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1// SPDX-License-Identifier: GPL-2.0
2/*
3 * Copyright (C) 2011 Fujitsu. All rights reserved.
4 * Written by Miao Xie <miaox@cn.fujitsu.com>
5 */
6
7#include <linux/slab.h>
8#include <linux/iversion.h>
9#include "ctree.h"
10#include "fs.h"
11#include "messages.h"
12#include "misc.h"
13#include "delayed-inode.h"
14#include "disk-io.h"
15#include "transaction.h"
16#include "qgroup.h"
17#include "locking.h"
18#include "inode-item.h"
19#include "space-info.h"
20#include "accessors.h"
21#include "file-item.h"
22
23#define BTRFS_DELAYED_WRITEBACK 512
24#define BTRFS_DELAYED_BACKGROUND 128
25#define BTRFS_DELAYED_BATCH 16
26
27static struct kmem_cache *delayed_node_cache;
28
29int __init btrfs_delayed_inode_init(void)
30{
31 delayed_node_cache = kmem_cache_create("btrfs_delayed_node",
32 sizeof(struct btrfs_delayed_node),
33 0,
34 SLAB_MEM_SPREAD,
35 NULL);
36 if (!delayed_node_cache)
37 return -ENOMEM;
38 return 0;
39}
40
41void __cold btrfs_delayed_inode_exit(void)
42{
43 kmem_cache_destroy(delayed_node_cache);
44}
45
46static inline void btrfs_init_delayed_node(
47 struct btrfs_delayed_node *delayed_node,
48 struct btrfs_root *root, u64 inode_id)
49{
50 delayed_node->root = root;
51 delayed_node->inode_id = inode_id;
52 refcount_set(&delayed_node->refs, 0);
53 delayed_node->ins_root = RB_ROOT_CACHED;
54 delayed_node->del_root = RB_ROOT_CACHED;
55 mutex_init(&delayed_node->mutex);
56 INIT_LIST_HEAD(&delayed_node->n_list);
57 INIT_LIST_HEAD(&delayed_node->p_list);
58}
59
60static struct btrfs_delayed_node *btrfs_get_delayed_node(
61 struct btrfs_inode *btrfs_inode)
62{
63 struct btrfs_root *root = btrfs_inode->root;
64 u64 ino = btrfs_ino(btrfs_inode);
65 struct btrfs_delayed_node *node;
66
67 node = READ_ONCE(btrfs_inode->delayed_node);
68 if (node) {
69 refcount_inc(&node->refs);
70 return node;
71 }
72
73 spin_lock(&root->inode_lock);
74 node = radix_tree_lookup(&root->delayed_nodes_tree, ino);
75
76 if (node) {
77 if (btrfs_inode->delayed_node) {
78 refcount_inc(&node->refs); /* can be accessed */
79 BUG_ON(btrfs_inode->delayed_node != node);
80 spin_unlock(&root->inode_lock);
81 return node;
82 }
83
84 /*
85 * It's possible that we're racing into the middle of removing
86 * this node from the radix tree. In this case, the refcount
87 * was zero and it should never go back to one. Just return
88 * NULL like it was never in the radix at all; our release
89 * function is in the process of removing it.
90 *
91 * Some implementations of refcount_inc refuse to bump the
92 * refcount once it has hit zero. If we don't do this dance
93 * here, refcount_inc() may decide to just WARN_ONCE() instead
94 * of actually bumping the refcount.
95 *
96 * If this node is properly in the radix, we want to bump the
97 * refcount twice, once for the inode and once for this get
98 * operation.
99 */
100 if (refcount_inc_not_zero(&node->refs)) {
101 refcount_inc(&node->refs);
102 btrfs_inode->delayed_node = node;
103 } else {
104 node = NULL;
105 }
106
107 spin_unlock(&root->inode_lock);
108 return node;
109 }
110 spin_unlock(&root->inode_lock);
111
112 return NULL;
113}
114
115/* Will return either the node or PTR_ERR(-ENOMEM) */
116static struct btrfs_delayed_node *btrfs_get_or_create_delayed_node(
117 struct btrfs_inode *btrfs_inode)
118{
119 struct btrfs_delayed_node *node;
120 struct btrfs_root *root = btrfs_inode->root;
121 u64 ino = btrfs_ino(btrfs_inode);
122 int ret;
123
124again:
125 node = btrfs_get_delayed_node(btrfs_inode);
126 if (node)
127 return node;
128
129 node = kmem_cache_zalloc(delayed_node_cache, GFP_NOFS);
130 if (!node)
131 return ERR_PTR(-ENOMEM);
132 btrfs_init_delayed_node(node, root, ino);
133
134 /* cached in the btrfs inode and can be accessed */
135 refcount_set(&node->refs, 2);
136
137 ret = radix_tree_preload(GFP_NOFS);
138 if (ret) {
139 kmem_cache_free(delayed_node_cache, node);
140 return ERR_PTR(ret);
141 }
142
143 spin_lock(&root->inode_lock);
144 ret = radix_tree_insert(&root->delayed_nodes_tree, ino, node);
145 if (ret == -EEXIST) {
146 spin_unlock(&root->inode_lock);
147 kmem_cache_free(delayed_node_cache, node);
148 radix_tree_preload_end();
149 goto again;
150 }
151 btrfs_inode->delayed_node = node;
152 spin_unlock(&root->inode_lock);
153 radix_tree_preload_end();
154
155 return node;
156}
157
158/*
159 * Call it when holding delayed_node->mutex
160 *
161 * If mod = 1, add this node into the prepared list.
162 */
163static void btrfs_queue_delayed_node(struct btrfs_delayed_root *root,
164 struct btrfs_delayed_node *node,
165 int mod)
166{
167 spin_lock(&root->lock);
168 if (test_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags)) {
169 if (!list_empty(&node->p_list))
170 list_move_tail(&node->p_list, &root->prepare_list);
171 else if (mod)
172 list_add_tail(&node->p_list, &root->prepare_list);
173 } else {
174 list_add_tail(&node->n_list, &root->node_list);
175 list_add_tail(&node->p_list, &root->prepare_list);
176 refcount_inc(&node->refs); /* inserted into list */
177 root->nodes++;
178 set_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags);
179 }
180 spin_unlock(&root->lock);
181}
182
183/* Call it when holding delayed_node->mutex */
184static void btrfs_dequeue_delayed_node(struct btrfs_delayed_root *root,
185 struct btrfs_delayed_node *node)
186{
187 spin_lock(&root->lock);
188 if (test_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags)) {
189 root->nodes--;
190 refcount_dec(&node->refs); /* not in the list */
191 list_del_init(&node->n_list);
192 if (!list_empty(&node->p_list))
193 list_del_init(&node->p_list);
194 clear_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags);
195 }
196 spin_unlock(&root->lock);
197}
198
199static struct btrfs_delayed_node *btrfs_first_delayed_node(
200 struct btrfs_delayed_root *delayed_root)
201{
202 struct list_head *p;
203 struct btrfs_delayed_node *node = NULL;
204
205 spin_lock(&delayed_root->lock);
206 if (list_empty(&delayed_root->node_list))
207 goto out;
208
209 p = delayed_root->node_list.next;
210 node = list_entry(p, struct btrfs_delayed_node, n_list);
211 refcount_inc(&node->refs);
212out:
213 spin_unlock(&delayed_root->lock);
214
215 return node;
216}
217
218static struct btrfs_delayed_node *btrfs_next_delayed_node(
219 struct btrfs_delayed_node *node)
220{
221 struct btrfs_delayed_root *delayed_root;
222 struct list_head *p;
223 struct btrfs_delayed_node *next = NULL;
224
225 delayed_root = node->root->fs_info->delayed_root;
226 spin_lock(&delayed_root->lock);
227 if (!test_bit(BTRFS_DELAYED_NODE_IN_LIST, &node->flags)) {
228 /* not in the list */
229 if (list_empty(&delayed_root->node_list))
230 goto out;
231 p = delayed_root->node_list.next;
232 } else if (list_is_last(&node->n_list, &delayed_root->node_list))
233 goto out;
234 else
235 p = node->n_list.next;
236
237 next = list_entry(p, struct btrfs_delayed_node, n_list);
238 refcount_inc(&next->refs);
239out:
240 spin_unlock(&delayed_root->lock);
241
242 return next;
243}
244
245static void __btrfs_release_delayed_node(
246 struct btrfs_delayed_node *delayed_node,
247 int mod)
248{
249 struct btrfs_delayed_root *delayed_root;
250
251 if (!delayed_node)
252 return;
253
254 delayed_root = delayed_node->root->fs_info->delayed_root;
255
256 mutex_lock(&delayed_node->mutex);
257 if (delayed_node->count)
258 btrfs_queue_delayed_node(delayed_root, delayed_node, mod);
259 else
260 btrfs_dequeue_delayed_node(delayed_root, delayed_node);
261 mutex_unlock(&delayed_node->mutex);
262
263 if (refcount_dec_and_test(&delayed_node->refs)) {
264 struct btrfs_root *root = delayed_node->root;
265
266 spin_lock(&root->inode_lock);
267 /*
268 * Once our refcount goes to zero, nobody is allowed to bump it
269 * back up. We can delete it now.
270 */
271 ASSERT(refcount_read(&delayed_node->refs) == 0);
272 radix_tree_delete(&root->delayed_nodes_tree,
273 delayed_node->inode_id);
274 spin_unlock(&root->inode_lock);
275 kmem_cache_free(delayed_node_cache, delayed_node);
276 }
277}
278
279static inline void btrfs_release_delayed_node(struct btrfs_delayed_node *node)
280{
281 __btrfs_release_delayed_node(node, 0);
282}
283
284static struct btrfs_delayed_node *btrfs_first_prepared_delayed_node(
285 struct btrfs_delayed_root *delayed_root)
286{
287 struct list_head *p;
288 struct btrfs_delayed_node *node = NULL;
289
290 spin_lock(&delayed_root->lock);
291 if (list_empty(&delayed_root->prepare_list))
292 goto out;
293
294 p = delayed_root->prepare_list.next;
295 list_del_init(p);
296 node = list_entry(p, struct btrfs_delayed_node, p_list);
297 refcount_inc(&node->refs);
298out:
299 spin_unlock(&delayed_root->lock);
300
301 return node;
302}
303
304static inline void btrfs_release_prepared_delayed_node(
305 struct btrfs_delayed_node *node)
306{
307 __btrfs_release_delayed_node(node, 1);
308}
309
310static struct btrfs_delayed_item *btrfs_alloc_delayed_item(u16 data_len,
311 struct btrfs_delayed_node *node,
312 enum btrfs_delayed_item_type type)
313{
314 struct btrfs_delayed_item *item;
315
316 item = kmalloc(sizeof(*item) + data_len, GFP_NOFS);
317 if (item) {
318 item->data_len = data_len;
319 item->type = type;
320 item->bytes_reserved = 0;
321 item->delayed_node = node;
322 RB_CLEAR_NODE(&item->rb_node);
323 INIT_LIST_HEAD(&item->log_list);
324 item->logged = false;
325 refcount_set(&item->refs, 1);
326 }
327 return item;
328}
329
330/*
331 * __btrfs_lookup_delayed_item - look up the delayed item by key
332 * @delayed_node: pointer to the delayed node
333 * @index: the dir index value to lookup (offset of a dir index key)
334 *
335 * Note: if we don't find the right item, we will return the prev item and
336 * the next item.
337 */
338static struct btrfs_delayed_item *__btrfs_lookup_delayed_item(
339 struct rb_root *root,
340 u64 index)
341{
342 struct rb_node *node = root->rb_node;
343 struct btrfs_delayed_item *delayed_item = NULL;
344
345 while (node) {
346 delayed_item = rb_entry(node, struct btrfs_delayed_item,
347 rb_node);
348 if (delayed_item->index < index)
349 node = node->rb_right;
350 else if (delayed_item->index > index)
351 node = node->rb_left;
352 else
353 return delayed_item;
354 }
355
356 return NULL;
357}
358
359static int __btrfs_add_delayed_item(struct btrfs_delayed_node *delayed_node,
360 struct btrfs_delayed_item *ins)
361{
362 struct rb_node **p, *node;
363 struct rb_node *parent_node = NULL;
364 struct rb_root_cached *root;
365 struct btrfs_delayed_item *item;
366 bool leftmost = true;
367
368 if (ins->type == BTRFS_DELAYED_INSERTION_ITEM)
369 root = &delayed_node->ins_root;
370 else
371 root = &delayed_node->del_root;
372
373 p = &root->rb_root.rb_node;
374 node = &ins->rb_node;
375
376 while (*p) {
377 parent_node = *p;
378 item = rb_entry(parent_node, struct btrfs_delayed_item,
379 rb_node);
380
381 if (item->index < ins->index) {
382 p = &(*p)->rb_right;
383 leftmost = false;
384 } else if (item->index > ins->index) {
385 p = &(*p)->rb_left;
386 } else {
387 return -EEXIST;
388 }
389 }
390
391 rb_link_node(node, parent_node, p);
392 rb_insert_color_cached(node, root, leftmost);
393
394 if (ins->type == BTRFS_DELAYED_INSERTION_ITEM &&
395 ins->index >= delayed_node->index_cnt)
396 delayed_node->index_cnt = ins->index + 1;
397
398 delayed_node->count++;
399 atomic_inc(&delayed_node->root->fs_info->delayed_root->items);
400 return 0;
401}
402
403static void finish_one_item(struct btrfs_delayed_root *delayed_root)
404{
405 int seq = atomic_inc_return(&delayed_root->items_seq);
406
407 /* atomic_dec_return implies a barrier */
408 if ((atomic_dec_return(&delayed_root->items) <
409 BTRFS_DELAYED_BACKGROUND || seq % BTRFS_DELAYED_BATCH == 0))
410 cond_wake_up_nomb(&delayed_root->wait);
411}
412
413static void __btrfs_remove_delayed_item(struct btrfs_delayed_item *delayed_item)
414{
415 struct rb_root_cached *root;
416 struct btrfs_delayed_root *delayed_root;
417
418 /* Not inserted, ignore it. */
419 if (RB_EMPTY_NODE(&delayed_item->rb_node))
420 return;
421
422 delayed_root = delayed_item->delayed_node->root->fs_info->delayed_root;
423
424 BUG_ON(!delayed_root);
425
426 if (delayed_item->type == BTRFS_DELAYED_INSERTION_ITEM)
427 root = &delayed_item->delayed_node->ins_root;
428 else
429 root = &delayed_item->delayed_node->del_root;
430
431 rb_erase_cached(&delayed_item->rb_node, root);
432 RB_CLEAR_NODE(&delayed_item->rb_node);
433 delayed_item->delayed_node->count--;
434
435 finish_one_item(delayed_root);
436}
437
438static void btrfs_release_delayed_item(struct btrfs_delayed_item *item)
439{
440 if (item) {
441 __btrfs_remove_delayed_item(item);
442 if (refcount_dec_and_test(&item->refs))
443 kfree(item);
444 }
445}
446
447static struct btrfs_delayed_item *__btrfs_first_delayed_insertion_item(
448 struct btrfs_delayed_node *delayed_node)
449{
450 struct rb_node *p;
451 struct btrfs_delayed_item *item = NULL;
452
453 p = rb_first_cached(&delayed_node->ins_root);
454 if (p)
455 item = rb_entry(p, struct btrfs_delayed_item, rb_node);
456
457 return item;
458}
459
460static struct btrfs_delayed_item *__btrfs_first_delayed_deletion_item(
461 struct btrfs_delayed_node *delayed_node)
462{
463 struct rb_node *p;
464 struct btrfs_delayed_item *item = NULL;
465
466 p = rb_first_cached(&delayed_node->del_root);
467 if (p)
468 item = rb_entry(p, struct btrfs_delayed_item, rb_node);
469
470 return item;
471}
472
473static struct btrfs_delayed_item *__btrfs_next_delayed_item(
474 struct btrfs_delayed_item *item)
475{
476 struct rb_node *p;
477 struct btrfs_delayed_item *next = NULL;
478
479 p = rb_next(&item->rb_node);
480 if (p)
481 next = rb_entry(p, struct btrfs_delayed_item, rb_node);
482
483 return next;
484}
485
486static int btrfs_delayed_item_reserve_metadata(struct btrfs_trans_handle *trans,
487 struct btrfs_delayed_item *item)
488{
489 struct btrfs_block_rsv *src_rsv;
490 struct btrfs_block_rsv *dst_rsv;
491 struct btrfs_fs_info *fs_info = trans->fs_info;
492 u64 num_bytes;
493 int ret;
494
495 if (!trans->bytes_reserved)
496 return 0;
497
498 src_rsv = trans->block_rsv;
499 dst_rsv = &fs_info->delayed_block_rsv;
500
501 num_bytes = btrfs_calc_insert_metadata_size(fs_info, 1);
502
503 /*
504 * Here we migrate space rsv from transaction rsv, since have already
505 * reserved space when starting a transaction. So no need to reserve
506 * qgroup space here.
507 */
508 ret = btrfs_block_rsv_migrate(src_rsv, dst_rsv, num_bytes, true);
509 if (!ret) {
510 trace_btrfs_space_reservation(fs_info, "delayed_item",
511 item->delayed_node->inode_id,
512 num_bytes, 1);
513 /*
514 * For insertions we track reserved metadata space by accounting
515 * for the number of leaves that will be used, based on the delayed
516 * node's index_items_size field.
517 */
518 if (item->type == BTRFS_DELAYED_DELETION_ITEM)
519 item->bytes_reserved = num_bytes;
520 }
521
522 return ret;
523}
524
525static void btrfs_delayed_item_release_metadata(struct btrfs_root *root,
526 struct btrfs_delayed_item *item)
527{
528 struct btrfs_block_rsv *rsv;
529 struct btrfs_fs_info *fs_info = root->fs_info;
530
531 if (!item->bytes_reserved)
532 return;
533
534 rsv = &fs_info->delayed_block_rsv;
535 /*
536 * Check btrfs_delayed_item_reserve_metadata() to see why we don't need
537 * to release/reserve qgroup space.
538 */
539 trace_btrfs_space_reservation(fs_info, "delayed_item",
540 item->delayed_node->inode_id,
541 item->bytes_reserved, 0);
542 btrfs_block_rsv_release(fs_info, rsv, item->bytes_reserved, NULL);
543}
544
545static void btrfs_delayed_item_release_leaves(struct btrfs_delayed_node *node,
546 unsigned int num_leaves)
547{
548 struct btrfs_fs_info *fs_info = node->root->fs_info;
549 const u64 bytes = btrfs_calc_insert_metadata_size(fs_info, num_leaves);
550
551 /* There are no space reservations during log replay, bail out. */
552 if (test_bit(BTRFS_FS_LOG_RECOVERING, &fs_info->flags))
553 return;
554
555 trace_btrfs_space_reservation(fs_info, "delayed_item", node->inode_id,
556 bytes, 0);
557 btrfs_block_rsv_release(fs_info, &fs_info->delayed_block_rsv, bytes, NULL);
558}
559
560static int btrfs_delayed_inode_reserve_metadata(
561 struct btrfs_trans_handle *trans,
562 struct btrfs_root *root,
563 struct btrfs_delayed_node *node)
564{
565 struct btrfs_fs_info *fs_info = root->fs_info;
566 struct btrfs_block_rsv *src_rsv;
567 struct btrfs_block_rsv *dst_rsv;
568 u64 num_bytes;
569 int ret;
570
571 src_rsv = trans->block_rsv;
572 dst_rsv = &fs_info->delayed_block_rsv;
573
574 num_bytes = btrfs_calc_metadata_size(fs_info, 1);
575
576 /*
577 * btrfs_dirty_inode will update the inode under btrfs_join_transaction
578 * which doesn't reserve space for speed. This is a problem since we
579 * still need to reserve space for this update, so try to reserve the
580 * space.
581 *
582 * Now if src_rsv == delalloc_block_rsv we'll let it just steal since
583 * we always reserve enough to update the inode item.
584 */
585 if (!src_rsv || (!trans->bytes_reserved &&
586 src_rsv->type != BTRFS_BLOCK_RSV_DELALLOC)) {
587 ret = btrfs_qgroup_reserve_meta(root, num_bytes,
588 BTRFS_QGROUP_RSV_META_PREALLOC, true);
589 if (ret < 0)
590 return ret;
591 ret = btrfs_block_rsv_add(fs_info, dst_rsv, num_bytes,
592 BTRFS_RESERVE_NO_FLUSH);
593 /* NO_FLUSH could only fail with -ENOSPC */
594 ASSERT(ret == 0 || ret == -ENOSPC);
595 if (ret)
596 btrfs_qgroup_free_meta_prealloc(root, num_bytes);
597 } else {
598 ret = btrfs_block_rsv_migrate(src_rsv, dst_rsv, num_bytes, true);
599 }
600
601 if (!ret) {
602 trace_btrfs_space_reservation(fs_info, "delayed_inode",
603 node->inode_id, num_bytes, 1);
604 node->bytes_reserved = num_bytes;
605 }
606
607 return ret;
608}
609
610static void btrfs_delayed_inode_release_metadata(struct btrfs_fs_info *fs_info,
611 struct btrfs_delayed_node *node,
612 bool qgroup_free)
613{
614 struct btrfs_block_rsv *rsv;
615
616 if (!node->bytes_reserved)
617 return;
618
619 rsv = &fs_info->delayed_block_rsv;
620 trace_btrfs_space_reservation(fs_info, "delayed_inode",
621 node->inode_id, node->bytes_reserved, 0);
622 btrfs_block_rsv_release(fs_info, rsv, node->bytes_reserved, NULL);
623 if (qgroup_free)
624 btrfs_qgroup_free_meta_prealloc(node->root,
625 node->bytes_reserved);
626 else
627 btrfs_qgroup_convert_reserved_meta(node->root,
628 node->bytes_reserved);
629 node->bytes_reserved = 0;
630}
631
632/*
633 * Insert a single delayed item or a batch of delayed items, as many as possible
634 * that fit in a leaf. The delayed items (dir index keys) are sorted by their key
635 * in the rbtree, and if there's a gap between two consecutive dir index items,
636 * then it means at some point we had delayed dir indexes to add but they got
637 * removed (by btrfs_delete_delayed_dir_index()) before we attempted to flush them
638 * into the subvolume tree. Dir index keys also have their offsets coming from a
639 * monotonically increasing counter, so we can't get new keys with an offset that
640 * fits within a gap between delayed dir index items.
641 */
642static int btrfs_insert_delayed_item(struct btrfs_trans_handle *trans,
643 struct btrfs_root *root,
644 struct btrfs_path *path,
645 struct btrfs_delayed_item *first_item)
646{
647 struct btrfs_fs_info *fs_info = root->fs_info;
648 struct btrfs_delayed_node *node = first_item->delayed_node;
649 LIST_HEAD(item_list);
650 struct btrfs_delayed_item *curr;
651 struct btrfs_delayed_item *next;
652 const int max_size = BTRFS_LEAF_DATA_SIZE(fs_info);
653 struct btrfs_item_batch batch;
654 struct btrfs_key first_key;
655 const u32 first_data_size = first_item->data_len;
656 int total_size;
657 char *ins_data = NULL;
658 int ret;
659 bool continuous_keys_only = false;
660
661 lockdep_assert_held(&node->mutex);
662
663 /*
664 * During normal operation the delayed index offset is continuously
665 * increasing, so we can batch insert all items as there will not be any
666 * overlapping keys in the tree.
667 *
668 * The exception to this is log replay, where we may have interleaved
669 * offsets in the tree, so our batch needs to be continuous keys only in
670 * order to ensure we do not end up with out of order items in our leaf.
671 */
672 if (test_bit(BTRFS_FS_LOG_RECOVERING, &fs_info->flags))
673 continuous_keys_only = true;
674
675 /*
676 * For delayed items to insert, we track reserved metadata bytes based
677 * on the number of leaves that we will use.
678 * See btrfs_insert_delayed_dir_index() and
679 * btrfs_delayed_item_reserve_metadata()).
680 */
681 ASSERT(first_item->bytes_reserved == 0);
682
683 list_add_tail(&first_item->tree_list, &item_list);
684 batch.total_data_size = first_data_size;
685 batch.nr = 1;
686 total_size = first_data_size + sizeof(struct btrfs_item);
687 curr = first_item;
688
689 while (true) {
690 int next_size;
691
692 next = __btrfs_next_delayed_item(curr);
693 if (!next)
694 break;
695
696 /*
697 * We cannot allow gaps in the key space if we're doing log
698 * replay.
699 */
700 if (continuous_keys_only && (next->index != curr->index + 1))
701 break;
702
703 ASSERT(next->bytes_reserved == 0);
704
705 next_size = next->data_len + sizeof(struct btrfs_item);
706 if (total_size + next_size > max_size)
707 break;
708
709 list_add_tail(&next->tree_list, &item_list);
710 batch.nr++;
711 total_size += next_size;
712 batch.total_data_size += next->data_len;
713 curr = next;
714 }
715
716 if (batch.nr == 1) {
717 first_key.objectid = node->inode_id;
718 first_key.type = BTRFS_DIR_INDEX_KEY;
719 first_key.offset = first_item->index;
720 batch.keys = &first_key;
721 batch.data_sizes = &first_data_size;
722 } else {
723 struct btrfs_key *ins_keys;
724 u32 *ins_sizes;
725 int i = 0;
726
727 ins_data = kmalloc(batch.nr * sizeof(u32) +
728 batch.nr * sizeof(struct btrfs_key), GFP_NOFS);
729 if (!ins_data) {
730 ret = -ENOMEM;
731 goto out;
732 }
733 ins_sizes = (u32 *)ins_data;
734 ins_keys = (struct btrfs_key *)(ins_data + batch.nr * sizeof(u32));
735 batch.keys = ins_keys;
736 batch.data_sizes = ins_sizes;
737 list_for_each_entry(curr, &item_list, tree_list) {
738 ins_keys[i].objectid = node->inode_id;
739 ins_keys[i].type = BTRFS_DIR_INDEX_KEY;
740 ins_keys[i].offset = curr->index;
741 ins_sizes[i] = curr->data_len;
742 i++;
743 }
744 }
745
746 ret = btrfs_insert_empty_items(trans, root, path, &batch);
747 if (ret)
748 goto out;
749
750 list_for_each_entry(curr, &item_list, tree_list) {
751 char *data_ptr;
752
753 data_ptr = btrfs_item_ptr(path->nodes[0], path->slots[0], char);
754 write_extent_buffer(path->nodes[0], &curr->data,
755 (unsigned long)data_ptr, curr->data_len);
756 path->slots[0]++;
757 }
758
759 /*
760 * Now release our path before releasing the delayed items and their
761 * metadata reservations, so that we don't block other tasks for more
762 * time than needed.
763 */
764 btrfs_release_path(path);
765
766 ASSERT(node->index_item_leaves > 0);
767
768 /*
769 * For normal operations we will batch an entire leaf's worth of delayed
770 * items, so if there are more items to process we can decrement
771 * index_item_leaves by 1 as we inserted 1 leaf's worth of items.
772 *
773 * However for log replay we may not have inserted an entire leaf's
774 * worth of items, we may have not had continuous items, so decrementing
775 * here would mess up the index_item_leaves accounting. For this case
776 * only clean up the accounting when there are no items left.
777 */
778 if (next && !continuous_keys_only) {
779 /*
780 * We inserted one batch of items into a leaf a there are more
781 * items to flush in a future batch, now release one unit of
782 * metadata space from the delayed block reserve, corresponding
783 * the leaf we just flushed to.
784 */
785 btrfs_delayed_item_release_leaves(node, 1);
786 node->index_item_leaves--;
787 } else if (!next) {
788 /*
789 * There are no more items to insert. We can have a number of
790 * reserved leaves > 1 here - this happens when many dir index
791 * items are added and then removed before they are flushed (file
792 * names with a very short life, never span a transaction). So
793 * release all remaining leaves.
794 */
795 btrfs_delayed_item_release_leaves(node, node->index_item_leaves);
796 node->index_item_leaves = 0;
797 }
798
799 list_for_each_entry_safe(curr, next, &item_list, tree_list) {
800 list_del(&curr->tree_list);
801 btrfs_release_delayed_item(curr);
802 }
803out:
804 kfree(ins_data);
805 return ret;
806}
807
808static int btrfs_insert_delayed_items(struct btrfs_trans_handle *trans,
809 struct btrfs_path *path,
810 struct btrfs_root *root,
811 struct btrfs_delayed_node *node)
812{
813 int ret = 0;
814
815 while (ret == 0) {
816 struct btrfs_delayed_item *curr;
817
818 mutex_lock(&node->mutex);
819 curr = __btrfs_first_delayed_insertion_item(node);
820 if (!curr) {
821 mutex_unlock(&node->mutex);
822 break;
823 }
824 ret = btrfs_insert_delayed_item(trans, root, path, curr);
825 mutex_unlock(&node->mutex);
826 }
827
828 return ret;
829}
830
831static int btrfs_batch_delete_items(struct btrfs_trans_handle *trans,
832 struct btrfs_root *root,
833 struct btrfs_path *path,
834 struct btrfs_delayed_item *item)
835{
836 const u64 ino = item->delayed_node->inode_id;
837 struct btrfs_fs_info *fs_info = root->fs_info;
838 struct btrfs_delayed_item *curr, *next;
839 struct extent_buffer *leaf = path->nodes[0];
840 LIST_HEAD(batch_list);
841 int nitems, slot, last_slot;
842 int ret;
843 u64 total_reserved_size = item->bytes_reserved;
844
845 ASSERT(leaf != NULL);
846
847 slot = path->slots[0];
848 last_slot = btrfs_header_nritems(leaf) - 1;
849 /*
850 * Our caller always gives us a path pointing to an existing item, so
851 * this can not happen.
852 */
853 ASSERT(slot <= last_slot);
854 if (WARN_ON(slot > last_slot))
855 return -ENOENT;
856
857 nitems = 1;
858 curr = item;
859 list_add_tail(&curr->tree_list, &batch_list);
860
861 /*
862 * Keep checking if the next delayed item matches the next item in the
863 * leaf - if so, we can add it to the batch of items to delete from the
864 * leaf.
865 */
866 while (slot < last_slot) {
867 struct btrfs_key key;
868
869 next = __btrfs_next_delayed_item(curr);
870 if (!next)
871 break;
872
873 slot++;
874 btrfs_item_key_to_cpu(leaf, &key, slot);
875 if (key.objectid != ino ||
876 key.type != BTRFS_DIR_INDEX_KEY ||
877 key.offset != next->index)
878 break;
879 nitems++;
880 curr = next;
881 list_add_tail(&curr->tree_list, &batch_list);
882 total_reserved_size += curr->bytes_reserved;
883 }
884
885 ret = btrfs_del_items(trans, root, path, path->slots[0], nitems);
886 if (ret)
887 return ret;
888
889 /* In case of BTRFS_FS_LOG_RECOVERING items won't have reserved space */
890 if (total_reserved_size > 0) {
891 /*
892 * Check btrfs_delayed_item_reserve_metadata() to see why we
893 * don't need to release/reserve qgroup space.
894 */
895 trace_btrfs_space_reservation(fs_info, "delayed_item", ino,
896 total_reserved_size, 0);
897 btrfs_block_rsv_release(fs_info, &fs_info->delayed_block_rsv,
898 total_reserved_size, NULL);
899 }
900
901 list_for_each_entry_safe(curr, next, &batch_list, tree_list) {
902 list_del(&curr->tree_list);
903 btrfs_release_delayed_item(curr);
904 }
905
906 return 0;
907}
908
909static int btrfs_delete_delayed_items(struct btrfs_trans_handle *trans,
910 struct btrfs_path *path,
911 struct btrfs_root *root,
912 struct btrfs_delayed_node *node)
913{
914 struct btrfs_key key;
915 int ret = 0;
916
917 key.objectid = node->inode_id;
918 key.type = BTRFS_DIR_INDEX_KEY;
919
920 while (ret == 0) {
921 struct btrfs_delayed_item *item;
922
923 mutex_lock(&node->mutex);
924 item = __btrfs_first_delayed_deletion_item(node);
925 if (!item) {
926 mutex_unlock(&node->mutex);
927 break;
928 }
929
930 key.offset = item->index;
931 ret = btrfs_search_slot(trans, root, &key, path, -1, 1);
932 if (ret > 0) {
933 /*
934 * There's no matching item in the leaf. This means we
935 * have already deleted this item in a past run of the
936 * delayed items. We ignore errors when running delayed
937 * items from an async context, through a work queue job
938 * running btrfs_async_run_delayed_root(), and don't
939 * release delayed items that failed to complete. This
940 * is because we will retry later, and at transaction
941 * commit time we always run delayed items and will
942 * then deal with errors if they fail to run again.
943 *
944 * So just release delayed items for which we can't find
945 * an item in the tree, and move to the next item.
946 */
947 btrfs_release_path(path);
948 btrfs_release_delayed_item(item);
949 ret = 0;
950 } else if (ret == 0) {
951 ret = btrfs_batch_delete_items(trans, root, path, item);
952 btrfs_release_path(path);
953 }
954
955 /*
956 * We unlock and relock on each iteration, this is to prevent
957 * blocking other tasks for too long while we are being run from
958 * the async context (work queue job). Those tasks are typically
959 * running system calls like creat/mkdir/rename/unlink/etc which
960 * need to add delayed items to this delayed node.
961 */
962 mutex_unlock(&node->mutex);
963 }
964
965 return ret;
966}
967
968static void btrfs_release_delayed_inode(struct btrfs_delayed_node *delayed_node)
969{
970 struct btrfs_delayed_root *delayed_root;
971
972 if (delayed_node &&
973 test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
974 BUG_ON(!delayed_node->root);
975 clear_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags);
976 delayed_node->count--;
977
978 delayed_root = delayed_node->root->fs_info->delayed_root;
979 finish_one_item(delayed_root);
980 }
981}
982
983static void btrfs_release_delayed_iref(struct btrfs_delayed_node *delayed_node)
984{
985
986 if (test_and_clear_bit(BTRFS_DELAYED_NODE_DEL_IREF, &delayed_node->flags)) {
987 struct btrfs_delayed_root *delayed_root;
988
989 ASSERT(delayed_node->root);
990 delayed_node->count--;
991
992 delayed_root = delayed_node->root->fs_info->delayed_root;
993 finish_one_item(delayed_root);
994 }
995}
996
997static int __btrfs_update_delayed_inode(struct btrfs_trans_handle *trans,
998 struct btrfs_root *root,
999 struct btrfs_path *path,
1000 struct btrfs_delayed_node *node)
1001{
1002 struct btrfs_fs_info *fs_info = root->fs_info;
1003 struct btrfs_key key;
1004 struct btrfs_inode_item *inode_item;
1005 struct extent_buffer *leaf;
1006 int mod;
1007 int ret;
1008
1009 key.objectid = node->inode_id;
1010 key.type = BTRFS_INODE_ITEM_KEY;
1011 key.offset = 0;
1012
1013 if (test_bit(BTRFS_DELAYED_NODE_DEL_IREF, &node->flags))
1014 mod = -1;
1015 else
1016 mod = 1;
1017
1018 ret = btrfs_lookup_inode(trans, root, path, &key, mod);
1019 if (ret > 0)
1020 ret = -ENOENT;
1021 if (ret < 0)
1022 goto out;
1023
1024 leaf = path->nodes[0];
1025 inode_item = btrfs_item_ptr(leaf, path->slots[0],
1026 struct btrfs_inode_item);
1027 write_extent_buffer(leaf, &node->inode_item, (unsigned long)inode_item,
1028 sizeof(struct btrfs_inode_item));
1029 btrfs_mark_buffer_dirty(leaf);
1030
1031 if (!test_bit(BTRFS_DELAYED_NODE_DEL_IREF, &node->flags))
1032 goto out;
1033
1034 path->slots[0]++;
1035 if (path->slots[0] >= btrfs_header_nritems(leaf))
1036 goto search;
1037again:
1038 btrfs_item_key_to_cpu(leaf, &key, path->slots[0]);
1039 if (key.objectid != node->inode_id)
1040 goto out;
1041
1042 if (key.type != BTRFS_INODE_REF_KEY &&
1043 key.type != BTRFS_INODE_EXTREF_KEY)
1044 goto out;
1045
1046 /*
1047 * Delayed iref deletion is for the inode who has only one link,
1048 * so there is only one iref. The case that several irefs are
1049 * in the same item doesn't exist.
1050 */
1051 btrfs_del_item(trans, root, path);
1052out:
1053 btrfs_release_delayed_iref(node);
1054 btrfs_release_path(path);
1055err_out:
1056 btrfs_delayed_inode_release_metadata(fs_info, node, (ret < 0));
1057 btrfs_release_delayed_inode(node);
1058
1059 /*
1060 * If we fail to update the delayed inode we need to abort the
1061 * transaction, because we could leave the inode with the improper
1062 * counts behind.
1063 */
1064 if (ret && ret != -ENOENT)
1065 btrfs_abort_transaction(trans, ret);
1066
1067 return ret;
1068
1069search:
1070 btrfs_release_path(path);
1071
1072 key.type = BTRFS_INODE_EXTREF_KEY;
1073 key.offset = -1;
1074
1075 ret = btrfs_search_slot(trans, root, &key, path, -1, 1);
1076 if (ret < 0)
1077 goto err_out;
1078 ASSERT(ret);
1079
1080 ret = 0;
1081 leaf = path->nodes[0];
1082 path->slots[0]--;
1083 goto again;
1084}
1085
1086static inline int btrfs_update_delayed_inode(struct btrfs_trans_handle *trans,
1087 struct btrfs_root *root,
1088 struct btrfs_path *path,
1089 struct btrfs_delayed_node *node)
1090{
1091 int ret;
1092
1093 mutex_lock(&node->mutex);
1094 if (!test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &node->flags)) {
1095 mutex_unlock(&node->mutex);
1096 return 0;
1097 }
1098
1099 ret = __btrfs_update_delayed_inode(trans, root, path, node);
1100 mutex_unlock(&node->mutex);
1101 return ret;
1102}
1103
1104static inline int
1105__btrfs_commit_inode_delayed_items(struct btrfs_trans_handle *trans,
1106 struct btrfs_path *path,
1107 struct btrfs_delayed_node *node)
1108{
1109 int ret;
1110
1111 ret = btrfs_insert_delayed_items(trans, path, node->root, node);
1112 if (ret)
1113 return ret;
1114
1115 ret = btrfs_delete_delayed_items(trans, path, node->root, node);
1116 if (ret)
1117 return ret;
1118
1119 ret = btrfs_update_delayed_inode(trans, node->root, path, node);
1120 return ret;
1121}
1122
1123/*
1124 * Called when committing the transaction.
1125 * Returns 0 on success.
1126 * Returns < 0 on error and returns with an aborted transaction with any
1127 * outstanding delayed items cleaned up.
1128 */
1129static int __btrfs_run_delayed_items(struct btrfs_trans_handle *trans, int nr)
1130{
1131 struct btrfs_fs_info *fs_info = trans->fs_info;
1132 struct btrfs_delayed_root *delayed_root;
1133 struct btrfs_delayed_node *curr_node, *prev_node;
1134 struct btrfs_path *path;
1135 struct btrfs_block_rsv *block_rsv;
1136 int ret = 0;
1137 bool count = (nr > 0);
1138
1139 if (TRANS_ABORTED(trans))
1140 return -EIO;
1141
1142 path = btrfs_alloc_path();
1143 if (!path)
1144 return -ENOMEM;
1145
1146 block_rsv = trans->block_rsv;
1147 trans->block_rsv = &fs_info->delayed_block_rsv;
1148
1149 delayed_root = fs_info->delayed_root;
1150
1151 curr_node = btrfs_first_delayed_node(delayed_root);
1152 while (curr_node && (!count || nr--)) {
1153 ret = __btrfs_commit_inode_delayed_items(trans, path,
1154 curr_node);
1155 if (ret) {
1156 btrfs_release_delayed_node(curr_node);
1157 curr_node = NULL;
1158 btrfs_abort_transaction(trans, ret);
1159 break;
1160 }
1161
1162 prev_node = curr_node;
1163 curr_node = btrfs_next_delayed_node(curr_node);
1164 btrfs_release_delayed_node(prev_node);
1165 }
1166
1167 if (curr_node)
1168 btrfs_release_delayed_node(curr_node);
1169 btrfs_free_path(path);
1170 trans->block_rsv = block_rsv;
1171
1172 return ret;
1173}
1174
1175int btrfs_run_delayed_items(struct btrfs_trans_handle *trans)
1176{
1177 return __btrfs_run_delayed_items(trans, -1);
1178}
1179
1180int btrfs_run_delayed_items_nr(struct btrfs_trans_handle *trans, int nr)
1181{
1182 return __btrfs_run_delayed_items(trans, nr);
1183}
1184
1185int btrfs_commit_inode_delayed_items(struct btrfs_trans_handle *trans,
1186 struct btrfs_inode *inode)
1187{
1188 struct btrfs_delayed_node *delayed_node = btrfs_get_delayed_node(inode);
1189 struct btrfs_path *path;
1190 struct btrfs_block_rsv *block_rsv;
1191 int ret;
1192
1193 if (!delayed_node)
1194 return 0;
1195
1196 mutex_lock(&delayed_node->mutex);
1197 if (!delayed_node->count) {
1198 mutex_unlock(&delayed_node->mutex);
1199 btrfs_release_delayed_node(delayed_node);
1200 return 0;
1201 }
1202 mutex_unlock(&delayed_node->mutex);
1203
1204 path = btrfs_alloc_path();
1205 if (!path) {
1206 btrfs_release_delayed_node(delayed_node);
1207 return -ENOMEM;
1208 }
1209
1210 block_rsv = trans->block_rsv;
1211 trans->block_rsv = &delayed_node->root->fs_info->delayed_block_rsv;
1212
1213 ret = __btrfs_commit_inode_delayed_items(trans, path, delayed_node);
1214
1215 btrfs_release_delayed_node(delayed_node);
1216 btrfs_free_path(path);
1217 trans->block_rsv = block_rsv;
1218
1219 return ret;
1220}
1221
1222int btrfs_commit_inode_delayed_inode(struct btrfs_inode *inode)
1223{
1224 struct btrfs_fs_info *fs_info = inode->root->fs_info;
1225 struct btrfs_trans_handle *trans;
1226 struct btrfs_delayed_node *delayed_node = btrfs_get_delayed_node(inode);
1227 struct btrfs_path *path;
1228 struct btrfs_block_rsv *block_rsv;
1229 int ret;
1230
1231 if (!delayed_node)
1232 return 0;
1233
1234 mutex_lock(&delayed_node->mutex);
1235 if (!test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
1236 mutex_unlock(&delayed_node->mutex);
1237 btrfs_release_delayed_node(delayed_node);
1238 return 0;
1239 }
1240 mutex_unlock(&delayed_node->mutex);
1241
1242 trans = btrfs_join_transaction(delayed_node->root);
1243 if (IS_ERR(trans)) {
1244 ret = PTR_ERR(trans);
1245 goto out;
1246 }
1247
1248 path = btrfs_alloc_path();
1249 if (!path) {
1250 ret = -ENOMEM;
1251 goto trans_out;
1252 }
1253
1254 block_rsv = trans->block_rsv;
1255 trans->block_rsv = &fs_info->delayed_block_rsv;
1256
1257 mutex_lock(&delayed_node->mutex);
1258 if (test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags))
1259 ret = __btrfs_update_delayed_inode(trans, delayed_node->root,
1260 path, delayed_node);
1261 else
1262 ret = 0;
1263 mutex_unlock(&delayed_node->mutex);
1264
1265 btrfs_free_path(path);
1266 trans->block_rsv = block_rsv;
1267trans_out:
1268 btrfs_end_transaction(trans);
1269 btrfs_btree_balance_dirty(fs_info);
1270out:
1271 btrfs_release_delayed_node(delayed_node);
1272
1273 return ret;
1274}
1275
1276void btrfs_remove_delayed_node(struct btrfs_inode *inode)
1277{
1278 struct btrfs_delayed_node *delayed_node;
1279
1280 delayed_node = READ_ONCE(inode->delayed_node);
1281 if (!delayed_node)
1282 return;
1283
1284 inode->delayed_node = NULL;
1285 btrfs_release_delayed_node(delayed_node);
1286}
1287
1288struct btrfs_async_delayed_work {
1289 struct btrfs_delayed_root *delayed_root;
1290 int nr;
1291 struct btrfs_work work;
1292};
1293
1294static void btrfs_async_run_delayed_root(struct btrfs_work *work)
1295{
1296 struct btrfs_async_delayed_work *async_work;
1297 struct btrfs_delayed_root *delayed_root;
1298 struct btrfs_trans_handle *trans;
1299 struct btrfs_path *path;
1300 struct btrfs_delayed_node *delayed_node = NULL;
1301 struct btrfs_root *root;
1302 struct btrfs_block_rsv *block_rsv;
1303 int total_done = 0;
1304
1305 async_work = container_of(work, struct btrfs_async_delayed_work, work);
1306 delayed_root = async_work->delayed_root;
1307
1308 path = btrfs_alloc_path();
1309 if (!path)
1310 goto out;
1311
1312 do {
1313 if (atomic_read(&delayed_root->items) <
1314 BTRFS_DELAYED_BACKGROUND / 2)
1315 break;
1316
1317 delayed_node = btrfs_first_prepared_delayed_node(delayed_root);
1318 if (!delayed_node)
1319 break;
1320
1321 root = delayed_node->root;
1322
1323 trans = btrfs_join_transaction(root);
1324 if (IS_ERR(trans)) {
1325 btrfs_release_path(path);
1326 btrfs_release_prepared_delayed_node(delayed_node);
1327 total_done++;
1328 continue;
1329 }
1330
1331 block_rsv = trans->block_rsv;
1332 trans->block_rsv = &root->fs_info->delayed_block_rsv;
1333
1334 __btrfs_commit_inode_delayed_items(trans, path, delayed_node);
1335
1336 trans->block_rsv = block_rsv;
1337 btrfs_end_transaction(trans);
1338 btrfs_btree_balance_dirty_nodelay(root->fs_info);
1339
1340 btrfs_release_path(path);
1341 btrfs_release_prepared_delayed_node(delayed_node);
1342 total_done++;
1343
1344 } while ((async_work->nr == 0 && total_done < BTRFS_DELAYED_WRITEBACK)
1345 || total_done < async_work->nr);
1346
1347 btrfs_free_path(path);
1348out:
1349 wake_up(&delayed_root->wait);
1350 kfree(async_work);
1351}
1352
1353
1354static int btrfs_wq_run_delayed_node(struct btrfs_delayed_root *delayed_root,
1355 struct btrfs_fs_info *fs_info, int nr)
1356{
1357 struct btrfs_async_delayed_work *async_work;
1358
1359 async_work = kmalloc(sizeof(*async_work), GFP_NOFS);
1360 if (!async_work)
1361 return -ENOMEM;
1362
1363 async_work->delayed_root = delayed_root;
1364 btrfs_init_work(&async_work->work, btrfs_async_run_delayed_root, NULL,
1365 NULL);
1366 async_work->nr = nr;
1367
1368 btrfs_queue_work(fs_info->delayed_workers, &async_work->work);
1369 return 0;
1370}
1371
1372void btrfs_assert_delayed_root_empty(struct btrfs_fs_info *fs_info)
1373{
1374 WARN_ON(btrfs_first_delayed_node(fs_info->delayed_root));
1375}
1376
1377static int could_end_wait(struct btrfs_delayed_root *delayed_root, int seq)
1378{
1379 int val = atomic_read(&delayed_root->items_seq);
1380
1381 if (val < seq || val >= seq + BTRFS_DELAYED_BATCH)
1382 return 1;
1383
1384 if (atomic_read(&delayed_root->items) < BTRFS_DELAYED_BACKGROUND)
1385 return 1;
1386
1387 return 0;
1388}
1389
1390void btrfs_balance_delayed_items(struct btrfs_fs_info *fs_info)
1391{
1392 struct btrfs_delayed_root *delayed_root = fs_info->delayed_root;
1393
1394 if ((atomic_read(&delayed_root->items) < BTRFS_DELAYED_BACKGROUND) ||
1395 btrfs_workqueue_normal_congested(fs_info->delayed_workers))
1396 return;
1397
1398 if (atomic_read(&delayed_root->items) >= BTRFS_DELAYED_WRITEBACK) {
1399 int seq;
1400 int ret;
1401
1402 seq = atomic_read(&delayed_root->items_seq);
1403
1404 ret = btrfs_wq_run_delayed_node(delayed_root, fs_info, 0);
1405 if (ret)
1406 return;
1407
1408 wait_event_interruptible(delayed_root->wait,
1409 could_end_wait(delayed_root, seq));
1410 return;
1411 }
1412
1413 btrfs_wq_run_delayed_node(delayed_root, fs_info, BTRFS_DELAYED_BATCH);
1414}
1415
1416/* Will return 0 or -ENOMEM */
1417int btrfs_insert_delayed_dir_index(struct btrfs_trans_handle *trans,
1418 const char *name, int name_len,
1419 struct btrfs_inode *dir,
1420 struct btrfs_disk_key *disk_key, u8 flags,
1421 u64 index)
1422{
1423 struct btrfs_fs_info *fs_info = trans->fs_info;
1424 const unsigned int leaf_data_size = BTRFS_LEAF_DATA_SIZE(fs_info);
1425 struct btrfs_delayed_node *delayed_node;
1426 struct btrfs_delayed_item *delayed_item;
1427 struct btrfs_dir_item *dir_item;
1428 bool reserve_leaf_space;
1429 u32 data_len;
1430 int ret;
1431
1432 delayed_node = btrfs_get_or_create_delayed_node(dir);
1433 if (IS_ERR(delayed_node))
1434 return PTR_ERR(delayed_node);
1435
1436 delayed_item = btrfs_alloc_delayed_item(sizeof(*dir_item) + name_len,
1437 delayed_node,
1438 BTRFS_DELAYED_INSERTION_ITEM);
1439 if (!delayed_item) {
1440 ret = -ENOMEM;
1441 goto release_node;
1442 }
1443
1444 delayed_item->index = index;
1445
1446 dir_item = (struct btrfs_dir_item *)delayed_item->data;
1447 dir_item->location = *disk_key;
1448 btrfs_set_stack_dir_transid(dir_item, trans->transid);
1449 btrfs_set_stack_dir_data_len(dir_item, 0);
1450 btrfs_set_stack_dir_name_len(dir_item, name_len);
1451 btrfs_set_stack_dir_flags(dir_item, flags);
1452 memcpy((char *)(dir_item + 1), name, name_len);
1453
1454 data_len = delayed_item->data_len + sizeof(struct btrfs_item);
1455
1456 mutex_lock(&delayed_node->mutex);
1457
1458 if (delayed_node->index_item_leaves == 0 ||
1459 delayed_node->curr_index_batch_size + data_len > leaf_data_size) {
1460 delayed_node->curr_index_batch_size = data_len;
1461 reserve_leaf_space = true;
1462 } else {
1463 delayed_node->curr_index_batch_size += data_len;
1464 reserve_leaf_space = false;
1465 }
1466
1467 if (reserve_leaf_space) {
1468 ret = btrfs_delayed_item_reserve_metadata(trans, delayed_item);
1469 /*
1470 * Space was reserved for a dir index item insertion when we
1471 * started the transaction, so getting a failure here should be
1472 * impossible.
1473 */
1474 if (WARN_ON(ret)) {
1475 mutex_unlock(&delayed_node->mutex);
1476 btrfs_release_delayed_item(delayed_item);
1477 goto release_node;
1478 }
1479
1480 delayed_node->index_item_leaves++;
1481 } else if (!test_bit(BTRFS_FS_LOG_RECOVERING, &fs_info->flags)) {
1482 const u64 bytes = btrfs_calc_insert_metadata_size(fs_info, 1);
1483
1484 /*
1485 * Adding the new dir index item does not require touching another
1486 * leaf, so we can release 1 unit of metadata that was previously
1487 * reserved when starting the transaction. This applies only to
1488 * the case where we had a transaction start and excludes the
1489 * transaction join case (when replaying log trees).
1490 */
1491 trace_btrfs_space_reservation(fs_info, "transaction",
1492 trans->transid, bytes, 0);
1493 btrfs_block_rsv_release(fs_info, trans->block_rsv, bytes, NULL);
1494 ASSERT(trans->bytes_reserved >= bytes);
1495 trans->bytes_reserved -= bytes;
1496 }
1497
1498 ret = __btrfs_add_delayed_item(delayed_node, delayed_item);
1499 if (unlikely(ret)) {
1500 btrfs_err(trans->fs_info,
1501 "err add delayed dir index item(name: %.*s) into the insertion tree of the delayed node(root id: %llu, inode id: %llu, errno: %d)",
1502 name_len, name, delayed_node->root->root_key.objectid,
1503 delayed_node->inode_id, ret);
1504 BUG();
1505 }
1506 mutex_unlock(&delayed_node->mutex);
1507
1508release_node:
1509 btrfs_release_delayed_node(delayed_node);
1510 return ret;
1511}
1512
1513static int btrfs_delete_delayed_insertion_item(struct btrfs_fs_info *fs_info,
1514 struct btrfs_delayed_node *node,
1515 u64 index)
1516{
1517 struct btrfs_delayed_item *item;
1518
1519 mutex_lock(&node->mutex);
1520 item = __btrfs_lookup_delayed_item(&node->ins_root.rb_root, index);
1521 if (!item) {
1522 mutex_unlock(&node->mutex);
1523 return 1;
1524 }
1525
1526 /*
1527 * For delayed items to insert, we track reserved metadata bytes based
1528 * on the number of leaves that we will use.
1529 * See btrfs_insert_delayed_dir_index() and
1530 * btrfs_delayed_item_reserve_metadata()).
1531 */
1532 ASSERT(item->bytes_reserved == 0);
1533 ASSERT(node->index_item_leaves > 0);
1534
1535 /*
1536 * If there's only one leaf reserved, we can decrement this item from the
1537 * current batch, otherwise we can not because we don't know which leaf
1538 * it belongs to. With the current limit on delayed items, we rarely
1539 * accumulate enough dir index items to fill more than one leaf (even
1540 * when using a leaf size of 4K).
1541 */
1542 if (node->index_item_leaves == 1) {
1543 const u32 data_len = item->data_len + sizeof(struct btrfs_item);
1544
1545 ASSERT(node->curr_index_batch_size >= data_len);
1546 node->curr_index_batch_size -= data_len;
1547 }
1548
1549 btrfs_release_delayed_item(item);
1550
1551 /* If we now have no more dir index items, we can release all leaves. */
1552 if (RB_EMPTY_ROOT(&node->ins_root.rb_root)) {
1553 btrfs_delayed_item_release_leaves(node, node->index_item_leaves);
1554 node->index_item_leaves = 0;
1555 }
1556
1557 mutex_unlock(&node->mutex);
1558 return 0;
1559}
1560
1561int btrfs_delete_delayed_dir_index(struct btrfs_trans_handle *trans,
1562 struct btrfs_inode *dir, u64 index)
1563{
1564 struct btrfs_delayed_node *node;
1565 struct btrfs_delayed_item *item;
1566 int ret;
1567
1568 node = btrfs_get_or_create_delayed_node(dir);
1569 if (IS_ERR(node))
1570 return PTR_ERR(node);
1571
1572 ret = btrfs_delete_delayed_insertion_item(trans->fs_info, node, index);
1573 if (!ret)
1574 goto end;
1575
1576 item = btrfs_alloc_delayed_item(0, node, BTRFS_DELAYED_DELETION_ITEM);
1577 if (!item) {
1578 ret = -ENOMEM;
1579 goto end;
1580 }
1581
1582 item->index = index;
1583
1584 ret = btrfs_delayed_item_reserve_metadata(trans, item);
1585 /*
1586 * we have reserved enough space when we start a new transaction,
1587 * so reserving metadata failure is impossible.
1588 */
1589 if (ret < 0) {
1590 btrfs_err(trans->fs_info,
1591"metadata reservation failed for delayed dir item deltiona, should have been reserved");
1592 btrfs_release_delayed_item(item);
1593 goto end;
1594 }
1595
1596 mutex_lock(&node->mutex);
1597 ret = __btrfs_add_delayed_item(node, item);
1598 if (unlikely(ret)) {
1599 btrfs_err(trans->fs_info,
1600 "err add delayed dir index item(index: %llu) into the deletion tree of the delayed node(root id: %llu, inode id: %llu, errno: %d)",
1601 index, node->root->root_key.objectid,
1602 node->inode_id, ret);
1603 btrfs_delayed_item_release_metadata(dir->root, item);
1604 btrfs_release_delayed_item(item);
1605 }
1606 mutex_unlock(&node->mutex);
1607end:
1608 btrfs_release_delayed_node(node);
1609 return ret;
1610}
1611
1612int btrfs_inode_delayed_dir_index_count(struct btrfs_inode *inode)
1613{
1614 struct btrfs_delayed_node *delayed_node = btrfs_get_delayed_node(inode);
1615
1616 if (!delayed_node)
1617 return -ENOENT;
1618
1619 /*
1620 * Since we have held i_mutex of this directory, it is impossible that
1621 * a new directory index is added into the delayed node and index_cnt
1622 * is updated now. So we needn't lock the delayed node.
1623 */
1624 if (!delayed_node->index_cnt) {
1625 btrfs_release_delayed_node(delayed_node);
1626 return -EINVAL;
1627 }
1628
1629 inode->index_cnt = delayed_node->index_cnt;
1630 btrfs_release_delayed_node(delayed_node);
1631 return 0;
1632}
1633
1634bool btrfs_readdir_get_delayed_items(struct inode *inode,
1635 struct list_head *ins_list,
1636 struct list_head *del_list)
1637{
1638 struct btrfs_delayed_node *delayed_node;
1639 struct btrfs_delayed_item *item;
1640
1641 delayed_node = btrfs_get_delayed_node(BTRFS_I(inode));
1642 if (!delayed_node)
1643 return false;
1644
1645 /*
1646 * We can only do one readdir with delayed items at a time because of
1647 * item->readdir_list.
1648 */
1649 btrfs_inode_unlock(BTRFS_I(inode), BTRFS_ILOCK_SHARED);
1650 btrfs_inode_lock(BTRFS_I(inode), 0);
1651
1652 mutex_lock(&delayed_node->mutex);
1653 item = __btrfs_first_delayed_insertion_item(delayed_node);
1654 while (item) {
1655 refcount_inc(&item->refs);
1656 list_add_tail(&item->readdir_list, ins_list);
1657 item = __btrfs_next_delayed_item(item);
1658 }
1659
1660 item = __btrfs_first_delayed_deletion_item(delayed_node);
1661 while (item) {
1662 refcount_inc(&item->refs);
1663 list_add_tail(&item->readdir_list, del_list);
1664 item = __btrfs_next_delayed_item(item);
1665 }
1666 mutex_unlock(&delayed_node->mutex);
1667 /*
1668 * This delayed node is still cached in the btrfs inode, so refs
1669 * must be > 1 now, and we needn't check it is going to be freed
1670 * or not.
1671 *
1672 * Besides that, this function is used to read dir, we do not
1673 * insert/delete delayed items in this period. So we also needn't
1674 * requeue or dequeue this delayed node.
1675 */
1676 refcount_dec(&delayed_node->refs);
1677
1678 return true;
1679}
1680
1681void btrfs_readdir_put_delayed_items(struct inode *inode,
1682 struct list_head *ins_list,
1683 struct list_head *del_list)
1684{
1685 struct btrfs_delayed_item *curr, *next;
1686
1687 list_for_each_entry_safe(curr, next, ins_list, readdir_list) {
1688 list_del(&curr->readdir_list);
1689 if (refcount_dec_and_test(&curr->refs))
1690 kfree(curr);
1691 }
1692
1693 list_for_each_entry_safe(curr, next, del_list, readdir_list) {
1694 list_del(&curr->readdir_list);
1695 if (refcount_dec_and_test(&curr->refs))
1696 kfree(curr);
1697 }
1698
1699 /*
1700 * The VFS is going to do up_read(), so we need to downgrade back to a
1701 * read lock.
1702 */
1703 downgrade_write(&inode->i_rwsem);
1704}
1705
1706int btrfs_should_delete_dir_index(struct list_head *del_list,
1707 u64 index)
1708{
1709 struct btrfs_delayed_item *curr;
1710 int ret = 0;
1711
1712 list_for_each_entry(curr, del_list, readdir_list) {
1713 if (curr->index > index)
1714 break;
1715 if (curr->index == index) {
1716 ret = 1;
1717 break;
1718 }
1719 }
1720 return ret;
1721}
1722
1723/*
1724 * btrfs_readdir_delayed_dir_index - read dir info stored in the delayed tree
1725 *
1726 */
1727int btrfs_readdir_delayed_dir_index(struct dir_context *ctx,
1728 struct list_head *ins_list)
1729{
1730 struct btrfs_dir_item *di;
1731 struct btrfs_delayed_item *curr, *next;
1732 struct btrfs_key location;
1733 char *name;
1734 int name_len;
1735 int over = 0;
1736 unsigned char d_type;
1737
1738 if (list_empty(ins_list))
1739 return 0;
1740
1741 /*
1742 * Changing the data of the delayed item is impossible. So
1743 * we needn't lock them. And we have held i_mutex of the
1744 * directory, nobody can delete any directory indexes now.
1745 */
1746 list_for_each_entry_safe(curr, next, ins_list, readdir_list) {
1747 list_del(&curr->readdir_list);
1748
1749 if (curr->index < ctx->pos) {
1750 if (refcount_dec_and_test(&curr->refs))
1751 kfree(curr);
1752 continue;
1753 }
1754
1755 ctx->pos = curr->index;
1756
1757 di = (struct btrfs_dir_item *)curr->data;
1758 name = (char *)(di + 1);
1759 name_len = btrfs_stack_dir_name_len(di);
1760
1761 d_type = fs_ftype_to_dtype(btrfs_dir_flags_to_ftype(di->type));
1762 btrfs_disk_key_to_cpu(&location, &di->location);
1763
1764 over = !dir_emit(ctx, name, name_len,
1765 location.objectid, d_type);
1766
1767 if (refcount_dec_and_test(&curr->refs))
1768 kfree(curr);
1769
1770 if (over)
1771 return 1;
1772 ctx->pos++;
1773 }
1774 return 0;
1775}
1776
1777static void fill_stack_inode_item(struct btrfs_trans_handle *trans,
1778 struct btrfs_inode_item *inode_item,
1779 struct inode *inode)
1780{
1781 u64 flags;
1782
1783 btrfs_set_stack_inode_uid(inode_item, i_uid_read(inode));
1784 btrfs_set_stack_inode_gid(inode_item, i_gid_read(inode));
1785 btrfs_set_stack_inode_size(inode_item, BTRFS_I(inode)->disk_i_size);
1786 btrfs_set_stack_inode_mode(inode_item, inode->i_mode);
1787 btrfs_set_stack_inode_nlink(inode_item, inode->i_nlink);
1788 btrfs_set_stack_inode_nbytes(inode_item, inode_get_bytes(inode));
1789 btrfs_set_stack_inode_generation(inode_item,
1790 BTRFS_I(inode)->generation);
1791 btrfs_set_stack_inode_sequence(inode_item,
1792 inode_peek_iversion(inode));
1793 btrfs_set_stack_inode_transid(inode_item, trans->transid);
1794 btrfs_set_stack_inode_rdev(inode_item, inode->i_rdev);
1795 flags = btrfs_inode_combine_flags(BTRFS_I(inode)->flags,
1796 BTRFS_I(inode)->ro_flags);
1797 btrfs_set_stack_inode_flags(inode_item, flags);
1798 btrfs_set_stack_inode_block_group(inode_item, 0);
1799
1800 btrfs_set_stack_timespec_sec(&inode_item->atime,
1801 inode->i_atime.tv_sec);
1802 btrfs_set_stack_timespec_nsec(&inode_item->atime,
1803 inode->i_atime.tv_nsec);
1804
1805 btrfs_set_stack_timespec_sec(&inode_item->mtime,
1806 inode->i_mtime.tv_sec);
1807 btrfs_set_stack_timespec_nsec(&inode_item->mtime,
1808 inode->i_mtime.tv_nsec);
1809
1810 btrfs_set_stack_timespec_sec(&inode_item->ctime,
1811 inode->i_ctime.tv_sec);
1812 btrfs_set_stack_timespec_nsec(&inode_item->ctime,
1813 inode->i_ctime.tv_nsec);
1814
1815 btrfs_set_stack_timespec_sec(&inode_item->otime,
1816 BTRFS_I(inode)->i_otime.tv_sec);
1817 btrfs_set_stack_timespec_nsec(&inode_item->otime,
1818 BTRFS_I(inode)->i_otime.tv_nsec);
1819}
1820
1821int btrfs_fill_inode(struct inode *inode, u32 *rdev)
1822{
1823 struct btrfs_fs_info *fs_info = BTRFS_I(inode)->root->fs_info;
1824 struct btrfs_delayed_node *delayed_node;
1825 struct btrfs_inode_item *inode_item;
1826
1827 delayed_node = btrfs_get_delayed_node(BTRFS_I(inode));
1828 if (!delayed_node)
1829 return -ENOENT;
1830
1831 mutex_lock(&delayed_node->mutex);
1832 if (!test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
1833 mutex_unlock(&delayed_node->mutex);
1834 btrfs_release_delayed_node(delayed_node);
1835 return -ENOENT;
1836 }
1837
1838 inode_item = &delayed_node->inode_item;
1839
1840 i_uid_write(inode, btrfs_stack_inode_uid(inode_item));
1841 i_gid_write(inode, btrfs_stack_inode_gid(inode_item));
1842 btrfs_i_size_write(BTRFS_I(inode), btrfs_stack_inode_size(inode_item));
1843 btrfs_inode_set_file_extent_range(BTRFS_I(inode), 0,
1844 round_up(i_size_read(inode), fs_info->sectorsize));
1845 inode->i_mode = btrfs_stack_inode_mode(inode_item);
1846 set_nlink(inode, btrfs_stack_inode_nlink(inode_item));
1847 inode_set_bytes(inode, btrfs_stack_inode_nbytes(inode_item));
1848 BTRFS_I(inode)->generation = btrfs_stack_inode_generation(inode_item);
1849 BTRFS_I(inode)->last_trans = btrfs_stack_inode_transid(inode_item);
1850
1851 inode_set_iversion_queried(inode,
1852 btrfs_stack_inode_sequence(inode_item));
1853 inode->i_rdev = 0;
1854 *rdev = btrfs_stack_inode_rdev(inode_item);
1855 btrfs_inode_split_flags(btrfs_stack_inode_flags(inode_item),
1856 &BTRFS_I(inode)->flags, &BTRFS_I(inode)->ro_flags);
1857
1858 inode->i_atime.tv_sec = btrfs_stack_timespec_sec(&inode_item->atime);
1859 inode->i_atime.tv_nsec = btrfs_stack_timespec_nsec(&inode_item->atime);
1860
1861 inode->i_mtime.tv_sec = btrfs_stack_timespec_sec(&inode_item->mtime);
1862 inode->i_mtime.tv_nsec = btrfs_stack_timespec_nsec(&inode_item->mtime);
1863
1864 inode->i_ctime.tv_sec = btrfs_stack_timespec_sec(&inode_item->ctime);
1865 inode->i_ctime.tv_nsec = btrfs_stack_timespec_nsec(&inode_item->ctime);
1866
1867 BTRFS_I(inode)->i_otime.tv_sec =
1868 btrfs_stack_timespec_sec(&inode_item->otime);
1869 BTRFS_I(inode)->i_otime.tv_nsec =
1870 btrfs_stack_timespec_nsec(&inode_item->otime);
1871
1872 inode->i_generation = BTRFS_I(inode)->generation;
1873 BTRFS_I(inode)->index_cnt = (u64)-1;
1874
1875 mutex_unlock(&delayed_node->mutex);
1876 btrfs_release_delayed_node(delayed_node);
1877 return 0;
1878}
1879
1880int btrfs_delayed_update_inode(struct btrfs_trans_handle *trans,
1881 struct btrfs_root *root,
1882 struct btrfs_inode *inode)
1883{
1884 struct btrfs_delayed_node *delayed_node;
1885 int ret = 0;
1886
1887 delayed_node = btrfs_get_or_create_delayed_node(inode);
1888 if (IS_ERR(delayed_node))
1889 return PTR_ERR(delayed_node);
1890
1891 mutex_lock(&delayed_node->mutex);
1892 if (test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
1893 fill_stack_inode_item(trans, &delayed_node->inode_item,
1894 &inode->vfs_inode);
1895 goto release_node;
1896 }
1897
1898 ret = btrfs_delayed_inode_reserve_metadata(trans, root, delayed_node);
1899 if (ret)
1900 goto release_node;
1901
1902 fill_stack_inode_item(trans, &delayed_node->inode_item, &inode->vfs_inode);
1903 set_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags);
1904 delayed_node->count++;
1905 atomic_inc(&root->fs_info->delayed_root->items);
1906release_node:
1907 mutex_unlock(&delayed_node->mutex);
1908 btrfs_release_delayed_node(delayed_node);
1909 return ret;
1910}
1911
1912int btrfs_delayed_delete_inode_ref(struct btrfs_inode *inode)
1913{
1914 struct btrfs_fs_info *fs_info = inode->root->fs_info;
1915 struct btrfs_delayed_node *delayed_node;
1916
1917 /*
1918 * we don't do delayed inode updates during log recovery because it
1919 * leads to enospc problems. This means we also can't do
1920 * delayed inode refs
1921 */
1922 if (test_bit(BTRFS_FS_LOG_RECOVERING, &fs_info->flags))
1923 return -EAGAIN;
1924
1925 delayed_node = btrfs_get_or_create_delayed_node(inode);
1926 if (IS_ERR(delayed_node))
1927 return PTR_ERR(delayed_node);
1928
1929 /*
1930 * We don't reserve space for inode ref deletion is because:
1931 * - We ONLY do async inode ref deletion for the inode who has only
1932 * one link(i_nlink == 1), it means there is only one inode ref.
1933 * And in most case, the inode ref and the inode item are in the
1934 * same leaf, and we will deal with them at the same time.
1935 * Since we are sure we will reserve the space for the inode item,
1936 * it is unnecessary to reserve space for inode ref deletion.
1937 * - If the inode ref and the inode item are not in the same leaf,
1938 * We also needn't worry about enospc problem, because we reserve
1939 * much more space for the inode update than it needs.
1940 * - At the worst, we can steal some space from the global reservation.
1941 * It is very rare.
1942 */
1943 mutex_lock(&delayed_node->mutex);
1944 if (test_bit(BTRFS_DELAYED_NODE_DEL_IREF, &delayed_node->flags))
1945 goto release_node;
1946
1947 set_bit(BTRFS_DELAYED_NODE_DEL_IREF, &delayed_node->flags);
1948 delayed_node->count++;
1949 atomic_inc(&fs_info->delayed_root->items);
1950release_node:
1951 mutex_unlock(&delayed_node->mutex);
1952 btrfs_release_delayed_node(delayed_node);
1953 return 0;
1954}
1955
1956static void __btrfs_kill_delayed_node(struct btrfs_delayed_node *delayed_node)
1957{
1958 struct btrfs_root *root = delayed_node->root;
1959 struct btrfs_fs_info *fs_info = root->fs_info;
1960 struct btrfs_delayed_item *curr_item, *prev_item;
1961
1962 mutex_lock(&delayed_node->mutex);
1963 curr_item = __btrfs_first_delayed_insertion_item(delayed_node);
1964 while (curr_item) {
1965 prev_item = curr_item;
1966 curr_item = __btrfs_next_delayed_item(prev_item);
1967 btrfs_release_delayed_item(prev_item);
1968 }
1969
1970 if (delayed_node->index_item_leaves > 0) {
1971 btrfs_delayed_item_release_leaves(delayed_node,
1972 delayed_node->index_item_leaves);
1973 delayed_node->index_item_leaves = 0;
1974 }
1975
1976 curr_item = __btrfs_first_delayed_deletion_item(delayed_node);
1977 while (curr_item) {
1978 btrfs_delayed_item_release_metadata(root, curr_item);
1979 prev_item = curr_item;
1980 curr_item = __btrfs_next_delayed_item(prev_item);
1981 btrfs_release_delayed_item(prev_item);
1982 }
1983
1984 btrfs_release_delayed_iref(delayed_node);
1985
1986 if (test_bit(BTRFS_DELAYED_NODE_INODE_DIRTY, &delayed_node->flags)) {
1987 btrfs_delayed_inode_release_metadata(fs_info, delayed_node, false);
1988 btrfs_release_delayed_inode(delayed_node);
1989 }
1990 mutex_unlock(&delayed_node->mutex);
1991}
1992
1993void btrfs_kill_delayed_inode_items(struct btrfs_inode *inode)
1994{
1995 struct btrfs_delayed_node *delayed_node;
1996
1997 delayed_node = btrfs_get_delayed_node(inode);
1998 if (!delayed_node)
1999 return;
2000
2001 __btrfs_kill_delayed_node(delayed_node);
2002 btrfs_release_delayed_node(delayed_node);
2003}
2004
2005void btrfs_kill_all_delayed_nodes(struct btrfs_root *root)
2006{
2007 u64 inode_id = 0;
2008 struct btrfs_delayed_node *delayed_nodes[8];
2009 int i, n;
2010
2011 while (1) {
2012 spin_lock(&root->inode_lock);
2013 n = radix_tree_gang_lookup(&root->delayed_nodes_tree,
2014 (void **)delayed_nodes, inode_id,
2015 ARRAY_SIZE(delayed_nodes));
2016 if (!n) {
2017 spin_unlock(&root->inode_lock);
2018 break;
2019 }
2020
2021 inode_id = delayed_nodes[n - 1]->inode_id + 1;
2022 for (i = 0; i < n; i++) {
2023 /*
2024 * Don't increase refs in case the node is dead and
2025 * about to be removed from the tree in the loop below
2026 */
2027 if (!refcount_inc_not_zero(&delayed_nodes[i]->refs))
2028 delayed_nodes[i] = NULL;
2029 }
2030 spin_unlock(&root->inode_lock);
2031
2032 for (i = 0; i < n; i++) {
2033 if (!delayed_nodes[i])
2034 continue;
2035 __btrfs_kill_delayed_node(delayed_nodes[i]);
2036 btrfs_release_delayed_node(delayed_nodes[i]);
2037 }
2038 }
2039}
2040
2041void btrfs_destroy_delayed_inodes(struct btrfs_fs_info *fs_info)
2042{
2043 struct btrfs_delayed_node *curr_node, *prev_node;
2044
2045 curr_node = btrfs_first_delayed_node(fs_info->delayed_root);
2046 while (curr_node) {
2047 __btrfs_kill_delayed_node(curr_node);
2048
2049 prev_node = curr_node;
2050 curr_node = btrfs_next_delayed_node(curr_node);
2051 btrfs_release_delayed_node(prev_node);
2052 }
2053}
2054
2055void btrfs_log_get_delayed_items(struct btrfs_inode *inode,
2056 struct list_head *ins_list,
2057 struct list_head *del_list)
2058{
2059 struct btrfs_delayed_node *node;
2060 struct btrfs_delayed_item *item;
2061
2062 node = btrfs_get_delayed_node(inode);
2063 if (!node)
2064 return;
2065
2066 mutex_lock(&node->mutex);
2067 item = __btrfs_first_delayed_insertion_item(node);
2068 while (item) {
2069 /*
2070 * It's possible that the item is already in a log list. This
2071 * can happen in case two tasks are trying to log the same
2072 * directory. For example if we have tasks A and task B:
2073 *
2074 * Task A collected the delayed items into a log list while
2075 * under the inode's log_mutex (at btrfs_log_inode()), but it
2076 * only releases the items after logging the inodes they point
2077 * to (if they are new inodes), which happens after unlocking
2078 * the log mutex;
2079 *
2080 * Task B enters btrfs_log_inode() and acquires the log_mutex
2081 * of the same directory inode, before task B releases the
2082 * delayed items. This can happen for example when logging some
2083 * inode we need to trigger logging of its parent directory, so
2084 * logging two files that have the same parent directory can
2085 * lead to this.
2086 *
2087 * If this happens, just ignore delayed items already in a log
2088 * list. All the tasks logging the directory are under a log
2089 * transaction and whichever finishes first can not sync the log
2090 * before the other completes and leaves the log transaction.
2091 */
2092 if (!item->logged && list_empty(&item->log_list)) {
2093 refcount_inc(&item->refs);
2094 list_add_tail(&item->log_list, ins_list);
2095 }
2096 item = __btrfs_next_delayed_item(item);
2097 }
2098
2099 item = __btrfs_first_delayed_deletion_item(node);
2100 while (item) {
2101 /* It may be non-empty, for the same reason mentioned above. */
2102 if (!item->logged && list_empty(&item->log_list)) {
2103 refcount_inc(&item->refs);
2104 list_add_tail(&item->log_list, del_list);
2105 }
2106 item = __btrfs_next_delayed_item(item);
2107 }
2108 mutex_unlock(&node->mutex);
2109
2110 /*
2111 * We are called during inode logging, which means the inode is in use
2112 * and can not be evicted before we finish logging the inode. So we never
2113 * have the last reference on the delayed inode.
2114 * Also, we don't use btrfs_release_delayed_node() because that would
2115 * requeue the delayed inode (change its order in the list of prepared
2116 * nodes) and we don't want to do such change because we don't create or
2117 * delete delayed items.
2118 */
2119 ASSERT(refcount_read(&node->refs) > 1);
2120 refcount_dec(&node->refs);
2121}
2122
2123void btrfs_log_put_delayed_items(struct btrfs_inode *inode,
2124 struct list_head *ins_list,
2125 struct list_head *del_list)
2126{
2127 struct btrfs_delayed_node *node;
2128 struct btrfs_delayed_item *item;
2129 struct btrfs_delayed_item *next;
2130
2131 node = btrfs_get_delayed_node(inode);
2132 if (!node)
2133 return;
2134
2135 mutex_lock(&node->mutex);
2136
2137 list_for_each_entry_safe(item, next, ins_list, log_list) {
2138 item->logged = true;
2139 list_del_init(&item->log_list);
2140 if (refcount_dec_and_test(&item->refs))
2141 kfree(item);
2142 }
2143
2144 list_for_each_entry_safe(item, next, del_list, log_list) {
2145 item->logged = true;
2146 list_del_init(&item->log_list);
2147 if (refcount_dec_and_test(&item->refs))
2148 kfree(item);
2149 }
2150
2151 mutex_unlock(&node->mutex);
2152
2153 /*
2154 * We are called during inode logging, which means the inode is in use
2155 * and can not be evicted before we finish logging the inode. So we never
2156 * have the last reference on the delayed inode.
2157 * Also, we don't use btrfs_release_delayed_node() because that would
2158 * requeue the delayed inode (change its order in the list of prepared
2159 * nodes) and we don't want to do such change because we don't create or
2160 * delete delayed items.
2161 */
2162 ASSERT(refcount_read(&node->refs) > 1);
2163 refcount_dec(&node->refs);
2164}
1/*
2 * Copyright (C) 2011 Fujitsu. All rights reserved.
3 * Written by Miao Xie <miaox@cn.fujitsu.com>
4 *
5 * This program is free software; you can redistribute it and/or
6 * modify it under the terms of the GNU General Public
7 * License v2 as published by the Free Software Foundation.
8 *
9 * This program is distributed in the hope that it will be useful,
10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
12 * General Public License for more details.
13 *
14 * You should have received a copy of the GNU General Public
15 * License along with this program; if not, write to the
16 * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
17 * Boston, MA 021110-1307, USA.
18 */
19
20#include <linux/slab.h>
21#include "delayed-inode.h"
22#include "disk-io.h"
23#include "transaction.h"
24
25#define BTRFS_DELAYED_WRITEBACK 400
26#define BTRFS_DELAYED_BACKGROUND 100
27
28static struct kmem_cache *delayed_node_cache;
29
30int __init btrfs_delayed_inode_init(void)
31{
32 delayed_node_cache = kmem_cache_create("delayed_node",
33 sizeof(struct btrfs_delayed_node),
34 0,
35 SLAB_RECLAIM_ACCOUNT | SLAB_MEM_SPREAD,
36 NULL);
37 if (!delayed_node_cache)
38 return -ENOMEM;
39 return 0;
40}
41
42void btrfs_delayed_inode_exit(void)
43{
44 if (delayed_node_cache)
45 kmem_cache_destroy(delayed_node_cache);
46}
47
48static inline void btrfs_init_delayed_node(
49 struct btrfs_delayed_node *delayed_node,
50 struct btrfs_root *root, u64 inode_id)
51{
52 delayed_node->root = root;
53 delayed_node->inode_id = inode_id;
54 atomic_set(&delayed_node->refs, 0);
55 delayed_node->count = 0;
56 delayed_node->in_list = 0;
57 delayed_node->inode_dirty = 0;
58 delayed_node->ins_root = RB_ROOT;
59 delayed_node->del_root = RB_ROOT;
60 mutex_init(&delayed_node->mutex);
61 delayed_node->index_cnt = 0;
62 INIT_LIST_HEAD(&delayed_node->n_list);
63 INIT_LIST_HEAD(&delayed_node->p_list);
64 delayed_node->bytes_reserved = 0;
65}
66
67static inline int btrfs_is_continuous_delayed_item(
68 struct btrfs_delayed_item *item1,
69 struct btrfs_delayed_item *item2)
70{
71 if (item1->key.type == BTRFS_DIR_INDEX_KEY &&
72 item1->key.objectid == item2->key.objectid &&
73 item1->key.type == item2->key.type &&
74 item1->key.offset + 1 == item2->key.offset)
75 return 1;
76 return 0;
77}
78
79static inline struct btrfs_delayed_root *btrfs_get_delayed_root(
80 struct btrfs_root *root)
81{
82 return root->fs_info->delayed_root;
83}
84
85static struct btrfs_delayed_node *btrfs_get_delayed_node(struct inode *inode)
86{
87 struct btrfs_inode *btrfs_inode = BTRFS_I(inode);
88 struct btrfs_root *root = btrfs_inode->root;
89 u64 ino = btrfs_ino(inode);
90 struct btrfs_delayed_node *node;
91
92 node = ACCESS_ONCE(btrfs_inode->delayed_node);
93 if (node) {
94 atomic_inc(&node->refs);
95 return node;
96 }
97
98 spin_lock(&root->inode_lock);
99 node = radix_tree_lookup(&root->delayed_nodes_tree, ino);
100 if (node) {
101 if (btrfs_inode->delayed_node) {
102 atomic_inc(&node->refs); /* can be accessed */
103 BUG_ON(btrfs_inode->delayed_node != node);
104 spin_unlock(&root->inode_lock);
105 return node;
106 }
107 btrfs_inode->delayed_node = node;
108 atomic_inc(&node->refs); /* can be accessed */
109 atomic_inc(&node->refs); /* cached in the inode */
110 spin_unlock(&root->inode_lock);
111 return node;
112 }
113 spin_unlock(&root->inode_lock);
114
115 return NULL;
116}
117
118/* Will return either the node or PTR_ERR(-ENOMEM) */
119static struct btrfs_delayed_node *btrfs_get_or_create_delayed_node(
120 struct inode *inode)
121{
122 struct btrfs_delayed_node *node;
123 struct btrfs_inode *btrfs_inode = BTRFS_I(inode);
124 struct btrfs_root *root = btrfs_inode->root;
125 u64 ino = btrfs_ino(inode);
126 int ret;
127
128again:
129 node = btrfs_get_delayed_node(inode);
130 if (node)
131 return node;
132
133 node = kmem_cache_alloc(delayed_node_cache, GFP_NOFS);
134 if (!node)
135 return ERR_PTR(-ENOMEM);
136 btrfs_init_delayed_node(node, root, ino);
137
138 atomic_inc(&node->refs); /* cached in the btrfs inode */
139 atomic_inc(&node->refs); /* can be accessed */
140
141 ret = radix_tree_preload(GFP_NOFS & ~__GFP_HIGHMEM);
142 if (ret) {
143 kmem_cache_free(delayed_node_cache, node);
144 return ERR_PTR(ret);
145 }
146
147 spin_lock(&root->inode_lock);
148 ret = radix_tree_insert(&root->delayed_nodes_tree, ino, node);
149 if (ret == -EEXIST) {
150 kmem_cache_free(delayed_node_cache, node);
151 spin_unlock(&root->inode_lock);
152 radix_tree_preload_end();
153 goto again;
154 }
155 btrfs_inode->delayed_node = node;
156 spin_unlock(&root->inode_lock);
157 radix_tree_preload_end();
158
159 return node;
160}
161
162/*
163 * Call it when holding delayed_node->mutex
164 *
165 * If mod = 1, add this node into the prepared list.
166 */
167static void btrfs_queue_delayed_node(struct btrfs_delayed_root *root,
168 struct btrfs_delayed_node *node,
169 int mod)
170{
171 spin_lock(&root->lock);
172 if (node->in_list) {
173 if (!list_empty(&node->p_list))
174 list_move_tail(&node->p_list, &root->prepare_list);
175 else if (mod)
176 list_add_tail(&node->p_list, &root->prepare_list);
177 } else {
178 list_add_tail(&node->n_list, &root->node_list);
179 list_add_tail(&node->p_list, &root->prepare_list);
180 atomic_inc(&node->refs); /* inserted into list */
181 root->nodes++;
182 node->in_list = 1;
183 }
184 spin_unlock(&root->lock);
185}
186
187/* Call it when holding delayed_node->mutex */
188static void btrfs_dequeue_delayed_node(struct btrfs_delayed_root *root,
189 struct btrfs_delayed_node *node)
190{
191 spin_lock(&root->lock);
192 if (node->in_list) {
193 root->nodes--;
194 atomic_dec(&node->refs); /* not in the list */
195 list_del_init(&node->n_list);
196 if (!list_empty(&node->p_list))
197 list_del_init(&node->p_list);
198 node->in_list = 0;
199 }
200 spin_unlock(&root->lock);
201}
202
203struct btrfs_delayed_node *btrfs_first_delayed_node(
204 struct btrfs_delayed_root *delayed_root)
205{
206 struct list_head *p;
207 struct btrfs_delayed_node *node = NULL;
208
209 spin_lock(&delayed_root->lock);
210 if (list_empty(&delayed_root->node_list))
211 goto out;
212
213 p = delayed_root->node_list.next;
214 node = list_entry(p, struct btrfs_delayed_node, n_list);
215 atomic_inc(&node->refs);
216out:
217 spin_unlock(&delayed_root->lock);
218
219 return node;
220}
221
222struct btrfs_delayed_node *btrfs_next_delayed_node(
223 struct btrfs_delayed_node *node)
224{
225 struct btrfs_delayed_root *delayed_root;
226 struct list_head *p;
227 struct btrfs_delayed_node *next = NULL;
228
229 delayed_root = node->root->fs_info->delayed_root;
230 spin_lock(&delayed_root->lock);
231 if (!node->in_list) { /* not in the list */
232 if (list_empty(&delayed_root->node_list))
233 goto out;
234 p = delayed_root->node_list.next;
235 } else if (list_is_last(&node->n_list, &delayed_root->node_list))
236 goto out;
237 else
238 p = node->n_list.next;
239
240 next = list_entry(p, struct btrfs_delayed_node, n_list);
241 atomic_inc(&next->refs);
242out:
243 spin_unlock(&delayed_root->lock);
244
245 return next;
246}
247
248static void __btrfs_release_delayed_node(
249 struct btrfs_delayed_node *delayed_node,
250 int mod)
251{
252 struct btrfs_delayed_root *delayed_root;
253
254 if (!delayed_node)
255 return;
256
257 delayed_root = delayed_node->root->fs_info->delayed_root;
258
259 mutex_lock(&delayed_node->mutex);
260 if (delayed_node->count)
261 btrfs_queue_delayed_node(delayed_root, delayed_node, mod);
262 else
263 btrfs_dequeue_delayed_node(delayed_root, delayed_node);
264 mutex_unlock(&delayed_node->mutex);
265
266 if (atomic_dec_and_test(&delayed_node->refs)) {
267 struct btrfs_root *root = delayed_node->root;
268 spin_lock(&root->inode_lock);
269 if (atomic_read(&delayed_node->refs) == 0) {
270 radix_tree_delete(&root->delayed_nodes_tree,
271 delayed_node->inode_id);
272 kmem_cache_free(delayed_node_cache, delayed_node);
273 }
274 spin_unlock(&root->inode_lock);
275 }
276}
277
278static inline void btrfs_release_delayed_node(struct btrfs_delayed_node *node)
279{
280 __btrfs_release_delayed_node(node, 0);
281}
282
283struct btrfs_delayed_node *btrfs_first_prepared_delayed_node(
284 struct btrfs_delayed_root *delayed_root)
285{
286 struct list_head *p;
287 struct btrfs_delayed_node *node = NULL;
288
289 spin_lock(&delayed_root->lock);
290 if (list_empty(&delayed_root->prepare_list))
291 goto out;
292
293 p = delayed_root->prepare_list.next;
294 list_del_init(p);
295 node = list_entry(p, struct btrfs_delayed_node, p_list);
296 atomic_inc(&node->refs);
297out:
298 spin_unlock(&delayed_root->lock);
299
300 return node;
301}
302
303static inline void btrfs_release_prepared_delayed_node(
304 struct btrfs_delayed_node *node)
305{
306 __btrfs_release_delayed_node(node, 1);
307}
308
309struct btrfs_delayed_item *btrfs_alloc_delayed_item(u32 data_len)
310{
311 struct btrfs_delayed_item *item;
312 item = kmalloc(sizeof(*item) + data_len, GFP_NOFS);
313 if (item) {
314 item->data_len = data_len;
315 item->ins_or_del = 0;
316 item->bytes_reserved = 0;
317 item->delayed_node = NULL;
318 atomic_set(&item->refs, 1);
319 }
320 return item;
321}
322
323/*
324 * __btrfs_lookup_delayed_item - look up the delayed item by key
325 * @delayed_node: pointer to the delayed node
326 * @key: the key to look up
327 * @prev: used to store the prev item if the right item isn't found
328 * @next: used to store the next item if the right item isn't found
329 *
330 * Note: if we don't find the right item, we will return the prev item and
331 * the next item.
332 */
333static struct btrfs_delayed_item *__btrfs_lookup_delayed_item(
334 struct rb_root *root,
335 struct btrfs_key *key,
336 struct btrfs_delayed_item **prev,
337 struct btrfs_delayed_item **next)
338{
339 struct rb_node *node, *prev_node = NULL;
340 struct btrfs_delayed_item *delayed_item = NULL;
341 int ret = 0;
342
343 node = root->rb_node;
344
345 while (node) {
346 delayed_item = rb_entry(node, struct btrfs_delayed_item,
347 rb_node);
348 prev_node = node;
349 ret = btrfs_comp_cpu_keys(&delayed_item->key, key);
350 if (ret < 0)
351 node = node->rb_right;
352 else if (ret > 0)
353 node = node->rb_left;
354 else
355 return delayed_item;
356 }
357
358 if (prev) {
359 if (!prev_node)
360 *prev = NULL;
361 else if (ret < 0)
362 *prev = delayed_item;
363 else if ((node = rb_prev(prev_node)) != NULL) {
364 *prev = rb_entry(node, struct btrfs_delayed_item,
365 rb_node);
366 } else
367 *prev = NULL;
368 }
369
370 if (next) {
371 if (!prev_node)
372 *next = NULL;
373 else if (ret > 0)
374 *next = delayed_item;
375 else if ((node = rb_next(prev_node)) != NULL) {
376 *next = rb_entry(node, struct btrfs_delayed_item,
377 rb_node);
378 } else
379 *next = NULL;
380 }
381 return NULL;
382}
383
384struct btrfs_delayed_item *__btrfs_lookup_delayed_insertion_item(
385 struct btrfs_delayed_node *delayed_node,
386 struct btrfs_key *key)
387{
388 struct btrfs_delayed_item *item;
389
390 item = __btrfs_lookup_delayed_item(&delayed_node->ins_root, key,
391 NULL, NULL);
392 return item;
393}
394
395struct btrfs_delayed_item *__btrfs_lookup_delayed_deletion_item(
396 struct btrfs_delayed_node *delayed_node,
397 struct btrfs_key *key)
398{
399 struct btrfs_delayed_item *item;
400
401 item = __btrfs_lookup_delayed_item(&delayed_node->del_root, key,
402 NULL, NULL);
403 return item;
404}
405
406struct btrfs_delayed_item *__btrfs_search_delayed_insertion_item(
407 struct btrfs_delayed_node *delayed_node,
408 struct btrfs_key *key)
409{
410 struct btrfs_delayed_item *item, *next;
411
412 item = __btrfs_lookup_delayed_item(&delayed_node->ins_root, key,
413 NULL, &next);
414 if (!item)
415 item = next;
416
417 return item;
418}
419
420struct btrfs_delayed_item *__btrfs_search_delayed_deletion_item(
421 struct btrfs_delayed_node *delayed_node,
422 struct btrfs_key *key)
423{
424 struct btrfs_delayed_item *item, *next;
425
426 item = __btrfs_lookup_delayed_item(&delayed_node->del_root, key,
427 NULL, &next);
428 if (!item)
429 item = next;
430
431 return item;
432}
433
434static int __btrfs_add_delayed_item(struct btrfs_delayed_node *delayed_node,
435 struct btrfs_delayed_item *ins,
436 int action)
437{
438 struct rb_node **p, *node;
439 struct rb_node *parent_node = NULL;
440 struct rb_root *root;
441 struct btrfs_delayed_item *item;
442 int cmp;
443
444 if (action == BTRFS_DELAYED_INSERTION_ITEM)
445 root = &delayed_node->ins_root;
446 else if (action == BTRFS_DELAYED_DELETION_ITEM)
447 root = &delayed_node->del_root;
448 else
449 BUG();
450 p = &root->rb_node;
451 node = &ins->rb_node;
452
453 while (*p) {
454 parent_node = *p;
455 item = rb_entry(parent_node, struct btrfs_delayed_item,
456 rb_node);
457
458 cmp = btrfs_comp_cpu_keys(&item->key, &ins->key);
459 if (cmp < 0)
460 p = &(*p)->rb_right;
461 else if (cmp > 0)
462 p = &(*p)->rb_left;
463 else
464 return -EEXIST;
465 }
466
467 rb_link_node(node, parent_node, p);
468 rb_insert_color(node, root);
469 ins->delayed_node = delayed_node;
470 ins->ins_or_del = action;
471
472 if (ins->key.type == BTRFS_DIR_INDEX_KEY &&
473 action == BTRFS_DELAYED_INSERTION_ITEM &&
474 ins->key.offset >= delayed_node->index_cnt)
475 delayed_node->index_cnt = ins->key.offset + 1;
476
477 delayed_node->count++;
478 atomic_inc(&delayed_node->root->fs_info->delayed_root->items);
479 return 0;
480}
481
482static int __btrfs_add_delayed_insertion_item(struct btrfs_delayed_node *node,
483 struct btrfs_delayed_item *item)
484{
485 return __btrfs_add_delayed_item(node, item,
486 BTRFS_DELAYED_INSERTION_ITEM);
487}
488
489static int __btrfs_add_delayed_deletion_item(struct btrfs_delayed_node *node,
490 struct btrfs_delayed_item *item)
491{
492 return __btrfs_add_delayed_item(node, item,
493 BTRFS_DELAYED_DELETION_ITEM);
494}
495
496static void __btrfs_remove_delayed_item(struct btrfs_delayed_item *delayed_item)
497{
498 struct rb_root *root;
499 struct btrfs_delayed_root *delayed_root;
500
501 delayed_root = delayed_item->delayed_node->root->fs_info->delayed_root;
502
503 BUG_ON(!delayed_root);
504 BUG_ON(delayed_item->ins_or_del != BTRFS_DELAYED_DELETION_ITEM &&
505 delayed_item->ins_or_del != BTRFS_DELAYED_INSERTION_ITEM);
506
507 if (delayed_item->ins_or_del == BTRFS_DELAYED_INSERTION_ITEM)
508 root = &delayed_item->delayed_node->ins_root;
509 else
510 root = &delayed_item->delayed_node->del_root;
511
512 rb_erase(&delayed_item->rb_node, root);
513 delayed_item->delayed_node->count--;
514 atomic_dec(&delayed_root->items);
515 if (atomic_read(&delayed_root->items) < BTRFS_DELAYED_BACKGROUND &&
516 waitqueue_active(&delayed_root->wait))
517 wake_up(&delayed_root->wait);
518}
519
520static void btrfs_release_delayed_item(struct btrfs_delayed_item *item)
521{
522 if (item) {
523 __btrfs_remove_delayed_item(item);
524 if (atomic_dec_and_test(&item->refs))
525 kfree(item);
526 }
527}
528
529struct btrfs_delayed_item *__btrfs_first_delayed_insertion_item(
530 struct btrfs_delayed_node *delayed_node)
531{
532 struct rb_node *p;
533 struct btrfs_delayed_item *item = NULL;
534
535 p = rb_first(&delayed_node->ins_root);
536 if (p)
537 item = rb_entry(p, struct btrfs_delayed_item, rb_node);
538
539 return item;
540}
541
542struct btrfs_delayed_item *__btrfs_first_delayed_deletion_item(
543 struct btrfs_delayed_node *delayed_node)
544{
545 struct rb_node *p;
546 struct btrfs_delayed_item *item = NULL;
547
548 p = rb_first(&delayed_node->del_root);
549 if (p)
550 item = rb_entry(p, struct btrfs_delayed_item, rb_node);
551
552 return item;
553}
554
555struct btrfs_delayed_item *__btrfs_next_delayed_item(
556 struct btrfs_delayed_item *item)
557{
558 struct rb_node *p;
559 struct btrfs_delayed_item *next = NULL;
560
561 p = rb_next(&item->rb_node);
562 if (p)
563 next = rb_entry(p, struct btrfs_delayed_item, rb_node);
564
565 return next;
566}
567
568static inline struct btrfs_root *btrfs_get_fs_root(struct btrfs_root *root,
569 u64 root_id)
570{
571 struct btrfs_key root_key;
572
573 if (root->objectid == root_id)
574 return root;
575
576 root_key.objectid = root_id;
577 root_key.type = BTRFS_ROOT_ITEM_KEY;
578 root_key.offset = (u64)-1;
579 return btrfs_read_fs_root_no_name(root->fs_info, &root_key);
580}
581
582static int btrfs_delayed_item_reserve_metadata(struct btrfs_trans_handle *trans,
583 struct btrfs_root *root,
584 struct btrfs_delayed_item *item)
585{
586 struct btrfs_block_rsv *src_rsv;
587 struct btrfs_block_rsv *dst_rsv;
588 u64 num_bytes;
589 int ret;
590
591 if (!trans->bytes_reserved)
592 return 0;
593
594 src_rsv = trans->block_rsv;
595 dst_rsv = &root->fs_info->delayed_block_rsv;
596
597 num_bytes = btrfs_calc_trans_metadata_size(root, 1);
598 ret = btrfs_block_rsv_migrate(src_rsv, dst_rsv, num_bytes);
599 if (!ret) {
600 trace_btrfs_space_reservation(root->fs_info, "delayed_item",
601 item->key.objectid,
602 num_bytes, 1);
603 item->bytes_reserved = num_bytes;
604 }
605
606 return ret;
607}
608
609static void btrfs_delayed_item_release_metadata(struct btrfs_root *root,
610 struct btrfs_delayed_item *item)
611{
612 struct btrfs_block_rsv *rsv;
613
614 if (!item->bytes_reserved)
615 return;
616
617 rsv = &root->fs_info->delayed_block_rsv;
618 trace_btrfs_space_reservation(root->fs_info, "delayed_item",
619 item->key.objectid, item->bytes_reserved,
620 0);
621 btrfs_block_rsv_release(root, rsv,
622 item->bytes_reserved);
623}
624
625static int btrfs_delayed_inode_reserve_metadata(
626 struct btrfs_trans_handle *trans,
627 struct btrfs_root *root,
628 struct inode *inode,
629 struct btrfs_delayed_node *node)
630{
631 struct btrfs_block_rsv *src_rsv;
632 struct btrfs_block_rsv *dst_rsv;
633 u64 num_bytes;
634 int ret;
635 bool release = false;
636
637 src_rsv = trans->block_rsv;
638 dst_rsv = &root->fs_info->delayed_block_rsv;
639
640 num_bytes = btrfs_calc_trans_metadata_size(root, 1);
641
642 /*
643 * btrfs_dirty_inode will update the inode under btrfs_join_transaction
644 * which doesn't reserve space for speed. This is a problem since we
645 * still need to reserve space for this update, so try to reserve the
646 * space.
647 *
648 * Now if src_rsv == delalloc_block_rsv we'll let it just steal since
649 * we're accounted for.
650 */
651 if (!src_rsv || (!trans->bytes_reserved &&
652 src_rsv != &root->fs_info->delalloc_block_rsv)) {
653 ret = btrfs_block_rsv_add_noflush(root, dst_rsv, num_bytes);
654 /*
655 * Since we're under a transaction reserve_metadata_bytes could
656 * try to commit the transaction which will make it return
657 * EAGAIN to make us stop the transaction we have, so return
658 * ENOSPC instead so that btrfs_dirty_inode knows what to do.
659 */
660 if (ret == -EAGAIN)
661 ret = -ENOSPC;
662 if (!ret) {
663 node->bytes_reserved = num_bytes;
664 trace_btrfs_space_reservation(root->fs_info,
665 "delayed_inode",
666 btrfs_ino(inode),
667 num_bytes, 1);
668 }
669 return ret;
670 } else if (src_rsv == &root->fs_info->delalloc_block_rsv) {
671 spin_lock(&BTRFS_I(inode)->lock);
672 if (test_and_clear_bit(BTRFS_INODE_DELALLOC_META_RESERVED,
673 &BTRFS_I(inode)->runtime_flags)) {
674 spin_unlock(&BTRFS_I(inode)->lock);
675 release = true;
676 goto migrate;
677 }
678 spin_unlock(&BTRFS_I(inode)->lock);
679
680 /* Ok we didn't have space pre-reserved. This shouldn't happen
681 * too often but it can happen if we do delalloc to an existing
682 * inode which gets dirtied because of the time update, and then
683 * isn't touched again until after the transaction commits and
684 * then we try to write out the data. First try to be nice and
685 * reserve something strictly for us. If not be a pain and try
686 * to steal from the delalloc block rsv.
687 */
688 ret = btrfs_block_rsv_add_noflush(root, dst_rsv, num_bytes);
689 if (!ret)
690 goto out;
691
692 ret = btrfs_block_rsv_migrate(src_rsv, dst_rsv, num_bytes);
693 if (!ret)
694 goto out;
695
696 /*
697 * Ok this is a problem, let's just steal from the global rsv
698 * since this really shouldn't happen that often.
699 */
700 WARN_ON(1);
701 ret = btrfs_block_rsv_migrate(&root->fs_info->global_block_rsv,
702 dst_rsv, num_bytes);
703 goto out;
704 }
705
706migrate:
707 ret = btrfs_block_rsv_migrate(src_rsv, dst_rsv, num_bytes);
708
709out:
710 /*
711 * Migrate only takes a reservation, it doesn't touch the size of the
712 * block_rsv. This is to simplify people who don't normally have things
713 * migrated from their block rsv. If they go to release their
714 * reservation, that will decrease the size as well, so if migrate
715 * reduced size we'd end up with a negative size. But for the
716 * delalloc_meta_reserved stuff we will only know to drop 1 reservation,
717 * but we could in fact do this reserve/migrate dance several times
718 * between the time we did the original reservation and we'd clean it
719 * up. So to take care of this, release the space for the meta
720 * reservation here. I think it may be time for a documentation page on
721 * how block rsvs. work.
722 */
723 if (!ret) {
724 trace_btrfs_space_reservation(root->fs_info, "delayed_inode",
725 btrfs_ino(inode), num_bytes, 1);
726 node->bytes_reserved = num_bytes;
727 }
728
729 if (release) {
730 trace_btrfs_space_reservation(root->fs_info, "delalloc",
731 btrfs_ino(inode), num_bytes, 0);
732 btrfs_block_rsv_release(root, src_rsv, num_bytes);
733 }
734
735 return ret;
736}
737
738static void btrfs_delayed_inode_release_metadata(struct btrfs_root *root,
739 struct btrfs_delayed_node *node)
740{
741 struct btrfs_block_rsv *rsv;
742
743 if (!node->bytes_reserved)
744 return;
745
746 rsv = &root->fs_info->delayed_block_rsv;
747 trace_btrfs_space_reservation(root->fs_info, "delayed_inode",
748 node->inode_id, node->bytes_reserved, 0);
749 btrfs_block_rsv_release(root, rsv,
750 node->bytes_reserved);
751 node->bytes_reserved = 0;
752}
753
754/*
755 * This helper will insert some continuous items into the same leaf according
756 * to the free space of the leaf.
757 */
758static int btrfs_batch_insert_items(struct btrfs_trans_handle *trans,
759 struct btrfs_root *root,
760 struct btrfs_path *path,
761 struct btrfs_delayed_item *item)
762{
763 struct btrfs_delayed_item *curr, *next;
764 int free_space;
765 int total_data_size = 0, total_size = 0;
766 struct extent_buffer *leaf;
767 char *data_ptr;
768 struct btrfs_key *keys;
769 u32 *data_size;
770 struct list_head head;
771 int slot;
772 int nitems;
773 int i;
774 int ret = 0;
775
776 BUG_ON(!path->nodes[0]);
777
778 leaf = path->nodes[0];
779 free_space = btrfs_leaf_free_space(root, leaf);
780 INIT_LIST_HEAD(&head);
781
782 next = item;
783 nitems = 0;
784
785 /*
786 * count the number of the continuous items that we can insert in batch
787 */
788 while (total_size + next->data_len + sizeof(struct btrfs_item) <=
789 free_space) {
790 total_data_size += next->data_len;
791 total_size += next->data_len + sizeof(struct btrfs_item);
792 list_add_tail(&next->tree_list, &head);
793 nitems++;
794
795 curr = next;
796 next = __btrfs_next_delayed_item(curr);
797 if (!next)
798 break;
799
800 if (!btrfs_is_continuous_delayed_item(curr, next))
801 break;
802 }
803
804 if (!nitems) {
805 ret = 0;
806 goto out;
807 }
808
809 /*
810 * we need allocate some memory space, but it might cause the task
811 * to sleep, so we set all locked nodes in the path to blocking locks
812 * first.
813 */
814 btrfs_set_path_blocking(path);
815
816 keys = kmalloc(sizeof(struct btrfs_key) * nitems, GFP_NOFS);
817 if (!keys) {
818 ret = -ENOMEM;
819 goto out;
820 }
821
822 data_size = kmalloc(sizeof(u32) * nitems, GFP_NOFS);
823 if (!data_size) {
824 ret = -ENOMEM;
825 goto error;
826 }
827
828 /* get keys of all the delayed items */
829 i = 0;
830 list_for_each_entry(next, &head, tree_list) {
831 keys[i] = next->key;
832 data_size[i] = next->data_len;
833 i++;
834 }
835
836 /* reset all the locked nodes in the patch to spinning locks. */
837 btrfs_clear_path_blocking(path, NULL, 0);
838
839 /* insert the keys of the items */
840 setup_items_for_insert(trans, root, path, keys, data_size,
841 total_data_size, total_size, nitems);
842
843 /* insert the dir index items */
844 slot = path->slots[0];
845 list_for_each_entry_safe(curr, next, &head, tree_list) {
846 data_ptr = btrfs_item_ptr(leaf, slot, char);
847 write_extent_buffer(leaf, &curr->data,
848 (unsigned long)data_ptr,
849 curr->data_len);
850 slot++;
851
852 btrfs_delayed_item_release_metadata(root, curr);
853
854 list_del(&curr->tree_list);
855 btrfs_release_delayed_item(curr);
856 }
857
858error:
859 kfree(data_size);
860 kfree(keys);
861out:
862 return ret;
863}
864
865/*
866 * This helper can just do simple insertion that needn't extend item for new
867 * data, such as directory name index insertion, inode insertion.
868 */
869static int btrfs_insert_delayed_item(struct btrfs_trans_handle *trans,
870 struct btrfs_root *root,
871 struct btrfs_path *path,
872 struct btrfs_delayed_item *delayed_item)
873{
874 struct extent_buffer *leaf;
875 struct btrfs_item *item;
876 char *ptr;
877 int ret;
878
879 ret = btrfs_insert_empty_item(trans, root, path, &delayed_item->key,
880 delayed_item->data_len);
881 if (ret < 0 && ret != -EEXIST)
882 return ret;
883
884 leaf = path->nodes[0];
885
886 item = btrfs_item_nr(leaf, path->slots[0]);
887 ptr = btrfs_item_ptr(leaf, path->slots[0], char);
888
889 write_extent_buffer(leaf, delayed_item->data, (unsigned long)ptr,
890 delayed_item->data_len);
891 btrfs_mark_buffer_dirty(leaf);
892
893 btrfs_delayed_item_release_metadata(root, delayed_item);
894 return 0;
895}
896
897/*
898 * we insert an item first, then if there are some continuous items, we try
899 * to insert those items into the same leaf.
900 */
901static int btrfs_insert_delayed_items(struct btrfs_trans_handle *trans,
902 struct btrfs_path *path,
903 struct btrfs_root *root,
904 struct btrfs_delayed_node *node)
905{
906 struct btrfs_delayed_item *curr, *prev;
907 int ret = 0;
908
909do_again:
910 mutex_lock(&node->mutex);
911 curr = __btrfs_first_delayed_insertion_item(node);
912 if (!curr)
913 goto insert_end;
914
915 ret = btrfs_insert_delayed_item(trans, root, path, curr);
916 if (ret < 0) {
917 btrfs_release_path(path);
918 goto insert_end;
919 }
920
921 prev = curr;
922 curr = __btrfs_next_delayed_item(prev);
923 if (curr && btrfs_is_continuous_delayed_item(prev, curr)) {
924 /* insert the continuous items into the same leaf */
925 path->slots[0]++;
926 btrfs_batch_insert_items(trans, root, path, curr);
927 }
928 btrfs_release_delayed_item(prev);
929 btrfs_mark_buffer_dirty(path->nodes[0]);
930
931 btrfs_release_path(path);
932 mutex_unlock(&node->mutex);
933 goto do_again;
934
935insert_end:
936 mutex_unlock(&node->mutex);
937 return ret;
938}
939
940static int btrfs_batch_delete_items(struct btrfs_trans_handle *trans,
941 struct btrfs_root *root,
942 struct btrfs_path *path,
943 struct btrfs_delayed_item *item)
944{
945 struct btrfs_delayed_item *curr, *next;
946 struct extent_buffer *leaf;
947 struct btrfs_key key;
948 struct list_head head;
949 int nitems, i, last_item;
950 int ret = 0;
951
952 BUG_ON(!path->nodes[0]);
953
954 leaf = path->nodes[0];
955
956 i = path->slots[0];
957 last_item = btrfs_header_nritems(leaf) - 1;
958 if (i > last_item)
959 return -ENOENT; /* FIXME: Is errno suitable? */
960
961 next = item;
962 INIT_LIST_HEAD(&head);
963 btrfs_item_key_to_cpu(leaf, &key, i);
964 nitems = 0;
965 /*
966 * count the number of the dir index items that we can delete in batch
967 */
968 while (btrfs_comp_cpu_keys(&next->key, &key) == 0) {
969 list_add_tail(&next->tree_list, &head);
970 nitems++;
971
972 curr = next;
973 next = __btrfs_next_delayed_item(curr);
974 if (!next)
975 break;
976
977 if (!btrfs_is_continuous_delayed_item(curr, next))
978 break;
979
980 i++;
981 if (i > last_item)
982 break;
983 btrfs_item_key_to_cpu(leaf, &key, i);
984 }
985
986 if (!nitems)
987 return 0;
988
989 ret = btrfs_del_items(trans, root, path, path->slots[0], nitems);
990 if (ret)
991 goto out;
992
993 list_for_each_entry_safe(curr, next, &head, tree_list) {
994 btrfs_delayed_item_release_metadata(root, curr);
995 list_del(&curr->tree_list);
996 btrfs_release_delayed_item(curr);
997 }
998
999out:
1000 return ret;
1001}
1002
1003static int btrfs_delete_delayed_items(struct btrfs_trans_handle *trans,
1004 struct btrfs_path *path,
1005 struct btrfs_root *root,
1006 struct btrfs_delayed_node *node)
1007{
1008 struct btrfs_delayed_item *curr, *prev;
1009 int ret = 0;
1010
1011do_again:
1012 mutex_lock(&node->mutex);
1013 curr = __btrfs_first_delayed_deletion_item(node);
1014 if (!curr)
1015 goto delete_fail;
1016
1017 ret = btrfs_search_slot(trans, root, &curr->key, path, -1, 1);
1018 if (ret < 0)
1019 goto delete_fail;
1020 else if (ret > 0) {
1021 /*
1022 * can't find the item which the node points to, so this node
1023 * is invalid, just drop it.
1024 */
1025 prev = curr;
1026 curr = __btrfs_next_delayed_item(prev);
1027 btrfs_release_delayed_item(prev);
1028 ret = 0;
1029 btrfs_release_path(path);
1030 if (curr)
1031 goto do_again;
1032 else
1033 goto delete_fail;
1034 }
1035
1036 btrfs_batch_delete_items(trans, root, path, curr);
1037 btrfs_release_path(path);
1038 mutex_unlock(&node->mutex);
1039 goto do_again;
1040
1041delete_fail:
1042 btrfs_release_path(path);
1043 mutex_unlock(&node->mutex);
1044 return ret;
1045}
1046
1047static void btrfs_release_delayed_inode(struct btrfs_delayed_node *delayed_node)
1048{
1049 struct btrfs_delayed_root *delayed_root;
1050
1051 if (delayed_node && delayed_node->inode_dirty) {
1052 BUG_ON(!delayed_node->root);
1053 delayed_node->inode_dirty = 0;
1054 delayed_node->count--;
1055
1056 delayed_root = delayed_node->root->fs_info->delayed_root;
1057 atomic_dec(&delayed_root->items);
1058 if (atomic_read(&delayed_root->items) <
1059 BTRFS_DELAYED_BACKGROUND &&
1060 waitqueue_active(&delayed_root->wait))
1061 wake_up(&delayed_root->wait);
1062 }
1063}
1064
1065static int btrfs_update_delayed_inode(struct btrfs_trans_handle *trans,
1066 struct btrfs_root *root,
1067 struct btrfs_path *path,
1068 struct btrfs_delayed_node *node)
1069{
1070 struct btrfs_key key;
1071 struct btrfs_inode_item *inode_item;
1072 struct extent_buffer *leaf;
1073 int ret;
1074
1075 mutex_lock(&node->mutex);
1076 if (!node->inode_dirty) {
1077 mutex_unlock(&node->mutex);
1078 return 0;
1079 }
1080
1081 key.objectid = node->inode_id;
1082 btrfs_set_key_type(&key, BTRFS_INODE_ITEM_KEY);
1083 key.offset = 0;
1084 ret = btrfs_lookup_inode(trans, root, path, &key, 1);
1085 if (ret > 0) {
1086 btrfs_release_path(path);
1087 mutex_unlock(&node->mutex);
1088 return -ENOENT;
1089 } else if (ret < 0) {
1090 mutex_unlock(&node->mutex);
1091 return ret;
1092 }
1093
1094 btrfs_unlock_up_safe(path, 1);
1095 leaf = path->nodes[0];
1096 inode_item = btrfs_item_ptr(leaf, path->slots[0],
1097 struct btrfs_inode_item);
1098 write_extent_buffer(leaf, &node->inode_item, (unsigned long)inode_item,
1099 sizeof(struct btrfs_inode_item));
1100 btrfs_mark_buffer_dirty(leaf);
1101 btrfs_release_path(path);
1102
1103 btrfs_delayed_inode_release_metadata(root, node);
1104 btrfs_release_delayed_inode(node);
1105 mutex_unlock(&node->mutex);
1106
1107 return 0;
1108}
1109
1110/*
1111 * Called when committing the transaction.
1112 * Returns 0 on success.
1113 * Returns < 0 on error and returns with an aborted transaction with any
1114 * outstanding delayed items cleaned up.
1115 */
1116int btrfs_run_delayed_items(struct btrfs_trans_handle *trans,
1117 struct btrfs_root *root)
1118{
1119 struct btrfs_root *curr_root = root;
1120 struct btrfs_delayed_root *delayed_root;
1121 struct btrfs_delayed_node *curr_node, *prev_node;
1122 struct btrfs_path *path;
1123 struct btrfs_block_rsv *block_rsv;
1124 int ret = 0;
1125
1126 if (trans->aborted)
1127 return -EIO;
1128
1129 path = btrfs_alloc_path();
1130 if (!path)
1131 return -ENOMEM;
1132 path->leave_spinning = 1;
1133
1134 block_rsv = trans->block_rsv;
1135 trans->block_rsv = &root->fs_info->delayed_block_rsv;
1136
1137 delayed_root = btrfs_get_delayed_root(root);
1138
1139 curr_node = btrfs_first_delayed_node(delayed_root);
1140 while (curr_node) {
1141 curr_root = curr_node->root;
1142 ret = btrfs_insert_delayed_items(trans, path, curr_root,
1143 curr_node);
1144 if (!ret)
1145 ret = btrfs_delete_delayed_items(trans, path,
1146 curr_root, curr_node);
1147 if (!ret)
1148 ret = btrfs_update_delayed_inode(trans, curr_root,
1149 path, curr_node);
1150 if (ret) {
1151 btrfs_release_delayed_node(curr_node);
1152 btrfs_abort_transaction(trans, root, ret);
1153 break;
1154 }
1155
1156 prev_node = curr_node;
1157 curr_node = btrfs_next_delayed_node(curr_node);
1158 btrfs_release_delayed_node(prev_node);
1159 }
1160
1161 btrfs_free_path(path);
1162 trans->block_rsv = block_rsv;
1163
1164 return ret;
1165}
1166
1167static int __btrfs_commit_inode_delayed_items(struct btrfs_trans_handle *trans,
1168 struct btrfs_delayed_node *node)
1169{
1170 struct btrfs_path *path;
1171 struct btrfs_block_rsv *block_rsv;
1172 int ret;
1173
1174 path = btrfs_alloc_path();
1175 if (!path)
1176 return -ENOMEM;
1177 path->leave_spinning = 1;
1178
1179 block_rsv = trans->block_rsv;
1180 trans->block_rsv = &node->root->fs_info->delayed_block_rsv;
1181
1182 ret = btrfs_insert_delayed_items(trans, path, node->root, node);
1183 if (!ret)
1184 ret = btrfs_delete_delayed_items(trans, path, node->root, node);
1185 if (!ret)
1186 ret = btrfs_update_delayed_inode(trans, node->root, path, node);
1187 btrfs_free_path(path);
1188
1189 trans->block_rsv = block_rsv;
1190 return ret;
1191}
1192
1193int btrfs_commit_inode_delayed_items(struct btrfs_trans_handle *trans,
1194 struct inode *inode)
1195{
1196 struct btrfs_delayed_node *delayed_node = btrfs_get_delayed_node(inode);
1197 int ret;
1198
1199 if (!delayed_node)
1200 return 0;
1201
1202 mutex_lock(&delayed_node->mutex);
1203 if (!delayed_node->count) {
1204 mutex_unlock(&delayed_node->mutex);
1205 btrfs_release_delayed_node(delayed_node);
1206 return 0;
1207 }
1208 mutex_unlock(&delayed_node->mutex);
1209
1210 ret = __btrfs_commit_inode_delayed_items(trans, delayed_node);
1211 btrfs_release_delayed_node(delayed_node);
1212 return ret;
1213}
1214
1215void btrfs_remove_delayed_node(struct inode *inode)
1216{
1217 struct btrfs_delayed_node *delayed_node;
1218
1219 delayed_node = ACCESS_ONCE(BTRFS_I(inode)->delayed_node);
1220 if (!delayed_node)
1221 return;
1222
1223 BTRFS_I(inode)->delayed_node = NULL;
1224 btrfs_release_delayed_node(delayed_node);
1225}
1226
1227struct btrfs_async_delayed_node {
1228 struct btrfs_root *root;
1229 struct btrfs_delayed_node *delayed_node;
1230 struct btrfs_work work;
1231};
1232
1233static void btrfs_async_run_delayed_node_done(struct btrfs_work *work)
1234{
1235 struct btrfs_async_delayed_node *async_node;
1236 struct btrfs_trans_handle *trans;
1237 struct btrfs_path *path;
1238 struct btrfs_delayed_node *delayed_node = NULL;
1239 struct btrfs_root *root;
1240 struct btrfs_block_rsv *block_rsv;
1241 unsigned long nr = 0;
1242 int need_requeue = 0;
1243 int ret;
1244
1245 async_node = container_of(work, struct btrfs_async_delayed_node, work);
1246
1247 path = btrfs_alloc_path();
1248 if (!path)
1249 goto out;
1250 path->leave_spinning = 1;
1251
1252 delayed_node = async_node->delayed_node;
1253 root = delayed_node->root;
1254
1255 trans = btrfs_join_transaction(root);
1256 if (IS_ERR(trans))
1257 goto free_path;
1258
1259 block_rsv = trans->block_rsv;
1260 trans->block_rsv = &root->fs_info->delayed_block_rsv;
1261
1262 ret = btrfs_insert_delayed_items(trans, path, root, delayed_node);
1263 if (!ret)
1264 ret = btrfs_delete_delayed_items(trans, path, root,
1265 delayed_node);
1266
1267 if (!ret)
1268 btrfs_update_delayed_inode(trans, root, path, delayed_node);
1269
1270 /*
1271 * Maybe new delayed items have been inserted, so we need requeue
1272 * the work. Besides that, we must dequeue the empty delayed nodes
1273 * to avoid the race between delayed items balance and the worker.
1274 * The race like this:
1275 * Task1 Worker thread
1276 * count == 0, needn't requeue
1277 * also needn't insert the
1278 * delayed node into prepare
1279 * list again.
1280 * add lots of delayed items
1281 * queue the delayed node
1282 * already in the list,
1283 * and not in the prepare
1284 * list, it means the delayed
1285 * node is being dealt with
1286 * by the worker.
1287 * do delayed items balance
1288 * the delayed node is being
1289 * dealt with by the worker
1290 * now, just wait.
1291 * the worker goto idle.
1292 * Task1 will sleep until the transaction is commited.
1293 */
1294 mutex_lock(&delayed_node->mutex);
1295 if (delayed_node->count)
1296 need_requeue = 1;
1297 else
1298 btrfs_dequeue_delayed_node(root->fs_info->delayed_root,
1299 delayed_node);
1300 mutex_unlock(&delayed_node->mutex);
1301
1302 nr = trans->blocks_used;
1303
1304 trans->block_rsv = block_rsv;
1305 btrfs_end_transaction_dmeta(trans, root);
1306 __btrfs_btree_balance_dirty(root, nr);
1307free_path:
1308 btrfs_free_path(path);
1309out:
1310 if (need_requeue)
1311 btrfs_requeue_work(&async_node->work);
1312 else {
1313 btrfs_release_prepared_delayed_node(delayed_node);
1314 kfree(async_node);
1315 }
1316}
1317
1318static int btrfs_wq_run_delayed_node(struct btrfs_delayed_root *delayed_root,
1319 struct btrfs_root *root, int all)
1320{
1321 struct btrfs_async_delayed_node *async_node;
1322 struct btrfs_delayed_node *curr;
1323 int count = 0;
1324
1325again:
1326 curr = btrfs_first_prepared_delayed_node(delayed_root);
1327 if (!curr)
1328 return 0;
1329
1330 async_node = kmalloc(sizeof(*async_node), GFP_NOFS);
1331 if (!async_node) {
1332 btrfs_release_prepared_delayed_node(curr);
1333 return -ENOMEM;
1334 }
1335
1336 async_node->root = root;
1337 async_node->delayed_node = curr;
1338
1339 async_node->work.func = btrfs_async_run_delayed_node_done;
1340 async_node->work.flags = 0;
1341
1342 btrfs_queue_worker(&root->fs_info->delayed_workers, &async_node->work);
1343 count++;
1344
1345 if (all || count < 4)
1346 goto again;
1347
1348 return 0;
1349}
1350
1351void btrfs_assert_delayed_root_empty(struct btrfs_root *root)
1352{
1353 struct btrfs_delayed_root *delayed_root;
1354 delayed_root = btrfs_get_delayed_root(root);
1355 WARN_ON(btrfs_first_delayed_node(delayed_root));
1356}
1357
1358void btrfs_balance_delayed_items(struct btrfs_root *root)
1359{
1360 struct btrfs_delayed_root *delayed_root;
1361
1362 delayed_root = btrfs_get_delayed_root(root);
1363
1364 if (atomic_read(&delayed_root->items) < BTRFS_DELAYED_BACKGROUND)
1365 return;
1366
1367 if (atomic_read(&delayed_root->items) >= BTRFS_DELAYED_WRITEBACK) {
1368 int ret;
1369 ret = btrfs_wq_run_delayed_node(delayed_root, root, 1);
1370 if (ret)
1371 return;
1372
1373 wait_event_interruptible_timeout(
1374 delayed_root->wait,
1375 (atomic_read(&delayed_root->items) <
1376 BTRFS_DELAYED_BACKGROUND),
1377 HZ);
1378 return;
1379 }
1380
1381 btrfs_wq_run_delayed_node(delayed_root, root, 0);
1382}
1383
1384/* Will return 0 or -ENOMEM */
1385int btrfs_insert_delayed_dir_index(struct btrfs_trans_handle *trans,
1386 struct btrfs_root *root, const char *name,
1387 int name_len, struct inode *dir,
1388 struct btrfs_disk_key *disk_key, u8 type,
1389 u64 index)
1390{
1391 struct btrfs_delayed_node *delayed_node;
1392 struct btrfs_delayed_item *delayed_item;
1393 struct btrfs_dir_item *dir_item;
1394 int ret;
1395
1396 delayed_node = btrfs_get_or_create_delayed_node(dir);
1397 if (IS_ERR(delayed_node))
1398 return PTR_ERR(delayed_node);
1399
1400 delayed_item = btrfs_alloc_delayed_item(sizeof(*dir_item) + name_len);
1401 if (!delayed_item) {
1402 ret = -ENOMEM;
1403 goto release_node;
1404 }
1405
1406 delayed_item->key.objectid = btrfs_ino(dir);
1407 btrfs_set_key_type(&delayed_item->key, BTRFS_DIR_INDEX_KEY);
1408 delayed_item->key.offset = index;
1409
1410 dir_item = (struct btrfs_dir_item *)delayed_item->data;
1411 dir_item->location = *disk_key;
1412 dir_item->transid = cpu_to_le64(trans->transid);
1413 dir_item->data_len = 0;
1414 dir_item->name_len = cpu_to_le16(name_len);
1415 dir_item->type = type;
1416 memcpy((char *)(dir_item + 1), name, name_len);
1417
1418 ret = btrfs_delayed_item_reserve_metadata(trans, root, delayed_item);
1419 /*
1420 * we have reserved enough space when we start a new transaction,
1421 * so reserving metadata failure is impossible
1422 */
1423 BUG_ON(ret);
1424
1425
1426 mutex_lock(&delayed_node->mutex);
1427 ret = __btrfs_add_delayed_insertion_item(delayed_node, delayed_item);
1428 if (unlikely(ret)) {
1429 printk(KERN_ERR "err add delayed dir index item(name: %s) into "
1430 "the insertion tree of the delayed node"
1431 "(root id: %llu, inode id: %llu, errno: %d)\n",
1432 name,
1433 (unsigned long long)delayed_node->root->objectid,
1434 (unsigned long long)delayed_node->inode_id,
1435 ret);
1436 BUG();
1437 }
1438 mutex_unlock(&delayed_node->mutex);
1439
1440release_node:
1441 btrfs_release_delayed_node(delayed_node);
1442 return ret;
1443}
1444
1445static int btrfs_delete_delayed_insertion_item(struct btrfs_root *root,
1446 struct btrfs_delayed_node *node,
1447 struct btrfs_key *key)
1448{
1449 struct btrfs_delayed_item *item;
1450
1451 mutex_lock(&node->mutex);
1452 item = __btrfs_lookup_delayed_insertion_item(node, key);
1453 if (!item) {
1454 mutex_unlock(&node->mutex);
1455 return 1;
1456 }
1457
1458 btrfs_delayed_item_release_metadata(root, item);
1459 btrfs_release_delayed_item(item);
1460 mutex_unlock(&node->mutex);
1461 return 0;
1462}
1463
1464int btrfs_delete_delayed_dir_index(struct btrfs_trans_handle *trans,
1465 struct btrfs_root *root, struct inode *dir,
1466 u64 index)
1467{
1468 struct btrfs_delayed_node *node;
1469 struct btrfs_delayed_item *item;
1470 struct btrfs_key item_key;
1471 int ret;
1472
1473 node = btrfs_get_or_create_delayed_node(dir);
1474 if (IS_ERR(node))
1475 return PTR_ERR(node);
1476
1477 item_key.objectid = btrfs_ino(dir);
1478 btrfs_set_key_type(&item_key, BTRFS_DIR_INDEX_KEY);
1479 item_key.offset = index;
1480
1481 ret = btrfs_delete_delayed_insertion_item(root, node, &item_key);
1482 if (!ret)
1483 goto end;
1484
1485 item = btrfs_alloc_delayed_item(0);
1486 if (!item) {
1487 ret = -ENOMEM;
1488 goto end;
1489 }
1490
1491 item->key = item_key;
1492
1493 ret = btrfs_delayed_item_reserve_metadata(trans, root, item);
1494 /*
1495 * we have reserved enough space when we start a new transaction,
1496 * so reserving metadata failure is impossible.
1497 */
1498 BUG_ON(ret);
1499
1500 mutex_lock(&node->mutex);
1501 ret = __btrfs_add_delayed_deletion_item(node, item);
1502 if (unlikely(ret)) {
1503 printk(KERN_ERR "err add delayed dir index item(index: %llu) "
1504 "into the deletion tree of the delayed node"
1505 "(root id: %llu, inode id: %llu, errno: %d)\n",
1506 (unsigned long long)index,
1507 (unsigned long long)node->root->objectid,
1508 (unsigned long long)node->inode_id,
1509 ret);
1510 BUG();
1511 }
1512 mutex_unlock(&node->mutex);
1513end:
1514 btrfs_release_delayed_node(node);
1515 return ret;
1516}
1517
1518int btrfs_inode_delayed_dir_index_count(struct inode *inode)
1519{
1520 struct btrfs_delayed_node *delayed_node = btrfs_get_delayed_node(inode);
1521
1522 if (!delayed_node)
1523 return -ENOENT;
1524
1525 /*
1526 * Since we have held i_mutex of this directory, it is impossible that
1527 * a new directory index is added into the delayed node and index_cnt
1528 * is updated now. So we needn't lock the delayed node.
1529 */
1530 if (!delayed_node->index_cnt) {
1531 btrfs_release_delayed_node(delayed_node);
1532 return -EINVAL;
1533 }
1534
1535 BTRFS_I(inode)->index_cnt = delayed_node->index_cnt;
1536 btrfs_release_delayed_node(delayed_node);
1537 return 0;
1538}
1539
1540void btrfs_get_delayed_items(struct inode *inode, struct list_head *ins_list,
1541 struct list_head *del_list)
1542{
1543 struct btrfs_delayed_node *delayed_node;
1544 struct btrfs_delayed_item *item;
1545
1546 delayed_node = btrfs_get_delayed_node(inode);
1547 if (!delayed_node)
1548 return;
1549
1550 mutex_lock(&delayed_node->mutex);
1551 item = __btrfs_first_delayed_insertion_item(delayed_node);
1552 while (item) {
1553 atomic_inc(&item->refs);
1554 list_add_tail(&item->readdir_list, ins_list);
1555 item = __btrfs_next_delayed_item(item);
1556 }
1557
1558 item = __btrfs_first_delayed_deletion_item(delayed_node);
1559 while (item) {
1560 atomic_inc(&item->refs);
1561 list_add_tail(&item->readdir_list, del_list);
1562 item = __btrfs_next_delayed_item(item);
1563 }
1564 mutex_unlock(&delayed_node->mutex);
1565 /*
1566 * This delayed node is still cached in the btrfs inode, so refs
1567 * must be > 1 now, and we needn't check it is going to be freed
1568 * or not.
1569 *
1570 * Besides that, this function is used to read dir, we do not
1571 * insert/delete delayed items in this period. So we also needn't
1572 * requeue or dequeue this delayed node.
1573 */
1574 atomic_dec(&delayed_node->refs);
1575}
1576
1577void btrfs_put_delayed_items(struct list_head *ins_list,
1578 struct list_head *del_list)
1579{
1580 struct btrfs_delayed_item *curr, *next;
1581
1582 list_for_each_entry_safe(curr, next, ins_list, readdir_list) {
1583 list_del(&curr->readdir_list);
1584 if (atomic_dec_and_test(&curr->refs))
1585 kfree(curr);
1586 }
1587
1588 list_for_each_entry_safe(curr, next, del_list, readdir_list) {
1589 list_del(&curr->readdir_list);
1590 if (atomic_dec_and_test(&curr->refs))
1591 kfree(curr);
1592 }
1593}
1594
1595int btrfs_should_delete_dir_index(struct list_head *del_list,
1596 u64 index)
1597{
1598 struct btrfs_delayed_item *curr, *next;
1599 int ret;
1600
1601 if (list_empty(del_list))
1602 return 0;
1603
1604 list_for_each_entry_safe(curr, next, del_list, readdir_list) {
1605 if (curr->key.offset > index)
1606 break;
1607
1608 list_del(&curr->readdir_list);
1609 ret = (curr->key.offset == index);
1610
1611 if (atomic_dec_and_test(&curr->refs))
1612 kfree(curr);
1613
1614 if (ret)
1615 return 1;
1616 else
1617 continue;
1618 }
1619 return 0;
1620}
1621
1622/*
1623 * btrfs_readdir_delayed_dir_index - read dir info stored in the delayed tree
1624 *
1625 */
1626int btrfs_readdir_delayed_dir_index(struct file *filp, void *dirent,
1627 filldir_t filldir,
1628 struct list_head *ins_list)
1629{
1630 struct btrfs_dir_item *di;
1631 struct btrfs_delayed_item *curr, *next;
1632 struct btrfs_key location;
1633 char *name;
1634 int name_len;
1635 int over = 0;
1636 unsigned char d_type;
1637
1638 if (list_empty(ins_list))
1639 return 0;
1640
1641 /*
1642 * Changing the data of the delayed item is impossible. So
1643 * we needn't lock them. And we have held i_mutex of the
1644 * directory, nobody can delete any directory indexes now.
1645 */
1646 list_for_each_entry_safe(curr, next, ins_list, readdir_list) {
1647 list_del(&curr->readdir_list);
1648
1649 if (curr->key.offset < filp->f_pos) {
1650 if (atomic_dec_and_test(&curr->refs))
1651 kfree(curr);
1652 continue;
1653 }
1654
1655 filp->f_pos = curr->key.offset;
1656
1657 di = (struct btrfs_dir_item *)curr->data;
1658 name = (char *)(di + 1);
1659 name_len = le16_to_cpu(di->name_len);
1660
1661 d_type = btrfs_filetype_table[di->type];
1662 btrfs_disk_key_to_cpu(&location, &di->location);
1663
1664 over = filldir(dirent, name, name_len, curr->key.offset,
1665 location.objectid, d_type);
1666
1667 if (atomic_dec_and_test(&curr->refs))
1668 kfree(curr);
1669
1670 if (over)
1671 return 1;
1672 }
1673 return 0;
1674}
1675
1676BTRFS_SETGET_STACK_FUNCS(stack_inode_generation, struct btrfs_inode_item,
1677 generation, 64);
1678BTRFS_SETGET_STACK_FUNCS(stack_inode_sequence, struct btrfs_inode_item,
1679 sequence, 64);
1680BTRFS_SETGET_STACK_FUNCS(stack_inode_transid, struct btrfs_inode_item,
1681 transid, 64);
1682BTRFS_SETGET_STACK_FUNCS(stack_inode_size, struct btrfs_inode_item, size, 64);
1683BTRFS_SETGET_STACK_FUNCS(stack_inode_nbytes, struct btrfs_inode_item,
1684 nbytes, 64);
1685BTRFS_SETGET_STACK_FUNCS(stack_inode_block_group, struct btrfs_inode_item,
1686 block_group, 64);
1687BTRFS_SETGET_STACK_FUNCS(stack_inode_nlink, struct btrfs_inode_item, nlink, 32);
1688BTRFS_SETGET_STACK_FUNCS(stack_inode_uid, struct btrfs_inode_item, uid, 32);
1689BTRFS_SETGET_STACK_FUNCS(stack_inode_gid, struct btrfs_inode_item, gid, 32);
1690BTRFS_SETGET_STACK_FUNCS(stack_inode_mode, struct btrfs_inode_item, mode, 32);
1691BTRFS_SETGET_STACK_FUNCS(stack_inode_rdev, struct btrfs_inode_item, rdev, 64);
1692BTRFS_SETGET_STACK_FUNCS(stack_inode_flags, struct btrfs_inode_item, flags, 64);
1693
1694BTRFS_SETGET_STACK_FUNCS(stack_timespec_sec, struct btrfs_timespec, sec, 64);
1695BTRFS_SETGET_STACK_FUNCS(stack_timespec_nsec, struct btrfs_timespec, nsec, 32);
1696
1697static void fill_stack_inode_item(struct btrfs_trans_handle *trans,
1698 struct btrfs_inode_item *inode_item,
1699 struct inode *inode)
1700{
1701 btrfs_set_stack_inode_uid(inode_item, inode->i_uid);
1702 btrfs_set_stack_inode_gid(inode_item, inode->i_gid);
1703 btrfs_set_stack_inode_size(inode_item, BTRFS_I(inode)->disk_i_size);
1704 btrfs_set_stack_inode_mode(inode_item, inode->i_mode);
1705 btrfs_set_stack_inode_nlink(inode_item, inode->i_nlink);
1706 btrfs_set_stack_inode_nbytes(inode_item, inode_get_bytes(inode));
1707 btrfs_set_stack_inode_generation(inode_item,
1708 BTRFS_I(inode)->generation);
1709 btrfs_set_stack_inode_sequence(inode_item, inode->i_version);
1710 btrfs_set_stack_inode_transid(inode_item, trans->transid);
1711 btrfs_set_stack_inode_rdev(inode_item, inode->i_rdev);
1712 btrfs_set_stack_inode_flags(inode_item, BTRFS_I(inode)->flags);
1713 btrfs_set_stack_inode_block_group(inode_item, 0);
1714
1715 btrfs_set_stack_timespec_sec(btrfs_inode_atime(inode_item),
1716 inode->i_atime.tv_sec);
1717 btrfs_set_stack_timespec_nsec(btrfs_inode_atime(inode_item),
1718 inode->i_atime.tv_nsec);
1719
1720 btrfs_set_stack_timespec_sec(btrfs_inode_mtime(inode_item),
1721 inode->i_mtime.tv_sec);
1722 btrfs_set_stack_timespec_nsec(btrfs_inode_mtime(inode_item),
1723 inode->i_mtime.tv_nsec);
1724
1725 btrfs_set_stack_timespec_sec(btrfs_inode_ctime(inode_item),
1726 inode->i_ctime.tv_sec);
1727 btrfs_set_stack_timespec_nsec(btrfs_inode_ctime(inode_item),
1728 inode->i_ctime.tv_nsec);
1729}
1730
1731int btrfs_fill_inode(struct inode *inode, u32 *rdev)
1732{
1733 struct btrfs_delayed_node *delayed_node;
1734 struct btrfs_inode_item *inode_item;
1735 struct btrfs_timespec *tspec;
1736
1737 delayed_node = btrfs_get_delayed_node(inode);
1738 if (!delayed_node)
1739 return -ENOENT;
1740
1741 mutex_lock(&delayed_node->mutex);
1742 if (!delayed_node->inode_dirty) {
1743 mutex_unlock(&delayed_node->mutex);
1744 btrfs_release_delayed_node(delayed_node);
1745 return -ENOENT;
1746 }
1747
1748 inode_item = &delayed_node->inode_item;
1749
1750 inode->i_uid = btrfs_stack_inode_uid(inode_item);
1751 inode->i_gid = btrfs_stack_inode_gid(inode_item);
1752 btrfs_i_size_write(inode, btrfs_stack_inode_size(inode_item));
1753 inode->i_mode = btrfs_stack_inode_mode(inode_item);
1754 set_nlink(inode, btrfs_stack_inode_nlink(inode_item));
1755 inode_set_bytes(inode, btrfs_stack_inode_nbytes(inode_item));
1756 BTRFS_I(inode)->generation = btrfs_stack_inode_generation(inode_item);
1757 inode->i_version = btrfs_stack_inode_sequence(inode_item);
1758 inode->i_rdev = 0;
1759 *rdev = btrfs_stack_inode_rdev(inode_item);
1760 BTRFS_I(inode)->flags = btrfs_stack_inode_flags(inode_item);
1761
1762 tspec = btrfs_inode_atime(inode_item);
1763 inode->i_atime.tv_sec = btrfs_stack_timespec_sec(tspec);
1764 inode->i_atime.tv_nsec = btrfs_stack_timespec_nsec(tspec);
1765
1766 tspec = btrfs_inode_mtime(inode_item);
1767 inode->i_mtime.tv_sec = btrfs_stack_timespec_sec(tspec);
1768 inode->i_mtime.tv_nsec = btrfs_stack_timespec_nsec(tspec);
1769
1770 tspec = btrfs_inode_ctime(inode_item);
1771 inode->i_ctime.tv_sec = btrfs_stack_timespec_sec(tspec);
1772 inode->i_ctime.tv_nsec = btrfs_stack_timespec_nsec(tspec);
1773
1774 inode->i_generation = BTRFS_I(inode)->generation;
1775 BTRFS_I(inode)->index_cnt = (u64)-1;
1776
1777 mutex_unlock(&delayed_node->mutex);
1778 btrfs_release_delayed_node(delayed_node);
1779 return 0;
1780}
1781
1782int btrfs_delayed_update_inode(struct btrfs_trans_handle *trans,
1783 struct btrfs_root *root, struct inode *inode)
1784{
1785 struct btrfs_delayed_node *delayed_node;
1786 int ret = 0;
1787
1788 delayed_node = btrfs_get_or_create_delayed_node(inode);
1789 if (IS_ERR(delayed_node))
1790 return PTR_ERR(delayed_node);
1791
1792 mutex_lock(&delayed_node->mutex);
1793 if (delayed_node->inode_dirty) {
1794 fill_stack_inode_item(trans, &delayed_node->inode_item, inode);
1795 goto release_node;
1796 }
1797
1798 ret = btrfs_delayed_inode_reserve_metadata(trans, root, inode,
1799 delayed_node);
1800 if (ret)
1801 goto release_node;
1802
1803 fill_stack_inode_item(trans, &delayed_node->inode_item, inode);
1804 delayed_node->inode_dirty = 1;
1805 delayed_node->count++;
1806 atomic_inc(&root->fs_info->delayed_root->items);
1807release_node:
1808 mutex_unlock(&delayed_node->mutex);
1809 btrfs_release_delayed_node(delayed_node);
1810 return ret;
1811}
1812
1813static void __btrfs_kill_delayed_node(struct btrfs_delayed_node *delayed_node)
1814{
1815 struct btrfs_root *root = delayed_node->root;
1816 struct btrfs_delayed_item *curr_item, *prev_item;
1817
1818 mutex_lock(&delayed_node->mutex);
1819 curr_item = __btrfs_first_delayed_insertion_item(delayed_node);
1820 while (curr_item) {
1821 btrfs_delayed_item_release_metadata(root, curr_item);
1822 prev_item = curr_item;
1823 curr_item = __btrfs_next_delayed_item(prev_item);
1824 btrfs_release_delayed_item(prev_item);
1825 }
1826
1827 curr_item = __btrfs_first_delayed_deletion_item(delayed_node);
1828 while (curr_item) {
1829 btrfs_delayed_item_release_metadata(root, curr_item);
1830 prev_item = curr_item;
1831 curr_item = __btrfs_next_delayed_item(prev_item);
1832 btrfs_release_delayed_item(prev_item);
1833 }
1834
1835 if (delayed_node->inode_dirty) {
1836 btrfs_delayed_inode_release_metadata(root, delayed_node);
1837 btrfs_release_delayed_inode(delayed_node);
1838 }
1839 mutex_unlock(&delayed_node->mutex);
1840}
1841
1842void btrfs_kill_delayed_inode_items(struct inode *inode)
1843{
1844 struct btrfs_delayed_node *delayed_node;
1845
1846 delayed_node = btrfs_get_delayed_node(inode);
1847 if (!delayed_node)
1848 return;
1849
1850 __btrfs_kill_delayed_node(delayed_node);
1851 btrfs_release_delayed_node(delayed_node);
1852}
1853
1854void btrfs_kill_all_delayed_nodes(struct btrfs_root *root)
1855{
1856 u64 inode_id = 0;
1857 struct btrfs_delayed_node *delayed_nodes[8];
1858 int i, n;
1859
1860 while (1) {
1861 spin_lock(&root->inode_lock);
1862 n = radix_tree_gang_lookup(&root->delayed_nodes_tree,
1863 (void **)delayed_nodes, inode_id,
1864 ARRAY_SIZE(delayed_nodes));
1865 if (!n) {
1866 spin_unlock(&root->inode_lock);
1867 break;
1868 }
1869
1870 inode_id = delayed_nodes[n - 1]->inode_id + 1;
1871
1872 for (i = 0; i < n; i++)
1873 atomic_inc(&delayed_nodes[i]->refs);
1874 spin_unlock(&root->inode_lock);
1875
1876 for (i = 0; i < n; i++) {
1877 __btrfs_kill_delayed_node(delayed_nodes[i]);
1878 btrfs_release_delayed_node(delayed_nodes[i]);
1879 }
1880 }
1881}
1882
1883void btrfs_destroy_delayed_inodes(struct btrfs_root *root)
1884{
1885 struct btrfs_delayed_root *delayed_root;
1886 struct btrfs_delayed_node *curr_node, *prev_node;
1887
1888 delayed_root = btrfs_get_delayed_root(root);
1889
1890 curr_node = btrfs_first_delayed_node(delayed_root);
1891 while (curr_node) {
1892 __btrfs_kill_delayed_node(curr_node);
1893
1894 prev_node = curr_node;
1895 curr_node = btrfs_next_delayed_node(curr_node);
1896 btrfs_release_delayed_node(prev_node);
1897 }
1898}
1899