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ubifs: Introduce new data node field, compr_size
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1e51764a
AB
1/*
2 * This file is part of UBIFS.
3 *
4 * Copyright (C) 2006-2008 Nokia Corporation.
5 *
6 * This program is free software; you can redistribute it and/or modify it
7 * under the terms of the GNU General Public License version 2 as published by
8 * the Free Software Foundation.
9 *
10 * This program is distributed in the hope that it will be useful, but WITHOUT
11 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
12 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
13 * more details.
14 *
15 * You should have received a copy of the GNU General Public License along with
16 * this program; if not, write to the Free Software Foundation, Inc., 51
17 * Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
18 *
19 * Authors: Artem Bityutskiy (Битюцкий Артём)
20 * Adrian Hunter
21 */
22
23/*
24 * This file implements UBIFS initialization and VFS superblock operations. Some
25 * initialization stuff which is rather large and complex is placed at
26 * corresponding subsystems, but most of it is here.
27 */
28
29#include <linux/init.h>
30#include <linux/slab.h>
31#include <linux/module.h>
32#include <linux/ctype.h>
1e51764a
AB
33#include <linux/kthread.h>
34#include <linux/parser.h>
35#include <linux/seq_file.h>
36#include <linux/mount.h>
4d61db4f 37#include <linux/math64.h>
304d427c 38#include <linux/writeback.h>
1e51764a
AB
39#include "ubifs.h"
40
39ce81ce
AB
41/*
42 * Maximum amount of memory we may 'kmalloc()' without worrying that we are
43 * allocating too much.
44 */
45#define UBIFS_KMALLOC_OK (128*1024)
46
1e51764a
AB
47/* Slab cache for UBIFS inodes */
48struct kmem_cache *ubifs_inode_slab;
49
50/* UBIFS TNC shrinker description */
51static struct shrinker ubifs_shrinker_info = {
1ab6c499
DC
52 .scan_objects = ubifs_shrink_scan,
53 .count_objects = ubifs_shrink_count,
1e51764a
AB
54 .seeks = DEFAULT_SEEKS,
55};
56
57/**
58 * validate_inode - validate inode.
59 * @c: UBIFS file-system description object
60 * @inode: the inode to validate
61 *
62 * This is a helper function for 'ubifs_iget()' which validates various fields
63 * of a newly built inode to make sure they contain sane values and prevent
64 * possible vulnerabilities. Returns zero if the inode is all right and
65 * a non-zero error code if not.
66 */
67static int validate_inode(struct ubifs_info *c, const struct inode *inode)
68{
69 int err;
70 const struct ubifs_inode *ui = ubifs_inode(inode);
71
72 if (inode->i_size > c->max_inode_sz) {
235c362b 73 ubifs_err(c, "inode is too large (%lld)",
1e51764a
AB
74 (long long)inode->i_size);
75 return 1;
76 }
77
b793a8c8 78 if (ui->compr_type >= UBIFS_COMPR_TYPES_CNT) {
235c362b 79 ubifs_err(c, "unknown compression type %d", ui->compr_type);
1e51764a
AB
80 return 2;
81 }
82
83 if (ui->xattr_names + ui->xattr_cnt > XATTR_LIST_MAX)
84 return 3;
85
86 if (ui->data_len < 0 || ui->data_len > UBIFS_MAX_INO_DATA)
87 return 4;
88
a29fa9df 89 if (ui->xattr && !S_ISREG(inode->i_mode))
1e51764a
AB
90 return 5;
91
92 if (!ubifs_compr_present(ui->compr_type)) {
235c362b 93 ubifs_warn(c, "inode %lu uses '%s' compression, but it was not compiled in",
79fda517 94 inode->i_ino, ubifs_compr_name(ui->compr_type));
1e51764a
AB
95 }
96
1b51e983 97 err = dbg_check_dir(c, inode);
1e51764a
AB
98 return err;
99}
100
101struct inode *ubifs_iget(struct super_block *sb, unsigned long inum)
102{
103 int err;
104 union ubifs_key key;
105 struct ubifs_ino_node *ino;
106 struct ubifs_info *c = sb->s_fs_info;
107 struct inode *inode;
108 struct ubifs_inode *ui;
109
110 dbg_gen("inode %lu", inum);
111
112 inode = iget_locked(sb, inum);
113 if (!inode)
114 return ERR_PTR(-ENOMEM);
115 if (!(inode->i_state & I_NEW))
116 return inode;
117 ui = ubifs_inode(inode);
118
119 ino = kmalloc(UBIFS_MAX_INO_NODE_SZ, GFP_NOFS);
120 if (!ino) {
121 err = -ENOMEM;
122 goto out;
123 }
124
125 ino_key_init(c, &key, inode->i_ino);
126
127 err = ubifs_tnc_lookup(c, &key, ino);
128 if (err)
129 goto out_ino;
130
8c1c5f26
DY
131 inode->i_flags |= S_NOCMTIME;
132#ifndef CONFIG_UBIFS_ATIME_SUPPORT
133 inode->i_flags |= S_NOATIME;
134#endif
bfe86848 135 set_nlink(inode, le32_to_cpu(ino->nlink));
39241beb
EB
136 i_uid_write(inode, le32_to_cpu(ino->uid));
137 i_gid_write(inode, le32_to_cpu(ino->gid));
1e51764a
AB
138 inode->i_atime.tv_sec = (int64_t)le64_to_cpu(ino->atime_sec);
139 inode->i_atime.tv_nsec = le32_to_cpu(ino->atime_nsec);
140 inode->i_mtime.tv_sec = (int64_t)le64_to_cpu(ino->mtime_sec);
141 inode->i_mtime.tv_nsec = le32_to_cpu(ino->mtime_nsec);
142 inode->i_ctime.tv_sec = (int64_t)le64_to_cpu(ino->ctime_sec);
143 inode->i_ctime.tv_nsec = le32_to_cpu(ino->ctime_nsec);
144 inode->i_mode = le32_to_cpu(ino->mode);
145 inode->i_size = le64_to_cpu(ino->size);
146
147 ui->data_len = le32_to_cpu(ino->data_len);
148 ui->flags = le32_to_cpu(ino->flags);
149 ui->compr_type = le16_to_cpu(ino->compr_type);
150 ui->creat_sqnum = le64_to_cpu(ino->creat_sqnum);
151 ui->xattr_cnt = le32_to_cpu(ino->xattr_cnt);
152 ui->xattr_size = le32_to_cpu(ino->xattr_size);
153 ui->xattr_names = le32_to_cpu(ino->xattr_names);
154 ui->synced_i_size = ui->ui_size = inode->i_size;
155
156 ui->xattr = (ui->flags & UBIFS_XATTR_FL) ? 1 : 0;
157
158 err = validate_inode(c, inode);
159 if (err)
160 goto out_invalid;
161
1e51764a
AB
162 switch (inode->i_mode & S_IFMT) {
163 case S_IFREG:
164 inode->i_mapping->a_ops = &ubifs_file_address_operations;
165 inode->i_op = &ubifs_file_inode_operations;
166 inode->i_fop = &ubifs_file_operations;
167 if (ui->xattr) {
168 ui->data = kmalloc(ui->data_len + 1, GFP_NOFS);
169 if (!ui->data) {
170 err = -ENOMEM;
171 goto out_ino;
172 }
173 memcpy(ui->data, ino->data, ui->data_len);
174 ((char *)ui->data)[ui->data_len] = '\0';
175 } else if (ui->data_len != 0) {
176 err = 10;
177 goto out_invalid;
178 }
179 break;
180 case S_IFDIR:
181 inode->i_op = &ubifs_dir_inode_operations;
182 inode->i_fop = &ubifs_dir_operations;
183 if (ui->data_len != 0) {
184 err = 11;
185 goto out_invalid;
186 }
187 break;
188 case S_IFLNK:
189 inode->i_op = &ubifs_symlink_inode_operations;
190 if (ui->data_len <= 0 || ui->data_len > UBIFS_MAX_INO_DATA) {
191 err = 12;
192 goto out_invalid;
193 }
194 ui->data = kmalloc(ui->data_len + 1, GFP_NOFS);
195 if (!ui->data) {
196 err = -ENOMEM;
197 goto out_ino;
198 }
199 memcpy(ui->data, ino->data, ui->data_len);
200 ((char *)ui->data)[ui->data_len] = '\0';
0f301bd3 201 inode->i_link = ui->data;
1e51764a
AB
202 break;
203 case S_IFBLK:
204 case S_IFCHR:
205 {
206 dev_t rdev;
207 union ubifs_dev_desc *dev;
208
209 ui->data = kmalloc(sizeof(union ubifs_dev_desc), GFP_NOFS);
210 if (!ui->data) {
211 err = -ENOMEM;
212 goto out_ino;
213 }
214
215 dev = (union ubifs_dev_desc *)ino->data;
216 if (ui->data_len == sizeof(dev->new))
217 rdev = new_decode_dev(le32_to_cpu(dev->new));
218 else if (ui->data_len == sizeof(dev->huge))
219 rdev = huge_decode_dev(le64_to_cpu(dev->huge));
220 else {
221 err = 13;
222 goto out_invalid;
223 }
224 memcpy(ui->data, ino->data, ui->data_len);
225 inode->i_op = &ubifs_file_inode_operations;
226 init_special_inode(inode, inode->i_mode, rdev);
227 break;
228 }
229 case S_IFSOCK:
230 case S_IFIFO:
231 inode->i_op = &ubifs_file_inode_operations;
232 init_special_inode(inode, inode->i_mode, 0);
233 if (ui->data_len != 0) {
234 err = 14;
235 goto out_invalid;
236 }
237 break;
238 default:
239 err = 15;
240 goto out_invalid;
241 }
242
243 kfree(ino);
244 ubifs_set_inode_flags(inode);
245 unlock_new_inode(inode);
246 return inode;
247
248out_invalid:
235c362b 249 ubifs_err(c, "inode %lu validation failed, error %d", inode->i_ino, err);
edf6be24
AB
250 ubifs_dump_node(c, ino);
251 ubifs_dump_inode(c, inode);
1e51764a
AB
252 err = -EINVAL;
253out_ino:
254 kfree(ino);
255out:
235c362b 256 ubifs_err(c, "failed to read inode %lu, error %d", inode->i_ino, err);
1e51764a
AB
257 iget_failed(inode);
258 return ERR_PTR(err);
259}
260
261static struct inode *ubifs_alloc_inode(struct super_block *sb)
262{
263 struct ubifs_inode *ui;
264
265 ui = kmem_cache_alloc(ubifs_inode_slab, GFP_NOFS);
266 if (!ui)
267 return NULL;
268
269 memset((void *)ui + sizeof(struct inode), 0,
270 sizeof(struct ubifs_inode) - sizeof(struct inode));
271 mutex_init(&ui->ui_mutex);
272 spin_lock_init(&ui->ui_lock);
273 return &ui->vfs_inode;
274};
275
fa0d7e3d
NP
276static void ubifs_i_callback(struct rcu_head *head)
277{
278 struct inode *inode = container_of(head, struct inode, i_rcu);
279 struct ubifs_inode *ui = ubifs_inode(inode);
fa0d7e3d
NP
280 kmem_cache_free(ubifs_inode_slab, ui);
281}
282
1e51764a
AB
283static void ubifs_destroy_inode(struct inode *inode)
284{
285 struct ubifs_inode *ui = ubifs_inode(inode);
286
287 kfree(ui->data);
fa0d7e3d 288 call_rcu(&inode->i_rcu, ubifs_i_callback);
1e51764a
AB
289}
290
291/*
292 * Note, Linux write-back code calls this without 'i_mutex'.
293 */
a9185b41 294static int ubifs_write_inode(struct inode *inode, struct writeback_control *wbc)
1e51764a 295{
fbfa6c88 296 int err = 0;
1e51764a
AB
297 struct ubifs_info *c = inode->i_sb->s_fs_info;
298 struct ubifs_inode *ui = ubifs_inode(inode);
299
300 ubifs_assert(!ui->xattr);
301 if (is_bad_inode(inode))
302 return 0;
303
304 mutex_lock(&ui->ui_mutex);
305 /*
306 * Due to races between write-back forced by budgeting
5c57f20b 307 * (see 'sync_some_inodes()') and background write-back, the inode may
1e51764a
AB
308 * have already been synchronized, do not do this again. This might
309 * also happen if it was synchronized in an VFS operation, e.g.
310 * 'ubifs_link()'.
311 */
312 if (!ui->dirty) {
313 mutex_unlock(&ui->ui_mutex);
314 return 0;
315 }
316
fbfa6c88
AB
317 /*
318 * As an optimization, do not write orphan inodes to the media just
319 * because this is not needed.
320 */
321 dbg_gen("inode %lu, mode %#x, nlink %u",
322 inode->i_ino, (int)inode->i_mode, inode->i_nlink);
323 if (inode->i_nlink) {
1f28681a 324 err = ubifs_jnl_write_inode(c, inode);
fbfa6c88 325 if (err)
235c362b 326 ubifs_err(c, "can't write inode %lu, error %d",
fbfa6c88 327 inode->i_ino, err);
e3c3efc2
AB
328 else
329 err = dbg_check_inode_size(c, inode, ui->ui_size);
fbfa6c88 330 }
1e51764a
AB
331
332 ui->dirty = 0;
333 mutex_unlock(&ui->ui_mutex);
334 ubifs_release_dirty_inode_budget(c, ui);
335 return err;
336}
337
d640e1b5 338static void ubifs_evict_inode(struct inode *inode)
1e51764a
AB
339{
340 int err;
341 struct ubifs_info *c = inode->i_sb->s_fs_info;
1e0f358e 342 struct ubifs_inode *ui = ubifs_inode(inode);
1e51764a 343
1e0f358e 344 if (ui->xattr)
1e51764a
AB
345 /*
346 * Extended attribute inode deletions are fully handled in
347 * 'ubifs_removexattr()'. These inodes are special and have
348 * limited usage, so there is nothing to do here.
349 */
350 goto out;
351
7d32c2bb 352 dbg_gen("inode %lu, mode %#x", inode->i_ino, (int)inode->i_mode);
1e51764a 353 ubifs_assert(!atomic_read(&inode->i_count));
1e51764a 354
91b0abe3 355 truncate_inode_pages_final(&inode->i_data);
d640e1b5
AV
356
357 if (inode->i_nlink)
358 goto done;
359
1e51764a
AB
360 if (is_bad_inode(inode))
361 goto out;
362
1e0f358e 363 ui->ui_size = inode->i_size = 0;
de94eb55 364 err = ubifs_jnl_delete_inode(c, inode);
1e51764a
AB
365 if (err)
366 /*
367 * Worst case we have a lost orphan inode wasting space, so a
0a883a05 368 * simple error message is OK here.
1e51764a 369 */
235c362b 370 ubifs_err(c, "can't delete inode %lu, error %d",
de94eb55
AB
371 inode->i_ino, err);
372
1e51764a 373out:
1e0f358e
AB
374 if (ui->dirty)
375 ubifs_release_dirty_inode_budget(c, ui);
6d6cb0d6
AH
376 else {
377 /* We've deleted something - clean the "no space" flags */
b137545c 378 c->bi.nospace = c->bi.nospace_rp = 0;
6d6cb0d6
AH
379 smp_wmb();
380 }
d640e1b5 381done:
dbd5768f 382 clear_inode(inode);
d475a507
RW
383#ifdef CONFIG_UBIFS_FS_ENCRYPTION
384 fscrypt_put_encryption_info(inode, NULL);
385#endif
1e51764a
AB
386}
387
aa385729 388static void ubifs_dirty_inode(struct inode *inode, int flags)
1e51764a
AB
389{
390 struct ubifs_inode *ui = ubifs_inode(inode);
391
392 ubifs_assert(mutex_is_locked(&ui->ui_mutex));
393 if (!ui->dirty) {
394 ui->dirty = 1;
395 dbg_gen("inode %lu", inode->i_ino);
396 }
397}
398
399static int ubifs_statfs(struct dentry *dentry, struct kstatfs *buf)
400{
401 struct ubifs_info *c = dentry->d_sb->s_fs_info;
402 unsigned long long free;
7c7cbadf 403 __le32 *uuid = (__le32 *)c->uuid;
1e51764a 404
7dad181b 405 free = ubifs_get_free_space(c);
1e51764a
AB
406 dbg_gen("free space %lld bytes (%lld blocks)",
407 free, free >> UBIFS_BLOCK_SHIFT);
408
409 buf->f_type = UBIFS_SUPER_MAGIC;
410 buf->f_bsize = UBIFS_BLOCK_SIZE;
411 buf->f_blocks = c->block_cnt;
412 buf->f_bfree = free >> UBIFS_BLOCK_SHIFT;
413 if (free > c->report_rp_size)
414 buf->f_bavail = (free - c->report_rp_size) >> UBIFS_BLOCK_SHIFT;
415 else
416 buf->f_bavail = 0;
417 buf->f_files = 0;
418 buf->f_ffree = 0;
419 buf->f_namelen = UBIFS_MAX_NLEN;
7c7cbadf
AB
420 buf->f_fsid.val[0] = le32_to_cpu(uuid[0]) ^ le32_to_cpu(uuid[2]);
421 buf->f_fsid.val[1] = le32_to_cpu(uuid[1]) ^ le32_to_cpu(uuid[3]);
b4978e94 422 ubifs_assert(buf->f_bfree <= c->block_cnt);
1e51764a
AB
423 return 0;
424}
425
34c80b1d 426static int ubifs_show_options(struct seq_file *s, struct dentry *root)
1e51764a 427{
34c80b1d 428 struct ubifs_info *c = root->d_sb->s_fs_info;
1e51764a
AB
429
430 if (c->mount_opts.unmount_mode == 2)
d4eb08ff 431 seq_puts(s, ",fast_unmount");
1e51764a 432 else if (c->mount_opts.unmount_mode == 1)
d4eb08ff 433 seq_puts(s, ",norm_unmount");
1e51764a 434
4793e7c5 435 if (c->mount_opts.bulk_read == 2)
d4eb08ff 436 seq_puts(s, ",bulk_read");
4793e7c5 437 else if (c->mount_opts.bulk_read == 1)
d4eb08ff 438 seq_puts(s, ",no_bulk_read");
4793e7c5 439
2953e73f 440 if (c->mount_opts.chk_data_crc == 2)
d4eb08ff 441 seq_puts(s, ",chk_data_crc");
2953e73f 442 else if (c->mount_opts.chk_data_crc == 1)
d4eb08ff 443 seq_puts(s, ",no_chk_data_crc");
2953e73f 444
553dea4d 445 if (c->mount_opts.override_compr) {
fcabb347
HA
446 seq_printf(s, ",compr=%s",
447 ubifs_compr_name(c->mount_opts.compr_type));
553dea4d
AB
448 }
449
1e51764a
AB
450 return 0;
451}
452
453static int ubifs_sync_fs(struct super_block *sb, int wait)
454{
f1038300 455 int i, err;
1e51764a 456 struct ubifs_info *c = sb->s_fs_info;
304d427c 457
e8ea1759 458 /*
dedb0d48
AB
459 * Zero @wait is just an advisory thing to help the file system shove
460 * lots of data into the queues, and there will be the second
e8ea1759
AB
461 * '->sync_fs()' call, with non-zero @wait.
462 */
dedb0d48
AB
463 if (!wait)
464 return 0;
e8ea1759 465
3eb14297
AH
466 /*
467 * Synchronize write buffers, because 'ubifs_run_commit()' does not
468 * do this if it waits for an already running commit.
469 */
470 for (i = 0; i < c->jhead_cnt; i++) {
471 err = ubifs_wbuf_sync(&c->jheads[i].wbuf);
472 if (err)
473 return err;
474 }
475
887ee171
AB
476 /*
477 * Strictly speaking, it is not necessary to commit the journal here,
478 * synchronizing write-buffers would be enough. But committing makes
479 * UBIFS free space predictions much more accurate, so we want to let
480 * the user be able to get more accurate results of 'statfs()' after
481 * they synchronize the file system.
482 */
f1038300
AB
483 err = ubifs_run_commit(c);
484 if (err)
485 return err;
403e12ab 486
cb5c6a2b 487 return ubi_sync(c->vi.ubi_num);
1e51764a
AB
488}
489
490/**
491 * init_constants_early - initialize UBIFS constants.
492 * @c: UBIFS file-system description object
493 *
494 * This function initialize UBIFS constants which do not need the superblock to
495 * be read. It also checks that the UBI volume satisfies basic UBIFS
496 * requirements. Returns zero in case of success and a negative error code in
497 * case of failure.
498 */
499static int init_constants_early(struct ubifs_info *c)
500{
501 if (c->vi.corrupted) {
235c362b 502 ubifs_warn(c, "UBI volume is corrupted - read-only mode");
1e51764a
AB
503 c->ro_media = 1;
504 }
505
506 if (c->di.ro_mode) {
235c362b 507 ubifs_msg(c, "read-only UBI device");
1e51764a
AB
508 c->ro_media = 1;
509 }
510
511 if (c->vi.vol_type == UBI_STATIC_VOLUME) {
235c362b 512 ubifs_msg(c, "static UBI volume - read-only mode");
1e51764a
AB
513 c->ro_media = 1;
514 }
515
516 c->leb_cnt = c->vi.size;
517 c->leb_size = c->vi.usable_leb_size;
ca2ec61d 518 c->leb_start = c->di.leb_start;
1e51764a
AB
519 c->half_leb_size = c->leb_size / 2;
520 c->min_io_size = c->di.min_io_size;
521 c->min_io_shift = fls(c->min_io_size) - 1;
3e8e2e0c
AB
522 c->max_write_size = c->di.max_write_size;
523 c->max_write_shift = fls(c->max_write_size) - 1;
1e51764a
AB
524
525 if (c->leb_size < UBIFS_MIN_LEB_SZ) {
dccbc919
DG
526 ubifs_errc(c, "too small LEBs (%d bytes), min. is %d bytes",
527 c->leb_size, UBIFS_MIN_LEB_SZ);
1e51764a
AB
528 return -EINVAL;
529 }
530
531 if (c->leb_cnt < UBIFS_MIN_LEB_CNT) {
dccbc919
DG
532 ubifs_errc(c, "too few LEBs (%d), min. is %d",
533 c->leb_cnt, UBIFS_MIN_LEB_CNT);
1e51764a
AB
534 return -EINVAL;
535 }
536
537 if (!is_power_of_2(c->min_io_size)) {
dccbc919 538 ubifs_errc(c, "bad min. I/O size %d", c->min_io_size);
1e51764a
AB
539 return -EINVAL;
540 }
541
3e8e2e0c
AB
542 /*
543 * Maximum write size has to be greater or equivalent to min. I/O
544 * size, and be multiple of min. I/O size.
545 */
546 if (c->max_write_size < c->min_io_size ||
547 c->max_write_size % c->min_io_size ||
548 !is_power_of_2(c->max_write_size)) {
dccbc919
DG
549 ubifs_errc(c, "bad write buffer size %d for %d min. I/O unit",
550 c->max_write_size, c->min_io_size);
3e8e2e0c
AB
551 return -EINVAL;
552 }
553
1e51764a
AB
554 /*
555 * UBIFS aligns all node to 8-byte boundary, so to make function in
556 * io.c simpler, assume minimum I/O unit size to be 8 bytes if it is
557 * less than 8.
558 */
559 if (c->min_io_size < 8) {
560 c->min_io_size = 8;
561 c->min_io_shift = 3;
3e8e2e0c
AB
562 if (c->max_write_size < c->min_io_size) {
563 c->max_write_size = c->min_io_size;
564 c->max_write_shift = c->min_io_shift;
565 }
1e51764a
AB
566 }
567
568 c->ref_node_alsz = ALIGN(UBIFS_REF_NODE_SZ, c->min_io_size);
569 c->mst_node_alsz = ALIGN(UBIFS_MST_NODE_SZ, c->min_io_size);
570
571 /*
572 * Initialize node length ranges which are mostly needed for node
573 * length validation.
574 */
575 c->ranges[UBIFS_PAD_NODE].len = UBIFS_PAD_NODE_SZ;
576 c->ranges[UBIFS_SB_NODE].len = UBIFS_SB_NODE_SZ;
577 c->ranges[UBIFS_MST_NODE].len = UBIFS_MST_NODE_SZ;
578 c->ranges[UBIFS_REF_NODE].len = UBIFS_REF_NODE_SZ;
579 c->ranges[UBIFS_TRUN_NODE].len = UBIFS_TRUN_NODE_SZ;
580 c->ranges[UBIFS_CS_NODE].len = UBIFS_CS_NODE_SZ;
581
582 c->ranges[UBIFS_INO_NODE].min_len = UBIFS_INO_NODE_SZ;
583 c->ranges[UBIFS_INO_NODE].max_len = UBIFS_MAX_INO_NODE_SZ;
584 c->ranges[UBIFS_ORPH_NODE].min_len =
585 UBIFS_ORPH_NODE_SZ + sizeof(__le64);
586 c->ranges[UBIFS_ORPH_NODE].max_len = c->leb_size;
587 c->ranges[UBIFS_DENT_NODE].min_len = UBIFS_DENT_NODE_SZ;
588 c->ranges[UBIFS_DENT_NODE].max_len = UBIFS_MAX_DENT_NODE_SZ;
589 c->ranges[UBIFS_XENT_NODE].min_len = UBIFS_XENT_NODE_SZ;
590 c->ranges[UBIFS_XENT_NODE].max_len = UBIFS_MAX_XENT_NODE_SZ;
591 c->ranges[UBIFS_DATA_NODE].min_len = UBIFS_DATA_NODE_SZ;
592 c->ranges[UBIFS_DATA_NODE].max_len = UBIFS_MAX_DATA_NODE_SZ;
593 /*
594 * Minimum indexing node size is amended later when superblock is
595 * read and the key length is known.
596 */
597 c->ranges[UBIFS_IDX_NODE].min_len = UBIFS_IDX_NODE_SZ + UBIFS_BRANCH_SZ;
598 /*
599 * Maximum indexing node size is amended later when superblock is
600 * read and the fanout is known.
601 */
602 c->ranges[UBIFS_IDX_NODE].max_len = INT_MAX;
603
604 /*
7078202e
AB
605 * Initialize dead and dark LEB space watermarks. See gc.c for comments
606 * about these values.
1e51764a
AB
607 */
608 c->dead_wm = ALIGN(MIN_WRITE_SZ, c->min_io_size);
609 c->dark_wm = ALIGN(UBIFS_MAX_NODE_SZ, c->min_io_size);
610
9bbb5726
AB
611 /*
612 * Calculate how many bytes would be wasted at the end of LEB if it was
613 * fully filled with data nodes of maximum size. This is used in
614 * calculations when reporting free space.
615 */
616 c->leb_overhead = c->leb_size % UBIFS_MAX_DATA_NODE_SZ;
39ce81ce 617
4793e7c5 618 /* Buffer size for bulk-reads */
6c0c42cd
AB
619 c->max_bu_buf_len = UBIFS_MAX_BULK_READ * UBIFS_MAX_DATA_NODE_SZ;
620 if (c->max_bu_buf_len > c->leb_size)
621 c->max_bu_buf_len = c->leb_size;
1e51764a
AB
622 return 0;
623}
624
625/**
626 * bud_wbuf_callback - bud LEB write-buffer synchronization call-back.
627 * @c: UBIFS file-system description object
628 * @lnum: LEB the write-buffer was synchronized to
629 * @free: how many free bytes left in this LEB
630 * @pad: how many bytes were padded
631 *
632 * This is a callback function which is called by the I/O unit when the
633 * write-buffer is synchronized. We need this to correctly maintain space
634 * accounting in bud logical eraseblocks. This function returns zero in case of
635 * success and a negative error code in case of failure.
636 *
637 * This function actually belongs to the journal, but we keep it here because
638 * we want to keep it static.
639 */
640static int bud_wbuf_callback(struct ubifs_info *c, int lnum, int free, int pad)
641{
642 return ubifs_update_one_lp(c, lnum, free, pad, 0, 0);
643}
644
645/*
79807d07 646 * init_constants_sb - initialize UBIFS constants.
1e51764a
AB
647 * @c: UBIFS file-system description object
648 *
649 * This is a helper function which initializes various UBIFS constants after
650 * the superblock has been read. It also checks various UBIFS parameters and
651 * makes sure they are all right. Returns zero in case of success and a
652 * negative error code in case of failure.
653 */
79807d07 654static int init_constants_sb(struct ubifs_info *c)
1e51764a
AB
655{
656 int tmp, err;
4d61db4f 657 long long tmp64;
1e51764a
AB
658
659 c->main_bytes = (long long)c->main_lebs * c->leb_size;
660 c->max_znode_sz = sizeof(struct ubifs_znode) +
661 c->fanout * sizeof(struct ubifs_zbranch);
662
663 tmp = ubifs_idx_node_sz(c, 1);
664 c->ranges[UBIFS_IDX_NODE].min_len = tmp;
665 c->min_idx_node_sz = ALIGN(tmp, 8);
666
667 tmp = ubifs_idx_node_sz(c, c->fanout);
668 c->ranges[UBIFS_IDX_NODE].max_len = tmp;
669 c->max_idx_node_sz = ALIGN(tmp, 8);
670
671 /* Make sure LEB size is large enough to fit full commit */
672 tmp = UBIFS_CS_NODE_SZ + UBIFS_REF_NODE_SZ * c->jhead_cnt;
673 tmp = ALIGN(tmp, c->min_io_size);
674 if (tmp > c->leb_size) {
235c362b 675 ubifs_err(c, "too small LEB size %d, at least %d needed",
a6aae4dd 676 c->leb_size, tmp);
1e51764a
AB
677 return -EINVAL;
678 }
679
680 /*
681 * Make sure that the log is large enough to fit reference nodes for
682 * all buds plus one reserved LEB.
683 */
4d61db4f
AB
684 tmp64 = c->max_bud_bytes + c->leb_size - 1;
685 c->max_bud_cnt = div_u64(tmp64, c->leb_size);
1e51764a
AB
686 tmp = (c->ref_node_alsz * c->max_bud_cnt + c->leb_size - 1);
687 tmp /= c->leb_size;
688 tmp += 1;
689 if (c->log_lebs < tmp) {
235c362b 690 ubifs_err(c, "too small log %d LEBs, required min. %d LEBs",
a6aae4dd 691 c->log_lebs, tmp);
1e51764a
AB
692 return -EINVAL;
693 }
694
695 /*
696 * When budgeting we assume worst-case scenarios when the pages are not
697 * be compressed and direntries are of the maximum size.
698 *
699 * Note, data, which may be stored in inodes is budgeted separately, so
b137545c 700 * it is not included into 'c->bi.inode_budget'.
1e51764a 701 */
b137545c
AB
702 c->bi.page_budget = UBIFS_MAX_DATA_NODE_SZ * UBIFS_BLOCKS_PER_PAGE;
703 c->bi.inode_budget = UBIFS_INO_NODE_SZ;
704 c->bi.dent_budget = UBIFS_MAX_DENT_NODE_SZ;
1e51764a
AB
705
706 /*
707 * When the amount of flash space used by buds becomes
708 * 'c->max_bud_bytes', UBIFS just blocks all writers and starts commit.
709 * The writers are unblocked when the commit is finished. To avoid
710 * writers to be blocked UBIFS initiates background commit in advance,
711 * when number of bud bytes becomes above the limit defined below.
712 */
713 c->bg_bud_bytes = (c->max_bud_bytes * 13) >> 4;
714
715 /*
716 * Ensure minimum journal size. All the bytes in the journal heads are
717 * considered to be used, when calculating the current journal usage.
718 * Consequently, if the journal is too small, UBIFS will treat it as
719 * always full.
720 */
4d61db4f 721 tmp64 = (long long)(c->jhead_cnt + 1) * c->leb_size + 1;
1e51764a
AB
722 if (c->bg_bud_bytes < tmp64)
723 c->bg_bud_bytes = tmp64;
724 if (c->max_bud_bytes < tmp64 + c->leb_size)
725 c->max_bud_bytes = tmp64 + c->leb_size;
726
727 err = ubifs_calc_lpt_geom(c);
728 if (err)
729 return err;
730
fb1cd01a
AB
731 /* Initialize effective LEB size used in budgeting calculations */
732 c->idx_leb_size = c->leb_size - c->max_idx_node_sz;
79807d07
AB
733 return 0;
734}
735
736/*
737 * init_constants_master - initialize UBIFS constants.
738 * @c: UBIFS file-system description object
739 *
740 * This is a helper function which initializes various UBIFS constants after
741 * the master node has been read. It also checks various UBIFS parameters and
742 * makes sure they are all right.
743 */
744static void init_constants_master(struct ubifs_info *c)
745{
746 long long tmp64;
747
b137545c 748 c->bi.min_idx_lebs = ubifs_calc_min_idx_lebs(c);
fb1cd01a 749 c->report_rp_size = ubifs_reported_space(c, c->rp_size);
1e51764a
AB
750
751 /*
752 * Calculate total amount of FS blocks. This number is not used
753 * internally because it does not make much sense for UBIFS, but it is
754 * necessary to report something for the 'statfs()' call.
755 *
7dad181b 756 * Subtract the LEB reserved for GC, the LEB which is reserved for
af14a1ad
AB
757 * deletions, minimum LEBs for the index, and assume only one journal
758 * head is available.
1e51764a 759 */
af14a1ad 760 tmp64 = c->main_lebs - 1 - 1 - MIN_INDEX_LEBS - c->jhead_cnt + 1;
4d61db4f 761 tmp64 *= (long long)c->leb_size - c->leb_overhead;
1e51764a
AB
762 tmp64 = ubifs_reported_space(c, tmp64);
763 c->block_cnt = tmp64 >> UBIFS_BLOCK_SHIFT;
1e51764a
AB
764}
765
766/**
767 * take_gc_lnum - reserve GC LEB.
768 * @c: UBIFS file-system description object
769 *
b4978e94
AB
770 * This function ensures that the LEB reserved for garbage collection is marked
771 * as "taken" in lprops. We also have to set free space to LEB size and dirty
772 * space to zero, because lprops may contain out-of-date information if the
773 * file-system was un-mounted before it has been committed. This function
774 * returns zero in case of success and a negative error code in case of
775 * failure.
1e51764a
AB
776 */
777static int take_gc_lnum(struct ubifs_info *c)
778{
779 int err;
780
781 if (c->gc_lnum == -1) {
235c362b 782 ubifs_err(c, "no LEB for GC");
1e51764a
AB
783 return -EINVAL;
784 }
785
1e51764a
AB
786 /* And we have to tell lprops that this LEB is taken */
787 err = ubifs_change_one_lp(c, c->gc_lnum, c->leb_size, 0,
788 LPROPS_TAKEN, 0, 0);
789 return err;
790}
791
792/**
793 * alloc_wbufs - allocate write-buffers.
794 * @c: UBIFS file-system description object
795 *
796 * This helper function allocates and initializes UBIFS write-buffers. Returns
797 * zero in case of success and %-ENOMEM in case of failure.
798 */
799static int alloc_wbufs(struct ubifs_info *c)
800{
801 int i, err;
802
86b4c14d
FF
803 c->jheads = kcalloc(c->jhead_cnt, sizeof(struct ubifs_jhead),
804 GFP_KERNEL);
1e51764a
AB
805 if (!c->jheads)
806 return -ENOMEM;
807
808 /* Initialize journal heads */
809 for (i = 0; i < c->jhead_cnt; i++) {
810 INIT_LIST_HEAD(&c->jheads[i].buds_list);
811 err = ubifs_wbuf_init(c, &c->jheads[i].wbuf);
812 if (err)
813 return err;
814
815 c->jheads[i].wbuf.sync_callback = &bud_wbuf_callback;
816 c->jheads[i].wbuf.jhead = i;
1a0b0699 817 c->jheads[i].grouped = 1;
1e51764a
AB
818 }
819
1e51764a 820 /*
44156267
AB
821 * Garbage Collector head does not need to be synchronized by timer.
822 * Also GC head nodes are not grouped.
1e51764a 823 */
0b335b9d 824 c->jheads[GCHD].wbuf.no_timer = 1;
1a0b0699 825 c->jheads[GCHD].grouped = 0;
1e51764a
AB
826
827 return 0;
828}
829
830/**
831 * free_wbufs - free write-buffers.
832 * @c: UBIFS file-system description object
833 */
834static void free_wbufs(struct ubifs_info *c)
835{
836 int i;
837
838 if (c->jheads) {
839 for (i = 0; i < c->jhead_cnt; i++) {
840 kfree(c->jheads[i].wbuf.buf);
841 kfree(c->jheads[i].wbuf.inodes);
842 }
843 kfree(c->jheads);
844 c->jheads = NULL;
845 }
846}
847
848/**
849 * free_orphans - free orphans.
850 * @c: UBIFS file-system description object
851 */
852static void free_orphans(struct ubifs_info *c)
853{
854 struct ubifs_orphan *orph;
855
856 while (c->orph_dnext) {
857 orph = c->orph_dnext;
858 c->orph_dnext = orph->dnext;
859 list_del(&orph->list);
860 kfree(orph);
861 }
862
863 while (!list_empty(&c->orph_list)) {
864 orph = list_entry(c->orph_list.next, struct ubifs_orphan, list);
865 list_del(&orph->list);
866 kfree(orph);
235c362b 867 ubifs_err(c, "orphan list not empty at unmount");
1e51764a
AB
868 }
869
870 vfree(c->orph_buf);
871 c->orph_buf = NULL;
872}
873
874/**
875 * free_buds - free per-bud objects.
876 * @c: UBIFS file-system description object
877 */
878static void free_buds(struct ubifs_info *c)
879{
bb25e49f
CS
880 struct ubifs_bud *bud, *n;
881
882 rbtree_postorder_for_each_entry_safe(bud, n, &c->buds, rb)
883 kfree(bud);
1e51764a
AB
884}
885
886/**
887 * check_volume_empty - check if the UBI volume is empty.
888 * @c: UBIFS file-system description object
889 *
890 * This function checks if the UBIFS volume is empty by looking if its LEBs are
891 * mapped or not. The result of checking is stored in the @c->empty variable.
892 * Returns zero in case of success and a negative error code in case of
893 * failure.
894 */
895static int check_volume_empty(struct ubifs_info *c)
896{
897 int lnum, err;
898
899 c->empty = 1;
900 for (lnum = 0; lnum < c->leb_cnt; lnum++) {
d3b2578f 901 err = ubifs_is_mapped(c, lnum);
1e51764a
AB
902 if (unlikely(err < 0))
903 return err;
904 if (err == 1) {
905 c->empty = 0;
906 break;
907 }
908
909 cond_resched();
910 }
911
912 return 0;
913}
914
915/*
916 * UBIFS mount options.
917 *
918 * Opt_fast_unmount: do not run a journal commit before un-mounting
919 * Opt_norm_unmount: run a journal commit before un-mounting
4793e7c5
AH
920 * Opt_bulk_read: enable bulk-reads
921 * Opt_no_bulk_read: disable bulk-reads
2953e73f
AH
922 * Opt_chk_data_crc: check CRCs when reading data nodes
923 * Opt_no_chk_data_crc: do not check CRCs when reading data nodes
553dea4d 924 * Opt_override_compr: override default compressor
1e51764a
AB
925 * Opt_err: just end of array marker
926 */
927enum {
928 Opt_fast_unmount,
929 Opt_norm_unmount,
4793e7c5
AH
930 Opt_bulk_read,
931 Opt_no_bulk_read,
2953e73f
AH
932 Opt_chk_data_crc,
933 Opt_no_chk_data_crc,
553dea4d 934 Opt_override_compr,
1e51764a
AB
935 Opt_err,
936};
937
a447c093 938static const match_table_t tokens = {
1e51764a
AB
939 {Opt_fast_unmount, "fast_unmount"},
940 {Opt_norm_unmount, "norm_unmount"},
4793e7c5
AH
941 {Opt_bulk_read, "bulk_read"},
942 {Opt_no_bulk_read, "no_bulk_read"},
2953e73f
AH
943 {Opt_chk_data_crc, "chk_data_crc"},
944 {Opt_no_chk_data_crc, "no_chk_data_crc"},
553dea4d 945 {Opt_override_compr, "compr=%s"},
1e51764a
AB
946 {Opt_err, NULL},
947};
948
8379ea31
AB
949/**
950 * parse_standard_option - parse a standard mount option.
951 * @option: the option to parse
952 *
953 * Normally, standard mount options like "sync" are passed to file-systems as
954 * flags. However, when a "rootflags=" kernel boot parameter is used, they may
955 * be present in the options string. This function tries to deal with this
956 * situation and parse standard options. Returns 0 if the option was not
957 * recognized, and the corresponding integer flag if it was.
958 *
959 * UBIFS is only interested in the "sync" option, so do not check for anything
960 * else.
961 */
962static int parse_standard_option(const char *option)
963{
235c362b
SY
964
965 pr_notice("UBIFS: parse %s\n", option);
8379ea31
AB
966 if (!strcmp(option, "sync"))
967 return MS_SYNCHRONOUS;
968 return 0;
969}
970
1e51764a
AB
971/**
972 * ubifs_parse_options - parse mount parameters.
973 * @c: UBIFS file-system description object
974 * @options: parameters to parse
975 * @is_remount: non-zero if this is FS re-mount
976 *
977 * This function parses UBIFS mount options and returns zero in case success
978 * and a negative error code in case of failure.
979 */
980static int ubifs_parse_options(struct ubifs_info *c, char *options,
981 int is_remount)
982{
983 char *p;
984 substring_t args[MAX_OPT_ARGS];
985
986 if (!options)
987 return 0;
988
989 while ((p = strsep(&options, ","))) {
990 int token;
991
992 if (!*p)
993 continue;
994
995 token = match_token(p, tokens, args);
996 switch (token) {
27ad2799
AB
997 /*
998 * %Opt_fast_unmount and %Opt_norm_unmount options are ignored.
cb54ef8b 999 * We accept them in order to be backward-compatible. But this
27ad2799
AB
1000 * should be removed at some point.
1001 */
1e51764a
AB
1002 case Opt_fast_unmount:
1003 c->mount_opts.unmount_mode = 2;
1e51764a
AB
1004 break;
1005 case Opt_norm_unmount:
1006 c->mount_opts.unmount_mode = 1;
1e51764a 1007 break;
4793e7c5
AH
1008 case Opt_bulk_read:
1009 c->mount_opts.bulk_read = 2;
1010 c->bulk_read = 1;
1011 break;
1012 case Opt_no_bulk_read:
1013 c->mount_opts.bulk_read = 1;
1014 c->bulk_read = 0;
1015 break;
2953e73f
AH
1016 case Opt_chk_data_crc:
1017 c->mount_opts.chk_data_crc = 2;
1018 c->no_chk_data_crc = 0;
1019 break;
1020 case Opt_no_chk_data_crc:
1021 c->mount_opts.chk_data_crc = 1;
1022 c->no_chk_data_crc = 1;
1023 break;
553dea4d
AB
1024 case Opt_override_compr:
1025 {
1026 char *name = match_strdup(&args[0]);
1027
1028 if (!name)
1029 return -ENOMEM;
1030 if (!strcmp(name, "none"))
1031 c->mount_opts.compr_type = UBIFS_COMPR_NONE;
1032 else if (!strcmp(name, "lzo"))
1033 c->mount_opts.compr_type = UBIFS_COMPR_LZO;
1034 else if (!strcmp(name, "zlib"))
1035 c->mount_opts.compr_type = UBIFS_COMPR_ZLIB;
1036 else {
235c362b 1037 ubifs_err(c, "unknown compressor \"%s\"", name); //FIXME: is c ready?
553dea4d
AB
1038 kfree(name);
1039 return -EINVAL;
1040 }
1041 kfree(name);
1042 c->mount_opts.override_compr = 1;
1043 c->default_compr = c->mount_opts.compr_type;
1044 break;
1045 }
1e51764a 1046 default:
8379ea31
AB
1047 {
1048 unsigned long flag;
1049 struct super_block *sb = c->vfs_sb;
1050
1051 flag = parse_standard_option(p);
1052 if (!flag) {
235c362b 1053 ubifs_err(c, "unrecognized mount option \"%s\" or missing value",
79fda517 1054 p);
8379ea31
AB
1055 return -EINVAL;
1056 }
1057 sb->s_flags |= flag;
1058 break;
1059 }
1e51764a
AB
1060 }
1061 }
1062
1063 return 0;
1064}
1065
1066/**
1067 * destroy_journal - destroy journal data structures.
1068 * @c: UBIFS file-system description object
1069 *
1070 * This function destroys journal data structures including those that may have
1071 * been created by recovery functions.
1072 */
1073static void destroy_journal(struct ubifs_info *c)
1074{
1075 while (!list_empty(&c->unclean_leb_list)) {
1076 struct ubifs_unclean_leb *ucleb;
1077
1078 ucleb = list_entry(c->unclean_leb_list.next,
1079 struct ubifs_unclean_leb, list);
1080 list_del(&ucleb->list);
1081 kfree(ucleb);
1082 }
1083 while (!list_empty(&c->old_buds)) {
1084 struct ubifs_bud *bud;
1085
1086 bud = list_entry(c->old_buds.next, struct ubifs_bud, list);
1087 list_del(&bud->list);
1088 kfree(bud);
1089 }
1090 ubifs_destroy_idx_gc(c);
1091 ubifs_destroy_size_tree(c);
1092 ubifs_tnc_close(c);
1093 free_buds(c);
1094}
1095
3477d204
AB
1096/**
1097 * bu_init - initialize bulk-read information.
1098 * @c: UBIFS file-system description object
1099 */
1100static void bu_init(struct ubifs_info *c)
1101{
1102 ubifs_assert(c->bulk_read == 1);
1103
1104 if (c->bu.buf)
1105 return; /* Already initialized */
1106
1107again:
1108 c->bu.buf = kmalloc(c->max_bu_buf_len, GFP_KERNEL | __GFP_NOWARN);
1109 if (!c->bu.buf) {
1110 if (c->max_bu_buf_len > UBIFS_KMALLOC_OK) {
1111 c->max_bu_buf_len = UBIFS_KMALLOC_OK;
1112 goto again;
1113 }
1114
1115 /* Just disable bulk-read */
235c362b 1116 ubifs_warn(c, "cannot allocate %d bytes of memory for bulk-read, disabling it",
79fda517 1117 c->max_bu_buf_len);
3477d204
AB
1118 c->mount_opts.bulk_read = 1;
1119 c->bulk_read = 0;
1120 return;
1121 }
1122}
1123
57a450e9
AB
1124/**
1125 * check_free_space - check if there is enough free space to mount.
1126 * @c: UBIFS file-system description object
1127 *
1128 * This function makes sure UBIFS has enough free space to be mounted in
1129 * read/write mode. UBIFS must always have some free space to allow deletions.
1130 */
1131static int check_free_space(struct ubifs_info *c)
1132{
1133 ubifs_assert(c->dark_wm > 0);
1134 if (c->lst.total_free + c->lst.total_dirty < c->dark_wm) {
235c362b 1135 ubifs_err(c, "insufficient free space to mount in R/W mode");
edf6be24
AB
1136 ubifs_dump_budg(c, &c->bi);
1137 ubifs_dump_lprops(c);
a2b9df3f 1138 return -ENOSPC;
57a450e9
AB
1139 }
1140 return 0;
1141}
1142
1e51764a
AB
1143/**
1144 * mount_ubifs - mount UBIFS file-system.
1145 * @c: UBIFS file-system description object
1146 *
1147 * This function mounts UBIFS file system. Returns zero in case of success and
1148 * a negative error code in case of failure.
1e51764a
AB
1149 */
1150static int mount_ubifs(struct ubifs_info *c)
1151{
2ef13294 1152 int err;
3668b70f 1153 long long x, y;
1e51764a
AB
1154 size_t sz;
1155
2ef13294 1156 c->ro_mount = !!(c->vfs_sb->s_flags & MS_RDONLY);
90bea5a3
DG
1157 /* Suppress error messages while probing if MS_SILENT is set */
1158 c->probing = !!(c->vfs_sb->s_flags & MS_SILENT);
1159
1e51764a
AB
1160 err = init_constants_early(c);
1161 if (err)
1162 return err;
1163
17c2f9f8
AB
1164 err = ubifs_debugging_init(c);
1165 if (err)
1166 return err;
1e51764a
AB
1167
1168 err = check_volume_empty(c);
1169 if (err)
1170 goto out_free;
1171
2ef13294 1172 if (c->empty && (c->ro_mount || c->ro_media)) {
1e51764a
AB
1173 /*
1174 * This UBI volume is empty, and read-only, or the file system
1175 * is mounted read-only - we cannot format it.
1176 */
235c362b 1177 ubifs_err(c, "can't format empty UBI volume: read-only %s",
1e51764a
AB
1178 c->ro_media ? "UBI volume" : "mount");
1179 err = -EROFS;
1180 goto out_free;
1181 }
1182
2ef13294 1183 if (c->ro_media && !c->ro_mount) {
235c362b 1184 ubifs_err(c, "cannot mount read-write - read-only media");
1e51764a
AB
1185 err = -EROFS;
1186 goto out_free;
1187 }
1188
1189 /*
1190 * The requirement for the buffer is that it should fit indexing B-tree
1191 * height amount of integers. We assume the height if the TNC tree will
1192 * never exceed 64.
1193 */
1194 err = -ENOMEM;
1195 c->bottom_up_buf = kmalloc(BOTTOM_UP_HEIGHT * sizeof(int), GFP_KERNEL);
1196 if (!c->bottom_up_buf)
1197 goto out_free;
1198
1199 c->sbuf = vmalloc(c->leb_size);
1200 if (!c->sbuf)
1201 goto out_free;
1202
2ef13294 1203 if (!c->ro_mount) {
1e51764a
AB
1204 c->ileb_buf = vmalloc(c->leb_size);
1205 if (!c->ileb_buf)
1206 goto out_free;
1207 }
1208
3477d204
AB
1209 if (c->bulk_read == 1)
1210 bu_init(c);
1211
d882962f
MC
1212 if (!c->ro_mount) {
1213 c->write_reserve_buf = kmalloc(COMPRESSED_DATA_NODE_BUF_SZ,
1214 GFP_KERNEL);
1215 if (!c->write_reserve_buf)
1216 goto out_free;
1217 }
1218
18d1d7fb 1219 c->mounting = 1;
2953e73f 1220
1e51764a
AB
1221 err = ubifs_read_superblock(c);
1222 if (err)
1223 goto out_free;
1224
90bea5a3
DG
1225 c->probing = 0;
1226
1e51764a 1227 /*
553dea4d 1228 * Make sure the compressor which is set as default in the superblock
57a450e9 1229 * or overridden by mount options is actually compiled in.
1e51764a
AB
1230 */
1231 if (!ubifs_compr_present(c->default_compr)) {
235c362b 1232 ubifs_err(c, "'compressor \"%s\" is not compiled in",
553dea4d 1233 ubifs_compr_name(c->default_compr));
8eec2f36 1234 err = -ENOTSUPP;
553dea4d 1235 goto out_free;
1e51764a
AB
1236 }
1237
79807d07 1238 err = init_constants_sb(c);
1e51764a 1239 if (err)
17c2f9f8 1240 goto out_free;
1e51764a
AB
1241
1242 sz = ALIGN(c->max_idx_node_sz, c->min_io_size);
1243 sz = ALIGN(sz + c->max_idx_node_sz, c->min_io_size);
1244 c->cbuf = kmalloc(sz, GFP_NOFS);
1245 if (!c->cbuf) {
1246 err = -ENOMEM;
17c2f9f8 1247 goto out_free;
1e51764a
AB
1248 }
1249
b50b9f40
AB
1250 err = alloc_wbufs(c);
1251 if (err)
1252 goto out_cbuf;
1253
0855f310 1254 sprintf(c->bgt_name, BGT_NAME_PATTERN, c->vi.ubi_num, c->vi.vol_id);
2ef13294 1255 if (!c->ro_mount) {
1e51764a 1256 /* Create background thread */
fcabb347 1257 c->bgt = kthread_create(ubifs_bg_thread, c, "%s", c->bgt_name);
1e51764a
AB
1258 if (IS_ERR(c->bgt)) {
1259 err = PTR_ERR(c->bgt);
1260 c->bgt = NULL;
235c362b 1261 ubifs_err(c, "cannot spawn \"%s\", error %d",
1e51764a
AB
1262 c->bgt_name, err);
1263 goto out_wbufs;
1264 }
1265 wake_up_process(c->bgt);
1266 }
1267
1268 err = ubifs_read_master(c);
1269 if (err)
1270 goto out_master;
1271
09801194
BG
1272 init_constants_master(c);
1273
1e51764a 1274 if ((c->mst_node->flags & cpu_to_le32(UBIFS_MST_DIRTY)) != 0) {
235c362b 1275 ubifs_msg(c, "recovery needed");
1e51764a 1276 c->need_recovery = 1;
781c5717
BG
1277 }
1278
781c5717
BG
1279 if (c->need_recovery && !c->ro_mount) {
1280 err = ubifs_recover_inl_heads(c, c->sbuf);
1281 if (err)
1282 goto out_master;
1283 }
1284
1285 err = ubifs_lpt_init(c, 1, !c->ro_mount);
1286 if (err)
1287 goto out_master;
1288
09801194
BG
1289 if (!c->ro_mount && c->space_fixup) {
1290 err = ubifs_fixup_free_space(c);
1291 if (err)
56b04e3e 1292 goto out_lpt;
09801194
BG
1293 }
1294
2c84599c 1295 if (!c->ro_mount && !c->need_recovery) {
1e51764a
AB
1296 /*
1297 * Set the "dirty" flag so that if we reboot uncleanly we
1298 * will notice this immediately on the next mount.
1299 */
1300 c->mst_node->flags |= cpu_to_le32(UBIFS_MST_DIRTY);
1301 err = ubifs_write_master(c);
1302 if (err)
781c5717 1303 goto out_lpt;
1e51764a
AB
1304 }
1305
b137545c 1306 err = dbg_check_idx_size(c, c->bi.old_idx_sz);
1e51764a
AB
1307 if (err)
1308 goto out_lpt;
1309
1310 err = ubifs_replay_journal(c);
1311 if (err)
1312 goto out_journal;
1313
1fb8bd01 1314 /* Calculate 'min_idx_lebs' after journal replay */
b137545c 1315 c->bi.min_idx_lebs = ubifs_calc_min_idx_lebs(c);
1fb8bd01 1316
2ef13294 1317 err = ubifs_mount_orphans(c, c->need_recovery, c->ro_mount);
1e51764a
AB
1318 if (err)
1319 goto out_orphans;
1320
2ef13294 1321 if (!c->ro_mount) {
1e51764a
AB
1322 int lnum;
1323
57a450e9
AB
1324 err = check_free_space(c);
1325 if (err)
1e51764a 1326 goto out_orphans;
1e51764a
AB
1327
1328 /* Check for enough log space */
1329 lnum = c->lhead_lnum + 1;
1330 if (lnum >= UBIFS_LOG_LNUM + c->log_lebs)
1331 lnum = UBIFS_LOG_LNUM;
1332 if (lnum == c->ltail_lnum) {
1333 err = ubifs_consolidate_log(c);
1334 if (err)
1335 goto out_orphans;
1336 }
1337
1338 if (c->need_recovery) {
1339 err = ubifs_recover_size(c);
1340 if (err)
1341 goto out_orphans;
1342 err = ubifs_rcvry_gc_commit(c);
276de5d2
AB
1343 if (err)
1344 goto out_orphans;
b4978e94 1345 } else {
1e51764a 1346 err = take_gc_lnum(c);
b4978e94
AB
1347 if (err)
1348 goto out_orphans;
1349
1350 /*
1351 * GC LEB may contain garbage if there was an unclean
1352 * reboot, and it should be un-mapped.
1353 */
1354 err = ubifs_leb_unmap(c, c->gc_lnum);
1355 if (err)
c18de72f 1356 goto out_orphans;
b4978e94 1357 }
1e51764a
AB
1358
1359 err = dbg_check_lprops(c);
1360 if (err)
1361 goto out_orphans;
1362 } else if (c->need_recovery) {
1363 err = ubifs_recover_size(c);
1364 if (err)
1365 goto out_orphans;
b4978e94
AB
1366 } else {
1367 /*
1368 * Even if we mount read-only, we have to set space in GC LEB
1369 * to proper value because this affects UBIFS free space
1370 * reporting. We do not want to have a situation when
1371 * re-mounting from R/O to R/W changes amount of free space.
1372 */
1373 err = take_gc_lnum(c);
1374 if (err)
1375 goto out_orphans;
1e51764a
AB
1376 }
1377
1378 spin_lock(&ubifs_infos_lock);
1379 list_add_tail(&c->infos_list, &ubifs_infos);
1380 spin_unlock(&ubifs_infos_lock);
1381
1382 if (c->need_recovery) {
2ef13294 1383 if (c->ro_mount)
235c362b 1384 ubifs_msg(c, "recovery deferred");
1e51764a
AB
1385 else {
1386 c->need_recovery = 0;
235c362b 1387 ubifs_msg(c, "recovery completed");
b221337a
AB
1388 /*
1389 * GC LEB has to be empty and taken at this point. But
1390 * the journal head LEBs may also be accounted as
1391 * "empty taken" if they are empty.
1392 */
1393 ubifs_assert(c->lst.taken_empty_lebs > 0);
1e51764a 1394 }
6ba87c9b 1395 } else
b221337a 1396 ubifs_assert(c->lst.taken_empty_lebs > 0);
1e51764a 1397
6ba87c9b 1398 err = dbg_check_filesystem(c);
552ff317
AB
1399 if (err)
1400 goto out_infos;
1401
6ba87c9b 1402 err = dbg_debugfs_init_fs(c);
1e51764a
AB
1403 if (err)
1404 goto out_infos;
1405
18d1d7fb 1406 c->mounting = 0;
2953e73f 1407
235c362b 1408 ubifs_msg(c, "UBIFS: mounted UBI device %d, volume %d, name \"%s\"%s",
3668b70f 1409 c->vi.ubi_num, c->vi.vol_id, c->vi.name,
beadadfa 1410 c->ro_mount ? ", R/O mode" : "");
1e51764a 1411 x = (long long)c->main_lebs * c->leb_size;
3668b70f 1412 y = (long long)c->log_lebs * c->leb_size + c->max_bud_bytes;
235c362b 1413 ubifs_msg(c, "LEB size: %d bytes (%d KiB), min./max. I/O unit sizes: %d bytes/%d bytes",
3668b70f
AB
1414 c->leb_size, c->leb_size >> 10, c->min_io_size,
1415 c->max_write_size);
235c362b 1416 ubifs_msg(c, "FS size: %lld bytes (%lld MiB, %d LEBs), journal size %lld bytes (%lld MiB, %d LEBs)",
3668b70f
AB
1417 x, x >> 20, c->main_lebs,
1418 y, y >> 20, c->log_lebs + c->max_bud_cnt);
235c362b 1419 ubifs_msg(c, "reserved for root: %llu bytes (%llu KiB)",
3668b70f 1420 c->report_rp_size, c->report_rp_size >> 10);
235c362b 1421 ubifs_msg(c, "media format: w%d/r%d (latest is w%d/r%d), UUID %pUB%s",
963f0cf6 1422 c->fmt_version, c->ro_compat_version,
3668b70f
AB
1423 UBIFS_FORMAT_VERSION, UBIFS_RO_COMPAT_VERSION, c->uuid,
1424 c->big_lpt ? ", big LPT model" : ", small LPT model");
1425
1426 dbg_gen("default compressor: %s", ubifs_compr_name(c->default_compr));
1427 dbg_gen("data journal heads: %d",
1e51764a 1428 c->jhead_cnt - NONDATA_JHEADS_CNT);
3668b70f 1429 dbg_gen("log LEBs: %d (%d - %d)",
1e51764a 1430 c->log_lebs, UBIFS_LOG_LNUM, c->log_last);
3668b70f 1431 dbg_gen("LPT area LEBs: %d (%d - %d)",
1e51764a 1432 c->lpt_lebs, c->lpt_first, c->lpt_last);
3668b70f 1433 dbg_gen("orphan area LEBs: %d (%d - %d)",
1e51764a 1434 c->orph_lebs, c->orph_first, c->orph_last);
3668b70f 1435 dbg_gen("main area LEBs: %d (%d - %d)",
1e51764a 1436 c->main_lebs, c->main_first, c->leb_cnt - 1);
3668b70f
AB
1437 dbg_gen("index LEBs: %d", c->lst.idx_lebs);
1438 dbg_gen("total index bytes: %lld (%lld KiB, %lld MiB)",
b137545c
AB
1439 c->bi.old_idx_sz, c->bi.old_idx_sz >> 10,
1440 c->bi.old_idx_sz >> 20);
3668b70f
AB
1441 dbg_gen("key hash type: %d", c->key_hash_type);
1442 dbg_gen("tree fanout: %d", c->fanout);
1443 dbg_gen("reserved GC LEB: %d", c->gc_lnum);
1444 dbg_gen("max. znode size %d", c->max_znode_sz);
1445 dbg_gen("max. index node size %d", c->max_idx_node_sz);
1446 dbg_gen("node sizes: data %zu, inode %zu, dentry %zu",
8e5033ad 1447 UBIFS_DATA_NODE_SZ, UBIFS_INO_NODE_SZ, UBIFS_DENT_NODE_SZ);
3668b70f 1448 dbg_gen("node sizes: trun %zu, sb %zu, master %zu",
8e5033ad 1449 UBIFS_TRUN_NODE_SZ, UBIFS_SB_NODE_SZ, UBIFS_MST_NODE_SZ);
3668b70f 1450 dbg_gen("node sizes: ref %zu, cmt. start %zu, orph %zu",
8e5033ad 1451 UBIFS_REF_NODE_SZ, UBIFS_CS_NODE_SZ, UBIFS_ORPH_NODE_SZ);
3668b70f 1452 dbg_gen("max. node sizes: data %zu, inode %zu dentry %zu, idx %d",
c4361570 1453 UBIFS_MAX_DATA_NODE_SZ, UBIFS_MAX_INO_NODE_SZ,
6342aaeb 1454 UBIFS_MAX_DENT_NODE_SZ, ubifs_idx_node_sz(c, c->fanout));
3668b70f
AB
1455 dbg_gen("dead watermark: %d", c->dead_wm);
1456 dbg_gen("dark watermark: %d", c->dark_wm);
1457 dbg_gen("LEB overhead: %d", c->leb_overhead);
1e51764a 1458 x = (long long)c->main_lebs * c->dark_wm;
3668b70f 1459 dbg_gen("max. dark space: %lld (%lld KiB, %lld MiB)",
1e51764a 1460 x, x >> 10, x >> 20);
3668b70f 1461 dbg_gen("maximum bud bytes: %lld (%lld KiB, %lld MiB)",
1e51764a
AB
1462 c->max_bud_bytes, c->max_bud_bytes >> 10,
1463 c->max_bud_bytes >> 20);
3668b70f 1464 dbg_gen("BG commit bud bytes: %lld (%lld KiB, %lld MiB)",
1e51764a
AB
1465 c->bg_bud_bytes, c->bg_bud_bytes >> 10,
1466 c->bg_bud_bytes >> 20);
3668b70f 1467 dbg_gen("current bud bytes %lld (%lld KiB, %lld MiB)",
1e51764a 1468 c->bud_bytes, c->bud_bytes >> 10, c->bud_bytes >> 20);
3668b70f
AB
1469 dbg_gen("max. seq. number: %llu", c->max_sqnum);
1470 dbg_gen("commit number: %llu", c->cmt_no);
1e51764a
AB
1471
1472 return 0;
1473
1474out_infos:
1475 spin_lock(&ubifs_infos_lock);
1476 list_del(&c->infos_list);
1477 spin_unlock(&ubifs_infos_lock);
1478out_orphans:
1479 free_orphans(c);
1480out_journal:
1481 destroy_journal(c);
1482out_lpt:
1483 ubifs_lpt_free(c, 0);
1484out_master:
1485 kfree(c->mst_node);
1486 kfree(c->rcvrd_mst_node);
1487 if (c->bgt)
1488 kthread_stop(c->bgt);
1489out_wbufs:
1490 free_wbufs(c);
1491out_cbuf:
1492 kfree(c->cbuf);
1e51764a 1493out_free:
d882962f 1494 kfree(c->write_reserve_buf);
3477d204 1495 kfree(c->bu.buf);
1e51764a
AB
1496 vfree(c->ileb_buf);
1497 vfree(c->sbuf);
1498 kfree(c->bottom_up_buf);
17c2f9f8 1499 ubifs_debugging_exit(c);
1e51764a
AB
1500 return err;
1501}
1502
1503/**
1504 * ubifs_umount - un-mount UBIFS file-system.
1505 * @c: UBIFS file-system description object
1506 *
1507 * Note, this function is called to free allocated resourced when un-mounting,
1508 * as well as free resources when an error occurred while we were half way
1509 * through mounting (error path cleanup function). So it has to make sure the
1510 * resource was actually allocated before freeing it.
1511 */
1512static void ubifs_umount(struct ubifs_info *c)
1513{
1514 dbg_gen("un-mounting UBI device %d, volume %d", c->vi.ubi_num,
1515 c->vi.vol_id);
1516
552ff317 1517 dbg_debugfs_exit_fs(c);
1e51764a
AB
1518 spin_lock(&ubifs_infos_lock);
1519 list_del(&c->infos_list);
1520 spin_unlock(&ubifs_infos_lock);
1521
1522 if (c->bgt)
1523 kthread_stop(c->bgt);
1524
1525 destroy_journal(c);
1526 free_wbufs(c);
1527 free_orphans(c);
1528 ubifs_lpt_free(c, 0);
1529
1530 kfree(c->cbuf);
1531 kfree(c->rcvrd_mst_node);
1532 kfree(c->mst_node);
d882962f 1533 kfree(c->write_reserve_buf);
3477d204
AB
1534 kfree(c->bu.buf);
1535 vfree(c->ileb_buf);
1e51764a
AB
1536 vfree(c->sbuf);
1537 kfree(c->bottom_up_buf);
17c2f9f8 1538 ubifs_debugging_exit(c);
1e51764a
AB
1539}
1540
1541/**
1542 * ubifs_remount_rw - re-mount in read-write mode.
1543 * @c: UBIFS file-system description object
1544 *
1545 * UBIFS avoids allocating many unnecessary resources when mounted in read-only
1546 * mode. This function allocates the needed resources and re-mounts UBIFS in
1547 * read-write mode.
1548 */
1549static int ubifs_remount_rw(struct ubifs_info *c)
1550{
1551 int err, lnum;
1552
963f0cf6 1553 if (c->rw_incompat) {
235c362b
SY
1554 ubifs_err(c, "the file-system is not R/W-compatible");
1555 ubifs_msg(c, "on-flash format version is w%d/r%d, but software only supports up to version w%d/r%d",
79fda517
AB
1556 c->fmt_version, c->ro_compat_version,
1557 UBIFS_FORMAT_VERSION, UBIFS_RO_COMPAT_VERSION);
963f0cf6
AB
1558 return -EROFS;
1559 }
1560
1e51764a 1561 mutex_lock(&c->umount_mutex);
84abf972 1562 dbg_save_space_info(c);
1e51764a 1563 c->remounting_rw = 1;
c88ac00c 1564 c->ro_mount = 0;
1e51764a 1565
67e753ca
AB
1566 if (c->space_fixup) {
1567 err = ubifs_fixup_free_space(c);
1568 if (err)
fcdd57c8 1569 goto out;
67e753ca
AB
1570 }
1571
57a450e9
AB
1572 err = check_free_space(c);
1573 if (err)
1e51764a 1574 goto out;
1e51764a
AB
1575
1576 if (c->old_leb_cnt != c->leb_cnt) {
1577 struct ubifs_sb_node *sup;
1578
1579 sup = ubifs_read_sb_node(c);
1580 if (IS_ERR(sup)) {
1581 err = PTR_ERR(sup);
1582 goto out;
1583 }
1584 sup->leb_cnt = cpu_to_le32(c->leb_cnt);
1585 err = ubifs_write_sb_node(c, sup);
eaeee242 1586 kfree(sup);
1e51764a
AB
1587 if (err)
1588 goto out;
1589 }
1590
1591 if (c->need_recovery) {
235c362b 1592 ubifs_msg(c, "completing deferred recovery");
1e51764a
AB
1593 err = ubifs_write_rcvrd_mst_node(c);
1594 if (err)
1595 goto out;
1596 err = ubifs_recover_size(c);
1597 if (err)
1598 goto out;
1599 err = ubifs_clean_lebs(c, c->sbuf);
1600 if (err)
1601 goto out;
1602 err = ubifs_recover_inl_heads(c, c->sbuf);
1603 if (err)
1604 goto out;
49d128aa
AH
1605 } else {
1606 /* A readonly mount is not allowed to have orphans */
1607 ubifs_assert(c->tot_orphans == 0);
1608 err = ubifs_clear_orphans(c);
1609 if (err)
1610 goto out;
1e51764a
AB
1611 }
1612
1613 if (!(c->mst_node->flags & cpu_to_le32(UBIFS_MST_DIRTY))) {
1614 c->mst_node->flags |= cpu_to_le32(UBIFS_MST_DIRTY);
1615 err = ubifs_write_master(c);
1616 if (err)
1617 goto out;
1618 }
1619
1620 c->ileb_buf = vmalloc(c->leb_size);
1621 if (!c->ileb_buf) {
1622 err = -ENOMEM;
1623 goto out;
1624 }
1625
d882962f 1626 c->write_reserve_buf = kmalloc(COMPRESSED_DATA_NODE_BUF_SZ, GFP_KERNEL);
7203db97
WY
1627 if (!c->write_reserve_buf) {
1628 err = -ENOMEM;
d882962f 1629 goto out;
7203db97 1630 }
d882962f 1631
1e51764a
AB
1632 err = ubifs_lpt_init(c, 0, 1);
1633 if (err)
1634 goto out;
1635
1e51764a 1636 /* Create background thread */
fcabb347 1637 c->bgt = kthread_create(ubifs_bg_thread, c, "%s", c->bgt_name);
1e51764a
AB
1638 if (IS_ERR(c->bgt)) {
1639 err = PTR_ERR(c->bgt);
1640 c->bgt = NULL;
235c362b 1641 ubifs_err(c, "cannot spawn \"%s\", error %d",
1e51764a 1642 c->bgt_name, err);
2953e73f 1643 goto out;
1e51764a
AB
1644 }
1645 wake_up_process(c->bgt);
1646
1647 c->orph_buf = vmalloc(c->leb_size);
2953e73f
AH
1648 if (!c->orph_buf) {
1649 err = -ENOMEM;
1650 goto out;
1651 }
1e51764a
AB
1652
1653 /* Check for enough log space */
1654 lnum = c->lhead_lnum + 1;
1655 if (lnum >= UBIFS_LOG_LNUM + c->log_lebs)
1656 lnum = UBIFS_LOG_LNUM;
1657 if (lnum == c->ltail_lnum) {
1658 err = ubifs_consolidate_log(c);
1659 if (err)
1660 goto out;
1661 }
1662
1663 if (c->need_recovery)
1664 err = ubifs_rcvry_gc_commit(c);
1665 else
b4978e94 1666 err = ubifs_leb_unmap(c, c->gc_lnum);
1e51764a
AB
1667 if (err)
1668 goto out;
1669
8c230d9a
AB
1670 dbg_gen("re-mounted read-write");
1671 c->remounting_rw = 0;
1672
1e51764a
AB
1673 if (c->need_recovery) {
1674 c->need_recovery = 0;
235c362b 1675 ubifs_msg(c, "deferred recovery completed");
8c230d9a
AB
1676 } else {
1677 /*
1678 * Do not run the debugging space check if the were doing
1679 * recovery, because when we saved the information we had the
1680 * file-system in a state where the TNC and lprops has been
1681 * modified in memory, but all the I/O operations (including a
1682 * commit) were deferred. So the file-system was in
1683 * "non-committed" state. Now the file-system is in committed
1684 * state, and of course the amount of free space will change
1685 * because, for example, the old index size was imprecise.
1686 */
1687 err = dbg_check_space_info(c);
1e51764a 1688 }
9d510db4 1689
1e51764a 1690 mutex_unlock(&c->umount_mutex);
84abf972 1691 return err;
1e51764a
AB
1692
1693out:
c88ac00c 1694 c->ro_mount = 1;
1e51764a
AB
1695 vfree(c->orph_buf);
1696 c->orph_buf = NULL;
1697 if (c->bgt) {
1698 kthread_stop(c->bgt);
1699 c->bgt = NULL;
1700 }
1701 free_wbufs(c);
d882962f
MC
1702 kfree(c->write_reserve_buf);
1703 c->write_reserve_buf = NULL;
1e51764a
AB
1704 vfree(c->ileb_buf);
1705 c->ileb_buf = NULL;
1706 ubifs_lpt_free(c, 1);
1707 c->remounting_rw = 0;
1708 mutex_unlock(&c->umount_mutex);
1709 return err;
1710}
1711
1e51764a
AB
1712/**
1713 * ubifs_remount_ro - re-mount in read-only mode.
1714 * @c: UBIFS file-system description object
1715 *
84abf972
AB
1716 * We assume VFS has stopped writing. Possibly the background thread could be
1717 * running a commit, however kthread_stop will wait in that case.
1e51764a
AB
1718 */
1719static void ubifs_remount_ro(struct ubifs_info *c)
1720{
1721 int i, err;
1722
1723 ubifs_assert(!c->need_recovery);
2ef13294 1724 ubifs_assert(!c->ro_mount);
e4d9b6cb 1725
1e51764a
AB
1726 mutex_lock(&c->umount_mutex);
1727 if (c->bgt) {
1728 kthread_stop(c->bgt);
1729 c->bgt = NULL;
1730 }
1731
84abf972
AB
1732 dbg_save_space_info(c);
1733
39037559 1734 for (i = 0; i < c->jhead_cnt; i++)
1e51764a 1735 ubifs_wbuf_sync(&c->jheads[i].wbuf);
1e51764a 1736
e4d9b6cb
AB
1737 c->mst_node->flags &= ~cpu_to_le32(UBIFS_MST_DIRTY);
1738 c->mst_node->flags |= cpu_to_le32(UBIFS_MST_NO_ORPHS);
1739 c->mst_node->gc_lnum = cpu_to_le32(c->gc_lnum);
1740 err = ubifs_write_master(c);
1741 if (err)
1742 ubifs_ro_mode(c, err);
1743
1e51764a
AB
1744 vfree(c->orph_buf);
1745 c->orph_buf = NULL;
d882962f
MC
1746 kfree(c->write_reserve_buf);
1747 c->write_reserve_buf = NULL;
1e51764a
AB
1748 vfree(c->ileb_buf);
1749 c->ileb_buf = NULL;
1750 ubifs_lpt_free(c, 1);
2ef13294 1751 c->ro_mount = 1;
84abf972
AB
1752 err = dbg_check_space_info(c);
1753 if (err)
1754 ubifs_ro_mode(c, err);
1e51764a
AB
1755 mutex_unlock(&c->umount_mutex);
1756}
1757
1758static void ubifs_put_super(struct super_block *sb)
1759{
1760 int i;
1761 struct ubifs_info *c = sb->s_fs_info;
1762
235c362b 1763 ubifs_msg(c, "un-mount UBI device %d", c->vi.ubi_num);
6cfd0148 1764
1e51764a
AB
1765 /*
1766 * The following asserts are only valid if there has not been a failure
1767 * of the media. For example, there will be dirty inodes if we failed
1768 * to write them back because of I/O errors.
1769 */
1a067a22 1770 if (!c->ro_error) {
b137545c
AB
1771 ubifs_assert(c->bi.idx_growth == 0);
1772 ubifs_assert(c->bi.dd_growth == 0);
1773 ubifs_assert(c->bi.data_growth == 0);
1a067a22 1774 }
1e51764a
AB
1775
1776 /*
1777 * The 'c->umount_lock' prevents races between UBIFS memory shrinker
1778 * and file system un-mount. Namely, it prevents the shrinker from
1779 * picking this superblock for shrinking - it will be just skipped if
1780 * the mutex is locked.
1781 */
1782 mutex_lock(&c->umount_mutex);
2ef13294 1783 if (!c->ro_mount) {
1e51764a
AB
1784 /*
1785 * First of all kill the background thread to make sure it does
1786 * not interfere with un-mounting and freeing resources.
1787 */
1788 if (c->bgt) {
1789 kthread_stop(c->bgt);
1790 c->bgt = NULL;
1791 }
1792
1e51764a 1793 /*
2680d722 1794 * On fatal errors c->ro_error is set to 1, in which case we do
1e51764a
AB
1795 * not write the master node.
1796 */
2680d722 1797 if (!c->ro_error) {
2ef13294
AB
1798 int err;
1799
1800 /* Synchronize write-buffers */
39037559
AB
1801 for (i = 0; i < c->jhead_cnt; i++)
1802 ubifs_wbuf_sync(&c->jheads[i].wbuf);
2ef13294 1803
1e51764a
AB
1804 /*
1805 * We are being cleanly unmounted which means the
1806 * orphans were killed - indicate this in the master
1807 * node. Also save the reserved GC LEB number.
1808 */
1e51764a
AB
1809 c->mst_node->flags &= ~cpu_to_le32(UBIFS_MST_DIRTY);
1810 c->mst_node->flags |= cpu_to_le32(UBIFS_MST_NO_ORPHS);
1811 c->mst_node->gc_lnum = cpu_to_le32(c->gc_lnum);
1812 err = ubifs_write_master(c);
1813 if (err)
1814 /*
1815 * Recovery will attempt to fix the master area
1816 * next mount, so we just print a message and
1817 * continue to unmount normally.
1818 */
235c362b 1819 ubifs_err(c, "failed to write master node, error %d",
79fda517 1820 err);
3601ba27
AB
1821 } else {
1822 for (i = 0; i < c->jhead_cnt; i++)
1823 /* Make sure write-buffer timers are canceled */
1824 hrtimer_cancel(&c->jheads[i].wbuf.timer);
1e51764a
AB
1825 }
1826 }
1827
1828 ubifs_umount(c);
1829 bdi_destroy(&c->bdi);
1830 ubi_close_volume(c->ubi);
1831 mutex_unlock(&c->umount_mutex);
1e51764a
AB
1832}
1833
1834static int ubifs_remount_fs(struct super_block *sb, int *flags, char *data)
1835{
1836 int err;
1837 struct ubifs_info *c = sb->s_fs_info;
1838
02b9984d 1839 sync_filesystem(sb);
1e51764a
AB
1840 dbg_gen("old flags %#lx, new flags %#x", sb->s_flags, *flags);
1841
1842 err = ubifs_parse_options(c, data, 1);
1843 if (err) {
235c362b 1844 ubifs_err(c, "invalid or unknown remount parameter");
1e51764a
AB
1845 return err;
1846 }
3477d204 1847
2ef13294 1848 if (c->ro_mount && !(*flags & MS_RDONLY)) {
2680d722 1849 if (c->ro_error) {
235c362b 1850 ubifs_msg(c, "cannot re-mount R/W due to prior errors");
2680d722
AB
1851 return -EROFS;
1852 }
e4d9b6cb 1853 if (c->ro_media) {
235c362b 1854 ubifs_msg(c, "cannot re-mount R/W - UBI volume is R/O");
a2b9df3f 1855 return -EROFS;
e4d9b6cb 1856 }
1e51764a 1857 err = ubifs_remount_rw(c);
e9d6bbc4 1858 if (err)
1e51764a 1859 return err;
2ef13294 1860 } else if (!c->ro_mount && (*flags & MS_RDONLY)) {
2680d722 1861 if (c->ro_error) {
235c362b 1862 ubifs_msg(c, "cannot re-mount R/O due to prior errors");
a2b9df3f 1863 return -EROFS;
b466f17d 1864 }
1e51764a 1865 ubifs_remount_ro(c);
b466f17d 1866 }
1e51764a 1867
3477d204
AB
1868 if (c->bulk_read == 1)
1869 bu_init(c);
1870 else {
1871 dbg_gen("disable bulk-read");
1872 kfree(c->bu.buf);
1873 c->bu.buf = NULL;
1874 }
1875
b221337a 1876 ubifs_assert(c->lst.taken_empty_lebs > 0);
1e51764a
AB
1877 return 0;
1878}
1879
e8b81566 1880const struct super_operations ubifs_super_operations = {
1e51764a
AB
1881 .alloc_inode = ubifs_alloc_inode,
1882 .destroy_inode = ubifs_destroy_inode,
1883 .put_super = ubifs_put_super,
1884 .write_inode = ubifs_write_inode,
d640e1b5 1885 .evict_inode = ubifs_evict_inode,
1e51764a
AB
1886 .statfs = ubifs_statfs,
1887 .dirty_inode = ubifs_dirty_inode,
1888 .remount_fs = ubifs_remount_fs,
1889 .show_options = ubifs_show_options,
1890 .sync_fs = ubifs_sync_fs,
1891};
1892
1893/**
1894 * open_ubi - parse UBI device name string and open the UBI device.
1895 * @name: UBI volume name
1896 * @mode: UBI volume open mode
1897 *
9722324e
CC
1898 * The primary method of mounting UBIFS is by specifying the UBI volume
1899 * character device node path. However, UBIFS may also be mounted withoug any
1900 * character device node using one of the following methods:
1901 *
1902 * o ubiX_Y - mount UBI device number X, volume Y;
1903 * o ubiY - mount UBI device number 0, volume Y;
1e51764a
AB
1904 * o ubiX:NAME - mount UBI device X, volume with name NAME;
1905 * o ubi:NAME - mount UBI device 0, volume with name NAME.
1906 *
1907 * Alternative '!' separator may be used instead of ':' (because some shells
1908 * like busybox may interpret ':' as an NFS host name separator). This function
9722324e
CC
1909 * returns UBI volume description object in case of success and a negative
1910 * error code in case of failure.
1e51764a
AB
1911 */
1912static struct ubi_volume_desc *open_ubi(const char *name, int mode)
1913{
9722324e 1914 struct ubi_volume_desc *ubi;
1e51764a
AB
1915 int dev, vol;
1916 char *endptr;
1917
9722324e
CC
1918 /* First, try to open using the device node path method */
1919 ubi = ubi_open_volume_path(name, mode);
1920 if (!IS_ERR(ubi))
1921 return ubi;
1922
1923 /* Try the "nodev" method */
1e51764a
AB
1924 if (name[0] != 'u' || name[1] != 'b' || name[2] != 'i')
1925 return ERR_PTR(-EINVAL);
1926
1927 /* ubi:NAME method */
1928 if ((name[3] == ':' || name[3] == '!') && name[4] != '\0')
1929 return ubi_open_volume_nm(0, name + 4, mode);
1930
1931 if (!isdigit(name[3]))
1932 return ERR_PTR(-EINVAL);
1933
1934 dev = simple_strtoul(name + 3, &endptr, 0);
1935
1936 /* ubiY method */
1937 if (*endptr == '\0')
1938 return ubi_open_volume(0, dev, mode);
1939
1940 /* ubiX_Y method */
1941 if (*endptr == '_' && isdigit(endptr[1])) {
1942 vol = simple_strtoul(endptr + 1, &endptr, 0);
1943 if (*endptr != '\0')
1944 return ERR_PTR(-EINVAL);
1945 return ubi_open_volume(dev, vol, mode);
1946 }
1947
1948 /* ubiX:NAME method */
1949 if ((*endptr == ':' || *endptr == '!') && endptr[1] != '\0')
1950 return ubi_open_volume_nm(dev, ++endptr, mode);
1951
1952 return ERR_PTR(-EINVAL);
1953}
1954
b1c27ab3
AV
1955static struct ubifs_info *alloc_ubifs_info(struct ubi_volume_desc *ubi)
1956{
1957 struct ubifs_info *c;
1958
1959 c = kzalloc(sizeof(struct ubifs_info), GFP_KERNEL);
1960 if (c) {
1961 spin_lock_init(&c->cnt_lock);
1962 spin_lock_init(&c->cs_lock);
1963 spin_lock_init(&c->buds_lock);
1964 spin_lock_init(&c->space_lock);
1965 spin_lock_init(&c->orphan_lock);
1966 init_rwsem(&c->commit_sem);
1967 mutex_init(&c->lp_mutex);
1968 mutex_init(&c->tnc_mutex);
1969 mutex_init(&c->log_mutex);
b1c27ab3
AV
1970 mutex_init(&c->umount_mutex);
1971 mutex_init(&c->bu_mutex);
1972 mutex_init(&c->write_reserve_mutex);
1973 init_waitqueue_head(&c->cmt_wq);
1974 c->buds = RB_ROOT;
1975 c->old_idx = RB_ROOT;
1976 c->size_tree = RB_ROOT;
1977 c->orph_tree = RB_ROOT;
1978 INIT_LIST_HEAD(&c->infos_list);
1979 INIT_LIST_HEAD(&c->idx_gc);
1980 INIT_LIST_HEAD(&c->replay_list);
1981 INIT_LIST_HEAD(&c->replay_buds);
1982 INIT_LIST_HEAD(&c->uncat_list);
1983 INIT_LIST_HEAD(&c->empty_list);
1984 INIT_LIST_HEAD(&c->freeable_list);
1985 INIT_LIST_HEAD(&c->frdi_idx_list);
1986 INIT_LIST_HEAD(&c->unclean_leb_list);
1987 INIT_LIST_HEAD(&c->old_buds);
1988 INIT_LIST_HEAD(&c->orph_list);
1989 INIT_LIST_HEAD(&c->orph_new);
1990 c->no_chk_data_crc = 1;
1991
1992 c->highest_inum = UBIFS_FIRST_INO;
1993 c->lhead_lnum = c->ltail_lnum = UBIFS_LOG_LNUM;
1994
1995 ubi_get_volume_info(ubi, &c->vi);
1996 ubi_get_device_info(c->vi.ubi_num, &c->di);
1997 }
1998 return c;
1999}
2000
d475a507
RW
2001#ifndef CONFIG_UBIFS_FS_ENCRYPTION
2002struct fscrypt_operations ubifs_crypt_operations = {
2003 .is_encrypted = ubifs_crypt_is_encrypted,
2004};
2005#endif
2006
1e51764a
AB
2007static int ubifs_fill_super(struct super_block *sb, void *data, int silent)
2008{
d251ed27 2009 struct ubifs_info *c = sb->s_fs_info;
1e51764a
AB
2010 struct inode *root;
2011 int err;
2012
8379ea31 2013 c->vfs_sb = sb;
1e51764a
AB
2014 /* Re-open the UBI device in read-write mode */
2015 c->ubi = ubi_open_volume(c->vi.ubi_num, c->vi.vol_id, UBI_READWRITE);
2016 if (IS_ERR(c->ubi)) {
2017 err = PTR_ERR(c->ubi);
d251ed27 2018 goto out;
1e51764a
AB
2019 }
2020
2021 /*
0a883a05 2022 * UBIFS provides 'backing_dev_info' in order to disable read-ahead. For
1e51764a
AB
2023 * UBIFS, I/O is not deferred, it is done immediately in readpage,
2024 * which means the user would have to wait not just for their own I/O
0a883a05 2025 * but the read-ahead I/O as well i.e. completely pointless.
1e51764a
AB
2026 *
2027 * Read-ahead will be disabled because @c->bdi.ra_pages is 0.
2028 */
d993831f 2029 c->bdi.name = "ubifs",
b4caecd4 2030 c->bdi.capabilities = 0;
1e51764a
AB
2031 err = bdi_init(&c->bdi);
2032 if (err)
2033 goto out_close;
7fcd9c3e
DM
2034 err = bdi_register(&c->bdi, NULL, "ubifs_%d_%d",
2035 c->vi.ubi_num, c->vi.vol_id);
a979eff1
JA
2036 if (err)
2037 goto out_bdi;
1e51764a
AB
2038
2039 err = ubifs_parse_options(c, data, 0);
2040 if (err)
2041 goto out_bdi;
2042
32a88aa1 2043 sb->s_bdi = &c->bdi;
1e51764a
AB
2044 sb->s_fs_info = c;
2045 sb->s_magic = UBIFS_SUPER_MAGIC;
2046 sb->s_blocksize = UBIFS_BLOCK_SIZE;
2047 sb->s_blocksize_bits = UBIFS_BLOCK_SHIFT;
1e51764a
AB
2048 sb->s_maxbytes = c->max_inode_sz = key_max_inode_size(c);
2049 if (c->max_inode_sz > MAX_LFS_FILESIZE)
2050 sb->s_maxbytes = c->max_inode_sz = MAX_LFS_FILESIZE;
2051 sb->s_op = &ubifs_super_operations;
2b88fc21 2052 sb->s_xattr = ubifs_xattr_handlers;
d475a507 2053 sb->s_cop = &ubifs_crypt_operations;
1e51764a
AB
2054
2055 mutex_lock(&c->umount_mutex);
2056 err = mount_ubifs(c);
2057 if (err) {
2058 ubifs_assert(err < 0);
2059 goto out_unlock;
2060 }
2061
2062 /* Read the root inode */
2063 root = ubifs_iget(sb, UBIFS_ROOT_INO);
2064 if (IS_ERR(root)) {
2065 err = PTR_ERR(root);
2066 goto out_umount;
2067 }
2068
48fde701 2069 sb->s_root = d_make_root(root);
7203db97
WY
2070 if (!sb->s_root) {
2071 err = -ENOMEM;
48fde701 2072 goto out_umount;
7203db97 2073 }
1e51764a
AB
2074
2075 mutex_unlock(&c->umount_mutex);
1e51764a
AB
2076 return 0;
2077
1e51764a
AB
2078out_umount:
2079 ubifs_umount(c);
2080out_unlock:
2081 mutex_unlock(&c->umount_mutex);
2082out_bdi:
2083 bdi_destroy(&c->bdi);
2084out_close:
2085 ubi_close_volume(c->ubi);
d251ed27 2086out:
1e51764a
AB
2087 return err;
2088}
2089
2090static int sb_test(struct super_block *sb, void *data)
2091{
d251ed27 2092 struct ubifs_info *c1 = data;
7c83f5cb 2093 struct ubifs_info *c = sb->s_fs_info;
1e51764a 2094
d251ed27
AV
2095 return c->vi.cdev == c1->vi.cdev;
2096}
2097
2098static int sb_set(struct super_block *sb, void *data)
2099{
2100 sb->s_fs_info = data;
2101 return set_anon_super(sb, NULL);
1e51764a
AB
2102}
2103
157d81e7
AV
2104static struct dentry *ubifs_mount(struct file_system_type *fs_type, int flags,
2105 const char *name, void *data)
1e51764a
AB
2106{
2107 struct ubi_volume_desc *ubi;
d251ed27 2108 struct ubifs_info *c;
1e51764a
AB
2109 struct super_block *sb;
2110 int err;
2111
2112 dbg_gen("name %s, flags %#x", name, flags);
2113
2114 /*
2115 * Get UBI device number and volume ID. Mount it read-only so far
2116 * because this might be a new mount point, and UBI allows only one
2117 * read-write user at a time.
2118 */
2119 ubi = open_ubi(name, UBI_READONLY);
2120 if (IS_ERR(ubi)) {
1ae92642
DG
2121 if (!(flags & MS_SILENT))
2122 pr_err("UBIFS error (pid: %d): cannot open \"%s\", error %d",
2123 current->pid, name, (int)PTR_ERR(ubi));
157d81e7 2124 return ERR_CAST(ubi);
1e51764a 2125 }
1e51764a 2126
d251ed27
AV
2127 c = alloc_ubifs_info(ubi);
2128 if (!c) {
2129 err = -ENOMEM;
2130 goto out_close;
2131 }
2132
2133 dbg_gen("opened ubi%d_%d", c->vi.ubi_num, c->vi.vol_id);
1e51764a 2134
9249e17f 2135 sb = sget(fs_type, sb_test, sb_set, flags, c);
1e51764a
AB
2136 if (IS_ERR(sb)) {
2137 err = PTR_ERR(sb);
d251ed27 2138 kfree(c);
185bf873 2139 goto out_close;
1e51764a
AB
2140 }
2141
2142 if (sb->s_root) {
2ef13294 2143 struct ubifs_info *c1 = sb->s_fs_info;
d251ed27 2144 kfree(c);
1e51764a
AB
2145 /* A new mount point for already mounted UBIFS */
2146 dbg_gen("this ubi volume is already mounted");
2ef13294 2147 if (!!(flags & MS_RDONLY) != c1->ro_mount) {
1e51764a
AB
2148 err = -EBUSY;
2149 goto out_deact;
2150 }
2151 } else {
1e51764a
AB
2152 err = ubifs_fill_super(sb, data, flags & MS_SILENT ? 1 : 0);
2153 if (err)
2154 goto out_deact;
2155 /* We do not support atime */
8c1c5f26
DY
2156 sb->s_flags |= MS_ACTIVE;
2157#ifndef CONFIG_UBIFS_ATIME_SUPPORT
2158 sb->s_flags |= MS_NOATIME;
2159#else
2160 ubifs_msg(c, "full atime support is enabled.");
2161#endif
1e51764a
AB
2162 }
2163
2164 /* 'fill_super()' opens ubi again so we must close it here */
2165 ubi_close_volume(ubi);
2166
157d81e7 2167 return dget(sb->s_root);
1e51764a
AB
2168
2169out_deact:
6f5bbff9 2170 deactivate_locked_super(sb);
1e51764a
AB
2171out_close:
2172 ubi_close_volume(ubi);
157d81e7 2173 return ERR_PTR(err);
1e51764a
AB
2174}
2175
d251ed27
AV
2176static void kill_ubifs_super(struct super_block *s)
2177{
2178 struct ubifs_info *c = s->s_fs_info;
2179 kill_anon_super(s);
2180 kfree(c);
2181}
2182
1e51764a
AB
2183static struct file_system_type ubifs_fs_type = {
2184 .name = "ubifs",
2185 .owner = THIS_MODULE,
157d81e7 2186 .mount = ubifs_mount,
d251ed27 2187 .kill_sb = kill_ubifs_super,
1e51764a 2188};
7f78e035 2189MODULE_ALIAS_FS("ubifs");
1e51764a
AB
2190
2191/*
2192 * Inode slab cache constructor.
2193 */
51cc5068 2194static void inode_slab_ctor(void *obj)
1e51764a
AB
2195{
2196 struct ubifs_inode *ui = obj;
2197 inode_init_once(&ui->vfs_inode);
2198}
2199
2200static int __init ubifs_init(void)
2201{
2202 int err;
2203
2204 BUILD_BUG_ON(sizeof(struct ubifs_ch) != 24);
2205
2206 /* Make sure node sizes are 8-byte aligned */
2207 BUILD_BUG_ON(UBIFS_CH_SZ & 7);
2208 BUILD_BUG_ON(UBIFS_INO_NODE_SZ & 7);
2209 BUILD_BUG_ON(UBIFS_DENT_NODE_SZ & 7);
2210 BUILD_BUG_ON(UBIFS_XENT_NODE_SZ & 7);
2211 BUILD_BUG_ON(UBIFS_DATA_NODE_SZ & 7);
2212 BUILD_BUG_ON(UBIFS_TRUN_NODE_SZ & 7);
2213 BUILD_BUG_ON(UBIFS_SB_NODE_SZ & 7);
2214 BUILD_BUG_ON(UBIFS_MST_NODE_SZ & 7);
2215 BUILD_BUG_ON(UBIFS_REF_NODE_SZ & 7);
2216 BUILD_BUG_ON(UBIFS_CS_NODE_SZ & 7);
2217 BUILD_BUG_ON(UBIFS_ORPH_NODE_SZ & 7);
2218
2219 BUILD_BUG_ON(UBIFS_MAX_DENT_NODE_SZ & 7);
2220 BUILD_BUG_ON(UBIFS_MAX_XENT_NODE_SZ & 7);
2221 BUILD_BUG_ON(UBIFS_MAX_DATA_NODE_SZ & 7);
2222 BUILD_BUG_ON(UBIFS_MAX_INO_NODE_SZ & 7);
2223 BUILD_BUG_ON(UBIFS_MAX_NODE_SZ & 7);
2224 BUILD_BUG_ON(MIN_WRITE_SZ & 7);
2225
2226 /* Check min. node size */
2227 BUILD_BUG_ON(UBIFS_INO_NODE_SZ < MIN_WRITE_SZ);
2228 BUILD_BUG_ON(UBIFS_DENT_NODE_SZ < MIN_WRITE_SZ);
2229 BUILD_BUG_ON(UBIFS_XENT_NODE_SZ < MIN_WRITE_SZ);
2230 BUILD_BUG_ON(UBIFS_TRUN_NODE_SZ < MIN_WRITE_SZ);
2231
2232 BUILD_BUG_ON(UBIFS_MAX_DENT_NODE_SZ > UBIFS_MAX_NODE_SZ);
2233 BUILD_BUG_ON(UBIFS_MAX_XENT_NODE_SZ > UBIFS_MAX_NODE_SZ);
2234 BUILD_BUG_ON(UBIFS_MAX_DATA_NODE_SZ > UBIFS_MAX_NODE_SZ);
2235 BUILD_BUG_ON(UBIFS_MAX_INO_NODE_SZ > UBIFS_MAX_NODE_SZ);
2236
2237 /* Defined node sizes */
2238 BUILD_BUG_ON(UBIFS_SB_NODE_SZ != 4096);
2239 BUILD_BUG_ON(UBIFS_MST_NODE_SZ != 512);
2240 BUILD_BUG_ON(UBIFS_INO_NODE_SZ != 160);
2241 BUILD_BUG_ON(UBIFS_REF_NODE_SZ != 64);
2242
a1dc080c
AB
2243 /*
2244 * We use 2 bit wide bit-fields to store compression type, which should
2245 * be amended if more compressors are added. The bit-fields are:
553dea4d
AB
2246 * @compr_type in 'struct ubifs_inode', @default_compr in
2247 * 'struct ubifs_info' and @compr_type in 'struct ubifs_mount_opts'.
a1dc080c
AB
2248 */
2249 BUILD_BUG_ON(UBIFS_COMPR_TYPES_CNT > 4);
2250
1e51764a 2251 /*
ea1754a0 2252 * We require that PAGE_SIZE is greater-than-or-equal-to
1e51764a
AB
2253 * UBIFS_BLOCK_SIZE. It is assumed that both are powers of 2.
2254 */
09cbfeaf 2255 if (PAGE_SIZE < UBIFS_BLOCK_SIZE) {
235c362b 2256 pr_err("UBIFS error (pid %d): VFS page cache size is %u bytes, but UBIFS requires at least 4096 bytes",
09cbfeaf 2257 current->pid, (unsigned int)PAGE_SIZE);
1e51764a
AB
2258 return -EINVAL;
2259 }
2260
1e51764a
AB
2261 ubifs_inode_slab = kmem_cache_create("ubifs_inode_slab",
2262 sizeof(struct ubifs_inode), 0,
5d097056
VD
2263 SLAB_MEM_SPREAD | SLAB_RECLAIM_ACCOUNT |
2264 SLAB_ACCOUNT, &inode_slab_ctor);
1e51764a 2265 if (!ubifs_inode_slab)
5cc361e3 2266 return -ENOMEM;
1e51764a 2267
a1fe33af
CY
2268 err = register_shrinker(&ubifs_shrinker_info);
2269 if (err)
2270 goto out_slab;
1e51764a
AB
2271
2272 err = ubifs_compressors_init();
552ff317
AB
2273 if (err)
2274 goto out_shrinker;
2275
2276 err = dbg_debugfs_init();
1e51764a
AB
2277 if (err)
2278 goto out_compr;
2279
5cc361e3
AV
2280 err = register_filesystem(&ubifs_fs_type);
2281 if (err) {
235c362b
SY
2282 pr_err("UBIFS error (pid %d): cannot register file system, error %d",
2283 current->pid, err);
5cc361e3
AV
2284 goto out_dbg;
2285 }
1e51764a
AB
2286 return 0;
2287
5cc361e3
AV
2288out_dbg:
2289 dbg_debugfs_exit();
1e51764a 2290out_compr:
552ff317
AB
2291 ubifs_compressors_exit();
2292out_shrinker:
1e51764a 2293 unregister_shrinker(&ubifs_shrinker_info);
a1fe33af 2294out_slab:
1e51764a 2295 kmem_cache_destroy(ubifs_inode_slab);
1e51764a
AB
2296 return err;
2297}
2298/* late_initcall to let compressors initialize first */
2299late_initcall(ubifs_init);
2300
2301static void __exit ubifs_exit(void)
2302{
2303 ubifs_assert(list_empty(&ubifs_infos));
2304 ubifs_assert(atomic_long_read(&ubifs_clean_zn_cnt) == 0);
2305
552ff317 2306 dbg_debugfs_exit();
1e51764a
AB
2307 ubifs_compressors_exit();
2308 unregister_shrinker(&ubifs_shrinker_info);
8c0a8537
KS
2309
2310 /*
2311 * Make sure all delayed rcu free inodes are flushed before we
2312 * destroy cache.
2313 */
2314 rcu_barrier();
1e51764a
AB
2315 kmem_cache_destroy(ubifs_inode_slab);
2316 unregister_filesystem(&ubifs_fs_type);
2317}
2318module_exit(ubifs_exit);
2319
2320MODULE_LICENSE("GPL");
2321MODULE_VERSION(__stringify(UBIFS_VERSION));
2322MODULE_AUTHOR("Artem Bityutskiy, Adrian Hunter");
2323MODULE_DESCRIPTION("UBIFS - UBI File System");