reiserfs.h 117 KB

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  1. /*
  2. * Copyright 1996, 1997, 1998 Hans Reiser, see reiserfs/README for
  3. * licensing and copyright details
  4. */
  5. #include <linux/reiserfs_fs.h>
  6. #include <linux/slab.h>
  7. #include <linux/interrupt.h>
  8. #include <linux/sched.h>
  9. #include <linux/bug.h>
  10. #include <linux/workqueue.h>
  11. #include <asm/unaligned.h>
  12. #include <linux/bitops.h>
  13. #include <linux/proc_fs.h>
  14. #include <linux/buffer_head.h>
  15. /* the 32 bit compat definitions with int argument */
  16. #define REISERFS_IOC32_UNPACK _IOW(0xCD, 1, int)
  17. #define REISERFS_IOC32_GETFLAGS FS_IOC32_GETFLAGS
  18. #define REISERFS_IOC32_SETFLAGS FS_IOC32_SETFLAGS
  19. #define REISERFS_IOC32_GETVERSION FS_IOC32_GETVERSION
  20. #define REISERFS_IOC32_SETVERSION FS_IOC32_SETVERSION
  21. struct reiserfs_journal_list;
  22. /* bitmasks for i_flags field in reiserfs-specific part of inode */
  23. typedef enum {
  24. /*
  25. * this says what format of key do all items (but stat data) of
  26. * an object have. If this is set, that format is 3.6 otherwise - 3.5
  27. */
  28. i_item_key_version_mask = 0x0001,
  29. /*
  30. * If this is unset, object has 3.5 stat data, otherwise,
  31. * it has 3.6 stat data with 64bit size, 32bit nlink etc.
  32. */
  33. i_stat_data_version_mask = 0x0002,
  34. /* file might need tail packing on close */
  35. i_pack_on_close_mask = 0x0004,
  36. /* don't pack tail of file */
  37. i_nopack_mask = 0x0008,
  38. /*
  39. * If either of these are set, "safe link" was created for this
  40. * file during truncate or unlink. Safe link is used to avoid
  41. * leakage of disk space on crash with some files open, but unlinked.
  42. */
  43. i_link_saved_unlink_mask = 0x0010,
  44. i_link_saved_truncate_mask = 0x0020,
  45. i_has_xattr_dir = 0x0040,
  46. i_data_log = 0x0080,
  47. } reiserfs_inode_flags;
  48. struct reiserfs_inode_info {
  49. __u32 i_key[4]; /* key is still 4 32 bit integers */
  50. /*
  51. * transient inode flags that are never stored on disk. Bitmasks
  52. * for this field are defined above.
  53. */
  54. __u32 i_flags;
  55. /* offset of first byte stored in direct item. */
  56. __u32 i_first_direct_byte;
  57. /* copy of persistent inode flags read from sd_attrs. */
  58. __u32 i_attrs;
  59. /* first unused block of a sequence of unused blocks */
  60. int i_prealloc_block;
  61. int i_prealloc_count; /* length of that sequence */
  62. /* per-transaction list of inodes which have preallocated blocks */
  63. struct list_head i_prealloc_list;
  64. /*
  65. * new_packing_locality is created; new blocks for the contents
  66. * of this directory should be displaced
  67. */
  68. unsigned new_packing_locality:1;
  69. /*
  70. * we use these for fsync or O_SYNC to decide which transaction
  71. * needs to be committed in order for this inode to be properly
  72. * flushed
  73. */
  74. unsigned int i_trans_id;
  75. struct reiserfs_journal_list *i_jl;
  76. atomic_t openers;
  77. struct mutex tailpack;
  78. #ifdef CONFIG_REISERFS_FS_XATTR
  79. struct rw_semaphore i_xattr_sem;
  80. #endif
  81. struct inode vfs_inode;
  82. };
  83. typedef enum {
  84. reiserfs_attrs_cleared = 0x00000001,
  85. } reiserfs_super_block_flags;
  86. /*
  87. * struct reiserfs_super_block accessors/mutators since this is a disk
  88. * structure, it will always be in little endian format.
  89. */
  90. #define sb_block_count(sbp) (le32_to_cpu((sbp)->s_v1.s_block_count))
  91. #define set_sb_block_count(sbp,v) ((sbp)->s_v1.s_block_count = cpu_to_le32(v))
  92. #define sb_free_blocks(sbp) (le32_to_cpu((sbp)->s_v1.s_free_blocks))
  93. #define set_sb_free_blocks(sbp,v) ((sbp)->s_v1.s_free_blocks = cpu_to_le32(v))
  94. #define sb_root_block(sbp) (le32_to_cpu((sbp)->s_v1.s_root_block))
  95. #define set_sb_root_block(sbp,v) ((sbp)->s_v1.s_root_block = cpu_to_le32(v))
  96. #define sb_jp_journal_1st_block(sbp) \
  97. (le32_to_cpu((sbp)->s_v1.s_journal.jp_journal_1st_block))
  98. #define set_sb_jp_journal_1st_block(sbp,v) \
  99. ((sbp)->s_v1.s_journal.jp_journal_1st_block = cpu_to_le32(v))
  100. #define sb_jp_journal_dev(sbp) \
  101. (le32_to_cpu((sbp)->s_v1.s_journal.jp_journal_dev))
  102. #define set_sb_jp_journal_dev(sbp,v) \
  103. ((sbp)->s_v1.s_journal.jp_journal_dev = cpu_to_le32(v))
  104. #define sb_jp_journal_size(sbp) \
  105. (le32_to_cpu((sbp)->s_v1.s_journal.jp_journal_size))
  106. #define set_sb_jp_journal_size(sbp,v) \
  107. ((sbp)->s_v1.s_journal.jp_journal_size = cpu_to_le32(v))
  108. #define sb_jp_journal_trans_max(sbp) \
  109. (le32_to_cpu((sbp)->s_v1.s_journal.jp_journal_trans_max))
  110. #define set_sb_jp_journal_trans_max(sbp,v) \
  111. ((sbp)->s_v1.s_journal.jp_journal_trans_max = cpu_to_le32(v))
  112. #define sb_jp_journal_magic(sbp) \
  113. (le32_to_cpu((sbp)->s_v1.s_journal.jp_journal_magic))
  114. #define set_sb_jp_journal_magic(sbp,v) \
  115. ((sbp)->s_v1.s_journal.jp_journal_magic = cpu_to_le32(v))
  116. #define sb_jp_journal_max_batch(sbp) \
  117. (le32_to_cpu((sbp)->s_v1.s_journal.jp_journal_max_batch))
  118. #define set_sb_jp_journal_max_batch(sbp,v) \
  119. ((sbp)->s_v1.s_journal.jp_journal_max_batch = cpu_to_le32(v))
  120. #define sb_jp_jourmal_max_commit_age(sbp) \
  121. (le32_to_cpu((sbp)->s_v1.s_journal.jp_journal_max_commit_age))
  122. #define set_sb_jp_journal_max_commit_age(sbp,v) \
  123. ((sbp)->s_v1.s_journal.jp_journal_max_commit_age = cpu_to_le32(v))
  124. #define sb_blocksize(sbp) (le16_to_cpu((sbp)->s_v1.s_blocksize))
  125. #define set_sb_blocksize(sbp,v) ((sbp)->s_v1.s_blocksize = cpu_to_le16(v))
  126. #define sb_oid_maxsize(sbp) (le16_to_cpu((sbp)->s_v1.s_oid_maxsize))
  127. #define set_sb_oid_maxsize(sbp,v) ((sbp)->s_v1.s_oid_maxsize = cpu_to_le16(v))
  128. #define sb_oid_cursize(sbp) (le16_to_cpu((sbp)->s_v1.s_oid_cursize))
  129. #define set_sb_oid_cursize(sbp,v) ((sbp)->s_v1.s_oid_cursize = cpu_to_le16(v))
  130. #define sb_umount_state(sbp) (le16_to_cpu((sbp)->s_v1.s_umount_state))
  131. #define set_sb_umount_state(sbp,v) ((sbp)->s_v1.s_umount_state = cpu_to_le16(v))
  132. #define sb_fs_state(sbp) (le16_to_cpu((sbp)->s_v1.s_fs_state))
  133. #define set_sb_fs_state(sbp,v) ((sbp)->s_v1.s_fs_state = cpu_to_le16(v))
  134. #define sb_hash_function_code(sbp) \
  135. (le32_to_cpu((sbp)->s_v1.s_hash_function_code))
  136. #define set_sb_hash_function_code(sbp,v) \
  137. ((sbp)->s_v1.s_hash_function_code = cpu_to_le32(v))
  138. #define sb_tree_height(sbp) (le16_to_cpu((sbp)->s_v1.s_tree_height))
  139. #define set_sb_tree_height(sbp,v) ((sbp)->s_v1.s_tree_height = cpu_to_le16(v))
  140. #define sb_bmap_nr(sbp) (le16_to_cpu((sbp)->s_v1.s_bmap_nr))
  141. #define set_sb_bmap_nr(sbp,v) ((sbp)->s_v1.s_bmap_nr = cpu_to_le16(v))
  142. #define sb_version(sbp) (le16_to_cpu((sbp)->s_v1.s_version))
  143. #define set_sb_version(sbp,v) ((sbp)->s_v1.s_version = cpu_to_le16(v))
  144. #define sb_mnt_count(sbp) (le16_to_cpu((sbp)->s_mnt_count))
  145. #define set_sb_mnt_count(sbp, v) ((sbp)->s_mnt_count = cpu_to_le16(v))
  146. #define sb_reserved_for_journal(sbp) \
  147. (le16_to_cpu((sbp)->s_v1.s_reserved_for_journal))
  148. #define set_sb_reserved_for_journal(sbp,v) \
  149. ((sbp)->s_v1.s_reserved_for_journal = cpu_to_le16(v))
  150. /* LOGGING -- */
  151. /*
  152. * These all interelate for performance.
  153. *
  154. * If the journal block count is smaller than n transactions, you lose speed.
  155. * I don't know what n is yet, I'm guessing 8-16.
  156. *
  157. * typical transaction size depends on the application, how often fsync is
  158. * called, and how many metadata blocks you dirty in a 30 second period.
  159. * The more small files (<16k) you use, the larger your transactions will
  160. * be.
  161. *
  162. * If your journal fills faster than dirty buffers get flushed to disk, it
  163. * must flush them before allowing the journal to wrap, which slows things
  164. * down. If you need high speed meta data updates, the journal should be
  165. * big enough to prevent wrapping before dirty meta blocks get to disk.
  166. *
  167. * If the batch max is smaller than the transaction max, you'll waste space
  168. * at the end of the journal because journal_end sets the next transaction
  169. * to start at 0 if the next transaction has any chance of wrapping.
  170. *
  171. * The large the batch max age, the better the speed, and the more meta
  172. * data changes you'll lose after a crash.
  173. */
  174. /* don't mess with these for a while */
  175. /* we have a node size define somewhere in reiserfs_fs.h. -Hans */
  176. #define JOURNAL_BLOCK_SIZE 4096 /* BUG gotta get rid of this */
  177. #define JOURNAL_MAX_CNODE 1500 /* max cnodes to allocate. */
  178. #define JOURNAL_HASH_SIZE 8192
  179. /* number of copies of the bitmaps to have floating. Must be >= 2 */
  180. #define JOURNAL_NUM_BITMAPS 5
  181. /*
  182. * One of these for every block in every transaction
  183. * Each one is in two hash tables. First, a hash of the current transaction,
  184. * and after journal_end, a hash of all the in memory transactions.
  185. * next and prev are used by the current transaction (journal_hash).
  186. * hnext and hprev are used by journal_list_hash. If a block is in more
  187. * than one transaction, the journal_list_hash links it in multiple times.
  188. * This allows flush_journal_list to remove just the cnode belonging to a
  189. * given transaction.
  190. */
  191. struct reiserfs_journal_cnode {
  192. struct buffer_head *bh; /* real buffer head */
  193. struct super_block *sb; /* dev of real buffer head */
  194. /* block number of real buffer head, == 0 when buffer on disk */
  195. __u32 blocknr;
  196. unsigned long state;
  197. /* journal list this cnode lives in */
  198. struct reiserfs_journal_list *jlist;
  199. struct reiserfs_journal_cnode *next; /* next in transaction list */
  200. struct reiserfs_journal_cnode *prev; /* prev in transaction list */
  201. struct reiserfs_journal_cnode *hprev; /* prev in hash list */
  202. struct reiserfs_journal_cnode *hnext; /* next in hash list */
  203. };
  204. struct reiserfs_bitmap_node {
  205. int id;
  206. char *data;
  207. struct list_head list;
  208. };
  209. struct reiserfs_list_bitmap {
  210. struct reiserfs_journal_list *journal_list;
  211. struct reiserfs_bitmap_node **bitmaps;
  212. };
  213. /*
  214. * one of these for each transaction. The most important part here is the
  215. * j_realblock. this list of cnodes is used to hash all the blocks in all
  216. * the commits, to mark all the real buffer heads dirty once all the commits
  217. * hit the disk, and to make sure every real block in a transaction is on
  218. * disk before allowing the log area to be overwritten
  219. */
  220. struct reiserfs_journal_list {
  221. unsigned long j_start;
  222. unsigned long j_state;
  223. unsigned long j_len;
  224. atomic_t j_nonzerolen;
  225. atomic_t j_commit_left;
  226. /* all commits older than this on disk */
  227. atomic_t j_older_commits_done;
  228. struct mutex j_commit_mutex;
  229. unsigned int j_trans_id;
  230. time_t j_timestamp;
  231. struct reiserfs_list_bitmap *j_list_bitmap;
  232. struct buffer_head *j_commit_bh; /* commit buffer head */
  233. struct reiserfs_journal_cnode *j_realblock;
  234. struct reiserfs_journal_cnode *j_freedlist; /* list of buffers that were freed during this trans. free each of these on flush */
  235. /* time ordered list of all active transactions */
  236. struct list_head j_list;
  237. /*
  238. * time ordered list of all transactions we haven't tried
  239. * to flush yet
  240. */
  241. struct list_head j_working_list;
  242. /* list of tail conversion targets in need of flush before commit */
  243. struct list_head j_tail_bh_list;
  244. /* list of data=ordered buffers in need of flush before commit */
  245. struct list_head j_bh_list;
  246. int j_refcount;
  247. };
  248. struct reiserfs_journal {
  249. struct buffer_head **j_ap_blocks; /* journal blocks on disk */
  250. /* newest journal block */
  251. struct reiserfs_journal_cnode *j_last;
  252. /* oldest journal block. start here for traverse */
  253. struct reiserfs_journal_cnode *j_first;
  254. struct block_device *j_dev_bd;
  255. fmode_t j_dev_mode;
  256. /* first block on s_dev of reserved area journal */
  257. int j_1st_reserved_block;
  258. unsigned long j_state;
  259. unsigned int j_trans_id;
  260. unsigned long j_mount_id;
  261. /* start of current waiting commit (index into j_ap_blocks) */
  262. unsigned long j_start;
  263. unsigned long j_len; /* length of current waiting commit */
  264. /* number of buffers requested by journal_begin() */
  265. unsigned long j_len_alloc;
  266. atomic_t j_wcount; /* count of writers for current commit */
  267. /* batch count. allows turning X transactions into 1 */
  268. unsigned long j_bcount;
  269. /* first unflushed transactions offset */
  270. unsigned long j_first_unflushed_offset;
  271. /* last fully flushed journal timestamp */
  272. unsigned j_last_flush_trans_id;
  273. struct buffer_head *j_header_bh;
  274. time_t j_trans_start_time; /* time this transaction started */
  275. struct mutex j_mutex;
  276. struct mutex j_flush_mutex;
  277. /* wait for current transaction to finish before starting new one */
  278. wait_queue_head_t j_join_wait;
  279. atomic_t j_jlock; /* lock for j_join_wait */
  280. int j_list_bitmap_index; /* number of next list bitmap to use */
  281. /* no more journal begins allowed. MUST sleep on j_join_wait */
  282. int j_must_wait;
  283. /* next journal_end will flush all journal list */
  284. int j_next_full_flush;
  285. /* next journal_end will flush all async commits */
  286. int j_next_async_flush;
  287. int j_cnode_used; /* number of cnodes on the used list */
  288. int j_cnode_free; /* number of cnodes on the free list */
  289. /* max number of blocks in a transaction. */
  290. unsigned int j_trans_max;
  291. /* max number of blocks to batch into a trans */
  292. unsigned int j_max_batch;
  293. /* in seconds, how old can an async commit be */
  294. unsigned int j_max_commit_age;
  295. /* in seconds, how old can a transaction be */
  296. unsigned int j_max_trans_age;
  297. /* the default for the max commit age */
  298. unsigned int j_default_max_commit_age;
  299. struct reiserfs_journal_cnode *j_cnode_free_list;
  300. /* orig pointer returned from vmalloc */
  301. struct reiserfs_journal_cnode *j_cnode_free_orig;
  302. struct reiserfs_journal_list *j_current_jl;
  303. int j_free_bitmap_nodes;
  304. int j_used_bitmap_nodes;
  305. int j_num_lists; /* total number of active transactions */
  306. int j_num_work_lists; /* number that need attention from kreiserfsd */
  307. /* debugging to make sure things are flushed in order */
  308. unsigned int j_last_flush_id;
  309. /* debugging to make sure things are committed in order */
  310. unsigned int j_last_commit_id;
  311. struct list_head j_bitmap_nodes;
  312. struct list_head j_dirty_buffers;
  313. spinlock_t j_dirty_buffers_lock; /* protects j_dirty_buffers */
  314. /* list of all active transactions */
  315. struct list_head j_journal_list;
  316. /* lists that haven't been touched by writeback attempts */
  317. struct list_head j_working_list;
  318. /* hash table for real buffer heads in current trans */
  319. struct reiserfs_journal_cnode *j_hash_table[JOURNAL_HASH_SIZE];
  320. /* hash table for all the real buffer heads in all the transactions */
  321. struct reiserfs_journal_cnode *j_list_hash_table[JOURNAL_HASH_SIZE];
  322. /* array of bitmaps to record the deleted blocks */
  323. struct reiserfs_list_bitmap j_list_bitmap[JOURNAL_NUM_BITMAPS];
  324. /* list of inodes which have preallocated blocks */
  325. struct list_head j_prealloc_list;
  326. int j_persistent_trans;
  327. unsigned long j_max_trans_size;
  328. unsigned long j_max_batch_size;
  329. int j_errno;
  330. /* when flushing ordered buffers, throttle new ordered writers */
  331. struct delayed_work j_work;
  332. struct super_block *j_work_sb;
  333. atomic_t j_async_throttle;
  334. };
  335. enum journal_state_bits {
  336. J_WRITERS_BLOCKED = 1, /* set when new writers not allowed */
  337. J_WRITERS_QUEUED, /* set when log is full due to too many writers */
  338. J_ABORTED, /* set when log is aborted */
  339. };
  340. /* ick. magic string to find desc blocks in the journal */
  341. #define JOURNAL_DESC_MAGIC "ReIsErLB"
  342. typedef __u32(*hashf_t) (const signed char *, int);
  343. struct reiserfs_bitmap_info {
  344. __u32 free_count;
  345. };
  346. struct proc_dir_entry;
  347. #if defined( CONFIG_PROC_FS ) && defined( CONFIG_REISERFS_PROC_INFO )
  348. typedef unsigned long int stat_cnt_t;
  349. typedef struct reiserfs_proc_info_data {
  350. spinlock_t lock;
  351. int exiting;
  352. int max_hash_collisions;
  353. stat_cnt_t breads;
  354. stat_cnt_t bread_miss;
  355. stat_cnt_t search_by_key;
  356. stat_cnt_t search_by_key_fs_changed;
  357. stat_cnt_t search_by_key_restarted;
  358. stat_cnt_t insert_item_restarted;
  359. stat_cnt_t paste_into_item_restarted;
  360. stat_cnt_t cut_from_item_restarted;
  361. stat_cnt_t delete_solid_item_restarted;
  362. stat_cnt_t delete_item_restarted;
  363. stat_cnt_t leaked_oid;
  364. stat_cnt_t leaves_removable;
  365. /*
  366. * balances per level.
  367. * Use explicit 5 as MAX_HEIGHT is not visible yet.
  368. */
  369. stat_cnt_t balance_at[5]; /* XXX */
  370. /* sbk == search_by_key */
  371. stat_cnt_t sbk_read_at[5]; /* XXX */
  372. stat_cnt_t sbk_fs_changed[5];
  373. stat_cnt_t sbk_restarted[5];
  374. stat_cnt_t items_at[5]; /* XXX */
  375. stat_cnt_t free_at[5]; /* XXX */
  376. stat_cnt_t can_node_be_removed[5]; /* XXX */
  377. long int lnum[5]; /* XXX */
  378. long int rnum[5]; /* XXX */
  379. long int lbytes[5]; /* XXX */
  380. long int rbytes[5]; /* XXX */
  381. stat_cnt_t get_neighbors[5];
  382. stat_cnt_t get_neighbors_restart[5];
  383. stat_cnt_t need_l_neighbor[5];
  384. stat_cnt_t need_r_neighbor[5];
  385. stat_cnt_t free_block;
  386. struct __scan_bitmap_stats {
  387. stat_cnt_t call;
  388. stat_cnt_t wait;
  389. stat_cnt_t bmap;
  390. stat_cnt_t retry;
  391. stat_cnt_t in_journal_hint;
  392. stat_cnt_t in_journal_nohint;
  393. stat_cnt_t stolen;
  394. } scan_bitmap;
  395. struct __journal_stats {
  396. stat_cnt_t in_journal;
  397. stat_cnt_t in_journal_bitmap;
  398. stat_cnt_t in_journal_reusable;
  399. stat_cnt_t lock_journal;
  400. stat_cnt_t lock_journal_wait;
  401. stat_cnt_t journal_being;
  402. stat_cnt_t journal_relock_writers;
  403. stat_cnt_t journal_relock_wcount;
  404. stat_cnt_t mark_dirty;
  405. stat_cnt_t mark_dirty_already;
  406. stat_cnt_t mark_dirty_notjournal;
  407. stat_cnt_t restore_prepared;
  408. stat_cnt_t prepare;
  409. stat_cnt_t prepare_retry;
  410. } journal;
  411. } reiserfs_proc_info_data_t;
  412. #else
  413. typedef struct reiserfs_proc_info_data {
  414. } reiserfs_proc_info_data_t;
  415. #endif
  416. /* reiserfs union of in-core super block data */
  417. struct reiserfs_sb_info {
  418. /* Buffer containing the super block */
  419. struct buffer_head *s_sbh;
  420. /* Pointer to the on-disk super block in the buffer */
  421. struct reiserfs_super_block *s_rs;
  422. struct reiserfs_bitmap_info *s_ap_bitmap;
  423. /* pointer to journal information */
  424. struct reiserfs_journal *s_journal;
  425. unsigned short s_mount_state; /* reiserfs state (valid, invalid) */
  426. /* Serialize writers access, replace the old bkl */
  427. struct mutex lock;
  428. /* Owner of the lock (can be recursive) */
  429. struct task_struct *lock_owner;
  430. /* Depth of the lock, start from -1 like the bkl */
  431. int lock_depth;
  432. struct workqueue_struct *commit_wq;
  433. /* Comment? -Hans */
  434. void (*end_io_handler) (struct buffer_head *, int);
  435. /*
  436. * pointer to function which is used to sort names in directory.
  437. * Set on mount
  438. */
  439. hashf_t s_hash_function;
  440. /* reiserfs's mount options are set here */
  441. unsigned long s_mount_opt;
  442. /* This is a structure that describes block allocator options */
  443. struct {
  444. /* Bitfield for enable/disable kind of options */
  445. unsigned long bits;
  446. /*
  447. * size started from which we consider file
  448. * to be a large one (in blocks)
  449. */
  450. unsigned long large_file_size;
  451. int border; /* percentage of disk, border takes */
  452. /*
  453. * Minimal file size (in blocks) starting
  454. * from which we do preallocations
  455. */
  456. int preallocmin;
  457. /*
  458. * Number of blocks we try to prealloc when file
  459. * reaches preallocmin size (in blocks) or prealloc_list
  460. is empty.
  461. */
  462. int preallocsize;
  463. } s_alloc_options;
  464. /* Comment? -Hans */
  465. wait_queue_head_t s_wait;
  466. /* increased by one every time the tree gets re-balanced */
  467. atomic_t s_generation_counter;
  468. /* File system properties. Currently holds on-disk FS format */
  469. unsigned long s_properties;
  470. /* session statistics */
  471. int s_disk_reads;
  472. int s_disk_writes;
  473. int s_fix_nodes;
  474. int s_do_balance;
  475. int s_unneeded_left_neighbor;
  476. int s_good_search_by_key_reada;
  477. int s_bmaps;
  478. int s_bmaps_without_search;
  479. int s_direct2indirect;
  480. int s_indirect2direct;
  481. /*
  482. * set up when it's ok for reiserfs_read_inode2() to read from
  483. * disk inode with nlink==0. Currently this is only used during
  484. * finish_unfinished() processing at mount time
  485. */
  486. int s_is_unlinked_ok;
  487. reiserfs_proc_info_data_t s_proc_info_data;
  488. struct proc_dir_entry *procdir;
  489. /* amount of blocks reserved for further allocations */
  490. int reserved_blocks;
  491. /* this lock on now only used to protect reserved_blocks variable */
  492. spinlock_t bitmap_lock;
  493. struct dentry *priv_root; /* root of /.reiserfs_priv */
  494. struct dentry *xattr_root; /* root of /.reiserfs_priv/xattrs */
  495. int j_errno;
  496. int work_queued; /* non-zero delayed work is queued */
  497. struct delayed_work old_work; /* old transactions flush delayed work */
  498. spinlock_t old_work_lock; /* protects old_work and work_queued */
  499. #ifdef CONFIG_QUOTA
  500. char *s_qf_names[MAXQUOTAS];
  501. int s_jquota_fmt;
  502. #endif
  503. char *s_jdev; /* Stored jdev for mount option showing */
  504. #ifdef CONFIG_REISERFS_CHECK
  505. /*
  506. * Detects whether more than one copy of tb exists per superblock
  507. * as a means of checking whether do_balance is executing
  508. * concurrently against another tree reader/writer on a same
  509. * mount point.
  510. */
  511. struct tree_balance *cur_tb;
  512. #endif
  513. };
  514. /* Definitions of reiserfs on-disk properties: */
  515. #define REISERFS_3_5 0
  516. #define REISERFS_3_6 1
  517. #define REISERFS_OLD_FORMAT 2
  518. /* Mount options */
  519. enum reiserfs_mount_options {
  520. /* large tails will be created in a session */
  521. REISERFS_LARGETAIL,
  522. /*
  523. * small (for files less than block size) tails will
  524. * be created in a session
  525. */
  526. REISERFS_SMALLTAIL,
  527. /* replay journal and return 0. Use by fsck */
  528. REPLAYONLY,
  529. /*
  530. * -o conv: causes conversion of old format super block to the
  531. * new format. If not specified - old partition will be dealt
  532. * with in a manner of 3.5.x
  533. */
  534. REISERFS_CONVERT,
  535. /*
  536. * -o hash={tea, rupasov, r5, detect} is meant for properly mounting
  537. * reiserfs disks from 3.5.19 or earlier. 99% of the time, this
  538. * option is not required. If the normal autodection code can't
  539. * determine which hash to use (because both hashes had the same
  540. * value for a file) use this option to force a specific hash.
  541. * It won't allow you to override the existing hash on the FS, so
  542. * if you have a tea hash disk, and mount with -o hash=rupasov,
  543. * the mount will fail.
  544. */
  545. FORCE_TEA_HASH, /* try to force tea hash on mount */
  546. FORCE_RUPASOV_HASH, /* try to force rupasov hash on mount */
  547. FORCE_R5_HASH, /* try to force rupasov hash on mount */
  548. FORCE_HASH_DETECT, /* try to detect hash function on mount */
  549. REISERFS_DATA_LOG,
  550. REISERFS_DATA_ORDERED,
  551. REISERFS_DATA_WRITEBACK,
  552. /*
  553. * used for testing experimental features, makes benchmarking new
  554. * features with and without more convenient, should never be used by
  555. * users in any code shipped to users (ideally)
  556. */
  557. REISERFS_NO_BORDER,
  558. REISERFS_NO_UNHASHED_RELOCATION,
  559. REISERFS_HASHED_RELOCATION,
  560. REISERFS_ATTRS,
  561. REISERFS_XATTRS_USER,
  562. REISERFS_POSIXACL,
  563. REISERFS_EXPOSE_PRIVROOT,
  564. REISERFS_BARRIER_NONE,
  565. REISERFS_BARRIER_FLUSH,
  566. /* Actions on error */
  567. REISERFS_ERROR_PANIC,
  568. REISERFS_ERROR_RO,
  569. REISERFS_ERROR_CONTINUE,
  570. REISERFS_USRQUOTA, /* User quota option specified */
  571. REISERFS_GRPQUOTA, /* Group quota option specified */
  572. REISERFS_TEST1,
  573. REISERFS_TEST2,
  574. REISERFS_TEST3,
  575. REISERFS_TEST4,
  576. REISERFS_UNSUPPORTED_OPT,
  577. };
  578. #define reiserfs_r5_hash(s) (REISERFS_SB(s)->s_mount_opt & (1 << FORCE_R5_HASH))
  579. #define reiserfs_rupasov_hash(s) (REISERFS_SB(s)->s_mount_opt & (1 << FORCE_RUPASOV_HASH))
  580. #define reiserfs_tea_hash(s) (REISERFS_SB(s)->s_mount_opt & (1 << FORCE_TEA_HASH))
  581. #define reiserfs_hash_detect(s) (REISERFS_SB(s)->s_mount_opt & (1 << FORCE_HASH_DETECT))
  582. #define reiserfs_no_border(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_NO_BORDER))
  583. #define reiserfs_no_unhashed_relocation(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_NO_UNHASHED_RELOCATION))
  584. #define reiserfs_hashed_relocation(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_HASHED_RELOCATION))
  585. #define reiserfs_test4(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_TEST4))
  586. #define have_large_tails(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_LARGETAIL))
  587. #define have_small_tails(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_SMALLTAIL))
  588. #define replay_only(s) (REISERFS_SB(s)->s_mount_opt & (1 << REPLAYONLY))
  589. #define reiserfs_attrs(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_ATTRS))
  590. #define old_format_only(s) (REISERFS_SB(s)->s_properties & (1 << REISERFS_3_5))
  591. #define convert_reiserfs(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_CONVERT))
  592. #define reiserfs_data_log(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_DATA_LOG))
  593. #define reiserfs_data_ordered(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_DATA_ORDERED))
  594. #define reiserfs_data_writeback(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_DATA_WRITEBACK))
  595. #define reiserfs_xattrs_user(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_XATTRS_USER))
  596. #define reiserfs_posixacl(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_POSIXACL))
  597. #define reiserfs_expose_privroot(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_EXPOSE_PRIVROOT))
  598. #define reiserfs_xattrs_optional(s) (reiserfs_xattrs_user(s) || reiserfs_posixacl(s))
  599. #define reiserfs_barrier_none(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_BARRIER_NONE))
  600. #define reiserfs_barrier_flush(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_BARRIER_FLUSH))
  601. #define reiserfs_error_panic(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_ERROR_PANIC))
  602. #define reiserfs_error_ro(s) (REISERFS_SB(s)->s_mount_opt & (1 << REISERFS_ERROR_RO))
  603. void reiserfs_file_buffer(struct buffer_head *bh, int list);
  604. extern struct file_system_type reiserfs_fs_type;
  605. int reiserfs_resize(struct super_block *, unsigned long);
  606. #define CARRY_ON 0
  607. #define SCHEDULE_OCCURRED 1
  608. #define SB_BUFFER_WITH_SB(s) (REISERFS_SB(s)->s_sbh)
  609. #define SB_JOURNAL(s) (REISERFS_SB(s)->s_journal)
  610. #define SB_JOURNAL_1st_RESERVED_BLOCK(s) (SB_JOURNAL(s)->j_1st_reserved_block)
  611. #define SB_JOURNAL_LEN_FREE(s) (SB_JOURNAL(s)->j_journal_len_free)
  612. #define SB_AP_BITMAP(s) (REISERFS_SB(s)->s_ap_bitmap)
  613. #define SB_DISK_JOURNAL_HEAD(s) (SB_JOURNAL(s)->j_header_bh->)
  614. #define reiserfs_is_journal_aborted(journal) (unlikely (__reiserfs_is_journal_aborted (journal)))
  615. static inline int __reiserfs_is_journal_aborted(struct reiserfs_journal
  616. *journal)
  617. {
  618. return test_bit(J_ABORTED, &journal->j_state);
  619. }
  620. /*
  621. * Locking primitives. The write lock is a per superblock
  622. * special mutex that has properties close to the Big Kernel Lock
  623. * which was used in the previous locking scheme.
  624. */
  625. void reiserfs_write_lock(struct super_block *s);
  626. void reiserfs_write_unlock(struct super_block *s);
  627. int __must_check reiserfs_write_unlock_nested(struct super_block *s);
  628. void reiserfs_write_lock_nested(struct super_block *s, int depth);
  629. #ifdef CONFIG_REISERFS_CHECK
  630. void reiserfs_lock_check_recursive(struct super_block *s);
  631. #else
  632. static inline void reiserfs_lock_check_recursive(struct super_block *s) { }
  633. #endif
  634. /*
  635. * Several mutexes depend on the write lock.
  636. * However sometimes we want to relax the write lock while we hold
  637. * these mutexes, according to the release/reacquire on schedule()
  638. * properties of the Bkl that were used.
  639. * Reiserfs performances and locking were based on this scheme.
  640. * Now that the write lock is a mutex and not the bkl anymore, doing so
  641. * may result in a deadlock:
  642. *
  643. * A acquire write_lock
  644. * A acquire j_commit_mutex
  645. * A release write_lock and wait for something
  646. * B acquire write_lock
  647. * B can't acquire j_commit_mutex and sleep
  648. * A can't acquire write lock anymore
  649. * deadlock
  650. *
  651. * What we do here is avoiding such deadlock by playing the same game
  652. * than the Bkl: if we can't acquire a mutex that depends on the write lock,
  653. * we release the write lock, wait a bit and then retry.
  654. *
  655. * The mutexes concerned by this hack are:
  656. * - The commit mutex of a journal list
  657. * - The flush mutex
  658. * - The journal lock
  659. * - The inode mutex
  660. */
  661. static inline void reiserfs_mutex_lock_safe(struct mutex *m,
  662. struct super_block *s)
  663. {
  664. int depth;
  665. depth = reiserfs_write_unlock_nested(s);
  666. mutex_lock(m);
  667. reiserfs_write_lock_nested(s, depth);
  668. }
  669. static inline void
  670. reiserfs_mutex_lock_nested_safe(struct mutex *m, unsigned int subclass,
  671. struct super_block *s)
  672. {
  673. int depth;
  674. depth = reiserfs_write_unlock_nested(s);
  675. mutex_lock_nested(m, subclass);
  676. reiserfs_write_lock_nested(s, depth);
  677. }
  678. static inline void
  679. reiserfs_down_read_safe(struct rw_semaphore *sem, struct super_block *s)
  680. {
  681. int depth;
  682. depth = reiserfs_write_unlock_nested(s);
  683. down_read(sem);
  684. reiserfs_write_lock_nested(s, depth);
  685. }
  686. /*
  687. * When we schedule, we usually want to also release the write lock,
  688. * according to the previous bkl based locking scheme of reiserfs.
  689. */
  690. static inline void reiserfs_cond_resched(struct super_block *s)
  691. {
  692. if (need_resched()) {
  693. int depth;
  694. depth = reiserfs_write_unlock_nested(s);
  695. schedule();
  696. reiserfs_write_lock_nested(s, depth);
  697. }
  698. }
  699. struct fid;
  700. /*
  701. * in reading the #defines, it may help to understand that they employ
  702. * the following abbreviations:
  703. *
  704. * B = Buffer
  705. * I = Item header
  706. * H = Height within the tree (should be changed to LEV)
  707. * N = Number of the item in the node
  708. * STAT = stat data
  709. * DEH = Directory Entry Header
  710. * EC = Entry Count
  711. * E = Entry number
  712. * UL = Unsigned Long
  713. * BLKH = BLocK Header
  714. * UNFM = UNForMatted node
  715. * DC = Disk Child
  716. * P = Path
  717. *
  718. * These #defines are named by concatenating these abbreviations,
  719. * where first comes the arguments, and last comes the return value,
  720. * of the macro.
  721. */
  722. #define USE_INODE_GENERATION_COUNTER
  723. #define REISERFS_PREALLOCATE
  724. #define DISPLACE_NEW_PACKING_LOCALITIES
  725. #define PREALLOCATION_SIZE 9
  726. /* n must be power of 2 */
  727. #define _ROUND_UP(x,n) (((x)+(n)-1u) & ~((n)-1u))
  728. /*
  729. * to be ok for alpha and others we have to align structures to 8 byte
  730. * boundary.
  731. * FIXME: do not change 4 by anything else: there is code which relies on that
  732. */
  733. #define ROUND_UP(x) _ROUND_UP(x,8LL)
  734. /*
  735. * debug levels. Right now, CONFIG_REISERFS_CHECK means print all debug
  736. * messages.
  737. */
  738. #define REISERFS_DEBUG_CODE 5 /* extra messages to help find/debug errors */
  739. void __reiserfs_warning(struct super_block *s, const char *id,
  740. const char *func, const char *fmt, ...);
  741. #define reiserfs_warning(s, id, fmt, args...) \
  742. __reiserfs_warning(s, id, __func__, fmt, ##args)
  743. /* assertions handling */
  744. /* always check a condition and panic if it's false. */
  745. #define __RASSERT(cond, scond, format, args...) \
  746. do { \
  747. if (!(cond)) \
  748. reiserfs_panic(NULL, "assertion failure", "(" #cond ") at " \
  749. __FILE__ ":%i:%s: " format "\n", \
  750. in_interrupt() ? -1 : task_pid_nr(current), \
  751. __LINE__, __func__ , ##args); \
  752. } while (0)
  753. #define RASSERT(cond, format, args...) __RASSERT(cond, #cond, format, ##args)
  754. #if defined( CONFIG_REISERFS_CHECK )
  755. #define RFALSE(cond, format, args...) __RASSERT(!(cond), "!(" #cond ")", format, ##args)
  756. #else
  757. #define RFALSE( cond, format, args... ) do {;} while( 0 )
  758. #endif
  759. #define CONSTF __attribute_const__
  760. /*
  761. * Disk Data Structures
  762. */
  763. /***************************************************************************
  764. * SUPER BLOCK *
  765. ***************************************************************************/
  766. /*
  767. * Structure of super block on disk, a version of which in RAM is often
  768. * accessed as REISERFS_SB(s)->s_rs. The version in RAM is part of a larger
  769. * structure containing fields never written to disk.
  770. */
  771. #define UNSET_HASH 0 /* Detect hash on disk */
  772. #define TEA_HASH 1
  773. #define YURA_HASH 2
  774. #define R5_HASH 3
  775. #define DEFAULT_HASH R5_HASH
  776. struct journal_params {
  777. /* where does journal start from on its * device */
  778. __le32 jp_journal_1st_block;
  779. /* journal device st_rdev */
  780. __le32 jp_journal_dev;
  781. /* size of the journal */
  782. __le32 jp_journal_size;
  783. /* max number of blocks in a transaction. */
  784. __le32 jp_journal_trans_max;
  785. /*
  786. * random value made on fs creation
  787. * (this was sb_journal_block_count)
  788. */
  789. __le32 jp_journal_magic;
  790. /* max number of blocks to batch into a trans */
  791. __le32 jp_journal_max_batch;
  792. /* in seconds, how old can an async commit be */
  793. __le32 jp_journal_max_commit_age;
  794. /* in seconds, how old can a transaction be */
  795. __le32 jp_journal_max_trans_age;
  796. };
  797. /* this is the super from 3.5.X, where X >= 10 */
  798. struct reiserfs_super_block_v1 {
  799. __le32 s_block_count; /* blocks count */
  800. __le32 s_free_blocks; /* free blocks count */
  801. __le32 s_root_block; /* root block number */
  802. struct journal_params s_journal;
  803. __le16 s_blocksize; /* block size */
  804. /* max size of object id array, see get_objectid() commentary */
  805. __le16 s_oid_maxsize;
  806. __le16 s_oid_cursize; /* current size of object id array */
  807. /* this is set to 1 when filesystem was umounted, to 2 - when not */
  808. __le16 s_umount_state;
  809. /*
  810. * reiserfs magic string indicates that file system is reiserfs:
  811. * "ReIsErFs" or "ReIsEr2Fs" or "ReIsEr3Fs"
  812. */
  813. char s_magic[10];
  814. /*
  815. * it is set to used by fsck to mark which
  816. * phase of rebuilding is done
  817. */
  818. __le16 s_fs_state;
  819. /*
  820. * indicate, what hash function is being use
  821. * to sort names in a directory
  822. */
  823. __le32 s_hash_function_code;
  824. __le16 s_tree_height; /* height of disk tree */
  825. /*
  826. * amount of bitmap blocks needed to address
  827. * each block of file system
  828. */
  829. __le16 s_bmap_nr;
  830. /*
  831. * this field is only reliable on filesystem with non-standard journal
  832. */
  833. __le16 s_version;
  834. /*
  835. * size in blocks of journal area on main device, we need to
  836. * keep after making fs with non-standard journal
  837. */
  838. __le16 s_reserved_for_journal;
  839. } __attribute__ ((__packed__));
  840. #define SB_SIZE_V1 (sizeof(struct reiserfs_super_block_v1))
  841. /* this is the on disk super block */
  842. struct reiserfs_super_block {
  843. struct reiserfs_super_block_v1 s_v1;
  844. __le32 s_inode_generation;
  845. /* Right now used only by inode-attributes, if enabled */
  846. __le32 s_flags;
  847. unsigned char s_uuid[16]; /* filesystem unique identifier */
  848. unsigned char s_label[16]; /* filesystem volume label */
  849. __le16 s_mnt_count; /* Count of mounts since last fsck */
  850. __le16 s_max_mnt_count; /* Maximum mounts before check */
  851. __le32 s_lastcheck; /* Timestamp of last fsck */
  852. __le32 s_check_interval; /* Interval between checks */
  853. /*
  854. * zero filled by mkreiserfs and reiserfs_convert_objectid_map_v1()
  855. * so any additions must be updated there as well. */
  856. char s_unused[76];
  857. } __attribute__ ((__packed__));
  858. #define SB_SIZE (sizeof(struct reiserfs_super_block))
  859. #define REISERFS_VERSION_1 0
  860. #define REISERFS_VERSION_2 2
  861. /* on-disk super block fields converted to cpu form */
  862. #define SB_DISK_SUPER_BLOCK(s) (REISERFS_SB(s)->s_rs)
  863. #define SB_V1_DISK_SUPER_BLOCK(s) (&(SB_DISK_SUPER_BLOCK(s)->s_v1))
  864. #define SB_BLOCKSIZE(s) \
  865. le32_to_cpu ((SB_V1_DISK_SUPER_BLOCK(s)->s_blocksize))
  866. #define SB_BLOCK_COUNT(s) \
  867. le32_to_cpu ((SB_V1_DISK_SUPER_BLOCK(s)->s_block_count))
  868. #define SB_FREE_BLOCKS(s) \
  869. le32_to_cpu ((SB_V1_DISK_SUPER_BLOCK(s)->s_free_blocks))
  870. #define SB_REISERFS_MAGIC(s) \
  871. (SB_V1_DISK_SUPER_BLOCK(s)->s_magic)
  872. #define SB_ROOT_BLOCK(s) \
  873. le32_to_cpu ((SB_V1_DISK_SUPER_BLOCK(s)->s_root_block))
  874. #define SB_TREE_HEIGHT(s) \
  875. le16_to_cpu ((SB_V1_DISK_SUPER_BLOCK(s)->s_tree_height))
  876. #define SB_REISERFS_STATE(s) \
  877. le16_to_cpu ((SB_V1_DISK_SUPER_BLOCK(s)->s_umount_state))
  878. #define SB_VERSION(s) le16_to_cpu ((SB_V1_DISK_SUPER_BLOCK(s)->s_version))
  879. #define SB_BMAP_NR(s) le16_to_cpu ((SB_V1_DISK_SUPER_BLOCK(s)->s_bmap_nr))
  880. #define PUT_SB_BLOCK_COUNT(s, val) \
  881. do { SB_V1_DISK_SUPER_BLOCK(s)->s_block_count = cpu_to_le32(val); } while (0)
  882. #define PUT_SB_FREE_BLOCKS(s, val) \
  883. do { SB_V1_DISK_SUPER_BLOCK(s)->s_free_blocks = cpu_to_le32(val); } while (0)
  884. #define PUT_SB_ROOT_BLOCK(s, val) \
  885. do { SB_V1_DISK_SUPER_BLOCK(s)->s_root_block = cpu_to_le32(val); } while (0)
  886. #define PUT_SB_TREE_HEIGHT(s, val) \
  887. do { SB_V1_DISK_SUPER_BLOCK(s)->s_tree_height = cpu_to_le16(val); } while (0)
  888. #define PUT_SB_REISERFS_STATE(s, val) \
  889. do { SB_V1_DISK_SUPER_BLOCK(s)->s_umount_state = cpu_to_le16(val); } while (0)
  890. #define PUT_SB_VERSION(s, val) \
  891. do { SB_V1_DISK_SUPER_BLOCK(s)->s_version = cpu_to_le16(val); } while (0)
  892. #define PUT_SB_BMAP_NR(s, val) \
  893. do { SB_V1_DISK_SUPER_BLOCK(s)->s_bmap_nr = cpu_to_le16 (val); } while (0)
  894. #define SB_ONDISK_JP(s) (&SB_V1_DISK_SUPER_BLOCK(s)->s_journal)
  895. #define SB_ONDISK_JOURNAL_SIZE(s) \
  896. le32_to_cpu ((SB_ONDISK_JP(s)->jp_journal_size))
  897. #define SB_ONDISK_JOURNAL_1st_BLOCK(s) \
  898. le32_to_cpu ((SB_ONDISK_JP(s)->jp_journal_1st_block))
  899. #define SB_ONDISK_JOURNAL_DEVICE(s) \
  900. le32_to_cpu ((SB_ONDISK_JP(s)->jp_journal_dev))
  901. #define SB_ONDISK_RESERVED_FOR_JOURNAL(s) \
  902. le16_to_cpu ((SB_V1_DISK_SUPER_BLOCK(s)->s_reserved_for_journal))
  903. #define is_block_in_log_or_reserved_area(s, block) \
  904. block >= SB_JOURNAL_1st_RESERVED_BLOCK(s) \
  905. && block < SB_JOURNAL_1st_RESERVED_BLOCK(s) + \
  906. ((!is_reiserfs_jr(SB_DISK_SUPER_BLOCK(s)) ? \
  907. SB_ONDISK_JOURNAL_SIZE(s) + 1 : SB_ONDISK_RESERVED_FOR_JOURNAL(s)))
  908. int is_reiserfs_3_5(struct reiserfs_super_block *rs);
  909. int is_reiserfs_3_6(struct reiserfs_super_block *rs);
  910. int is_reiserfs_jr(struct reiserfs_super_block *rs);
  911. /*
  912. * ReiserFS leaves the first 64k unused, so that partition labels have
  913. * enough space. If someone wants to write a fancy bootloader that
  914. * needs more than 64k, let us know, and this will be increased in size.
  915. * This number must be larger than than the largest block size on any
  916. * platform, or code will break. -Hans
  917. */
  918. #define REISERFS_DISK_OFFSET_IN_BYTES (64 * 1024)
  919. #define REISERFS_FIRST_BLOCK unused_define
  920. #define REISERFS_JOURNAL_OFFSET_IN_BYTES REISERFS_DISK_OFFSET_IN_BYTES
  921. /* the spot for the super in versions 3.5 - 3.5.10 (inclusive) */
  922. #define REISERFS_OLD_DISK_OFFSET_IN_BYTES (8 * 1024)
  923. /* reiserfs internal error code (used by search_by_key and fix_nodes)) */
  924. #define CARRY_ON 0
  925. #define REPEAT_SEARCH -1
  926. #define IO_ERROR -2
  927. #define NO_DISK_SPACE -3
  928. #define NO_BALANCING_NEEDED (-4)
  929. #define NO_MORE_UNUSED_CONTIGUOUS_BLOCKS (-5)
  930. #define QUOTA_EXCEEDED -6
  931. typedef __u32 b_blocknr_t;
  932. typedef __le32 unp_t;
  933. struct unfm_nodeinfo {
  934. unp_t unfm_nodenum;
  935. unsigned short unfm_freespace;
  936. };
  937. /* there are two formats of keys: 3.5 and 3.6 */
  938. #define KEY_FORMAT_3_5 0
  939. #define KEY_FORMAT_3_6 1
  940. /* there are two stat datas */
  941. #define STAT_DATA_V1 0
  942. #define STAT_DATA_V2 1
  943. static inline struct reiserfs_inode_info *REISERFS_I(const struct inode *inode)
  944. {
  945. return container_of(inode, struct reiserfs_inode_info, vfs_inode);
  946. }
  947. static inline struct reiserfs_sb_info *REISERFS_SB(const struct super_block *sb)
  948. {
  949. return sb->s_fs_info;
  950. }
  951. /*
  952. * Don't trust REISERFS_SB(sb)->s_bmap_nr, it's a u16
  953. * which overflows on large file systems.
  954. */
  955. static inline __u32 reiserfs_bmap_count(struct super_block *sb)
  956. {
  957. return (SB_BLOCK_COUNT(sb) - 1) / (sb->s_blocksize * 8) + 1;
  958. }
  959. static inline int bmap_would_wrap(unsigned bmap_nr)
  960. {
  961. return bmap_nr > ((1LL << 16) - 1);
  962. }
  963. /*
  964. * this says about version of key of all items (but stat data) the
  965. * object consists of
  966. */
  967. #define get_inode_item_key_version( inode ) \
  968. ((REISERFS_I(inode)->i_flags & i_item_key_version_mask) ? KEY_FORMAT_3_6 : KEY_FORMAT_3_5)
  969. #define set_inode_item_key_version( inode, version ) \
  970. ({ if((version)==KEY_FORMAT_3_6) \
  971. REISERFS_I(inode)->i_flags |= i_item_key_version_mask; \
  972. else \
  973. REISERFS_I(inode)->i_flags &= ~i_item_key_version_mask; })
  974. #define get_inode_sd_version(inode) \
  975. ((REISERFS_I(inode)->i_flags & i_stat_data_version_mask) ? STAT_DATA_V2 : STAT_DATA_V1)
  976. #define set_inode_sd_version(inode, version) \
  977. ({ if((version)==STAT_DATA_V2) \
  978. REISERFS_I(inode)->i_flags |= i_stat_data_version_mask; \
  979. else \
  980. REISERFS_I(inode)->i_flags &= ~i_stat_data_version_mask; })
  981. /*
  982. * This is an aggressive tail suppression policy, I am hoping it
  983. * improves our benchmarks. The principle behind it is that percentage
  984. * space saving is what matters, not absolute space saving. This is
  985. * non-intuitive, but it helps to understand it if you consider that the
  986. * cost to access 4 blocks is not much more than the cost to access 1
  987. * block, if you have to do a seek and rotate. A tail risks a
  988. * non-linear disk access that is significant as a percentage of total
  989. * time cost for a 4 block file and saves an amount of space that is
  990. * less significant as a percentage of space, or so goes the hypothesis.
  991. * -Hans
  992. */
  993. #define STORE_TAIL_IN_UNFM_S1(n_file_size,n_tail_size,n_block_size) \
  994. (\
  995. (!(n_tail_size)) || \
  996. (((n_tail_size) > MAX_DIRECT_ITEM_LEN(n_block_size)) || \
  997. ( (n_file_size) >= (n_block_size) * 4 ) || \
  998. ( ( (n_file_size) >= (n_block_size) * 3 ) && \
  999. ( (n_tail_size) >= (MAX_DIRECT_ITEM_LEN(n_block_size))/4) ) || \
  1000. ( ( (n_file_size) >= (n_block_size) * 2 ) && \
  1001. ( (n_tail_size) >= (MAX_DIRECT_ITEM_LEN(n_block_size))/2) ) || \
  1002. ( ( (n_file_size) >= (n_block_size) ) && \
  1003. ( (n_tail_size) >= (MAX_DIRECT_ITEM_LEN(n_block_size) * 3)/4) ) ) \
  1004. )
  1005. /*
  1006. * Another strategy for tails, this one means only create a tail if all the
  1007. * file would fit into one DIRECT item.
  1008. * Primary intention for this one is to increase performance by decreasing
  1009. * seeking.
  1010. */
  1011. #define STORE_TAIL_IN_UNFM_S2(n_file_size,n_tail_size,n_block_size) \
  1012. (\
  1013. (!(n_tail_size)) || \
  1014. (((n_file_size) > MAX_DIRECT_ITEM_LEN(n_block_size)) ) \
  1015. )
  1016. /*
  1017. * values for s_umount_state field
  1018. */
  1019. #define REISERFS_VALID_FS 1
  1020. #define REISERFS_ERROR_FS 2
  1021. /*
  1022. * there are 5 item types currently
  1023. */
  1024. #define TYPE_STAT_DATA 0
  1025. #define TYPE_INDIRECT 1
  1026. #define TYPE_DIRECT 2
  1027. #define TYPE_DIRENTRY 3
  1028. #define TYPE_MAXTYPE 3
  1029. #define TYPE_ANY 15 /* FIXME: comment is required */
  1030. /***************************************************************************
  1031. * KEY & ITEM HEAD *
  1032. ***************************************************************************/
  1033. /* * directories use this key as well as old files */
  1034. struct offset_v1 {
  1035. __le32 k_offset;
  1036. __le32 k_uniqueness;
  1037. } __attribute__ ((__packed__));
  1038. struct offset_v2 {
  1039. __le64 v;
  1040. } __attribute__ ((__packed__));
  1041. static inline __u16 offset_v2_k_type(const struct offset_v2 *v2)
  1042. {
  1043. __u8 type = le64_to_cpu(v2->v) >> 60;
  1044. return (type <= TYPE_MAXTYPE) ? type : TYPE_ANY;
  1045. }
  1046. static inline void set_offset_v2_k_type(struct offset_v2 *v2, int type)
  1047. {
  1048. v2->v =
  1049. (v2->v & cpu_to_le64(~0ULL >> 4)) | cpu_to_le64((__u64) type << 60);
  1050. }
  1051. static inline loff_t offset_v2_k_offset(const struct offset_v2 *v2)
  1052. {
  1053. return le64_to_cpu(v2->v) & (~0ULL >> 4);
  1054. }
  1055. static inline void set_offset_v2_k_offset(struct offset_v2 *v2, loff_t offset)
  1056. {
  1057. offset &= (~0ULL >> 4);
  1058. v2->v = (v2->v & cpu_to_le64(15ULL << 60)) | cpu_to_le64(offset);
  1059. }
  1060. /*
  1061. * Key of an item determines its location in the S+tree, and
  1062. * is composed of 4 components
  1063. */
  1064. struct reiserfs_key {
  1065. /* packing locality: by default parent directory object id */
  1066. __le32 k_dir_id;
  1067. __le32 k_objectid; /* object identifier */
  1068. union {
  1069. struct offset_v1 k_offset_v1;
  1070. struct offset_v2 k_offset_v2;
  1071. } __attribute__ ((__packed__)) u;
  1072. } __attribute__ ((__packed__));
  1073. struct in_core_key {
  1074. /* packing locality: by default parent directory object id */
  1075. __u32 k_dir_id;
  1076. __u32 k_objectid; /* object identifier */
  1077. __u64 k_offset;
  1078. __u8 k_type;
  1079. };
  1080. struct cpu_key {
  1081. struct in_core_key on_disk_key;
  1082. int version;
  1083. /* 3 in all cases but direct2indirect and indirect2direct conversion */
  1084. int key_length;
  1085. };
  1086. /*
  1087. * Our function for comparing keys can compare keys of different
  1088. * lengths. It takes as a parameter the length of the keys it is to
  1089. * compare. These defines are used in determining what is to be passed
  1090. * to it as that parameter.
  1091. */
  1092. #define REISERFS_FULL_KEY_LEN 4
  1093. #define REISERFS_SHORT_KEY_LEN 2
  1094. /* The result of the key compare */
  1095. #define FIRST_GREATER 1
  1096. #define SECOND_GREATER -1
  1097. #define KEYS_IDENTICAL 0
  1098. #define KEY_FOUND 1
  1099. #define KEY_NOT_FOUND 0
  1100. #define KEY_SIZE (sizeof(struct reiserfs_key))
  1101. #define SHORT_KEY_SIZE (sizeof (__u32) + sizeof (__u32))
  1102. /* return values for search_by_key and clones */
  1103. #define ITEM_FOUND 1
  1104. #define ITEM_NOT_FOUND 0
  1105. #define ENTRY_FOUND 1
  1106. #define ENTRY_NOT_FOUND 0
  1107. #define DIRECTORY_NOT_FOUND -1
  1108. #define REGULAR_FILE_FOUND -2
  1109. #define DIRECTORY_FOUND -3
  1110. #define BYTE_FOUND 1
  1111. #define BYTE_NOT_FOUND 0
  1112. #define FILE_NOT_FOUND -1
  1113. #define POSITION_FOUND 1
  1114. #define POSITION_NOT_FOUND 0
  1115. /* return values for reiserfs_find_entry and search_by_entry_key */
  1116. #define NAME_FOUND 1
  1117. #define NAME_NOT_FOUND 0
  1118. #define GOTO_PREVIOUS_ITEM 2
  1119. #define NAME_FOUND_INVISIBLE 3
  1120. /*
  1121. * Everything in the filesystem is stored as a set of items. The
  1122. * item head contains the key of the item, its free space (for
  1123. * indirect items) and specifies the location of the item itself
  1124. * within the block.
  1125. */
  1126. struct item_head {
  1127. /*
  1128. * Everything in the tree is found by searching for it based on
  1129. * its key.
  1130. */
  1131. struct reiserfs_key ih_key;
  1132. union {
  1133. /*
  1134. * The free space in the last unformatted node of an
  1135. * indirect item if this is an indirect item. This
  1136. * equals 0xFFFF iff this is a direct item or stat data
  1137. * item. Note that the key, not this field, is used to
  1138. * determine the item type, and thus which field this
  1139. * union contains.
  1140. */
  1141. __le16 ih_free_space_reserved;
  1142. /*
  1143. * Iff this is a directory item, this field equals the
  1144. * number of directory entries in the directory item.
  1145. */
  1146. __le16 ih_entry_count;
  1147. } __attribute__ ((__packed__)) u;
  1148. __le16 ih_item_len; /* total size of the item body */
  1149. /* an offset to the item body within the block */
  1150. __le16 ih_item_location;
  1151. /*
  1152. * 0 for all old items, 2 for new ones. Highest bit is set by fsck
  1153. * temporary, cleaned after all done
  1154. */
  1155. __le16 ih_version;
  1156. } __attribute__ ((__packed__));
  1157. /* size of item header */
  1158. #define IH_SIZE (sizeof(struct item_head))
  1159. #define ih_free_space(ih) le16_to_cpu((ih)->u.ih_free_space_reserved)
  1160. #define ih_version(ih) le16_to_cpu((ih)->ih_version)
  1161. #define ih_entry_count(ih) le16_to_cpu((ih)->u.ih_entry_count)
  1162. #define ih_location(ih) le16_to_cpu((ih)->ih_item_location)
  1163. #define ih_item_len(ih) le16_to_cpu((ih)->ih_item_len)
  1164. #define put_ih_free_space(ih, val) do { (ih)->u.ih_free_space_reserved = cpu_to_le16(val); } while(0)
  1165. #define put_ih_version(ih, val) do { (ih)->ih_version = cpu_to_le16(val); } while (0)
  1166. #define put_ih_entry_count(ih, val) do { (ih)->u.ih_entry_count = cpu_to_le16(val); } while (0)
  1167. #define put_ih_location(ih, val) do { (ih)->ih_item_location = cpu_to_le16(val); } while (0)
  1168. #define put_ih_item_len(ih, val) do { (ih)->ih_item_len = cpu_to_le16(val); } while (0)
  1169. #define unreachable_item(ih) (ih_version(ih) & (1 << 15))
  1170. #define get_ih_free_space(ih) (ih_version (ih) == KEY_FORMAT_3_6 ? 0 : ih_free_space (ih))
  1171. #define set_ih_free_space(ih,val) put_ih_free_space((ih), ((ih_version(ih) == KEY_FORMAT_3_6) ? 0 : (val)))
  1172. /*
  1173. * these operate on indirect items, where you've got an array of ints
  1174. * at a possibly unaligned location. These are a noop on ia32
  1175. *
  1176. * p is the array of __u32, i is the index into the array, v is the value
  1177. * to store there.
  1178. */
  1179. #define get_block_num(p, i) get_unaligned_le32((p) + (i))
  1180. #define put_block_num(p, i, v) put_unaligned_le32((v), (p) + (i))
  1181. /* * in old version uniqueness field shows key type */
  1182. #define V1_SD_UNIQUENESS 0
  1183. #define V1_INDIRECT_UNIQUENESS 0xfffffffe
  1184. #define V1_DIRECT_UNIQUENESS 0xffffffff
  1185. #define V1_DIRENTRY_UNIQUENESS 500
  1186. #define V1_ANY_UNIQUENESS 555 /* FIXME: comment is required */
  1187. /* here are conversion routines */
  1188. static inline int uniqueness2type(__u32 uniqueness) CONSTF;
  1189. static inline int uniqueness2type(__u32 uniqueness)
  1190. {
  1191. switch ((int)uniqueness) {
  1192. case V1_SD_UNIQUENESS:
  1193. return TYPE_STAT_DATA;
  1194. case V1_INDIRECT_UNIQUENESS:
  1195. return TYPE_INDIRECT;
  1196. case V1_DIRECT_UNIQUENESS:
  1197. return TYPE_DIRECT;
  1198. case V1_DIRENTRY_UNIQUENESS:
  1199. return TYPE_DIRENTRY;
  1200. case V1_ANY_UNIQUENESS:
  1201. default:
  1202. return TYPE_ANY;
  1203. }
  1204. }
  1205. static inline __u32 type2uniqueness(int type) CONSTF;
  1206. static inline __u32 type2uniqueness(int type)
  1207. {
  1208. switch (type) {
  1209. case TYPE_STAT_DATA:
  1210. return V1_SD_UNIQUENESS;
  1211. case TYPE_INDIRECT:
  1212. return V1_INDIRECT_UNIQUENESS;
  1213. case TYPE_DIRECT:
  1214. return V1_DIRECT_UNIQUENESS;
  1215. case TYPE_DIRENTRY:
  1216. return V1_DIRENTRY_UNIQUENESS;
  1217. case TYPE_ANY:
  1218. default:
  1219. return V1_ANY_UNIQUENESS;
  1220. }
  1221. }
  1222. /*
  1223. * key is pointer to on disk key which is stored in le, result is cpu,
  1224. * there is no way to get version of object from key, so, provide
  1225. * version to these defines
  1226. */
  1227. static inline loff_t le_key_k_offset(int version,
  1228. const struct reiserfs_key *key)
  1229. {
  1230. return (version == KEY_FORMAT_3_5) ?
  1231. le32_to_cpu(key->u.k_offset_v1.k_offset) :
  1232. offset_v2_k_offset(&(key->u.k_offset_v2));
  1233. }
  1234. static inline loff_t le_ih_k_offset(const struct item_head *ih)
  1235. {
  1236. return le_key_k_offset(ih_version(ih), &(ih->ih_key));
  1237. }
  1238. static inline loff_t le_key_k_type(int version, const struct reiserfs_key *key)
  1239. {
  1240. if (version == KEY_FORMAT_3_5) {
  1241. loff_t val = le32_to_cpu(key->u.k_offset_v1.k_uniqueness);
  1242. return uniqueness2type(val);
  1243. } else
  1244. return offset_v2_k_type(&(key->u.k_offset_v2));
  1245. }
  1246. static inline loff_t le_ih_k_type(const struct item_head *ih)
  1247. {
  1248. return le_key_k_type(ih_version(ih), &(ih->ih_key));
  1249. }
  1250. static inline void set_le_key_k_offset(int version, struct reiserfs_key *key,
  1251. loff_t offset)
  1252. {
  1253. if (version == KEY_FORMAT_3_5)
  1254. key->u.k_offset_v1.k_offset = cpu_to_le32(offset);
  1255. else
  1256. set_offset_v2_k_offset(&key->u.k_offset_v2, offset);
  1257. }
  1258. static inline void add_le_key_k_offset(int version, struct reiserfs_key *key,
  1259. loff_t offset)
  1260. {
  1261. set_le_key_k_offset(version, key,
  1262. le_key_k_offset(version, key) + offset);
  1263. }
  1264. static inline void add_le_ih_k_offset(struct item_head *ih, loff_t offset)
  1265. {
  1266. add_le_key_k_offset(ih_version(ih), &(ih->ih_key), offset);
  1267. }
  1268. static inline void set_le_ih_k_offset(struct item_head *ih, loff_t offset)
  1269. {
  1270. set_le_key_k_offset(ih_version(ih), &(ih->ih_key), offset);
  1271. }
  1272. static inline void set_le_key_k_type(int version, struct reiserfs_key *key,
  1273. int type)
  1274. {
  1275. if (version == KEY_FORMAT_3_5) {
  1276. type = type2uniqueness(type);
  1277. key->u.k_offset_v1.k_uniqueness = cpu_to_le32(type);
  1278. } else
  1279. set_offset_v2_k_type(&key->u.k_offset_v2, type);
  1280. }
  1281. static inline void set_le_ih_k_type(struct item_head *ih, int type)
  1282. {
  1283. set_le_key_k_type(ih_version(ih), &(ih->ih_key), type);
  1284. }
  1285. static inline int is_direntry_le_key(int version, struct reiserfs_key *key)
  1286. {
  1287. return le_key_k_type(version, key) == TYPE_DIRENTRY;
  1288. }
  1289. static inline int is_direct_le_key(int version, struct reiserfs_key *key)
  1290. {
  1291. return le_key_k_type(version, key) == TYPE_DIRECT;
  1292. }
  1293. static inline int is_indirect_le_key(int version, struct reiserfs_key *key)
  1294. {
  1295. return le_key_k_type(version, key) == TYPE_INDIRECT;
  1296. }
  1297. static inline int is_statdata_le_key(int version, struct reiserfs_key *key)
  1298. {
  1299. return le_key_k_type(version, key) == TYPE_STAT_DATA;
  1300. }
  1301. /* item header has version. */
  1302. static inline int is_direntry_le_ih(struct item_head *ih)
  1303. {
  1304. return is_direntry_le_key(ih_version(ih), &ih->ih_key);
  1305. }
  1306. static inline int is_direct_le_ih(struct item_head *ih)
  1307. {
  1308. return is_direct_le_key(ih_version(ih), &ih->ih_key);
  1309. }
  1310. static inline int is_indirect_le_ih(struct item_head *ih)
  1311. {
  1312. return is_indirect_le_key(ih_version(ih), &ih->ih_key);
  1313. }
  1314. static inline int is_statdata_le_ih(struct item_head *ih)
  1315. {
  1316. return is_statdata_le_key(ih_version(ih), &ih->ih_key);
  1317. }
  1318. /* key is pointer to cpu key, result is cpu */
  1319. static inline loff_t cpu_key_k_offset(const struct cpu_key *key)
  1320. {
  1321. return key->on_disk_key.k_offset;
  1322. }
  1323. static inline loff_t cpu_key_k_type(const struct cpu_key *key)
  1324. {
  1325. return key->on_disk_key.k_type;
  1326. }
  1327. static inline void set_cpu_key_k_offset(struct cpu_key *key, loff_t offset)
  1328. {
  1329. key->on_disk_key.k_offset = offset;
  1330. }
  1331. static inline void set_cpu_key_k_type(struct cpu_key *key, int type)
  1332. {
  1333. key->on_disk_key.k_type = type;
  1334. }
  1335. static inline void cpu_key_k_offset_dec(struct cpu_key *key)
  1336. {
  1337. key->on_disk_key.k_offset--;
  1338. }
  1339. #define is_direntry_cpu_key(key) (cpu_key_k_type (key) == TYPE_DIRENTRY)
  1340. #define is_direct_cpu_key(key) (cpu_key_k_type (key) == TYPE_DIRECT)
  1341. #define is_indirect_cpu_key(key) (cpu_key_k_type (key) == TYPE_INDIRECT)
  1342. #define is_statdata_cpu_key(key) (cpu_key_k_type (key) == TYPE_STAT_DATA)
  1343. /* are these used ? */
  1344. #define is_direntry_cpu_ih(ih) (is_direntry_cpu_key (&((ih)->ih_key)))
  1345. #define is_direct_cpu_ih(ih) (is_direct_cpu_key (&((ih)->ih_key)))
  1346. #define is_indirect_cpu_ih(ih) (is_indirect_cpu_key (&((ih)->ih_key)))
  1347. #define is_statdata_cpu_ih(ih) (is_statdata_cpu_key (&((ih)->ih_key)))
  1348. #define I_K_KEY_IN_ITEM(ih, key, n_blocksize) \
  1349. (!COMP_SHORT_KEYS(ih, key) && \
  1350. I_OFF_BYTE_IN_ITEM(ih, k_offset(key), n_blocksize))
  1351. /* maximal length of item */
  1352. #define MAX_ITEM_LEN(block_size) (block_size - BLKH_SIZE - IH_SIZE)
  1353. #define MIN_ITEM_LEN 1
  1354. /* object identifier for root dir */
  1355. #define REISERFS_ROOT_OBJECTID 2
  1356. #define REISERFS_ROOT_PARENT_OBJECTID 1
  1357. extern struct reiserfs_key root_key;
  1358. /*
  1359. * Picture represents a leaf of the S+tree
  1360. * ______________________________________________________
  1361. * | | Array of | | |
  1362. * |Block | Object-Item | F r e e | Objects- |
  1363. * | head | Headers | S p a c e | Items |
  1364. * |______|_______________|___________________|___________|
  1365. */
  1366. /*
  1367. * Header of a disk block. More precisely, header of a formatted leaf
  1368. * or internal node, and not the header of an unformatted node.
  1369. */
  1370. struct block_head {
  1371. __le16 blk_level; /* Level of a block in the tree. */
  1372. __le16 blk_nr_item; /* Number of keys/items in a block. */
  1373. __le16 blk_free_space; /* Block free space in bytes. */
  1374. __le16 blk_reserved;
  1375. /* dump this in v4/planA */
  1376. /* kept only for compatibility */
  1377. struct reiserfs_key blk_right_delim_key;
  1378. };
  1379. #define BLKH_SIZE (sizeof(struct block_head))
  1380. #define blkh_level(p_blkh) (le16_to_cpu((p_blkh)->blk_level))
  1381. #define blkh_nr_item(p_blkh) (le16_to_cpu((p_blkh)->blk_nr_item))
  1382. #define blkh_free_space(p_blkh) (le16_to_cpu((p_blkh)->blk_free_space))
  1383. #define blkh_reserved(p_blkh) (le16_to_cpu((p_blkh)->blk_reserved))
  1384. #define set_blkh_level(p_blkh,val) ((p_blkh)->blk_level = cpu_to_le16(val))
  1385. #define set_blkh_nr_item(p_blkh,val) ((p_blkh)->blk_nr_item = cpu_to_le16(val))
  1386. #define set_blkh_free_space(p_blkh,val) ((p_blkh)->blk_free_space = cpu_to_le16(val))
  1387. #define set_blkh_reserved(p_blkh,val) ((p_blkh)->blk_reserved = cpu_to_le16(val))
  1388. #define blkh_right_delim_key(p_blkh) ((p_blkh)->blk_right_delim_key)
  1389. #define set_blkh_right_delim_key(p_blkh,val) ((p_blkh)->blk_right_delim_key = val)
  1390. /* values for blk_level field of the struct block_head */
  1391. /*
  1392. * When node gets removed from the tree its blk_level is set to FREE_LEVEL.
  1393. * It is then used to see whether the node is still in the tree
  1394. */
  1395. #define FREE_LEVEL 0
  1396. #define DISK_LEAF_NODE_LEVEL 1 /* Leaf node level. */
  1397. /*
  1398. * Given the buffer head of a formatted node, resolve to the
  1399. * block head of that node.
  1400. */
  1401. #define B_BLK_HEAD(bh) ((struct block_head *)((bh)->b_data))
  1402. /* Number of items that are in buffer. */
  1403. #define B_NR_ITEMS(bh) (blkh_nr_item(B_BLK_HEAD(bh)))
  1404. #define B_LEVEL(bh) (blkh_level(B_BLK_HEAD(bh)))
  1405. #define B_FREE_SPACE(bh) (blkh_free_space(B_BLK_HEAD(bh)))
  1406. #define PUT_B_NR_ITEMS(bh, val) do { set_blkh_nr_item(B_BLK_HEAD(bh), val); } while (0)
  1407. #define PUT_B_LEVEL(bh, val) do { set_blkh_level(B_BLK_HEAD(bh), val); } while (0)
  1408. #define PUT_B_FREE_SPACE(bh, val) do { set_blkh_free_space(B_BLK_HEAD(bh), val); } while (0)
  1409. /* Get right delimiting key. -- little endian */
  1410. #define B_PRIGHT_DELIM_KEY(bh) (&(blk_right_delim_key(B_BLK_HEAD(bh))))
  1411. /* Does the buffer contain a disk leaf. */
  1412. #define B_IS_ITEMS_LEVEL(bh) (B_LEVEL(bh) == DISK_LEAF_NODE_LEVEL)
  1413. /* Does the buffer contain a disk internal node */
  1414. #define B_IS_KEYS_LEVEL(bh) (B_LEVEL(bh) > DISK_LEAF_NODE_LEVEL \
  1415. && B_LEVEL(bh) <= MAX_HEIGHT)
  1416. /***************************************************************************
  1417. * STAT DATA *
  1418. ***************************************************************************/
  1419. /*
  1420. * old stat data is 32 bytes long. We are going to distinguish new one by
  1421. * different size
  1422. */
  1423. struct stat_data_v1 {
  1424. __le16 sd_mode; /* file type, permissions */
  1425. __le16 sd_nlink; /* number of hard links */
  1426. __le16 sd_uid; /* owner */
  1427. __le16 sd_gid; /* group */
  1428. __le32 sd_size; /* file size */
  1429. __le32 sd_atime; /* time of last access */
  1430. __le32 sd_mtime; /* time file was last modified */
  1431. /*
  1432. * time inode (stat data) was last changed
  1433. * (except changes to sd_atime and sd_mtime)
  1434. */
  1435. __le32 sd_ctime;
  1436. union {
  1437. __le32 sd_rdev;
  1438. __le32 sd_blocks; /* number of blocks file uses */
  1439. } __attribute__ ((__packed__)) u;
  1440. /*
  1441. * first byte of file which is stored in a direct item: except that if
  1442. * it equals 1 it is a symlink and if it equals ~(__u32)0 there is no
  1443. * direct item. The existence of this field really grates on me.
  1444. * Let's replace it with a macro based on sd_size and our tail
  1445. * suppression policy. Someday. -Hans
  1446. */
  1447. __le32 sd_first_direct_byte;
  1448. } __attribute__ ((__packed__));
  1449. #define SD_V1_SIZE (sizeof(struct stat_data_v1))
  1450. #define stat_data_v1(ih) (ih_version (ih) == KEY_FORMAT_3_5)
  1451. #define sd_v1_mode(sdp) (le16_to_cpu((sdp)->sd_mode))
  1452. #define set_sd_v1_mode(sdp,v) ((sdp)->sd_mode = cpu_to_le16(v))
  1453. #define sd_v1_nlink(sdp) (le16_to_cpu((sdp)->sd_nlink))
  1454. #define set_sd_v1_nlink(sdp,v) ((sdp)->sd_nlink = cpu_to_le16(v))
  1455. #define sd_v1_uid(sdp) (le16_to_cpu((sdp)->sd_uid))
  1456. #define set_sd_v1_uid(sdp,v) ((sdp)->sd_uid = cpu_to_le16(v))
  1457. #define sd_v1_gid(sdp) (le16_to_cpu((sdp)->sd_gid))
  1458. #define set_sd_v1_gid(sdp,v) ((sdp)->sd_gid = cpu_to_le16(v))
  1459. #define sd_v1_size(sdp) (le32_to_cpu((sdp)->sd_size))
  1460. #define set_sd_v1_size(sdp,v) ((sdp)->sd_size = cpu_to_le32(v))
  1461. #define sd_v1_atime(sdp) (le32_to_cpu((sdp)->sd_atime))
  1462. #define set_sd_v1_atime(sdp,v) ((sdp)->sd_atime = cpu_to_le32(v))
  1463. #define sd_v1_mtime(sdp) (le32_to_cpu((sdp)->sd_mtime))
  1464. #define set_sd_v1_mtime(sdp,v) ((sdp)->sd_mtime = cpu_to_le32(v))
  1465. #define sd_v1_ctime(sdp) (le32_to_cpu((sdp)->sd_ctime))
  1466. #define set_sd_v1_ctime(sdp,v) ((sdp)->sd_ctime = cpu_to_le32(v))
  1467. #define sd_v1_rdev(sdp) (le32_to_cpu((sdp)->u.sd_rdev))
  1468. #define set_sd_v1_rdev(sdp,v) ((sdp)->u.sd_rdev = cpu_to_le32(v))
  1469. #define sd_v1_blocks(sdp) (le32_to_cpu((sdp)->u.sd_blocks))
  1470. #define set_sd_v1_blocks(sdp,v) ((sdp)->u.sd_blocks = cpu_to_le32(v))
  1471. #define sd_v1_first_direct_byte(sdp) \
  1472. (le32_to_cpu((sdp)->sd_first_direct_byte))
  1473. #define set_sd_v1_first_direct_byte(sdp,v) \
  1474. ((sdp)->sd_first_direct_byte = cpu_to_le32(v))
  1475. /* inode flags stored in sd_attrs (nee sd_reserved) */
  1476. /*
  1477. * we want common flags to have the same values as in ext2,
  1478. * so chattr(1) will work without problems
  1479. */
  1480. #define REISERFS_IMMUTABLE_FL FS_IMMUTABLE_FL
  1481. #define REISERFS_APPEND_FL FS_APPEND_FL
  1482. #define REISERFS_SYNC_FL FS_SYNC_FL
  1483. #define REISERFS_NOATIME_FL FS_NOATIME_FL
  1484. #define REISERFS_NODUMP_FL FS_NODUMP_FL
  1485. #define REISERFS_SECRM_FL FS_SECRM_FL
  1486. #define REISERFS_UNRM_FL FS_UNRM_FL
  1487. #define REISERFS_COMPR_FL FS_COMPR_FL
  1488. #define REISERFS_NOTAIL_FL FS_NOTAIL_FL
  1489. /* persistent flags that file inherits from the parent directory */
  1490. #define REISERFS_INHERIT_MASK ( REISERFS_IMMUTABLE_FL | \
  1491. REISERFS_SYNC_FL | \
  1492. REISERFS_NOATIME_FL | \
  1493. REISERFS_NODUMP_FL | \
  1494. REISERFS_SECRM_FL | \
  1495. REISERFS_COMPR_FL | \
  1496. REISERFS_NOTAIL_FL )
  1497. /*
  1498. * Stat Data on disk (reiserfs version of UFS disk inode minus the
  1499. * address blocks)
  1500. */
  1501. struct stat_data {
  1502. __le16 sd_mode; /* file type, permissions */
  1503. __le16 sd_attrs; /* persistent inode flags */
  1504. __le32 sd_nlink; /* number of hard links */
  1505. __le64 sd_size; /* file size */
  1506. __le32 sd_uid; /* owner */
  1507. __le32 sd_gid; /* group */
  1508. __le32 sd_atime; /* time of last access */
  1509. __le32 sd_mtime; /* time file was last modified */
  1510. /*
  1511. * time inode (stat data) was last changed
  1512. * (except changes to sd_atime and sd_mtime)
  1513. */
  1514. __le32 sd_ctime;
  1515. __le32 sd_blocks;
  1516. union {
  1517. __le32 sd_rdev;
  1518. __le32 sd_generation;
  1519. } __attribute__ ((__packed__)) u;
  1520. } __attribute__ ((__packed__));
  1521. /* this is 44 bytes long */
  1522. #define SD_SIZE (sizeof(struct stat_data))
  1523. #define SD_V2_SIZE SD_SIZE
  1524. #define stat_data_v2(ih) (ih_version (ih) == KEY_FORMAT_3_6)
  1525. #define sd_v2_mode(sdp) (le16_to_cpu((sdp)->sd_mode))
  1526. #define set_sd_v2_mode(sdp,v) ((sdp)->sd_mode = cpu_to_le16(v))
  1527. /* sd_reserved */
  1528. /* set_sd_reserved */
  1529. #define sd_v2_nlink(sdp) (le32_to_cpu((sdp)->sd_nlink))
  1530. #define set_sd_v2_nlink(sdp,v) ((sdp)->sd_nlink = cpu_to_le32(v))
  1531. #define sd_v2_size(sdp) (le64_to_cpu((sdp)->sd_size))
  1532. #define set_sd_v2_size(sdp,v) ((sdp)->sd_size = cpu_to_le64(v))
  1533. #define sd_v2_uid(sdp) (le32_to_cpu((sdp)->sd_uid))
  1534. #define set_sd_v2_uid(sdp,v) ((sdp)->sd_uid = cpu_to_le32(v))
  1535. #define sd_v2_gid(sdp) (le32_to_cpu((sdp)->sd_gid))
  1536. #define set_sd_v2_gid(sdp,v) ((sdp)->sd_gid = cpu_to_le32(v))
  1537. #define sd_v2_atime(sdp) (le32_to_cpu((sdp)->sd_atime))
  1538. #define set_sd_v2_atime(sdp,v) ((sdp)->sd_atime = cpu_to_le32(v))
  1539. #define sd_v2_mtime(sdp) (le32_to_cpu((sdp)->sd_mtime))
  1540. #define set_sd_v2_mtime(sdp,v) ((sdp)->sd_mtime = cpu_to_le32(v))
  1541. #define sd_v2_ctime(sdp) (le32_to_cpu((sdp)->sd_ctime))
  1542. #define set_sd_v2_ctime(sdp,v) ((sdp)->sd_ctime = cpu_to_le32(v))
  1543. #define sd_v2_blocks(sdp) (le32_to_cpu((sdp)->sd_blocks))
  1544. #define set_sd_v2_blocks(sdp,v) ((sdp)->sd_blocks = cpu_to_le32(v))
  1545. #define sd_v2_rdev(sdp) (le32_to_cpu((sdp)->u.sd_rdev))
  1546. #define set_sd_v2_rdev(sdp,v) ((sdp)->u.sd_rdev = cpu_to_le32(v))
  1547. #define sd_v2_generation(sdp) (le32_to_cpu((sdp)->u.sd_generation))
  1548. #define set_sd_v2_generation(sdp,v) ((sdp)->u.sd_generation = cpu_to_le32(v))
  1549. #define sd_v2_attrs(sdp) (le16_to_cpu((sdp)->sd_attrs))
  1550. #define set_sd_v2_attrs(sdp,v) ((sdp)->sd_attrs = cpu_to_le16(v))
  1551. /***************************************************************************
  1552. * DIRECTORY STRUCTURE *
  1553. ***************************************************************************/
  1554. /*
  1555. * Picture represents the structure of directory items
  1556. * ________________________________________________
  1557. * | Array of | | | | | |
  1558. * | directory |N-1| N-2 | .... | 1st |0th|
  1559. * | entry headers | | | | | |
  1560. * |_______________|___|_____|________|_______|___|
  1561. * <---- directory entries ------>
  1562. *
  1563. * First directory item has k_offset component 1. We store "." and ".."
  1564. * in one item, always, we never split "." and ".." into differing
  1565. * items. This makes, among other things, the code for removing
  1566. * directories simpler.
  1567. */
  1568. #define SD_OFFSET 0
  1569. #define SD_UNIQUENESS 0
  1570. #define DOT_OFFSET 1
  1571. #define DOT_DOT_OFFSET 2
  1572. #define DIRENTRY_UNIQUENESS 500
  1573. #define FIRST_ITEM_OFFSET 1
  1574. /*
  1575. * Q: How to get key of object pointed to by entry from entry?
  1576. *
  1577. * A: Each directory entry has its header. This header has deh_dir_id
  1578. * and deh_objectid fields, those are key of object, entry points to
  1579. */
  1580. /*
  1581. * NOT IMPLEMENTED:
  1582. * Directory will someday contain stat data of object
  1583. */
  1584. struct reiserfs_de_head {
  1585. __le32 deh_offset; /* third component of the directory entry key */
  1586. /*
  1587. * objectid of the parent directory of the object, that is referenced
  1588. * by directory entry
  1589. */
  1590. __le32 deh_dir_id;
  1591. /* objectid of the object, that is referenced by directory entry */
  1592. __le32 deh_objectid;
  1593. __le16 deh_location; /* offset of name in the whole item */
  1594. /*
  1595. * whether 1) entry contains stat data (for future), and
  1596. * 2) whether entry is hidden (unlinked)
  1597. */
  1598. __le16 deh_state;
  1599. } __attribute__ ((__packed__));
  1600. #define DEH_SIZE sizeof(struct reiserfs_de_head)
  1601. #define deh_offset(p_deh) (le32_to_cpu((p_deh)->deh_offset))
  1602. #define deh_dir_id(p_deh) (le32_to_cpu((p_deh)->deh_dir_id))
  1603. #define deh_objectid(p_deh) (le32_to_cpu((p_deh)->deh_objectid))
  1604. #define deh_location(p_deh) (le16_to_cpu((p_deh)->deh_location))
  1605. #define deh_state(p_deh) (le16_to_cpu((p_deh)->deh_state))
  1606. #define put_deh_offset(p_deh,v) ((p_deh)->deh_offset = cpu_to_le32((v)))
  1607. #define put_deh_dir_id(p_deh,v) ((p_deh)->deh_dir_id = cpu_to_le32((v)))
  1608. #define put_deh_objectid(p_deh,v) ((p_deh)->deh_objectid = cpu_to_le32((v)))
  1609. #define put_deh_location(p_deh,v) ((p_deh)->deh_location = cpu_to_le16((v)))
  1610. #define put_deh_state(p_deh,v) ((p_deh)->deh_state = cpu_to_le16((v)))
  1611. /* empty directory contains two entries "." and ".." and their headers */
  1612. #define EMPTY_DIR_SIZE \
  1613. (DEH_SIZE * 2 + ROUND_UP (strlen (".")) + ROUND_UP (strlen ("..")))
  1614. /* old format directories have this size when empty */
  1615. #define EMPTY_DIR_SIZE_V1 (DEH_SIZE * 2 + 3)
  1616. #define DEH_Statdata 0 /* not used now */
  1617. #define DEH_Visible 2
  1618. /* 64 bit systems (and the S/390) need to be aligned explicitly -jdm */
  1619. #if BITS_PER_LONG == 64 || defined(__s390__) || defined(__hppa__)
  1620. # define ADDR_UNALIGNED_BITS (3)
  1621. #endif
  1622. /*
  1623. * These are only used to manipulate deh_state.
  1624. * Because of this, we'll use the ext2_ bit routines,
  1625. * since they are little endian
  1626. */
  1627. #ifdef ADDR_UNALIGNED_BITS
  1628. # define aligned_address(addr) ((void *)((long)(addr) & ~((1UL << ADDR_UNALIGNED_BITS) - 1)))
  1629. # define unaligned_offset(addr) (((int)((long)(addr) & ((1 << ADDR_UNALIGNED_BITS) - 1))) << 3)
  1630. # define set_bit_unaligned(nr, addr) \
  1631. __test_and_set_bit_le((nr) + unaligned_offset(addr), aligned_address(addr))
  1632. # define clear_bit_unaligned(nr, addr) \
  1633. __test_and_clear_bit_le((nr) + unaligned_offset(addr), aligned_address(addr))
  1634. # define test_bit_unaligned(nr, addr) \
  1635. test_bit_le((nr) + unaligned_offset(addr), aligned_address(addr))
  1636. #else
  1637. # define set_bit_unaligned(nr, addr) __test_and_set_bit_le(nr, addr)
  1638. # define clear_bit_unaligned(nr, addr) __test_and_clear_bit_le(nr, addr)
  1639. # define test_bit_unaligned(nr, addr) test_bit_le(nr, addr)
  1640. #endif
  1641. #define mark_de_with_sd(deh) set_bit_unaligned (DEH_Statdata, &((deh)->deh_state))
  1642. #define mark_de_without_sd(deh) clear_bit_unaligned (DEH_Statdata, &((deh)->deh_state))
  1643. #define mark_de_visible(deh) set_bit_unaligned (DEH_Visible, &((deh)->deh_state))
  1644. #define mark_de_hidden(deh) clear_bit_unaligned (DEH_Visible, &((deh)->deh_state))
  1645. #define de_with_sd(deh) test_bit_unaligned (DEH_Statdata, &((deh)->deh_state))
  1646. #define de_visible(deh) test_bit_unaligned (DEH_Visible, &((deh)->deh_state))
  1647. #define de_hidden(deh) !test_bit_unaligned (DEH_Visible, &((deh)->deh_state))
  1648. extern void make_empty_dir_item_v1(char *body, __le32 dirid, __le32 objid,
  1649. __le32 par_dirid, __le32 par_objid);
  1650. extern void make_empty_dir_item(char *body, __le32 dirid, __le32 objid,
  1651. __le32 par_dirid, __le32 par_objid);
  1652. /* two entries per block (at least) */
  1653. #define REISERFS_MAX_NAME(block_size) 255
  1654. /*
  1655. * this structure is used for operations on directory entries. It is
  1656. * not a disk structure.
  1657. *
  1658. * When reiserfs_find_entry or search_by_entry_key find directory
  1659. * entry, they return filled reiserfs_dir_entry structure
  1660. */
  1661. struct reiserfs_dir_entry {
  1662. struct buffer_head *de_bh;
  1663. int de_item_num;
  1664. struct item_head *de_ih;
  1665. int de_entry_num;
  1666. struct reiserfs_de_head *de_deh;
  1667. int de_entrylen;
  1668. int de_namelen;
  1669. char *de_name;
  1670. unsigned long *de_gen_number_bit_string;
  1671. __u32 de_dir_id;
  1672. __u32 de_objectid;
  1673. struct cpu_key de_entry_key;
  1674. };
  1675. /*
  1676. * these defines are useful when a particular member of
  1677. * a reiserfs_dir_entry is needed
  1678. */
  1679. /* pointer to file name, stored in entry */
  1680. #define B_I_DEH_ENTRY_FILE_NAME(bh, ih, deh) \
  1681. (ih_item_body(bh, ih) + deh_location(deh))
  1682. /* length of name */
  1683. #define I_DEH_N_ENTRY_FILE_NAME_LENGTH(ih,deh,entry_num) \
  1684. (I_DEH_N_ENTRY_LENGTH (ih, deh, entry_num) - (de_with_sd (deh) ? SD_SIZE : 0))
  1685. /* hash value occupies bits from 7 up to 30 */
  1686. #define GET_HASH_VALUE(offset) ((offset) & 0x7fffff80LL)
  1687. /* generation number occupies 7 bits starting from 0 up to 6 */
  1688. #define GET_GENERATION_NUMBER(offset) ((offset) & 0x7fLL)
  1689. #define MAX_GENERATION_NUMBER 127
  1690. #define SET_GENERATION_NUMBER(offset,gen_number) (GET_HASH_VALUE(offset)|(gen_number))
  1691. /*
  1692. * Picture represents an internal node of the reiserfs tree
  1693. * ______________________________________________________
  1694. * | | Array of | Array of | Free |
  1695. * |block | keys | pointers | space |
  1696. * | head | N | N+1 | |
  1697. * |______|_______________|___________________|___________|
  1698. */
  1699. /***************************************************************************
  1700. * DISK CHILD *
  1701. ***************************************************************************/
  1702. /*
  1703. * Disk child pointer:
  1704. * The pointer from an internal node of the tree to a node that is on disk.
  1705. */
  1706. struct disk_child {
  1707. __le32 dc_block_number; /* Disk child's block number. */
  1708. __le16 dc_size; /* Disk child's used space. */
  1709. __le16 dc_reserved;
  1710. };
  1711. #define DC_SIZE (sizeof(struct disk_child))
  1712. #define dc_block_number(dc_p) (le32_to_cpu((dc_p)->dc_block_number))
  1713. #define dc_size(dc_p) (le16_to_cpu((dc_p)->dc_size))
  1714. #define put_dc_block_number(dc_p, val) do { (dc_p)->dc_block_number = cpu_to_le32(val); } while(0)
  1715. #define put_dc_size(dc_p, val) do { (dc_p)->dc_size = cpu_to_le16(val); } while(0)
  1716. /* Get disk child by buffer header and position in the tree node. */
  1717. #define B_N_CHILD(bh, n_pos) ((struct disk_child *)\
  1718. ((bh)->b_data + BLKH_SIZE + B_NR_ITEMS(bh) * KEY_SIZE + DC_SIZE * (n_pos)))
  1719. /* Get disk child number by buffer header and position in the tree node. */
  1720. #define B_N_CHILD_NUM(bh, n_pos) (dc_block_number(B_N_CHILD(bh, n_pos)))
  1721. #define PUT_B_N_CHILD_NUM(bh, n_pos, val) \
  1722. (put_dc_block_number(B_N_CHILD(bh, n_pos), val))
  1723. /* maximal value of field child_size in structure disk_child */
  1724. /* child size is the combined size of all items and their headers */
  1725. #define MAX_CHILD_SIZE(bh) ((int)( (bh)->b_size - BLKH_SIZE ))
  1726. /* amount of used space in buffer (not including block head) */
  1727. #define B_CHILD_SIZE(cur) (MAX_CHILD_SIZE(cur)-(B_FREE_SPACE(cur)))
  1728. /* max and min number of keys in internal node */
  1729. #define MAX_NR_KEY(bh) ( (MAX_CHILD_SIZE(bh)-DC_SIZE)/(KEY_SIZE+DC_SIZE) )
  1730. #define MIN_NR_KEY(bh) (MAX_NR_KEY(bh)/2)
  1731. /***************************************************************************
  1732. * PATH STRUCTURES AND DEFINES *
  1733. ***************************************************************************/
  1734. /*
  1735. * search_by_key fills up the path from the root to the leaf as it descends
  1736. * the tree looking for the key. It uses reiserfs_bread to try to find
  1737. * buffers in the cache given their block number. If it does not find
  1738. * them in the cache it reads them from disk. For each node search_by_key
  1739. * finds using reiserfs_bread it then uses bin_search to look through that
  1740. * node. bin_search will find the position of the block_number of the next
  1741. * node if it is looking through an internal node. If it is looking through
  1742. * a leaf node bin_search will find the position of the item which has key
  1743. * either equal to given key, or which is the maximal key less than the
  1744. * given key.
  1745. */
  1746. struct path_element {
  1747. /* Pointer to the buffer at the path in the tree. */
  1748. struct buffer_head *pe_buffer;
  1749. /* Position in the tree node which is placed in the buffer above. */
  1750. int pe_position;
  1751. };
  1752. /*
  1753. * maximal height of a tree. don't change this without
  1754. * changing JOURNAL_PER_BALANCE_CNT
  1755. */
  1756. #define MAX_HEIGHT 5
  1757. /* Must be equals MAX_HEIGHT + FIRST_PATH_ELEMENT_OFFSET */
  1758. #define EXTENDED_MAX_HEIGHT 7
  1759. /* Must be equal to at least 2. */
  1760. #define FIRST_PATH_ELEMENT_OFFSET 2
  1761. /* Must be equal to FIRST_PATH_ELEMENT_OFFSET - 1 */
  1762. #define ILLEGAL_PATH_ELEMENT_OFFSET 1
  1763. /* this MUST be MAX_HEIGHT + 1. See about FEB below */
  1764. #define MAX_FEB_SIZE 6
  1765. /*
  1766. * We need to keep track of who the ancestors of nodes are. When we
  1767. * perform a search we record which nodes were visited while
  1768. * descending the tree looking for the node we searched for. This list
  1769. * of nodes is called the path. This information is used while
  1770. * performing balancing. Note that this path information may become
  1771. * invalid, and this means we must check it when using it to see if it
  1772. * is still valid. You'll need to read search_by_key and the comments
  1773. * in it, especially about decrement_counters_in_path(), to understand
  1774. * this structure.
  1775. *
  1776. * Paths make the code so much harder to work with and debug.... An
  1777. * enormous number of bugs are due to them, and trying to write or modify
  1778. * code that uses them just makes my head hurt. They are based on an
  1779. * excessive effort to avoid disturbing the precious VFS code.:-( The
  1780. * gods only know how we are going to SMP the code that uses them.
  1781. * znodes are the way!
  1782. */
  1783. #define PATH_READA 0x1 /* do read ahead */
  1784. #define PATH_READA_BACK 0x2 /* read backwards */
  1785. struct treepath {
  1786. int path_length; /* Length of the array above. */
  1787. int reada;
  1788. /* Array of the path elements. */
  1789. struct path_element path_elements[EXTENDED_MAX_HEIGHT];
  1790. int pos_in_item;
  1791. };
  1792. #define pos_in_item(path) ((path)->pos_in_item)
  1793. #define INITIALIZE_PATH(var) \
  1794. struct treepath var = {.path_length = ILLEGAL_PATH_ELEMENT_OFFSET, .reada = 0,}
  1795. /* Get path element by path and path position. */
  1796. #define PATH_OFFSET_PELEMENT(path, n_offset) ((path)->path_elements + (n_offset))
  1797. /* Get buffer header at the path by path and path position. */
  1798. #define PATH_OFFSET_PBUFFER(path, n_offset) (PATH_OFFSET_PELEMENT(path, n_offset)->pe_buffer)
  1799. /* Get position in the element at the path by path and path position. */
  1800. #define PATH_OFFSET_POSITION(path, n_offset) (PATH_OFFSET_PELEMENT(path, n_offset)->pe_position)
  1801. #define PATH_PLAST_BUFFER(path) (PATH_OFFSET_PBUFFER((path), (path)->path_length))
  1802. /*
  1803. * you know, to the person who didn't write this the macro name does not
  1804. * at first suggest what it does. Maybe POSITION_FROM_PATH_END? Or
  1805. * maybe we should just focus on dumping paths... -Hans
  1806. */
  1807. #define PATH_LAST_POSITION(path) (PATH_OFFSET_POSITION((path), (path)->path_length))
  1808. /*
  1809. * in do_balance leaf has h == 0 in contrast with path structure,
  1810. * where root has level == 0. That is why we need these defines
  1811. */
  1812. /* tb->S[h] */
  1813. #define PATH_H_PBUFFER(path, h) \
  1814. PATH_OFFSET_PBUFFER(path, path->path_length - (h))
  1815. /* tb->F[h] or tb->S[0]->b_parent */
  1816. #define PATH_H_PPARENT(path, h) PATH_H_PBUFFER(path, (h) + 1)
  1817. #define PATH_H_POSITION(path, h) \
  1818. PATH_OFFSET_POSITION(path, path->path_length - (h))
  1819. /* tb->S[h]->b_item_order */
  1820. #define PATH_H_B_ITEM_ORDER(path, h) PATH_H_POSITION(path, h + 1)
  1821. #define PATH_H_PATH_OFFSET(path, n_h) ((path)->path_length - (n_h))
  1822. static inline void *reiserfs_node_data(const struct buffer_head *bh)
  1823. {
  1824. return bh->b_data + sizeof(struct block_head);
  1825. }
  1826. /* get key from internal node */
  1827. static inline struct reiserfs_key *internal_key(struct buffer_head *bh,
  1828. int item_num)
  1829. {
  1830. struct reiserfs_key *key = reiserfs_node_data(bh);
  1831. return &key[item_num];
  1832. }
  1833. /* get the item header from leaf node */
  1834. static inline struct item_head *item_head(const struct buffer_head *bh,
  1835. int item_num)
  1836. {
  1837. struct item_head *ih = reiserfs_node_data(bh);
  1838. return &ih[item_num];
  1839. }
  1840. /* get the key from leaf node */
  1841. static inline struct reiserfs_key *leaf_key(const struct buffer_head *bh,
  1842. int item_num)
  1843. {
  1844. return &item_head(bh, item_num)->ih_key;
  1845. }
  1846. static inline void *ih_item_body(const struct buffer_head *bh,
  1847. const struct item_head *ih)
  1848. {
  1849. return bh->b_data + ih_location(ih);
  1850. }
  1851. /* get item body from leaf node */
  1852. static inline void *item_body(const struct buffer_head *bh, int item_num)
  1853. {
  1854. return ih_item_body(bh, item_head(bh, item_num));
  1855. }
  1856. static inline struct item_head *tp_item_head(const struct treepath *path)
  1857. {
  1858. return item_head(PATH_PLAST_BUFFER(path), PATH_LAST_POSITION(path));
  1859. }
  1860. static inline void *tp_item_body(const struct treepath *path)
  1861. {
  1862. return item_body(PATH_PLAST_BUFFER(path), PATH_LAST_POSITION(path));
  1863. }
  1864. #define get_last_bh(path) PATH_PLAST_BUFFER(path)
  1865. #define get_item_pos(path) PATH_LAST_POSITION(path)
  1866. #define item_moved(ih,path) comp_items(ih, path)
  1867. #define path_changed(ih,path) comp_items (ih, path)
  1868. /* array of the entry headers */
  1869. /* get item body */
  1870. #define B_I_DEH(bh, ih) ((struct reiserfs_de_head *)(ih_item_body(bh, ih)))
  1871. /*
  1872. * length of the directory entry in directory item. This define
  1873. * calculates length of i-th directory entry using directory entry
  1874. * locations from dir entry head. When it calculates length of 0-th
  1875. * directory entry, it uses length of whole item in place of entry
  1876. * location of the non-existent following entry in the calculation.
  1877. * See picture above.
  1878. */
  1879. static inline int entry_length(const struct buffer_head *bh,
  1880. const struct item_head *ih, int pos_in_item)
  1881. {
  1882. struct reiserfs_de_head *deh;
  1883. deh = B_I_DEH(bh, ih) + pos_in_item;
  1884. if (pos_in_item)
  1885. return deh_location(deh - 1) - deh_location(deh);
  1886. return ih_item_len(ih) - deh_location(deh);
  1887. }
  1888. /***************************************************************************
  1889. * MISC *
  1890. ***************************************************************************/
  1891. /* Size of pointer to the unformatted node. */
  1892. #define UNFM_P_SIZE (sizeof(unp_t))
  1893. #define UNFM_P_SHIFT 2
  1894. /* in in-core inode key is stored on le form */
  1895. #define INODE_PKEY(inode) ((struct reiserfs_key *)(REISERFS_I(inode)->i_key))
  1896. #define MAX_UL_INT 0xffffffff
  1897. #define MAX_INT 0x7ffffff
  1898. #define MAX_US_INT 0xffff
  1899. // reiserfs version 2 has max offset 60 bits. Version 1 - 32 bit offset
  1900. static inline loff_t max_reiserfs_offset(struct inode *inode)
  1901. {
  1902. if (get_inode_item_key_version(inode) == KEY_FORMAT_3_5)
  1903. return (loff_t) U32_MAX;
  1904. return (loff_t) ((~(__u64) 0) >> 4);
  1905. }
  1906. #define MAX_KEY_OBJECTID MAX_UL_INT
  1907. #define MAX_B_NUM MAX_UL_INT
  1908. #define MAX_FC_NUM MAX_US_INT
  1909. /* the purpose is to detect overflow of an unsigned short */
  1910. #define REISERFS_LINK_MAX (MAX_US_INT - 1000)
  1911. /*
  1912. * The following defines are used in reiserfs_insert_item
  1913. * and reiserfs_append_item
  1914. */
  1915. #define REISERFS_KERNEL_MEM 0 /* kernel memory mode */
  1916. #define REISERFS_USER_MEM 1 /* user memory mode */
  1917. #define fs_generation(s) (REISERFS_SB(s)->s_generation_counter)
  1918. #define get_generation(s) atomic_read (&fs_generation(s))
  1919. #define FILESYSTEM_CHANGED_TB(tb) (get_generation((tb)->tb_sb) != (tb)->fs_gen)
  1920. #define __fs_changed(gen,s) (gen != get_generation (s))
  1921. #define fs_changed(gen,s) \
  1922. ({ \
  1923. reiserfs_cond_resched(s); \
  1924. __fs_changed(gen, s); \
  1925. })
  1926. /***************************************************************************
  1927. * FIXATE NODES *
  1928. ***************************************************************************/
  1929. #define VI_TYPE_LEFT_MERGEABLE 1
  1930. #define VI_TYPE_RIGHT_MERGEABLE 2
  1931. /*
  1932. * To make any changes in the tree we always first find node, that
  1933. * contains item to be changed/deleted or place to insert a new
  1934. * item. We call this node S. To do balancing we need to decide what
  1935. * we will shift to left/right neighbor, or to a new node, where new
  1936. * item will be etc. To make this analysis simpler we build virtual
  1937. * node. Virtual node is an array of items, that will replace items of
  1938. * node S. (For instance if we are going to delete an item, virtual
  1939. * node does not contain it). Virtual node keeps information about
  1940. * item sizes and types, mergeability of first and last items, sizes
  1941. * of all entries in directory item. We use this array of items when
  1942. * calculating what we can shift to neighbors and how many nodes we
  1943. * have to have if we do not any shiftings, if we shift to left/right
  1944. * neighbor or to both.
  1945. */
  1946. struct virtual_item {
  1947. int vi_index; /* index in the array of item operations */
  1948. unsigned short vi_type; /* left/right mergeability */
  1949. /* length of item that it will have after balancing */
  1950. unsigned short vi_item_len;
  1951. struct item_head *vi_ih;
  1952. const char *vi_item; /* body of item (old or new) */
  1953. const void *vi_new_data; /* 0 always but paste mode */
  1954. void *vi_uarea; /* item specific area */
  1955. };
  1956. struct virtual_node {
  1957. /* this is a pointer to the free space in the buffer */
  1958. char *vn_free_ptr;
  1959. unsigned short vn_nr_item; /* number of items in virtual node */
  1960. /*
  1961. * size of node , that node would have if it has
  1962. * unlimited size and no balancing is performed
  1963. */
  1964. short vn_size;
  1965. /* mode of balancing (paste, insert, delete, cut) */
  1966. short vn_mode;
  1967. short vn_affected_item_num;
  1968. short vn_pos_in_item;
  1969. /* item header of inserted item, 0 for other modes */
  1970. struct item_head *vn_ins_ih;
  1971. const void *vn_data;
  1972. /* array of items (including a new one, excluding item to be deleted) */
  1973. struct virtual_item *vn_vi;
  1974. };
  1975. /* used by directory items when creating virtual nodes */
  1976. struct direntry_uarea {
  1977. int flags;
  1978. __u16 entry_count;
  1979. __u16 entry_sizes[1];
  1980. } __attribute__ ((__packed__));
  1981. /***************************************************************************
  1982. * TREE BALANCE *
  1983. ***************************************************************************/
  1984. /*
  1985. * This temporary structure is used in tree balance algorithms, and
  1986. * constructed as we go to the extent that its various parts are
  1987. * needed. It contains arrays of nodes that can potentially be
  1988. * involved in the balancing of node S, and parameters that define how
  1989. * each of the nodes must be balanced. Note that in these algorithms
  1990. * for balancing the worst case is to need to balance the current node
  1991. * S and the left and right neighbors and all of their parents plus
  1992. * create a new node. We implement S1 balancing for the leaf nodes
  1993. * and S0 balancing for the internal nodes (S1 and S0 are defined in
  1994. * our papers.)
  1995. */
  1996. /* size of the array of buffers to free at end of do_balance */
  1997. #define MAX_FREE_BLOCK 7
  1998. /* maximum number of FEB blocknrs on a single level */
  1999. #define MAX_AMOUNT_NEEDED 2
  2000. /* someday somebody will prefix every field in this struct with tb_ */
  2001. struct tree_balance {
  2002. int tb_mode;
  2003. int need_balance_dirty;
  2004. struct super_block *tb_sb;
  2005. struct reiserfs_transaction_handle *transaction_handle;
  2006. struct treepath *tb_path;
  2007. /* array of left neighbors of nodes in the path */
  2008. struct buffer_head *L[MAX_HEIGHT];
  2009. /* array of right neighbors of nodes in the path */
  2010. struct buffer_head *R[MAX_HEIGHT];
  2011. /* array of fathers of the left neighbors */
  2012. struct buffer_head *FL[MAX_HEIGHT];
  2013. /* array of fathers of the right neighbors */
  2014. struct buffer_head *FR[MAX_HEIGHT];
  2015. /* array of common parents of center node and its left neighbor */
  2016. struct buffer_head *CFL[MAX_HEIGHT];
  2017. /* array of common parents of center node and its right neighbor */
  2018. struct buffer_head *CFR[MAX_HEIGHT];
  2019. /*
  2020. * array of empty buffers. Number of buffers in array equals
  2021. * cur_blknum.
  2022. */
  2023. struct buffer_head *FEB[MAX_FEB_SIZE];
  2024. struct buffer_head *used[MAX_FEB_SIZE];
  2025. struct buffer_head *thrown[MAX_FEB_SIZE];
  2026. /*
  2027. * array of number of items which must be shifted to the left in
  2028. * order to balance the current node; for leaves includes item that
  2029. * will be partially shifted; for internal nodes, it is the number
  2030. * of child pointers rather than items. It includes the new item
  2031. * being created. The code sometimes subtracts one to get the
  2032. * number of wholly shifted items for other purposes.
  2033. */
  2034. int lnum[MAX_HEIGHT];
  2035. /* substitute right for left in comment above */
  2036. int rnum[MAX_HEIGHT];
  2037. /*
  2038. * array indexed by height h mapping the key delimiting L[h] and
  2039. * S[h] to its item number within the node CFL[h]
  2040. */
  2041. int lkey[MAX_HEIGHT];
  2042. /* substitute r for l in comment above */
  2043. int rkey[MAX_HEIGHT];
  2044. /*
  2045. * the number of bytes by we are trying to add or remove from
  2046. * S[h]. A negative value means removing.
  2047. */
  2048. int insert_size[MAX_HEIGHT];
  2049. /*
  2050. * number of nodes that will replace node S[h] after balancing
  2051. * on the level h of the tree. If 0 then S is being deleted,
  2052. * if 1 then S is remaining and no new nodes are being created,
  2053. * if 2 or 3 then 1 or 2 new nodes is being created
  2054. */
  2055. int blknum[MAX_HEIGHT];
  2056. /* fields that are used only for balancing leaves of the tree */
  2057. /* number of empty blocks having been already allocated */
  2058. int cur_blknum;
  2059. /* number of items that fall into left most node when S[0] splits */
  2060. int s0num;
  2061. /*
  2062. * number of bytes which can flow to the left neighbor from the left
  2063. * most liquid item that cannot be shifted from S[0] entirely
  2064. * if -1 then nothing will be partially shifted
  2065. */
  2066. int lbytes;
  2067. /*
  2068. * number of bytes which will flow to the right neighbor from the right
  2069. * most liquid item that cannot be shifted from S[0] entirely
  2070. * if -1 then nothing will be partially shifted
  2071. */
  2072. int rbytes;
  2073. /*
  2074. * index into the array of item headers in
  2075. * S[0] of the affected item
  2076. */
  2077. int item_pos;
  2078. /* new nodes allocated to hold what could not fit into S */
  2079. struct buffer_head *S_new[2];
  2080. /*
  2081. * number of items that will be placed into nodes in S_new
  2082. * when S[0] splits
  2083. */
  2084. int snum[2];
  2085. /*
  2086. * number of bytes which flow to nodes in S_new when S[0] splits
  2087. * note: if S[0] splits into 3 nodes, then items do not need to be cut
  2088. */
  2089. int sbytes[2];
  2090. int pos_in_item;
  2091. int zeroes_num;
  2092. /*
  2093. * buffers which are to be freed after do_balance finishes
  2094. * by unfix_nodes
  2095. */
  2096. struct buffer_head *buf_to_free[MAX_FREE_BLOCK];
  2097. /*
  2098. * kmalloced memory. Used to create virtual node and keep
  2099. * map of dirtied bitmap blocks
  2100. */
  2101. char *vn_buf;
  2102. int vn_buf_size; /* size of the vn_buf */
  2103. /* VN starts after bitmap of bitmap blocks */
  2104. struct virtual_node *tb_vn;
  2105. /*
  2106. * saved value of `reiserfs_generation' counter see
  2107. * FILESYSTEM_CHANGED() macro in reiserfs_fs.h
  2108. */
  2109. int fs_gen;
  2110. #ifdef DISPLACE_NEW_PACKING_LOCALITIES
  2111. /*
  2112. * key pointer, to pass to block allocator or
  2113. * another low-level subsystem
  2114. */
  2115. struct in_core_key key;
  2116. #endif
  2117. };
  2118. /* These are modes of balancing */
  2119. /* When inserting an item. */
  2120. #define M_INSERT 'i'
  2121. /*
  2122. * When inserting into (directories only) or appending onto an already
  2123. * existent item.
  2124. */
  2125. #define M_PASTE 'p'
  2126. /* When deleting an item. */
  2127. #define M_DELETE 'd'
  2128. /* When truncating an item or removing an entry from a (directory) item. */
  2129. #define M_CUT 'c'
  2130. /* used when balancing on leaf level skipped (in reiserfsck) */
  2131. #define M_INTERNAL 'n'
  2132. /*
  2133. * When further balancing is not needed, then do_balance does not need
  2134. * to be called.
  2135. */
  2136. #define M_SKIP_BALANCING 's'
  2137. #define M_CONVERT 'v'
  2138. /* modes of leaf_move_items */
  2139. #define LEAF_FROM_S_TO_L 0
  2140. #define LEAF_FROM_S_TO_R 1
  2141. #define LEAF_FROM_R_TO_L 2
  2142. #define LEAF_FROM_L_TO_R 3
  2143. #define LEAF_FROM_S_TO_SNEW 4
  2144. #define FIRST_TO_LAST 0
  2145. #define LAST_TO_FIRST 1
  2146. /*
  2147. * used in do_balance for passing parent of node information that has
  2148. * been gotten from tb struct
  2149. */
  2150. struct buffer_info {
  2151. struct tree_balance *tb;
  2152. struct buffer_head *bi_bh;
  2153. struct buffer_head *bi_parent;
  2154. int bi_position;
  2155. };
  2156. static inline struct super_block *sb_from_tb(struct tree_balance *tb)
  2157. {
  2158. return tb ? tb->tb_sb : NULL;
  2159. }
  2160. static inline struct super_block *sb_from_bi(struct buffer_info *bi)
  2161. {
  2162. return bi ? sb_from_tb(bi->tb) : NULL;
  2163. }
  2164. /*
  2165. * there are 4 types of items: stat data, directory item, indirect, direct.
  2166. * +-------------------+------------+--------------+------------+
  2167. * | | k_offset | k_uniqueness | mergeable? |
  2168. * +-------------------+------------+--------------+------------+
  2169. * | stat data | 0 | 0 | no |
  2170. * +-------------------+------------+--------------+------------+
  2171. * | 1st directory item| DOT_OFFSET | DIRENTRY_ .. | no |
  2172. * | non 1st directory | hash value | UNIQUENESS | yes |
  2173. * | item | | | |
  2174. * +-------------------+------------+--------------+------------+
  2175. * | indirect item | offset + 1 |TYPE_INDIRECT | [1] |
  2176. * +-------------------+------------+--------------+------------+
  2177. * | direct item | offset + 1 |TYPE_DIRECT | [2] |
  2178. * +-------------------+------------+--------------+------------+
  2179. *
  2180. * [1] if this is not the first indirect item of the object
  2181. * [2] if this is not the first direct item of the object
  2182. */
  2183. struct item_operations {
  2184. int (*bytes_number) (struct item_head * ih, int block_size);
  2185. void (*decrement_key) (struct cpu_key *);
  2186. int (*is_left_mergeable) (struct reiserfs_key * ih,
  2187. unsigned long bsize);
  2188. void (*print_item) (struct item_head *, char *item);
  2189. void (*check_item) (struct item_head *, char *item);
  2190. int (*create_vi) (struct virtual_node * vn, struct virtual_item * vi,
  2191. int is_affected, int insert_size);
  2192. int (*check_left) (struct virtual_item * vi, int free,
  2193. int start_skip, int end_skip);
  2194. int (*check_right) (struct virtual_item * vi, int free);
  2195. int (*part_size) (struct virtual_item * vi, int from, int to);
  2196. int (*unit_num) (struct virtual_item * vi);
  2197. void (*print_vi) (struct virtual_item * vi);
  2198. };
  2199. extern struct item_operations *item_ops[TYPE_ANY + 1];
  2200. #define op_bytes_number(ih,bsize) item_ops[le_ih_k_type (ih)]->bytes_number (ih, bsize)
  2201. #define op_is_left_mergeable(key,bsize) item_ops[le_key_k_type (le_key_version (key), key)]->is_left_mergeable (key, bsize)
  2202. #define op_print_item(ih,item) item_ops[le_ih_k_type (ih)]->print_item (ih, item)
  2203. #define op_check_item(ih,item) item_ops[le_ih_k_type (ih)]->check_item (ih, item)
  2204. #define op_create_vi(vn,vi,is_affected,insert_size) item_ops[le_ih_k_type ((vi)->vi_ih)]->create_vi (vn,vi,is_affected,insert_size)
  2205. #define op_check_left(vi,free,start_skip,end_skip) item_ops[(vi)->vi_index]->check_left (vi, free, start_skip, end_skip)
  2206. #define op_check_right(vi,free) item_ops[(vi)->vi_index]->check_right (vi, free)
  2207. #define op_part_size(vi,from,to) item_ops[(vi)->vi_index]->part_size (vi, from, to)
  2208. #define op_unit_num(vi) item_ops[(vi)->vi_index]->unit_num (vi)
  2209. #define op_print_vi(vi) item_ops[(vi)->vi_index]->print_vi (vi)
  2210. #define COMP_SHORT_KEYS comp_short_keys
  2211. /* number of blocks pointed to by the indirect item */
  2212. #define I_UNFM_NUM(ih) (ih_item_len(ih) / UNFM_P_SIZE)
  2213. /*
  2214. * the used space within the unformatted node corresponding
  2215. * to pos within the item pointed to by ih
  2216. */
  2217. #define I_POS_UNFM_SIZE(ih,pos,size) (((pos) == I_UNFM_NUM(ih) - 1 ) ? (size) - ih_free_space(ih) : (size))
  2218. /*
  2219. * number of bytes contained by the direct item or the
  2220. * unformatted nodes the indirect item points to
  2221. */
  2222. /* following defines use reiserfs buffer header and item header */
  2223. /* get stat-data */
  2224. #define B_I_STAT_DATA(bh, ih) ( (struct stat_data * )((bh)->b_data + ih_location(ih)) )
  2225. /* this is 3976 for size==4096 */
  2226. #define MAX_DIRECT_ITEM_LEN(size) ((size) - BLKH_SIZE - 2*IH_SIZE - SD_SIZE - UNFM_P_SIZE)
  2227. /*
  2228. * indirect items consist of entries which contain blocknrs, pos
  2229. * indicates which entry, and B_I_POS_UNFM_POINTER resolves to the
  2230. * blocknr contained by the entry pos points to
  2231. */
  2232. #define B_I_POS_UNFM_POINTER(bh, ih, pos) \
  2233. le32_to_cpu(*(((unp_t *)ih_item_body(bh, ih)) + (pos)))
  2234. #define PUT_B_I_POS_UNFM_POINTER(bh, ih, pos, val) \
  2235. (*(((unp_t *)ih_item_body(bh, ih)) + (pos)) = cpu_to_le32(val))
  2236. struct reiserfs_iget_args {
  2237. __u32 objectid;
  2238. __u32 dirid;
  2239. };
  2240. /***************************************************************************
  2241. * FUNCTION DECLARATIONS *
  2242. ***************************************************************************/
  2243. #define get_journal_desc_magic(bh) (bh->b_data + bh->b_size - 12)
  2244. #define journal_trans_half(blocksize) \
  2245. ((blocksize - sizeof (struct reiserfs_journal_desc) + sizeof (__u32) - 12) / sizeof (__u32))
  2246. /* journal.c see journal.c for all the comments here */
  2247. /* first block written in a commit. */
  2248. struct reiserfs_journal_desc {
  2249. __le32 j_trans_id; /* id of commit */
  2250. /* length of commit. len +1 is the commit block */
  2251. __le32 j_len;
  2252. __le32 j_mount_id; /* mount id of this trans */
  2253. __le32 j_realblock[1]; /* real locations for each block */
  2254. };
  2255. #define get_desc_trans_id(d) le32_to_cpu((d)->j_trans_id)
  2256. #define get_desc_trans_len(d) le32_to_cpu((d)->j_len)
  2257. #define get_desc_mount_id(d) le32_to_cpu((d)->j_mount_id)
  2258. #define set_desc_trans_id(d,val) do { (d)->j_trans_id = cpu_to_le32 (val); } while (0)
  2259. #define set_desc_trans_len(d,val) do { (d)->j_len = cpu_to_le32 (val); } while (0)
  2260. #define set_desc_mount_id(d,val) do { (d)->j_mount_id = cpu_to_le32 (val); } while (0)
  2261. /* last block written in a commit */
  2262. struct reiserfs_journal_commit {
  2263. __le32 j_trans_id; /* must match j_trans_id from the desc block */
  2264. __le32 j_len; /* ditto */
  2265. __le32 j_realblock[1]; /* real locations for each block */
  2266. };
  2267. #define get_commit_trans_id(c) le32_to_cpu((c)->j_trans_id)
  2268. #define get_commit_trans_len(c) le32_to_cpu((c)->j_len)
  2269. #define get_commit_mount_id(c) le32_to_cpu((c)->j_mount_id)
  2270. #define set_commit_trans_id(c,val) do { (c)->j_trans_id = cpu_to_le32 (val); } while (0)
  2271. #define set_commit_trans_len(c,val) do { (c)->j_len = cpu_to_le32 (val); } while (0)
  2272. /*
  2273. * this header block gets written whenever a transaction is considered
  2274. * fully flushed, and is more recent than the last fully flushed transaction.
  2275. * fully flushed means all the log blocks and all the real blocks are on
  2276. * disk, and this transaction does not need to be replayed.
  2277. */
  2278. struct reiserfs_journal_header {
  2279. /* id of last fully flushed transaction */
  2280. __le32 j_last_flush_trans_id;
  2281. /* offset in the log of where to start replay after a crash */
  2282. __le32 j_first_unflushed_offset;
  2283. __le32 j_mount_id;
  2284. /* 12 */ struct journal_params jh_journal;
  2285. };
  2286. /* biggest tunable defines are right here */
  2287. #define JOURNAL_BLOCK_COUNT 8192 /* number of blocks in the journal */
  2288. /* biggest possible single transaction, don't change for now (8/3/99) */
  2289. #define JOURNAL_TRANS_MAX_DEFAULT 1024
  2290. #define JOURNAL_TRANS_MIN_DEFAULT 256
  2291. /*
  2292. * max blocks to batch into one transaction,
  2293. * don't make this any bigger than 900
  2294. */
  2295. #define JOURNAL_MAX_BATCH_DEFAULT 900
  2296. #define JOURNAL_MIN_RATIO 2
  2297. #define JOURNAL_MAX_COMMIT_AGE 30
  2298. #define JOURNAL_MAX_TRANS_AGE 30
  2299. #define JOURNAL_PER_BALANCE_CNT (3 * (MAX_HEIGHT-2) + 9)
  2300. #define JOURNAL_BLOCKS_PER_OBJECT(sb) (JOURNAL_PER_BALANCE_CNT * 3 + \
  2301. 2 * (REISERFS_QUOTA_INIT_BLOCKS(sb) + \
  2302. REISERFS_QUOTA_TRANS_BLOCKS(sb)))
  2303. #ifdef CONFIG_QUOTA
  2304. #define REISERFS_QUOTA_OPTS ((1 << REISERFS_USRQUOTA) | (1 << REISERFS_GRPQUOTA))
  2305. /* We need to update data and inode (atime) */
  2306. #define REISERFS_QUOTA_TRANS_BLOCKS(s) (REISERFS_SB(s)->s_mount_opt & REISERFS_QUOTA_OPTS ? 2 : 0)
  2307. /* 1 balancing, 1 bitmap, 1 data per write + stat data update */
  2308. #define REISERFS_QUOTA_INIT_BLOCKS(s) (REISERFS_SB(s)->s_mount_opt & REISERFS_QUOTA_OPTS ? \
  2309. (DQUOT_INIT_ALLOC*(JOURNAL_PER_BALANCE_CNT+2)+DQUOT_INIT_REWRITE+1) : 0)
  2310. /* same as with INIT */
  2311. #define REISERFS_QUOTA_DEL_BLOCKS(s) (REISERFS_SB(s)->s_mount_opt & REISERFS_QUOTA_OPTS ? \
  2312. (DQUOT_DEL_ALLOC*(JOURNAL_PER_BALANCE_CNT+2)+DQUOT_DEL_REWRITE+1) : 0)
  2313. #else
  2314. #define REISERFS_QUOTA_TRANS_BLOCKS(s) 0
  2315. #define REISERFS_QUOTA_INIT_BLOCKS(s) 0
  2316. #define REISERFS_QUOTA_DEL_BLOCKS(s) 0
  2317. #endif
  2318. /*
  2319. * both of these can be as low as 1, or as high as you want. The min is the
  2320. * number of 4k bitmap nodes preallocated on mount. New nodes are allocated
  2321. * as needed, and released when transactions are committed. On release, if
  2322. * the current number of nodes is > max, the node is freed, otherwise,
  2323. * it is put on a free list for faster use later.
  2324. */
  2325. #define REISERFS_MIN_BITMAP_NODES 10
  2326. #define REISERFS_MAX_BITMAP_NODES 100
  2327. /* these are based on journal hash size of 8192 */
  2328. #define JBH_HASH_SHIFT 13
  2329. #define JBH_HASH_MASK 8191
  2330. #define _jhashfn(sb,block) \
  2331. (((unsigned long)sb>>L1_CACHE_SHIFT) ^ \
  2332. (((block)<<(JBH_HASH_SHIFT - 6)) ^ ((block) >> 13) ^ ((block) << (JBH_HASH_SHIFT - 12))))
  2333. #define journal_hash(t,sb,block) ((t)[_jhashfn((sb),(block)) & JBH_HASH_MASK])
  2334. /* We need these to make journal.c code more readable */
  2335. #define journal_find_get_block(s, block) __find_get_block(SB_JOURNAL(s)->j_dev_bd, block, s->s_blocksize)
  2336. #define journal_getblk(s, block) __getblk(SB_JOURNAL(s)->j_dev_bd, block, s->s_blocksize)
  2337. #define journal_bread(s, block) __bread(SB_JOURNAL(s)->j_dev_bd, block, s->s_blocksize)
  2338. enum reiserfs_bh_state_bits {
  2339. BH_JDirty = BH_PrivateStart, /* buffer is in current transaction */
  2340. BH_JDirty_wait,
  2341. /*
  2342. * disk block was taken off free list before being in a
  2343. * finished transaction, or written to disk. Can be reused immed.
  2344. */
  2345. BH_JNew,
  2346. BH_JPrepared,
  2347. BH_JRestore_dirty,
  2348. BH_JTest, /* debugging only will go away */
  2349. };
  2350. BUFFER_FNS(JDirty, journaled);
  2351. TAS_BUFFER_FNS(JDirty, journaled);
  2352. BUFFER_FNS(JDirty_wait, journal_dirty);
  2353. TAS_BUFFER_FNS(JDirty_wait, journal_dirty);
  2354. BUFFER_FNS(JNew, journal_new);
  2355. TAS_BUFFER_FNS(JNew, journal_new);
  2356. BUFFER_FNS(JPrepared, journal_prepared);
  2357. TAS_BUFFER_FNS(JPrepared, journal_prepared);
  2358. BUFFER_FNS(JRestore_dirty, journal_restore_dirty);
  2359. TAS_BUFFER_FNS(JRestore_dirty, journal_restore_dirty);
  2360. BUFFER_FNS(JTest, journal_test);
  2361. TAS_BUFFER_FNS(JTest, journal_test);
  2362. /* transaction handle which is passed around for all journal calls */
  2363. struct reiserfs_transaction_handle {
  2364. /*
  2365. * super for this FS when journal_begin was called. saves calls to
  2366. * reiserfs_get_super also used by nested transactions to make
  2367. * sure they are nesting on the right FS _must_ be first
  2368. * in the handle
  2369. */
  2370. struct super_block *t_super;
  2371. int t_refcount;
  2372. int t_blocks_logged; /* number of blocks this writer has logged */
  2373. int t_blocks_allocated; /* number of blocks this writer allocated */
  2374. /* sanity check, equals the current trans id */
  2375. unsigned int t_trans_id;
  2376. void *t_handle_save; /* save existing current->journal_info */
  2377. /*
  2378. * if new block allocation occurres, that block
  2379. * should be displaced from others
  2380. */
  2381. unsigned displace_new_blocks:1;
  2382. struct list_head t_list;
  2383. };
  2384. /*
  2385. * used to keep track of ordered and tail writes, attached to the buffer
  2386. * head through b_journal_head.
  2387. */
  2388. struct reiserfs_jh {
  2389. struct reiserfs_journal_list *jl;
  2390. struct buffer_head *bh;
  2391. struct list_head list;
  2392. };
  2393. void reiserfs_free_jh(struct buffer_head *bh);
  2394. int reiserfs_add_tail_list(struct inode *inode, struct buffer_head *bh);
  2395. int reiserfs_add_ordered_list(struct inode *inode, struct buffer_head *bh);
  2396. int journal_mark_dirty(struct reiserfs_transaction_handle *,
  2397. struct buffer_head *bh);
  2398. static inline int reiserfs_file_data_log(struct inode *inode)
  2399. {
  2400. if (reiserfs_data_log(inode->i_sb) ||
  2401. (REISERFS_I(inode)->i_flags & i_data_log))
  2402. return 1;
  2403. return 0;
  2404. }
  2405. static inline int reiserfs_transaction_running(struct super_block *s)
  2406. {
  2407. struct reiserfs_transaction_handle *th = current->journal_info;
  2408. if (th && th->t_super == s)
  2409. return 1;
  2410. if (th && th->t_super == NULL)
  2411. BUG();
  2412. return 0;
  2413. }
  2414. static inline int reiserfs_transaction_free_space(struct reiserfs_transaction_handle *th)
  2415. {
  2416. return th->t_blocks_allocated - th->t_blocks_logged;
  2417. }
  2418. struct reiserfs_transaction_handle *reiserfs_persistent_transaction(struct
  2419. super_block
  2420. *,
  2421. int count);
  2422. int reiserfs_end_persistent_transaction(struct reiserfs_transaction_handle *);
  2423. void reiserfs_vfs_truncate_file(struct inode *inode);
  2424. int reiserfs_commit_page(struct inode *inode, struct page *page,
  2425. unsigned from, unsigned to);
  2426. void reiserfs_flush_old_commits(struct super_block *);
  2427. int reiserfs_commit_for_inode(struct inode *);
  2428. int reiserfs_inode_needs_commit(struct inode *);
  2429. void reiserfs_update_inode_transaction(struct inode *);
  2430. void reiserfs_wait_on_write_block(struct super_block *s);
  2431. void reiserfs_block_writes(struct reiserfs_transaction_handle *th);
  2432. void reiserfs_allow_writes(struct super_block *s);
  2433. void reiserfs_check_lock_depth(struct super_block *s, char *caller);
  2434. int reiserfs_prepare_for_journal(struct super_block *, struct buffer_head *bh,
  2435. int wait);
  2436. void reiserfs_restore_prepared_buffer(struct super_block *,
  2437. struct buffer_head *bh);
  2438. int journal_init(struct super_block *, const char *j_dev_name, int old_format,
  2439. unsigned int);
  2440. int journal_release(struct reiserfs_transaction_handle *, struct super_block *);
  2441. int journal_release_error(struct reiserfs_transaction_handle *,
  2442. struct super_block *);
  2443. int journal_end(struct reiserfs_transaction_handle *);
  2444. int journal_end_sync(struct reiserfs_transaction_handle *);
  2445. int journal_mark_freed(struct reiserfs_transaction_handle *,
  2446. struct super_block *, b_blocknr_t blocknr);
  2447. int journal_transaction_should_end(struct reiserfs_transaction_handle *, int);
  2448. int reiserfs_in_journal(struct super_block *sb, unsigned int bmap_nr,
  2449. int bit_nr, int searchall, b_blocknr_t *next);
  2450. int journal_begin(struct reiserfs_transaction_handle *,
  2451. struct super_block *sb, unsigned long);
  2452. int journal_join_abort(struct reiserfs_transaction_handle *,
  2453. struct super_block *sb);
  2454. void reiserfs_abort_journal(struct super_block *sb, int errno);
  2455. void reiserfs_abort(struct super_block *sb, int errno, const char *fmt, ...);
  2456. int reiserfs_allocate_list_bitmaps(struct super_block *s,
  2457. struct reiserfs_list_bitmap *, unsigned int);
  2458. void reiserfs_schedule_old_flush(struct super_block *s);
  2459. void add_save_link(struct reiserfs_transaction_handle *th,
  2460. struct inode *inode, int truncate);
  2461. int remove_save_link(struct inode *inode, int truncate);
  2462. /* objectid.c */
  2463. __u32 reiserfs_get_unused_objectid(struct reiserfs_transaction_handle *th);
  2464. void reiserfs_release_objectid(struct reiserfs_transaction_handle *th,
  2465. __u32 objectid_to_release);
  2466. int reiserfs_convert_objectid_map_v1(struct super_block *);
  2467. /* stree.c */
  2468. int B_IS_IN_TREE(const struct buffer_head *);
  2469. extern void copy_item_head(struct item_head *to,
  2470. const struct item_head *from);
  2471. /* first key is in cpu form, second - le */
  2472. extern int comp_short_keys(const struct reiserfs_key *le_key,
  2473. const struct cpu_key *cpu_key);
  2474. extern void le_key2cpu_key(struct cpu_key *to, const struct reiserfs_key *from);
  2475. /* both are in le form */
  2476. extern int comp_le_keys(const struct reiserfs_key *,
  2477. const struct reiserfs_key *);
  2478. extern int comp_short_le_keys(const struct reiserfs_key *,
  2479. const struct reiserfs_key *);
  2480. /* * get key version from on disk key - kludge */
  2481. static inline int le_key_version(const struct reiserfs_key *key)
  2482. {
  2483. int type;
  2484. type = offset_v2_k_type(&(key->u.k_offset_v2));
  2485. if (type != TYPE_DIRECT && type != TYPE_INDIRECT
  2486. && type != TYPE_DIRENTRY)
  2487. return KEY_FORMAT_3_5;
  2488. return KEY_FORMAT_3_6;
  2489. }
  2490. static inline void copy_key(struct reiserfs_key *to,
  2491. const struct reiserfs_key *from)
  2492. {
  2493. memcpy(to, from, KEY_SIZE);
  2494. }
  2495. int comp_items(const struct item_head *stored_ih, const struct treepath *path);
  2496. const struct reiserfs_key *get_rkey(const struct treepath *chk_path,
  2497. const struct super_block *sb);
  2498. int search_by_key(struct super_block *, const struct cpu_key *,
  2499. struct treepath *, int);
  2500. #define search_item(s,key,path) search_by_key (s, key, path, DISK_LEAF_NODE_LEVEL)
  2501. int search_for_position_by_key(struct super_block *sb,
  2502. const struct cpu_key *cpu_key,
  2503. struct treepath *search_path);
  2504. extern void decrement_bcount(struct buffer_head *bh);
  2505. void decrement_counters_in_path(struct treepath *search_path);
  2506. void pathrelse(struct treepath *search_path);
  2507. int reiserfs_check_path(struct treepath *p);
  2508. void pathrelse_and_restore(struct super_block *s, struct treepath *search_path);
  2509. int reiserfs_insert_item(struct reiserfs_transaction_handle *th,
  2510. struct treepath *path,
  2511. const struct cpu_key *key,
  2512. struct item_head *ih,
  2513. struct inode *inode, const char *body);
  2514. int reiserfs_paste_into_item(struct reiserfs_transaction_handle *th,
  2515. struct treepath *path,
  2516. const struct cpu_key *key,
  2517. struct inode *inode,
  2518. const char *body, int paste_size);
  2519. int reiserfs_cut_from_item(struct reiserfs_transaction_handle *th,
  2520. struct treepath *path,
  2521. struct cpu_key *key,
  2522. struct inode *inode,
  2523. struct page *page, loff_t new_file_size);
  2524. int reiserfs_delete_item(struct reiserfs_transaction_handle *th,
  2525. struct treepath *path,
  2526. const struct cpu_key *key,
  2527. struct inode *inode, struct buffer_head *un_bh);
  2528. void reiserfs_delete_solid_item(struct reiserfs_transaction_handle *th,
  2529. struct inode *inode, struct reiserfs_key *key);
  2530. int reiserfs_delete_object(struct reiserfs_transaction_handle *th,
  2531. struct inode *inode);
  2532. int reiserfs_do_truncate(struct reiserfs_transaction_handle *th,
  2533. struct inode *inode, struct page *,
  2534. int update_timestamps);
  2535. #define i_block_size(inode) ((inode)->i_sb->s_blocksize)
  2536. #define file_size(inode) ((inode)->i_size)
  2537. #define tail_size(inode) (file_size (inode) & (i_block_size (inode) - 1))
  2538. #define tail_has_to_be_packed(inode) (have_large_tails ((inode)->i_sb)?\
  2539. !STORE_TAIL_IN_UNFM_S1(file_size (inode), tail_size(inode), inode->i_sb->s_blocksize):have_small_tails ((inode)->i_sb)?!STORE_TAIL_IN_UNFM_S2(file_size (inode), tail_size(inode), inode->i_sb->s_blocksize):0 )
  2540. void padd_item(char *item, int total_length, int length);
  2541. /* inode.c */
  2542. /* args for the create parameter of reiserfs_get_block */
  2543. #define GET_BLOCK_NO_CREATE 0 /* don't create new blocks or convert tails */
  2544. #define GET_BLOCK_CREATE 1 /* add anything you need to find block */
  2545. #define GET_BLOCK_NO_HOLE 2 /* return -ENOENT for file holes */
  2546. #define GET_BLOCK_READ_DIRECT 4 /* read the tail if indirect item not found */
  2547. #define GET_BLOCK_NO_IMUX 8 /* i_mutex is not held, don't preallocate */
  2548. #define GET_BLOCK_NO_DANGLE 16 /* don't leave any transactions running */
  2549. void reiserfs_read_locked_inode(struct inode *inode,
  2550. struct reiserfs_iget_args *args);
  2551. int reiserfs_find_actor(struct inode *inode, void *p);
  2552. int reiserfs_init_locked_inode(struct inode *inode, void *p);
  2553. void reiserfs_evict_inode(struct inode *inode);
  2554. int reiserfs_write_inode(struct inode *inode, struct writeback_control *wbc);
  2555. int reiserfs_get_block(struct inode *inode, sector_t block,
  2556. struct buffer_head *bh_result, int create);
  2557. struct dentry *reiserfs_fh_to_dentry(struct super_block *sb, struct fid *fid,
  2558. int fh_len, int fh_type);
  2559. struct dentry *reiserfs_fh_to_parent(struct super_block *sb, struct fid *fid,
  2560. int fh_len, int fh_type);
  2561. int reiserfs_encode_fh(struct inode *inode, __u32 * data, int *lenp,
  2562. struct inode *parent);
  2563. int reiserfs_truncate_file(struct inode *, int update_timestamps);
  2564. void make_cpu_key(struct cpu_key *cpu_key, struct inode *inode, loff_t offset,
  2565. int type, int key_length);
  2566. void make_le_item_head(struct item_head *ih, const struct cpu_key *key,
  2567. int version,
  2568. loff_t offset, int type, int length, int entry_count);
  2569. struct inode *reiserfs_iget(struct super_block *s, const struct cpu_key *key);
  2570. struct reiserfs_security_handle;
  2571. int reiserfs_new_inode(struct reiserfs_transaction_handle *th,
  2572. struct inode *dir, umode_t mode,
  2573. const char *symname, loff_t i_size,
  2574. struct dentry *dentry, struct inode *inode,
  2575. struct reiserfs_security_handle *security);
  2576. void reiserfs_update_sd_size(struct reiserfs_transaction_handle *th,
  2577. struct inode *inode, loff_t size);
  2578. static inline void reiserfs_update_sd(struct reiserfs_transaction_handle *th,
  2579. struct inode *inode)
  2580. {
  2581. reiserfs_update_sd_size(th, inode, inode->i_size);
  2582. }
  2583. void sd_attrs_to_i_attrs(__u16 sd_attrs, struct inode *inode);
  2584. void i_attrs_to_sd_attrs(struct inode *inode, __u16 * sd_attrs);
  2585. int reiserfs_setattr(struct dentry *dentry, struct iattr *attr);
  2586. int __reiserfs_write_begin(struct page *page, unsigned from, unsigned len);
  2587. /* namei.c */
  2588. void set_de_name_and_namelen(struct reiserfs_dir_entry *de);
  2589. int search_by_entry_key(struct super_block *sb, const struct cpu_key *key,
  2590. struct treepath *path, struct reiserfs_dir_entry *de);
  2591. struct dentry *reiserfs_get_parent(struct dentry *);
  2592. #ifdef CONFIG_REISERFS_PROC_INFO
  2593. int reiserfs_proc_info_init(struct super_block *sb);
  2594. int reiserfs_proc_info_done(struct super_block *sb);
  2595. int reiserfs_proc_info_global_init(void);
  2596. int reiserfs_proc_info_global_done(void);
  2597. #define PROC_EXP( e ) e
  2598. #define __PINFO( sb ) REISERFS_SB(sb) -> s_proc_info_data
  2599. #define PROC_INFO_MAX( sb, field, value ) \
  2600. __PINFO( sb ).field = \
  2601. max( REISERFS_SB( sb ) -> s_proc_info_data.field, value )
  2602. #define PROC_INFO_INC( sb, field ) ( ++ ( __PINFO( sb ).field ) )
  2603. #define PROC_INFO_ADD( sb, field, val ) ( __PINFO( sb ).field += ( val ) )
  2604. #define PROC_INFO_BH_STAT( sb, bh, level ) \
  2605. PROC_INFO_INC( sb, sbk_read_at[ ( level ) ] ); \
  2606. PROC_INFO_ADD( sb, free_at[ ( level ) ], B_FREE_SPACE( bh ) ); \
  2607. PROC_INFO_ADD( sb, items_at[ ( level ) ], B_NR_ITEMS( bh ) )
  2608. #else
  2609. static inline int reiserfs_proc_info_init(struct super_block *sb)
  2610. {
  2611. return 0;
  2612. }
  2613. static inline int reiserfs_proc_info_done(struct super_block *sb)
  2614. {
  2615. return 0;
  2616. }
  2617. static inline int reiserfs_proc_info_global_init(void)
  2618. {
  2619. return 0;
  2620. }
  2621. static inline int reiserfs_proc_info_global_done(void)
  2622. {
  2623. return 0;
  2624. }
  2625. #define PROC_EXP( e )
  2626. #define VOID_V ( ( void ) 0 )
  2627. #define PROC_INFO_MAX( sb, field, value ) VOID_V
  2628. #define PROC_INFO_INC( sb, field ) VOID_V
  2629. #define PROC_INFO_ADD( sb, field, val ) VOID_V
  2630. #define PROC_INFO_BH_STAT(sb, bh, n_node_level) VOID_V
  2631. #endif
  2632. /* dir.c */
  2633. extern const struct inode_operations reiserfs_dir_inode_operations;
  2634. extern const struct inode_operations reiserfs_symlink_inode_operations;
  2635. extern const struct inode_operations reiserfs_special_inode_operations;
  2636. extern const struct file_operations reiserfs_dir_operations;
  2637. int reiserfs_readdir_inode(struct inode *, struct dir_context *);
  2638. /* tail_conversion.c */
  2639. int direct2indirect(struct reiserfs_transaction_handle *, struct inode *,
  2640. struct treepath *, struct buffer_head *, loff_t);
  2641. int indirect2direct(struct reiserfs_transaction_handle *, struct inode *,
  2642. struct page *, struct treepath *, const struct cpu_key *,
  2643. loff_t, char *);
  2644. void reiserfs_unmap_buffer(struct buffer_head *);
  2645. /* file.c */
  2646. extern const struct inode_operations reiserfs_file_inode_operations;
  2647. extern const struct file_operations reiserfs_file_operations;
  2648. extern const struct address_space_operations reiserfs_address_space_operations;
  2649. /* fix_nodes.c */
  2650. int fix_nodes(int n_op_mode, struct tree_balance *tb,
  2651. struct item_head *ins_ih, const void *);
  2652. void unfix_nodes(struct tree_balance *);
  2653. /* prints.c */
  2654. void __reiserfs_panic(struct super_block *s, const char *id,
  2655. const char *function, const char *fmt, ...)
  2656. __attribute__ ((noreturn));
  2657. #define reiserfs_panic(s, id, fmt, args...) \
  2658. __reiserfs_panic(s, id, __func__, fmt, ##args)
  2659. void __reiserfs_error(struct super_block *s, const char *id,
  2660. const char *function, const char *fmt, ...);
  2661. #define reiserfs_error(s, id, fmt, args...) \
  2662. __reiserfs_error(s, id, __func__, fmt, ##args)
  2663. void reiserfs_info(struct super_block *s, const char *fmt, ...);
  2664. void reiserfs_debug(struct super_block *s, int level, const char *fmt, ...);
  2665. void print_indirect_item(struct buffer_head *bh, int item_num);
  2666. void store_print_tb(struct tree_balance *tb);
  2667. void print_cur_tb(char *mes);
  2668. void print_de(struct reiserfs_dir_entry *de);
  2669. void print_bi(struct buffer_info *bi, char *mes);
  2670. #define PRINT_LEAF_ITEMS 1 /* print all items */
  2671. #define PRINT_DIRECTORY_ITEMS 2 /* print directory items */
  2672. #define PRINT_DIRECT_ITEMS 4 /* print contents of direct items */
  2673. void print_block(struct buffer_head *bh, ...);
  2674. void print_bmap(struct super_block *s, int silent);
  2675. void print_bmap_block(int i, char *data, int size, int silent);
  2676. /*void print_super_block (struct super_block * s, char * mes);*/
  2677. void print_objectid_map(struct super_block *s);
  2678. void print_block_head(struct buffer_head *bh, char *mes);
  2679. void check_leaf(struct buffer_head *bh);
  2680. void check_internal(struct buffer_head *bh);
  2681. void print_statistics(struct super_block *s);
  2682. char *reiserfs_hashname(int code);
  2683. /* lbalance.c */
  2684. int leaf_move_items(int shift_mode, struct tree_balance *tb, int mov_num,
  2685. int mov_bytes, struct buffer_head *Snew);
  2686. int leaf_shift_left(struct tree_balance *tb, int shift_num, int shift_bytes);
  2687. int leaf_shift_right(struct tree_balance *tb, int shift_num, int shift_bytes);
  2688. void leaf_delete_items(struct buffer_info *cur_bi, int last_first, int first,
  2689. int del_num, int del_bytes);
  2690. void leaf_insert_into_buf(struct buffer_info *bi, int before,
  2691. struct item_head *inserted_item_ih,
  2692. const char *inserted_item_body, int zeros_number);
  2693. void leaf_paste_in_buffer(struct buffer_info *bi, int pasted_item_num,
  2694. int pos_in_item, int paste_size, const char *body,
  2695. int zeros_number);
  2696. void leaf_cut_from_buffer(struct buffer_info *bi, int cut_item_num,
  2697. int pos_in_item, int cut_size);
  2698. void leaf_paste_entries(struct buffer_info *bi, int item_num, int before,
  2699. int new_entry_count, struct reiserfs_de_head *new_dehs,
  2700. const char *records, int paste_size);
  2701. /* ibalance.c */
  2702. int balance_internal(struct tree_balance *, int, int, struct item_head *,
  2703. struct buffer_head **);
  2704. /* do_balance.c */
  2705. void do_balance_mark_leaf_dirty(struct tree_balance *tb,
  2706. struct buffer_head *bh, int flag);
  2707. #define do_balance_mark_internal_dirty do_balance_mark_leaf_dirty
  2708. #define do_balance_mark_sb_dirty do_balance_mark_leaf_dirty
  2709. void do_balance(struct tree_balance *tb, struct item_head *ih,
  2710. const char *body, int flag);
  2711. void reiserfs_invalidate_buffer(struct tree_balance *tb,
  2712. struct buffer_head *bh);
  2713. int get_left_neighbor_position(struct tree_balance *tb, int h);
  2714. int get_right_neighbor_position(struct tree_balance *tb, int h);
  2715. void replace_key(struct tree_balance *tb, struct buffer_head *, int,
  2716. struct buffer_head *, int);
  2717. void make_empty_node(struct buffer_info *);
  2718. struct buffer_head *get_FEB(struct tree_balance *);
  2719. /* bitmap.c */
  2720. /*
  2721. * structure contains hints for block allocator, and it is a container for
  2722. * arguments, such as node, search path, transaction_handle, etc.
  2723. */
  2724. struct __reiserfs_blocknr_hint {
  2725. /* inode passed to allocator, if we allocate unf. nodes */
  2726. struct inode *inode;
  2727. sector_t block; /* file offset, in blocks */
  2728. struct in_core_key key;
  2729. /*
  2730. * search path, used by allocator to deternine search_start by
  2731. * various ways
  2732. */
  2733. struct treepath *path;
  2734. /*
  2735. * transaction handle is needed to log super blocks
  2736. * and bitmap blocks changes
  2737. */
  2738. struct reiserfs_transaction_handle *th;
  2739. b_blocknr_t beg, end;
  2740. /*
  2741. * a field used to transfer search start value (block number)
  2742. * between different block allocator procedures
  2743. * (determine_search_start() and others)
  2744. */
  2745. b_blocknr_t search_start;
  2746. /*
  2747. * is set in determine_prealloc_size() function,
  2748. * used by underlayed function that do actual allocation
  2749. */
  2750. int prealloc_size;
  2751. /*
  2752. * the allocator uses different polices for getting disk
  2753. * space for formatted/unformatted blocks with/without preallocation
  2754. */
  2755. unsigned formatted_node:1;
  2756. unsigned preallocate:1;
  2757. };
  2758. typedef struct __reiserfs_blocknr_hint reiserfs_blocknr_hint_t;
  2759. int reiserfs_parse_alloc_options(struct super_block *, char *);
  2760. void reiserfs_init_alloc_options(struct super_block *s);
  2761. /*
  2762. * given a directory, this will tell you what packing locality
  2763. * to use for a new object underneat it. The locality is returned
  2764. * in disk byte order (le).
  2765. */
  2766. __le32 reiserfs_choose_packing(struct inode *dir);
  2767. void show_alloc_options(struct seq_file *seq, struct super_block *s);
  2768. int reiserfs_init_bitmap_cache(struct super_block *sb);
  2769. void reiserfs_free_bitmap_cache(struct super_block *sb);
  2770. void reiserfs_cache_bitmap_metadata(struct super_block *sb, struct buffer_head *bh, struct reiserfs_bitmap_info *info);
  2771. struct buffer_head *reiserfs_read_bitmap_block(struct super_block *sb, unsigned int bitmap);
  2772. int is_reusable(struct super_block *s, b_blocknr_t block, int bit_value);
  2773. void reiserfs_free_block(struct reiserfs_transaction_handle *th, struct inode *,
  2774. b_blocknr_t, int for_unformatted);
  2775. int reiserfs_allocate_blocknrs(reiserfs_blocknr_hint_t *, b_blocknr_t *, int,
  2776. int);
  2777. static inline int reiserfs_new_form_blocknrs(struct tree_balance *tb,
  2778. b_blocknr_t * new_blocknrs,
  2779. int amount_needed)
  2780. {
  2781. reiserfs_blocknr_hint_t hint = {
  2782. .th = tb->transaction_handle,
  2783. .path = tb->tb_path,
  2784. .inode = NULL,
  2785. .key = tb->key,
  2786. .block = 0,
  2787. .formatted_node = 1
  2788. };
  2789. return reiserfs_allocate_blocknrs(&hint, new_blocknrs, amount_needed,
  2790. 0);
  2791. }
  2792. static inline int reiserfs_new_unf_blocknrs(struct reiserfs_transaction_handle
  2793. *th, struct inode *inode,
  2794. b_blocknr_t * new_blocknrs,
  2795. struct treepath *path,
  2796. sector_t block)
  2797. {
  2798. reiserfs_blocknr_hint_t hint = {
  2799. .th = th,
  2800. .path = path,
  2801. .inode = inode,
  2802. .block = block,
  2803. .formatted_node = 0,
  2804. .preallocate = 0
  2805. };
  2806. return reiserfs_allocate_blocknrs(&hint, new_blocknrs, 1, 0);
  2807. }
  2808. #ifdef REISERFS_PREALLOCATE
  2809. static inline int reiserfs_new_unf_blocknrs2(struct reiserfs_transaction_handle
  2810. *th, struct inode *inode,
  2811. b_blocknr_t * new_blocknrs,
  2812. struct treepath *path,
  2813. sector_t block)
  2814. {
  2815. reiserfs_blocknr_hint_t hint = {
  2816. .th = th,
  2817. .path = path,
  2818. .inode = inode,
  2819. .block = block,
  2820. .formatted_node = 0,
  2821. .preallocate = 1
  2822. };
  2823. return reiserfs_allocate_blocknrs(&hint, new_blocknrs, 1, 0);
  2824. }
  2825. void reiserfs_discard_prealloc(struct reiserfs_transaction_handle *th,
  2826. struct inode *inode);
  2827. void reiserfs_discard_all_prealloc(struct reiserfs_transaction_handle *th);
  2828. #endif
  2829. /* hashes.c */
  2830. __u32 keyed_hash(const signed char *msg, int len);
  2831. __u32 yura_hash(const signed char *msg, int len);
  2832. __u32 r5_hash(const signed char *msg, int len);
  2833. #define reiserfs_set_le_bit __set_bit_le
  2834. #define reiserfs_test_and_set_le_bit __test_and_set_bit_le
  2835. #define reiserfs_clear_le_bit __clear_bit_le
  2836. #define reiserfs_test_and_clear_le_bit __test_and_clear_bit_le
  2837. #define reiserfs_test_le_bit test_bit_le
  2838. #define reiserfs_find_next_zero_le_bit find_next_zero_bit_le
  2839. /*
  2840. * sometimes reiserfs_truncate may require to allocate few new blocks
  2841. * to perform indirect2direct conversion. People probably used to
  2842. * think, that truncate should work without problems on a filesystem
  2843. * without free disk space. They may complain that they can not
  2844. * truncate due to lack of free disk space. This spare space allows us
  2845. * to not worry about it. 500 is probably too much, but it should be
  2846. * absolutely safe
  2847. */
  2848. #define SPARE_SPACE 500
  2849. /* prototypes from ioctl.c */
  2850. long reiserfs_ioctl(struct file *filp, unsigned int cmd, unsigned long arg);
  2851. long reiserfs_compat_ioctl(struct file *filp,
  2852. unsigned int cmd, unsigned long arg);
  2853. int reiserfs_unpack(struct inode *inode, struct file *filp);