1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * linux/fs/ext4/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 * 64-bit file support on 64-bit platforms by Jakub Jelinek
17 * (jj@sunsite.ms.mff.cuni.cz)
18 *
19 * Assorted race fixes, rewrite of ext4_get_block() by Al Viro, 2000
20 */
21
22 #include <linux/fs.h>
23 #include <linux/mount.h>
24 #include <linux/time.h>
25 #include <linux/highuid.h>
26 #include <linux/pagemap.h>
27 #include <linux/dax.h>
28 #include <linux/quotaops.h>
29 #include <linux/string.h>
30 #include <linux/buffer_head.h>
31 #include <linux/writeback.h>
32 #include <linux/pagevec.h>
33 #include <linux/mpage.h>
34 #include <linux/rmap.h>
35 #include <linux/namei.h>
36 #include <linux/uio.h>
37 #include <linux/bio.h>
38 #include <linux/workqueue.h>
39 #include <linux/kernel.h>
40 #include <linux/printk.h>
41 #include <linux/slab.h>
42 #include <linux/bitops.h>
43 #include <linux/iomap.h>
44 #include <linux/iversion.h>
45
46 #include "ext4_jbd2.h"
47 #include "xattr.h"
48 #include "acl.h"
49 #include "truncate.h"
50
51 #include <kunit/static_stub.h>
52
53 #include <trace/events/ext4.h>
54
55 static void ext4_journalled_zero_new_buffers(handle_t *handle,
56 struct inode *inode,
57 struct folio *folio,
58 unsigned from, unsigned to);
59
ext4_inode_csum(struct inode * inode,struct ext4_inode * raw,struct ext4_inode_info * ei)60 static __u32 ext4_inode_csum(struct inode *inode, struct ext4_inode *raw,
61 struct ext4_inode_info *ei)
62 {
63 __u32 csum;
64 __u16 dummy_csum = 0;
65 int offset = offsetof(struct ext4_inode, i_checksum_lo);
66 unsigned int csum_size = sizeof(dummy_csum);
67
68 csum = ext4_chksum(ei->i_csum_seed, (__u8 *)raw, offset);
69 csum = ext4_chksum(csum, (__u8 *)&dummy_csum, csum_size);
70 offset += csum_size;
71 csum = ext4_chksum(csum, (__u8 *)raw + offset,
72 EXT4_GOOD_OLD_INODE_SIZE - offset);
73
74 if (EXT4_INODE_SIZE(inode->i_sb) > EXT4_GOOD_OLD_INODE_SIZE) {
75 offset = offsetof(struct ext4_inode, i_checksum_hi);
76 csum = ext4_chksum(csum, (__u8 *)raw + EXT4_GOOD_OLD_INODE_SIZE,
77 offset - EXT4_GOOD_OLD_INODE_SIZE);
78 if (EXT4_FITS_IN_INODE(raw, ei, i_checksum_hi)) {
79 csum = ext4_chksum(csum, (__u8 *)&dummy_csum,
80 csum_size);
81 offset += csum_size;
82 }
83 csum = ext4_chksum(csum, (__u8 *)raw + offset,
84 EXT4_INODE_SIZE(inode->i_sb) - offset);
85 }
86
87 return csum;
88 }
89
ext4_inode_csum_verify(struct inode * inode,struct ext4_inode * raw,struct ext4_inode_info * ei)90 static int ext4_inode_csum_verify(struct inode *inode, struct ext4_inode *raw,
91 struct ext4_inode_info *ei)
92 {
93 __u32 provided, calculated;
94
95 if (EXT4_SB(inode->i_sb)->s_es->s_creator_os !=
96 cpu_to_le32(EXT4_OS_LINUX) ||
97 !ext4_has_feature_metadata_csum(inode->i_sb))
98 return 1;
99
100 provided = le16_to_cpu(raw->i_checksum_lo);
101 calculated = ext4_inode_csum(inode, raw, ei);
102 if (EXT4_INODE_SIZE(inode->i_sb) > EXT4_GOOD_OLD_INODE_SIZE &&
103 EXT4_FITS_IN_INODE(raw, ei, i_checksum_hi))
104 provided |= ((__u32)le16_to_cpu(raw->i_checksum_hi)) << 16;
105 else
106 calculated &= 0xFFFF;
107
108 return provided == calculated;
109 }
110
ext4_inode_csum_set(struct inode * inode,struct ext4_inode * raw,struct ext4_inode_info * ei)111 void ext4_inode_csum_set(struct inode *inode, struct ext4_inode *raw,
112 struct ext4_inode_info *ei)
113 {
114 __u32 csum;
115
116 if (EXT4_SB(inode->i_sb)->s_es->s_creator_os !=
117 cpu_to_le32(EXT4_OS_LINUX) ||
118 !ext4_has_feature_metadata_csum(inode->i_sb))
119 return;
120
121 csum = ext4_inode_csum(inode, raw, ei);
122 raw->i_checksum_lo = cpu_to_le16(csum & 0xFFFF);
123 if (EXT4_INODE_SIZE(inode->i_sb) > EXT4_GOOD_OLD_INODE_SIZE &&
124 EXT4_FITS_IN_INODE(raw, ei, i_checksum_hi))
125 raw->i_checksum_hi = cpu_to_le16(csum >> 16);
126 }
127
ext4_begin_ordered_truncate(struct inode * inode,loff_t new_size)128 static inline int ext4_begin_ordered_truncate(struct inode *inode,
129 loff_t new_size)
130 {
131 struct jbd2_inode *jinode = READ_ONCE(EXT4_I(inode)->jinode);
132
133 trace_ext4_begin_ordered_truncate(inode, new_size);
134 /*
135 * If jinode is zero, then we never opened the file for
136 * writing, so there's no need to call
137 * jbd2_journal_begin_ordered_truncate() since there's no
138 * outstanding writes we need to flush.
139 */
140 if (!jinode)
141 return 0;
142 return jbd2_journal_begin_ordered_truncate(EXT4_JOURNAL(inode),
143 jinode,
144 new_size);
145 }
146
147 /*
148 * Test whether an inode is a fast symlink.
149 * A fast symlink has its symlink data stored in ext4_inode_info->i_data.
150 */
ext4_inode_is_fast_symlink(struct inode * inode)151 int ext4_inode_is_fast_symlink(struct inode *inode)
152 {
153 if (!ext4_has_feature_ea_inode(inode->i_sb)) {
154 int ea_blocks = EXT4_I(inode)->i_file_acl ?
155 EXT4_CLUSTER_SIZE(inode->i_sb) >> 9 : 0;
156
157 if (ext4_has_inline_data(inode))
158 return 0;
159
160 return (S_ISLNK(inode->i_mode) && inode->i_blocks - ea_blocks == 0);
161 }
162 return S_ISLNK(inode->i_mode) && inode->i_size &&
163 (inode->i_size < EXT4_N_BLOCKS * 4);
164 }
165
166 /*
167 * Called at the last iput() if i_nlink is zero.
168 */
ext4_evict_inode(struct inode * inode)169 void ext4_evict_inode(struct inode *inode)
170 {
171 handle_t *handle;
172 int err;
173 /*
174 * Credits for final inode cleanup and freeing:
175 * sb + inode (ext4_orphan_del()), block bitmap, group descriptor
176 * (xattr block freeing), bitmap, group descriptor (inode freeing)
177 */
178 int extra_credits = 6;
179 struct ext4_xattr_inode_array *ea_inode_array = NULL;
180 bool freeze_protected = false;
181
182 trace_ext4_evict_inode(inode);
183
184 dax_break_layout_final(inode);
185
186 if (EXT4_I(inode)->i_flags & EXT4_EA_INODE_FL)
187 ext4_evict_ea_inode(inode);
188 if (inode->i_nlink) {
189 /*
190 * If there's dirty page will lead to data loss, user
191 * could see stale data.
192 */
193 if (unlikely(!ext4_emergency_state(inode->i_sb) &&
194 mapping_tagged(&inode->i_data, PAGECACHE_TAG_DIRTY)))
195 ext4_warning_inode(inode, "data will be lost");
196
197 truncate_inode_pages_final(&inode->i_data);
198 /* Avoid mballoc special inode which has no proper iops */
199 if (!EXT4_SB(inode->i_sb)->s_journal)
200 mmb_sync(&EXT4_I(inode)->i_metadata_bhs);
201 goto no_delete;
202 }
203
204 if (is_bad_inode(inode))
205 goto no_delete;
206 dquot_initialize(inode);
207
208 if (ext4_should_order_data(inode))
209 ext4_begin_ordered_truncate(inode, 0);
210 truncate_inode_pages_final(&inode->i_data);
211
212 /*
213 * For inodes with journalled data, transaction commit could have
214 * dirtied the inode. And for inodes with dioread_nolock, unwritten
215 * extents converting worker could merge extents and also have dirtied
216 * the inode. Flush worker is ignoring it because of I_FREEING flag but
217 * we still need to remove the inode from the writeback lists.
218 */
219 inode_io_list_del(inode);
220
221 /*
222 * Protect us against freezing - iput() caller didn't have to have any
223 * protection against it. When we are in a running transaction though,
224 * we are already protected against freezing and we cannot grab further
225 * protection due to lock ordering constraints.
226 */
227 if (!ext4_journal_current_handle()) {
228 sb_start_intwrite(inode->i_sb);
229 freeze_protected = true;
230 }
231
232 if (!IS_NOQUOTA(inode))
233 extra_credits += EXT4_MAXQUOTAS_DEL_BLOCKS(inode->i_sb);
234
235 /*
236 * Block bitmap, group descriptor, and inode are accounted in both
237 * ext4_blocks_for_truncate() and extra_credits. So subtract 3.
238 */
239 handle = ext4_journal_start(inode, EXT4_HT_TRUNCATE,
240 ext4_blocks_for_truncate(inode) + extra_credits - 3);
241 if (IS_ERR(handle)) {
242 ext4_std_error(inode->i_sb, PTR_ERR(handle));
243 /*
244 * If we're going to skip the normal cleanup, we still need to
245 * make sure that the in-core orphan linked list is properly
246 * cleaned up.
247 */
248 ext4_orphan_del(NULL, inode);
249 if (freeze_protected)
250 sb_end_intwrite(inode->i_sb);
251 goto no_delete;
252 }
253
254 if (IS_SYNC(inode))
255 ext4_handle_sync(handle);
256
257 /*
258 * Set inode->i_size to 0 before calling ext4_truncate(). We need
259 * special handling of symlinks here because i_size is used to
260 * determine whether ext4_inode_info->i_data contains symlink data or
261 * block mappings. Setting i_size to 0 will remove its fast symlink
262 * status. Erase i_data so that it becomes a valid empty block map.
263 */
264 if (ext4_inode_is_fast_symlink(inode))
265 memset(EXT4_I(inode)->i_data, 0, sizeof(EXT4_I(inode)->i_data));
266 inode->i_size = 0;
267 err = ext4_mark_inode_dirty(handle, inode);
268 if (err) {
269 ext4_warning(inode->i_sb,
270 "couldn't mark inode dirty (err %d)", err);
271 goto stop_handle;
272 }
273 if (inode->i_blocks) {
274 err = ext4_truncate(inode);
275 if (err) {
276 ext4_error_err(inode->i_sb, -err,
277 "couldn't truncate inode %llu (err %d)",
278 inode->i_ino, err);
279 goto stop_handle;
280 }
281 }
282
283 /* Remove xattr references. */
284 err = ext4_xattr_delete_inode(handle, inode, &ea_inode_array,
285 extra_credits);
286 if (err) {
287 ext4_warning(inode->i_sb, "xattr delete (err %d)", err);
288 stop_handle:
289 ext4_journal_stop(handle);
290 ext4_orphan_del(NULL, inode);
291 if (freeze_protected)
292 sb_end_intwrite(inode->i_sb);
293 ext4_xattr_inode_array_free(ea_inode_array);
294 goto no_delete;
295 }
296
297 /*
298 * Kill off the orphan record which ext4_truncate created.
299 * AKPM: I think this can be inside the above `if'.
300 * Note that ext4_orphan_del() has to be able to cope with the
301 * deletion of a non-existent orphan - this is because we don't
302 * know if ext4_truncate() actually created an orphan record.
303 * (Well, we could do this if we need to, but heck - it works)
304 */
305 ext4_orphan_del(handle, inode);
306 EXT4_I(inode)->i_dtime = (__u32)ktime_get_real_seconds();
307
308 /*
309 * One subtle ordering requirement: if anything has gone wrong
310 * (transaction abort, IO errors, whatever), then we can still
311 * do these next steps (the fs will already have been marked as
312 * having errors), but we can't free the inode if the mark_dirty
313 * fails.
314 */
315 if (ext4_mark_inode_dirty(handle, inode))
316 /* If that failed, just do the required in-core inode clear. */
317 ext4_clear_inode(inode);
318 else
319 ext4_free_inode(handle, inode);
320 ext4_journal_stop(handle);
321 if (freeze_protected)
322 sb_end_intwrite(inode->i_sb);
323 ext4_xattr_inode_array_free(ea_inode_array);
324 return;
325 no_delete:
326 /*
327 * Check out some where else accidentally dirty the evicting inode,
328 * which may probably cause inode use-after-free issues later.
329 */
330 WARN_ON_ONCE(!list_empty_careful(&inode->i_io_list));
331
332 if (!list_empty(&EXT4_I(inode)->i_fc_list))
333 ext4_fc_mark_ineligible(inode->i_sb, EXT4_FC_REASON_NOMEM, NULL);
334 ext4_clear_inode(inode); /* We must guarantee clearing of inode... */
335 }
336
337 #ifdef CONFIG_QUOTA
ext4_get_reserved_space(struct inode * inode)338 qsize_t *ext4_get_reserved_space(struct inode *inode)
339 {
340 return &EXT4_I(inode)->i_reserved_quota;
341 }
342 #endif
343
344 /*
345 * Called with i_data_sem down, which is important since we can call
346 * ext4_discard_preallocations() from here.
347 */
ext4_da_update_reserve_space(struct inode * inode,int used,int quota_claim)348 void ext4_da_update_reserve_space(struct inode *inode,
349 int used, int quota_claim)
350 {
351 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
352 struct ext4_inode_info *ei = EXT4_I(inode);
353
354 spin_lock(&ei->i_block_reservation_lock);
355 trace_ext4_da_update_reserve_space(inode, used, quota_claim);
356 if (unlikely(used > ei->i_reserved_data_blocks)) {
357 ext4_warning(inode->i_sb, "%s: ino %llu, used %d "
358 "with only %d reserved data blocks",
359 __func__, inode->i_ino, used,
360 ei->i_reserved_data_blocks);
361 WARN_ON(1);
362 used = ei->i_reserved_data_blocks;
363 }
364
365 /* Update per-inode reservations */
366 ei->i_reserved_data_blocks -= used;
367 percpu_counter_sub(&sbi->s_dirtyclusters_counter, used);
368
369 spin_unlock(&ei->i_block_reservation_lock);
370
371 /* Update quota subsystem for data blocks */
372 if (quota_claim)
373 dquot_claim_block(inode, EXT4_C2B(sbi, used));
374 else {
375 /*
376 * We did fallocate with an offset that is already delayed
377 * allocated. So on delayed allocated writeback we should
378 * not re-claim the quota for fallocated blocks.
379 */
380 dquot_release_reservation_block(inode, EXT4_C2B(sbi, used));
381 }
382
383 /*
384 * If we have done all the pending block allocations and if
385 * there aren't any writers on the inode, we can discard the
386 * inode's preallocations.
387 */
388 if ((ei->i_reserved_data_blocks == 0) &&
389 !inode_is_open_for_write(inode))
390 ext4_discard_preallocations(inode);
391 }
392
__check_block_validity(struct inode * inode,const char * func,unsigned int line,struct ext4_map_blocks * map)393 static int __check_block_validity(struct inode *inode, const char *func,
394 unsigned int line,
395 struct ext4_map_blocks *map)
396 {
397 journal_t *journal = EXT4_SB(inode->i_sb)->s_journal;
398
399 if (journal && inode == journal->j_inode)
400 return 0;
401
402 if (!ext4_inode_block_valid(inode, map->m_pblk, map->m_len)) {
403 ext4_error_inode(inode, func, line, map->m_pblk,
404 "lblock %lu mapped to illegal pblock %llu "
405 "(length %d)", (unsigned long) map->m_lblk,
406 map->m_pblk, map->m_len);
407 return -EFSCORRUPTED;
408 }
409 return 0;
410 }
411
ext4_issue_zeroout(struct inode * inode,ext4_lblk_t lblk,ext4_fsblk_t pblk,ext4_lblk_t len)412 int ext4_issue_zeroout(struct inode *inode, ext4_lblk_t lblk, ext4_fsblk_t pblk,
413 ext4_lblk_t len)
414 {
415 int ret;
416
417 KUNIT_STATIC_STUB_REDIRECT(ext4_issue_zeroout, inode, lblk, pblk, len);
418
419 if (IS_ENCRYPTED(inode) && S_ISREG(inode->i_mode))
420 return fscrypt_zeroout_range(inode,
421 (loff_t)lblk << inode->i_blkbits,
422 pblk << (inode->i_blkbits - SECTOR_SHIFT),
423 (u64)len << inode->i_blkbits);
424
425 ret = sb_issue_zeroout(inode->i_sb, pblk, len, GFP_NOFS);
426 if (ret > 0)
427 ret = 0;
428
429 return ret;
430 }
431
432 /*
433 * For generic regular files, when updating the extent tree, Ext4 should
434 * hold the i_rwsem and invalidate_lock exclusively. This ensures
435 * exclusion against concurrent page faults, as well as reads and writes.
436 */
437 #ifdef CONFIG_EXT4_DEBUG
ext4_check_map_extents_env(struct inode * inode)438 void ext4_check_map_extents_env(struct inode *inode)
439 {
440 if (EXT4_SB(inode->i_sb)->s_mount_state & EXT4_FC_REPLAY)
441 return;
442
443 if (!S_ISREG(inode->i_mode) ||
444 IS_NOQUOTA(inode) || IS_VERITY(inode) ||
445 is_special_ino(inode->i_sb, inode->i_ino) ||
446 (inode_state_read_once(inode) & (I_FREEING | I_WILL_FREE | I_NEW)) ||
447 ext4_test_inode_flag(inode, EXT4_INODE_EA_INODE) ||
448 ext4_verity_in_progress(inode))
449 return;
450
451 WARN_ON_ONCE(!inode_is_locked(inode) &&
452 !rwsem_is_locked(&inode->i_mapping->invalidate_lock));
453 }
454 #else
ext4_check_map_extents_env(struct inode * inode)455 void ext4_check_map_extents_env(struct inode *inode) {}
456 #endif
457
458 #define check_block_validity(inode, map) \
459 __check_block_validity((inode), __func__, __LINE__, (map))
460
461 #ifdef ES_AGGRESSIVE_TEST
ext4_map_blocks_es_recheck(handle_t * handle,struct inode * inode,struct ext4_map_blocks * es_map,struct ext4_map_blocks * map,int flags)462 static void ext4_map_blocks_es_recheck(handle_t *handle,
463 struct inode *inode,
464 struct ext4_map_blocks *es_map,
465 struct ext4_map_blocks *map,
466 int flags)
467 {
468 int retval;
469
470 map->m_flags = 0;
471 /*
472 * There is a race window that the result is not the same.
473 * e.g. xfstests #223 when dioread_nolock enables. The reason
474 * is that we lookup a block mapping in extent status tree with
475 * out taking i_data_sem. So at the time the unwritten extent
476 * could be converted.
477 */
478 down_read(&EXT4_I(inode)->i_data_sem);
479 if (ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS)) {
480 retval = ext4_ext_map_blocks(handle, inode, map, 0);
481 } else {
482 retval = ext4_ind_map_blocks(handle, inode, map, 0);
483 }
484 up_read((&EXT4_I(inode)->i_data_sem));
485
486 /*
487 * We don't check m_len because extent will be collpased in status
488 * tree. So the m_len might not equal.
489 */
490 if (es_map->m_lblk != map->m_lblk ||
491 es_map->m_flags != map->m_flags ||
492 es_map->m_pblk != map->m_pblk) {
493 printk("ES cache assertion failed for inode: %llu "
494 "es_cached ex [%d/%d/%llu/%x] != "
495 "found ex [%d/%d/%llu/%x] retval %d flags %x\n",
496 inode->i_ino, es_map->m_lblk, es_map->m_len,
497 es_map->m_pblk, es_map->m_flags, map->m_lblk,
498 map->m_len, map->m_pblk, map->m_flags,
499 retval, flags);
500 }
501 }
502 #endif /* ES_AGGRESSIVE_TEST */
503
ext4_map_query_blocks_next_in_leaf(handle_t * handle,struct inode * inode,struct ext4_map_blocks * map,unsigned int orig_mlen)504 static int ext4_map_query_blocks_next_in_leaf(handle_t *handle,
505 struct inode *inode, struct ext4_map_blocks *map,
506 unsigned int orig_mlen)
507 {
508 struct ext4_map_blocks map2;
509 unsigned int status, status2;
510 int retval;
511
512 status = map->m_flags & EXT4_MAP_UNWRITTEN ?
513 EXTENT_STATUS_UNWRITTEN : EXTENT_STATUS_WRITTEN;
514
515 WARN_ON_ONCE(!(map->m_flags & EXT4_MAP_QUERY_LAST_IN_LEAF));
516 WARN_ON_ONCE(orig_mlen <= map->m_len);
517
518 /* Prepare map2 for lookup in next leaf block */
519 map2.m_lblk = map->m_lblk + map->m_len;
520 map2.m_len = orig_mlen - map->m_len;
521 map2.m_flags = 0;
522 retval = ext4_ext_map_blocks(handle, inode, &map2, 0);
523
524 if (retval <= 0) {
525 ext4_es_cache_extent(inode, map->m_lblk, map->m_len,
526 map->m_pblk, status);
527 return map->m_len;
528 }
529
530 if (unlikely(retval != map2.m_len)) {
531 ext4_warning(inode->i_sb,
532 "ES len assertion failed for inode "
533 "%llu: retval %d != map->m_len %d",
534 inode->i_ino, retval, map2.m_len);
535 WARN_ON(1);
536 }
537
538 status2 = map2.m_flags & EXT4_MAP_UNWRITTEN ?
539 EXTENT_STATUS_UNWRITTEN : EXTENT_STATUS_WRITTEN;
540
541 /*
542 * If map2 is contiguous with map, then let's insert it as a single
543 * extent in es cache and return the combined length of both the maps.
544 */
545 if (map->m_pblk + map->m_len == map2.m_pblk &&
546 status == status2) {
547 ext4_es_cache_extent(inode, map->m_lblk,
548 map->m_len + map2.m_len, map->m_pblk,
549 status);
550 map->m_len += map2.m_len;
551 } else {
552 ext4_es_cache_extent(inode, map->m_lblk, map->m_len,
553 map->m_pblk, status);
554 }
555
556 return map->m_len;
557 }
558
ext4_map_query_blocks(handle_t * handle,struct inode * inode,struct ext4_map_blocks * map,int flags)559 int ext4_map_query_blocks(handle_t *handle, struct inode *inode,
560 struct ext4_map_blocks *map, int flags)
561 {
562 unsigned int status;
563 int retval;
564 unsigned int orig_mlen = map->m_len;
565
566 flags &= EXT4_EX_QUERY_FILTER;
567 if (ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))
568 retval = ext4_ext_map_blocks(handle, inode, map, flags);
569 else
570 retval = ext4_ind_map_blocks(handle, inode, map, flags);
571 if (retval < 0)
572 return retval;
573
574 /* A hole? */
575 if (retval == 0)
576 goto out;
577
578 if (unlikely(retval != map->m_len)) {
579 ext4_warning(inode->i_sb,
580 "ES len assertion failed for inode "
581 "%llu: retval %d != map->m_len %d",
582 inode->i_ino, retval, map->m_len);
583 WARN_ON(1);
584 }
585
586 /*
587 * No need to query next in leaf:
588 * - if returned extent is not last in leaf or
589 * - if the last in leaf is the full requested range
590 */
591 if (!(map->m_flags & EXT4_MAP_QUERY_LAST_IN_LEAF) ||
592 map->m_len == orig_mlen) {
593 status = map->m_flags & EXT4_MAP_UNWRITTEN ?
594 EXTENT_STATUS_UNWRITTEN : EXTENT_STATUS_WRITTEN;
595 ext4_es_cache_extent(inode, map->m_lblk, map->m_len,
596 map->m_pblk, status);
597 } else {
598 retval = ext4_map_query_blocks_next_in_leaf(handle, inode, map,
599 orig_mlen);
600 }
601 out:
602 map->m_seq = READ_ONCE(EXT4_I(inode)->i_es_seq);
603 return retval;
604 }
605
ext4_map_create_blocks(handle_t * handle,struct inode * inode,struct ext4_map_blocks * map,int flags)606 int ext4_map_create_blocks(handle_t *handle, struct inode *inode,
607 struct ext4_map_blocks *map, int flags)
608 {
609 unsigned int status;
610 int err, retval = 0;
611
612 /*
613 * We pass in the magic EXT4_GET_BLOCKS_DELALLOC_RESERVE
614 * indicates that the blocks and quotas has already been
615 * checked when the data was copied into the page cache.
616 */
617 if (map->m_flags & EXT4_MAP_DELAYED)
618 flags |= EXT4_GET_BLOCKS_DELALLOC_RESERVE;
619
620 /*
621 * Here we clear m_flags because after allocating an new extent,
622 * it will be set again.
623 */
624 map->m_flags &= ~EXT4_MAP_FLAGS;
625
626 /*
627 * We need to check for EXT4 here because migrate could have
628 * changed the inode type in between.
629 */
630 if (ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS)) {
631 retval = ext4_ext_map_blocks(handle, inode, map, flags);
632 } else {
633 retval = ext4_ind_map_blocks(handle, inode, map, flags);
634
635 /*
636 * We allocated new blocks which will result in i_data's
637 * format changing. Force the migrate to fail by clearing
638 * migrate flags.
639 */
640 if (retval > 0 && map->m_flags & EXT4_MAP_NEW)
641 ext4_clear_inode_state(inode, EXT4_STATE_EXT_MIGRATE);
642 }
643 if (retval <= 0)
644 return retval;
645
646 if (unlikely(retval != map->m_len)) {
647 ext4_warning(inode->i_sb,
648 "ES len assertion failed for inode %llu: "
649 "retval %d != map->m_len %d",
650 inode->i_ino, retval, map->m_len);
651 WARN_ON(1);
652 }
653
654 /*
655 * We have to zeroout blocks before inserting them into extent
656 * status tree. Otherwise someone could look them up there and
657 * use them before they are really zeroed. We also have to
658 * unmap metadata before zeroing as otherwise writeback can
659 * overwrite zeros with stale data from block device.
660 */
661 if (flags & EXT4_GET_BLOCKS_ZERO &&
662 map->m_flags & EXT4_MAP_MAPPED && map->m_flags & EXT4_MAP_NEW) {
663 err = ext4_issue_zeroout(inode, map->m_lblk, map->m_pblk,
664 map->m_len);
665 if (err)
666 return err;
667 }
668
669 status = map->m_flags & EXT4_MAP_UNWRITTEN ?
670 EXTENT_STATUS_UNWRITTEN : EXTENT_STATUS_WRITTEN;
671 ext4_es_insert_extent(inode, map->m_lblk, map->m_len, map->m_pblk,
672 status, flags & EXT4_GET_BLOCKS_DELALLOC_RESERVE);
673 map->m_seq = READ_ONCE(EXT4_I(inode)->i_es_seq);
674
675 return retval;
676 }
677
678 /*
679 * The ext4_map_blocks() function tries to look up the requested blocks,
680 * and returns if the blocks are already mapped.
681 *
682 * Otherwise it takes the write lock of the i_data_sem and allocate blocks
683 * and store the allocated blocks in the result buffer head and mark it
684 * mapped.
685 *
686 * If file type is extents based, it will call ext4_ext_map_blocks(),
687 * Otherwise, call with ext4_ind_map_blocks() to handle indirect mapping
688 * based files
689 *
690 * On success, it returns the number of blocks being mapped or allocated.
691 * If flags doesn't contain EXT4_GET_BLOCKS_CREATE the blocks are
692 * pre-allocated and unwritten, the resulting @map is marked as unwritten.
693 * If the flags contain EXT4_GET_BLOCKS_CREATE, it will mark @map as mapped.
694 *
695 * It returns 0 if plain look up failed (blocks have not been allocated), in
696 * that case, @map is returned as unmapped but we still do fill map->m_len to
697 * indicate the length of a hole starting at map->m_lblk.
698 *
699 * It returns the error in case of allocation failure.
700 */
ext4_map_blocks(handle_t * handle,struct inode * inode,struct ext4_map_blocks * map,int flags)701 int ext4_map_blocks(handle_t *handle, struct inode *inode,
702 struct ext4_map_blocks *map, int flags)
703 {
704 struct extent_status es;
705 int retval;
706 int ret = 0;
707 unsigned int orig_mlen = map->m_len;
708 #ifdef ES_AGGRESSIVE_TEST
709 struct ext4_map_blocks orig_map;
710
711 memcpy(&orig_map, map, sizeof(*map));
712 #endif
713
714 map->m_flags = 0;
715 ext_debug(inode, "flag 0x%x, max_blocks %u, logical block %lu\n",
716 flags, map->m_len, (unsigned long) map->m_lblk);
717
718 /*
719 * ext4_map_blocks returns an int, and m_len is an unsigned int
720 */
721 if (unlikely(map->m_len > INT_MAX))
722 map->m_len = INT_MAX;
723
724 /* We can handle the block number less than EXT_MAX_BLOCKS */
725 if (unlikely(map->m_lblk >= EXT_MAX_BLOCKS))
726 return -EFSCORRUPTED;
727
728 /*
729 * Callers from the context of data submission are the only exceptions
730 * for regular files that do not hold the i_rwsem or invalidate_lock.
731 * However, caching unrelated ranges is not permitted.
732 */
733 if (flags & EXT4_GET_BLOCKS_IO_SUBMIT)
734 WARN_ON_ONCE(!(flags & EXT4_EX_NOCACHE));
735 else
736 ext4_check_map_extents_env(inode);
737
738 /* Lookup extent status tree firstly */
739 if (ext4_es_lookup_extent(inode, map->m_lblk, NULL, &es, &map->m_seq)) {
740 if (ext4_es_is_written(&es) || ext4_es_is_unwritten(&es)) {
741 map->m_pblk = ext4_es_pblock(&es) +
742 map->m_lblk - es.es_lblk;
743 map->m_flags |= ext4_es_is_written(&es) ?
744 EXT4_MAP_MAPPED : EXT4_MAP_UNWRITTEN;
745 retval = es.es_len - (map->m_lblk - es.es_lblk);
746 if (retval > map->m_len)
747 retval = map->m_len;
748 map->m_len = retval;
749 } else if (ext4_es_is_delayed(&es) || ext4_es_is_hole(&es)) {
750 map->m_pblk = 0;
751 map->m_flags |= ext4_es_is_delayed(&es) ?
752 EXT4_MAP_DELAYED : 0;
753 retval = es.es_len - (map->m_lblk - es.es_lblk);
754 if (retval > map->m_len)
755 retval = map->m_len;
756 map->m_len = retval;
757 retval = 0;
758 } else {
759 BUG();
760 }
761
762 if (flags & EXT4_GET_BLOCKS_CACHED_NOWAIT)
763 return retval;
764 #ifdef ES_AGGRESSIVE_TEST
765 ext4_map_blocks_es_recheck(handle, inode, map,
766 &orig_map, flags);
767 #endif
768 if (!(flags & EXT4_GET_BLOCKS_QUERY_LAST_IN_LEAF) ||
769 orig_mlen == map->m_len)
770 goto found;
771
772 map->m_len = orig_mlen;
773 }
774 /*
775 * In the query cache no-wait mode, nothing we can do more if we
776 * cannot find extent in the cache.
777 */
778 if (flags & EXT4_GET_BLOCKS_CACHED_NOWAIT)
779 return 0;
780
781 /*
782 * Try to see if we can get the block without requesting a new
783 * file system block.
784 */
785 down_read(&EXT4_I(inode)->i_data_sem);
786 retval = ext4_map_query_blocks(handle, inode, map, flags);
787 up_read((&EXT4_I(inode)->i_data_sem));
788
789 found:
790 if (retval > 0 && map->m_flags & EXT4_MAP_MAPPED) {
791 ret = check_block_validity(inode, map);
792 if (ret != 0)
793 return ret;
794 }
795
796 /* If it is only a block(s) look up */
797 if ((flags & EXT4_GET_BLOCKS_CREATE) == 0)
798 return retval;
799
800 /*
801 * Returns if the blocks have already allocated
802 *
803 * Note that if blocks have been preallocated
804 * ext4_ext_map_blocks() returns with buffer head unmapped
805 */
806 if (retval > 0 && map->m_flags & EXT4_MAP_MAPPED)
807 /*
808 * If we need to convert extent to unwritten
809 * we continue and do the actual work in
810 * ext4_ext_map_blocks()
811 */
812 if (!(flags & EXT4_GET_BLOCKS_CONVERT_UNWRITTEN))
813 return retval;
814
815
816 ext4_fc_track_inode(handle, inode);
817 /*
818 * New blocks allocate and/or writing to unwritten extent
819 * will possibly result in updating i_data, so we take
820 * the write lock of i_data_sem, and call get_block()
821 * with create == 1 flag.
822 */
823 down_write(&EXT4_I(inode)->i_data_sem);
824 retval = ext4_map_create_blocks(handle, inode, map, flags);
825 up_write((&EXT4_I(inode)->i_data_sem));
826
827 if (retval < 0)
828 ext_debug(inode, "failed with err %d\n", retval);
829 if (retval <= 0)
830 return retval;
831
832 if (map->m_flags & EXT4_MAP_MAPPED) {
833 ret = check_block_validity(inode, map);
834 if (ret != 0)
835 return ret;
836
837 /*
838 * Inodes with freshly allocated blocks where contents will be
839 * visible after transaction commit must be on transaction's
840 * ordered data list.
841 */
842 if (map->m_flags & EXT4_MAP_NEW &&
843 !(map->m_flags & EXT4_MAP_UNWRITTEN) &&
844 !(flags & EXT4_GET_BLOCKS_ZERO) &&
845 !ext4_is_quota_file(inode) &&
846 ext4_should_order_data(inode)) {
847 loff_t start_byte = EXT4_LBLK_TO_B(inode, map->m_lblk);
848 loff_t length = EXT4_LBLK_TO_B(inode, map->m_len);
849
850 if (flags & EXT4_GET_BLOCKS_IO_SUBMIT)
851 ret = ext4_jbd2_inode_add_wait(handle, inode,
852 start_byte, length);
853 else
854 ret = ext4_jbd2_inode_add_write(handle, inode,
855 start_byte, length);
856 if (ret)
857 return ret;
858 }
859 }
860 ext4_fc_track_range(handle, inode, map->m_lblk, map->m_lblk +
861 map->m_len - 1);
862 return retval;
863 }
864
865 /*
866 * Update EXT4_MAP_FLAGS in bh->b_state. For buffer heads attached to pages
867 * we have to be careful as someone else may be manipulating b_state as well.
868 */
ext4_update_bh_state(struct buffer_head * bh,unsigned long flags)869 static void ext4_update_bh_state(struct buffer_head *bh, unsigned long flags)
870 {
871 unsigned long old_state;
872 unsigned long new_state;
873
874 flags &= EXT4_MAP_FLAGS;
875
876 /* Dummy buffer_head? Set non-atomically. */
877 if (!bh->b_folio) {
878 bh->b_state = (bh->b_state & ~EXT4_MAP_FLAGS) | flags;
879 return;
880 }
881 /*
882 * Someone else may be modifying b_state. Be careful! This is ugly but
883 * once we get rid of using bh as a container for mapping information
884 * to pass to / from get_block functions, this can go away.
885 */
886 old_state = READ_ONCE(bh->b_state);
887 do {
888 new_state = (old_state & ~EXT4_MAP_FLAGS) | flags;
889 } while (unlikely(!try_cmpxchg(&bh->b_state, &old_state, new_state)));
890 }
891
892 /*
893 * Make sure that the current journal transaction has enough credits to map
894 * one extent. Return -EAGAIN if it cannot extend the current running
895 * transaction.
896 */
ext4_journal_ensure_extent_credits(handle_t * handle,struct inode * inode)897 static inline int ext4_journal_ensure_extent_credits(handle_t *handle,
898 struct inode *inode)
899 {
900 int credits;
901 int ret;
902
903 /* Called from ext4_da_write_begin() which has no handle started? */
904 if (!handle)
905 return 0;
906
907 credits = ext4_chunk_trans_blocks(inode, 1);
908 ret = __ext4_journal_ensure_credits(handle, credits, credits, 0);
909 return ret <= 0 ? ret : -EAGAIN;
910 }
911
_ext4_get_block(struct inode * inode,sector_t iblock,struct buffer_head * bh,int flags)912 static int _ext4_get_block(struct inode *inode, sector_t iblock,
913 struct buffer_head *bh, int flags)
914 {
915 struct ext4_map_blocks map;
916 int ret = 0;
917
918 if (ext4_has_inline_data(inode))
919 return -ERANGE;
920
921 map.m_lblk = iblock;
922 map.m_len = bh->b_size >> inode->i_blkbits;
923
924 ret = ext4_map_blocks(ext4_journal_current_handle(), inode, &map,
925 flags);
926 if (ret > 0) {
927 map_bh(bh, inode->i_sb, map.m_pblk);
928 ext4_update_bh_state(bh, map.m_flags);
929 bh->b_size = inode->i_sb->s_blocksize * map.m_len;
930 ret = 0;
931 } else if (ret == 0) {
932 /* hole case, need to fill in bh->b_size */
933 bh->b_size = inode->i_sb->s_blocksize * map.m_len;
934 }
935 return ret;
936 }
937
ext4_get_block(struct inode * inode,sector_t iblock,struct buffer_head * bh,int create)938 int ext4_get_block(struct inode *inode, sector_t iblock,
939 struct buffer_head *bh, int create)
940 {
941 return _ext4_get_block(inode, iblock, bh,
942 create ? EXT4_GET_BLOCKS_CREATE : 0);
943 }
944
945 /*
946 * Get block function used when preparing for buffered write if we require
947 * creating an unwritten extent if blocks haven't been allocated. The extent
948 * will be converted to written after the IO is complete.
949 */
ext4_get_block_unwritten(struct inode * inode,sector_t iblock,struct buffer_head * bh_result,int create)950 int ext4_get_block_unwritten(struct inode *inode, sector_t iblock,
951 struct buffer_head *bh_result, int create)
952 {
953 int ret = 0;
954
955 ext4_debug("ext4_get_block_unwritten: inode %llu, create flag %d\n",
956 inode->i_ino, create);
957 ret = _ext4_get_block(inode, iblock, bh_result,
958 EXT4_GET_BLOCKS_CREATE_UNWRIT_EXT);
959
960 /*
961 * If the buffer is marked unwritten, mark it as new to make sure it is
962 * zeroed out correctly in case of partial writes. Otherwise, there is
963 * a chance of stale data getting exposed.
964 */
965 if (ret == 0 && buffer_unwritten(bh_result))
966 set_buffer_new(bh_result);
967
968 return ret;
969 }
970
971 /* Maximum number of blocks we map for direct IO at once. */
972 #define DIO_MAX_BLOCKS 4096
973
974 /*
975 * `handle' can be NULL if create is zero
976 */
ext4_getblk(handle_t * handle,struct inode * inode,ext4_lblk_t block,int map_flags)977 struct buffer_head *ext4_getblk(handle_t *handle, struct inode *inode,
978 ext4_lblk_t block, int map_flags)
979 {
980 struct ext4_map_blocks map;
981 struct buffer_head *bh;
982 int create = map_flags & EXT4_GET_BLOCKS_CREATE;
983 bool nowait = map_flags & EXT4_GET_BLOCKS_CACHED_NOWAIT;
984 int err;
985
986 ASSERT((EXT4_SB(inode->i_sb)->s_mount_state & EXT4_FC_REPLAY)
987 || handle != NULL || create == 0);
988 ASSERT(create == 0 || !nowait);
989
990 map.m_lblk = block;
991 map.m_len = 1;
992 err = ext4_map_blocks(handle, inode, &map, map_flags);
993
994 if (err == 0)
995 return create ? ERR_PTR(-ENOSPC) : NULL;
996 if (err < 0)
997 return ERR_PTR(err);
998
999 if (nowait)
1000 return sb_find_get_block(inode->i_sb, map.m_pblk);
1001
1002 /*
1003 * Since bh could introduce extra ref count such as referred by
1004 * journal_head etc. Try to avoid using __GFP_MOVABLE here
1005 * as it may fail the migration when journal_head remains.
1006 */
1007 bh = getblk_unmovable(inode->i_sb->s_bdev, map.m_pblk,
1008 inode->i_sb->s_blocksize);
1009
1010 if (unlikely(!bh))
1011 return ERR_PTR(-ENOMEM);
1012 if (map.m_flags & EXT4_MAP_NEW) {
1013 ASSERT(create != 0);
1014 ASSERT((EXT4_SB(inode->i_sb)->s_mount_state & EXT4_FC_REPLAY)
1015 || (handle != NULL));
1016
1017 /*
1018 * Now that we do not always journal data, we should
1019 * keep in mind whether this should always journal the
1020 * new buffer as metadata. For now, regular file
1021 * writes use ext4_get_block instead, so it's not a
1022 * problem.
1023 */
1024 lock_buffer(bh);
1025 BUFFER_TRACE(bh, "call get_create_access");
1026 err = ext4_journal_get_create_access(handle, inode->i_sb, bh,
1027 EXT4_JTR_NONE);
1028 if (unlikely(err)) {
1029 unlock_buffer(bh);
1030 goto errout;
1031 }
1032 if (!buffer_uptodate(bh)) {
1033 memset(bh->b_data, 0, inode->i_sb->s_blocksize);
1034 set_buffer_uptodate(bh);
1035 }
1036 unlock_buffer(bh);
1037 BUFFER_TRACE(bh, "call ext4_handle_dirty_metadata");
1038 err = ext4_handle_dirty_metadata(handle, inode, bh);
1039 if (unlikely(err))
1040 goto errout;
1041 } else
1042 BUFFER_TRACE(bh, "not a new buffer");
1043 return bh;
1044 errout:
1045 brelse(bh);
1046 return ERR_PTR(err);
1047 }
1048
ext4_bread(handle_t * handle,struct inode * inode,ext4_lblk_t block,int map_flags)1049 struct buffer_head *ext4_bread(handle_t *handle, struct inode *inode,
1050 ext4_lblk_t block, int map_flags)
1051 {
1052 struct buffer_head *bh;
1053 int ret;
1054
1055 bh = ext4_getblk(handle, inode, block, map_flags);
1056 if (IS_ERR(bh))
1057 return bh;
1058 if (!bh || ext4_buffer_uptodate(bh))
1059 return bh;
1060
1061 ret = ext4_read_bh_lock(bh, REQ_META | REQ_PRIO, true);
1062 if (ret) {
1063 put_bh(bh);
1064 return ERR_PTR(ret);
1065 }
1066 return bh;
1067 }
1068
1069 /* Read a contiguous batch of blocks. */
ext4_bread_batch(struct inode * inode,ext4_lblk_t block,int bh_count,bool wait,struct buffer_head ** bhs)1070 int ext4_bread_batch(struct inode *inode, ext4_lblk_t block, int bh_count,
1071 bool wait, struct buffer_head **bhs)
1072 {
1073 int i, err;
1074
1075 for (i = 0; i < bh_count; i++) {
1076 bhs[i] = ext4_getblk(NULL, inode, block + i, 0 /* map_flags */);
1077 if (IS_ERR(bhs[i])) {
1078 err = PTR_ERR(bhs[i]);
1079 bh_count = i;
1080 goto out_brelse;
1081 }
1082 }
1083
1084 for (i = 0; i < bh_count; i++)
1085 /* Note that NULL bhs[i] is valid because of holes. */
1086 if (bhs[i] && !ext4_buffer_uptodate(bhs[i]))
1087 ext4_read_bh_lock(bhs[i], REQ_META | REQ_PRIO, false);
1088
1089 if (!wait)
1090 return 0;
1091
1092 for (i = 0; i < bh_count; i++)
1093 if (bhs[i])
1094 wait_on_buffer(bhs[i]);
1095
1096 for (i = 0; i < bh_count; i++) {
1097 if (bhs[i] && !buffer_uptodate(bhs[i])) {
1098 err = -EIO;
1099 goto out_brelse;
1100 }
1101 }
1102 return 0;
1103
1104 out_brelse:
1105 for (i = 0; i < bh_count; i++) {
1106 brelse(bhs[i]);
1107 bhs[i] = NULL;
1108 }
1109 return err;
1110 }
1111
ext4_walk_page_buffers(handle_t * handle,struct inode * inode,struct buffer_head * head,unsigned from,unsigned to,int * partial,int (* fn)(handle_t * handle,struct inode * inode,struct buffer_head * bh))1112 int ext4_walk_page_buffers(handle_t *handle, struct inode *inode,
1113 struct buffer_head *head,
1114 unsigned from,
1115 unsigned to,
1116 int *partial,
1117 int (*fn)(handle_t *handle, struct inode *inode,
1118 struct buffer_head *bh))
1119 {
1120 struct buffer_head *bh;
1121 unsigned block_start, block_end;
1122 unsigned blocksize = head->b_size;
1123 int err, ret = 0;
1124 struct buffer_head *next;
1125
1126 for (bh = head, block_start = 0;
1127 ret == 0 && (bh != head || !block_start);
1128 block_start = block_end, bh = next) {
1129 next = bh->b_this_page;
1130 block_end = block_start + blocksize;
1131 if (block_end <= from || block_start >= to) {
1132 if (partial && !buffer_uptodate(bh))
1133 *partial = 1;
1134 continue;
1135 }
1136 err = (*fn)(handle, inode, bh);
1137 if (!ret)
1138 ret = err;
1139 }
1140 return ret;
1141 }
1142
1143 /*
1144 * Helper for handling dirtying of journalled data. We also mark the folio as
1145 * dirty so that writeback code knows about this page (and inode) contains
1146 * dirty data. ext4_writepages() then commits appropriate transaction to
1147 * make data stable.
1148 */
ext4_dirty_journalled_data(handle_t * handle,struct buffer_head * bh)1149 static int ext4_dirty_journalled_data(handle_t *handle, struct buffer_head *bh)
1150 {
1151 struct folio *folio = bh->b_folio;
1152 struct inode *inode = folio->mapping->host;
1153
1154 /* only regular files have a_ops */
1155 if (S_ISREG(inode->i_mode))
1156 folio_mark_dirty(folio);
1157 return ext4_handle_dirty_metadata(handle, NULL, bh);
1158 }
1159
do_journal_get_write_access(handle_t * handle,struct inode * inode,struct buffer_head * bh)1160 int do_journal_get_write_access(handle_t *handle, struct inode *inode,
1161 struct buffer_head *bh)
1162 {
1163 if (!buffer_mapped(bh) || buffer_freed(bh))
1164 return 0;
1165 BUFFER_TRACE(bh, "get write access");
1166 return ext4_journal_get_write_access(handle, inode->i_sb, bh,
1167 EXT4_JTR_NONE);
1168 }
1169
ext4_block_write_begin(handle_t * handle,struct folio * folio,loff_t pos,unsigned len,get_block_t * get_block)1170 int ext4_block_write_begin(handle_t *handle, struct folio *folio,
1171 loff_t pos, unsigned len,
1172 get_block_t *get_block)
1173 {
1174 unsigned int from = offset_in_folio(folio, pos);
1175 unsigned to = from + len;
1176 struct inode *inode = folio->mapping->host;
1177 unsigned block_start, block_end;
1178 sector_t block;
1179 int err = 0;
1180 unsigned int blocksize = i_blocksize(inode);
1181 struct buffer_head *bh, *head, *wait[2];
1182 int nr_wait = 0;
1183 int i;
1184 bool should_journal_data = ext4_should_journal_data(inode);
1185
1186 BUG_ON(!folio_test_locked(folio));
1187 BUG_ON(to > folio_size(folio));
1188 BUG_ON(from > to);
1189 WARN_ON_ONCE(blocksize > folio_size(folio));
1190
1191 head = folio_buffers(folio);
1192 if (!head)
1193 head = create_empty_buffers(folio, blocksize, 0);
1194 block = EXT4_PG_TO_LBLK(inode, folio->index);
1195
1196 for (bh = head, block_start = 0; bh != head || !block_start;
1197 block++, block_start = block_end, bh = bh->b_this_page) {
1198 block_end = block_start + blocksize;
1199 if (block_end <= from || block_start >= to) {
1200 if (folio_test_uptodate(folio)) {
1201 set_buffer_uptodate(bh);
1202 }
1203 continue;
1204 }
1205 if (WARN_ON_ONCE(buffer_new(bh)))
1206 clear_buffer_new(bh);
1207 if (!buffer_mapped(bh)) {
1208 WARN_ON(bh->b_size != blocksize);
1209 err = ext4_journal_ensure_extent_credits(handle, inode);
1210 if (!err)
1211 err = get_block(inode, block, bh, 1);
1212 if (err)
1213 break;
1214 if (buffer_new(bh)) {
1215 /*
1216 * We may be zeroing partial buffers or all new
1217 * buffers in case of failure. Prepare JBD2 for
1218 * that.
1219 */
1220 if (should_journal_data)
1221 do_journal_get_write_access(handle,
1222 inode, bh);
1223 if (folio_test_uptodate(folio)) {
1224 /*
1225 * Unlike __block_write_begin() we leave
1226 * dirtying of new uptodate buffers to
1227 * ->write_end() time or
1228 * folio_zero_new_buffers().
1229 */
1230 set_buffer_uptodate(bh);
1231 continue;
1232 }
1233 if (block_end > to || block_start < from)
1234 folio_zero_segments(folio, to,
1235 block_end,
1236 block_start, from);
1237 continue;
1238 }
1239 }
1240 if (folio_test_uptodate(folio)) {
1241 set_buffer_uptodate(bh);
1242 continue;
1243 }
1244 if (!buffer_uptodate(bh) && !buffer_delay(bh) &&
1245 !buffer_unwritten(bh) &&
1246 (block_start < from || block_end > to)) {
1247 ext4_read_bh_lock(bh, 0, false);
1248 wait[nr_wait++] = bh;
1249 }
1250 }
1251 /*
1252 * If we issued read requests, let them complete.
1253 */
1254 for (i = 0; i < nr_wait; i++) {
1255 wait_on_buffer(wait[i]);
1256 if (!buffer_uptodate(wait[i]))
1257 err = -EIO;
1258 }
1259 if (unlikely(err)) {
1260 if (should_journal_data)
1261 ext4_journalled_zero_new_buffers(handle, inode, folio,
1262 from, to);
1263 else
1264 folio_zero_new_buffers(folio, from, to);
1265 } else if (fscrypt_inode_uses_fs_layer_crypto(inode)) {
1266 for (i = 0; i < nr_wait; i++) {
1267 int err2;
1268
1269 err2 = fscrypt_decrypt_pagecache_blocks(folio,
1270 blocksize, bh_offset(wait[i]));
1271 if (err2) {
1272 clear_buffer_uptodate(wait[i]);
1273 err = err2;
1274 }
1275 }
1276 }
1277
1278 return err;
1279 }
1280
1281 /*
1282 * To preserve ordering, it is essential that the hole instantiation and
1283 * the data write be encapsulated in a single transaction. We cannot
1284 * close off a transaction and start a new one between the ext4_get_block()
1285 * and the ext4_write_end(). So doing the jbd2_journal_start at the start of
1286 * ext4_write_begin() is the right place.
1287 */
ext4_write_begin(const struct kiocb * iocb,struct address_space * mapping,loff_t pos,unsigned len,struct folio ** foliop,void ** fsdata)1288 static int ext4_write_begin(const struct kiocb *iocb,
1289 struct address_space *mapping,
1290 loff_t pos, unsigned len,
1291 struct folio **foliop, void **fsdata)
1292 {
1293 struct inode *inode = mapping->host;
1294 int ret, needed_blocks;
1295 handle_t *handle;
1296 int retries = 0;
1297 struct folio *folio;
1298 pgoff_t index;
1299 unsigned from, to;
1300
1301 ret = ext4_emergency_state(inode->i_sb);
1302 if (unlikely(ret))
1303 return ret;
1304
1305 trace_ext4_write_begin(inode, pos, len);
1306 /*
1307 * Reserve one block more for addition to orphan list in case
1308 * we allocate blocks but write fails for some reason
1309 */
1310 needed_blocks = ext4_chunk_trans_extent(inode,
1311 ext4_journal_blocks_per_folio(inode)) + 1;
1312 index = pos >> PAGE_SHIFT;
1313
1314 if (ext4_test_inode_state(inode, EXT4_STATE_MAY_INLINE_DATA)) {
1315 ret = ext4_try_to_write_inline_data(mapping, inode, pos, len,
1316 foliop);
1317 if (ret < 0)
1318 return ret;
1319 if (ret == 1)
1320 return 0;
1321 }
1322
1323 /*
1324 * write_begin_get_folio() can take a long time if the
1325 * system is thrashing due to memory pressure, or if the folio
1326 * is being written back. So grab it first before we start
1327 * the transaction handle. This also allows us to allocate
1328 * the folio (if needed) without using GFP_NOFS.
1329 */
1330 retry_grab:
1331 folio = write_begin_get_folio(iocb, mapping, index, len);
1332 if (IS_ERR(folio))
1333 return PTR_ERR(folio);
1334
1335 if (len > folio_next_pos(folio) - pos)
1336 len = folio_next_pos(folio) - pos;
1337
1338 from = offset_in_folio(folio, pos);
1339 to = from + len;
1340
1341 /*
1342 * The same as page allocation, we prealloc buffer heads before
1343 * starting the handle.
1344 */
1345 if (!folio_buffers(folio))
1346 create_empty_buffers(folio, inode->i_sb->s_blocksize, 0);
1347
1348 folio_unlock(folio);
1349
1350 retry_journal:
1351 handle = ext4_journal_start(inode, EXT4_HT_WRITE_PAGE, needed_blocks);
1352 if (IS_ERR(handle)) {
1353 folio_put(folio);
1354 return PTR_ERR(handle);
1355 }
1356
1357 folio_lock(folio);
1358 if (folio->mapping != mapping) {
1359 /* The folio got truncated from under us */
1360 folio_unlock(folio);
1361 folio_put(folio);
1362 ext4_journal_stop(handle);
1363 goto retry_grab;
1364 }
1365 /* In case writeback began while the folio was unlocked */
1366 folio_wait_stable(folio);
1367
1368 if (ext4_should_dioread_nolock(inode))
1369 ret = ext4_block_write_begin(handle, folio, pos, len,
1370 ext4_get_block_unwritten);
1371 else
1372 ret = ext4_block_write_begin(handle, folio, pos, len,
1373 ext4_get_block);
1374 if (!ret && ext4_should_journal_data(inode)) {
1375 ret = ext4_walk_page_buffers(handle, inode,
1376 folio_buffers(folio), from, to,
1377 NULL, do_journal_get_write_access);
1378 }
1379
1380 if (ret) {
1381 bool extended = (pos + len > inode->i_size) &&
1382 !ext4_verity_in_progress(inode);
1383
1384 folio_unlock(folio);
1385 /*
1386 * ext4_block_write_begin may have instantiated a few blocks
1387 * outside i_size. Trim these off again. Don't need
1388 * i_size_read because we hold i_rwsem.
1389 *
1390 * Add inode to orphan list in case we crash before
1391 * truncate finishes
1392 */
1393 if (extended && ext4_can_truncate(inode))
1394 ext4_orphan_add(handle, inode);
1395
1396 ext4_journal_stop(handle);
1397 if (extended) {
1398 ext4_truncate_failed_write(inode);
1399 /*
1400 * If truncate failed early the inode might
1401 * still be on the orphan list; we need to
1402 * make sure the inode is removed from the
1403 * orphan list in that case.
1404 */
1405 if (inode->i_nlink)
1406 ext4_orphan_del(NULL, inode);
1407 }
1408
1409 if (ret == -EAGAIN ||
1410 (ret == -ENOSPC &&
1411 ext4_should_retry_alloc(inode->i_sb, &retries)))
1412 goto retry_journal;
1413 folio_put(folio);
1414 return ret;
1415 }
1416 *foliop = folio;
1417 return ret;
1418 }
1419
1420 /* For write_end() in data=journal mode */
write_end_fn(handle_t * handle,struct inode * inode,struct buffer_head * bh)1421 static int write_end_fn(handle_t *handle, struct inode *inode,
1422 struct buffer_head *bh)
1423 {
1424 int ret;
1425 if (!buffer_mapped(bh) || buffer_freed(bh))
1426 return 0;
1427 set_buffer_uptodate(bh);
1428 ret = ext4_dirty_journalled_data(handle, bh);
1429 clear_buffer_meta(bh);
1430 clear_buffer_prio(bh);
1431 clear_buffer_new(bh);
1432 return ret;
1433 }
1434
1435 /*
1436 * We need to pick up the new inode size which generic_commit_write gave us
1437 * `iocb` can be NULL - eg, when called from page_symlink().
1438 */
ext4_write_end(const struct kiocb * iocb,struct address_space * mapping,loff_t pos,unsigned len,unsigned copied,struct folio * folio,void * fsdata)1439 static int ext4_write_end(const struct kiocb *iocb,
1440 struct address_space *mapping,
1441 loff_t pos, unsigned len, unsigned copied,
1442 struct folio *folio, void *fsdata)
1443 {
1444 handle_t *handle = ext4_journal_current_handle();
1445 struct inode *inode = mapping->host;
1446 loff_t old_size = inode->i_size;
1447 int ret = 0, ret2;
1448 int i_size_changed = 0;
1449 bool verity = ext4_verity_in_progress(inode);
1450
1451 trace_ext4_write_end(inode, pos, len, copied);
1452
1453 if (ext4_has_inline_data(inode) &&
1454 ext4_test_inode_state(inode, EXT4_STATE_MAY_INLINE_DATA))
1455 return ext4_write_inline_data_end(inode, pos, len, copied,
1456 folio);
1457
1458 copied = block_write_end(pos, len, copied, folio);
1459 /*
1460 * it's important to update i_size while still holding folio lock:
1461 * page writeout could otherwise come in and zero beyond i_size.
1462 *
1463 * If FS_IOC_ENABLE_VERITY is running on this inode, then Merkle tree
1464 * blocks are being written past EOF, so skip the i_size update.
1465 */
1466 if (!verity)
1467 i_size_changed = ext4_update_inode_size(inode, pos + copied);
1468 folio_unlock(folio);
1469 folio_put(folio);
1470
1471 if (old_size < pos && !verity) {
1472 pagecache_isize_extended(inode, old_size, pos);
1473 ext4_zero_partial_blocks(handle, inode, old_size, pos - old_size);
1474 }
1475 /*
1476 * Don't mark the inode dirty under folio lock. First, it unnecessarily
1477 * makes the holding time of folio lock longer. Second, it forces lock
1478 * ordering of folio lock and transaction start for journaling
1479 * filesystems.
1480 */
1481 if (i_size_changed)
1482 ret = ext4_mark_inode_dirty(handle, inode);
1483
1484 if (pos + len > inode->i_size && !verity && ext4_can_truncate(inode))
1485 /* if we have allocated more blocks and copied
1486 * less. We will have blocks allocated outside
1487 * inode->i_size. So truncate them
1488 */
1489 ext4_orphan_add(handle, inode);
1490
1491 ret2 = ext4_journal_stop(handle);
1492 if (!ret)
1493 ret = ret2;
1494
1495 if (pos + len > inode->i_size && !verity) {
1496 ext4_truncate_failed_write(inode);
1497 /*
1498 * If truncate failed early the inode might still be
1499 * on the orphan list; we need to make sure the inode
1500 * is removed from the orphan list in that case.
1501 */
1502 if (inode->i_nlink)
1503 ext4_orphan_del(NULL, inode);
1504 }
1505
1506 return ret ? ret : copied;
1507 }
1508
1509 /*
1510 * This is a private version of folio_zero_new_buffers() which doesn't
1511 * set the buffer to be dirty, since in data=journalled mode we need
1512 * to call ext4_dirty_journalled_data() instead.
1513 */
ext4_journalled_zero_new_buffers(handle_t * handle,struct inode * inode,struct folio * folio,unsigned from,unsigned to)1514 static void ext4_journalled_zero_new_buffers(handle_t *handle,
1515 struct inode *inode,
1516 struct folio *folio,
1517 unsigned from, unsigned to)
1518 {
1519 unsigned int block_start = 0, block_end;
1520 struct buffer_head *head, *bh;
1521
1522 bh = head = folio_buffers(folio);
1523 do {
1524 block_end = block_start + bh->b_size;
1525 if (buffer_new(bh)) {
1526 if (block_end > from && block_start < to) {
1527 if (!folio_test_uptodate(folio)) {
1528 unsigned start, size;
1529
1530 start = max(from, block_start);
1531 size = min(to, block_end) - start;
1532
1533 folio_zero_range(folio, start, size);
1534 }
1535 clear_buffer_new(bh);
1536 write_end_fn(handle, inode, bh);
1537 }
1538 }
1539 block_start = block_end;
1540 bh = bh->b_this_page;
1541 } while (bh != head);
1542 }
1543
ext4_journalled_write_end(const struct kiocb * iocb,struct address_space * mapping,loff_t pos,unsigned len,unsigned copied,struct folio * folio,void * fsdata)1544 static int ext4_journalled_write_end(const struct kiocb *iocb,
1545 struct address_space *mapping,
1546 loff_t pos, unsigned len, unsigned copied,
1547 struct folio *folio, void *fsdata)
1548 {
1549 handle_t *handle = ext4_journal_current_handle();
1550 struct inode *inode = mapping->host;
1551 loff_t old_size = inode->i_size;
1552 int ret = 0, ret2;
1553 int partial = 0;
1554 unsigned from, to;
1555 int size_changed = 0;
1556 bool verity = ext4_verity_in_progress(inode);
1557
1558 trace_ext4_journalled_write_end(inode, pos, len, copied);
1559 from = pos & (PAGE_SIZE - 1);
1560 to = from + len;
1561
1562 BUG_ON(!ext4_handle_valid(handle));
1563
1564 if (ext4_has_inline_data(inode))
1565 return ext4_write_inline_data_end(inode, pos, len, copied,
1566 folio);
1567
1568 if (unlikely(copied < len) && !folio_test_uptodate(folio)) {
1569 copied = 0;
1570 ext4_journalled_zero_new_buffers(handle, inode, folio,
1571 from, to);
1572 } else {
1573 if (unlikely(copied < len))
1574 ext4_journalled_zero_new_buffers(handle, inode, folio,
1575 from + copied, to);
1576 ret = ext4_walk_page_buffers(handle, inode,
1577 folio_buffers(folio),
1578 from, from + copied, &partial,
1579 write_end_fn);
1580 if (!partial)
1581 folio_mark_uptodate(folio);
1582 }
1583 if (!verity)
1584 size_changed = ext4_update_inode_size(inode, pos + copied);
1585 EXT4_I(inode)->i_datasync_tid = handle->h_transaction->t_tid;
1586 folio_unlock(folio);
1587 folio_put(folio);
1588
1589 if (old_size < pos && !verity) {
1590 pagecache_isize_extended(inode, old_size, pos);
1591 ext4_zero_partial_blocks(handle, inode, old_size, pos - old_size);
1592 }
1593
1594 if (size_changed) {
1595 ret2 = ext4_mark_inode_dirty(handle, inode);
1596 if (!ret)
1597 ret = ret2;
1598 }
1599
1600 if (pos + len > inode->i_size && !verity && ext4_can_truncate(inode))
1601 /* if we have allocated more blocks and copied
1602 * less. We will have blocks allocated outside
1603 * inode->i_size. So truncate them
1604 */
1605 ext4_orphan_add(handle, inode);
1606
1607 ret2 = ext4_journal_stop(handle);
1608 if (!ret)
1609 ret = ret2;
1610 if (pos + len > inode->i_size && !verity) {
1611 ext4_truncate_failed_write(inode);
1612 /*
1613 * If truncate failed early the inode might still be
1614 * on the orphan list; we need to make sure the inode
1615 * is removed from the orphan list in that case.
1616 */
1617 if (inode->i_nlink)
1618 ext4_orphan_del(NULL, inode);
1619 }
1620
1621 return ret ? ret : copied;
1622 }
1623
1624 /*
1625 * Reserve space for 'nr_resv' clusters
1626 */
ext4_da_reserve_space(struct inode * inode,int nr_resv)1627 static int ext4_da_reserve_space(struct inode *inode, int nr_resv)
1628 {
1629 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
1630 struct ext4_inode_info *ei = EXT4_I(inode);
1631 int ret;
1632
1633 /*
1634 * We will charge metadata quota at writeout time; this saves
1635 * us from metadata over-estimation, though we may go over by
1636 * a small amount in the end. Here we just reserve for data.
1637 */
1638 ret = dquot_reserve_block(inode, EXT4_C2B(sbi, nr_resv));
1639 if (ret)
1640 return ret;
1641
1642 spin_lock(&ei->i_block_reservation_lock);
1643 if (ext4_claim_free_clusters(sbi, nr_resv, 0)) {
1644 spin_unlock(&ei->i_block_reservation_lock);
1645 dquot_release_reservation_block(inode, EXT4_C2B(sbi, nr_resv));
1646 return -ENOSPC;
1647 }
1648 ei->i_reserved_data_blocks += nr_resv;
1649 trace_ext4_da_reserve_space(inode, nr_resv);
1650 spin_unlock(&ei->i_block_reservation_lock);
1651
1652 return 0; /* success */
1653 }
1654
ext4_da_release_space(struct inode * inode,int to_free)1655 void ext4_da_release_space(struct inode *inode, int to_free)
1656 {
1657 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
1658 struct ext4_inode_info *ei = EXT4_I(inode);
1659
1660 if (!to_free)
1661 return; /* Nothing to release, exit */
1662
1663 spin_lock(&EXT4_I(inode)->i_block_reservation_lock);
1664
1665 trace_ext4_da_release_space(inode, to_free);
1666 if (unlikely(to_free > ei->i_reserved_data_blocks)) {
1667 /*
1668 * if there aren't enough reserved blocks, then the
1669 * counter is messed up somewhere. Since this
1670 * function is called from invalidate page, it's
1671 * harmless to return without any action.
1672 */
1673 ext4_warning(inode->i_sb, "ext4_da_release_space: "
1674 "ino %llu, to_free %d with only %d reserved "
1675 "data blocks", inode->i_ino, to_free,
1676 ei->i_reserved_data_blocks);
1677 WARN_ON(1);
1678 to_free = ei->i_reserved_data_blocks;
1679 }
1680 ei->i_reserved_data_blocks -= to_free;
1681
1682 /* update fs dirty data blocks counter */
1683 percpu_counter_sub(&sbi->s_dirtyclusters_counter, to_free);
1684
1685 spin_unlock(&EXT4_I(inode)->i_block_reservation_lock);
1686
1687 dquot_release_reservation_block(inode, EXT4_C2B(sbi, to_free));
1688 }
1689
1690 /*
1691 * Delayed allocation stuff
1692 */
1693
1694 struct mpage_da_data {
1695 /* These are input fields for ext4_do_writepages() */
1696 struct inode *inode;
1697 struct writeback_control *wbc;
1698 unsigned int can_map:1; /* Can writepages call map blocks? */
1699
1700 /* These are internal state of ext4_do_writepages() */
1701 loff_t start_pos; /* The start pos to write */
1702 loff_t next_pos; /* Current pos to examine */
1703 loff_t end_pos; /* Last pos to examine */
1704
1705 /*
1706 * Extent to map - this can be after start_pos because that can be
1707 * fully mapped. We somewhat abuse m_flags to store whether the extent
1708 * is delalloc or unwritten.
1709 */
1710 struct ext4_map_blocks map;
1711 struct ext4_io_submit io_submit; /* IO submission data */
1712 unsigned int do_map:1;
1713 unsigned int scanned_until_end:1;
1714 unsigned int journalled_more_data:1;
1715 };
1716
mpage_release_unused_pages(struct mpage_da_data * mpd,bool invalidate)1717 static void mpage_release_unused_pages(struct mpage_da_data *mpd,
1718 bool invalidate)
1719 {
1720 unsigned nr, i;
1721 pgoff_t index, end;
1722 struct folio_batch fbatch;
1723 struct inode *inode = mpd->inode;
1724 struct address_space *mapping = inode->i_mapping;
1725
1726 /* This is necessary when next_pos == 0. */
1727 if (mpd->start_pos >= mpd->next_pos)
1728 return;
1729
1730 mpd->scanned_until_end = 0;
1731 if (invalidate) {
1732 ext4_lblk_t start, last;
1733 start = EXT4_B_TO_LBLK(inode, mpd->start_pos);
1734 last = mpd->next_pos >> inode->i_blkbits;
1735
1736 /*
1737 * avoid racing with extent status tree scans made by
1738 * ext4_insert_delayed_block()
1739 */
1740 down_write(&EXT4_I(inode)->i_data_sem);
1741 ext4_es_remove_extent(inode, start, last - start);
1742 up_write(&EXT4_I(inode)->i_data_sem);
1743 }
1744
1745 folio_batch_init(&fbatch);
1746 index = mpd->start_pos >> PAGE_SHIFT;
1747 end = mpd->next_pos >> PAGE_SHIFT;
1748 while (index < end) {
1749 nr = filemap_get_folios(mapping, &index, end - 1, &fbatch);
1750 if (nr == 0)
1751 break;
1752 for (i = 0; i < nr; i++) {
1753 struct folio *folio = fbatch.folios[i];
1754
1755 if (folio_pos(folio) < mpd->start_pos)
1756 continue;
1757 if (folio_next_index(folio) > end)
1758 continue;
1759 BUG_ON(!folio_test_locked(folio));
1760 BUG_ON(folio_test_writeback(folio));
1761 if (invalidate) {
1762 if (folio_mapped(folio))
1763 folio_clear_dirty_for_io(folio);
1764 block_invalidate_folio(folio, 0,
1765 folio_size(folio));
1766 folio_clear_uptodate(folio);
1767 }
1768 folio_unlock(folio);
1769 }
1770 folio_batch_release(&fbatch);
1771 }
1772 }
1773
ext4_print_free_blocks(struct inode * inode)1774 static void ext4_print_free_blocks(struct inode *inode)
1775 {
1776 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
1777 struct super_block *sb = inode->i_sb;
1778 struct ext4_inode_info *ei = EXT4_I(inode);
1779
1780 ext4_msg(sb, KERN_CRIT, "Total free blocks count %lld",
1781 EXT4_C2B(EXT4_SB(inode->i_sb),
1782 ext4_count_free_clusters(sb)));
1783 ext4_msg(sb, KERN_CRIT, "Free/Dirty block details");
1784 ext4_msg(sb, KERN_CRIT, "free_blocks=%lld",
1785 (long long) EXT4_C2B(EXT4_SB(sb),
1786 percpu_counter_sum(&sbi->s_freeclusters_counter)));
1787 ext4_msg(sb, KERN_CRIT, "dirty_blocks=%lld",
1788 (long long) EXT4_C2B(EXT4_SB(sb),
1789 percpu_counter_sum(&sbi->s_dirtyclusters_counter)));
1790 ext4_msg(sb, KERN_CRIT, "Block reservation details");
1791 ext4_msg(sb, KERN_CRIT, "i_reserved_data_blocks=%u",
1792 ei->i_reserved_data_blocks);
1793 return;
1794 }
1795
1796 /*
1797 * Check whether the cluster containing lblk has been allocated or has
1798 * delalloc reservation.
1799 *
1800 * Returns 0 if the cluster doesn't have either, 1 if it has delalloc
1801 * reservation, 2 if it's already been allocated, negative error code on
1802 * failure.
1803 */
ext4_clu_alloc_state(struct inode * inode,ext4_lblk_t lblk)1804 static int ext4_clu_alloc_state(struct inode *inode, ext4_lblk_t lblk)
1805 {
1806 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
1807 int ret;
1808
1809 /* Has delalloc reservation? */
1810 if (ext4_es_scan_clu(inode, &ext4_es_is_delayed, lblk))
1811 return 1;
1812
1813 /* Already been allocated? */
1814 if (ext4_es_scan_clu(inode, &ext4_es_is_mapped, lblk))
1815 return 2;
1816 ret = ext4_clu_mapped(inode, EXT4_B2C(sbi, lblk));
1817 if (ret < 0)
1818 return ret;
1819 if (ret > 0)
1820 return 2;
1821
1822 return 0;
1823 }
1824
1825 /*
1826 * ext4_insert_delayed_blocks - adds a multiple delayed blocks to the extents
1827 * status tree, incrementing the reserved
1828 * cluster/block count or making pending
1829 * reservations where needed
1830 *
1831 * @inode - file containing the newly added block
1832 * @lblk - start logical block to be added
1833 * @len - length of blocks to be added
1834 *
1835 * Returns 0 on success, negative error code on failure.
1836 */
ext4_insert_delayed_blocks(struct inode * inode,ext4_lblk_t lblk,ext4_lblk_t len)1837 static int ext4_insert_delayed_blocks(struct inode *inode, ext4_lblk_t lblk,
1838 ext4_lblk_t len)
1839 {
1840 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
1841 int ret;
1842 bool lclu_allocated = false;
1843 bool end_allocated = false;
1844 ext4_lblk_t resv_clu;
1845 ext4_lblk_t end = lblk + len - 1;
1846
1847 /*
1848 * If the cluster containing lblk or end is shared with a delayed,
1849 * written, or unwritten extent in a bigalloc file system, it's
1850 * already been accounted for and does not need to be reserved.
1851 * A pending reservation must be made for the cluster if it's
1852 * shared with a written or unwritten extent and doesn't already
1853 * have one. Written and unwritten extents can be purged from the
1854 * extents status tree if the system is under memory pressure, so
1855 * it's necessary to examine the extent tree if a search of the
1856 * extents status tree doesn't get a match.
1857 */
1858 if (sbi->s_cluster_ratio == 1) {
1859 ret = ext4_da_reserve_space(inode, len);
1860 if (ret != 0) /* ENOSPC */
1861 return ret;
1862 } else { /* bigalloc */
1863 resv_clu = EXT4_B2C(sbi, end) - EXT4_B2C(sbi, lblk) + 1;
1864
1865 ret = ext4_clu_alloc_state(inode, lblk);
1866 if (ret < 0)
1867 return ret;
1868 if (ret > 0) {
1869 resv_clu--;
1870 lclu_allocated = (ret == 2);
1871 }
1872
1873 if (EXT4_B2C(sbi, lblk) != EXT4_B2C(sbi, end)) {
1874 ret = ext4_clu_alloc_state(inode, end);
1875 if (ret < 0)
1876 return ret;
1877 if (ret > 0) {
1878 resv_clu--;
1879 end_allocated = (ret == 2);
1880 }
1881 }
1882
1883 if (resv_clu) {
1884 ret = ext4_da_reserve_space(inode, resv_clu);
1885 if (ret != 0) /* ENOSPC */
1886 return ret;
1887 }
1888 }
1889
1890 ext4_es_insert_delayed_extent(inode, lblk, len, lclu_allocated,
1891 end_allocated);
1892 return 0;
1893 }
1894
1895 /*
1896 * Looks up the requested blocks and sets the delalloc extent map.
1897 * First try to look up for the extent entry that contains the requested
1898 * blocks in the extent status tree without i_data_sem, then try to look
1899 * up for the ondisk extent mapping with i_data_sem in read mode,
1900 * finally hold i_data_sem in write mode, looks up again and add a
1901 * delalloc extent entry if it still couldn't find any extent. Pass out
1902 * the mapped extent through @map and return 0 on success.
1903 */
ext4_da_map_blocks(struct inode * inode,struct ext4_map_blocks * map)1904 static int ext4_da_map_blocks(struct inode *inode, struct ext4_map_blocks *map)
1905 {
1906 struct extent_status es;
1907 int retval;
1908 #ifdef ES_AGGRESSIVE_TEST
1909 struct ext4_map_blocks orig_map;
1910
1911 memcpy(&orig_map, map, sizeof(*map));
1912 #endif
1913
1914 map->m_flags = 0;
1915 ext_debug(inode, "max_blocks %u, logical block %lu\n", map->m_len,
1916 (unsigned long) map->m_lblk);
1917
1918 ext4_check_map_extents_env(inode);
1919
1920 /* Lookup extent status tree firstly */
1921 if (ext4_es_lookup_extent(inode, map->m_lblk, NULL, &es, NULL)) {
1922 map->m_len = min_t(unsigned int, map->m_len,
1923 es.es_len - (map->m_lblk - es.es_lblk));
1924
1925 if (ext4_es_is_hole(&es))
1926 goto add_delayed;
1927
1928 found:
1929 /*
1930 * Delayed extent could be allocated by fallocate.
1931 * So we need to check it.
1932 */
1933 if (ext4_es_is_delayed(&es)) {
1934 map->m_flags |= EXT4_MAP_DELAYED;
1935 return 0;
1936 }
1937
1938 map->m_pblk = ext4_es_pblock(&es) + map->m_lblk - es.es_lblk;
1939 if (ext4_es_is_written(&es))
1940 map->m_flags |= EXT4_MAP_MAPPED;
1941 else if (ext4_es_is_unwritten(&es))
1942 map->m_flags |= EXT4_MAP_UNWRITTEN;
1943 else
1944 BUG();
1945
1946 #ifdef ES_AGGRESSIVE_TEST
1947 ext4_map_blocks_es_recheck(NULL, inode, map, &orig_map, 0);
1948 #endif
1949 return 0;
1950 }
1951
1952 /*
1953 * Try to see if we can get the block without requesting a new
1954 * file system block.
1955 */
1956 down_read(&EXT4_I(inode)->i_data_sem);
1957 if (ext4_has_inline_data(inode))
1958 retval = 0;
1959 else
1960 retval = ext4_map_query_blocks(NULL, inode, map, 0);
1961 up_read(&EXT4_I(inode)->i_data_sem);
1962 if (retval)
1963 return retval < 0 ? retval : 0;
1964
1965 add_delayed:
1966 down_write(&EXT4_I(inode)->i_data_sem);
1967 /*
1968 * Page fault path (ext4_page_mkwrite does not take i_rwsem)
1969 * and fallocate path (no folio lock) can race. Make sure we
1970 * lookup the extent status tree here again while i_data_sem
1971 * is held in write mode, before inserting a new da entry in
1972 * the extent status tree.
1973 */
1974 if (ext4_es_lookup_extent(inode, map->m_lblk, NULL, &es, NULL)) {
1975 map->m_len = min_t(unsigned int, map->m_len,
1976 es.es_len - (map->m_lblk - es.es_lblk));
1977
1978 if (!ext4_es_is_hole(&es)) {
1979 up_write(&EXT4_I(inode)->i_data_sem);
1980 goto found;
1981 }
1982 } else if (!ext4_has_inline_data(inode)) {
1983 retval = ext4_map_query_blocks(NULL, inode, map, 0);
1984 if (retval) {
1985 up_write(&EXT4_I(inode)->i_data_sem);
1986 return retval < 0 ? retval : 0;
1987 }
1988 }
1989
1990 map->m_flags |= EXT4_MAP_DELAYED;
1991 retval = ext4_insert_delayed_blocks(inode, map->m_lblk, map->m_len);
1992 if (!retval)
1993 map->m_seq = READ_ONCE(EXT4_I(inode)->i_es_seq);
1994 up_write(&EXT4_I(inode)->i_data_sem);
1995
1996 return retval;
1997 }
1998
1999 /*
2000 * This is a special get_block_t callback which is used by
2001 * ext4_da_write_begin(). It will either return mapped block or
2002 * reserve space for a single block.
2003 *
2004 * For delayed buffer_head we have BH_Mapped, BH_New, BH_Delay set.
2005 * We also have b_blocknr = -1 and b_bdev initialized properly
2006 *
2007 * For unwritten buffer_head we have BH_Mapped, BH_New, BH_Unwritten set.
2008 * We also have b_blocknr = physicalblock mapping unwritten extent and b_bdev
2009 * initialized properly.
2010 */
ext4_da_get_block_prep(struct inode * inode,sector_t iblock,struct buffer_head * bh,int create)2011 int ext4_da_get_block_prep(struct inode *inode, sector_t iblock,
2012 struct buffer_head *bh, int create)
2013 {
2014 struct ext4_map_blocks map;
2015 sector_t invalid_block = ~((sector_t) 0xffff);
2016 int ret = 0;
2017
2018 BUG_ON(create == 0);
2019 BUG_ON(bh->b_size != inode->i_sb->s_blocksize);
2020
2021 if (invalid_block < ext4_blocks_count(EXT4_SB(inode->i_sb)->s_es))
2022 invalid_block = ~0;
2023
2024 map.m_lblk = iblock;
2025 map.m_len = 1;
2026
2027 /*
2028 * first, we need to know whether the block is allocated already
2029 * preallocated blocks are unmapped but should treated
2030 * the same as allocated blocks.
2031 */
2032 ret = ext4_da_map_blocks(inode, &map);
2033 if (ret < 0)
2034 return ret;
2035
2036 if (map.m_flags & EXT4_MAP_DELAYED) {
2037 map_bh(bh, inode->i_sb, invalid_block);
2038 set_buffer_new(bh);
2039 set_buffer_delay(bh);
2040 return 0;
2041 }
2042
2043 map_bh(bh, inode->i_sb, map.m_pblk);
2044 ext4_update_bh_state(bh, map.m_flags);
2045
2046 if (buffer_unwritten(bh)) {
2047 /* A delayed write to unwritten bh should be marked
2048 * new and mapped. Mapped ensures that we don't do
2049 * get_block multiple times when we write to the same
2050 * offset and new ensures that we do proper zero out
2051 * for partial write.
2052 */
2053 set_buffer_new(bh);
2054 set_buffer_mapped(bh);
2055 }
2056 return 0;
2057 }
2058
mpage_folio_done(struct mpage_da_data * mpd,struct folio * folio)2059 static void mpage_folio_done(struct mpage_da_data *mpd, struct folio *folio)
2060 {
2061 mpd->start_pos += folio_size(folio);
2062 mpd->wbc->nr_to_write -= folio_nr_pages(folio);
2063 folio_unlock(folio);
2064 }
2065
mpage_submit_folio(struct mpage_da_data * mpd,struct folio * folio)2066 static int mpage_submit_folio(struct mpage_da_data *mpd, struct folio *folio)
2067 {
2068 size_t len;
2069 loff_t size;
2070 int err;
2071
2072 WARN_ON_ONCE(folio_pos(folio) != mpd->start_pos);
2073 folio_clear_dirty_for_io(folio);
2074 /*
2075 * We have to be very careful here! Nothing protects writeback path
2076 * against i_size changes and the page can be writeably mapped into
2077 * page tables. So an application can be growing i_size and writing
2078 * data through mmap while writeback runs. folio_clear_dirty_for_io()
2079 * write-protects our page in page tables and the page cannot get
2080 * written to again until we release folio lock. So only after
2081 * folio_clear_dirty_for_io() we are safe to sample i_size for
2082 * ext4_bio_write_folio() to zero-out tail of the written page. We rely
2083 * on the barrier provided by folio_test_clear_dirty() in
2084 * folio_clear_dirty_for_io() to make sure i_size is really sampled only
2085 * after page tables are updated.
2086 */
2087 size = i_size_read(mpd->inode);
2088 len = folio_size(folio);
2089 if (folio_pos(folio) + len > size &&
2090 !ext4_verity_in_progress(mpd->inode))
2091 len = size & (len - 1);
2092 err = ext4_bio_write_folio(&mpd->io_submit, folio, len);
2093
2094 return err;
2095 }
2096
2097 #define BH_FLAGS (BIT(BH_Unwritten) | BIT(BH_Delay))
2098
2099 /*
2100 * mballoc gives us at most this number of blocks...
2101 * XXX: That seems to be only a limitation of ext4_mb_normalize_request().
2102 * The rest of mballoc seems to handle chunks up to full group size.
2103 */
2104 #define MAX_WRITEPAGES_EXTENT_LEN 2048
2105
2106 /*
2107 * mpage_add_bh_to_extent - try to add bh to extent of blocks to map
2108 *
2109 * @mpd - extent of blocks
2110 * @lblk - logical number of the block in the file
2111 * @bh - buffer head we want to add to the extent
2112 *
2113 * The function is used to collect contig. blocks in the same state. If the
2114 * buffer doesn't require mapping for writeback and we haven't started the
2115 * extent of buffers to map yet, the function returns 'true' immediately - the
2116 * caller can write the buffer right away. Otherwise the function returns true
2117 * if the block has been added to the extent, false if the block couldn't be
2118 * added.
2119 */
mpage_add_bh_to_extent(struct mpage_da_data * mpd,ext4_lblk_t lblk,struct buffer_head * bh)2120 static bool mpage_add_bh_to_extent(struct mpage_da_data *mpd, ext4_lblk_t lblk,
2121 struct buffer_head *bh)
2122 {
2123 struct ext4_map_blocks *map = &mpd->map;
2124
2125 /* Buffer that doesn't need mapping for writeback? */
2126 if (!buffer_dirty(bh) || !buffer_mapped(bh) ||
2127 (!buffer_delay(bh) && !buffer_unwritten(bh))) {
2128 /* So far no extent to map => we write the buffer right away */
2129 if (map->m_len == 0)
2130 return true;
2131 return false;
2132 }
2133
2134 /* First block in the extent? */
2135 if (map->m_len == 0) {
2136 /* We cannot map unless handle is started... */
2137 if (!mpd->do_map)
2138 return false;
2139 map->m_lblk = lblk;
2140 map->m_len = 1;
2141 map->m_flags = bh->b_state & BH_FLAGS;
2142 return true;
2143 }
2144
2145 /* Don't go larger than mballoc is willing to allocate */
2146 if (map->m_len >= MAX_WRITEPAGES_EXTENT_LEN)
2147 return false;
2148
2149 /* Can we merge the block to our big extent? */
2150 if (lblk == map->m_lblk + map->m_len &&
2151 (bh->b_state & BH_FLAGS) == map->m_flags) {
2152 map->m_len++;
2153 return true;
2154 }
2155 return false;
2156 }
2157
2158 /*
2159 * mpage_process_page_bufs - submit page buffers for IO or add them to extent
2160 *
2161 * @mpd - extent of blocks for mapping
2162 * @head - the first buffer in the page
2163 * @bh - buffer we should start processing from
2164 * @lblk - logical number of the block in the file corresponding to @bh
2165 *
2166 * Walk through page buffers from @bh upto @head (exclusive) and either submit
2167 * the page for IO if all buffers in this page were mapped and there's no
2168 * accumulated extent of buffers to map or add buffers in the page to the
2169 * extent of buffers to map. The function returns 1 if the caller can continue
2170 * by processing the next page, 0 if it should stop adding buffers to the
2171 * extent to map because we cannot extend it anymore. It can also return value
2172 * < 0 in case of error during IO submission.
2173 */
mpage_process_page_bufs(struct mpage_da_data * mpd,struct buffer_head * head,struct buffer_head * bh,ext4_lblk_t lblk)2174 static int mpage_process_page_bufs(struct mpage_da_data *mpd,
2175 struct buffer_head *head,
2176 struct buffer_head *bh,
2177 ext4_lblk_t lblk)
2178 {
2179 struct inode *inode = mpd->inode;
2180 int err;
2181 ext4_lblk_t blocks = (i_size_read(inode) + i_blocksize(inode) - 1)
2182 >> inode->i_blkbits;
2183
2184 if (ext4_verity_in_progress(inode))
2185 blocks = EXT_MAX_BLOCKS;
2186
2187 do {
2188 BUG_ON(buffer_locked(bh));
2189
2190 if (lblk >= blocks || !mpage_add_bh_to_extent(mpd, lblk, bh)) {
2191 /* Found extent to map? */
2192 if (mpd->map.m_len)
2193 return 0;
2194 /* Buffer needs mapping and handle is not started? */
2195 if (!mpd->do_map)
2196 return 0;
2197 /* Everything mapped so far and we hit EOF */
2198 break;
2199 }
2200 } while (lblk++, (bh = bh->b_this_page) != head);
2201 /* So far everything mapped? Submit the page for IO. */
2202 if (mpd->map.m_len == 0) {
2203 err = mpage_submit_folio(mpd, head->b_folio);
2204 if (err < 0)
2205 return err;
2206 mpage_folio_done(mpd, head->b_folio);
2207 }
2208 if (lblk >= blocks) {
2209 mpd->scanned_until_end = 1;
2210 return 0;
2211 }
2212 return 1;
2213 }
2214
2215 /*
2216 * mpage_process_folio - update folio buffers corresponding to changed extent
2217 * and may submit fully mapped page for IO
2218 * @mpd: description of extent to map, on return next extent to map
2219 * @folio: Contains these buffers.
2220 * @m_lblk: logical block mapping.
2221 * @m_pblk: corresponding physical mapping.
2222 * @map_bh: determines on return whether this page requires any further
2223 * mapping or not.
2224 *
2225 * Scan given folio buffers corresponding to changed extent and update buffer
2226 * state according to new extent state.
2227 * We map delalloc buffers to their physical location, clear unwritten bits.
2228 * If the given folio is not fully mapped, we update @mpd to the next extent in
2229 * the given folio that needs mapping & return @map_bh as true.
2230 */
mpage_process_folio(struct mpage_da_data * mpd,struct folio * folio,ext4_lblk_t * m_lblk,ext4_fsblk_t * m_pblk,bool * map_bh)2231 static int mpage_process_folio(struct mpage_da_data *mpd, struct folio *folio,
2232 ext4_lblk_t *m_lblk, ext4_fsblk_t *m_pblk,
2233 bool *map_bh)
2234 {
2235 struct buffer_head *head, *bh;
2236 ext4_io_end_t *io_end = mpd->io_submit.io_end;
2237 ext4_lblk_t lblk = *m_lblk;
2238 ext4_fsblk_t pblock = *m_pblk;
2239 int err = 0;
2240 ssize_t io_end_size = 0;
2241 struct ext4_io_end_vec *io_end_vec = ext4_last_io_end_vec(io_end);
2242
2243 bh = head = folio_buffers(folio);
2244 do {
2245 if (lblk < mpd->map.m_lblk)
2246 continue;
2247 if (lblk >= mpd->map.m_lblk + mpd->map.m_len) {
2248 /*
2249 * Buffer after end of mapped extent.
2250 * Find next buffer in the folio to map.
2251 */
2252 mpd->map.m_len = 0;
2253 mpd->map.m_flags = 0;
2254 io_end_vec->size += io_end_size;
2255
2256 err = mpage_process_page_bufs(mpd, head, bh, lblk);
2257 if (err > 0)
2258 err = 0;
2259 if (!err && mpd->map.m_len && mpd->map.m_lblk > lblk) {
2260 io_end_vec = ext4_alloc_io_end_vec(io_end);
2261 if (IS_ERR(io_end_vec)) {
2262 err = PTR_ERR(io_end_vec);
2263 goto out;
2264 }
2265 io_end_vec->offset = EXT4_LBLK_TO_B(mpd->inode,
2266 mpd->map.m_lblk);
2267 }
2268 *map_bh = true;
2269 goto out;
2270 }
2271 if (buffer_delay(bh)) {
2272 clear_buffer_delay(bh);
2273 bh->b_blocknr = pblock++;
2274 }
2275 clear_buffer_unwritten(bh);
2276 io_end_size += i_blocksize(mpd->inode);
2277 } while (lblk++, (bh = bh->b_this_page) != head);
2278
2279 io_end_vec->size += io_end_size;
2280 *map_bh = false;
2281 out:
2282 *m_lblk = lblk;
2283 *m_pblk = pblock;
2284 return err;
2285 }
2286
2287 /*
2288 * mpage_map_buffers - update buffers corresponding to changed extent and
2289 * submit fully mapped pages for IO
2290 *
2291 * @mpd - description of extent to map, on return next extent to map
2292 *
2293 * Scan buffers corresponding to changed extent (we expect corresponding pages
2294 * to be already locked) and update buffer state according to new extent state.
2295 * We map delalloc buffers to their physical location, clear unwritten bits,
2296 * and mark buffers as uninit when we perform writes to unwritten extents
2297 * and do extent conversion after IO is finished. If the last page is not fully
2298 * mapped, we update @map to the next extent in the last page that needs
2299 * mapping. Otherwise we submit the page for IO.
2300 */
mpage_map_and_submit_buffers(struct mpage_da_data * mpd)2301 static int mpage_map_and_submit_buffers(struct mpage_da_data *mpd)
2302 {
2303 struct folio_batch fbatch;
2304 unsigned nr, i;
2305 struct inode *inode = mpd->inode;
2306 pgoff_t start, end;
2307 ext4_lblk_t lblk;
2308 ext4_fsblk_t pblock;
2309 int err;
2310 bool map_bh = false;
2311
2312 start = EXT4_LBLK_TO_PG(inode, mpd->map.m_lblk);
2313 end = EXT4_LBLK_TO_PG(inode, mpd->map.m_lblk + mpd->map.m_len - 1);
2314 pblock = mpd->map.m_pblk;
2315
2316 folio_batch_init(&fbatch);
2317 while (start <= end) {
2318 nr = filemap_get_folios(inode->i_mapping, &start, end, &fbatch);
2319 if (nr == 0)
2320 break;
2321 for (i = 0; i < nr; i++) {
2322 struct folio *folio = fbatch.folios[i];
2323
2324 lblk = EXT4_PG_TO_LBLK(inode, folio->index);
2325 err = mpage_process_folio(mpd, folio, &lblk, &pblock,
2326 &map_bh);
2327 /*
2328 * If map_bh is true, means page may require further bh
2329 * mapping, or maybe the page was submitted for IO.
2330 * So we return to call further extent mapping.
2331 */
2332 if (err < 0 || map_bh)
2333 goto out;
2334 /* Page fully mapped - let IO run! */
2335 err = mpage_submit_folio(mpd, folio);
2336 if (err < 0)
2337 goto out;
2338 mpage_folio_done(mpd, folio);
2339 }
2340 folio_batch_release(&fbatch);
2341 }
2342 /* Extent fully mapped and matches with page boundary. We are done. */
2343 mpd->map.m_len = 0;
2344 mpd->map.m_flags = 0;
2345 return 0;
2346 out:
2347 folio_batch_release(&fbatch);
2348 return err;
2349 }
2350
mpage_map_one_extent(handle_t * handle,struct mpage_da_data * mpd)2351 static int mpage_map_one_extent(handle_t *handle, struct mpage_da_data *mpd)
2352 {
2353 struct inode *inode = mpd->inode;
2354 struct ext4_map_blocks *map = &mpd->map;
2355 int get_blocks_flags;
2356 int err, dioread_nolock;
2357
2358 /* Make sure transaction has enough credits for this extent */
2359 err = ext4_journal_ensure_extent_credits(handle, inode);
2360 if (err < 0)
2361 return err;
2362
2363 trace_ext4_da_write_pages_extent(inode, map);
2364 /*
2365 * Call ext4_map_blocks() to allocate any delayed allocation blocks, or
2366 * to convert an unwritten extent to be initialized (in the case
2367 * where we have written into one or more preallocated blocks). It is
2368 * possible that we're going to need more metadata blocks than
2369 * previously reserved. However we must not fail because we're in
2370 * writeback and there is nothing we can do about it so it might result
2371 * in data loss. So use reserved blocks to allocate metadata if
2372 * possible. In addition, do not cache any unrelated extents, as it
2373 * only holds the folio lock but does not hold the i_rwsem or
2374 * invalidate_lock, which could corrupt the extent status tree.
2375 */
2376 get_blocks_flags = EXT4_GET_BLOCKS_CREATE |
2377 EXT4_GET_BLOCKS_METADATA_NOFAIL |
2378 EXT4_GET_BLOCKS_IO_SUBMIT |
2379 EXT4_EX_NOCACHE;
2380
2381 dioread_nolock = ext4_should_dioread_nolock(inode);
2382 if (dioread_nolock)
2383 get_blocks_flags |= EXT4_GET_BLOCKS_UNWRIT_EXT;
2384
2385 err = ext4_map_blocks(handle, inode, map, get_blocks_flags);
2386 if (err < 0)
2387 return err;
2388 if (dioread_nolock && (map->m_flags & EXT4_MAP_UNWRITTEN)) {
2389 if (!mpd->io_submit.io_end->handle &&
2390 ext4_handle_valid(handle)) {
2391 mpd->io_submit.io_end->handle = handle->h_rsv_handle;
2392 handle->h_rsv_handle = NULL;
2393 }
2394 ext4_set_io_unwritten_flag(mpd->io_submit.io_end);
2395 }
2396
2397 BUG_ON(map->m_len == 0);
2398 return 0;
2399 }
2400
2401 /*
2402 * This is used to submit mapped buffers in a single folio that is not fully
2403 * mapped for various reasons, such as insufficient space or journal credits.
2404 */
mpage_submit_partial_folio(struct mpage_da_data * mpd)2405 static int mpage_submit_partial_folio(struct mpage_da_data *mpd)
2406 {
2407 struct inode *inode = mpd->inode;
2408 struct folio *folio;
2409 loff_t pos;
2410 int ret;
2411
2412 folio = filemap_get_folio(inode->i_mapping,
2413 mpd->start_pos >> PAGE_SHIFT);
2414 if (IS_ERR(folio))
2415 return PTR_ERR(folio);
2416 /*
2417 * The mapped position should be within the current processing folio
2418 * but must not be the folio start position.
2419 */
2420 pos = ((loff_t)mpd->map.m_lblk) << inode->i_blkbits;
2421 if (WARN_ON_ONCE((folio_pos(folio) == pos) ||
2422 !folio_contains(folio, pos >> PAGE_SHIFT)))
2423 return -EINVAL;
2424
2425 ret = mpage_submit_folio(mpd, folio);
2426 if (ret)
2427 goto out;
2428 /*
2429 * Update start_pos to prevent this folio from being released in
2430 * mpage_release_unused_pages(), it will be reset to the aligned folio
2431 * pos when this folio is written again in the next round. Additionally,
2432 * do not update wbc->nr_to_write here, as it will be updated once the
2433 * entire folio has finished processing.
2434 */
2435 mpd->start_pos = pos;
2436 out:
2437 folio_unlock(folio);
2438 folio_put(folio);
2439 return ret;
2440 }
2441
2442 /*
2443 * mpage_map_and_submit_extent - map extent starting at mpd->lblk of length
2444 * mpd->len and submit pages underlying it for IO
2445 *
2446 * @handle - handle for journal operations
2447 * @mpd - extent to map
2448 * @give_up_on_write - we set this to true iff there is a fatal error and there
2449 * is no hope of writing the data. The caller should discard
2450 * dirty pages to avoid infinite loops.
2451 *
2452 * The function maps extent starting at mpd->lblk of length mpd->len. If it is
2453 * delayed, blocks are allocated, if it is unwritten, we may need to convert
2454 * them to initialized or split the described range from larger unwritten
2455 * extent. Note that we need not map all the described range since allocation
2456 * can return less blocks or the range is covered by more unwritten extents. We
2457 * cannot map more because we are limited by reserved transaction credits. On
2458 * the other hand we always make sure that the last touched page is fully
2459 * mapped so that it can be written out (and thus forward progress is
2460 * guaranteed). After mapping we submit all mapped pages for IO.
2461 */
mpage_map_and_submit_extent(handle_t * handle,struct mpage_da_data * mpd,bool * give_up_on_write)2462 static int mpage_map_and_submit_extent(handle_t *handle,
2463 struct mpage_da_data *mpd,
2464 bool *give_up_on_write)
2465 {
2466 struct inode *inode = mpd->inode;
2467 struct ext4_map_blocks *map = &mpd->map;
2468 int err;
2469 loff_t disksize;
2470 int progress = 0;
2471 ext4_io_end_t *io_end = mpd->io_submit.io_end;
2472 struct ext4_io_end_vec *io_end_vec;
2473
2474 io_end_vec = ext4_alloc_io_end_vec(io_end);
2475 if (IS_ERR(io_end_vec))
2476 return PTR_ERR(io_end_vec);
2477 io_end_vec->offset = EXT4_LBLK_TO_B(inode, map->m_lblk);
2478 do {
2479 err = mpage_map_one_extent(handle, mpd);
2480 if (err < 0) {
2481 struct super_block *sb = inode->i_sb;
2482
2483 if (ext4_emergency_state(sb))
2484 goto invalidate_dirty_pages;
2485 /*
2486 * Let the uper layers retry transient errors.
2487 * In the case of ENOSPC, if ext4_count_free_blocks()
2488 * is non-zero, a commit should free up blocks.
2489 */
2490 if ((err == -ENOMEM) || (err == -EAGAIN) ||
2491 (err == -ENOSPC && ext4_count_free_clusters(sb))) {
2492 /*
2493 * We may have already allocated extents for
2494 * some bhs inside the folio, issue the
2495 * corresponding data to prevent stale data.
2496 */
2497 if (progress) {
2498 if (mpage_submit_partial_folio(mpd))
2499 goto invalidate_dirty_pages;
2500 goto update_disksize;
2501 }
2502 return err;
2503 }
2504 ext4_msg(sb, KERN_CRIT,
2505 "Delayed block allocation failed for "
2506 "inode %llu at logical offset %llu with"
2507 " max blocks %u with error %d",
2508 inode->i_ino,
2509 (unsigned long long)map->m_lblk,
2510 (unsigned)map->m_len, -err);
2511 ext4_msg(sb, KERN_CRIT,
2512 "This should not happen!! Data will "
2513 "be lost\n");
2514 if (err == -ENOSPC)
2515 ext4_print_free_blocks(inode);
2516 invalidate_dirty_pages:
2517 *give_up_on_write = true;
2518 return err;
2519 }
2520 progress = 1;
2521 /*
2522 * Update buffer state, submit mapped pages, and get us new
2523 * extent to map
2524 */
2525 err = mpage_map_and_submit_buffers(mpd);
2526 if (err < 0)
2527 goto update_disksize;
2528 } while (map->m_len);
2529
2530 update_disksize:
2531 /*
2532 * Update on-disk size after IO is submitted. Races with
2533 * truncate are avoided by checking i_size under i_data_sem.
2534 */
2535 disksize = mpd->start_pos;
2536 if (disksize > READ_ONCE(EXT4_I(inode)->i_disksize)) {
2537 int err2;
2538 loff_t i_size;
2539
2540 down_write(&EXT4_I(inode)->i_data_sem);
2541 i_size = i_size_read(inode);
2542 if (disksize > i_size)
2543 disksize = i_size;
2544 if (disksize > EXT4_I(inode)->i_disksize)
2545 EXT4_I(inode)->i_disksize = disksize;
2546 up_write(&EXT4_I(inode)->i_data_sem);
2547 err2 = ext4_mark_inode_dirty(handle, inode);
2548 if (err2) {
2549 ext4_error_err(inode->i_sb, -err2,
2550 "Failed to mark inode %llu dirty",
2551 inode->i_ino);
2552 }
2553 if (!err)
2554 err = err2;
2555 }
2556 return err;
2557 }
2558
ext4_journal_folio_buffers(handle_t * handle,struct folio * folio,size_t len)2559 static int ext4_journal_folio_buffers(handle_t *handle, struct folio *folio,
2560 size_t len)
2561 {
2562 struct buffer_head *page_bufs = folio_buffers(folio);
2563 struct inode *inode = folio->mapping->host;
2564 int ret, err;
2565
2566 ret = ext4_walk_page_buffers(handle, inode, page_bufs, 0, len,
2567 NULL, do_journal_get_write_access);
2568 err = ext4_walk_page_buffers(handle, inode, page_bufs, 0, len,
2569 NULL, write_end_fn);
2570 if (ret == 0)
2571 ret = err;
2572 err = ext4_jbd2_inode_add_write(handle, inode, folio_pos(folio), len);
2573 if (ret == 0)
2574 ret = err;
2575 EXT4_I(inode)->i_datasync_tid = handle->h_transaction->t_tid;
2576
2577 return ret;
2578 }
2579
mpage_journal_page_buffers(handle_t * handle,struct mpage_da_data * mpd,struct folio * folio)2580 static int mpage_journal_page_buffers(handle_t *handle,
2581 struct mpage_da_data *mpd,
2582 struct folio *folio)
2583 {
2584 struct inode *inode = mpd->inode;
2585 loff_t size = i_size_read(inode);
2586 size_t len = folio_size(folio);
2587
2588 folio_clear_checked(folio);
2589 mpd->wbc->nr_to_write -= folio_nr_pages(folio);
2590
2591 if (folio_pos(folio) + len > size &&
2592 !ext4_verity_in_progress(inode))
2593 len = size & (len - 1);
2594
2595 return ext4_journal_folio_buffers(handle, folio, len);
2596 }
2597
2598 /*
2599 * mpage_prepare_extent_to_map - find & lock contiguous range of dirty pages
2600 * needing mapping, submit mapped pages
2601 *
2602 * @mpd - where to look for pages
2603 *
2604 * Walk dirty pages in the mapping. If they are fully mapped, submit them for
2605 * IO immediately. If we cannot map blocks, we submit just already mapped
2606 * buffers in the page for IO and keep page dirty. When we can map blocks and
2607 * we find a page which isn't mapped we start accumulating extent of buffers
2608 * underlying these pages that needs mapping (formed by either delayed or
2609 * unwritten buffers). We also lock the pages containing these buffers. The
2610 * extent found is returned in @mpd structure (starting at mpd->lblk with
2611 * length mpd->len blocks).
2612 *
2613 * Note that this function can attach bios to one io_end structure which are
2614 * neither logically nor physically contiguous. Although it may seem as an
2615 * unnecessary complication, it is actually inevitable in blocksize < pagesize
2616 * case as we need to track IO to all buffers underlying a page in one io_end.
2617 */
mpage_prepare_extent_to_map(struct mpage_da_data * mpd)2618 static int mpage_prepare_extent_to_map(struct mpage_da_data *mpd)
2619 {
2620 struct address_space *mapping = mpd->inode->i_mapping;
2621 struct folio_batch fbatch;
2622 unsigned int nr_folios;
2623 pgoff_t index = mpd->start_pos >> PAGE_SHIFT;
2624 pgoff_t end = mpd->end_pos >> PAGE_SHIFT;
2625 xa_mark_t tag;
2626 int i, err = 0;
2627 ext4_lblk_t lblk;
2628 struct buffer_head *head;
2629 handle_t *handle = NULL;
2630 int bpp = ext4_journal_blocks_per_folio(mpd->inode);
2631
2632 tag = wbc_to_tag(mpd->wbc);
2633
2634 mpd->map.m_len = 0;
2635 mpd->next_pos = mpd->start_pos;
2636 if (ext4_should_journal_data(mpd->inode)) {
2637 handle = ext4_journal_start(mpd->inode, EXT4_HT_WRITE_PAGE,
2638 bpp);
2639 if (IS_ERR(handle))
2640 return PTR_ERR(handle);
2641 }
2642 folio_batch_init(&fbatch);
2643 while (index <= end) {
2644 nr_folios = filemap_get_folios_tag(mapping, &index, end,
2645 tag, &fbatch);
2646 if (nr_folios == 0)
2647 break;
2648
2649 for (i = 0; i < nr_folios; i++) {
2650 struct folio *folio = fbatch.folios[i];
2651
2652 /*
2653 * Accumulated enough dirty pages? This doesn't apply
2654 * to WB_SYNC_ALL mode. For integrity sync we have to
2655 * keep going because someone may be concurrently
2656 * dirtying pages, and we might have synced a lot of
2657 * newly appeared dirty pages, but have not synced all
2658 * of the old dirty pages.
2659 */
2660 if (mpd->wbc->sync_mode == WB_SYNC_NONE &&
2661 mpd->wbc->nr_to_write <=
2662 EXT4_LBLK_TO_PG(mpd->inode, mpd->map.m_len))
2663 goto out;
2664
2665 /* If we can't merge this page, we are done. */
2666 if (mpd->map.m_len > 0 &&
2667 mpd->next_pos != folio_pos(folio))
2668 goto out;
2669
2670 if (handle) {
2671 err = ext4_journal_ensure_credits(handle, bpp,
2672 0);
2673 if (err < 0)
2674 goto out;
2675 }
2676
2677 folio_lock(folio);
2678 /*
2679 * If the page is no longer dirty, or its mapping no
2680 * longer corresponds to inode we are writing (which
2681 * means it has been truncated or invalidated), or the
2682 * page is already under writeback and we are not doing
2683 * a data integrity writeback, skip the page
2684 */
2685 if (!folio_test_dirty(folio) ||
2686 (folio_test_writeback(folio) &&
2687 (mpd->wbc->sync_mode == WB_SYNC_NONE)) ||
2688 unlikely(folio->mapping != mapping)) {
2689 folio_unlock(folio);
2690 continue;
2691 }
2692
2693 folio_wait_writeback(folio);
2694 BUG_ON(folio_test_writeback(folio));
2695
2696 /*
2697 * Should never happen but for buggy code in
2698 * other subsystems that call
2699 * set_page_dirty() without properly warning
2700 * the file system first. See [1] for more
2701 * information.
2702 *
2703 * [1] https://lore.kernel.org/linux-mm/20180103100430.GE4911@quack2.suse.cz
2704 */
2705 if (!folio_buffers(folio)) {
2706 ext4_warning_inode(mpd->inode, "page %lu does not have buffers attached", folio->index);
2707 folio_clear_dirty(folio);
2708 folio_unlock(folio);
2709 continue;
2710 }
2711
2712 if (mpd->map.m_len == 0)
2713 mpd->start_pos = folio_pos(folio);
2714 mpd->next_pos = folio_next_pos(folio);
2715 /*
2716 * Writeout when we cannot modify metadata is simple.
2717 * Just submit the page. For data=journal mode we
2718 * first handle writeout of the page for checkpoint and
2719 * only after that handle delayed page dirtying. This
2720 * makes sure current data is checkpointed to the final
2721 * location before possibly journalling it again which
2722 * is desirable when the page is frequently dirtied
2723 * through a pin.
2724 */
2725 if (!mpd->can_map) {
2726 err = mpage_submit_folio(mpd, folio);
2727 if (err < 0)
2728 goto out;
2729 /* Pending dirtying of journalled data? */
2730 if (folio_test_checked(folio)) {
2731 err = mpage_journal_page_buffers(handle,
2732 mpd, folio);
2733 if (err < 0)
2734 goto out;
2735 mpd->journalled_more_data = 1;
2736 }
2737 mpage_folio_done(mpd, folio);
2738 } else {
2739 /* Add all dirty buffers to mpd */
2740 lblk = EXT4_PG_TO_LBLK(mpd->inode, folio->index);
2741 head = folio_buffers(folio);
2742 err = mpage_process_page_bufs(mpd, head, head,
2743 lblk);
2744 if (err <= 0)
2745 goto out;
2746 err = 0;
2747 }
2748 }
2749 folio_batch_release(&fbatch);
2750 cond_resched();
2751 }
2752 mpd->scanned_until_end = 1;
2753 if (handle)
2754 ext4_journal_stop(handle);
2755 return 0;
2756 out:
2757 folio_batch_release(&fbatch);
2758 if (handle)
2759 ext4_journal_stop(handle);
2760 return err;
2761 }
2762
ext4_do_writepages(struct mpage_da_data * mpd)2763 static int ext4_do_writepages(struct mpage_da_data *mpd)
2764 {
2765 struct writeback_control *wbc = mpd->wbc;
2766 pgoff_t writeback_index = 0;
2767 long nr_to_write = wbc->nr_to_write;
2768 int range_whole = 0;
2769 int cycled = 1;
2770 handle_t *handle = NULL;
2771 struct inode *inode = mpd->inode;
2772 struct address_space *mapping = inode->i_mapping;
2773 int needed_blocks, rsv_blocks = 0, ret = 0;
2774 struct ext4_sb_info *sbi = EXT4_SB(mapping->host->i_sb);
2775 struct blk_plug plug;
2776 bool give_up_on_write = false;
2777
2778 trace_ext4_writepages(inode, wbc);
2779
2780 /*
2781 * No pages to write? This is mainly a kludge to avoid starting
2782 * a transaction for special inodes like journal inode on last iput()
2783 * because that could violate lock ordering on umount
2784 */
2785 if (!mapping->nrpages || !mapping_tagged(mapping, PAGECACHE_TAG_DIRTY))
2786 goto out_writepages;
2787
2788 /*
2789 * If the filesystem has aborted, it is read-only, so return
2790 * right away instead of dumping stack traces later on that
2791 * will obscure the real source of the problem. We test
2792 * fs shutdown state instead of sb->s_flag's SB_RDONLY because
2793 * the latter could be true if the filesystem is mounted
2794 * read-only, and in that case, ext4_writepages should
2795 * *never* be called, so if that ever happens, we would want
2796 * the stack trace.
2797 */
2798 ret = ext4_emergency_state(mapping->host->i_sb);
2799 if (unlikely(ret))
2800 goto out_writepages;
2801
2802 /*
2803 * If we have inline data and arrive here, it means that
2804 * we will soon create the block for the 1st page, so
2805 * we'd better clear the inline data here.
2806 */
2807 if (ext4_has_inline_data(inode)) {
2808 /* Just inode will be modified... */
2809 handle = ext4_journal_start(inode, EXT4_HT_INODE, 1);
2810 if (IS_ERR(handle)) {
2811 ret = PTR_ERR(handle);
2812 goto out_writepages;
2813 }
2814 BUG_ON(ext4_test_inode_state(inode,
2815 EXT4_STATE_MAY_INLINE_DATA));
2816 ext4_destroy_inline_data(handle, inode);
2817 ext4_journal_stop(handle);
2818 }
2819
2820 /*
2821 * data=journal mode does not do delalloc so we just need to writeout /
2822 * journal already mapped buffers. On the other hand we need to commit
2823 * transaction to make data stable. We expect all the data to be
2824 * already in the journal (the only exception are DMA pinned pages
2825 * dirtied behind our back) so we commit transaction here and run the
2826 * writeback loop to checkpoint them. The checkpointing is not actually
2827 * necessary to make data persistent *but* quite a few places (extent
2828 * shifting operations, fsverity, ...) depend on being able to drop
2829 * pagecache pages after calling filemap_write_and_wait() and for that
2830 * checkpointing needs to happen.
2831 */
2832 if (ext4_should_journal_data(inode)) {
2833 mpd->can_map = 0;
2834 if (wbc->sync_mode == WB_SYNC_ALL)
2835 ext4_fc_commit(sbi->s_journal,
2836 EXT4_I(inode)->i_datasync_tid);
2837 }
2838 mpd->journalled_more_data = 0;
2839
2840 if (ext4_should_dioread_nolock(inode)) {
2841 int bpf = ext4_journal_blocks_per_folio(inode);
2842 /*
2843 * We may need to convert up to one extent per block in
2844 * the folio and we may dirty the inode.
2845 */
2846 rsv_blocks = 1 + ext4_ext_index_trans_blocks(inode, bpf);
2847 }
2848
2849 if (wbc->range_start == 0 && wbc->range_end == LLONG_MAX)
2850 range_whole = 1;
2851
2852 if (wbc->range_cyclic) {
2853 writeback_index = mapping->writeback_index;
2854 if (writeback_index)
2855 cycled = 0;
2856 mpd->start_pos = writeback_index << PAGE_SHIFT;
2857 mpd->end_pos = LLONG_MAX;
2858 } else {
2859 mpd->start_pos = wbc->range_start;
2860 mpd->end_pos = wbc->range_end;
2861 }
2862
2863 ext4_io_submit_init(&mpd->io_submit, wbc);
2864 retry:
2865 if (wbc->sync_mode == WB_SYNC_ALL || wbc->tagged_writepages)
2866 tag_pages_for_writeback(mapping, mpd->start_pos >> PAGE_SHIFT,
2867 mpd->end_pos >> PAGE_SHIFT);
2868 blk_start_plug(&plug);
2869
2870 /*
2871 * First writeback pages that don't need mapping - we can avoid
2872 * starting a transaction unnecessarily and also avoid being blocked
2873 * in the block layer on device congestion while having transaction
2874 * started.
2875 */
2876 mpd->do_map = 0;
2877 mpd->scanned_until_end = 0;
2878 mpd->io_submit.io_end = ext4_init_io_end(inode, GFP_KERNEL);
2879 if (!mpd->io_submit.io_end) {
2880 ret = -ENOMEM;
2881 goto unplug;
2882 }
2883 ret = mpage_prepare_extent_to_map(mpd);
2884 /* Unlock pages we didn't use */
2885 mpage_release_unused_pages(mpd, false);
2886 /* Submit prepared bio */
2887 ext4_io_submit(&mpd->io_submit);
2888 ext4_put_io_end_defer(mpd->io_submit.io_end);
2889 mpd->io_submit.io_end = NULL;
2890 if (ret < 0)
2891 goto unplug;
2892
2893 while (!mpd->scanned_until_end && wbc->nr_to_write > 0) {
2894 /* For each extent of pages we use new io_end */
2895 mpd->io_submit.io_end = ext4_init_io_end(inode, GFP_KERNEL);
2896 if (!mpd->io_submit.io_end) {
2897 ret = -ENOMEM;
2898 break;
2899 }
2900
2901 WARN_ON_ONCE(!mpd->can_map);
2902 /*
2903 * We have two constraints: We find one extent to map and we
2904 * must always write out whole page (makes a difference when
2905 * blocksize < pagesize) so that we don't block on IO when we
2906 * try to write out the rest of the page. Journalled mode is
2907 * not supported by delalloc.
2908 */
2909 BUG_ON(ext4_should_journal_data(inode));
2910 /*
2911 * Calculate the number of credits needed to reserve for one
2912 * extent of up to MAX_WRITEPAGES_EXTENT_LEN blocks. It will
2913 * attempt to extend the transaction or start a new iteration
2914 * if the reserved credits are insufficient.
2915 */
2916 needed_blocks = ext4_chunk_trans_blocks(inode,
2917 MAX_WRITEPAGES_EXTENT_LEN);
2918 /* start a new transaction */
2919 handle = ext4_journal_start_with_reserve(inode,
2920 EXT4_HT_WRITE_PAGE, needed_blocks, rsv_blocks);
2921 if (IS_ERR(handle)) {
2922 ret = PTR_ERR(handle);
2923 ext4_msg(inode->i_sb, KERN_CRIT, "%s: jbd2_start: "
2924 "%ld pages, ino %llu; err %d", __func__,
2925 wbc->nr_to_write, inode->i_ino, ret);
2926 /* Release allocated io_end */
2927 ext4_put_io_end(mpd->io_submit.io_end);
2928 mpd->io_submit.io_end = NULL;
2929 break;
2930 }
2931 mpd->do_map = 1;
2932
2933 trace_ext4_da_write_folios_start(inode, mpd->start_pos,
2934 mpd->next_pos, wbc);
2935 ret = mpage_prepare_extent_to_map(mpd);
2936 if (!ret && mpd->map.m_len)
2937 ret = mpage_map_and_submit_extent(handle, mpd,
2938 &give_up_on_write);
2939 /*
2940 * Caution: If the handle is synchronous,
2941 * ext4_journal_stop() can wait for transaction commit
2942 * to finish which may depend on writeback of pages to
2943 * complete or on page lock to be released. In that
2944 * case, we have to wait until after we have
2945 * submitted all the IO, released page locks we hold,
2946 * and dropped io_end reference (for extent conversion
2947 * to be able to complete) before stopping the handle.
2948 */
2949 if (!ext4_handle_valid(handle) || handle->h_sync == 0) {
2950 ext4_journal_stop(handle);
2951 handle = NULL;
2952 mpd->do_map = 0;
2953 }
2954 /* Unlock pages we didn't use */
2955 mpage_release_unused_pages(mpd, give_up_on_write);
2956 /* Submit prepared bio */
2957 ext4_io_submit(&mpd->io_submit);
2958
2959 /*
2960 * Drop our io_end reference we got from init. We have
2961 * to be careful and use deferred io_end finishing if
2962 * we are still holding the transaction as we can
2963 * release the last reference to io_end which may end
2964 * up doing unwritten extent conversion.
2965 */
2966 if (handle) {
2967 ext4_put_io_end_defer(mpd->io_submit.io_end);
2968 ext4_journal_stop(handle);
2969 } else
2970 ext4_put_io_end(mpd->io_submit.io_end);
2971 mpd->io_submit.io_end = NULL;
2972 trace_ext4_da_write_folios_end(inode, mpd->start_pos,
2973 mpd->next_pos, wbc, ret);
2974
2975 if (ret == -ENOSPC && sbi->s_journal) {
2976 /*
2977 * Commit the transaction which would
2978 * free blocks released in the transaction
2979 * and try again
2980 */
2981 jbd2_journal_force_commit_nested(sbi->s_journal);
2982 ret = 0;
2983 continue;
2984 }
2985 if (ret == -EAGAIN)
2986 ret = 0;
2987 /* Fatal error - ENOMEM, EIO... */
2988 if (ret)
2989 break;
2990 }
2991 unplug:
2992 blk_finish_plug(&plug);
2993 if (!ret && !cycled && wbc->nr_to_write > 0) {
2994 cycled = 1;
2995 mpd->end_pos = (writeback_index << PAGE_SHIFT) - 1;
2996 mpd->start_pos = 0;
2997 goto retry;
2998 }
2999
3000 /* Update index */
3001 if (wbc->range_cyclic || (range_whole && wbc->nr_to_write > 0))
3002 /*
3003 * Set the writeback_index so that range_cyclic
3004 * mode will write it back later
3005 */
3006 mapping->writeback_index = mpd->start_pos >> PAGE_SHIFT;
3007
3008 out_writepages:
3009 trace_ext4_writepages_result(inode, wbc, ret,
3010 nr_to_write - wbc->nr_to_write);
3011 return ret;
3012 }
3013
ext4_writepages(struct address_space * mapping,struct writeback_control * wbc)3014 static int ext4_writepages(struct address_space *mapping,
3015 struct writeback_control *wbc)
3016 {
3017 struct super_block *sb = mapping->host->i_sb;
3018 struct mpage_da_data mpd = {
3019 .inode = mapping->host,
3020 .wbc = wbc,
3021 .can_map = 1,
3022 };
3023 int ret;
3024 int alloc_ctx;
3025
3026 ret = ext4_emergency_state(sb);
3027 if (unlikely(ret))
3028 return ret;
3029
3030 alloc_ctx = ext4_writepages_down_read(sb);
3031 ret = ext4_do_writepages(&mpd);
3032 /*
3033 * For data=journal writeback we could have come across pages marked
3034 * for delayed dirtying (PageChecked) which were just added to the
3035 * running transaction. Try once more to get them to stable storage.
3036 */
3037 if (!ret && mpd.journalled_more_data)
3038 ret = ext4_do_writepages(&mpd);
3039 ext4_writepages_up_read(sb, alloc_ctx);
3040
3041 return ret;
3042 }
3043
ext4_normal_submit_inode_data_buffers(struct jbd2_inode * jinode)3044 int ext4_normal_submit_inode_data_buffers(struct jbd2_inode *jinode)
3045 {
3046 struct writeback_control wbc = {
3047 .sync_mode = WB_SYNC_ALL,
3048 .nr_to_write = LONG_MAX,
3049 .range_start = jinode->i_dirty_start,
3050 .range_end = jinode->i_dirty_end,
3051 };
3052 struct mpage_da_data mpd = {
3053 .inode = jinode->i_vfs_inode,
3054 .wbc = &wbc,
3055 .can_map = 0,
3056 };
3057 return ext4_do_writepages(&mpd);
3058 }
3059
ext4_dax_writepages(struct address_space * mapping,struct writeback_control * wbc)3060 static int ext4_dax_writepages(struct address_space *mapping,
3061 struct writeback_control *wbc)
3062 {
3063 int ret;
3064 long nr_to_write = wbc->nr_to_write;
3065 struct inode *inode = mapping->host;
3066 int alloc_ctx;
3067
3068 ret = ext4_emergency_state(inode->i_sb);
3069 if (unlikely(ret))
3070 return ret;
3071
3072 alloc_ctx = ext4_writepages_down_read(inode->i_sb);
3073 trace_ext4_writepages(inode, wbc);
3074
3075 ret = dax_writeback_mapping_range(mapping,
3076 EXT4_SB(inode->i_sb)->s_daxdev, wbc);
3077 trace_ext4_writepages_result(inode, wbc, ret,
3078 nr_to_write - wbc->nr_to_write);
3079 ext4_writepages_up_read(inode->i_sb, alloc_ctx);
3080 return ret;
3081 }
3082
ext4_nonda_switch(struct super_block * sb)3083 static int ext4_nonda_switch(struct super_block *sb)
3084 {
3085 s64 free_clusters, dirty_clusters;
3086 struct ext4_sb_info *sbi = EXT4_SB(sb);
3087
3088 /*
3089 * switch to non delalloc mode if we are running low
3090 * on free block. The free block accounting via percpu
3091 * counters can get slightly wrong with percpu_counter_batch getting
3092 * accumulated on each CPU without updating global counters
3093 * Delalloc need an accurate free block accounting. So switch
3094 * to non delalloc when we are near to error range.
3095 */
3096 free_clusters =
3097 percpu_counter_read_positive(&sbi->s_freeclusters_counter);
3098 dirty_clusters =
3099 percpu_counter_read_positive(&sbi->s_dirtyclusters_counter);
3100 /*
3101 * Start pushing delalloc when 1/2 of free blocks are dirty.
3102 */
3103 if (dirty_clusters && (free_clusters < 2 * dirty_clusters))
3104 try_to_writeback_inodes_sb(sb, WB_REASON_FS_FREE_SPACE);
3105
3106 if (2 * free_clusters < 3 * dirty_clusters ||
3107 free_clusters < (dirty_clusters + EXT4_FREECLUSTERS_WATERMARK)) {
3108 /*
3109 * free block count is less than 150% of dirty blocks
3110 * or free blocks is less than watermark
3111 */
3112 return 1;
3113 }
3114 return 0;
3115 }
3116
ext4_da_write_begin(const struct kiocb * iocb,struct address_space * mapping,loff_t pos,unsigned len,struct folio ** foliop,void ** fsdata)3117 static int ext4_da_write_begin(const struct kiocb *iocb,
3118 struct address_space *mapping,
3119 loff_t pos, unsigned len,
3120 struct folio **foliop, void **fsdata)
3121 {
3122 int ret, retries = 0;
3123 struct folio *folio;
3124 pgoff_t index;
3125 struct inode *inode = mapping->host;
3126
3127 ret = ext4_emergency_state(inode->i_sb);
3128 if (unlikely(ret))
3129 return ret;
3130
3131 index = pos >> PAGE_SHIFT;
3132
3133 if (ext4_nonda_switch(inode->i_sb) || ext4_verity_in_progress(inode)) {
3134 *fsdata = (void *)FALL_BACK_TO_NONDELALLOC;
3135 return ext4_write_begin(iocb, mapping, pos,
3136 len, foliop, fsdata);
3137 }
3138 *fsdata = (void *)0;
3139 trace_ext4_da_write_begin(inode, pos, len);
3140
3141 if (ext4_test_inode_state(inode, EXT4_STATE_MAY_INLINE_DATA)) {
3142 ret = ext4_generic_write_inline_data(mapping, inode, pos, len,
3143 foliop, fsdata, true);
3144 if (ret < 0)
3145 return ret;
3146 if (ret == 1)
3147 return 0;
3148 }
3149
3150 retry:
3151 folio = write_begin_get_folio(iocb, mapping, index, len);
3152 if (IS_ERR(folio))
3153 return PTR_ERR(folio);
3154
3155 if (len > folio_next_pos(folio) - pos)
3156 len = folio_next_pos(folio) - pos;
3157
3158 ret = ext4_block_write_begin(NULL, folio, pos, len,
3159 ext4_da_get_block_prep);
3160 if (ret < 0) {
3161 folio_unlock(folio);
3162 folio_put(folio);
3163 /*
3164 * ext4_block_write_begin may have instantiated a few blocks
3165 * outside i_size. Trim these off again. Don't need
3166 * i_size_read because we hold inode lock.
3167 */
3168 if (pos + len > inode->i_size)
3169 ext4_truncate_failed_write(inode);
3170
3171 if (ret == -ENOSPC &&
3172 ext4_should_retry_alloc(inode->i_sb, &retries))
3173 goto retry;
3174 return ret;
3175 }
3176
3177 *foliop = folio;
3178 return ret;
3179 }
3180
3181 /*
3182 * Check if we should update i_disksize
3183 * when write to the end of file but not require block allocation
3184 */
ext4_da_should_update_i_disksize(struct folio * folio,unsigned long offset)3185 static int ext4_da_should_update_i_disksize(struct folio *folio,
3186 unsigned long offset)
3187 {
3188 struct buffer_head *bh;
3189 struct inode *inode = folio->mapping->host;
3190 unsigned int idx;
3191 int i;
3192
3193 bh = folio_buffers(folio);
3194 idx = offset >> inode->i_blkbits;
3195
3196 for (i = 0; i < idx; i++)
3197 bh = bh->b_this_page;
3198
3199 if (!buffer_mapped(bh) || (buffer_delay(bh)) || buffer_unwritten(bh))
3200 return 0;
3201 return 1;
3202 }
3203
ext4_da_do_write_end(struct address_space * mapping,loff_t pos,unsigned len,unsigned copied,struct folio * folio)3204 static int ext4_da_do_write_end(struct address_space *mapping,
3205 loff_t pos, unsigned len, unsigned copied,
3206 struct folio *folio)
3207 {
3208 struct inode *inode = mapping->host;
3209 loff_t old_size = inode->i_size;
3210 bool disksize_changed = false;
3211 loff_t new_i_size, zero_len = 0;
3212 handle_t *handle;
3213
3214 if (unlikely(!folio_buffers(folio))) {
3215 folio_unlock(folio);
3216 folio_put(folio);
3217 return -EIO;
3218 }
3219 /*
3220 * block_write_end() will mark the inode as dirty with I_DIRTY_PAGES
3221 * flag, which all that's needed to trigger page writeback.
3222 */
3223 copied = block_write_end(pos, len, copied, folio);
3224 new_i_size = pos + copied;
3225
3226 /*
3227 * It's important to update i_size while still holding folio lock,
3228 * because folio writeout could otherwise come in and zero beyond
3229 * i_size.
3230 *
3231 * Since we are holding inode lock, we are sure i_disksize <=
3232 * i_size. We also know that if i_disksize < i_size, there are
3233 * delalloc writes pending in the range up to i_size. If the end of
3234 * the current write is <= i_size, there's no need to touch
3235 * i_disksize since writeback will push i_disksize up to i_size
3236 * eventually. If the end of the current write is > i_size and
3237 * inside an allocated block which ext4_da_should_update_i_disksize()
3238 * checked, we need to update i_disksize here as certain
3239 * ext4_writepages() paths not allocating blocks and update i_disksize.
3240 */
3241 if (new_i_size > inode->i_size) {
3242 unsigned long end;
3243
3244 i_size_write(inode, new_i_size);
3245 end = offset_in_folio(folio, new_i_size - 1);
3246 if (copied && ext4_da_should_update_i_disksize(folio, end)) {
3247 ext4_update_i_disksize(inode, new_i_size);
3248 disksize_changed = true;
3249 }
3250 }
3251
3252 folio_unlock(folio);
3253 folio_put(folio);
3254
3255 if (pos > old_size) {
3256 pagecache_isize_extended(inode, old_size, pos);
3257 zero_len = pos - old_size;
3258 }
3259
3260 if (!disksize_changed && !zero_len)
3261 return copied;
3262
3263 handle = ext4_journal_start(inode, EXT4_HT_INODE, 2);
3264 if (IS_ERR(handle))
3265 return PTR_ERR(handle);
3266 if (zero_len)
3267 ext4_zero_partial_blocks(handle, inode, old_size, zero_len);
3268 ext4_mark_inode_dirty(handle, inode);
3269 ext4_journal_stop(handle);
3270
3271 return copied;
3272 }
3273
ext4_da_write_end(const struct kiocb * iocb,struct address_space * mapping,loff_t pos,unsigned len,unsigned copied,struct folio * folio,void * fsdata)3274 static int ext4_da_write_end(const struct kiocb *iocb,
3275 struct address_space *mapping,
3276 loff_t pos, unsigned len, unsigned copied,
3277 struct folio *folio, void *fsdata)
3278 {
3279 struct inode *inode = mapping->host;
3280 int write_mode = (int)(unsigned long)fsdata;
3281
3282 if (write_mode == FALL_BACK_TO_NONDELALLOC)
3283 return ext4_write_end(iocb, mapping, pos,
3284 len, copied, folio, fsdata);
3285
3286 trace_ext4_da_write_end(inode, pos, len, copied);
3287
3288 if (write_mode != CONVERT_INLINE_DATA &&
3289 ext4_test_inode_state(inode, EXT4_STATE_MAY_INLINE_DATA) &&
3290 ext4_has_inline_data(inode))
3291 return ext4_write_inline_data_end(inode, pos, len, copied,
3292 folio);
3293
3294 if (unlikely(copied < len) && !folio_test_uptodate(folio))
3295 copied = 0;
3296
3297 return ext4_da_do_write_end(mapping, pos, len, copied, folio);
3298 }
3299
3300 /*
3301 * Force all delayed allocation blocks to be allocated for a given inode.
3302 */
ext4_alloc_da_blocks(struct inode * inode)3303 int ext4_alloc_da_blocks(struct inode *inode)
3304 {
3305 trace_ext4_alloc_da_blocks(inode);
3306
3307 if (!EXT4_I(inode)->i_reserved_data_blocks)
3308 return 0;
3309
3310 /*
3311 * We do something simple for now. The filemap_flush() will
3312 * also start triggering a write of the data blocks, which is
3313 * not strictly speaking necessary. However, to do otherwise
3314 * would require replicating code paths in:
3315 *
3316 * ext4_writepages() ->
3317 * write_cache_pages() ---> (via passed in callback function)
3318 * __mpage_da_writepage() -->
3319 * mpage_add_bh_to_extent()
3320 * mpage_da_map_blocks()
3321 *
3322 * The problem is that write_cache_pages(), located in
3323 * mm/page-writeback.c, marks pages clean in preparation for
3324 * doing I/O, which is not desirable if we're not planning on
3325 * doing I/O at all.
3326 *
3327 * We could call write_cache_pages(), and then redirty all of
3328 * the pages by calling redirty_page_for_writepage() but that
3329 * would be ugly in the extreme. So instead we would need to
3330 * replicate parts of the code in the above functions,
3331 * simplifying them because we wouldn't actually intend to
3332 * write out the pages, but rather only collect contiguous
3333 * logical block extents, call the multi-block allocator, and
3334 * then update the buffer heads with the block allocations.
3335 *
3336 * For now, though, we'll cheat by calling filemap_flush(),
3337 * which will map the blocks, and start the I/O, but not
3338 * actually wait for the I/O to complete.
3339 */
3340 return filemap_flush(inode->i_mapping);
3341 }
3342
3343 /*
3344 * bmap() is special. It gets used by applications such as lilo and by
3345 * the swapper to find the on-disk block of a specific piece of data.
3346 *
3347 * Naturally, this is dangerous if the block concerned is still in the
3348 * journal. If somebody makes a swapfile on an ext4 data-journaling
3349 * filesystem and enables swap, then they may get a nasty shock when the
3350 * data getting swapped to that swapfile suddenly gets overwritten by
3351 * the original zero's written out previously to the journal and
3352 * awaiting writeback in the kernel's buffer cache.
3353 *
3354 * So, if we see any bmap calls here on a modified, data-journaled file,
3355 * take extra steps to flush any blocks which might be in the cache.
3356 */
ext4_bmap(struct address_space * mapping,sector_t block)3357 static sector_t ext4_bmap(struct address_space *mapping, sector_t block)
3358 {
3359 struct inode *inode = mapping->host;
3360 sector_t ret = 0;
3361
3362 inode_lock_shared(inode);
3363 /*
3364 * We can get here for an inline file via the FIBMAP ioctl
3365 */
3366 if (ext4_has_inline_data(inode))
3367 goto out;
3368
3369 if (mapping_tagged(mapping, PAGECACHE_TAG_DIRTY) &&
3370 (test_opt(inode->i_sb, DELALLOC) ||
3371 ext4_should_journal_data(inode))) {
3372 /*
3373 * With delalloc or journalled data we want to sync the file so
3374 * that we can make sure we allocate blocks for file and data
3375 * is in place for the user to see it
3376 */
3377 filemap_write_and_wait(mapping);
3378 }
3379
3380 ret = iomap_bmap(mapping, block, &ext4_iomap_ops);
3381
3382 out:
3383 inode_unlock_shared(inode);
3384 return ret;
3385 }
3386
ext4_invalidate_folio(struct folio * folio,size_t offset,size_t length)3387 static void ext4_invalidate_folio(struct folio *folio, size_t offset,
3388 size_t length)
3389 {
3390 trace_ext4_invalidate_folio(folio, offset, length);
3391
3392 /* No journalling happens on data buffers when this function is used */
3393 WARN_ON(folio_buffers(folio) && buffer_jbd(folio_buffers(folio)));
3394
3395 block_invalidate_folio(folio, offset, length);
3396 }
3397
__ext4_journalled_invalidate_folio(struct folio * folio,size_t offset,size_t length)3398 static int __ext4_journalled_invalidate_folio(struct folio *folio,
3399 size_t offset, size_t length)
3400 {
3401 journal_t *journal = EXT4_JOURNAL(folio->mapping->host);
3402
3403 trace_ext4_journalled_invalidate_folio(folio, offset, length);
3404
3405 /*
3406 * If it's a full truncate we just forget about the pending dirtying
3407 */
3408 if (offset == 0 && length == folio_size(folio))
3409 folio_clear_checked(folio);
3410
3411 return jbd2_journal_invalidate_folio(journal, folio, offset, length);
3412 }
3413
3414 /* Wrapper for aops... */
ext4_journalled_invalidate_folio(struct folio * folio,size_t offset,size_t length)3415 static void ext4_journalled_invalidate_folio(struct folio *folio,
3416 size_t offset,
3417 size_t length)
3418 {
3419 WARN_ON(__ext4_journalled_invalidate_folio(folio, offset, length) < 0);
3420 }
3421
ext4_release_folio(struct folio * folio,gfp_t wait)3422 static bool ext4_release_folio(struct folio *folio, gfp_t wait)
3423 {
3424 struct inode *inode = folio->mapping->host;
3425 journal_t *journal = EXT4_JOURNAL(inode);
3426
3427 trace_ext4_release_folio(inode, folio);
3428
3429 /* Page has dirty journalled data -> cannot release */
3430 if (folio_test_checked(folio))
3431 return false;
3432 if (journal)
3433 return jbd2_journal_try_to_free_buffers(journal, folio);
3434 else
3435 return try_to_free_buffers(folio);
3436 }
3437
ext4_inode_datasync_dirty(struct inode * inode)3438 static bool ext4_inode_datasync_dirty(struct inode *inode)
3439 {
3440 journal_t *journal = EXT4_SB(inode->i_sb)->s_journal;
3441
3442 if (journal) {
3443 if (jbd2_transaction_committed(journal,
3444 EXT4_I(inode)->i_datasync_tid))
3445 return false;
3446 if (test_opt2(inode->i_sb, JOURNAL_FAST_COMMIT))
3447 return !list_empty(&EXT4_I(inode)->i_fc_list);
3448 return true;
3449 }
3450
3451 /* Any metadata buffers to write? */
3452 if (mmb_has_buffers(&EXT4_I(inode)->i_metadata_bhs))
3453 return true;
3454 return inode_state_read_once(inode) & I_DIRTY_DATASYNC;
3455 }
3456
ext4_set_iomap(struct inode * inode,struct iomap * iomap,struct ext4_map_blocks * map,loff_t offset,loff_t length,unsigned int flags)3457 static void ext4_set_iomap(struct inode *inode, struct iomap *iomap,
3458 struct ext4_map_blocks *map, loff_t offset,
3459 loff_t length, unsigned int flags)
3460 {
3461 u8 blkbits = inode->i_blkbits;
3462
3463 /*
3464 * Writes that span EOF might trigger an I/O size update on completion,
3465 * so consider them to be dirty for the purpose of O_DSYNC, even if
3466 * there is no other metadata changes being made or are pending.
3467 */
3468 iomap->flags = 0;
3469 if (ext4_inode_datasync_dirty(inode) ||
3470 offset + length > i_size_read(inode))
3471 iomap->flags |= IOMAP_F_DIRTY;
3472
3473 if (map->m_flags & EXT4_MAP_NEW)
3474 iomap->flags |= IOMAP_F_NEW;
3475
3476 /* HW-offload atomics are always used */
3477 if (flags & IOMAP_ATOMIC)
3478 iomap->flags |= IOMAP_F_ATOMIC_BIO;
3479
3480 if (flags & IOMAP_DAX)
3481 iomap->dax_dev = EXT4_SB(inode->i_sb)->s_daxdev;
3482 else
3483 iomap->bdev = inode->i_sb->s_bdev;
3484 iomap->offset = EXT4_LBLK_TO_B(inode, map->m_lblk);
3485 iomap->length = EXT4_LBLK_TO_B(inode, map->m_len);
3486
3487 if ((map->m_flags & EXT4_MAP_MAPPED) &&
3488 !ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))
3489 iomap->flags |= IOMAP_F_MERGED;
3490
3491 /*
3492 * Flags passed to ext4_map_blocks() for direct I/O writes can result
3493 * in m_flags having both EXT4_MAP_MAPPED and EXT4_MAP_UNWRITTEN bits
3494 * set. In order for any allocated unwritten extents to be converted
3495 * into written extents correctly within the ->end_io() handler, we
3496 * need to ensure that the iomap->type is set appropriately. Hence, the
3497 * reason why we need to check whether the EXT4_MAP_UNWRITTEN bit has
3498 * been set first.
3499 */
3500 if (map->m_flags & EXT4_MAP_UNWRITTEN) {
3501 iomap->type = IOMAP_UNWRITTEN;
3502 iomap->addr = (u64) map->m_pblk << blkbits;
3503 if (flags & IOMAP_DAX)
3504 iomap->addr += EXT4_SB(inode->i_sb)->s_dax_part_off;
3505 } else if (map->m_flags & EXT4_MAP_MAPPED) {
3506 iomap->type = IOMAP_MAPPED;
3507 iomap->addr = (u64) map->m_pblk << blkbits;
3508 if (flags & IOMAP_DAX)
3509 iomap->addr += EXT4_SB(inode->i_sb)->s_dax_part_off;
3510 } else if (map->m_flags & EXT4_MAP_DELAYED) {
3511 iomap->type = IOMAP_DELALLOC;
3512 iomap->addr = IOMAP_NULL_ADDR;
3513 } else {
3514 iomap->type = IOMAP_HOLE;
3515 iomap->addr = IOMAP_NULL_ADDR;
3516 }
3517 }
3518
ext4_map_blocks_atomic_write_slow(handle_t * handle,struct inode * inode,struct ext4_map_blocks * map)3519 static int ext4_map_blocks_atomic_write_slow(handle_t *handle,
3520 struct inode *inode, struct ext4_map_blocks *map)
3521 {
3522 ext4_lblk_t m_lblk = map->m_lblk;
3523 unsigned int m_len = map->m_len;
3524 unsigned int mapped_len = 0, m_flags = 0;
3525 ext4_fsblk_t next_pblk = 0;
3526 bool check_next_pblk = false;
3527 int ret = 0;
3528
3529 WARN_ON_ONCE(!ext4_has_feature_bigalloc(inode->i_sb));
3530
3531 /*
3532 * This is a slow path in case of mixed mapping. We use
3533 * EXT4_GET_BLOCKS_CREATE_ZERO flag here to make sure we get a single
3534 * contiguous mapped mapping. This will ensure any unwritten or hole
3535 * regions within the requested range is zeroed out and we return
3536 * a single contiguous mapped extent.
3537 */
3538 m_flags = EXT4_GET_BLOCKS_CREATE_ZERO;
3539
3540 do {
3541 ret = ext4_map_blocks(handle, inode, map, m_flags);
3542 if (ret < 0 && ret != -ENOSPC)
3543 goto out_err;
3544 /*
3545 * This should never happen, but let's return an error code to
3546 * avoid an infinite loop in here.
3547 */
3548 if (ret == 0) {
3549 ret = -EFSCORRUPTED;
3550 ext4_warning_inode(inode,
3551 "ext4_map_blocks() couldn't allocate blocks m_flags: 0x%x, ret:%d",
3552 m_flags, ret);
3553 goto out_err;
3554 }
3555 /*
3556 * With bigalloc we should never get ENOSPC nor discontiguous
3557 * physical extents.
3558 */
3559 if ((check_next_pblk && next_pblk != map->m_pblk) ||
3560 ret == -ENOSPC) {
3561 ext4_warning_inode(inode,
3562 "Non-contiguous allocation detected: expected %llu, got %llu, "
3563 "or ext4_map_blocks() returned out of space ret: %d",
3564 next_pblk, map->m_pblk, ret);
3565 ret = -EFSCORRUPTED;
3566 goto out_err;
3567 }
3568 next_pblk = map->m_pblk + map->m_len;
3569 check_next_pblk = true;
3570
3571 mapped_len += map->m_len;
3572 map->m_lblk += map->m_len;
3573 map->m_len = m_len - mapped_len;
3574 } while (mapped_len < m_len);
3575
3576 /*
3577 * We might have done some work in above loop, so we need to query the
3578 * start of the physical extent, based on the origin m_lblk and m_len.
3579 * Let's also ensure we were able to allocate the required range for
3580 * mixed mapping case.
3581 */
3582 map->m_lblk = m_lblk;
3583 map->m_len = m_len;
3584 map->m_flags = 0;
3585
3586 ret = ext4_map_blocks(handle, inode, map,
3587 EXT4_GET_BLOCKS_QUERY_LAST_IN_LEAF);
3588 if (ret != m_len) {
3589 ext4_warning_inode(inode,
3590 "allocation failed for atomic write request m_lblk:%u, m_len:%u, ret:%d\n",
3591 m_lblk, m_len, ret);
3592 ret = -EINVAL;
3593 }
3594 return ret;
3595
3596 out_err:
3597 /* reset map before returning an error */
3598 map->m_lblk = m_lblk;
3599 map->m_len = m_len;
3600 map->m_flags = 0;
3601 return ret;
3602 }
3603
3604 /*
3605 * ext4_map_blocks_atomic: Helper routine to ensure the entire requested
3606 * range in @map [lblk, lblk + len) is one single contiguous extent with no
3607 * mixed mappings.
3608 *
3609 * We first use m_flags passed to us by our caller (ext4_iomap_alloc()).
3610 * We only call EXT4_GET_BLOCKS_ZERO in the slow path, when the underlying
3611 * physical extent for the requested range does not have a single contiguous
3612 * mapping type i.e. (Hole, Mapped, or Unwritten) throughout.
3613 * In that case we will loop over the requested range to allocate and zero out
3614 * the unwritten / holes in between, to get a single mapped extent from
3615 * [m_lblk, m_lblk + m_len). Note that this is only possible because we know
3616 * this can be called only with bigalloc enabled filesystem where the underlying
3617 * cluster is already allocated. This avoids allocating discontiguous extents
3618 * in the slow path due to multiple calls to ext4_map_blocks().
3619 * The slow path is mostly non-performance critical path, so it should be ok to
3620 * loop using ext4_map_blocks() with appropriate flags to allocate & zero the
3621 * underlying short holes/unwritten extents within the requested range.
3622 */
ext4_map_blocks_atomic_write(handle_t * handle,struct inode * inode,struct ext4_map_blocks * map,int m_flags,bool * force_commit)3623 static int ext4_map_blocks_atomic_write(handle_t *handle, struct inode *inode,
3624 struct ext4_map_blocks *map, int m_flags,
3625 bool *force_commit)
3626 {
3627 ext4_lblk_t m_lblk = map->m_lblk;
3628 unsigned int m_len = map->m_len;
3629 int ret = 0;
3630
3631 WARN_ON_ONCE(m_len > 1 && !ext4_has_feature_bigalloc(inode->i_sb));
3632
3633 ret = ext4_map_blocks(handle, inode, map, m_flags);
3634 if (ret < 0 || ret == m_len)
3635 goto out;
3636 /*
3637 * This is a mixed mapping case where we were not able to allocate
3638 * a single contiguous extent. In that case let's reset requested
3639 * mapping and call the slow path.
3640 */
3641 map->m_lblk = m_lblk;
3642 map->m_len = m_len;
3643 map->m_flags = 0;
3644
3645 /*
3646 * slow path means we have mixed mapping, that means we will need
3647 * to force txn commit.
3648 */
3649 *force_commit = true;
3650 return ext4_map_blocks_atomic_write_slow(handle, inode, map);
3651 out:
3652 return ret;
3653 }
3654
ext4_iomap_alloc(struct inode * inode,struct ext4_map_blocks * map,unsigned int flags)3655 static int ext4_iomap_alloc(struct inode *inode, struct ext4_map_blocks *map,
3656 unsigned int flags)
3657 {
3658 handle_t *handle;
3659 int ret, dio_credits, m_flags = 0, retries = 0;
3660 bool force_commit = false;
3661
3662 /*
3663 * Trim the mapping request to the maximum value that we can map at
3664 * once for direct I/O.
3665 */
3666 if (map->m_len > DIO_MAX_BLOCKS)
3667 map->m_len = DIO_MAX_BLOCKS;
3668
3669 /*
3670 * journal credits estimation for atomic writes. We call
3671 * ext4_map_blocks(), to find if there could be a mixed mapping. If yes,
3672 * then let's assume the no. of pextents required can be m_len i.e.
3673 * every alternate block can be unwritten and hole.
3674 */
3675 if (flags & IOMAP_ATOMIC) {
3676 unsigned int orig_mlen = map->m_len;
3677
3678 ret = ext4_map_blocks(NULL, inode, map, 0);
3679 if (ret < 0)
3680 return ret;
3681 if (map->m_len < orig_mlen) {
3682 map->m_len = orig_mlen;
3683 dio_credits = ext4_meta_trans_blocks(inode, orig_mlen,
3684 map->m_len);
3685 } else {
3686 dio_credits = ext4_chunk_trans_blocks(inode,
3687 map->m_len);
3688 }
3689 } else {
3690 dio_credits = ext4_chunk_trans_blocks(inode, map->m_len);
3691 }
3692
3693 retry:
3694 /*
3695 * Either we allocate blocks and then don't get an unwritten extent, so
3696 * in that case we have reserved enough credits. Or, the blocks are
3697 * already allocated and unwritten. In that case, the extent conversion
3698 * fits into the credits as well.
3699 */
3700 handle = ext4_journal_start(inode, EXT4_HT_MAP_BLOCKS, dio_credits);
3701 if (IS_ERR(handle))
3702 return PTR_ERR(handle);
3703
3704 /*
3705 * DAX and direct I/O are the only two operations that are currently
3706 * supported with IOMAP_WRITE.
3707 */
3708 WARN_ON(!(flags & (IOMAP_DAX | IOMAP_DIRECT)));
3709 if (flags & IOMAP_DAX)
3710 m_flags = EXT4_GET_BLOCKS_CREATE_ZERO;
3711 /*
3712 * We use i_size instead of i_disksize here because delalloc writeback
3713 * can complete at any point during the I/O and subsequently push the
3714 * i_disksize out to i_size. This could be beyond where direct I/O is
3715 * happening and thus expose allocated blocks to direct I/O reads.
3716 */
3717 else if (EXT4_LBLK_TO_B(inode, map->m_lblk) >= i_size_read(inode))
3718 m_flags = EXT4_GET_BLOCKS_CREATE;
3719 else if (ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))
3720 m_flags = EXT4_GET_BLOCKS_CREATE_UNWRIT_EXT;
3721
3722 if (flags & IOMAP_ATOMIC)
3723 ret = ext4_map_blocks_atomic_write(handle, inode, map, m_flags,
3724 &force_commit);
3725 else
3726 ret = ext4_map_blocks(handle, inode, map, m_flags);
3727
3728 /*
3729 * We cannot fill holes in indirect tree based inodes as that could
3730 * expose stale data in the case of a crash. Use the magic error code
3731 * to fallback to buffered I/O.
3732 */
3733 if (!m_flags && !ret)
3734 ret = -ENOTBLK;
3735
3736 ext4_journal_stop(handle);
3737 if (ret == -ENOSPC && ext4_should_retry_alloc(inode->i_sb, &retries))
3738 goto retry;
3739
3740 /*
3741 * Force commit the current transaction if the allocation spans a mixed
3742 * mapping range. This ensures any pending metadata updates (like
3743 * unwritten to written extents conversion) in this range are in
3744 * consistent state with the file data blocks, before performing the
3745 * actual write I/O. If the commit fails, the whole I/O must be aborted
3746 * to prevent any possible torn writes.
3747 */
3748 if (ret > 0 && force_commit) {
3749 int ret2;
3750
3751 ret2 = ext4_force_commit(inode->i_sb);
3752 if (ret2)
3753 return ret2;
3754 }
3755
3756 return ret;
3757 }
3758
3759
ext4_iomap_begin(struct inode * inode,loff_t offset,loff_t length,unsigned flags,struct iomap * iomap,struct iomap * srcmap)3760 static int ext4_iomap_begin(struct inode *inode, loff_t offset, loff_t length,
3761 unsigned flags, struct iomap *iomap, struct iomap *srcmap)
3762 {
3763 int ret;
3764 struct ext4_map_blocks map;
3765 u8 blkbits = inode->i_blkbits;
3766 unsigned int orig_mlen;
3767
3768 if ((offset >> blkbits) > EXT4_MAX_LOGICAL_BLOCK)
3769 return -EINVAL;
3770
3771 if (WARN_ON_ONCE(ext4_has_inline_data(inode)))
3772 return -ERANGE;
3773
3774 /*
3775 * Calculate the first and last logical blocks respectively.
3776 */
3777 map.m_lblk = offset >> blkbits;
3778 map.m_len = min_t(loff_t, (offset + length - 1) >> blkbits,
3779 EXT4_MAX_LOGICAL_BLOCK) - map.m_lblk + 1;
3780 orig_mlen = map.m_len;
3781
3782 if (flags & IOMAP_WRITE) {
3783 /*
3784 * We check here if the blocks are already allocated, then we
3785 * don't need to start a journal txn and we can directly return
3786 * the mapping information. This could boost performance
3787 * especially in multi-threaded overwrite requests.
3788 */
3789 if (offset + length <= i_size_read(inode)) {
3790 ret = ext4_map_blocks(NULL, inode, &map, 0);
3791 /*
3792 * For DAX we convert extents to initialized ones before
3793 * copying the data, otherwise we do it after I/O so
3794 * there's no need to call into ext4_iomap_alloc().
3795 */
3796 if ((map.m_flags & EXT4_MAP_MAPPED) ||
3797 (!(flags & IOMAP_DAX) &&
3798 (map.m_flags & EXT4_MAP_UNWRITTEN))) {
3799 /*
3800 * For atomic writes the entire requested
3801 * length should be mapped.
3802 */
3803 if (ret == orig_mlen ||
3804 (!(flags & IOMAP_ATOMIC) && ret > 0))
3805 goto out;
3806 }
3807 map.m_len = orig_mlen;
3808 }
3809 ret = ext4_iomap_alloc(inode, &map, flags);
3810 } else {
3811 ret = ext4_map_blocks(NULL, inode, &map, 0);
3812 }
3813
3814 if (ret < 0)
3815 return ret;
3816 out:
3817 /*
3818 * When inline encryption is enabled, sometimes I/O to an encrypted file
3819 * has to be broken up to guarantee DUN contiguity. Handle this by
3820 * limiting the length of the mapping returned.
3821 */
3822 map.m_len = fscrypt_limit_io_blocks(inode, map.m_lblk, map.m_len);
3823
3824 /*
3825 * Before returning to iomap, let's ensure the allocated mapping
3826 * covers the entire requested length for atomic writes.
3827 */
3828 if (flags & IOMAP_ATOMIC) {
3829 if (map.m_len < (length >> blkbits)) {
3830 WARN_ON_ONCE(1);
3831 return -EINVAL;
3832 }
3833 }
3834 ext4_set_iomap(inode, iomap, &map, offset, length, flags);
3835
3836 return 0;
3837 }
3838
3839 const struct iomap_ops ext4_iomap_ops = {
3840 .iomap_begin = ext4_iomap_begin,
3841 };
3842
ext4_iomap_begin_report(struct inode * inode,loff_t offset,loff_t length,unsigned int flags,struct iomap * iomap,struct iomap * srcmap)3843 static int ext4_iomap_begin_report(struct inode *inode, loff_t offset,
3844 loff_t length, unsigned int flags,
3845 struct iomap *iomap, struct iomap *srcmap)
3846 {
3847 int ret;
3848 struct ext4_map_blocks map;
3849 u8 blkbits = inode->i_blkbits;
3850
3851 if ((offset >> blkbits) > EXT4_MAX_LOGICAL_BLOCK)
3852 return -EINVAL;
3853
3854 if (ext4_has_inline_data(inode)) {
3855 ret = ext4_inline_data_iomap(inode, iomap);
3856 if (ret != -EAGAIN) {
3857 if (ret == 0 && offset >= iomap->length)
3858 ret = -ENOENT;
3859 return ret;
3860 }
3861 }
3862
3863 /*
3864 * Calculate the first and last logical block respectively.
3865 */
3866 map.m_lblk = offset >> blkbits;
3867 map.m_len = min_t(loff_t, (offset + length - 1) >> blkbits,
3868 EXT4_MAX_LOGICAL_BLOCK) - map.m_lblk + 1;
3869
3870 /*
3871 * Fiemap callers may call for offset beyond s_bitmap_maxbytes.
3872 * So handle it here itself instead of querying ext4_map_blocks().
3873 * Since ext4_map_blocks() will warn about it and will return
3874 * -EIO error.
3875 */
3876 if (!(ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))) {
3877 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
3878
3879 if (offset >= sbi->s_bitmap_maxbytes) {
3880 map.m_flags = 0;
3881 goto set_iomap;
3882 }
3883 }
3884
3885 ret = ext4_map_blocks(NULL, inode, &map, 0);
3886 if (ret < 0)
3887 return ret;
3888 set_iomap:
3889 ext4_set_iomap(inode, iomap, &map, offset, length, flags);
3890
3891 return 0;
3892 }
3893
3894 const struct iomap_ops ext4_iomap_report_ops = {
3895 .iomap_begin = ext4_iomap_begin_report,
3896 };
3897
3898 /*
3899 * For data=journal mode, folio should be marked dirty only when it was
3900 * writeably mapped. When that happens, it was already attached to the
3901 * transaction and marked as jbddirty (we take care of this in
3902 * ext4_page_mkwrite()). On transaction commit, we writeprotect page mappings
3903 * so we should have nothing to do here, except for the case when someone
3904 * had the page pinned and dirtied the page through this pin (e.g. by doing
3905 * direct IO to it). In that case we'd need to attach buffers here to the
3906 * transaction but we cannot due to lock ordering. We cannot just dirty the
3907 * folio and leave attached buffers clean, because the buffers' dirty state is
3908 * "definitive". We cannot just set the buffers dirty or jbddirty because all
3909 * the journalling code will explode. So what we do is to mark the folio
3910 * "pending dirty" and next time ext4_writepages() is called, attach buffers
3911 * to the transaction appropriately.
3912 */
ext4_journalled_dirty_folio(struct address_space * mapping,struct folio * folio)3913 static bool ext4_journalled_dirty_folio(struct address_space *mapping,
3914 struct folio *folio)
3915 {
3916 WARN_ON_ONCE(!folio_buffers(folio));
3917 if (folio_maybe_dma_pinned(folio))
3918 folio_set_checked(folio);
3919 return filemap_dirty_folio(mapping, folio);
3920 }
3921
ext4_dirty_folio(struct address_space * mapping,struct folio * folio)3922 static bool ext4_dirty_folio(struct address_space *mapping, struct folio *folio)
3923 {
3924 WARN_ON_ONCE(!folio_test_locked(folio) && !folio_test_dirty(folio));
3925 WARN_ON_ONCE(!folio_buffers(folio));
3926 return block_dirty_folio(mapping, folio);
3927 }
3928
ext4_iomap_swap_activate(struct swap_info_struct * sis,struct file * file,sector_t * span)3929 static int ext4_iomap_swap_activate(struct swap_info_struct *sis,
3930 struct file *file, sector_t *span)
3931 {
3932 return iomap_swapfile_activate(sis, file, span,
3933 &ext4_iomap_report_ops);
3934 }
3935
3936 static const struct address_space_operations ext4_aops = {
3937 .read_folio = ext4_read_folio,
3938 .readahead = ext4_readahead,
3939 .writepages = ext4_writepages,
3940 .write_begin = ext4_write_begin,
3941 .write_end = ext4_write_end,
3942 .dirty_folio = ext4_dirty_folio,
3943 .bmap = ext4_bmap,
3944 .invalidate_folio = ext4_invalidate_folio,
3945 .release_folio = ext4_release_folio,
3946 .migrate_folio = buffer_migrate_folio,
3947 .is_partially_uptodate = block_is_partially_uptodate,
3948 .error_remove_folio = generic_error_remove_folio,
3949 .swap_activate = ext4_iomap_swap_activate,
3950 };
3951
3952 static const struct address_space_operations ext4_journalled_aops = {
3953 .read_folio = ext4_read_folio,
3954 .readahead = ext4_readahead,
3955 .writepages = ext4_writepages,
3956 .write_begin = ext4_write_begin,
3957 .write_end = ext4_journalled_write_end,
3958 .dirty_folio = ext4_journalled_dirty_folio,
3959 .bmap = ext4_bmap,
3960 .invalidate_folio = ext4_journalled_invalidate_folio,
3961 .release_folio = ext4_release_folio,
3962 .migrate_folio = buffer_migrate_folio_norefs,
3963 .is_partially_uptodate = block_is_partially_uptodate,
3964 .error_remove_folio = generic_error_remove_folio,
3965 .swap_activate = ext4_iomap_swap_activate,
3966 };
3967
3968 static const struct address_space_operations ext4_da_aops = {
3969 .read_folio = ext4_read_folio,
3970 .readahead = ext4_readahead,
3971 .writepages = ext4_writepages,
3972 .write_begin = ext4_da_write_begin,
3973 .write_end = ext4_da_write_end,
3974 .dirty_folio = ext4_dirty_folio,
3975 .bmap = ext4_bmap,
3976 .invalidate_folio = ext4_invalidate_folio,
3977 .release_folio = ext4_release_folio,
3978 .migrate_folio = buffer_migrate_folio,
3979 .is_partially_uptodate = block_is_partially_uptodate,
3980 .error_remove_folio = generic_error_remove_folio,
3981 .swap_activate = ext4_iomap_swap_activate,
3982 };
3983
3984 static const struct address_space_operations ext4_dax_aops = {
3985 .writepages = ext4_dax_writepages,
3986 .dirty_folio = noop_dirty_folio,
3987 .bmap = ext4_bmap,
3988 .swap_activate = ext4_iomap_swap_activate,
3989 };
3990
ext4_set_aops(struct inode * inode)3991 void ext4_set_aops(struct inode *inode)
3992 {
3993 switch (ext4_inode_journal_mode(inode)) {
3994 case EXT4_INODE_ORDERED_DATA_MODE:
3995 case EXT4_INODE_WRITEBACK_DATA_MODE:
3996 break;
3997 case EXT4_INODE_JOURNAL_DATA_MODE:
3998 inode->i_mapping->a_ops = &ext4_journalled_aops;
3999 return;
4000 default:
4001 BUG();
4002 }
4003 if (IS_DAX(inode))
4004 inode->i_mapping->a_ops = &ext4_dax_aops;
4005 else if (test_opt(inode->i_sb, DELALLOC))
4006 inode->i_mapping->a_ops = &ext4_da_aops;
4007 else
4008 inode->i_mapping->a_ops = &ext4_aops;
4009 }
4010
4011 /*
4012 * Here we can't skip an unwritten buffer even though it usually reads zero
4013 * because it might have data in pagecache (eg, if called from ext4_zero_range,
4014 * ext4_punch_hole, etc) which needs to be properly zeroed out. Otherwise a
4015 * racing writeback can come later and flush the stale pagecache to disk.
4016 */
__ext4_block_zero_page_range(handle_t * handle,struct address_space * mapping,loff_t from,loff_t length)4017 static int __ext4_block_zero_page_range(handle_t *handle,
4018 struct address_space *mapping, loff_t from, loff_t length)
4019 {
4020 unsigned int offset, blocksize, pos;
4021 ext4_lblk_t iblock;
4022 struct inode *inode = mapping->host;
4023 struct buffer_head *bh;
4024 struct folio *folio;
4025 int err = 0;
4026
4027 folio = __filemap_get_folio(mapping, from >> PAGE_SHIFT,
4028 FGP_LOCK | FGP_ACCESSED | FGP_CREAT,
4029 mapping_gfp_constraint(mapping, ~__GFP_FS));
4030 if (IS_ERR(folio))
4031 return PTR_ERR(folio);
4032
4033 blocksize = inode->i_sb->s_blocksize;
4034
4035 iblock = EXT4_PG_TO_LBLK(inode, folio->index);
4036
4037 bh = folio_buffers(folio);
4038 if (!bh)
4039 bh = create_empty_buffers(folio, blocksize, 0);
4040
4041 /* Find the buffer that contains "offset" */
4042 offset = offset_in_folio(folio, from);
4043 pos = blocksize;
4044 while (offset >= pos) {
4045 bh = bh->b_this_page;
4046 iblock++;
4047 pos += blocksize;
4048 }
4049 if (buffer_freed(bh)) {
4050 BUFFER_TRACE(bh, "freed: skip");
4051 goto unlock;
4052 }
4053 if (!buffer_mapped(bh)) {
4054 BUFFER_TRACE(bh, "unmapped");
4055 ext4_get_block(inode, iblock, bh, 0);
4056 /* unmapped? It's a hole - nothing to do */
4057 if (!buffer_mapped(bh)) {
4058 BUFFER_TRACE(bh, "still unmapped");
4059 goto unlock;
4060 }
4061 }
4062
4063 /* Ok, it's mapped. Make sure it's up-to-date */
4064 if (folio_test_uptodate(folio))
4065 set_buffer_uptodate(bh);
4066
4067 if (!buffer_uptodate(bh)) {
4068 err = ext4_read_bh_lock(bh, 0, true);
4069 if (err)
4070 goto unlock;
4071 if (fscrypt_inode_uses_fs_layer_crypto(inode)) {
4072 /* We expect the key to be set. */
4073 BUG_ON(!fscrypt_has_encryption_key(inode));
4074 err = fscrypt_decrypt_pagecache_blocks(folio,
4075 blocksize,
4076 bh_offset(bh));
4077 if (err) {
4078 clear_buffer_uptodate(bh);
4079 goto unlock;
4080 }
4081 }
4082 }
4083 if (ext4_should_journal_data(inode)) {
4084 BUFFER_TRACE(bh, "get write access");
4085 err = ext4_journal_get_write_access(handle, inode->i_sb, bh,
4086 EXT4_JTR_NONE);
4087 if (err)
4088 goto unlock;
4089 }
4090 folio_zero_range(folio, offset, length);
4091 BUFFER_TRACE(bh, "zeroed end of block");
4092
4093 if (ext4_should_journal_data(inode)) {
4094 err = ext4_dirty_journalled_data(handle, bh);
4095 } else {
4096 mark_buffer_dirty(bh);
4097 /*
4098 * Only the written block requires ordered data to prevent
4099 * exposing stale data.
4100 */
4101 if (!buffer_unwritten(bh) && !buffer_delay(bh) &&
4102 ext4_should_order_data(inode))
4103 err = ext4_jbd2_inode_add_write(handle, inode, from,
4104 length);
4105 }
4106
4107 unlock:
4108 folio_unlock(folio);
4109 folio_put(folio);
4110 return err;
4111 }
4112
4113 /*
4114 * ext4_block_zero_page_range() zeros out a mapping of length 'length'
4115 * starting from file offset 'from'. The range to be zero'd must
4116 * be contained with in one block. If the specified range exceeds
4117 * the end of the block it will be shortened to end of the block
4118 * that corresponds to 'from'
4119 */
ext4_block_zero_page_range(handle_t * handle,struct address_space * mapping,loff_t from,loff_t length)4120 static int ext4_block_zero_page_range(handle_t *handle,
4121 struct address_space *mapping, loff_t from, loff_t length)
4122 {
4123 struct inode *inode = mapping->host;
4124 unsigned blocksize = inode->i_sb->s_blocksize;
4125 unsigned int max = blocksize - (from & (blocksize - 1));
4126
4127 /*
4128 * correct length if it does not fall between
4129 * 'from' and the end of the block
4130 */
4131 if (length > max || length < 0)
4132 length = max;
4133
4134 if (IS_DAX(inode)) {
4135 return dax_zero_range(inode, from, length, NULL,
4136 &ext4_iomap_ops);
4137 }
4138 return __ext4_block_zero_page_range(handle, mapping, from, length);
4139 }
4140
4141 /*
4142 * ext4_block_truncate_page() zeroes out a mapping from file offset `from'
4143 * up to the end of the block which corresponds to `from'.
4144 * This required during truncate. We need to physically zero the tail end
4145 * of that block so it doesn't yield old data if the file is later grown.
4146 */
ext4_block_truncate_page(handle_t * handle,struct address_space * mapping,loff_t from)4147 static int ext4_block_truncate_page(handle_t *handle,
4148 struct address_space *mapping, loff_t from)
4149 {
4150 unsigned length;
4151 unsigned blocksize;
4152 struct inode *inode = mapping->host;
4153
4154 /* If we are processing an encrypted inode during orphan list handling */
4155 if (IS_ENCRYPTED(inode) && !fscrypt_has_encryption_key(inode))
4156 return 0;
4157
4158 blocksize = i_blocksize(inode);
4159 length = blocksize - (from & (blocksize - 1));
4160
4161 return ext4_block_zero_page_range(handle, mapping, from, length);
4162 }
4163
ext4_zero_partial_blocks(handle_t * handle,struct inode * inode,loff_t lstart,loff_t length)4164 int ext4_zero_partial_blocks(handle_t *handle, struct inode *inode,
4165 loff_t lstart, loff_t length)
4166 {
4167 struct super_block *sb = inode->i_sb;
4168 struct address_space *mapping = inode->i_mapping;
4169 unsigned partial_start, partial_end;
4170 ext4_fsblk_t start, end;
4171 loff_t byte_end = (lstart + length - 1);
4172 int err = 0;
4173
4174 partial_start = lstart & (sb->s_blocksize - 1);
4175 partial_end = byte_end & (sb->s_blocksize - 1);
4176
4177 start = lstart >> sb->s_blocksize_bits;
4178 end = byte_end >> sb->s_blocksize_bits;
4179
4180 /* Handle partial zero within the single block */
4181 if (start == end &&
4182 (partial_start || (partial_end != sb->s_blocksize - 1))) {
4183 err = ext4_block_zero_page_range(handle, mapping,
4184 lstart, length);
4185 return err;
4186 }
4187 /* Handle partial zero out on the start of the range */
4188 if (partial_start) {
4189 err = ext4_block_zero_page_range(handle, mapping,
4190 lstart, sb->s_blocksize);
4191 if (err)
4192 return err;
4193 }
4194 /* Handle partial zero out on the end of the range */
4195 if (partial_end != sb->s_blocksize - 1)
4196 err = ext4_block_zero_page_range(handle, mapping,
4197 byte_end - partial_end,
4198 partial_end + 1);
4199 return err;
4200 }
4201
ext4_can_truncate(struct inode * inode)4202 int ext4_can_truncate(struct inode *inode)
4203 {
4204 if (S_ISREG(inode->i_mode))
4205 return 1;
4206 if (S_ISDIR(inode->i_mode))
4207 return 1;
4208 if (S_ISLNK(inode->i_mode))
4209 return !ext4_inode_is_fast_symlink(inode);
4210 return 0;
4211 }
4212
4213 /*
4214 * We have to make sure i_disksize gets properly updated before we truncate
4215 * page cache due to hole punching or zero range. Otherwise i_disksize update
4216 * can get lost as it may have been postponed to submission of writeback but
4217 * that will never happen if we remove the folio containing i_size from the
4218 * page cache. Also if we punch hole within i_size but above i_disksize,
4219 * following ext4_page_mkwrite() may mistakenly allocate written blocks over
4220 * the hole and thus introduce allocated blocks beyond i_disksize which is
4221 * not allowed (e2fsck would complain in case of crash).
4222 */
ext4_update_disksize_before_punch(struct inode * inode,loff_t offset,loff_t len)4223 int ext4_update_disksize_before_punch(struct inode *inode, loff_t offset,
4224 loff_t len)
4225 {
4226 handle_t *handle;
4227 int ret;
4228
4229 loff_t size = i_size_read(inode);
4230
4231 WARN_ON(!inode_is_locked(inode));
4232 if (offset > size)
4233 return 0;
4234
4235 if (offset + len < size)
4236 size = offset + len;
4237 if (EXT4_I(inode)->i_disksize >= size)
4238 return 0;
4239
4240 handle = ext4_journal_start(inode, EXT4_HT_MISC, 1);
4241 if (IS_ERR(handle))
4242 return PTR_ERR(handle);
4243 ext4_update_i_disksize(inode, size);
4244 ret = ext4_mark_inode_dirty(handle, inode);
4245 ext4_journal_stop(handle);
4246
4247 return ret;
4248 }
4249
ext4_truncate_folio(struct inode * inode,loff_t start,loff_t end)4250 static inline void ext4_truncate_folio(struct inode *inode,
4251 loff_t start, loff_t end)
4252 {
4253 unsigned long blocksize = i_blocksize(inode);
4254 struct folio *folio;
4255
4256 /* Nothing to be done if no complete block needs to be truncated. */
4257 if (round_up(start, blocksize) >= round_down(end, blocksize))
4258 return;
4259
4260 folio = filemap_lock_folio(inode->i_mapping, start >> PAGE_SHIFT);
4261 if (IS_ERR(folio))
4262 return;
4263
4264 if (folio_mkclean(folio))
4265 folio_mark_dirty(folio);
4266 folio_unlock(folio);
4267 folio_put(folio);
4268 }
4269
ext4_truncate_page_cache_block_range(struct inode * inode,loff_t start,loff_t end)4270 int ext4_truncate_page_cache_block_range(struct inode *inode,
4271 loff_t start, loff_t end)
4272 {
4273 unsigned long blocksize = i_blocksize(inode);
4274 int ret;
4275
4276 /*
4277 * For journalled data we need to write (and checkpoint) pages
4278 * before discarding page cache to avoid inconsitent data on disk
4279 * in case of crash before freeing or unwritten converting trans
4280 * is committed.
4281 */
4282 if (ext4_should_journal_data(inode)) {
4283 ret = filemap_write_and_wait_range(inode->i_mapping, start,
4284 end - 1);
4285 if (ret)
4286 return ret;
4287 goto truncate_pagecache;
4288 }
4289
4290 /*
4291 * If the block size is less than the page size, the file's mapped
4292 * blocks within one page could be freed or converted to unwritten.
4293 * So it's necessary to remove writable userspace mappings, and then
4294 * ext4_page_mkwrite() can be called during subsequent write access
4295 * to these partial folios.
4296 */
4297 if (!IS_ALIGNED(start | end, PAGE_SIZE) &&
4298 blocksize < PAGE_SIZE && start < inode->i_size) {
4299 loff_t page_boundary = round_up(start, PAGE_SIZE);
4300
4301 ext4_truncate_folio(inode, start, min(page_boundary, end));
4302 if (end > page_boundary)
4303 ext4_truncate_folio(inode,
4304 round_down(end, PAGE_SIZE), end);
4305 }
4306
4307 truncate_pagecache:
4308 truncate_pagecache_range(inode, start, end - 1);
4309 return 0;
4310 }
4311
ext4_wait_dax_page(struct inode * inode)4312 static void ext4_wait_dax_page(struct inode *inode)
4313 {
4314 filemap_invalidate_unlock(inode->i_mapping);
4315 schedule();
4316 filemap_invalidate_lock(inode->i_mapping);
4317 }
4318
ext4_break_layouts(struct inode * inode)4319 int ext4_break_layouts(struct inode *inode)
4320 {
4321 if (WARN_ON_ONCE(!rwsem_is_locked(&inode->i_mapping->invalidate_lock)))
4322 return -EINVAL;
4323
4324 return dax_break_layout_inode(inode, ext4_wait_dax_page);
4325 }
4326
4327 /*
4328 * ext4_punch_hole: punches a hole in a file by releasing the blocks
4329 * associated with the given offset and length
4330 *
4331 * @inode: File inode
4332 * @offset: The offset where the hole will begin
4333 * @len: The length of the hole
4334 *
4335 * Returns: 0 on success or negative on failure
4336 */
4337
ext4_punch_hole(struct file * file,loff_t offset,loff_t length)4338 int ext4_punch_hole(struct file *file, loff_t offset, loff_t length)
4339 {
4340 struct inode *inode = file_inode(file);
4341 struct super_block *sb = inode->i_sb;
4342 ext4_lblk_t start_lblk, end_lblk;
4343 loff_t max_end = sb->s_maxbytes;
4344 loff_t end = offset + length;
4345 handle_t *handle;
4346 unsigned int credits;
4347 int ret;
4348
4349 trace_ext4_punch_hole(inode, offset, length, 0);
4350 WARN_ON_ONCE(!inode_is_locked(inode));
4351
4352 /*
4353 * For indirect-block based inodes, make sure that the hole within
4354 * one block before last range.
4355 */
4356 if (!ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))
4357 max_end = EXT4_SB(sb)->s_bitmap_maxbytes - sb->s_blocksize;
4358
4359 /* No need to punch hole beyond i_size */
4360 if (offset >= inode->i_size || offset >= max_end)
4361 return 0;
4362
4363 /*
4364 * If the hole extends beyond i_size, set the hole to end after
4365 * the block that contains i_size to save pointless tail block zeroing.
4366 */
4367 if (end >= inode->i_size)
4368 end = round_up(inode->i_size, sb->s_blocksize);
4369 if (end > max_end)
4370 end = max_end;
4371 length = end - offset;
4372
4373 /*
4374 * Attach jinode to inode for jbd2 if we do any zeroing of partial
4375 * block.
4376 */
4377 if (!IS_ALIGNED(offset | end, sb->s_blocksize)) {
4378 ret = ext4_inode_attach_jinode(inode);
4379 if (ret < 0)
4380 return ret;
4381 }
4382
4383
4384 ret = ext4_update_disksize_before_punch(inode, offset, length);
4385 if (ret)
4386 return ret;
4387
4388 /* Now release the pages and zero block aligned part of pages*/
4389 ret = ext4_truncate_page_cache_block_range(inode, offset, end);
4390 if (ret)
4391 return ret;
4392
4393 if (ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))
4394 credits = ext4_chunk_trans_extent(inode, 2);
4395 else
4396 credits = ext4_blocks_for_truncate(inode);
4397 handle = ext4_journal_start(inode, EXT4_HT_TRUNCATE, credits);
4398 if (IS_ERR(handle)) {
4399 ret = PTR_ERR(handle);
4400 ext4_std_error(sb, ret);
4401 return ret;
4402 }
4403
4404 ret = ext4_zero_partial_blocks(handle, inode, offset, length);
4405 if (ret)
4406 goto out_handle;
4407
4408 /* If there are blocks to remove, do it */
4409 start_lblk = EXT4_B_TO_LBLK(inode, offset);
4410 end_lblk = end >> inode->i_blkbits;
4411
4412 if (end_lblk > start_lblk) {
4413 ext4_lblk_t hole_len = end_lblk - start_lblk;
4414
4415 ext4_fc_track_inode(handle, inode);
4416 ext4_check_map_extents_env(inode);
4417 down_write(&EXT4_I(inode)->i_data_sem);
4418 ext4_discard_preallocations(inode);
4419
4420 ext4_es_remove_extent(inode, start_lblk, hole_len);
4421
4422 if (ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))
4423 ret = ext4_ext_remove_space(inode, start_lblk,
4424 end_lblk - 1);
4425 else
4426 ret = ext4_ind_remove_space(handle, inode, start_lblk,
4427 end_lblk);
4428 if (ret) {
4429 up_write(&EXT4_I(inode)->i_data_sem);
4430 goto out_handle;
4431 }
4432
4433 ext4_es_insert_extent(inode, start_lblk, hole_len, ~0,
4434 EXTENT_STATUS_HOLE, 0);
4435 up_write(&EXT4_I(inode)->i_data_sem);
4436 }
4437 ext4_fc_track_range(handle, inode, start_lblk, end_lblk);
4438
4439 ret = ext4_mark_inode_dirty(handle, inode);
4440 if (unlikely(ret))
4441 goto out_handle;
4442
4443 ext4_update_inode_fsync_trans(handle, inode, 1);
4444 if (IS_SYNC(inode))
4445 ext4_handle_sync(handle);
4446 out_handle:
4447 ext4_journal_stop(handle);
4448 return ret;
4449 }
4450
ext4_inode_attach_jinode(struct inode * inode)4451 int ext4_inode_attach_jinode(struct inode *inode)
4452 {
4453 struct ext4_inode_info *ei = EXT4_I(inode);
4454 struct jbd2_inode *jinode;
4455
4456 if (ei->jinode || !EXT4_SB(inode->i_sb)->s_journal)
4457 return 0;
4458
4459 jinode = jbd2_alloc_inode(GFP_KERNEL);
4460 spin_lock(&inode->i_lock);
4461 if (!ei->jinode) {
4462 if (!jinode) {
4463 spin_unlock(&inode->i_lock);
4464 return -ENOMEM;
4465 }
4466 jbd2_journal_init_jbd_inode(jinode, inode);
4467 /*
4468 * Publish ->jinode only after it is fully initialized so that
4469 * readers never observe a partially initialized jbd2_inode.
4470 */
4471 smp_wmb();
4472 WRITE_ONCE(ei->jinode, jinode);
4473 jinode = NULL;
4474 }
4475 spin_unlock(&inode->i_lock);
4476 if (unlikely(jinode != NULL))
4477 jbd2_free_inode(jinode);
4478 return 0;
4479 }
4480
4481 /*
4482 * ext4_truncate()
4483 *
4484 * We block out ext4_get_block() block instantiations across the entire
4485 * transaction, and VFS/VM ensures that ext4_truncate() cannot run
4486 * simultaneously on behalf of the same inode.
4487 *
4488 * As we work through the truncate and commit bits of it to the journal there
4489 * is one core, guiding principle: the file's tree must always be consistent on
4490 * disk. We must be able to restart the truncate after a crash.
4491 *
4492 * The file's tree may be transiently inconsistent in memory (although it
4493 * probably isn't), but whenever we close off and commit a journal transaction,
4494 * the contents of (the filesystem + the journal) must be consistent and
4495 * restartable. It's pretty simple, really: bottom up, right to left (although
4496 * left-to-right works OK too).
4497 *
4498 * Note that at recovery time, journal replay occurs *before* the restart of
4499 * truncate against the orphan inode list.
4500 *
4501 * The committed inode has the new, desired i_size (which is the same as
4502 * i_disksize in this case). After a crash, ext4_orphan_cleanup() will see
4503 * that this inode's truncate did not complete and it will again call
4504 * ext4_truncate() to have another go. So there will be instantiated blocks
4505 * to the right of the truncation point in a crashed ext4 filesystem. But
4506 * that's fine - as long as they are linked from the inode, the post-crash
4507 * ext4_truncate() run will find them and release them.
4508 */
ext4_truncate(struct inode * inode)4509 int ext4_truncate(struct inode *inode)
4510 {
4511 struct ext4_inode_info *ei = EXT4_I(inode);
4512 unsigned int credits;
4513 int err = 0, err2;
4514 handle_t *handle;
4515 struct address_space *mapping = inode->i_mapping;
4516
4517 /*
4518 * There is a possibility that we're either freeing the inode
4519 * or it's a completely new inode. In those cases we might not
4520 * have i_rwsem locked because it's not necessary.
4521 */
4522 if (!(inode_state_read_once(inode) & (I_NEW | I_FREEING)))
4523 WARN_ON(!inode_is_locked(inode));
4524 trace_ext4_truncate_enter(inode);
4525
4526 if (!ext4_can_truncate(inode))
4527 goto out_trace;
4528
4529 if (inode->i_size == 0 && !test_opt(inode->i_sb, NO_AUTO_DA_ALLOC))
4530 ext4_set_inode_state(inode, EXT4_STATE_DA_ALLOC_CLOSE);
4531
4532 if (ext4_has_inline_data(inode)) {
4533 int has_inline = 1;
4534
4535 err = ext4_inline_data_truncate(inode, &has_inline);
4536 if (err || has_inline)
4537 goto out_trace;
4538 }
4539
4540 /* If we zero-out tail of the page, we have to create jinode for jbd2 */
4541 if (inode->i_size & (inode->i_sb->s_blocksize - 1)) {
4542 err = ext4_inode_attach_jinode(inode);
4543 if (err)
4544 goto out_trace;
4545 }
4546
4547 if (ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))
4548 credits = ext4_chunk_trans_extent(inode, 1);
4549 else
4550 credits = ext4_blocks_for_truncate(inode);
4551
4552 handle = ext4_journal_start(inode, EXT4_HT_TRUNCATE, credits);
4553 if (IS_ERR(handle)) {
4554 err = PTR_ERR(handle);
4555 goto out_trace;
4556 }
4557
4558 if (inode->i_size & (inode->i_sb->s_blocksize - 1))
4559 ext4_block_truncate_page(handle, mapping, inode->i_size);
4560
4561 /*
4562 * We add the inode to the orphan list, so that if this
4563 * truncate spans multiple transactions, and we crash, we will
4564 * resume the truncate when the filesystem recovers. It also
4565 * marks the inode dirty, to catch the new size.
4566 *
4567 * Implication: the file must always be in a sane, consistent
4568 * truncatable state while each transaction commits.
4569 */
4570 err = ext4_orphan_add(handle, inode);
4571 if (err)
4572 goto out_stop;
4573
4574 ext4_fc_track_inode(handle, inode);
4575 ext4_check_map_extents_env(inode);
4576
4577 down_write(&EXT4_I(inode)->i_data_sem);
4578 ext4_discard_preallocations(inode);
4579
4580 if (ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))
4581 err = ext4_ext_truncate(handle, inode);
4582 else
4583 ext4_ind_truncate(handle, inode);
4584
4585 up_write(&ei->i_data_sem);
4586 if (err)
4587 goto out_stop;
4588
4589 if (IS_SYNC(inode))
4590 ext4_handle_sync(handle);
4591
4592 out_stop:
4593 /*
4594 * If this was a simple ftruncate() and the file will remain alive,
4595 * then we need to clear up the orphan record which we created above.
4596 * However, if this was a real unlink then we were called by
4597 * ext4_evict_inode(), and we allow that function to clean up the
4598 * orphan info for us.
4599 */
4600 if (inode->i_nlink)
4601 ext4_orphan_del(handle, inode);
4602
4603 inode_set_mtime_to_ts(inode, inode_set_ctime_current(inode));
4604 err2 = ext4_mark_inode_dirty(handle, inode);
4605 if (unlikely(err2 && !err))
4606 err = err2;
4607 ext4_journal_stop(handle);
4608
4609 out_trace:
4610 trace_ext4_truncate_exit(inode);
4611 return err;
4612 }
4613
ext4_inode_peek_iversion(const struct inode * inode)4614 static inline u64 ext4_inode_peek_iversion(const struct inode *inode)
4615 {
4616 if (unlikely(EXT4_I(inode)->i_flags & EXT4_EA_INODE_FL))
4617 return inode_peek_iversion_raw(inode);
4618 else
4619 return inode_peek_iversion(inode);
4620 }
4621
ext4_inode_blocks_set(struct ext4_inode * raw_inode,struct ext4_inode_info * ei)4622 static int ext4_inode_blocks_set(struct ext4_inode *raw_inode,
4623 struct ext4_inode_info *ei)
4624 {
4625 struct inode *inode = &(ei->vfs_inode);
4626 u64 i_blocks = READ_ONCE(inode->i_blocks);
4627 struct super_block *sb = inode->i_sb;
4628
4629 if (i_blocks <= ~0U) {
4630 /*
4631 * i_blocks can be represented in a 32 bit variable
4632 * as multiple of 512 bytes
4633 */
4634 raw_inode->i_blocks_lo = cpu_to_le32(i_blocks);
4635 raw_inode->i_blocks_high = 0;
4636 ext4_clear_inode_flag(inode, EXT4_INODE_HUGE_FILE);
4637 return 0;
4638 }
4639
4640 /*
4641 * This should never happen since sb->s_maxbytes should not have
4642 * allowed this, sb->s_maxbytes was set according to the huge_file
4643 * feature in ext4_fill_super().
4644 */
4645 if (!ext4_has_feature_huge_file(sb))
4646 return -EFSCORRUPTED;
4647
4648 if (i_blocks <= 0xffffffffffffULL) {
4649 /*
4650 * i_blocks can be represented in a 48 bit variable
4651 * as multiple of 512 bytes
4652 */
4653 raw_inode->i_blocks_lo = cpu_to_le32(i_blocks);
4654 raw_inode->i_blocks_high = cpu_to_le16(i_blocks >> 32);
4655 ext4_clear_inode_flag(inode, EXT4_INODE_HUGE_FILE);
4656 } else {
4657 ext4_set_inode_flag(inode, EXT4_INODE_HUGE_FILE);
4658 /* i_block is stored in file system block size */
4659 i_blocks = i_blocks >> (inode->i_blkbits - 9);
4660 raw_inode->i_blocks_lo = cpu_to_le32(i_blocks);
4661 raw_inode->i_blocks_high = cpu_to_le16(i_blocks >> 32);
4662 }
4663 return 0;
4664 }
4665
ext4_fill_raw_inode(struct inode * inode,struct ext4_inode * raw_inode)4666 static int ext4_fill_raw_inode(struct inode *inode, struct ext4_inode *raw_inode)
4667 {
4668 struct ext4_inode_info *ei = EXT4_I(inode);
4669 uid_t i_uid;
4670 gid_t i_gid;
4671 projid_t i_projid;
4672 int block;
4673 int err;
4674
4675 err = ext4_inode_blocks_set(raw_inode, ei);
4676
4677 raw_inode->i_mode = cpu_to_le16(inode->i_mode);
4678 i_uid = i_uid_read(inode);
4679 i_gid = i_gid_read(inode);
4680 i_projid = from_kprojid(&init_user_ns, ei->i_projid);
4681 if (!(test_opt(inode->i_sb, NO_UID32))) {
4682 raw_inode->i_uid_low = cpu_to_le16(low_16_bits(i_uid));
4683 raw_inode->i_gid_low = cpu_to_le16(low_16_bits(i_gid));
4684 /*
4685 * Fix up interoperability with old kernels. Otherwise,
4686 * old inodes get re-used with the upper 16 bits of the
4687 * uid/gid intact.
4688 */
4689 if (ei->i_dtime && !ext4_inode_orphan_tracked(inode)) {
4690 raw_inode->i_uid_high = 0;
4691 raw_inode->i_gid_high = 0;
4692 } else {
4693 raw_inode->i_uid_high =
4694 cpu_to_le16(high_16_bits(i_uid));
4695 raw_inode->i_gid_high =
4696 cpu_to_le16(high_16_bits(i_gid));
4697 }
4698 } else {
4699 raw_inode->i_uid_low = cpu_to_le16(fs_high2lowuid(i_uid));
4700 raw_inode->i_gid_low = cpu_to_le16(fs_high2lowgid(i_gid));
4701 raw_inode->i_uid_high = 0;
4702 raw_inode->i_gid_high = 0;
4703 }
4704 raw_inode->i_links_count = cpu_to_le16(inode->i_nlink);
4705
4706 EXT4_INODE_SET_CTIME(inode, raw_inode);
4707 EXT4_INODE_SET_MTIME(inode, raw_inode);
4708 EXT4_INODE_SET_ATIME(inode, raw_inode);
4709 EXT4_EINODE_SET_XTIME(i_crtime, ei, raw_inode);
4710
4711 raw_inode->i_dtime = cpu_to_le32(ei->i_dtime);
4712 raw_inode->i_flags = cpu_to_le32(ei->i_flags & 0xFFFFFFFF);
4713 if (likely(!test_opt2(inode->i_sb, HURD_COMPAT)))
4714 raw_inode->i_file_acl_high =
4715 cpu_to_le16(ei->i_file_acl >> 32);
4716 raw_inode->i_file_acl_lo = cpu_to_le32(ei->i_file_acl);
4717 ext4_isize_set(raw_inode, ei->i_disksize);
4718
4719 raw_inode->i_generation = cpu_to_le32(inode->i_generation);
4720 if (S_ISCHR(inode->i_mode) || S_ISBLK(inode->i_mode)) {
4721 if (old_valid_dev(inode->i_rdev)) {
4722 raw_inode->i_block[0] =
4723 cpu_to_le32(old_encode_dev(inode->i_rdev));
4724 raw_inode->i_block[1] = 0;
4725 } else {
4726 raw_inode->i_block[0] = 0;
4727 raw_inode->i_block[1] =
4728 cpu_to_le32(new_encode_dev(inode->i_rdev));
4729 raw_inode->i_block[2] = 0;
4730 }
4731 } else if (!ext4_has_inline_data(inode)) {
4732 for (block = 0; block < EXT4_N_BLOCKS; block++)
4733 raw_inode->i_block[block] = ei->i_data[block];
4734 }
4735
4736 if (likely(!test_opt2(inode->i_sb, HURD_COMPAT))) {
4737 u64 ivers = ext4_inode_peek_iversion(inode);
4738
4739 raw_inode->i_disk_version = cpu_to_le32(ivers);
4740 if (ei->i_extra_isize) {
4741 if (EXT4_FITS_IN_INODE(raw_inode, ei, i_version_hi))
4742 raw_inode->i_version_hi =
4743 cpu_to_le32(ivers >> 32);
4744 raw_inode->i_extra_isize =
4745 cpu_to_le16(ei->i_extra_isize);
4746 }
4747 }
4748
4749 if (i_projid != EXT4_DEF_PROJID &&
4750 !ext4_has_feature_project(inode->i_sb))
4751 err = err ?: -EFSCORRUPTED;
4752
4753 if (EXT4_INODE_SIZE(inode->i_sb) > EXT4_GOOD_OLD_INODE_SIZE &&
4754 EXT4_FITS_IN_INODE(raw_inode, ei, i_projid))
4755 raw_inode->i_projid = cpu_to_le32(i_projid);
4756
4757 ext4_inode_csum_set(inode, raw_inode, ei);
4758 return err;
4759 }
4760
4761 /*
4762 * ext4_get_inode_loc returns with an extra refcount against the inode's
4763 * underlying buffer_head on success. If we pass 'inode' and it does not
4764 * have in-inode xattr, we have all inode data in memory that is needed
4765 * to recreate the on-disk version of this inode.
4766 */
__ext4_get_inode_loc(struct super_block * sb,unsigned long ino,struct inode * inode,struct ext4_iloc * iloc,ext4_fsblk_t * ret_block)4767 static int __ext4_get_inode_loc(struct super_block *sb, unsigned long ino,
4768 struct inode *inode, struct ext4_iloc *iloc,
4769 ext4_fsblk_t *ret_block)
4770 {
4771 struct ext4_group_desc *gdp;
4772 struct buffer_head *bh;
4773 ext4_fsblk_t block;
4774 struct blk_plug plug;
4775 int inodes_per_block, inode_offset;
4776
4777 iloc->bh = NULL;
4778 if (ino < EXT4_ROOT_INO ||
4779 ino > le32_to_cpu(EXT4_SB(sb)->s_es->s_inodes_count))
4780 return -EFSCORRUPTED;
4781
4782 iloc->block_group = (ino - 1) / EXT4_INODES_PER_GROUP(sb);
4783 gdp = ext4_get_group_desc(sb, iloc->block_group, NULL);
4784 if (!gdp)
4785 return -EIO;
4786
4787 /*
4788 * Figure out the offset within the block group inode table
4789 */
4790 inodes_per_block = EXT4_SB(sb)->s_inodes_per_block;
4791 inode_offset = ((ino - 1) %
4792 EXT4_INODES_PER_GROUP(sb));
4793 iloc->offset = (inode_offset % inodes_per_block) * EXT4_INODE_SIZE(sb);
4794
4795 block = ext4_inode_table(sb, gdp);
4796 if ((block <= le32_to_cpu(EXT4_SB(sb)->s_es->s_first_data_block)) ||
4797 (block >= ext4_blocks_count(EXT4_SB(sb)->s_es))) {
4798 ext4_error(sb, "Invalid inode table block %llu in "
4799 "block_group %u", block, iloc->block_group);
4800 return -EFSCORRUPTED;
4801 }
4802 block += (inode_offset / inodes_per_block);
4803
4804 bh = sb_getblk(sb, block);
4805 if (unlikely(!bh))
4806 return -ENOMEM;
4807 if (ext4_buffer_uptodate(bh))
4808 goto has_buffer;
4809
4810 lock_buffer(bh);
4811 if (ext4_buffer_uptodate(bh)) {
4812 /* Someone brought it uptodate while we waited */
4813 unlock_buffer(bh);
4814 goto has_buffer;
4815 }
4816
4817 /*
4818 * If we have all information of the inode in memory and this
4819 * is the only valid inode in the block, we need not read the
4820 * block.
4821 */
4822 if (inode && !ext4_test_inode_state(inode, EXT4_STATE_XATTR)) {
4823 struct buffer_head *bitmap_bh;
4824 int i, start;
4825
4826 start = inode_offset & ~(inodes_per_block - 1);
4827
4828 /* Is the inode bitmap in cache? */
4829 bitmap_bh = sb_getblk(sb, ext4_inode_bitmap(sb, gdp));
4830 if (unlikely(!bitmap_bh))
4831 goto make_io;
4832
4833 /*
4834 * If the inode bitmap isn't in cache then the
4835 * optimisation may end up performing two reads instead
4836 * of one, so skip it.
4837 */
4838 if (!buffer_uptodate(bitmap_bh)) {
4839 brelse(bitmap_bh);
4840 goto make_io;
4841 }
4842 for (i = start; i < start + inodes_per_block; i++) {
4843 if (i == inode_offset)
4844 continue;
4845 if (ext4_test_bit(i, bitmap_bh->b_data))
4846 break;
4847 }
4848 brelse(bitmap_bh);
4849 if (i == start + inodes_per_block) {
4850 struct ext4_inode *raw_inode =
4851 (struct ext4_inode *) (bh->b_data + iloc->offset);
4852
4853 /* all other inodes are free, so skip I/O */
4854 memset(bh->b_data, 0, bh->b_size);
4855 if (!ext4_test_inode_state(inode, EXT4_STATE_NEW))
4856 ext4_fill_raw_inode(inode, raw_inode);
4857 set_buffer_uptodate(bh);
4858 unlock_buffer(bh);
4859 goto has_buffer;
4860 }
4861 }
4862
4863 make_io:
4864 /*
4865 * If we need to do any I/O, try to pre-readahead extra
4866 * blocks from the inode table.
4867 */
4868 blk_start_plug(&plug);
4869 if (EXT4_SB(sb)->s_inode_readahead_blks) {
4870 ext4_fsblk_t b, end, table;
4871 unsigned num;
4872 __u32 ra_blks = EXT4_SB(sb)->s_inode_readahead_blks;
4873
4874 table = ext4_inode_table(sb, gdp);
4875 /* s_inode_readahead_blks is always a power of 2 */
4876 b = block & ~((ext4_fsblk_t) ra_blks - 1);
4877 if (table > b)
4878 b = table;
4879 end = b + ra_blks;
4880 num = EXT4_INODES_PER_GROUP(sb);
4881 if (ext4_has_group_desc_csum(sb))
4882 num -= ext4_itable_unused_count(sb, gdp);
4883 table += num / inodes_per_block;
4884 if (end > table)
4885 end = table;
4886 while (b <= end)
4887 ext4_sb_breadahead_unmovable(sb, b++);
4888 }
4889
4890 /*
4891 * There are other valid inodes in the buffer, this inode
4892 * has in-inode xattrs, or we don't have this inode in memory.
4893 * Read the block from disk.
4894 */
4895 trace_ext4_load_inode(sb, ino);
4896 ext4_read_bh_nowait(bh, REQ_META | REQ_PRIO, NULL,
4897 ext4_simulate_fail(sb, EXT4_SIM_INODE_EIO));
4898 blk_finish_plug(&plug);
4899 wait_on_buffer(bh);
4900 if (!buffer_uptodate(bh)) {
4901 if (ret_block)
4902 *ret_block = block;
4903 brelse(bh);
4904 return -EIO;
4905 }
4906 has_buffer:
4907 iloc->bh = bh;
4908 return 0;
4909 }
4910
__ext4_get_inode_loc_noinmem(struct inode * inode,struct ext4_iloc * iloc)4911 static int __ext4_get_inode_loc_noinmem(struct inode *inode,
4912 struct ext4_iloc *iloc)
4913 {
4914 ext4_fsblk_t err_blk = 0;
4915 int ret;
4916
4917 ret = __ext4_get_inode_loc(inode->i_sb, inode->i_ino, NULL, iloc,
4918 &err_blk);
4919
4920 if (ret == -EIO)
4921 ext4_error_inode_block(inode, err_blk, EIO,
4922 "unable to read itable block");
4923
4924 return ret;
4925 }
4926
ext4_get_inode_loc(struct inode * inode,struct ext4_iloc * iloc)4927 int ext4_get_inode_loc(struct inode *inode, struct ext4_iloc *iloc)
4928 {
4929 ext4_fsblk_t err_blk = 0;
4930 int ret;
4931
4932 ret = __ext4_get_inode_loc(inode->i_sb, inode->i_ino, inode, iloc,
4933 &err_blk);
4934
4935 if (ret == -EIO)
4936 ext4_error_inode_block(inode, err_blk, EIO,
4937 "unable to read itable block");
4938
4939 return ret;
4940 }
4941
4942
ext4_get_fc_inode_loc(struct super_block * sb,unsigned long ino,struct ext4_iloc * iloc)4943 int ext4_get_fc_inode_loc(struct super_block *sb, unsigned long ino,
4944 struct ext4_iloc *iloc)
4945 {
4946 return __ext4_get_inode_loc(sb, ino, NULL, iloc, NULL);
4947 }
4948
ext4_should_enable_dax(struct inode * inode)4949 static bool ext4_should_enable_dax(struct inode *inode)
4950 {
4951 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
4952
4953 if (test_opt2(inode->i_sb, DAX_NEVER))
4954 return false;
4955 if (!S_ISREG(inode->i_mode))
4956 return false;
4957 if (ext4_should_journal_data(inode))
4958 return false;
4959 if (ext4_has_inline_data(inode))
4960 return false;
4961 if (ext4_test_inode_flag(inode, EXT4_INODE_ENCRYPT))
4962 return false;
4963 if (ext4_test_inode_flag(inode, EXT4_INODE_VERITY))
4964 return false;
4965 if (!test_bit(EXT4_FLAGS_BDEV_IS_DAX, &sbi->s_ext4_flags))
4966 return false;
4967 if (test_opt(inode->i_sb, DAX_ALWAYS))
4968 return true;
4969
4970 return ext4_test_inode_flag(inode, EXT4_INODE_DAX);
4971 }
4972
ext4_set_inode_flags(struct inode * inode,bool init)4973 void ext4_set_inode_flags(struct inode *inode, bool init)
4974 {
4975 unsigned int flags = EXT4_I(inode)->i_flags;
4976 unsigned int new_fl = 0;
4977
4978 WARN_ON_ONCE(IS_DAX(inode) && init);
4979
4980 if (flags & EXT4_SYNC_FL)
4981 new_fl |= S_SYNC;
4982 if (flags & EXT4_APPEND_FL)
4983 new_fl |= S_APPEND;
4984 if (flags & EXT4_IMMUTABLE_FL)
4985 new_fl |= S_IMMUTABLE;
4986 if (flags & EXT4_NOATIME_FL)
4987 new_fl |= S_NOATIME;
4988 if (flags & EXT4_DIRSYNC_FL)
4989 new_fl |= S_DIRSYNC;
4990
4991 /* Because of the way inode_set_flags() works we must preserve S_DAX
4992 * here if already set. */
4993 new_fl |= (inode->i_flags & S_DAX);
4994 if (init && ext4_should_enable_dax(inode))
4995 new_fl |= S_DAX;
4996
4997 if (flags & EXT4_ENCRYPT_FL)
4998 new_fl |= S_ENCRYPTED;
4999 if (flags & EXT4_CASEFOLD_FL)
5000 new_fl |= S_CASEFOLD;
5001 if (flags & EXT4_VERITY_FL)
5002 new_fl |= S_VERITY;
5003 inode_set_flags(inode, new_fl,
5004 S_SYNC|S_APPEND|S_IMMUTABLE|S_NOATIME|S_DIRSYNC|S_DAX|
5005 S_ENCRYPTED|S_CASEFOLD|S_VERITY);
5006 }
5007
ext4_inode_blocks(struct ext4_inode * raw_inode,struct ext4_inode_info * ei)5008 static blkcnt_t ext4_inode_blocks(struct ext4_inode *raw_inode,
5009 struct ext4_inode_info *ei)
5010 {
5011 blkcnt_t i_blocks ;
5012 struct inode *inode = &(ei->vfs_inode);
5013 struct super_block *sb = inode->i_sb;
5014
5015 if (ext4_has_feature_huge_file(sb)) {
5016 /* we are using combined 48 bit field */
5017 i_blocks = ((u64)le16_to_cpu(raw_inode->i_blocks_high)) << 32 |
5018 le32_to_cpu(raw_inode->i_blocks_lo);
5019 if (ext4_test_inode_flag(inode, EXT4_INODE_HUGE_FILE)) {
5020 /* i_blocks represent file system block size */
5021 return i_blocks << (inode->i_blkbits - 9);
5022 } else {
5023 return i_blocks;
5024 }
5025 } else {
5026 return le32_to_cpu(raw_inode->i_blocks_lo);
5027 }
5028 }
5029
ext4_iget_extra_inode(struct inode * inode,struct ext4_inode * raw_inode,struct ext4_inode_info * ei)5030 static inline int ext4_iget_extra_inode(struct inode *inode,
5031 struct ext4_inode *raw_inode,
5032 struct ext4_inode_info *ei)
5033 {
5034 __le32 *magic = (void *)raw_inode +
5035 EXT4_GOOD_OLD_INODE_SIZE + ei->i_extra_isize;
5036
5037 if (EXT4_INODE_HAS_XATTR_SPACE(inode) &&
5038 *magic == cpu_to_le32(EXT4_XATTR_MAGIC)) {
5039 int err;
5040
5041 err = xattr_check_inode(inode, IHDR(inode, raw_inode),
5042 ITAIL(inode, raw_inode));
5043 if (err)
5044 return err;
5045
5046 ext4_set_inode_state(inode, EXT4_STATE_XATTR);
5047 err = ext4_find_inline_data_nolock(inode);
5048 if (!err && ext4_has_inline_data(inode))
5049 ext4_set_inode_state(inode, EXT4_STATE_MAY_INLINE_DATA);
5050 return err;
5051 } else
5052 EXT4_I(inode)->i_inline_off = 0;
5053 return 0;
5054 }
5055
ext4_get_projid(struct inode * inode,kprojid_t * projid)5056 int ext4_get_projid(struct inode *inode, kprojid_t *projid)
5057 {
5058 if (!ext4_has_feature_project(inode->i_sb))
5059 return -EOPNOTSUPP;
5060 *projid = EXT4_I(inode)->i_projid;
5061 return 0;
5062 }
5063
5064 /*
5065 * ext4 has self-managed i_version for ea inodes, it stores the lower 32bit of
5066 * refcount in i_version, so use raw values if inode has EXT4_EA_INODE_FL flag
5067 * set.
5068 */
ext4_inode_set_iversion_queried(struct inode * inode,u64 val)5069 static inline void ext4_inode_set_iversion_queried(struct inode *inode, u64 val)
5070 {
5071 if (unlikely(EXT4_I(inode)->i_flags & EXT4_EA_INODE_FL))
5072 inode_set_iversion_raw(inode, val);
5073 else
5074 inode_set_iversion_queried(inode, val);
5075 }
5076
check_igot_inode(struct inode * inode,ext4_iget_flags flags,const char * function,unsigned int line)5077 static int check_igot_inode(struct inode *inode, ext4_iget_flags flags,
5078 const char *function, unsigned int line)
5079 {
5080 const char *err_str;
5081
5082 if (flags & EXT4_IGET_EA_INODE) {
5083 if (!(EXT4_I(inode)->i_flags & EXT4_EA_INODE_FL)) {
5084 err_str = "missing EA_INODE flag";
5085 goto error;
5086 }
5087 if (ext4_test_inode_state(inode, EXT4_STATE_XATTR) ||
5088 EXT4_I(inode)->i_file_acl) {
5089 err_str = "ea_inode with extended attributes";
5090 goto error;
5091 }
5092 } else {
5093 if ((EXT4_I(inode)->i_flags & EXT4_EA_INODE_FL)) {
5094 /*
5095 * open_by_handle_at() could provide an old inode number
5096 * that has since been reused for an ea_inode; this does
5097 * not indicate filesystem corruption
5098 */
5099 if (flags & EXT4_IGET_HANDLE)
5100 return -ESTALE;
5101 err_str = "unexpected EA_INODE flag";
5102 goto error;
5103 }
5104 }
5105 if (is_bad_inode(inode) && !(flags & EXT4_IGET_BAD)) {
5106 err_str = "unexpected bad inode w/o EXT4_IGET_BAD";
5107 goto error;
5108 }
5109 return 0;
5110
5111 error:
5112 ext4_error_inode(inode, function, line, 0, "%s", err_str);
5113 return -EFSCORRUPTED;
5114 }
5115
ext4_set_inode_mapping_order(struct inode * inode)5116 void ext4_set_inode_mapping_order(struct inode *inode)
5117 {
5118 struct super_block *sb = inode->i_sb;
5119 u16 min_order, max_order;
5120
5121 max_order = EXT4_SB(sb)->s_max_folio_order;
5122 if (!max_order)
5123 return;
5124
5125 min_order = EXT4_SB(sb)->s_min_folio_order;
5126 if (!min_order && !S_ISREG(inode->i_mode))
5127 return;
5128
5129 if (ext4_test_inode_flag(inode, EXT4_INODE_JOURNAL_DATA))
5130 max_order = min_order;
5131
5132 mapping_set_folio_order_range(inode->i_mapping, min_order, max_order);
5133 }
5134
__ext4_iget(struct super_block * sb,unsigned long ino,ext4_iget_flags flags,const char * function,unsigned int line)5135 struct inode *__ext4_iget(struct super_block *sb, unsigned long ino,
5136 ext4_iget_flags flags, const char *function,
5137 unsigned int line)
5138 {
5139 struct ext4_iloc iloc;
5140 struct ext4_inode *raw_inode;
5141 struct ext4_inode_info *ei;
5142 struct ext4_super_block *es = EXT4_SB(sb)->s_es;
5143 struct inode *inode;
5144 journal_t *journal = EXT4_SB(sb)->s_journal;
5145 long ret;
5146 loff_t size;
5147 int block;
5148 uid_t i_uid;
5149 gid_t i_gid;
5150 projid_t i_projid;
5151
5152 if ((!(flags & EXT4_IGET_SPECIAL) && is_special_ino(sb, ino)) ||
5153 (ino < EXT4_ROOT_INO) ||
5154 (ino > le32_to_cpu(es->s_inodes_count))) {
5155 if (flags & EXT4_IGET_HANDLE)
5156 return ERR_PTR(-ESTALE);
5157 __ext4_error(sb, function, line, false, EFSCORRUPTED, 0,
5158 "inode #%lu: comm %s: iget: illegal inode #",
5159 ino, current->comm);
5160 return ERR_PTR(-EFSCORRUPTED);
5161 }
5162
5163 inode = iget_locked(sb, ino);
5164 if (!inode)
5165 return ERR_PTR(-ENOMEM);
5166 if (!(inode_state_read_once(inode) & I_NEW)) {
5167 ret = check_igot_inode(inode, flags, function, line);
5168 if (ret) {
5169 iput(inode);
5170 return ERR_PTR(ret);
5171 }
5172 return inode;
5173 }
5174
5175 ei = EXT4_I(inode);
5176 iloc.bh = NULL;
5177
5178 ret = __ext4_get_inode_loc_noinmem(inode, &iloc);
5179 if (ret < 0)
5180 goto bad_inode;
5181 raw_inode = ext4_raw_inode(&iloc);
5182
5183 if ((flags & EXT4_IGET_HANDLE) &&
5184 (raw_inode->i_links_count == 0) && (raw_inode->i_mode == 0)) {
5185 ret = -ESTALE;
5186 goto bad_inode;
5187 }
5188
5189 if (EXT4_INODE_SIZE(inode->i_sb) > EXT4_GOOD_OLD_INODE_SIZE) {
5190 ei->i_extra_isize = le16_to_cpu(raw_inode->i_extra_isize);
5191 if (EXT4_GOOD_OLD_INODE_SIZE + ei->i_extra_isize >
5192 EXT4_INODE_SIZE(inode->i_sb) ||
5193 (ei->i_extra_isize & 3)) {
5194 ext4_error_inode(inode, function, line, 0,
5195 "iget: bad extra_isize %u "
5196 "(inode size %u)",
5197 ei->i_extra_isize,
5198 EXT4_INODE_SIZE(inode->i_sb));
5199 ret = -EFSCORRUPTED;
5200 goto bad_inode;
5201 }
5202 } else
5203 ei->i_extra_isize = 0;
5204
5205 /* Precompute checksum seed for inode metadata */
5206 if (ext4_has_feature_metadata_csum(sb)) {
5207 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
5208 __u32 csum;
5209 __le32 inum = cpu_to_le32(inode->i_ino);
5210 __le32 gen = raw_inode->i_generation;
5211 csum = ext4_chksum(sbi->s_csum_seed, (__u8 *)&inum,
5212 sizeof(inum));
5213 ei->i_csum_seed = ext4_chksum(csum, (__u8 *)&gen, sizeof(gen));
5214 }
5215
5216 if ((!ext4_inode_csum_verify(inode, raw_inode, ei) ||
5217 ext4_simulate_fail(sb, EXT4_SIM_INODE_CRC)) &&
5218 (!(EXT4_SB(sb)->s_mount_state & EXT4_FC_REPLAY))) {
5219 ext4_error_inode_err(inode, function, line, 0,
5220 EFSBADCRC, "iget: checksum invalid");
5221 ret = -EFSBADCRC;
5222 goto bad_inode;
5223 }
5224
5225 inode->i_mode = le16_to_cpu(raw_inode->i_mode);
5226 i_uid = (uid_t)le16_to_cpu(raw_inode->i_uid_low);
5227 i_gid = (gid_t)le16_to_cpu(raw_inode->i_gid_low);
5228 if (ext4_has_feature_project(sb) &&
5229 EXT4_INODE_SIZE(sb) > EXT4_GOOD_OLD_INODE_SIZE &&
5230 EXT4_FITS_IN_INODE(raw_inode, ei, i_projid))
5231 i_projid = (projid_t)le32_to_cpu(raw_inode->i_projid);
5232 else
5233 i_projid = EXT4_DEF_PROJID;
5234
5235 if (!(test_opt(inode->i_sb, NO_UID32))) {
5236 i_uid |= le16_to_cpu(raw_inode->i_uid_high) << 16;
5237 i_gid |= le16_to_cpu(raw_inode->i_gid_high) << 16;
5238 }
5239 i_uid_write(inode, i_uid);
5240 i_gid_write(inode, i_gid);
5241 ei->i_projid = make_kprojid(&init_user_ns, i_projid);
5242 set_nlink(inode, le16_to_cpu(raw_inode->i_links_count));
5243
5244 ei->i_inline_off = 0;
5245 ei->i_dir_start_lookup = 0;
5246 ei->i_dtime = le32_to_cpu(raw_inode->i_dtime);
5247 /* We now have enough fields to check if the inode was active or not.
5248 * This is needed because nfsd might try to access dead inodes
5249 * the test is that same one that e2fsck uses
5250 * NeilBrown 1999oct15
5251 */
5252 if (inode->i_nlink == 0) {
5253 if ((inode->i_mode == 0 || flags & EXT4_IGET_SPECIAL ||
5254 !(EXT4_SB(inode->i_sb)->s_mount_state & EXT4_ORPHAN_FS)) &&
5255 ino != EXT4_BOOT_LOADER_INO) {
5256 /* this inode is deleted or unallocated */
5257 if (flags & EXT4_IGET_SPECIAL) {
5258 ext4_error_inode(inode, function, line, 0,
5259 "iget: special inode unallocated");
5260 ret = -EFSCORRUPTED;
5261 } else
5262 ret = -ESTALE;
5263 goto bad_inode;
5264 }
5265 /* The only unlinked inodes we let through here have
5266 * valid i_mode and are being read by the orphan
5267 * recovery code: that's fine, we're about to complete
5268 * the process of deleting those.
5269 * OR it is the EXT4_BOOT_LOADER_INO which is
5270 * not initialized on a new filesystem. */
5271 }
5272 ei->i_flags = le32_to_cpu(raw_inode->i_flags);
5273 ext4_set_inode_flags(inode, true);
5274 /* Detect invalid flag combination - can't have both inline data and extents */
5275 if (ext4_test_inode_flag(inode, EXT4_INODE_INLINE_DATA) &&
5276 ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS)) {
5277 ext4_error_inode(inode, function, line, 0,
5278 "inode has both inline data and extents flags");
5279 ret = -EFSCORRUPTED;
5280 goto bad_inode;
5281 }
5282 inode->i_blocks = ext4_inode_blocks(raw_inode, ei);
5283 ei->i_file_acl = le32_to_cpu(raw_inode->i_file_acl_lo);
5284 if (ext4_has_feature_64bit(sb))
5285 ei->i_file_acl |=
5286 ((__u64)le16_to_cpu(raw_inode->i_file_acl_high)) << 32;
5287 inode->i_size = ext4_isize(sb, raw_inode);
5288 size = i_size_read(inode);
5289 if (size < 0 || size > ext4_get_maxbytes(inode)) {
5290 ext4_error_inode(inode, function, line, 0,
5291 "iget: bad i_size value: %lld", size);
5292 ret = -EFSCORRUPTED;
5293 goto bad_inode;
5294 }
5295 /*
5296 * If dir_index is not enabled but there's dir with INDEX flag set,
5297 * we'd normally treat htree data as empty space. But with metadata
5298 * checksumming that corrupts checksums so forbid that.
5299 */
5300 if (!ext4_has_feature_dir_index(sb) &&
5301 ext4_has_feature_metadata_csum(sb) &&
5302 ext4_test_inode_flag(inode, EXT4_INODE_INDEX)) {
5303 ext4_error_inode(inode, function, line, 0,
5304 "iget: Dir with htree data on filesystem without dir_index feature.");
5305 ret = -EFSCORRUPTED;
5306 goto bad_inode;
5307 }
5308 ei->i_disksize = inode->i_size;
5309 #ifdef CONFIG_QUOTA
5310 ei->i_reserved_quota = 0;
5311 #endif
5312 inode->i_generation = le32_to_cpu(raw_inode->i_generation);
5313 ei->i_block_group = iloc.block_group;
5314 ei->i_last_alloc_group = ~0;
5315 /*
5316 * NOTE! The in-memory inode i_data array is in little-endian order
5317 * even on big-endian machines: we do NOT byteswap the block numbers!
5318 */
5319 for (block = 0; block < EXT4_N_BLOCKS; block++)
5320 ei->i_data[block] = raw_inode->i_block[block];
5321 INIT_LIST_HEAD(&ei->i_orphan);
5322 ext4_fc_init_inode(&ei->vfs_inode);
5323
5324 /*
5325 * Set transaction id's of transactions that have to be committed
5326 * to finish f[data]sync. We set them to currently running transaction
5327 * as we cannot be sure that the inode or some of its metadata isn't
5328 * part of the transaction - the inode could have been reclaimed and
5329 * now it is reread from disk.
5330 */
5331 if (journal) {
5332 transaction_t *transaction;
5333 tid_t tid;
5334
5335 read_lock(&journal->j_state_lock);
5336 if (journal->j_running_transaction)
5337 transaction = journal->j_running_transaction;
5338 else
5339 transaction = journal->j_committing_transaction;
5340 if (transaction)
5341 tid = transaction->t_tid;
5342 else
5343 tid = journal->j_commit_sequence;
5344 read_unlock(&journal->j_state_lock);
5345 ei->i_sync_tid = tid;
5346 ei->i_datasync_tid = tid;
5347 }
5348
5349 if (EXT4_INODE_SIZE(inode->i_sb) > EXT4_GOOD_OLD_INODE_SIZE) {
5350 if (ei->i_extra_isize == 0) {
5351 /* The extra space is currently unused. Use it. */
5352 BUILD_BUG_ON(sizeof(struct ext4_inode) & 3);
5353 ei->i_extra_isize = sizeof(struct ext4_inode) -
5354 EXT4_GOOD_OLD_INODE_SIZE;
5355 } else {
5356 ret = ext4_iget_extra_inode(inode, raw_inode, ei);
5357 if (ret)
5358 goto bad_inode;
5359 }
5360 }
5361
5362 EXT4_INODE_GET_CTIME(inode, raw_inode);
5363 EXT4_INODE_GET_ATIME(inode, raw_inode);
5364 EXT4_INODE_GET_MTIME(inode, raw_inode);
5365 EXT4_EINODE_GET_XTIME(i_crtime, ei, raw_inode);
5366
5367 if (likely(!test_opt2(inode->i_sb, HURD_COMPAT))) {
5368 u64 ivers = le32_to_cpu(raw_inode->i_disk_version);
5369
5370 if (EXT4_INODE_SIZE(inode->i_sb) > EXT4_GOOD_OLD_INODE_SIZE) {
5371 if (EXT4_FITS_IN_INODE(raw_inode, ei, i_version_hi))
5372 ivers |=
5373 (__u64)(le32_to_cpu(raw_inode->i_version_hi)) << 32;
5374 }
5375 ext4_inode_set_iversion_queried(inode, ivers);
5376 }
5377
5378 ret = 0;
5379 if (ei->i_file_acl &&
5380 !ext4_inode_block_valid(inode, ei->i_file_acl, 1)) {
5381 ext4_error_inode(inode, function, line, 0,
5382 "iget: bad extended attribute block %llu",
5383 ei->i_file_acl);
5384 ret = -EFSCORRUPTED;
5385 goto bad_inode;
5386 } else if (!ext4_has_inline_data(inode)) {
5387 /* validate the block references in the inode */
5388 if (!(EXT4_SB(sb)->s_mount_state & EXT4_FC_REPLAY) &&
5389 (S_ISREG(inode->i_mode) || S_ISDIR(inode->i_mode) ||
5390 (S_ISLNK(inode->i_mode) &&
5391 !ext4_inode_is_fast_symlink(inode)))) {
5392 if (ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))
5393 ret = ext4_ext_check_inode(inode);
5394 else
5395 ret = ext4_ind_check_inode(inode);
5396 }
5397 }
5398 if (ret)
5399 goto bad_inode;
5400
5401 if (S_ISREG(inode->i_mode)) {
5402 inode->i_op = &ext4_file_inode_operations;
5403 inode->i_fop = &ext4_file_operations;
5404 ext4_set_aops(inode);
5405 } else if (S_ISDIR(inode->i_mode)) {
5406 inode->i_op = &ext4_dir_inode_operations;
5407 inode->i_fop = &ext4_dir_operations;
5408 } else if (S_ISLNK(inode->i_mode)) {
5409 /* VFS does not allow setting these so must be corruption */
5410 if (IS_APPEND(inode) || IS_IMMUTABLE(inode)) {
5411 ext4_error_inode(inode, function, line, 0,
5412 "iget: immutable or append flags "
5413 "not allowed on symlinks");
5414 ret = -EFSCORRUPTED;
5415 goto bad_inode;
5416 }
5417 if (IS_ENCRYPTED(inode)) {
5418 inode->i_op = &ext4_encrypted_symlink_inode_operations;
5419 } else if (ext4_inode_is_fast_symlink(inode)) {
5420 inode->i_op = &ext4_fast_symlink_inode_operations;
5421
5422 /*
5423 * Orphan cleanup can see inodes with i_size == 0
5424 * and i_data uninitialized. Skip size checks in
5425 * that case. This is safe because the first thing
5426 * ext4_evict_inode() does for fast symlinks is
5427 * clearing of i_data and i_size.
5428 */
5429 if ((EXT4_SB(sb)->s_mount_state & EXT4_ORPHAN_FS)) {
5430 if (inode->i_nlink != 0) {
5431 ext4_error_inode(inode, function, line, 0,
5432 "invalid orphan symlink nlink %d",
5433 inode->i_nlink);
5434 ret = -EFSCORRUPTED;
5435 goto bad_inode;
5436 }
5437 } else {
5438 if (inode->i_size == 0 ||
5439 inode->i_size >= sizeof(ei->i_data) ||
5440 strnlen((char *)ei->i_data, inode->i_size + 1) !=
5441 inode->i_size) {
5442 ext4_error_inode(inode, function, line, 0,
5443 "invalid fast symlink length %llu",
5444 (unsigned long long)inode->i_size);
5445 ret = -EFSCORRUPTED;
5446 goto bad_inode;
5447 }
5448 inode_set_cached_link(inode, (char *)ei->i_data,
5449 inode->i_size);
5450 }
5451 } else {
5452 inode->i_op = &ext4_symlink_inode_operations;
5453 }
5454 } else if (S_ISCHR(inode->i_mode) || S_ISBLK(inode->i_mode) ||
5455 S_ISFIFO(inode->i_mode) || S_ISSOCK(inode->i_mode)) {
5456 inode->i_op = &ext4_special_inode_operations;
5457 if (raw_inode->i_block[0])
5458 init_special_inode(inode, inode->i_mode,
5459 old_decode_dev(le32_to_cpu(raw_inode->i_block[0])));
5460 else
5461 init_special_inode(inode, inode->i_mode,
5462 new_decode_dev(le32_to_cpu(raw_inode->i_block[1])));
5463 } else if (ino == EXT4_BOOT_LOADER_INO) {
5464 make_bad_inode(inode);
5465 } else {
5466 ret = -EFSCORRUPTED;
5467 ext4_error_inode(inode, function, line, 0,
5468 "iget: bogus i_mode (%o)", inode->i_mode);
5469 goto bad_inode;
5470 }
5471 if (IS_CASEFOLDED(inode) && !ext4_has_feature_casefold(inode->i_sb)) {
5472 ext4_error_inode(inode, function, line, 0,
5473 "casefold flag without casefold feature");
5474 ret = -EFSCORRUPTED;
5475 goto bad_inode;
5476 }
5477
5478 ext4_set_inode_mapping_order(inode);
5479
5480 ret = check_igot_inode(inode, flags, function, line);
5481 /*
5482 * -ESTALE here means there is nothing inherently wrong with the inode,
5483 * it's just not an inode we can return for an fhandle lookup.
5484 */
5485 if (ret == -ESTALE) {
5486 brelse(iloc.bh);
5487 unlock_new_inode(inode);
5488 iput(inode);
5489 return ERR_PTR(-ESTALE);
5490 }
5491 if (ret)
5492 goto bad_inode;
5493 brelse(iloc.bh);
5494 /* Initialize the "no ACL's" state for the simple cases */
5495 if (!ext4_test_inode_state(inode, EXT4_STATE_XATTR) && !ei->i_file_acl)
5496 cache_no_acl(inode);
5497 unlock_new_inode(inode);
5498 return inode;
5499
5500 bad_inode:
5501 brelse(iloc.bh);
5502 iget_failed(inode);
5503 return ERR_PTR(ret);
5504 }
5505
__ext4_update_other_inode_time(struct super_block * sb,unsigned long orig_ino,unsigned long ino,struct ext4_inode * raw_inode)5506 static void __ext4_update_other_inode_time(struct super_block *sb,
5507 unsigned long orig_ino,
5508 unsigned long ino,
5509 struct ext4_inode *raw_inode)
5510 {
5511 struct inode *inode;
5512
5513 inode = find_inode_by_ino_rcu(sb, ino);
5514 if (!inode)
5515 return;
5516
5517 if (!inode_is_dirtytime_only(inode))
5518 return;
5519
5520 spin_lock(&inode->i_lock);
5521 if (inode_is_dirtytime_only(inode)) {
5522 struct ext4_inode_info *ei = EXT4_I(inode);
5523
5524 inode_state_clear(inode, I_DIRTY_TIME);
5525 spin_unlock(&inode->i_lock);
5526
5527 spin_lock(&ei->i_raw_lock);
5528 EXT4_INODE_SET_CTIME(inode, raw_inode);
5529 EXT4_INODE_SET_MTIME(inode, raw_inode);
5530 EXT4_INODE_SET_ATIME(inode, raw_inode);
5531 ext4_inode_csum_set(inode, raw_inode, ei);
5532 spin_unlock(&ei->i_raw_lock);
5533 trace_ext4_other_inode_update_time(inode, orig_ino);
5534 return;
5535 }
5536 spin_unlock(&inode->i_lock);
5537 }
5538
5539 /*
5540 * Opportunistically update the other time fields for other inodes in
5541 * the same inode table block.
5542 */
ext4_update_other_inodes_time(struct super_block * sb,unsigned long orig_ino,char * buf)5543 static void ext4_update_other_inodes_time(struct super_block *sb,
5544 unsigned long orig_ino, char *buf)
5545 {
5546 unsigned long ino;
5547 int i, inodes_per_block = EXT4_SB(sb)->s_inodes_per_block;
5548 int inode_size = EXT4_INODE_SIZE(sb);
5549
5550 /*
5551 * Calculate the first inode in the inode table block. Inode
5552 * numbers are one-based. That is, the first inode in a block
5553 * (assuming 4k blocks and 256 byte inodes) is (n*16 + 1).
5554 */
5555 ino = ((orig_ino - 1) & ~(inodes_per_block - 1)) + 1;
5556 rcu_read_lock();
5557 for (i = 0; i < inodes_per_block; i++, ino++, buf += inode_size) {
5558 if (ino == orig_ino)
5559 continue;
5560 __ext4_update_other_inode_time(sb, orig_ino, ino,
5561 (struct ext4_inode *)buf);
5562 }
5563 rcu_read_unlock();
5564 }
5565
5566 /*
5567 * Post the struct inode info into an on-disk inode location in the
5568 * buffer-cache. This gobbles the caller's reference to the
5569 * buffer_head in the inode location struct.
5570 *
5571 * The caller must have write access to iloc->bh.
5572 */
ext4_do_update_inode(handle_t * handle,struct inode * inode,struct ext4_iloc * iloc)5573 static int ext4_do_update_inode(handle_t *handle,
5574 struct inode *inode,
5575 struct ext4_iloc *iloc)
5576 {
5577 struct ext4_inode *raw_inode = ext4_raw_inode(iloc);
5578 struct ext4_inode_info *ei = EXT4_I(inode);
5579 struct buffer_head *bh = iloc->bh;
5580 struct super_block *sb = inode->i_sb;
5581 int err;
5582 int need_datasync = 0, set_large_file = 0;
5583
5584 spin_lock(&ei->i_raw_lock);
5585
5586 /*
5587 * For fields not tracked in the in-memory inode, initialise them
5588 * to zero for new inodes.
5589 */
5590 if (ext4_test_inode_state(inode, EXT4_STATE_NEW))
5591 memset(raw_inode, 0, EXT4_SB(inode->i_sb)->s_inode_size);
5592
5593 if (READ_ONCE(ei->i_disksize) != ext4_isize(inode->i_sb, raw_inode))
5594 need_datasync = 1;
5595 if (ei->i_disksize > 0x7fffffffULL) {
5596 if (!ext4_has_feature_large_file(sb) ||
5597 EXT4_SB(sb)->s_es->s_rev_level == cpu_to_le32(EXT4_GOOD_OLD_REV))
5598 set_large_file = 1;
5599 }
5600
5601 err = ext4_fill_raw_inode(inode, raw_inode);
5602 spin_unlock(&ei->i_raw_lock);
5603 if (err) {
5604 EXT4_ERROR_INODE(inode, "corrupted inode contents");
5605 goto out_brelse;
5606 }
5607
5608 if (inode->i_sb->s_flags & SB_LAZYTIME)
5609 ext4_update_other_inodes_time(inode->i_sb, inode->i_ino,
5610 bh->b_data);
5611
5612 BUFFER_TRACE(bh, "call ext4_handle_dirty_metadata");
5613 err = ext4_handle_dirty_metadata(handle, NULL, bh);
5614 if (err)
5615 goto out_error;
5616 ext4_clear_inode_state(inode, EXT4_STATE_NEW);
5617 if (set_large_file) {
5618 BUFFER_TRACE(EXT4_SB(sb)->s_sbh, "get write access");
5619 err = ext4_journal_get_write_access(handle, sb,
5620 EXT4_SB(sb)->s_sbh,
5621 EXT4_JTR_NONE);
5622 if (err)
5623 goto out_error;
5624 lock_buffer(EXT4_SB(sb)->s_sbh);
5625 ext4_set_feature_large_file(sb);
5626 ext4_superblock_csum_set(sb);
5627 unlock_buffer(EXT4_SB(sb)->s_sbh);
5628 ext4_handle_sync(handle);
5629 err = ext4_handle_dirty_metadata(handle, NULL,
5630 EXT4_SB(sb)->s_sbh);
5631 }
5632 ext4_update_inode_fsync_trans(handle, inode, need_datasync);
5633 out_error:
5634 ext4_std_error(inode->i_sb, err);
5635 out_brelse:
5636 brelse(bh);
5637 return err;
5638 }
5639
5640 /*
5641 * ext4_write_inode()
5642 *
5643 * We are called from a few places:
5644 *
5645 * - Within generic_file_aio_write() -> generic_write_sync() for O_SYNC files.
5646 * Here, there will be no transaction running. We wait for any running
5647 * transaction to commit.
5648 *
5649 * - Within flush work (sys_sync(), kupdate and such).
5650 * We wait on commit, if told to.
5651 *
5652 * - Within iput_final() -> write_inode_now()
5653 * We wait on commit, if told to.
5654 *
5655 * In all cases it is actually safe for us to return without doing anything,
5656 * because the inode has been copied into a raw inode buffer in
5657 * ext4_mark_inode_dirty(). This is a correctness thing for WB_SYNC_ALL
5658 * writeback.
5659 *
5660 * Note that we are absolutely dependent upon all inode dirtiers doing the
5661 * right thing: they *must* call mark_inode_dirty() after dirtying info in
5662 * which we are interested.
5663 *
5664 * It would be a bug for them to not do this. The code:
5665 *
5666 * mark_inode_dirty(inode)
5667 * stuff();
5668 * inode->i_size = expr;
5669 *
5670 * is in error because write_inode() could occur while `stuff()' is running,
5671 * and the new i_size will be lost. Plus the inode will no longer be on the
5672 * superblock's dirty inode list.
5673 */
ext4_write_inode(struct inode * inode,struct writeback_control * wbc)5674 int ext4_write_inode(struct inode *inode, struct writeback_control *wbc)
5675 {
5676 int err;
5677
5678 if (WARN_ON_ONCE(current->flags & PF_MEMALLOC))
5679 return 0;
5680
5681 err = ext4_emergency_state(inode->i_sb);
5682 if (unlikely(err))
5683 return err;
5684
5685 if (EXT4_SB(inode->i_sb)->s_journal) {
5686 if (ext4_journal_current_handle()) {
5687 ext4_debug("called recursively, non-PF_MEMALLOC!\n");
5688 dump_stack();
5689 return -EIO;
5690 }
5691
5692 /*
5693 * No need to force transaction in WB_SYNC_NONE mode. Also
5694 * ext4_sync_fs() will force the commit after everything is
5695 * written.
5696 */
5697 if (wbc->sync_mode != WB_SYNC_ALL || wbc->for_sync)
5698 return 0;
5699
5700 err = ext4_fc_commit(EXT4_SB(inode->i_sb)->s_journal,
5701 EXT4_I(inode)->i_sync_tid);
5702 } else {
5703 struct ext4_iloc iloc;
5704
5705 err = __ext4_get_inode_loc_noinmem(inode, &iloc);
5706 if (err)
5707 return err;
5708 /*
5709 * sync(2) will flush the whole buffer cache. No need to do
5710 * it here separately for each inode.
5711 */
5712 if (wbc->sync_mode == WB_SYNC_ALL && !wbc->for_sync)
5713 sync_dirty_buffer(iloc.bh);
5714 if (buffer_req(iloc.bh) && !buffer_uptodate(iloc.bh)) {
5715 ext4_error_inode_block(inode, iloc.bh->b_blocknr, EIO,
5716 "IO error syncing inode");
5717 err = -EIO;
5718 }
5719 brelse(iloc.bh);
5720 }
5721 return err;
5722 }
5723
5724 /*
5725 * In data=journal mode ext4_journalled_invalidate_folio() may fail to invalidate
5726 * buffers that are attached to a folio straddling i_size and are undergoing
5727 * commit. In that case we have to wait for commit to finish and try again.
5728 */
ext4_wait_for_tail_page_commit(struct inode * inode)5729 static void ext4_wait_for_tail_page_commit(struct inode *inode)
5730 {
5731 unsigned offset;
5732 journal_t *journal = EXT4_SB(inode->i_sb)->s_journal;
5733 tid_t commit_tid;
5734 int ret;
5735 bool has_transaction;
5736
5737 offset = inode->i_size & (PAGE_SIZE - 1);
5738 /*
5739 * If the folio is fully truncated, we don't need to wait for any commit
5740 * (and we even should not as __ext4_journalled_invalidate_folio() may
5741 * strip all buffers from the folio but keep the folio dirty which can then
5742 * confuse e.g. concurrent ext4_writepages() seeing dirty folio without
5743 * buffers). Also we don't need to wait for any commit if all buffers in
5744 * the folio remain valid. This is most beneficial for the common case of
5745 * blocksize == PAGESIZE.
5746 */
5747 if (!offset || offset > (PAGE_SIZE - i_blocksize(inode)))
5748 return;
5749 while (1) {
5750 struct folio *folio = filemap_lock_folio(inode->i_mapping,
5751 inode->i_size >> PAGE_SHIFT);
5752 if (IS_ERR(folio))
5753 return;
5754 ret = __ext4_journalled_invalidate_folio(folio, offset,
5755 folio_size(folio) - offset);
5756 folio_unlock(folio);
5757 folio_put(folio);
5758 if (ret != -EBUSY)
5759 return;
5760 has_transaction = false;
5761 read_lock(&journal->j_state_lock);
5762 if (journal->j_committing_transaction) {
5763 commit_tid = journal->j_committing_transaction->t_tid;
5764 has_transaction = true;
5765 }
5766 read_unlock(&journal->j_state_lock);
5767 if (has_transaction)
5768 jbd2_log_wait_commit(journal, commit_tid);
5769 }
5770 }
5771
5772 /*
5773 * ext4_setattr()
5774 *
5775 * Called from notify_change.
5776 *
5777 * We want to trap VFS attempts to truncate the file as soon as
5778 * possible. In particular, we want to make sure that when the VFS
5779 * shrinks i_size, we put the inode on the orphan list and modify
5780 * i_disksize immediately, so that during the subsequent flushing of
5781 * dirty pages and freeing of disk blocks, we can guarantee that any
5782 * commit will leave the blocks being flushed in an unused state on
5783 * disk. (On recovery, the inode will get truncated and the blocks will
5784 * be freed, so we have a strong guarantee that no future commit will
5785 * leave these blocks visible to the user.)
5786 *
5787 * Another thing we have to assure is that if we are in ordered mode
5788 * and inode is still attached to the committing transaction, we must
5789 * we start writeout of all the dirty pages which are being truncated.
5790 * This way we are sure that all the data written in the previous
5791 * transaction are already on disk (truncate waits for pages under
5792 * writeback).
5793 *
5794 * Called with inode->i_rwsem down.
5795 */
ext4_setattr(struct mnt_idmap * idmap,struct dentry * dentry,struct iattr * attr)5796 int ext4_setattr(struct mnt_idmap *idmap, struct dentry *dentry,
5797 struct iattr *attr)
5798 {
5799 struct inode *inode = d_inode(dentry);
5800 int error, rc = 0;
5801 int orphan = 0;
5802 const unsigned int ia_valid = attr->ia_valid;
5803 bool inc_ivers = true;
5804
5805 error = ext4_emergency_state(inode->i_sb);
5806 if (unlikely(error))
5807 return error;
5808
5809 if (unlikely(IS_IMMUTABLE(inode)))
5810 return -EPERM;
5811
5812 if (unlikely(IS_APPEND(inode) &&
5813 (ia_valid & (ATTR_MODE | ATTR_UID |
5814 ATTR_GID | ATTR_TIMES_SET))))
5815 return -EPERM;
5816
5817 error = setattr_prepare(idmap, dentry, attr);
5818 if (error)
5819 return error;
5820
5821 error = fscrypt_prepare_setattr(dentry, attr);
5822 if (error)
5823 return error;
5824
5825 if (is_quota_modification(idmap, inode, attr)) {
5826 error = dquot_initialize(inode);
5827 if (error)
5828 return error;
5829 }
5830
5831 if (i_uid_needs_update(idmap, attr, inode) ||
5832 i_gid_needs_update(idmap, attr, inode)) {
5833 handle_t *handle;
5834
5835 /* (user+group)*(old+new) structure, inode write (sb,
5836 * inode block, ? - but truncate inode update has it) */
5837 handle = ext4_journal_start(inode, EXT4_HT_QUOTA,
5838 (EXT4_MAXQUOTAS_INIT_BLOCKS(inode->i_sb) +
5839 EXT4_MAXQUOTAS_DEL_BLOCKS(inode->i_sb)) + 3);
5840 if (IS_ERR(handle)) {
5841 error = PTR_ERR(handle);
5842 goto err_out;
5843 }
5844
5845 /* dquot_transfer() calls back ext4_get_inode_usage() which
5846 * counts xattr inode references.
5847 */
5848 down_read(&EXT4_I(inode)->xattr_sem);
5849 error = dquot_transfer(idmap, inode, attr);
5850 up_read(&EXT4_I(inode)->xattr_sem);
5851
5852 if (error) {
5853 ext4_journal_stop(handle);
5854 return error;
5855 }
5856 /* Update corresponding info in inode so that everything is in
5857 * one transaction */
5858 i_uid_update(idmap, attr, inode);
5859 i_gid_update(idmap, attr, inode);
5860 error = ext4_mark_inode_dirty(handle, inode);
5861 ext4_journal_stop(handle);
5862 if (unlikely(error)) {
5863 return error;
5864 }
5865 }
5866
5867 if (attr->ia_valid & ATTR_SIZE) {
5868 handle_t *handle;
5869 loff_t oldsize = inode->i_size;
5870 loff_t old_disksize;
5871 int shrink = (attr->ia_size < inode->i_size);
5872
5873 if (!(ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS))) {
5874 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
5875
5876 if (attr->ia_size > sbi->s_bitmap_maxbytes) {
5877 return -EFBIG;
5878 }
5879 }
5880 if (!S_ISREG(inode->i_mode)) {
5881 return -EINVAL;
5882 }
5883
5884 if (attr->ia_size == inode->i_size)
5885 inc_ivers = false;
5886
5887 /*
5888 * If file has inline data but new size exceeds inline capacity,
5889 * convert to extent-based storage first to prevent inconsistent
5890 * state (inline flag set but size exceeds inline capacity).
5891 */
5892 if (ext4_has_inline_data(inode) &&
5893 attr->ia_size > EXT4_I(inode)->i_inline_size) {
5894 error = ext4_convert_inline_data(inode);
5895 if (error)
5896 goto err_out;
5897 }
5898
5899 if (shrink) {
5900 if (ext4_should_order_data(inode)) {
5901 error = ext4_begin_ordered_truncate(inode,
5902 attr->ia_size);
5903 if (error)
5904 goto err_out;
5905 }
5906 /*
5907 * Blocks are going to be removed from the inode. Wait
5908 * for dio in flight.
5909 */
5910 inode_dio_wait(inode);
5911 }
5912
5913 filemap_invalidate_lock(inode->i_mapping);
5914
5915 rc = ext4_break_layouts(inode);
5916 if (rc) {
5917 filemap_invalidate_unlock(inode->i_mapping);
5918 goto err_out;
5919 }
5920
5921 if (attr->ia_size != inode->i_size) {
5922 /* attach jbd2 jinode for EOF folio tail zeroing */
5923 if (attr->ia_size & (inode->i_sb->s_blocksize - 1) ||
5924 oldsize & (inode->i_sb->s_blocksize - 1)) {
5925 error = ext4_inode_attach_jinode(inode);
5926 if (error)
5927 goto out_mmap_sem;
5928 }
5929
5930 handle = ext4_journal_start(inode, EXT4_HT_INODE, 3);
5931 if (IS_ERR(handle)) {
5932 error = PTR_ERR(handle);
5933 goto out_mmap_sem;
5934 }
5935 if (ext4_handle_valid(handle) && shrink) {
5936 error = ext4_orphan_add(handle, inode);
5937 orphan = 1;
5938 }
5939 /*
5940 * Update c/mtime and tail zero the EOF folio on
5941 * truncate up. ext4_truncate() handles the shrink case
5942 * below.
5943 */
5944 if (!shrink) {
5945 inode_set_mtime_to_ts(inode,
5946 inode_set_ctime_current(inode));
5947 if (oldsize & (inode->i_sb->s_blocksize - 1))
5948 ext4_block_truncate_page(handle,
5949 inode->i_mapping, oldsize);
5950 }
5951
5952 if (shrink)
5953 ext4_fc_track_range(handle, inode,
5954 (attr->ia_size > 0 ? attr->ia_size - 1 : 0) >>
5955 inode->i_sb->s_blocksize_bits,
5956 EXT_MAX_BLOCKS - 1);
5957 else
5958 ext4_fc_track_range(
5959 handle, inode,
5960 (oldsize > 0 ? oldsize - 1 : oldsize) >>
5961 inode->i_sb->s_blocksize_bits,
5962 (attr->ia_size > 0 ? attr->ia_size - 1 : 0) >>
5963 inode->i_sb->s_blocksize_bits);
5964
5965 down_write(&EXT4_I(inode)->i_data_sem);
5966 old_disksize = EXT4_I(inode)->i_disksize;
5967 EXT4_I(inode)->i_disksize = attr->ia_size;
5968
5969 /*
5970 * We have to update i_size under i_data_sem together
5971 * with i_disksize to avoid races with writeback code
5972 * running ext4_wb_update_i_disksize().
5973 */
5974 if (!error)
5975 i_size_write(inode, attr->ia_size);
5976 else
5977 EXT4_I(inode)->i_disksize = old_disksize;
5978 up_write(&EXT4_I(inode)->i_data_sem);
5979 rc = ext4_mark_inode_dirty(handle, inode);
5980 if (!error)
5981 error = rc;
5982 ext4_journal_stop(handle);
5983 if (error)
5984 goto out_mmap_sem;
5985 if (!shrink) {
5986 pagecache_isize_extended(inode, oldsize,
5987 inode->i_size);
5988 } else if (ext4_should_journal_data(inode)) {
5989 ext4_wait_for_tail_page_commit(inode);
5990 }
5991 }
5992
5993 /*
5994 * Truncate pagecache after we've waited for commit
5995 * in data=journal mode to make pages freeable.
5996 */
5997 truncate_pagecache(inode, inode->i_size);
5998 /*
5999 * Call ext4_truncate() even if i_size didn't change to
6000 * truncate possible preallocated blocks.
6001 */
6002 if (attr->ia_size <= oldsize) {
6003 rc = ext4_truncate(inode);
6004 if (rc)
6005 error = rc;
6006 }
6007 out_mmap_sem:
6008 filemap_invalidate_unlock(inode->i_mapping);
6009 }
6010
6011 if (!error) {
6012 if (inc_ivers)
6013 inode_inc_iversion(inode);
6014 setattr_copy(idmap, inode, attr);
6015 mark_inode_dirty(inode);
6016 }
6017
6018 /*
6019 * If the call to ext4_truncate failed to get a transaction handle at
6020 * all, we need to clean up the in-core orphan list manually.
6021 */
6022 if (orphan && inode->i_nlink)
6023 ext4_orphan_del(NULL, inode);
6024
6025 if (!error && (ia_valid & ATTR_MODE))
6026 rc = posix_acl_chmod(idmap, dentry, inode->i_mode);
6027
6028 err_out:
6029 if (error)
6030 ext4_std_error(inode->i_sb, error);
6031 if (!error)
6032 error = rc;
6033 return error;
6034 }
6035
ext4_dio_alignment(struct inode * inode)6036 u32 ext4_dio_alignment(struct inode *inode)
6037 {
6038 if (fsverity_active(inode))
6039 return 0;
6040 if (ext4_should_journal_data(inode))
6041 return 0;
6042 if (ext4_has_inline_data(inode))
6043 return 0;
6044 if (IS_ENCRYPTED(inode)) {
6045 if (!fscrypt_dio_supported(inode))
6046 return 0;
6047 return i_blocksize(inode);
6048 }
6049 return 1; /* use the iomap defaults */
6050 }
6051
ext4_getattr(struct mnt_idmap * idmap,const struct path * path,struct kstat * stat,u32 request_mask,unsigned int query_flags)6052 int ext4_getattr(struct mnt_idmap *idmap, const struct path *path,
6053 struct kstat *stat, u32 request_mask, unsigned int query_flags)
6054 {
6055 struct inode *inode = d_inode(path->dentry);
6056 struct ext4_inode *raw_inode;
6057 struct ext4_inode_info *ei = EXT4_I(inode);
6058 unsigned int flags;
6059
6060 if ((request_mask & STATX_BTIME) &&
6061 EXT4_FITS_IN_INODE(raw_inode, ei, i_crtime)) {
6062 stat->result_mask |= STATX_BTIME;
6063 stat->btime.tv_sec = ei->i_crtime.tv_sec;
6064 stat->btime.tv_nsec = ei->i_crtime.tv_nsec;
6065 }
6066
6067 /*
6068 * Return the DIO alignment restrictions if requested. We only return
6069 * this information when requested, since on encrypted files it might
6070 * take a fair bit of work to get if the file wasn't opened recently.
6071 */
6072 if ((request_mask & STATX_DIOALIGN) && S_ISREG(inode->i_mode)) {
6073 u32 dio_align = ext4_dio_alignment(inode);
6074
6075 stat->result_mask |= STATX_DIOALIGN;
6076 if (dio_align == 1) {
6077 struct block_device *bdev = inode->i_sb->s_bdev;
6078
6079 /* iomap defaults */
6080 stat->dio_mem_align = bdev_dma_alignment(bdev) + 1;
6081 stat->dio_offset_align = bdev_logical_block_size(bdev);
6082 } else {
6083 stat->dio_mem_align = dio_align;
6084 stat->dio_offset_align = dio_align;
6085 }
6086 }
6087
6088 if ((request_mask & STATX_WRITE_ATOMIC) && S_ISREG(inode->i_mode)) {
6089 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
6090 unsigned int awu_min = 0, awu_max = 0;
6091
6092 if (ext4_inode_can_atomic_write(inode)) {
6093 awu_min = sbi->s_awu_min;
6094 awu_max = sbi->s_awu_max;
6095 }
6096
6097 generic_fill_statx_atomic_writes(stat, awu_min, awu_max, 0);
6098 }
6099
6100 flags = ei->i_flags & EXT4_FL_USER_VISIBLE;
6101 if (flags & EXT4_APPEND_FL)
6102 stat->attributes |= STATX_ATTR_APPEND;
6103 if (flags & EXT4_COMPR_FL)
6104 stat->attributes |= STATX_ATTR_COMPRESSED;
6105 if (flags & EXT4_ENCRYPT_FL)
6106 stat->attributes |= STATX_ATTR_ENCRYPTED;
6107 if (flags & EXT4_IMMUTABLE_FL)
6108 stat->attributes |= STATX_ATTR_IMMUTABLE;
6109 if (flags & EXT4_NODUMP_FL)
6110 stat->attributes |= STATX_ATTR_NODUMP;
6111 if (flags & EXT4_VERITY_FL)
6112 stat->attributes |= STATX_ATTR_VERITY;
6113
6114 stat->attributes_mask |= (STATX_ATTR_APPEND |
6115 STATX_ATTR_COMPRESSED |
6116 STATX_ATTR_ENCRYPTED |
6117 STATX_ATTR_IMMUTABLE |
6118 STATX_ATTR_NODUMP |
6119 STATX_ATTR_VERITY);
6120
6121 generic_fillattr(idmap, request_mask, inode, stat);
6122 return 0;
6123 }
6124
ext4_file_getattr(struct mnt_idmap * idmap,const struct path * path,struct kstat * stat,u32 request_mask,unsigned int query_flags)6125 int ext4_file_getattr(struct mnt_idmap *idmap,
6126 const struct path *path, struct kstat *stat,
6127 u32 request_mask, unsigned int query_flags)
6128 {
6129 struct inode *inode = d_inode(path->dentry);
6130 u64 delalloc_blocks;
6131
6132 ext4_getattr(idmap, path, stat, request_mask, query_flags);
6133
6134 /*
6135 * If there is inline data in the inode, the inode will normally not
6136 * have data blocks allocated (it may have an external xattr block).
6137 * Report at least one sector for such files, so tools like tar, rsync,
6138 * others don't incorrectly think the file is completely sparse.
6139 */
6140 if (unlikely(ext4_has_inline_data(inode)))
6141 stat->blocks += (stat->size + 511) >> 9;
6142
6143 /*
6144 * We can't update i_blocks if the block allocation is delayed
6145 * otherwise in the case of system crash before the real block
6146 * allocation is done, we will have i_blocks inconsistent with
6147 * on-disk file blocks.
6148 * We always keep i_blocks updated together with real
6149 * allocation. But to not confuse with user, stat
6150 * will return the blocks that include the delayed allocation
6151 * blocks for this file.
6152 */
6153 delalloc_blocks = EXT4_C2B(EXT4_SB(inode->i_sb),
6154 EXT4_I(inode)->i_reserved_data_blocks);
6155 stat->blocks += delalloc_blocks << (inode->i_sb->s_blocksize_bits - 9);
6156 return 0;
6157 }
6158
ext4_index_trans_blocks(struct inode * inode,int lblocks,int pextents)6159 static int ext4_index_trans_blocks(struct inode *inode, int lblocks,
6160 int pextents)
6161 {
6162 if (!(ext4_test_inode_flag(inode, EXT4_INODE_EXTENTS)))
6163 return ext4_ind_trans_blocks(inode, lblocks);
6164 return ext4_ext_index_trans_blocks(inode, pextents);
6165 }
6166
6167 /*
6168 * Account for index blocks, block groups bitmaps and block group
6169 * descriptor blocks if modify datablocks and index blocks
6170 * worse case, the indexs blocks spread over different block groups
6171 *
6172 * If datablocks are discontiguous, they are possible to spread over
6173 * different block groups too. If they are contiguous, with flexbg,
6174 * they could still across block group boundary.
6175 *
6176 * Also account for superblock, inode, quota and xattr blocks
6177 */
ext4_meta_trans_blocks(struct inode * inode,int lblocks,int pextents)6178 int ext4_meta_trans_blocks(struct inode *inode, int lblocks, int pextents)
6179 {
6180 ext4_group_t groups, ngroups = ext4_get_groups_count(inode->i_sb);
6181 int gdpblocks;
6182 int idxblocks;
6183 int ret;
6184
6185 /*
6186 * How many index and leaf blocks need to touch to map @lblocks
6187 * logical blocks to @pextents physical extents?
6188 */
6189 idxblocks = ext4_index_trans_blocks(inode, lblocks, pextents);
6190
6191 /*
6192 * Now let's see how many group bitmaps and group descriptors need
6193 * to account
6194 */
6195 groups = idxblocks + pextents;
6196 gdpblocks = groups;
6197 if (groups > ngroups)
6198 groups = ngroups;
6199 if (groups > EXT4_SB(inode->i_sb)->s_gdb_count)
6200 gdpblocks = EXT4_SB(inode->i_sb)->s_gdb_count;
6201
6202 /* bitmaps and block group descriptor blocks */
6203 ret = idxblocks + groups + gdpblocks;
6204
6205 /* Blocks for super block, inode, quota and xattr blocks */
6206 ret += EXT4_META_TRANS_BLOCKS(inode->i_sb);
6207
6208 return ret;
6209 }
6210
6211 /*
6212 * Calculate the journal credits for modifying the number of blocks
6213 * in a single extent within one transaction. 'nrblocks' is used only
6214 * for non-extent inodes. For extent type inodes, 'nrblocks' can be
6215 * zero if the exact number of blocks is unknown.
6216 */
ext4_chunk_trans_extent(struct inode * inode,int nrblocks)6217 int ext4_chunk_trans_extent(struct inode *inode, int nrblocks)
6218 {
6219 int ret;
6220
6221 ret = ext4_meta_trans_blocks(inode, nrblocks, 1);
6222 /* Account for data blocks for journalled mode */
6223 if (ext4_should_journal_data(inode))
6224 ret += nrblocks;
6225 return ret;
6226 }
6227
6228 /*
6229 * Calculate the journal credits for a chunk of data modification.
6230 *
6231 * This is called from DIO, fallocate or whoever calling
6232 * ext4_map_blocks() to map/allocate a chunk of contiguous disk blocks.
6233 *
6234 * journal buffers for data blocks are not included here, as DIO
6235 * and fallocate do no need to journal data buffers.
6236 */
ext4_chunk_trans_blocks(struct inode * inode,int nrblocks)6237 int ext4_chunk_trans_blocks(struct inode *inode, int nrblocks)
6238 {
6239 return ext4_meta_trans_blocks(inode, nrblocks, 1);
6240 }
6241
6242 /*
6243 * The caller must have previously called ext4_reserve_inode_write().
6244 * Give this, we know that the caller already has write access to iloc->bh.
6245 */
ext4_mark_iloc_dirty(handle_t * handle,struct inode * inode,struct ext4_iloc * iloc)6246 int ext4_mark_iloc_dirty(handle_t *handle,
6247 struct inode *inode, struct ext4_iloc *iloc)
6248 {
6249 int err = 0;
6250
6251 err = ext4_emergency_state(inode->i_sb);
6252 if (unlikely(err)) {
6253 put_bh(iloc->bh);
6254 return err;
6255 }
6256 ext4_fc_track_inode(handle, inode);
6257
6258 /* the do_update_inode consumes one bh->b_count */
6259 get_bh(iloc->bh);
6260
6261 /* ext4_do_update_inode() does jbd2_journal_dirty_metadata */
6262 err = ext4_do_update_inode(handle, inode, iloc);
6263 put_bh(iloc->bh);
6264 return err;
6265 }
6266
6267 /*
6268 * On success, We end up with an outstanding reference count against
6269 * iloc->bh. This _must_ be cleaned up later.
6270 */
6271
6272 int
ext4_reserve_inode_write(handle_t * handle,struct inode * inode,struct ext4_iloc * iloc)6273 ext4_reserve_inode_write(handle_t *handle, struct inode *inode,
6274 struct ext4_iloc *iloc)
6275 {
6276 int err;
6277
6278 err = ext4_emergency_state(inode->i_sb);
6279 if (unlikely(err))
6280 return err;
6281
6282 err = ext4_get_inode_loc(inode, iloc);
6283 if (!err) {
6284 BUFFER_TRACE(iloc->bh, "get_write_access");
6285 err = ext4_journal_get_write_access(handle, inode->i_sb,
6286 iloc->bh, EXT4_JTR_NONE);
6287 if (err) {
6288 brelse(iloc->bh);
6289 iloc->bh = NULL;
6290 }
6291 ext4_fc_track_inode(handle, inode);
6292 }
6293 ext4_std_error(inode->i_sb, err);
6294 return err;
6295 }
6296
__ext4_expand_extra_isize(struct inode * inode,unsigned int new_extra_isize,struct ext4_iloc * iloc,handle_t * handle,int * no_expand)6297 static int __ext4_expand_extra_isize(struct inode *inode,
6298 unsigned int new_extra_isize,
6299 struct ext4_iloc *iloc,
6300 handle_t *handle, int *no_expand)
6301 {
6302 struct ext4_inode *raw_inode;
6303 struct ext4_xattr_ibody_header *header;
6304 unsigned int inode_size = EXT4_INODE_SIZE(inode->i_sb);
6305 struct ext4_inode_info *ei = EXT4_I(inode);
6306 int error;
6307
6308 /* this was checked at iget time, but double check for good measure */
6309 if ((EXT4_GOOD_OLD_INODE_SIZE + ei->i_extra_isize > inode_size) ||
6310 (ei->i_extra_isize & 3)) {
6311 EXT4_ERROR_INODE(inode, "bad extra_isize %u (inode size %u)",
6312 ei->i_extra_isize,
6313 EXT4_INODE_SIZE(inode->i_sb));
6314 return -EFSCORRUPTED;
6315 }
6316 if ((new_extra_isize < ei->i_extra_isize) ||
6317 (new_extra_isize < 4) ||
6318 (new_extra_isize > inode_size - EXT4_GOOD_OLD_INODE_SIZE))
6319 return -EINVAL; /* Should never happen */
6320
6321 raw_inode = ext4_raw_inode(iloc);
6322
6323 header = IHDR(inode, raw_inode);
6324
6325 /* No extended attributes present */
6326 if (!ext4_test_inode_state(inode, EXT4_STATE_XATTR) ||
6327 header->h_magic != cpu_to_le32(EXT4_XATTR_MAGIC)) {
6328 memset((void *)raw_inode + EXT4_GOOD_OLD_INODE_SIZE +
6329 EXT4_I(inode)->i_extra_isize, 0,
6330 new_extra_isize - EXT4_I(inode)->i_extra_isize);
6331 EXT4_I(inode)->i_extra_isize = new_extra_isize;
6332 return 0;
6333 }
6334
6335 /*
6336 * We may need to allocate external xattr block so we need quotas
6337 * initialized. Here we can be called with various locks held so we
6338 * cannot affort to initialize quotas ourselves. So just bail.
6339 */
6340 if (dquot_initialize_needed(inode))
6341 return -EAGAIN;
6342
6343 /* try to expand with EAs present */
6344 error = ext4_expand_extra_isize_ea(inode, new_extra_isize,
6345 raw_inode, handle);
6346 if (error) {
6347 /*
6348 * Inode size expansion failed; don't try again
6349 */
6350 *no_expand = 1;
6351 }
6352
6353 return error;
6354 }
6355
6356 /*
6357 * Expand an inode by new_extra_isize bytes.
6358 * Returns 0 on success or negative error number on failure.
6359 */
ext4_try_to_expand_extra_isize(struct inode * inode,unsigned int new_extra_isize,struct ext4_iloc iloc,handle_t * handle)6360 static int ext4_try_to_expand_extra_isize(struct inode *inode,
6361 unsigned int new_extra_isize,
6362 struct ext4_iloc iloc,
6363 handle_t *handle)
6364 {
6365 int no_expand;
6366 int error;
6367
6368 if (ext4_test_inode_state(inode, EXT4_STATE_NO_EXPAND))
6369 return -EOVERFLOW;
6370
6371 /*
6372 * In nojournal mode, we can immediately attempt to expand
6373 * the inode. When journaled, we first need to obtain extra
6374 * buffer credits since we may write into the EA block
6375 * with this same handle. If journal_extend fails, then it will
6376 * only result in a minor loss of functionality for that inode.
6377 * If this is felt to be critical, then e2fsck should be run to
6378 * force a large enough s_min_extra_isize.
6379 */
6380 if (ext4_journal_extend(handle,
6381 EXT4_DATA_TRANS_BLOCKS(inode->i_sb), 0) != 0)
6382 return -ENOSPC;
6383
6384 if (ext4_write_trylock_xattr(inode, &no_expand) == 0)
6385 return -EBUSY;
6386
6387 error = __ext4_expand_extra_isize(inode, new_extra_isize, &iloc,
6388 handle, &no_expand);
6389 ext4_write_unlock_xattr(inode, &no_expand);
6390
6391 return error;
6392 }
6393
ext4_expand_extra_isize(struct inode * inode,unsigned int new_extra_isize,struct ext4_iloc * iloc)6394 int ext4_expand_extra_isize(struct inode *inode,
6395 unsigned int new_extra_isize,
6396 struct ext4_iloc *iloc)
6397 {
6398 handle_t *handle;
6399 int no_expand;
6400 int error, rc;
6401
6402 if (ext4_test_inode_state(inode, EXT4_STATE_NO_EXPAND)) {
6403 brelse(iloc->bh);
6404 return -EOVERFLOW;
6405 }
6406
6407 handle = ext4_journal_start(inode, EXT4_HT_INODE,
6408 EXT4_DATA_TRANS_BLOCKS(inode->i_sb));
6409 if (IS_ERR(handle)) {
6410 error = PTR_ERR(handle);
6411 brelse(iloc->bh);
6412 return error;
6413 }
6414
6415 ext4_write_lock_xattr(inode, &no_expand);
6416
6417 BUFFER_TRACE(iloc->bh, "get_write_access");
6418 error = ext4_journal_get_write_access(handle, inode->i_sb, iloc->bh,
6419 EXT4_JTR_NONE);
6420 if (error) {
6421 brelse(iloc->bh);
6422 goto out_unlock;
6423 }
6424
6425 error = __ext4_expand_extra_isize(inode, new_extra_isize, iloc,
6426 handle, &no_expand);
6427
6428 rc = ext4_mark_iloc_dirty(handle, inode, iloc);
6429 if (!error)
6430 error = rc;
6431
6432 out_unlock:
6433 ext4_write_unlock_xattr(inode, &no_expand);
6434 ext4_journal_stop(handle);
6435 return error;
6436 }
6437
6438 /*
6439 * What we do here is to mark the in-core inode as clean with respect to inode
6440 * dirtiness (it may still be data-dirty).
6441 * This means that the in-core inode may be reaped by prune_icache
6442 * without having to perform any I/O. This is a very good thing,
6443 * because *any* task may call prune_icache - even ones which
6444 * have a transaction open against a different journal.
6445 *
6446 * Is this cheating? Not really. Sure, we haven't written the
6447 * inode out, but prune_icache isn't a user-visible syncing function.
6448 * Whenever the user wants stuff synced (sys_sync, sys_msync, sys_fsync)
6449 * we start and wait on commits.
6450 */
__ext4_mark_inode_dirty(handle_t * handle,struct inode * inode,const char * func,unsigned int line)6451 int __ext4_mark_inode_dirty(handle_t *handle, struct inode *inode,
6452 const char *func, unsigned int line)
6453 {
6454 struct ext4_iloc iloc;
6455 struct ext4_sb_info *sbi = EXT4_SB(inode->i_sb);
6456 int err;
6457
6458 might_sleep();
6459 trace_ext4_mark_inode_dirty(inode, _RET_IP_);
6460 err = ext4_reserve_inode_write(handle, inode, &iloc);
6461 if (err)
6462 goto out;
6463
6464 if (EXT4_I(inode)->i_extra_isize < sbi->s_want_extra_isize)
6465 ext4_try_to_expand_extra_isize(inode, sbi->s_want_extra_isize,
6466 iloc, handle);
6467
6468 err = ext4_mark_iloc_dirty(handle, inode, &iloc);
6469 out:
6470 if (unlikely(err))
6471 ext4_error_inode_err(inode, func, line, 0, err,
6472 "mark_inode_dirty error");
6473 return err;
6474 }
6475
6476 /*
6477 * ext4_dirty_inode() is called from __mark_inode_dirty()
6478 *
6479 * We're really interested in the case where a file is being extended.
6480 * i_size has been changed by generic_commit_write() and we thus need
6481 * to include the updated inode in the current transaction.
6482 *
6483 * Also, dquot_alloc_block() will always dirty the inode when blocks
6484 * are allocated to the file.
6485 *
6486 * If the inode is marked synchronous, we don't honour that here - doing
6487 * so would cause a commit on atime updates, which we don't bother doing.
6488 * We handle synchronous inodes at the highest possible level.
6489 */
ext4_dirty_inode(struct inode * inode,int flags)6490 void ext4_dirty_inode(struct inode *inode, int flags)
6491 {
6492 handle_t *handle;
6493
6494 handle = ext4_journal_start(inode, EXT4_HT_INODE, 2);
6495 if (IS_ERR(handle))
6496 return;
6497 ext4_mark_inode_dirty(handle, inode);
6498 ext4_journal_stop(handle);
6499 }
6500
ext4_change_inode_journal_flag(struct inode * inode,int val)6501 int ext4_change_inode_journal_flag(struct inode *inode, int val)
6502 {
6503 journal_t *journal;
6504 handle_t *handle;
6505 int err;
6506 int alloc_ctx;
6507
6508 /*
6509 * We have to be very careful here: changing a data block's
6510 * journaling status dynamically is dangerous. If we write a
6511 * data block to the journal, change the status and then delete
6512 * that block, we risk forgetting to revoke the old log record
6513 * from the journal and so a subsequent replay can corrupt data.
6514 * So, first we make sure that the journal is empty and that
6515 * nobody is changing anything.
6516 */
6517
6518 journal = EXT4_JOURNAL(inode);
6519 if (!journal)
6520 return 0;
6521 if (is_journal_aborted(journal))
6522 return -EROFS;
6523
6524 /* Wait for all existing dio workers */
6525 inode_dio_wait(inode);
6526
6527 /*
6528 * Before flushing the journal and switching inode's aops, we have
6529 * to flush all dirty data the inode has. There can be outstanding
6530 * delayed allocations, there can be unwritten extents created by
6531 * fallocate or buffered writes in dioread_nolock mode covered by
6532 * dirty data which can be converted only after flushing the dirty
6533 * data (and journalled aops don't know how to handle these cases).
6534 */
6535 filemap_invalidate_lock(inode->i_mapping);
6536 err = filemap_write_and_wait(inode->i_mapping);
6537 if (err < 0) {
6538 filemap_invalidate_unlock(inode->i_mapping);
6539 return err;
6540 }
6541 /* Before switch the inode journalling mode evict all the page cache. */
6542 truncate_pagecache(inode, 0);
6543
6544 alloc_ctx = ext4_writepages_down_write(inode->i_sb);
6545 jbd2_journal_lock_updates(journal);
6546
6547 /*
6548 * OK, there are no updates running now, and all cached data is
6549 * synced to disk. We are now in a completely consistent state
6550 * which doesn't have anything in the journal, and we know that
6551 * no filesystem updates are running, so it is safe to modify
6552 * the inode's in-core data-journaling state flag now.
6553 */
6554
6555 if (val)
6556 ext4_set_inode_flag(inode, EXT4_INODE_JOURNAL_DATA);
6557 else {
6558 err = jbd2_journal_flush(journal, 0);
6559 if (err < 0) {
6560 jbd2_journal_unlock_updates(journal);
6561 ext4_writepages_up_write(inode->i_sb, alloc_ctx);
6562 filemap_invalidate_unlock(inode->i_mapping);
6563 return err;
6564 }
6565 ext4_clear_inode_flag(inode, EXT4_INODE_JOURNAL_DATA);
6566 }
6567 ext4_set_aops(inode);
6568 ext4_set_inode_mapping_order(inode);
6569
6570 jbd2_journal_unlock_updates(journal);
6571 ext4_writepages_up_write(inode->i_sb, alloc_ctx);
6572 filemap_invalidate_unlock(inode->i_mapping);
6573
6574 /* Finally we can mark the inode as dirty. */
6575
6576 handle = ext4_journal_start(inode, EXT4_HT_INODE, 1);
6577 if (IS_ERR(handle))
6578 return PTR_ERR(handle);
6579
6580 ext4_fc_mark_ineligible(inode->i_sb,
6581 EXT4_FC_REASON_JOURNAL_FLAG_CHANGE, handle);
6582 err = ext4_mark_inode_dirty(handle, inode);
6583 ext4_handle_sync(handle);
6584 ext4_journal_stop(handle);
6585 ext4_std_error(inode->i_sb, err);
6586
6587 return err;
6588 }
6589
ext4_bh_unmapped(handle_t * handle,struct inode * inode,struct buffer_head * bh)6590 static int ext4_bh_unmapped(handle_t *handle, struct inode *inode,
6591 struct buffer_head *bh)
6592 {
6593 return !buffer_mapped(bh);
6594 }
6595
ext4_block_page_mkwrite(struct inode * inode,struct folio * folio,get_block_t get_block)6596 static int ext4_block_page_mkwrite(struct inode *inode, struct folio *folio,
6597 get_block_t get_block)
6598 {
6599 handle_t *handle;
6600 loff_t size;
6601 unsigned long len;
6602 int credits;
6603 int ret;
6604
6605 credits = ext4_chunk_trans_extent(inode,
6606 ext4_journal_blocks_per_folio(inode));
6607 handle = ext4_journal_start(inode, EXT4_HT_WRITE_PAGE, credits);
6608 if (IS_ERR(handle))
6609 return PTR_ERR(handle);
6610
6611 folio_lock(folio);
6612 size = i_size_read(inode);
6613 /* Page got truncated from under us? */
6614 if (folio->mapping != inode->i_mapping || folio_pos(folio) > size) {
6615 ret = -EFAULT;
6616 goto out_error;
6617 }
6618
6619 len = folio_size(folio);
6620 if (folio_pos(folio) + len > size)
6621 len = size - folio_pos(folio);
6622
6623 ret = ext4_block_write_begin(handle, folio, 0, len, get_block);
6624 if (ret)
6625 goto out_error;
6626
6627 if (!ext4_should_journal_data(inode)) {
6628 block_commit_write(folio, 0, len);
6629 folio_mark_dirty(folio);
6630 } else {
6631 ret = ext4_journal_folio_buffers(handle, folio, len);
6632 if (ret)
6633 goto out_error;
6634 }
6635 ext4_journal_stop(handle);
6636 folio_wait_stable(folio);
6637 return ret;
6638
6639 out_error:
6640 folio_unlock(folio);
6641 ext4_journal_stop(handle);
6642 return ret;
6643 }
6644
ext4_page_mkwrite(struct vm_fault * vmf)6645 vm_fault_t ext4_page_mkwrite(struct vm_fault *vmf)
6646 {
6647 struct vm_area_struct *vma = vmf->vma;
6648 struct folio *folio = page_folio(vmf->page);
6649 loff_t size;
6650 unsigned long len;
6651 int err;
6652 vm_fault_t ret;
6653 struct file *file = vma->vm_file;
6654 struct inode *inode = file_inode(file);
6655 struct address_space *mapping = inode->i_mapping;
6656 get_block_t *get_block = ext4_get_block;
6657 int retries = 0;
6658
6659 if (unlikely(IS_IMMUTABLE(inode)))
6660 return VM_FAULT_SIGBUS;
6661
6662 sb_start_pagefault(inode->i_sb);
6663 file_update_time(vma->vm_file);
6664
6665 filemap_invalidate_lock_shared(mapping);
6666
6667 err = ext4_convert_inline_data(inode);
6668 if (err)
6669 goto out_ret;
6670
6671 /*
6672 * On data journalling we skip straight to the transaction handle:
6673 * there's no delalloc; page truncated will be checked later; the
6674 * early return w/ all buffers mapped (calculates size/len) can't
6675 * be used; and there's no dioread_nolock, so only ext4_get_block.
6676 */
6677 if (ext4_should_journal_data(inode))
6678 goto retry_alloc;
6679
6680 /* Delalloc case is easy... */
6681 if (test_opt(inode->i_sb, DELALLOC) &&
6682 !ext4_nonda_switch(inode->i_sb)) {
6683 do {
6684 err = block_page_mkwrite(vma, vmf,
6685 ext4_da_get_block_prep);
6686 } while (err == -ENOSPC &&
6687 ext4_should_retry_alloc(inode->i_sb, &retries));
6688 goto out_ret;
6689 }
6690
6691 folio_lock(folio);
6692 size = i_size_read(inode);
6693 /* Page got truncated from under us? */
6694 if (folio->mapping != mapping || folio_pos(folio) > size) {
6695 folio_unlock(folio);
6696 ret = VM_FAULT_NOPAGE;
6697 goto out;
6698 }
6699
6700 len = folio_size(folio);
6701 if (folio_pos(folio) + len > size)
6702 len = size - folio_pos(folio);
6703 /*
6704 * Return if we have all the buffers mapped. This avoids the need to do
6705 * journal_start/journal_stop which can block and take a long time
6706 *
6707 * This cannot be done for data journalling, as we have to add the
6708 * inode to the transaction's list to writeprotect pages on commit.
6709 */
6710 if (folio_buffers(folio)) {
6711 if (!ext4_walk_page_buffers(NULL, inode, folio_buffers(folio),
6712 0, len, NULL,
6713 ext4_bh_unmapped)) {
6714 /* Wait so that we don't change page under IO */
6715 folio_wait_stable(folio);
6716 ret = VM_FAULT_LOCKED;
6717 goto out;
6718 }
6719 }
6720 folio_unlock(folio);
6721 /* OK, we need to fill the hole... */
6722 if (ext4_should_dioread_nolock(inode))
6723 get_block = ext4_get_block_unwritten;
6724 retry_alloc:
6725 /* Start journal and allocate blocks */
6726 err = ext4_block_page_mkwrite(inode, folio, get_block);
6727 if (err == -EAGAIN ||
6728 (err == -ENOSPC && ext4_should_retry_alloc(inode->i_sb, &retries)))
6729 goto retry_alloc;
6730 out_ret:
6731 ret = vmf_fs_error(err);
6732 out:
6733 filemap_invalidate_unlock_shared(mapping);
6734 sb_end_pagefault(inode->i_sb);
6735 return ret;
6736 }
6737