1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * linux/fs/ext2/inode.c
4 *
5 * Copyright (C) 1992, 1993, 1994, 1995
6 * Remy Card (card@masi.ibp.fr)
7 * Laboratoire MASI - Institut Blaise Pascal
8 * Universite Pierre et Marie Curie (Paris VI)
9 *
10 * from
11 *
12 * linux/fs/minix/inode.c
13 *
14 * Copyright (C) 1991, 1992 Linus Torvalds
15 *
16 * Goal-directed block allocation by Stephen Tweedie
17 * (sct@dcs.ed.ac.uk), 1993, 1998
18 * Big-endian to little-endian byte-swapping/bitmaps by
19 * David S. Miller (davem@caip.rutgers.edu), 1995
20 * 64-bit file support on 64-bit platforms by Jakub Jelinek
21 * (jj@sunsite.ms.mff.cuni.cz)
22 *
23 * Assorted race fixes, rewrite of ext2_get_block() by Al Viro, 2000
24 */
25
26 #include <linux/time.h>
27 #include <linux/highuid.h>
28 #include <linux/pagemap.h>
29 #include <linux/dax.h>
30 #include <linux/blkdev.h>
31 #include <linux/quotaops.h>
32 #include <linux/writeback.h>
33 #include <linux/buffer_head.h>
34 #include <linux/mpage.h>
35 #include <linux/fiemap.h>
36 #include <linux/iomap.h>
37 #include <linux/namei.h>
38 #include <linux/uio.h>
39 #include "ext2.h"
40 #include "acl.h"
41 #include "xattr.h"
42
43 static int __ext2_write_inode(struct inode *inode, int do_sync);
44
45 /*
46 * Test whether an inode is a fast symlink.
47 */
ext2_inode_is_fast_symlink(struct inode * inode)48 static inline int ext2_inode_is_fast_symlink(struct inode *inode)
49 {
50 int ea_blocks = EXT2_I(inode)->i_file_acl ?
51 (inode->i_sb->s_blocksize >> 9) : 0;
52
53 return (S_ISLNK(inode->i_mode) &&
54 inode->i_blocks - ea_blocks == 0);
55 }
56
57 static void ext2_truncate_blocks(struct inode *inode, loff_t offset);
58
ext2_write_failed(struct address_space * mapping,loff_t to)59 void ext2_write_failed(struct address_space *mapping, loff_t to)
60 {
61 struct inode *inode = mapping->host;
62
63 if (to > inode->i_size) {
64 truncate_pagecache(inode, inode->i_size);
65 ext2_truncate_blocks(inode, inode->i_size);
66 }
67 }
68
69 /*
70 * Called at the last iput() if i_nlink is zero.
71 */
ext2_evict_inode(struct inode * inode)72 void ext2_evict_inode(struct inode * inode)
73 {
74 struct ext2_block_alloc_info *rsv;
75 int want_delete = 0;
76
77 if (!inode->i_nlink && !is_bad_inode(inode)) {
78 want_delete = 1;
79 dquot_initialize(inode);
80 } else {
81 dquot_drop(inode);
82 }
83
84 truncate_inode_pages_final(&inode->i_data);
85
86 if (want_delete) {
87 sb_start_intwrite(inode->i_sb);
88 /* set dtime */
89 EXT2_I(inode)->i_dtime = ktime_get_real_seconds();
90 mark_inode_dirty(inode);
91 __ext2_write_inode(inode, inode_needs_sync(inode));
92 /* truncate to 0 */
93 inode->i_size = 0;
94 if (inode->i_blocks)
95 ext2_truncate_blocks(inode, 0);
96 ext2_xattr_delete_inode(inode);
97 } else {
98 mmb_sync(&EXT2_I(inode)->i_metadata_bhs);
99 }
100 mmb_invalidate(&EXT2_I(inode)->i_metadata_bhs);
101 clear_inode(inode);
102
103 ext2_discard_reservation(inode);
104 rsv = EXT2_I(inode)->i_block_alloc_info;
105 EXT2_I(inode)->i_block_alloc_info = NULL;
106 if (unlikely(rsv))
107 kfree(rsv);
108
109 if (want_delete) {
110 ext2_free_inode(inode);
111 sb_end_intwrite(inode->i_sb);
112 }
113 }
114
115 typedef struct {
116 __le32 *p;
117 __le32 key;
118 struct buffer_head *bh;
119 } Indirect;
120
add_chain(Indirect * p,struct buffer_head * bh,__le32 * v)121 static inline void add_chain(Indirect *p, struct buffer_head *bh, __le32 *v)
122 {
123 p->key = *(p->p = v);
124 p->bh = bh;
125 }
126
verify_chain(Indirect * from,Indirect * to)127 static inline int verify_chain(Indirect *from, Indirect *to)
128 {
129 while (from <= to && from->key == *from->p)
130 from++;
131 return (from > to);
132 }
133
134 /**
135 * ext2_block_to_path - parse the block number into array of offsets
136 * @inode: inode in question (we are only interested in its superblock)
137 * @i_block: block number to be parsed
138 * @offsets: array to store the offsets in
139 * @boundary: set this non-zero if the referred-to block is likely to be
140 * followed (on disk) by an indirect block.
141 * To store the locations of file's data ext2 uses a data structure common
142 * for UNIX filesystems - tree of pointers anchored in the inode, with
143 * data blocks at leaves and indirect blocks in intermediate nodes.
144 * This function translates the block number into path in that tree -
145 * return value is the path length and @offsets[n] is the offset of
146 * pointer to (n+1)th node in the nth one. If @block is out of range
147 * (negative or too large) warning is printed and zero returned.
148 *
149 * Note: function doesn't find node addresses, so no IO is needed. All
150 * we need to know is the capacity of indirect blocks (taken from the
151 * inode->i_sb).
152 */
153
154 /*
155 * Portability note: the last comparison (check that we fit into triple
156 * indirect block) is spelled differently, because otherwise on an
157 * architecture with 32-bit longs and 8Kb pages we might get into trouble
158 * if our filesystem had 8Kb blocks. We might use long long, but that would
159 * kill us on x86. Oh, well, at least the sign propagation does not matter -
160 * i_block would have to be negative in the very beginning, so we would not
161 * get there at all.
162 */
163
ext2_block_to_path(struct inode * inode,long i_block,int offsets[4],int * boundary)164 static int ext2_block_to_path(struct inode *inode,
165 long i_block, int offsets[4], int *boundary)
166 {
167 int ptrs = EXT2_ADDR_PER_BLOCK(inode->i_sb);
168 int ptrs_bits = EXT2_ADDR_PER_BLOCK_BITS(inode->i_sb);
169 const long direct_blocks = EXT2_NDIR_BLOCKS,
170 indirect_blocks = ptrs,
171 double_blocks = (1 << (ptrs_bits * 2));
172 int n = 0;
173 int final = 0;
174
175 if (i_block < 0) {
176 ext2_msg(inode->i_sb, KERN_WARNING,
177 "warning: %s: block < 0", __func__);
178 } else if (i_block < direct_blocks) {
179 offsets[n++] = i_block;
180 final = direct_blocks;
181 } else if ( (i_block -= direct_blocks) < indirect_blocks) {
182 offsets[n++] = EXT2_IND_BLOCK;
183 offsets[n++] = i_block;
184 final = ptrs;
185 } else if ((i_block -= indirect_blocks) < double_blocks) {
186 offsets[n++] = EXT2_DIND_BLOCK;
187 offsets[n++] = i_block >> ptrs_bits;
188 offsets[n++] = i_block & (ptrs - 1);
189 final = ptrs;
190 } else if (((i_block -= double_blocks) >> (ptrs_bits * 2)) < ptrs) {
191 offsets[n++] = EXT2_TIND_BLOCK;
192 offsets[n++] = i_block >> (ptrs_bits * 2);
193 offsets[n++] = (i_block >> ptrs_bits) & (ptrs - 1);
194 offsets[n++] = i_block & (ptrs - 1);
195 final = ptrs;
196 } else {
197 ext2_msg(inode->i_sb, KERN_WARNING,
198 "warning: %s: block is too big", __func__);
199 }
200 if (boundary)
201 *boundary = final - 1 - (i_block & (ptrs - 1));
202
203 return n;
204 }
205
206 /**
207 * ext2_get_branch - read the chain of indirect blocks leading to data
208 * @inode: inode in question
209 * @depth: depth of the chain (1 - direct pointer, etc.)
210 * @offsets: offsets of pointers in inode/indirect blocks
211 * @chain: place to store the result
212 * @err: here we store the error value
213 *
214 * Function fills the array of triples <key, p, bh> and returns %NULL
215 * if everything went OK or the pointer to the last filled triple
216 * (incomplete one) otherwise. Upon the return chain[i].key contains
217 * the number of (i+1)-th block in the chain (as it is stored in memory,
218 * i.e. little-endian 32-bit), chain[i].p contains the address of that
219 * number (it points into struct inode for i==0 and into the bh->b_data
220 * for i>0) and chain[i].bh points to the buffer_head of i-th indirect
221 * block for i>0 and NULL for i==0. In other words, it holds the block
222 * numbers of the chain, addresses they were taken from (and where we can
223 * verify that chain did not change) and buffer_heads hosting these
224 * numbers.
225 *
226 * Function stops when it stumbles upon zero pointer (absent block)
227 * (pointer to last triple returned, *@err == 0)
228 * or when it gets an IO error reading an indirect block
229 * (ditto, *@err == -EIO)
230 * or when it notices that chain had been changed while it was reading
231 * (ditto, *@err == -EAGAIN)
232 * or when it reads all @depth-1 indirect blocks successfully and finds
233 * the whole chain, all way to the data (returns %NULL, *err == 0).
234 */
ext2_get_branch(struct inode * inode,int depth,int * offsets,Indirect chain[4],int * err)235 static Indirect *ext2_get_branch(struct inode *inode,
236 int depth,
237 int *offsets,
238 Indirect chain[4],
239 int *err)
240 {
241 struct super_block *sb = inode->i_sb;
242 Indirect *p = chain;
243 struct buffer_head *bh;
244
245 *err = 0;
246 /* i_data is not going away, no lock needed */
247 add_chain (chain, NULL, EXT2_I(inode)->i_data + *offsets);
248 if (!p->key)
249 goto no_block;
250 while (--depth) {
251 bh = sb_bread(sb, le32_to_cpu(p->key));
252 if (!bh)
253 goto failure;
254 read_lock(&EXT2_I(inode)->i_meta_lock);
255 if (!verify_chain(chain, p))
256 goto changed;
257 add_chain(++p, bh, (__le32*)bh->b_data + *++offsets);
258 read_unlock(&EXT2_I(inode)->i_meta_lock);
259 if (!p->key)
260 goto no_block;
261 }
262 return NULL;
263
264 changed:
265 read_unlock(&EXT2_I(inode)->i_meta_lock);
266 brelse(bh);
267 *err = -EAGAIN;
268 goto no_block;
269 failure:
270 *err = -EIO;
271 no_block:
272 return p;
273 }
274
275 /**
276 * ext2_find_near - find a place for allocation with sufficient locality
277 * @inode: owner
278 * @ind: descriptor of indirect block.
279 *
280 * This function returns the preferred place for block allocation.
281 * It is used when heuristic for sequential allocation fails.
282 * Rules are:
283 * + if there is a block to the left of our position - allocate near it.
284 * + if pointer will live in indirect block - allocate near that block.
285 * + if pointer will live in inode - allocate in the same cylinder group.
286 *
287 * In the latter case we colour the starting block by the callers PID to
288 * prevent it from clashing with concurrent allocations for a different inode
289 * in the same block group. The PID is used here so that functionally related
290 * files will be close-by on-disk.
291 *
292 * Caller must make sure that @ind is valid and will stay that way.
293 */
294
ext2_find_near(struct inode * inode,Indirect * ind)295 static ext2_fsblk_t ext2_find_near(struct inode *inode, Indirect *ind)
296 {
297 struct ext2_inode_info *ei = EXT2_I(inode);
298 __le32 *start = ind->bh ? (__le32 *) ind->bh->b_data : ei->i_data;
299 __le32 *p;
300 ext2_fsblk_t bg_start;
301 ext2_fsblk_t colour;
302
303 /* Try to find previous block */
304 for (p = ind->p - 1; p >= start; p--)
305 if (*p)
306 return le32_to_cpu(*p);
307
308 /* No such thing, so let's try location of indirect block */
309 if (ind->bh)
310 return ind->bh->b_blocknr;
311
312 /*
313 * It is going to be referred from inode itself? OK, just put it into
314 * the same cylinder group then.
315 */
316 bg_start = ext2_group_first_block_no(inode->i_sb, ei->i_block_group);
317 colour = (current->pid % 16) *
318 (EXT2_BLOCKS_PER_GROUP(inode->i_sb) / 16);
319 return bg_start + colour;
320 }
321
322 /**
323 * ext2_find_goal - find a preferred place for allocation.
324 * @inode: owner
325 * @block: block we want
326 * @partial: pointer to the last triple within a chain
327 *
328 * Returns preferred place for a block (the goal).
329 */
330
ext2_find_goal(struct inode * inode,long block,Indirect * partial)331 static inline ext2_fsblk_t ext2_find_goal(struct inode *inode, long block,
332 Indirect *partial)
333 {
334 struct ext2_block_alloc_info *block_i;
335
336 block_i = EXT2_I(inode)->i_block_alloc_info;
337
338 /*
339 * try the heuristic for sequential allocation,
340 * failing that at least try to get decent locality.
341 */
342 if (block_i && (block == block_i->last_alloc_logical_block + 1)
343 && (block_i->last_alloc_physical_block != 0)) {
344 return block_i->last_alloc_physical_block + 1;
345 }
346
347 return ext2_find_near(inode, partial);
348 }
349
350 /**
351 * ext2_blks_to_allocate: Look up the block map and count the number
352 * of direct blocks need to be allocated for the given branch.
353 *
354 * @branch: chain of indirect blocks
355 * @k: number of blocks need for indirect blocks
356 * @blks: number of data blocks to be mapped.
357 * @blocks_to_boundary: the offset in the indirect block
358 *
359 * return the number of direct blocks to allocate.
360 */
361 static int
ext2_blks_to_allocate(Indirect * branch,int k,unsigned long blks,int blocks_to_boundary)362 ext2_blks_to_allocate(Indirect * branch, int k, unsigned long blks,
363 int blocks_to_boundary)
364 {
365 unsigned long count = 0;
366
367 /*
368 * Simple case, [t,d]Indirect block(s) has not allocated yet
369 * then it's clear blocks on that path have not allocated
370 */
371 if (k > 0) {
372 /* right now don't hanel cross boundary allocation */
373 if (blks < blocks_to_boundary + 1)
374 count += blks;
375 else
376 count += blocks_to_boundary + 1;
377 return count;
378 }
379
380 count++;
381 while (count < blks && count <= blocks_to_boundary
382 && le32_to_cpu(*(branch[0].p + count)) == 0) {
383 count++;
384 }
385 return count;
386 }
387
388 /**
389 * ext2_alloc_blocks: Allocate multiple blocks needed for a branch.
390 * @inode: Owner.
391 * @goal: Preferred place for allocation.
392 * @indirect_blks: The number of blocks needed to allocate for indirect blocks.
393 * @blks: The number of blocks need to allocate for direct blocks.
394 * @new_blocks: On return it will store the new block numbers for
395 * the indirect blocks(if needed) and the first direct block.
396 * @err: Error pointer.
397 *
398 * Return: Number of blocks allocated.
399 */
ext2_alloc_blocks(struct inode * inode,ext2_fsblk_t goal,int indirect_blks,int blks,ext2_fsblk_t new_blocks[4],int * err)400 static int ext2_alloc_blocks(struct inode *inode,
401 ext2_fsblk_t goal, int indirect_blks, int blks,
402 ext2_fsblk_t new_blocks[4], int *err)
403 {
404 int target, i;
405 unsigned long count = 0;
406 int index = 0;
407 ext2_fsblk_t current_block = 0;
408 int ret = 0;
409
410 /*
411 * Here we try to allocate the requested multiple blocks at once,
412 * on a best-effort basis.
413 * To build a branch, we should allocate blocks for
414 * the indirect blocks(if not allocated yet), and at least
415 * the first direct block of this branch. That's the
416 * minimum number of blocks need to allocate(required)
417 */
418 target = blks + indirect_blks;
419
420 while (1) {
421 count = target;
422 /* allocating blocks for indirect blocks and direct blocks */
423 current_block = ext2_new_blocks(inode, goal, &count, err, 0);
424 if (*err)
425 goto failed_out;
426
427 target -= count;
428 /* allocate blocks for indirect blocks */
429 while (index < indirect_blks && count) {
430 new_blocks[index++] = current_block++;
431 count--;
432 }
433
434 if (count > 0)
435 break;
436 }
437
438 /* save the new block number for the first direct block */
439 new_blocks[index] = current_block;
440
441 /* total number of blocks allocated for direct blocks */
442 ret = count;
443 *err = 0;
444 return ret;
445 failed_out:
446 for (i = 0; i <index; i++)
447 ext2_free_blocks(inode, new_blocks[i], 1);
448 if (index)
449 mark_inode_dirty(inode);
450 return ret;
451 }
452
453 /**
454 * ext2_alloc_branch - allocate and set up a chain of blocks.
455 * @inode: owner
456 * @indirect_blks: depth of the chain (number of blocks to allocate)
457 * @blks: number of allocated direct blocks
458 * @goal: preferred place for allocation
459 * @offsets: offsets (in the blocks) to store the pointers to next.
460 * @branch: place to store the chain in.
461 *
462 * This function allocates @num blocks, zeroes out all but the last one,
463 * links them into chain and (if we are synchronous) writes them to disk.
464 * In other words, it prepares a branch that can be spliced onto the
465 * inode. It stores the information about that chain in the branch[], in
466 * the same format as ext2_get_branch() would do. We are calling it after
467 * we had read the existing part of chain and partial points to the last
468 * triple of that (one with zero ->key). Upon the exit we have the same
469 * picture as after the successful ext2_get_block(), except that in one
470 * place chain is disconnected - *branch->p is still zero (we did not
471 * set the last link), but branch->key contains the number that should
472 * be placed into *branch->p to fill that gap.
473 *
474 * If allocation fails we free all blocks we've allocated (and forget
475 * their buffer_heads) and return the error value the from failed
476 * ext2_alloc_block() (normally -ENOSPC). Otherwise we set the chain
477 * as described above and return 0.
478 */
479
ext2_alloc_branch(struct inode * inode,int indirect_blks,int * blks,ext2_fsblk_t goal,int * offsets,Indirect * branch)480 static int ext2_alloc_branch(struct inode *inode,
481 int indirect_blks, int *blks, ext2_fsblk_t goal,
482 int *offsets, Indirect *branch)
483 {
484 int blocksize = inode->i_sb->s_blocksize;
485 int i, n = 0;
486 int err = 0;
487 struct buffer_head *bh;
488 int num;
489 ext2_fsblk_t new_blocks[4];
490 ext2_fsblk_t current_block;
491
492 num = ext2_alloc_blocks(inode, goal, indirect_blks,
493 *blks, new_blocks, &err);
494 if (err)
495 return err;
496
497 branch[0].key = cpu_to_le32(new_blocks[0]);
498 /*
499 * metadata blocks and data blocks are allocated.
500 */
501 for (n = 1; n <= indirect_blks; n++) {
502 /*
503 * Get buffer_head for parent block, zero it out
504 * and set the pointer to new one, then send
505 * parent to disk.
506 */
507 bh = sb_getblk(inode->i_sb, new_blocks[n-1]);
508 if (unlikely(!bh)) {
509 err = -ENOMEM;
510 goto failed;
511 }
512 branch[n].bh = bh;
513 lock_buffer(bh);
514 memset(bh->b_data, 0, blocksize);
515 branch[n].p = (__le32 *) bh->b_data + offsets[n];
516 branch[n].key = cpu_to_le32(new_blocks[n]);
517 *branch[n].p = branch[n].key;
518 if ( n == indirect_blks) {
519 current_block = new_blocks[n];
520 /*
521 * End of chain, update the last new metablock of
522 * the chain to point to the new allocated
523 * data blocks numbers
524 */
525 for (i=1; i < num; i++)
526 *(branch[n].p + i) = cpu_to_le32(++current_block);
527 }
528 set_buffer_uptodate(bh);
529 unlock_buffer(bh);
530 mmb_mark_buffer_dirty(bh, &EXT2_I(inode)->i_metadata_bhs);
531 /* We used to sync bh here if IS_SYNC(inode).
532 * But we now rely upon generic_write_sync()
533 * and b_inode_buffers. But not for directories.
534 */
535 if (S_ISDIR(inode->i_mode) && IS_DIRSYNC(inode))
536 sync_dirty_buffer(bh);
537 }
538 *blks = num;
539 return err;
540
541 failed:
542 for (i = 1; i < n; i++)
543 bforget(branch[i].bh);
544 for (i = 0; i < indirect_blks; i++)
545 ext2_free_blocks(inode, new_blocks[i], 1);
546 ext2_free_blocks(inode, new_blocks[i], num);
547 return err;
548 }
549
550 /**
551 * ext2_splice_branch - splice the allocated branch onto inode.
552 * @inode: owner
553 * @block: (logical) number of block we are adding
554 * @where: location of missing link
555 * @num: number of indirect blocks we are adding
556 * @blks: number of direct blocks we are adding
557 *
558 * This function fills the missing link and does all housekeeping needed in
559 * inode (->i_blocks, etc.). In case of success we end up with the full
560 * chain to new block and return 0.
561 */
ext2_splice_branch(struct inode * inode,long block,Indirect * where,int num,int blks)562 static void ext2_splice_branch(struct inode *inode,
563 long block, Indirect *where, int num, int blks)
564 {
565 int i;
566 struct ext2_block_alloc_info *block_i;
567 ext2_fsblk_t current_block;
568
569 block_i = EXT2_I(inode)->i_block_alloc_info;
570
571 /* XXX LOCKING probably should have i_meta_lock ?*/
572 /* That's it */
573
574 *where->p = where->key;
575
576 /*
577 * Update the host buffer_head or inode to point to more just allocated
578 * direct blocks blocks
579 */
580 if (num == 0 && blks > 1) {
581 current_block = le32_to_cpu(where->key) + 1;
582 for (i = 1; i < blks; i++)
583 *(where->p + i ) = cpu_to_le32(current_block++);
584 }
585
586 /*
587 * update the most recently allocated logical & physical block
588 * in i_block_alloc_info, to assist find the proper goal block for next
589 * allocation
590 */
591 if (block_i) {
592 block_i->last_alloc_logical_block = block + blks - 1;
593 block_i->last_alloc_physical_block =
594 le32_to_cpu(where[num].key) + blks - 1;
595 }
596
597 /* We are done with atomic stuff, now do the rest of housekeeping */
598
599 /* had we spliced it onto indirect block? */
600 if (where->bh)
601 mmb_mark_buffer_dirty(where->bh, &EXT2_I(inode)->i_metadata_bhs);
602
603 inode_set_ctime_current(inode);
604 mark_inode_dirty(inode);
605 }
606
607 /*
608 * Allocation strategy is simple: if we have to allocate something, we will
609 * have to go the whole way to leaf. So let's do it before attaching anything
610 * to tree, set linkage between the newborn blocks, write them if sync is
611 * required, recheck the path, free and repeat if check fails, otherwise
612 * set the last missing link (that will protect us from any truncate-generated
613 * removals - all blocks on the path are immune now) and possibly force the
614 * write on the parent block.
615 * That has a nice additional property: no special recovery from the failed
616 * allocations is needed - we simply release blocks and do not touch anything
617 * reachable from inode.
618 *
619 * `handle' can be NULL if create == 0.
620 *
621 * return > 0, # of blocks mapped or allocated.
622 * return = 0, if plain lookup failed.
623 * return < 0, error case.
624 */
ext2_get_blocks(struct inode * inode,sector_t iblock,unsigned long maxblocks,u32 * bno,bool * new,bool * boundary,int create)625 static int ext2_get_blocks(struct inode *inode,
626 sector_t iblock, unsigned long maxblocks,
627 u32 *bno, bool *new, bool *boundary,
628 int create)
629 {
630 int err;
631 int offsets[4];
632 Indirect chain[4];
633 Indirect *partial;
634 ext2_fsblk_t goal;
635 int indirect_blks;
636 int blocks_to_boundary = 0;
637 int depth;
638 struct ext2_inode_info *ei = EXT2_I(inode);
639 int count = 0;
640 ext2_fsblk_t first_block = 0;
641
642 if (WARN_ON_ONCE(maxblocks == 0))
643 return -EINVAL;
644
645 depth = ext2_block_to_path(inode,iblock,offsets,&blocks_to_boundary);
646
647 if (depth == 0)
648 return -EIO;
649
650 partial = ext2_get_branch(inode, depth, offsets, chain, &err);
651 /* Simplest case - block found, no allocation needed */
652 if (!partial) {
653 first_block = le32_to_cpu(chain[depth - 1].key);
654 count++;
655 /*map more blocks*/
656 while (count < maxblocks && count <= blocks_to_boundary) {
657 ext2_fsblk_t blk;
658
659 if (!verify_chain(chain, chain + depth - 1)) {
660 /*
661 * Indirect block might be removed by
662 * truncate while we were reading it.
663 * Handling of that case: forget what we've
664 * got now, go to reread.
665 */
666 err = -EAGAIN;
667 count = 0;
668 partial = chain + depth - 1;
669 break;
670 }
671 blk = le32_to_cpu(*(chain[depth-1].p + count));
672 if (blk == first_block + count)
673 count++;
674 else
675 break;
676 }
677 if (err != -EAGAIN)
678 goto got_it;
679 }
680
681 /* Next simple case - plain lookup or failed read of indirect block */
682 if (!create || err == -EIO)
683 goto cleanup;
684
685 mutex_lock(&ei->truncate_mutex);
686 /*
687 * If the indirect block is missing while we are reading
688 * the chain(ext2_get_branch() returns -EAGAIN err), or
689 * if the chain has been changed after we grab the semaphore,
690 * (either because another process truncated this branch, or
691 * another get_block allocated this branch) re-grab the chain to see if
692 * the request block has been allocated or not.
693 *
694 * Since we already block the truncate/other get_block
695 * at this point, we will have the current copy of the chain when we
696 * splice the branch into the tree.
697 */
698 if (err == -EAGAIN || !verify_chain(chain, partial)) {
699 while (partial > chain) {
700 brelse(partial->bh);
701 partial--;
702 }
703 partial = ext2_get_branch(inode, depth, offsets, chain, &err);
704 if (!partial) {
705 count++;
706 mutex_unlock(&ei->truncate_mutex);
707 goto got_it;
708 }
709
710 if (err) {
711 mutex_unlock(&ei->truncate_mutex);
712 goto cleanup;
713 }
714 }
715
716 /*
717 * Okay, we need to do block allocation. Lazily initialize the block
718 * allocation info here if necessary
719 */
720 if (S_ISREG(inode->i_mode) && (!ei->i_block_alloc_info))
721 ext2_init_block_alloc_info(inode);
722
723 goal = ext2_find_goal(inode, iblock, partial);
724
725 /* the number of blocks need to allocate for [d,t]indirect blocks */
726 indirect_blks = (chain + depth) - partial - 1;
727 /*
728 * Next look up the indirect map to count the total number of
729 * direct blocks to allocate for this branch.
730 */
731 count = ext2_blks_to_allocate(partial, indirect_blks,
732 maxblocks, blocks_to_boundary);
733 /*
734 * XXX ???? Block out ext2_truncate while we alter the tree
735 */
736 err = ext2_alloc_branch(inode, indirect_blks, &count, goal,
737 offsets + (partial - chain), partial);
738
739 if (err) {
740 mutex_unlock(&ei->truncate_mutex);
741 goto cleanup;
742 }
743
744 if (IS_DAX(inode)) {
745 /*
746 * We must unmap blocks before zeroing so that writeback cannot
747 * overwrite zeros with stale data from block device page cache.
748 */
749 clean_bdev_aliases(inode->i_sb->s_bdev,
750 le32_to_cpu(chain[depth-1].key),
751 count);
752 /*
753 * block must be initialised before we put it in the tree
754 * so that it's not found by another thread before it's
755 * initialised
756 */
757 err = sb_issue_zeroout(inode->i_sb,
758 le32_to_cpu(chain[depth-1].key), count,
759 GFP_KERNEL);
760 if (err) {
761 mutex_unlock(&ei->truncate_mutex);
762 goto cleanup;
763 }
764 }
765 *new = true;
766
767 ext2_splice_branch(inode, iblock, partial, indirect_blks, count);
768 mutex_unlock(&ei->truncate_mutex);
769 got_it:
770 if (count > blocks_to_boundary)
771 *boundary = true;
772 err = count;
773 /* Clean up and exit */
774 partial = chain + depth - 1; /* the whole chain */
775 cleanup:
776 while (partial > chain) {
777 brelse(partial->bh);
778 partial--;
779 }
780 if (err > 0)
781 *bno = le32_to_cpu(chain[depth-1].key);
782 return err;
783 }
784
ext2_get_block(struct inode * inode,sector_t iblock,struct buffer_head * bh_result,int create)785 int ext2_get_block(struct inode *inode, sector_t iblock,
786 struct buffer_head *bh_result, int create)
787 {
788 unsigned max_blocks = bh_result->b_size >> inode->i_blkbits;
789 bool new = false, boundary = false;
790 u32 bno;
791 int ret;
792
793 ret = ext2_get_blocks(inode, iblock, max_blocks, &bno, &new, &boundary,
794 create);
795 if (ret <= 0)
796 return ret;
797
798 map_bh(bh_result, inode->i_sb, bno);
799 bh_result->b_size = (ret << inode->i_blkbits);
800 if (new)
801 set_buffer_new(bh_result);
802 if (boundary)
803 set_buffer_boundary(bh_result);
804 return 0;
805
806 }
807
ext2_iomap_begin(struct inode * inode,loff_t offset,loff_t length,unsigned flags,struct iomap * iomap,struct iomap * srcmap)808 static int ext2_iomap_begin(struct inode *inode, loff_t offset, loff_t length,
809 unsigned flags, struct iomap *iomap, struct iomap *srcmap)
810 {
811 unsigned int blkbits = inode->i_blkbits;
812 unsigned long first_block = offset >> blkbits;
813 unsigned long max_blocks = (length + (1 << blkbits) - 1) >> blkbits;
814 struct ext2_sb_info *sbi = EXT2_SB(inode->i_sb);
815 bool new = false, boundary = false;
816 u32 bno;
817 int ret;
818 bool create = flags & IOMAP_WRITE;
819
820 /*
821 * For writes that could fill holes inside i_size on a
822 * DIO_SKIP_HOLES filesystem we forbid block creations: only
823 * overwrites are permitted.
824 */
825 if ((flags & IOMAP_DIRECT) &&
826 (first_block << blkbits) < i_size_read(inode))
827 create = 0;
828
829 /*
830 * Writes that span EOF might trigger an IO size update on completion,
831 * so consider them to be dirty for the purposes of O_DSYNC even if
832 * there is no other metadata changes pending or have been made here.
833 */
834 if ((flags & IOMAP_WRITE) && offset + length > i_size_read(inode))
835 iomap->flags |= IOMAP_F_DIRTY;
836
837 ret = ext2_get_blocks(inode, first_block, max_blocks,
838 &bno, &new, &boundary, create);
839 if (ret < 0)
840 return ret;
841
842 iomap->flags = 0;
843 iomap->offset = (u64)first_block << blkbits;
844 if (flags & IOMAP_DAX)
845 iomap->dax_dev = sbi->s_daxdev;
846 else
847 iomap->bdev = inode->i_sb->s_bdev;
848
849 if (ret == 0) {
850 /*
851 * Switch to buffered-io for writing to holes in a non-extent
852 * based filesystem to avoid stale data exposure problem.
853 */
854 if (!create && (flags & IOMAP_WRITE) && (flags & IOMAP_DIRECT))
855 return -ENOTBLK;
856 iomap->type = IOMAP_HOLE;
857 iomap->addr = IOMAP_NULL_ADDR;
858 iomap->length = 1 << blkbits;
859 } else {
860 iomap->type = IOMAP_MAPPED;
861 iomap->addr = (u64)bno << blkbits;
862 if (flags & IOMAP_DAX)
863 iomap->addr += sbi->s_dax_part_off;
864 iomap->length = (u64)ret << blkbits;
865 iomap->flags |= IOMAP_F_MERGED;
866 }
867
868 if (new)
869 iomap->flags |= IOMAP_F_NEW;
870 return 0;
871 }
872
873 static int
ext2_iomap_end(struct inode * inode,loff_t offset,loff_t length,ssize_t written,unsigned flags,struct iomap * iomap)874 ext2_iomap_end(struct inode *inode, loff_t offset, loff_t length,
875 ssize_t written, unsigned flags, struct iomap *iomap)
876 {
877 /*
878 * Switch to buffered-io in case of any error.
879 * Blocks allocated can be used by the buffered-io path.
880 */
881 if ((flags & IOMAP_DIRECT) && (flags & IOMAP_WRITE) && written == 0)
882 return -ENOTBLK;
883
884 if (iomap->type == IOMAP_MAPPED &&
885 written < length &&
886 (flags & IOMAP_WRITE))
887 ext2_write_failed(inode->i_mapping, offset + length);
888 return 0;
889 }
890
891 const struct iomap_ops ext2_iomap_ops = {
892 .iomap_begin = ext2_iomap_begin,
893 .iomap_end = ext2_iomap_end,
894 };
895
ext2_fiemap(struct inode * inode,struct fiemap_extent_info * fieinfo,u64 start,u64 len)896 int ext2_fiemap(struct inode *inode, struct fiemap_extent_info *fieinfo,
897 u64 start, u64 len)
898 {
899 int ret;
900 loff_t i_size;
901
902 inode_lock(inode);
903 i_size = i_size_read(inode);
904 /*
905 * iomap_fiemap() returns EINVAL for 0 length. Make sure we don't trim
906 * length to 0 but still trim the range as much as possible since
907 * ext2_get_blocks() iterates unmapped space block by block which is
908 * slow.
909 */
910 if (i_size == 0)
911 i_size = 1;
912 len = min_t(u64, len, i_size);
913 ret = iomap_fiemap(inode, fieinfo, start, len, &ext2_iomap_ops);
914 inode_unlock(inode);
915
916 return ret;
917 }
918
ext2_read_folio(struct file * file,struct folio * folio)919 static int ext2_read_folio(struct file *file, struct folio *folio)
920 {
921 return mpage_read_folio(folio, ext2_get_block);
922 }
923
ext2_readahead(struct readahead_control * rac)924 static void ext2_readahead(struct readahead_control *rac)
925 {
926 mpage_readahead(rac, ext2_get_block);
927 }
928
929 static int
ext2_write_begin(const struct kiocb * iocb,struct address_space * mapping,loff_t pos,unsigned len,struct folio ** foliop,void ** fsdata)930 ext2_write_begin(const struct kiocb *iocb, struct address_space *mapping,
931 loff_t pos, unsigned len, struct folio **foliop, void **fsdata)
932 {
933 int ret;
934
935 ret = block_write_begin(mapping, pos, len, foliop, ext2_get_block);
936 if (ret < 0)
937 ext2_write_failed(mapping, pos + len);
938 return ret;
939 }
940
ext2_write_end(const struct kiocb * iocb,struct address_space * mapping,loff_t pos,unsigned len,unsigned copied,struct folio * folio,void * fsdata)941 static int ext2_write_end(const struct kiocb *iocb,
942 struct address_space *mapping,
943 loff_t pos, unsigned len, unsigned copied,
944 struct folio *folio, void *fsdata)
945 {
946 int ret;
947
948 ret = generic_write_end(iocb, mapping, pos, len, copied, folio, fsdata);
949 if (ret < len)
950 ext2_write_failed(mapping, pos + len);
951 return ret;
952 }
953
ext2_bmap(struct address_space * mapping,sector_t block)954 static sector_t ext2_bmap(struct address_space *mapping, sector_t block)
955 {
956 return generic_block_bmap(mapping,block,ext2_get_block);
957 }
958
959 static int
ext2_writepages(struct address_space * mapping,struct writeback_control * wbc)960 ext2_writepages(struct address_space *mapping, struct writeback_control *wbc)
961 {
962 return mpage_writepages(mapping, wbc, ext2_get_block);
963 }
964
965 static int
ext2_dax_writepages(struct address_space * mapping,struct writeback_control * wbc)966 ext2_dax_writepages(struct address_space *mapping, struct writeback_control *wbc)
967 {
968 struct ext2_sb_info *sbi = EXT2_SB(mapping->host->i_sb);
969
970 return dax_writeback_mapping_range(mapping, sbi->s_daxdev, wbc);
971 }
972
973 const struct address_space_operations ext2_aops = {
974 .dirty_folio = block_dirty_folio,
975 .invalidate_folio = block_invalidate_folio,
976 .read_folio = ext2_read_folio,
977 .readahead = ext2_readahead,
978 .write_begin = ext2_write_begin,
979 .write_end = ext2_write_end,
980 .bmap = ext2_bmap,
981 .writepages = ext2_writepages,
982 .migrate_folio = buffer_migrate_folio,
983 .is_partially_uptodate = block_is_partially_uptodate,
984 .error_remove_folio = generic_error_remove_folio,
985 };
986
987 static const struct address_space_operations ext2_dax_aops = {
988 .writepages = ext2_dax_writepages,
989 .dirty_folio = noop_dirty_folio,
990 };
991
992 /*
993 * Probably it should be a library function... search for first non-zero word
994 * or memcmp with zero_page, whatever is better for particular architecture.
995 * Linus?
996 */
all_zeroes(__le32 * p,__le32 * q)997 static inline int all_zeroes(__le32 *p, __le32 *q)
998 {
999 while (p < q)
1000 if (*p++)
1001 return 0;
1002 return 1;
1003 }
1004
1005 /**
1006 * ext2_find_shared - find the indirect blocks for partial truncation.
1007 * @inode: inode in question
1008 * @depth: depth of the affected branch
1009 * @offsets: offsets of pointers in that branch (see ext2_block_to_path)
1010 * @chain: place to store the pointers to partial indirect blocks
1011 * @top: place to the (detached) top of branch
1012 *
1013 * This is a helper function used by ext2_truncate().
1014 *
1015 * When we do truncate() we may have to clean the ends of several indirect
1016 * blocks but leave the blocks themselves alive. Block is partially
1017 * truncated if some data below the new i_size is referred from it (and
1018 * it is on the path to the first completely truncated data block, indeed).
1019 * We have to free the top of that path along with everything to the right
1020 * of the path. Since no allocation past the truncation point is possible
1021 * until ext2_truncate() finishes, we may safely do the latter, but top
1022 * of branch may require special attention - pageout below the truncation
1023 * point might try to populate it.
1024 *
1025 * We atomically detach the top of branch from the tree, store the block
1026 * number of its root in *@top, pointers to buffer_heads of partially
1027 * truncated blocks - in @chain[].bh and pointers to their last elements
1028 * that should not be removed - in @chain[].p. Return value is the pointer
1029 * to last filled element of @chain.
1030 *
1031 * The work left to caller to do the actual freeing of subtrees:
1032 * a) free the subtree starting from *@top
1033 * b) free the subtrees whose roots are stored in
1034 * (@chain[i].p+1 .. end of @chain[i].bh->b_data)
1035 * c) free the subtrees growing from the inode past the @chain[0].p
1036 * (no partially truncated stuff there).
1037 */
1038
ext2_find_shared(struct inode * inode,int depth,int offsets[4],Indirect chain[4],__le32 * top)1039 static Indirect *ext2_find_shared(struct inode *inode,
1040 int depth,
1041 int offsets[4],
1042 Indirect chain[4],
1043 __le32 *top)
1044 {
1045 Indirect *partial, *p;
1046 int k, err;
1047
1048 *top = 0;
1049 for (k = depth; k > 1 && !offsets[k-1]; k--)
1050 ;
1051 partial = ext2_get_branch(inode, k, offsets, chain, &err);
1052 if (!partial)
1053 partial = chain + k-1;
1054 /*
1055 * If the branch acquired continuation since we've looked at it -
1056 * fine, it should all survive and (new) top doesn't belong to us.
1057 */
1058 write_lock(&EXT2_I(inode)->i_meta_lock);
1059 if (!partial->key && *partial->p) {
1060 write_unlock(&EXT2_I(inode)->i_meta_lock);
1061 goto no_top;
1062 }
1063 for (p=partial; p>chain && all_zeroes((__le32*)p->bh->b_data,p->p); p--)
1064 ;
1065 /*
1066 * OK, we've found the last block that must survive. The rest of our
1067 * branch should be detached before unlocking. However, if that rest
1068 * of branch is all ours and does not grow immediately from the inode
1069 * it's easier to cheat and just decrement partial->p.
1070 */
1071 if (p == chain + k - 1 && p > chain) {
1072 p->p--;
1073 } else {
1074 *top = *p->p;
1075 *p->p = 0;
1076 }
1077 write_unlock(&EXT2_I(inode)->i_meta_lock);
1078
1079 while(partial > p)
1080 {
1081 brelse(partial->bh);
1082 partial--;
1083 }
1084 no_top:
1085 return partial;
1086 }
1087
1088 /**
1089 * ext2_free_data - free a list of data blocks
1090 * @inode: inode we are dealing with
1091 * @p: array of block numbers
1092 * @q: points immediately past the end of array
1093 *
1094 * We are freeing all blocks referred from that array (numbers are
1095 * stored as little-endian 32-bit) and updating @inode->i_blocks
1096 * appropriately.
1097 */
ext2_free_data(struct inode * inode,__le32 * p,__le32 * q)1098 static inline void ext2_free_data(struct inode *inode, __le32 *p, __le32 *q)
1099 {
1100 ext2_fsblk_t block_to_free = 0, count = 0;
1101 ext2_fsblk_t nr;
1102
1103 for ( ; p < q ; p++) {
1104 nr = le32_to_cpu(*p);
1105 if (nr) {
1106 *p = 0;
1107 /* accumulate blocks to free if they're contiguous */
1108 if (count == 0)
1109 goto free_this;
1110 else if (block_to_free == nr - count)
1111 count++;
1112 else {
1113 ext2_free_blocks (inode, block_to_free, count);
1114 mark_inode_dirty(inode);
1115 free_this:
1116 block_to_free = nr;
1117 count = 1;
1118 }
1119 }
1120 }
1121 if (count > 0) {
1122 ext2_free_blocks (inode, block_to_free, count);
1123 mark_inode_dirty(inode);
1124 }
1125 }
1126
1127 /**
1128 * ext2_free_branches - free an array of branches
1129 * @inode: inode we are dealing with
1130 * @p: array of block numbers
1131 * @q: pointer immediately past the end of array
1132 * @depth: depth of the branches to free
1133 *
1134 * We are freeing all blocks referred from these branches (numbers are
1135 * stored as little-endian 32-bit) and updating @inode->i_blocks
1136 * appropriately.
1137 */
ext2_free_branches(struct inode * inode,__le32 * p,__le32 * q,int depth)1138 static void ext2_free_branches(struct inode *inode, __le32 *p, __le32 *q, int depth)
1139 {
1140 struct buffer_head * bh;
1141 ext2_fsblk_t nr;
1142
1143 if (depth--) {
1144 int addr_per_block = EXT2_ADDR_PER_BLOCK(inode->i_sb);
1145 for ( ; p < q ; p++) {
1146 nr = le32_to_cpu(*p);
1147 if (!nr)
1148 continue;
1149 *p = 0;
1150 bh = sb_bread(inode->i_sb, nr);
1151 /*
1152 * A read failure? Report error and clear slot
1153 * (should be rare).
1154 */
1155 if (!bh) {
1156 ext2_error(inode->i_sb, "ext2_free_branches",
1157 "Read failure, inode=%llu, block=%ld",
1158 inode->i_ino, nr);
1159 continue;
1160 }
1161 ext2_free_branches(inode,
1162 (__le32*)bh->b_data,
1163 (__le32*)bh->b_data + addr_per_block,
1164 depth);
1165 bforget(bh);
1166 ext2_free_blocks(inode, nr, 1);
1167 mark_inode_dirty(inode);
1168 }
1169 } else
1170 ext2_free_data(inode, p, q);
1171 }
1172
1173 /* mapping->invalidate_lock must be held when calling this function */
__ext2_truncate_blocks(struct inode * inode,loff_t offset)1174 static void __ext2_truncate_blocks(struct inode *inode, loff_t offset)
1175 {
1176 __le32 *i_data = EXT2_I(inode)->i_data;
1177 struct ext2_inode_info *ei = EXT2_I(inode);
1178 int addr_per_block = EXT2_ADDR_PER_BLOCK(inode->i_sb);
1179 int offsets[4];
1180 Indirect chain[4];
1181 Indirect *partial;
1182 __le32 nr = 0;
1183 int n;
1184 long iblock;
1185 unsigned blocksize;
1186 blocksize = inode->i_sb->s_blocksize;
1187 iblock = (offset + blocksize-1) >> EXT2_BLOCK_SIZE_BITS(inode->i_sb);
1188
1189 #ifdef CONFIG_FS_DAX
1190 WARN_ON(!rwsem_is_locked(&inode->i_mapping->invalidate_lock));
1191 #endif
1192
1193 n = ext2_block_to_path(inode, iblock, offsets, NULL);
1194 if (n == 0)
1195 return;
1196
1197 /*
1198 * From here we block out all ext2_get_block() callers who want to
1199 * modify the block allocation tree.
1200 */
1201 mutex_lock(&ei->truncate_mutex);
1202
1203 if (n == 1) {
1204 ext2_free_data(inode, i_data+offsets[0],
1205 i_data + EXT2_NDIR_BLOCKS);
1206 goto do_indirects;
1207 }
1208
1209 partial = ext2_find_shared(inode, n, offsets, chain, &nr);
1210 /* Kill the top of shared branch (already detached) */
1211 if (nr) {
1212 if (partial == chain)
1213 mark_inode_dirty(inode);
1214 else
1215 mmb_mark_buffer_dirty(partial->bh,
1216 &EXT2_I(inode)->i_metadata_bhs);
1217 ext2_free_branches(inode, &nr, &nr+1, (chain+n-1) - partial);
1218 }
1219 /* Clear the ends of indirect blocks on the shared branch */
1220 while (partial > chain) {
1221 ext2_free_branches(inode,
1222 partial->p + 1,
1223 (__le32*)partial->bh->b_data+addr_per_block,
1224 (chain+n-1) - partial);
1225 mmb_mark_buffer_dirty(partial->bh,
1226 &EXT2_I(inode)->i_metadata_bhs);
1227 brelse (partial->bh);
1228 partial--;
1229 }
1230 do_indirects:
1231 /* Kill the remaining (whole) subtrees */
1232 switch (offsets[0]) {
1233 default:
1234 nr = i_data[EXT2_IND_BLOCK];
1235 if (nr) {
1236 i_data[EXT2_IND_BLOCK] = 0;
1237 mark_inode_dirty(inode);
1238 ext2_free_branches(inode, &nr, &nr+1, 1);
1239 }
1240 fallthrough;
1241 case EXT2_IND_BLOCK:
1242 nr = i_data[EXT2_DIND_BLOCK];
1243 if (nr) {
1244 i_data[EXT2_DIND_BLOCK] = 0;
1245 mark_inode_dirty(inode);
1246 ext2_free_branches(inode, &nr, &nr+1, 2);
1247 }
1248 fallthrough;
1249 case EXT2_DIND_BLOCK:
1250 nr = i_data[EXT2_TIND_BLOCK];
1251 if (nr) {
1252 i_data[EXT2_TIND_BLOCK] = 0;
1253 mark_inode_dirty(inode);
1254 ext2_free_branches(inode, &nr, &nr+1, 3);
1255 }
1256 break;
1257 case EXT2_TIND_BLOCK:
1258 ;
1259 }
1260
1261 ext2_discard_reservation(inode);
1262
1263 mutex_unlock(&ei->truncate_mutex);
1264 }
1265
ext2_truncate_blocks(struct inode * inode,loff_t offset)1266 static void ext2_truncate_blocks(struct inode *inode, loff_t offset)
1267 {
1268 if (!(S_ISREG(inode->i_mode) || S_ISDIR(inode->i_mode) ||
1269 S_ISLNK(inode->i_mode)))
1270 return;
1271 if (ext2_inode_is_fast_symlink(inode))
1272 return;
1273
1274 filemap_invalidate_lock(inode->i_mapping);
1275 __ext2_truncate_blocks(inode, offset);
1276 filemap_invalidate_unlock(inode->i_mapping);
1277 }
1278
ext2_setsize(struct inode * inode,loff_t newsize)1279 static int ext2_setsize(struct inode *inode, loff_t newsize)
1280 {
1281 int error;
1282
1283 if (!(S_ISREG(inode->i_mode) || S_ISDIR(inode->i_mode) ||
1284 S_ISLNK(inode->i_mode)))
1285 return -EINVAL;
1286 if (ext2_inode_is_fast_symlink(inode))
1287 return -EINVAL;
1288 if (IS_APPEND(inode) || IS_IMMUTABLE(inode))
1289 return -EPERM;
1290
1291 inode_dio_wait(inode);
1292
1293 if (IS_DAX(inode))
1294 error = dax_truncate_page(inode, newsize, NULL,
1295 &ext2_iomap_ops);
1296 else
1297 error = block_truncate_page(inode->i_mapping,
1298 newsize, ext2_get_block);
1299 if (error)
1300 return error;
1301
1302 filemap_invalidate_lock(inode->i_mapping);
1303 truncate_setsize(inode, newsize);
1304 __ext2_truncate_blocks(inode, newsize);
1305 filemap_invalidate_unlock(inode->i_mapping);
1306
1307 inode_set_mtime_to_ts(inode, inode_set_ctime_current(inode));
1308 if (inode_needs_sync(inode)) {
1309 mmb_sync(&EXT2_I(inode)->i_metadata_bhs);
1310 sync_inode_metadata(inode, 1);
1311 } else {
1312 mark_inode_dirty(inode);
1313 }
1314
1315 return 0;
1316 }
1317
ext2_get_inode(struct super_block * sb,ino_t ino,struct buffer_head ** p)1318 static struct ext2_inode *ext2_get_inode(struct super_block *sb, ino_t ino,
1319 struct buffer_head **p)
1320 {
1321 struct buffer_head * bh;
1322 unsigned long block_group;
1323 unsigned long block;
1324 unsigned long offset;
1325 struct ext2_group_desc * gdp;
1326
1327 *p = NULL;
1328 if ((ino != EXT2_ROOT_INO && ino < EXT2_FIRST_INO(sb)) ||
1329 ino > le32_to_cpu(EXT2_SB(sb)->s_es->s_inodes_count))
1330 goto Einval;
1331
1332 block_group = (ino - 1) / EXT2_INODES_PER_GROUP(sb);
1333 gdp = ext2_get_group_desc(sb, block_group, NULL);
1334 if (!gdp)
1335 goto Egdp;
1336 /*
1337 * Figure out the offset within the block group inode table
1338 */
1339 offset = ((ino - 1) % EXT2_INODES_PER_GROUP(sb)) * EXT2_INODE_SIZE(sb);
1340 block = le32_to_cpu(gdp->bg_inode_table) +
1341 (offset >> EXT2_BLOCK_SIZE_BITS(sb));
1342 if (!(bh = sb_bread(sb, block)))
1343 goto Eio;
1344
1345 *p = bh;
1346 offset &= (EXT2_BLOCK_SIZE(sb) - 1);
1347 return (struct ext2_inode *) (bh->b_data + offset);
1348
1349 Einval:
1350 ext2_error(sb, "ext2_get_inode", "bad inode number: %lu",
1351 (unsigned long) ino);
1352 return ERR_PTR(-EINVAL);
1353 Eio:
1354 ext2_error(sb, "ext2_get_inode",
1355 "unable to read inode block - inode=%lu, block=%lu",
1356 (unsigned long) ino, block);
1357 Egdp:
1358 return ERR_PTR(-EIO);
1359 }
1360
ext2_set_inode_flags(struct inode * inode)1361 void ext2_set_inode_flags(struct inode *inode)
1362 {
1363 unsigned int flags = EXT2_I(inode)->i_flags;
1364
1365 inode->i_flags &= ~(S_SYNC | S_APPEND | S_IMMUTABLE | S_NOATIME |
1366 S_DIRSYNC | S_DAX);
1367 if (flags & EXT2_SYNC_FL)
1368 inode->i_flags |= S_SYNC;
1369 if (flags & EXT2_APPEND_FL)
1370 inode->i_flags |= S_APPEND;
1371 if (flags & EXT2_IMMUTABLE_FL)
1372 inode->i_flags |= S_IMMUTABLE;
1373 if (flags & EXT2_NOATIME_FL)
1374 inode->i_flags |= S_NOATIME;
1375 if (flags & EXT2_DIRSYNC_FL)
1376 inode->i_flags |= S_DIRSYNC;
1377 if (test_opt(inode->i_sb, DAX) && S_ISREG(inode->i_mode))
1378 inode->i_flags |= S_DAX;
1379 }
1380
ext2_set_file_ops(struct inode * inode)1381 void ext2_set_file_ops(struct inode *inode)
1382 {
1383 inode->i_op = &ext2_file_inode_operations;
1384 inode->i_fop = &ext2_file_operations;
1385 if (IS_DAX(inode))
1386 inode->i_mapping->a_ops = &ext2_dax_aops;
1387 else
1388 inode->i_mapping->a_ops = &ext2_aops;
1389 }
1390
ext2_iget(struct super_block * sb,unsigned long ino)1391 struct inode *ext2_iget (struct super_block *sb, unsigned long ino)
1392 {
1393 struct ext2_inode_info *ei;
1394 struct buffer_head * bh = NULL;
1395 struct ext2_inode *raw_inode;
1396 struct inode *inode;
1397 long ret = -EIO;
1398 int n;
1399 uid_t i_uid;
1400 gid_t i_gid;
1401
1402 inode = iget_locked(sb, ino);
1403 if (!inode)
1404 return ERR_PTR(-ENOMEM);
1405 if (!(inode_state_read_once(inode) & I_NEW))
1406 return inode;
1407
1408 ei = EXT2_I(inode);
1409 ei->i_block_alloc_info = NULL;
1410
1411 raw_inode = ext2_get_inode(inode->i_sb, ino, &bh);
1412 if (IS_ERR(raw_inode)) {
1413 ret = PTR_ERR(raw_inode);
1414 goto bad_inode;
1415 }
1416
1417 inode->i_mode = le16_to_cpu(raw_inode->i_mode);
1418 i_uid = (uid_t)le16_to_cpu(raw_inode->i_uid_low);
1419 i_gid = (gid_t)le16_to_cpu(raw_inode->i_gid_low);
1420 if (!(test_opt (inode->i_sb, NO_UID32))) {
1421 i_uid |= le16_to_cpu(raw_inode->i_uid_high) << 16;
1422 i_gid |= le16_to_cpu(raw_inode->i_gid_high) << 16;
1423 }
1424 i_uid_write(inode, i_uid);
1425 i_gid_write(inode, i_gid);
1426 set_nlink(inode, le16_to_cpu(raw_inode->i_links_count));
1427 inode->i_size = le32_to_cpu(raw_inode->i_size);
1428 inode_set_atime(inode, (signed)le32_to_cpu(raw_inode->i_atime), 0);
1429 inode_set_ctime(inode, (signed)le32_to_cpu(raw_inode->i_ctime), 0);
1430 inode_set_mtime(inode, (signed)le32_to_cpu(raw_inode->i_mtime), 0);
1431 ei->i_dtime = le32_to_cpu(raw_inode->i_dtime);
1432 /* We now have enough fields to check if the inode was active or not.
1433 * This is needed because nfsd might try to access dead inodes
1434 * the test is that same one that e2fsck uses
1435 * NeilBrown 1999oct15
1436 */
1437 if (inode->i_nlink == 0) {
1438 if (inode->i_mode == 0 || ei->i_dtime) {
1439 /* this inode is deleted */
1440 ret = -ESTALE;
1441 } else {
1442 ext2_error(sb, __func__,
1443 "inode %lu has zero i_nlink with mode 0%o and no dtime, "
1444 "filesystem may be corrupt",
1445 ino, inode->i_mode);
1446 ret = -EFSCORRUPTED;
1447 }
1448 goto bad_inode;
1449 }
1450 inode->i_blocks = le32_to_cpu(raw_inode->i_blocks);
1451 ei->i_flags = le32_to_cpu(raw_inode->i_flags);
1452 ext2_set_inode_flags(inode);
1453 ei->i_faddr = le32_to_cpu(raw_inode->i_faddr);
1454 ei->i_frag_no = raw_inode->i_frag;
1455 ei->i_frag_size = raw_inode->i_fsize;
1456 ei->i_file_acl = le32_to_cpu(raw_inode->i_file_acl);
1457 ei->i_dir_acl = 0;
1458
1459 if (ei->i_file_acl &&
1460 !ext2_data_block_valid(EXT2_SB(sb), ei->i_file_acl, 1)) {
1461 ext2_error(sb, "ext2_iget", "bad extended attribute block %u",
1462 ei->i_file_acl);
1463 ret = -EFSCORRUPTED;
1464 goto bad_inode;
1465 }
1466
1467 if (S_ISREG(inode->i_mode))
1468 inode->i_size |= ((__u64)le32_to_cpu(raw_inode->i_size_high)) << 32;
1469 else
1470 ei->i_dir_acl = le32_to_cpu(raw_inode->i_dir_acl);
1471 if (i_size_read(inode) < 0) {
1472 ret = -EFSCORRUPTED;
1473 goto bad_inode;
1474 }
1475 ei->i_dtime = 0;
1476 inode->i_generation = le32_to_cpu(raw_inode->i_generation);
1477 ei->i_state = 0;
1478 ei->i_block_group = (ino - 1) / EXT2_INODES_PER_GROUP(inode->i_sb);
1479 ei->i_dir_start_lookup = 0;
1480
1481 /*
1482 * NOTE! The in-memory inode i_data array is in little-endian order
1483 * even on big-endian machines: we do NOT byteswap the block numbers!
1484 */
1485 for (n = 0; n < EXT2_N_BLOCKS; n++)
1486 ei->i_data[n] = raw_inode->i_block[n];
1487
1488 if (S_ISREG(inode->i_mode)) {
1489 ext2_set_file_ops(inode);
1490 } else if (S_ISDIR(inode->i_mode)) {
1491 inode->i_op = &ext2_dir_inode_operations;
1492 inode->i_fop = &ext2_dir_operations;
1493 inode->i_mapping->a_ops = &ext2_aops;
1494 } else if (S_ISLNK(inode->i_mode)) {
1495 if (ext2_inode_is_fast_symlink(inode)) {
1496 inode->i_link = (char *)ei->i_data;
1497 inode->i_op = &ext2_fast_symlink_inode_operations;
1498 nd_terminate_link(ei->i_data, inode->i_size,
1499 sizeof(ei->i_data) - 1);
1500 } else {
1501 inode->i_op = &ext2_symlink_inode_operations;
1502 inode_nohighmem(inode);
1503 inode->i_mapping->a_ops = &ext2_aops;
1504 }
1505 } else {
1506 inode->i_op = &ext2_special_inode_operations;
1507 if (raw_inode->i_block[0])
1508 init_special_inode(inode, inode->i_mode,
1509 old_decode_dev(le32_to_cpu(raw_inode->i_block[0])));
1510 else
1511 init_special_inode(inode, inode->i_mode,
1512 new_decode_dev(le32_to_cpu(raw_inode->i_block[1])));
1513 }
1514 brelse (bh);
1515 unlock_new_inode(inode);
1516 return inode;
1517
1518 bad_inode:
1519 brelse(bh);
1520 iget_failed(inode);
1521 return ERR_PTR(ret);
1522 }
1523
__ext2_write_inode(struct inode * inode,int do_sync)1524 static int __ext2_write_inode(struct inode *inode, int do_sync)
1525 {
1526 struct ext2_inode_info *ei = EXT2_I(inode);
1527 struct super_block *sb = inode->i_sb;
1528 ino_t ino = inode->i_ino;
1529 uid_t uid = i_uid_read(inode);
1530 gid_t gid = i_gid_read(inode);
1531 struct buffer_head * bh;
1532 struct ext2_inode * raw_inode = ext2_get_inode(sb, ino, &bh);
1533 int n;
1534 int err = 0;
1535
1536 if (IS_ERR(raw_inode))
1537 return -EIO;
1538
1539 /* For fields not tracking in the in-memory inode,
1540 * initialise them to zero for new inodes. */
1541 if (ei->i_state & EXT2_STATE_NEW)
1542 memset(raw_inode, 0, EXT2_SB(sb)->s_inode_size);
1543
1544 raw_inode->i_mode = cpu_to_le16(inode->i_mode);
1545 if (!(test_opt(sb, NO_UID32))) {
1546 raw_inode->i_uid_low = cpu_to_le16(low_16_bits(uid));
1547 raw_inode->i_gid_low = cpu_to_le16(low_16_bits(gid));
1548 /*
1549 * Fix up interoperability with old kernels. Otherwise, old inodes get
1550 * re-used with the upper 16 bits of the uid/gid intact
1551 */
1552 if (!ei->i_dtime) {
1553 raw_inode->i_uid_high = cpu_to_le16(high_16_bits(uid));
1554 raw_inode->i_gid_high = cpu_to_le16(high_16_bits(gid));
1555 } else {
1556 raw_inode->i_uid_high = 0;
1557 raw_inode->i_gid_high = 0;
1558 }
1559 } else {
1560 raw_inode->i_uid_low = cpu_to_le16(fs_high2lowuid(uid));
1561 raw_inode->i_gid_low = cpu_to_le16(fs_high2lowgid(gid));
1562 raw_inode->i_uid_high = 0;
1563 raw_inode->i_gid_high = 0;
1564 }
1565 raw_inode->i_links_count = cpu_to_le16(inode->i_nlink);
1566 raw_inode->i_size = cpu_to_le32(inode->i_size);
1567 raw_inode->i_atime = cpu_to_le32(inode_get_atime_sec(inode));
1568 raw_inode->i_ctime = cpu_to_le32(inode_get_ctime_sec(inode));
1569 raw_inode->i_mtime = cpu_to_le32(inode_get_mtime_sec(inode));
1570
1571 raw_inode->i_blocks = cpu_to_le32(inode->i_blocks);
1572 raw_inode->i_dtime = cpu_to_le32(ei->i_dtime);
1573 raw_inode->i_flags = cpu_to_le32(ei->i_flags);
1574 raw_inode->i_faddr = cpu_to_le32(ei->i_faddr);
1575 raw_inode->i_frag = ei->i_frag_no;
1576 raw_inode->i_fsize = ei->i_frag_size;
1577 raw_inode->i_file_acl = cpu_to_le32(ei->i_file_acl);
1578 if (!S_ISREG(inode->i_mode))
1579 raw_inode->i_dir_acl = cpu_to_le32(ei->i_dir_acl);
1580 else {
1581 raw_inode->i_size_high = cpu_to_le32(inode->i_size >> 32);
1582 if (inode->i_size > 0x7fffffffULL) {
1583 if (!EXT2_HAS_RO_COMPAT_FEATURE(sb,
1584 EXT2_FEATURE_RO_COMPAT_LARGE_FILE) ||
1585 EXT2_SB(sb)->s_es->s_rev_level ==
1586 cpu_to_le32(EXT2_GOOD_OLD_REV)) {
1587 /* If this is the first large file
1588 * created, add a flag to the superblock.
1589 */
1590 spin_lock(&EXT2_SB(sb)->s_lock);
1591 ext2_update_dynamic_rev(sb);
1592 EXT2_SET_RO_COMPAT_FEATURE(sb,
1593 EXT2_FEATURE_RO_COMPAT_LARGE_FILE);
1594 spin_unlock(&EXT2_SB(sb)->s_lock);
1595 ext2_sync_super(sb, EXT2_SB(sb)->s_es, 1);
1596 }
1597 }
1598 }
1599
1600 raw_inode->i_generation = cpu_to_le32(inode->i_generation);
1601 if (S_ISCHR(inode->i_mode) || S_ISBLK(inode->i_mode)) {
1602 if (old_valid_dev(inode->i_rdev)) {
1603 raw_inode->i_block[0] =
1604 cpu_to_le32(old_encode_dev(inode->i_rdev));
1605 raw_inode->i_block[1] = 0;
1606 } else {
1607 raw_inode->i_block[0] = 0;
1608 raw_inode->i_block[1] =
1609 cpu_to_le32(new_encode_dev(inode->i_rdev));
1610 raw_inode->i_block[2] = 0;
1611 }
1612 } else for (n = 0; n < EXT2_N_BLOCKS; n++)
1613 raw_inode->i_block[n] = ei->i_data[n];
1614 mark_buffer_dirty(bh);
1615 if (do_sync) {
1616 sync_dirty_buffer(bh);
1617 if (buffer_req(bh) && !buffer_uptodate(bh)) {
1618 printk ("IO error syncing ext2 inode [%s:%08lx]\n",
1619 sb->s_id, (unsigned long) ino);
1620 err = -EIO;
1621 }
1622 }
1623 ei->i_state &= ~EXT2_STATE_NEW;
1624 brelse (bh);
1625 return err;
1626 }
1627
ext2_write_inode(struct inode * inode,struct writeback_control * wbc)1628 int ext2_write_inode(struct inode *inode, struct writeback_control *wbc)
1629 {
1630 return __ext2_write_inode(inode, wbc->sync_mode == WB_SYNC_ALL);
1631 }
1632
ext2_getattr(struct mnt_idmap * idmap,const struct path * path,struct kstat * stat,u32 request_mask,unsigned int query_flags)1633 int ext2_getattr(struct mnt_idmap *idmap, const struct path *path,
1634 struct kstat *stat, u32 request_mask, unsigned int query_flags)
1635 {
1636 struct inode *inode = d_inode(path->dentry);
1637 struct ext2_inode_info *ei = EXT2_I(inode);
1638 unsigned int flags;
1639
1640 flags = ei->i_flags & EXT2_FL_USER_VISIBLE;
1641 if (flags & EXT2_APPEND_FL)
1642 stat->attributes |= STATX_ATTR_APPEND;
1643 if (flags & EXT2_COMPR_FL)
1644 stat->attributes |= STATX_ATTR_COMPRESSED;
1645 if (flags & EXT2_IMMUTABLE_FL)
1646 stat->attributes |= STATX_ATTR_IMMUTABLE;
1647 if (flags & EXT2_NODUMP_FL)
1648 stat->attributes |= STATX_ATTR_NODUMP;
1649 stat->attributes_mask |= (STATX_ATTR_APPEND |
1650 STATX_ATTR_COMPRESSED |
1651 STATX_ATTR_ENCRYPTED |
1652 STATX_ATTR_IMMUTABLE |
1653 STATX_ATTR_NODUMP);
1654
1655 generic_fillattr(&nop_mnt_idmap, request_mask, inode, stat);
1656 return 0;
1657 }
1658
ext2_setattr(struct mnt_idmap * idmap,struct dentry * dentry,struct iattr * iattr)1659 int ext2_setattr(struct mnt_idmap *idmap, struct dentry *dentry,
1660 struct iattr *iattr)
1661 {
1662 struct inode *inode = d_inode(dentry);
1663 int error;
1664
1665 error = setattr_prepare(&nop_mnt_idmap, dentry, iattr);
1666 if (error)
1667 return error;
1668
1669 if (is_quota_modification(&nop_mnt_idmap, inode, iattr)) {
1670 error = dquot_initialize(inode);
1671 if (error)
1672 return error;
1673 }
1674 if (i_uid_needs_update(&nop_mnt_idmap, iattr, inode) ||
1675 i_gid_needs_update(&nop_mnt_idmap, iattr, inode)) {
1676 error = dquot_transfer(&nop_mnt_idmap, inode, iattr);
1677 if (error)
1678 return error;
1679 }
1680 if (iattr->ia_valid & ATTR_SIZE && iattr->ia_size != inode->i_size) {
1681 error = ext2_setsize(inode, iattr->ia_size);
1682 if (error)
1683 return error;
1684 }
1685 setattr_copy(&nop_mnt_idmap, inode, iattr);
1686 if (iattr->ia_valid & ATTR_MODE)
1687 error = posix_acl_chmod(&nop_mnt_idmap, dentry, inode->i_mode);
1688 mark_inode_dirty(inode);
1689
1690 return error;
1691 }
1692