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CommitLineData
1da177e4
LT
1/*
2 * super.c
3 *
4 * PURPOSE
5 * Super block routines for the OSTA-UDF(tm) filesystem.
6 *
7 * DESCRIPTION
8 * OSTA-UDF(tm) = Optical Storage Technology Association
9 * Universal Disk Format.
10 *
11 * This code is based on version 2.00 of the UDF specification,
12 * and revision 3 of the ECMA 167 standard [equivalent to ISO 13346].
13 * http://www.osta.org/
248727a4
AK
14 * https://www.ecma.ch/
15 * https://www.iso.org/
1da177e4 16 *
1da177e4
LT
17 * COPYRIGHT
18 * This file is distributed under the terms of the GNU General Public
19 * License (GPL). Copies of the GPL can be obtained from:
20 * ftp://prep.ai.mit.edu/pub/gnu/GPL
21 * Each contributing author retains all rights to their own work.
22 *
23 * (C) 1998 Dave Boynton
24 * (C) 1998-2004 Ben Fennema
25 * (C) 2000 Stelias Computing Inc
26 *
27 * HISTORY
28 *
29 * 09/24/98 dgb changed to allow compiling outside of kernel, and
30 * added some debugging.
31 * 10/01/98 dgb updated to allow (some) possibility of compiling w/2.0.34
32 * 10/16/98 attempting some multi-session support
33 * 10/17/98 added freespace count for "df"
34 * 11/11/98 gr added novrs option
35 * 11/26/98 dgb added fileset,anchor mount options
3a71fc5d
MS
36 * 12/06/98 blf really hosed things royally. vat/sparing support. sequenced
37 * vol descs. rewrote option handling based on isofs
1da177e4
LT
38 * 12/20/98 find the free space bitmap (if it exists)
39 */
40
cb00ea35 41#include "udfdecl.h"
1da177e4 42
1da177e4
LT
43#include <linux/blkdev.h>
44#include <linux/slab.h>
45#include <linux/kernel.h>
46#include <linux/module.h>
47#include <linux/parser.h>
48#include <linux/stat.h>
49#include <linux/cdrom.h>
50#include <linux/nls.h>
1da177e4
LT
51#include <linux/vfs.h>
52#include <linux/vmalloc.h>
dc5d39be 53#include <linux/errno.h>
6da80894
MS
54#include <linux/mount.h>
55#include <linux/seq_file.h>
01b954a3 56#include <linux/bitmap.h>
f845fced 57#include <linux/crc-itu-t.h>
1df2ae31 58#include <linux/log2.h>
1da177e4
LT
59#include <asm/byteorder.h>
60
1da177e4
LT
61#include "udf_sb.h"
62#include "udf_i.h"
63
64#include <linux/init.h>
e973606c 65#include <linux/uaccess.h>
1da177e4 66
4b8d4252
JK
67enum {
68 VDS_POS_PRIMARY_VOL_DESC,
69 VDS_POS_UNALLOC_SPACE_DESC,
70 VDS_POS_LOGICAL_VOL_DESC,
4b8d4252 71 VDS_POS_IMP_USE_VOL_DESC,
4b8d4252
JK
72 VDS_POS_LENGTH
73};
1da177e4 74
44499602
PF
75#define VSD_FIRST_SECTOR_OFFSET 32768
76#define VSD_MAX_SECTOR_OFFSET 0x800000
77
a47241cd
AT
78/*
79 * Maximum number of Terminating Descriptor / Logical Volume Integrity
80 * Descriptor redirections. The chosen numbers are arbitrary - just that we
81 * hopefully don't limit any real use of rewritten inode on write-once media
82 * but avoid looping for too long on corrupted media.
83 */
84#define UDF_MAX_TD_NESTING 64
85#define UDF_MAX_LVID_NESTING 1000
86
8de52778
AV
87enum { UDF_MAX_LINKS = 0xffff };
88
1da177e4
LT
89/* These are the "meat" - everything else is stuffing */
90static int udf_fill_super(struct super_block *, void *, int);
91static void udf_put_super(struct super_block *);
146bca72 92static int udf_sync_fs(struct super_block *, int);
1da177e4 93static int udf_remount_fs(struct super_block *, int *, char *);
5ca4e4be 94static void udf_load_logicalvolint(struct super_block *, struct kernel_extent_ad);
1da177e4
LT
95static void udf_open_lvid(struct super_block *);
96static void udf_close_lvid(struct super_block *);
97static unsigned int udf_count_free(struct super_block *);
726c3342 98static int udf_statfs(struct dentry *, struct kstatfs *);
34c80b1d 99static int udf_show_options(struct seq_file *, struct dentry *);
1da177e4 100
69d75671 101struct logicalVolIntegrityDescImpUse *udf_sb_lvidiu(struct super_block *sb)
6c79e987 102{
69d75671
JK
103 struct logicalVolIntegrityDesc *lvid;
104 unsigned int partnum;
105 unsigned int offset;
106
107 if (!UDF_SB(sb)->s_lvid_bh)
108 return NULL;
109 lvid = (struct logicalVolIntegrityDesc *)UDF_SB(sb)->s_lvid_bh->b_data;
110 partnum = le32_to_cpu(lvid->numOfPartitions);
111 if ((sb->s_blocksize - sizeof(struct logicalVolIntegrityDescImpUse) -
112 offsetof(struct logicalVolIntegrityDesc, impUse)) /
113 (2 * sizeof(uint32_t)) < partnum) {
114 udf_err(sb, "Logical volume integrity descriptor corrupted "
115 "(numOfPartitions = %u)!\n", partnum);
116 return NULL;
117 }
118 /* The offset is to skip freeSpaceTable and sizeTable arrays */
119 offset = partnum * 2 * sizeof(uint32_t);
6c79e987
MS
120 return (struct logicalVolIntegrityDescImpUse *)&(lvid->impUse[offset]);
121}
122
1da177e4 123/* UDF filesystem type */
152a0836
AV
124static struct dentry *udf_mount(struct file_system_type *fs_type,
125 int flags, const char *dev_name, void *data)
1da177e4 126{
152a0836 127 return mount_bdev(fs_type, flags, dev_name, data, udf_fill_super);
1da177e4
LT
128}
129
130static struct file_system_type udf_fstype = {
28de7948
CG
131 .owner = THIS_MODULE,
132 .name = "udf",
152a0836 133 .mount = udf_mount,
28de7948
CG
134 .kill_sb = kill_block_super,
135 .fs_flags = FS_REQUIRES_DEV,
1da177e4 136};
3e64fe5b 137MODULE_ALIAS_FS("udf");
1da177e4 138
cb00ea35 139static struct kmem_cache *udf_inode_cachep;
1da177e4
LT
140
141static struct inode *udf_alloc_inode(struct super_block *sb)
142{
143 struct udf_inode_info *ei;
3a71fc5d 144 ei = kmem_cache_alloc(udf_inode_cachep, GFP_KERNEL);
1da177e4
LT
145 if (!ei)
146 return NULL;
95f8797f
DB
147
148 ei->i_unique = 0;
149 ei->i_lenExtents = 0;
ab9a3a73 150 ei->i_lenStreams = 0;
95f8797f
DB
151 ei->i_next_alloc_block = 0;
152 ei->i_next_alloc_goal = 0;
153 ei->i_strat4096 = 0;
ab9a3a73 154 ei->i_streamdir = 0;
4d0fb621 155 init_rwsem(&ei->i_data_sem);
99600051
NJ
156 ei->cached_extent.lstart = -1;
157 spin_lock_init(&ei->i_extent_cache_lock);
95f8797f 158
1da177e4
LT
159 return &ei->vfs_inode;
160}
161
a78bb383 162static void udf_free_in_core_inode(struct inode *inode)
1da177e4
LT
163{
164 kmem_cache_free(udf_inode_cachep, UDF_I(inode));
165}
166
51cc5068 167static void init_once(void *foo)
1da177e4 168{
cb00ea35 169 struct udf_inode_info *ei = (struct udf_inode_info *)foo;
1da177e4 170
382a2287 171 ei->i_data = NULL;
a35afb83 172 inode_init_once(&ei->vfs_inode);
1da177e4
LT
173}
174
53ea18de 175static int __init init_inodecache(void)
1da177e4
LT
176{
177 udf_inode_cachep = kmem_cache_create("udf_inode_cache",
178 sizeof(struct udf_inode_info),
cb00ea35 179 0, (SLAB_RECLAIM_ACCOUNT |
5d097056
VD
180 SLAB_MEM_SPREAD |
181 SLAB_ACCOUNT),
20c2df83 182 init_once);
28de7948 183 if (!udf_inode_cachep)
1da177e4
LT
184 return -ENOMEM;
185 return 0;
186}
187
188static void destroy_inodecache(void)
189{
8c0a8537
KS
190 /*
191 * Make sure all delayed rcu free inodes are flushed before we
192 * destroy cache.
193 */
194 rcu_barrier();
1a1d92c1 195 kmem_cache_destroy(udf_inode_cachep);
1da177e4
LT
196}
197
198/* Superblock operations */
ee9b6d61 199static const struct super_operations udf_sb_ops = {
28de7948 200 .alloc_inode = udf_alloc_inode,
a78bb383 201 .free_inode = udf_free_in_core_inode,
28de7948 202 .write_inode = udf_write_inode,
3aac2b62 203 .evict_inode = udf_evict_inode,
28de7948 204 .put_super = udf_put_super,
146bca72 205 .sync_fs = udf_sync_fs,
28de7948
CG
206 .statfs = udf_statfs,
207 .remount_fs = udf_remount_fs,
6da80894 208 .show_options = udf_show_options,
1da177e4
LT
209};
210
cb00ea35 211struct udf_options {
1da177e4
LT
212 unsigned char novrs;
213 unsigned int blocksize;
214 unsigned int session;
215 unsigned int lastblock;
216 unsigned int anchor;
1da177e4 217 unsigned int flags;
faa17292 218 umode_t umask;
c2ba138a
EB
219 kgid_t gid;
220 kuid_t uid;
faa17292
AV
221 umode_t fmode;
222 umode_t dmode;
1da177e4
LT
223 struct nls_table *nls_map;
224};
225
226static int __init init_udf_fs(void)
227{
228 int err;
28de7948 229
1da177e4
LT
230 err = init_inodecache();
231 if (err)
232 goto out1;
233 err = register_filesystem(&udf_fstype);
234 if (err)
235 goto out;
28de7948 236
1da177e4 237 return 0;
28de7948
CG
238
239out:
1da177e4 240 destroy_inodecache();
28de7948
CG
241
242out1:
1da177e4
LT
243 return err;
244}
245
246static void __exit exit_udf_fs(void)
247{
248 unregister_filesystem(&udf_fstype);
249 destroy_inodecache();
250}
251
dc5d39be
MS
252static int udf_sb_alloc_partition_maps(struct super_block *sb, u32 count)
253{
254 struct udf_sb_info *sbi = UDF_SB(sb);
255
033c9da0 256 sbi->s_partmaps = kcalloc(count, sizeof(*sbi->s_partmaps), GFP_KERNEL);
dc5d39be 257 if (!sbi->s_partmaps) {
dc5d39be
MS
258 sbi->s_partitions = 0;
259 return -ENOMEM;
260 }
261
262 sbi->s_partitions = count;
263 return 0;
264}
265
bff943af
JK
266static void udf_sb_free_bitmap(struct udf_bitmap *bitmap)
267{
268 int i;
269 int nr_groups = bitmap->s_nr_groups;
bff943af
JK
270
271 for (i = 0; i < nr_groups; i++)
4eb09e11 272 brelse(bitmap->s_block_bitmap[i]);
bff943af 273
1d5cfdb0 274 kvfree(bitmap);
bff943af
JK
275}
276
277static void udf_free_partition(struct udf_part_map *map)
278{
279 int i;
280 struct udf_meta_data *mdata;
281
282 if (map->s_partition_flags & UDF_PART_FLAG_UNALLOC_TABLE)
283 iput(map->s_uspace.s_table);
bff943af
JK
284 if (map->s_partition_flags & UDF_PART_FLAG_UNALLOC_BITMAP)
285 udf_sb_free_bitmap(map->s_uspace.s_bitmap);
bff943af
JK
286 if (map->s_partition_type == UDF_SPARABLE_MAP15)
287 for (i = 0; i < 4; i++)
288 brelse(map->s_type_specific.s_sparing.s_spar_map[i]);
289 else if (map->s_partition_type == UDF_METADATA_MAP25) {
290 mdata = &map->s_type_specific.s_metadata;
291 iput(mdata->s_metadata_fe);
292 mdata->s_metadata_fe = NULL;
293
294 iput(mdata->s_mirror_fe);
295 mdata->s_mirror_fe = NULL;
296
297 iput(mdata->s_bitmap_fe);
298 mdata->s_bitmap_fe = NULL;
299 }
300}
301
302static void udf_sb_free_partitions(struct super_block *sb)
303{
304 struct udf_sb_info *sbi = UDF_SB(sb);
305 int i;
ba2eb866
ME
306
307 if (!sbi->s_partmaps)
1b1baff6 308 return;
bff943af
JK
309 for (i = 0; i < sbi->s_partitions; i++)
310 udf_free_partition(&sbi->s_partmaps[i]);
311 kfree(sbi->s_partmaps);
312 sbi->s_partmaps = NULL;
313}
314
34c80b1d 315static int udf_show_options(struct seq_file *seq, struct dentry *root)
6da80894 316{
34c80b1d 317 struct super_block *sb = root->d_sb;
6da80894
MS
318 struct udf_sb_info *sbi = UDF_SB(sb);
319
320 if (!UDF_QUERY_FLAG(sb, UDF_FLAG_STRICT))
321 seq_puts(seq, ",nostrict");
1197e4df 322 if (UDF_QUERY_FLAG(sb, UDF_FLAG_BLOCKSIZE_SET))
6da80894
MS
323 seq_printf(seq, ",bs=%lu", sb->s_blocksize);
324 if (UDF_QUERY_FLAG(sb, UDF_FLAG_UNHIDE))
325 seq_puts(seq, ",unhide");
326 if (UDF_QUERY_FLAG(sb, UDF_FLAG_UNDELETE))
327 seq_puts(seq, ",undelete");
328 if (!UDF_QUERY_FLAG(sb, UDF_FLAG_USE_AD_IN_ICB))
329 seq_puts(seq, ",noadinicb");
330 if (UDF_QUERY_FLAG(sb, UDF_FLAG_USE_SHORT_AD))
331 seq_puts(seq, ",shortad");
332 if (UDF_QUERY_FLAG(sb, UDF_FLAG_UID_FORGET))
333 seq_puts(seq, ",uid=forget");
6da80894
MS
334 if (UDF_QUERY_FLAG(sb, UDF_FLAG_GID_FORGET))
335 seq_puts(seq, ",gid=forget");
6da80894 336 if (UDF_QUERY_FLAG(sb, UDF_FLAG_UID_SET))
c2ba138a 337 seq_printf(seq, ",uid=%u", from_kuid(&init_user_ns, sbi->s_uid));
6da80894 338 if (UDF_QUERY_FLAG(sb, UDF_FLAG_GID_SET))
c2ba138a 339 seq_printf(seq, ",gid=%u", from_kgid(&init_user_ns, sbi->s_gid));
6da80894 340 if (sbi->s_umask != 0)
faa17292 341 seq_printf(seq, ",umask=%ho", sbi->s_umask);
87bc730c 342 if (sbi->s_fmode != UDF_INVALID_MODE)
faa17292 343 seq_printf(seq, ",mode=%ho", sbi->s_fmode);
87bc730c 344 if (sbi->s_dmode != UDF_INVALID_MODE)
faa17292 345 seq_printf(seq, ",dmode=%ho", sbi->s_dmode);
6da80894 346 if (UDF_QUERY_FLAG(sb, UDF_FLAG_SESSION_SET))
fcbf7637 347 seq_printf(seq, ",session=%d", sbi->s_session);
6da80894
MS
348 if (UDF_QUERY_FLAG(sb, UDF_FLAG_LASTBLOCK_SET))
349 seq_printf(seq, ",lastblock=%u", sbi->s_last_block);
40346005
JK
350 if (sbi->s_anchor != 0)
351 seq_printf(seq, ",anchor=%u", sbi->s_anchor);
6da80894
MS
352 if (UDF_QUERY_FLAG(sb, UDF_FLAG_UTF8))
353 seq_puts(seq, ",utf8");
354 if (UDF_QUERY_FLAG(sb, UDF_FLAG_NLS_MAP) && sbi->s_nls_map)
355 seq_printf(seq, ",iocharset=%s", sbi->s_nls_map->charset);
356
357 return 0;
358}
359
1da177e4
LT
360/*
361 * udf_parse_options
362 *
363 * PURPOSE
364 * Parse mount options.
365 *
366 * DESCRIPTION
367 * The following mount options are supported:
368 *
369 * gid= Set the default group.
370 * umask= Set the default umask.
7ac9bcd5
MS
371 * mode= Set the default file permissions.
372 * dmode= Set the default directory permissions.
1da177e4
LT
373 * uid= Set the default user.
374 * bs= Set the block size.
375 * unhide Show otherwise hidden files.
376 * undelete Show deleted files in lists.
377 * adinicb Embed data in the inode (default)
378 * noadinicb Don't embed data in the inode
379 * shortad Use short ad's
380 * longad Use long ad's (default)
381 * nostrict Unset strict conformance
382 * iocharset= Set the NLS character set
383 *
384 * The remaining are for debugging and disaster recovery:
385 *
28de7948 386 * novrs Skip volume sequence recognition
1da177e4
LT
387 *
388 * The following expect a offset from 0.
389 *
390 * session= Set the CDROM session (default= last session)
391 * anchor= Override standard anchor location. (default= 256)
392 * volume= Override the VolumeDesc location. (unused)
393 * partition= Override the PartitionDesc location. (unused)
394 * lastblock= Set the last block of the filesystem/
395 *
396 * The following expect a offset from the partition root.
397 *
398 * fileset= Override the fileset block location. (unused)
399 * rootdir= Override the root directory location. (unused)
400 * WARNING: overriding the rootdir to a non-directory may
401 * yield highly unpredictable results.
402 *
403 * PRE-CONDITIONS
404 * options Pointer to mount options string.
405 * uopts Pointer to mount options variable.
406 *
407 * POST-CONDITIONS
408 * <return> 1 Mount options parsed okay.
409 * <return> 0 Error parsing mount options.
410 *
411 * HISTORY
412 * July 1, 1997 - Andrew E. Mileski
413 * Written, tested, and released.
414 */
28de7948 415
1da177e4
LT
416enum {
417 Opt_novrs, Opt_nostrict, Opt_bs, Opt_unhide, Opt_undelete,
418 Opt_noadinicb, Opt_adinicb, Opt_shortad, Opt_longad,
419 Opt_gid, Opt_uid, Opt_umask, Opt_session, Opt_lastblock,
420 Opt_anchor, Opt_volume, Opt_partition, Opt_fileset,
421 Opt_rootdir, Opt_utf8, Opt_iocharset,
7ac9bcd5
MS
422 Opt_err, Opt_uforget, Opt_uignore, Opt_gforget, Opt_gignore,
423 Opt_fmode, Opt_dmode
1da177e4
LT
424};
425
a447c093 426static const match_table_t tokens = {
28de7948
CG
427 {Opt_novrs, "novrs"},
428 {Opt_nostrict, "nostrict"},
429 {Opt_bs, "bs=%u"},
430 {Opt_unhide, "unhide"},
431 {Opt_undelete, "undelete"},
432 {Opt_noadinicb, "noadinicb"},
433 {Opt_adinicb, "adinicb"},
434 {Opt_shortad, "shortad"},
435 {Opt_longad, "longad"},
436 {Opt_uforget, "uid=forget"},
437 {Opt_uignore, "uid=ignore"},
438 {Opt_gforget, "gid=forget"},
439 {Opt_gignore, "gid=ignore"},
440 {Opt_gid, "gid=%u"},
441 {Opt_uid, "uid=%u"},
442 {Opt_umask, "umask=%o"},
443 {Opt_session, "session=%u"},
444 {Opt_lastblock, "lastblock=%u"},
445 {Opt_anchor, "anchor=%u"},
446 {Opt_volume, "volume=%u"},
447 {Opt_partition, "partition=%u"},
448 {Opt_fileset, "fileset=%u"},
449 {Opt_rootdir, "rootdir=%u"},
450 {Opt_utf8, "utf8"},
451 {Opt_iocharset, "iocharset=%s"},
7ac9bcd5
MS
452 {Opt_fmode, "mode=%o"},
453 {Opt_dmode, "dmode=%o"},
28de7948 454 {Opt_err, NULL}
1da177e4
LT
455};
456
6da80894
MS
457static int udf_parse_options(char *options, struct udf_options *uopt,
458 bool remount)
1da177e4
LT
459{
460 char *p;
461 int option;
462
463 uopt->novrs = 0;
1da177e4
LT
464 uopt->session = 0xFFFFFFFF;
465 uopt->lastblock = 0;
466 uopt->anchor = 0;
1da177e4
LT
467
468 if (!options)
469 return 1;
470
cb00ea35 471 while ((p = strsep(&options, ",")) != NULL) {
1da177e4
LT
472 substring_t args[MAX_OPT_ARGS];
473 int token;
8c6915ae 474 unsigned n;
1da177e4
LT
475 if (!*p)
476 continue;
477
478 token = match_token(p, tokens, args);
cb00ea35
CG
479 switch (token) {
480 case Opt_novrs:
481 uopt->novrs = 1;
4136801a 482 break;
cb00ea35
CG
483 case Opt_bs:
484 if (match_int(&args[0], &option))
485 return 0;
8c6915ae
FF
486 n = option;
487 if (n != 512 && n != 1024 && n != 2048 && n != 4096)
488 return 0;
489 uopt->blocksize = n;
1197e4df 490 uopt->flags |= (1 << UDF_FLAG_BLOCKSIZE_SET);
cb00ea35
CG
491 break;
492 case Opt_unhide:
493 uopt->flags |= (1 << UDF_FLAG_UNHIDE);
494 break;
495 case Opt_undelete:
496 uopt->flags |= (1 << UDF_FLAG_UNDELETE);
497 break;
498 case Opt_noadinicb:
499 uopt->flags &= ~(1 << UDF_FLAG_USE_AD_IN_ICB);
500 break;
501 case Opt_adinicb:
502 uopt->flags |= (1 << UDF_FLAG_USE_AD_IN_ICB);
503 break;
504 case Opt_shortad:
505 uopt->flags |= (1 << UDF_FLAG_USE_SHORT_AD);
506 break;
507 case Opt_longad:
508 uopt->flags &= ~(1 << UDF_FLAG_USE_SHORT_AD);
509 break;
510 case Opt_gid:
511 if (match_int(args, &option))
512 return 0;
c2ba138a
EB
513 uopt->gid = make_kgid(current_user_ns(), option);
514 if (!gid_valid(uopt->gid))
515 return 0;
ca76d2d8 516 uopt->flags |= (1 << UDF_FLAG_GID_SET);
cb00ea35
CG
517 break;
518 case Opt_uid:
519 if (match_int(args, &option))
520 return 0;
c2ba138a
EB
521 uopt->uid = make_kuid(current_user_ns(), option);
522 if (!uid_valid(uopt->uid))
523 return 0;
ca76d2d8 524 uopt->flags |= (1 << UDF_FLAG_UID_SET);
cb00ea35
CG
525 break;
526 case Opt_umask:
527 if (match_octal(args, &option))
528 return 0;
529 uopt->umask = option;
530 break;
531 case Opt_nostrict:
532 uopt->flags &= ~(1 << UDF_FLAG_STRICT);
533 break;
534 case Opt_session:
535 if (match_int(args, &option))
536 return 0;
537 uopt->session = option;
6da80894
MS
538 if (!remount)
539 uopt->flags |= (1 << UDF_FLAG_SESSION_SET);
cb00ea35
CG
540 break;
541 case Opt_lastblock:
542 if (match_int(args, &option))
543 return 0;
544 uopt->lastblock = option;
6da80894
MS
545 if (!remount)
546 uopt->flags |= (1 << UDF_FLAG_LASTBLOCK_SET);
cb00ea35
CG
547 break;
548 case Opt_anchor:
549 if (match_int(args, &option))
550 return 0;
551 uopt->anchor = option;
552 break;
553 case Opt_volume:
cb00ea35 554 case Opt_partition:
cb00ea35 555 case Opt_fileset:
cb00ea35 556 case Opt_rootdir:
f0c4a817 557 /* Ignored (never implemented properly) */
cb00ea35
CG
558 break;
559 case Opt_utf8:
560 uopt->flags |= (1 << UDF_FLAG_UTF8);
561 break;
cb00ea35 562 case Opt_iocharset:
785dffe1
CX
563 if (!remount) {
564 if (uopt->nls_map)
565 unload_nls(uopt->nls_map);
a768a9ab
JK
566 /*
567 * load_nls() failure is handled later in
568 * udf_fill_super() after all options are
569 * parsed.
570 */
785dffe1
CX
571 uopt->nls_map = load_nls(args[0].from);
572 uopt->flags |= (1 << UDF_FLAG_NLS_MAP);
573 }
cb00ea35 574 break;
cb00ea35
CG
575 case Opt_uforget:
576 uopt->flags |= (1 << UDF_FLAG_UID_FORGET);
577 break;
70260e44 578 case Opt_uignore:
cb00ea35 579 case Opt_gignore:
70260e44 580 /* These options are superseeded by uid=<number> */
cb00ea35
CG
581 break;
582 case Opt_gforget:
583 uopt->flags |= (1 << UDF_FLAG_GID_FORGET);
584 break;
7ac9bcd5
MS
585 case Opt_fmode:
586 if (match_octal(args, &option))
587 return 0;
588 uopt->fmode = option & 0777;
589 break;
590 case Opt_dmode:
591 if (match_octal(args, &option))
592 return 0;
593 uopt->dmode = option & 0777;
594 break;
cb00ea35 595 default:
78ace70c 596 pr_err("bad mount option \"%s\" or missing value\n", p);
1da177e4
LT
597 return 0;
598 }
599 }
600 return 1;
601}
602
cb00ea35 603static int udf_remount_fs(struct super_block *sb, int *flags, char *options)
1da177e4
LT
604{
605 struct udf_options uopt;
6c79e987 606 struct udf_sb_info *sbi = UDF_SB(sb);
c79d967d 607 int error = 0;
a9ad01bc
JK
608
609 if (!(*flags & SB_RDONLY) && UDF_QUERY_FLAG(sb, UDF_FLAG_RW_INCOMPAT))
610 return -EACCES;
1da177e4 611
02b9984d 612 sync_filesystem(sb);
e729eac6 613
6c79e987
MS
614 uopt.flags = sbi->s_flags;
615 uopt.uid = sbi->s_uid;
616 uopt.gid = sbi->s_gid;
617 uopt.umask = sbi->s_umask;
7ac9bcd5
MS
618 uopt.fmode = sbi->s_fmode;
619 uopt.dmode = sbi->s_dmode;
785dffe1 620 uopt.nls_map = NULL;
1da177e4 621
6da80894 622 if (!udf_parse_options(options, &uopt, true))
1da177e4
LT
623 return -EINVAL;
624
c03cad24 625 write_lock(&sbi->s_cred_lock);
6c79e987
MS
626 sbi->s_flags = uopt.flags;
627 sbi->s_uid = uopt.uid;
628 sbi->s_gid = uopt.gid;
629 sbi->s_umask = uopt.umask;
7ac9bcd5
MS
630 sbi->s_fmode = uopt.fmode;
631 sbi->s_dmode = uopt.dmode;
c03cad24 632 write_unlock(&sbi->s_cred_lock);
1da177e4 633
1751e8a6 634 if ((bool)(*flags & SB_RDONLY) == sb_rdonly(sb))
c79d967d
CH
635 goto out_unlock;
636
1751e8a6 637 if (*flags & SB_RDONLY)
1da177e4 638 udf_close_lvid(sb);
36350462 639 else
1da177e4
LT
640 udf_open_lvid(sb);
641
c79d967d 642out_unlock:
c79d967d 643 return error;
1da177e4
LT
644}
645
ba54aef0
SM
646/*
647 * Check VSD descriptor. Returns -1 in case we are at the end of volume
648 * recognition area, 0 if the descriptor is valid but non-interesting, 1 if
649 * we found one of NSR descriptors we are looking for.
650 */
651static int identify_vsd(const struct volStructDesc *vsd)
652{
653 int ret = 0;
654
655 if (!memcmp(vsd->stdIdent, VSD_STD_ID_CD001, VSD_STD_ID_LEN)) {
656 switch (vsd->structType) {
657 case 0:
658 udf_debug("ISO9660 Boot Record found\n");
659 break;
660 case 1:
661 udf_debug("ISO9660 Primary Volume Descriptor found\n");
662 break;
663 case 2:
664 udf_debug("ISO9660 Supplementary Volume Descriptor found\n");
665 break;
666 case 3:
667 udf_debug("ISO9660 Volume Partition Descriptor found\n");
668 break;
669 case 255:
670 udf_debug("ISO9660 Volume Descriptor Set Terminator found\n");
671 break;
672 default:
673 udf_debug("ISO9660 VRS (%u) found\n", vsd->structType);
674 break;
675 }
676 } else if (!memcmp(vsd->stdIdent, VSD_STD_ID_BEA01, VSD_STD_ID_LEN))
677 ; /* ret = 0 */
678 else if (!memcmp(vsd->stdIdent, VSD_STD_ID_NSR02, VSD_STD_ID_LEN))
679 ret = 1;
680 else if (!memcmp(vsd->stdIdent, VSD_STD_ID_NSR03, VSD_STD_ID_LEN))
681 ret = 1;
682 else if (!memcmp(vsd->stdIdent, VSD_STD_ID_BOOT2, VSD_STD_ID_LEN))
683 ; /* ret = 0 */
684 else if (!memcmp(vsd->stdIdent, VSD_STD_ID_CDW02, VSD_STD_ID_LEN))
685 ; /* ret = 0 */
686 else {
687 /* TEA01 or invalid id : end of volume recognition area */
688 ret = -1;
689 }
690
691 return ret;
692}
693
694/*
695 * Check Volume Structure Descriptors (ECMA 167 2/9.1)
696 * We also check any "CD-ROM Volume Descriptor Set" (ECMA 167 2/8.3.1)
697 * @return 1 if NSR02 or NSR03 found,
698 * -1 if first sector read error, 0 otherwise
699 */
700static int udf_check_vsd(struct super_block *sb)
1da177e4
LT
701{
702 struct volStructDesc *vsd = NULL;
44499602 703 loff_t sector = VSD_FIRST_SECTOR_OFFSET;
1da177e4
LT
704 int sectorsize;
705 struct buffer_head *bh = NULL;
ba54aef0 706 int nsr = 0;
6c79e987 707 struct udf_sb_info *sbi;
5cdc4a69 708 loff_t session_offset;
1da177e4 709
6c79e987 710 sbi = UDF_SB(sb);
1da177e4
LT
711 if (sb->s_blocksize < sizeof(struct volStructDesc))
712 sectorsize = sizeof(struct volStructDesc);
713 else
714 sectorsize = sb->s_blocksize;
715
5cdc4a69 716 session_offset = (loff_t)sbi->s_session << sb->s_blocksize_bits;
717 sector += session_offset;
1da177e4 718
fcbf7637 719 udf_debug("Starting at sector %u (%lu byte sectors)\n",
706047a7
SM
720 (unsigned int)(sector >> sb->s_blocksize_bits),
721 sb->s_blocksize);
44499602
PF
722 /* Process the sequence (if applicable). The hard limit on the sector
723 * offset is arbitrary, hopefully large enough so that all valid UDF
724 * filesystems will be recognised. There is no mention of an upper
725 * bound to the size of the volume recognition area in the standard.
726 * The limit will prevent the code to read all the sectors of a
727 * specially crafted image (like a bluray disc full of CD001 sectors),
728 * potentially causing minutes or even hours of uninterruptible I/O
729 * activity. This actually happened with uninitialised SSD partitions
730 * (all 0xFF) before the check for the limit and all valid IDs were
731 * added */
ba54aef0 732 for (; !nsr && sector < VSD_MAX_SECTOR_OFFSET; sector += sectorsize) {
1da177e4
LT
733 /* Read a block */
734 bh = udf_tread(sb, sector >> sb->s_blocksize_bits);
735 if (!bh)
736 break;
737
1da177e4 738 vsd = (struct volStructDesc *)(bh->b_data +
3a71fc5d 739 (sector & (sb->s_blocksize - 1)));
ba54aef0 740 nsr = identify_vsd(vsd);
6fbacb85
SM
741 /* Found NSR or end? */
742 if (nsr) {
743 brelse(bh);
744 break;
745 }
746 /*
747 * Special handling for improperly formatted VRS (e.g., Win10)
748 * where components are separated by 2048 bytes even though
749 * sectors are 4K
750 */
751 if (sb->s_blocksize == 4096) {
752 nsr = identify_vsd(vsd + 1);
753 /* Ignore unknown IDs... */
754 if (nsr < 0)
755 nsr = 0;
756 }
3bf25cb4 757 brelse(bh);
1da177e4
LT
758 }
759
ba54aef0
SM
760 if (nsr > 0)
761 return 1;
5cdc4a69 762 else if (!bh && sector - session_offset == VSD_FIRST_SECTOR_OFFSET)
1da177e4
LT
763 return -1;
764 else
765 return 0;
766}
767
8b47ea6c
JK
768static int udf_verify_domain_identifier(struct super_block *sb,
769 struct regid *ident, char *dname)
770{
871b9b14 771 struct domainIdentSuffix *suffix;
8b47ea6c
JK
772
773 if (memcmp(ident->ident, UDF_ID_COMPLIANT, strlen(UDF_ID_COMPLIANT))) {
774 udf_warn(sb, "Not OSTA UDF compliant %s descriptor.\n", dname);
775 goto force_ro;
776 }
49be68c4 777 if (ident->flags & ENTITYID_FLAGS_DIRTY) {
8b47ea6c
JK
778 udf_warn(sb, "Possibly not OSTA UDF compliant %s descriptor.\n",
779 dname);
780 goto force_ro;
781 }
871b9b14
PR
782 suffix = (struct domainIdentSuffix *)ident->identSuffix;
783 if ((suffix->domainFlags & DOMAIN_FLAGS_HARD_WRITE_PROTECT) ||
784 (suffix->domainFlags & DOMAIN_FLAGS_SOFT_WRITE_PROTECT)) {
8b47ea6c
JK
785 if (!sb_rdonly(sb)) {
786 udf_warn(sb, "Descriptor for %s marked write protected."
787 " Forcing read only mount.\n", dname);
788 }
789 goto force_ro;
790 }
791 return 0;
792
793force_ro:
794 if (!sb_rdonly(sb))
795 return -EACCES;
796 UDF_SET_FLAG(sb, UDF_FLAG_RW_INCOMPAT);
797 return 0;
798}
799
800static int udf_load_fileset(struct super_block *sb, struct fileSetDesc *fset,
801 struct kernel_lb_addr *root)
802{
803 int ret;
804
805 ret = udf_verify_domain_identifier(sb, &fset->domainIdent, "file set");
806 if (ret < 0)
807 return ret;
808
809 *root = lelb_to_cpu(fset->rootDirectoryICB.extLocation);
810 UDF_SB(sb)->s_serial_number = le16_to_cpu(fset->descTag.tagSerialNum);
811
812 udf_debug("Rootdir at block=%u, partition=%u\n",
813 root->logicalBlockNum, root->partitionReferenceNum);
814 return 0;
815}
816
3a71fc5d 817static int udf_find_fileset(struct super_block *sb,
5ca4e4be
PE
818 struct kernel_lb_addr *fileset,
819 struct kernel_lb_addr *root)
1da177e4
LT
820{
821 struct buffer_head *bh = NULL;
1da177e4 822 uint16_t ident;
2dee5aac 823 int ret;
1da177e4 824
2dee5aac
JK
825 if (fileset->logicalBlockNum == 0xFFFFFFFF &&
826 fileset->partitionReferenceNum == 0xFFFF)
827 return -EINVAL;
1da177e4 828
2dee5aac
JK
829 bh = udf_read_ptagged(sb, fileset, 0, &ident);
830 if (!bh)
831 return -EIO;
832 if (ident != TAG_IDENT_FSD) {
3bf25cb4 833 brelse(bh);
2dee5aac 834 return -EINVAL;
1da177e4 835 }
2dee5aac
JK
836
837 udf_debug("Fileset at block=%u, partition=%u\n",
838 fileset->logicalBlockNum, fileset->partitionReferenceNum);
839
840 UDF_SB(sb)->s_partition = fileset->partitionReferenceNum;
841 ret = udf_load_fileset(sb, (struct fileSetDesc *)bh->b_data, root);
842 brelse(bh);
843 return ret;
1da177e4
LT
844}
845
d759bfa4
JK
846/*
847 * Load primary Volume Descriptor Sequence
848 *
849 * Return <0 on error, 0 on success. -EAGAIN is special meaning next sequence
850 * should be tried.
851 */
c0eb31ed 852static int udf_load_pvoldesc(struct super_block *sb, sector_t block)
1da177e4
LT
853{
854 struct primaryVolDesc *pvoldesc;
9293fcfb 855 uint8_t *outstr;
c0eb31ed
JK
856 struct buffer_head *bh;
857 uint16_t ident;
aa9f6661 858 int ret;
0220edda 859 struct timestamp *ts;
ba9aadd8 860
9293fcfb 861 outstr = kmalloc(128, GFP_NOFS);
ba9aadd8 862 if (!outstr)
9293fcfb 863 return -ENOMEM;
c0eb31ed
JK
864
865 bh = udf_read_tagged(sb, block, block, &ident);
d759bfa4
JK
866 if (!bh) {
867 ret = -EAGAIN;
ba9aadd8 868 goto out2;
d759bfa4 869 }
ba9aadd8 870
d759bfa4
JK
871 if (ident != TAG_IDENT_PVD) {
872 ret = -EIO;
873 goto out_bh;
874 }
1da177e4
LT
875
876 pvoldesc = (struct primaryVolDesc *)bh->b_data;
877
0220edda
DD
878 udf_disk_stamp_to_time(&UDF_SB(sb)->s_record_time,
879 pvoldesc->recordingDateAndTime);
0220edda
DD
880 ts = &pvoldesc->recordingDateAndTime;
881 udf_debug("recording time %04u/%02u/%02u %02u:%02u (%x)\n",
882 le16_to_cpu(ts->year), ts->month, ts->day, ts->hour,
883 ts->minute, le16_to_cpu(ts->typeAndTimezone));
1da177e4 884
e966fc8d 885 ret = udf_dstrCS0toChar(sb, outstr, 31, pvoldesc->volIdent, 32);
b54e41f5
JK
886 if (ret < 0) {
887 strcpy(UDF_SB(sb)->s_volume_ident, "InvalidName");
888 pr_warn("incorrect volume identification, setting to "
889 "'InvalidName'\n");
890 } else {
891 strncpy(UDF_SB(sb)->s_volume_ident, outstr, ret);
892 }
9293fcfb 893 udf_debug("volIdent[] = '%s'\n", UDF_SB(sb)->s_volume_ident);
1da177e4 894
e966fc8d 895 ret = udf_dstrCS0toChar(sb, outstr, 127, pvoldesc->volSetIdent, 128);
b54e41f5
JK
896 if (ret < 0) {
897 ret = 0;
9293fcfb 898 goto out_bh;
b54e41f5 899 }
9293fcfb
AG
900 outstr[ret] = 0;
901 udf_debug("volSetIdent[] = '%s'\n", outstr);
c0eb31ed 902
ba9aadd8 903 ret = 0;
d759bfa4
JK
904out_bh:
905 brelse(bh);
ba9aadd8
MS
906out2:
907 kfree(outstr);
ba9aadd8 908 return ret;
1da177e4
LT
909}
910
3080a74e 911struct inode *udf_find_metadata_inode_efe(struct super_block *sb,
7888824b 912 u32 meta_file_loc, u32 partition_ref)
3080a74e
NJ
913{
914 struct kernel_lb_addr addr;
915 struct inode *metadata_fe;
916
917 addr.logicalBlockNum = meta_file_loc;
7888824b 918 addr.partitionReferenceNum = partition_ref;
3080a74e 919
6174c2eb 920 metadata_fe = udf_iget_special(sb, &addr);
3080a74e 921
6d3d5e86 922 if (IS_ERR(metadata_fe)) {
3080a74e 923 udf_warn(sb, "metadata inode efe not found\n");
6d3d5e86
JK
924 return metadata_fe;
925 }
926 if (UDF_I(metadata_fe)->i_alloc_type != ICBTAG_FLAG_AD_SHORT) {
3080a74e
NJ
927 udf_warn(sb, "metadata inode efe does not have short allocation descriptors!\n");
928 iput(metadata_fe);
6d3d5e86 929 return ERR_PTR(-EIO);
3080a74e
NJ
930 }
931
932 return metadata_fe;
933}
934
7888824b
AT
935static int udf_load_metadata_files(struct super_block *sb, int partition,
936 int type1_index)
bfb257a5
JK
937{
938 struct udf_sb_info *sbi = UDF_SB(sb);
939 struct udf_part_map *map;
940 struct udf_meta_data *mdata;
5ca4e4be 941 struct kernel_lb_addr addr;
6d3d5e86 942 struct inode *fe;
bfb257a5
JK
943
944 map = &sbi->s_partmaps[partition];
945 mdata = &map->s_type_specific.s_metadata;
7888824b 946 mdata->s_phys_partition_ref = type1_index;
bfb257a5
JK
947
948 /* metadata address */
fcbf7637 949 udf_debug("Metadata file location: block = %u part = %u\n",
7888824b 950 mdata->s_meta_file_loc, mdata->s_phys_partition_ref);
bfb257a5 951
6d3d5e86 952 fe = udf_find_metadata_inode_efe(sb, mdata->s_meta_file_loc,
7888824b 953 mdata->s_phys_partition_ref);
6d3d5e86 954 if (IS_ERR(fe)) {
3080a74e 955 /* mirror file entry */
fcbf7637 956 udf_debug("Mirror metadata file location: block = %u part = %u\n",
7888824b 957 mdata->s_mirror_file_loc, mdata->s_phys_partition_ref);
bfb257a5 958
6d3d5e86 959 fe = udf_find_metadata_inode_efe(sb, mdata->s_mirror_file_loc,
7888824b 960 mdata->s_phys_partition_ref);
bfb257a5 961
6d3d5e86 962 if (IS_ERR(fe)) {
3080a74e 963 udf_err(sb, "Both metadata and mirror metadata inode efe can not found\n");
6d3d5e86 964 return PTR_ERR(fe);
3080a74e 965 }
6d3d5e86
JK
966 mdata->s_mirror_fe = fe;
967 } else
968 mdata->s_metadata_fe = fe;
969
bfb257a5
JK
970
971 /*
972 * bitmap file entry
973 * Note:
974 * Load only if bitmap file location differs from 0xFFFFFFFF (DCN-5102)
975 */
976 if (mdata->s_bitmap_file_loc != 0xFFFFFFFF) {
977 addr.logicalBlockNum = mdata->s_bitmap_file_loc;
7888824b 978 addr.partitionReferenceNum = mdata->s_phys_partition_ref;
bfb257a5 979
fcbf7637 980 udf_debug("Bitmap file location: block = %u part = %u\n",
a983f368 981 addr.logicalBlockNum, addr.partitionReferenceNum);
bfb257a5 982
6174c2eb 983 fe = udf_iget_special(sb, &addr);
6d3d5e86 984 if (IS_ERR(fe)) {
bc98a42c 985 if (sb_rdonly(sb))
a40ecd7b 986 udf_warn(sb, "bitmap inode efe not found but it's ok since the disc is mounted read-only\n");
bfb257a5 987 else {
8076c363 988 udf_err(sb, "bitmap inode efe not found and attempted read-write mount\n");
6d3d5e86 989 return PTR_ERR(fe);
bfb257a5 990 }
6d3d5e86
JK
991 } else
992 mdata->s_bitmap_fe = fe;
bfb257a5
JK
993 }
994
995 udf_debug("udf_load_metadata_files Ok\n");
bfb257a5 996 return 0;
bfb257a5
JK
997}
998
883cb9d1
MS
999int udf_compute_nr_groups(struct super_block *sb, u32 partition)
1000{
1001 struct udf_part_map *map = &UDF_SB(sb)->s_partmaps[partition];
8dee00bb
JL
1002 return DIV_ROUND_UP(map->s_partition_len +
1003 (sizeof(struct spaceBitmapDesc) << 3),
1004 sb->s_blocksize * 8);
883cb9d1
MS
1005}
1006
66e1da3f
MS
1007static struct udf_bitmap *udf_sb_alloc_bitmap(struct super_block *sb, u32 index)
1008{
66e1da3f 1009 struct udf_bitmap *bitmap;
256ccb9b 1010 int nr_groups = udf_compute_nr_groups(sb, index);
66e1da3f 1011
256ccb9b
DE
1012 bitmap = kvzalloc(struct_size(bitmap, s_block_bitmap, nr_groups),
1013 GFP_KERNEL);
ba2eb866 1014 if (!bitmap)
66e1da3f 1015 return NULL;
66e1da3f 1016
66e1da3f
MS
1017 bitmap->s_nr_groups = nr_groups;
1018 return bitmap;
1019}
1020
b085fbe2
JK
1021static int check_partition_desc(struct super_block *sb,
1022 struct partitionDesc *p,
1023 struct udf_part_map *map)
1024{
1025 bool umap, utable, fmap, ftable;
1026 struct partitionHeaderDesc *phd;
1027
1028 switch (le32_to_cpu(p->accessType)) {
1029 case PD_ACCESS_TYPE_READ_ONLY:
1030 case PD_ACCESS_TYPE_WRITE_ONCE:
b085fbe2
JK
1031 case PD_ACCESS_TYPE_NONE:
1032 goto force_ro;
1033 }
1034
1035 /* No Partition Header Descriptor? */
1036 if (strcmp(p->partitionContents.ident, PD_PARTITION_CONTENTS_NSR02) &&
1037 strcmp(p->partitionContents.ident, PD_PARTITION_CONTENTS_NSR03))
1038 goto force_ro;
1039
1040 phd = (struct partitionHeaderDesc *)p->partitionContentsUse;
1041 utable = phd->unallocSpaceTable.extLength;
1042 umap = phd->unallocSpaceBitmap.extLength;
1043 ftable = phd->freedSpaceTable.extLength;
1044 fmap = phd->freedSpaceBitmap.extLength;
1045
1046 /* No allocation info? */
1047 if (!utable && !umap && !ftable && !fmap)
1048 goto force_ro;
1049
1050 /* We don't support blocks that require erasing before overwrite */
1051 if (ftable || fmap)
1052 goto force_ro;
1053 /* UDF 2.60: 2.3.3 - no mixing of tables & bitmaps, no VAT. */
1054 if (utable && umap)
1055 goto force_ro;
1056
1057 if (map->s_partition_type == UDF_VIRTUAL_MAP15 ||
57debb81
PR
1058 map->s_partition_type == UDF_VIRTUAL_MAP20 ||
1059 map->s_partition_type == UDF_METADATA_MAP25)
b085fbe2
JK
1060 goto force_ro;
1061
1062 return 0;
1063force_ro:
1064 if (!sb_rdonly(sb))
1065 return -EACCES;
1066 UDF_SET_FLAG(sb, UDF_FLAG_RW_INCOMPAT);
1067 return 0;
1068}
1069
3fb38dfa
JK
1070static int udf_fill_partdesc_info(struct super_block *sb,
1071 struct partitionDesc *p, int p_index)
1da177e4 1072{
6c79e987 1073 struct udf_part_map *map;
165923fa 1074 struct udf_sb_info *sbi = UDF_SB(sb);
3fb38dfa 1075 struct partitionHeaderDesc *phd;
b085fbe2 1076 int err;
165923fa 1077
3fb38dfa 1078 map = &sbi->s_partmaps[p_index];
165923fa
MS
1079
1080 map->s_partition_len = le32_to_cpu(p->partitionLength); /* blocks */
1081 map->s_partition_root = le32_to_cpu(p->partitionStartingLocation);
1082
1083 if (p->accessType == cpu_to_le32(PD_ACCESS_TYPE_READ_ONLY))
1084 map->s_partition_flags |= UDF_PART_FLAG_READ_ONLY;
1085 if (p->accessType == cpu_to_le32(PD_ACCESS_TYPE_WRITE_ONCE))
1086 map->s_partition_flags |= UDF_PART_FLAG_WRITE_ONCE;
1087 if (p->accessType == cpu_to_le32(PD_ACCESS_TYPE_REWRITABLE))
1088 map->s_partition_flags |= UDF_PART_FLAG_REWRITABLE;
1089 if (p->accessType == cpu_to_le32(PD_ACCESS_TYPE_OVERWRITABLE))
1090 map->s_partition_flags |= UDF_PART_FLAG_OVERWRITABLE;
1091
fcbf7637 1092 udf_debug("Partition (%d type %x) starts at physical %u, block length %u\n",
a983f368
JP
1093 p_index, map->s_partition_type,
1094 map->s_partition_root, map->s_partition_len);
165923fa 1095
b085fbe2
JK
1096 err = check_partition_desc(sb, p, map);
1097 if (err)
1098 return err;
1099
1100 /*
1101 * Skip loading allocation info it we cannot ever write to the fs.
1102 * This is a correctness thing as we may have decided to force ro mount
1103 * to avoid allocation info we don't support.
1104 */
1105 if (UDF_QUERY_FLAG(sb, UDF_FLAG_RW_INCOMPAT))
3fb38dfa 1106 return 0;
165923fa
MS
1107
1108 phd = (struct partitionHeaderDesc *)p->partitionContentsUse;
1109 if (phd->unallocSpaceTable.extLength) {
5ca4e4be 1110 struct kernel_lb_addr loc = {
165923fa
MS
1111 .logicalBlockNum = le32_to_cpu(
1112 phd->unallocSpaceTable.extPosition),
3fb38dfa 1113 .partitionReferenceNum = p_index,
165923fa 1114 };
6d3d5e86 1115 struct inode *inode;
165923fa 1116
6174c2eb 1117 inode = udf_iget_special(sb, &loc);
6d3d5e86 1118 if (IS_ERR(inode)) {
165923fa 1119 udf_debug("cannot load unallocSpaceTable (part %d)\n",
a983f368 1120 p_index);
6d3d5e86 1121 return PTR_ERR(inode);
165923fa 1122 }
6d3d5e86 1123 map->s_uspace.s_table = inode;
165923fa 1124 map->s_partition_flags |= UDF_PART_FLAG_UNALLOC_TABLE;
fcbf7637 1125 udf_debug("unallocSpaceTable (part %d) @ %lu\n",
a983f368 1126 p_index, map->s_uspace.s_table->i_ino);
165923fa
MS
1127 }
1128
1129 if (phd->unallocSpaceBitmap.extLength) {
3fb38dfa
JK
1130 struct udf_bitmap *bitmap = udf_sb_alloc_bitmap(sb, p_index);
1131 if (!bitmap)
d759bfa4 1132 return -ENOMEM;
165923fa 1133 map->s_uspace.s_bitmap = bitmap;
2e0838fd 1134 bitmap->s_extPosition = le32_to_cpu(
165923fa 1135 phd->unallocSpaceBitmap.extPosition);
2e0838fd 1136 map->s_partition_flags |= UDF_PART_FLAG_UNALLOC_BITMAP;
fcbf7637 1137 udf_debug("unallocSpaceBitmap (part %d) @ %u\n",
a983f368 1138 p_index, bitmap->s_extPosition);
165923fa
MS
1139 }
1140
3fb38dfa
JK
1141 return 0;
1142}
1143
e971b0b9
JK
1144static void udf_find_vat_block(struct super_block *sb, int p_index,
1145 int type1_index, sector_t start_block)
38b74a53
JK
1146{
1147 struct udf_sb_info *sbi = UDF_SB(sb);
1148 struct udf_part_map *map = &sbi->s_partmaps[p_index];
e971b0b9 1149 sector_t vat_block;
5ca4e4be 1150 struct kernel_lb_addr ino;
6d3d5e86 1151 struct inode *inode;
e971b0b9
JK
1152
1153 /*
1154 * VAT file entry is in the last recorded block. Some broken disks have
1155 * it a few blocks before so try a bit harder...
1156 */
1157 ino.partitionReferenceNum = type1_index;
1158 for (vat_block = start_block;
1159 vat_block >= map->s_partition_root &&
6d3d5e86 1160 vat_block >= start_block - 3; vat_block--) {
e971b0b9 1161 ino.logicalBlockNum = vat_block - map->s_partition_root;
6174c2eb 1162 inode = udf_iget_special(sb, &ino);
6d3d5e86
JK
1163 if (!IS_ERR(inode)) {
1164 sbi->s_vat_inode = inode;
1165 break;
1166 }
e971b0b9
JK
1167 }
1168}
1169
1170static int udf_load_vat(struct super_block *sb, int p_index, int type1_index)
1171{
1172 struct udf_sb_info *sbi = UDF_SB(sb);
1173 struct udf_part_map *map = &sbi->s_partmaps[p_index];
fa5e0815
JK
1174 struct buffer_head *bh = NULL;
1175 struct udf_inode_info *vati;
1176 uint32_t pos;
1177 struct virtualAllocationTable20 *vat20;
23bcda11
FF
1178 sector_t blocks = i_size_read(sb->s_bdev->bd_inode) >>
1179 sb->s_blocksize_bits;
38b74a53 1180
e971b0b9 1181 udf_find_vat_block(sb, p_index, type1_index, sbi->s_last_block);
4bf17af0
JK
1182 if (!sbi->s_vat_inode &&
1183 sbi->s_last_block != blocks - 1) {
78ace70c
JP
1184 pr_notice("Failed to read VAT inode from the last recorded block (%lu), retrying with the last block of the device (%lu).\n",
1185 (unsigned long)sbi->s_last_block,
1186 (unsigned long)blocks - 1);
e971b0b9 1187 udf_find_vat_block(sb, p_index, type1_index, blocks - 1);
4bf17af0 1188 }
38b74a53 1189 if (!sbi->s_vat_inode)
d759bfa4 1190 return -EIO;
38b74a53
JK
1191
1192 if (map->s_partition_type == UDF_VIRTUAL_MAP15) {
47c9358a 1193 map->s_type_specific.s_virtual.s_start_offset = 0;
38b74a53
JK
1194 map->s_type_specific.s_virtual.s_num_entries =
1195 (sbi->s_vat_inode->i_size - 36) >> 2;
1196 } else if (map->s_partition_type == UDF_VIRTUAL_MAP20) {
fa5e0815
JK
1197 vati = UDF_I(sbi->s_vat_inode);
1198 if (vati->i_alloc_type != ICBTAG_FLAG_AD_IN_ICB) {
1199 pos = udf_block_map(sbi->s_vat_inode, 0);
1200 bh = sb_bread(sb, pos);
1201 if (!bh)
d759bfa4 1202 return -EIO;
fa5e0815
JK
1203 vat20 = (struct virtualAllocationTable20 *)bh->b_data;
1204 } else {
1205 vat20 = (struct virtualAllocationTable20 *)
382a2287 1206 vati->i_data;
fa5e0815 1207 }
38b74a53 1208
38b74a53 1209 map->s_type_specific.s_virtual.s_start_offset =
47c9358a 1210 le16_to_cpu(vat20->lengthHeader);
38b74a53
JK
1211 map->s_type_specific.s_virtual.s_num_entries =
1212 (sbi->s_vat_inode->i_size -
1213 map->s_type_specific.s_virtual.
1214 s_start_offset) >> 2;
1215 brelse(bh);
1216 }
1217 return 0;
1218}
1219
d759bfa4
JK
1220/*
1221 * Load partition descriptor block
1222 *
1223 * Returns <0 on error, 0 on success, -EAGAIN is special - try next descriptor
1224 * sequence.
1225 */
3fb38dfa
JK
1226static int udf_load_partdesc(struct super_block *sb, sector_t block)
1227{
1228 struct buffer_head *bh;
1229 struct partitionDesc *p;
1230 struct udf_part_map *map;
1231 struct udf_sb_info *sbi = UDF_SB(sb);
38b74a53 1232 int i, type1_idx;
3fb38dfa
JK
1233 uint16_t partitionNumber;
1234 uint16_t ident;
d759bfa4 1235 int ret;
3fb38dfa
JK
1236
1237 bh = udf_read_tagged(sb, block, block, &ident);
1238 if (!bh)
d759bfa4
JK
1239 return -EAGAIN;
1240 if (ident != TAG_IDENT_PD) {
1241 ret = 0;
3fb38dfa 1242 goto out_bh;
d759bfa4 1243 }
3fb38dfa
JK
1244
1245 p = (struct partitionDesc *)bh->b_data;
1246 partitionNumber = le16_to_cpu(p->partitionNumber);
38b74a53 1247
7888824b 1248 /* First scan for TYPE1 and SPARABLE partitions */
3fb38dfa
JK
1249 for (i = 0; i < sbi->s_partitions; i++) {
1250 map = &sbi->s_partmaps[i];
fcbf7637 1251 udf_debug("Searching map: (%u == %u)\n",
3fb38dfa 1252 map->s_partition_num, partitionNumber);
38b74a53
JK
1253 if (map->s_partition_num == partitionNumber &&
1254 (map->s_partition_type == UDF_TYPE1_MAP15 ||
1255 map->s_partition_type == UDF_SPARABLE_MAP15))
3fb38dfa
JK
1256 break;
1257 }
1258
38b74a53 1259 if (i >= sbi->s_partitions) {
fcbf7637 1260 udf_debug("Partition (%u) not found in partition map\n",
3fb38dfa 1261 partitionNumber);
d759bfa4 1262 ret = 0;
3fb38dfa
JK
1263 goto out_bh;
1264 }
165923fa 1265
3fb38dfa 1266 ret = udf_fill_partdesc_info(sb, p, i);
d759bfa4
JK
1267 if (ret < 0)
1268 goto out_bh;
38b74a53
JK
1269
1270 /*
bfb257a5
JK
1271 * Now rescan for VIRTUAL or METADATA partitions when SPARABLE and
1272 * PHYSICAL partitions are already set up
38b74a53
JK
1273 */
1274 type1_idx = i;
44499602 1275 map = NULL; /* supress 'maybe used uninitialized' warning */
38b74a53
JK
1276 for (i = 0; i < sbi->s_partitions; i++) {
1277 map = &sbi->s_partmaps[i];
1278
1279 if (map->s_partition_num == partitionNumber &&
1280 (map->s_partition_type == UDF_VIRTUAL_MAP15 ||
bfb257a5
JK
1281 map->s_partition_type == UDF_VIRTUAL_MAP20 ||
1282 map->s_partition_type == UDF_METADATA_MAP25))
38b74a53
JK
1283 break;
1284 }
1285
d759bfa4
JK
1286 if (i >= sbi->s_partitions) {
1287 ret = 0;
38b74a53 1288 goto out_bh;
d759bfa4 1289 }
38b74a53
JK
1290
1291 ret = udf_fill_partdesc_info(sb, p, i);
d759bfa4 1292 if (ret < 0)
38b74a53
JK
1293 goto out_bh;
1294
bfb257a5 1295 if (map->s_partition_type == UDF_METADATA_MAP25) {
7888824b 1296 ret = udf_load_metadata_files(sb, i, type1_idx);
d759bfa4 1297 if (ret < 0) {
78ace70c
JP
1298 udf_err(sb, "error loading MetaData partition map %d\n",
1299 i);
bfb257a5
JK
1300 goto out_bh;
1301 }
1302 } else {
e729eac6
JK
1303 /*
1304 * If we have a partition with virtual map, we don't handle
1305 * writing to it (we overwrite blocks instead of relocating
1306 * them).
1307 */
bc98a42c 1308 if (!sb_rdonly(sb)) {
e729eac6
JK
1309 ret = -EACCES;
1310 goto out_bh;
1311 }
a9ad01bc 1312 UDF_SET_FLAG(sb, UDF_FLAG_RW_INCOMPAT);
bfb257a5 1313 ret = udf_load_vat(sb, i, type1_idx);
d759bfa4 1314 if (ret < 0)
bfb257a5 1315 goto out_bh;
bfb257a5 1316 }
d759bfa4 1317 ret = 0;
c0eb31ed 1318out_bh:
2e0838fd 1319 /* In case loading failed, we handle cleanup in udf_fill_super */
c0eb31ed
JK
1320 brelse(bh);
1321 return ret;
1da177e4
LT
1322}
1323
1df2ae31
JK
1324static int udf_load_sparable_map(struct super_block *sb,
1325 struct udf_part_map *map,
1326 struct sparablePartitionMap *spm)
1327{
1328 uint32_t loc;
1329 uint16_t ident;
1330 struct sparingTable *st;
1331 struct udf_sparing_data *sdata = &map->s_type_specific.s_sparing;
1332 int i;
1333 struct buffer_head *bh;
1334
1335 map->s_partition_type = UDF_SPARABLE_MAP15;
1336 sdata->s_packet_len = le16_to_cpu(spm->packetLength);
1337 if (!is_power_of_2(sdata->s_packet_len)) {
1338 udf_err(sb, "error loading logical volume descriptor: "
1339 "Invalid packet length %u\n",
1340 (unsigned)sdata->s_packet_len);
1341 return -EIO;
1342 }
1343 if (spm->numSparingTables > 4) {
1344 udf_err(sb, "error loading logical volume descriptor: "
1345 "Too many sparing tables (%d)\n",
1346 (int)spm->numSparingTables);
1347 return -EIO;
1348 }
44ac6b82
JK
1349 if (le32_to_cpu(spm->sizeSparingTable) > sb->s_blocksize) {
1350 udf_err(sb, "error loading logical volume descriptor: "
1351 "Too big sparing table size (%u)\n",
1352 le32_to_cpu(spm->sizeSparingTable));
1353 return -EIO;
1354 }
1df2ae31
JK
1355
1356 for (i = 0; i < spm->numSparingTables; i++) {
1357 loc = le32_to_cpu(spm->locSparingTable[i]);
1358 bh = udf_read_tagged(sb, loc, loc, &ident);
1359 if (!bh)
1360 continue;
1361
1362 st = (struct sparingTable *)bh->b_data;
1363 if (ident != 0 ||
1364 strncmp(st->sparingIdent.ident, UDF_ID_SPARING,
1365 strlen(UDF_ID_SPARING)) ||
1366 sizeof(*st) + le16_to_cpu(st->reallocationTableLen) >
1367 sb->s_blocksize) {
1368 brelse(bh);
1369 continue;
1370 }
1371
1372 sdata->s_spar_map[i] = bh;
1373 }
1374 map->s_partition_func = udf_get_pblock_spar15;
1375 return 0;
1376}
1377
c0eb31ed 1378static int udf_load_logicalvol(struct super_block *sb, sector_t block,
5ca4e4be 1379 struct kernel_lb_addr *fileset)
1da177e4
LT
1380{
1381 struct logicalVolDesc *lvd;
1df2ae31 1382 int i, offset;
1da177e4 1383 uint8_t type;
6c79e987 1384 struct udf_sb_info *sbi = UDF_SB(sb);
4b11111a 1385 struct genericPartitionMap *gpm;
c0eb31ed
JK
1386 uint16_t ident;
1387 struct buffer_head *bh;
adee11b2 1388 unsigned int table_len;
d759bfa4 1389 int ret;
1da177e4 1390
c0eb31ed
JK
1391 bh = udf_read_tagged(sb, block, block, &ident);
1392 if (!bh)
d759bfa4 1393 return -EAGAIN;
c0eb31ed 1394 BUG_ON(ident != TAG_IDENT_LVD);
1da177e4 1395 lvd = (struct logicalVolDesc *)bh->b_data;
adee11b2 1396 table_len = le32_to_cpu(lvd->mapTableLength);
57b9655d 1397 if (table_len > sb->s_blocksize - sizeof(*lvd)) {
adee11b2
JK
1398 udf_err(sb, "error loading logical volume descriptor: "
1399 "Partition table too long (%u > %lu)\n", table_len,
1400 sb->s_blocksize - sizeof(*lvd));
d759bfa4 1401 ret = -EIO;
adee11b2
JK
1402 goto out_bh;
1403 }
1da177e4 1404
2dee5aac
JK
1405 ret = udf_verify_domain_identifier(sb, &lvd->domainIdent,
1406 "logical volume");
1407 if (ret)
1408 goto out_bh;
cb14d340
JK
1409 ret = udf_sb_alloc_partition_maps(sb, le32_to_cpu(lvd->numPartitionMaps));
1410 if (ret)
c0eb31ed 1411 goto out_bh;
1da177e4 1412
cb00ea35 1413 for (i = 0, offset = 0;
adee11b2 1414 i < sbi->s_partitions && offset < table_len;
4b11111a
MS
1415 i++, offset += gpm->partitionMapLength) {
1416 struct udf_part_map *map = &sbi->s_partmaps[i];
1417 gpm = (struct genericPartitionMap *)
1418 &(lvd->partitionMaps[offset]);
1419 type = gpm->partitionMapType;
cb00ea35 1420 if (type == 1) {
4b11111a
MS
1421 struct genericPartitionMap1 *gpm1 =
1422 (struct genericPartitionMap1 *)gpm;
6c79e987
MS
1423 map->s_partition_type = UDF_TYPE1_MAP15;
1424 map->s_volumeseqnum = le16_to_cpu(gpm1->volSeqNum);
1425 map->s_partition_num = le16_to_cpu(gpm1->partitionNum);
1426 map->s_partition_func = NULL;
cb00ea35 1427 } else if (type == 2) {
4b11111a
MS
1428 struct udfPartitionMap2 *upm2 =
1429 (struct udfPartitionMap2 *)gpm;
1430 if (!strncmp(upm2->partIdent.ident, UDF_ID_VIRTUAL,
1431 strlen(UDF_ID_VIRTUAL))) {
1432 u16 suf =
1433 le16_to_cpu(((__le16 *)upm2->partIdent.
1434 identSuffix)[0]);
c82a1275 1435 if (suf < 0x0200) {
4b11111a
MS
1436 map->s_partition_type =
1437 UDF_VIRTUAL_MAP15;
1438 map->s_partition_func =
1439 udf_get_pblock_virt15;
c82a1275 1440 } else {
4b11111a
MS
1441 map->s_partition_type =
1442 UDF_VIRTUAL_MAP20;
1443 map->s_partition_func =
1444 udf_get_pblock_virt20;
1da177e4 1445 }
4b11111a
MS
1446 } else if (!strncmp(upm2->partIdent.ident,
1447 UDF_ID_SPARABLE,
1448 strlen(UDF_ID_SPARABLE))) {
d759bfa4
JK
1449 ret = udf_load_sparable_map(sb, map,
1450 (struct sparablePartitionMap *)gpm);
1451 if (ret < 0)
1df2ae31 1452 goto out_bh;
bfb257a5
JK
1453 } else if (!strncmp(upm2->partIdent.ident,
1454 UDF_ID_METADATA,
1455 strlen(UDF_ID_METADATA))) {
1456 struct udf_meta_data *mdata =
1457 &map->s_type_specific.s_metadata;
1458 struct metadataPartitionMap *mdm =
1459 (struct metadataPartitionMap *)
1460 &(lvd->partitionMaps[offset]);
fcbf7637 1461 udf_debug("Parsing Logical vol part %d type %u id=%s\n",
a983f368 1462 i, type, UDF_ID_METADATA);
bfb257a5
JK
1463
1464 map->s_partition_type = UDF_METADATA_MAP25;
1465 map->s_partition_func = udf_get_pblock_meta25;
1466
1467 mdata->s_meta_file_loc =
1468 le32_to_cpu(mdm->metadataFileLoc);
1469 mdata->s_mirror_file_loc =
1470 le32_to_cpu(mdm->metadataMirrorFileLoc);
1471 mdata->s_bitmap_file_loc =
1472 le32_to_cpu(mdm->metadataBitmapFileLoc);
1473 mdata->s_alloc_unit_size =
1474 le32_to_cpu(mdm->allocUnitSize);
1475 mdata->s_align_unit_size =
1476 le16_to_cpu(mdm->alignUnitSize);
ed47a7d0
JK
1477 if (mdm->flags & 0x01)
1478 mdata->s_flags |= MF_DUPLICATE_MD;
bfb257a5
JK
1479
1480 udf_debug("Metadata Ident suffix=0x%x\n",
a983f368
JP
1481 le16_to_cpu(*(__le16 *)
1482 mdm->partIdent.identSuffix));
fcbf7637 1483 udf_debug("Metadata part num=%u\n",
a983f368 1484 le16_to_cpu(mdm->partitionNum));
fcbf7637 1485 udf_debug("Metadata part alloc unit size=%u\n",
a983f368 1486 le32_to_cpu(mdm->allocUnitSize));
fcbf7637 1487 udf_debug("Metadata file loc=%u\n",
a983f368 1488 le32_to_cpu(mdm->metadataFileLoc));
fcbf7637 1489 udf_debug("Mirror file loc=%u\n",
a983f368 1490 le32_to_cpu(mdm->metadataMirrorFileLoc));
fcbf7637 1491 udf_debug("Bitmap file loc=%u\n",
a983f368 1492 le32_to_cpu(mdm->metadataBitmapFileLoc));
fcbf7637 1493 udf_debug("Flags: %d %u\n",
ed47a7d0 1494 mdata->s_flags, mdm->flags);
cb00ea35 1495 } else {
3a71fc5d
MS
1496 udf_debug("Unknown ident: %s\n",
1497 upm2->partIdent.ident);
1da177e4
LT
1498 continue;
1499 }
6c79e987
MS
1500 map->s_volumeseqnum = le16_to_cpu(upm2->volSeqNum);
1501 map->s_partition_num = le16_to_cpu(upm2->partitionNum);
1da177e4 1502 }
fcbf7637 1503 udf_debug("Partition (%d:%u) type %u on volume %u\n",
a983f368 1504 i, map->s_partition_num, type, map->s_volumeseqnum);
1da177e4
LT
1505 }
1506
cb00ea35 1507 if (fileset) {
5ca4e4be 1508 struct long_ad *la = (struct long_ad *)&(lvd->logicalVolContentsUse[0]);
1da177e4
LT
1509
1510 *fileset = lelb_to_cpu(la->extLocation);
fcbf7637 1511 udf_debug("FileSet found in LogicalVolDesc at block=%u, partition=%u\n",
a983f368 1512 fileset->logicalBlockNum,
28de7948 1513 fileset->partitionReferenceNum);
1da177e4
LT
1514 }
1515 if (lvd->integritySeqExt.extLength)
1516 udf_load_logicalvolint(sb, leea_to_cpu(lvd->integritySeqExt));
d759bfa4 1517 ret = 0;
4f5edd82
SM
1518
1519 if (!sbi->s_lvid_bh) {
1520 /* We can't generate unique IDs without a valid LVID */
1521 if (sb_rdonly(sb)) {
1522 UDF_SET_FLAG(sb, UDF_FLAG_RW_INCOMPAT);
1523 } else {
1524 udf_warn(sb, "Damaged or missing LVID, forcing "
1525 "readonly mount\n");
1526 ret = -EACCES;
1527 }
1528 }
c0eb31ed
JK
1529out_bh:
1530 brelse(bh);
1531 return ret;
1da177e4
LT
1532}
1533
1534/*
a47241cd 1535 * Find the prevailing Logical Volume Integrity Descriptor.
1da177e4 1536 */
5ca4e4be 1537static void udf_load_logicalvolint(struct super_block *sb, struct kernel_extent_ad loc)
1da177e4 1538{
a47241cd 1539 struct buffer_head *bh, *final_bh;
1da177e4 1540 uint16_t ident;
6c79e987
MS
1541 struct udf_sb_info *sbi = UDF_SB(sb);
1542 struct logicalVolIntegrityDesc *lvid;
a47241cd
AT
1543 int indirections = 0;
1544
1545 while (++indirections <= UDF_MAX_LVID_NESTING) {
1546 final_bh = NULL;
1547 while (loc.extLength > 0 &&
1548 (bh = udf_read_tagged(sb, loc.extLocation,
1549 loc.extLocation, &ident))) {
1550 if (ident != TAG_IDENT_LVID) {
1551 brelse(bh);
1552 break;
1553 }
1554
1555 brelse(final_bh);
1556 final_bh = bh;
1da177e4 1557
a47241cd
AT
1558 loc.extLength -= sb->s_blocksize;
1559 loc.extLocation++;
1560 }
cb00ea35 1561
a47241cd
AT
1562 if (!final_bh)
1563 return;
cb00ea35 1564
a47241cd
AT
1565 brelse(sbi->s_lvid_bh);
1566 sbi->s_lvid_bh = final_bh;
1567
1568 lvid = (struct logicalVolIntegrityDesc *)final_bh->b_data;
1569 if (lvid->nextIntegrityExt.extLength == 0)
1570 return;
1571
1572 loc = leea_to_cpu(lvid->nextIntegrityExt);
1da177e4 1573 }
a47241cd
AT
1574
1575 udf_warn(sb, "Too many LVID indirections (max %u), ignoring.\n",
1576 UDF_MAX_LVID_NESTING);
1577 brelse(sbi->s_lvid_bh);
1578 sbi->s_lvid_bh = NULL;
1da177e4
LT
1579}
1580
7b78fd02
JK
1581/*
1582 * Step for reallocation of table of partition descriptor sequence numbers.
1583 * Must be power of 2.
1584 */
1585#define PART_DESC_ALLOC_STEP 32
1586
ee4af50c
JK
1587struct part_desc_seq_scan_data {
1588 struct udf_vds_record rec;
1589 u32 partnum;
1590};
1591
7b78fd02
JK
1592struct desc_seq_scan_data {
1593 struct udf_vds_record vds[VDS_POS_LENGTH];
1594 unsigned int size_part_descs;
ee4af50c
JK
1595 unsigned int num_part_descs;
1596 struct part_desc_seq_scan_data *part_descs_loc;
7b78fd02
JK
1597};
1598
1599static struct udf_vds_record *handle_partition_descriptor(
1600 struct buffer_head *bh,
1601 struct desc_seq_scan_data *data)
1602{
1603 struct partitionDesc *desc = (struct partitionDesc *)bh->b_data;
1604 int partnum;
ee4af50c 1605 int i;
7b78fd02
JK
1606
1607 partnum = le16_to_cpu(desc->partitionNumber);
ee4af50c
JK
1608 for (i = 0; i < data->num_part_descs; i++)
1609 if (partnum == data->part_descs_loc[i].partnum)
1610 return &(data->part_descs_loc[i].rec);
1611 if (data->num_part_descs >= data->size_part_descs) {
1612 struct part_desc_seq_scan_data *new_loc;
7b78fd02
JK
1613 unsigned int new_size = ALIGN(partnum, PART_DESC_ALLOC_STEP);
1614
6396bb22 1615 new_loc = kcalloc(new_size, sizeof(*new_loc), GFP_KERNEL);
7b78fd02
JK
1616 if (!new_loc)
1617 return ERR_PTR(-ENOMEM);
1618 memcpy(new_loc, data->part_descs_loc,
1619 data->size_part_descs * sizeof(*new_loc));
1620 kfree(data->part_descs_loc);
1621 data->part_descs_loc = new_loc;
1622 data->size_part_descs = new_size;
1623 }
ee4af50c 1624 return &(data->part_descs_loc[data->num_part_descs++].rec);
7b78fd02
JK
1625}
1626
1627
1628static struct udf_vds_record *get_volume_descriptor_record(uint16_t ident,
1629 struct buffer_head *bh, struct desc_seq_scan_data *data)
18cf4781
JK
1630{
1631 switch (ident) {
1632 case TAG_IDENT_PVD: /* ISO 13346 3/10.1 */
7b78fd02 1633 return &(data->vds[VDS_POS_PRIMARY_VOL_DESC]);
18cf4781 1634 case TAG_IDENT_IUVD: /* ISO 13346 3/10.4 */
7b78fd02 1635 return &(data->vds[VDS_POS_IMP_USE_VOL_DESC]);
18cf4781 1636 case TAG_IDENT_LVD: /* ISO 13346 3/10.6 */
7b78fd02 1637 return &(data->vds[VDS_POS_LOGICAL_VOL_DESC]);
18cf4781 1638 case TAG_IDENT_USD: /* ISO 13346 3/10.8 */
7b78fd02
JK
1639 return &(data->vds[VDS_POS_UNALLOC_SPACE_DESC]);
1640 case TAG_IDENT_PD: /* ISO 13346 3/10.5 */
1641 return handle_partition_descriptor(bh, data);
18cf4781
JK
1642 }
1643 return NULL;
1644}
e7a4eb86 1645
1da177e4 1646/*
d759bfa4
JK
1647 * Process a main/reserve volume descriptor sequence.
1648 * @block First block of first extent of the sequence.
1649 * @lastblock Lastblock of first extent of the sequence.
1650 * @fileset There we store extent containing root fileset
1da177e4 1651 *
d759bfa4
JK
1652 * Returns <0 on error, 0 on success. -EAGAIN is special - try next descriptor
1653 * sequence
1da177e4 1654 */
d759bfa4
JK
1655static noinline int udf_process_sequence(
1656 struct super_block *sb,
1657 sector_t block, sector_t lastblock,
1658 struct kernel_lb_addr *fileset)
1da177e4
LT
1659{
1660 struct buffer_head *bh = NULL;
4b11111a 1661 struct udf_vds_record *curr;
1da177e4
LT
1662 struct generic_desc *gd;
1663 struct volDescPtr *vdp;
2b8f9421 1664 bool done = false;
1da177e4
LT
1665 uint32_t vdsn;
1666 uint16_t ident;
d759bfa4 1667 int ret;
e7a4eb86 1668 unsigned int indirections = 0;
7b78fd02
JK
1669 struct desc_seq_scan_data data;
1670 unsigned int i;
1671
1672 memset(data.vds, 0, sizeof(struct udf_vds_record) * VDS_POS_LENGTH);
1673 data.size_part_descs = PART_DESC_ALLOC_STEP;
ee4af50c 1674 data.num_part_descs = 0;
6396bb22
KC
1675 data.part_descs_loc = kcalloc(data.size_part_descs,
1676 sizeof(*data.part_descs_loc),
1677 GFP_KERNEL);
7b78fd02
JK
1678 if (!data.part_descs_loc)
1679 return -ENOMEM;
1da177e4 1680
c0eb31ed
JK
1681 /*
1682 * Read the main descriptor sequence and find which descriptors
1683 * are in it.
1684 */
cb00ea35 1685 for (; (!done && block <= lastblock); block++) {
1da177e4 1686 bh = udf_read_tagged(sb, block, block, &ident);
67621675
JK
1687 if (!bh)
1688 break;
1da177e4
LT
1689
1690 /* Process each descriptor (ISO 13346 3/8.3-8.4) */
1691 gd = (struct generic_desc *)bh->b_data;
1692 vdsn = le32_to_cpu(gd->volDescSeqNum);
cb00ea35 1693 switch (ident) {
28de7948 1694 case TAG_IDENT_VDP: /* ISO 13346 3/10.3 */
7b568cba
JK
1695 if (++indirections > UDF_MAX_TD_NESTING) {
1696 udf_err(sb, "too many Volume Descriptor "
1697 "Pointers (max %u supported)\n",
1698 UDF_MAX_TD_NESTING);
1699 brelse(bh);
a7be300d
JK
1700 ret = -EIO;
1701 goto out;
cb00ea35 1702 }
7b568cba
JK
1703
1704 vdp = (struct volDescPtr *)bh->b_data;
1705 block = le32_to_cpu(vdp->nextVolDescSeqExt.extLocation);
1706 lastblock = le32_to_cpu(
1707 vdp->nextVolDescSeqExt.extLength) >>
1708 sb->s_blocksize_bits;
1709 lastblock += block - 1;
1710 /* For loop is going to increment 'block' again */
1711 block--;
cb00ea35 1712 break;
18cf4781 1713 case TAG_IDENT_PVD: /* ISO 13346 3/10.1 */
28de7948 1714 case TAG_IDENT_IUVD: /* ISO 13346 3/10.4 */
18cf4781
JK
1715 case TAG_IDENT_LVD: /* ISO 13346 3/10.6 */
1716 case TAG_IDENT_USD: /* ISO 13346 3/10.8 */
7b78fd02
JK
1717 case TAG_IDENT_PD: /* ISO 13346 3/10.5 */
1718 curr = get_volume_descriptor_record(ident, bh, &data);
1719 if (IS_ERR(curr)) {
1720 brelse(bh);
a7be300d
JK
1721 ret = PTR_ERR(curr);
1722 goto out;
7b78fd02
JK
1723 }
1724 /* Descriptor we don't care about? */
1725 if (!curr)
1726 break;
4b11111a
MS
1727 if (vdsn >= curr->volDescSeqNum) {
1728 curr->volDescSeqNum = vdsn;
1729 curr->block = block;
cb00ea35
CG
1730 }
1731 break;
28de7948 1732 case TAG_IDENT_TD: /* ISO 13346 3/10.9 */
7b568cba 1733 done = true;
cb00ea35 1734 break;
1da177e4 1735 }
3bf25cb4 1736 brelse(bh);
1da177e4 1737 }
c0eb31ed
JK
1738 /*
1739 * Now read interesting descriptors again and process them
1740 * in a suitable order
1741 */
7b78fd02 1742 if (!data.vds[VDS_POS_PRIMARY_VOL_DESC].block) {
78ace70c 1743 udf_err(sb, "Primary Volume Descriptor not found!\n");
a7be300d
JK
1744 ret = -EAGAIN;
1745 goto out;
d759bfa4 1746 }
7b78fd02 1747 ret = udf_load_pvoldesc(sb, data.vds[VDS_POS_PRIMARY_VOL_DESC].block);
d759bfa4 1748 if (ret < 0)
a7be300d 1749 goto out;
d759bfa4 1750
7b78fd02 1751 if (data.vds[VDS_POS_LOGICAL_VOL_DESC].block) {
d759bfa4 1752 ret = udf_load_logicalvol(sb,
7b78fd02
JK
1753 data.vds[VDS_POS_LOGICAL_VOL_DESC].block,
1754 fileset);
d759bfa4 1755 if (ret < 0)
a7be300d 1756 goto out;
c0eb31ed 1757 }
165923fa 1758
7b78fd02 1759 /* Now handle prevailing Partition Descriptors */
ee4af50c
JK
1760 for (i = 0; i < data.num_part_descs; i++) {
1761 ret = udf_load_partdesc(sb, data.part_descs_loc[i].rec.block);
1762 if (ret < 0)
a7be300d 1763 goto out;
1da177e4 1764 }
a7be300d
JK
1765 ret = 0;
1766out:
1767 kfree(data.part_descs_loc);
1768 return ret;
1da177e4
LT
1769}
1770
d759bfa4
JK
1771/*
1772 * Load Volume Descriptor Sequence described by anchor in bh
1773 *
1774 * Returns <0 on error, 0 on success
1775 */
40346005
JK
1776static int udf_load_sequence(struct super_block *sb, struct buffer_head *bh,
1777 struct kernel_lb_addr *fileset)
1da177e4 1778{
40346005 1779 struct anchorVolDescPtr *anchor;
d759bfa4
JK
1780 sector_t main_s, main_e, reserve_s, reserve_e;
1781 int ret;
1da177e4 1782
40346005
JK
1783 anchor = (struct anchorVolDescPtr *)bh->b_data;
1784
1785 /* Locate the main sequence */
1786 main_s = le32_to_cpu(anchor->mainVolDescSeqExt.extLocation);
1787 main_e = le32_to_cpu(anchor->mainVolDescSeqExt.extLength);
1788 main_e = main_e >> sb->s_blocksize_bits;
91c9c9ec 1789 main_e += main_s - 1;
40346005
JK
1790
1791 /* Locate the reserve sequence */
1792 reserve_s = le32_to_cpu(anchor->reserveVolDescSeqExt.extLocation);
1793 reserve_e = le32_to_cpu(anchor->reserveVolDescSeqExt.extLength);
1794 reserve_e = reserve_e >> sb->s_blocksize_bits;
91c9c9ec 1795 reserve_e += reserve_s - 1;
40346005
JK
1796
1797 /* Process the main & reserve sequences */
1798 /* responsible for finding the PartitionDesc(s) */
d759bfa4
JK
1799 ret = udf_process_sequence(sb, main_s, main_e, fileset);
1800 if (ret != -EAGAIN)
1801 return ret;
bff943af 1802 udf_sb_free_partitions(sb);
d759bfa4
JK
1803 ret = udf_process_sequence(sb, reserve_s, reserve_e, fileset);
1804 if (ret < 0) {
1805 udf_sb_free_partitions(sb);
1806 /* No sequence was OK, return -EIO */
1807 if (ret == -EAGAIN)
1808 ret = -EIO;
1809 }
1810 return ret;
1da177e4
LT
1811}
1812
40346005
JK
1813/*
1814 * Check whether there is an anchor block in the given block and
1815 * load Volume Descriptor Sequence if so.
d759bfa4
JK
1816 *
1817 * Returns <0 on error, 0 on success, -EAGAIN is special - try next anchor
1818 * block
40346005
JK
1819 */
1820static int udf_check_anchor_block(struct super_block *sb, sector_t block,
1821 struct kernel_lb_addr *fileset)
1197e4df 1822{
40346005
JK
1823 struct buffer_head *bh;
1824 uint16_t ident;
1825 int ret;
1197e4df 1826
40346005
JK
1827 if (UDF_QUERY_FLAG(sb, UDF_FLAG_VARCONV) &&
1828 udf_fixed_to_variable(block) >=
23bcda11 1829 i_size_read(sb->s_bdev->bd_inode) >> sb->s_blocksize_bits)
d759bfa4 1830 return -EAGAIN;
40346005
JK
1831
1832 bh = udf_read_tagged(sb, block, block, &ident);
1833 if (!bh)
d759bfa4 1834 return -EAGAIN;
40346005
JK
1835 if (ident != TAG_IDENT_AVDP) {
1836 brelse(bh);
d759bfa4 1837 return -EAGAIN;
1197e4df 1838 }
40346005
JK
1839 ret = udf_load_sequence(sb, bh, fileset);
1840 brelse(bh);
1841 return ret;
1197e4df
CL
1842}
1843
d759bfa4
JK
1844/*
1845 * Search for an anchor volume descriptor pointer.
1846 *
1847 * Returns < 0 on error, 0 on success. -EAGAIN is special - try next set
1848 * of anchors.
1849 */
1850static int udf_scan_anchors(struct super_block *sb, sector_t *lastblock,
1851 struct kernel_lb_addr *fileset)
1da177e4 1852{
40346005 1853 sector_t last[6];
38b74a53 1854 int i;
40346005
JK
1855 struct udf_sb_info *sbi = UDF_SB(sb);
1856 int last_count = 0;
d759bfa4 1857 int ret;
1da177e4 1858
40346005
JK
1859 /* First try user provided anchor */
1860 if (sbi->s_anchor) {
d759bfa4
JK
1861 ret = udf_check_anchor_block(sb, sbi->s_anchor, fileset);
1862 if (ret != -EAGAIN)
1863 return ret;
40346005
JK
1864 }
1865 /*
1866 * according to spec, anchor is in either:
1867 * block 256
1868 * lastblock-256
1869 * lastblock
1870 * however, if the disc isn't closed, it could be 512.
1871 */
d759bfa4
JK
1872 ret = udf_check_anchor_block(sb, sbi->s_session + 256, fileset);
1873 if (ret != -EAGAIN)
1874 return ret;
40346005
JK
1875 /*
1876 * The trouble is which block is the last one. Drives often misreport
1877 * this so we try various possibilities.
1878 */
d759bfa4
JK
1879 last[last_count++] = *lastblock;
1880 if (*lastblock >= 1)
1881 last[last_count++] = *lastblock - 1;
1882 last[last_count++] = *lastblock + 1;
1883 if (*lastblock >= 2)
1884 last[last_count++] = *lastblock - 2;
1885 if (*lastblock >= 150)
1886 last[last_count++] = *lastblock - 150;
1887 if (*lastblock >= 152)
1888 last[last_count++] = *lastblock - 152;
1da177e4 1889
40346005 1890 for (i = 0; i < last_count; i++) {
23bcda11 1891 if (last[i] >= i_size_read(sb->s_bdev->bd_inode) >>
40346005 1892 sb->s_blocksize_bits)
28f7c4d4 1893 continue;
d759bfa4
JK
1894 ret = udf_check_anchor_block(sb, last[i], fileset);
1895 if (ret != -EAGAIN) {
1896 if (!ret)
1897 *lastblock = last[i];
1898 return ret;
1899 }
40346005 1900 if (last[i] < 256)
28f7c4d4 1901 continue;
d759bfa4
JK
1902 ret = udf_check_anchor_block(sb, last[i] - 256, fileset);
1903 if (ret != -EAGAIN) {
1904 if (!ret)
1905 *lastblock = last[i];
1906 return ret;
1907 }
40346005 1908 }
28f7c4d4 1909
40346005 1910 /* Finally try block 512 in case media is open */
d759bfa4 1911 return udf_check_anchor_block(sb, sbi->s_session + 512, fileset);
40346005 1912}
28f7c4d4 1913
40346005
JK
1914/*
1915 * Find an anchor volume descriptor and load Volume Descriptor Sequence from
1916 * area specified by it. The function expects sbi->s_lastblock to be the last
1917 * block on the media.
1918 *
d759bfa4
JK
1919 * Return <0 on error, 0 if anchor found. -EAGAIN is special meaning anchor
1920 * was not found.
40346005
JK
1921 */
1922static int udf_find_anchor(struct super_block *sb,
1923 struct kernel_lb_addr *fileset)
1924{
40346005 1925 struct udf_sb_info *sbi = UDF_SB(sb);
d759bfa4
JK
1926 sector_t lastblock = sbi->s_last_block;
1927 int ret;
28f7c4d4 1928
d759bfa4
JK
1929 ret = udf_scan_anchors(sb, &lastblock, fileset);
1930 if (ret != -EAGAIN)
40346005 1931 goto out;
1da177e4 1932
40346005
JK
1933 /* No anchor found? Try VARCONV conversion of block numbers */
1934 UDF_SET_FLAG(sb, UDF_FLAG_VARCONV);
d759bfa4 1935 lastblock = udf_variable_to_fixed(sbi->s_last_block);
40346005 1936 /* Firstly, we try to not convert number of the last block */
d759bfa4
JK
1937 ret = udf_scan_anchors(sb, &lastblock, fileset);
1938 if (ret != -EAGAIN)
40346005 1939 goto out;
1da177e4 1940
d759bfa4 1941 lastblock = sbi->s_last_block;
40346005 1942 /* Secondly, we try with converted number of the last block */
d759bfa4
JK
1943 ret = udf_scan_anchors(sb, &lastblock, fileset);
1944 if (ret < 0) {
40346005
JK
1945 /* VARCONV didn't help. Clear it. */
1946 UDF_CLEAR_FLAG(sb, UDF_FLAG_VARCONV);
1da177e4 1947 }
40346005 1948out:
d759bfa4
JK
1949 if (ret == 0)
1950 sbi->s_last_block = lastblock;
1951 return ret;
40346005 1952}
1da177e4 1953
40346005
JK
1954/*
1955 * Check Volume Structure Descriptor, find Anchor block and load Volume
d759bfa4
JK
1956 * Descriptor Sequence.
1957 *
1958 * Returns < 0 on error, 0 on success. -EAGAIN is special meaning anchor
1959 * block was not found.
40346005
JK
1960 */
1961static int udf_load_vrs(struct super_block *sb, struct udf_options *uopt,
1962 int silent, struct kernel_lb_addr *fileset)
1963{
1964 struct udf_sb_info *sbi = UDF_SB(sb);
ba54aef0 1965 int nsr = 0;
d759bfa4 1966 int ret;
40346005
JK
1967
1968 if (!sb_set_blocksize(sb, uopt->blocksize)) {
1969 if (!silent)
78ace70c 1970 udf_warn(sb, "Bad block size\n");
d759bfa4 1971 return -EINVAL;
40346005
JK
1972 }
1973 sbi->s_last_block = uopt->lastblock;
1974 if (!uopt->novrs) {
1975 /* Check that it is NSR02 compliant */
ba54aef0
SM
1976 nsr = udf_check_vsd(sb);
1977 if (!nsr) {
40346005 1978 if (!silent)
78ace70c 1979 udf_warn(sb, "No VRS found\n");
70f16cef 1980 return -EINVAL;
40346005 1981 }
ba54aef0 1982 if (nsr == -1)
44499602
PF
1983 udf_debug("Failed to read sector at offset %d. "
1984 "Assuming open disc. Skipping validity "
1985 "check\n", VSD_FIRST_SECTOR_OFFSET);
40346005
JK
1986 if (!sbi->s_last_block)
1987 sbi->s_last_block = udf_get_last_block(sb);
1988 } else {
1989 udf_debug("Validity check skipped because of novrs option\n");
28f7c4d4 1990 }
1da177e4 1991
40346005
JK
1992 /* Look for anchor block and load Volume Descriptor Sequence */
1993 sbi->s_anchor = uopt->anchor;
d759bfa4
JK
1994 ret = udf_find_anchor(sb, fileset);
1995 if (ret < 0) {
1996 if (!silent && ret == -EAGAIN)
78ace70c 1997 udf_warn(sb, "No anchor found\n");
d759bfa4 1998 return ret;
40346005 1999 }
d759bfa4 2000 return 0;
1da177e4
LT
2001}
2002
ebbd5e99
SM
2003static void udf_finalize_lvid(struct logicalVolIntegrityDesc *lvid)
2004{
2005 struct timespec64 ts;
2006
2007 ktime_get_real_ts64(&ts);
2008 udf_time_to_disk_stamp(&lvid->recordingDateAndTime, ts);
2009 lvid->descTag.descCRC = cpu_to_le16(
2010 crc_itu_t(0, (char *)lvid + sizeof(struct tag),
2011 le16_to_cpu(lvid->descTag.descCRCLength)));
2012 lvid->descTag.tagChecksum = udf_tag_checksum(&lvid->descTag);
2013}
2014
1da177e4
LT
2015static void udf_open_lvid(struct super_block *sb)
2016{
6c79e987
MS
2017 struct udf_sb_info *sbi = UDF_SB(sb);
2018 struct buffer_head *bh = sbi->s_lvid_bh;
165923fa
MS
2019 struct logicalVolIntegrityDesc *lvid;
2020 struct logicalVolIntegrityDescImpUse *lvidiu;
146bca72 2021
165923fa
MS
2022 if (!bh)
2023 return;
165923fa 2024 lvid = (struct logicalVolIntegrityDesc *)bh->b_data;
69d75671
JK
2025 lvidiu = udf_sb_lvidiu(sb);
2026 if (!lvidiu)
2027 return;
165923fa 2028
69d75671 2029 mutex_lock(&sbi->s_alloc_mutex);
165923fa
MS
2030 lvidiu->impIdent.identSuffix[0] = UDF_OS_CLASS_UNIX;
2031 lvidiu->impIdent.identSuffix[1] = UDF_OS_ID_LINUX;
b72e632c
JK
2032 if (le32_to_cpu(lvid->integrityType) == LVID_INTEGRITY_TYPE_CLOSE)
2033 lvid->integrityType = cpu_to_le32(LVID_INTEGRITY_TYPE_OPEN);
2034 else
2035 UDF_SET_FLAG(sb, UDF_FLAG_INCONSISTENT);
165923fa 2036
ebbd5e99 2037 udf_finalize_lvid(lvid);
165923fa 2038 mark_buffer_dirty(bh);
146bca72 2039 sbi->s_lvid_dirty = 0;
949f4a7c 2040 mutex_unlock(&sbi->s_alloc_mutex);
9734c971
JK
2041 /* Make opening of filesystem visible on the media immediately */
2042 sync_dirty_buffer(bh);
1da177e4
LT
2043}
2044
2045static void udf_close_lvid(struct super_block *sb)
2046{
6c79e987
MS
2047 struct udf_sb_info *sbi = UDF_SB(sb);
2048 struct buffer_head *bh = sbi->s_lvid_bh;
2049 struct logicalVolIntegrityDesc *lvid;
165923fa 2050 struct logicalVolIntegrityDescImpUse *lvidiu;
28de7948 2051
6c79e987
MS
2052 if (!bh)
2053 return;
69d75671
JK
2054 lvid = (struct logicalVolIntegrityDesc *)bh->b_data;
2055 lvidiu = udf_sb_lvidiu(sb);
2056 if (!lvidiu)
2057 return;
6c79e987 2058
949f4a7c 2059 mutex_lock(&sbi->s_alloc_mutex);
165923fa
MS
2060 lvidiu->impIdent.identSuffix[0] = UDF_OS_CLASS_UNIX;
2061 lvidiu->impIdent.identSuffix[1] = UDF_OS_ID_LINUX;
165923fa
MS
2062 if (UDF_MAX_WRITE_VERSION > le16_to_cpu(lvidiu->maxUDFWriteRev))
2063 lvidiu->maxUDFWriteRev = cpu_to_le16(UDF_MAX_WRITE_VERSION);
2064 if (sbi->s_udfrev > le16_to_cpu(lvidiu->minUDFReadRev))
2065 lvidiu->minUDFReadRev = cpu_to_le16(sbi->s_udfrev);
2066 if (sbi->s_udfrev > le16_to_cpu(lvidiu->minUDFWriteRev))
2067 lvidiu->minUDFWriteRev = cpu_to_le16(sbi->s_udfrev);
b72e632c
JK
2068 if (!UDF_QUERY_FLAG(sb, UDF_FLAG_INCONSISTENT))
2069 lvid->integrityType = cpu_to_le32(LVID_INTEGRITY_TYPE_CLOSE);
165923fa 2070
853a0c25
JK
2071 /*
2072 * We set buffer uptodate unconditionally here to avoid spurious
2073 * warnings from mark_buffer_dirty() when previous EIO has marked
2074 * the buffer as !uptodate
2075 */
2076 set_buffer_uptodate(bh);
ebbd5e99 2077 udf_finalize_lvid(lvid);
165923fa 2078 mark_buffer_dirty(bh);
146bca72 2079 sbi->s_lvid_dirty = 0;
949f4a7c 2080 mutex_unlock(&sbi->s_alloc_mutex);
9734c971
JK
2081 /* Make closing of filesystem visible on the media immediately */
2082 sync_dirty_buffer(bh);
1da177e4
LT
2083}
2084
d664b6af
JK
2085u64 lvid_get_unique_id(struct super_block *sb)
2086{
2087 struct buffer_head *bh;
2088 struct udf_sb_info *sbi = UDF_SB(sb);
2089 struct logicalVolIntegrityDesc *lvid;
2090 struct logicalVolHeaderDesc *lvhd;
2091 u64 uniqueID;
2092 u64 ret;
2093
2094 bh = sbi->s_lvid_bh;
2095 if (!bh)
2096 return 0;
2097
2098 lvid = (struct logicalVolIntegrityDesc *)bh->b_data;
2099 lvhd = (struct logicalVolHeaderDesc *)lvid->logicalVolContentsUse;
2100
2101 mutex_lock(&sbi->s_alloc_mutex);
2102 ret = uniqueID = le64_to_cpu(lvhd->uniqueID);
2103 if (!(++uniqueID & 0xFFFFFFFF))
2104 uniqueID += 16;
2105 lvhd->uniqueID = cpu_to_le64(uniqueID);
e8b42747 2106 udf_updated_lvid(sb);
d664b6af 2107 mutex_unlock(&sbi->s_alloc_mutex);
d664b6af
JK
2108
2109 return ret;
1da177e4
LT
2110}
2111
1da177e4
LT
2112static int udf_fill_super(struct super_block *sb, void *options, int silent)
2113{
d759bfa4 2114 int ret = -EINVAL;
cb00ea35 2115 struct inode *inode = NULL;
1da177e4 2116 struct udf_options uopt;
5ca4e4be 2117 struct kernel_lb_addr rootdir, fileset;
1da177e4 2118 struct udf_sb_info *sbi;
9181f8bf 2119 bool lvid_open = false;
1da177e4
LT
2120
2121 uopt.flags = (1 << UDF_FLAG_USE_AD_IN_ICB) | (1 << UDF_FLAG_STRICT);
116e5258
JK
2122 /* By default we'll use overflow[ug]id when UDF inode [ug]id == -1 */
2123 uopt.uid = make_kuid(current_user_ns(), overflowuid);
2124 uopt.gid = make_kgid(current_user_ns(), overflowgid);
1da177e4 2125 uopt.umask = 0;
87bc730c
MS
2126 uopt.fmode = UDF_INVALID_MODE;
2127 uopt.dmode = UDF_INVALID_MODE;
785dffe1 2128 uopt.nls_map = NULL;
1da177e4 2129
033c9da0 2130 sbi = kzalloc(sizeof(*sbi), GFP_KERNEL);
9db9f9e3 2131 if (!sbi)
1da177e4 2132 return -ENOMEM;
28de7948 2133
1da177e4 2134 sb->s_fs_info = sbi;
1da177e4 2135
1e7933de 2136 mutex_init(&sbi->s_alloc_mutex);
1da177e4 2137
6da80894 2138 if (!udf_parse_options((char *)options, &uopt, false))
fdf2657b 2139 goto parse_options_failure;
1da177e4
LT
2140
2141 if (uopt.flags & (1 << UDF_FLAG_UTF8) &&
cb00ea35 2142 uopt.flags & (1 << UDF_FLAG_NLS_MAP)) {
8076c363 2143 udf_err(sb, "utf8 cannot be combined with iocharset\n");
fdf2657b 2144 goto parse_options_failure;
1da177e4 2145 }
cb00ea35 2146 if ((uopt.flags & (1 << UDF_FLAG_NLS_MAP)) && !uopt.nls_map) {
1da177e4
LT
2147 uopt.nls_map = load_nls_default();
2148 if (!uopt.nls_map)
2149 uopt.flags &= ~(1 << UDF_FLAG_NLS_MAP);
2150 else
2151 udf_debug("Using default NLS map\n");
2152 }
1da177e4
LT
2153 if (!(uopt.flags & (1 << UDF_FLAG_NLS_MAP)))
2154 uopt.flags |= (1 << UDF_FLAG_UTF8);
2155
2156 fileset.logicalBlockNum = 0xFFFFFFFF;
2157 fileset.partitionReferenceNum = 0xFFFF;
2158
6c79e987
MS
2159 sbi->s_flags = uopt.flags;
2160 sbi->s_uid = uopt.uid;
2161 sbi->s_gid = uopt.gid;
2162 sbi->s_umask = uopt.umask;
7ac9bcd5
MS
2163 sbi->s_fmode = uopt.fmode;
2164 sbi->s_dmode = uopt.dmode;
6c79e987 2165 sbi->s_nls_map = uopt.nls_map;
c03cad24 2166 rwlock_init(&sbi->s_cred_lock);
1da177e4 2167
cb00ea35 2168 if (uopt.session == 0xFFFFFFFF)
6c79e987 2169 sbi->s_session = udf_get_last_session(sb);
1da177e4 2170 else
6c79e987 2171 sbi->s_session = uopt.session;
1da177e4 2172
6c79e987 2173 udf_debug("Multi-session=%d\n", sbi->s_session);
1da177e4 2174
40346005
JK
2175 /* Fill in the rest of the superblock */
2176 sb->s_op = &udf_sb_ops;
2177 sb->s_export_op = &udf_export_ops;
123e9caf 2178
40346005
JK
2179 sb->s_magic = UDF_SUPER_MAGIC;
2180 sb->s_time_gran = 1000;
2181
1197e4df 2182 if (uopt.flags & (1 << UDF_FLAG_BLOCKSIZE_SET)) {
40346005 2183 ret = udf_load_vrs(sb, &uopt, silent, &fileset);
1197e4df 2184 } else {
e1defc4f 2185 uopt.blocksize = bdev_logical_block_size(sb->s_bdev);
70f16cef 2186 while (uopt.blocksize <= 4096) {
40346005 2187 ret = udf_load_vrs(sb, &uopt, silent, &fileset);
70f16cef
FF
2188 if (ret < 0) {
2189 if (!silent && ret != -EACCES) {
fcbf7637 2190 pr_notice("Scanning with blocksize %u failed\n",
70f16cef
FF
2191 uopt.blocksize);
2192 }
2193 brelse(sbi->s_lvid_bh);
2194 sbi->s_lvid_bh = NULL;
2195 /*
2196 * EACCES is special - we want to propagate to
2197 * upper layers that we cannot handle RW mount.
2198 */
2199 if (ret == -EACCES)
2200 break;
2201 } else
2202 break;
2203
2204 uopt.blocksize <<= 1;
1197e4df 2205 }
1da177e4 2206 }
d759bfa4
JK
2207 if (ret < 0) {
2208 if (ret == -EAGAIN) {
2209 udf_warn(sb, "No partition found (1)\n");
2210 ret = -EINVAL;
2211 }
1da177e4
LT
2212 goto error_out;
2213 }
2214
fcbf7637 2215 udf_debug("Lastblock=%u\n", sbi->s_last_block);
1da177e4 2216
6c79e987 2217 if (sbi->s_lvid_bh) {
4b11111a 2218 struct logicalVolIntegrityDescImpUse *lvidiu =
69d75671
JK
2219 udf_sb_lvidiu(sb);
2220 uint16_t minUDFReadRev;
2221 uint16_t minUDFWriteRev;
1da177e4 2222
69d75671
JK
2223 if (!lvidiu) {
2224 ret = -EINVAL;
2225 goto error_out;
2226 }
2227 minUDFReadRev = le16_to_cpu(lvidiu->minUDFReadRev);
2228 minUDFWriteRev = le16_to_cpu(lvidiu->minUDFWriteRev);
cb00ea35 2229 if (minUDFReadRev > UDF_MAX_READ_VERSION) {
78ace70c 2230 udf_err(sb, "minUDFReadRev=%x (max is %x)\n",
69d75671 2231 minUDFReadRev,
78ace70c 2232 UDF_MAX_READ_VERSION);
d759bfa4 2233 ret = -EINVAL;
1da177e4 2234 goto error_out;
a9ad01bc
JK
2235 } else if (minUDFWriteRev > UDF_MAX_WRITE_VERSION) {
2236 if (!sb_rdonly(sb)) {
2237 ret = -EACCES;
2238 goto error_out;
2239 }
2240 UDF_SET_FLAG(sb, UDF_FLAG_RW_INCOMPAT);
e729eac6 2241 }
1da177e4 2242
6c79e987 2243 sbi->s_udfrev = minUDFWriteRev;
1da177e4
LT
2244
2245 if (minUDFReadRev >= UDF_VERS_USE_EXTENDED_FE)
2246 UDF_SET_FLAG(sb, UDF_FLAG_USE_EXTENDED_FE);
2247 if (minUDFReadRev >= UDF_VERS_USE_STREAMS)
2248 UDF_SET_FLAG(sb, UDF_FLAG_USE_STREAMS);
2249 }
2250
6c79e987 2251 if (!sbi->s_partitions) {
78ace70c 2252 udf_warn(sb, "No partition found (2)\n");
d759bfa4 2253 ret = -EINVAL;
1da177e4
LT
2254 goto error_out;
2255 }
2256
4b11111a 2257 if (sbi->s_partmaps[sbi->s_partition].s_partition_flags &
a9ad01bc
JK
2258 UDF_PART_FLAG_READ_ONLY) {
2259 if (!sb_rdonly(sb)) {
2260 ret = -EACCES;
2261 goto error_out;
2262 }
2263 UDF_SET_FLAG(sb, UDF_FLAG_RW_INCOMPAT);
c1a26e7d 2264 }
39b3f6d6 2265
2dee5aac
JK
2266 ret = udf_find_fileset(sb, &fileset, &rootdir);
2267 if (ret < 0) {
78ace70c 2268 udf_warn(sb, "No fileset found\n");
1da177e4
LT
2269 goto error_out;
2270 }
2271
cb00ea35 2272 if (!silent) {
5ca4e4be 2273 struct timestamp ts;
56774805 2274 udf_time_to_disk_stamp(&ts, sbi->s_record_time);
78ace70c
JP
2275 udf_info("Mounting volume '%s', timestamp %04u/%02u/%02u %02u:%02u (%x)\n",
2276 sbi->s_volume_ident,
2277 le16_to_cpu(ts.year), ts.month, ts.day,
56774805 2278 ts.hour, ts.minute, le16_to_cpu(ts.typeAndTimezone));
1da177e4 2279 }
bc98a42c 2280 if (!sb_rdonly(sb)) {
1da177e4 2281 udf_open_lvid(sb);
9181f8bf
JK
2282 lvid_open = true;
2283 }
1da177e4
LT
2284
2285 /* Assign the root inode */
2286 /* assign inodes by physical block number */
2287 /* perhaps it's not extensible enough, but for now ... */
97e961fd 2288 inode = udf_iget(sb, &rootdir);
6d3d5e86 2289 if (IS_ERR(inode)) {
fcbf7637 2290 udf_err(sb, "Error in udf_iget, block=%u, partition=%u\n",
cb00ea35 2291 rootdir.logicalBlockNum, rootdir.partitionReferenceNum);
6d3d5e86 2292 ret = PTR_ERR(inode);
1da177e4
LT
2293 goto error_out;
2294 }
2295
2296 /* Allocate a dentry for the root inode */
48fde701 2297 sb->s_root = d_make_root(inode);
cb00ea35 2298 if (!sb->s_root) {
78ace70c 2299 udf_err(sb, "Couldn't allocate root dentry\n");
d759bfa4 2300 ret = -ENOMEM;
1da177e4
LT
2301 goto error_out;
2302 }
31170b6a 2303 sb->s_maxbytes = MAX_LFS_FILESIZE;
8de52778 2304 sb->s_max_links = UDF_MAX_LINKS;
1da177e4
LT
2305 return 0;
2306
28de7948 2307error_out:
0d454e4a 2308 iput(sbi->s_vat_inode);
fdf2657b 2309parse_options_failure:
785dffe1
CX
2310 if (uopt.nls_map)
2311 unload_nls(uopt.nls_map);
9181f8bf 2312 if (lvid_open)
1da177e4 2313 udf_close_lvid(sb);
6c79e987 2314 brelse(sbi->s_lvid_bh);
bff943af 2315 udf_sb_free_partitions(sb);
1da177e4
LT
2316 kfree(sbi);
2317 sb->s_fs_info = NULL;
28de7948 2318
d759bfa4 2319 return ret;
1da177e4
LT
2320}
2321
8076c363
JP
2322void _udf_err(struct super_block *sb, const char *function,
2323 const char *fmt, ...)
1da177e4 2324{
c2bff36c 2325 struct va_format vaf;
1da177e4
LT
2326 va_list args;
2327
1da177e4 2328 va_start(args, fmt);
c2bff36c
JP
2329
2330 vaf.fmt = fmt;
2331 vaf.va = &args;
2332
2333 pr_err("error (device %s): %s: %pV", sb->s_id, function, &vaf);
2334
1da177e4 2335 va_end(args);
1da177e4
LT
2336}
2337
a40ecd7b
JP
2338void _udf_warn(struct super_block *sb, const char *function,
2339 const char *fmt, ...)
1da177e4 2340{
c2bff36c 2341 struct va_format vaf;
1da177e4
LT
2342 va_list args;
2343
cb00ea35 2344 va_start(args, fmt);
c2bff36c
JP
2345
2346 vaf.fmt = fmt;
2347 vaf.va = &args;
2348
2349 pr_warn("warning (device %s): %s: %pV", sb->s_id, function, &vaf);
2350
1da177e4 2351 va_end(args);
1da177e4
LT
2352}
2353
cb00ea35 2354static void udf_put_super(struct super_block *sb)
1da177e4 2355{
6c79e987 2356 struct udf_sb_info *sbi;
1da177e4 2357
6c79e987 2358 sbi = UDF_SB(sb);
6cfd0148 2359
0d454e4a 2360 iput(sbi->s_vat_inode);
1da177e4 2361 if (UDF_QUERY_FLAG(sb, UDF_FLAG_NLS_MAP))
6c79e987 2362 unload_nls(sbi->s_nls_map);
bc98a42c 2363 if (!sb_rdonly(sb))
1da177e4 2364 udf_close_lvid(sb);
6c79e987 2365 brelse(sbi->s_lvid_bh);
bff943af 2366 udf_sb_free_partitions(sb);
bbe48dd8 2367 mutex_destroy(&sbi->s_alloc_mutex);
1da177e4
LT
2368 kfree(sb->s_fs_info);
2369 sb->s_fs_info = NULL;
2370}
2371
146bca72
JK
2372static int udf_sync_fs(struct super_block *sb, int wait)
2373{
2374 struct udf_sb_info *sbi = UDF_SB(sb);
2375
2376 mutex_lock(&sbi->s_alloc_mutex);
2377 if (sbi->s_lvid_dirty) {
e8b42747 2378 struct buffer_head *bh = sbi->s_lvid_bh;
52b9666e 2379 struct logicalVolIntegrityDesc *lvid;
e8b42747 2380
52b9666e
JK
2381 lvid = (struct logicalVolIntegrityDesc *)bh->b_data;
2382 udf_finalize_lvid(lvid);
e8b42747 2383
146bca72
JK
2384 /*
2385 * Blockdevice will be synced later so we don't have to submit
2386 * the buffer for IO
2387 */
e8b42747 2388 mark_buffer_dirty(bh);
146bca72
JK
2389 sbi->s_lvid_dirty = 0;
2390 }
2391 mutex_unlock(&sbi->s_alloc_mutex);
2392
2393 return 0;
2394}
2395
cb00ea35 2396static int udf_statfs(struct dentry *dentry, struct kstatfs *buf)
1da177e4 2397{
726c3342 2398 struct super_block *sb = dentry->d_sb;
6c79e987
MS
2399 struct udf_sb_info *sbi = UDF_SB(sb);
2400 struct logicalVolIntegrityDescImpUse *lvidiu;
557f5a14 2401 u64 id = huge_encode_dev(sb->s_bdev->bd_dev);
6c79e987 2402
69d75671 2403 lvidiu = udf_sb_lvidiu(sb);
1da177e4
LT
2404 buf->f_type = UDF_SUPER_MAGIC;
2405 buf->f_bsize = sb->s_blocksize;
6c79e987 2406 buf->f_blocks = sbi->s_partmaps[sbi->s_partition].s_partition_len;
1da177e4
LT
2407 buf->f_bfree = udf_count_free(sb);
2408 buf->f_bavail = buf->f_bfree;
356557be
JK
2409 /*
2410 * Let's pretend each free block is also a free 'inode' since UDF does
2411 * not have separate preallocated table of inodes.
2412 */
6c79e987
MS
2413 buf->f_files = (lvidiu != NULL ? (le32_to_cpu(lvidiu->numFiles) +
2414 le32_to_cpu(lvidiu->numDirs)) : 0)
2415 + buf->f_bfree;
1da177e4 2416 buf->f_ffree = buf->f_bfree;
9fba7056 2417 buf->f_namelen = UDF_NAME_LEN;
6d1349c7 2418 buf->f_fsid = u64_to_fsid(id);
1da177e4
LT
2419
2420 return 0;
2421}
2422
4b11111a
MS
2423static unsigned int udf_count_free_bitmap(struct super_block *sb,
2424 struct udf_bitmap *bitmap)
1da177e4
LT
2425{
2426 struct buffer_head *bh = NULL;
2427 unsigned int accum = 0;
2428 int index;
b490bdd6 2429 udf_pblk_t block = 0, newblock;
5ca4e4be 2430 struct kernel_lb_addr loc;
1da177e4 2431 uint32_t bytes;
1da177e4
LT
2432 uint8_t *ptr;
2433 uint16_t ident;
2434 struct spaceBitmapDesc *bm;
2435
1da177e4 2436 loc.logicalBlockNum = bitmap->s_extPosition;
6c79e987 2437 loc.partitionReferenceNum = UDF_SB(sb)->s_partition;
97e961fd 2438 bh = udf_read_ptagged(sb, &loc, 0, &ident);
1da177e4 2439
cb00ea35 2440 if (!bh) {
78ace70c 2441 udf_err(sb, "udf_count_free failed\n");
1da177e4 2442 goto out;
cb00ea35 2443 } else if (ident != TAG_IDENT_SBD) {
3bf25cb4 2444 brelse(bh);
78ace70c 2445 udf_err(sb, "udf_count_free failed\n");
1da177e4
LT
2446 goto out;
2447 }
2448
2449 bm = (struct spaceBitmapDesc *)bh->b_data;
2450 bytes = le32_to_cpu(bm->numOfBytes);
28de7948
CG
2451 index = sizeof(struct spaceBitmapDesc); /* offset in first block only */
2452 ptr = (uint8_t *)bh->b_data;
1da177e4 2453
cb00ea35 2454 while (bytes > 0) {
01b954a3
MS
2455 u32 cur_bytes = min_t(u32, bytes, sb->s_blocksize - index);
2456 accum += bitmap_weight((const unsigned long *)(ptr + index),
2457 cur_bytes * 8);
2458 bytes -= cur_bytes;
cb00ea35 2459 if (bytes) {
3bf25cb4 2460 brelse(bh);
97e961fd 2461 newblock = udf_get_lb_pblock(sb, &loc, ++block);
1da177e4 2462 bh = udf_tread(sb, newblock);
cb00ea35 2463 if (!bh) {
1da177e4
LT
2464 udf_debug("read failed\n");
2465 goto out;
2466 }
2467 index = 0;
28de7948 2468 ptr = (uint8_t *)bh->b_data;
1da177e4
LT
2469 }
2470 }
3bf25cb4 2471 brelse(bh);
28de7948 2472out:
1da177e4
LT
2473 return accum;
2474}
2475
4b11111a
MS
2476static unsigned int udf_count_free_table(struct super_block *sb,
2477 struct inode *table)
1da177e4
LT
2478{
2479 unsigned int accum = 0;
ff116fc8 2480 uint32_t elen;
5ca4e4be 2481 struct kernel_lb_addr eloc;
1da177e4 2482 int8_t etype;
ff116fc8 2483 struct extent_position epos;
1da177e4 2484
d1668fe3 2485 mutex_lock(&UDF_SB(sb)->s_alloc_mutex);
c0b34438 2486 epos.block = UDF_I(table)->i_location;
ff116fc8
JK
2487 epos.offset = sizeof(struct unallocSpaceEntry);
2488 epos.bh = NULL;
1da177e4 2489
3a71fc5d 2490 while ((etype = udf_next_aext(table, &epos, &eloc, &elen, 1)) != -1)
1da177e4 2491 accum += (elen >> table->i_sb->s_blocksize_bits);
3a71fc5d 2492
3bf25cb4 2493 brelse(epos.bh);
d1668fe3 2494 mutex_unlock(&UDF_SB(sb)->s_alloc_mutex);
1da177e4
LT
2495
2496 return accum;
2497}
cb00ea35
CG
2498
2499static unsigned int udf_count_free(struct super_block *sb)
1da177e4
LT
2500{
2501 unsigned int accum = 0;
a4a8b99e 2502 struct udf_sb_info *sbi = UDF_SB(sb);
6c79e987 2503 struct udf_part_map *map;
a4a8b99e
JK
2504 unsigned int part = sbi->s_partition;
2505 int ptype = sbi->s_partmaps[part].s_partition_type;
2506
2507 if (ptype == UDF_METADATA_MAP25) {
2508 part = sbi->s_partmaps[part].s_type_specific.s_metadata.
2509 s_phys_partition_ref;
2510 } else if (ptype == UDF_VIRTUAL_MAP15 || ptype == UDF_VIRTUAL_MAP20) {
2511 /*
2512 * Filesystems with VAT are append-only and we cannot write to
2513 * them. Let's just report 0 here.
2514 */
2515 return 0;
2516 }
1da177e4 2517
6c79e987 2518 if (sbi->s_lvid_bh) {
4b11111a
MS
2519 struct logicalVolIntegrityDesc *lvid =
2520 (struct logicalVolIntegrityDesc *)
2521 sbi->s_lvid_bh->b_data;
a4a8b99e 2522 if (le32_to_cpu(lvid->numOfPartitions) > part) {
4b11111a 2523 accum = le32_to_cpu(
a4a8b99e 2524 lvid->freeSpaceTable[part]);
1da177e4
LT
2525 if (accum == 0xFFFFFFFF)
2526 accum = 0;
2527 }
2528 }
2529
2530 if (accum)
2531 return accum;
2532
a4a8b99e 2533 map = &sbi->s_partmaps[part];
6c79e987 2534 if (map->s_partition_flags & UDF_PART_FLAG_UNALLOC_BITMAP) {
28de7948 2535 accum += udf_count_free_bitmap(sb,
6c79e987 2536 map->s_uspace.s_bitmap);
1da177e4 2537 }
1da177e4
LT
2538 if (accum)
2539 return accum;
2540
6c79e987 2541 if (map->s_partition_flags & UDF_PART_FLAG_UNALLOC_TABLE) {
28de7948 2542 accum += udf_count_free_table(sb,
6c79e987 2543 map->s_uspace.s_table);
1da177e4 2544 }
1da177e4
LT
2545 return accum;
2546}
54bb60d5
FF
2547
2548MODULE_AUTHOR("Ben Fennema");
2549MODULE_DESCRIPTION("Universal Disk Format Filesystem");
2550MODULE_LICENSE("GPL");
2551module_init(init_udf_fs)
2552module_exit(exit_udf_fs)