da177e4
LT
409 if (sbp->sb_unit != mp->m_dalign) {
410 sbp->sb_unit = mp->m_dalign;
61e63ecb 411 mp->m_update_sb = true;
1da177e4
LT
412 }
413 if (sbp->sb_width != mp->m_swidth) {
414 sbp->sb_width = mp->m_swidth;
61e63ecb 415 mp->m_update_sb = true;
1da177e4 416 }
34d7f603
JL
417 } else {
418 xfs_warn(mp,
419 "cannot change alignment: superblock does not support data alignment");
2451337d 420 return -EINVAL;
1da177e4
LT
421 }
422 } else if ((mp->m_flags & XFS_MOUNT_NOALIGN) != XFS_MOUNT_NOALIGN &&
62118709 423 xfs_sb_version_hasdalign(&mp->m_sb)) {
1da177e4
LT
424 mp->m_dalign = sbp->sb_unit;
425 mp->m_swidth = sbp->sb_width;
426 }
427
0771fb45
ES
428 return 0;
429}
1da177e4 430
0771fb45
ES
431/*
432 * Set the maximum inode count for this filesystem
433 */
434STATIC void
435xfs_set_maxicount(xfs_mount_t *mp)
436{
437 xfs_sb_t *sbp = &(mp->m_sb);
c8ce540d 438 uint64_t icount;
1da177e4 439
0771fb45
ES
440 if (sbp->sb_imax_pct) {
441 /*
442 * Make sure the maximum inode count is a multiple
443 * of the units we allocate inodes in.
1da177e4 444 */
1da177e4
LT
445 icount = sbp->sb_dblocks * sbp->sb_imax_pct;
446 do_div(icount, 100);
447 do_div(icount, mp->m_ialloc_blks);
448 mp->m_maxicount = (icount * mp->m_ialloc_blks) <<
449 sbp->sb_inopblog;
0771fb45 450 } else {
1da177e4 451 mp->m_maxicount = 0;
1da177e4 452 }
0771fb45
ES
453}
454
455/*
456 * Set the default minimum read and write sizes unless
457 * already specified in a mount option.
458 * We use smaller I/O sizes when the file system
459 * is being used for NFS service (wsync mount option).
460 */
461STATIC void
462xfs_set_rw_sizes(xfs_mount_t *mp)
463{
464 xfs_sb_t *sbp = &(mp->m_sb);
465 int readio_log, writeio_log;
1da177e4 466
1da177e4
LT
467 if (!(mp->m_flags & XFS_MOUNT_DFLT_IOSIZE)) {
468 if (mp->m_flags & XFS_MOUNT_WSYNC) {
469 readio_log = XFS_WSYNC_READIO_LOG;
470 writeio_log = XFS_WSYNC_WRITEIO_LOG;
471 } else {
472 readio_log = XFS_READIO_LOG_LARGE;
473 writeio_log = XFS_WRITEIO_LOG_LARGE;
474 }
475 } else {
476 readio_log = mp->m_readio_log;
477 writeio_log = mp->m_writeio_log;
478 }
479
1da177e4
LT
480 if (sbp->sb_blocklog > readio_log) {
481 mp->m_readio_log = sbp->sb_blocklog;
482 } else {
483 mp->m_readio_log = readio_log;
484 }
485 mp->m_readio_blocks = 1 << (mp->m_readio_log - sbp->sb_blocklog);
486 if (sbp->sb_blocklog > writeio_log) {
487 mp->m_writeio_log = sbp->sb_blocklog;
488 } else {
489 mp->m_writeio_log = writeio_log;
490 }
491 mp->m_writeio_blocks = 1 << (mp->m_writeio_log - sbp->sb_blocklog);
0771fb45 492}
1da177e4 493
055388a3
DC
494/*
495 * precalculate the low space thresholds for dynamic speculative preallocation.
496 */
497void
498xfs_set_low_space_thresholds(
499 struct xfs_mount *mp)
500{
501 int i;
502
503 for (i = 0; i < XFS_LOWSP_MAX; i++) {
c8ce540d 504 uint64_t space = mp->m_sb.sb_dblocks;
055388a3
DC
505
506 do_div(space, 100);
507 mp->m_low_space[i] = space * (i + 1);
508 }
509}
510
511
0771fb45
ES
512/*
513 * Set whether we're using inode alignment.
514 */
515STATIC void
516xfs_set_inoalignment(xfs_mount_t *mp)
517{
62118709 518 if (xfs_sb_version_hasalign(&mp->m_sb) &&
d5825712 519 mp->m_sb.sb_inoalignmt >= xfs_icluster_size_fsb(mp))
1da177e4
LT
520 mp->m_inoalign_mask = mp->m_sb.sb_inoalignmt - 1;
521 else
522 mp->m_inoalign_mask = 0;
523 /*
524 * If we are using stripe alignment, check whether
525 * the stripe unit is a multiple of the inode alignment
526 */
527 if (mp->m_dalign && mp->m_inoalign_mask &&
528 !(mp->m_dalign & mp->m_inoalign_mask))
529 mp->m_sinoalign = mp->m_dalign;
530 else
531 mp->m_sinoalign = 0;
0771fb45
ES
532}
533
534/*
0471f62e 535 * Check that the data (and log if separate) is an ok size.
0771fb45
ES
536 */
537STATIC int
ba372674
DC
538xfs_check_sizes(
539 struct xfs_mount *mp)
0771fb45 540{
ba372674 541 struct xfs_buf *bp;
0771fb45 542 xfs_daddr_t d;
ba372674 543 int error;
0771fb45 544
1da177e4
LT
545 d = (xfs_daddr_t)XFS_FSB_TO_BB(mp, mp->m_sb.sb_dblocks);
546 if (XFS_BB_TO_FSB(mp, d) != mp->m_sb.sb_dblocks) {
0b932ccc 547 xfs_warn(mp, "filesystem size mismatch detected");
2451337d 548 return -EFBIG;
1da177e4 549 }
ba372674 550 error = xfs_buf_read_uncached(mp->m_ddev_targp,
1922c949 551 d - XFS_FSS_TO_BB(mp, 1),
ba372674
DC
552 XFS_FSS_TO_BB(mp, 1), 0, &bp, NULL);
553 if (error) {
0b932ccc 554 xfs_warn(mp, "last sector read failed");
ba372674 555 return error;
1da177e4 556 }
1922c949 557 xfs_buf_relse(bp);
1da177e4 558
ba372674
DC
559 if (mp->m_logdev_targp == mp->m_ddev_targp)
560 return 0;
561
562 d = (xfs_daddr_t)XFS_FSB_TO_BB(mp, mp->m_sb.sb_logblocks);
563 if (XFS_BB_TO_FSB(mp, d) != mp->m_sb.sb_logblocks) {
564 xfs_warn(mp, "log size mismatch detected");
565 return -EFBIG;
566 }
567 error = xfs_buf_read_uncached(mp->m_logdev_targp,
1922c949 568 d - XFS_FSB_TO_BB(mp, 1),
ba372674
DC
569 XFS_FSB_TO_BB(mp, 1), 0, &bp, NULL);
570 if (error) {
571 xfs_warn(mp, "log device read failed");
572 return error;
0771fb45 573 }
ba372674 574 xfs_buf_relse(bp);
0771fb45
ES
575 return 0;
576}
577
7d095257
CH
578/*
579 * Clear the quotaflags in memory and in the superblock.
580 */
581int
582xfs_mount_reset_sbqflags(
583 struct xfs_mount *mp)
584{
7d095257
CH
585 mp->m_qflags = 0;
586
61e63ecb 587 /* It is OK to look at sb_qflags in the mount path without m_sb_lock. */
7d095257
CH
588 if (mp->m_sb.sb_qflags == 0)
589 return 0;
590 spin_lock(&mp->m_sb_lock);
591 mp->m_sb.sb_qflags = 0;
592 spin_unlock(&mp->m_sb_lock);
593
61e63ecb 594 if (!xfs_fs_writable(mp, SB_FREEZE_WRITE))
7d095257
CH
595 return 0;
596
61e63ecb 597 return xfs_sync_sb(mp, false);
7d095257
CH
598}
599
c8ce540d 600uint64_t
d5db0f97
ES
601xfs_default_resblks(xfs_mount_t *mp)
602{
c8ce540d 603 uint64_t resblks;
d5db0f97
ES
604
605 /*
8babd8a2
DC
606 * We default to 5% or 8192 fsbs of space reserved, whichever is
607 * smaller. This is intended to cover concurrent allocation
608 * transactions when we initially hit enospc. These each require a 4
609 * block reservation. Hence by default we cover roughly 2000 concurrent
610 * allocation reservations.
d5db0f97
ES
611 */
612 resblks = mp->m_sb.sb_dblocks;
613 do_div(resblks, 20);
c8ce540d 614 resblks = min_t(uint64_t, resblks, 8192);
d5db0f97
ES
615 return resblks;
616}
617
0771fb45 618/*
0771fb45
ES
619 * This function does the following on an initial mount of a file system:
620 * - reads the superblock from disk and init the mount struct
621 * - if we're a 32-bit kernel, do a size check on the superblock
622 * so we don't mount terabyte filesystems
623 * - init mount struct realtime fields
624 * - allocate inode hash table for fs
625 * - init directory manager
626 * - perform recovery and init the log manager
627 */
628int
629xfs_mountfs(
f0b2efad 630 struct xfs_mount *mp)
0771fb45 631{
f0b2efad
BF
632 struct xfs_sb *sbp = &(mp->m_sb);
633 struct xfs_inode *rip;
c8ce540d 634 uint64_t resblks;
f0b2efad
BF
635 uint quotamount = 0;
636 uint quotaflags = 0;
637 int error = 0;
0771fb45 638
ff55068c 639 xfs_sb_mount_common(mp, sbp);
0771fb45 640
ee1c0908 641 /*
074e427b
DC
642 * Check for a mismatched features2 values. Older kernels read & wrote
643 * into the wrong sb offset for sb_features2 on some platforms due to
644 * xfs_sb_t not being 64bit size aligned when sb_features2 was added,
645 * which made older superblock reading/writing routines swap it as a
646 * 64-bit value.
ee1c0908 647 *
e6957ea4
ES
648 * For backwards compatibility, we make both slots equal.
649 *
074e427b
DC
650 * If we detect a mismatched field, we OR the set bits into the existing
651 * features2 field in case it has already been modified; we don't want
652 * to lose any features. We then update the bad location with the ORed
653 * value so that older kernels will see any features2 flags. The
654 * superblock writeback code ensures the new sb_features2 is copied to
655 * sb_bad_features2 before it is logged or written to disk.
ee1c0908 656 */
e6957ea4 657 if (xfs_sb_has_mismatched_features2(sbp)) {
0b932ccc 658 xfs_warn(mp, "correcting sb_features alignment problem");
ee1c0908 659 sbp->sb_features2 |= sbp->sb_bad_features2;
61e63ecb 660 mp->m_update_sb = true;
e6957ea4
ES
661
662 /*
663 * Re-check for ATTR2 in case it was found in bad_features2
664 * slot.
665 */
7c12f296
TS
666 if (xfs_sb_version_hasattr2(&mp->m_sb) &&
667 !(mp->m_flags & XFS_MOUNT_NOATTR2))
e6957ea4 668 mp->m_flags |= XFS_MOUNT_ATTR2;
7c12f296
TS
669 }
670
671 if (xfs_sb_version_hasattr2(&mp->m_sb) &&
672 (mp->m_flags & XFS_MOUNT_NOATTR2)) {
673 xfs_sb_version_removeattr2(&mp->m_sb);
61e63ecb 674 mp->m_update_sb = true;
e6957ea4 675
7c12f296
TS
676 /* update sb_versionnum for the clearing of the morebits */
677 if (!sbp->sb_features2)
61e63ecb 678 mp->m_update_sb = true;
ee1c0908
DC
679 }
680
263997a6
DC
681 /* always use v2 inodes by default now */
682 if (!(mp->m_sb.sb_versionnum & XFS_SB_VERSION_NLINKBIT)) {
683 mp->m_sb.sb_versionnum |= XFS_SB_VERSION_NLINKBIT;
61e63ecb 684 mp->m_update_sb = true;
263997a6
DC
685 }
686
0771fb45
ES
687 /*
688 * Check if sb_agblocks is aligned at stripe boundary
689 * If sb_agblocks is NOT aligned turn off m_dalign since
690 * allocator alignment is within an ag, therefore ag has
691 * to be aligned at stripe boundary.
692 */
7884bc86 693 error = xfs_update_alignment(mp);
0771fb45 694 if (error)
f9057e3d 695 goto out;
0771fb45
ES
696
697 xfs_alloc_compute_maxlevels(mp);
698 xfs_bmap_compute_maxlevels(mp, XFS_DATA_FORK);
699 xfs_bmap_compute_maxlevels(mp, XFS_ATTR_FORK);
700 xfs_ialloc_compute_maxlevels(mp);
035e00ac 701 xfs_rmapbt_compute_maxlevels(mp);
1946b91c 702 xfs_refcountbt_compute_maxlevels(mp);
0771fb45
ES
703
704 xfs_set_maxicount(mp);
705
e6b3bb78
CM
706 /* enable fail_at_unmount as default */
707 mp->m_fail_unmount = 1;
708
a31b1d3d 709 error = xfs_sysfs_init(&mp->m_kobj, &xfs_mp_ktype, NULL, mp->m_fsname);
27174203
CH
710 if (error)
711 goto out;
1da177e4 712
225e4635
BD
713 error = xfs_sysfs_init(&mp->m_stats.xs_kobj, &xfs_stats_ktype,
714 &mp->m_kobj, "stats");
a31b1d3d
BF
715 if (error)
716 goto out_remove_sysfs;
717
192852be 718 error = xfs_error_sysfs_init(mp);
225e4635
BD
719 if (error)
720 goto out_del_stats;
721
31965ef3
DW
722 error = xfs_errortag_init(mp);
723 if (error)
724 goto out_remove_error_sysfs;
192852be
CM
725
726 error = xfs_uuid_mount(mp);
727 if (error)
31965ef3 728 goto out_remove_errortag;
192852be 729
0771fb45
ES
730 /*
731 * Set the minimum read and write sizes
732 */
733 xfs_set_rw_sizes(mp);
734
055388a3
DC
735 /* set the low space thresholds for dynamic preallocation */
736 xfs_set_low_space_thresholds(mp);
737
0771fb45
ES
738 /*
739 * Set the inode cluster size.
740 * This may still be overridden by the file system
741 * block size if it is larger than the chosen cluster size.
8f80587b
DC
742 *
743 * For v5 filesystems, scale the cluster size with the inode size to
744 * keep a constant ratio of inode per cluster buffer, but only if mkfs
745 * has set the inode alignment value appropriately for larger cluster
746 * sizes.
0771fb45
ES
747 */
748 mp->m_inode_cluster_size = XFS_INODE_BIG_CLUSTER_SIZE;
8f80587b
DC
749 if (xfs_sb_version_hascrc(&mp->m_sb)) {
750 int new_size = mp->m_inode_cluster_size;
751
752 new_size *= mp->m_sb.sb_inodesize / XFS_DINODE_MIN_SIZE;
753 if (mp->m_sb.sb_inoalignmt >= XFS_B_TO_FSBT(mp, new_size))
754 mp->m_inode_cluster_size = new_size;
8f80587b 755 }
0771fb45 756
e5376fc1
BF
757 /*
758 * If enabled, sparse inode chunk alignment is expected to match the
759 * cluster size. Full inode chunk alignment must match the chunk size,
760 * but that is checked on sb read verification...
761 */
762 if (xfs_sb_version_hassparseinodes(&mp->m_sb) &&
763 mp->m_sb.sb_spino_align !=
764 XFS_B_TO_FSBT(mp, mp->m_inode_cluster_size)) {
765 xfs_warn(mp,
766 "Sparse inode block alignment (%u) must match cluster size (%llu).",
767 mp->m_sb.sb_spino_align,
768 XFS_B_TO_FSBT(mp, mp->m_inode_cluster_size));
769 error = -EINVAL;
770 goto out_remove_uuid;
771 }
772
0771fb45
ES
773 /*
774 * Set inode alignment fields
775 */
776 xfs_set_inoalignment(mp);
777
778 /*
c2bfbc9b 779 * Check that the data (and log if separate) is an ok size.
0771fb45 780 */
4249023a 781 error = xfs_check_sizes(mp);
0771fb45 782 if (error)
f9057e3d 783 goto out_remove_uuid;
0771fb45 784
1da177e4
LT
785 /*
786 * Initialize realtime fields in the mount structure
787 */
0771fb45
ES
788 error = xfs_rtmount_init(mp);
789 if (error) {
0b932ccc 790 xfs_warn(mp, "RT mount failed");
f9057e3d 791 goto out_remove_uuid;
1da177e4
LT
792 }
793
1da177e4
LT
794 /*
795 * Copies the low order bits of the timestamp and the randomly
796 * set "sequence" number out of a UUID.
797 */
cb0ba6cc
CH
798 mp->m_fixedfsid[0] =
799 (get_unaligned_be16(&sbp->sb_uuid.b[8]) << 16) |
800 get_unaligned_be16(&sbp->sb_uuid.b[4]);
801 mp->m_fixedfsid[1] = get_unaligned_be32(&sbp->sb_uuid.b[0]);
1da177e4 802
1da177e4
LT
803 mp->m_dmevmask = 0; /* not persistent; set after each mount */
804
0650b554
DC
805 error = xfs_da_mount(mp);
806 if (error) {
807 xfs_warn(mp, "Failed dir/attr init: %d", error);
808 goto out_remove_uuid;
809 }
1da177e4
LT
810
811 /*
812 * Initialize the precomputed transaction reservations values.
813 */
814 xfs_trans_init(mp);
815
1da177e4
LT
816 /*
817 * Allocate and initialize the per-ag data.
818 */
1c1c6ebc 819 spin_lock_init(&mp->m_perag_lock);
9b98b6f3 820 INIT_RADIX_TREE(&mp->m_perag_tree, GFP_ATOMIC);
1c1c6ebc
DC
821 error = xfs_initialize_perag(mp, sbp->sb_agcount, &mp->m_maxagi);
822 if (error) {
0b932ccc 823 xfs_warn(mp, "Failed per-ag init: %d", error);
0650b554 824 goto out_free_dir;
1c1c6ebc 825 }
1da177e4 826
f9057e3d 827 if (!sbp->sb_logblocks) {
0b932ccc 828 xfs_warn(mp, "no log defined");
f9057e3d 829 XFS_ERROR_REPORT("xfs_mountfs", XFS_ERRLEVEL_LOW, mp);
2451337d 830 error = -EFSCORRUPTED;
f9057e3d
CH
831 goto out_free_perag;
832 }
833
1da177e4 834 /*
f0b2efad
BF
835 * Log's mount-time initialization. The first part of recovery can place
836 * some items on the AIL, to be handled when recovery is finished or
837 * cancelled.
1da177e4 838 */
f9057e3d
CH
839 error = xfs_log_mount(mp, mp->m_logdev_targp,
840 XFS_FSB_TO_DADDR(mp, sbp->sb_logstart),
841 XFS_FSB_TO_BB(mp, sbp->sb_logblocks));
842 if (error) {
0b932ccc 843 xfs_warn(mp, "log mount failed");
d4f3512b 844 goto out_fail_wait;
1da177e4
LT
845 }
846
92821e2b
DC
847 /*
848 * Now the log is mounted, we know if it was an unclean shutdown or
849 * not. If it was, with the first phase of recovery has completed, we
850 * have consistent AG blocks on disk. We have not recovered EFIs yet,
851 * but they are recovered transactionally in the second recovery phase
852 * later.
853 *
854 * Hence we can safely re-initialise incore superblock counters from
855 * the per-ag data. These may not be correct if the filesystem was not
856 * cleanly unmounted, so we need to wait for recovery to finish before
857 * doing this.
858 *
859 * If the filesystem was cleanly unmounted, then we can trust the
860 * values in the superblock to be correct and we don't need to do
861 * anything here.
862 *
863 * If we are currently making the filesystem, the initialisation will
864 * fail as the perag data is in an undefined state.
865 */
92821e2b
DC
866 if (xfs_sb_version_haslazysbcount(&mp->m_sb) &&
867 !XFS_LAST_UNMOUNT_WAS_CLEAN(mp) &&
868 !mp->m_sb.sb_inprogress) {
869 error = xfs_initialize_perag_data(mp, sbp->sb_agcount);
f9057e3d 870 if (error)
6eee8972 871 goto out_log_dealloc;
92821e2b 872 }
f9057e3d 873
1da177e4
LT
874 /*
875 * Get and sanity-check the root inode.
876 * Save the pointer to it in the mount structure.
877 */
7b6259e7 878 error = xfs_iget(mp, NULL, sbp->sb_rootino, 0, XFS_ILOCK_EXCL, &rip);
1da177e4 879 if (error) {
0b932ccc 880 xfs_warn(mp, "failed to read root inode");
f9057e3d 881 goto out_log_dealloc;
1da177e4
LT
882 }
883
884 ASSERT(rip != NULL);
1da177e4 885
c19b3b05 886 if (unlikely(!S_ISDIR(VFS_I(rip)->i_mode))) {
0b932ccc 887 xfs_warn(mp, "corrupted root inode %llu: not a directory",
b6574520 888 (unsigned long long)rip->i_ino);
1da177e4
LT
889 xfs_iunlock(rip, XFS_ILOCK_EXCL);
890 XFS_ERROR_REPORT("xfs_mountfs_int(2)", XFS_ERRLEVEL_LOW,
891 mp);
2451337d 892 error = -EFSCORRUPTED;
f9057e3d 893 goto out_rele_rip;
1da177e4
LT
894 }
895 mp->m_rootip = rip; /* save it */
896
897 xfs_iunlock(rip, XFS_ILOCK_EXCL);
898
899 /*
900 * Initialize realtime inode pointers in the mount structure
901 */
0771fb45
ES
902 error = xfs_rtmount_inodes(mp);
903 if (error) {
1da177e4
LT
904 /*
905 * Free up the root inode.
906 */
0b932ccc 907 xfs_warn(mp, "failed to read RT inodes");
f9057e3d 908 goto out_rele_rip;
1da177e4
LT
909 }
910
911 /*
7884bc86
CH
912 * If this is a read-only mount defer the superblock updates until
913 * the next remount into writeable mode. Otherwise we would never
914 * perform the update e.g. for the root filesystem.
1da177e4 915 */
61e63ecb
DC
916 if (mp->m_update_sb && !(mp->m_flags & XFS_MOUNT_RDONLY)) {
917 error = xfs_sync_sb(mp, false);
e5720eec 918 if (error) {
0b932ccc 919 xfs_warn(mp, "failed to write sb changes");
b93b6e43 920 goto out_rtunmount;
e5720eec
DC
921 }
922 }
1da177e4
LT
923
924 /*
925 * Initialise the XFS quota management subsystem for this mount
926 */
7d095257
CH
927 if (XFS_IS_QUOTA_RUNNING(mp)) {
928 error = xfs_qm_newmount(mp, &quotamount, &quotaflags);
929 if (error)
930 goto out_rtunmount;
931 } else {
932 ASSERT(!XFS_IS_QUOTA_ON(mp));
933
934 /*
935 * If a file system had quotas running earlier, but decided to
936 * mount without -o uquota/pquota/gquota options, revoke the
937 * quotachecked license.
938 */
939 if (mp->m_sb.sb_qflags & XFS_ALL_QUOTA_ACCT) {
0b932ccc 940 xfs_notice(mp, "resetting quota flags");
7d095257
CH
941 error = xfs_mount_reset_sbqflags(mp);
942 if (error)
a70a4fa5 943 goto out_rtunmount;
7d095257
CH
944 }
945 }
1da177e4
LT
946
947 /*
f0b2efad
BF
948 * Finish recovering the file system. This part needed to be delayed
949 * until after the root and real-time bitmap inodes were consistently
950 * read in.
1da177e4 951 */
4249023a 952 error = xfs_log_mount_finish(mp);
1da177e4 953 if (error) {
0b932ccc 954 xfs_warn(mp, "log mount finish failed");
b93b6e43 955 goto out_rtunmount;
1da177e4
LT
956 }
957
ddeb14f4
DC
958 /*
959 * Now the log is fully replayed, we can transition to full read-only
960 * mode for read-only mounts. This will sync all the metadata and clean
961 * the log so that the recovery we just performed does not have to be
962 * replayed again on the next mount.
963 *
964 * We use the same quiesce mechanism as the rw->ro remount, as they are
965 * semantically identical operations.
966 */
967 if ((mp->m_flags & (XFS_MOUNT_RDONLY|XFS_MOUNT_NORECOVERY)) ==
968 XFS_MOUNT_RDONLY) {
969 xfs_quiesce_attr(mp);
970 }
971
1da177e4
LT
972 /*
973 * Complete the quota initialisation, post-log-replay component.
974 */
7d095257
CH
975 if (quotamount) {
976 ASSERT(mp->m_qflags == 0);
977 mp->m_qflags = quotaflags;
978
979 xfs_qm_mount_quotas(mp);
980 }
981
84e1e99f
DC
982 /*
983 * Now we are mounted, reserve a small amount of unused space for
984 * privileged transactions. This is needed so that transaction
985 * space required for critical operations can dip into this pool
986 * when at ENOSPC. This is needed for operations like create with
987 * attr, unwritten extent conversion at ENOSPC, etc. Data allocations
988 * are not allowed to use this reserved space.
8babd8a2
DC
989 *
990 * This may drive us straight to ENOSPC on mount, but that implies
991 * we were already there on the last unmount. Warn if this occurs.
84e1e99f 992 */
d5db0f97
ES
993 if (!(mp->m_flags & XFS_MOUNT_RDONLY)) {
994 resblks = xfs_default_resblks(mp);
995 error = xfs_reserve_blocks(mp, &resblks, NULL);
996 if (error)
0b932ccc
DC
997 xfs_warn(mp,
998 "Unable to allocate reserve blocks. Continuing without reserve pool.");
174edb0e
DW
999
1000 /* Recover any CoW blocks that never got remapped. */
1001 error = xfs_reflink_recover_cow(mp);
1002 if (error) {
1003 xfs_err(mp,
1004 "Error %d recovering leftover CoW allocations.", error);
1005 xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE);
1006 goto out_quota;
1007 }
84d69619
DW
1008
1009 /* Reserve AG blocks for future btree expansion. */
1010 error = xfs_fs_reserve_ag_blocks(mp);
1011 if (error && error != -ENOSPC)
1012 goto out_agresv;
d5db0f97 1013 }
84e1e99f 1014
1da177e4
LT
1015 return 0;
1016
84d69619
DW
1017 out_agresv:
1018 xfs_fs_unreserve_ag_blocks(mp);
174edb0e
DW
1019 out_quota:
1020 xfs_qm_unmount_quotas(mp);
b93b6e43
CH
1021 out_rtunmount:
1022 xfs_rtunmount_inodes(mp);
f9057e3d 1023 out_rele_rip:
43355099 1024 IRELE(rip);
0ae120f8
BF
1025 cancel_delayed_work_sync(&mp->m_reclaim_work);
1026 xfs_reclaim_inodes(mp, SYNC_WAIT);
77aff8c7
DW
1027 /* Clean out dquots that might be in memory after quotacheck. */
1028 xfs_qm_unmount(mp);
f9057e3d 1029 out_log_dealloc:
e6b3bb78 1030 mp->m_flags |= XFS_MOUNT_UNMOUNTING;
f0b2efad 1031 xfs_log_mount_cancel(mp);
d4f3512b
DC
1032 out_fail_wait:
1033 if (mp->m_logdev_targp && mp->m_logdev_targp != mp->m_ddev_targp)
1034 xfs_wait_buftarg(mp->m_logdev_targp);
1035 xfs_wait_buftarg(mp->m_ddev_targp);
f9057e3d 1036 out_free_perag:
ff4f038c 1037 xfs_free_perag(mp);
0650b554
DC
1038 out_free_dir:
1039 xfs_da_unmount(mp);
f9057e3d 1040 out_remove_uuid:
27174203 1041 xfs_uuid_unmount(mp);
31965ef3
DW
1042 out_remove_errortag:
1043 xfs_errortag_del(mp);
192852be
CM
1044 out_remove_error_sysfs:
1045 xfs_error_sysfs_del(mp);
225e4635
BD
1046 out_del_stats:
1047 xfs_sysfs_del(&mp->m_stats.xs_kobj);
a31b1d3d
BF
1048 out_remove_sysfs:
1049 xfs_sysfs_del(&mp->m_kobj);
f9057e3d 1050 out:
1da177e4
LT
1051 return error;
1052}
1053
1054/*
1da177e4
LT
1055 * This flushes out the inodes,dquots and the superblock, unmounts the
1056 * log and makes sure that incore structures are freed.
1057 */
41b5c2e7
CH
1058void
1059xfs_unmountfs(
1060 struct xfs_mount *mp)
1da177e4 1061{
c8ce540d 1062 uint64_t resblks;
41b5c2e7 1063 int error;
1da177e4 1064
579b62fa 1065 cancel_delayed_work_sync(&mp->m_eofblocks_work);
83104d44 1066 cancel_delayed_work_sync(&mp->m_cowblocks_work);
579b62fa 1067
84d69619 1068 xfs_fs_unreserve_ag_blocks(mp);
7d095257 1069 xfs_qm_unmount_quotas(mp);
b93b6e43 1070 xfs_rtunmount_inodes(mp);
77508ec8
CH
1071 IRELE(mp->m_rootip);
1072
641c56fb
DC
1073 /*
1074 * We can potentially deadlock here if we have an inode cluster
9da096fd 1075 * that has been freed has its buffer still pinned in memory because
641c56fb
DC
1076 * the transaction is still sitting in a iclog. The stale inodes
1077 * on that buffer will have their flush locks held until the
1078 * transaction hits the disk and the callbacks run. the inode
1079 * flush takes the flush lock unconditionally and with nothing to
1080 * push out the iclog we will never get that unlocked. hence we
1081 * need to force the log first.
1082 */
a14a348b 1083 xfs_log_force(mp, XFS_LOG_SYNC);
c854363e 1084
ebf55872
CH
1085 /*
1086 * Wait for all busy extents to be freed, including completion of
1087 * any discard operation.
1088 */
1089 xfs_extent_busy_wait_all(mp);
4560e78f 1090 flush_workqueue(xfs_discard_wq);
ebf55872 1091
e6b3bb78
CM
1092 /*
1093 * We now need to tell the world we are unmounting. This will allow
1094 * us to detect that the filesystem is going away and we should error
1095 * out anything that we have been retrying in the background. This will
1096 * prevent neverending retries in AIL pushing from hanging the unmount.
1097 */
1098 mp->m_flags |= XFS_MOUNT_UNMOUNTING;
1099
c854363e 1100 /*
211e4d43
CH
1101 * Flush all pending changes from the AIL.
1102 */
1103 xfs_ail_push_all_sync(mp->m_ail);
1104
1105 /*
1106 * And reclaim all inodes. At this point there should be no dirty
7e18530b
DC
1107 * inodes and none should be pinned or locked, but use synchronous
1108 * reclaim just to be sure. We can stop background inode reclaim
1109 * here as well if it is still running.
c854363e 1110 */
7e18530b 1111 cancel_delayed_work_sync(&mp->m_reclaim_work);
c854363e 1112 xfs_reclaim_inodes(mp, SYNC_WAIT);
1da177e4 1113
7d095257 1114 xfs_qm_unmount(mp);
a357a121 1115
84e1e99f
DC
1116 /*
1117 * Unreserve any blocks we have so that when we unmount we don't account
1118 * the reserved free space as used. This is really only necessary for
1119 * lazy superblock counting because it trusts the incore superblock
9da096fd 1120 * counters to be absolutely correct on clean unmount.
84e1e99f
DC
1121 *
1122 * We don't bother correcting this elsewhere for lazy superblock
1123 * counting because on mount of an unclean filesystem we reconstruct the
1124 * correct counter value and this is irrelevant.
1125 *
1126 * For non-lazy counter filesystems, this doesn't matter at all because
1127 * we only every apply deltas to the superblock and hence the incore
1128 * value does not matter....
1129 */
1130 resblks = 0;
714082bc
DC
1131 error = xfs_reserve_blocks(mp, &resblks, NULL);
1132 if (error)
0b932ccc 1133 xfs_warn(mp, "Unable to free reserved block pool. "
714082bc
DC
1134 "Freespace may not be correct on next mount.");
1135
adab0f67 1136 error = xfs_log_sbcount(mp);
e5720eec 1137 if (error)
0b932ccc 1138 xfs_warn(mp, "Unable to update superblock counters. "
e5720eec 1139 "Freespace may not be correct on next mount.");
87c7bec7 1140
225e4635 1141
21b699c8 1142 xfs_log_unmount(mp);
0650b554 1143 xfs_da_unmount(mp);
27174203 1144 xfs_uuid_unmount(mp);
1da177e4 1145
1550d0b0 1146#if defined(DEBUG)
31965ef3 1147 xfs_errortag_clearall(mp);
1da177e4 1148#endif
ff4f038c 1149 xfs_free_perag(mp);
a31b1d3d 1150
31965ef3 1151 xfs_errortag_del(mp);
192852be 1152 xfs_error_sysfs_del(mp);
225e4635 1153 xfs_sysfs_del(&mp->m_stats.xs_kobj);
a31b1d3d 1154 xfs_sysfs_del(&mp->m_kobj);
1da177e4
LT
1155}
1156
91ee575f
BF
1157/*
1158 * Determine whether modifications can proceed. The caller specifies the minimum
1159 * freeze level for which modifications should not be allowed. This allows
1160 * certain operations to proceed while the freeze sequence is in progress, if
1161 * necessary.
1162 */
1163bool
1164xfs_fs_writable(
1165 struct xfs_mount *mp,
1166 int level)
92821e2b 1167{
91ee575f
BF
1168 ASSERT(level > SB_UNFROZEN);
1169 if ((mp->m_super->s_writers.frozen >= level) ||
1170 XFS_FORCED_SHUTDOWN(mp) || (mp->m_flags & XFS_MOUNT_RDONLY))
1171 return false;
1172
1173 return true;
92821e2b
DC
1174}
1175
1176/*
b2ce3974
AE
1177 * xfs_log_sbcount
1178 *
adab0f67 1179 * Sync the superblock counters to disk.
b2ce3974 1180 *
91ee575f
BF
1181 * Note this code can be called during the process of freezing, so we use the
1182 * transaction allocator that does not block when the transaction subsystem is
1183 * in its frozen state.
92821e2b
DC
1184 */
1185int
adab0f67 1186xfs_log_sbcount(xfs_mount_t *mp)
92821e2b 1187{
91ee575f
BF
1188 /* allow this to proceed during the freeze sequence... */
1189 if (!xfs_fs_writable(mp, SB_FREEZE_COMPLETE))
92821e2b
DC
1190 return 0;
1191
92821e2b
DC
1192 /*
1193 * we don't need to do this if we are updating the superblock
1194 * counters on every modification.
1195 */
1196 if (!xfs_sb_version_haslazysbcount(&mp->m_sb))
1197 return 0;
1198
61e63ecb 1199 return xfs_sync_sb(mp, true);
92821e2b
DC
1200}
1201
8c1903d3
DC
1202/*
1203 * Deltas for the inode count are +/-64, hence we use a large batch size
1204 * of 128 so we don't need to take the counter lock on every update.
1205 */
1206#define XFS_ICOUNT_BATCH 128
501ab323
DC
1207int
1208xfs_mod_icount(
1209 struct xfs_mount *mp,
1210 int64_t delta)
1211{
104b4e51 1212 percpu_counter_add_batch(&mp->m_icount, delta, XFS_ICOUNT_BATCH);
8c1903d3 1213 if (__percpu_counter_compare(&mp->m_icount, 0, XFS_ICOUNT_BATCH) < 0) {
501ab323
DC
1214 ASSERT(0);
1215 percpu_counter_add(&mp->m_icount, -delta);
1216 return -EINVAL;
1217 }
1218 return 0;
1219}
1220
e88b64ea
DC
1221int
1222xfs_mod_ifree(
1223 struct xfs_mount *mp,
1224 int64_t delta)
1225{
1226 percpu_counter_add(&mp->m_ifree, delta);
1227 if (percpu_counter_compare(&mp->m_ifree, 0) < 0) {
1228 ASSERT(0);
1229 percpu_counter_add(&mp->m_ifree, -delta);
1230 return -EINVAL;
1231 }
1232 return 0;
1233}
0d485ada 1234
8c1903d3
DC
1235/*
1236 * Deltas for the block count can vary from 1 to very large, but lock contention
1237 * only occurs on frequent small block count updates such as in the delayed
1238 * allocation path for buffered writes (page a time updates). Hence we set
1239 * a large batch count (1024) to minimise global counter updates except when
1240 * we get near to ENOSPC and we have to be very accurate with our updates.
1241 */
1242#define XFS_FDBLOCKS_BATCH 1024
0d485ada
DC
1243int
1244xfs_mod_fdblocks(
1245 struct xfs_mount *mp,
1246 int64_t delta,
1247 bool rsvd)
1248{
1249 int64_t lcounter;
1250 long long res_used;
1251 s32 batch;
1252
1253 if (delta > 0) {
1254 /*
1255 * If the reserve pool is depleted, put blocks back into it
1256 * first. Most of the time the pool is full.
1257 */
1258 if (likely(mp->m_resblks == mp->m_resblks_avail)) {
1259 percpu_counter_add(&mp->m_fdblocks, delta);
1260 return 0;
1261 }
1262
1263 spin_lock(&mp->m_sb_lock);
1264 res_used = (long long)(mp->m_resblks - mp->m_resblks_avail);
1265
1266 if (res_used > delta) {
1267 mp->m_resblks_avail += delta;
1268 } else {
1269 delta -= res_used;
1270 mp->m_resblks_avail = mp->m_resblks;
1271 percpu_counter_add(&mp->m_fdblocks, delta);
1272 }
1273 spin_unlock(&mp->m_sb_lock);
1274 return 0;
1275 }
1276
1277 /*
1278 * Taking blocks away, need to be more accurate the closer we
1279 * are to zero.
1280 *
0d485ada
DC
1281 * If the counter has a value of less than 2 * max batch size,
1282 * then make everything serialise as we are real close to
1283 * ENOSPC.
1284 */
8c1903d3
DC
1285 if (__percpu_counter_compare(&mp->m_fdblocks, 2 * XFS_FDBLOCKS_BATCH,
1286 XFS_FDBLOCKS_BATCH) < 0)
0d485ada
DC
1287 batch = 1;
1288 else
8c1903d3 1289 batch = XFS_FDBLOCKS_BATCH;
0d485ada 1290
104b4e51 1291 percpu_counter_add_batch(&mp->m_fdblocks, delta, batch);
52548852 1292 if (__percpu_counter_compare(&mp->m_fdblocks, mp->m_alloc_set_aside,
8c1903d3 1293 XFS_FDBLOCKS_BATCH) >= 0) {
0d485ada
DC
1294 /* we had space! */
1295 return 0;
1296 }
1297
1298 /*
1299 * lock up the sb for dipping into reserves before releasing the space
1300 * that took us to ENOSPC.
1301 */
1302 spin_lock(&mp->m_sb_lock);
1303 percpu_counter_add(&mp->m_fdblocks, -delta);
1304 if (!rsvd)
1305 goto fdblocks_enospc;
1306
1307 lcounter = (long long)mp->m_resblks_avail + delta;
1308 if (lcounter >= 0) {
1309 mp->m_resblks_avail = lcounter;
1310 spin_unlock(&mp->m_sb_lock);
1311 return 0;
1312 }
1313 printk_once(KERN_WARNING
1314 "Filesystem \"%s\": reserve blocks depleted! "
1315 "Consider increasing reserve pool size.",
1316 mp->m_fsname);
1317fdblocks_enospc:
1318 spin_unlock(&mp->m_sb_lock);
1319 return -ENOSPC;
1320}
1321
bab98bbe
DC
1322int
1323xfs_mod_frextents(
1324 struct xfs_mount *mp,
1325 int64_t delta)
1326{
1327 int64_t lcounter;
1328 int ret = 0;
1329
1330 spin_lock(&mp->m_sb_lock);
1331 lcounter = mp->m_sb.sb_frextents + delta;
1332 if (lcounter < 0)
1333 ret = -ENOSPC;
1334 else
1335 mp->m_sb.sb_frextents = lcounter;
1336 spin_unlock(&mp->m_sb_lock);
1337 return ret;
1338}
1339
1da177e4
LT
1340/*
1341 * xfs_getsb() is called to obtain the buffer for the superblock.
1342 * The buffer is returned locked and read in from disk.
1343 * The buffer should be released with a call to xfs_brelse().
1344 *
1345 * If the flags parameter is BUF_TRYLOCK, then we'll only return
1346 * the superblock buffer if it can be locked without sleeping.
1347 * If it can't then we'll return NULL.
1348 */
0c842ad4 1349struct xfs_buf *
1da177e4 1350xfs_getsb(
0c842ad4
CH
1351 struct xfs_mount *mp,
1352 int flags)
1da177e4 1353{
0c842ad4 1354 struct xfs_buf *bp = mp->m_sb_bp;
1da177e4 1355
0c842ad4
CH
1356 if (!xfs_buf_trylock(bp)) {
1357 if (flags & XBF_TRYLOCK)
1da177e4 1358 return NULL;
0c842ad4 1359 xfs_buf_lock(bp);
1da177e4 1360 }
0c842ad4 1361
72790aa1 1362 xfs_buf_hold(bp);
b0388bf1 1363 ASSERT(bp->b_flags & XBF_DONE);
014c2544 1364 return bp;
1da177e4
LT
1365}
1366
1367/*
1368 * Used to free the superblock along various error paths.
1369 */
1370void
1371xfs_freesb(
26af6552 1372 struct xfs_mount *mp)
1da177e4 1373{
26af6552 1374 struct xfs_buf *bp = mp->m_sb_bp;
1da177e4 1375
26af6552 1376 xfs_buf_lock(bp);
1da177e4 1377 mp->m_sb_bp = NULL;
26af6552 1378 xfs_buf_relse(bp);
1da177e4
LT
1379}
1380
dda35b8f
CH
1381/*
1382 * If the underlying (data/log/rt) device is readonly, there are some
1383 * operations that cannot proceed.
1384 */
1385int
1386xfs_dev_is_read_only(
1387 struct xfs_mount *mp,
1388 char *message)
1389{
1390 if (xfs_readonly_buftarg(mp->m_ddev_targp) ||
1391 xfs_readonly_buftarg(mp->m_logdev_targp) ||
1392 (mp->m_rtdev_targp && xfs_readonly_buftarg(mp->m_rtdev_targp))) {
0b932ccc
DC
1393 xfs_notice(mp, "%s required on read-only device.", message);
1394 xfs_notice(mp, "write access unavailable, cannot proceed.");
2451337d 1395 return -EROFS;
dda35b8f
CH
1396 }
1397 return 0;
1398}