reiserfs: cleanup, reformat comments to normal kernel style
[cascardo/linux.git] / fs / reiserfs / inode.c
1 /*
2  * Copyright 2000 by Hans Reiser, licensing governed by reiserfs/README
3  */
4
5 #include <linux/time.h>
6 #include <linux/fs.h>
7 #include "reiserfs.h"
8 #include "acl.h"
9 #include "xattr.h"
10 #include <linux/exportfs.h>
11 #include <linux/pagemap.h>
12 #include <linux/highmem.h>
13 #include <linux/slab.h>
14 #include <asm/uaccess.h>
15 #include <asm/unaligned.h>
16 #include <linux/buffer_head.h>
17 #include <linux/mpage.h>
18 #include <linux/writeback.h>
19 #include <linux/quotaops.h>
20 #include <linux/swap.h>
21 #include <linux/aio.h>
22
23 int reiserfs_commit_write(struct file *f, struct page *page,
24                           unsigned from, unsigned to);
25
26 void reiserfs_evict_inode(struct inode *inode)
27 {
28         /*
29          * We need blocks for transaction + (user+group) quota
30          * update (possibly delete)
31          */
32         int jbegin_count =
33             JOURNAL_PER_BALANCE_CNT * 2 +
34             2 * REISERFS_QUOTA_INIT_BLOCKS(inode->i_sb);
35         struct reiserfs_transaction_handle th;
36         int err;
37
38         if (!inode->i_nlink && !is_bad_inode(inode))
39                 dquot_initialize(inode);
40
41         truncate_inode_pages_final(&inode->i_data);
42         if (inode->i_nlink)
43                 goto no_delete;
44
45         /*
46          * The = 0 happens when we abort creating a new inode
47          * for some reason like lack of space..
48          * also handles bad_inode case
49          */
50         if (!(inode->i_state & I_NEW) && INODE_PKEY(inode)->k_objectid != 0) {
51
52                 reiserfs_delete_xattrs(inode);
53
54                 reiserfs_write_lock(inode->i_sb);
55
56                 if (journal_begin(&th, inode->i_sb, jbegin_count))
57                         goto out;
58                 reiserfs_update_inode_transaction(inode);
59
60                 reiserfs_discard_prealloc(&th, inode);
61
62                 err = reiserfs_delete_object(&th, inode);
63
64                 /*
65                  * Do quota update inside a transaction for journaled quotas.
66                  * We must do that after delete_object so that quota updates
67                  * go into the same transaction as stat data deletion
68                  */
69                 if (!err) {
70                         int depth = reiserfs_write_unlock_nested(inode->i_sb);
71                         dquot_free_inode(inode);
72                         reiserfs_write_lock_nested(inode->i_sb, depth);
73                 }
74
75                 if (journal_end(&th, inode->i_sb, jbegin_count))
76                         goto out;
77
78                 /*
79                  * check return value from reiserfs_delete_object after
80                  * ending the transaction
81                  */
82                 if (err)
83                     goto out;
84
85                 /*
86                  * all items of file are deleted, so we can remove
87                  * "save" link
88                  * we can't do anything about an error here
89                  */
90                 remove_save_link(inode, 0 /* not truncate */);
91 out:
92                 reiserfs_write_unlock(inode->i_sb);
93         } else {
94                 /* no object items are in the tree */
95                 ;
96         }
97
98         /* note this must go after the journal_end to prevent deadlock */
99         clear_inode(inode);
100
101         dquot_drop(inode);
102         inode->i_blocks = 0;
103         return;
104
105 no_delete:
106         clear_inode(inode);
107         dquot_drop(inode);
108 }
109
110 static void _make_cpu_key(struct cpu_key *key, int version, __u32 dirid,
111                           __u32 objectid, loff_t offset, int type, int length)
112 {
113         key->version = version;
114
115         key->on_disk_key.k_dir_id = dirid;
116         key->on_disk_key.k_objectid = objectid;
117         set_cpu_key_k_offset(key, offset);
118         set_cpu_key_k_type(key, type);
119         key->key_length = length;
120 }
121
122 /*
123  * take base of inode_key (it comes from inode always) (dirid, objectid)
124  * and version from an inode, set offset and type of key
125  */
126 void make_cpu_key(struct cpu_key *key, struct inode *inode, loff_t offset,
127                   int type, int length)
128 {
129         _make_cpu_key(key, get_inode_item_key_version(inode),
130                       le32_to_cpu(INODE_PKEY(inode)->k_dir_id),
131                       le32_to_cpu(INODE_PKEY(inode)->k_objectid), offset, type,
132                       length);
133 }
134
135 /* when key is 0, do not set version and short key */
136 inline void make_le_item_head(struct item_head *ih, const struct cpu_key *key,
137                               int version,
138                               loff_t offset, int type, int length,
139                               int entry_count /*or ih_free_space */ )
140 {
141         if (key) {
142                 ih->ih_key.k_dir_id = cpu_to_le32(key->on_disk_key.k_dir_id);
143                 ih->ih_key.k_objectid =
144                     cpu_to_le32(key->on_disk_key.k_objectid);
145         }
146         put_ih_version(ih, version);
147         set_le_ih_k_offset(ih, offset);
148         set_le_ih_k_type(ih, type);
149         put_ih_item_len(ih, length);
150         /*    set_ih_free_space (ih, 0); */
151         /*
152          * for directory items it is entry count, for directs and stat
153          * datas - 0xffff, for indirects - 0
154          */
155         put_ih_entry_count(ih, entry_count);
156 }
157
158 /*
159  * FIXME: we might cache recently accessed indirect item
160  * Ugh.  Not too eager for that....
161  * I cut the code until such time as I see a convincing argument (benchmark).
162  * I don't want a bloated inode struct..., and I don't like code complexity....
163  */
164
165 /*
166  * cutting the code is fine, since it really isn't in use yet and is easy
167  * to add back in.  But, Vladimir has a really good idea here.  Think
168  * about what happens for reading a file.  For each page,
169  * The VFS layer calls reiserfs_readpage, who searches the tree to find
170  * an indirect item.  This indirect item has X number of pointers, where
171  * X is a big number if we've done the block allocation right.  But,
172  * we only use one or two of these pointers during each call to readpage,
173  * needlessly researching again later on.
174  *
175  * The size of the cache could be dynamic based on the size of the file.
176  *
177  * I'd also like to see us cache the location the stat data item, since
178  * we are needlessly researching for that frequently.
179  *
180  * --chris
181  */
182
183 /*
184  * If this page has a file tail in it, and
185  * it was read in by get_block_create_0, the page data is valid,
186  * but tail is still sitting in a direct item, and we can't write to
187  * it.  So, look through this page, and check all the mapped buffers
188  * to make sure they have valid block numbers.  Any that don't need
189  * to be unmapped, so that __block_write_begin will correctly call
190  * reiserfs_get_block to convert the tail into an unformatted node
191  */
192 static inline void fix_tail_page_for_writing(struct page *page)
193 {
194         struct buffer_head *head, *next, *bh;
195
196         if (page && page_has_buffers(page)) {
197                 head = page_buffers(page);
198                 bh = head;
199                 do {
200                         next = bh->b_this_page;
201                         if (buffer_mapped(bh) && bh->b_blocknr == 0) {
202                                 reiserfs_unmap_buffer(bh);
203                         }
204                         bh = next;
205                 } while (bh != head);
206         }
207 }
208
209 /*
210  * reiserfs_get_block does not need to allocate a block only if it has been
211  * done already or non-hole position has been found in the indirect item
212  */
213 static inline int allocation_needed(int retval, b_blocknr_t allocated,
214                                     struct item_head *ih,
215                                     __le32 * item, int pos_in_item)
216 {
217         if (allocated)
218                 return 0;
219         if (retval == POSITION_FOUND && is_indirect_le_ih(ih) &&
220             get_block_num(item, pos_in_item))
221                 return 0;
222         return 1;
223 }
224
225 static inline int indirect_item_found(int retval, struct item_head *ih)
226 {
227         return (retval == POSITION_FOUND) && is_indirect_le_ih(ih);
228 }
229
230 static inline void set_block_dev_mapped(struct buffer_head *bh,
231                                         b_blocknr_t block, struct inode *inode)
232 {
233         map_bh(bh, inode->i_sb, block);
234 }
235
236 /*
237  * files which were created in the earlier version can not be longer,
238  * than 2 gb
239  */
240 static int file_capable(struct inode *inode, sector_t block)
241 {
242         /* it is new file. */
243         if (get_inode_item_key_version(inode) != KEY_FORMAT_3_5 ||
244             /* old file, but 'block' is inside of 2gb */
245             block < (1 << (31 - inode->i_sb->s_blocksize_bits)))
246                 return 1;
247
248         return 0;
249 }
250
251 static int restart_transaction(struct reiserfs_transaction_handle *th,
252                                struct inode *inode, struct treepath *path)
253 {
254         struct super_block *s = th->t_super;
255         int len = th->t_blocks_allocated;
256         int err;
257
258         BUG_ON(!th->t_trans_id);
259         BUG_ON(!th->t_refcount);
260
261         pathrelse(path);
262
263         /* we cannot restart while nested */
264         if (th->t_refcount > 1) {
265                 return 0;
266         }
267         reiserfs_update_sd(th, inode);
268         err = journal_end(th, s, len);
269         if (!err) {
270                 err = journal_begin(th, s, JOURNAL_PER_BALANCE_CNT * 6);
271                 if (!err)
272                         reiserfs_update_inode_transaction(inode);
273         }
274         return err;
275 }
276
277 /*
278  * it is called by get_block when create == 0. Returns block number
279  * for 'block'-th logical block of file. When it hits direct item it
280  * returns 0 (being called from bmap) or read direct item into piece
281  * of page (bh_result)
282  * Please improve the english/clarity in the comment above, as it is
283  * hard to understand.
284  */
285 static int _get_block_create_0(struct inode *inode, sector_t block,
286                                struct buffer_head *bh_result, int args)
287 {
288         INITIALIZE_PATH(path);
289         struct cpu_key key;
290         struct buffer_head *bh;
291         struct item_head *ih, tmp_ih;
292         b_blocknr_t blocknr;
293         char *p = NULL;
294         int chars;
295         int ret;
296         int result;
297         int done = 0;
298         unsigned long offset;
299
300         /* prepare the key to look for the 'block'-th block of file */
301         make_cpu_key(&key, inode,
302                      (loff_t) block * inode->i_sb->s_blocksize + 1, TYPE_ANY,
303                      3);
304
305         result = search_for_position_by_key(inode->i_sb, &key, &path);
306         if (result != POSITION_FOUND) {
307                 pathrelse(&path);
308                 if (p)
309                         kunmap(bh_result->b_page);
310                 if (result == IO_ERROR)
311                         return -EIO;
312                 /*
313                  * We do not return -ENOENT if there is a hole but page is
314                  * uptodate, because it means that there is some MMAPED data
315                  * associated with it that is yet to be written to disk.
316                  */
317                 if ((args & GET_BLOCK_NO_HOLE)
318                     && !PageUptodate(bh_result->b_page)) {
319                         return -ENOENT;
320                 }
321                 return 0;
322         }
323
324         bh = get_last_bh(&path);
325         ih = tp_item_head(&path);
326         if (is_indirect_le_ih(ih)) {
327                 __le32 *ind_item = (__le32 *) ih_item_body(bh, ih);
328
329                 /*
330                  * FIXME: here we could cache indirect item or part of it in
331                  * the inode to avoid search_by_key in case of subsequent
332                  * access to file
333                  */
334                 blocknr = get_block_num(ind_item, path.pos_in_item);
335                 ret = 0;
336                 if (blocknr) {
337                         map_bh(bh_result, inode->i_sb, blocknr);
338                         if (path.pos_in_item ==
339                             ((ih_item_len(ih) / UNFM_P_SIZE) - 1)) {
340                                 set_buffer_boundary(bh_result);
341                         }
342                 } else
343                         /*
344                          * We do not return -ENOENT if there is a hole but
345                          * page is uptodate, because it means that there is
346                          * some MMAPED data associated with it that is
347                          * yet to be written to disk.
348                          */
349                 if ((args & GET_BLOCK_NO_HOLE)
350                             && !PageUptodate(bh_result->b_page)) {
351                         ret = -ENOENT;
352                 }
353
354                 pathrelse(&path);
355                 if (p)
356                         kunmap(bh_result->b_page);
357                 return ret;
358         }
359         /* requested data are in direct item(s) */
360         if (!(args & GET_BLOCK_READ_DIRECT)) {
361                 /*
362                  * we are called by bmap. FIXME: we can not map block of file
363                  * when it is stored in direct item(s)
364                  */
365                 pathrelse(&path);
366                 if (p)
367                         kunmap(bh_result->b_page);
368                 return -ENOENT;
369         }
370
371         /*
372          * if we've got a direct item, and the buffer or page was uptodate,
373          * we don't want to pull data off disk again.  skip to the
374          * end, where we map the buffer and return
375          */
376         if (buffer_uptodate(bh_result)) {
377                 goto finished;
378         } else
379                 /*
380                  * grab_tail_page can trigger calls to reiserfs_get_block on
381                  * up to date pages without any buffers.  If the page is up
382                  * to date, we don't want read old data off disk.  Set the up
383                  * to date bit on the buffer instead and jump to the end
384                  */
385         if (!bh_result->b_page || PageUptodate(bh_result->b_page)) {
386                 set_buffer_uptodate(bh_result);
387                 goto finished;
388         }
389         /* read file tail into part of page */
390         offset = (cpu_key_k_offset(&key) - 1) & (PAGE_CACHE_SIZE - 1);
391         copy_item_head(&tmp_ih, ih);
392
393         /*
394          * we only want to kmap if we are reading the tail into the page.
395          * this is not the common case, so we don't kmap until we are
396          * sure we need to.  But, this means the item might move if
397          * kmap schedules
398          */
399         if (!p)
400                 p = (char *)kmap(bh_result->b_page);
401
402         p += offset;
403         memset(p, 0, inode->i_sb->s_blocksize);
404         do {
405                 if (!is_direct_le_ih(ih)) {
406                         BUG();
407                 }
408                 /*
409                  * make sure we don't read more bytes than actually exist in
410                  * the file.  This can happen in odd cases where i_size isn't
411                  * correct, and when direct item padding results in a few
412                  * extra bytes at the end of the direct item
413                  */
414                 if ((le_ih_k_offset(ih) + path.pos_in_item) > inode->i_size)
415                         break;
416                 if ((le_ih_k_offset(ih) - 1 + ih_item_len(ih)) > inode->i_size) {
417                         chars =
418                             inode->i_size - (le_ih_k_offset(ih) - 1) -
419                             path.pos_in_item;
420                         done = 1;
421                 } else {
422                         chars = ih_item_len(ih) - path.pos_in_item;
423                 }
424                 memcpy(p, ih_item_body(bh, ih) + path.pos_in_item, chars);
425
426                 if (done)
427                         break;
428
429                 p += chars;
430
431                 /*
432                  * we done, if read direct item is not the last item of
433                  * node FIXME: we could try to check right delimiting key
434                  * to see whether direct item continues in the right
435                  * neighbor or rely on i_size
436                  */
437                 if (PATH_LAST_POSITION(&path) != (B_NR_ITEMS(bh) - 1))
438                         break;
439
440                 /* update key to look for the next piece */
441                 set_cpu_key_k_offset(&key, cpu_key_k_offset(&key) + chars);
442                 result = search_for_position_by_key(inode->i_sb, &key, &path);
443                 if (result != POSITION_FOUND)
444                         /* i/o error most likely */
445                         break;
446                 bh = get_last_bh(&path);
447                 ih = tp_item_head(&path);
448         } while (1);
449
450         flush_dcache_page(bh_result->b_page);
451         kunmap(bh_result->b_page);
452
453       finished:
454         pathrelse(&path);
455
456         if (result == IO_ERROR)
457                 return -EIO;
458
459         /*
460          * this buffer has valid data, but isn't valid for io.  mapping it to
461          * block #0 tells the rest of reiserfs it just has a tail in it
462          */
463         map_bh(bh_result, inode->i_sb, 0);
464         set_buffer_uptodate(bh_result);
465         return 0;
466 }
467
468 /*
469  * this is called to create file map. So, _get_block_create_0 will not
470  * read direct item
471  */
472 static int reiserfs_bmap(struct inode *inode, sector_t block,
473                          struct buffer_head *bh_result, int create)
474 {
475         if (!file_capable(inode, block))
476                 return -EFBIG;
477
478         reiserfs_write_lock(inode->i_sb);
479         /* do not read the direct item */
480         _get_block_create_0(inode, block, bh_result, 0);
481         reiserfs_write_unlock(inode->i_sb);
482         return 0;
483 }
484
485 /*
486  * special version of get_block that is only used by grab_tail_page right
487  * now.  It is sent to __block_write_begin, and when you try to get a
488  * block past the end of the file (or a block from a hole) it returns
489  * -ENOENT instead of a valid buffer.  __block_write_begin expects to
490  * be able to do i/o on the buffers returned, unless an error value
491  * is also returned.
492  *
493  * So, this allows __block_write_begin to be used for reading a single block
494  * in a page.  Where it does not produce a valid page for holes, or past the
495  * end of the file.  This turns out to be exactly what we need for reading
496  * tails for conversion.
497  *
498  * The point of the wrapper is forcing a certain value for create, even
499  * though the VFS layer is calling this function with create==1.  If you
500  * don't want to send create == GET_BLOCK_NO_HOLE to reiserfs_get_block,
501  * don't use this function.
502 */
503 static int reiserfs_get_block_create_0(struct inode *inode, sector_t block,
504                                        struct buffer_head *bh_result,
505                                        int create)
506 {
507         return reiserfs_get_block(inode, block, bh_result, GET_BLOCK_NO_HOLE);
508 }
509
510 /*
511  * This is special helper for reiserfs_get_block in case we are executing
512  * direct_IO request.
513  */
514 static int reiserfs_get_blocks_direct_io(struct inode *inode,
515                                          sector_t iblock,
516                                          struct buffer_head *bh_result,
517                                          int create)
518 {
519         int ret;
520
521         bh_result->b_page = NULL;
522
523         /*
524          * We set the b_size before reiserfs_get_block call since it is
525          * referenced in convert_tail_for_hole() that may be called from
526          * reiserfs_get_block()
527          */
528         bh_result->b_size = (1 << inode->i_blkbits);
529
530         ret = reiserfs_get_block(inode, iblock, bh_result,
531                                  create | GET_BLOCK_NO_DANGLE);
532         if (ret)
533                 goto out;
534
535         /* don't allow direct io onto tail pages */
536         if (buffer_mapped(bh_result) && bh_result->b_blocknr == 0) {
537                 /*
538                  * make sure future calls to the direct io funcs for this
539                  * offset in the file fail by unmapping the buffer
540                  */
541                 clear_buffer_mapped(bh_result);
542                 ret = -EINVAL;
543         }
544
545         /*
546          * Possible unpacked tail. Flush the data before pages have
547          * disappeared
548          */
549         if (REISERFS_I(inode)->i_flags & i_pack_on_close_mask) {
550                 int err;
551
552                 reiserfs_write_lock(inode->i_sb);
553
554                 err = reiserfs_commit_for_inode(inode);
555                 REISERFS_I(inode)->i_flags &= ~i_pack_on_close_mask;
556
557                 reiserfs_write_unlock(inode->i_sb);
558
559                 if (err < 0)
560                         ret = err;
561         }
562       out:
563         return ret;
564 }
565
566 /*
567  * helper function for when reiserfs_get_block is called for a hole
568  * but the file tail is still in a direct item
569  * bh_result is the buffer head for the hole
570  * tail_offset is the offset of the start of the tail in the file
571  *
572  * This calls prepare_write, which will start a new transaction
573  * you should not be in a transaction, or have any paths held when you
574  * call this.
575  */
576 static int convert_tail_for_hole(struct inode *inode,
577                                  struct buffer_head *bh_result,
578                                  loff_t tail_offset)
579 {
580         unsigned long index;
581         unsigned long tail_end;
582         unsigned long tail_start;
583         struct page *tail_page;
584         struct page *hole_page = bh_result->b_page;
585         int retval = 0;
586
587         if ((tail_offset & (bh_result->b_size - 1)) != 1)
588                 return -EIO;
589
590         /* always try to read until the end of the block */
591         tail_start = tail_offset & (PAGE_CACHE_SIZE - 1);
592         tail_end = (tail_start | (bh_result->b_size - 1)) + 1;
593
594         index = tail_offset >> PAGE_CACHE_SHIFT;
595         /*
596          * hole_page can be zero in case of direct_io, we are sure
597          * that we cannot get here if we write with O_DIRECT into tail page
598          */
599         if (!hole_page || index != hole_page->index) {
600                 tail_page = grab_cache_page(inode->i_mapping, index);
601                 retval = -ENOMEM;
602                 if (!tail_page) {
603                         goto out;
604                 }
605         } else {
606                 tail_page = hole_page;
607         }
608
609         /*
610          * we don't have to make sure the conversion did not happen while
611          * we were locking the page because anyone that could convert
612          * must first take i_mutex.
613          *
614          * We must fix the tail page for writing because it might have buffers
615          * that are mapped, but have a block number of 0.  This indicates tail
616          * data that has been read directly into the page, and
617          * __block_write_begin won't trigger a get_block in this case.
618          */
619         fix_tail_page_for_writing(tail_page);
620         retval = __reiserfs_write_begin(tail_page, tail_start,
621                                       tail_end - tail_start);
622         if (retval)
623                 goto unlock;
624
625         /* tail conversion might change the data in the page */
626         flush_dcache_page(tail_page);
627
628         retval = reiserfs_commit_write(NULL, tail_page, tail_start, tail_end);
629
630       unlock:
631         if (tail_page != hole_page) {
632                 unlock_page(tail_page);
633                 page_cache_release(tail_page);
634         }
635       out:
636         return retval;
637 }
638
639 static inline int _allocate_block(struct reiserfs_transaction_handle *th,
640                                   sector_t block,
641                                   struct inode *inode,
642                                   b_blocknr_t * allocated_block_nr,
643                                   struct treepath *path, int flags)
644 {
645         BUG_ON(!th->t_trans_id);
646
647 #ifdef REISERFS_PREALLOCATE
648         if (!(flags & GET_BLOCK_NO_IMUX)) {
649                 return reiserfs_new_unf_blocknrs2(th, inode, allocated_block_nr,
650                                                   path, block);
651         }
652 #endif
653         return reiserfs_new_unf_blocknrs(th, inode, allocated_block_nr, path,
654                                          block);
655 }
656
657 int reiserfs_get_block(struct inode *inode, sector_t block,
658                        struct buffer_head *bh_result, int create)
659 {
660         int repeat, retval = 0;
661         /* b_blocknr_t is (unsigned) 32 bit int*/
662         b_blocknr_t allocated_block_nr = 0;
663         INITIALIZE_PATH(path);
664         int pos_in_item;
665         struct cpu_key key;
666         struct buffer_head *bh, *unbh = NULL;
667         struct item_head *ih, tmp_ih;
668         __le32 *item;
669         int done;
670         int fs_gen;
671         struct reiserfs_transaction_handle *th = NULL;
672         /*
673          * space reserved in transaction batch:
674          * . 3 balancings in direct->indirect conversion
675          * . 1 block involved into reiserfs_update_sd()
676          * XXX in practically impossible worst case direct2indirect()
677          * can incur (much) more than 3 balancings.
678          * quota update for user, group
679          */
680         int jbegin_count =
681             JOURNAL_PER_BALANCE_CNT * 3 + 1 +
682             2 * REISERFS_QUOTA_TRANS_BLOCKS(inode->i_sb);
683         int version;
684         int dangle = 1;
685         loff_t new_offset =
686             (((loff_t) block) << inode->i_sb->s_blocksize_bits) + 1;
687
688         reiserfs_write_lock(inode->i_sb);
689         version = get_inode_item_key_version(inode);
690
691         if (!file_capable(inode, block)) {
692                 reiserfs_write_unlock(inode->i_sb);
693                 return -EFBIG;
694         }
695
696         /*
697          * if !create, we aren't changing the FS, so we don't need to
698          * log anything, so we don't need to start a transaction
699          */
700         if (!(create & GET_BLOCK_CREATE)) {
701                 int ret;
702                 /* find number of block-th logical block of the file */
703                 ret = _get_block_create_0(inode, block, bh_result,
704                                           create | GET_BLOCK_READ_DIRECT);
705                 reiserfs_write_unlock(inode->i_sb);
706                 return ret;
707         }
708
709         /*
710          * if we're already in a transaction, make sure to close
711          * any new transactions we start in this func
712          */
713         if ((create & GET_BLOCK_NO_DANGLE) ||
714             reiserfs_transaction_running(inode->i_sb))
715                 dangle = 0;
716
717         /*
718          * If file is of such a size, that it might have a tail and
719          * tails are enabled  we should mark it as possibly needing
720          * tail packing on close
721          */
722         if ((have_large_tails(inode->i_sb)
723              && inode->i_size < i_block_size(inode) * 4)
724             || (have_small_tails(inode->i_sb)
725                 && inode->i_size < i_block_size(inode)))
726                 REISERFS_I(inode)->i_flags |= i_pack_on_close_mask;
727
728         /* set the key of the first byte in the 'block'-th block of file */
729         make_cpu_key(&key, inode, new_offset, TYPE_ANY, 3 /*key length */ );
730         if ((new_offset + inode->i_sb->s_blocksize - 1) > inode->i_size) {
731               start_trans:
732                 th = reiserfs_persistent_transaction(inode->i_sb, jbegin_count);
733                 if (!th) {
734                         retval = -ENOMEM;
735                         goto failure;
736                 }
737                 reiserfs_update_inode_transaction(inode);
738         }
739       research:
740
741         retval = search_for_position_by_key(inode->i_sb, &key, &path);
742         if (retval == IO_ERROR) {
743                 retval = -EIO;
744                 goto failure;
745         }
746
747         bh = get_last_bh(&path);
748         ih = tp_item_head(&path);
749         item = tp_item_body(&path);
750         pos_in_item = path.pos_in_item;
751
752         fs_gen = get_generation(inode->i_sb);
753         copy_item_head(&tmp_ih, ih);
754
755         if (allocation_needed
756             (retval, allocated_block_nr, ih, item, pos_in_item)) {
757                 /* we have to allocate block for the unformatted node */
758                 if (!th) {
759                         pathrelse(&path);
760                         goto start_trans;
761                 }
762
763                 repeat =
764                     _allocate_block(th, block, inode, &allocated_block_nr,
765                                     &path, create);
766
767                 /*
768                  * restart the transaction to give the journal a chance to free
769                  * some blocks.  releases the path, so we have to go back to
770                  * research if we succeed on the second try
771                  */
772                 if (repeat == NO_DISK_SPACE || repeat == QUOTA_EXCEEDED) {
773                         SB_JOURNAL(inode->i_sb)->j_next_async_flush = 1;
774                         retval = restart_transaction(th, inode, &path);
775                         if (retval)
776                                 goto failure;
777                         repeat =
778                             _allocate_block(th, block, inode,
779                                             &allocated_block_nr, NULL, create);
780
781                         if (repeat != NO_DISK_SPACE && repeat != QUOTA_EXCEEDED) {
782                                 goto research;
783                         }
784                         if (repeat == QUOTA_EXCEEDED)
785                                 retval = -EDQUOT;
786                         else
787                                 retval = -ENOSPC;
788                         goto failure;
789                 }
790
791                 if (fs_changed(fs_gen, inode->i_sb)
792                     && item_moved(&tmp_ih, &path)) {
793                         goto research;
794                 }
795         }
796
797         if (indirect_item_found(retval, ih)) {
798                 b_blocknr_t unfm_ptr;
799                 /*
800                  * 'block'-th block is in the file already (there is
801                  * corresponding cell in some indirect item). But it may be
802                  * zero unformatted node pointer (hole)
803                  */
804                 unfm_ptr = get_block_num(item, pos_in_item);
805                 if (unfm_ptr == 0) {
806                         /* use allocated block to plug the hole */
807                         reiserfs_prepare_for_journal(inode->i_sb, bh, 1);
808                         if (fs_changed(fs_gen, inode->i_sb)
809                             && item_moved(&tmp_ih, &path)) {
810                                 reiserfs_restore_prepared_buffer(inode->i_sb,
811                                                                  bh);
812                                 goto research;
813                         }
814                         set_buffer_new(bh_result);
815                         if (buffer_dirty(bh_result)
816                             && reiserfs_data_ordered(inode->i_sb))
817                                 reiserfs_add_ordered_list(inode, bh_result);
818                         put_block_num(item, pos_in_item, allocated_block_nr);
819                         unfm_ptr = allocated_block_nr;
820                         journal_mark_dirty(th, inode->i_sb, bh);
821                         reiserfs_update_sd(th, inode);
822                 }
823                 set_block_dev_mapped(bh_result, unfm_ptr, inode);
824                 pathrelse(&path);
825                 retval = 0;
826                 if (!dangle && th)
827                         retval = reiserfs_end_persistent_transaction(th);
828
829                 reiserfs_write_unlock(inode->i_sb);
830
831                 /*
832                  * the item was found, so new blocks were not added to the file
833                  * there is no need to make sure the inode is updated with this
834                  * transaction
835                  */
836                 return retval;
837         }
838
839         if (!th) {
840                 pathrelse(&path);
841                 goto start_trans;
842         }
843
844         /*
845          * desired position is not found or is in the direct item. We have
846          * to append file with holes up to 'block'-th block converting
847          * direct items to indirect one if necessary
848          */
849         done = 0;
850         do {
851                 if (is_statdata_le_ih(ih)) {
852                         __le32 unp = 0;
853                         struct cpu_key tmp_key;
854
855                         /* indirect item has to be inserted */
856                         make_le_item_head(&tmp_ih, &key, version, 1,
857                                           TYPE_INDIRECT, UNFM_P_SIZE,
858                                           0 /* free_space */ );
859
860                         /*
861                          * we are going to add 'block'-th block to the file.
862                          * Use allocated block for that
863                          */
864                         if (cpu_key_k_offset(&key) == 1) {
865                                 unp = cpu_to_le32(allocated_block_nr);
866                                 set_block_dev_mapped(bh_result,
867                                                      allocated_block_nr, inode);
868                                 set_buffer_new(bh_result);
869                                 done = 1;
870                         }
871                         tmp_key = key;  /* ;) */
872                         set_cpu_key_k_offset(&tmp_key, 1);
873                         PATH_LAST_POSITION(&path)++;
874
875                         retval =
876                             reiserfs_insert_item(th, &path, &tmp_key, &tmp_ih,
877                                                  inode, (char *)&unp);
878                         if (retval) {
879                                 reiserfs_free_block(th, inode,
880                                                     allocated_block_nr, 1);
881                                 /*
882                                  * retval == -ENOSPC, -EDQUOT or -EIO
883                                  * or -EEXIST
884                                  */
885                                 goto failure;
886                         }
887                 } else if (is_direct_le_ih(ih)) {
888                         /* direct item has to be converted */
889                         loff_t tail_offset;
890
891                         tail_offset =
892                             ((le_ih_k_offset(ih) -
893                               1) & ~(inode->i_sb->s_blocksize - 1)) + 1;
894
895                         /*
896                          * direct item we just found fits into block we have
897                          * to map. Convert it into unformatted node: use
898                          * bh_result for the conversion
899                          */
900                         if (tail_offset == cpu_key_k_offset(&key)) {
901                                 set_block_dev_mapped(bh_result,
902                                                      allocated_block_nr, inode);
903                                 unbh = bh_result;
904                                 done = 1;
905                         } else {
906                                 /*
907                                  * we have to pad file tail stored in direct
908                                  * item(s) up to block size and convert it
909                                  * to unformatted node. FIXME: this should
910                                  * also get into page cache
911                                  */
912
913                                 pathrelse(&path);
914                                 /*
915                                  * ugly, but we can only end the transaction if
916                                  * we aren't nested
917                                  */
918                                 BUG_ON(!th->t_refcount);
919                                 if (th->t_refcount == 1) {
920                                         retval =
921                                             reiserfs_end_persistent_transaction
922                                             (th);
923                                         th = NULL;
924                                         if (retval)
925                                                 goto failure;
926                                 }
927
928                                 retval =
929                                     convert_tail_for_hole(inode, bh_result,
930                                                           tail_offset);
931                                 if (retval) {
932                                         if (retval != -ENOSPC)
933                                                 reiserfs_error(inode->i_sb,
934                                                         "clm-6004",
935                                                         "convert tail failed "
936                                                         "inode %lu, error %d",
937                                                         inode->i_ino,
938                                                         retval);
939                                         if (allocated_block_nr) {
940                                                 /*
941                                                  * the bitmap, the super,
942                                                  * and the stat data == 3
943                                                  */
944                                                 if (!th)
945                                                         th = reiserfs_persistent_transaction(inode->i_sb, 3);
946                                                 if (th)
947                                                         reiserfs_free_block(th,
948                                                                             inode,
949                                                                             allocated_block_nr,
950                                                                             1);
951                                         }
952                                         goto failure;
953                                 }
954                                 goto research;
955                         }
956                         retval =
957                             direct2indirect(th, inode, &path, unbh,
958                                             tail_offset);
959                         if (retval) {
960                                 reiserfs_unmap_buffer(unbh);
961                                 reiserfs_free_block(th, inode,
962                                                     allocated_block_nr, 1);
963                                 goto failure;
964                         }
965                         /*
966                          * it is important the set_buffer_uptodate is done
967                          * after the direct2indirect.  The buffer might
968                          * contain valid data newer than the data on disk
969                          * (read by readpage, changed, and then sent here by
970                          * writepage).  direct2indirect needs to know if unbh
971                          * was already up to date, so it can decide if the
972                          * data in unbh needs to be replaced with data from
973                          * the disk
974                          */
975                         set_buffer_uptodate(unbh);
976
977                         /*
978                          * unbh->b_page == NULL in case of DIRECT_IO request,
979                          * this means buffer will disappear shortly, so it
980                          * should not be added to
981                          */
982                         if (unbh->b_page) {
983                                 /*
984                                  * we've converted the tail, so we must
985                                  * flush unbh before the transaction commits
986                                  */
987                                 reiserfs_add_tail_list(inode, unbh);
988
989                                 /*
990                                  * mark it dirty now to prevent commit_write
991                                  * from adding this buffer to the inode's
992                                  * dirty buffer list
993                                  */
994                                 /*
995                                  * AKPM: changed __mark_buffer_dirty to
996                                  * mark_buffer_dirty().  It's still atomic,
997                                  * but it sets the page dirty too, which makes
998                                  * it eligible for writeback at any time by the
999                                  * VM (which was also the case with
1000                                  * __mark_buffer_dirty())
1001                                  */
1002                                 mark_buffer_dirty(unbh);
1003                         }
1004                 } else {
1005                         /*
1006                          * append indirect item with holes if needed, when
1007                          * appending pointer to 'block'-th block use block,
1008                          * which is already allocated
1009                          */
1010                         struct cpu_key tmp_key;
1011                         /*
1012                          * We use this in case we need to allocate
1013                          * only one block which is a fastpath
1014                          */
1015                         unp_t unf_single = 0;
1016                         unp_t *un;
1017                         __u64 max_to_insert =
1018                             MAX_ITEM_LEN(inode->i_sb->s_blocksize) /
1019                             UNFM_P_SIZE;
1020                         __u64 blocks_needed;
1021
1022                         RFALSE(pos_in_item != ih_item_len(ih) / UNFM_P_SIZE,
1023                                "vs-804: invalid position for append");
1024                         /*
1025                          * indirect item has to be appended,
1026                          * set up key of that position
1027                          * (key type is unimportant)
1028                          */
1029                         make_cpu_key(&tmp_key, inode,
1030                                      le_key_k_offset(version,
1031                                                      &(ih->ih_key)) +
1032                                      op_bytes_number(ih,
1033                                                      inode->i_sb->s_blocksize),
1034                                      TYPE_INDIRECT, 3);
1035
1036                         RFALSE(cpu_key_k_offset(&tmp_key) > cpu_key_k_offset(&key),
1037                                "green-805: invalid offset");
1038                         blocks_needed =
1039                             1 +
1040                             ((cpu_key_k_offset(&key) -
1041                               cpu_key_k_offset(&tmp_key)) >> inode->i_sb->
1042                              s_blocksize_bits);
1043
1044                         if (blocks_needed == 1) {
1045                                 un = &unf_single;
1046                         } else {
1047                                 un = kzalloc(min(blocks_needed, max_to_insert) * UNFM_P_SIZE, GFP_NOFS);
1048                                 if (!un) {
1049                                         un = &unf_single;
1050                                         blocks_needed = 1;
1051                                         max_to_insert = 0;
1052                                 }
1053                         }
1054                         if (blocks_needed <= max_to_insert) {
1055                                 /*
1056                                  * we are going to add target block to
1057                                  * the file. Use allocated block for that
1058                                  */
1059                                 un[blocks_needed - 1] =
1060                                     cpu_to_le32(allocated_block_nr);
1061                                 set_block_dev_mapped(bh_result,
1062                                                      allocated_block_nr, inode);
1063                                 set_buffer_new(bh_result);
1064                                 done = 1;
1065                         } else {
1066                                 /* paste hole to the indirect item */
1067                                 /*
1068                                  * If kmalloc failed, max_to_insert becomes
1069                                  * zero and it means we only have space for
1070                                  * one block
1071                                  */
1072                                 blocks_needed =
1073                                     max_to_insert ? max_to_insert : 1;
1074                         }
1075                         retval =
1076                             reiserfs_paste_into_item(th, &path, &tmp_key, inode,
1077                                                      (char *)un,
1078                                                      UNFM_P_SIZE *
1079                                                      blocks_needed);
1080
1081                         if (blocks_needed != 1)
1082                                 kfree(un);
1083
1084                         if (retval) {
1085                                 reiserfs_free_block(th, inode,
1086                                                     allocated_block_nr, 1);
1087                                 goto failure;
1088                         }
1089                         if (!done) {
1090                                 /*
1091                                  * We need to mark new file size in case
1092                                  * this function will be interrupted/aborted
1093                                  * later on. And we may do this only for
1094                                  * holes.
1095                                  */
1096                                 inode->i_size +=
1097                                     inode->i_sb->s_blocksize * blocks_needed;
1098                         }
1099                 }
1100
1101                 if (done == 1)
1102                         break;
1103
1104                 /*
1105                  * this loop could log more blocks than we had originally
1106                  * asked for.  So, we have to allow the transaction to end
1107                  * if it is too big or too full.  Update the inode so things
1108                  * are consistent if we crash before the function returns
1109                  * release the path so that anybody waiting on the path before
1110                  * ending their transaction will be able to continue.
1111                  */
1112                 if (journal_transaction_should_end(th, th->t_blocks_allocated)) {
1113                         retval = restart_transaction(th, inode, &path);
1114                         if (retval)
1115                                 goto failure;
1116                 }
1117                 /*
1118                  * inserting indirect pointers for a hole can take a
1119                  * long time.  reschedule if needed and also release the write
1120                  * lock for others.
1121                  */
1122                 reiserfs_cond_resched(inode->i_sb);
1123
1124                 retval = search_for_position_by_key(inode->i_sb, &key, &path);
1125                 if (retval == IO_ERROR) {
1126                         retval = -EIO;
1127                         goto failure;
1128                 }
1129                 if (retval == POSITION_FOUND) {
1130                         reiserfs_warning(inode->i_sb, "vs-825",
1131                                          "%K should not be found", &key);
1132                         retval = -EEXIST;
1133                         if (allocated_block_nr)
1134                                 reiserfs_free_block(th, inode,
1135                                                     allocated_block_nr, 1);
1136                         pathrelse(&path);
1137                         goto failure;
1138                 }
1139                 bh = get_last_bh(&path);
1140                 ih = tp_item_head(&path);
1141                 item = tp_item_body(&path);
1142                 pos_in_item = path.pos_in_item;
1143         } while (1);
1144
1145         retval = 0;
1146
1147       failure:
1148         if (th && (!dangle || (retval && !th->t_trans_id))) {
1149                 int err;
1150                 if (th->t_trans_id)
1151                         reiserfs_update_sd(th, inode);
1152                 err = reiserfs_end_persistent_transaction(th);
1153                 if (err)
1154                         retval = err;
1155         }
1156
1157         reiserfs_write_unlock(inode->i_sb);
1158         reiserfs_check_path(&path);
1159         return retval;
1160 }
1161
1162 static int
1163 reiserfs_readpages(struct file *file, struct address_space *mapping,
1164                    struct list_head *pages, unsigned nr_pages)
1165 {
1166         return mpage_readpages(mapping, pages, nr_pages, reiserfs_get_block);
1167 }
1168
1169 /*
1170  * Compute real number of used bytes by file
1171  * Following three functions can go away when we'll have enough space in
1172  * stat item
1173  */
1174 static int real_space_diff(struct inode *inode, int sd_size)
1175 {
1176         int bytes;
1177         loff_t blocksize = inode->i_sb->s_blocksize;
1178
1179         if (S_ISLNK(inode->i_mode) || S_ISDIR(inode->i_mode))
1180                 return sd_size;
1181
1182         /*
1183          * End of file is also in full block with indirect reference, so round
1184          * up to the next block.
1185          *
1186          * there is just no way to know if the tail is actually packed
1187          * on the file, so we have to assume it isn't.  When we pack the
1188          * tail, we add 4 bytes to pretend there really is an unformatted
1189          * node pointer
1190          */
1191         bytes =
1192             ((inode->i_size +
1193               (blocksize - 1)) >> inode->i_sb->s_blocksize_bits) * UNFM_P_SIZE +
1194             sd_size;
1195         return bytes;
1196 }
1197
1198 static inline loff_t to_real_used_space(struct inode *inode, ulong blocks,
1199                                         int sd_size)
1200 {
1201         if (S_ISLNK(inode->i_mode) || S_ISDIR(inode->i_mode)) {
1202                 return inode->i_size +
1203                     (loff_t) (real_space_diff(inode, sd_size));
1204         }
1205         return ((loff_t) real_space_diff(inode, sd_size)) +
1206             (((loff_t) blocks) << 9);
1207 }
1208
1209 /* Compute number of blocks used by file in ReiserFS counting */
1210 static inline ulong to_fake_used_blocks(struct inode *inode, int sd_size)
1211 {
1212         loff_t bytes = inode_get_bytes(inode);
1213         loff_t real_space = real_space_diff(inode, sd_size);
1214
1215         /* keeps fsck and non-quota versions of reiserfs happy */
1216         if (S_ISLNK(inode->i_mode) || S_ISDIR(inode->i_mode)) {
1217                 bytes += (loff_t) 511;
1218         }
1219
1220         /*
1221          * files from before the quota patch might i_blocks such that
1222          * bytes < real_space.  Deal with that here to prevent it from
1223          * going negative.
1224          */
1225         if (bytes < real_space)
1226                 return 0;
1227         return (bytes - real_space) >> 9;
1228 }
1229
1230 /*
1231  * BAD: new directories have stat data of new type and all other items
1232  * of old type. Version stored in the inode says about body items, so
1233  * in update_stat_data we can not rely on inode, but have to check
1234  * item version directly
1235  */
1236
1237 /* called by read_locked_inode */
1238 static void init_inode(struct inode *inode, struct treepath *path)
1239 {
1240         struct buffer_head *bh;
1241         struct item_head *ih;
1242         __u32 rdev;
1243
1244         bh = PATH_PLAST_BUFFER(path);
1245         ih = tp_item_head(path);
1246
1247         copy_key(INODE_PKEY(inode), &(ih->ih_key));
1248
1249         INIT_LIST_HEAD(&(REISERFS_I(inode)->i_prealloc_list));
1250         REISERFS_I(inode)->i_flags = 0;
1251         REISERFS_I(inode)->i_prealloc_block = 0;
1252         REISERFS_I(inode)->i_prealloc_count = 0;
1253         REISERFS_I(inode)->i_trans_id = 0;
1254         REISERFS_I(inode)->i_jl = NULL;
1255         reiserfs_init_xattr_rwsem(inode);
1256
1257         if (stat_data_v1(ih)) {
1258                 struct stat_data_v1 *sd =
1259                     (struct stat_data_v1 *)ih_item_body(bh, ih);
1260                 unsigned long blocks;
1261
1262                 set_inode_item_key_version(inode, KEY_FORMAT_3_5);
1263                 set_inode_sd_version(inode, STAT_DATA_V1);
1264                 inode->i_mode = sd_v1_mode(sd);
1265                 set_nlink(inode, sd_v1_nlink(sd));
1266                 i_uid_write(inode, sd_v1_uid(sd));
1267                 i_gid_write(inode, sd_v1_gid(sd));
1268                 inode->i_size = sd_v1_size(sd);
1269                 inode->i_atime.tv_sec = sd_v1_atime(sd);
1270                 inode->i_mtime.tv_sec = sd_v1_mtime(sd);
1271                 inode->i_ctime.tv_sec = sd_v1_ctime(sd);
1272                 inode->i_atime.tv_nsec = 0;
1273                 inode->i_ctime.tv_nsec = 0;
1274                 inode->i_mtime.tv_nsec = 0;
1275
1276                 inode->i_blocks = sd_v1_blocks(sd);
1277                 inode->i_generation = le32_to_cpu(INODE_PKEY(inode)->k_dir_id);
1278                 blocks = (inode->i_size + 511) >> 9;
1279                 blocks = _ROUND_UP(blocks, inode->i_sb->s_blocksize >> 9);
1280
1281                 /*
1282                  * there was a bug in <=3.5.23 when i_blocks could take
1283                  * negative values. Starting from 3.5.17 this value could
1284                  * even be stored in stat data. For such files we set
1285                  * i_blocks based on file size. Just 2 notes: this can be
1286                  * wrong for sparse files. On-disk value will be only
1287                  * updated if file's inode will ever change
1288                  */
1289                 if (inode->i_blocks > blocks) {
1290                         inode->i_blocks = blocks;
1291                 }
1292
1293                 rdev = sd_v1_rdev(sd);
1294                 REISERFS_I(inode)->i_first_direct_byte =
1295                     sd_v1_first_direct_byte(sd);
1296
1297                 /*
1298                  * an early bug in the quota code can give us an odd
1299                  * number for the block count.  This is incorrect, fix it here.
1300                  */
1301                 if (inode->i_blocks & 1) {
1302                         inode->i_blocks++;
1303                 }
1304                 inode_set_bytes(inode,
1305                                 to_real_used_space(inode, inode->i_blocks,
1306                                                    SD_V1_SIZE));
1307                 /*
1308                  * nopack is initially zero for v1 objects. For v2 objects,
1309                  * nopack is initialised from sd_attrs
1310                  */
1311                 REISERFS_I(inode)->i_flags &= ~i_nopack_mask;
1312         } else {
1313                 /*
1314                  * new stat data found, but object may have old items
1315                  * (directories and symlinks)
1316                  */
1317                 struct stat_data *sd = (struct stat_data *)ih_item_body(bh, ih);
1318
1319                 inode->i_mode = sd_v2_mode(sd);
1320                 set_nlink(inode, sd_v2_nlink(sd));
1321                 i_uid_write(inode, sd_v2_uid(sd));
1322                 inode->i_size = sd_v2_size(sd);
1323                 i_gid_write(inode, sd_v2_gid(sd));
1324                 inode->i_mtime.tv_sec = sd_v2_mtime(sd);
1325                 inode->i_atime.tv_sec = sd_v2_atime(sd);
1326                 inode->i_ctime.tv_sec = sd_v2_ctime(sd);
1327                 inode->i_ctime.tv_nsec = 0;
1328                 inode->i_mtime.tv_nsec = 0;
1329                 inode->i_atime.tv_nsec = 0;
1330                 inode->i_blocks = sd_v2_blocks(sd);
1331                 rdev = sd_v2_rdev(sd);
1332                 if (S_ISCHR(inode->i_mode) || S_ISBLK(inode->i_mode))
1333                         inode->i_generation =
1334                             le32_to_cpu(INODE_PKEY(inode)->k_dir_id);
1335                 else
1336                         inode->i_generation = sd_v2_generation(sd);
1337
1338                 if (S_ISDIR(inode->i_mode) || S_ISLNK(inode->i_mode))
1339                         set_inode_item_key_version(inode, KEY_FORMAT_3_5);
1340                 else
1341                         set_inode_item_key_version(inode, KEY_FORMAT_3_6);
1342                 REISERFS_I(inode)->i_first_direct_byte = 0;
1343                 set_inode_sd_version(inode, STAT_DATA_V2);
1344                 inode_set_bytes(inode,
1345                                 to_real_used_space(inode, inode->i_blocks,
1346                                                    SD_V2_SIZE));
1347                 /*
1348                  * read persistent inode attributes from sd and initialise
1349                  * generic inode flags from them
1350                  */
1351                 REISERFS_I(inode)->i_attrs = sd_v2_attrs(sd);
1352                 sd_attrs_to_i_attrs(sd_v2_attrs(sd), inode);
1353         }
1354
1355         pathrelse(path);
1356         if (S_ISREG(inode->i_mode)) {
1357                 inode->i_op = &reiserfs_file_inode_operations;
1358                 inode->i_fop = &reiserfs_file_operations;
1359                 inode->i_mapping->a_ops = &reiserfs_address_space_operations;
1360         } else if (S_ISDIR(inode->i_mode)) {
1361                 inode->i_op = &reiserfs_dir_inode_operations;
1362                 inode->i_fop = &reiserfs_dir_operations;
1363         } else if (S_ISLNK(inode->i_mode)) {
1364                 inode->i_op = &reiserfs_symlink_inode_operations;
1365                 inode->i_mapping->a_ops = &reiserfs_address_space_operations;
1366         } else {
1367                 inode->i_blocks = 0;
1368                 inode->i_op = &reiserfs_special_inode_operations;
1369                 init_special_inode(inode, inode->i_mode, new_decode_dev(rdev));
1370         }
1371 }
1372
1373 /* update new stat data with inode fields */
1374 static void inode2sd(void *sd, struct inode *inode, loff_t size)
1375 {
1376         struct stat_data *sd_v2 = (struct stat_data *)sd;
1377         __u16 flags;
1378
1379         set_sd_v2_mode(sd_v2, inode->i_mode);
1380         set_sd_v2_nlink(sd_v2, inode->i_nlink);
1381         set_sd_v2_uid(sd_v2, i_uid_read(inode));
1382         set_sd_v2_size(sd_v2, size);
1383         set_sd_v2_gid(sd_v2, i_gid_read(inode));
1384         set_sd_v2_mtime(sd_v2, inode->i_mtime.tv_sec);
1385         set_sd_v2_atime(sd_v2, inode->i_atime.tv_sec);
1386         set_sd_v2_ctime(sd_v2, inode->i_ctime.tv_sec);
1387         set_sd_v2_blocks(sd_v2, to_fake_used_blocks(inode, SD_V2_SIZE));
1388         if (S_ISCHR(inode->i_mode) || S_ISBLK(inode->i_mode))
1389                 set_sd_v2_rdev(sd_v2, new_encode_dev(inode->i_rdev));
1390         else
1391                 set_sd_v2_generation(sd_v2, inode->i_generation);
1392         flags = REISERFS_I(inode)->i_attrs;
1393         i_attrs_to_sd_attrs(inode, &flags);
1394         set_sd_v2_attrs(sd_v2, flags);
1395 }
1396
1397 /* used to copy inode's fields to old stat data */
1398 static void inode2sd_v1(void *sd, struct inode *inode, loff_t size)
1399 {
1400         struct stat_data_v1 *sd_v1 = (struct stat_data_v1 *)sd;
1401
1402         set_sd_v1_mode(sd_v1, inode->i_mode);
1403         set_sd_v1_uid(sd_v1, i_uid_read(inode));
1404         set_sd_v1_gid(sd_v1, i_gid_read(inode));
1405         set_sd_v1_nlink(sd_v1, inode->i_nlink);
1406         set_sd_v1_size(sd_v1, size);
1407         set_sd_v1_atime(sd_v1, inode->i_atime.tv_sec);
1408         set_sd_v1_ctime(sd_v1, inode->i_ctime.tv_sec);
1409         set_sd_v1_mtime(sd_v1, inode->i_mtime.tv_sec);
1410
1411         if (S_ISCHR(inode->i_mode) || S_ISBLK(inode->i_mode))
1412                 set_sd_v1_rdev(sd_v1, new_encode_dev(inode->i_rdev));
1413         else
1414                 set_sd_v1_blocks(sd_v1, to_fake_used_blocks(inode, SD_V1_SIZE));
1415
1416         /* Sigh. i_first_direct_byte is back */
1417         set_sd_v1_first_direct_byte(sd_v1,
1418                                     REISERFS_I(inode)->i_first_direct_byte);
1419 }
1420
1421 /*
1422  * NOTE, you must prepare the buffer head before sending it here,
1423  * and then log it after the call
1424  */
1425 static void update_stat_data(struct treepath *path, struct inode *inode,
1426                              loff_t size)
1427 {
1428         struct buffer_head *bh;
1429         struct item_head *ih;
1430
1431         bh = PATH_PLAST_BUFFER(path);
1432         ih = tp_item_head(path);
1433
1434         if (!is_statdata_le_ih(ih))
1435                 reiserfs_panic(inode->i_sb, "vs-13065", "key %k, found item %h",
1436                                INODE_PKEY(inode), ih);
1437
1438         /* path points to old stat data */
1439         if (stat_data_v1(ih)) {
1440                 inode2sd_v1(ih_item_body(bh, ih), inode, size);
1441         } else {
1442                 inode2sd(ih_item_body(bh, ih), inode, size);
1443         }
1444
1445         return;
1446 }
1447
1448 void reiserfs_update_sd_size(struct reiserfs_transaction_handle *th,
1449                              struct inode *inode, loff_t size)
1450 {
1451         struct cpu_key key;
1452         INITIALIZE_PATH(path);
1453         struct buffer_head *bh;
1454         int fs_gen;
1455         struct item_head *ih, tmp_ih;
1456         int retval;
1457
1458         BUG_ON(!th->t_trans_id);
1459
1460         /* key type is unimportant */
1461         make_cpu_key(&key, inode, SD_OFFSET, TYPE_STAT_DATA, 3);
1462
1463         for (;;) {
1464                 int pos;
1465                 /* look for the object's stat data */
1466                 retval = search_item(inode->i_sb, &key, &path);
1467                 if (retval == IO_ERROR) {
1468                         reiserfs_error(inode->i_sb, "vs-13050",
1469                                        "i/o failure occurred trying to "
1470                                        "update %K stat data", &key);
1471                         return;
1472                 }
1473                 if (retval == ITEM_NOT_FOUND) {
1474                         pos = PATH_LAST_POSITION(&path);
1475                         pathrelse(&path);
1476                         if (inode->i_nlink == 0) {
1477                                 /*reiserfs_warning (inode->i_sb, "vs-13050: reiserfs_update_sd: i_nlink == 0, stat data not found"); */
1478                                 return;
1479                         }
1480                         reiserfs_warning(inode->i_sb, "vs-13060",
1481                                          "stat data of object %k (nlink == %d) "
1482                                          "not found (pos %d)",
1483                                          INODE_PKEY(inode), inode->i_nlink,
1484                                          pos);
1485                         reiserfs_check_path(&path);
1486                         return;
1487                 }
1488
1489                 /*
1490                  * sigh, prepare_for_journal might schedule.  When it
1491                  * schedules the FS might change.  We have to detect that,
1492                  * and loop back to the search if the stat data item has moved
1493                  */
1494                 bh = get_last_bh(&path);
1495                 ih = tp_item_head(&path);
1496                 copy_item_head(&tmp_ih, ih);
1497                 fs_gen = get_generation(inode->i_sb);
1498                 reiserfs_prepare_for_journal(inode->i_sb, bh, 1);
1499
1500                 /* Stat_data item has been moved after scheduling. */
1501                 if (fs_changed(fs_gen, inode->i_sb)
1502                     && item_moved(&tmp_ih, &path)) {
1503                         reiserfs_restore_prepared_buffer(inode->i_sb, bh);
1504                         continue;
1505                 }
1506                 break;
1507         }
1508         update_stat_data(&path, inode, size);
1509         journal_mark_dirty(th, th->t_super, bh);
1510         pathrelse(&path);
1511         return;
1512 }
1513
1514 /*
1515  * reiserfs_read_locked_inode is called to read the inode off disk, and it
1516  * does a make_bad_inode when things go wrong.  But, we need to make sure
1517  * and clear the key in the private portion of the inode, otherwise a
1518  * corresponding iput might try to delete whatever object the inode last
1519  * represented.
1520  */
1521 static void reiserfs_make_bad_inode(struct inode *inode)
1522 {
1523         memset(INODE_PKEY(inode), 0, KEY_SIZE);
1524         make_bad_inode(inode);
1525 }
1526
1527 /*
1528  * initially this function was derived from minix or ext2's analog and
1529  * evolved as the prototype did
1530  */
1531 int reiserfs_init_locked_inode(struct inode *inode, void *p)
1532 {
1533         struct reiserfs_iget_args *args = (struct reiserfs_iget_args *)p;
1534         inode->i_ino = args->objectid;
1535         INODE_PKEY(inode)->k_dir_id = cpu_to_le32(args->dirid);
1536         return 0;
1537 }
1538
1539 /*
1540  * looks for stat data in the tree, and fills up the fields of in-core
1541  * inode stat data fields
1542  */
1543 void reiserfs_read_locked_inode(struct inode *inode,
1544                                 struct reiserfs_iget_args *args)
1545 {
1546         INITIALIZE_PATH(path_to_sd);
1547         struct cpu_key key;
1548         unsigned long dirino;
1549         int retval;
1550
1551         dirino = args->dirid;
1552
1553         /*
1554          * set version 1, version 2 could be used too, because stat data
1555          * key is the same in both versions
1556          */
1557         key.version = KEY_FORMAT_3_5;
1558         key.on_disk_key.k_dir_id = dirino;
1559         key.on_disk_key.k_objectid = inode->i_ino;
1560         key.on_disk_key.k_offset = 0;
1561         key.on_disk_key.k_type = 0;
1562
1563         /* look for the object's stat data */
1564         retval = search_item(inode->i_sb, &key, &path_to_sd);
1565         if (retval == IO_ERROR) {
1566                 reiserfs_error(inode->i_sb, "vs-13070",
1567                                "i/o failure occurred trying to find "
1568                                "stat data of %K", &key);
1569                 reiserfs_make_bad_inode(inode);
1570                 return;
1571         }
1572
1573         /* a stale NFS handle can trigger this without it being an error */
1574         if (retval != ITEM_FOUND) {
1575                 pathrelse(&path_to_sd);
1576                 reiserfs_make_bad_inode(inode);
1577                 clear_nlink(inode);
1578                 return;
1579         }
1580
1581         init_inode(inode, &path_to_sd);
1582
1583         /*
1584          * It is possible that knfsd is trying to access inode of a file
1585          * that is being removed from the disk by some other thread. As we
1586          * update sd on unlink all that is required is to check for nlink
1587          * here. This bug was first found by Sizif when debugging
1588          * SquidNG/Butterfly, forgotten, and found again after Philippe
1589          * Gramoulle <philippe.gramoulle@mmania.com> reproduced it.
1590
1591          * More logical fix would require changes in fs/inode.c:iput() to
1592          * remove inode from hash-table _after_ fs cleaned disk stuff up and
1593          * in iget() to return NULL if I_FREEING inode is found in
1594          * hash-table.
1595          */
1596
1597         /*
1598          * Currently there is one place where it's ok to meet inode with
1599          * nlink==0: processing of open-unlinked and half-truncated files
1600          * during mount (fs/reiserfs/super.c:finish_unfinished()).
1601          */
1602         if ((inode->i_nlink == 0) &&
1603             !REISERFS_SB(inode->i_sb)->s_is_unlinked_ok) {
1604                 reiserfs_warning(inode->i_sb, "vs-13075",
1605                                  "dead inode read from disk %K. "
1606                                  "This is likely to be race with knfsd. Ignore",
1607                                  &key);
1608                 reiserfs_make_bad_inode(inode);
1609         }
1610
1611         /* init inode should be relsing */
1612         reiserfs_check_path(&path_to_sd);
1613
1614         /*
1615          * Stat data v1 doesn't support ACLs.
1616          */
1617         if (get_inode_sd_version(inode) == STAT_DATA_V1)
1618                 cache_no_acl(inode);
1619 }
1620
1621 /*
1622  * reiserfs_find_actor() - "find actor" reiserfs supplies to iget5_locked().
1623  *
1624  * @inode:    inode from hash table to check
1625  * @opaque:   "cookie" passed to iget5_locked(). This is &reiserfs_iget_args.
1626  *
1627  * This function is called by iget5_locked() to distinguish reiserfs inodes
1628  * having the same inode numbers. Such inodes can only exist due to some
1629  * error condition. One of them should be bad. Inodes with identical
1630  * inode numbers (objectids) are distinguished by parent directory ids.
1631  *
1632  */
1633 int reiserfs_find_actor(struct inode *inode, void *opaque)
1634 {
1635         struct reiserfs_iget_args *args;
1636
1637         args = opaque;
1638         /* args is already in CPU order */
1639         return (inode->i_ino == args->objectid) &&
1640             (le32_to_cpu(INODE_PKEY(inode)->k_dir_id) == args->dirid);
1641 }
1642
1643 struct inode *reiserfs_iget(struct super_block *s, const struct cpu_key *key)
1644 {
1645         struct inode *inode;
1646         struct reiserfs_iget_args args;
1647         int depth;
1648
1649         args.objectid = key->on_disk_key.k_objectid;
1650         args.dirid = key->on_disk_key.k_dir_id;
1651         depth = reiserfs_write_unlock_nested(s);
1652         inode = iget5_locked(s, key->on_disk_key.k_objectid,
1653                              reiserfs_find_actor, reiserfs_init_locked_inode,
1654                              (void *)(&args));
1655         reiserfs_write_lock_nested(s, depth);
1656         if (!inode)
1657                 return ERR_PTR(-ENOMEM);
1658
1659         if (inode->i_state & I_NEW) {
1660                 reiserfs_read_locked_inode(inode, &args);
1661                 unlock_new_inode(inode);
1662         }
1663
1664         if (comp_short_keys(INODE_PKEY(inode), key) || is_bad_inode(inode)) {
1665                 /* either due to i/o error or a stale NFS handle */
1666                 iput(inode);
1667                 inode = NULL;
1668         }
1669         return inode;
1670 }
1671
1672 static struct dentry *reiserfs_get_dentry(struct super_block *sb,
1673         u32 objectid, u32 dir_id, u32 generation)
1674
1675 {
1676         struct cpu_key key;
1677         struct inode *inode;
1678
1679         key.on_disk_key.k_objectid = objectid;
1680         key.on_disk_key.k_dir_id = dir_id;
1681         reiserfs_write_lock(sb);
1682         inode = reiserfs_iget(sb, &key);
1683         if (inode && !IS_ERR(inode) && generation != 0 &&
1684             generation != inode->i_generation) {
1685                 iput(inode);
1686                 inode = NULL;
1687         }
1688         reiserfs_write_unlock(sb);
1689
1690         return d_obtain_alias(inode);
1691 }
1692
1693 struct dentry *reiserfs_fh_to_dentry(struct super_block *sb, struct fid *fid,
1694                 int fh_len, int fh_type)
1695 {
1696         /*
1697          * fhtype happens to reflect the number of u32s encoded.
1698          * due to a bug in earlier code, fhtype might indicate there
1699          * are more u32s then actually fitted.
1700          * so if fhtype seems to be more than len, reduce fhtype.
1701          * Valid types are:
1702          *   2 - objectid + dir_id - legacy support
1703          *   3 - objectid + dir_id + generation
1704          *   4 - objectid + dir_id + objectid and dirid of parent - legacy
1705          *   5 - objectid + dir_id + generation + objectid and dirid of parent
1706          *   6 - as above plus generation of directory
1707          * 6 does not fit in NFSv2 handles
1708          */
1709         if (fh_type > fh_len) {
1710                 if (fh_type != 6 || fh_len != 5)
1711                         reiserfs_warning(sb, "reiserfs-13077",
1712                                 "nfsd/reiserfs, fhtype=%d, len=%d - odd",
1713                                 fh_type, fh_len);
1714                 fh_type = fh_len;
1715         }
1716         if (fh_len < 2)
1717                 return NULL;
1718
1719         return reiserfs_get_dentry(sb, fid->raw[0], fid->raw[1],
1720                 (fh_type == 3 || fh_type >= 5) ? fid->raw[2] : 0);
1721 }
1722
1723 struct dentry *reiserfs_fh_to_parent(struct super_block *sb, struct fid *fid,
1724                 int fh_len, int fh_type)
1725 {
1726         if (fh_type > fh_len)
1727                 fh_type = fh_len;
1728         if (fh_type < 4)
1729                 return NULL;
1730
1731         return reiserfs_get_dentry(sb,
1732                 (fh_type >= 5) ? fid->raw[3] : fid->raw[2],
1733                 (fh_type >= 5) ? fid->raw[4] : fid->raw[3],
1734                 (fh_type == 6) ? fid->raw[5] : 0);
1735 }
1736
1737 int reiserfs_encode_fh(struct inode *inode, __u32 * data, int *lenp,
1738                        struct inode *parent)
1739 {
1740         int maxlen = *lenp;
1741
1742         if (parent && (maxlen < 5)) {
1743                 *lenp = 5;
1744                 return FILEID_INVALID;
1745         } else if (maxlen < 3) {
1746                 *lenp = 3;
1747                 return FILEID_INVALID;
1748         }
1749
1750         data[0] = inode->i_ino;
1751         data[1] = le32_to_cpu(INODE_PKEY(inode)->k_dir_id);
1752         data[2] = inode->i_generation;
1753         *lenp = 3;
1754         if (parent) {
1755                 data[3] = parent->i_ino;
1756                 data[4] = le32_to_cpu(INODE_PKEY(parent)->k_dir_id);
1757                 *lenp = 5;
1758                 if (maxlen >= 6) {
1759                         data[5] = parent->i_generation;
1760                         *lenp = 6;
1761                 }
1762         }
1763         return *lenp;
1764 }
1765
1766 /*
1767  * looks for stat data, then copies fields to it, marks the buffer
1768  * containing stat data as dirty
1769  */
1770 /*
1771  * reiserfs inodes are never really dirty, since the dirty inode call
1772  * always logs them.  This call allows the VFS inode marking routines
1773  * to properly mark inodes for datasync and such, but only actually
1774  * does something when called for a synchronous update.
1775  */
1776 int reiserfs_write_inode(struct inode *inode, struct writeback_control *wbc)
1777 {
1778         struct reiserfs_transaction_handle th;
1779         int jbegin_count = 1;
1780
1781         if (inode->i_sb->s_flags & MS_RDONLY)
1782                 return -EROFS;
1783         /*
1784          * memory pressure can sometimes initiate write_inode calls with
1785          * sync == 1,
1786          * these cases are just when the system needs ram, not when the
1787          * inode needs to reach disk for safety, and they can safely be
1788          * ignored because the altered inode has already been logged.
1789          */
1790         if (wbc->sync_mode == WB_SYNC_ALL && !(current->flags & PF_MEMALLOC)) {
1791                 reiserfs_write_lock(inode->i_sb);
1792                 if (!journal_begin(&th, inode->i_sb, jbegin_count)) {
1793                         reiserfs_update_sd(&th, inode);
1794                         journal_end_sync(&th, inode->i_sb, jbegin_count);
1795                 }
1796                 reiserfs_write_unlock(inode->i_sb);
1797         }
1798         return 0;
1799 }
1800
1801 /*
1802  * stat data of new object is inserted already, this inserts the item
1803  * containing "." and ".." entries
1804  */
1805 static int reiserfs_new_directory(struct reiserfs_transaction_handle *th,
1806                                   struct inode *inode,
1807                                   struct item_head *ih, struct treepath *path,
1808                                   struct inode *dir)
1809 {
1810         struct super_block *sb = th->t_super;
1811         char empty_dir[EMPTY_DIR_SIZE];
1812         char *body = empty_dir;
1813         struct cpu_key key;
1814         int retval;
1815
1816         BUG_ON(!th->t_trans_id);
1817
1818         _make_cpu_key(&key, KEY_FORMAT_3_5, le32_to_cpu(ih->ih_key.k_dir_id),
1819                       le32_to_cpu(ih->ih_key.k_objectid), DOT_OFFSET,
1820                       TYPE_DIRENTRY, 3 /*key length */ );
1821
1822         /*
1823          * compose item head for new item. Directories consist of items of
1824          * old type (ITEM_VERSION_1). Do not set key (second arg is 0), it
1825          * is done by reiserfs_new_inode
1826          */
1827         if (old_format_only(sb)) {
1828                 make_le_item_head(ih, NULL, KEY_FORMAT_3_5, DOT_OFFSET,
1829                                   TYPE_DIRENTRY, EMPTY_DIR_SIZE_V1, 2);
1830
1831                 make_empty_dir_item_v1(body, ih->ih_key.k_dir_id,
1832                                        ih->ih_key.k_objectid,
1833                                        INODE_PKEY(dir)->k_dir_id,
1834                                        INODE_PKEY(dir)->k_objectid);
1835         } else {
1836                 make_le_item_head(ih, NULL, KEY_FORMAT_3_5, DOT_OFFSET,
1837                                   TYPE_DIRENTRY, EMPTY_DIR_SIZE, 2);
1838
1839                 make_empty_dir_item(body, ih->ih_key.k_dir_id,
1840                                     ih->ih_key.k_objectid,
1841                                     INODE_PKEY(dir)->k_dir_id,
1842                                     INODE_PKEY(dir)->k_objectid);
1843         }
1844
1845         /* look for place in the tree for new item */
1846         retval = search_item(sb, &key, path);
1847         if (retval == IO_ERROR) {
1848                 reiserfs_error(sb, "vs-13080",
1849                                "i/o failure occurred creating new directory");
1850                 return -EIO;
1851         }
1852         if (retval == ITEM_FOUND) {
1853                 pathrelse(path);
1854                 reiserfs_warning(sb, "vs-13070",
1855                                  "object with this key exists (%k)",
1856                                  &(ih->ih_key));
1857                 return -EEXIST;
1858         }
1859
1860         /* insert item, that is empty directory item */
1861         return reiserfs_insert_item(th, path, &key, ih, inode, body);
1862 }
1863
1864 /*
1865  * stat data of object has been inserted, this inserts the item
1866  * containing the body of symlink
1867  */
1868 static int reiserfs_new_symlink(struct reiserfs_transaction_handle *th,
1869                                 struct inode *inode,
1870                                 struct item_head *ih,
1871                                 struct treepath *path, const char *symname,
1872                                 int item_len)
1873 {
1874         struct super_block *sb = th->t_super;
1875         struct cpu_key key;
1876         int retval;
1877
1878         BUG_ON(!th->t_trans_id);
1879
1880         _make_cpu_key(&key, KEY_FORMAT_3_5,
1881                       le32_to_cpu(ih->ih_key.k_dir_id),
1882                       le32_to_cpu(ih->ih_key.k_objectid),
1883                       1, TYPE_DIRECT, 3 /*key length */ );
1884
1885         make_le_item_head(ih, NULL, KEY_FORMAT_3_5, 1, TYPE_DIRECT, item_len,
1886                           0 /*free_space */ );
1887
1888         /* look for place in the tree for new item */
1889         retval = search_item(sb, &key, path);
1890         if (retval == IO_ERROR) {
1891                 reiserfs_error(sb, "vs-13080",
1892                                "i/o failure occurred creating new symlink");
1893                 return -EIO;
1894         }
1895         if (retval == ITEM_FOUND) {
1896                 pathrelse(path);
1897                 reiserfs_warning(sb, "vs-13080",
1898                                  "object with this key exists (%k)",
1899                                  &(ih->ih_key));
1900                 return -EEXIST;
1901         }
1902
1903         /* insert item, that is body of symlink */
1904         return reiserfs_insert_item(th, path, &key, ih, inode, symname);
1905 }
1906
1907 /*
1908  * inserts the stat data into the tree, and then calls
1909  * reiserfs_new_directory (to insert ".", ".." item if new object is
1910  * directory) or reiserfs_new_symlink (to insert symlink body if new
1911  * object is symlink) or nothing (if new object is regular file)
1912
1913  * NOTE! uid and gid must already be set in the inode.  If we return
1914  * non-zero due to an error, we have to drop the quota previously allocated
1915  * for the fresh inode.  This can only be done outside a transaction, so
1916  * if we return non-zero, we also end the transaction.
1917  *
1918  * @th: active transaction handle
1919  * @dir: parent directory for new inode
1920  * @mode: mode of new inode
1921  * @symname: symlink contents if inode is symlink
1922  * @isize: 0 for regular file, EMPTY_DIR_SIZE for dirs, strlen(symname) for
1923  *         symlinks
1924  * @inode: inode to be filled
1925  * @security: optional security context to associate with this inode
1926  */
1927 int reiserfs_new_inode(struct reiserfs_transaction_handle *th,
1928                        struct inode *dir, umode_t mode, const char *symname,
1929                        /* 0 for regular, EMTRY_DIR_SIZE for dirs,
1930                           strlen (symname) for symlinks) */
1931                        loff_t i_size, struct dentry *dentry,
1932                        struct inode *inode,
1933                        struct reiserfs_security_handle *security)
1934 {
1935         struct super_block *sb = dir->i_sb;
1936         struct reiserfs_iget_args args;
1937         INITIALIZE_PATH(path_to_key);
1938         struct cpu_key key;
1939         struct item_head ih;
1940         struct stat_data sd;
1941         int retval;
1942         int err;
1943         int depth;
1944
1945         BUG_ON(!th->t_trans_id);
1946
1947         depth = reiserfs_write_unlock_nested(sb);
1948         err = dquot_alloc_inode(inode);
1949         reiserfs_write_lock_nested(sb, depth);
1950         if (err)
1951                 goto out_end_trans;
1952         if (!dir->i_nlink) {
1953                 err = -EPERM;
1954                 goto out_bad_inode;
1955         }
1956
1957         /* item head of new item */
1958         ih.ih_key.k_dir_id = reiserfs_choose_packing(dir);
1959         ih.ih_key.k_objectid = cpu_to_le32(reiserfs_get_unused_objectid(th));
1960         if (!ih.ih_key.k_objectid) {
1961                 err = -ENOMEM;
1962                 goto out_bad_inode;
1963         }
1964         args.objectid = inode->i_ino = le32_to_cpu(ih.ih_key.k_objectid);
1965         if (old_format_only(sb))
1966                 make_le_item_head(&ih, NULL, KEY_FORMAT_3_5, SD_OFFSET,
1967                                   TYPE_STAT_DATA, SD_V1_SIZE, MAX_US_INT);
1968         else
1969                 make_le_item_head(&ih, NULL, KEY_FORMAT_3_6, SD_OFFSET,
1970                                   TYPE_STAT_DATA, SD_SIZE, MAX_US_INT);
1971         memcpy(INODE_PKEY(inode), &(ih.ih_key), KEY_SIZE);
1972         args.dirid = le32_to_cpu(ih.ih_key.k_dir_id);
1973
1974         depth = reiserfs_write_unlock_nested(inode->i_sb);
1975         err = insert_inode_locked4(inode, args.objectid,
1976                              reiserfs_find_actor, &args);
1977         reiserfs_write_lock_nested(inode->i_sb, depth);
1978         if (err) {
1979                 err = -EINVAL;
1980                 goto out_bad_inode;
1981         }
1982
1983         if (old_format_only(sb))
1984                 /*
1985                  * not a perfect generation count, as object ids can be reused,
1986                  * but this is as good as reiserfs can do right now.
1987                  * note that the private part of inode isn't filled in yet,
1988                  * we have to use the directory.
1989                  */
1990                 inode->i_generation = le32_to_cpu(INODE_PKEY(dir)->k_objectid);
1991         else
1992 #if defined( USE_INODE_GENERATION_COUNTER )
1993                 inode->i_generation =
1994                     le32_to_cpu(REISERFS_SB(sb)->s_rs->s_inode_generation);
1995 #else
1996                 inode->i_generation = ++event;
1997 #endif
1998
1999         /* fill stat data */
2000         set_nlink(inode, (S_ISDIR(mode) ? 2 : 1));
2001
2002         /* uid and gid must already be set by the caller for quota init */
2003
2004         /* symlink cannot be immutable or append only, right? */
2005         if (S_ISLNK(inode->i_mode))
2006                 inode->i_flags &= ~(S_IMMUTABLE | S_APPEND);
2007
2008         inode->i_mtime = inode->i_atime = inode->i_ctime = CURRENT_TIME_SEC;
2009         inode->i_size = i_size;
2010         inode->i_blocks = 0;
2011         inode->i_bytes = 0;
2012         REISERFS_I(inode)->i_first_direct_byte = S_ISLNK(mode) ? 1 :
2013             U32_MAX /*NO_BYTES_IN_DIRECT_ITEM */ ;
2014
2015         INIT_LIST_HEAD(&(REISERFS_I(inode)->i_prealloc_list));
2016         REISERFS_I(inode)->i_flags = 0;
2017         REISERFS_I(inode)->i_prealloc_block = 0;
2018         REISERFS_I(inode)->i_prealloc_count = 0;
2019         REISERFS_I(inode)->i_trans_id = 0;
2020         REISERFS_I(inode)->i_jl = NULL;
2021         REISERFS_I(inode)->i_attrs =
2022             REISERFS_I(dir)->i_attrs & REISERFS_INHERIT_MASK;
2023         sd_attrs_to_i_attrs(REISERFS_I(inode)->i_attrs, inode);
2024         reiserfs_init_xattr_rwsem(inode);
2025
2026         /* key to search for correct place for new stat data */
2027         _make_cpu_key(&key, KEY_FORMAT_3_6, le32_to_cpu(ih.ih_key.k_dir_id),
2028                       le32_to_cpu(ih.ih_key.k_objectid), SD_OFFSET,
2029                       TYPE_STAT_DATA, 3 /*key length */ );
2030
2031         /* find proper place for inserting of stat data */
2032         retval = search_item(sb, &key, &path_to_key);
2033         if (retval == IO_ERROR) {
2034                 err = -EIO;
2035                 goto out_bad_inode;
2036         }
2037         if (retval == ITEM_FOUND) {
2038                 pathrelse(&path_to_key);
2039                 err = -EEXIST;
2040                 goto out_bad_inode;
2041         }
2042         if (old_format_only(sb)) {
2043                 /* i_uid or i_gid is too big to be stored in stat data v3.5 */
2044                 if (i_uid_read(inode) & ~0xffff || i_gid_read(inode) & ~0xffff) {
2045                         pathrelse(&path_to_key);
2046                         err = -EINVAL;
2047                         goto out_bad_inode;
2048                 }
2049                 inode2sd_v1(&sd, inode, inode->i_size);
2050         } else {
2051                 inode2sd(&sd, inode, inode->i_size);
2052         }
2053         /*
2054          * store in in-core inode the key of stat data and version all
2055          * object items will have (directory items will have old offset
2056          * format, other new objects will consist of new items)
2057          */
2058         if (old_format_only(sb) || S_ISDIR(mode) || S_ISLNK(mode))
2059                 set_inode_item_key_version(inode, KEY_FORMAT_3_5);
2060         else
2061                 set_inode_item_key_version(inode, KEY_FORMAT_3_6);
2062         if (old_format_only(sb))
2063                 set_inode_sd_version(inode, STAT_DATA_V1);
2064         else
2065                 set_inode_sd_version(inode, STAT_DATA_V2);
2066
2067         /* insert the stat data into the tree */
2068 #ifdef DISPLACE_NEW_PACKING_LOCALITIES
2069         if (REISERFS_I(dir)->new_packing_locality)
2070                 th->displace_new_blocks = 1;
2071 #endif
2072         retval =
2073             reiserfs_insert_item(th, &path_to_key, &key, &ih, inode,
2074                                  (char *)(&sd));
2075         if (retval) {
2076                 err = retval;
2077                 reiserfs_check_path(&path_to_key);
2078                 goto out_bad_inode;
2079         }
2080 #ifdef DISPLACE_NEW_PACKING_LOCALITIES
2081         if (!th->displace_new_blocks)
2082                 REISERFS_I(dir)->new_packing_locality = 0;
2083 #endif
2084         if (S_ISDIR(mode)) {
2085                 /* insert item with "." and ".." */
2086                 retval =
2087                     reiserfs_new_directory(th, inode, &ih, &path_to_key, dir);
2088         }
2089
2090         if (S_ISLNK(mode)) {
2091                 /* insert body of symlink */
2092                 if (!old_format_only(sb))
2093                         i_size = ROUND_UP(i_size);
2094                 retval =
2095                     reiserfs_new_symlink(th, inode, &ih, &path_to_key, symname,
2096                                          i_size);
2097         }
2098         if (retval) {
2099                 err = retval;
2100                 reiserfs_check_path(&path_to_key);
2101                 journal_end(th, th->t_super, th->t_blocks_allocated);
2102                 goto out_inserted_sd;
2103         }
2104
2105         if (reiserfs_posixacl(inode->i_sb)) {
2106                 reiserfs_write_unlock(inode->i_sb);
2107                 retval = reiserfs_inherit_default_acl(th, dir, dentry, inode);
2108                 reiserfs_write_lock(inode->i_sb);
2109                 if (retval) {
2110                         err = retval;
2111                         reiserfs_check_path(&path_to_key);
2112                         journal_end(th, th->t_super, th->t_blocks_allocated);
2113                         goto out_inserted_sd;
2114                 }
2115         } else if (inode->i_sb->s_flags & MS_POSIXACL) {
2116                 reiserfs_warning(inode->i_sb, "jdm-13090",
2117                                  "ACLs aren't enabled in the fs, "
2118                                  "but vfs thinks they are!");
2119         } else if (IS_PRIVATE(dir))
2120                 inode->i_flags |= S_PRIVATE;
2121
2122         if (security->name) {
2123                 reiserfs_write_unlock(inode->i_sb);
2124                 retval = reiserfs_security_write(th, inode, security);
2125                 reiserfs_write_lock(inode->i_sb);
2126                 if (retval) {
2127                         err = retval;
2128                         reiserfs_check_path(&path_to_key);
2129                         retval = journal_end(th, th->t_super,
2130                                              th->t_blocks_allocated);
2131                         if (retval)
2132                                 err = retval;
2133                         goto out_inserted_sd;
2134                 }
2135         }
2136
2137         reiserfs_update_sd(th, inode);
2138         reiserfs_check_path(&path_to_key);
2139
2140         return 0;
2141
2142       out_bad_inode:
2143         /* Invalidate the object, nothing was inserted yet */
2144         INODE_PKEY(inode)->k_objectid = 0;
2145
2146         /* Quota change must be inside a transaction for journaling */
2147         depth = reiserfs_write_unlock_nested(inode->i_sb);
2148         dquot_free_inode(inode);
2149         reiserfs_write_lock_nested(inode->i_sb, depth);
2150
2151       out_end_trans:
2152         journal_end(th, th->t_super, th->t_blocks_allocated);
2153         /*
2154          * Drop can be outside and it needs more credits so it's better
2155          * to have it outside
2156          */
2157         depth = reiserfs_write_unlock_nested(inode->i_sb);
2158         dquot_drop(inode);
2159         reiserfs_write_lock_nested(inode->i_sb, depth);
2160         inode->i_flags |= S_NOQUOTA;
2161         make_bad_inode(inode);
2162
2163       out_inserted_sd:
2164         clear_nlink(inode);
2165         th->t_trans_id = 0;     /* so the caller can't use this handle later */
2166         unlock_new_inode(inode); /* OK to do even if we hadn't locked it */
2167         iput(inode);
2168         return err;
2169 }
2170
2171 /*
2172  * finds the tail page in the page cache,
2173  * reads the last block in.
2174  *
2175  * On success, page_result is set to a locked, pinned page, and bh_result
2176  * is set to an up to date buffer for the last block in the file.  returns 0.
2177  *
2178  * tail conversion is not done, so bh_result might not be valid for writing
2179  * check buffer_mapped(bh_result) and bh_result->b_blocknr != 0 before
2180  * trying to write the block.
2181  *
2182  * on failure, nonzero is returned, page_result and bh_result are untouched.
2183  */
2184 static int grab_tail_page(struct inode *inode,
2185                           struct page **page_result,
2186                           struct buffer_head **bh_result)
2187 {
2188
2189         /*
2190          * we want the page with the last byte in the file,
2191          * not the page that will hold the next byte for appending
2192          */
2193         unsigned long index = (inode->i_size - 1) >> PAGE_CACHE_SHIFT;
2194         unsigned long pos = 0;
2195         unsigned long start = 0;
2196         unsigned long blocksize = inode->i_sb->s_blocksize;
2197         unsigned long offset = (inode->i_size) & (PAGE_CACHE_SIZE - 1);
2198         struct buffer_head *bh;
2199         struct buffer_head *head;
2200         struct page *page;
2201         int error;
2202
2203         /*
2204          * we know that we are only called with inode->i_size > 0.
2205          * we also know that a file tail can never be as big as a block
2206          * If i_size % blocksize == 0, our file is currently block aligned
2207          * and it won't need converting or zeroing after a truncate.
2208          */
2209         if ((offset & (blocksize - 1)) == 0) {
2210                 return -ENOENT;
2211         }
2212         page = grab_cache_page(inode->i_mapping, index);
2213         error = -ENOMEM;
2214         if (!page) {
2215                 goto out;
2216         }
2217         /* start within the page of the last block in the file */
2218         start = (offset / blocksize) * blocksize;
2219
2220         error = __block_write_begin(page, start, offset - start,
2221                                     reiserfs_get_block_create_0);
2222         if (error)
2223                 goto unlock;
2224
2225         head = page_buffers(page);
2226         bh = head;
2227         do {
2228                 if (pos >= start) {
2229                         break;
2230                 }
2231                 bh = bh->b_this_page;
2232                 pos += blocksize;
2233         } while (bh != head);
2234
2235         if (!buffer_uptodate(bh)) {
2236                 /*
2237                  * note, this should never happen, prepare_write should be
2238                  * taking care of this for us.  If the buffer isn't up to
2239                  * date, I've screwed up the code to find the buffer, or the
2240                  * code to call prepare_write
2241                  */
2242                 reiserfs_error(inode->i_sb, "clm-6000",
2243                                "error reading block %lu", bh->b_blocknr);
2244                 error = -EIO;
2245                 goto unlock;
2246         }
2247         *bh_result = bh;
2248         *page_result = page;
2249
2250       out:
2251         return error;
2252
2253       unlock:
2254         unlock_page(page);
2255         page_cache_release(page);
2256         return error;
2257 }
2258
2259 /*
2260  * vfs version of truncate file.  Must NOT be called with
2261  * a transaction already started.
2262  *
2263  * some code taken from block_truncate_page
2264  */
2265 int reiserfs_truncate_file(struct inode *inode, int update_timestamps)
2266 {
2267         struct reiserfs_transaction_handle th;
2268         /* we want the offset for the first byte after the end of the file */
2269         unsigned long offset = inode->i_size & (PAGE_CACHE_SIZE - 1);
2270         unsigned blocksize = inode->i_sb->s_blocksize;
2271         unsigned length;
2272         struct page *page = NULL;
2273         int error;
2274         struct buffer_head *bh = NULL;
2275         int err2;
2276
2277         reiserfs_write_lock(inode->i_sb);
2278
2279         if (inode->i_size > 0) {
2280                 error = grab_tail_page(inode, &page, &bh);
2281                 if (error) {
2282                         /*
2283                          * -ENOENT means we truncated past the end of the
2284                          * file, and get_block_create_0 could not find a
2285                          * block to read in, which is ok.
2286                          */
2287                         if (error != -ENOENT)
2288                                 reiserfs_error(inode->i_sb, "clm-6001",
2289                                                "grab_tail_page failed %d",
2290                                                error);
2291                         page = NULL;
2292                         bh = NULL;
2293                 }
2294         }
2295
2296         /*
2297          * so, if page != NULL, we have a buffer head for the offset at
2298          * the end of the file. if the bh is mapped, and bh->b_blocknr != 0,
2299          * then we have an unformatted node.  Otherwise, we have a direct item,
2300          * and no zeroing is required on disk.  We zero after the truncate,
2301          * because the truncate might pack the item anyway
2302          * (it will unmap bh if it packs).
2303          *
2304          * it is enough to reserve space in transaction for 2 balancings:
2305          * one for "save" link adding and another for the first
2306          * cut_from_item. 1 is for update_sd
2307          */
2308         error = journal_begin(&th, inode->i_sb,
2309                               JOURNAL_PER_BALANCE_CNT * 2 + 1);
2310         if (error)
2311                 goto out;
2312         reiserfs_update_inode_transaction(inode);
2313         if (update_timestamps)
2314                 /*
2315                  * we are doing real truncate: if the system crashes
2316                  * before the last transaction of truncating gets committed
2317                  * - on reboot the file either appears truncated properly
2318                  * or not truncated at all
2319                  */
2320                 add_save_link(&th, inode, 1);
2321         err2 = reiserfs_do_truncate(&th, inode, page, update_timestamps);
2322         error =
2323             journal_end(&th, inode->i_sb, JOURNAL_PER_BALANCE_CNT * 2 + 1);
2324         if (error)
2325                 goto out;
2326
2327         /* check reiserfs_do_truncate after ending the transaction */
2328         if (err2) {
2329                 error = err2;
2330                 goto out;
2331         }
2332         
2333         if (update_timestamps) {
2334                 error = remove_save_link(inode, 1 /* truncate */);
2335                 if (error)
2336                         goto out;
2337         }
2338
2339         if (page) {
2340                 length = offset & (blocksize - 1);
2341                 /* if we are not on a block boundary */
2342                 if (length) {
2343                         length = blocksize - length;
2344                         zero_user(page, offset, length);
2345                         if (buffer_mapped(bh) && bh->b_blocknr != 0) {
2346                                 mark_buffer_dirty(bh);
2347                         }
2348                 }
2349                 unlock_page(page);
2350                 page_cache_release(page);
2351         }
2352
2353         reiserfs_write_unlock(inode->i_sb);
2354
2355         return 0;
2356       out:
2357         if (page) {
2358                 unlock_page(page);
2359                 page_cache_release(page);
2360         }
2361
2362         reiserfs_write_unlock(inode->i_sb);
2363
2364         return error;
2365 }
2366
2367 static int map_block_for_writepage(struct inode *inode,
2368                                    struct buffer_head *bh_result,
2369                                    unsigned long block)
2370 {
2371         struct reiserfs_transaction_handle th;
2372         int fs_gen;
2373         struct item_head tmp_ih;
2374         struct item_head *ih;
2375         struct buffer_head *bh;
2376         __le32 *item;
2377         struct cpu_key key;
2378         INITIALIZE_PATH(path);
2379         int pos_in_item;
2380         int jbegin_count = JOURNAL_PER_BALANCE_CNT;
2381         loff_t byte_offset = ((loff_t)block << inode->i_sb->s_blocksize_bits)+1;
2382         int retval;
2383         int use_get_block = 0;
2384         int bytes_copied = 0;
2385         int copy_size;
2386         int trans_running = 0;
2387
2388         /*
2389          * catch places below that try to log something without
2390          * starting a trans
2391          */
2392         th.t_trans_id = 0;
2393
2394         if (!buffer_uptodate(bh_result)) {
2395                 return -EIO;
2396         }
2397
2398         kmap(bh_result->b_page);
2399       start_over:
2400         reiserfs_write_lock(inode->i_sb);
2401         make_cpu_key(&key, inode, byte_offset, TYPE_ANY, 3);
2402
2403       research:
2404         retval = search_for_position_by_key(inode->i_sb, &key, &path);
2405         if (retval != POSITION_FOUND) {
2406                 use_get_block = 1;
2407                 goto out;
2408         }
2409
2410         bh = get_last_bh(&path);
2411         ih = tp_item_head(&path);
2412         item = tp_item_body(&path);
2413         pos_in_item = path.pos_in_item;
2414
2415         /* we've found an unformatted node */
2416         if (indirect_item_found(retval, ih)) {
2417                 if (bytes_copied > 0) {
2418                         reiserfs_warning(inode->i_sb, "clm-6002",
2419                                          "bytes_copied %d", bytes_copied);
2420                 }
2421                 if (!get_block_num(item, pos_in_item)) {
2422                         /* crap, we are writing to a hole */
2423                         use_get_block = 1;
2424                         goto out;
2425                 }
2426                 set_block_dev_mapped(bh_result,
2427                                      get_block_num(item, pos_in_item), inode);
2428         } else if (is_direct_le_ih(ih)) {
2429                 char *p;
2430                 p = page_address(bh_result->b_page);
2431                 p += (byte_offset - 1) & (PAGE_CACHE_SIZE - 1);
2432                 copy_size = ih_item_len(ih) - pos_in_item;
2433
2434                 fs_gen = get_generation(inode->i_sb);
2435                 copy_item_head(&tmp_ih, ih);
2436
2437                 if (!trans_running) {
2438                         /* vs-3050 is gone, no need to drop the path */
2439                         retval = journal_begin(&th, inode->i_sb, jbegin_count);
2440                         if (retval)
2441                                 goto out;
2442                         reiserfs_update_inode_transaction(inode);
2443                         trans_running = 1;
2444                         if (fs_changed(fs_gen, inode->i_sb)
2445                             && item_moved(&tmp_ih, &path)) {
2446                                 reiserfs_restore_prepared_buffer(inode->i_sb,
2447                                                                  bh);
2448                                 goto research;
2449                         }
2450                 }
2451
2452                 reiserfs_prepare_for_journal(inode->i_sb, bh, 1);
2453
2454                 if (fs_changed(fs_gen, inode->i_sb)
2455                     && item_moved(&tmp_ih, &path)) {
2456                         reiserfs_restore_prepared_buffer(inode->i_sb, bh);
2457                         goto research;
2458                 }
2459
2460                 memcpy(ih_item_body(bh, ih) + pos_in_item, p + bytes_copied,
2461                        copy_size);
2462
2463                 journal_mark_dirty(&th, inode->i_sb, bh);
2464                 bytes_copied += copy_size;
2465                 set_block_dev_mapped(bh_result, 0, inode);
2466
2467                 /* are there still bytes left? */
2468                 if (bytes_copied < bh_result->b_size &&
2469                     (byte_offset + bytes_copied) < inode->i_size) {
2470                         set_cpu_key_k_offset(&key,
2471                                              cpu_key_k_offset(&key) +
2472                                              copy_size);
2473                         goto research;
2474                 }
2475         } else {
2476                 reiserfs_warning(inode->i_sb, "clm-6003",
2477                                  "bad item inode %lu", inode->i_ino);
2478                 retval = -EIO;
2479                 goto out;
2480         }
2481         retval = 0;
2482
2483       out:
2484         pathrelse(&path);
2485         if (trans_running) {
2486                 int err = journal_end(&th, inode->i_sb, jbegin_count);
2487                 if (err)
2488                         retval = err;
2489                 trans_running = 0;
2490         }
2491         reiserfs_write_unlock(inode->i_sb);
2492
2493         /* this is where we fill in holes in the file. */
2494         if (use_get_block) {
2495                 retval = reiserfs_get_block(inode, block, bh_result,
2496                                             GET_BLOCK_CREATE | GET_BLOCK_NO_IMUX
2497                                             | GET_BLOCK_NO_DANGLE);
2498                 if (!retval) {
2499                         if (!buffer_mapped(bh_result)
2500                             || bh_result->b_blocknr == 0) {
2501                                 /* get_block failed to find a mapped unformatted node. */
2502                                 use_get_block = 0;
2503                                 goto start_over;
2504                         }
2505                 }
2506         }
2507         kunmap(bh_result->b_page);
2508
2509         if (!retval && buffer_mapped(bh_result) && bh_result->b_blocknr == 0) {
2510                 /*
2511                  * we've copied data from the page into the direct item, so the
2512                  * buffer in the page is now clean, mark it to reflect that.
2513                  */
2514                 lock_buffer(bh_result);
2515                 clear_buffer_dirty(bh_result);
2516                 unlock_buffer(bh_result);
2517         }
2518         return retval;
2519 }
2520
2521 /*
2522  * mason@suse.com: updated in 2.5.54 to follow the same general io
2523  * start/recovery path as __block_write_full_page, along with special
2524  * code to handle reiserfs tails.
2525  */
2526 static int reiserfs_write_full_page(struct page *page,
2527                                     struct writeback_control *wbc)
2528 {
2529         struct inode *inode = page->mapping->host;
2530         unsigned long end_index = inode->i_size >> PAGE_CACHE_SHIFT;
2531         int error = 0;
2532         unsigned long block;
2533         sector_t last_block;
2534         struct buffer_head *head, *bh;
2535         int partial = 0;
2536         int nr = 0;
2537         int checked = PageChecked(page);
2538         struct reiserfs_transaction_handle th;
2539         struct super_block *s = inode->i_sb;
2540         int bh_per_page = PAGE_CACHE_SIZE / s->s_blocksize;
2541         th.t_trans_id = 0;
2542
2543         /* no logging allowed when nonblocking or from PF_MEMALLOC */
2544         if (checked && (current->flags & PF_MEMALLOC)) {
2545                 redirty_page_for_writepage(wbc, page);
2546                 unlock_page(page);
2547                 return 0;
2548         }
2549
2550         /*
2551          * The page dirty bit is cleared before writepage is called, which
2552          * means we have to tell create_empty_buffers to make dirty buffers
2553          * The page really should be up to date at this point, so tossing
2554          * in the BH_Uptodate is just a sanity check.
2555          */
2556         if (!page_has_buffers(page)) {
2557                 create_empty_buffers(page, s->s_blocksize,
2558                                      (1 << BH_Dirty) | (1 << BH_Uptodate));
2559         }
2560         head = page_buffers(page);
2561
2562         /*
2563          * last page in the file, zero out any contents past the
2564          * last byte in the file
2565          */
2566         if (page->index >= end_index) {
2567                 unsigned last_offset;
2568
2569                 last_offset = inode->i_size & (PAGE_CACHE_SIZE - 1);
2570                 /* no file contents in this page */
2571                 if (page->index >= end_index + 1 || !last_offset) {
2572                         unlock_page(page);
2573                         return 0;
2574                 }
2575                 zero_user_segment(page, last_offset, PAGE_CACHE_SIZE);
2576         }
2577         bh = head;
2578         block = page->index << (PAGE_CACHE_SHIFT - s->s_blocksize_bits);
2579         last_block = (i_size_read(inode) - 1) >> inode->i_blkbits;
2580         /* first map all the buffers, logging any direct items we find */
2581         do {
2582                 if (block > last_block) {
2583                         /*
2584                          * This can happen when the block size is less than
2585                          * the page size.  The corresponding bytes in the page
2586                          * were zero filled above
2587                          */
2588                         clear_buffer_dirty(bh);
2589                         set_buffer_uptodate(bh);
2590                 } else if ((checked || buffer_dirty(bh)) &&
2591                            (!buffer_mapped(bh) || (buffer_mapped(bh)
2592                                                        && bh->b_blocknr ==
2593                                                        0))) {
2594                         /*
2595                          * not mapped yet, or it points to a direct item, search
2596                          * the btree for the mapping info, and log any direct
2597                          * items found
2598                          */
2599                         if ((error = map_block_for_writepage(inode, bh, block))) {
2600                                 goto fail;
2601                         }
2602                 }
2603                 bh = bh->b_this_page;
2604                 block++;
2605         } while (bh != head);
2606
2607         /*
2608          * we start the transaction after map_block_for_writepage,
2609          * because it can create holes in the file (an unbounded operation).
2610          * starting it here, we can make a reliable estimate for how many
2611          * blocks we're going to log
2612          */
2613         if (checked) {
2614                 ClearPageChecked(page);
2615                 reiserfs_write_lock(s);
2616                 error = journal_begin(&th, s, bh_per_page + 1);
2617                 if (error) {
2618                         reiserfs_write_unlock(s);
2619                         goto fail;
2620                 }
2621                 reiserfs_update_inode_transaction(inode);
2622         }
2623         /* now go through and lock any dirty buffers on the page */
2624         do {
2625                 get_bh(bh);
2626                 if (!buffer_mapped(bh))
2627                         continue;
2628                 if (buffer_mapped(bh) && bh->b_blocknr == 0)
2629                         continue;
2630
2631                 if (checked) {
2632                         reiserfs_prepare_for_journal(s, bh, 1);
2633                         journal_mark_dirty(&th, s, bh);
2634                         continue;
2635                 }
2636                 /*
2637                  * from this point on, we know the buffer is mapped to a
2638                  * real block and not a direct item
2639                  */
2640                 if (wbc->sync_mode != WB_SYNC_NONE) {
2641                         lock_buffer(bh);
2642                 } else {
2643                         if (!trylock_buffer(bh)) {
2644                                 redirty_page_for_writepage(wbc, page);
2645                                 continue;
2646                         }
2647                 }
2648                 if (test_clear_buffer_dirty(bh)) {
2649                         mark_buffer_async_write(bh);
2650                 } else {
2651                         unlock_buffer(bh);
2652                 }
2653         } while ((bh = bh->b_this_page) != head);
2654
2655         if (checked) {
2656                 error = journal_end(&th, s, bh_per_page + 1);
2657                 reiserfs_write_unlock(s);
2658                 if (error)
2659                         goto fail;
2660         }
2661         BUG_ON(PageWriteback(page));
2662         set_page_writeback(page);
2663         unlock_page(page);
2664
2665         /*
2666          * since any buffer might be the only dirty buffer on the page,
2667          * the first submit_bh can bring the page out of writeback.
2668          * be careful with the buffers.
2669          */
2670         do {
2671                 struct buffer_head *next = bh->b_this_page;
2672                 if (buffer_async_write(bh)) {
2673                         submit_bh(WRITE, bh);
2674                         nr++;
2675                 }
2676                 put_bh(bh);
2677                 bh = next;
2678         } while (bh != head);
2679
2680         error = 0;
2681       done:
2682         if (nr == 0) {
2683                 /*
2684                  * if this page only had a direct item, it is very possible for
2685                  * no io to be required without there being an error.  Or,
2686                  * someone else could have locked them and sent them down the
2687                  * pipe without locking the page
2688                  */
2689                 bh = head;
2690                 do {
2691                         if (!buffer_uptodate(bh)) {
2692                                 partial = 1;
2693                                 break;
2694                         }
2695                         bh = bh->b_this_page;
2696                 } while (bh != head);
2697                 if (!partial)
2698                         SetPageUptodate(page);
2699                 end_page_writeback(page);
2700         }
2701         return error;
2702
2703       fail:
2704         /*
2705          * catches various errors, we need to make sure any valid dirty blocks
2706          * get to the media.  The page is currently locked and not marked for
2707          * writeback
2708          */
2709         ClearPageUptodate(page);
2710         bh = head;
2711         do {
2712                 get_bh(bh);
2713                 if (buffer_mapped(bh) && buffer_dirty(bh) && bh->b_blocknr) {
2714                         lock_buffer(bh);
2715                         mark_buffer_async_write(bh);
2716                 } else {
2717                         /*
2718                          * clear any dirty bits that might have come from
2719                          * getting attached to a dirty page
2720                          */
2721                         clear_buffer_dirty(bh);
2722                 }
2723                 bh = bh->b_this_page;
2724         } while (bh != head);
2725         SetPageError(page);
2726         BUG_ON(PageWriteback(page));
2727         set_page_writeback(page);
2728         unlock_page(page);
2729         do {
2730                 struct buffer_head *next = bh->b_this_page;
2731                 if (buffer_async_write(bh)) {
2732                         clear_buffer_dirty(bh);
2733                         submit_bh(WRITE, bh);
2734                         nr++;
2735                 }
2736                 put_bh(bh);
2737                 bh = next;
2738         } while (bh != head);
2739         goto done;
2740 }
2741
2742 static int reiserfs_readpage(struct file *f, struct page *page)
2743 {
2744         return block_read_full_page(page, reiserfs_get_block);
2745 }
2746
2747 static int reiserfs_writepage(struct page *page, struct writeback_control *wbc)
2748 {
2749         struct inode *inode = page->mapping->host;
2750         reiserfs_wait_on_write_block(inode->i_sb);
2751         return reiserfs_write_full_page(page, wbc);
2752 }
2753
2754 static void reiserfs_truncate_failed_write(struct inode *inode)
2755 {
2756         truncate_inode_pages(inode->i_mapping, inode->i_size);
2757         reiserfs_truncate_file(inode, 0);
2758 }
2759
2760 static int reiserfs_write_begin(struct file *file,
2761                                 struct address_space *mapping,
2762                                 loff_t pos, unsigned len, unsigned flags,
2763                                 struct page **pagep, void **fsdata)
2764 {
2765         struct inode *inode;
2766         struct page *page;
2767         pgoff_t index;
2768         int ret;
2769         int old_ref = 0;
2770
2771         inode = mapping->host;
2772         *fsdata = 0;
2773         if (flags & AOP_FLAG_CONT_EXPAND &&
2774             (pos & (inode->i_sb->s_blocksize - 1)) == 0) {
2775                 pos ++;
2776                 *fsdata = (void *)(unsigned long)flags;
2777         }
2778
2779         index = pos >> PAGE_CACHE_SHIFT;
2780         page = grab_cache_page_write_begin(mapping, index, flags);
2781         if (!page)
2782                 return -ENOMEM;
2783         *pagep = page;
2784
2785         reiserfs_wait_on_write_block(inode->i_sb);
2786         fix_tail_page_for_writing(page);
2787         if (reiserfs_transaction_running(inode->i_sb)) {
2788                 struct reiserfs_transaction_handle *th;
2789                 th = (struct reiserfs_transaction_handle *)current->
2790                     journal_info;
2791                 BUG_ON(!th->t_refcount);
2792                 BUG_ON(!th->t_trans_id);
2793                 old_ref = th->t_refcount;
2794                 th->t_refcount++;
2795         }
2796         ret = __block_write_begin(page, pos, len, reiserfs_get_block);
2797         if (ret && reiserfs_transaction_running(inode->i_sb)) {
2798                 struct reiserfs_transaction_handle *th = current->journal_info;
2799                 /*
2800                  * this gets a little ugly.  If reiserfs_get_block returned an
2801                  * error and left a transacstion running, we've got to close
2802                  * it, and we've got to free handle if it was a persistent
2803                  * transaction.
2804                  *
2805                  * But, if we had nested into an existing transaction, we need
2806                  * to just drop the ref count on the handle.
2807                  *
2808                  * If old_ref == 0, the transaction is from reiserfs_get_block,
2809                  * and it was a persistent trans.  Otherwise, it was nested
2810                  * above.
2811                  */
2812                 if (th->t_refcount > old_ref) {
2813                         if (old_ref)
2814                                 th->t_refcount--;
2815                         else {
2816                                 int err;
2817                                 reiserfs_write_lock(inode->i_sb);
2818                                 err = reiserfs_end_persistent_transaction(th);
2819                                 reiserfs_write_unlock(inode->i_sb);
2820                                 if (err)
2821                                         ret = err;
2822                         }
2823                 }
2824         }
2825         if (ret) {
2826                 unlock_page(page);
2827                 page_cache_release(page);
2828                 /* Truncate allocated blocks */
2829                 reiserfs_truncate_failed_write(inode);
2830         }
2831         return ret;
2832 }
2833
2834 int __reiserfs_write_begin(struct page *page, unsigned from, unsigned len)
2835 {
2836         struct inode *inode = page->mapping->host;
2837         int ret;
2838         int old_ref = 0;
2839         int depth;
2840
2841         depth = reiserfs_write_unlock_nested(inode->i_sb);
2842         reiserfs_wait_on_write_block(inode->i_sb);
2843         reiserfs_write_lock_nested(inode->i_sb, depth);
2844
2845         fix_tail_page_for_writing(page);
2846         if (reiserfs_transaction_running(inode->i_sb)) {
2847                 struct reiserfs_transaction_handle *th;
2848                 th = (struct reiserfs_transaction_handle *)current->
2849                     journal_info;
2850                 BUG_ON(!th->t_refcount);
2851                 BUG_ON(!th->t_trans_id);
2852                 old_ref = th->t_refcount;
2853                 th->t_refcount++;
2854         }
2855
2856         ret = __block_write_begin(page, from, len, reiserfs_get_block);
2857         if (ret && reiserfs_transaction_running(inode->i_sb)) {
2858                 struct reiserfs_transaction_handle *th = current->journal_info;
2859                 /*
2860                  * this gets a little ugly.  If reiserfs_get_block returned an
2861                  * error and left a transacstion running, we've got to close
2862                  * it, and we've got to free handle if it was a persistent
2863                  * transaction.
2864                  *
2865                  * But, if we had nested into an existing transaction, we need
2866                  * to just drop the ref count on the handle.
2867                  *
2868                  * If old_ref == 0, the transaction is from reiserfs_get_block,
2869                  * and it was a persistent trans.  Otherwise, it was nested
2870                  * above.
2871                  */
2872                 if (th->t_refcount > old_ref) {
2873                         if (old_ref)
2874                                 th->t_refcount--;
2875                         else {
2876                                 int err;
2877                                 reiserfs_write_lock(inode->i_sb);
2878                                 err = reiserfs_end_persistent_transaction(th);
2879                                 reiserfs_write_unlock(inode->i_sb);
2880                                 if (err)
2881                                         ret = err;
2882                         }
2883                 }
2884         }
2885         return ret;
2886
2887 }
2888
2889 static sector_t reiserfs_aop_bmap(struct address_space *as, sector_t block)
2890 {
2891         return generic_block_bmap(as, block, reiserfs_bmap);
2892 }
2893
2894 static int reiserfs_write_end(struct file *file, struct address_space *mapping,
2895                               loff_t pos, unsigned len, unsigned copied,
2896                               struct page *page, void *fsdata)
2897 {
2898         struct inode *inode = page->mapping->host;
2899         int ret = 0;
2900         int update_sd = 0;
2901         struct reiserfs_transaction_handle *th;
2902         unsigned start;
2903         bool locked = false;
2904
2905         if ((unsigned long)fsdata & AOP_FLAG_CONT_EXPAND)
2906                 pos ++;
2907
2908         reiserfs_wait_on_write_block(inode->i_sb);
2909         if (reiserfs_transaction_running(inode->i_sb))
2910                 th = current->journal_info;
2911         else
2912                 th = NULL;
2913
2914         start = pos & (PAGE_CACHE_SIZE - 1);
2915         if (unlikely(copied < len)) {
2916                 if (!PageUptodate(page))
2917                         copied = 0;
2918
2919                 page_zero_new_buffers(page, start + copied, start + len);
2920         }
2921         flush_dcache_page(page);
2922
2923         reiserfs_commit_page(inode, page, start, start + copied);
2924
2925         /*
2926          * generic_commit_write does this for us, but does not update the
2927          * transaction tracking stuff when the size changes.  So, we have
2928          * to do the i_size updates here.
2929          */
2930         if (pos + copied > inode->i_size) {
2931                 struct reiserfs_transaction_handle myth;
2932                 reiserfs_write_lock(inode->i_sb);
2933                 locked = true;
2934                 /*
2935                  * If the file have grown beyond the border where it
2936                  * can have a tail, unmark it as needing a tail
2937                  * packing
2938                  */
2939                 if ((have_large_tails(inode->i_sb)
2940                      && inode->i_size > i_block_size(inode) * 4)
2941                     || (have_small_tails(inode->i_sb)
2942                         && inode->i_size > i_block_size(inode)))
2943                         REISERFS_I(inode)->i_flags &= ~i_pack_on_close_mask;
2944
2945                 ret = journal_begin(&myth, inode->i_sb, 1);
2946                 if (ret)
2947                         goto journal_error;
2948
2949                 reiserfs_update_inode_transaction(inode);
2950                 inode->i_size = pos + copied;
2951                 /*
2952                  * this will just nest into our transaction.  It's important
2953                  * to use mark_inode_dirty so the inode gets pushed around on
2954                  * the dirty lists, and so that O_SYNC works as expected
2955                  */
2956                 mark_inode_dirty(inode);
2957                 reiserfs_update_sd(&myth, inode);
2958                 update_sd = 1;
2959                 ret = journal_end(&myth, inode->i_sb, 1);
2960                 if (ret)
2961                         goto journal_error;
2962         }
2963         if (th) {
2964                 if (!locked) {
2965                         reiserfs_write_lock(inode->i_sb);
2966                         locked = true;
2967                 }
2968                 if (!update_sd)
2969                         mark_inode_dirty(inode);
2970                 ret = reiserfs_end_persistent_transaction(th);
2971                 if (ret)
2972                         goto out;
2973         }
2974
2975       out:
2976         if (locked)
2977                 reiserfs_write_unlock(inode->i_sb);
2978         unlock_page(page);
2979         page_cache_release(page);
2980
2981         if (pos + len > inode->i_size)
2982                 reiserfs_truncate_failed_write(inode);
2983
2984         return ret == 0 ? copied : ret;
2985
2986       journal_error:
2987         reiserfs_write_unlock(inode->i_sb);
2988         locked = false;
2989         if (th) {
2990                 if (!update_sd)
2991                         reiserfs_update_sd(th, inode);
2992                 ret = reiserfs_end_persistent_transaction(th);
2993         }
2994         goto out;
2995 }
2996
2997 int reiserfs_commit_write(struct file *f, struct page *page,
2998                           unsigned from, unsigned to)
2999 {
3000         struct inode *inode = page->mapping->host;
3001         loff_t pos = ((loff_t) page->index << PAGE_CACHE_SHIFT) + to;
3002         int ret = 0;
3003         int update_sd = 0;
3004         struct reiserfs_transaction_handle *th = NULL;
3005         int depth;
3006
3007         depth = reiserfs_write_unlock_nested(inode->i_sb);
3008         reiserfs_wait_on_write_block(inode->i_sb);
3009         reiserfs_write_lock_nested(inode->i_sb, depth);
3010
3011         if (reiserfs_transaction_running(inode->i_sb)) {
3012                 th = current->journal_info;
3013         }
3014         reiserfs_commit_page(inode, page, from, to);
3015
3016         /*
3017          * generic_commit_write does this for us, but does not update the
3018          * transaction tracking stuff when the size changes.  So, we have
3019          * to do the i_size updates here.
3020          */
3021         if (pos > inode->i_size) {
3022                 struct reiserfs_transaction_handle myth;
3023                 /*
3024                  * If the file have grown beyond the border where it
3025                  * can have a tail, unmark it as needing a tail
3026                  * packing
3027                  */
3028                 if ((have_large_tails(inode->i_sb)
3029                      && inode->i_size > i_block_size(inode) * 4)
3030                     || (have_small_tails(inode->i_sb)
3031                         && inode->i_size > i_block_size(inode)))
3032                         REISERFS_I(inode)->i_flags &= ~i_pack_on_close_mask;
3033
3034                 ret = journal_begin(&myth, inode->i_sb, 1);
3035                 if (ret)
3036                         goto journal_error;
3037
3038                 reiserfs_update_inode_transaction(inode);
3039                 inode->i_size = pos;
3040                 /*
3041                  * this will just nest into our transaction.  It's important
3042                  * to use mark_inode_dirty so the inode gets pushed around
3043                  * on the dirty lists, and so that O_SYNC works as expected
3044                  */
3045                 mark_inode_dirty(inode);
3046                 reiserfs_update_sd(&myth, inode);
3047                 update_sd = 1;
3048                 ret = journal_end(&myth, inode->i_sb, 1);
3049                 if (ret)
3050                         goto journal_error;
3051         }
3052         if (th) {
3053                 if (!update_sd)
3054                         mark_inode_dirty(inode);
3055                 ret = reiserfs_end_persistent_transaction(th);
3056                 if (ret)
3057                         goto out;
3058         }
3059
3060       out:
3061         return ret;
3062
3063       journal_error:
3064         if (th) {
3065                 if (!update_sd)
3066                         reiserfs_update_sd(th, inode);
3067                 ret = reiserfs_end_persistent_transaction(th);
3068         }
3069
3070         return ret;
3071 }
3072
3073 void sd_attrs_to_i_attrs(__u16 sd_attrs, struct inode *inode)
3074 {
3075         if (reiserfs_attrs(inode->i_sb)) {
3076                 if (sd_attrs & REISERFS_SYNC_FL)
3077                         inode->i_flags |= S_SYNC;
3078                 else
3079                         inode->i_flags &= ~S_SYNC;
3080                 if (sd_attrs & REISERFS_IMMUTABLE_FL)
3081                         inode->i_flags |= S_IMMUTABLE;
3082                 else
3083                         inode->i_flags &= ~S_IMMUTABLE;
3084                 if (sd_attrs & REISERFS_APPEND_FL)
3085                         inode->i_flags |= S_APPEND;
3086                 else
3087                         inode->i_flags &= ~S_APPEND;
3088                 if (sd_attrs & REISERFS_NOATIME_FL)
3089                         inode->i_flags |= S_NOATIME;
3090                 else
3091                         inode->i_flags &= ~S_NOATIME;
3092                 if (sd_attrs & REISERFS_NOTAIL_FL)
3093                         REISERFS_I(inode)->i_flags |= i_nopack_mask;
3094                 else
3095                         REISERFS_I(inode)->i_flags &= ~i_nopack_mask;
3096         }
3097 }
3098
3099 void i_attrs_to_sd_attrs(struct inode *inode, __u16 * sd_attrs)
3100 {
3101         if (reiserfs_attrs(inode->i_sb)) {
3102                 if (inode->i_flags & S_IMMUTABLE)
3103                         *sd_attrs |= REISERFS_IMMUTABLE_FL;
3104                 else
3105                         *sd_attrs &= ~REISERFS_IMMUTABLE_FL;
3106                 if (inode->i_flags & S_SYNC)
3107                         *sd_attrs |= REISERFS_SYNC_FL;
3108                 else
3109                         *sd_attrs &= ~REISERFS_SYNC_FL;
3110                 if (inode->i_flags & S_NOATIME)
3111                         *sd_attrs |= REISERFS_NOATIME_FL;
3112                 else
3113                         *sd_attrs &= ~REISERFS_NOATIME_FL;
3114                 if (REISERFS_I(inode)->i_flags & i_nopack_mask)
3115                         *sd_attrs |= REISERFS_NOTAIL_FL;
3116                 else
3117                         *sd_attrs &= ~REISERFS_NOTAIL_FL;
3118         }
3119 }
3120
3121 /*
3122  * decide if this buffer needs to stay around for data logging or ordered
3123  * write purposes
3124  */
3125 static int invalidatepage_can_drop(struct inode *inode, struct buffer_head *bh)
3126 {
3127         int ret = 1;
3128         struct reiserfs_journal *j = SB_JOURNAL(inode->i_sb);
3129
3130         lock_buffer(bh);
3131         spin_lock(&j->j_dirty_buffers_lock);
3132         if (!buffer_mapped(bh)) {
3133                 goto free_jh;
3134         }
3135         /*
3136          * the page is locked, and the only places that log a data buffer
3137          * also lock the page.
3138          */
3139         if (reiserfs_file_data_log(inode)) {
3140                 /*
3141                  * very conservative, leave the buffer pinned if
3142                  * anyone might need it.
3143                  */
3144                 if (buffer_journaled(bh) || buffer_journal_dirty(bh)) {
3145                         ret = 0;
3146                 }
3147         } else  if (buffer_dirty(bh)) {
3148                 struct reiserfs_journal_list *jl;
3149                 struct reiserfs_jh *jh = bh->b_private;
3150
3151                 /*
3152                  * why is this safe?
3153                  * reiserfs_setattr updates i_size in the on disk
3154                  * stat data before allowing vmtruncate to be called.
3155                  *
3156                  * If buffer was put onto the ordered list for this
3157                  * transaction, we know for sure either this transaction
3158                  * or an older one already has updated i_size on disk,
3159                  * and this ordered data won't be referenced in the file
3160                  * if we crash.
3161                  *
3162                  * if the buffer was put onto the ordered list for an older
3163                  * transaction, we need to leave it around
3164                  */
3165                 if (jh && (jl = jh->jl)
3166                     && jl != SB_JOURNAL(inode->i_sb)->j_current_jl)
3167                         ret = 0;
3168         }
3169       free_jh:
3170         if (ret && bh->b_private) {
3171                 reiserfs_free_jh(bh);
3172         }
3173         spin_unlock(&j->j_dirty_buffers_lock);
3174         unlock_buffer(bh);
3175         return ret;
3176 }
3177
3178 /* clm -- taken from fs/buffer.c:block_invalidate_page */
3179 static void reiserfs_invalidatepage(struct page *page, unsigned int offset,
3180                                     unsigned int length)
3181 {
3182         struct buffer_head *head, *bh, *next;
3183         struct inode *inode = page->mapping->host;
3184         unsigned int curr_off = 0;
3185         unsigned int stop = offset + length;
3186         int partial_page = (offset || length < PAGE_CACHE_SIZE);
3187         int ret = 1;
3188
3189         BUG_ON(!PageLocked(page));
3190
3191         if (!partial_page)
3192                 ClearPageChecked(page);
3193
3194         if (!page_has_buffers(page))
3195                 goto out;
3196
3197         head = page_buffers(page);
3198         bh = head;
3199         do {
3200                 unsigned int next_off = curr_off + bh->b_size;
3201                 next = bh->b_this_page;
3202
3203                 if (next_off > stop)
3204                         goto out;
3205
3206                 /*
3207                  * is this block fully invalidated?
3208                  */
3209                 if (offset <= curr_off) {
3210                         if (invalidatepage_can_drop(inode, bh))
3211                                 reiserfs_unmap_buffer(bh);
3212                         else
3213                                 ret = 0;
3214                 }
3215                 curr_off = next_off;
3216                 bh = next;
3217         } while (bh != head);
3218
3219         /*
3220          * We release buffers only if the entire page is being invalidated.
3221          * The get_block cached value has been unconditionally invalidated,
3222          * so real IO is not possible anymore.
3223          */
3224         if (!partial_page && ret) {
3225                 ret = try_to_release_page(page, 0);
3226                 /* maybe should BUG_ON(!ret); - neilb */
3227         }
3228       out:
3229         return;
3230 }
3231
3232 static int reiserfs_set_page_dirty(struct page *page)
3233 {
3234         struct inode *inode = page->mapping->host;
3235         if (reiserfs_file_data_log(inode)) {
3236                 SetPageChecked(page);
3237                 return __set_page_dirty_nobuffers(page);
3238         }
3239         return __set_page_dirty_buffers(page);
3240 }
3241
3242 /*
3243  * Returns 1 if the page's buffers were dropped.  The page is locked.
3244  *
3245  * Takes j_dirty_buffers_lock to protect the b_assoc_buffers list_heads
3246  * in the buffers at page_buffers(page).
3247  *
3248  * even in -o notail mode, we can't be sure an old mount without -o notail
3249  * didn't create files with tails.
3250  */
3251 static int reiserfs_releasepage(struct page *page, gfp_t unused_gfp_flags)
3252 {
3253         struct inode *inode = page->mapping->host;
3254         struct reiserfs_journal *j = SB_JOURNAL(inode->i_sb);
3255         struct buffer_head *head;
3256         struct buffer_head *bh;
3257         int ret = 1;
3258
3259         WARN_ON(PageChecked(page));
3260         spin_lock(&j->j_dirty_buffers_lock);
3261         head = page_buffers(page);
3262         bh = head;
3263         do {
3264                 if (bh->b_private) {
3265                         if (!buffer_dirty(bh) && !buffer_locked(bh)) {
3266                                 reiserfs_free_jh(bh);
3267                         } else {
3268                                 ret = 0;
3269                                 break;
3270                         }
3271                 }
3272                 bh = bh->b_this_page;
3273         } while (bh != head);
3274         if (ret)
3275                 ret = try_to_free_buffers(page);
3276         spin_unlock(&j->j_dirty_buffers_lock);
3277         return ret;
3278 }
3279
3280 /*
3281  * We thank Mingming Cao for helping us understand in great detail what
3282  * to do in this section of the code.
3283  */
3284 static ssize_t reiserfs_direct_IO(int rw, struct kiocb *iocb,
3285                                   const struct iovec *iov, loff_t offset,
3286                                   unsigned long nr_segs)
3287 {
3288         struct file *file = iocb->ki_filp;
3289         struct inode *inode = file->f_mapping->host;
3290         ssize_t ret;
3291
3292         ret = blockdev_direct_IO(rw, iocb, inode, iov, offset, nr_segs,
3293                                   reiserfs_get_blocks_direct_io);
3294
3295         /*
3296          * In case of error extending write may have instantiated a few
3297          * blocks outside i_size. Trim these off again.
3298          */
3299         if (unlikely((rw & WRITE) && ret < 0)) {
3300                 loff_t isize = i_size_read(inode);
3301                 loff_t end = offset + iov_length(iov, nr_segs);
3302
3303                 if ((end > isize) && inode_newsize_ok(inode, isize) == 0) {
3304                         truncate_setsize(inode, isize);
3305                         reiserfs_vfs_truncate_file(inode);
3306                 }
3307         }
3308
3309         return ret;
3310 }
3311
3312 int reiserfs_setattr(struct dentry *dentry, struct iattr *attr)
3313 {
3314         struct inode *inode = dentry->d_inode;
3315         unsigned int ia_valid;
3316         int error;
3317
3318         error = inode_change_ok(inode, attr);
3319         if (error)
3320                 return error;
3321
3322         /* must be turned off for recursive notify_change calls */
3323         ia_valid = attr->ia_valid &= ~(ATTR_KILL_SUID|ATTR_KILL_SGID);
3324
3325         if (is_quota_modification(inode, attr))
3326                 dquot_initialize(inode);
3327         reiserfs_write_lock(inode->i_sb);
3328         if (attr->ia_valid & ATTR_SIZE) {
3329                 /*
3330                  * version 2 items will be caught by the s_maxbytes check
3331                  * done for us in vmtruncate
3332                  */
3333                 if (get_inode_item_key_version(inode) == KEY_FORMAT_3_5 &&
3334                     attr->ia_size > MAX_NON_LFS) {
3335                         reiserfs_write_unlock(inode->i_sb);
3336                         error = -EFBIG;
3337                         goto out;
3338                 }
3339
3340                 inode_dio_wait(inode);
3341
3342                 /* fill in hole pointers in the expanding truncate case. */
3343                 if (attr->ia_size > inode->i_size) {
3344                         error = generic_cont_expand_simple(inode, attr->ia_size);
3345                         if (REISERFS_I(inode)->i_prealloc_count > 0) {
3346                                 int err;
3347                                 struct reiserfs_transaction_handle th;
3348                                 /* we're changing at most 2 bitmaps, inode + super */
3349                                 err = journal_begin(&th, inode->i_sb, 4);
3350                                 if (!err) {
3351                                         reiserfs_discard_prealloc(&th, inode);
3352                                         err = journal_end(&th, inode->i_sb, 4);
3353                                 }
3354                                 if (err)
3355                                         error = err;
3356                         }
3357                         if (error) {
3358                                 reiserfs_write_unlock(inode->i_sb);
3359                                 goto out;
3360                         }
3361                         /*
3362                          * file size is changed, ctime and mtime are
3363                          * to be updated
3364                          */
3365                         attr->ia_valid |= (ATTR_MTIME | ATTR_CTIME);
3366                 }
3367         }
3368         reiserfs_write_unlock(inode->i_sb);
3369
3370         if ((((attr->ia_valid & ATTR_UID) && (from_kuid(&init_user_ns, attr->ia_uid) & ~0xffff)) ||
3371              ((attr->ia_valid & ATTR_GID) && (from_kgid(&init_user_ns, attr->ia_gid) & ~0xffff))) &&
3372             (get_inode_sd_version(inode) == STAT_DATA_V1)) {
3373                 /* stat data of format v3.5 has 16 bit uid and gid */
3374                 error = -EINVAL;
3375                 goto out;
3376         }
3377
3378         if ((ia_valid & ATTR_UID && !uid_eq(attr->ia_uid, inode->i_uid)) ||
3379             (ia_valid & ATTR_GID && !gid_eq(attr->ia_gid, inode->i_gid))) {
3380                 struct reiserfs_transaction_handle th;
3381                 int jbegin_count =
3382                     2 *
3383                     (REISERFS_QUOTA_INIT_BLOCKS(inode->i_sb) +
3384                      REISERFS_QUOTA_DEL_BLOCKS(inode->i_sb)) +
3385                     2;
3386
3387                 error = reiserfs_chown_xattrs(inode, attr);
3388
3389                 if (error)
3390                         return error;
3391
3392                 /*
3393                  * (user+group)*(old+new) structure - we count quota
3394                  * info and , inode write (sb, inode)
3395                  */
3396                 reiserfs_write_lock(inode->i_sb);
3397                 error = journal_begin(&th, inode->i_sb, jbegin_count);
3398                 reiserfs_write_unlock(inode->i_sb);
3399                 if (error)
3400                         goto out;
3401                 error = dquot_transfer(inode, attr);
3402                 reiserfs_write_lock(inode->i_sb);
3403                 if (error) {
3404                         journal_end(&th, inode->i_sb, jbegin_count);
3405                         reiserfs_write_unlock(inode->i_sb);
3406                         goto out;
3407                 }
3408
3409                 /*
3410                  * Update corresponding info in inode so that everything
3411                  * is in one transaction
3412                  */
3413                 if (attr->ia_valid & ATTR_UID)
3414                         inode->i_uid = attr->ia_uid;
3415                 if (attr->ia_valid & ATTR_GID)
3416                         inode->i_gid = attr->ia_gid;
3417                 mark_inode_dirty(inode);
3418                 error = journal_end(&th, inode->i_sb, jbegin_count);
3419                 reiserfs_write_unlock(inode->i_sb);
3420                 if (error)
3421                         goto out;
3422         }
3423
3424         if ((attr->ia_valid & ATTR_SIZE) &&
3425             attr->ia_size != i_size_read(inode)) {
3426                 error = inode_newsize_ok(inode, attr->ia_size);
3427                 if (!error) {
3428                         truncate_setsize(inode, attr->ia_size);
3429                         reiserfs_vfs_truncate_file(inode);
3430                 }
3431         }
3432
3433         if (!error) {
3434                 setattr_copy(inode, attr);
3435                 mark_inode_dirty(inode);
3436         }
3437
3438         if (!error && reiserfs_posixacl(inode->i_sb)) {
3439                 if (attr->ia_valid & ATTR_MODE)
3440                         error = reiserfs_acl_chmod(inode);
3441         }
3442
3443 out:
3444         return error;
3445 }
3446
3447 const struct address_space_operations reiserfs_address_space_operations = {
3448         .writepage = reiserfs_writepage,
3449         .readpage = reiserfs_readpage,
3450         .readpages = reiserfs_readpages,
3451         .releasepage = reiserfs_releasepage,
3452         .invalidatepage = reiserfs_invalidatepage,
3453         .write_begin = reiserfs_write_begin,
3454         .write_end = reiserfs_write_end,
3455         .bmap = reiserfs_aop_bmap,
3456         .direct_IO = reiserfs_direct_IO,
3457         .set_page_dirty = reiserfs_set_page_dirty,
3458 };