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fs.h revision 1.1.1.2
      1      1.1  mycroft /*
      2      1.1  mycroft  * Copyright (c) 1982, 1986, 1993
      3      1.1  mycroft  *	The Regents of the University of California.  All rights reserved.
      4      1.1  mycroft  *
      5      1.1  mycroft  * Redistribution and use in source and binary forms, with or without
      6      1.1  mycroft  * modification, are permitted provided that the following conditions
      7      1.1  mycroft  * are met:
      8      1.1  mycroft  * 1. Redistributions of source code must retain the above copyright
      9      1.1  mycroft  *    notice, this list of conditions and the following disclaimer.
     10      1.1  mycroft  * 2. Redistributions in binary form must reproduce the above copyright
     11      1.1  mycroft  *    notice, this list of conditions and the following disclaimer in the
     12      1.1  mycroft  *    documentation and/or other materials provided with the distribution.
     13      1.1  mycroft  * 3. All advertising materials mentioning features or use of this software
     14      1.1  mycroft  *    must display the following acknowledgement:
     15      1.1  mycroft  *	This product includes software developed by the University of
     16      1.1  mycroft  *	California, Berkeley and its contributors.
     17      1.1  mycroft  * 4. Neither the name of the University nor the names of its contributors
     18      1.1  mycroft  *    may be used to endorse or promote products derived from this software
     19      1.1  mycroft  *    without specific prior written permission.
     20      1.1  mycroft  *
     21      1.1  mycroft  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     22      1.1  mycroft  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     23      1.1  mycroft  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     24      1.1  mycroft  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     25      1.1  mycroft  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     26      1.1  mycroft  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     27      1.1  mycroft  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     28      1.1  mycroft  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     29      1.1  mycroft  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     30      1.1  mycroft  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     31      1.1  mycroft  * SUCH DAMAGE.
     32      1.1  mycroft  *
     33  1.1.1.2     fvdl  *	@(#)fs.h	8.13 (Berkeley) 3/21/95
     34      1.1  mycroft  */
     35      1.1  mycroft 
     36      1.1  mycroft /*
     37      1.1  mycroft  * Each disk drive contains some number of file systems.
     38      1.1  mycroft  * A file system consists of a number of cylinder groups.
     39      1.1  mycroft  * Each cylinder group has inodes and data.
     40      1.1  mycroft  *
     41      1.1  mycroft  * A file system is described by its super-block, which in turn
     42      1.1  mycroft  * describes the cylinder groups.  The super-block is critical
     43      1.1  mycroft  * data and is replicated in each cylinder group to protect against
     44      1.1  mycroft  * catastrophic loss.  This is done at `newfs' time and the critical
     45      1.1  mycroft  * super-block data does not change, so the copies need not be
     46      1.1  mycroft  * referenced further unless disaster strikes.
     47      1.1  mycroft  *
     48      1.1  mycroft  * For file system fs, the offsets of the various blocks of interest
     49      1.1  mycroft  * are given in the super block as:
     50      1.1  mycroft  *	[fs->fs_sblkno]		Super-block
     51      1.1  mycroft  *	[fs->fs_cblkno]		Cylinder group block
     52      1.1  mycroft  *	[fs->fs_iblkno]		Inode blocks
     53      1.1  mycroft  *	[fs->fs_dblkno]		Data blocks
     54      1.1  mycroft  * The beginning of cylinder group cg in fs, is given by
     55      1.1  mycroft  * the ``cgbase(fs, cg)'' macro.
     56      1.1  mycroft  *
     57      1.1  mycroft  * The first boot and super blocks are given in absolute disk addresses.
     58      1.1  mycroft  * The byte-offset forms are preferred, as they don't imply a sector size.
     59      1.1  mycroft  */
     60      1.1  mycroft #define BBSIZE		8192
     61      1.1  mycroft #define SBSIZE		8192
     62      1.1  mycroft #define	BBOFF		((off_t)(0))
     63      1.1  mycroft #define	SBOFF		((off_t)(BBOFF + BBSIZE))
     64  1.1.1.2     fvdl #define	BBLOCK		((ufs_daddr_t)(0))
     65  1.1.1.2     fvdl #define	SBLOCK		((ufs_daddr_t)(BBLOCK + BBSIZE / DEV_BSIZE))
     66      1.1  mycroft 
     67      1.1  mycroft /*
     68      1.1  mycroft  * Addresses stored in inodes are capable of addressing fragments
     69      1.1  mycroft  * of `blocks'. File system blocks of at most size MAXBSIZE can
     70      1.1  mycroft  * be optionally broken into 2, 4, or 8 pieces, each of which is
     71      1.1  mycroft  * addressible; these pieces may be DEV_BSIZE, or some multiple of
     72      1.1  mycroft  * a DEV_BSIZE unit.
     73      1.1  mycroft  *
     74      1.1  mycroft  * Large files consist of exclusively large data blocks.  To avoid
     75      1.1  mycroft  * undue wasted disk space, the last data block of a small file may be
     76      1.1  mycroft  * allocated as only as many fragments of a large block as are
     77      1.1  mycroft  * necessary.  The file system format retains only a single pointer
     78      1.1  mycroft  * to such a fragment, which is a piece of a single large block that
     79      1.1  mycroft  * has been divided.  The size of such a fragment is determinable from
     80      1.1  mycroft  * information in the inode, using the ``blksize(fs, ip, lbn)'' macro.
     81      1.1  mycroft  *
     82      1.1  mycroft  * The file system records space availability at the fragment level;
     83      1.1  mycroft  * to determine block availability, aligned fragments are examined.
     84      1.1  mycroft  */
     85      1.1  mycroft 
     86      1.1  mycroft /*
     87      1.1  mycroft  * MINBSIZE is the smallest allowable block size.
     88      1.1  mycroft  * In order to insure that it is possible to create files of size
     89      1.1  mycroft  * 2^32 with only two levels of indirection, MINBSIZE is set to 4096.
     90      1.1  mycroft  * MINBSIZE must be big enough to hold a cylinder group block,
     91      1.1  mycroft  * thus changes to (struct cg) must keep its size within MINBSIZE.
     92      1.1  mycroft  * Note that super blocks are always of size SBSIZE,
     93      1.1  mycroft  * and that both SBSIZE and MAXBSIZE must be >= MINBSIZE.
     94      1.1  mycroft  */
     95      1.1  mycroft #define MINBSIZE	4096
     96      1.1  mycroft 
     97      1.1  mycroft /*
     98      1.1  mycroft  * The path name on which the file system is mounted is maintained
     99      1.1  mycroft  * in fs_fsmnt. MAXMNTLEN defines the amount of space allocated in
    100      1.1  mycroft  * the super block for this name.
    101  1.1.1.2     fvdl  */
    102  1.1.1.2     fvdl #define MAXMNTLEN	512
    103  1.1.1.2     fvdl 
    104  1.1.1.2     fvdl /*
    105      1.1  mycroft  * The limit on the amount of summary information per file system
    106      1.1  mycroft  * is defined by MAXCSBUFS. It is currently parameterized for a
    107  1.1.1.2     fvdl  * size of 128 bytes (2 million cylinder groups on machines with
    108  1.1.1.2     fvdl  * 32-bit pointers, and 1 million on 64-bit machines). One pointer
    109  1.1.1.2     fvdl  * is taken away to point to an array of cluster sizes that is
    110  1.1.1.2     fvdl  * computed as cylinder groups are inspected.
    111      1.1  mycroft  */
    112  1.1.1.2     fvdl #define	MAXCSBUFS	((128 / sizeof(void *)) - 1)
    113      1.1  mycroft 
    114      1.1  mycroft /*
    115      1.1  mycroft  * A summary of contiguous blocks of various sizes is maintained
    116      1.1  mycroft  * in each cylinder group. Normally this is set by the initial
    117      1.1  mycroft  * value of fs_maxcontig. To conserve space, a maximum summary size
    118      1.1  mycroft  * is set by FS_MAXCONTIG.
    119      1.1  mycroft  */
    120      1.1  mycroft #define FS_MAXCONTIG	16
    121      1.1  mycroft 
    122      1.1  mycroft /*
    123      1.1  mycroft  * MINFREE gives the minimum acceptable percentage of file system
    124      1.1  mycroft  * blocks which may be free. If the freelist drops below this level
    125      1.1  mycroft  * only the superuser may continue to allocate blocks. This may
    126      1.1  mycroft  * be set to 0 if no reserve of free blocks is deemed necessary,
    127      1.1  mycroft  * however throughput drops by fifty percent if the file system
    128      1.1  mycroft  * is run at between 95% and 100% full; thus the minimum default
    129      1.1  mycroft  * value of fs_minfree is 5%. However, to get good clustering
    130      1.1  mycroft  * performance, 10% is a better choice. hence we use 10% as our
    131      1.1  mycroft  * default value. With 10% free space, fragmentation is not a
    132      1.1  mycroft  * problem, so we choose to optimize for time.
    133      1.1  mycroft  */
    134      1.1  mycroft #define MINFREE		5
    135      1.1  mycroft #define DEFAULTOPT	FS_OPTTIME
    136      1.1  mycroft 
    137      1.1  mycroft /*
    138      1.1  mycroft  * Per cylinder group information; summarized in blocks allocated
    139      1.1  mycroft  * from first cylinder group data blocks.  These blocks have to be
    140      1.1  mycroft  * read in from fs_csaddr (size fs_cssize) in addition to the
    141      1.1  mycroft  * super block.
    142      1.1  mycroft  *
    143      1.1  mycroft  * N.B. sizeof(struct csum) must be a power of two in order for
    144      1.1  mycroft  * the ``fs_cs'' macro to work (see below).
    145      1.1  mycroft  */
    146      1.1  mycroft struct csum {
    147  1.1.1.2     fvdl 	int32_t	cs_ndir;		/* number of directories */
    148  1.1.1.2     fvdl 	int32_t	cs_nbfree;		/* number of free blocks */
    149  1.1.1.2     fvdl 	int32_t	cs_nifree;		/* number of free inodes */
    150  1.1.1.2     fvdl 	int32_t	cs_nffree;		/* number of free frags */
    151      1.1  mycroft };
    152      1.1  mycroft 
    153      1.1  mycroft /*
    154  1.1.1.2     fvdl  * Super block for an FFS file system.
    155      1.1  mycroft  */
    156      1.1  mycroft struct fs {
    157  1.1.1.2     fvdl 	int32_t	 fs_firstfield;		/* historic file system linked list, */
    158  1.1.1.2     fvdl 	int32_t	 fs_unused_1;		/*     used for incore super blocks */
    159  1.1.1.2     fvdl 	ufs_daddr_t fs_sblkno;		/* addr of super-block in filesys */
    160  1.1.1.2     fvdl 	ufs_daddr_t fs_cblkno;		/* offset of cyl-block in filesys */
    161  1.1.1.2     fvdl 	ufs_daddr_t fs_iblkno;		/* offset of inode-blocks in filesys */
    162  1.1.1.2     fvdl 	ufs_daddr_t fs_dblkno;		/* offset of first data after cg */
    163  1.1.1.2     fvdl 	int32_t	 fs_cgoffset;		/* cylinder group offset in cylinder */
    164  1.1.1.2     fvdl 	int32_t	 fs_cgmask;		/* used to calc mod fs_ntrak */
    165  1.1.1.2     fvdl 	time_t 	 fs_time;		/* last time written */
    166  1.1.1.2     fvdl 	int32_t	 fs_size;		/* number of blocks in fs */
    167  1.1.1.2     fvdl 	int32_t	 fs_dsize;		/* number of data blocks in fs */
    168  1.1.1.2     fvdl 	int32_t	 fs_ncg;		/* number of cylinder groups */
    169  1.1.1.2     fvdl 	int32_t	 fs_bsize;		/* size of basic blocks in fs */
    170  1.1.1.2     fvdl 	int32_t	 fs_fsize;		/* size of frag blocks in fs */
    171  1.1.1.2     fvdl 	int32_t	 fs_frag;		/* number of frags in a block in fs */
    172      1.1  mycroft /* these are configuration parameters */
    173  1.1.1.2     fvdl 	int32_t	 fs_minfree;		/* minimum percentage of free blocks */
    174  1.1.1.2     fvdl 	int32_t	 fs_rotdelay;		/* num of ms for optimal next block */
    175  1.1.1.2     fvdl 	int32_t	 fs_rps;		/* disk revolutions per second */
    176      1.1  mycroft /* these fields can be computed from the others */
    177  1.1.1.2     fvdl 	int32_t	 fs_bmask;		/* ``blkoff'' calc of blk offsets */
    178  1.1.1.2     fvdl 	int32_t	 fs_fmask;		/* ``fragoff'' calc of frag offsets */
    179  1.1.1.2     fvdl 	int32_t	 fs_bshift;		/* ``lblkno'' calc of logical blkno */
    180  1.1.1.2     fvdl 	int32_t	 fs_fshift;		/* ``numfrags'' calc number of frags */
    181      1.1  mycroft /* these are configuration parameters */
    182  1.1.1.2     fvdl 	int32_t	 fs_maxcontig;		/* max number of contiguous blks */
    183  1.1.1.2     fvdl 	int32_t	 fs_maxbpg;		/* max number of blks per cyl group */
    184      1.1  mycroft /* these fields can be computed from the others */
    185  1.1.1.2     fvdl 	int32_t	 fs_fragshift;		/* block to frag shift */
    186  1.1.1.2     fvdl 	int32_t	 fs_fsbtodb;		/* fsbtodb and dbtofsb shift constant */
    187  1.1.1.2     fvdl 	int32_t	 fs_sbsize;		/* actual size of super block */
    188  1.1.1.2     fvdl 	int32_t	 fs_csmask;		/* csum block offset */
    189  1.1.1.2     fvdl 	int32_t	 fs_csshift;		/* csum block number */
    190  1.1.1.2     fvdl 	int32_t	 fs_nindir;		/* value of NINDIR */
    191  1.1.1.2     fvdl 	int32_t	 fs_inopb;		/* value of INOPB */
    192  1.1.1.2     fvdl 	int32_t	 fs_nspf;		/* value of NSPF */
    193      1.1  mycroft /* yet another configuration parameter */
    194  1.1.1.2     fvdl 	int32_t	 fs_optim;		/* optimization preference, see below */
    195      1.1  mycroft /* these fields are derived from the hardware */
    196  1.1.1.2     fvdl 	int32_t	 fs_npsect;		/* # sectors/track including spares */
    197  1.1.1.2     fvdl 	int32_t	 fs_interleave;		/* hardware sector interleave */
    198  1.1.1.2     fvdl 	int32_t	 fs_trackskew;		/* sector 0 skew, per track */
    199  1.1.1.2     fvdl 	int32_t	 fs_headswitch;		/* head switch time, usec */
    200  1.1.1.2     fvdl 	int32_t	 fs_trkseek;		/* track-to-track seek, usec */
    201      1.1  mycroft /* sizes determined by number of cylinder groups and their sizes */
    202  1.1.1.2     fvdl 	ufs_daddr_t fs_csaddr;		/* blk addr of cyl grp summary area */
    203  1.1.1.2     fvdl 	int32_t	 fs_cssize;		/* size of cyl grp summary area */
    204  1.1.1.2     fvdl 	int32_t	 fs_cgsize;		/* cylinder group size */
    205      1.1  mycroft /* these fields are derived from the hardware */
    206  1.1.1.2     fvdl 	int32_t	 fs_ntrak;		/* tracks per cylinder */
    207  1.1.1.2     fvdl 	int32_t	 fs_nsect;		/* sectors per track */
    208  1.1.1.2     fvdl 	int32_t  fs_spc;			/* sectors per cylinder */
    209      1.1  mycroft /* this comes from the disk driver partitioning */
    210  1.1.1.2     fvdl 	int32_t	 fs_ncyl;		/* cylinders in file system */
    211      1.1  mycroft /* these fields can be computed from the others */
    212  1.1.1.2     fvdl 	int32_t	 fs_cpg;			/* cylinders per group */
    213  1.1.1.2     fvdl 	int32_t	 fs_ipg;			/* inodes per group */
    214  1.1.1.2     fvdl 	int32_t	 fs_fpg;			/* blocks per group * fs_frag */
    215      1.1  mycroft /* this data must be re-computed after crashes */
    216      1.1  mycroft 	struct	csum fs_cstotal;	/* cylinder summary information */
    217      1.1  mycroft /* these fields are cleared at mount time */
    218  1.1.1.2     fvdl 	int8_t   fs_fmod;		/* super block modified flag */
    219  1.1.1.2     fvdl 	int8_t   fs_clean;		/* file system is clean flag */
    220  1.1.1.2     fvdl 	int8_t 	 fs_ronly;		/* mounted read-only flag */
    221  1.1.1.2     fvdl 	int8_t   fs_flags;		/* currently unused flag */
    222  1.1.1.2     fvdl 	u_char	 fs_fsmnt[MAXMNTLEN];	/* name mounted on */
    223      1.1  mycroft /* these fields retain the current block allocation info */
    224  1.1.1.2     fvdl 	int32_t	 fs_cgrotor;		/* last cg searched */
    225      1.1  mycroft 	struct	csum *fs_csp[MAXCSBUFS];/* list of fs_cs info buffers */
    226  1.1.1.2     fvdl 	int32_t	 *fs_maxcluster;	/* max cluster in each cyl group */
    227  1.1.1.2     fvdl 	int32_t	 fs_cpc;		/* cyl per cycle in postbl */
    228  1.1.1.2     fvdl 	int16_t	 fs_opostbl[16][8];	/* old rotation block list head */
    229  1.1.1.2     fvdl 	int32_t	 fs_sparecon[50];	/* reserved for future constants */
    230  1.1.1.2     fvdl 	int32_t	 fs_contigsumsize;	/* size of cluster summary array */
    231  1.1.1.2     fvdl 	int32_t	 fs_maxsymlinklen;	/* max length of an internal symlink */
    232  1.1.1.2     fvdl 	int32_t	 fs_inodefmt;		/* format of on-disk inodes */
    233  1.1.1.2     fvdl 	u_int64_t fs_maxfilesize;	/* maximum representable file size */
    234  1.1.1.2     fvdl 	int64_t	 fs_qbmask;		/* ~fs_bmask for use with 64-bit size */
    235  1.1.1.2     fvdl 	int64_t	 fs_qfmask;		/* ~fs_fmask for use with 64-bit size */
    236  1.1.1.2     fvdl 	int32_t	 fs_state;		/* validate fs_clean field */
    237  1.1.1.2     fvdl 	int32_t	 fs_postblformat;	/* format of positional layout tables */
    238  1.1.1.2     fvdl 	int32_t	 fs_nrpos;		/* number of rotational positions */
    239  1.1.1.2     fvdl 	int32_t	 fs_postbloff;		/* (u_int16) rotation block list head */
    240  1.1.1.2     fvdl 	int32_t	 fs_rotbloff;		/* (u_int8) blocks for each rotation */
    241  1.1.1.2     fvdl 	int32_t	 fs_magic;		/* magic number */
    242  1.1.1.2     fvdl 	u_int8_t fs_space[1];		/* list of blocks for each rotation */
    243      1.1  mycroft /* actually longer */
    244      1.1  mycroft };
    245  1.1.1.2     fvdl 
    246      1.1  mycroft /*
    247  1.1.1.2     fvdl  * Filesystem identification
    248      1.1  mycroft  */
    249      1.1  mycroft #define	FS_MAGIC	0x011954	/* the fast filesystem magic number */
    250      1.1  mycroft #define	FS_OKAY		0x7c269d38	/* superblock checksum */
    251      1.1  mycroft #define FS_42INODEFMT	-1		/* 4.2BSD inode format */
    252      1.1  mycroft #define FS_44INODEFMT	2		/* 4.4BSD inode format */
    253      1.1  mycroft /*
    254      1.1  mycroft  * Preference for optimization.
    255      1.1  mycroft  */
    256      1.1  mycroft #define FS_OPTTIME	0	/* minimize allocation time */
    257      1.1  mycroft #define FS_OPTSPACE	1	/* minimize disk fragmentation */
    258      1.1  mycroft 
    259      1.1  mycroft /*
    260      1.1  mycroft  * Rotational layout table format types
    261      1.1  mycroft  */
    262      1.1  mycroft #define FS_42POSTBLFMT		-1	/* 4.2BSD rotational table format */
    263      1.1  mycroft #define FS_DYNAMICPOSTBLFMT	1	/* dynamic rotational table format */
    264      1.1  mycroft /*
    265      1.1  mycroft  * Macros for access to superblock array structures
    266      1.1  mycroft  */
    267      1.1  mycroft #define fs_postbl(fs, cylno) \
    268      1.1  mycroft     (((fs)->fs_postblformat == FS_42POSTBLFMT) \
    269      1.1  mycroft     ? ((fs)->fs_opostbl[cylno]) \
    270  1.1.1.2     fvdl     : ((int16_t *)((u_int8_t *)(fs) + \
    271  1.1.1.2     fvdl 	(fs)->fs_postbloff) + (cylno) * (fs)->fs_nrpos))
    272      1.1  mycroft #define fs_rotbl(fs) \
    273      1.1  mycroft     (((fs)->fs_postblformat == FS_42POSTBLFMT) \
    274      1.1  mycroft     ? ((fs)->fs_space) \
    275  1.1.1.2     fvdl     : ((u_int8_t *)((u_int8_t *)(fs) + (fs)->fs_rotbloff)))
    276      1.1  mycroft 
    277      1.1  mycroft /*
    278      1.1  mycroft  * The size of a cylinder group is calculated by CGSIZE. The maximum size
    279      1.1  mycroft  * is limited by the fact that cylinder groups are at most one block.
    280      1.1  mycroft  * Its size is derived from the size of the maps maintained in the
    281      1.1  mycroft  * cylinder group and the (struct cg) size.
    282      1.1  mycroft  */
    283      1.1  mycroft #define CGSIZE(fs) \
    284  1.1.1.2     fvdl     /* base cg */	(sizeof(struct cg) + sizeof(int32_t) + \
    285  1.1.1.2     fvdl     /* blktot size */	(fs)->fs_cpg * sizeof(int32_t) + \
    286  1.1.1.2     fvdl     /* blks size */	(fs)->fs_cpg * (fs)->fs_nrpos * sizeof(int16_t) + \
    287      1.1  mycroft     /* inode map */	howmany((fs)->fs_ipg, NBBY) + \
    288      1.1  mycroft     /* block map */	howmany((fs)->fs_cpg * (fs)->fs_spc / NSPF(fs), NBBY) +\
    289      1.1  mycroft     /* if present */	((fs)->fs_contigsumsize <= 0 ? 0 : \
    290  1.1.1.2     fvdl     /* cluster sum */	(fs)->fs_contigsumsize * sizeof(int32_t) + \
    291      1.1  mycroft     /* cluster map */	howmany((fs)->fs_cpg * (fs)->fs_spc / NSPB(fs), NBBY)))
    292      1.1  mycroft 
    293      1.1  mycroft /*
    294      1.1  mycroft  * Convert cylinder group to base address of its global summary info.
    295      1.1  mycroft  *
    296      1.1  mycroft  * N.B. This macro assumes that sizeof(struct csum) is a power of two.
    297      1.1  mycroft  */
    298      1.1  mycroft #define fs_cs(fs, indx) \
    299      1.1  mycroft 	fs_csp[(indx) >> (fs)->fs_csshift][(indx) & ~(fs)->fs_csmask]
    300      1.1  mycroft 
    301      1.1  mycroft /*
    302      1.1  mycroft  * Cylinder group block for a file system.
    303      1.1  mycroft  */
    304      1.1  mycroft #define	CG_MAGIC	0x090255
    305  1.1.1.2     fvdl struct cg {
    306  1.1.1.2     fvdl 	int32_t	 cg_firstfield;		/* historic cyl groups linked list */
    307  1.1.1.2     fvdl 	int32_t	 cg_magic;		/* magic number */
    308  1.1.1.2     fvdl 	time_t	 cg_time;		/* time last written */
    309  1.1.1.2     fvdl 	int32_t	 cg_cgx;		/* we are the cgx'th cylinder group */
    310  1.1.1.2     fvdl 	int16_t	 cg_ncyl;		/* number of cyl's this cg */
    311  1.1.1.2     fvdl 	int16_t	 cg_niblk;		/* number of inode blocks this cg */
    312  1.1.1.2     fvdl 	int32_t	 cg_ndblk;		/* number of data blocks this cg */
    313      1.1  mycroft 	struct	csum cg_cs;		/* cylinder summary information */
    314  1.1.1.2     fvdl 	int32_t	 cg_rotor;		/* position of last used block */
    315  1.1.1.2     fvdl 	int32_t	 cg_frotor;		/* position of last used frag */
    316  1.1.1.2     fvdl 	int32_t	 cg_irotor;		/* position of last used inode */
    317  1.1.1.2     fvdl 	int32_t	 cg_frsum[MAXFRAG];	/* counts of available frags */
    318  1.1.1.2     fvdl 	int32_t	 cg_btotoff;		/* (int32) block totals per cylinder */
    319  1.1.1.2     fvdl 	int32_t	 cg_boff;		/* (u_int16) free block positions */
    320  1.1.1.2     fvdl 	int32_t	 cg_iusedoff;		/* (u_int8) used inode map */
    321  1.1.1.2     fvdl 	int32_t	 cg_freeoff;		/* (u_int8) free block map */
    322  1.1.1.2     fvdl 	int32_t	 cg_nextfreeoff;	/* (u_int8) next available space */
    323  1.1.1.2     fvdl 	int32_t	 cg_clustersumoff;	/* (u_int32) counts of avail clusters */
    324  1.1.1.2     fvdl 	int32_t	 cg_clusteroff;		/* (u_int8) free cluster map */
    325  1.1.1.2     fvdl 	int32_t	 cg_nclusterblks;	/* number of clusters this cg */
    326  1.1.1.2     fvdl 	int32_t	 cg_sparecon[13];	/* reserved for future use */
    327  1.1.1.2     fvdl 	u_int8_t cg_space[1];		/* space for cylinder group maps */
    328      1.1  mycroft /* actually longer */
    329      1.1  mycroft };
    330  1.1.1.2     fvdl 
    331      1.1  mycroft /*
    332      1.1  mycroft  * Macros for access to cylinder group array structures
    333      1.1  mycroft  */
    334      1.1  mycroft #define cg_blktot(cgp) \
    335      1.1  mycroft     (((cgp)->cg_magic != CG_MAGIC) \
    336      1.1  mycroft     ? (((struct ocg *)(cgp))->cg_btot) \
    337  1.1.1.2     fvdl     : ((int32_t *)((u_int8_t *)(cgp) + (cgp)->cg_btotoff)))
    338      1.1  mycroft #define cg_blks(fs, cgp, cylno) \
    339      1.1  mycroft     (((cgp)->cg_magic != CG_MAGIC) \
    340      1.1  mycroft     ? (((struct ocg *)(cgp))->cg_b[cylno]) \
    341  1.1.1.2     fvdl     : ((int16_t *)((u_int8_t *)(cgp) + \
    342  1.1.1.2     fvdl 	(cgp)->cg_boff) + (cylno) * (fs)->fs_nrpos))
    343      1.1  mycroft #define cg_inosused(cgp) \
    344      1.1  mycroft     (((cgp)->cg_magic != CG_MAGIC) \
    345      1.1  mycroft     ? (((struct ocg *)(cgp))->cg_iused) \
    346  1.1.1.2     fvdl     : ((u_int8_t *)((u_int8_t *)(cgp) + (cgp)->cg_iusedoff)))
    347      1.1  mycroft #define cg_blksfree(cgp) \
    348      1.1  mycroft     (((cgp)->cg_magic != CG_MAGIC) \
    349      1.1  mycroft     ? (((struct ocg *)(cgp))->cg_free) \
    350  1.1.1.2     fvdl     : ((u_int8_t *)((u_int8_t *)(cgp) + (cgp)->cg_freeoff)))
    351      1.1  mycroft #define cg_chkmagic(cgp) \
    352      1.1  mycroft     ((cgp)->cg_magic == CG_MAGIC || ((struct ocg *)(cgp))->cg_magic == CG_MAGIC)
    353      1.1  mycroft #define cg_clustersfree(cgp) \
    354  1.1.1.2     fvdl     ((u_int8_t *)((u_int8_t *)(cgp) + (cgp)->cg_clusteroff))
    355      1.1  mycroft #define cg_clustersum(cgp) \
    356  1.1.1.2     fvdl     ((int32_t *)((u_int8_t *)(cgp) + (cgp)->cg_clustersumoff))
    357      1.1  mycroft 
    358      1.1  mycroft /*
    359      1.1  mycroft  * The following structure is defined
    360      1.1  mycroft  * for compatibility with old file systems.
    361      1.1  mycroft  */
    362  1.1.1.2     fvdl struct ocg {
    363  1.1.1.2     fvdl 	int32_t	 cg_firstfield;		/* historic linked list of cyl groups */
    364  1.1.1.2     fvdl 	int32_t	 cg_unused_1;		/*     used for incore cyl groups */
    365  1.1.1.2     fvdl 	time_t	 cg_time;		/* time last written */
    366  1.1.1.2     fvdl 	int32_t	 cg_cgx;		/* we are the cgx'th cylinder group */
    367  1.1.1.2     fvdl 	int16_t	 cg_ncyl;		/* number of cyl's this cg */
    368  1.1.1.2     fvdl 	int16_t	 cg_niblk;		/* number of inode blocks this cg */
    369  1.1.1.2     fvdl 	int32_t	 cg_ndblk;		/* number of data blocks this cg */
    370      1.1  mycroft 	struct	csum cg_cs;		/* cylinder summary information */
    371  1.1.1.2     fvdl 	int32_t	 cg_rotor;		/* position of last used block */
    372  1.1.1.2     fvdl 	int32_t	 cg_frotor;		/* position of last used frag */
    373  1.1.1.2     fvdl 	int32_t	 cg_irotor;		/* position of last used inode */
    374  1.1.1.2     fvdl 	int32_t	 cg_frsum[8];		/* counts of available frags */
    375  1.1.1.2     fvdl 	int32_t	 cg_btot[32];		/* block totals per cylinder */
    376  1.1.1.2     fvdl 	int16_t	 cg_b[32][8];		/* positions of free blocks */
    377  1.1.1.2     fvdl 	u_int8_t cg_iused[256];		/* used inode map */
    378  1.1.1.2     fvdl 	int32_t	 cg_magic;		/* magic number */
    379  1.1.1.2     fvdl 	u_int8_t cg_free[1];		/* free block map */
    380      1.1  mycroft /* actually longer */
    381      1.1  mycroft };
    382      1.1  mycroft 
    383      1.1  mycroft /*
    384      1.1  mycroft  * Turn file system block numbers into disk block addresses.
    385      1.1  mycroft  * This maps file system blocks to device size blocks.
    386      1.1  mycroft  */
    387      1.1  mycroft #define fsbtodb(fs, b)	((b) << (fs)->fs_fsbtodb)
    388      1.1  mycroft #define	dbtofsb(fs, b)	((b) >> (fs)->fs_fsbtodb)
    389      1.1  mycroft 
    390      1.1  mycroft /*
    391      1.1  mycroft  * Cylinder group macros to locate things in cylinder groups.
    392      1.1  mycroft  * They calc file system addresses of cylinder group data structures.
    393      1.1  mycroft  */
    394  1.1.1.2     fvdl #define	cgbase(fs, c)	((ufs_daddr_t)((fs)->fs_fpg * (c)))
    395      1.1  mycroft #define	cgdmin(fs, c)	(cgstart(fs, c) + (fs)->fs_dblkno)	/* 1st data */
    396      1.1  mycroft #define	cgimin(fs, c)	(cgstart(fs, c) + (fs)->fs_iblkno)	/* inode blk */
    397      1.1  mycroft #define	cgsblock(fs, c)	(cgstart(fs, c) + (fs)->fs_sblkno)	/* super blk */
    398      1.1  mycroft #define	cgtod(fs, c)	(cgstart(fs, c) + (fs)->fs_cblkno)	/* cg block */
    399      1.1  mycroft #define cgstart(fs, c)							\
    400      1.1  mycroft 	(cgbase(fs, c) + (fs)->fs_cgoffset * ((c) & ~((fs)->fs_cgmask)))
    401      1.1  mycroft 
    402      1.1  mycroft /*
    403      1.1  mycroft  * Macros for handling inode numbers:
    404      1.1  mycroft  *     inode number to file system block offset.
    405      1.1  mycroft  *     inode number to cylinder group number.
    406      1.1  mycroft  *     inode number to file system block address.
    407      1.1  mycroft  */
    408      1.1  mycroft #define	ino_to_cg(fs, x)	((x) / (fs)->fs_ipg)
    409      1.1  mycroft #define	ino_to_fsba(fs, x)						\
    410  1.1.1.2     fvdl 	((ufs_daddr_t)(cgimin(fs, ino_to_cg(fs, x)) +			\
    411      1.1  mycroft 	    (blkstofrags((fs), (((x) % (fs)->fs_ipg) / INOPB(fs))))))
    412      1.1  mycroft #define	ino_to_fsbo(fs, x)	((x) % INOPB(fs))
    413      1.1  mycroft 
    414      1.1  mycroft /*
    415      1.1  mycroft  * Give cylinder group number for a file system block.
    416      1.1  mycroft  * Give cylinder group block number for a file system block.
    417      1.1  mycroft  */
    418      1.1  mycroft #define	dtog(fs, d)	((d) / (fs)->fs_fpg)
    419      1.1  mycroft #define	dtogd(fs, d)	((d) % (fs)->fs_fpg)
    420      1.1  mycroft 
    421      1.1  mycroft /*
    422      1.1  mycroft  * Extract the bits for a block from a map.
    423      1.1  mycroft  * Compute the cylinder and rotational position of a cyl block addr.
    424      1.1  mycroft  */
    425      1.1  mycroft #define blkmap(fs, map, loc) \
    426      1.1  mycroft     (((map)[(loc) / NBBY] >> ((loc) % NBBY)) & (0xff >> (NBBY - (fs)->fs_frag)))
    427      1.1  mycroft #define cbtocylno(fs, bno) \
    428      1.1  mycroft     ((bno) * NSPF(fs) / (fs)->fs_spc)
    429      1.1  mycroft #define cbtorpos(fs, bno) \
    430      1.1  mycroft     (((bno) * NSPF(fs) % (fs)->fs_spc / (fs)->fs_nsect * (fs)->fs_trackskew + \
    431      1.1  mycroft      (bno) * NSPF(fs) % (fs)->fs_spc % (fs)->fs_nsect * (fs)->fs_interleave) % \
    432      1.1  mycroft      (fs)->fs_nsect * (fs)->fs_nrpos / (fs)->fs_npsect)
    433      1.1  mycroft 
    434      1.1  mycroft /*
    435      1.1  mycroft  * The following macros optimize certain frequently calculated
    436      1.1  mycroft  * quantities by using shifts and masks in place of divisions
    437      1.1  mycroft  * modulos and multiplications.
    438      1.1  mycroft  */
    439      1.1  mycroft #define blkoff(fs, loc)		/* calculates (loc % fs->fs_bsize) */ \
    440      1.1  mycroft 	((loc) & (fs)->fs_qbmask)
    441      1.1  mycroft #define fragoff(fs, loc)	/* calculates (loc % fs->fs_fsize) */ \
    442      1.1  mycroft 	((loc) & (fs)->fs_qfmask)
    443      1.1  mycroft #define lblktosize(fs, blk)	/* calculates (blk * fs->fs_bsize) */ \
    444      1.1  mycroft 	((blk) << (fs)->fs_bshift)
    445      1.1  mycroft #define lblkno(fs, loc)		/* calculates (loc / fs->fs_bsize) */ \
    446      1.1  mycroft 	((loc) >> (fs)->fs_bshift)
    447      1.1  mycroft #define numfrags(fs, loc)	/* calculates (loc / fs->fs_fsize) */ \
    448      1.1  mycroft 	((loc) >> (fs)->fs_fshift)
    449      1.1  mycroft #define blkroundup(fs, size)	/* calculates roundup(size, fs->fs_bsize) */ \
    450      1.1  mycroft 	(((size) + (fs)->fs_qbmask) & (fs)->fs_bmask)
    451      1.1  mycroft #define fragroundup(fs, size)	/* calculates roundup(size, fs->fs_fsize) */ \
    452      1.1  mycroft 	(((size) + (fs)->fs_qfmask) & (fs)->fs_fmask)
    453      1.1  mycroft #define fragstoblks(fs, frags)	/* calculates (frags / fs->fs_frag) */ \
    454      1.1  mycroft 	((frags) >> (fs)->fs_fragshift)
    455      1.1  mycroft #define blkstofrags(fs, blks)	/* calculates (blks * fs->fs_frag) */ \
    456      1.1  mycroft 	((blks) << (fs)->fs_fragshift)
    457      1.1  mycroft #define fragnum(fs, fsb)	/* calculates (fsb % fs->fs_frag) */ \
    458      1.1  mycroft 	((fsb) & ((fs)->fs_frag - 1))
    459      1.1  mycroft #define blknum(fs, fsb)		/* calculates rounddown(fsb, fs->fs_frag) */ \
    460      1.1  mycroft 	((fsb) &~ ((fs)->fs_frag - 1))
    461      1.1  mycroft 
    462      1.1  mycroft /*
    463      1.1  mycroft  * Determine the number of available frags given a
    464  1.1.1.2     fvdl  * percentage to hold in reserve.
    465      1.1  mycroft  */
    466      1.1  mycroft #define freespace(fs, percentreserved) \
    467      1.1  mycroft 	(blkstofrags((fs), (fs)->fs_cstotal.cs_nbfree) + \
    468      1.1  mycroft 	(fs)->fs_cstotal.cs_nffree - ((fs)->fs_dsize * (percentreserved) / 100))
    469      1.1  mycroft 
    470      1.1  mycroft /*
    471      1.1  mycroft  * Determining the size of a file block in the file system.
    472      1.1  mycroft  */
    473      1.1  mycroft #define blksize(fs, ip, lbn) \
    474      1.1  mycroft 	(((lbn) >= NDADDR || (ip)->i_size >= ((lbn) + 1) << (fs)->fs_bshift) \
    475      1.1  mycroft 	    ? (fs)->fs_bsize \
    476      1.1  mycroft 	    : (fragroundup(fs, blkoff(fs, (ip)->i_size))))
    477      1.1  mycroft #define dblksize(fs, dip, lbn) \
    478      1.1  mycroft 	(((lbn) >= NDADDR || (dip)->di_size >= ((lbn) + 1) << (fs)->fs_bshift) \
    479      1.1  mycroft 	    ? (fs)->fs_bsize \
    480      1.1  mycroft 	    : (fragroundup(fs, blkoff(fs, (dip)->di_size))))
    481      1.1  mycroft 
    482      1.1  mycroft /*
    483  1.1.1.2     fvdl  * Number of disk sectors per block/fragment; assumes DEV_BSIZE byte
    484  1.1.1.2     fvdl  * sector size.
    485      1.1  mycroft  */
    486      1.1  mycroft #define	NSPB(fs)	((fs)->fs_nspf << (fs)->fs_fragshift)
    487      1.1  mycroft #define	NSPF(fs)	((fs)->fs_nspf)
    488      1.1  mycroft 
    489      1.1  mycroft /*
    490  1.1.1.2     fvdl  * Number of inodes in a secondary storage block/fragment.
    491      1.1  mycroft  */
    492      1.1  mycroft #define	INOPB(fs)	((fs)->fs_inopb)
    493      1.1  mycroft #define	INOPF(fs)	((fs)->fs_inopb >> (fs)->fs_fragshift)
    494      1.1  mycroft 
    495      1.1  mycroft /*
    496  1.1.1.2     fvdl  * Number of indirects in a file system block.
    497      1.1  mycroft  */
    498      1.1  mycroft #define	NINDIR(fs)	((fs)->fs_nindir)
    499      1.1  mycroft 
    500      1.1  mycroft extern int inside[], around[];
    501      1.1  mycroft extern u_char *fragtbl[];
    502