Linux Audio

Check our new training course

Linux BSP development engineering services

Need help to port Linux and bootloaders to your hardware?
Loading...
v3.1
  1/*
  2 * Copyright (c) 2000-2003,2005 Silicon Graphics, Inc.
  3 * All Rights Reserved.
  4 *
  5 * This program is free software; you can redistribute it and/or
  6 * modify it under the terms of the GNU General Public License as
  7 * published by the Free Software Foundation.
  8 *
  9 * This program is distributed in the hope that it would be useful,
 10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 12 * GNU General Public License for more details.
 13 *
 14 * You should have received a copy of the GNU General Public License
 15 * along with this program; if not, write the Free Software Foundation,
 16 * Inc.,  51 Franklin St, Fifth Floor, Boston, MA  02110-1301  USA
 17 */
 18#ifndef	__XFS_INODE_H__
 19#define	__XFS_INODE_H__
 20
 21struct posix_acl;
 22struct xfs_dinode;
 23struct xfs_inode;
 24
 25/*
 26 * Fork identifiers.
 27 */
 28#define	XFS_DATA_FORK	0
 29#define	XFS_ATTR_FORK	1
 30
 31/*
 32 * The following xfs_ext_irec_t struct introduces a second (top) level
 33 * to the in-core extent allocation scheme. These structs are allocated
 34 * in a contiguous block, creating an indirection array where each entry
 35 * (irec) contains a pointer to a buffer of in-core extent records which
 36 * it manages. Each extent buffer is 4k in size, since 4k is the system
 37 * page size on Linux i386 and systems with larger page sizes don't seem
 38 * to gain much, if anything, by using their native page size as the
 39 * extent buffer size. Also, using 4k extent buffers everywhere provides
 40 * a consistent interface for CXFS across different platforms.
 41 *
 42 * There is currently no limit on the number of irec's (extent lists)
 43 * allowed, so heavily fragmented files may require an indirection array
 44 * which spans multiple system pages of memory. The number of extents
 45 * which would require this amount of contiguous memory is very large
 46 * and should not cause problems in the foreseeable future. However,
 47 * if the memory needed for the contiguous array ever becomes a problem,
 48 * it is possible that a third level of indirection may be required.
 49 */
 50typedef struct xfs_ext_irec {
 51	xfs_bmbt_rec_host_t *er_extbuf;	/* block of extent records */
 52	xfs_extnum_t	er_extoff;	/* extent offset in file */
 53	xfs_extnum_t	er_extcount;	/* number of extents in page/block */
 54} xfs_ext_irec_t;
 55
 56/*
 57 * File incore extent information, present for each of data & attr forks.
 58 */
 59#define	XFS_IEXT_BUFSZ		4096
 60#define	XFS_LINEAR_EXTS		(XFS_IEXT_BUFSZ / (uint)sizeof(xfs_bmbt_rec_t))
 61#define	XFS_INLINE_EXTS		2
 62#define	XFS_INLINE_DATA		32
 63typedef struct xfs_ifork {
 64	int			if_bytes;	/* bytes in if_u1 */
 65	int			if_real_bytes;	/* bytes allocated in if_u1 */
 66	struct xfs_btree_block	*if_broot;	/* file's incore btree root */
 67	short			if_broot_bytes;	/* bytes allocated for root */
 68	unsigned char		if_flags;	/* per-fork flags */
 69	unsigned char		if_ext_max;	/* max # of extent records */
 70	union {
 71		xfs_bmbt_rec_host_t *if_extents;/* linear map file exts */
 72		xfs_ext_irec_t	*if_ext_irec;	/* irec map file exts */
 73		char		*if_data;	/* inline file data */
 74	} if_u1;
 75	union {
 76		xfs_bmbt_rec_host_t if_inline_ext[XFS_INLINE_EXTS];
 77						/* very small file extents */
 78		char		if_inline_data[XFS_INLINE_DATA];
 79						/* very small file data */
 80		xfs_dev_t	if_rdev;	/* dev number if special */
 81		uuid_t		if_uuid;	/* mount point value */
 82	} if_u2;
 83} xfs_ifork_t;
 84
 85/*
 86 * Inode location information.  Stored in the inode and passed to
 87 * xfs_imap_to_bp() to get a buffer and dinode for a given inode.
 88 */
 89struct xfs_imap {
 90	xfs_daddr_t	im_blkno;	/* starting BB of inode chunk */
 91	ushort		im_len;		/* length in BBs of inode chunk */
 92	ushort		im_boffset;	/* inode offset in block in bytes */
 93};
 94
 95/*
 96 * This is the xfs in-core inode structure.
 97 * Most of the on-disk inode is embedded in the i_d field.
 98 *
 99 * The extent pointers/inline file space, however, are managed
100 * separately.  The memory for this information is pointed to by
101 * the if_u1 unions depending on the type of the data.
102 * This is used to linearize the array of extents for fast in-core
103 * access.  This is used until the file's number of extents
104 * surpasses XFS_MAX_INCORE_EXTENTS, at which point all extent pointers
105 * are accessed through the buffer cache.
106 *
107 * Other state kept in the in-core inode is used for identification,
108 * locking, transactional updating, etc of the inode.
109 *
110 * Generally, we do not want to hold the i_rlock while holding the
111 * i_ilock. Hierarchy is i_iolock followed by i_rlock.
112 *
113 * xfs_iptr_t contains all the inode fields up to and including the
114 * i_mnext and i_mprev fields, it is used as a marker in the inode
115 * chain off the mount structure by xfs_sync calls.
116 */
117
118typedef struct xfs_ictimestamp {
119	__int32_t	t_sec;		/* timestamp seconds */
120	__int32_t	t_nsec;		/* timestamp nanoseconds */
121} xfs_ictimestamp_t;
122
123/*
124 * NOTE:  This structure must be kept identical to struct xfs_dinode
125 * 	  in xfs_dinode.h except for the endianness annotations.
126 */
127typedef struct xfs_icdinode {
128	__uint16_t	di_magic;	/* inode magic # = XFS_DINODE_MAGIC */
129	__uint16_t	di_mode;	/* mode and type of file */
130	__int8_t	di_version;	/* inode version */
131	__int8_t	di_format;	/* format of di_c data */
132	__uint16_t	di_onlink;	/* old number of links to file */
133	__uint32_t	di_uid;		/* owner's user id */
134	__uint32_t	di_gid;		/* owner's group id */
135	__uint32_t	di_nlink;	/* number of links to file */
136	__uint16_t	di_projid_lo;	/* lower part of owner's project id */
137	__uint16_t	di_projid_hi;	/* higher part of owner's project id */
138	__uint8_t	di_pad[6];	/* unused, zeroed space */
139	__uint16_t	di_flushiter;	/* incremented on flush */
140	xfs_ictimestamp_t di_atime;	/* time last accessed */
141	xfs_ictimestamp_t di_mtime;	/* time last modified */
142	xfs_ictimestamp_t di_ctime;	/* time created/inode modified */
143	xfs_fsize_t	di_size;	/* number of bytes in file */
144	xfs_drfsbno_t	di_nblocks;	/* # of direct & btree blocks used */
145	xfs_extlen_t	di_extsize;	/* basic/minimum extent size for file */
146	xfs_extnum_t	di_nextents;	/* number of extents in data fork */
147	xfs_aextnum_t	di_anextents;	/* number of extents in attribute fork*/
148	__uint8_t	di_forkoff;	/* attr fork offs, <<3 for 64b align */
149	__int8_t	di_aformat;	/* format of attr fork's data */
150	__uint32_t	di_dmevmask;	/* DMIG event mask */
151	__uint16_t	di_dmstate;	/* DMIG state info */
152	__uint16_t	di_flags;	/* random flags, XFS_DIFLAG_... */
153	__uint32_t	di_gen;		/* generation number */
154} xfs_icdinode_t;
155
156/*
157 * Flags for xfs_ichgtime().
158 */
159#define	XFS_ICHGTIME_MOD	0x1	/* data fork modification timestamp */
160#define	XFS_ICHGTIME_CHG	0x2	/* inode field change timestamp */
161
162/*
163 * Per-fork incore inode flags.
164 */
165#define	XFS_IFINLINE	0x01	/* Inline data is read in */
166#define	XFS_IFEXTENTS	0x02	/* All extent pointers are read in */
167#define	XFS_IFBROOT	0x04	/* i_broot points to the bmap b-tree root */
168#define	XFS_IFEXTIREC	0x08	/* Indirection array of extent blocks */
169
170/*
171 * Fork handling.
172 */
173
174#define XFS_IFORK_Q(ip)			((ip)->i_d.di_forkoff != 0)
175#define XFS_IFORK_BOFF(ip)		((int)((ip)->i_d.di_forkoff << 3))
176
177#define XFS_IFORK_PTR(ip,w)		\
178	((w) == XFS_DATA_FORK ? \
179		&(ip)->i_df : \
180		(ip)->i_afp)
181#define XFS_IFORK_DSIZE(ip) \
182	(XFS_IFORK_Q(ip) ? \
183		XFS_IFORK_BOFF(ip) : \
184		XFS_LITINO((ip)->i_mount))
185#define XFS_IFORK_ASIZE(ip) \
186	(XFS_IFORK_Q(ip) ? \
187		XFS_LITINO((ip)->i_mount) - XFS_IFORK_BOFF(ip) : \
188		0)
189#define XFS_IFORK_SIZE(ip,w) \
190	((w) == XFS_DATA_FORK ? \
191		XFS_IFORK_DSIZE(ip) : \
192		XFS_IFORK_ASIZE(ip))
193#define XFS_IFORK_FORMAT(ip,w) \
194	((w) == XFS_DATA_FORK ? \
195		(ip)->i_d.di_format : \
196		(ip)->i_d.di_aformat)
197#define XFS_IFORK_FMT_SET(ip,w,n) \
198	((w) == XFS_DATA_FORK ? \
199		((ip)->i_d.di_format = (n)) : \
200		((ip)->i_d.di_aformat = (n)))
201#define XFS_IFORK_NEXTENTS(ip,w) \
202	((w) == XFS_DATA_FORK ? \
203		(ip)->i_d.di_nextents : \
204		(ip)->i_d.di_anextents)
205#define XFS_IFORK_NEXT_SET(ip,w,n) \
206	((w) == XFS_DATA_FORK ? \
207		((ip)->i_d.di_nextents = (n)) : \
208		((ip)->i_d.di_anextents = (n)))
209
 
210
211
212#ifdef __KERNEL__
213
214struct bhv_desc;
215struct xfs_buf;
216struct xfs_bmap_free;
217struct xfs_bmbt_irec;
218struct xfs_inode_log_item;
219struct xfs_mount;
220struct xfs_trans;
221struct xfs_dquot;
222
223typedef struct dm_attrs_s {
224	__uint32_t	da_dmevmask;	/* DMIG event mask */
225	__uint16_t	da_dmstate;	/* DMIG state info */
226	__uint16_t	da_pad;		/* DMIG extra padding */
227} dm_attrs_t;
228
229typedef struct xfs_inode {
230	/* Inode linking and identification information. */
231	struct xfs_mount	*i_mount;	/* fs mount struct ptr */
232	struct xfs_dquot	*i_udquot;	/* user dquot */
233	struct xfs_dquot	*i_gdquot;	/* group dquot */
234
235	/* Inode location stuff */
236	xfs_ino_t		i_ino;		/* inode number (agno/agino)*/
237	struct xfs_imap		i_imap;		/* location for xfs_imap() */
238
239	/* Extent information. */
240	xfs_ifork_t		*i_afp;		/* attribute fork pointer */
241	xfs_ifork_t		i_df;		/* data fork */
242
243	/* Transaction and locking information. */
244	struct xfs_inode_log_item *i_itemp;	/* logging information */
245	mrlock_t		i_lock;		/* inode lock */
246	mrlock_t		i_iolock;	/* inode IO lock */
247	struct completion	i_flush;	/* inode flush completion q */
248	atomic_t		i_pincount;	/* inode pin count */
249	wait_queue_head_t	i_ipin_wait;	/* inode pinning wait queue */
250	spinlock_t		i_flags_lock;	/* inode i_flags lock */
251	/* Miscellaneous state. */
252	unsigned short		i_flags;	/* see defined flags below */
253	unsigned char		i_update_core;	/* timestamps/size is dirty */
254	unsigned int		i_delayed_blks;	/* count of delay alloc blks */
255
256	xfs_icdinode_t		i_d;		/* most of ondisk inode */
257
258	xfs_fsize_t		i_size;		/* in-memory size */
259	xfs_fsize_t		i_new_size;	/* size when write completes */
260	atomic_t		i_iocount;	/* outstanding I/O count */
261
262	/* VFS inode */
263	struct inode		i_vnode;	/* embedded VFS inode */
264} xfs_inode_t;
265
266#define XFS_ISIZE(ip)	S_ISREG((ip)->i_d.di_mode) ? \
267				(ip)->i_size : (ip)->i_d.di_size;
268
269/* Convert from vfs inode to xfs inode */
270static inline struct xfs_inode *XFS_I(struct inode *inode)
271{
272	return container_of(inode, struct xfs_inode, i_vnode);
273}
274
275/* convert from xfs inode to vfs inode */
276static inline struct inode *VFS_I(struct xfs_inode *ip)
277{
278	return &ip->i_vnode;
279}
280
281/*
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
282 * i_flags helper functions
283 */
284static inline void
285__xfs_iflags_set(xfs_inode_t *ip, unsigned short flags)
286{
287	ip->i_flags |= flags;
288}
289
290static inline void
291xfs_iflags_set(xfs_inode_t *ip, unsigned short flags)
292{
293	spin_lock(&ip->i_flags_lock);
294	__xfs_iflags_set(ip, flags);
295	spin_unlock(&ip->i_flags_lock);
296}
297
298static inline void
299xfs_iflags_clear(xfs_inode_t *ip, unsigned short flags)
300{
301	spin_lock(&ip->i_flags_lock);
302	ip->i_flags &= ~flags;
303	spin_unlock(&ip->i_flags_lock);
304}
305
306static inline int
307__xfs_iflags_test(xfs_inode_t *ip, unsigned short flags)
308{
309	return (ip->i_flags & flags);
310}
311
312static inline int
313xfs_iflags_test(xfs_inode_t *ip, unsigned short flags)
314{
315	int ret;
316	spin_lock(&ip->i_flags_lock);
317	ret = __xfs_iflags_test(ip, flags);
318	spin_unlock(&ip->i_flags_lock);
319	return ret;
320}
321
322static inline int
323xfs_iflags_test_and_clear(xfs_inode_t *ip, unsigned short flags)
324{
325	int ret;
326
327	spin_lock(&ip->i_flags_lock);
328	ret = ip->i_flags & flags;
329	if (ret)
330		ip->i_flags &= ~flags;
331	spin_unlock(&ip->i_flags_lock);
332	return ret;
333}
334
 
 
 
 
 
 
 
 
 
 
 
 
 
335/*
336 * Project quota id helpers (previously projid was 16bit only
337 * and using two 16bit values to hold new 32bit projid was chosen
338 * to retain compatibility with "old" filesystems).
339 */
340static inline prid_t
341xfs_get_projid(struct xfs_inode *ip)
342{
343	return (prid_t)ip->i_d.di_projid_hi << 16 | ip->i_d.di_projid_lo;
344}
345
346static inline void
347xfs_set_projid(struct xfs_inode *ip,
348		prid_t projid)
349{
350	ip->i_d.di_projid_hi = (__uint16_t) (projid >> 16);
351	ip->i_d.di_projid_lo = (__uint16_t) (projid & 0xffff);
352}
353
354/*
355 * Manage the i_flush queue embedded in the inode.  This completion
356 * queue synchronizes processes attempting to flush the in-core
357 * inode back to disk.
358 */
359static inline void xfs_iflock(xfs_inode_t *ip)
360{
361	wait_for_completion(&ip->i_flush);
362}
363
364static inline int xfs_iflock_nowait(xfs_inode_t *ip)
365{
366	return try_wait_for_completion(&ip->i_flush);
367}
368
369static inline void xfs_ifunlock(xfs_inode_t *ip)
370{
371	complete(&ip->i_flush);
372}
373
374/*
375 * In-core inode flags.
376 */
377#define XFS_IRECLAIM		0x0001  /* started reclaiming this inode */
378#define XFS_ISTALE		0x0002	/* inode has been staled */
379#define XFS_IRECLAIMABLE	0x0004	/* inode can be reclaimed */
380#define XFS_INEW		0x0008	/* inode has just been allocated */
381#define XFS_IFILESTREAM		0x0010	/* inode is in a filestream directory */
382#define XFS_ITRUNCATED		0x0020	/* truncated down so flush-on-close */
383#define XFS_IDIRTY_RELEASE	0x0040	/* dirty release already seen */
 
 
 
 
 
384
385/*
386 * Per-lifetime flags need to be reset when re-using a reclaimable inode during
387 * inode lookup. Thi prevents unintended behaviour on the new inode from
388 * ocurring.
389 */
390#define XFS_IRECLAIM_RESET_FLAGS	\
391	(XFS_IRECLAIMABLE | XFS_IRECLAIM | \
392	 XFS_IDIRTY_RELEASE | XFS_ITRUNCATED | \
393	 XFS_IFILESTREAM);
394
395/*
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
396 * Flags for inode locking.
397 * Bit ranges:	1<<1  - 1<<16-1 -- iolock/ilock modes (bitfield)
398 *		1<<16 - 1<<32-1 -- lockdep annotation (integers)
399 */
400#define	XFS_IOLOCK_EXCL		(1<<0)
401#define	XFS_IOLOCK_SHARED	(1<<1)
402#define	XFS_ILOCK_EXCL		(1<<2)
403#define	XFS_ILOCK_SHARED	(1<<3)
404#define	XFS_IUNLOCK_NONOTIFY	(1<<4)
405
406#define XFS_LOCK_MASK		(XFS_IOLOCK_EXCL | XFS_IOLOCK_SHARED \
407				| XFS_ILOCK_EXCL | XFS_ILOCK_SHARED)
408
409#define XFS_LOCK_FLAGS \
410	{ XFS_IOLOCK_EXCL,	"IOLOCK_EXCL" }, \
411	{ XFS_IOLOCK_SHARED,	"IOLOCK_SHARED" }, \
412	{ XFS_ILOCK_EXCL,	"ILOCK_EXCL" }, \
413	{ XFS_ILOCK_SHARED,	"ILOCK_SHARED" }, \
414	{ XFS_IUNLOCK_NONOTIFY,	"IUNLOCK_NONOTIFY" }
415
416
417/*
418 * Flags for lockdep annotations.
419 *
420 * XFS_LOCK_PARENT - for directory operations that require locking a
421 * parent directory inode and a child entry inode.  The parent gets locked
422 * with this flag so it gets a lockdep subclass of 1 and the child entry
423 * lock will have a lockdep subclass of 0.
424 *
425 * XFS_LOCK_RTBITMAP/XFS_LOCK_RTSUM - the realtime device bitmap and summary
426 * inodes do not participate in the normal lock order, and thus have their
427 * own subclasses.
428 *
429 * XFS_LOCK_INUMORDER - for locking several inodes at the some time
430 * with xfs_lock_inodes().  This flag is used as the starting subclass
431 * and each subsequent lock acquired will increment the subclass by one.
432 * So the first lock acquired will have a lockdep subclass of 4, the
433 * second lock will have a lockdep subclass of 5, and so on. It is
434 * the responsibility of the class builder to shift this to the correct
435 * portion of the lock_mode lockdep mask.
436 */
437#define XFS_LOCK_PARENT		1
438#define XFS_LOCK_RTBITMAP	2
439#define XFS_LOCK_RTSUM		3
440#define XFS_LOCK_INUMORDER	4
441
442#define XFS_IOLOCK_SHIFT	16
443#define	XFS_IOLOCK_PARENT	(XFS_LOCK_PARENT << XFS_IOLOCK_SHIFT)
444
445#define XFS_ILOCK_SHIFT		24
446#define	XFS_ILOCK_PARENT	(XFS_LOCK_PARENT << XFS_ILOCK_SHIFT)
447#define	XFS_ILOCK_RTBITMAP	(XFS_LOCK_RTBITMAP << XFS_ILOCK_SHIFT)
448#define	XFS_ILOCK_RTSUM		(XFS_LOCK_RTSUM << XFS_ILOCK_SHIFT)
449
450#define XFS_IOLOCK_DEP_MASK	0x00ff0000
451#define XFS_ILOCK_DEP_MASK	0xff000000
452#define XFS_LOCK_DEP_MASK	(XFS_IOLOCK_DEP_MASK | XFS_ILOCK_DEP_MASK)
453
454#define XFS_IOLOCK_DEP(flags)	(((flags) & XFS_IOLOCK_DEP_MASK) >> XFS_IOLOCK_SHIFT)
455#define XFS_ILOCK_DEP(flags)	(((flags) & XFS_ILOCK_DEP_MASK) >> XFS_ILOCK_SHIFT)
456
457extern struct lock_class_key xfs_iolock_reclaimable;
458
459/*
460 * For multiple groups support: if S_ISGID bit is set in the parent
461 * directory, group of new file is set to that of the parent, and
462 * new subdirectory gets S_ISGID bit from parent.
463 */
464#define XFS_INHERIT_GID(pip)	\
465	(((pip)->i_mount->m_flags & XFS_MOUNT_GRPID) || \
466	 ((pip)->i_d.di_mode & S_ISGID))
467
468/*
469 * xfs_iget.c prototypes.
470 */
471int		xfs_iget(struct xfs_mount *, struct xfs_trans *, xfs_ino_t,
472			 uint, uint, xfs_inode_t **);
473void		xfs_ilock(xfs_inode_t *, uint);
474int		xfs_ilock_nowait(xfs_inode_t *, uint);
475void		xfs_iunlock(xfs_inode_t *, uint);
476void		xfs_ilock_demote(xfs_inode_t *, uint);
477int		xfs_isilocked(xfs_inode_t *, uint);
478uint		xfs_ilock_map_shared(xfs_inode_t *);
479void		xfs_iunlock_map_shared(xfs_inode_t *, uint);
480void		xfs_inode_free(struct xfs_inode *ip);
481
482/*
483 * xfs_inode.c prototypes.
484 */
485int		xfs_ialloc(struct xfs_trans *, xfs_inode_t *, mode_t,
486			   xfs_nlink_t, xfs_dev_t, prid_t, int,
487			   struct xfs_buf **, boolean_t *, xfs_inode_t **);
488
489uint		xfs_ip2xflags(struct xfs_inode *);
490uint		xfs_dic2xflags(struct xfs_dinode *);
491int		xfs_ifree(struct xfs_trans *, xfs_inode_t *,
492			   struct xfs_bmap_free *);
493int		xfs_itruncate_extents(struct xfs_trans **, struct xfs_inode *,
494				      int, xfs_fsize_t);
495int		xfs_itruncate_data(struct xfs_trans **, struct xfs_inode *,
496				   xfs_fsize_t);
497int		xfs_iunlink(struct xfs_trans *, xfs_inode_t *);
498
499void		xfs_iext_realloc(xfs_inode_t *, int, int);
500void		xfs_iunpin_wait(xfs_inode_t *);
501int		xfs_iflush(xfs_inode_t *, uint);
502void		xfs_lock_inodes(xfs_inode_t **, int, uint);
503void		xfs_lock_two_inodes(xfs_inode_t *, xfs_inode_t *, uint);
504
505void		xfs_synchronize_times(xfs_inode_t *);
506void		xfs_mark_inode_dirty(xfs_inode_t *);
507void		xfs_mark_inode_dirty_sync(xfs_inode_t *);
508
509#define IHOLD(ip) \
510do { \
511	ASSERT(atomic_read(&VFS_I(ip)->i_count) > 0) ; \
512	ihold(VFS_I(ip)); \
513	trace_xfs_ihold(ip, _THIS_IP_); \
514} while (0)
515
516#define IRELE(ip) \
517do { \
518	trace_xfs_irele(ip, _THIS_IP_); \
519	iput(VFS_I(ip)); \
520} while (0)
521
522#endif /* __KERNEL__ */
523
524/*
525 * Flags for xfs_iget()
526 */
527#define XFS_IGET_CREATE		0x1
528#define XFS_IGET_UNTRUSTED	0x2
 
529
530int		xfs_inotobp(struct xfs_mount *, struct xfs_trans *,
531			    xfs_ino_t, struct xfs_dinode **,
532			    struct xfs_buf **, int *, uint);
533int		xfs_itobp(struct xfs_mount *, struct xfs_trans *,
534			  struct xfs_inode *, struct xfs_dinode **,
535			  struct xfs_buf **, uint);
536int		xfs_iread(struct xfs_mount *, struct xfs_trans *,
537			  struct xfs_inode *, uint);
538void		xfs_dinode_to_disk(struct xfs_dinode *,
539				   struct xfs_icdinode *);
540void		xfs_idestroy_fork(struct xfs_inode *, int);
541void		xfs_idata_realloc(struct xfs_inode *, int, int);
542void		xfs_iroot_realloc(struct xfs_inode *, int, int);
543int		xfs_iread_extents(struct xfs_trans *, struct xfs_inode *, int);
544int		xfs_iextents_copy(struct xfs_inode *, xfs_bmbt_rec_t *, int);
545
546xfs_bmbt_rec_host_t *xfs_iext_get_ext(xfs_ifork_t *, xfs_extnum_t);
547void		xfs_iext_insert(xfs_inode_t *, xfs_extnum_t, xfs_extnum_t,
548				xfs_bmbt_irec_t *, int);
549void		xfs_iext_add(xfs_ifork_t *, xfs_extnum_t, int);
550void		xfs_iext_add_indirect_multi(xfs_ifork_t *, int, xfs_extnum_t, int);
551void		xfs_iext_remove(xfs_inode_t *, xfs_extnum_t, int, int);
552void		xfs_iext_remove_inline(xfs_ifork_t *, xfs_extnum_t, int);
553void		xfs_iext_remove_direct(xfs_ifork_t *, xfs_extnum_t, int);
554void		xfs_iext_remove_indirect(xfs_ifork_t *, xfs_extnum_t, int);
555void		xfs_iext_realloc_direct(xfs_ifork_t *, int);
556void		xfs_iext_direct_to_inline(xfs_ifork_t *, xfs_extnum_t);
557void		xfs_iext_inline_to_direct(xfs_ifork_t *, int);
558void		xfs_iext_destroy(xfs_ifork_t *);
559xfs_bmbt_rec_host_t *xfs_iext_bno_to_ext(xfs_ifork_t *, xfs_fileoff_t, int *);
560xfs_ext_irec_t	*xfs_iext_bno_to_irec(xfs_ifork_t *, xfs_fileoff_t, int *);
561xfs_ext_irec_t	*xfs_iext_idx_to_irec(xfs_ifork_t *, xfs_extnum_t *, int *, int);
562void		xfs_iext_irec_init(xfs_ifork_t *);
563xfs_ext_irec_t *xfs_iext_irec_new(xfs_ifork_t *, int);
564void		xfs_iext_irec_remove(xfs_ifork_t *, int);
565void		xfs_iext_irec_compact(xfs_ifork_t *);
566void		xfs_iext_irec_compact_pages(xfs_ifork_t *);
567void		xfs_iext_irec_compact_full(xfs_ifork_t *);
568void		xfs_iext_irec_update_extoffs(xfs_ifork_t *, int, int);
569
570#define xfs_ipincount(ip)	((unsigned int) atomic_read(&ip->i_pincount))
571
572#if defined(DEBUG)
573void		xfs_inobp_check(struct xfs_mount *, struct xfs_buf *);
574#else
575#define	xfs_inobp_check(mp, bp)
576#endif /* DEBUG */
577
578extern struct kmem_zone	*xfs_ifork_zone;
579extern struct kmem_zone	*xfs_inode_zone;
580extern struct kmem_zone	*xfs_ili_zone;
581
582#endif	/* __XFS_INODE_H__ */
v3.5.6
  1/*
  2 * Copyright (c) 2000-2003,2005 Silicon Graphics, Inc.
  3 * All Rights Reserved.
  4 *
  5 * This program is free software; you can redistribute it and/or
  6 * modify it under the terms of the GNU General Public License as
  7 * published by the Free Software Foundation.
  8 *
  9 * This program is distributed in the hope that it would be useful,
 10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 12 * GNU General Public License for more details.
 13 *
 14 * You should have received a copy of the GNU General Public License
 15 * along with this program; if not, write the Free Software Foundation,
 16 * Inc.,  51 Franklin St, Fifth Floor, Boston, MA  02110-1301  USA
 17 */
 18#ifndef	__XFS_INODE_H__
 19#define	__XFS_INODE_H__
 20
 21struct posix_acl;
 22struct xfs_dinode;
 23struct xfs_inode;
 24
 25/*
 26 * Fork identifiers.
 27 */
 28#define	XFS_DATA_FORK	0
 29#define	XFS_ATTR_FORK	1
 30
 31/*
 32 * The following xfs_ext_irec_t struct introduces a second (top) level
 33 * to the in-core extent allocation scheme. These structs are allocated
 34 * in a contiguous block, creating an indirection array where each entry
 35 * (irec) contains a pointer to a buffer of in-core extent records which
 36 * it manages. Each extent buffer is 4k in size, since 4k is the system
 37 * page size on Linux i386 and systems with larger page sizes don't seem
 38 * to gain much, if anything, by using their native page size as the
 39 * extent buffer size. Also, using 4k extent buffers everywhere provides
 40 * a consistent interface for CXFS across different platforms.
 41 *
 42 * There is currently no limit on the number of irec's (extent lists)
 43 * allowed, so heavily fragmented files may require an indirection array
 44 * which spans multiple system pages of memory. The number of extents
 45 * which would require this amount of contiguous memory is very large
 46 * and should not cause problems in the foreseeable future. However,
 47 * if the memory needed for the contiguous array ever becomes a problem,
 48 * it is possible that a third level of indirection may be required.
 49 */
 50typedef struct xfs_ext_irec {
 51	xfs_bmbt_rec_host_t *er_extbuf;	/* block of extent records */
 52	xfs_extnum_t	er_extoff;	/* extent offset in file */
 53	xfs_extnum_t	er_extcount;	/* number of extents in page/block */
 54} xfs_ext_irec_t;
 55
 56/*
 57 * File incore extent information, present for each of data & attr forks.
 58 */
 59#define	XFS_IEXT_BUFSZ		4096
 60#define	XFS_LINEAR_EXTS		(XFS_IEXT_BUFSZ / (uint)sizeof(xfs_bmbt_rec_t))
 61#define	XFS_INLINE_EXTS		2
 62#define	XFS_INLINE_DATA		32
 63typedef struct xfs_ifork {
 64	int			if_bytes;	/* bytes in if_u1 */
 65	int			if_real_bytes;	/* bytes allocated in if_u1 */
 66	struct xfs_btree_block	*if_broot;	/* file's incore btree root */
 67	short			if_broot_bytes;	/* bytes allocated for root */
 68	unsigned char		if_flags;	/* per-fork flags */
 
 69	union {
 70		xfs_bmbt_rec_host_t *if_extents;/* linear map file exts */
 71		xfs_ext_irec_t	*if_ext_irec;	/* irec map file exts */
 72		char		*if_data;	/* inline file data */
 73	} if_u1;
 74	union {
 75		xfs_bmbt_rec_host_t if_inline_ext[XFS_INLINE_EXTS];
 76						/* very small file extents */
 77		char		if_inline_data[XFS_INLINE_DATA];
 78						/* very small file data */
 79		xfs_dev_t	if_rdev;	/* dev number if special */
 80		uuid_t		if_uuid;	/* mount point value */
 81	} if_u2;
 82} xfs_ifork_t;
 83
 84/*
 85 * Inode location information.  Stored in the inode and passed to
 86 * xfs_imap_to_bp() to get a buffer and dinode for a given inode.
 87 */
 88struct xfs_imap {
 89	xfs_daddr_t	im_blkno;	/* starting BB of inode chunk */
 90	ushort		im_len;		/* length in BBs of inode chunk */
 91	ushort		im_boffset;	/* inode offset in block in bytes */
 92};
 93
 94/*
 95 * This is the xfs in-core inode structure.
 96 * Most of the on-disk inode is embedded in the i_d field.
 97 *
 98 * The extent pointers/inline file space, however, are managed
 99 * separately.  The memory for this information is pointed to by
100 * the if_u1 unions depending on the type of the data.
101 * This is used to linearize the array of extents for fast in-core
102 * access.  This is used until the file's number of extents
103 * surpasses XFS_MAX_INCORE_EXTENTS, at which point all extent pointers
104 * are accessed through the buffer cache.
105 *
106 * Other state kept in the in-core inode is used for identification,
107 * locking, transactional updating, etc of the inode.
108 *
109 * Generally, we do not want to hold the i_rlock while holding the
110 * i_ilock. Hierarchy is i_iolock followed by i_rlock.
111 *
112 * xfs_iptr_t contains all the inode fields up to and including the
113 * i_mnext and i_mprev fields, it is used as a marker in the inode
114 * chain off the mount structure by xfs_sync calls.
115 */
116
117typedef struct xfs_ictimestamp {
118	__int32_t	t_sec;		/* timestamp seconds */
119	__int32_t	t_nsec;		/* timestamp nanoseconds */
120} xfs_ictimestamp_t;
121
122/*
123 * NOTE:  This structure must be kept identical to struct xfs_dinode
124 * 	  in xfs_dinode.h except for the endianness annotations.
125 */
126typedef struct xfs_icdinode {
127	__uint16_t	di_magic;	/* inode magic # = XFS_DINODE_MAGIC */
128	__uint16_t	di_mode;	/* mode and type of file */
129	__int8_t	di_version;	/* inode version */
130	__int8_t	di_format;	/* format of di_c data */
131	__uint16_t	di_onlink;	/* old number of links to file */
132	__uint32_t	di_uid;		/* owner's user id */
133	__uint32_t	di_gid;		/* owner's group id */
134	__uint32_t	di_nlink;	/* number of links to file */
135	__uint16_t	di_projid_lo;	/* lower part of owner's project id */
136	__uint16_t	di_projid_hi;	/* higher part of owner's project id */
137	__uint8_t	di_pad[6];	/* unused, zeroed space */
138	__uint16_t	di_flushiter;	/* incremented on flush */
139	xfs_ictimestamp_t di_atime;	/* time last accessed */
140	xfs_ictimestamp_t di_mtime;	/* time last modified */
141	xfs_ictimestamp_t di_ctime;	/* time created/inode modified */
142	xfs_fsize_t	di_size;	/* number of bytes in file */
143	xfs_drfsbno_t	di_nblocks;	/* # of direct & btree blocks used */
144	xfs_extlen_t	di_extsize;	/* basic/minimum extent size for file */
145	xfs_extnum_t	di_nextents;	/* number of extents in data fork */
146	xfs_aextnum_t	di_anextents;	/* number of extents in attribute fork*/
147	__uint8_t	di_forkoff;	/* attr fork offs, <<3 for 64b align */
148	__int8_t	di_aformat;	/* format of attr fork's data */
149	__uint32_t	di_dmevmask;	/* DMIG event mask */
150	__uint16_t	di_dmstate;	/* DMIG state info */
151	__uint16_t	di_flags;	/* random flags, XFS_DIFLAG_... */
152	__uint32_t	di_gen;		/* generation number */
153} xfs_icdinode_t;
154
155/*
156 * Flags for xfs_ichgtime().
157 */
158#define	XFS_ICHGTIME_MOD	0x1	/* data fork modification timestamp */
159#define	XFS_ICHGTIME_CHG	0x2	/* inode field change timestamp */
160
161/*
162 * Per-fork incore inode flags.
163 */
164#define	XFS_IFINLINE	0x01	/* Inline data is read in */
165#define	XFS_IFEXTENTS	0x02	/* All extent pointers are read in */
166#define	XFS_IFBROOT	0x04	/* i_broot points to the bmap b-tree root */
167#define	XFS_IFEXTIREC	0x08	/* Indirection array of extent blocks */
168
169/*
170 * Fork handling.
171 */
172
173#define XFS_IFORK_Q(ip)			((ip)->i_d.di_forkoff != 0)
174#define XFS_IFORK_BOFF(ip)		((int)((ip)->i_d.di_forkoff << 3))
175
176#define XFS_IFORK_PTR(ip,w)		\
177	((w) == XFS_DATA_FORK ? \
178		&(ip)->i_df : \
179		(ip)->i_afp)
180#define XFS_IFORK_DSIZE(ip) \
181	(XFS_IFORK_Q(ip) ? \
182		XFS_IFORK_BOFF(ip) : \
183		XFS_LITINO((ip)->i_mount))
184#define XFS_IFORK_ASIZE(ip) \
185	(XFS_IFORK_Q(ip) ? \
186		XFS_LITINO((ip)->i_mount) - XFS_IFORK_BOFF(ip) : \
187		0)
188#define XFS_IFORK_SIZE(ip,w) \
189	((w) == XFS_DATA_FORK ? \
190		XFS_IFORK_DSIZE(ip) : \
191		XFS_IFORK_ASIZE(ip))
192#define XFS_IFORK_FORMAT(ip,w) \
193	((w) == XFS_DATA_FORK ? \
194		(ip)->i_d.di_format : \
195		(ip)->i_d.di_aformat)
196#define XFS_IFORK_FMT_SET(ip,w,n) \
197	((w) == XFS_DATA_FORK ? \
198		((ip)->i_d.di_format = (n)) : \
199		((ip)->i_d.di_aformat = (n)))
200#define XFS_IFORK_NEXTENTS(ip,w) \
201	((w) == XFS_DATA_FORK ? \
202		(ip)->i_d.di_nextents : \
203		(ip)->i_d.di_anextents)
204#define XFS_IFORK_NEXT_SET(ip,w,n) \
205	((w) == XFS_DATA_FORK ? \
206		((ip)->i_d.di_nextents = (n)) : \
207		((ip)->i_d.di_anextents = (n)))
208#define XFS_IFORK_MAXEXT(ip, w) \
209	(XFS_IFORK_SIZE(ip, w) / sizeof(xfs_bmbt_rec_t))
210
211
212#ifdef __KERNEL__
213
 
214struct xfs_buf;
215struct xfs_bmap_free;
216struct xfs_bmbt_irec;
217struct xfs_inode_log_item;
218struct xfs_mount;
219struct xfs_trans;
220struct xfs_dquot;
221
 
 
 
 
 
 
222typedef struct xfs_inode {
223	/* Inode linking and identification information. */
224	struct xfs_mount	*i_mount;	/* fs mount struct ptr */
225	struct xfs_dquot	*i_udquot;	/* user dquot */
226	struct xfs_dquot	*i_gdquot;	/* group dquot */
227
228	/* Inode location stuff */
229	xfs_ino_t		i_ino;		/* inode number (agno/agino)*/
230	struct xfs_imap		i_imap;		/* location for xfs_imap() */
231
232	/* Extent information. */
233	xfs_ifork_t		*i_afp;		/* attribute fork pointer */
234	xfs_ifork_t		i_df;		/* data fork */
235
236	/* Transaction and locking information. */
237	struct xfs_inode_log_item *i_itemp;	/* logging information */
238	mrlock_t		i_lock;		/* inode lock */
239	mrlock_t		i_iolock;	/* inode IO lock */
 
240	atomic_t		i_pincount;	/* inode pin count */
 
241	spinlock_t		i_flags_lock;	/* inode i_flags lock */
242	/* Miscellaneous state. */
243	unsigned long		i_flags;	/* see defined flags below */
 
244	unsigned int		i_delayed_blks;	/* count of delay alloc blks */
245
246	xfs_icdinode_t		i_d;		/* most of ondisk inode */
247
 
 
 
 
248	/* VFS inode */
249	struct inode		i_vnode;	/* embedded VFS inode */
250} xfs_inode_t;
251
 
 
 
252/* Convert from vfs inode to xfs inode */
253static inline struct xfs_inode *XFS_I(struct inode *inode)
254{
255	return container_of(inode, struct xfs_inode, i_vnode);
256}
257
258/* convert from xfs inode to vfs inode */
259static inline struct inode *VFS_I(struct xfs_inode *ip)
260{
261	return &ip->i_vnode;
262}
263
264/*
265 * For regular files we only update the on-disk filesize when actually
266 * writing data back to disk.  Until then only the copy in the VFS inode
267 * is uptodate.
268 */
269static inline xfs_fsize_t XFS_ISIZE(struct xfs_inode *ip)
270{
271	if (S_ISREG(ip->i_d.di_mode))
272		return i_size_read(VFS_I(ip));
273	return ip->i_d.di_size;
274}
275
276/*
277 * If this I/O goes past the on-disk inode size update it unless it would
278 * be past the current in-core inode size.
279 */
280static inline xfs_fsize_t
281xfs_new_eof(struct xfs_inode *ip, xfs_fsize_t new_size)
282{
283	xfs_fsize_t i_size = i_size_read(VFS_I(ip));
284
285	if (new_size > i_size)
286		new_size = i_size;
287	return new_size > ip->i_d.di_size ? new_size : 0;
288}
289
290/*
291 * i_flags helper functions
292 */
293static inline void
294__xfs_iflags_set(xfs_inode_t *ip, unsigned short flags)
295{
296	ip->i_flags |= flags;
297}
298
299static inline void
300xfs_iflags_set(xfs_inode_t *ip, unsigned short flags)
301{
302	spin_lock(&ip->i_flags_lock);
303	__xfs_iflags_set(ip, flags);
304	spin_unlock(&ip->i_flags_lock);
305}
306
307static inline void
308xfs_iflags_clear(xfs_inode_t *ip, unsigned short flags)
309{
310	spin_lock(&ip->i_flags_lock);
311	ip->i_flags &= ~flags;
312	spin_unlock(&ip->i_flags_lock);
313}
314
315static inline int
316__xfs_iflags_test(xfs_inode_t *ip, unsigned short flags)
317{
318	return (ip->i_flags & flags);
319}
320
321static inline int
322xfs_iflags_test(xfs_inode_t *ip, unsigned short flags)
323{
324	int ret;
325	spin_lock(&ip->i_flags_lock);
326	ret = __xfs_iflags_test(ip, flags);
327	spin_unlock(&ip->i_flags_lock);
328	return ret;
329}
330
331static inline int
332xfs_iflags_test_and_clear(xfs_inode_t *ip, unsigned short flags)
333{
334	int ret;
335
336	spin_lock(&ip->i_flags_lock);
337	ret = ip->i_flags & flags;
338	if (ret)
339		ip->i_flags &= ~flags;
340	spin_unlock(&ip->i_flags_lock);
341	return ret;
342}
343
344static inline int
345xfs_iflags_test_and_set(xfs_inode_t *ip, unsigned short flags)
346{
347	int ret;
348
349	spin_lock(&ip->i_flags_lock);
350	ret = ip->i_flags & flags;
351	if (!ret)
352		ip->i_flags |= flags;
353	spin_unlock(&ip->i_flags_lock);
354	return ret;
355}
356
357/*
358 * Project quota id helpers (previously projid was 16bit only
359 * and using two 16bit values to hold new 32bit projid was chosen
360 * to retain compatibility with "old" filesystems).
361 */
362static inline prid_t
363xfs_get_projid(struct xfs_inode *ip)
364{
365	return (prid_t)ip->i_d.di_projid_hi << 16 | ip->i_d.di_projid_lo;
366}
367
368static inline void
369xfs_set_projid(struct xfs_inode *ip,
370		prid_t projid)
371{
372	ip->i_d.di_projid_hi = (__uint16_t) (projid >> 16);
373	ip->i_d.di_projid_lo = (__uint16_t) (projid & 0xffff);
374}
375
376/*
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
377 * In-core inode flags.
378 */
379#define XFS_IRECLAIM		(1 << 0) /* started reclaiming this inode */
380#define XFS_ISTALE		(1 << 1) /* inode has been staled */
381#define XFS_IRECLAIMABLE	(1 << 2) /* inode can be reclaimed */
382#define XFS_INEW		(1 << 3) /* inode has just been allocated */
383#define XFS_IFILESTREAM		(1 << 4) /* inode is in a filestream dir. */
384#define XFS_ITRUNCATED		(1 << 5) /* truncated down so flush-on-close */
385#define XFS_IDIRTY_RELEASE	(1 << 6) /* dirty release already seen */
386#define __XFS_IFLOCK_BIT	7	 /* inode is being flushed right now */
387#define XFS_IFLOCK		(1 << __XFS_IFLOCK_BIT)
388#define __XFS_IPINNED_BIT	8	 /* wakeup key for zero pin count */
389#define XFS_IPINNED		(1 << __XFS_IPINNED_BIT)
390#define XFS_IDONTCACHE		(1 << 9) /* don't cache the inode long term */
391
392/*
393 * Per-lifetime flags need to be reset when re-using a reclaimable inode during
394 * inode lookup. This prevents unintended behaviour on the new inode from
395 * ocurring.
396 */
397#define XFS_IRECLAIM_RESET_FLAGS	\
398	(XFS_IRECLAIMABLE | XFS_IRECLAIM | \
399	 XFS_IDIRTY_RELEASE | XFS_ITRUNCATED | \
400	 XFS_IFILESTREAM);
401
402/*
403 * Synchronize processes attempting to flush the in-core inode back to disk.
404 */
405
406extern void __xfs_iflock(struct xfs_inode *ip);
407
408static inline int xfs_iflock_nowait(struct xfs_inode *ip)
409{
410	return !xfs_iflags_test_and_set(ip, XFS_IFLOCK);
411}
412
413static inline void xfs_iflock(struct xfs_inode *ip)
414{
415	if (!xfs_iflock_nowait(ip))
416		__xfs_iflock(ip);
417}
418
419static inline void xfs_ifunlock(struct xfs_inode *ip)
420{
421	xfs_iflags_clear(ip, XFS_IFLOCK);
422	wake_up_bit(&ip->i_flags, __XFS_IFLOCK_BIT);
423}
424
425static inline int xfs_isiflocked(struct xfs_inode *ip)
426{
427	return xfs_iflags_test(ip, XFS_IFLOCK);
428}
429
430/*
431 * Flags for inode locking.
432 * Bit ranges:	1<<1  - 1<<16-1 -- iolock/ilock modes (bitfield)
433 *		1<<16 - 1<<32-1 -- lockdep annotation (integers)
434 */
435#define	XFS_IOLOCK_EXCL		(1<<0)
436#define	XFS_IOLOCK_SHARED	(1<<1)
437#define	XFS_ILOCK_EXCL		(1<<2)
438#define	XFS_ILOCK_SHARED	(1<<3)
 
439
440#define XFS_LOCK_MASK		(XFS_IOLOCK_EXCL | XFS_IOLOCK_SHARED \
441				| XFS_ILOCK_EXCL | XFS_ILOCK_SHARED)
442
443#define XFS_LOCK_FLAGS \
444	{ XFS_IOLOCK_EXCL,	"IOLOCK_EXCL" }, \
445	{ XFS_IOLOCK_SHARED,	"IOLOCK_SHARED" }, \
446	{ XFS_ILOCK_EXCL,	"ILOCK_EXCL" }, \
447	{ XFS_ILOCK_SHARED,	"ILOCK_SHARED" }
 
448
449
450/*
451 * Flags for lockdep annotations.
452 *
453 * XFS_LOCK_PARENT - for directory operations that require locking a
454 * parent directory inode and a child entry inode.  The parent gets locked
455 * with this flag so it gets a lockdep subclass of 1 and the child entry
456 * lock will have a lockdep subclass of 0.
457 *
458 * XFS_LOCK_RTBITMAP/XFS_LOCK_RTSUM - the realtime device bitmap and summary
459 * inodes do not participate in the normal lock order, and thus have their
460 * own subclasses.
461 *
462 * XFS_LOCK_INUMORDER - for locking several inodes at the some time
463 * with xfs_lock_inodes().  This flag is used as the starting subclass
464 * and each subsequent lock acquired will increment the subclass by one.
465 * So the first lock acquired will have a lockdep subclass of 4, the
466 * second lock will have a lockdep subclass of 5, and so on. It is
467 * the responsibility of the class builder to shift this to the correct
468 * portion of the lock_mode lockdep mask.
469 */
470#define XFS_LOCK_PARENT		1
471#define XFS_LOCK_RTBITMAP	2
472#define XFS_LOCK_RTSUM		3
473#define XFS_LOCK_INUMORDER	4
474
475#define XFS_IOLOCK_SHIFT	16
476#define	XFS_IOLOCK_PARENT	(XFS_LOCK_PARENT << XFS_IOLOCK_SHIFT)
477
478#define XFS_ILOCK_SHIFT		24
479#define	XFS_ILOCK_PARENT	(XFS_LOCK_PARENT << XFS_ILOCK_SHIFT)
480#define	XFS_ILOCK_RTBITMAP	(XFS_LOCK_RTBITMAP << XFS_ILOCK_SHIFT)
481#define	XFS_ILOCK_RTSUM		(XFS_LOCK_RTSUM << XFS_ILOCK_SHIFT)
482
483#define XFS_IOLOCK_DEP_MASK	0x00ff0000
484#define XFS_ILOCK_DEP_MASK	0xff000000
485#define XFS_LOCK_DEP_MASK	(XFS_IOLOCK_DEP_MASK | XFS_ILOCK_DEP_MASK)
486
487#define XFS_IOLOCK_DEP(flags)	(((flags) & XFS_IOLOCK_DEP_MASK) >> XFS_IOLOCK_SHIFT)
488#define XFS_ILOCK_DEP(flags)	(((flags) & XFS_ILOCK_DEP_MASK) >> XFS_ILOCK_SHIFT)
489
490extern struct lock_class_key xfs_iolock_reclaimable;
491
492/*
493 * For multiple groups support: if S_ISGID bit is set in the parent
494 * directory, group of new file is set to that of the parent, and
495 * new subdirectory gets S_ISGID bit from parent.
496 */
497#define XFS_INHERIT_GID(pip)	\
498	(((pip)->i_mount->m_flags & XFS_MOUNT_GRPID) || \
499	 ((pip)->i_d.di_mode & S_ISGID))
500
501/*
502 * xfs_iget.c prototypes.
503 */
504int		xfs_iget(struct xfs_mount *, struct xfs_trans *, xfs_ino_t,
505			 uint, uint, xfs_inode_t **);
506void		xfs_ilock(xfs_inode_t *, uint);
507int		xfs_ilock_nowait(xfs_inode_t *, uint);
508void		xfs_iunlock(xfs_inode_t *, uint);
509void		xfs_ilock_demote(xfs_inode_t *, uint);
510int		xfs_isilocked(xfs_inode_t *, uint);
511uint		xfs_ilock_map_shared(xfs_inode_t *);
512void		xfs_iunlock_map_shared(xfs_inode_t *, uint);
513void		xfs_inode_free(struct xfs_inode *ip);
514
515/*
516 * xfs_inode.c prototypes.
517 */
518int		xfs_ialloc(struct xfs_trans *, xfs_inode_t *, umode_t,
519			   xfs_nlink_t, xfs_dev_t, prid_t, int,
520			   struct xfs_buf **, boolean_t *, xfs_inode_t **);
521
522uint		xfs_ip2xflags(struct xfs_inode *);
523uint		xfs_dic2xflags(struct xfs_dinode *);
524int		xfs_ifree(struct xfs_trans *, xfs_inode_t *,
525			   struct xfs_bmap_free *);
526int		xfs_itruncate_extents(struct xfs_trans **, struct xfs_inode *,
527				      int, xfs_fsize_t);
 
 
528int		xfs_iunlink(struct xfs_trans *, xfs_inode_t *);
529
530void		xfs_iext_realloc(xfs_inode_t *, int, int);
531void		xfs_iunpin_wait(xfs_inode_t *);
532int		xfs_iflush(struct xfs_inode *, struct xfs_buf **);
533void		xfs_lock_inodes(xfs_inode_t **, int, uint);
534void		xfs_lock_two_inodes(xfs_inode_t *, xfs_inode_t *, uint);
535
536xfs_extlen_t	xfs_get_extsz_hint(struct xfs_inode *ip);
 
 
537
538#define IHOLD(ip) \
539do { \
540	ASSERT(atomic_read(&VFS_I(ip)->i_count) > 0) ; \
541	ihold(VFS_I(ip)); \
542	trace_xfs_ihold(ip, _THIS_IP_); \
543} while (0)
544
545#define IRELE(ip) \
546do { \
547	trace_xfs_irele(ip, _THIS_IP_); \
548	iput(VFS_I(ip)); \
549} while (0)
550
551#endif /* __KERNEL__ */
552
553/*
554 * Flags for xfs_iget()
555 */
556#define XFS_IGET_CREATE		0x1
557#define XFS_IGET_UNTRUSTED	0x2
558#define XFS_IGET_DONTCACHE	0x4
559
560int		xfs_inotobp(struct xfs_mount *, struct xfs_trans *,
561			    xfs_ino_t, struct xfs_dinode **,
562			    struct xfs_buf **, int *, uint);
563int		xfs_itobp(struct xfs_mount *, struct xfs_trans *,
564			  struct xfs_inode *, struct xfs_dinode **,
565			  struct xfs_buf **, uint);
566int		xfs_iread(struct xfs_mount *, struct xfs_trans *,
567			  struct xfs_inode *, uint);
568void		xfs_dinode_to_disk(struct xfs_dinode *,
569				   struct xfs_icdinode *);
570void		xfs_idestroy_fork(struct xfs_inode *, int);
571void		xfs_idata_realloc(struct xfs_inode *, int, int);
572void		xfs_iroot_realloc(struct xfs_inode *, int, int);
573int		xfs_iread_extents(struct xfs_trans *, struct xfs_inode *, int);
574int		xfs_iextents_copy(struct xfs_inode *, xfs_bmbt_rec_t *, int);
575
576xfs_bmbt_rec_host_t *xfs_iext_get_ext(xfs_ifork_t *, xfs_extnum_t);
577void		xfs_iext_insert(xfs_inode_t *, xfs_extnum_t, xfs_extnum_t,
578				xfs_bmbt_irec_t *, int);
579void		xfs_iext_add(xfs_ifork_t *, xfs_extnum_t, int);
580void		xfs_iext_add_indirect_multi(xfs_ifork_t *, int, xfs_extnum_t, int);
581void		xfs_iext_remove(xfs_inode_t *, xfs_extnum_t, int, int);
582void		xfs_iext_remove_inline(xfs_ifork_t *, xfs_extnum_t, int);
583void		xfs_iext_remove_direct(xfs_ifork_t *, xfs_extnum_t, int);
584void		xfs_iext_remove_indirect(xfs_ifork_t *, xfs_extnum_t, int);
585void		xfs_iext_realloc_direct(xfs_ifork_t *, int);
586void		xfs_iext_direct_to_inline(xfs_ifork_t *, xfs_extnum_t);
587void		xfs_iext_inline_to_direct(xfs_ifork_t *, int);
588void		xfs_iext_destroy(xfs_ifork_t *);
589xfs_bmbt_rec_host_t *xfs_iext_bno_to_ext(xfs_ifork_t *, xfs_fileoff_t, int *);
590xfs_ext_irec_t	*xfs_iext_bno_to_irec(xfs_ifork_t *, xfs_fileoff_t, int *);
591xfs_ext_irec_t	*xfs_iext_idx_to_irec(xfs_ifork_t *, xfs_extnum_t *, int *, int);
592void		xfs_iext_irec_init(xfs_ifork_t *);
593xfs_ext_irec_t *xfs_iext_irec_new(xfs_ifork_t *, int);
594void		xfs_iext_irec_remove(xfs_ifork_t *, int);
595void		xfs_iext_irec_compact(xfs_ifork_t *);
596void		xfs_iext_irec_compact_pages(xfs_ifork_t *);
597void		xfs_iext_irec_compact_full(xfs_ifork_t *);
598void		xfs_iext_irec_update_extoffs(xfs_ifork_t *, int, int);
599
600#define xfs_ipincount(ip)	((unsigned int) atomic_read(&ip->i_pincount))
601
602#if defined(DEBUG)
603void		xfs_inobp_check(struct xfs_mount *, struct xfs_buf *);
604#else
605#define	xfs_inobp_check(mp, bp)
606#endif /* DEBUG */
607
608extern struct kmem_zone	*xfs_ifork_zone;
609extern struct kmem_zone	*xfs_inode_zone;
610extern struct kmem_zone	*xfs_ili_zone;
611
612#endif	/* __XFS_INODE_H__ */