5 * Inode handling routines for the OSTA-UDF(tm) filesystem.
8 * This file is distributed under the terms of the GNU General Public
9 * License (GPL). Copies of the GPL can be obtained from:
10 * ftp://prep.ai.mit.edu/pub/gnu/GPL
11 * Each contributing author retains all rights to their own work.
13 * (C) 1998 Dave Boynton
14 * (C) 1998-2004 Ben Fennema
15 * (C) 1999-2000 Stelias Computing Inc
19 * 10/04/98 dgb Added rudimentary directory functions
20 * 10/07/98 Fully working udf_block_map! It works!
21 * 11/25/98 bmap altered to better support extents
22 * 12/06/98 blf partition support in udf_iget, udf_block_map
24 * 12/12/98 rewrote udf_block_map to handle next extents and descs across
25 * block boundaries (which is not actually allowed)
26 * 12/20/98 added support for strategy 4096
27 * 03/07/99 rewrote udf_block_map (again)
28 * New funcs, inode_bmap, udf_next_aext
29 * 04/19/99 Support for writing device EA's for major/minor #
34 #include <linux/module.h>
35 #include <linux/pagemap.h>
36 #include <linux/writeback.h>
37 #include <linux/slab.h>
38 #include <linux/crc-itu-t.h>
39 #include <linux/mpage.h>
40 #include <linux/uio.h>
41 #include <linux/bio.h>
46 #define EXTENT_MERGE_SIZE 5
48 #define FE_MAPPED_PERMS (FE_PERM_U_READ | FE_PERM_U_WRITE | FE_PERM_U_EXEC | \
49 FE_PERM_G_READ | FE_PERM_G_WRITE | FE_PERM_G_EXEC | \
50 FE_PERM_O_READ | FE_PERM_O_WRITE | FE_PERM_O_EXEC)
52 #define FE_DELETE_PERMS (FE_PERM_U_DELETE | FE_PERM_G_DELETE | \
55 static umode_t udf_convert_permissions(struct fileEntry *);
56 static int udf_update_inode(struct inode *, int);
57 static int udf_sync_inode(struct inode *inode);
58 static int udf_alloc_i_data(struct inode *inode, size_t size);
59 static sector_t inode_getblk(struct inode *, sector_t, int *, int *);
60 static int8_t udf_insert_aext(struct inode *, struct extent_position,
61 struct kernel_lb_addr, uint32_t);
62 static void udf_split_extents(struct inode *, int *, int, udf_pblk_t,
63 struct kernel_long_ad *, int *);
64 static void udf_prealloc_extents(struct inode *, int, int,
65 struct kernel_long_ad *, int *);
66 static void udf_merge_extents(struct inode *, struct kernel_long_ad *, int *);
67 static void udf_update_extents(struct inode *, struct kernel_long_ad *, int,
68 int, struct extent_position *);
69 static int udf_get_block(struct inode *, sector_t, struct buffer_head *, int);
71 static void __udf_clear_extent_cache(struct inode *inode)
73 struct udf_inode_info *iinfo = UDF_I(inode);
75 if (iinfo->cached_extent.lstart != -1) {
76 brelse(iinfo->cached_extent.epos.bh);
77 iinfo->cached_extent.lstart = -1;
81 /* Invalidate extent cache */
82 static void udf_clear_extent_cache(struct inode *inode)
84 struct udf_inode_info *iinfo = UDF_I(inode);
86 spin_lock(&iinfo->i_extent_cache_lock);
87 __udf_clear_extent_cache(inode);
88 spin_unlock(&iinfo->i_extent_cache_lock);
91 /* Return contents of extent cache */
92 static int udf_read_extent_cache(struct inode *inode, loff_t bcount,
93 loff_t *lbcount, struct extent_position *pos)
95 struct udf_inode_info *iinfo = UDF_I(inode);
98 spin_lock(&iinfo->i_extent_cache_lock);
99 if ((iinfo->cached_extent.lstart <= bcount) &&
100 (iinfo->cached_extent.lstart != -1)) {
102 *lbcount = iinfo->cached_extent.lstart;
103 memcpy(pos, &iinfo->cached_extent.epos,
104 sizeof(struct extent_position));
109 spin_unlock(&iinfo->i_extent_cache_lock);
113 /* Add extent to extent cache */
114 static void udf_update_extent_cache(struct inode *inode, loff_t estart,
115 struct extent_position *pos)
117 struct udf_inode_info *iinfo = UDF_I(inode);
119 spin_lock(&iinfo->i_extent_cache_lock);
120 /* Invalidate previously cached extent */
121 __udf_clear_extent_cache(inode);
124 memcpy(&iinfo->cached_extent.epos, pos, sizeof(*pos));
125 iinfo->cached_extent.lstart = estart;
126 switch (iinfo->i_alloc_type) {
127 case ICBTAG_FLAG_AD_SHORT:
128 iinfo->cached_extent.epos.offset -= sizeof(struct short_ad);
130 case ICBTAG_FLAG_AD_LONG:
131 iinfo->cached_extent.epos.offset -= sizeof(struct long_ad);
134 spin_unlock(&iinfo->i_extent_cache_lock);
137 void udf_evict_inode(struct inode *inode)
139 struct udf_inode_info *iinfo = UDF_I(inode);
142 if (!is_bad_inode(inode)) {
143 if (!inode->i_nlink) {
145 udf_setsize(inode, 0);
146 udf_update_inode(inode, IS_SYNC(inode));
148 if (iinfo->i_alloc_type != ICBTAG_FLAG_AD_IN_ICB &&
149 inode->i_size != iinfo->i_lenExtents) {
150 udf_warn(inode->i_sb,
151 "Inode %lu (mode %o) has inode size %llu different from extent length %llu. Filesystem need not be standards compliant.\n",
152 inode->i_ino, inode->i_mode,
153 (unsigned long long)inode->i_size,
154 (unsigned long long)iinfo->i_lenExtents);
157 truncate_inode_pages_final(&inode->i_data);
158 invalidate_inode_buffers(inode);
160 kfree(iinfo->i_data);
161 iinfo->i_data = NULL;
162 udf_clear_extent_cache(inode);
164 udf_free_inode(inode);
168 static void udf_write_failed(struct address_space *mapping, loff_t to)
170 struct inode *inode = mapping->host;
171 struct udf_inode_info *iinfo = UDF_I(inode);
172 loff_t isize = inode->i_size;
175 truncate_pagecache(inode, isize);
176 if (iinfo->i_alloc_type != ICBTAG_FLAG_AD_IN_ICB) {
177 down_write(&iinfo->i_data_sem);
178 udf_clear_extent_cache(inode);
179 udf_truncate_extents(inode);
180 up_write(&iinfo->i_data_sem);
185 static int udf_writepages(struct address_space *mapping,
186 struct writeback_control *wbc)
188 return mpage_writepages(mapping, wbc, udf_get_block);
191 static int udf_read_folio(struct file *file, struct folio *folio)
193 return mpage_read_folio(folio, udf_get_block);
196 static void udf_readahead(struct readahead_control *rac)
198 mpage_readahead(rac, udf_get_block);
201 static int udf_write_begin(struct file *file, struct address_space *mapping,
202 loff_t pos, unsigned len,
203 struct page **pagep, void **fsdata)
207 ret = block_write_begin(mapping, pos, len, pagep, udf_get_block);
209 udf_write_failed(mapping, pos + len);
213 static ssize_t udf_direct_IO(struct kiocb *iocb, struct iov_iter *iter)
215 struct file *file = iocb->ki_filp;
216 struct address_space *mapping = file->f_mapping;
217 struct inode *inode = mapping->host;
218 size_t count = iov_iter_count(iter);
221 ret = blockdev_direct_IO(iocb, inode, iter, udf_get_block);
222 if (unlikely(ret < 0 && iov_iter_rw(iter) == WRITE))
223 udf_write_failed(mapping, iocb->ki_pos + count);
227 static sector_t udf_bmap(struct address_space *mapping, sector_t block)
229 return generic_block_bmap(mapping, block, udf_get_block);
232 const struct address_space_operations udf_aops = {
233 .dirty_folio = block_dirty_folio,
234 .invalidate_folio = block_invalidate_folio,
235 .read_folio = udf_read_folio,
236 .readahead = udf_readahead,
237 .writepages = udf_writepages,
238 .write_begin = udf_write_begin,
239 .write_end = generic_write_end,
240 .direct_IO = udf_direct_IO,
242 .migrate_folio = buffer_migrate_folio,
246 * Expand file stored in ICB to a normal one-block-file
248 * This function requires i_data_sem for writing and releases it.
249 * This function requires i_mutex held
251 int udf_expand_file_adinicb(struct inode *inode)
255 struct udf_inode_info *iinfo = UDF_I(inode);
258 WARN_ON_ONCE(!inode_is_locked(inode));
259 if (!iinfo->i_lenAlloc) {
260 if (UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_USE_SHORT_AD))
261 iinfo->i_alloc_type = ICBTAG_FLAG_AD_SHORT;
263 iinfo->i_alloc_type = ICBTAG_FLAG_AD_LONG;
264 /* from now on we have normal address_space methods */
265 inode->i_data.a_ops = &udf_aops;
266 up_write(&iinfo->i_data_sem);
267 mark_inode_dirty(inode);
271 * Release i_data_sem so that we can lock a page - page lock ranks
272 * above i_data_sem. i_mutex still protects us against file changes.
274 up_write(&iinfo->i_data_sem);
276 page = find_or_create_page(inode->i_mapping, 0, GFP_NOFS);
280 if (!PageUptodate(page)) {
281 kaddr = kmap_atomic(page);
282 memset(kaddr + iinfo->i_lenAlloc, 0x00,
283 PAGE_SIZE - iinfo->i_lenAlloc);
284 memcpy(kaddr, iinfo->i_data + iinfo->i_lenEAttr,
286 flush_dcache_page(page);
287 SetPageUptodate(page);
288 kunmap_atomic(kaddr);
290 down_write(&iinfo->i_data_sem);
291 memset(iinfo->i_data + iinfo->i_lenEAttr, 0x00,
293 iinfo->i_lenAlloc = 0;
294 if (UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_USE_SHORT_AD))
295 iinfo->i_alloc_type = ICBTAG_FLAG_AD_SHORT;
297 iinfo->i_alloc_type = ICBTAG_FLAG_AD_LONG;
298 /* from now on we have normal address_space methods */
299 inode->i_data.a_ops = &udf_aops;
300 set_page_dirty(page);
302 up_write(&iinfo->i_data_sem);
303 err = filemap_fdatawrite(inode->i_mapping);
305 /* Restore everything back so that we don't lose data... */
307 down_write(&iinfo->i_data_sem);
308 kaddr = kmap_atomic(page);
309 memcpy(iinfo->i_data + iinfo->i_lenEAttr, kaddr, inode->i_size);
310 kunmap_atomic(kaddr);
312 iinfo->i_alloc_type = ICBTAG_FLAG_AD_IN_ICB;
313 inode->i_data.a_ops = &udf_adinicb_aops;
314 iinfo->i_lenAlloc = inode->i_size;
315 up_write(&iinfo->i_data_sem);
318 mark_inode_dirty(inode);
323 struct buffer_head *udf_expand_dir_adinicb(struct inode *inode,
324 udf_pblk_t *block, int *err)
327 struct buffer_head *dbh = NULL;
328 struct kernel_lb_addr eloc;
330 struct extent_position epos;
332 struct udf_fileident_bh sfibh, dfibh;
333 loff_t f_pos = udf_ext0_offset(inode);
334 int size = udf_ext0_offset(inode) + inode->i_size;
335 struct fileIdentDesc cfi, *sfi, *dfi;
336 struct udf_inode_info *iinfo = UDF_I(inode);
338 if (UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_USE_SHORT_AD))
339 alloctype = ICBTAG_FLAG_AD_SHORT;
341 alloctype = ICBTAG_FLAG_AD_LONG;
343 if (!inode->i_size) {
344 iinfo->i_alloc_type = alloctype;
345 mark_inode_dirty(inode);
349 /* alloc block, and copy data to it */
350 *block = udf_new_block(inode->i_sb, inode,
351 iinfo->i_location.partitionReferenceNum,
352 iinfo->i_location.logicalBlockNum, err);
355 newblock = udf_get_pblock(inode->i_sb, *block,
356 iinfo->i_location.partitionReferenceNum,
360 dbh = udf_tgetblk(inode->i_sb, newblock);
364 memset(dbh->b_data, 0x00, inode->i_sb->s_blocksize);
365 set_buffer_uptodate(dbh);
367 mark_buffer_dirty_inode(dbh, inode);
369 sfibh.soffset = sfibh.eoffset =
370 f_pos & (inode->i_sb->s_blocksize - 1);
371 sfibh.sbh = sfibh.ebh = NULL;
372 dfibh.soffset = dfibh.eoffset = 0;
373 dfibh.sbh = dfibh.ebh = dbh;
374 while (f_pos < size) {
375 iinfo->i_alloc_type = ICBTAG_FLAG_AD_IN_ICB;
376 sfi = udf_fileident_read(inode, &f_pos, &sfibh, &cfi, NULL,
382 iinfo->i_alloc_type = alloctype;
383 sfi->descTag.tagLocation = cpu_to_le32(*block);
384 dfibh.soffset = dfibh.eoffset;
385 dfibh.eoffset += (sfibh.eoffset - sfibh.soffset);
386 dfi = (struct fileIdentDesc *)(dbh->b_data + dfibh.soffset);
387 if (udf_write_fi(inode, sfi, dfi, &dfibh, sfi->impUse,
388 udf_get_fi_ident(sfi))) {
389 iinfo->i_alloc_type = ICBTAG_FLAG_AD_IN_ICB;
394 mark_buffer_dirty_inode(dbh, inode);
396 memset(iinfo->i_data + iinfo->i_lenEAttr, 0, iinfo->i_lenAlloc);
397 iinfo->i_lenAlloc = 0;
398 eloc.logicalBlockNum = *block;
399 eloc.partitionReferenceNum =
400 iinfo->i_location.partitionReferenceNum;
401 iinfo->i_lenExtents = inode->i_size;
403 epos.block = iinfo->i_location;
404 epos.offset = udf_file_entry_alloc_offset(inode);
405 udf_add_aext(inode, &epos, &eloc, inode->i_size, 0);
409 mark_inode_dirty(inode);
413 static int udf_get_block(struct inode *inode, sector_t block,
414 struct buffer_head *bh_result, int create)
418 struct udf_inode_info *iinfo;
421 phys = udf_block_map(inode, block);
423 map_bh(bh_result, inode->i_sb, phys);
429 iinfo = UDF_I(inode);
431 down_write(&iinfo->i_data_sem);
432 if (block == iinfo->i_next_alloc_block + 1) {
433 iinfo->i_next_alloc_block++;
434 iinfo->i_next_alloc_goal++;
438 * Block beyond EOF and prealloc extents? Just discard preallocation
439 * as it is not useful and complicates things.
441 if (((loff_t)block) << inode->i_blkbits > iinfo->i_lenExtents)
442 udf_discard_prealloc(inode);
443 udf_clear_extent_cache(inode);
444 phys = inode_getblk(inode, block, &err, &new);
449 set_buffer_new(bh_result);
450 map_bh(bh_result, inode->i_sb, phys);
453 up_write(&iinfo->i_data_sem);
457 static struct buffer_head *udf_getblk(struct inode *inode, udf_pblk_t block,
458 int create, int *err)
460 struct buffer_head *bh;
461 struct buffer_head dummy;
464 dummy.b_blocknr = -1000;
465 *err = udf_get_block(inode, block, &dummy, create);
466 if (!*err && buffer_mapped(&dummy)) {
467 bh = sb_getblk(inode->i_sb, dummy.b_blocknr);
468 if (buffer_new(&dummy)) {
470 memset(bh->b_data, 0x00, inode->i_sb->s_blocksize);
471 set_buffer_uptodate(bh);
473 mark_buffer_dirty_inode(bh, inode);
481 /* Extend the file with new blocks totaling 'new_block_bytes',
482 * return the number of extents added
484 static int udf_do_extend_file(struct inode *inode,
485 struct extent_position *last_pos,
486 struct kernel_long_ad *last_ext,
487 loff_t new_block_bytes)
490 int count = 0, fake = !(last_ext->extLength & UDF_EXTENT_LENGTH_MASK);
491 struct super_block *sb = inode->i_sb;
492 struct udf_inode_info *iinfo;
495 /* The previous extent is fake and we should not extend by anything
496 * - there's nothing to do... */
497 if (!new_block_bytes && fake)
500 iinfo = UDF_I(inode);
501 /* Round the last extent up to a multiple of block size */
502 if (last_ext->extLength & (sb->s_blocksize - 1)) {
503 last_ext->extLength =
504 (last_ext->extLength & UDF_EXTENT_FLAG_MASK) |
505 (((last_ext->extLength & UDF_EXTENT_LENGTH_MASK) +
506 sb->s_blocksize - 1) & ~(sb->s_blocksize - 1));
507 iinfo->i_lenExtents =
508 (iinfo->i_lenExtents + sb->s_blocksize - 1) &
509 ~(sb->s_blocksize - 1);
512 /* Can we merge with the previous extent? */
513 if ((last_ext->extLength & UDF_EXTENT_FLAG_MASK) ==
514 EXT_NOT_RECORDED_NOT_ALLOCATED) {
515 add = (1 << 30) - sb->s_blocksize -
516 (last_ext->extLength & UDF_EXTENT_LENGTH_MASK);
517 if (add > new_block_bytes)
518 add = new_block_bytes;
519 new_block_bytes -= add;
520 last_ext->extLength += add;
524 udf_add_aext(inode, last_pos, &last_ext->extLocation,
525 last_ext->extLength, 1);
528 struct kernel_lb_addr tmploc;
531 udf_write_aext(inode, last_pos, &last_ext->extLocation,
532 last_ext->extLength, 1);
535 * We've rewritten the last extent. If we are going to add
536 * more extents, we may need to enter possible following
537 * empty indirect extent.
540 udf_next_aext(inode, last_pos, &tmploc, &tmplen, 0);
543 /* Managed to do everything necessary? */
544 if (!new_block_bytes)
547 /* All further extents will be NOT_RECORDED_NOT_ALLOCATED */
548 last_ext->extLocation.logicalBlockNum = 0;
549 last_ext->extLocation.partitionReferenceNum = 0;
550 add = (1 << 30) - sb->s_blocksize;
551 last_ext->extLength = EXT_NOT_RECORDED_NOT_ALLOCATED | add;
553 /* Create enough extents to cover the whole hole */
554 while (new_block_bytes > add) {
555 new_block_bytes -= add;
556 err = udf_add_aext(inode, last_pos, &last_ext->extLocation,
557 last_ext->extLength, 1);
562 if (new_block_bytes) {
563 last_ext->extLength = EXT_NOT_RECORDED_NOT_ALLOCATED |
565 err = udf_add_aext(inode, last_pos, &last_ext->extLocation,
566 last_ext->extLength, 1);
573 /* last_pos should point to the last written extent... */
574 if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_SHORT)
575 last_pos->offset -= sizeof(struct short_ad);
576 else if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_LONG)
577 last_pos->offset -= sizeof(struct long_ad);
584 /* Extend the final block of the file to final_block_len bytes */
585 static void udf_do_extend_final_block(struct inode *inode,
586 struct extent_position *last_pos,
587 struct kernel_long_ad *last_ext,
590 uint32_t added_bytes;
593 * Extent already large enough? It may be already rounded up to block
596 if (new_elen <= (last_ext->extLength & UDF_EXTENT_LENGTH_MASK))
598 added_bytes = (last_ext->extLength & UDF_EXTENT_LENGTH_MASK) - new_elen;
599 last_ext->extLength += added_bytes;
600 UDF_I(inode)->i_lenExtents += added_bytes;
602 udf_write_aext(inode, last_pos, &last_ext->extLocation,
603 last_ext->extLength, 1);
606 static int udf_extend_file(struct inode *inode, loff_t newsize)
609 struct extent_position epos;
610 struct kernel_lb_addr eloc;
613 struct super_block *sb = inode->i_sb;
614 sector_t first_block = newsize >> sb->s_blocksize_bits, offset;
617 struct udf_inode_info *iinfo = UDF_I(inode);
618 struct kernel_long_ad extent;
620 bool within_last_ext;
622 if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_SHORT)
623 adsize = sizeof(struct short_ad);
624 else if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_LONG)
625 adsize = sizeof(struct long_ad);
630 * When creating hole in file, just don't bother with preserving
631 * preallocation. It likely won't be very useful anyway.
633 udf_discard_prealloc(inode);
635 etype = inode_bmap(inode, first_block, &epos, &eloc, &elen, &offset);
636 within_last_ext = (etype != -1);
637 /* We don't expect extents past EOF... */
638 WARN_ON_ONCE(within_last_ext &&
639 elen > ((loff_t)offset + 1) << inode->i_blkbits);
641 if ((!epos.bh && epos.offset == udf_file_entry_alloc_offset(inode)) ||
642 (epos.bh && epos.offset == sizeof(struct allocExtDesc))) {
643 /* File has no extents at all or has empty last
644 * indirect extent! Create a fake extent... */
645 extent.extLocation.logicalBlockNum = 0;
646 extent.extLocation.partitionReferenceNum = 0;
647 extent.extLength = EXT_NOT_RECORDED_NOT_ALLOCATED;
649 epos.offset -= adsize;
650 etype = udf_next_aext(inode, &epos, &extent.extLocation,
651 &extent.extLength, 0);
652 extent.extLength |= etype << 30;
655 new_elen = ((loff_t)offset << inode->i_blkbits) |
656 (newsize & (sb->s_blocksize - 1));
658 /* File has extent covering the new size (could happen when extending
661 if (within_last_ext) {
662 /* Extending file within the last file block */
663 udf_do_extend_final_block(inode, &epos, &extent, new_elen);
665 err = udf_do_extend_file(inode, &epos, &extent, new_elen);
671 iinfo->i_lenExtents = newsize;
677 static sector_t inode_getblk(struct inode *inode, sector_t block,
680 struct kernel_long_ad laarr[EXTENT_MERGE_SIZE];
681 struct extent_position prev_epos, cur_epos, next_epos;
682 int count = 0, startnum = 0, endnum = 0;
683 uint32_t elen = 0, tmpelen;
684 struct kernel_lb_addr eloc, tmpeloc;
686 loff_t lbcount = 0, b_off = 0;
687 udf_pblk_t newblocknum, newblock;
690 struct udf_inode_info *iinfo = UDF_I(inode);
691 udf_pblk_t goal = 0, pgoal = iinfo->i_location.logicalBlockNum;
697 prev_epos.offset = udf_file_entry_alloc_offset(inode);
698 prev_epos.block = iinfo->i_location;
700 cur_epos = next_epos = prev_epos;
701 b_off = (loff_t)block << inode->i_sb->s_blocksize_bits;
703 /* find the extent which contains the block we are looking for.
704 alternate between laarr[0] and laarr[1] for locations of the
705 current extent, and the previous extent */
707 if (prev_epos.bh != cur_epos.bh) {
708 brelse(prev_epos.bh);
710 prev_epos.bh = cur_epos.bh;
712 if (cur_epos.bh != next_epos.bh) {
714 get_bh(next_epos.bh);
715 cur_epos.bh = next_epos.bh;
720 prev_epos.block = cur_epos.block;
721 cur_epos.block = next_epos.block;
723 prev_epos.offset = cur_epos.offset;
724 cur_epos.offset = next_epos.offset;
726 etype = udf_next_aext(inode, &next_epos, &eloc, &elen, 1);
732 laarr[c].extLength = (etype << 30) | elen;
733 laarr[c].extLocation = eloc;
735 if (etype != (EXT_NOT_RECORDED_NOT_ALLOCATED >> 30))
736 pgoal = eloc.logicalBlockNum +
737 ((elen + inode->i_sb->s_blocksize - 1) >>
738 inode->i_sb->s_blocksize_bits);
741 } while (lbcount + elen <= b_off);
744 offset = b_off >> inode->i_sb->s_blocksize_bits;
746 * Move prev_epos and cur_epos into indirect extent if we are at
749 udf_next_aext(inode, &prev_epos, &tmpeloc, &tmpelen, 0);
750 udf_next_aext(inode, &cur_epos, &tmpeloc, &tmpelen, 0);
752 /* if the extent is allocated and recorded, return the block
753 if the extent is not a multiple of the blocksize, round up */
755 if (etype == (EXT_RECORDED_ALLOCATED >> 30)) {
756 if (elen & (inode->i_sb->s_blocksize - 1)) {
757 elen = EXT_RECORDED_ALLOCATED |
758 ((elen + inode->i_sb->s_blocksize - 1) &
759 ~(inode->i_sb->s_blocksize - 1));
760 udf_write_aext(inode, &cur_epos, &eloc, elen, 1);
762 newblock = udf_get_lb_pblock(inode->i_sb, &eloc, offset);
766 /* Are we beyond EOF and preallocated extent? */
777 /* Create a fake extent when there's not one */
778 memset(&laarr[0].extLocation, 0x00,
779 sizeof(struct kernel_lb_addr));
780 laarr[0].extLength = EXT_NOT_RECORDED_NOT_ALLOCATED;
781 /* Will udf_do_extend_file() create real extent from
783 startnum = (offset > 0);
785 /* Create extents for the hole between EOF and offset */
786 hole_len = (loff_t)offset << inode->i_blkbits;
787 ret = udf_do_extend_file(inode, &prev_epos, laarr, hole_len);
796 /* We are not covered by a preallocated extent? */
797 if ((laarr[0].extLength & UDF_EXTENT_FLAG_MASK) !=
798 EXT_NOT_RECORDED_ALLOCATED) {
799 /* Is there any real extent? - otherwise we overwrite
803 laarr[c].extLength = EXT_NOT_RECORDED_NOT_ALLOCATED |
804 inode->i_sb->s_blocksize;
805 memset(&laarr[c].extLocation, 0x00,
806 sizeof(struct kernel_lb_addr));
813 endnum = startnum = ((count > 2) ? 2 : count);
815 /* if the current extent is in position 0,
816 swap it with the previous */
817 if (!c && count != 1) {
824 /* if the current block is located in an extent,
825 read the next extent */
826 etype = udf_next_aext(inode, &next_epos, &eloc, &elen, 0);
828 laarr[c + 1].extLength = (etype << 30) | elen;
829 laarr[c + 1].extLocation = eloc;
837 /* if the current extent is not recorded but allocated, get the
838 * block in the extent corresponding to the requested block */
839 if ((laarr[c].extLength >> 30) == (EXT_NOT_RECORDED_ALLOCATED >> 30))
840 newblocknum = laarr[c].extLocation.logicalBlockNum + offset;
841 else { /* otherwise, allocate a new block */
842 if (iinfo->i_next_alloc_block == block)
843 goal = iinfo->i_next_alloc_goal;
846 if (!(goal = pgoal)) /* XXX: what was intended here? */
847 goal = iinfo->i_location.logicalBlockNum + 1;
850 newblocknum = udf_new_block(inode->i_sb, inode,
851 iinfo->i_location.partitionReferenceNum,
859 iinfo->i_lenExtents += inode->i_sb->s_blocksize;
862 /* if the extent the requsted block is located in contains multiple
863 * blocks, split the extent into at most three extents. blocks prior
864 * to requested block, requested block, and blocks after requested
866 udf_split_extents(inode, &c, offset, newblocknum, laarr, &endnum);
868 /* We preallocate blocks only for regular files. It also makes sense
869 * for directories but there's a problem when to drop the
870 * preallocation. We might use some delayed work for that but I feel
871 * it's overengineering for a filesystem like UDF. */
872 if (S_ISREG(inode->i_mode))
873 udf_prealloc_extents(inode, c, lastblock, laarr, &endnum);
875 /* merge any continuous blocks in laarr */
876 udf_merge_extents(inode, laarr, &endnum);
878 /* write back the new extents, inserting new extents if the new number
879 * of extents is greater than the old number, and deleting extents if
880 * the new number of extents is less than the old number */
881 udf_update_extents(inode, laarr, startnum, endnum, &prev_epos);
883 newblock = udf_get_pblock(inode->i_sb, newblocknum,
884 iinfo->i_location.partitionReferenceNum, 0);
890 iinfo->i_next_alloc_block = block;
891 iinfo->i_next_alloc_goal = newblocknum;
892 inode->i_ctime = current_time(inode);
895 udf_sync_inode(inode);
897 mark_inode_dirty(inode);
899 brelse(prev_epos.bh);
901 brelse(next_epos.bh);
905 static void udf_split_extents(struct inode *inode, int *c, int offset,
906 udf_pblk_t newblocknum,
907 struct kernel_long_ad *laarr, int *endnum)
909 unsigned long blocksize = inode->i_sb->s_blocksize;
910 unsigned char blocksize_bits = inode->i_sb->s_blocksize_bits;
912 if ((laarr[*c].extLength >> 30) == (EXT_NOT_RECORDED_ALLOCATED >> 30) ||
913 (laarr[*c].extLength >> 30) ==
914 (EXT_NOT_RECORDED_NOT_ALLOCATED >> 30)) {
916 int blen = ((laarr[curr].extLength & UDF_EXTENT_LENGTH_MASK) +
917 blocksize - 1) >> blocksize_bits;
918 int8_t etype = (laarr[curr].extLength >> 30);
922 else if (!offset || blen == offset + 1) {
923 laarr[curr + 2] = laarr[curr + 1];
924 laarr[curr + 1] = laarr[curr];
926 laarr[curr + 3] = laarr[curr + 1];
927 laarr[curr + 2] = laarr[curr + 1] = laarr[curr];
931 if (etype == (EXT_NOT_RECORDED_ALLOCATED >> 30)) {
932 udf_free_blocks(inode->i_sb, inode,
933 &laarr[curr].extLocation,
935 laarr[curr].extLength =
936 EXT_NOT_RECORDED_NOT_ALLOCATED |
937 (offset << blocksize_bits);
938 laarr[curr].extLocation.logicalBlockNum = 0;
939 laarr[curr].extLocation.
940 partitionReferenceNum = 0;
942 laarr[curr].extLength = (etype << 30) |
943 (offset << blocksize_bits);
949 laarr[curr].extLocation.logicalBlockNum = newblocknum;
950 if (etype == (EXT_NOT_RECORDED_NOT_ALLOCATED >> 30))
951 laarr[curr].extLocation.partitionReferenceNum =
952 UDF_I(inode)->i_location.partitionReferenceNum;
953 laarr[curr].extLength = EXT_RECORDED_ALLOCATED |
957 if (blen != offset + 1) {
958 if (etype == (EXT_NOT_RECORDED_ALLOCATED >> 30))
959 laarr[curr].extLocation.logicalBlockNum +=
961 laarr[curr].extLength = (etype << 30) |
962 ((blen - (offset + 1)) << blocksize_bits);
969 static void udf_prealloc_extents(struct inode *inode, int c, int lastblock,
970 struct kernel_long_ad *laarr,
973 int start, length = 0, currlength = 0, i;
975 if (*endnum >= (c + 1)) {
981 if ((laarr[c + 1].extLength >> 30) ==
982 (EXT_NOT_RECORDED_ALLOCATED >> 30)) {
984 length = currlength =
985 (((laarr[c + 1].extLength &
986 UDF_EXTENT_LENGTH_MASK) +
987 inode->i_sb->s_blocksize - 1) >>
988 inode->i_sb->s_blocksize_bits);
993 for (i = start + 1; i <= *endnum; i++) {
996 length += UDF_DEFAULT_PREALLOC_BLOCKS;
997 } else if ((laarr[i].extLength >> 30) ==
998 (EXT_NOT_RECORDED_NOT_ALLOCATED >> 30)) {
999 length += (((laarr[i].extLength &
1000 UDF_EXTENT_LENGTH_MASK) +
1001 inode->i_sb->s_blocksize - 1) >>
1002 inode->i_sb->s_blocksize_bits);
1008 int next = laarr[start].extLocation.logicalBlockNum +
1009 (((laarr[start].extLength & UDF_EXTENT_LENGTH_MASK) +
1010 inode->i_sb->s_blocksize - 1) >>
1011 inode->i_sb->s_blocksize_bits);
1012 int numalloc = udf_prealloc_blocks(inode->i_sb, inode,
1013 laarr[start].extLocation.partitionReferenceNum,
1014 next, (UDF_DEFAULT_PREALLOC_BLOCKS > length ?
1015 length : UDF_DEFAULT_PREALLOC_BLOCKS) -
1018 if (start == (c + 1))
1019 laarr[start].extLength +=
1021 inode->i_sb->s_blocksize_bits);
1023 memmove(&laarr[c + 2], &laarr[c + 1],
1024 sizeof(struct long_ad) * (*endnum - (c + 1)));
1026 laarr[c + 1].extLocation.logicalBlockNum = next;
1027 laarr[c + 1].extLocation.partitionReferenceNum =
1028 laarr[c].extLocation.
1029 partitionReferenceNum;
1030 laarr[c + 1].extLength =
1031 EXT_NOT_RECORDED_ALLOCATED |
1033 inode->i_sb->s_blocksize_bits);
1037 for (i = start + 1; numalloc && i < *endnum; i++) {
1038 int elen = ((laarr[i].extLength &
1039 UDF_EXTENT_LENGTH_MASK) +
1040 inode->i_sb->s_blocksize - 1) >>
1041 inode->i_sb->s_blocksize_bits;
1043 if (elen > numalloc) {
1044 laarr[i].extLength -=
1046 inode->i_sb->s_blocksize_bits);
1050 if (*endnum > (i + 1))
1053 sizeof(struct long_ad) *
1054 (*endnum - (i + 1)));
1059 UDF_I(inode)->i_lenExtents +=
1060 numalloc << inode->i_sb->s_blocksize_bits;
1065 static void udf_merge_extents(struct inode *inode, struct kernel_long_ad *laarr,
1069 unsigned long blocksize = inode->i_sb->s_blocksize;
1070 unsigned char blocksize_bits = inode->i_sb->s_blocksize_bits;
1072 for (i = 0; i < (*endnum - 1); i++) {
1073 struct kernel_long_ad *li /*l[i]*/ = &laarr[i];
1074 struct kernel_long_ad *lip1 /*l[i plus 1]*/ = &laarr[i + 1];
1076 if (((li->extLength >> 30) == (lip1->extLength >> 30)) &&
1077 (((li->extLength >> 30) ==
1078 (EXT_NOT_RECORDED_NOT_ALLOCATED >> 30)) ||
1079 ((lip1->extLocation.logicalBlockNum -
1080 li->extLocation.logicalBlockNum) ==
1081 (((li->extLength & UDF_EXTENT_LENGTH_MASK) +
1082 blocksize - 1) >> blocksize_bits)))) {
1084 if (((li->extLength & UDF_EXTENT_LENGTH_MASK) +
1085 (lip1->extLength & UDF_EXTENT_LENGTH_MASK) +
1086 blocksize - 1) & ~UDF_EXTENT_LENGTH_MASK) {
1087 lip1->extLength = (lip1->extLength -
1089 UDF_EXTENT_LENGTH_MASK) +
1090 UDF_EXTENT_LENGTH_MASK) &
1092 li->extLength = (li->extLength &
1093 UDF_EXTENT_FLAG_MASK) +
1094 (UDF_EXTENT_LENGTH_MASK + 1) -
1096 lip1->extLocation.logicalBlockNum =
1097 li->extLocation.logicalBlockNum +
1099 UDF_EXTENT_LENGTH_MASK) >>
1102 li->extLength = lip1->extLength +
1104 UDF_EXTENT_LENGTH_MASK) +
1105 blocksize - 1) & ~(blocksize - 1));
1106 if (*endnum > (i + 2))
1107 memmove(&laarr[i + 1], &laarr[i + 2],
1108 sizeof(struct long_ad) *
1109 (*endnum - (i + 2)));
1113 } else if (((li->extLength >> 30) ==
1114 (EXT_NOT_RECORDED_ALLOCATED >> 30)) &&
1115 ((lip1->extLength >> 30) ==
1116 (EXT_NOT_RECORDED_NOT_ALLOCATED >> 30))) {
1117 udf_free_blocks(inode->i_sb, inode, &li->extLocation, 0,
1119 UDF_EXTENT_LENGTH_MASK) +
1120 blocksize - 1) >> blocksize_bits);
1121 li->extLocation.logicalBlockNum = 0;
1122 li->extLocation.partitionReferenceNum = 0;
1124 if (((li->extLength & UDF_EXTENT_LENGTH_MASK) +
1125 (lip1->extLength & UDF_EXTENT_LENGTH_MASK) +
1126 blocksize - 1) & ~UDF_EXTENT_LENGTH_MASK) {
1127 lip1->extLength = (lip1->extLength -
1129 UDF_EXTENT_LENGTH_MASK) +
1130 UDF_EXTENT_LENGTH_MASK) &
1132 li->extLength = (li->extLength &
1133 UDF_EXTENT_FLAG_MASK) +
1134 (UDF_EXTENT_LENGTH_MASK + 1) -
1137 li->extLength = lip1->extLength +
1139 UDF_EXTENT_LENGTH_MASK) +
1140 blocksize - 1) & ~(blocksize - 1));
1141 if (*endnum > (i + 2))
1142 memmove(&laarr[i + 1], &laarr[i + 2],
1143 sizeof(struct long_ad) *
1144 (*endnum - (i + 2)));
1148 } else if ((li->extLength >> 30) ==
1149 (EXT_NOT_RECORDED_ALLOCATED >> 30)) {
1150 udf_free_blocks(inode->i_sb, inode,
1151 &li->extLocation, 0,
1153 UDF_EXTENT_LENGTH_MASK) +
1154 blocksize - 1) >> blocksize_bits);
1155 li->extLocation.logicalBlockNum = 0;
1156 li->extLocation.partitionReferenceNum = 0;
1157 li->extLength = (li->extLength &
1158 UDF_EXTENT_LENGTH_MASK) |
1159 EXT_NOT_RECORDED_NOT_ALLOCATED;
1164 static void udf_update_extents(struct inode *inode, struct kernel_long_ad *laarr,
1165 int startnum, int endnum,
1166 struct extent_position *epos)
1169 struct kernel_lb_addr tmploc;
1172 if (startnum > endnum) {
1173 for (i = 0; i < (startnum - endnum); i++)
1174 udf_delete_aext(inode, *epos);
1175 } else if (startnum < endnum) {
1176 for (i = 0; i < (endnum - startnum); i++) {
1177 udf_insert_aext(inode, *epos, laarr[i].extLocation,
1178 laarr[i].extLength);
1179 udf_next_aext(inode, epos, &laarr[i].extLocation,
1180 &laarr[i].extLength, 1);
1185 for (i = start; i < endnum; i++) {
1186 udf_next_aext(inode, epos, &tmploc, &tmplen, 0);
1187 udf_write_aext(inode, epos, &laarr[i].extLocation,
1188 laarr[i].extLength, 1);
1192 struct buffer_head *udf_bread(struct inode *inode, udf_pblk_t block,
1193 int create, int *err)
1195 struct buffer_head *bh = NULL;
1197 bh = udf_getblk(inode, block, create, err);
1201 if (bh_read(bh, 0) >= 0)
1209 int udf_setsize(struct inode *inode, loff_t newsize)
1212 struct udf_inode_info *iinfo;
1213 unsigned int bsize = i_blocksize(inode);
1215 if (!(S_ISREG(inode->i_mode) || S_ISDIR(inode->i_mode) ||
1216 S_ISLNK(inode->i_mode)))
1218 if (IS_APPEND(inode) || IS_IMMUTABLE(inode))
1221 iinfo = UDF_I(inode);
1222 if (newsize > inode->i_size) {
1223 down_write(&iinfo->i_data_sem);
1224 if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_IN_ICB) {
1226 (udf_file_entry_alloc_offset(inode) + newsize)) {
1227 err = udf_expand_file_adinicb(inode);
1230 down_write(&iinfo->i_data_sem);
1232 iinfo->i_lenAlloc = newsize;
1236 err = udf_extend_file(inode, newsize);
1238 up_write(&iinfo->i_data_sem);
1242 up_write(&iinfo->i_data_sem);
1243 truncate_setsize(inode, newsize);
1245 if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_IN_ICB) {
1246 down_write(&iinfo->i_data_sem);
1247 udf_clear_extent_cache(inode);
1248 memset(iinfo->i_data + iinfo->i_lenEAttr + newsize,
1249 0x00, bsize - newsize -
1250 udf_file_entry_alloc_offset(inode));
1251 iinfo->i_lenAlloc = newsize;
1252 truncate_setsize(inode, newsize);
1253 up_write(&iinfo->i_data_sem);
1256 err = block_truncate_page(inode->i_mapping, newsize,
1260 truncate_setsize(inode, newsize);
1261 down_write(&iinfo->i_data_sem);
1262 udf_clear_extent_cache(inode);
1263 err = udf_truncate_extents(inode);
1264 up_write(&iinfo->i_data_sem);
1269 inode->i_mtime = inode->i_ctime = current_time(inode);
1271 udf_sync_inode(inode);
1273 mark_inode_dirty(inode);
1278 * Maximum length of linked list formed by ICB hierarchy. The chosen number is
1279 * arbitrary - just that we hopefully don't limit any real use of rewritten
1280 * inode on write-once media but avoid looping for too long on corrupted media.
1282 #define UDF_MAX_ICB_NESTING 1024
1284 static int udf_read_inode(struct inode *inode, bool hidden_inode)
1286 struct buffer_head *bh = NULL;
1287 struct fileEntry *fe;
1288 struct extendedFileEntry *efe;
1290 struct udf_inode_info *iinfo = UDF_I(inode);
1291 struct udf_sb_info *sbi = UDF_SB(inode->i_sb);
1292 struct kernel_lb_addr *iloc = &iinfo->i_location;
1293 unsigned int link_count;
1294 unsigned int indirections = 0;
1295 int bs = inode->i_sb->s_blocksize;
1300 if (iloc->partitionReferenceNum >= sbi->s_partitions) {
1301 udf_debug("partition reference: %u > logical volume partitions: %u\n",
1302 iloc->partitionReferenceNum, sbi->s_partitions);
1306 if (iloc->logicalBlockNum >=
1307 sbi->s_partmaps[iloc->partitionReferenceNum].s_partition_len) {
1308 udf_debug("block=%u, partition=%u out of range\n",
1309 iloc->logicalBlockNum, iloc->partitionReferenceNum);
1314 * Set defaults, but the inode is still incomplete!
1315 * Note: get_new_inode() sets the following on a new inode:
1318 * i_flags = sb->s_flags
1320 * clean_inode(): zero fills and sets
1325 bh = udf_read_ptagged(inode->i_sb, iloc, 0, &ident);
1327 udf_err(inode->i_sb, "(ino %lu) failed !bh\n", inode->i_ino);
1331 if (ident != TAG_IDENT_FE && ident != TAG_IDENT_EFE &&
1332 ident != TAG_IDENT_USE) {
1333 udf_err(inode->i_sb, "(ino %lu) failed ident=%u\n",
1334 inode->i_ino, ident);
1338 fe = (struct fileEntry *)bh->b_data;
1339 efe = (struct extendedFileEntry *)bh->b_data;
1341 if (fe->icbTag.strategyType == cpu_to_le16(4096)) {
1342 struct buffer_head *ibh;
1344 ibh = udf_read_ptagged(inode->i_sb, iloc, 1, &ident);
1345 if (ident == TAG_IDENT_IE && ibh) {
1346 struct kernel_lb_addr loc;
1347 struct indirectEntry *ie;
1349 ie = (struct indirectEntry *)ibh->b_data;
1350 loc = lelb_to_cpu(ie->indirectICB.extLocation);
1352 if (ie->indirectICB.extLength) {
1354 memcpy(&iinfo->i_location, &loc,
1355 sizeof(struct kernel_lb_addr));
1356 if (++indirections > UDF_MAX_ICB_NESTING) {
1357 udf_err(inode->i_sb,
1358 "too many ICBs in ICB hierarchy"
1359 " (max %d supported)\n",
1360 UDF_MAX_ICB_NESTING);
1368 } else if (fe->icbTag.strategyType != cpu_to_le16(4)) {
1369 udf_err(inode->i_sb, "unsupported strategy type: %u\n",
1370 le16_to_cpu(fe->icbTag.strategyType));
1373 if (fe->icbTag.strategyType == cpu_to_le16(4))
1374 iinfo->i_strat4096 = 0;
1375 else /* if (fe->icbTag.strategyType == cpu_to_le16(4096)) */
1376 iinfo->i_strat4096 = 1;
1378 iinfo->i_alloc_type = le16_to_cpu(fe->icbTag.flags) &
1379 ICBTAG_FLAG_AD_MASK;
1380 if (iinfo->i_alloc_type != ICBTAG_FLAG_AD_SHORT &&
1381 iinfo->i_alloc_type != ICBTAG_FLAG_AD_LONG &&
1382 iinfo->i_alloc_type != ICBTAG_FLAG_AD_IN_ICB) {
1386 iinfo->i_unique = 0;
1387 iinfo->i_lenEAttr = 0;
1388 iinfo->i_lenExtents = 0;
1389 iinfo->i_lenAlloc = 0;
1390 iinfo->i_next_alloc_block = 0;
1391 iinfo->i_next_alloc_goal = 0;
1392 if (fe->descTag.tagIdent == cpu_to_le16(TAG_IDENT_EFE)) {
1395 ret = udf_alloc_i_data(inode, bs -
1396 sizeof(struct extendedFileEntry));
1399 memcpy(iinfo->i_data,
1400 bh->b_data + sizeof(struct extendedFileEntry),
1401 bs - sizeof(struct extendedFileEntry));
1402 } else if (fe->descTag.tagIdent == cpu_to_le16(TAG_IDENT_FE)) {
1405 ret = udf_alloc_i_data(inode, bs - sizeof(struct fileEntry));
1408 memcpy(iinfo->i_data,
1409 bh->b_data + sizeof(struct fileEntry),
1410 bs - sizeof(struct fileEntry));
1411 } else if (fe->descTag.tagIdent == cpu_to_le16(TAG_IDENT_USE)) {
1414 iinfo->i_lenAlloc = le32_to_cpu(
1415 ((struct unallocSpaceEntry *)bh->b_data)->
1417 ret = udf_alloc_i_data(inode, bs -
1418 sizeof(struct unallocSpaceEntry));
1421 memcpy(iinfo->i_data,
1422 bh->b_data + sizeof(struct unallocSpaceEntry),
1423 bs - sizeof(struct unallocSpaceEntry));
1428 read_lock(&sbi->s_cred_lock);
1429 uid = le32_to_cpu(fe->uid);
1430 if (uid == UDF_INVALID_ID ||
1431 UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_UID_SET))
1432 inode->i_uid = sbi->s_uid;
1434 i_uid_write(inode, uid);
1436 gid = le32_to_cpu(fe->gid);
1437 if (gid == UDF_INVALID_ID ||
1438 UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_GID_SET))
1439 inode->i_gid = sbi->s_gid;
1441 i_gid_write(inode, gid);
1443 if (fe->icbTag.fileType != ICBTAG_FILE_TYPE_DIRECTORY &&
1444 sbi->s_fmode != UDF_INVALID_MODE)
1445 inode->i_mode = sbi->s_fmode;
1446 else if (fe->icbTag.fileType == ICBTAG_FILE_TYPE_DIRECTORY &&
1447 sbi->s_dmode != UDF_INVALID_MODE)
1448 inode->i_mode = sbi->s_dmode;
1450 inode->i_mode = udf_convert_permissions(fe);
1451 inode->i_mode &= ~sbi->s_umask;
1452 iinfo->i_extraPerms = le32_to_cpu(fe->permissions) & ~FE_MAPPED_PERMS;
1454 read_unlock(&sbi->s_cred_lock);
1456 link_count = le16_to_cpu(fe->fileLinkCount);
1458 if (!hidden_inode) {
1464 set_nlink(inode, link_count);
1466 inode->i_size = le64_to_cpu(fe->informationLength);
1467 iinfo->i_lenExtents = inode->i_size;
1469 if (iinfo->i_efe == 0) {
1470 inode->i_blocks = le64_to_cpu(fe->logicalBlocksRecorded) <<
1471 (inode->i_sb->s_blocksize_bits - 9);
1473 udf_disk_stamp_to_time(&inode->i_atime, fe->accessTime);
1474 udf_disk_stamp_to_time(&inode->i_mtime, fe->modificationTime);
1475 udf_disk_stamp_to_time(&inode->i_ctime, fe->attrTime);
1477 iinfo->i_unique = le64_to_cpu(fe->uniqueID);
1478 iinfo->i_lenEAttr = le32_to_cpu(fe->lengthExtendedAttr);
1479 iinfo->i_lenAlloc = le32_to_cpu(fe->lengthAllocDescs);
1480 iinfo->i_checkpoint = le32_to_cpu(fe->checkpoint);
1481 iinfo->i_streamdir = 0;
1482 iinfo->i_lenStreams = 0;
1484 inode->i_blocks = le64_to_cpu(efe->logicalBlocksRecorded) <<
1485 (inode->i_sb->s_blocksize_bits - 9);
1487 udf_disk_stamp_to_time(&inode->i_atime, efe->accessTime);
1488 udf_disk_stamp_to_time(&inode->i_mtime, efe->modificationTime);
1489 udf_disk_stamp_to_time(&iinfo->i_crtime, efe->createTime);
1490 udf_disk_stamp_to_time(&inode->i_ctime, efe->attrTime);
1492 iinfo->i_unique = le64_to_cpu(efe->uniqueID);
1493 iinfo->i_lenEAttr = le32_to_cpu(efe->lengthExtendedAttr);
1494 iinfo->i_lenAlloc = le32_to_cpu(efe->lengthAllocDescs);
1495 iinfo->i_checkpoint = le32_to_cpu(efe->checkpoint);
1498 iinfo->i_streamdir = (efe->streamDirectoryICB.extLength != 0);
1499 iinfo->i_locStreamdir =
1500 lelb_to_cpu(efe->streamDirectoryICB.extLocation);
1501 iinfo->i_lenStreams = le64_to_cpu(efe->objectSize);
1502 if (iinfo->i_lenStreams >= inode->i_size)
1503 iinfo->i_lenStreams -= inode->i_size;
1505 iinfo->i_lenStreams = 0;
1507 inode->i_generation = iinfo->i_unique;
1510 * Sanity check length of allocation descriptors and extended attrs to
1511 * avoid integer overflows
1513 if (iinfo->i_lenEAttr > bs || iinfo->i_lenAlloc > bs)
1515 /* Now do exact checks */
1516 if (udf_file_entry_alloc_offset(inode) + iinfo->i_lenAlloc > bs)
1518 /* Sanity checks for files in ICB so that we don't get confused later */
1519 if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_IN_ICB) {
1521 * For file in ICB data is stored in allocation descriptor
1522 * so sizes should match
1524 if (iinfo->i_lenAlloc != inode->i_size)
1526 /* File in ICB has to fit in there... */
1527 if (inode->i_size > bs - udf_file_entry_alloc_offset(inode))
1531 switch (fe->icbTag.fileType) {
1532 case ICBTAG_FILE_TYPE_DIRECTORY:
1533 inode->i_op = &udf_dir_inode_operations;
1534 inode->i_fop = &udf_dir_operations;
1535 inode->i_mode |= S_IFDIR;
1538 case ICBTAG_FILE_TYPE_REALTIME:
1539 case ICBTAG_FILE_TYPE_REGULAR:
1540 case ICBTAG_FILE_TYPE_UNDEF:
1541 case ICBTAG_FILE_TYPE_VAT20:
1542 if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_IN_ICB)
1543 inode->i_data.a_ops = &udf_adinicb_aops;
1545 inode->i_data.a_ops = &udf_aops;
1546 inode->i_op = &udf_file_inode_operations;
1547 inode->i_fop = &udf_file_operations;
1548 inode->i_mode |= S_IFREG;
1550 case ICBTAG_FILE_TYPE_BLOCK:
1551 inode->i_mode |= S_IFBLK;
1553 case ICBTAG_FILE_TYPE_CHAR:
1554 inode->i_mode |= S_IFCHR;
1556 case ICBTAG_FILE_TYPE_FIFO:
1557 init_special_inode(inode, inode->i_mode | S_IFIFO, 0);
1559 case ICBTAG_FILE_TYPE_SOCKET:
1560 init_special_inode(inode, inode->i_mode | S_IFSOCK, 0);
1562 case ICBTAG_FILE_TYPE_SYMLINK:
1563 inode->i_data.a_ops = &udf_symlink_aops;
1564 inode->i_op = &udf_symlink_inode_operations;
1565 inode_nohighmem(inode);
1566 inode->i_mode = S_IFLNK | 0777;
1568 case ICBTAG_FILE_TYPE_MAIN:
1569 udf_debug("METADATA FILE-----\n");
1571 case ICBTAG_FILE_TYPE_MIRROR:
1572 udf_debug("METADATA MIRROR FILE-----\n");
1574 case ICBTAG_FILE_TYPE_BITMAP:
1575 udf_debug("METADATA BITMAP FILE-----\n");
1578 udf_err(inode->i_sb, "(ino %lu) failed unknown file type=%u\n",
1579 inode->i_ino, fe->icbTag.fileType);
1582 if (S_ISCHR(inode->i_mode) || S_ISBLK(inode->i_mode)) {
1583 struct deviceSpec *dsea =
1584 (struct deviceSpec *)udf_get_extendedattr(inode, 12, 1);
1586 init_special_inode(inode, inode->i_mode,
1587 MKDEV(le32_to_cpu(dsea->majorDeviceIdent),
1588 le32_to_cpu(dsea->minorDeviceIdent)));
1589 /* Developer ID ??? */
1599 static int udf_alloc_i_data(struct inode *inode, size_t size)
1601 struct udf_inode_info *iinfo = UDF_I(inode);
1602 iinfo->i_data = kmalloc(size, GFP_KERNEL);
1608 static umode_t udf_convert_permissions(struct fileEntry *fe)
1611 uint32_t permissions;
1614 permissions = le32_to_cpu(fe->permissions);
1615 flags = le16_to_cpu(fe->icbTag.flags);
1617 mode = ((permissions) & 0007) |
1618 ((permissions >> 2) & 0070) |
1619 ((permissions >> 4) & 0700) |
1620 ((flags & ICBTAG_FLAG_SETUID) ? S_ISUID : 0) |
1621 ((flags & ICBTAG_FLAG_SETGID) ? S_ISGID : 0) |
1622 ((flags & ICBTAG_FLAG_STICKY) ? S_ISVTX : 0);
1627 void udf_update_extra_perms(struct inode *inode, umode_t mode)
1629 struct udf_inode_info *iinfo = UDF_I(inode);
1632 * UDF 2.01 sec. 3.3.3.3 Note 2:
1633 * In Unix, delete permission tracks write
1635 iinfo->i_extraPerms &= ~FE_DELETE_PERMS;
1637 iinfo->i_extraPerms |= FE_PERM_U_DELETE;
1639 iinfo->i_extraPerms |= FE_PERM_G_DELETE;
1641 iinfo->i_extraPerms |= FE_PERM_O_DELETE;
1644 int udf_write_inode(struct inode *inode, struct writeback_control *wbc)
1646 return udf_update_inode(inode, wbc->sync_mode == WB_SYNC_ALL);
1649 static int udf_sync_inode(struct inode *inode)
1651 return udf_update_inode(inode, 1);
1654 static void udf_adjust_time(struct udf_inode_info *iinfo, struct timespec64 time)
1656 if (iinfo->i_crtime.tv_sec > time.tv_sec ||
1657 (iinfo->i_crtime.tv_sec == time.tv_sec &&
1658 iinfo->i_crtime.tv_nsec > time.tv_nsec))
1659 iinfo->i_crtime = time;
1662 static int udf_update_inode(struct inode *inode, int do_sync)
1664 struct buffer_head *bh = NULL;
1665 struct fileEntry *fe;
1666 struct extendedFileEntry *efe;
1667 uint64_t lb_recorded;
1672 struct udf_sb_info *sbi = UDF_SB(inode->i_sb);
1673 unsigned char blocksize_bits = inode->i_sb->s_blocksize_bits;
1674 struct udf_inode_info *iinfo = UDF_I(inode);
1676 bh = udf_tgetblk(inode->i_sb,
1677 udf_get_lb_pblock(inode->i_sb, &iinfo->i_location, 0));
1679 udf_debug("getblk failure\n");
1684 memset(bh->b_data, 0, inode->i_sb->s_blocksize);
1685 fe = (struct fileEntry *)bh->b_data;
1686 efe = (struct extendedFileEntry *)bh->b_data;
1689 struct unallocSpaceEntry *use =
1690 (struct unallocSpaceEntry *)bh->b_data;
1692 use->lengthAllocDescs = cpu_to_le32(iinfo->i_lenAlloc);
1693 memcpy(bh->b_data + sizeof(struct unallocSpaceEntry),
1694 iinfo->i_data, inode->i_sb->s_blocksize -
1695 sizeof(struct unallocSpaceEntry));
1696 use->descTag.tagIdent = cpu_to_le16(TAG_IDENT_USE);
1697 crclen = sizeof(struct unallocSpaceEntry);
1702 if (UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_UID_FORGET))
1703 fe->uid = cpu_to_le32(UDF_INVALID_ID);
1705 fe->uid = cpu_to_le32(i_uid_read(inode));
1707 if (UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_GID_FORGET))
1708 fe->gid = cpu_to_le32(UDF_INVALID_ID);
1710 fe->gid = cpu_to_le32(i_gid_read(inode));
1712 udfperms = ((inode->i_mode & 0007)) |
1713 ((inode->i_mode & 0070) << 2) |
1714 ((inode->i_mode & 0700) << 4);
1716 udfperms |= iinfo->i_extraPerms;
1717 fe->permissions = cpu_to_le32(udfperms);
1719 if (S_ISDIR(inode->i_mode) && inode->i_nlink > 0)
1720 fe->fileLinkCount = cpu_to_le16(inode->i_nlink - 1);
1722 fe->fileLinkCount = cpu_to_le16(inode->i_nlink);
1724 fe->informationLength = cpu_to_le64(inode->i_size);
1726 if (S_ISCHR(inode->i_mode) || S_ISBLK(inode->i_mode)) {
1728 struct deviceSpec *dsea =
1729 (struct deviceSpec *)udf_get_extendedattr(inode, 12, 1);
1731 dsea = (struct deviceSpec *)
1732 udf_add_extendedattr(inode,
1733 sizeof(struct deviceSpec) +
1734 sizeof(struct regid), 12, 0x3);
1735 dsea->attrType = cpu_to_le32(12);
1736 dsea->attrSubtype = 1;
1737 dsea->attrLength = cpu_to_le32(
1738 sizeof(struct deviceSpec) +
1739 sizeof(struct regid));
1740 dsea->impUseLength = cpu_to_le32(sizeof(struct regid));
1742 eid = (struct regid *)dsea->impUse;
1743 memset(eid, 0, sizeof(*eid));
1744 strcpy(eid->ident, UDF_ID_DEVELOPER);
1745 eid->identSuffix[0] = UDF_OS_CLASS_UNIX;
1746 eid->identSuffix[1] = UDF_OS_ID_LINUX;
1747 dsea->majorDeviceIdent = cpu_to_le32(imajor(inode));
1748 dsea->minorDeviceIdent = cpu_to_le32(iminor(inode));
1751 if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_IN_ICB)
1752 lb_recorded = 0; /* No extents => no blocks! */
1755 (inode->i_blocks + (1 << (blocksize_bits - 9)) - 1) >>
1756 (blocksize_bits - 9);
1758 if (iinfo->i_efe == 0) {
1759 memcpy(bh->b_data + sizeof(struct fileEntry),
1761 inode->i_sb->s_blocksize - sizeof(struct fileEntry));
1762 fe->logicalBlocksRecorded = cpu_to_le64(lb_recorded);
1764 udf_time_to_disk_stamp(&fe->accessTime, inode->i_atime);
1765 udf_time_to_disk_stamp(&fe->modificationTime, inode->i_mtime);
1766 udf_time_to_disk_stamp(&fe->attrTime, inode->i_ctime);
1767 memset(&(fe->impIdent), 0, sizeof(struct regid));
1768 strcpy(fe->impIdent.ident, UDF_ID_DEVELOPER);
1769 fe->impIdent.identSuffix[0] = UDF_OS_CLASS_UNIX;
1770 fe->impIdent.identSuffix[1] = UDF_OS_ID_LINUX;
1771 fe->uniqueID = cpu_to_le64(iinfo->i_unique);
1772 fe->lengthExtendedAttr = cpu_to_le32(iinfo->i_lenEAttr);
1773 fe->lengthAllocDescs = cpu_to_le32(iinfo->i_lenAlloc);
1774 fe->checkpoint = cpu_to_le32(iinfo->i_checkpoint);
1775 fe->descTag.tagIdent = cpu_to_le16(TAG_IDENT_FE);
1776 crclen = sizeof(struct fileEntry);
1778 memcpy(bh->b_data + sizeof(struct extendedFileEntry),
1780 inode->i_sb->s_blocksize -
1781 sizeof(struct extendedFileEntry));
1783 cpu_to_le64(inode->i_size + iinfo->i_lenStreams);
1784 efe->logicalBlocksRecorded = cpu_to_le64(lb_recorded);
1786 if (iinfo->i_streamdir) {
1787 struct long_ad *icb_lad = &efe->streamDirectoryICB;
1789 icb_lad->extLocation =
1790 cpu_to_lelb(iinfo->i_locStreamdir);
1791 icb_lad->extLength =
1792 cpu_to_le32(inode->i_sb->s_blocksize);
1795 udf_adjust_time(iinfo, inode->i_atime);
1796 udf_adjust_time(iinfo, inode->i_mtime);
1797 udf_adjust_time(iinfo, inode->i_ctime);
1799 udf_time_to_disk_stamp(&efe->accessTime, inode->i_atime);
1800 udf_time_to_disk_stamp(&efe->modificationTime, inode->i_mtime);
1801 udf_time_to_disk_stamp(&efe->createTime, iinfo->i_crtime);
1802 udf_time_to_disk_stamp(&efe->attrTime, inode->i_ctime);
1804 memset(&(efe->impIdent), 0, sizeof(efe->impIdent));
1805 strcpy(efe->impIdent.ident, UDF_ID_DEVELOPER);
1806 efe->impIdent.identSuffix[0] = UDF_OS_CLASS_UNIX;
1807 efe->impIdent.identSuffix[1] = UDF_OS_ID_LINUX;
1808 efe->uniqueID = cpu_to_le64(iinfo->i_unique);
1809 efe->lengthExtendedAttr = cpu_to_le32(iinfo->i_lenEAttr);
1810 efe->lengthAllocDescs = cpu_to_le32(iinfo->i_lenAlloc);
1811 efe->checkpoint = cpu_to_le32(iinfo->i_checkpoint);
1812 efe->descTag.tagIdent = cpu_to_le16(TAG_IDENT_EFE);
1813 crclen = sizeof(struct extendedFileEntry);
1817 if (iinfo->i_strat4096) {
1818 fe->icbTag.strategyType = cpu_to_le16(4096);
1819 fe->icbTag.strategyParameter = cpu_to_le16(1);
1820 fe->icbTag.numEntries = cpu_to_le16(2);
1822 fe->icbTag.strategyType = cpu_to_le16(4);
1823 fe->icbTag.numEntries = cpu_to_le16(1);
1827 fe->icbTag.fileType = ICBTAG_FILE_TYPE_USE;
1828 else if (S_ISDIR(inode->i_mode))
1829 fe->icbTag.fileType = ICBTAG_FILE_TYPE_DIRECTORY;
1830 else if (S_ISREG(inode->i_mode))
1831 fe->icbTag.fileType = ICBTAG_FILE_TYPE_REGULAR;
1832 else if (S_ISLNK(inode->i_mode))
1833 fe->icbTag.fileType = ICBTAG_FILE_TYPE_SYMLINK;
1834 else if (S_ISBLK(inode->i_mode))
1835 fe->icbTag.fileType = ICBTAG_FILE_TYPE_BLOCK;
1836 else if (S_ISCHR(inode->i_mode))
1837 fe->icbTag.fileType = ICBTAG_FILE_TYPE_CHAR;
1838 else if (S_ISFIFO(inode->i_mode))
1839 fe->icbTag.fileType = ICBTAG_FILE_TYPE_FIFO;
1840 else if (S_ISSOCK(inode->i_mode))
1841 fe->icbTag.fileType = ICBTAG_FILE_TYPE_SOCKET;
1843 icbflags = iinfo->i_alloc_type |
1844 ((inode->i_mode & S_ISUID) ? ICBTAG_FLAG_SETUID : 0) |
1845 ((inode->i_mode & S_ISGID) ? ICBTAG_FLAG_SETGID : 0) |
1846 ((inode->i_mode & S_ISVTX) ? ICBTAG_FLAG_STICKY : 0) |
1847 (le16_to_cpu(fe->icbTag.flags) &
1848 ~(ICBTAG_FLAG_AD_MASK | ICBTAG_FLAG_SETUID |
1849 ICBTAG_FLAG_SETGID | ICBTAG_FLAG_STICKY));
1851 fe->icbTag.flags = cpu_to_le16(icbflags);
1852 if (sbi->s_udfrev >= 0x0200)
1853 fe->descTag.descVersion = cpu_to_le16(3);
1855 fe->descTag.descVersion = cpu_to_le16(2);
1856 fe->descTag.tagSerialNum = cpu_to_le16(sbi->s_serial_number);
1857 fe->descTag.tagLocation = cpu_to_le32(
1858 iinfo->i_location.logicalBlockNum);
1859 crclen += iinfo->i_lenEAttr + iinfo->i_lenAlloc - sizeof(struct tag);
1860 fe->descTag.descCRCLength = cpu_to_le16(crclen);
1861 fe->descTag.descCRC = cpu_to_le16(crc_itu_t(0, (char *)fe + sizeof(struct tag),
1863 fe->descTag.tagChecksum = udf_tag_checksum(&fe->descTag);
1865 set_buffer_uptodate(bh);
1868 /* write the data blocks */
1869 mark_buffer_dirty(bh);
1871 sync_dirty_buffer(bh);
1872 if (buffer_write_io_error(bh)) {
1873 udf_warn(inode->i_sb, "IO error syncing udf inode [%08lx]\n",
1883 struct inode *__udf_iget(struct super_block *sb, struct kernel_lb_addr *ino,
1886 unsigned long block = udf_get_lb_pblock(sb, ino, 0);
1887 struct inode *inode = iget_locked(sb, block);
1891 return ERR_PTR(-ENOMEM);
1893 if (!(inode->i_state & I_NEW))
1896 memcpy(&UDF_I(inode)->i_location, ino, sizeof(struct kernel_lb_addr));
1897 err = udf_read_inode(inode, hidden_inode);
1900 return ERR_PTR(err);
1902 unlock_new_inode(inode);
1907 int udf_setup_indirect_aext(struct inode *inode, udf_pblk_t block,
1908 struct extent_position *epos)
1910 struct super_block *sb = inode->i_sb;
1911 struct buffer_head *bh;
1912 struct allocExtDesc *aed;
1913 struct extent_position nepos;
1914 struct kernel_lb_addr neloc;
1917 if (UDF_I(inode)->i_alloc_type == ICBTAG_FLAG_AD_SHORT)
1918 adsize = sizeof(struct short_ad);
1919 else if (UDF_I(inode)->i_alloc_type == ICBTAG_FLAG_AD_LONG)
1920 adsize = sizeof(struct long_ad);
1924 neloc.logicalBlockNum = block;
1925 neloc.partitionReferenceNum = epos->block.partitionReferenceNum;
1927 bh = udf_tgetblk(sb, udf_get_lb_pblock(sb, &neloc, 0));
1931 memset(bh->b_data, 0x00, sb->s_blocksize);
1932 set_buffer_uptodate(bh);
1934 mark_buffer_dirty_inode(bh, inode);
1936 aed = (struct allocExtDesc *)(bh->b_data);
1937 if (!UDF_QUERY_FLAG(sb, UDF_FLAG_STRICT)) {
1938 aed->previousAllocExtLocation =
1939 cpu_to_le32(epos->block.logicalBlockNum);
1941 aed->lengthAllocDescs = cpu_to_le32(0);
1942 if (UDF_SB(sb)->s_udfrev >= 0x0200)
1946 udf_new_tag(bh->b_data, TAG_IDENT_AED, ver, 1, block,
1947 sizeof(struct tag));
1949 nepos.block = neloc;
1950 nepos.offset = sizeof(struct allocExtDesc);
1954 * Do we have to copy current last extent to make space for indirect
1957 if (epos->offset + adsize > sb->s_blocksize) {
1958 struct kernel_lb_addr cp_loc;
1962 epos->offset -= adsize;
1963 cp_type = udf_current_aext(inode, epos, &cp_loc, &cp_len, 0);
1964 cp_len |= ((uint32_t)cp_type) << 30;
1966 __udf_add_aext(inode, &nepos, &cp_loc, cp_len, 1);
1967 udf_write_aext(inode, epos, &nepos.block,
1968 sb->s_blocksize | EXT_NEXT_EXTENT_ALLOCDESCS, 0);
1970 __udf_add_aext(inode, epos, &nepos.block,
1971 sb->s_blocksize | EXT_NEXT_EXTENT_ALLOCDESCS, 0);
1981 * Append extent at the given position - should be the first free one in inode
1982 * / indirect extent. This function assumes there is enough space in the inode
1983 * or indirect extent. Use udf_add_aext() if you didn't check for this before.
1985 int __udf_add_aext(struct inode *inode, struct extent_position *epos,
1986 struct kernel_lb_addr *eloc, uint32_t elen, int inc)
1988 struct udf_inode_info *iinfo = UDF_I(inode);
1989 struct allocExtDesc *aed;
1992 if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_SHORT)
1993 adsize = sizeof(struct short_ad);
1994 else if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_LONG)
1995 adsize = sizeof(struct long_ad);
2000 WARN_ON(iinfo->i_lenAlloc !=
2001 epos->offset - udf_file_entry_alloc_offset(inode));
2003 aed = (struct allocExtDesc *)epos->bh->b_data;
2004 WARN_ON(le32_to_cpu(aed->lengthAllocDescs) !=
2005 epos->offset - sizeof(struct allocExtDesc));
2006 WARN_ON(epos->offset + adsize > inode->i_sb->s_blocksize);
2009 udf_write_aext(inode, epos, eloc, elen, inc);
2012 iinfo->i_lenAlloc += adsize;
2013 mark_inode_dirty(inode);
2015 aed = (struct allocExtDesc *)epos->bh->b_data;
2016 le32_add_cpu(&aed->lengthAllocDescs, adsize);
2017 if (!UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_STRICT) ||
2018 UDF_SB(inode->i_sb)->s_udfrev >= 0x0201)
2019 udf_update_tag(epos->bh->b_data,
2020 epos->offset + (inc ? 0 : adsize));
2022 udf_update_tag(epos->bh->b_data,
2023 sizeof(struct allocExtDesc));
2024 mark_buffer_dirty_inode(epos->bh, inode);
2031 * Append extent at given position - should be the first free one in inode
2032 * / indirect extent. Takes care of allocating and linking indirect blocks.
2034 int udf_add_aext(struct inode *inode, struct extent_position *epos,
2035 struct kernel_lb_addr *eloc, uint32_t elen, int inc)
2038 struct super_block *sb = inode->i_sb;
2040 if (UDF_I(inode)->i_alloc_type == ICBTAG_FLAG_AD_SHORT)
2041 adsize = sizeof(struct short_ad);
2042 else if (UDF_I(inode)->i_alloc_type == ICBTAG_FLAG_AD_LONG)
2043 adsize = sizeof(struct long_ad);
2047 if (epos->offset + (2 * adsize) > sb->s_blocksize) {
2049 udf_pblk_t new_block;
2051 new_block = udf_new_block(sb, NULL,
2052 epos->block.partitionReferenceNum,
2053 epos->block.logicalBlockNum, &err);
2057 err = udf_setup_indirect_aext(inode, new_block, epos);
2062 return __udf_add_aext(inode, epos, eloc, elen, inc);
2065 void udf_write_aext(struct inode *inode, struct extent_position *epos,
2066 struct kernel_lb_addr *eloc, uint32_t elen, int inc)
2070 struct short_ad *sad;
2071 struct long_ad *lad;
2072 struct udf_inode_info *iinfo = UDF_I(inode);
2075 ptr = iinfo->i_data + epos->offset -
2076 udf_file_entry_alloc_offset(inode) +
2079 ptr = epos->bh->b_data + epos->offset;
2081 switch (iinfo->i_alloc_type) {
2082 case ICBTAG_FLAG_AD_SHORT:
2083 sad = (struct short_ad *)ptr;
2084 sad->extLength = cpu_to_le32(elen);
2085 sad->extPosition = cpu_to_le32(eloc->logicalBlockNum);
2086 adsize = sizeof(struct short_ad);
2088 case ICBTAG_FLAG_AD_LONG:
2089 lad = (struct long_ad *)ptr;
2090 lad->extLength = cpu_to_le32(elen);
2091 lad->extLocation = cpu_to_lelb(*eloc);
2092 memset(lad->impUse, 0x00, sizeof(lad->impUse));
2093 adsize = sizeof(struct long_ad);
2100 if (!UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_STRICT) ||
2101 UDF_SB(inode->i_sb)->s_udfrev >= 0x0201) {
2102 struct allocExtDesc *aed =
2103 (struct allocExtDesc *)epos->bh->b_data;
2104 udf_update_tag(epos->bh->b_data,
2105 le32_to_cpu(aed->lengthAllocDescs) +
2106 sizeof(struct allocExtDesc));
2108 mark_buffer_dirty_inode(epos->bh, inode);
2110 mark_inode_dirty(inode);
2114 epos->offset += adsize;
2118 * Only 1 indirect extent in a row really makes sense but allow upto 16 in case
2119 * someone does some weird stuff.
2121 #define UDF_MAX_INDIR_EXTS 16
2123 int8_t udf_next_aext(struct inode *inode, struct extent_position *epos,
2124 struct kernel_lb_addr *eloc, uint32_t *elen, int inc)
2127 unsigned int indirections = 0;
2129 while ((etype = udf_current_aext(inode, epos, eloc, elen, inc)) ==
2130 (EXT_NEXT_EXTENT_ALLOCDESCS >> 30)) {
2133 if (++indirections > UDF_MAX_INDIR_EXTS) {
2134 udf_err(inode->i_sb,
2135 "too many indirect extents in inode %lu\n",
2140 epos->block = *eloc;
2141 epos->offset = sizeof(struct allocExtDesc);
2143 block = udf_get_lb_pblock(inode->i_sb, &epos->block, 0);
2144 epos->bh = udf_tread(inode->i_sb, block);
2146 udf_debug("reading block %u failed!\n", block);
2154 int8_t udf_current_aext(struct inode *inode, struct extent_position *epos,
2155 struct kernel_lb_addr *eloc, uint32_t *elen, int inc)
2160 struct short_ad *sad;
2161 struct long_ad *lad;
2162 struct udf_inode_info *iinfo = UDF_I(inode);
2166 epos->offset = udf_file_entry_alloc_offset(inode);
2167 ptr = iinfo->i_data + epos->offset -
2168 udf_file_entry_alloc_offset(inode) +
2170 alen = udf_file_entry_alloc_offset(inode) +
2174 epos->offset = sizeof(struct allocExtDesc);
2175 ptr = epos->bh->b_data + epos->offset;
2176 alen = sizeof(struct allocExtDesc) +
2177 le32_to_cpu(((struct allocExtDesc *)epos->bh->b_data)->
2181 switch (iinfo->i_alloc_type) {
2182 case ICBTAG_FLAG_AD_SHORT:
2183 sad = udf_get_fileshortad(ptr, alen, &epos->offset, inc);
2186 etype = le32_to_cpu(sad->extLength) >> 30;
2187 eloc->logicalBlockNum = le32_to_cpu(sad->extPosition);
2188 eloc->partitionReferenceNum =
2189 iinfo->i_location.partitionReferenceNum;
2190 *elen = le32_to_cpu(sad->extLength) & UDF_EXTENT_LENGTH_MASK;
2192 case ICBTAG_FLAG_AD_LONG:
2193 lad = udf_get_filelongad(ptr, alen, &epos->offset, inc);
2196 etype = le32_to_cpu(lad->extLength) >> 30;
2197 *eloc = lelb_to_cpu(lad->extLocation);
2198 *elen = le32_to_cpu(lad->extLength) & UDF_EXTENT_LENGTH_MASK;
2201 udf_debug("alloc_type = %u unsupported\n", iinfo->i_alloc_type);
2208 static int8_t udf_insert_aext(struct inode *inode, struct extent_position epos,
2209 struct kernel_lb_addr neloc, uint32_t nelen)
2211 struct kernel_lb_addr oeloc;
2218 while ((etype = udf_next_aext(inode, &epos, &oeloc, &oelen, 0)) != -1) {
2219 udf_write_aext(inode, &epos, &neloc, nelen, 1);
2221 nelen = (etype << 30) | oelen;
2223 udf_add_aext(inode, &epos, &neloc, nelen, 1);
2226 return (nelen >> 30);
2229 int8_t udf_delete_aext(struct inode *inode, struct extent_position epos)
2231 struct extent_position oepos;
2234 struct allocExtDesc *aed;
2235 struct udf_inode_info *iinfo;
2236 struct kernel_lb_addr eloc;
2244 iinfo = UDF_I(inode);
2245 if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_SHORT)
2246 adsize = sizeof(struct short_ad);
2247 else if (iinfo->i_alloc_type == ICBTAG_FLAG_AD_LONG)
2248 adsize = sizeof(struct long_ad);
2253 if (udf_next_aext(inode, &epos, &eloc, &elen, 1) == -1)
2256 while ((etype = udf_next_aext(inode, &epos, &eloc, &elen, 1)) != -1) {
2257 udf_write_aext(inode, &oepos, &eloc, (etype << 30) | elen, 1);
2258 if (oepos.bh != epos.bh) {
2259 oepos.block = epos.block;
2263 oepos.offset = epos.offset - adsize;
2266 memset(&eloc, 0x00, sizeof(struct kernel_lb_addr));
2269 if (epos.bh != oepos.bh) {
2270 udf_free_blocks(inode->i_sb, inode, &epos.block, 0, 1);
2271 udf_write_aext(inode, &oepos, &eloc, elen, 1);
2272 udf_write_aext(inode, &oepos, &eloc, elen, 1);
2274 iinfo->i_lenAlloc -= (adsize * 2);
2275 mark_inode_dirty(inode);
2277 aed = (struct allocExtDesc *)oepos.bh->b_data;
2278 le32_add_cpu(&aed->lengthAllocDescs, -(2 * adsize));
2279 if (!UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_STRICT) ||
2280 UDF_SB(inode->i_sb)->s_udfrev >= 0x0201)
2281 udf_update_tag(oepos.bh->b_data,
2282 oepos.offset - (2 * adsize));
2284 udf_update_tag(oepos.bh->b_data,
2285 sizeof(struct allocExtDesc));
2286 mark_buffer_dirty_inode(oepos.bh, inode);
2289 udf_write_aext(inode, &oepos, &eloc, elen, 1);
2291 iinfo->i_lenAlloc -= adsize;
2292 mark_inode_dirty(inode);
2294 aed = (struct allocExtDesc *)oepos.bh->b_data;
2295 le32_add_cpu(&aed->lengthAllocDescs, -adsize);
2296 if (!UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_STRICT) ||
2297 UDF_SB(inode->i_sb)->s_udfrev >= 0x0201)
2298 udf_update_tag(oepos.bh->b_data,
2299 epos.offset - adsize);
2301 udf_update_tag(oepos.bh->b_data,
2302 sizeof(struct allocExtDesc));
2303 mark_buffer_dirty_inode(oepos.bh, inode);
2310 return (elen >> 30);
2313 int8_t inode_bmap(struct inode *inode, sector_t block,
2314 struct extent_position *pos, struct kernel_lb_addr *eloc,
2315 uint32_t *elen, sector_t *offset)
2317 unsigned char blocksize_bits = inode->i_sb->s_blocksize_bits;
2318 loff_t lbcount = 0, bcount = (loff_t) block << blocksize_bits;
2320 struct udf_inode_info *iinfo;
2322 iinfo = UDF_I(inode);
2323 if (!udf_read_extent_cache(inode, bcount, &lbcount, pos)) {
2325 pos->block = iinfo->i_location;
2330 etype = udf_next_aext(inode, pos, eloc, elen, 1);
2332 *offset = (bcount - lbcount) >> blocksize_bits;
2333 iinfo->i_lenExtents = lbcount;
2337 } while (lbcount <= bcount);
2338 /* update extent cache */
2339 udf_update_extent_cache(inode, lbcount - *elen, pos);
2340 *offset = (bcount + *elen - lbcount) >> blocksize_bits;
2345 udf_pblk_t udf_block_map(struct inode *inode, sector_t block)
2347 struct kernel_lb_addr eloc;
2350 struct extent_position epos = {};
2353 down_read(&UDF_I(inode)->i_data_sem);
2355 if (inode_bmap(inode, block, &epos, &eloc, &elen, &offset) ==
2356 (EXT_RECORDED_ALLOCATED >> 30))
2357 ret = udf_get_lb_pblock(inode->i_sb, &eloc, offset);
2361 up_read(&UDF_I(inode)->i_data_sem);
2364 if (UDF_QUERY_FLAG(inode->i_sb, UDF_FLAG_VARCONV))
2365 return udf_fixed_to_variable(ret);