1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (C) 2011 STRATO. All rights reserved.
4 */
5
6 #include <linux/mm.h>
7 #include <linux/rbtree.h>
8 #include <trace/events/btrfs.h>
9 #include "ctree.h"
10 #include "disk-io.h"
11 #include "backref.h"
12 #include "ulist.h"
13 #include "transaction.h"
14 #include "delayed-ref.h"
15 #include "locking.h"
16 #include "misc.h"
17 #include "tree-mod-log.h"
18 #include "fs.h"
19 #include "accessors.h"
20 #include "extent-tree.h"
21 #include "relocation.h"
22 #include "tree-checker.h"
23
24 /* Just arbitrary numbers so we can be sure one of these happened. */
25 #define BACKREF_FOUND_SHARED 6
26 #define BACKREF_FOUND_NOT_SHARED 7
27
28 struct extent_inode_elem {
29 u64 inum;
30 u64 offset;
31 u64 num_bytes;
32 struct extent_inode_elem *next;
33 };
34
check_extent_in_eb(struct btrfs_backref_walk_ctx * ctx,const struct btrfs_key * key,const struct extent_buffer * eb,const struct btrfs_file_extent_item * fi,struct extent_inode_elem ** eie)35 static int check_extent_in_eb(struct btrfs_backref_walk_ctx *ctx,
36 const struct btrfs_key *key,
37 const struct extent_buffer *eb,
38 const struct btrfs_file_extent_item *fi,
39 struct extent_inode_elem **eie)
40 {
41 const u64 data_len = btrfs_file_extent_num_bytes(eb, fi);
42 u64 offset = key->offset;
43 struct extent_inode_elem *e;
44 const u64 *root_ids;
45 int root_count;
46 bool cached;
47
48 if (!ctx->ignore_extent_item_pos &&
49 !btrfs_file_extent_compression(eb, fi) &&
50 !btrfs_file_extent_encryption(eb, fi) &&
51 !btrfs_file_extent_other_encoding(eb, fi)) {
52 u64 data_offset;
53
54 data_offset = btrfs_file_extent_offset(eb, fi);
55
56 if (ctx->extent_item_pos < data_offset ||
57 ctx->extent_item_pos >= data_offset + data_len)
58 return 1;
59 offset += ctx->extent_item_pos - data_offset;
60 }
61
62 if (!ctx->indirect_ref_iterator || !ctx->cache_lookup)
63 goto add_inode_elem;
64
65 cached = ctx->cache_lookup(eb->start, ctx->user_ctx, &root_ids,
66 &root_count);
67 if (!cached)
68 goto add_inode_elem;
69
70 for (int i = 0; i < root_count; i++) {
71 int ret;
72
73 ret = ctx->indirect_ref_iterator(key->objectid, offset,
74 data_len, root_ids[i],
75 ctx->user_ctx);
76 if (ret)
77 return ret;
78 }
79
80 add_inode_elem:
81 e = kmalloc_obj(*e, GFP_NOFS);
82 if (!e)
83 return -ENOMEM;
84
85 e->next = *eie;
86 e->inum = key->objectid;
87 e->offset = offset;
88 e->num_bytes = data_len;
89 *eie = e;
90
91 return 0;
92 }
93
free_inode_elem_list(struct extent_inode_elem * eie)94 static void free_inode_elem_list(struct extent_inode_elem *eie)
95 {
96 struct extent_inode_elem *eie_next;
97
98 for (; eie; eie = eie_next) {
99 eie_next = eie->next;
100 kfree(eie);
101 }
102 }
103
find_extent_in_eb(struct btrfs_backref_walk_ctx * ctx,const struct extent_buffer * eb,struct extent_inode_elem ** eie)104 static int find_extent_in_eb(struct btrfs_backref_walk_ctx *ctx,
105 const struct extent_buffer *eb,
106 struct extent_inode_elem **eie)
107 {
108 u64 disk_byte;
109 struct btrfs_key key;
110 struct btrfs_file_extent_item *fi;
111 int slot;
112 int nritems;
113 int extent_type;
114 int ret;
115
116 /*
117 * from the shared data ref, we only have the leaf but we need
118 * the key. thus, we must look into all items and see that we
119 * find one (some) with a reference to our extent item.
120 */
121 nritems = btrfs_header_nritems(eb);
122 for (slot = 0; slot < nritems; ++slot) {
123 btrfs_item_key_to_cpu(eb, &key, slot);
124 if (key.type != BTRFS_EXTENT_DATA_KEY)
125 continue;
126 fi = btrfs_item_ptr(eb, slot, struct btrfs_file_extent_item);
127 extent_type = btrfs_file_extent_type(eb, fi);
128 if (extent_type == BTRFS_FILE_EXTENT_INLINE)
129 continue;
130 /* don't skip BTRFS_FILE_EXTENT_PREALLOC, we can handle that */
131 disk_byte = btrfs_file_extent_disk_bytenr(eb, fi);
132 if (disk_byte != ctx->bytenr)
133 continue;
134
135 ret = check_extent_in_eb(ctx, &key, eb, fi, eie);
136 if (ret == BTRFS_ITERATE_EXTENT_INODES_STOP || ret < 0)
137 return ret;
138 }
139
140 return 0;
141 }
142
143 struct preftree {
144 struct rb_root_cached root;
145 unsigned int count;
146 };
147
148 #define PREFTREE_INIT { .root = RB_ROOT_CACHED, .count = 0 }
149
150 struct preftrees {
151 struct preftree direct; /* BTRFS_SHARED_[DATA|BLOCK]_REF_KEY */
152 struct preftree indirect; /* BTRFS_[TREE_BLOCK|EXTENT_DATA]_REF_KEY */
153 struct preftree indirect_missing_keys;
154 };
155
156 /*
157 * Checks for a shared extent during backref search.
158 *
159 * The share_count tracks prelim_refs (direct and indirect) having a
160 * ref->count >0:
161 * - incremented when a ref->count transitions to >0
162 * - decremented when a ref->count transitions to <1
163 */
164 struct share_check {
165 struct btrfs_backref_share_check_ctx *ctx;
166 struct btrfs_root *root;
167 u64 inum;
168 u64 data_bytenr;
169 u64 data_extent_gen;
170 /*
171 * Counts number of inodes that refer to an extent (different inodes in
172 * the same root or different roots) that we could find. The sharedness
173 * check typically stops once this counter gets greater than 1, so it
174 * may not reflect the total number of inodes.
175 */
176 int share_count;
177 /*
178 * The number of times we found our inode refers to the data extent we
179 * are determining the sharedness. In other words, how many file extent
180 * items we could find for our inode that point to our target data
181 * extent. The value we get here after finishing the extent sharedness
182 * check may be smaller than reality, but if it ends up being greater
183 * than 1, then we know for sure the inode has multiple file extent
184 * items that point to our inode, and we can safely assume it's useful
185 * to cache the sharedness check result.
186 */
187 int self_ref_count;
188 bool have_delayed_delete_refs;
189 };
190
extent_is_shared(struct share_check * sc)191 static inline int extent_is_shared(struct share_check *sc)
192 {
193 return (sc && sc->share_count > 1) ? BACKREF_FOUND_SHARED : 0;
194 }
195
196 static struct kmem_cache *btrfs_prelim_ref_cache;
197
btrfs_prelim_ref_init(void)198 int __init btrfs_prelim_ref_init(void)
199 {
200 btrfs_prelim_ref_cache = kmem_cache_create("btrfs_prelim_ref",
201 sizeof(struct prelim_ref), 0, 0, NULL);
202 if (!btrfs_prelim_ref_cache)
203 return -ENOMEM;
204 return 0;
205 }
206
btrfs_prelim_ref_exit(void)207 void __cold btrfs_prelim_ref_exit(void)
208 {
209 kmem_cache_destroy(btrfs_prelim_ref_cache);
210 }
211
free_pref(struct prelim_ref * ref)212 static void free_pref(struct prelim_ref *ref)
213 {
214 kmem_cache_free(btrfs_prelim_ref_cache, ref);
215 }
216
217 /*
218 * Return 0 when both refs are for the same block (and can be merged).
219 * A -1 return indicates ref1 is a 'lower' block than ref2, while 1
220 * indicates a 'higher' block.
221 */
prelim_ref_compare(const struct prelim_ref * ref1,const struct prelim_ref * ref2)222 static int prelim_ref_compare(const struct prelim_ref *ref1,
223 const struct prelim_ref *ref2)
224 {
225 if (ref1->level < ref2->level)
226 return -1;
227 if (ref1->level > ref2->level)
228 return 1;
229 if (ref1->root_id < ref2->root_id)
230 return -1;
231 if (ref1->root_id > ref2->root_id)
232 return 1;
233 if (ref1->key_for_search.type < ref2->key_for_search.type)
234 return -1;
235 if (ref1->key_for_search.type > ref2->key_for_search.type)
236 return 1;
237 if (ref1->key_for_search.objectid < ref2->key_for_search.objectid)
238 return -1;
239 if (ref1->key_for_search.objectid > ref2->key_for_search.objectid)
240 return 1;
241 if (ref1->key_for_search.offset < ref2->key_for_search.offset)
242 return -1;
243 if (ref1->key_for_search.offset > ref2->key_for_search.offset)
244 return 1;
245 if (ref1->parent < ref2->parent)
246 return -1;
247 if (ref1->parent > ref2->parent)
248 return 1;
249
250 return 0;
251 }
252
prelim_ref_rb_add_cmp(const struct rb_node * new,const struct rb_node * exist)253 static int prelim_ref_rb_add_cmp(const struct rb_node *new,
254 const struct rb_node *exist)
255 {
256 const struct prelim_ref *ref_new =
257 rb_entry(new, struct prelim_ref, rbnode);
258 const struct prelim_ref *ref_exist =
259 rb_entry(exist, struct prelim_ref, rbnode);
260
261 /*
262 * prelim_ref_compare() expects the first parameter as the existing one,
263 * different from the rb_find_add_cached() order.
264 */
265 return prelim_ref_compare(ref_exist, ref_new);
266 }
267
update_share_count(struct share_check * sc,int oldcount,int newcount,const struct prelim_ref * newref)268 static void update_share_count(struct share_check *sc, int oldcount,
269 int newcount, const struct prelim_ref *newref)
270 {
271 if ((!sc) || (oldcount == 0 && newcount < 1))
272 return;
273
274 if (oldcount > 0 && newcount < 1)
275 sc->share_count--;
276 else if (oldcount < 1 && newcount > 0)
277 sc->share_count++;
278
279 if (newref->root_id == btrfs_root_id(sc->root) &&
280 newref->wanted_disk_byte == sc->data_bytenr &&
281 newref->key_for_search.objectid == sc->inum)
282 sc->self_ref_count += newref->count;
283 }
284
285 /*
286 * Add @newref to the @root rbtree, merging identical refs.
287 *
288 * Callers should assume that newref has been freed after calling.
289 */
prelim_ref_insert(const struct btrfs_fs_info * fs_info,struct preftree * preftree,struct prelim_ref * newref,struct share_check * sc)290 static void prelim_ref_insert(const struct btrfs_fs_info *fs_info,
291 struct preftree *preftree,
292 struct prelim_ref *newref,
293 struct share_check *sc)
294 {
295 struct rb_root_cached *root;
296 struct rb_node *exist;
297
298 root = &preftree->root;
299 exist = rb_find_add_cached(&newref->rbnode, root, prelim_ref_rb_add_cmp);
300 if (exist) {
301 struct prelim_ref *ref = rb_entry(exist, struct prelim_ref, rbnode);
302 /* Identical refs, merge them and free @newref */
303 struct extent_inode_elem *eie = ref->inode_list;
304
305 while (eie && eie->next)
306 eie = eie->next;
307
308 if (!eie)
309 ref->inode_list = newref->inode_list;
310 else
311 eie->next = newref->inode_list;
312 trace_btrfs_prelim_ref_merge(fs_info, ref, newref,
313 preftree->count);
314 /*
315 * A delayed ref can have newref->count < 0.
316 * The ref->count is updated to follow any
317 * BTRFS_[ADD|DROP]_DELAYED_REF actions.
318 */
319 update_share_count(sc, ref->count,
320 ref->count + newref->count, newref);
321 ref->count += newref->count;
322 free_pref(newref);
323 return;
324 }
325
326 update_share_count(sc, 0, newref->count, newref);
327 preftree->count++;
328 trace_btrfs_prelim_ref_insert(fs_info, newref, NULL, preftree->count);
329 }
330
331 /*
332 * Release the entire tree. We don't care about internal consistency so
333 * just free everything and then reset the tree root.
334 */
prelim_release(struct preftree * preftree)335 static void prelim_release(struct preftree *preftree)
336 {
337 struct prelim_ref *ref, *next_ref;
338
339 rbtree_postorder_for_each_entry_safe(ref, next_ref,
340 &preftree->root.rb_root, rbnode) {
341 free_inode_elem_list(ref->inode_list);
342 free_pref(ref);
343 }
344
345 preftree->root = RB_ROOT_CACHED;
346 preftree->count = 0;
347 }
348
349 /*
350 * the rules for all callers of this function are:
351 * - obtaining the parent is the goal
352 * - if you add a key, you must know that it is a correct key
353 * - if you cannot add the parent or a correct key, then we will look into the
354 * block later to set a correct key
355 *
356 * delayed refs
357 * ============
358 * backref type | shared | indirect | shared | indirect
359 * information | tree | tree | data | data
360 * --------------------+--------+----------+--------+----------
361 * parent logical | y | - | - | -
362 * key to resolve | - | y | y | y
363 * tree block logical | - | - | - | -
364 * root for resolving | y | y | y | y
365 *
366 * - column 1: we've the parent -> done
367 * - column 2, 3, 4: we use the key to find the parent
368 *
369 * on disk refs (inline or keyed)
370 * ==============================
371 * backref type | shared | indirect | shared | indirect
372 * information | tree | tree | data | data
373 * --------------------+--------+----------+--------+----------
374 * parent logical | y | - | y | -
375 * key to resolve | - | - | - | y
376 * tree block logical | y | y | y | y
377 * root for resolving | - | y | y | y
378 *
379 * - column 1, 3: we've the parent -> done
380 * - column 2: we take the first key from the block to find the parent
381 * (see add_missing_keys)
382 * - column 4: we use the key to find the parent
383 *
384 * additional information that's available but not required to find the parent
385 * block might help in merging entries to gain some speed.
386 */
add_prelim_ref(const struct btrfs_fs_info * fs_info,struct preftree * preftree,u64 root_id,const struct btrfs_key * key,int level,u64 parent,u64 wanted_disk_byte,int count,struct share_check * sc,gfp_t gfp_mask)387 static int add_prelim_ref(const struct btrfs_fs_info *fs_info,
388 struct preftree *preftree, u64 root_id,
389 const struct btrfs_key *key, int level, u64 parent,
390 u64 wanted_disk_byte, int count,
391 struct share_check *sc, gfp_t gfp_mask)
392 {
393 struct prelim_ref *ref;
394
395 if (root_id == BTRFS_DATA_RELOC_TREE_OBJECTID)
396 return 0;
397
398 ref = kmem_cache_alloc(btrfs_prelim_ref_cache, gfp_mask);
399 if (!ref)
400 return -ENOMEM;
401
402 ref->root_id = root_id;
403 if (key)
404 ref->key_for_search = *key;
405 else
406 memset(&ref->key_for_search, 0, sizeof(ref->key_for_search));
407
408 ref->inode_list = NULL;
409 ref->level = level;
410 ref->count = count;
411 ref->parent = parent;
412 ref->wanted_disk_byte = wanted_disk_byte;
413 prelim_ref_insert(fs_info, preftree, ref, sc);
414 return extent_is_shared(sc);
415 }
416
417 /* direct refs use root == 0, key == NULL */
add_direct_ref(const struct btrfs_fs_info * fs_info,struct preftrees * preftrees,int level,u64 parent,u64 wanted_disk_byte,int count,struct share_check * sc,gfp_t gfp_mask)418 static int add_direct_ref(const struct btrfs_fs_info *fs_info,
419 struct preftrees *preftrees, int level, u64 parent,
420 u64 wanted_disk_byte, int count,
421 struct share_check *sc, gfp_t gfp_mask)
422 {
423 return add_prelim_ref(fs_info, &preftrees->direct, 0, NULL, level,
424 parent, wanted_disk_byte, count, sc, gfp_mask);
425 }
426
427 /* indirect refs use parent == 0 */
add_indirect_ref(const struct btrfs_fs_info * fs_info,struct preftrees * preftrees,u64 root_id,const struct btrfs_key * key,int level,u64 wanted_disk_byte,int count,struct share_check * sc,gfp_t gfp_mask)428 static int add_indirect_ref(const struct btrfs_fs_info *fs_info,
429 struct preftrees *preftrees, u64 root_id,
430 const struct btrfs_key *key, int level,
431 u64 wanted_disk_byte, int count,
432 struct share_check *sc, gfp_t gfp_mask)
433 {
434 struct preftree *tree = &preftrees->indirect;
435
436 if (!key)
437 tree = &preftrees->indirect_missing_keys;
438 return add_prelim_ref(fs_info, tree, root_id, key, level, 0,
439 wanted_disk_byte, count, sc, gfp_mask);
440 }
441
is_shared_data_backref(struct preftrees * preftrees,u64 bytenr)442 static int is_shared_data_backref(struct preftrees *preftrees, u64 bytenr)
443 {
444 struct rb_node **p = &preftrees->direct.root.rb_root.rb_node;
445 struct rb_node *parent = NULL;
446 struct prelim_ref *ref = NULL;
447 struct prelim_ref target = {};
448 int result;
449
450 target.parent = bytenr;
451
452 while (*p) {
453 parent = *p;
454 ref = rb_entry(parent, struct prelim_ref, rbnode);
455 result = prelim_ref_compare(ref, &target);
456
457 if (result < 0)
458 p = &(*p)->rb_left;
459 else if (result > 0)
460 p = &(*p)->rb_right;
461 else
462 return 1;
463 }
464 return 0;
465 }
466
add_all_parents(struct btrfs_backref_walk_ctx * ctx,struct btrfs_root * root,struct btrfs_path * path,struct ulist * parents,struct preftrees * preftrees,struct prelim_ref * ref,int level)467 static int add_all_parents(struct btrfs_backref_walk_ctx *ctx,
468 struct btrfs_root *root, struct btrfs_path *path,
469 struct ulist *parents,
470 struct preftrees *preftrees, struct prelim_ref *ref,
471 int level)
472 {
473 int ret = 0;
474 int slot;
475 struct extent_buffer *eb;
476 struct btrfs_key key;
477 struct btrfs_key *key_for_search = &ref->key_for_search;
478 struct btrfs_file_extent_item *fi;
479 struct extent_inode_elem *eie = NULL, *old = NULL;
480 u64 disk_byte;
481 u64 wanted_disk_byte = ref->wanted_disk_byte;
482 u64 count = 0;
483 u64 data_offset;
484 u8 type;
485
486 if (level != 0) {
487 eb = path->nodes[level];
488 ret = ulist_add(parents, eb->start, 0, GFP_NOFS);
489 if (ret < 0)
490 return ret;
491 return 0;
492 }
493
494 /*
495 * 1. We normally enter this function with the path already pointing to
496 * the first item to check. But sometimes, we may enter it with
497 * slot == nritems.
498 * 2. We are searching for normal backref but bytenr of this leaf
499 * matches shared data backref
500 * 3. The leaf owner is not equal to the root we are searching
501 *
502 * For these cases, go to the next leaf before we continue.
503 */
504 eb = path->nodes[0];
505 if (path->slots[0] >= btrfs_header_nritems(eb) ||
506 is_shared_data_backref(preftrees, eb->start) ||
507 ref->root_id != btrfs_header_owner(eb)) {
508 if (ctx->time_seq == BTRFS_SEQ_LAST)
509 ret = btrfs_next_leaf(root, path);
510 else
511 ret = btrfs_next_old_leaf(root, path, ctx->time_seq);
512 }
513
514 while (!ret && count < ref->count) {
515 eb = path->nodes[0];
516 slot = path->slots[0];
517
518 btrfs_item_key_to_cpu(eb, &key, slot);
519
520 if (key.objectid != key_for_search->objectid ||
521 key.type != BTRFS_EXTENT_DATA_KEY)
522 break;
523
524 /*
525 * We are searching for normal backref but bytenr of this leaf
526 * matches shared data backref, OR
527 * the leaf owner is not equal to the root we are searching for
528 */
529 if (slot == 0 &&
530 (is_shared_data_backref(preftrees, eb->start) ||
531 ref->root_id != btrfs_header_owner(eb))) {
532 if (ctx->time_seq == BTRFS_SEQ_LAST)
533 ret = btrfs_next_leaf(root, path);
534 else
535 ret = btrfs_next_old_leaf(root, path, ctx->time_seq);
536 continue;
537 }
538 fi = btrfs_item_ptr(eb, slot, struct btrfs_file_extent_item);
539 type = btrfs_file_extent_type(eb, fi);
540 if (type == BTRFS_FILE_EXTENT_INLINE)
541 goto next;
542 disk_byte = btrfs_file_extent_disk_bytenr(eb, fi);
543 data_offset = btrfs_file_extent_offset(eb, fi);
544
545 if (disk_byte == wanted_disk_byte) {
546 eie = NULL;
547 old = NULL;
548 if (ref->key_for_search.offset == key.offset - data_offset)
549 count++;
550 else
551 goto next;
552 if (!ctx->skip_inode_ref_list) {
553 ret = check_extent_in_eb(ctx, &key, eb, fi, &eie);
554 if (ret == BTRFS_ITERATE_EXTENT_INODES_STOP ||
555 ret < 0)
556 break;
557 }
558 if (ret > 0)
559 goto next;
560 ret = ulist_add_merge_ptr(parents, eb->start,
561 eie, (void **)&old, GFP_NOFS);
562 if (ret < 0)
563 break;
564 if (!ret && !ctx->skip_inode_ref_list) {
565 while (old->next)
566 old = old->next;
567 old->next = eie;
568 }
569 eie = NULL;
570 }
571 next:
572 if (ctx->time_seq == BTRFS_SEQ_LAST)
573 ret = btrfs_next_item(root, path);
574 else
575 ret = btrfs_next_old_item(root, path, ctx->time_seq);
576 }
577
578 if (ret == BTRFS_ITERATE_EXTENT_INODES_STOP || ret < 0)
579 free_inode_elem_list(eie);
580 else if (ret > 0)
581 ret = 0;
582
583 return ret;
584 }
585
586 /*
587 * resolve an indirect backref in the form (root_id, key, level)
588 * to a logical address
589 */
resolve_indirect_ref(struct btrfs_backref_walk_ctx * ctx,struct btrfs_path * path,struct preftrees * preftrees,struct prelim_ref * ref,struct ulist * parents)590 static int resolve_indirect_ref(struct btrfs_backref_walk_ctx *ctx,
591 struct btrfs_path *path,
592 struct preftrees *preftrees,
593 struct prelim_ref *ref, struct ulist *parents)
594 {
595 struct btrfs_root *root;
596 struct extent_buffer *eb;
597 int ret = 0;
598 int root_level;
599 int level = ref->level;
600 struct btrfs_key search_key = ref->key_for_search;
601
602 /*
603 * If we're search_commit_root we could possibly be holding locks on
604 * other tree nodes. This happens when qgroups does backref walks when
605 * adding new delayed refs. To deal with this we need to look in cache
606 * for the root, and if we don't find it then we need to search the
607 * tree_root's commit root, thus the btrfs_get_fs_root_commit_root usage
608 * here.
609 */
610 if (path->search_commit_root)
611 root = btrfs_get_fs_root_commit_root(ctx->fs_info, path, ref->root_id);
612 else
613 root = btrfs_get_fs_root(ctx->fs_info, ref->root_id, false);
614 if (IS_ERR(root)) {
615 ret = PTR_ERR(root);
616 goto out_free;
617 }
618
619 if (!path->search_commit_root &&
620 test_bit(BTRFS_ROOT_DELETING, &root->state)) {
621 ret = -ENOENT;
622 goto out;
623 }
624
625 if (btrfs_is_testing(ctx->fs_info)) {
626 ret = -ENOENT;
627 goto out;
628 }
629
630 if (path->search_commit_root)
631 root_level = btrfs_header_level(root->commit_root);
632 else if (ctx->time_seq == BTRFS_SEQ_LAST)
633 root_level = btrfs_header_level(root->node);
634 else
635 root_level = btrfs_old_root_level(root, ctx->time_seq);
636
637 if (root_level + 1 == level)
638 goto out;
639
640 /*
641 * We can often find data backrefs with an offset that is too large
642 * (>= LLONG_MAX, maximum allowed file offset) due to underflows when
643 * subtracting a file's offset with the data offset of its
644 * corresponding extent data item. This can happen for example in the
645 * clone ioctl.
646 *
647 * So if we detect such case we set the search key's offset to zero to
648 * make sure we will find the matching file extent item at
649 * add_all_parents(), otherwise we will miss it because the offset
650 * taken form the backref is much larger then the offset of the file
651 * extent item. This can make us scan a very large number of file
652 * extent items, but at least it will not make us miss any.
653 *
654 * This is an ugly workaround for a behaviour that should have never
655 * existed, but it does and a fix for the clone ioctl would touch a lot
656 * of places, cause backwards incompatibility and would not fix the
657 * problem for extents cloned with older kernels.
658 */
659 if (search_key.type == BTRFS_EXTENT_DATA_KEY &&
660 search_key.offset >= LLONG_MAX)
661 search_key.offset = 0;
662 path->lowest_level = level;
663 if (ctx->time_seq == BTRFS_SEQ_LAST)
664 ret = btrfs_search_slot(NULL, root, &search_key, path, 0, 0);
665 else
666 ret = btrfs_search_old_slot(root, &search_key, path, ctx->time_seq);
667
668 btrfs_debug(ctx->fs_info,
669 "search slot in root %llu (level %d, ref count %d) returned %d for key " BTRFS_KEY_FMT,
670 ref->root_id, level, ref->count, ret,
671 BTRFS_KEY_FMT_VALUE(&ref->key_for_search));
672 if (ret < 0)
673 goto out;
674
675 eb = path->nodes[level];
676 while (!eb) {
677 if (WARN_ON(!level)) {
678 ret = 1;
679 goto out;
680 }
681 level--;
682 eb = path->nodes[level];
683 }
684
685 ret = add_all_parents(ctx, root, path, parents, preftrees, ref, level);
686 out:
687 btrfs_put_root(root);
688 out_free:
689 path->lowest_level = 0;
690 btrfs_release_path(path);
691 return ret;
692 }
693
694 static struct extent_inode_elem *
unode_aux_to_inode_list(struct ulist_node * node)695 unode_aux_to_inode_list(struct ulist_node *node)
696 {
697 if (!node)
698 return NULL;
699 return (struct extent_inode_elem *)(uintptr_t)node->aux;
700 }
701
free_leaf_list(struct ulist * ulist)702 static void free_leaf_list(struct ulist *ulist)
703 {
704 struct ulist_node *node;
705 struct ulist_iterator uiter;
706
707 ULIST_ITER_INIT(&uiter);
708 while ((node = ulist_next(ulist, &uiter)))
709 free_inode_elem_list(unode_aux_to_inode_list(node));
710
711 ulist_free(ulist);
712 }
713
714 /*
715 * We maintain three separate rbtrees: one for direct refs, one for
716 * indirect refs which have a key, and one for indirect refs which do not
717 * have a key. Each tree does merge on insertion.
718 *
719 * Once all of the references are located, we iterate over the tree of
720 * indirect refs with missing keys. An appropriate key is located and
721 * the ref is moved onto the tree for indirect refs. After all missing
722 * keys are thus located, we iterate over the indirect ref tree, resolve
723 * each reference, and then insert the resolved reference onto the
724 * direct tree (merging there too).
725 *
726 * New backrefs (i.e., for parent nodes) are added to the appropriate
727 * rbtree as they are encountered. The new backrefs are subsequently
728 * resolved as above.
729 */
resolve_indirect_refs(struct btrfs_backref_walk_ctx * ctx,struct btrfs_path * path,struct preftrees * preftrees,struct share_check * sc)730 static int resolve_indirect_refs(struct btrfs_backref_walk_ctx *ctx,
731 struct btrfs_path *path,
732 struct preftrees *preftrees,
733 struct share_check *sc)
734 {
735 int ret = 0;
736 struct ulist *parents;
737 struct ulist_node *node;
738 struct ulist_iterator uiter;
739 struct rb_node *rnode;
740
741 parents = ulist_alloc(GFP_NOFS);
742 if (!parents)
743 return -ENOMEM;
744
745 /*
746 * We could trade memory usage for performance here by iterating
747 * the tree, allocating new refs for each insertion, and then
748 * freeing the entire indirect tree when we're done. In some test
749 * cases, the tree can grow quite large (~200k objects).
750 */
751 while ((rnode = rb_first_cached(&preftrees->indirect.root))) {
752 struct prelim_ref *ref;
753 int ret2;
754
755 ref = rb_entry(rnode, struct prelim_ref, rbnode);
756 if (WARN(ref->parent,
757 "BUG: direct ref found in indirect tree")) {
758 ret = -EINVAL;
759 goto out;
760 }
761
762 rb_erase_cached(&ref->rbnode, &preftrees->indirect.root);
763 preftrees->indirect.count--;
764
765 if (ref->count == 0) {
766 free_pref(ref);
767 continue;
768 }
769
770 if (sc && ref->root_id != btrfs_root_id(sc->root)) {
771 free_pref(ref);
772 ret = BACKREF_FOUND_SHARED;
773 goto out;
774 }
775 ret2 = resolve_indirect_ref(ctx, path, preftrees, ref, parents);
776 /*
777 * we can only tolerate ENOENT,otherwise,we should catch error
778 * and return directly.
779 */
780 if (ret2 == -ENOENT) {
781 prelim_ref_insert(ctx->fs_info, &preftrees->direct, ref,
782 NULL);
783 continue;
784 } else if (ret2) {
785 free_pref(ref);
786 ret = ret2;
787 goto out;
788 }
789
790 /* we put the first parent into the ref at hand */
791 ULIST_ITER_INIT(&uiter);
792 node = ulist_next(parents, &uiter);
793 ref->parent = node ? node->val : 0;
794 ref->inode_list = unode_aux_to_inode_list(node);
795
796 /* Add a prelim_ref(s) for any other parent(s). */
797 while ((node = ulist_next(parents, &uiter))) {
798 struct prelim_ref *new_ref;
799
800 new_ref = kmem_cache_alloc(btrfs_prelim_ref_cache,
801 GFP_NOFS);
802 if (!new_ref) {
803 free_pref(ref);
804 ret = -ENOMEM;
805 goto out;
806 }
807 memcpy(new_ref, ref, sizeof(*ref));
808 new_ref->parent = node->val;
809 new_ref->inode_list = unode_aux_to_inode_list(node);
810 prelim_ref_insert(ctx->fs_info, &preftrees->direct,
811 new_ref, NULL);
812 }
813
814 /*
815 * Now it's a direct ref, put it in the direct tree. We must
816 * do this last because the ref could be merged/freed here.
817 */
818 prelim_ref_insert(ctx->fs_info, &preftrees->direct, ref, NULL);
819
820 ulist_reinit(parents);
821 cond_resched();
822 }
823 out:
824 /*
825 * We may have inode lists attached to refs in the parents ulist, so we
826 * must free them before freeing the ulist and its refs.
827 */
828 free_leaf_list(parents);
829 return ret;
830 }
831
832 /*
833 * read tree blocks and add keys where required.
834 */
add_missing_keys(struct btrfs_fs_info * fs_info,struct preftrees * preftrees,bool lock)835 static int add_missing_keys(struct btrfs_fs_info *fs_info,
836 struct preftrees *preftrees, bool lock)
837 {
838 struct prelim_ref *ref;
839 struct extent_buffer *eb;
840 struct preftree *tree = &preftrees->indirect_missing_keys;
841 struct rb_node *node;
842
843 while ((node = rb_first_cached(&tree->root))) {
844 struct btrfs_tree_parent_check check = { 0 };
845
846 ref = rb_entry(node, struct prelim_ref, rbnode);
847 rb_erase_cached(node, &tree->root);
848
849 BUG_ON(ref->parent); /* should not be a direct ref */
850 BUG_ON(ref->key_for_search.type);
851 BUG_ON(!ref->wanted_disk_byte);
852
853 check.level = ref->level - 1;
854 check.owner_root = ref->root_id;
855
856 eb = read_tree_block(fs_info, ref->wanted_disk_byte, &check);
857 if (IS_ERR(eb)) {
858 free_pref(ref);
859 return PTR_ERR(eb);
860 }
861 if (unlikely(!extent_buffer_uptodate(eb))) {
862 free_pref(ref);
863 free_extent_buffer(eb);
864 return -EIO;
865 }
866
867 if (lock)
868 btrfs_tree_read_lock(eb);
869 if (btrfs_header_level(eb) == 0)
870 btrfs_item_key_to_cpu(eb, &ref->key_for_search, 0);
871 else
872 btrfs_node_key_to_cpu(eb, &ref->key_for_search, 0);
873 if (lock)
874 btrfs_tree_read_unlock(eb);
875 free_extent_buffer(eb);
876 prelim_ref_insert(fs_info, &preftrees->indirect, ref, NULL);
877 cond_resched();
878 }
879 return 0;
880 }
881
882 /*
883 * add all currently queued delayed refs from this head whose seq nr is
884 * smaller or equal that seq to the list
885 */
add_delayed_refs(const struct btrfs_fs_info * fs_info,struct btrfs_delayed_ref_head * head,u64 seq,struct preftrees * preftrees,struct share_check * sc)886 static int add_delayed_refs(const struct btrfs_fs_info *fs_info,
887 struct btrfs_delayed_ref_head *head, u64 seq,
888 struct preftrees *preftrees, struct share_check *sc)
889 {
890 struct btrfs_delayed_ref_node *node;
891 struct btrfs_key key;
892 struct rb_node *n;
893 int count;
894 int ret = 0;
895
896 spin_lock(&head->lock);
897 for (n = rb_first_cached(&head->ref_tree); n; n = rb_next(n)) {
898 node = rb_entry(n, struct btrfs_delayed_ref_node,
899 ref_node);
900 if (node->seq > seq)
901 continue;
902
903 switch (node->action) {
904 case BTRFS_ADD_DELAYED_EXTENT:
905 case BTRFS_UPDATE_DELAYED_HEAD:
906 WARN_ON(1);
907 continue;
908 case BTRFS_ADD_DELAYED_REF:
909 count = node->ref_mod;
910 break;
911 case BTRFS_DROP_DELAYED_REF:
912 count = node->ref_mod * -1;
913 break;
914 default:
915 BUG();
916 }
917 switch (node->type) {
918 case BTRFS_TREE_BLOCK_REF_KEY: {
919 /* NORMAL INDIRECT METADATA backref */
920 struct btrfs_key *key_ptr = NULL;
921 /* The owner of a tree block ref is the level. */
922 int level = btrfs_delayed_ref_owner(node);
923
924 if (head->extent_op && head->extent_op->update_key) {
925 btrfs_disk_key_to_cpu(&key, &head->extent_op->key);
926 key_ptr = &key;
927 }
928
929 ret = add_indirect_ref(fs_info, preftrees, node->ref_root,
930 key_ptr, level + 1, node->bytenr,
931 count, sc, GFP_ATOMIC);
932 break;
933 }
934 case BTRFS_SHARED_BLOCK_REF_KEY: {
935 /*
936 * SHARED DIRECT METADATA backref
937 *
938 * The owner of a tree block ref is the level.
939 */
940 int level = btrfs_delayed_ref_owner(node);
941
942 ret = add_direct_ref(fs_info, preftrees, level + 1,
943 node->parent, node->bytenr, count,
944 sc, GFP_ATOMIC);
945 break;
946 }
947 case BTRFS_EXTENT_DATA_REF_KEY: {
948 /* NORMAL INDIRECT DATA backref */
949 key.objectid = btrfs_delayed_ref_owner(node);
950 key.type = BTRFS_EXTENT_DATA_KEY;
951 key.offset = btrfs_delayed_ref_offset(node);
952
953 /*
954 * If we have a share check context and a reference for
955 * another inode, we can't exit immediately. This is
956 * because even if this is a BTRFS_ADD_DELAYED_REF
957 * reference we may find next a BTRFS_DROP_DELAYED_REF
958 * which cancels out this ADD reference.
959 *
960 * If this is a DROP reference and there was no previous
961 * ADD reference, then we need to signal that when we
962 * process references from the extent tree (through
963 * add_inline_refs() and add_keyed_refs()), we should
964 * not exit early if we find a reference for another
965 * inode, because one of the delayed DROP references
966 * may cancel that reference in the extent tree.
967 */
968 if (sc && count < 0)
969 sc->have_delayed_delete_refs = true;
970
971 ret = add_indirect_ref(fs_info, preftrees, node->ref_root,
972 &key, 0, node->bytenr, count, sc,
973 GFP_ATOMIC);
974 break;
975 }
976 case BTRFS_SHARED_DATA_REF_KEY: {
977 /* SHARED DIRECT FULL backref */
978 ret = add_direct_ref(fs_info, preftrees, 0, node->parent,
979 node->bytenr, count, sc,
980 GFP_ATOMIC);
981 break;
982 }
983 default:
984 WARN_ON(1);
985 }
986 /*
987 * We must ignore BACKREF_FOUND_SHARED until all delayed
988 * refs have been checked.
989 */
990 if (ret && (ret != BACKREF_FOUND_SHARED))
991 break;
992 }
993 if (!ret)
994 ret = extent_is_shared(sc);
995
996 spin_unlock(&head->lock);
997 return ret;
998 }
999
1000 /*
1001 * add all inline backrefs for bytenr to the list
1002 *
1003 * Returns 0 on success, <0 on error, or BACKREF_FOUND_SHARED.
1004 */
add_inline_refs(struct btrfs_backref_walk_ctx * ctx,struct btrfs_path * path,int * info_level,struct preftrees * preftrees,struct share_check * sc)1005 static int add_inline_refs(struct btrfs_backref_walk_ctx *ctx,
1006 struct btrfs_path *path,
1007 int *info_level, struct preftrees *preftrees,
1008 struct share_check *sc)
1009 {
1010 int ret = 0;
1011 int slot;
1012 struct extent_buffer *leaf;
1013 struct btrfs_key key;
1014 struct btrfs_key found_key;
1015 unsigned long ptr;
1016 unsigned long end;
1017 struct btrfs_extent_item *ei;
1018 u64 flags;
1019 u64 item_size;
1020
1021 /*
1022 * enumerate all inline refs
1023 */
1024 leaf = path->nodes[0];
1025 slot = path->slots[0];
1026
1027 item_size = btrfs_item_size(leaf, slot);
1028 ei = btrfs_item_ptr(leaf, slot, struct btrfs_extent_item);
1029
1030 if (ctx->check_extent_item) {
1031 ret = ctx->check_extent_item(ctx->bytenr, ei, leaf, ctx->user_ctx);
1032 if (ret)
1033 return ret;
1034 }
1035
1036 flags = btrfs_extent_flags(leaf, ei);
1037 btrfs_item_key_to_cpu(leaf, &found_key, slot);
1038
1039 ptr = (unsigned long)(ei + 1);
1040 end = (unsigned long)ei + item_size;
1041
1042 if (found_key.type == BTRFS_EXTENT_ITEM_KEY &&
1043 flags & BTRFS_EXTENT_FLAG_TREE_BLOCK) {
1044 struct btrfs_tree_block_info *info;
1045
1046 info = (struct btrfs_tree_block_info *)ptr;
1047 *info_level = btrfs_tree_block_level(leaf, info);
1048 ptr += sizeof(struct btrfs_tree_block_info);
1049 BUG_ON(ptr > end);
1050 } else if (found_key.type == BTRFS_METADATA_ITEM_KEY) {
1051 *info_level = found_key.offset;
1052 } else {
1053 BUG_ON(!(flags & BTRFS_EXTENT_FLAG_DATA));
1054 }
1055
1056 while (ptr < end) {
1057 struct btrfs_extent_inline_ref *iref;
1058 u64 offset;
1059 int type;
1060
1061 iref = (struct btrfs_extent_inline_ref *)ptr;
1062 type = btrfs_get_extent_inline_ref_type(leaf, iref,
1063 BTRFS_REF_TYPE_ANY);
1064 if (unlikely(type == BTRFS_REF_TYPE_INVALID))
1065 return -EUCLEAN;
1066
1067 offset = btrfs_extent_inline_ref_offset(leaf, iref);
1068
1069 switch (type) {
1070 case BTRFS_SHARED_BLOCK_REF_KEY:
1071 ret = add_direct_ref(ctx->fs_info, preftrees,
1072 *info_level + 1, offset,
1073 ctx->bytenr, 1, NULL, GFP_NOFS);
1074 break;
1075 case BTRFS_SHARED_DATA_REF_KEY: {
1076 struct btrfs_shared_data_ref *sdref;
1077 int count;
1078
1079 sdref = (struct btrfs_shared_data_ref *)(iref + 1);
1080 count = btrfs_shared_data_ref_count(leaf, sdref);
1081
1082 ret = add_direct_ref(ctx->fs_info, preftrees, 0, offset,
1083 ctx->bytenr, count, sc, GFP_NOFS);
1084 break;
1085 }
1086 case BTRFS_TREE_BLOCK_REF_KEY:
1087 ret = add_indirect_ref(ctx->fs_info, preftrees, offset,
1088 NULL, *info_level + 1,
1089 ctx->bytenr, 1, NULL, GFP_NOFS);
1090 break;
1091 case BTRFS_EXTENT_DATA_REF_KEY: {
1092 struct btrfs_extent_data_ref *dref;
1093 int count;
1094 u64 root;
1095
1096 dref = (struct btrfs_extent_data_ref *)(&iref->offset);
1097 count = btrfs_extent_data_ref_count(leaf, dref);
1098 key.objectid = btrfs_extent_data_ref_objectid(leaf,
1099 dref);
1100 key.type = BTRFS_EXTENT_DATA_KEY;
1101 key.offset = btrfs_extent_data_ref_offset(leaf, dref);
1102
1103 if (sc && key.objectid != sc->inum &&
1104 !sc->have_delayed_delete_refs) {
1105 ret = BACKREF_FOUND_SHARED;
1106 break;
1107 }
1108
1109 root = btrfs_extent_data_ref_root(leaf, dref);
1110
1111 if (!ctx->skip_data_ref ||
1112 !ctx->skip_data_ref(root, key.objectid, key.offset,
1113 ctx->user_ctx))
1114 ret = add_indirect_ref(ctx->fs_info, preftrees,
1115 root, &key, 0, ctx->bytenr,
1116 count, sc, GFP_NOFS);
1117 break;
1118 }
1119 case BTRFS_EXTENT_OWNER_REF_KEY:
1120 ASSERT(btrfs_fs_incompat(ctx->fs_info, SIMPLE_QUOTA));
1121 break;
1122 default:
1123 WARN_ON(1);
1124 }
1125 if (ret)
1126 return ret;
1127 ptr += btrfs_extent_inline_ref_size(type);
1128 }
1129
1130 return 0;
1131 }
1132
1133 /*
1134 * add all non-inline backrefs for bytenr to the list
1135 *
1136 * Returns 0 on success, <0 on error, or BACKREF_FOUND_SHARED.
1137 */
add_keyed_refs(struct btrfs_backref_walk_ctx * ctx,struct btrfs_root * extent_root,struct btrfs_path * path,int info_level,struct preftrees * preftrees,struct share_check * sc)1138 static int add_keyed_refs(struct btrfs_backref_walk_ctx *ctx,
1139 struct btrfs_root *extent_root,
1140 struct btrfs_path *path,
1141 int info_level, struct preftrees *preftrees,
1142 struct share_check *sc)
1143 {
1144 struct btrfs_fs_info *fs_info = extent_root->fs_info;
1145 int ret;
1146 int slot;
1147 struct extent_buffer *leaf;
1148 struct btrfs_key key;
1149
1150 while (1) {
1151 ret = btrfs_next_item(extent_root, path);
1152 if (ret < 0)
1153 break;
1154 if (ret) {
1155 ret = 0;
1156 break;
1157 }
1158
1159 slot = path->slots[0];
1160 leaf = path->nodes[0];
1161 btrfs_item_key_to_cpu(leaf, &key, slot);
1162
1163 if (key.objectid != ctx->bytenr)
1164 break;
1165 if (key.type < BTRFS_TREE_BLOCK_REF_KEY)
1166 continue;
1167 if (key.type > BTRFS_SHARED_DATA_REF_KEY)
1168 break;
1169
1170 switch (key.type) {
1171 case BTRFS_SHARED_BLOCK_REF_KEY:
1172 /* SHARED DIRECT METADATA backref */
1173 ret = add_direct_ref(fs_info, preftrees,
1174 info_level + 1, key.offset,
1175 ctx->bytenr, 1, NULL, GFP_NOFS);
1176 break;
1177 case BTRFS_SHARED_DATA_REF_KEY: {
1178 /* SHARED DIRECT FULL backref */
1179 struct btrfs_shared_data_ref *sdref;
1180 int count;
1181
1182 sdref = btrfs_item_ptr(leaf, slot,
1183 struct btrfs_shared_data_ref);
1184 count = btrfs_shared_data_ref_count(leaf, sdref);
1185 ret = add_direct_ref(fs_info, preftrees, 0,
1186 key.offset, ctx->bytenr, count,
1187 sc, GFP_NOFS);
1188 break;
1189 }
1190 case BTRFS_TREE_BLOCK_REF_KEY:
1191 /* NORMAL INDIRECT METADATA backref */
1192 ret = add_indirect_ref(fs_info, preftrees, key.offset,
1193 NULL, info_level + 1, ctx->bytenr,
1194 1, NULL, GFP_NOFS);
1195 break;
1196 case BTRFS_EXTENT_DATA_REF_KEY: {
1197 /* NORMAL INDIRECT DATA backref */
1198 struct btrfs_extent_data_ref *dref;
1199 int count;
1200 u64 root;
1201
1202 dref = btrfs_item_ptr(leaf, slot,
1203 struct btrfs_extent_data_ref);
1204 count = btrfs_extent_data_ref_count(leaf, dref);
1205 key.objectid = btrfs_extent_data_ref_objectid(leaf,
1206 dref);
1207 key.type = BTRFS_EXTENT_DATA_KEY;
1208 key.offset = btrfs_extent_data_ref_offset(leaf, dref);
1209
1210 if (sc && key.objectid != sc->inum &&
1211 !sc->have_delayed_delete_refs) {
1212 ret = BACKREF_FOUND_SHARED;
1213 break;
1214 }
1215
1216 root = btrfs_extent_data_ref_root(leaf, dref);
1217
1218 if (!ctx->skip_data_ref ||
1219 !ctx->skip_data_ref(root, key.objectid, key.offset,
1220 ctx->user_ctx))
1221 ret = add_indirect_ref(fs_info, preftrees, root,
1222 &key, 0, ctx->bytenr,
1223 count, sc, GFP_NOFS);
1224 break;
1225 }
1226 default:
1227 WARN_ON(1);
1228 }
1229 if (ret)
1230 return ret;
1231
1232 }
1233
1234 return ret;
1235 }
1236
1237 /*
1238 * The caller has joined a transaction or is holding a read lock on the
1239 * fs_info->commit_root_sem semaphore, so no need to worry about the root's last
1240 * snapshot field changing while updating or checking the cache.
1241 */
lookup_backref_shared_cache(struct btrfs_backref_share_check_ctx * ctx,struct btrfs_root * root,u64 bytenr,int level,bool * is_shared)1242 static bool lookup_backref_shared_cache(struct btrfs_backref_share_check_ctx *ctx,
1243 struct btrfs_root *root,
1244 u64 bytenr, int level, bool *is_shared)
1245 {
1246 const struct btrfs_fs_info *fs_info = root->fs_info;
1247 struct btrfs_backref_shared_cache_entry *entry;
1248
1249 if (!current->journal_info)
1250 lockdep_assert_held(&fs_info->commit_root_sem);
1251
1252 if (!ctx->use_path_cache)
1253 return false;
1254
1255 if (WARN_ON_ONCE(level >= BTRFS_MAX_LEVEL))
1256 return false;
1257
1258 /*
1259 * Level -1 is used for the data extent, which is not reliable to cache
1260 * because its reference count can increase or decrease without us
1261 * realizing. We cache results only for extent buffers that lead from
1262 * the root node down to the leaf with the file extent item.
1263 */
1264 ASSERT(level >= 0);
1265
1266 entry = &ctx->path_cache_entries[level];
1267
1268 /* Unused cache entry or being used for some other extent buffer. */
1269 if (entry->bytenr != bytenr)
1270 return false;
1271
1272 /*
1273 * We cached a false result, but the last snapshot generation of the
1274 * root changed, so we now have a snapshot. Don't trust the result.
1275 */
1276 if (!entry->is_shared &&
1277 entry->gen != btrfs_root_last_snapshot(&root->root_item))
1278 return false;
1279
1280 /*
1281 * If we cached a true result and the last generation used for dropping
1282 * a root changed, we can not trust the result, because the dropped root
1283 * could be a snapshot sharing this extent buffer.
1284 */
1285 if (entry->is_shared &&
1286 entry->gen != btrfs_get_last_root_drop_gen(fs_info))
1287 return false;
1288
1289 *is_shared = entry->is_shared;
1290 /*
1291 * If the node at this level is shared, than all nodes below are also
1292 * shared. Currently some of the nodes below may be marked as not shared
1293 * because we have just switched from one leaf to another, and switched
1294 * also other nodes above the leaf and below the current level, so mark
1295 * them as shared.
1296 */
1297 if (*is_shared) {
1298 for (int i = 0; i < level; i++) {
1299 ctx->path_cache_entries[i].is_shared = true;
1300 ctx->path_cache_entries[i].gen = entry->gen;
1301 }
1302 }
1303
1304 return true;
1305 }
1306
1307 /*
1308 * The caller has joined a transaction or is holding a read lock on the
1309 * fs_info->commit_root_sem semaphore, so no need to worry about the root's last
1310 * snapshot field changing while updating or checking the cache.
1311 */
store_backref_shared_cache(struct btrfs_backref_share_check_ctx * ctx,struct btrfs_root * root,u64 bytenr,int level,bool is_shared)1312 static void store_backref_shared_cache(struct btrfs_backref_share_check_ctx *ctx,
1313 struct btrfs_root *root,
1314 u64 bytenr, int level, bool is_shared)
1315 {
1316 const struct btrfs_fs_info *fs_info = root->fs_info;
1317 struct btrfs_backref_shared_cache_entry *entry;
1318 u64 gen;
1319
1320 if (!current->journal_info)
1321 lockdep_assert_held(&fs_info->commit_root_sem);
1322
1323 if (!ctx->use_path_cache)
1324 return;
1325
1326 if (WARN_ON_ONCE(level >= BTRFS_MAX_LEVEL))
1327 return;
1328
1329 /*
1330 * Level -1 is used for the data extent, which is not reliable to cache
1331 * because its reference count can increase or decrease without us
1332 * realizing. We cache results only for extent buffers that lead from
1333 * the root node down to the leaf with the file extent item.
1334 */
1335 ASSERT(level >= 0);
1336
1337 if (is_shared)
1338 gen = btrfs_get_last_root_drop_gen(fs_info);
1339 else
1340 gen = btrfs_root_last_snapshot(&root->root_item);
1341
1342 entry = &ctx->path_cache_entries[level];
1343 entry->bytenr = bytenr;
1344 entry->is_shared = is_shared;
1345 entry->gen = gen;
1346
1347 /*
1348 * If we found an extent buffer is shared, set the cache result for all
1349 * extent buffers below it to true. As nodes in the path are COWed,
1350 * their sharedness is moved to their children, and if a leaf is COWed,
1351 * then the sharedness of a data extent becomes direct, the refcount of
1352 * data extent is increased in the extent item at the extent tree.
1353 */
1354 if (is_shared) {
1355 for (int i = 0; i < level; i++) {
1356 entry = &ctx->path_cache_entries[i];
1357 entry->is_shared = is_shared;
1358 entry->gen = gen;
1359 }
1360 }
1361 }
1362
1363 /*
1364 * this adds all existing backrefs (inline backrefs, backrefs and delayed
1365 * refs) for the given bytenr to the refs list, merges duplicates and resolves
1366 * indirect refs to their parent bytenr.
1367 * When roots are found, they're added to the roots list
1368 *
1369 * @ctx: Backref walking context object, must be not NULL.
1370 * @sc: If !NULL, then immediately return BACKREF_FOUND_SHARED when a
1371 * shared extent is detected.
1372 *
1373 * Otherwise this returns 0 for success and <0 for an error.
1374 *
1375 * FIXME some caching might speed things up
1376 */
find_parent_nodes(struct btrfs_backref_walk_ctx * ctx,struct share_check * sc)1377 static int find_parent_nodes(struct btrfs_backref_walk_ctx *ctx,
1378 struct share_check *sc)
1379 {
1380 struct btrfs_root *root = btrfs_extent_root(ctx->fs_info, ctx->bytenr);
1381 struct btrfs_key key;
1382 struct btrfs_path *path;
1383 struct btrfs_delayed_ref_root *delayed_refs = NULL;
1384 struct btrfs_delayed_ref_head *head;
1385 int info_level = 0;
1386 int ret;
1387 struct prelim_ref *ref;
1388 struct rb_node *node;
1389 struct extent_inode_elem *eie = NULL;
1390 struct preftrees preftrees = {
1391 .direct = PREFTREE_INIT,
1392 .indirect = PREFTREE_INIT,
1393 .indirect_missing_keys = PREFTREE_INIT
1394 };
1395
1396 if (unlikely(!root)) {
1397 btrfs_err(ctx->fs_info,
1398 "missing extent root for extent at bytenr %llu",
1399 ctx->bytenr);
1400 return -EUCLEAN;
1401 }
1402
1403 /* Roots ulist is not needed when using a sharedness check context. */
1404 if (sc)
1405 ASSERT(ctx->roots == NULL);
1406
1407 key.objectid = ctx->bytenr;
1408 if (btrfs_fs_incompat(ctx->fs_info, SKINNY_METADATA))
1409 key.type = BTRFS_METADATA_ITEM_KEY;
1410 else
1411 key.type = BTRFS_EXTENT_ITEM_KEY;
1412 key.offset = (u64)-1;
1413
1414 path = btrfs_alloc_path();
1415 if (!path)
1416 return -ENOMEM;
1417 if (!ctx->trans) {
1418 path->search_commit_root = true;
1419 path->skip_locking = true;
1420 }
1421
1422 if (ctx->time_seq == BTRFS_SEQ_LAST)
1423 path->skip_locking = true;
1424
1425 again:
1426 head = NULL;
1427
1428 ret = btrfs_search_slot(NULL, root, &key, path, 0, 0);
1429 if (ret < 0)
1430 goto out;
1431 if (unlikely(ret == 0)) {
1432 /*
1433 * Key with offset -1 found, there would have to exist an extent
1434 * item with such offset, but this is out of the valid range.
1435 */
1436 ret = -EUCLEAN;
1437 goto out;
1438 }
1439
1440 if (ctx->trans && likely(ctx->trans->type != __TRANS_DUMMY) &&
1441 ctx->time_seq != BTRFS_SEQ_LAST) {
1442 /*
1443 * We have a specific time_seq we care about and trans which
1444 * means we have the path lock, we need to grab the ref head and
1445 * lock it so we have a consistent view of the refs at the given
1446 * time.
1447 */
1448 delayed_refs = &ctx->trans->transaction->delayed_refs;
1449 spin_lock(&delayed_refs->lock);
1450 head = btrfs_find_delayed_ref_head(ctx->fs_info, delayed_refs,
1451 ctx->bytenr);
1452 if (head) {
1453 if (!mutex_trylock(&head->mutex)) {
1454 refcount_inc(&head->refs);
1455 spin_unlock(&delayed_refs->lock);
1456
1457 btrfs_release_path(path);
1458
1459 /*
1460 * Mutex was contended, block until it's
1461 * released and try again
1462 */
1463 mutex_lock(&head->mutex);
1464 mutex_unlock(&head->mutex);
1465 btrfs_put_delayed_ref_head(head);
1466 goto again;
1467 }
1468 spin_unlock(&delayed_refs->lock);
1469 ret = add_delayed_refs(ctx->fs_info, head, ctx->time_seq,
1470 &preftrees, sc);
1471 mutex_unlock(&head->mutex);
1472 if (ret)
1473 goto out;
1474 } else {
1475 spin_unlock(&delayed_refs->lock);
1476 }
1477 }
1478
1479 if (path->slots[0]) {
1480 struct extent_buffer *leaf;
1481 int slot;
1482
1483 path->slots[0]--;
1484 leaf = path->nodes[0];
1485 slot = path->slots[0];
1486 btrfs_item_key_to_cpu(leaf, &key, slot);
1487 if (key.objectid == ctx->bytenr &&
1488 (key.type == BTRFS_EXTENT_ITEM_KEY ||
1489 key.type == BTRFS_METADATA_ITEM_KEY)) {
1490 ret = add_inline_refs(ctx, path, &info_level,
1491 &preftrees, sc);
1492 if (ret)
1493 goto out;
1494 ret = add_keyed_refs(ctx, root, path, info_level,
1495 &preftrees, sc);
1496 if (ret)
1497 goto out;
1498 }
1499 }
1500
1501 /*
1502 * If we have a share context and we reached here, it means the extent
1503 * is not directly shared (no multiple reference items for it),
1504 * otherwise we would have exited earlier with a return value of
1505 * BACKREF_FOUND_SHARED after processing delayed references or while
1506 * processing inline or keyed references from the extent tree.
1507 * The extent may however be indirectly shared through shared subtrees
1508 * as a result from creating snapshots, so we determine below what is
1509 * its parent node, in case we are dealing with a metadata extent, or
1510 * what's the leaf (or leaves), from a fs tree, that has a file extent
1511 * item pointing to it in case we are dealing with a data extent.
1512 */
1513 ASSERT(extent_is_shared(sc) == 0);
1514
1515 /*
1516 * If we are here for a data extent and we have a share_check structure
1517 * it means the data extent is not directly shared (does not have
1518 * multiple reference items), so we have to check if a path in the fs
1519 * tree (going from the root node down to the leaf that has the file
1520 * extent item pointing to the data extent) is shared, that is, if any
1521 * of the extent buffers in the path is referenced by other trees.
1522 */
1523 if (sc && ctx->bytenr == sc->data_bytenr) {
1524 /*
1525 * If our data extent is from a generation more recent than the
1526 * last generation used to snapshot the root, then we know that
1527 * it can not be shared through subtrees, so we can skip
1528 * resolving indirect references, there's no point in
1529 * determining the extent buffers for the path from the fs tree
1530 * root node down to the leaf that has the file extent item that
1531 * points to the data extent.
1532 */
1533 if (sc->data_extent_gen >
1534 btrfs_root_last_snapshot(&sc->root->root_item)) {
1535 ret = BACKREF_FOUND_NOT_SHARED;
1536 goto out;
1537 }
1538
1539 /*
1540 * If we are only determining if a data extent is shared or not
1541 * and the corresponding file extent item is located in the same
1542 * leaf as the previous file extent item, we can skip resolving
1543 * indirect references for a data extent, since the fs tree path
1544 * is the same (same leaf, so same path). We skip as long as the
1545 * cached result for the leaf is valid and only if there's only
1546 * one file extent item pointing to the data extent, because in
1547 * the case of multiple file extent items, they may be located
1548 * in different leaves and therefore we have multiple paths.
1549 */
1550 if (sc->ctx->curr_leaf_bytenr == sc->ctx->prev_leaf_bytenr &&
1551 sc->self_ref_count == 1) {
1552 bool cached;
1553 bool is_shared;
1554
1555 cached = lookup_backref_shared_cache(sc->ctx, sc->root,
1556 sc->ctx->curr_leaf_bytenr,
1557 0, &is_shared);
1558 if (cached) {
1559 if (is_shared)
1560 ret = BACKREF_FOUND_SHARED;
1561 else
1562 ret = BACKREF_FOUND_NOT_SHARED;
1563 goto out;
1564 }
1565 }
1566 }
1567
1568 btrfs_release_path(path);
1569
1570 ret = add_missing_keys(ctx->fs_info, &preftrees, !path->skip_locking);
1571 if (ret)
1572 goto out;
1573
1574 WARN_ON(!RB_EMPTY_ROOT(&preftrees.indirect_missing_keys.root.rb_root));
1575
1576 ret = resolve_indirect_refs(ctx, path, &preftrees, sc);
1577 if (ret)
1578 goto out;
1579
1580 WARN_ON(!RB_EMPTY_ROOT(&preftrees.indirect.root.rb_root));
1581
1582 /*
1583 * This walks the tree of merged and resolved refs. Tree blocks are
1584 * read in as needed. Unique entries are added to the ulist, and
1585 * the list of found roots is updated.
1586 *
1587 * We release the entire tree in one go before returning.
1588 */
1589 node = rb_first_cached(&preftrees.direct.root);
1590 while (node) {
1591 ref = rb_entry(node, struct prelim_ref, rbnode);
1592 node = rb_next(&ref->rbnode);
1593 /*
1594 * ref->count < 0 can happen here if there are delayed
1595 * refs with a node->action of BTRFS_DROP_DELAYED_REF.
1596 * prelim_ref_insert() relies on this when merging
1597 * identical refs to keep the overall count correct.
1598 * prelim_ref_insert() will merge only those refs
1599 * which compare identically. Any refs having
1600 * e.g. different offsets would not be merged,
1601 * and would retain their original ref->count < 0.
1602 */
1603 if (ctx->roots && ref->count && ref->root_id && ref->parent == 0) {
1604 /* no parent == root of tree */
1605 ret = ulist_add(ctx->roots, ref->root_id, 0, GFP_NOFS);
1606 if (ret < 0)
1607 goto out;
1608 }
1609 if (ref->count && ref->parent) {
1610 if (!ctx->skip_inode_ref_list && !ref->inode_list &&
1611 ref->level == 0) {
1612 struct btrfs_tree_parent_check check = { 0 };
1613 struct extent_buffer *eb;
1614
1615 check.level = ref->level;
1616
1617 eb = read_tree_block(ctx->fs_info, ref->parent,
1618 &check);
1619 if (IS_ERR(eb)) {
1620 ret = PTR_ERR(eb);
1621 goto out;
1622 }
1623 if (unlikely(!extent_buffer_uptodate(eb))) {
1624 free_extent_buffer(eb);
1625 ret = -EIO;
1626 goto out;
1627 }
1628
1629 if (!path->skip_locking)
1630 btrfs_tree_read_lock(eb);
1631 ret = find_extent_in_eb(ctx, eb, &eie);
1632 if (!path->skip_locking)
1633 btrfs_tree_read_unlock(eb);
1634 free_extent_buffer(eb);
1635 if (ret == BTRFS_ITERATE_EXTENT_INODES_STOP ||
1636 ret < 0)
1637 goto out;
1638 ref->inode_list = eie;
1639 /*
1640 * We transferred the list ownership to the ref,
1641 * so set to NULL to avoid a double free in case
1642 * an error happens after this.
1643 */
1644 eie = NULL;
1645 }
1646 ret = ulist_add_merge_ptr(ctx->refs, ref->parent,
1647 ref->inode_list,
1648 (void **)&eie, GFP_NOFS);
1649 if (ret < 0)
1650 goto out;
1651 if (!ret && !ctx->skip_inode_ref_list) {
1652 /*
1653 * We've recorded that parent, so we must extend
1654 * its inode list here.
1655 *
1656 * However if there was corruption we may not
1657 * have found an eie, return an error in this
1658 * case.
1659 */
1660 ASSERT(eie);
1661 if (unlikely(!eie)) {
1662 ret = -EUCLEAN;
1663 goto out;
1664 }
1665 while (eie->next)
1666 eie = eie->next;
1667 eie->next = ref->inode_list;
1668 }
1669 eie = NULL;
1670 /*
1671 * We have transferred the inode list ownership from
1672 * this ref to the ref we added to the 'refs' ulist.
1673 * So set this ref's inode list to NULL to avoid
1674 * use-after-free when our caller uses it or double
1675 * frees in case an error happens before we return.
1676 */
1677 ref->inode_list = NULL;
1678 }
1679 cond_resched();
1680 }
1681
1682 out:
1683 btrfs_free_path(path);
1684
1685 prelim_release(&preftrees.direct);
1686 prelim_release(&preftrees.indirect);
1687 prelim_release(&preftrees.indirect_missing_keys);
1688
1689 if (ret == BTRFS_ITERATE_EXTENT_INODES_STOP || ret < 0)
1690 free_inode_elem_list(eie);
1691 return ret;
1692 }
1693
1694 /*
1695 * Finds all leaves with a reference to the specified combination of
1696 * @ctx->bytenr and @ctx->extent_item_pos. The bytenr of the found leaves are
1697 * added to the ulist at @ctx->refs, and that ulist is allocated by this
1698 * function. The caller should free the ulist with free_leaf_list() if
1699 * @ctx->ignore_extent_item_pos is false, otherwise a simple ulist_free() is
1700 * enough.
1701 *
1702 * Returns 0 on success and < 0 on error. On error @ctx->refs is not allocated.
1703 */
btrfs_find_all_leafs(struct btrfs_backref_walk_ctx * ctx)1704 int btrfs_find_all_leafs(struct btrfs_backref_walk_ctx *ctx)
1705 {
1706 int ret;
1707
1708 ASSERT(ctx->refs == NULL);
1709
1710 ctx->refs = ulist_alloc(GFP_NOFS);
1711 if (!ctx->refs)
1712 return -ENOMEM;
1713
1714 ret = find_parent_nodes(ctx, NULL);
1715 if (ret == BTRFS_ITERATE_EXTENT_INODES_STOP ||
1716 (ret < 0 && ret != -ENOENT)) {
1717 free_leaf_list(ctx->refs);
1718 ctx->refs = NULL;
1719 return ret;
1720 }
1721
1722 return 0;
1723 }
1724
1725 /*
1726 * Walk all backrefs for a given extent to find all roots that reference this
1727 * extent. Walking a backref means finding all extents that reference this
1728 * extent and in turn walk the backrefs of those, too. Naturally this is a
1729 * recursive process, but here it is implemented in an iterative fashion: We
1730 * find all referencing extents for the extent in question and put them on a
1731 * list. In turn, we find all referencing extents for those, further appending
1732 * to the list. The way we iterate the list allows adding more elements after
1733 * the current while iterating. The process stops when we reach the end of the
1734 * list.
1735 *
1736 * Found roots are added to @ctx->roots, which is allocated by this function if
1737 * it points to NULL, in which case the caller is responsible for freeing it
1738 * after it's not needed anymore.
1739 * This function requires @ctx->refs to be NULL, as it uses it for allocating a
1740 * ulist to do temporary work, and frees it before returning.
1741 *
1742 * Returns 0 on success, < 0 on error.
1743 */
btrfs_find_all_roots_safe(struct btrfs_backref_walk_ctx * ctx)1744 static int btrfs_find_all_roots_safe(struct btrfs_backref_walk_ctx *ctx)
1745 {
1746 const u64 orig_bytenr = ctx->bytenr;
1747 const bool orig_skip_inode_ref_list = ctx->skip_inode_ref_list;
1748 bool roots_ulist_allocated = false;
1749 struct ulist_iterator uiter;
1750 int ret = 0;
1751
1752 ASSERT(ctx->refs == NULL);
1753
1754 ctx->refs = ulist_alloc(GFP_NOFS);
1755 if (!ctx->refs)
1756 return -ENOMEM;
1757
1758 if (!ctx->roots) {
1759 ctx->roots = ulist_alloc(GFP_NOFS);
1760 if (!ctx->roots) {
1761 ulist_free(ctx->refs);
1762 ctx->refs = NULL;
1763 return -ENOMEM;
1764 }
1765 roots_ulist_allocated = true;
1766 }
1767
1768 ctx->skip_inode_ref_list = true;
1769
1770 ULIST_ITER_INIT(&uiter);
1771 while (1) {
1772 struct ulist_node *node;
1773
1774 ret = find_parent_nodes(ctx, NULL);
1775 if (ret < 0 && ret != -ENOENT) {
1776 if (roots_ulist_allocated) {
1777 ulist_free(ctx->roots);
1778 ctx->roots = NULL;
1779 }
1780 break;
1781 }
1782 ret = 0;
1783 node = ulist_next(ctx->refs, &uiter);
1784 if (!node)
1785 break;
1786 ctx->bytenr = node->val;
1787 cond_resched();
1788 }
1789
1790 ulist_free(ctx->refs);
1791 ctx->refs = NULL;
1792 ctx->bytenr = orig_bytenr;
1793 ctx->skip_inode_ref_list = orig_skip_inode_ref_list;
1794
1795 return ret;
1796 }
1797
btrfs_find_all_roots(struct btrfs_backref_walk_ctx * ctx,bool skip_commit_root_sem)1798 int btrfs_find_all_roots(struct btrfs_backref_walk_ctx *ctx,
1799 bool skip_commit_root_sem)
1800 {
1801 int ret;
1802
1803 if (!ctx->trans && !skip_commit_root_sem)
1804 down_read(&ctx->fs_info->commit_root_sem);
1805 ret = btrfs_find_all_roots_safe(ctx);
1806 if (!ctx->trans && !skip_commit_root_sem)
1807 up_read(&ctx->fs_info->commit_root_sem);
1808 return ret;
1809 }
1810
btrfs_alloc_backref_share_check_ctx(void)1811 struct btrfs_backref_share_check_ctx *btrfs_alloc_backref_share_check_ctx(void)
1812 {
1813 struct btrfs_backref_share_check_ctx *ctx;
1814
1815 ctx = kzalloc_obj(*ctx);
1816 if (!ctx)
1817 return NULL;
1818
1819 ulist_init(&ctx->refs);
1820
1821 return ctx;
1822 }
1823
btrfs_free_backref_share_ctx(struct btrfs_backref_share_check_ctx * ctx)1824 void btrfs_free_backref_share_ctx(struct btrfs_backref_share_check_ctx *ctx)
1825 {
1826 if (!ctx)
1827 return;
1828
1829 ulist_release(&ctx->refs);
1830 kfree(ctx);
1831 }
1832
1833 /*
1834 * Check if a data extent is shared or not.
1835 *
1836 * @inode: The inode whose extent we are checking.
1837 * @bytenr: Logical bytenr of the extent we are checking.
1838 * @extent_gen: Generation of the extent (file extent item) or 0 if it is
1839 * not known.
1840 * @ctx: A backref sharedness check context.
1841 *
1842 * btrfs_is_data_extent_shared uses the backref walking code but will short
1843 * circuit as soon as it finds a root or inode that doesn't match the
1844 * one passed in. This provides a significant performance benefit for
1845 * callers (such as fiemap) which want to know whether the extent is
1846 * shared but do not need a ref count.
1847 *
1848 * This attempts to attach to the running transaction in order to account for
1849 * delayed refs, but continues on even when no running transaction exists.
1850 *
1851 * Return: 0 if extent is not shared, 1 if it is shared, < 0 on error.
1852 */
btrfs_is_data_extent_shared(struct btrfs_inode * inode,u64 bytenr,u64 extent_gen,struct btrfs_backref_share_check_ctx * ctx)1853 int btrfs_is_data_extent_shared(struct btrfs_inode *inode, u64 bytenr,
1854 u64 extent_gen,
1855 struct btrfs_backref_share_check_ctx *ctx)
1856 {
1857 struct btrfs_backref_walk_ctx walk_ctx = { 0 };
1858 struct btrfs_root *root = inode->root;
1859 struct btrfs_fs_info *fs_info = root->fs_info;
1860 struct btrfs_trans_handle *trans;
1861 struct ulist_iterator uiter;
1862 struct ulist_node *node;
1863 struct btrfs_seq_list elem = BTRFS_SEQ_LIST_INIT(elem);
1864 int ret = 0;
1865 struct share_check shared = {
1866 .ctx = ctx,
1867 .root = root,
1868 .inum = btrfs_ino(inode),
1869 .data_bytenr = bytenr,
1870 .data_extent_gen = extent_gen,
1871 .share_count = 0,
1872 .self_ref_count = 0,
1873 .have_delayed_delete_refs = false,
1874 };
1875 int level;
1876 bool leaf_cached;
1877 bool leaf_is_shared;
1878
1879 for (int i = 0; i < BTRFS_BACKREF_CTX_PREV_EXTENTS_SIZE; i++) {
1880 if (ctx->prev_extents_cache[i].bytenr == bytenr)
1881 return ctx->prev_extents_cache[i].is_shared;
1882 }
1883
1884 ulist_init(&ctx->refs);
1885
1886 trans = btrfs_join_transaction_nostart(root);
1887 if (IS_ERR(trans)) {
1888 if (PTR_ERR(trans) != -ENOENT && PTR_ERR(trans) != -EROFS) {
1889 ret = PTR_ERR(trans);
1890 goto out;
1891 }
1892 trans = NULL;
1893 down_read(&fs_info->commit_root_sem);
1894 } else {
1895 btrfs_get_tree_mod_seq(fs_info, &elem);
1896 walk_ctx.time_seq = elem.seq;
1897 }
1898
1899 ctx->use_path_cache = true;
1900
1901 /*
1902 * We may have previously determined that the current leaf is shared.
1903 * If it is, then we have a data extent that is shared due to a shared
1904 * subtree (caused by snapshotting) and we don't need to check for data
1905 * backrefs. If the leaf is not shared, then we must do backref walking
1906 * to determine if the data extent is shared through reflinks.
1907 */
1908 leaf_cached = lookup_backref_shared_cache(ctx, root,
1909 ctx->curr_leaf_bytenr, 0,
1910 &leaf_is_shared);
1911 if (leaf_cached && leaf_is_shared) {
1912 ret = 1;
1913 goto out_trans;
1914 }
1915
1916 walk_ctx.skip_inode_ref_list = true;
1917 walk_ctx.trans = trans;
1918 walk_ctx.fs_info = fs_info;
1919 walk_ctx.refs = &ctx->refs;
1920
1921 /* -1 means we are in the bytenr of the data extent. */
1922 level = -1;
1923 ULIST_ITER_INIT(&uiter);
1924 while (1) {
1925 const unsigned long prev_ref_count = ctx->refs.nnodes;
1926
1927 walk_ctx.bytenr = bytenr;
1928 ret = find_parent_nodes(&walk_ctx, &shared);
1929 if (ret == BACKREF_FOUND_SHARED ||
1930 ret == BACKREF_FOUND_NOT_SHARED) {
1931 /* If shared must return 1, otherwise return 0. */
1932 ret = (ret == BACKREF_FOUND_SHARED) ? 1 : 0;
1933 if (level >= 0)
1934 store_backref_shared_cache(ctx, root, bytenr,
1935 level, ret == 1);
1936 break;
1937 }
1938 if (ret < 0 && ret != -ENOENT)
1939 break;
1940 ret = 0;
1941
1942 /*
1943 * More than one extent buffer (bytenr) may have been added to
1944 * the ctx->refs ulist, in which case we have to check multiple
1945 * tree paths in case the first one is not shared, so we can not
1946 * use the path cache which is made for a single path. Multiple
1947 * extent buffers at the current level happen when:
1948 *
1949 * 1) level -1, the data extent: If our data extent was not
1950 * directly shared (without multiple reference items), then
1951 * it might have a single reference item with a count > 1 for
1952 * the same offset, which means there are 2 (or more) file
1953 * extent items that point to the data extent - this happens
1954 * when a file extent item needs to be split and then one
1955 * item gets moved to another leaf due to a b+tree leaf split
1956 * when inserting some item. In this case the file extent
1957 * items may be located in different leaves and therefore
1958 * some of the leaves may be referenced through shared
1959 * subtrees while others are not. Since our extent buffer
1960 * cache only works for a single path (by far the most common
1961 * case and simpler to deal with), we can not use it if we
1962 * have multiple leaves (which implies multiple paths).
1963 *
1964 * 2) level >= 0, a tree node/leaf: We can have a mix of direct
1965 * and indirect references on a b+tree node/leaf, so we have
1966 * to check multiple paths, and the extent buffer (the
1967 * current bytenr) may be shared or not. One example is
1968 * during relocation as we may get a shared tree block ref
1969 * (direct ref) and a non-shared tree block ref (indirect
1970 * ref) for the same node/leaf.
1971 */
1972 if ((ctx->refs.nnodes - prev_ref_count) > 1)
1973 ctx->use_path_cache = false;
1974
1975 if (level >= 0)
1976 store_backref_shared_cache(ctx, root, bytenr,
1977 level, false);
1978 node = ulist_next(&ctx->refs, &uiter);
1979 if (!node)
1980 break;
1981 bytenr = node->val;
1982 if (ctx->use_path_cache) {
1983 bool is_shared;
1984 bool cached;
1985
1986 level++;
1987 cached = lookup_backref_shared_cache(ctx, root, bytenr,
1988 level, &is_shared);
1989 if (cached) {
1990 ret = (is_shared ? 1 : 0);
1991 break;
1992 }
1993 }
1994 shared.share_count = 0;
1995 shared.have_delayed_delete_refs = false;
1996 cond_resched();
1997 }
1998
1999 /*
2000 * If the path cache is disabled, then it means at some tree level we
2001 * got multiple parents due to a mix of direct and indirect backrefs or
2002 * multiple leaves with file extent items pointing to the same data
2003 * extent. We have to invalidate the cache and cache only the sharedness
2004 * result for the levels where we got only one node/reference.
2005 */
2006 if (!ctx->use_path_cache) {
2007 int i = 0;
2008
2009 level--;
2010 if (ret >= 0 && level >= 0) {
2011 bytenr = ctx->path_cache_entries[level].bytenr;
2012 ctx->use_path_cache = true;
2013 store_backref_shared_cache(ctx, root, bytenr, level, ret);
2014 i = level + 1;
2015 }
2016
2017 for ( ; i < BTRFS_MAX_LEVEL; i++)
2018 ctx->path_cache_entries[i].bytenr = 0;
2019 }
2020
2021 /*
2022 * Cache the sharedness result for the data extent if we know our inode
2023 * has more than 1 file extent item that refers to the data extent.
2024 */
2025 if (ret >= 0 && shared.self_ref_count > 1) {
2026 int slot = ctx->prev_extents_cache_slot;
2027
2028 ctx->prev_extents_cache[slot].bytenr = shared.data_bytenr;
2029 ctx->prev_extents_cache[slot].is_shared = (ret == 1);
2030
2031 slot = (slot + 1) % BTRFS_BACKREF_CTX_PREV_EXTENTS_SIZE;
2032 ctx->prev_extents_cache_slot = slot;
2033 }
2034
2035 out_trans:
2036 if (trans) {
2037 btrfs_put_tree_mod_seq(fs_info, &elem);
2038 btrfs_end_transaction(trans);
2039 } else {
2040 up_read(&fs_info->commit_root_sem);
2041 }
2042 out:
2043 ulist_release(&ctx->refs);
2044 ctx->prev_leaf_bytenr = ctx->curr_leaf_bytenr;
2045
2046 return ret;
2047 }
2048
btrfs_find_one_extref(struct btrfs_root * root,u64 inode_objectid,u64 start_off,struct btrfs_path * path,struct btrfs_inode_extref ** ret_extref,u64 * found_off)2049 int btrfs_find_one_extref(struct btrfs_root *root, u64 inode_objectid,
2050 u64 start_off, struct btrfs_path *path,
2051 struct btrfs_inode_extref **ret_extref,
2052 u64 *found_off)
2053 {
2054 int ret, slot;
2055 struct btrfs_key key;
2056 struct btrfs_key found_key;
2057 struct btrfs_inode_extref *extref;
2058 const struct extent_buffer *leaf;
2059 unsigned long ptr;
2060
2061 key.objectid = inode_objectid;
2062 key.type = BTRFS_INODE_EXTREF_KEY;
2063 key.offset = start_off;
2064
2065 ret = btrfs_search_slot(NULL, root, &key, path, 0, 0);
2066 if (ret < 0)
2067 return ret;
2068
2069 while (1) {
2070 leaf = path->nodes[0];
2071 slot = path->slots[0];
2072 if (slot >= btrfs_header_nritems(leaf)) {
2073 /*
2074 * If the item at offset is not found,
2075 * btrfs_search_slot will point us to the slot
2076 * where it should be inserted. In our case
2077 * that will be the slot directly before the
2078 * next INODE_REF_KEY_V2 item. In the case
2079 * that we're pointing to the last slot in a
2080 * leaf, we must move one leaf over.
2081 */
2082 ret = btrfs_next_leaf(root, path);
2083 if (ret) {
2084 if (ret >= 1)
2085 ret = -ENOENT;
2086 break;
2087 }
2088 continue;
2089 }
2090
2091 btrfs_item_key_to_cpu(leaf, &found_key, slot);
2092
2093 /*
2094 * Check that we're still looking at an extended ref key for
2095 * this particular objectid. If we have different
2096 * objectid or type then there are no more to be found
2097 * in the tree and we can exit.
2098 */
2099 ret = -ENOENT;
2100 if (found_key.objectid != inode_objectid)
2101 break;
2102 if (found_key.type != BTRFS_INODE_EXTREF_KEY)
2103 break;
2104
2105 ret = 0;
2106 ptr = btrfs_item_ptr_offset(leaf, path->slots[0]);
2107 extref = (struct btrfs_inode_extref *)ptr;
2108 *ret_extref = extref;
2109 if (found_off)
2110 *found_off = found_key.offset;
2111 break;
2112 }
2113
2114 return ret;
2115 }
2116
2117 /*
2118 * this iterates to turn a name (from iref/extref) into a full filesystem path.
2119 * Elements of the path are separated by '/' and the path is guaranteed to be
2120 * 0-terminated. the path is only given within the current file system.
2121 * Therefore, it never starts with a '/'. the caller is responsible to provide
2122 * "size" bytes in "dest". the dest buffer will be filled backwards. finally,
2123 * the start point of the resulting string is returned. this pointer is within
2124 * dest, normally.
2125 * in case the path buffer would overflow, the pointer is decremented further
2126 * as if output was written to the buffer, though no more output is actually
2127 * generated. that way, the caller can determine how much space would be
2128 * required for the path to fit into the buffer. in that case, the returned
2129 * value will be smaller than dest. callers must check this!
2130 */
btrfs_ref_to_path(struct btrfs_root * fs_root,struct btrfs_path * path,u32 name_len,unsigned long name_off,struct extent_buffer * eb_in,u64 parent,char * dest,u32 size)2131 char *btrfs_ref_to_path(struct btrfs_root *fs_root, struct btrfs_path *path,
2132 u32 name_len, unsigned long name_off,
2133 struct extent_buffer *eb_in, u64 parent,
2134 char *dest, u32 size)
2135 {
2136 int slot;
2137 u64 next_inum;
2138 int ret;
2139 s64 bytes_left = ((s64)size) - 1;
2140 struct extent_buffer *eb = eb_in;
2141 struct btrfs_key found_key;
2142 struct btrfs_inode_ref *iref;
2143
2144 if (bytes_left >= 0)
2145 dest[bytes_left] = '\0';
2146
2147 while (1) {
2148 bytes_left -= name_len;
2149 if (bytes_left >= 0)
2150 read_extent_buffer(eb, dest + bytes_left,
2151 name_off, name_len);
2152 if (eb != eb_in) {
2153 if (!path->skip_locking)
2154 btrfs_tree_read_unlock(eb);
2155 free_extent_buffer(eb);
2156 }
2157 ret = btrfs_find_item(fs_root, path, parent, 0,
2158 BTRFS_INODE_REF_KEY, &found_key);
2159 if (ret > 0)
2160 ret = -ENOENT;
2161 if (ret)
2162 break;
2163
2164 next_inum = found_key.offset;
2165
2166 /* regular exit ahead */
2167 if (parent == next_inum)
2168 break;
2169
2170 slot = path->slots[0];
2171 eb = path->nodes[0];
2172 /* make sure we can use eb after releasing the path */
2173 if (eb != eb_in) {
2174 path->nodes[0] = NULL;
2175 path->locks[0] = 0;
2176 }
2177 btrfs_release_path(path);
2178 iref = btrfs_item_ptr(eb, slot, struct btrfs_inode_ref);
2179
2180 name_len = btrfs_inode_ref_name_len(eb, iref);
2181 name_off = (unsigned long)(iref + 1);
2182
2183 parent = next_inum;
2184 --bytes_left;
2185 if (bytes_left >= 0)
2186 dest[bytes_left] = '/';
2187 }
2188
2189 btrfs_release_path(path);
2190
2191 if (ret)
2192 return ERR_PTR(ret);
2193
2194 return dest + bytes_left;
2195 }
2196
2197 /*
2198 * this makes the path point to (logical EXTENT_ITEM *)
2199 * returns BTRFS_EXTENT_FLAG_DATA for data, BTRFS_EXTENT_FLAG_TREE_BLOCK for
2200 * tree blocks and <0 on error.
2201 */
extent_from_logical(struct btrfs_fs_info * fs_info,u64 logical,struct btrfs_path * path,struct btrfs_key * found_key,u64 * flags_ret)2202 int extent_from_logical(struct btrfs_fs_info *fs_info, u64 logical,
2203 struct btrfs_path *path, struct btrfs_key *found_key,
2204 u64 *flags_ret)
2205 {
2206 struct btrfs_root *extent_root = btrfs_extent_root(fs_info, logical);
2207 int ret;
2208 u64 flags;
2209 u64 size = 0;
2210 const struct extent_buffer *eb;
2211 struct btrfs_extent_item *ei;
2212 struct btrfs_key key;
2213
2214 if (unlikely(!extent_root)) {
2215 btrfs_err(fs_info,
2216 "missing extent root for extent at bytenr %llu",
2217 logical);
2218 return -EUCLEAN;
2219 }
2220
2221 key.objectid = logical;
2222 if (btrfs_fs_incompat(fs_info, SKINNY_METADATA))
2223 key.type = BTRFS_METADATA_ITEM_KEY;
2224 else
2225 key.type = BTRFS_EXTENT_ITEM_KEY;
2226 key.offset = (u64)-1;
2227
2228 ret = btrfs_search_slot(NULL, extent_root, &key, path, 0, 0);
2229 if (ret < 0)
2230 return ret;
2231 if (unlikely(ret == 0)) {
2232 /*
2233 * Key with offset -1 found, there would have to exist an extent
2234 * item with such offset, but this is out of the valid range.
2235 */
2236 return -EUCLEAN;
2237 }
2238
2239 ret = btrfs_previous_extent_item(extent_root, path, 0);
2240 if (ret) {
2241 if (ret > 0)
2242 ret = -ENOENT;
2243 return ret;
2244 }
2245 btrfs_item_key_to_cpu(path->nodes[0], found_key, path->slots[0]);
2246 if (found_key->type == BTRFS_METADATA_ITEM_KEY)
2247 size = fs_info->nodesize;
2248 else if (found_key->type == BTRFS_EXTENT_ITEM_KEY)
2249 size = found_key->offset;
2250
2251 if (found_key->objectid > logical ||
2252 found_key->objectid + size <= logical) {
2253 btrfs_debug(fs_info,
2254 "logical %llu is not within any extent", logical);
2255 return -ENOENT;
2256 }
2257
2258 eb = path->nodes[0];
2259
2260 ei = btrfs_item_ptr(eb, path->slots[0], struct btrfs_extent_item);
2261 flags = btrfs_extent_flags(eb, ei);
2262
2263 btrfs_debug(fs_info,
2264 "logical %llu is at position %llu within the extent (%llu EXTENT_ITEM %llu) flags %#llx size %u",
2265 logical, logical - found_key->objectid, found_key->objectid,
2266 found_key->offset, flags, btrfs_item_size(eb, path->slots[0]));
2267
2268 WARN_ON(!flags_ret);
2269 if (flags_ret) {
2270 if (flags & BTRFS_EXTENT_FLAG_TREE_BLOCK)
2271 *flags_ret = BTRFS_EXTENT_FLAG_TREE_BLOCK;
2272 else if (flags & BTRFS_EXTENT_FLAG_DATA)
2273 *flags_ret = BTRFS_EXTENT_FLAG_DATA;
2274 else
2275 BUG();
2276 return 0;
2277 }
2278
2279 return -EIO;
2280 }
2281
2282 /*
2283 * helper function to iterate extent inline refs. ptr must point to a 0 value
2284 * for the first call and may be modified. it is used to track state.
2285 * if more refs exist, 0 is returned and the next call to
2286 * get_extent_inline_ref must pass the modified ptr parameter to get the
2287 * next ref. after the last ref was processed, 1 is returned.
2288 * returns <0 on error
2289 */
get_extent_inline_ref(unsigned long * ptr,const struct extent_buffer * eb,const struct btrfs_key * key,const struct btrfs_extent_item * ei,u32 item_size,struct btrfs_extent_inline_ref ** out_eiref,int * out_type)2290 static int get_extent_inline_ref(unsigned long *ptr,
2291 const struct extent_buffer *eb,
2292 const struct btrfs_key *key,
2293 const struct btrfs_extent_item *ei,
2294 u32 item_size,
2295 struct btrfs_extent_inline_ref **out_eiref,
2296 int *out_type)
2297 {
2298 unsigned long end;
2299 u64 flags;
2300 struct btrfs_tree_block_info *info;
2301
2302 if (!*ptr) {
2303 /* first call */
2304 flags = btrfs_extent_flags(eb, ei);
2305 if (flags & BTRFS_EXTENT_FLAG_TREE_BLOCK) {
2306 if (key->type == BTRFS_METADATA_ITEM_KEY) {
2307 /* a skinny metadata extent */
2308 *out_eiref =
2309 (struct btrfs_extent_inline_ref *)(ei + 1);
2310 } else {
2311 WARN_ON(key->type != BTRFS_EXTENT_ITEM_KEY);
2312 info = (struct btrfs_tree_block_info *)(ei + 1);
2313 *out_eiref =
2314 (struct btrfs_extent_inline_ref *)(info + 1);
2315 }
2316 } else {
2317 *out_eiref = (struct btrfs_extent_inline_ref *)(ei + 1);
2318 }
2319 *ptr = (unsigned long)*out_eiref;
2320 if ((unsigned long)(*ptr) >= (unsigned long)ei + item_size)
2321 return -ENOENT;
2322 }
2323
2324 end = (unsigned long)ei + item_size;
2325 *out_eiref = (struct btrfs_extent_inline_ref *)(*ptr);
2326 *out_type = btrfs_get_extent_inline_ref_type(eb, *out_eiref,
2327 BTRFS_REF_TYPE_ANY);
2328 if (unlikely(*out_type == BTRFS_REF_TYPE_INVALID))
2329 return -EUCLEAN;
2330
2331 *ptr += btrfs_extent_inline_ref_size(*out_type);
2332 WARN_ON(*ptr > end);
2333 if (*ptr == end)
2334 return 1; /* last */
2335
2336 return 0;
2337 }
2338
2339 /*
2340 * reads the tree block backref for an extent. tree level and root are returned
2341 * through out_level and out_root. ptr must point to a 0 value for the first
2342 * call and may be modified (see get_extent_inline_ref comment).
2343 * returns 0 if data was provided, 1 if there was no more data to provide or
2344 * <0 on error.
2345 */
tree_backref_for_extent(unsigned long * ptr,struct extent_buffer * eb,struct btrfs_key * key,struct btrfs_extent_item * ei,u32 item_size,u64 * out_root,u8 * out_level)2346 int tree_backref_for_extent(unsigned long *ptr, struct extent_buffer *eb,
2347 struct btrfs_key *key, struct btrfs_extent_item *ei,
2348 u32 item_size, u64 *out_root, u8 *out_level)
2349 {
2350 int ret;
2351 int type;
2352 struct btrfs_extent_inline_ref *eiref;
2353
2354 if (*ptr == (unsigned long)-1)
2355 return 1;
2356
2357 while (1) {
2358 ret = get_extent_inline_ref(ptr, eb, key, ei, item_size,
2359 &eiref, &type);
2360 if (ret < 0)
2361 return ret;
2362
2363 if (type == BTRFS_TREE_BLOCK_REF_KEY ||
2364 type == BTRFS_SHARED_BLOCK_REF_KEY)
2365 break;
2366
2367 if (ret == 1)
2368 return 1;
2369 }
2370
2371 /* we can treat both ref types equally here */
2372 *out_root = btrfs_extent_inline_ref_offset(eb, eiref);
2373
2374 if (key->type == BTRFS_EXTENT_ITEM_KEY) {
2375 struct btrfs_tree_block_info *info;
2376
2377 info = (struct btrfs_tree_block_info *)(ei + 1);
2378 *out_level = btrfs_tree_block_level(eb, info);
2379 } else {
2380 ASSERT(key->type == BTRFS_METADATA_ITEM_KEY);
2381 *out_level = (u8)key->offset;
2382 }
2383
2384 if (ret == 1)
2385 *ptr = (unsigned long)-1;
2386
2387 return 0;
2388 }
2389
iterate_leaf_refs(struct btrfs_fs_info * fs_info,struct extent_inode_elem * inode_list,u64 root,u64 extent_item_objectid,iterate_extent_inodes_t * iterate,void * ctx)2390 static int iterate_leaf_refs(struct btrfs_fs_info *fs_info,
2391 struct extent_inode_elem *inode_list,
2392 u64 root, u64 extent_item_objectid,
2393 iterate_extent_inodes_t *iterate, void *ctx)
2394 {
2395 struct extent_inode_elem *eie;
2396 int ret = 0;
2397
2398 for (eie = inode_list; eie; eie = eie->next) {
2399 btrfs_debug(fs_info,
2400 "ref for %llu resolved, key (%llu EXTEND_DATA %llu), root %llu",
2401 extent_item_objectid, eie->inum,
2402 eie->offset, root);
2403 ret = iterate(eie->inum, eie->offset, eie->num_bytes, root, ctx);
2404 if (ret) {
2405 btrfs_debug(fs_info,
2406 "stopping iteration for %llu due to ret=%d",
2407 extent_item_objectid, ret);
2408 break;
2409 }
2410 }
2411
2412 return ret;
2413 }
2414
2415 /*
2416 * calls iterate() for every inode that references the extent identified by
2417 * the given parameters.
2418 * when the iterator function returns a non-zero value, iteration stops.
2419 */
iterate_extent_inodes(struct btrfs_backref_walk_ctx * ctx,bool search_commit_root,iterate_extent_inodes_t * iterate,void * user_ctx)2420 int iterate_extent_inodes(struct btrfs_backref_walk_ctx *ctx,
2421 bool search_commit_root,
2422 iterate_extent_inodes_t *iterate, void *user_ctx)
2423 {
2424 int ret;
2425 struct ulist *refs;
2426 struct ulist_node *ref_node;
2427 struct btrfs_seq_list seq_elem = BTRFS_SEQ_LIST_INIT(seq_elem);
2428 struct ulist_iterator ref_uiter;
2429
2430 btrfs_debug(ctx->fs_info, "resolving all inodes for extent %llu",
2431 ctx->bytenr);
2432
2433 ASSERT(ctx->trans == NULL);
2434 ASSERT(ctx->roots == NULL);
2435
2436 if (!search_commit_root) {
2437 struct btrfs_trans_handle *trans;
2438
2439 trans = btrfs_attach_transaction(ctx->fs_info->tree_root);
2440 if (IS_ERR(trans)) {
2441 if (PTR_ERR(trans) != -ENOENT &&
2442 PTR_ERR(trans) != -EROFS)
2443 return PTR_ERR(trans);
2444 trans = NULL;
2445 }
2446 ctx->trans = trans;
2447 }
2448
2449 if (ctx->trans) {
2450 btrfs_get_tree_mod_seq(ctx->fs_info, &seq_elem);
2451 ctx->time_seq = seq_elem.seq;
2452 } else {
2453 down_read(&ctx->fs_info->commit_root_sem);
2454 }
2455
2456 ret = btrfs_find_all_leafs(ctx);
2457 if (ret)
2458 goto out;
2459 refs = ctx->refs;
2460 ctx->refs = NULL;
2461
2462 ULIST_ITER_INIT(&ref_uiter);
2463 while (!ret && (ref_node = ulist_next(refs, &ref_uiter))) {
2464 const u64 leaf_bytenr = ref_node->val;
2465 struct ulist_node *root_node;
2466 struct ulist_iterator root_uiter;
2467 struct extent_inode_elem *inode_list;
2468
2469 inode_list = (struct extent_inode_elem *)(uintptr_t)ref_node->aux;
2470
2471 if (ctx->cache_lookup) {
2472 const u64 *root_ids;
2473 int root_count;
2474 bool cached;
2475
2476 cached = ctx->cache_lookup(leaf_bytenr, ctx->user_ctx,
2477 &root_ids, &root_count);
2478 if (cached) {
2479 for (int i = 0; i < root_count; i++) {
2480 ret = iterate_leaf_refs(ctx->fs_info,
2481 inode_list,
2482 root_ids[i],
2483 leaf_bytenr,
2484 iterate,
2485 user_ctx);
2486 if (ret)
2487 break;
2488 }
2489 continue;
2490 }
2491 }
2492
2493 if (!ctx->roots) {
2494 ctx->roots = ulist_alloc(GFP_NOFS);
2495 if (!ctx->roots) {
2496 ret = -ENOMEM;
2497 break;
2498 }
2499 }
2500
2501 ctx->bytenr = leaf_bytenr;
2502 ret = btrfs_find_all_roots_safe(ctx);
2503 if (ret)
2504 break;
2505
2506 if (ctx->cache_store)
2507 ctx->cache_store(leaf_bytenr, ctx->roots, ctx->user_ctx);
2508
2509 ULIST_ITER_INIT(&root_uiter);
2510 while (!ret && (root_node = ulist_next(ctx->roots, &root_uiter))) {
2511 btrfs_debug(ctx->fs_info,
2512 "root %llu references leaf %llu, data list %#llx",
2513 root_node->val, ref_node->val,
2514 ref_node->aux);
2515 ret = iterate_leaf_refs(ctx->fs_info, inode_list,
2516 root_node->val, ctx->bytenr,
2517 iterate, user_ctx);
2518 }
2519 ulist_reinit(ctx->roots);
2520 }
2521
2522 free_leaf_list(refs);
2523 out:
2524 if (ctx->trans) {
2525 btrfs_put_tree_mod_seq(ctx->fs_info, &seq_elem);
2526 btrfs_end_transaction(ctx->trans);
2527 ctx->trans = NULL;
2528 } else {
2529 up_read(&ctx->fs_info->commit_root_sem);
2530 }
2531
2532 ulist_free(ctx->roots);
2533 ctx->roots = NULL;
2534
2535 if (ret == BTRFS_ITERATE_EXTENT_INODES_STOP)
2536 ret = 0;
2537
2538 return ret;
2539 }
2540
build_ino_list(u64 inum,u64 offset,u64 num_bytes,u64 root,void * ctx)2541 static int build_ino_list(u64 inum, u64 offset, u64 num_bytes, u64 root, void *ctx)
2542 {
2543 struct btrfs_data_container *inodes = ctx;
2544 const size_t c = 3 * sizeof(u64);
2545
2546 if (inodes->bytes_left >= c) {
2547 inodes->bytes_left -= c;
2548 inodes->val[inodes->elem_cnt] = inum;
2549 inodes->val[inodes->elem_cnt + 1] = offset;
2550 inodes->val[inodes->elem_cnt + 2] = root;
2551 inodes->elem_cnt += 3;
2552 } else {
2553 inodes->bytes_missing += c - inodes->bytes_left;
2554 inodes->bytes_left = 0;
2555 inodes->elem_missed += 3;
2556 }
2557
2558 return 0;
2559 }
2560
iterate_inodes_from_logical(u64 logical,struct btrfs_fs_info * fs_info,void * ctx,bool ignore_offset)2561 int iterate_inodes_from_logical(u64 logical, struct btrfs_fs_info *fs_info,
2562 void *ctx, bool ignore_offset)
2563 {
2564 struct btrfs_backref_walk_ctx walk_ctx = { 0 };
2565 int ret;
2566 u64 flags = 0;
2567 struct btrfs_key found_key;
2568 struct btrfs_path *path;
2569
2570 path = btrfs_alloc_path();
2571 if (!path)
2572 return -ENOMEM;
2573
2574 ret = extent_from_logical(fs_info, logical, path, &found_key, &flags);
2575 btrfs_free_path(path);
2576 if (ret < 0)
2577 return ret;
2578 if (flags & BTRFS_EXTENT_FLAG_TREE_BLOCK)
2579 return -EINVAL;
2580
2581 walk_ctx.bytenr = found_key.objectid;
2582 if (ignore_offset)
2583 walk_ctx.ignore_extent_item_pos = true;
2584 else
2585 walk_ctx.extent_item_pos = logical - found_key.objectid;
2586 walk_ctx.fs_info = fs_info;
2587
2588 return iterate_extent_inodes(&walk_ctx, false, build_ino_list, ctx);
2589 }
2590
2591 static int inode_to_path(u64 inum, u32 name_len, unsigned long name_off,
2592 struct extent_buffer *eb, struct inode_fs_paths *ipath);
2593
iterate_inode_refs(u64 inum,struct inode_fs_paths * ipath)2594 static int iterate_inode_refs(u64 inum, struct inode_fs_paths *ipath)
2595 {
2596 int ret = 0;
2597 int slot;
2598 u32 cur;
2599 u32 len;
2600 u32 name_len;
2601 u64 parent = 0;
2602 int found = 0;
2603 struct btrfs_root *fs_root = ipath->fs_root;
2604 struct btrfs_path *path = ipath->btrfs_path;
2605 struct extent_buffer *eb;
2606 struct btrfs_inode_ref *iref;
2607 struct btrfs_key found_key;
2608
2609 while (!ret) {
2610 ret = btrfs_find_item(fs_root, path, inum,
2611 parent ? parent + 1 : 0, BTRFS_INODE_REF_KEY,
2612 &found_key);
2613
2614 if (ret < 0)
2615 break;
2616 if (ret) {
2617 ret = found ? 0 : -ENOENT;
2618 break;
2619 }
2620 ++found;
2621
2622 parent = found_key.offset;
2623 slot = path->slots[0];
2624 eb = btrfs_clone_extent_buffer(path->nodes[0]);
2625 if (!eb) {
2626 ret = -ENOMEM;
2627 break;
2628 }
2629 btrfs_release_path(path);
2630
2631 iref = btrfs_item_ptr(eb, slot, struct btrfs_inode_ref);
2632
2633 for (cur = 0; cur < btrfs_item_size(eb, slot); cur += len) {
2634 name_len = btrfs_inode_ref_name_len(eb, iref);
2635 /* path must be released before calling iterate()! */
2636 btrfs_debug(fs_root->fs_info,
2637 "following ref at offset %u for inode %llu in tree %llu",
2638 cur, found_key.objectid,
2639 btrfs_root_id(fs_root));
2640 ret = inode_to_path(parent, name_len,
2641 (unsigned long)(iref + 1), eb, ipath);
2642 if (ret)
2643 break;
2644 len = sizeof(*iref) + name_len;
2645 iref = (struct btrfs_inode_ref *)((char *)iref + len);
2646 }
2647 free_extent_buffer(eb);
2648 }
2649
2650 btrfs_release_path(path);
2651
2652 return ret;
2653 }
2654
iterate_inode_extrefs(u64 inum,struct inode_fs_paths * ipath)2655 static int iterate_inode_extrefs(u64 inum, struct inode_fs_paths *ipath)
2656 {
2657 int ret;
2658 int slot;
2659 u64 offset = 0;
2660 u64 parent;
2661 int found = 0;
2662 struct btrfs_root *fs_root = ipath->fs_root;
2663 struct btrfs_path *path = ipath->btrfs_path;
2664 struct extent_buffer *eb;
2665 struct btrfs_inode_extref *extref;
2666 u32 item_size;
2667 u32 cur_offset;
2668 unsigned long ptr;
2669
2670 while (1) {
2671 ret = btrfs_find_one_extref(fs_root, inum, offset, path, &extref,
2672 &offset);
2673 if (ret < 0)
2674 break;
2675 if (ret) {
2676 ret = found ? 0 : -ENOENT;
2677 break;
2678 }
2679 ++found;
2680
2681 slot = path->slots[0];
2682 eb = btrfs_clone_extent_buffer(path->nodes[0]);
2683 if (!eb) {
2684 ret = -ENOMEM;
2685 break;
2686 }
2687 btrfs_release_path(path);
2688
2689 item_size = btrfs_item_size(eb, slot);
2690 ptr = btrfs_item_ptr_offset(eb, slot);
2691 cur_offset = 0;
2692
2693 while (cur_offset < item_size) {
2694 u32 name_len;
2695
2696 extref = (struct btrfs_inode_extref *)(ptr + cur_offset);
2697 parent = btrfs_inode_extref_parent(eb, extref);
2698 name_len = btrfs_inode_extref_name_len(eb, extref);
2699 ret = inode_to_path(parent, name_len,
2700 (unsigned long)&extref->name, eb, ipath);
2701 if (ret)
2702 break;
2703
2704 cur_offset += btrfs_inode_extref_name_len(eb, extref);
2705 cur_offset += sizeof(*extref);
2706 }
2707 free_extent_buffer(eb);
2708
2709 offset++;
2710 }
2711
2712 btrfs_release_path(path);
2713
2714 return ret;
2715 }
2716
2717 /*
2718 * returns 0 if the path could be dumped (probably truncated)
2719 * returns <0 in case of an error
2720 */
inode_to_path(u64 inum,u32 name_len,unsigned long name_off,struct extent_buffer * eb,struct inode_fs_paths * ipath)2721 static int inode_to_path(u64 inum, u32 name_len, unsigned long name_off,
2722 struct extent_buffer *eb, struct inode_fs_paths *ipath)
2723 {
2724 char *fspath;
2725 char *fspath_min;
2726 int i = ipath->fspath->elem_cnt;
2727 const int s_ptr = sizeof(char *);
2728 u32 bytes_left;
2729
2730 bytes_left = ipath->fspath->bytes_left > s_ptr ?
2731 ipath->fspath->bytes_left - s_ptr : 0;
2732
2733 fspath_min = (char *)ipath->fspath->val + (i + 1) * s_ptr;
2734 fspath = btrfs_ref_to_path(ipath->fs_root, ipath->btrfs_path, name_len,
2735 name_off, eb, inum, fspath_min, bytes_left);
2736 if (IS_ERR(fspath))
2737 return PTR_ERR(fspath);
2738
2739 if (fspath > fspath_min) {
2740 ipath->fspath->val[i] = (u64)(unsigned long)fspath;
2741 ++ipath->fspath->elem_cnt;
2742 ipath->fspath->bytes_left = fspath - fspath_min;
2743 } else {
2744 ++ipath->fspath->elem_missed;
2745 ipath->fspath->bytes_missing += fspath_min - fspath;
2746 ipath->fspath->bytes_left = 0;
2747 }
2748
2749 return 0;
2750 }
2751
2752 /*
2753 * this dumps all file system paths to the inode into the ipath struct, provided
2754 * is has been created large enough. each path is zero-terminated and accessed
2755 * from ipath->fspath->val[i].
2756 * when it returns, there are ipath->fspath->elem_cnt number of paths available
2757 * in ipath->fspath->val[]. when the allocated space wasn't sufficient, the
2758 * number of missed paths is recorded in ipath->fspath->elem_missed, otherwise,
2759 * it's zero. ipath->fspath->bytes_missing holds the number of bytes that would
2760 * have been needed to return all paths.
2761 */
paths_from_inode(u64 inum,struct inode_fs_paths * ipath)2762 int paths_from_inode(u64 inum, struct inode_fs_paths *ipath)
2763 {
2764 int ret;
2765 int found_refs = 0;
2766
2767 ret = iterate_inode_refs(inum, ipath);
2768 if (!ret)
2769 ++found_refs;
2770 else if (ret != -ENOENT)
2771 return ret;
2772
2773 ret = iterate_inode_extrefs(inum, ipath);
2774 if (ret == -ENOENT && found_refs)
2775 return 0;
2776
2777 return ret;
2778 }
2779
init_data_container(u32 total_bytes)2780 struct btrfs_data_container *init_data_container(u32 total_bytes)
2781 {
2782 struct btrfs_data_container *data;
2783 size_t alloc_bytes;
2784
2785 alloc_bytes = max_t(size_t, total_bytes, sizeof(*data));
2786 data = kvzalloc(alloc_bytes, GFP_KERNEL);
2787 if (!data)
2788 return ERR_PTR(-ENOMEM);
2789
2790 if (total_bytes >= sizeof(*data))
2791 data->bytes_left = total_bytes - sizeof(*data);
2792 else
2793 data->bytes_missing = sizeof(*data) - total_bytes;
2794
2795 return data;
2796 }
2797
2798 /*
2799 * allocates space to return multiple file system paths for an inode.
2800 * total_bytes to allocate are passed, note that space usable for actual path
2801 * information will be total_bytes - sizeof(struct inode_fs_paths).
2802 * the returned pointer must be freed with __free_inode_fs_paths() in the end.
2803 */
init_ipath(s32 total_bytes,struct btrfs_root * fs_root,struct btrfs_path * path)2804 struct inode_fs_paths *init_ipath(s32 total_bytes, struct btrfs_root *fs_root,
2805 struct btrfs_path *path)
2806 {
2807 struct inode_fs_paths *ifp;
2808 struct btrfs_data_container *fspath;
2809
2810 fspath = init_data_container(total_bytes);
2811 if (IS_ERR(fspath))
2812 return ERR_CAST(fspath);
2813
2814 ifp = kmalloc_obj(*ifp);
2815 if (!ifp) {
2816 kvfree(fspath);
2817 return ERR_PTR(-ENOMEM);
2818 }
2819
2820 ifp->btrfs_path = path;
2821 ifp->fspath = fspath;
2822 ifp->fs_root = fs_root;
2823
2824 return ifp;
2825 }
2826
btrfs_backref_iter_alloc(struct btrfs_fs_info * fs_info)2827 struct btrfs_backref_iter *btrfs_backref_iter_alloc(struct btrfs_fs_info *fs_info)
2828 {
2829 struct btrfs_backref_iter *ret;
2830
2831 ret = kzalloc_obj(*ret, GFP_NOFS);
2832 if (!ret)
2833 return NULL;
2834
2835 ret->path = btrfs_alloc_path();
2836 if (!ret->path) {
2837 kfree(ret);
2838 return NULL;
2839 }
2840
2841 /* Current backref iterator only supports iteration in commit root */
2842 ret->path->search_commit_root = true;
2843 ret->path->skip_locking = true;
2844 ret->fs_info = fs_info;
2845
2846 return ret;
2847 }
2848
btrfs_backref_iter_release(struct btrfs_backref_iter * iter)2849 static void btrfs_backref_iter_release(struct btrfs_backref_iter *iter)
2850 {
2851 iter->bytenr = 0;
2852 iter->item_ptr = 0;
2853 iter->cur_ptr = 0;
2854 iter->end_ptr = 0;
2855 btrfs_release_path(iter->path);
2856 memset(&iter->cur_key, 0, sizeof(iter->cur_key));
2857 }
2858
btrfs_backref_iter_start(struct btrfs_backref_iter * iter,u64 bytenr)2859 int btrfs_backref_iter_start(struct btrfs_backref_iter *iter, u64 bytenr)
2860 {
2861 struct btrfs_fs_info *fs_info = iter->fs_info;
2862 struct btrfs_root *extent_root = btrfs_extent_root(fs_info, bytenr);
2863 struct btrfs_path *path = iter->path;
2864 struct btrfs_extent_item *ei;
2865 struct btrfs_key key;
2866 int ret;
2867
2868 if (unlikely(!extent_root)) {
2869 btrfs_err(fs_info,
2870 "missing extent root for extent at bytenr %llu",
2871 bytenr);
2872 return -EUCLEAN;
2873 }
2874
2875 key.objectid = bytenr;
2876 key.type = BTRFS_METADATA_ITEM_KEY;
2877 key.offset = (u64)-1;
2878 iter->bytenr = bytenr;
2879
2880 ret = btrfs_search_slot(NULL, extent_root, &key, path, 0, 0);
2881 if (ret < 0)
2882 return ret;
2883 if (unlikely(ret == 0)) {
2884 /*
2885 * Key with offset -1 found, there would have to exist an extent
2886 * item with such offset, but this is out of the valid range.
2887 */
2888 ret = -EUCLEAN;
2889 goto release;
2890 }
2891 if (unlikely(path->slots[0] == 0)) {
2892 DEBUG_WARN();
2893 ret = -EUCLEAN;
2894 goto release;
2895 }
2896 path->slots[0]--;
2897
2898 btrfs_item_key_to_cpu(path->nodes[0], &key, path->slots[0]);
2899 if ((key.type != BTRFS_EXTENT_ITEM_KEY &&
2900 key.type != BTRFS_METADATA_ITEM_KEY) || key.objectid != bytenr) {
2901 ret = -ENOENT;
2902 goto release;
2903 }
2904 memcpy(&iter->cur_key, &key, sizeof(key));
2905 iter->item_ptr = (u32)btrfs_item_ptr_offset(path->nodes[0],
2906 path->slots[0]);
2907 iter->end_ptr = (u32)(iter->item_ptr +
2908 btrfs_item_size(path->nodes[0], path->slots[0]));
2909 ei = btrfs_item_ptr(path->nodes[0], path->slots[0],
2910 struct btrfs_extent_item);
2911
2912 /*
2913 * Only support iteration on tree backref yet.
2914 *
2915 * This is an extra precaution for non skinny-metadata, where
2916 * EXTENT_ITEM is also used for tree blocks, that we can only use
2917 * extent flags to determine if it's a tree block.
2918 */
2919 if (btrfs_extent_flags(path->nodes[0], ei) & BTRFS_EXTENT_FLAG_DATA) {
2920 ret = -ENOTSUPP;
2921 goto release;
2922 }
2923 iter->cur_ptr = (u32)(iter->item_ptr + sizeof(*ei));
2924
2925 /* If there is no inline backref, go search for keyed backref */
2926 if (iter->cur_ptr >= iter->end_ptr) {
2927 ret = btrfs_next_item(extent_root, path);
2928
2929 /* No inline nor keyed ref */
2930 if (ret > 0) {
2931 ret = -ENOENT;
2932 goto release;
2933 }
2934 if (ret < 0)
2935 goto release;
2936
2937 btrfs_item_key_to_cpu(path->nodes[0], &iter->cur_key,
2938 path->slots[0]);
2939 if (iter->cur_key.objectid != bytenr ||
2940 (iter->cur_key.type != BTRFS_SHARED_BLOCK_REF_KEY &&
2941 iter->cur_key.type != BTRFS_TREE_BLOCK_REF_KEY)) {
2942 ret = -ENOENT;
2943 goto release;
2944 }
2945 iter->cur_ptr = (u32)btrfs_item_ptr_offset(path->nodes[0],
2946 path->slots[0]);
2947 iter->item_ptr = iter->cur_ptr;
2948 iter->end_ptr = (u32)(iter->item_ptr + btrfs_item_size(
2949 path->nodes[0], path->slots[0]));
2950 }
2951
2952 return 0;
2953 release:
2954 btrfs_backref_iter_release(iter);
2955 return ret;
2956 }
2957
btrfs_backref_iter_is_inline_ref(struct btrfs_backref_iter * iter)2958 static bool btrfs_backref_iter_is_inline_ref(struct btrfs_backref_iter *iter)
2959 {
2960 if (iter->cur_key.type == BTRFS_EXTENT_ITEM_KEY ||
2961 iter->cur_key.type == BTRFS_METADATA_ITEM_KEY)
2962 return true;
2963 return false;
2964 }
2965
2966 /*
2967 * Go to the next backref item of current bytenr, can be either inlined or
2968 * keyed.
2969 *
2970 * Caller needs to check whether it's inline ref or not by iter->cur_key.
2971 *
2972 * Return 0 if we get next backref without problem.
2973 * Return >0 if there is no extra backref for this bytenr.
2974 * Return <0 if there is something wrong happened.
2975 */
btrfs_backref_iter_next(struct btrfs_backref_iter * iter)2976 int btrfs_backref_iter_next(struct btrfs_backref_iter *iter)
2977 {
2978 struct extent_buffer *eb = iter->path->nodes[0];
2979 struct btrfs_root *extent_root;
2980 struct btrfs_path *path = iter->path;
2981 struct btrfs_extent_inline_ref *iref;
2982 int ret;
2983 u32 size;
2984
2985 if (btrfs_backref_iter_is_inline_ref(iter)) {
2986 /* We're still inside the inline refs */
2987 ASSERT(iter->cur_ptr < iter->end_ptr);
2988
2989 if (btrfs_backref_has_tree_block_info(iter)) {
2990 /* First tree block info */
2991 size = sizeof(struct btrfs_tree_block_info);
2992 } else {
2993 /* Use inline ref type to determine the size */
2994 int type;
2995
2996 iref = (struct btrfs_extent_inline_ref *)
2997 ((unsigned long)iter->cur_ptr);
2998 type = btrfs_extent_inline_ref_type(eb, iref);
2999
3000 size = btrfs_extent_inline_ref_size(type);
3001 }
3002 iter->cur_ptr += size;
3003 if (iter->cur_ptr < iter->end_ptr)
3004 return 0;
3005
3006 /* All inline items iterated, fall through */
3007 }
3008
3009 /* We're at keyed items, there is no inline item, go to the next one */
3010 extent_root = btrfs_extent_root(iter->fs_info, iter->bytenr);
3011 if (unlikely(!extent_root)) {
3012 btrfs_err(iter->fs_info,
3013 "missing extent root for extent at bytenr %llu",
3014 iter->bytenr);
3015 return -EUCLEAN;
3016 }
3017
3018 ret = btrfs_next_item(extent_root, iter->path);
3019 if (ret)
3020 return ret;
3021
3022 btrfs_item_key_to_cpu(path->nodes[0], &iter->cur_key, path->slots[0]);
3023 if (iter->cur_key.objectid != iter->bytenr ||
3024 (iter->cur_key.type != BTRFS_TREE_BLOCK_REF_KEY &&
3025 iter->cur_key.type != BTRFS_SHARED_BLOCK_REF_KEY))
3026 return 1;
3027 iter->item_ptr = (u32)btrfs_item_ptr_offset(path->nodes[0],
3028 path->slots[0]);
3029 iter->cur_ptr = iter->item_ptr;
3030 iter->end_ptr = iter->item_ptr + (u32)btrfs_item_size(path->nodes[0],
3031 path->slots[0]);
3032 return 0;
3033 }
3034
btrfs_backref_init_cache(struct btrfs_fs_info * fs_info,struct btrfs_backref_cache * cache,bool is_reloc)3035 void btrfs_backref_init_cache(struct btrfs_fs_info *fs_info,
3036 struct btrfs_backref_cache *cache, bool is_reloc)
3037 {
3038 int i;
3039
3040 cache->rb_root = RB_ROOT;
3041 for (i = 0; i < BTRFS_MAX_LEVEL; i++)
3042 INIT_LIST_HEAD(&cache->pending[i]);
3043 INIT_LIST_HEAD(&cache->pending_edge);
3044 INIT_LIST_HEAD(&cache->useless_node);
3045 cache->fs_info = fs_info;
3046 cache->is_reloc = is_reloc;
3047 }
3048
btrfs_backref_alloc_node(struct btrfs_backref_cache * cache,u64 bytenr,int level)3049 struct btrfs_backref_node *btrfs_backref_alloc_node(
3050 struct btrfs_backref_cache *cache, u64 bytenr, int level)
3051 {
3052 struct btrfs_backref_node *node;
3053
3054 ASSERT(level >= 0 && level < BTRFS_MAX_LEVEL);
3055 node = kzalloc_obj(*node, GFP_NOFS);
3056 if (!node)
3057 return node;
3058
3059 INIT_LIST_HEAD(&node->list);
3060 INIT_LIST_HEAD(&node->upper);
3061 INIT_LIST_HEAD(&node->lower);
3062 RB_CLEAR_NODE(&node->rb_node);
3063 cache->nr_nodes++;
3064 node->level = level;
3065 node->bytenr = bytenr;
3066
3067 return node;
3068 }
3069
btrfs_backref_free_node(struct btrfs_backref_cache * cache,struct btrfs_backref_node * node)3070 void btrfs_backref_free_node(struct btrfs_backref_cache *cache,
3071 struct btrfs_backref_node *node)
3072 {
3073 if (node) {
3074 ASSERT(list_empty(&node->list));
3075 ASSERT(list_empty(&node->lower));
3076 ASSERT(node->eb == NULL);
3077 cache->nr_nodes--;
3078 btrfs_put_root(node->root);
3079 kfree(node);
3080 }
3081 }
3082
btrfs_backref_alloc_edge(struct btrfs_backref_cache * cache)3083 struct btrfs_backref_edge *btrfs_backref_alloc_edge(
3084 struct btrfs_backref_cache *cache)
3085 {
3086 struct btrfs_backref_edge *edge;
3087
3088 edge = kzalloc_obj(*edge, GFP_NOFS);
3089 if (edge)
3090 cache->nr_edges++;
3091 return edge;
3092 }
3093
btrfs_backref_free_edge(struct btrfs_backref_cache * cache,struct btrfs_backref_edge * edge)3094 void btrfs_backref_free_edge(struct btrfs_backref_cache *cache,
3095 struct btrfs_backref_edge *edge)
3096 {
3097 if (edge) {
3098 cache->nr_edges--;
3099 kfree(edge);
3100 }
3101 }
3102
btrfs_backref_unlock_node_buffer(struct btrfs_backref_node * node)3103 void btrfs_backref_unlock_node_buffer(struct btrfs_backref_node *node)
3104 {
3105 if (node->locked) {
3106 btrfs_tree_unlock(node->eb);
3107 node->locked = 0;
3108 }
3109 }
3110
btrfs_backref_drop_node_buffer(struct btrfs_backref_node * node)3111 void btrfs_backref_drop_node_buffer(struct btrfs_backref_node *node)
3112 {
3113 if (node->eb) {
3114 btrfs_backref_unlock_node_buffer(node);
3115 free_extent_buffer(node->eb);
3116 node->eb = NULL;
3117 }
3118 }
3119
3120 /*
3121 * Drop the backref node from cache without cleaning up its children
3122 * edges.
3123 *
3124 * This can only be called on node without parent edges.
3125 * The children edges are still kept as is.
3126 */
btrfs_backref_drop_node(struct btrfs_backref_cache * tree,struct btrfs_backref_node * node)3127 void btrfs_backref_drop_node(struct btrfs_backref_cache *tree,
3128 struct btrfs_backref_node *node)
3129 {
3130 ASSERT(list_empty(&node->upper));
3131
3132 btrfs_backref_drop_node_buffer(node);
3133 list_del_init(&node->list);
3134 list_del_init(&node->lower);
3135 if (!RB_EMPTY_NODE(&node->rb_node))
3136 rb_erase(&node->rb_node, &tree->rb_root);
3137 btrfs_backref_free_node(tree, node);
3138 }
3139
3140 /*
3141 * Drop the backref node from cache, also cleaning up all its
3142 * upper edges and any uncached nodes in the path.
3143 *
3144 * This cleanup happens bottom up, thus the node should either
3145 * be the lowest node in the cache or a detached node.
3146 */
btrfs_backref_cleanup_node(struct btrfs_backref_cache * cache,struct btrfs_backref_node * node)3147 void btrfs_backref_cleanup_node(struct btrfs_backref_cache *cache,
3148 struct btrfs_backref_node *node)
3149 {
3150 struct btrfs_backref_edge *edge;
3151
3152 if (!node)
3153 return;
3154
3155 while (!list_empty(&node->upper)) {
3156 edge = list_first_entry(&node->upper, struct btrfs_backref_edge,
3157 list[LOWER]);
3158 list_del(&edge->list[LOWER]);
3159 list_del(&edge->list[UPPER]);
3160 btrfs_backref_free_edge(cache, edge);
3161 }
3162
3163 btrfs_backref_drop_node(cache, node);
3164 }
3165
3166 /*
3167 * Release all nodes/edges from current cache
3168 */
btrfs_backref_release_cache(struct btrfs_backref_cache * cache)3169 void btrfs_backref_release_cache(struct btrfs_backref_cache *cache)
3170 {
3171 struct btrfs_backref_node *node;
3172
3173 while ((node = rb_entry_safe(rb_first(&cache->rb_root),
3174 struct btrfs_backref_node, rb_node)))
3175 btrfs_backref_cleanup_node(cache, node);
3176
3177 ASSERT(list_empty(&cache->pending_edge));
3178 ASSERT(list_empty(&cache->useless_node));
3179 ASSERT(!cache->nr_nodes);
3180 ASSERT(!cache->nr_edges);
3181 }
3182
btrfs_backref_link_edge(struct btrfs_backref_edge * edge,struct btrfs_backref_node * lower,struct btrfs_backref_node * upper)3183 static void btrfs_backref_link_edge(struct btrfs_backref_edge *edge,
3184 struct btrfs_backref_node *lower,
3185 struct btrfs_backref_node *upper)
3186 {
3187 ASSERT(upper && lower && upper->level == lower->level + 1);
3188 edge->node[LOWER] = lower;
3189 edge->node[UPPER] = upper;
3190 list_add_tail(&edge->list[LOWER], &lower->upper);
3191 }
3192 /*
3193 * Handle direct tree backref
3194 *
3195 * Direct tree backref means, the backref item shows its parent bytenr
3196 * directly. This is for SHARED_BLOCK_REF backref (keyed or inlined).
3197 *
3198 * @ref_key: The converted backref key.
3199 * For keyed backref, it's the item key.
3200 * For inlined backref, objectid is the bytenr,
3201 * type is btrfs_inline_ref_type, offset is
3202 * btrfs_inline_ref_offset.
3203 */
handle_direct_tree_backref(struct btrfs_backref_cache * cache,struct btrfs_key * ref_key,struct btrfs_backref_node * cur)3204 static int handle_direct_tree_backref(struct btrfs_backref_cache *cache,
3205 struct btrfs_key *ref_key,
3206 struct btrfs_backref_node *cur)
3207 {
3208 struct btrfs_backref_edge *edge;
3209 struct btrfs_backref_node *upper;
3210 struct rb_node *rb_node;
3211
3212 ASSERT(ref_key->type == BTRFS_SHARED_BLOCK_REF_KEY);
3213
3214 /* Only reloc root uses backref pointing to itself */
3215 if (ref_key->objectid == ref_key->offset) {
3216 struct btrfs_root *root;
3217
3218 cur->is_reloc_root = 1;
3219 /* Only reloc backref cache cares about a specific root */
3220 if (cache->is_reloc) {
3221 root = find_reloc_root(cache->fs_info, cur->bytenr);
3222 if (!root)
3223 return -ENOENT;
3224 cur->root = root;
3225 } else {
3226 /*
3227 * For generic purpose backref cache, reloc root node
3228 * is useless.
3229 */
3230 list_add(&cur->list, &cache->useless_node);
3231 }
3232 return 0;
3233 }
3234
3235 edge = btrfs_backref_alloc_edge(cache);
3236 if (!edge)
3237 return -ENOMEM;
3238
3239 rb_node = rb_simple_search(&cache->rb_root, ref_key->offset);
3240 if (!rb_node) {
3241 /* Parent node not yet cached */
3242 upper = btrfs_backref_alloc_node(cache, ref_key->offset,
3243 cur->level + 1);
3244 if (!upper) {
3245 btrfs_backref_free_edge(cache, edge);
3246 return -ENOMEM;
3247 }
3248
3249 /*
3250 * Backrefs for the upper level block isn't cached, add the
3251 * block to pending list
3252 */
3253 list_add_tail(&edge->list[UPPER], &cache->pending_edge);
3254 } else {
3255 /* Parent node already cached */
3256 upper = rb_entry(rb_node, struct btrfs_backref_node, rb_node);
3257 ASSERT(upper->checked);
3258 INIT_LIST_HEAD(&edge->list[UPPER]);
3259 }
3260 btrfs_backref_link_edge(edge, cur, upper);
3261 return 0;
3262 }
3263
3264 /*
3265 * Handle indirect tree backref
3266 *
3267 * Indirect tree backref means, we only know which tree the node belongs to.
3268 * We still need to do a tree search to find out the parents. This is for
3269 * TREE_BLOCK_REF backref (keyed or inlined).
3270 *
3271 * @trans: Transaction handle.
3272 * @ref_key: The same as @ref_key in handle_direct_tree_backref()
3273 * @tree_key: The first key of this tree block.
3274 * @path: A clean (released) path, to avoid allocating path every time
3275 * the function get called.
3276 */
handle_indirect_tree_backref(struct btrfs_trans_handle * trans,struct btrfs_backref_cache * cache,struct btrfs_path * path,struct btrfs_key * ref_key,struct btrfs_key * tree_key,struct btrfs_backref_node * cur)3277 static int handle_indirect_tree_backref(struct btrfs_trans_handle *trans,
3278 struct btrfs_backref_cache *cache,
3279 struct btrfs_path *path,
3280 struct btrfs_key *ref_key,
3281 struct btrfs_key *tree_key,
3282 struct btrfs_backref_node *cur)
3283 {
3284 struct btrfs_fs_info *fs_info = cache->fs_info;
3285 struct btrfs_backref_node *upper;
3286 struct btrfs_backref_node *lower;
3287 struct btrfs_backref_edge *edge;
3288 struct extent_buffer *eb;
3289 struct btrfs_root *root;
3290 struct rb_node *rb_node;
3291 int level;
3292 bool need_check = true;
3293 int ret;
3294
3295 root = btrfs_get_fs_root(fs_info, ref_key->offset, false);
3296 if (IS_ERR(root))
3297 return PTR_ERR(root);
3298
3299 /* We shouldn't be using backref cache for non-shareable roots. */
3300 if (unlikely(!test_bit(BTRFS_ROOT_SHAREABLE, &root->state))) {
3301 btrfs_put_root(root);
3302 return -EUCLEAN;
3303 }
3304
3305 if (btrfs_root_level(&root->root_item) == cur->level) {
3306 /* Tree root */
3307 ASSERT(btrfs_root_bytenr(&root->root_item) == cur->bytenr);
3308 /*
3309 * For reloc backref cache, we may ignore reloc root. But for
3310 * general purpose backref cache, we can't rely on
3311 * btrfs_should_ignore_reloc_root() as it may conflict with
3312 * current running relocation and lead to missing root.
3313 *
3314 * For general purpose backref cache, reloc root detection is
3315 * completely relying on direct backref (key->offset is parent
3316 * bytenr), thus only do such check for reloc cache.
3317 */
3318 if (btrfs_should_ignore_reloc_root(root) && cache->is_reloc) {
3319 btrfs_put_root(root);
3320 list_add(&cur->list, &cache->useless_node);
3321 } else {
3322 cur->root = root;
3323 }
3324 return 0;
3325 }
3326
3327 level = cur->level + 1;
3328
3329 /* Search the tree to find parent blocks referring to the block */
3330 path->search_commit_root = true;
3331 path->skip_locking = true;
3332 path->lowest_level = level;
3333 ret = btrfs_search_slot(NULL, root, tree_key, path, 0, 0);
3334 path->lowest_level = 0;
3335 if (ret < 0) {
3336 btrfs_put_root(root);
3337 return ret;
3338 }
3339 if (ret > 0 && path->slots[level] > 0)
3340 path->slots[level]--;
3341
3342 eb = path->nodes[level];
3343 if (btrfs_node_blockptr(eb, path->slots[level]) != cur->bytenr) {
3344 btrfs_err(fs_info,
3345 "couldn't find block (%llu) (level %d) in tree (%llu) with key " BTRFS_KEY_FMT,
3346 cur->bytenr, level - 1, btrfs_root_id(root),
3347 BTRFS_KEY_FMT_VALUE(tree_key));
3348 btrfs_put_root(root);
3349 ret = -ENOENT;
3350 goto out;
3351 }
3352 lower = cur;
3353
3354 /* Add all nodes and edges in the path */
3355 for (; level < BTRFS_MAX_LEVEL; level++) {
3356 if (!path->nodes[level]) {
3357 ASSERT(btrfs_root_bytenr(&root->root_item) ==
3358 lower->bytenr);
3359 /* Same as previous should_ignore_reloc_root() call */
3360 if (btrfs_should_ignore_reloc_root(root) &&
3361 cache->is_reloc) {
3362 btrfs_put_root(root);
3363 list_add(&lower->list, &cache->useless_node);
3364 } else {
3365 lower->root = root;
3366 }
3367 break;
3368 }
3369
3370 edge = btrfs_backref_alloc_edge(cache);
3371 if (!edge) {
3372 btrfs_put_root(root);
3373 ret = -ENOMEM;
3374 goto out;
3375 }
3376
3377 eb = path->nodes[level];
3378 rb_node = rb_simple_search(&cache->rb_root, eb->start);
3379 if (!rb_node) {
3380 upper = btrfs_backref_alloc_node(cache, eb->start,
3381 lower->level + 1);
3382 if (!upper) {
3383 btrfs_put_root(root);
3384 btrfs_backref_free_edge(cache, edge);
3385 ret = -ENOMEM;
3386 goto out;
3387 }
3388 upper->owner = btrfs_header_owner(eb);
3389
3390 /* We shouldn't be using backref cache for non shareable roots. */
3391 if (unlikely(!test_bit(BTRFS_ROOT_SHAREABLE, &root->state))) {
3392 btrfs_put_root(root);
3393 btrfs_backref_free_edge(cache, edge);
3394 btrfs_backref_free_node(cache, upper);
3395 ret = -EUCLEAN;
3396 goto out;
3397 }
3398
3399 /*
3400 * If we know the block isn't shared we can avoid
3401 * checking its backrefs.
3402 */
3403 if (btrfs_block_can_be_shared(trans, root, eb))
3404 upper->checked = 0;
3405 else
3406 upper->checked = 1;
3407
3408 /*
3409 * Add the block to pending list if we need to check its
3410 * backrefs, we only do this once while walking up a
3411 * tree as we will catch anything else later on.
3412 */
3413 if (!upper->checked && need_check) {
3414 need_check = false;
3415 list_add_tail(&edge->list[UPPER],
3416 &cache->pending_edge);
3417 } else {
3418 if (upper->checked)
3419 need_check = true;
3420 INIT_LIST_HEAD(&edge->list[UPPER]);
3421 }
3422 } else {
3423 upper = rb_entry(rb_node, struct btrfs_backref_node,
3424 rb_node);
3425 ASSERT(upper->checked);
3426 INIT_LIST_HEAD(&edge->list[UPPER]);
3427 if (!upper->owner)
3428 upper->owner = btrfs_header_owner(eb);
3429 }
3430 btrfs_backref_link_edge(edge, lower, upper);
3431
3432 if (rb_node) {
3433 btrfs_put_root(root);
3434 break;
3435 }
3436 lower = upper;
3437 upper = NULL;
3438 }
3439 out:
3440 btrfs_release_path(path);
3441 return ret;
3442 }
3443
3444 /*
3445 * Add backref node @cur into @cache.
3446 *
3447 * NOTE: Even if the function returned 0, @cur is not yet cached as its upper
3448 * links aren't yet bi-directional. Needs to finish such links.
3449 * Use btrfs_backref_finish_upper_links() to finish such linkage.
3450 *
3451 * @trans: Transaction handle.
3452 * @path: Released path for indirect tree backref lookup
3453 * @iter: Released backref iter for extent tree search
3454 * @node_key: The first key of the tree block
3455 */
btrfs_backref_add_tree_node(struct btrfs_trans_handle * trans,struct btrfs_backref_cache * cache,struct btrfs_path * path,struct btrfs_backref_iter * iter,struct btrfs_key * node_key,struct btrfs_backref_node * cur)3456 int btrfs_backref_add_tree_node(struct btrfs_trans_handle *trans,
3457 struct btrfs_backref_cache *cache,
3458 struct btrfs_path *path,
3459 struct btrfs_backref_iter *iter,
3460 struct btrfs_key *node_key,
3461 struct btrfs_backref_node *cur)
3462 {
3463 struct btrfs_backref_edge *edge;
3464 struct btrfs_backref_node *exist;
3465 int ret;
3466
3467 ret = btrfs_backref_iter_start(iter, cur->bytenr);
3468 if (ret < 0)
3469 return ret;
3470 /*
3471 * We skip the first btrfs_tree_block_info, as we don't use the key
3472 * stored in it, but fetch it from the tree block
3473 */
3474 if (btrfs_backref_has_tree_block_info(iter)) {
3475 ret = btrfs_backref_iter_next(iter);
3476 if (ret < 0)
3477 goto out;
3478 /* No extra backref? This means the tree block is corrupted */
3479 if (unlikely(ret > 0)) {
3480 ret = -EUCLEAN;
3481 goto out;
3482 }
3483 }
3484 WARN_ON(cur->checked);
3485 if (!list_empty(&cur->upper)) {
3486 /*
3487 * The backref was added previously when processing backref of
3488 * type BTRFS_TREE_BLOCK_REF_KEY
3489 */
3490 ASSERT(list_is_singular(&cur->upper));
3491 edge = list_first_entry(&cur->upper, struct btrfs_backref_edge,
3492 list[LOWER]);
3493 ASSERT(list_empty(&edge->list[UPPER]));
3494 exist = edge->node[UPPER];
3495 /*
3496 * Add the upper level block to pending list if we need check
3497 * its backrefs
3498 */
3499 if (!exist->checked)
3500 list_add_tail(&edge->list[UPPER], &cache->pending_edge);
3501 } else {
3502 exist = NULL;
3503 }
3504
3505 for (; ret == 0; ret = btrfs_backref_iter_next(iter)) {
3506 struct extent_buffer *eb;
3507 struct btrfs_key key;
3508 int type;
3509
3510 cond_resched();
3511 eb = iter->path->nodes[0];
3512
3513 key.objectid = iter->bytenr;
3514 if (btrfs_backref_iter_is_inline_ref(iter)) {
3515 struct btrfs_extent_inline_ref *iref;
3516
3517 /* Update key for inline backref */
3518 iref = (struct btrfs_extent_inline_ref *)
3519 ((unsigned long)iter->cur_ptr);
3520 type = btrfs_get_extent_inline_ref_type(eb, iref,
3521 BTRFS_REF_TYPE_BLOCK);
3522 if (unlikely(type == BTRFS_REF_TYPE_INVALID)) {
3523 ret = -EUCLEAN;
3524 goto out;
3525 }
3526 key.type = type;
3527 key.offset = btrfs_extent_inline_ref_offset(eb, iref);
3528 } else {
3529 key.type = iter->cur_key.type;
3530 key.offset = iter->cur_key.offset;
3531 }
3532
3533 /*
3534 * Parent node found and matches current inline ref, no need to
3535 * rebuild this node for this inline ref
3536 */
3537 if (exist &&
3538 ((key.type == BTRFS_TREE_BLOCK_REF_KEY &&
3539 exist->owner == key.offset) ||
3540 (key.type == BTRFS_SHARED_BLOCK_REF_KEY &&
3541 exist->bytenr == key.offset))) {
3542 exist = NULL;
3543 continue;
3544 }
3545
3546 /* SHARED_BLOCK_REF means key.offset is the parent bytenr */
3547 if (key.type == BTRFS_SHARED_BLOCK_REF_KEY) {
3548 ret = handle_direct_tree_backref(cache, &key, cur);
3549 if (ret < 0)
3550 goto out;
3551 } else if (key.type == BTRFS_TREE_BLOCK_REF_KEY) {
3552 /*
3553 * key.type == BTRFS_TREE_BLOCK_REF_KEY, inline ref
3554 * offset means the root objectid. We need to search
3555 * the tree to get its parent bytenr.
3556 */
3557 ret = handle_indirect_tree_backref(trans, cache, path,
3558 &key, node_key, cur);
3559 if (ret < 0)
3560 goto out;
3561 }
3562 /*
3563 * Unrecognized tree backref items (if it can pass tree-checker)
3564 * would be ignored.
3565 */
3566 }
3567 ret = 0;
3568 cur->checked = 1;
3569 WARN_ON(exist);
3570 out:
3571 btrfs_backref_iter_release(iter);
3572 return ret;
3573 }
3574
3575 /*
3576 * Finish the upwards linkage created by btrfs_backref_add_tree_node()
3577 */
btrfs_backref_finish_upper_links(struct btrfs_backref_cache * cache,struct btrfs_backref_node * start)3578 int btrfs_backref_finish_upper_links(struct btrfs_backref_cache *cache,
3579 struct btrfs_backref_node *start)
3580 {
3581 struct list_head *useless_node = &cache->useless_node;
3582 struct btrfs_backref_edge *edge;
3583 struct rb_node *rb_node;
3584 LIST_HEAD(pending_edge);
3585
3586 ASSERT(start->checked);
3587
3588 rb_node = rb_simple_insert(&cache->rb_root, &start->simple_node);
3589 if (rb_node)
3590 btrfs_backref_panic(cache->fs_info, start->bytenr, -EEXIST);
3591
3592 /*
3593 * Use breadth first search to iterate all related edges.
3594 *
3595 * The starting points are all the edges of this node
3596 */
3597 list_for_each_entry(edge, &start->upper, list[LOWER])
3598 list_add_tail(&edge->list[UPPER], &pending_edge);
3599
3600 while (!list_empty(&pending_edge)) {
3601 struct btrfs_backref_node *upper;
3602 struct btrfs_backref_node *lower;
3603
3604 edge = list_first_entry(&pending_edge,
3605 struct btrfs_backref_edge, list[UPPER]);
3606 list_del_init(&edge->list[UPPER]);
3607 upper = edge->node[UPPER];
3608 lower = edge->node[LOWER];
3609
3610 /* Parent is detached, no need to keep any edges */
3611 if (upper->detached) {
3612 list_del(&edge->list[LOWER]);
3613 btrfs_backref_free_edge(cache, edge);
3614
3615 /* Lower node is orphan, queue for cleanup */
3616 if (list_empty(&lower->upper))
3617 list_add(&lower->list, useless_node);
3618 continue;
3619 }
3620
3621 /*
3622 * All new nodes added in current build_backref_tree() haven't
3623 * been linked to the cache rb tree.
3624 * So if we have upper->rb_node populated, this means a cache
3625 * hit. We only need to link the edge, as @upper and all its
3626 * parents have already been linked.
3627 */
3628 if (!RB_EMPTY_NODE(&upper->rb_node)) {
3629 list_add_tail(&edge->list[UPPER], &upper->lower);
3630 continue;
3631 }
3632
3633 /* Sanity check, we shouldn't have any unchecked nodes */
3634 if (unlikely(!upper->checked)) {
3635 DEBUG_WARN("we should not have any unchecked nodes");
3636 return -EUCLEAN;
3637 }
3638
3639 rb_node = rb_simple_insert(&cache->rb_root, &upper->simple_node);
3640 if (unlikely(rb_node))
3641 btrfs_backref_panic(cache->fs_info, upper->bytenr, -EEXIST);
3642
3643 list_add_tail(&edge->list[UPPER], &upper->lower);
3644
3645 /*
3646 * Also queue all the parent edges of this uncached node
3647 * to finish the upper linkage
3648 */
3649 list_for_each_entry(edge, &upper->upper, list[LOWER])
3650 list_add_tail(&edge->list[UPPER], &pending_edge);
3651 }
3652 return 0;
3653 }
3654
btrfs_backref_error_cleanup(struct btrfs_backref_cache * cache,struct btrfs_backref_node * node)3655 void btrfs_backref_error_cleanup(struct btrfs_backref_cache *cache,
3656 struct btrfs_backref_node *node)
3657 {
3658 struct btrfs_backref_node *lower;
3659 struct btrfs_backref_node *upper;
3660 struct btrfs_backref_edge *edge;
3661
3662 while (!list_empty(&cache->useless_node)) {
3663 lower = list_first_entry(&cache->useless_node,
3664 struct btrfs_backref_node, list);
3665 list_del_init(&lower->list);
3666 }
3667 while (!list_empty(&cache->pending_edge)) {
3668 edge = list_first_entry(&cache->pending_edge,
3669 struct btrfs_backref_edge, list[UPPER]);
3670 list_del(&edge->list[UPPER]);
3671 list_del(&edge->list[LOWER]);
3672 lower = edge->node[LOWER];
3673 upper = edge->node[UPPER];
3674 btrfs_backref_free_edge(cache, edge);
3675
3676 /*
3677 * Lower is no longer linked to any upper backref nodes and
3678 * isn't in the cache, we can free it ourselves.
3679 */
3680 if (list_empty(&lower->upper) &&
3681 RB_EMPTY_NODE(&lower->rb_node))
3682 list_add(&lower->list, &cache->useless_node);
3683
3684 if (!RB_EMPTY_NODE(&upper->rb_node))
3685 continue;
3686
3687 /* Add this guy's upper edges to the list to process */
3688 list_for_each_entry(edge, &upper->upper, list[LOWER])
3689 list_add_tail(&edge->list[UPPER],
3690 &cache->pending_edge);
3691 if (list_empty(&upper->upper))
3692 list_add(&upper->list, &cache->useless_node);
3693 }
3694
3695 while (!list_empty(&cache->useless_node)) {
3696 lower = list_first_entry(&cache->useless_node,
3697 struct btrfs_backref_node, list);
3698 list_del_init(&lower->list);
3699 if (lower == node)
3700 node = NULL;
3701 btrfs_backref_drop_node(cache, lower);
3702 }
3703
3704 btrfs_backref_cleanup_node(cache, node);
3705 ASSERT(list_empty(&cache->useless_node) &&
3706 list_empty(&cache->pending_edge));
3707 }
3708