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Update bcachefs sources to 4837f82ee1 bcachefs: Use cached iterators for alloc btree
[bcachefs-tools-debian] / libbcachefs / btree_update_interior.h
1 /* SPDX-License-Identifier: GPL-2.0 */
2 #ifndef _BCACHEFS_BTREE_UPDATE_INTERIOR_H
3 #define _BCACHEFS_BTREE_UPDATE_INTERIOR_H
4
5 #include "btree_cache.h"
6 #include "btree_locking.h"
7 #include "btree_update.h"
8
9 void __bch2_btree_calc_format(struct bkey_format_state *, struct btree *);
10 bool bch2_btree_node_format_fits(struct bch_fs *c, struct btree *,
11                                 struct bkey_format *);
12
13 #define BTREE_UPDATE_NODES_MAX          ((BTREE_MAX_DEPTH - 2) * 2 + GC_MERGE_NODES)
14
15 #define BTREE_UPDATE_JOURNAL_RES        (BTREE_UPDATE_NODES_MAX * (BKEY_BTREE_PTR_U64s_MAX + 1))
16
17 /*
18  * Tracks an in progress split/rewrite of a btree node and the update to the
19  * parent node:
20  *
21  * When we split/rewrite a node, we do all the updates in memory without
22  * waiting for any writes to complete - we allocate the new node(s) and update
23  * the parent node, possibly recursively up to the root.
24  *
25  * The end result is that we have one or more new nodes being written -
26  * possibly several, if there were multiple splits - and then a write (updating
27  * an interior node) which will make all these new nodes visible.
28  *
29  * Additionally, as we split/rewrite nodes we free the old nodes - but the old
30  * nodes can't be freed (their space on disk can't be reclaimed) until the
31  * update to the interior node that makes the new node visible completes -
32  * until then, the old nodes are still reachable on disk.
33  *
34  */
35 struct btree_update {
36         struct closure                  cl;
37         struct bch_fs                   *c;
38
39         struct list_head                list;
40         struct list_head                unwritten_list;
41
42         /* What kind of update are we doing? */
43         enum {
44                 BTREE_INTERIOR_NO_UPDATE,
45                 BTREE_INTERIOR_UPDATING_NODE,
46                 BTREE_INTERIOR_UPDATING_ROOT,
47                 BTREE_INTERIOR_UPDATING_AS,
48         } mode;
49
50         unsigned                        must_rewrite:1;
51         unsigned                        nodes_written:1;
52
53         enum btree_id                   btree_id;
54
55         struct disk_reservation         disk_res;
56         struct journal_preres           journal_preres;
57
58         /*
59          * BTREE_INTERIOR_UPDATING_NODE:
60          * The update that made the new nodes visible was a regular update to an
61          * existing interior node - @b. We can't write out the update to @b
62          * until the new nodes we created are finished writing, so we block @b
63          * from writing by putting this btree_interior update on the
64          * @b->write_blocked list with @write_blocked_list:
65          */
66         struct btree                    *b;
67         struct list_head                write_blocked_list;
68
69         /*
70          * We may be freeing nodes that were dirty, and thus had journal entries
71          * pinned: we need to transfer the oldest of those pins to the
72          * btree_update operation, and release it when the new node(s)
73          * are all persistent and reachable:
74          */
75         struct journal_entry_pin        journal;
76
77         /* Preallocated nodes we reserve when we start the update: */
78         struct btree                    *prealloc_nodes[BTREE_UPDATE_NODES_MAX];
79         unsigned                        nr_prealloc_nodes;
80
81         /* Nodes being freed: */
82         struct keylist                  old_keys;
83         u64                             _old_keys[BTREE_UPDATE_NODES_MAX *
84                                                   BKEY_BTREE_PTR_VAL_U64s_MAX];
85
86         /* Nodes being added: */
87         struct keylist                  new_keys;
88         u64                             _new_keys[BTREE_UPDATE_NODES_MAX *
89                                                   BKEY_BTREE_PTR_VAL_U64s_MAX];
90
91         /* New nodes, that will be made reachable by this update: */
92         struct btree                    *new_nodes[BTREE_UPDATE_NODES_MAX];
93         unsigned                        nr_new_nodes;
94
95         open_bucket_idx_t               open_buckets[BTREE_UPDATE_NODES_MAX *
96                                                      BCH_REPLICAS_MAX];
97         open_bucket_idx_t               nr_open_buckets;
98
99         unsigned                        journal_u64s;
100         u64                             journal_entries[BTREE_UPDATE_JOURNAL_RES];
101
102         /* Only here to reduce stack usage on recursive splits: */
103         struct keylist                  parent_keys;
104         /*
105          * Enough room for btree_split's keys without realloc - btree node
106          * pointers never have crc/compression info, so we only need to acount
107          * for the pointers for three keys
108          */
109         u64                             inline_keys[BKEY_BTREE_PTR_U64s_MAX * 3];
110 };
111
112 void bch2_btree_node_free_inmem(struct bch_fs *, struct btree *,
113                                 struct btree_iter *);
114 void bch2_btree_node_free_never_inserted(struct bch_fs *, struct btree *);
115
116 void bch2_btree_update_get_open_buckets(struct btree_update *, struct btree *);
117
118 struct btree *__bch2_btree_node_alloc_replacement(struct btree_update *,
119                                                   struct btree *,
120                                                   struct bkey_format);
121
122 void bch2_btree_update_done(struct btree_update *);
123 struct btree_update *
124 bch2_btree_update_start(struct btree_trans *, enum btree_id, unsigned,
125                         unsigned, struct closure *);
126
127 void bch2_btree_interior_update_will_free_node(struct btree_update *,
128                                                struct btree *);
129 void bch2_btree_update_add_new_node(struct btree_update *, struct btree *);
130
131 void bch2_btree_insert_node(struct btree_update *, struct btree *,
132                             struct btree_iter *, struct keylist *,
133                             unsigned);
134 int bch2_btree_split_leaf(struct bch_fs *, struct btree_iter *, unsigned);
135
136 void __bch2_foreground_maybe_merge(struct bch_fs *, struct btree_iter *,
137                                    unsigned, unsigned, enum btree_node_sibling);
138
139 static inline void bch2_foreground_maybe_merge_sibling(struct bch_fs *c,
140                                         struct btree_iter *iter,
141                                         unsigned level, unsigned flags,
142                                         enum btree_node_sibling sib)
143 {
144         struct btree *b;
145
146         if (iter->uptodate >= BTREE_ITER_NEED_TRAVERSE)
147                 return;
148
149         if (!bch2_btree_node_relock(iter, level))
150                 return;
151
152         b = iter->l[level].b;
153         if (b->sib_u64s[sib] > c->btree_foreground_merge_threshold)
154                 return;
155
156         __bch2_foreground_maybe_merge(c, iter, level, flags, sib);
157 }
158
159 static inline void bch2_foreground_maybe_merge(struct bch_fs *c,
160                                                struct btree_iter *iter,
161                                                unsigned level,
162                                                unsigned flags)
163 {
164         bch2_foreground_maybe_merge_sibling(c, iter, level, flags,
165                                             btree_prev_sib);
166         bch2_foreground_maybe_merge_sibling(c, iter, level, flags,
167                                             btree_next_sib);
168 }
169
170 void bch2_btree_set_root_for_read(struct bch_fs *, struct btree *);
171 void bch2_btree_root_alloc(struct bch_fs *, enum btree_id);
172
173 static inline unsigned btree_update_reserve_required(struct bch_fs *c,
174                                                      struct btree *b)
175 {
176         unsigned depth = btree_node_root(c, b)->c.level + 1;
177
178         /*
179          * Number of nodes we might have to allocate in a worst case btree
180          * split operation - we split all the way up to the root, then allocate
181          * a new root, unless we're already at max depth:
182          */
183         if (depth < BTREE_MAX_DEPTH)
184                 return (depth - b->c.level) * 2 + 1;
185         else
186                 return (depth - b->c.level) * 2 - 1;
187 }
188
189 static inline void btree_node_reset_sib_u64s(struct btree *b)
190 {
191         b->sib_u64s[0] = b->nr.live_u64s;
192         b->sib_u64s[1] = b->nr.live_u64s;
193 }
194
195 static inline void *btree_data_end(struct bch_fs *c, struct btree *b)
196 {
197         return (void *) b->data + btree_bytes(c);
198 }
199
200 static inline struct bkey_packed *unwritten_whiteouts_start(struct bch_fs *c,
201                                                             struct btree *b)
202 {
203         return (void *) ((u64 *) btree_data_end(c, b) - b->whiteout_u64s);
204 }
205
206 static inline struct bkey_packed *unwritten_whiteouts_end(struct bch_fs *c,
207                                                           struct btree *b)
208 {
209         return btree_data_end(c, b);
210 }
211
212 static inline void *write_block(struct btree *b)
213 {
214         return (void *) b->data + (b->written << 9);
215 }
216
217 static inline bool __btree_addr_written(struct btree *b, void *p)
218 {
219         return p < write_block(b);
220 }
221
222 static inline bool bset_written(struct btree *b, struct bset *i)
223 {
224         return __btree_addr_written(b, i);
225 }
226
227 static inline bool bkey_written(struct btree *b, struct bkey_packed *k)
228 {
229         return __btree_addr_written(b, k);
230 }
231
232 static inline ssize_t __bch_btree_u64s_remaining(struct bch_fs *c,
233                                                  struct btree *b,
234                                                  void *end)
235 {
236         ssize_t used = bset_byte_offset(b, end) / sizeof(u64) +
237                 b->whiteout_u64s;
238         ssize_t total = c->opts.btree_node_size << 6;
239
240         return total - used;
241 }
242
243 static inline size_t bch_btree_keys_u64s_remaining(struct bch_fs *c,
244                                                    struct btree *b)
245 {
246         ssize_t remaining = __bch_btree_u64s_remaining(c, b,
247                                 btree_bkey_last(b, bset_tree_last(b)));
248
249         BUG_ON(remaining < 0);
250
251         if (bset_written(b, btree_bset_last(b)))
252                 return 0;
253
254         return remaining;
255 }
256
257 static inline unsigned btree_write_set_buffer(struct btree *b)
258 {
259         /*
260          * Could buffer up larger amounts of keys for btrees with larger keys,
261          * pending benchmarking:
262          */
263         return 4 << 10;
264 }
265
266 static inline struct btree_node_entry *want_new_bset(struct bch_fs *c,
267                                                      struct btree *b)
268 {
269         struct bset_tree *t = bset_tree_last(b);
270         struct btree_node_entry *bne = max(write_block(b),
271                         (void *) btree_bkey_last(b, bset_tree_last(b)));
272         ssize_t remaining_space =
273                 __bch_btree_u64s_remaining(c, b, &bne->keys.start[0]);
274
275         if (unlikely(bset_written(b, bset(b, t)))) {
276                 if (remaining_space > (ssize_t) (block_bytes(c) >> 3))
277                         return bne;
278         } else {
279                 if (unlikely(bset_u64s(t) * sizeof(u64) > btree_write_set_buffer(b)) &&
280                     remaining_space > (ssize_t) (btree_write_set_buffer(b) >> 3))
281                         return bne;
282         }
283
284         return NULL;
285 }
286
287 static inline void push_whiteout(struct bch_fs *c, struct btree *b,
288                                  struct bpos pos)
289 {
290         struct bkey_packed k;
291
292         BUG_ON(bch_btree_keys_u64s_remaining(c, b) < BKEY_U64s);
293
294         if (!bkey_pack_pos(&k, pos, b)) {
295                 struct bkey *u = (void *) &k;
296
297                 bkey_init(u);
298                 u->p = pos;
299         }
300
301         k.needs_whiteout = true;
302
303         b->whiteout_u64s += k.u64s;
304         bkey_copy(unwritten_whiteouts_start(c, b), &k);
305 }
306
307 /*
308  * write lock must be held on @b (else the dirty bset that we were going to
309  * insert into could be written out from under us)
310  */
311 static inline bool bch2_btree_node_insert_fits(struct bch_fs *c,
312                                                struct btree *b, unsigned u64s)
313 {
314         if (unlikely(btree_node_fake(b)))
315                 return false;
316
317         return u64s <= bch_btree_keys_u64s_remaining(c, b);
318 }
319
320 ssize_t bch2_btree_updates_print(struct bch_fs *, char *);
321
322 size_t bch2_btree_interior_updates_nr_pending(struct bch_fs *);
323
324 void bch2_journal_entries_to_btree_roots(struct bch_fs *, struct jset *);
325 struct jset_entry *bch2_btree_roots_to_journal_entries(struct bch_fs *,
326                                         struct jset_entry *, struct jset_entry *);
327
328 void bch2_fs_btree_interior_update_exit(struct bch_fs *);
329 int bch2_fs_btree_interior_update_init(struct bch_fs *);
330
331 #endif /* _BCACHEFS_BTREE_UPDATE_INTERIOR_H */