Btrfs: struct extent_item endian
[linux-2.6-block.git] / fs / btrfs / ctree.h
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1#ifndef __CTREE__
2#define __CTREE__
3
ed2ff2cb 4#include "list.h"
e2fa7227 5#include "kerncompat.h"
ed2ff2cb 6
fec577fb 7#define CTREE_BLOCKSIZE 1024
eb60ceac 8
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9/*
10 * the key defines the order in the tree, and so it also defines (optimal)
11 * block layout. objectid corresonds to the inode number. The flags
12 * tells us things about the object, and is a kind of stream selector.
13 * so for a given inode, keys with flags of 1 might refer to the inode
14 * data, flags of 2 may point to file data in the btree and flags == 3
15 * may point to extents.
16 *
17 * offset is the starting byte offset for this key in the stream.
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18 *
19 * btrfs_disk_key is in disk byte order. struct btrfs_key is always
20 * in cpu native order. Otherwise they are identical and their sizes
21 * should be the same (ie both packed)
fec577fb 22 */
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23struct btrfs_disk_key {
24 __le64 objectid;
25 __le32 flags;
26 __le64 offset;
27} __attribute__ ((__packed__));
28
29struct btrfs_key {
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30 u64 objectid;
31 u32 flags;
32 u64 offset;
33} __attribute__ ((__packed__));
34
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35/*
36 * every tree block (leaf or node) starts with this header.
37 */
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38struct btrfs_header {
39 __le64 fsid[2]; /* FS specific uuid */
40 __le64 blocknr; /* which block this node is supposed to live in */
41 __le64 parentid; /* objectid of the tree root */
42 __le32 csum;
43 __le32 ham;
44 __le16 nritems;
45 __le16 flags;
fec577fb 46 /* generation flags to be added */
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47} __attribute__ ((__packed__));
48
7518a238 49#define MAX_LEVEL 8
bb492bb0 50#define NODEPTRS_PER_BLOCK ((CTREE_BLOCKSIZE - sizeof(struct btrfs_header)) / \
e2fa7227 51 (sizeof(struct btrfs_disk_key) + sizeof(u64)))
eb60ceac 52
eb60ceac 53struct tree_buffer;
d97e63b6 54
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55/*
56 * in ram representation of the tree. extent_root is used for all allocations
57 * and for the extent tree extent_root root. current_insert is used
58 * only for the extent tree.
59 */
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60struct ctree_root {
61 struct tree_buffer *node;
a28ec197 62 struct tree_buffer *commit_root;
d97e63b6 63 struct ctree_root *extent_root;
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64 struct btrfs_key current_insert;
65 struct btrfs_key last_insert;
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66 int fp;
67 struct radix_tree_root cache_radix;
a28ec197 68 struct radix_tree_root pinned_radix;
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69 struct list_head trans;
70 struct list_head cache;
71 int cache_size;
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72};
73
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74/*
75 * describes a tree on disk
76 */
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77struct ctree_root_info {
78 u64 fsid[2]; /* FS specific uuid */
79 u64 blocknr; /* blocknr of this block */
80 u64 objectid; /* inode number of this root */
fec577fb 81 u64 tree_root; /* the tree root block */
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82 u32 csum;
83 u32 ham;
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84 u64 snapuuid[2]; /* root specific uuid */
85} __attribute__ ((__packed__));
86
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87/*
88 * the super block basically lists the main trees of the FS
89 * it currently lacks any block count etc etc
90 */
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91struct ctree_super_block {
92 struct ctree_root_info root_info;
93 struct ctree_root_info extent_info;
94} __attribute__ ((__packed__));
95
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96/*
97 * A leaf is full of items. The exact type of item is defined by
98 * the key flags parameter. offset and size tell us where to find
99 * the item in the leaf (relative to the start of the data area)
100 */
0783fcfc 101struct btrfs_item {
e2fa7227 102 struct btrfs_disk_key key;
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103 __le16 offset;
104 __le16 size;
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105} __attribute__ ((__packed__));
106
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107/*
108 * leaves have an item area and a data area:
109 * [item0, item1....itemN] [free space] [dataN...data1, data0]
110 *
111 * The data is separate from the items to get the keys closer together
112 * during searches.
113 */
bb492bb0 114#define LEAF_DATA_SIZE (CTREE_BLOCKSIZE - sizeof(struct btrfs_header))
eb60ceac 115struct leaf {
bb492bb0 116 struct btrfs_header header;
eb60ceac 117 union {
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118 struct btrfs_item items[LEAF_DATA_SIZE/
119 sizeof(struct btrfs_item)];
bb492bb0 120 u8 data[CTREE_BLOCKSIZE-sizeof(struct btrfs_header)];
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121 };
122} __attribute__ ((__packed__));
123
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124/*
125 * all non-leaf blocks are nodes, they hold only keys and pointers to
126 * other blocks
127 */
eb60ceac 128struct node {
bb492bb0 129 struct btrfs_header header;
e2fa7227 130 struct btrfs_disk_key keys[NODEPTRS_PER_BLOCK];
1d4f8a0c 131 __le64 blockptrs[NODEPTRS_PER_BLOCK];
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132} __attribute__ ((__packed__));
133
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134/*
135 * items in the extent btree are used to record the objectid of the
136 * owner of the block and the number of references
137 */
d97e63b6 138struct extent_item {
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139 __le32 refs;
140 __le64 owner;
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141} __attribute__ ((__packed__));
142
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143/*
144 * ctree_paths remember the path taken from the root down to the leaf.
145 * level 0 is always the leaf, and nodes[1...MAX_LEVEL] will point
146 * to any other levels that are present.
147 *
148 * The slots array records the index of the item or block pointer
149 * used while walking the tree.
150 */
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151struct ctree_path {
152 struct tree_buffer *nodes[MAX_LEVEL];
153 int slots[MAX_LEVEL];
154};
5de08d7d 155
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156static inline u64 btrfs_extent_owner(struct extent_item *ei)
157{
158 return le64_to_cpu(ei->owner);
159}
160
161static inline void btrfs_set_extent_owner(struct extent_item *ei, u64 val)
162{
163 ei->owner = cpu_to_le64(val);
164}
165
166static inline u32 btrfs_extent_refs(struct extent_item *ei)
167{
168 return le32_to_cpu(ei->refs);
169}
170
171static inline void btrfs_set_extent_refs(struct extent_item *ei, u32 val)
172{
173 ei->refs = cpu_to_le32(val);
174}
175
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176static inline u64 btrfs_node_blockptr(struct node *n, int nr)
177{
178 return le64_to_cpu(n->blockptrs[nr]);
179}
180
181static inline void btrfs_set_node_blockptr(struct node *n, int nr, u64 val)
182{
183 n->blockptrs[nr] = cpu_to_le64(val);
184}
185
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186static inline u16 btrfs_item_offset(struct btrfs_item *item)
187{
188 return le16_to_cpu(item->offset);
189}
190
191static inline void btrfs_set_item_offset(struct btrfs_item *item, u16 val)
192{
193 item->offset = cpu_to_le16(val);
194}
195
196static inline u16 btrfs_item_end(struct btrfs_item *item)
197{
198 return le16_to_cpu(item->offset) + le16_to_cpu(item->size);
199}
200
201static inline u16 btrfs_item_size(struct btrfs_item *item)
202{
203 return le16_to_cpu(item->size);
204}
205
206static inline void btrfs_set_item_size(struct btrfs_item *item, u16 val)
207{
208 item->size = cpu_to_le16(val);
209}
210
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211static inline void btrfs_disk_key_to_cpu(struct btrfs_key *cpu,
212 struct btrfs_disk_key *disk)
213{
214 cpu->offset = le64_to_cpu(disk->offset);
215 cpu->flags = le32_to_cpu(disk->flags);
216 cpu->objectid = le64_to_cpu(disk->objectid);
217}
218
219static inline void btrfs_cpu_key_to_disk(struct btrfs_disk_key *disk,
220 struct btrfs_key *cpu)
221{
222 disk->offset = cpu_to_le64(cpu->offset);
223 disk->flags = cpu_to_le32(cpu->flags);
224 disk->objectid = cpu_to_le64(cpu->objectid);
225}
226
227static inline u64 btrfs_key_objectid(struct btrfs_disk_key *disk)
228{
229 return le64_to_cpu(disk->objectid);
230}
231
232static inline void btrfs_set_key_objectid(struct btrfs_disk_key *disk,
233 u64 val)
234{
235 disk->objectid = cpu_to_le64(val);
236}
237
238static inline u64 btrfs_key_offset(struct btrfs_disk_key *disk)
239{
240 return le64_to_cpu(disk->offset);
241}
242
243static inline void btrfs_set_key_offset(struct btrfs_disk_key *disk,
244 u64 val)
245{
246 disk->offset = cpu_to_le64(val);
247}
248
249static inline u32 btrfs_key_flags(struct btrfs_disk_key *disk)
250{
251 return le32_to_cpu(disk->flags);
252}
253
254static inline void btrfs_set_key_flags(struct btrfs_disk_key *disk,
255 u32 val)
256{
257 disk->flags = cpu_to_le32(val);
258}
259
bb492bb0 260static inline u64 btrfs_header_blocknr(struct btrfs_header *h)
7518a238 261{
bb492bb0 262 return le64_to_cpu(h->blocknr);
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263}
264
bb492bb0 265static inline void btrfs_set_header_blocknr(struct btrfs_header *h, u64 blocknr)
7518a238 266{
bb492bb0 267 h->blocknr = cpu_to_le64(blocknr);
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268}
269
bb492bb0 270static inline u64 btrfs_header_parentid(struct btrfs_header *h)
7518a238 271{
bb492bb0 272 return le64_to_cpu(h->parentid);
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273}
274
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275static inline void btrfs_set_header_parentid(struct btrfs_header *h,
276 u64 parentid)
7518a238 277{
bb492bb0 278 h->parentid = cpu_to_le64(parentid);
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279}
280
bb492bb0 281static inline u16 btrfs_header_nritems(struct btrfs_header *h)
7518a238 282{
bb492bb0 283 return le16_to_cpu(h->nritems);
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284}
285
bb492bb0 286static inline void btrfs_set_header_nritems(struct btrfs_header *h, u16 val)
7518a238 287{
bb492bb0 288 h->nritems = cpu_to_le16(val);
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289}
290
bb492bb0 291static inline u16 btrfs_header_flags(struct btrfs_header *h)
7518a238 292{
bb492bb0 293 return le16_to_cpu(h->flags);
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294}
295
bb492bb0 296static inline void btrfs_set_header_flags(struct btrfs_header *h, u16 val)
7518a238 297{
bb492bb0 298 h->flags = cpu_to_le16(val);
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299}
300
bb492bb0 301static inline int btrfs_header_level(struct btrfs_header *h)
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302{
303 return btrfs_header_flags(h) & (MAX_LEVEL - 1);
304}
305
bb492bb0 306static inline void btrfs_set_header_level(struct btrfs_header *h, int level)
7518a238 307{
bb492bb0 308 u16 flags;
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309 BUG_ON(level > MAX_LEVEL);
310 flags = btrfs_header_flags(h) & ~(MAX_LEVEL - 1);
311 btrfs_set_header_flags(h, flags | level);
312}
313
314static inline int btrfs_is_leaf(struct node *n)
315{
316 return (btrfs_header_level(&n->header) == 0);
317}
318
5de08d7d 319struct tree_buffer *alloc_free_block(struct ctree_root *root);
02217ed2 320int btrfs_inc_ref(struct ctree_root *root, struct tree_buffer *buf);
5de08d7d 321int free_extent(struct ctree_root *root, u64 blocknr, u64 num_blocks);
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322int search_slot(struct ctree_root *root, struct btrfs_key *key,
323 struct ctree_path *p, int ins_len, int cow);
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324void release_path(struct ctree_root *root, struct ctree_path *p);
325void init_path(struct ctree_path *p);
326int del_item(struct ctree_root *root, struct ctree_path *path);
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327int insert_item(struct ctree_root *root, struct btrfs_key *key,
328 void *data, int data_size);
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329int next_leaf(struct ctree_root *root, struct ctree_path *path);
330int leaf_free_space(struct leaf *leaf);
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331int btrfs_drop_snapshot(struct ctree_root *root, struct tree_buffer *snap);
332int btrfs_finish_extent_commit(struct ctree_root *root);
eb60ceac 333#endif