1/* 2 * include/linux/buffer_head.h 3 * 4 * Everything to do with buffer_heads. 5 */ 6 7#ifndef _LINUX_BUFFER_HEAD_H 8#define _LINUX_BUFFER_HEAD_H 9 10#include <linux/types.h> 11#include <linux/fs.h> 12#include <linux/linkage.h> 13#include <linux/pagemap.h> 14#include <linux/wait.h> 15#include <asm/atomic.h> 16 17#ifdef CONFIG_BLOCK 18 19enum bh_state_bits { 20 BH_Uptodate, /* Contains valid data */ 21 BH_Dirty, /* Is dirty */ 22 BH_Lock, /* Is locked */ 23 BH_Req, /* Has been submitted for I/O */ 24 BH_Uptodate_Lock,/* Used by the first bh in a page, to serialise 25 * IO completion of other buffers in the page 26 */ 27 28 BH_Mapped, /* Has a disk mapping */ 29 BH_New, /* Disk mapping was newly created by get_block */ 30 BH_Async_Read, /* Is under end_buffer_async_read I/O */ 31 BH_Async_Write, /* Is under end_buffer_async_write I/O */ 32 BH_Delay, /* Buffer is not yet allocated on disk */ 33 BH_Boundary, /* Block is followed by a discontiguity */ 34 BH_Write_EIO, /* I/O error on write */ 35 BH_Ordered, /* ordered write */ 36 BH_Eopnotsupp, /* operation not supported (barrier) */ 37 BH_Unwritten, /* Buffer is allocated on disk but not written */ 38 39 BH_PrivateStart,/* not a state bit, but the first bit available 40 * for private allocation by other entities 41 */ 42}; 43 44#define MAX_BUF_PER_PAGE (PAGE_CACHE_SIZE / 512) 45 46struct page; 47struct buffer_head; 48struct address_space; 49typedef void (bh_end_io_t)(struct buffer_head *bh, int uptodate); 50 51/* 52 * Historically, a buffer_head was used to map a single block 53 * within a page, and of course as the unit of I/O through the 54 * filesystem and block layers. Nowadays the basic I/O unit 55 * is the bio, and buffer_heads are used for extracting block 56 * mappings (via a get_block_t call), for tracking state within 57 * a page (via a page_mapping) and for wrapping bio submission 58 * for backward compatibility reasons (e.g. submit_bh). 59 */ 60struct buffer_head { 61 unsigned long b_state; /* buffer state bitmap (see above) */ 62 struct buffer_head *b_this_page;/* circular list of page's buffers */ 63 struct page *b_page; /* the page this bh is mapped to */ 64 65 sector_t b_blocknr; /* start block number */ 66 size_t b_size; /* size of mapping */ 67 char *b_data; /* pointer to data within the page */ 68 69 struct block_device *b_bdev; 70 bh_end_io_t *b_end_io; /* I/O completion */ 71 void *b_private; /* reserved for b_end_io */ 72 struct list_head b_assoc_buffers; /* associated with another mapping */ 73 struct address_space *b_assoc_map; /* mapping this buffer is 74 associated with */ 75 atomic_t b_count; /* users using this buffer_head */ 76}; 77 78/* 79 * macro tricks to expand the set_buffer_foo(), clear_buffer_foo() 80 * and buffer_foo() functions. 81 */ 82#define BUFFER_FNS(bit, name) \ 83static inline void set_buffer_##name(struct buffer_head *bh) \ 84{ \ 85 set_bit(BH_##bit, &(bh)->b_state); \ 86} \ 87static inline void clear_buffer_##name(struct buffer_head *bh) \ 88{ \ 89 clear_bit(BH_##bit, &(bh)->b_state); \ 90} \ 91static inline int buffer_##name(const struct buffer_head *bh) \ 92{ \ 93 return test_bit(BH_##bit, &(bh)->b_state); \ 94} 95 96/* 97 * test_set_buffer_foo() and test_clear_buffer_foo() 98 */ 99#define TAS_BUFFER_FNS(bit, name) \ 100static inline int test_set_buffer_##name(struct buffer_head *bh) \ 101{ \ 102 return test_and_set_bit(BH_##bit, &(bh)->b_state); \ 103} \ 104static inline int test_clear_buffer_##name(struct buffer_head *bh) \ 105{ \ 106 return test_and_clear_bit(BH_##bit, &(bh)->b_state); \ 107} \ 108 109/* 110 * Emit the buffer bitops functions. Note that there are also functions 111 * of the form "mark_buffer_foo()". These are higher-level functions which 112 * do something in addition to setting a b_state bit. 113 */ 114BUFFER_FNS(Uptodate, uptodate) 115BUFFER_FNS(Dirty, dirty) 116TAS_BUFFER_FNS(Dirty, dirty) 117BUFFER_FNS(Lock, locked) 118TAS_BUFFER_FNS(Lock, locked) 119BUFFER_FNS(Req, req) 120TAS_BUFFER_FNS(Req, req) 121BUFFER_FNS(Mapped, mapped) 122BUFFER_FNS(New, new) 123BUFFER_FNS(Async_Read, async_read) 124BUFFER_FNS(Async_Write, async_write) 125BUFFER_FNS(Delay, delay) 126BUFFER_FNS(Boundary, boundary) 127BUFFER_FNS(Write_EIO, write_io_error) 128BUFFER_FNS(Ordered, ordered) 129BUFFER_FNS(Eopnotsupp, eopnotsupp) 130BUFFER_FNS(Unwritten, unwritten) 131 132#define bh_offset(bh) ((unsigned long)(bh)->b_data & ~PAGE_MASK) 133#define touch_buffer(bh) mark_page_accessed(bh->b_page) 134 135/* If we *know* page->private refers to buffer_heads */ 136#define page_buffers(page) \ 137 ({ \ 138 BUG_ON(!PagePrivate(page)); \ 139 ((struct buffer_head *)page_private(page)); \ 140 }) 141#define page_has_buffers(page) PagePrivate(page) 142 143/* 144 * Declarations 145 */ 146 147void FASTCALL(mark_buffer_dirty(struct buffer_head *bh)); 148void init_buffer(struct buffer_head *, bh_end_io_t *, void *); 149void set_bh_page(struct buffer_head *bh, 150 struct page *page, unsigned long offset); 151int try_to_free_buffers(struct page *); 152struct buffer_head *alloc_page_buffers(struct page *page, unsigned long size, 153 int retry); 154void create_empty_buffers(struct page *, unsigned long, 155 unsigned long b_state); 156void end_buffer_read_sync(struct buffer_head *bh, int uptodate); 157void end_buffer_write_sync(struct buffer_head *bh, int uptodate); 158 159/* Things to do with buffers at mapping->private_list */ 160void mark_buffer_dirty_inode(struct buffer_head *bh, struct inode *inode); 161int inode_has_buffers(struct inode *); 162void invalidate_inode_buffers(struct inode *); 163int remove_inode_buffers(struct inode *inode); 164int sync_mapping_buffers(struct address_space *mapping); 165void unmap_underlying_metadata(struct block_device *bdev, sector_t block); 166 167void mark_buffer_async_write(struct buffer_head *bh); 168void invalidate_bdev(struct block_device *); 169int sync_blockdev(struct block_device *bdev); 170void __wait_on_buffer(struct buffer_head *); 171wait_queue_head_t *bh_waitq_head(struct buffer_head *bh); 172int fsync_bdev(struct block_device *); 173struct super_block *freeze_bdev(struct block_device *); 174void thaw_bdev(struct block_device *, struct super_block *); 175int fsync_super(struct super_block *); 176int fsync_no_super(struct block_device *); 177struct buffer_head *__find_get_block(struct block_device *bdev, sector_t block, 178 unsigned size); 179struct buffer_head *__getblk(struct block_device *bdev, sector_t block, 180 unsigned size); 181void __brelse(struct buffer_head *); 182void __bforget(struct buffer_head *); 183void __breadahead(struct block_device *, sector_t block, unsigned int size); 184struct buffer_head *__bread(struct block_device *, sector_t block, unsigned size); 185void invalidate_bh_lrus(void); 186struct buffer_head *alloc_buffer_head(gfp_t gfp_flags); 187void free_buffer_head(struct buffer_head * bh); 188void FASTCALL(unlock_buffer(struct buffer_head *bh)); 189void FASTCALL(__lock_buffer(struct buffer_head *bh)); 190void ll_rw_block(int, int, struct buffer_head * bh[]); 191int sync_dirty_buffer(struct buffer_head *bh); 192int submit_bh(int, struct buffer_head *); 193void write_boundary_block(struct block_device *bdev, 194 sector_t bblock, unsigned blocksize); 195 196extern int buffer_heads_over_limit; 197 198/* 199 * Generic address_space_operations implementations for buffer_head-backed 200 * address_spaces. 201 */ 202void block_invalidatepage(struct page *page, unsigned long offset); 203int block_write_full_page(struct page *page, get_block_t *get_block, 204 struct writeback_control *wbc); 205int block_read_full_page(struct page*, get_block_t*); 206int block_write_begin(struct file *, struct address_space *, 207 loff_t, unsigned, unsigned, 208 struct page **, void **, get_block_t*); 209int block_write_end(struct file *, struct address_space *, 210 loff_t, unsigned, unsigned, 211 struct page *, void *); 212int generic_write_end(struct file *, struct address_space *, 213 loff_t, unsigned, unsigned, 214 struct page *, void *); 215void page_zero_new_buffers(struct page *page, unsigned from, unsigned to); 216int block_prepare_write(struct page*, unsigned, unsigned, get_block_t*); 217int cont_write_begin(struct file *, struct address_space *, loff_t, 218 unsigned, unsigned, struct page **, void **, 219 get_block_t *, loff_t *); 220int generic_cont_expand_simple(struct inode *inode, loff_t size); 221int block_commit_write(struct page *page, unsigned from, unsigned to); 222int block_page_mkwrite(struct vm_area_struct *vma, struct page *page, 223 get_block_t get_block); 224void block_sync_page(struct page *); 225sector_t generic_block_bmap(struct address_space *, sector_t, get_block_t *); 226int generic_commit_write(struct file *, struct page *, unsigned, unsigned); 227int block_truncate_page(struct address_space *, loff_t, get_block_t *); 228int file_fsync(struct file *, struct dentry *, int); 229int nobh_write_begin(struct file *, struct address_space *, 230 loff_t, unsigned, unsigned, 231 struct page **, void **, get_block_t*); 232int nobh_write_end(struct file *, struct address_space *, 233 loff_t, unsigned, unsigned, 234 struct page *, void *); 235int nobh_truncate_page(struct address_space *, loff_t, get_block_t *); 236int nobh_writepage(struct page *page, get_block_t *get_block, 237 struct writeback_control *wbc); 238 239void buffer_init(void); 240 241/* 242 * inline definitions 243 */ 244 245static inline void attach_page_buffers(struct page *page, 246 struct buffer_head *head) 247{ 248 page_cache_get(page); 249 SetPagePrivate(page); 250 set_page_private(page, (unsigned long)head); 251} 252 253static inline void get_bh(struct buffer_head *bh) 254{ 255 atomic_inc(&bh->b_count); 256} 257 258static inline void put_bh(struct buffer_head *bh) 259{ 260 smp_mb__before_atomic_dec(); 261 atomic_dec(&bh->b_count); 262} 263 264static inline void brelse(struct buffer_head *bh) 265{ 266 if (bh) 267 __brelse(bh); 268} 269 270static inline void bforget(struct buffer_head *bh) 271{ 272 if (bh) 273 __bforget(bh); 274} 275 276static inline struct buffer_head * 277sb_bread(struct super_block *sb, sector_t block) 278{ 279 return __bread(sb->s_bdev, block, sb->s_blocksize); 280} 281 282static inline void 283sb_breadahead(struct super_block *sb, sector_t block) 284{ 285 __breadahead(sb->s_bdev, block, sb->s_blocksize); 286} 287 288static inline struct buffer_head * 289sb_getblk(struct super_block *sb, sector_t block) 290{ 291 return __getblk(sb->s_bdev, block, sb->s_blocksize); 292} 293 294static inline struct buffer_head * 295sb_find_get_block(struct super_block *sb, sector_t block) 296{ 297 return __find_get_block(sb->s_bdev, block, sb->s_blocksize); 298} 299 300static inline void 301map_bh(struct buffer_head *bh, struct super_block *sb, sector_t block) 302{ 303 set_buffer_mapped(bh); 304 bh->b_bdev = sb->s_bdev; 305 bh->b_blocknr = block; 306 bh->b_size = sb->s_blocksize; 307} 308 309/* 310 * Calling wait_on_buffer() for a zero-ref buffer is illegal, so we call into 311 * __wait_on_buffer() just to trip a debug check. Because debug code in inline 312 * functions is bloaty. 313 */ 314static inline void wait_on_buffer(struct buffer_head *bh) 315{ 316 might_sleep(); 317 if (buffer_locked(bh) || atomic_read(&bh->b_count) == 0) 318 __wait_on_buffer(bh); 319} 320 321static inline void lock_buffer(struct buffer_head *bh) 322{ 323 might_sleep(); 324 if (test_set_buffer_locked(bh)) 325 __lock_buffer(bh); 326} 327 328extern int __set_page_dirty_buffers(struct page *page); 329 330#else /* CONFIG_BLOCK */ 331 332static inline void buffer_init(void) {} 333static inline int try_to_free_buffers(struct page *page) { return 1; } 334static inline int sync_blockdev(struct block_device *bdev) { return 0; } 335static inline int inode_has_buffers(struct inode *inode) { return 0; } 336static inline void invalidate_inode_buffers(struct inode *inode) {} 337static inline int remove_inode_buffers(struct inode *inode) { return 1; } 338static inline int sync_mapping_buffers(struct address_space *mapping) { return 0; } 339static inline void invalidate_bdev(struct block_device *bdev) {} 340 341 342#endif /* CONFIG_BLOCK */ 343#endif /* _LINUX_BUFFER_HEAD_H */