Home | History | Annotate | Line # | Download | only in newfs
mkfs.c revision 1.48
      1 /*	$NetBSD: mkfs.c,v 1.48 2001/07/30 07:13:58 lukem Exp $	*/
      2 
      3 /*
      4  * Copyright (c) 1980, 1989, 1993
      5  *	The Regents of the University of California.  All rights reserved.
      6  *
      7  * Redistribution and use in source and binary forms, with or without
      8  * modification, are permitted provided that the following conditions
      9  * are met:
     10  * 1. Redistributions of source code must retain the above copyright
     11  *    notice, this list of conditions and the following disclaimer.
     12  * 2. Redistributions in binary form must reproduce the above copyright
     13  *    notice, this list of conditions and the following disclaimer in the
     14  *    documentation and/or other materials provided with the distribution.
     15  * 3. All advertising materials mentioning features or use of this software
     16  *    must display the following acknowledgement:
     17  *	This product includes software developed by the University of
     18  *	California, Berkeley and its contributors.
     19  * 4. Neither the name of the University nor the names of its contributors
     20  *    may be used to endorse or promote products derived from this software
     21  *    without specific prior written permission.
     22  *
     23  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     24  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     25  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     26  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     27  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     28  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     29  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     30  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     31  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     32  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     33  * SUCH DAMAGE.
     34  */
     35 
     36 #include <sys/cdefs.h>
     37 #ifndef lint
     38 #if 0
     39 static char sccsid[] = "@(#)mkfs.c	8.11 (Berkeley) 5/3/95";
     40 #else
     41 __RCSID("$NetBSD: mkfs.c,v 1.48 2001/07/30 07:13:58 lukem Exp $");
     42 #endif
     43 #endif /* not lint */
     44 
     45 #include <sys/param.h>
     46 #include <sys/time.h>
     47 #include <sys/resource.h>
     48 #include <ufs/ufs/dinode.h>
     49 #include <ufs/ufs/dir.h>
     50 #include <ufs/ufs/ufs_bswap.h>
     51 #include <ufs/ffs/fs.h>
     52 #include <ufs/ffs/ffs_extern.h>
     53 #include <sys/disklabel.h>
     54 
     55 #include <string.h>
     56 #include <unistd.h>
     57 #include <stdlib.h>
     58 
     59 #ifndef STANDALONE
     60 #include <stdio.h>
     61 #endif
     62 
     63 #include "extern.h"
     64 
     65 
     66 static void initcg(int, time_t);
     67 static void fsinit(time_t);
     68 static int makedir(struct direct *, int);
     69 static daddr_t alloc(int, int);
     70 static void iput(struct dinode *, ino_t);
     71 static void rdfs(daddr_t, int, void *);
     72 static void wtfs(daddr_t, int, void *);
     73 static int isblock(struct fs *, unsigned char *, int);
     74 static void clrblock(struct fs *, unsigned char *, int);
     75 static void setblock(struct fs *, unsigned char *, int);
     76 static int32_t calcipg(int32_t, int32_t, off_t *);
     77 static void swap_cg(struct cg *, struct cg *);
     78 static void *Malloc(size_t);
     79 static void *Calloc(size_t, size_t);
     80 static void Free(void *);
     81 
     82 static int count_digits(int);
     83 
     84 /*
     85  * make file system for cylinder-group style file systems
     86  */
     87 
     88 /*
     89  * We limit the size of the inode map to be no more than a
     90  * third of the cylinder group space, since we must leave at
     91  * least an equal amount of space for the block map.
     92  *
     93  * N.B.: MAXIPG must be a multiple of INOPB(fs).
     94  */
     95 #define MAXIPG(fs)	roundup((fs)->fs_bsize * NBBY / 3, INOPB(fs))
     96 
     97 #define UMASK		0755
     98 #define MAXINOPB	(MAXBSIZE / DINODE_SIZE)
     99 #define POWEROF2(num)	(((num) & ((num) - 1)) == 0)
    100 
    101 union {
    102 	struct fs fs;
    103 	char pad[SBSIZE];
    104 } fsun;
    105 #define	sblock	fsun.fs
    106 struct	csum *fscs;
    107 
    108 union {
    109 	struct cg cg;
    110 	char pad[MAXBSIZE];
    111 } cgun;
    112 #define	acg	cgun.cg
    113 
    114 struct dinode zino[MAXBSIZE / DINODE_SIZE];
    115 
    116 char writebuf[MAXBSIZE];
    117 
    118 int	fsi, fso;
    119 
    120 void
    121 mkfs(struct partition *pp, char *fsys, int fi, int fo)
    122 {
    123 	int32_t i, mincpc, mincpg, inospercg;
    124 	int32_t cylno, rpos, blk, j, warn = 0;
    125 	int32_t used, mincpgcnt, bpcg;
    126 	off_t usedb;
    127 	int32_t mapcramped, inodecramped;
    128 	int32_t postblsize, rotblsize, totalsbsize;
    129 	time_t utime;
    130 	quad_t sizepb;
    131 	char *writebuf2;		/* dynamic buffer */
    132 	int nprintcols, printcolwidth;
    133 
    134 #ifndef STANDALONE
    135 	time(&utime);
    136 #endif
    137 	if (mfs) {
    138 		(void)Malloc(0);
    139 		if (fssize * sectorsize > memleft)
    140 			fssize = (memleft - 16384) / sectorsize;
    141 		if ((membase = Malloc(fssize * sectorsize)) == 0)
    142 			exit(12);
    143 	}
    144 	fsi = fi;
    145 	fso = fo;
    146 	if (Oflag) {
    147 		sblock.fs_inodefmt = FS_42INODEFMT;
    148 		sblock.fs_maxsymlinklen = 0;
    149 	} else {
    150 		sblock.fs_inodefmt = FS_44INODEFMT;
    151 		sblock.fs_maxsymlinklen = MAXSYMLINKLEN;
    152 	}
    153 	/*
    154 	 * Validate the given file system size.
    155 	 * Verify that its last block can actually be accessed.
    156 	 */
    157 	if (fssize <= 0)
    158 		printf("preposterous size %d\n", fssize), exit(13);
    159 	wtfs(fssize - 1, sectorsize, (char *)&sblock);
    160 
    161 	/*
    162 	 * collect and verify the sector and track info
    163 	 */
    164 	sblock.fs_nsect = nsectors;
    165 	sblock.fs_ntrak = ntracks;
    166 	if (sblock.fs_ntrak <= 0)
    167 		printf("preposterous ntrak %d\n", sblock.fs_ntrak), exit(14);
    168 	if (sblock.fs_nsect <= 0)
    169 		printf("preposterous nsect %d\n", sblock.fs_nsect), exit(15);
    170 	/*
    171 	 * collect and verify the block and fragment sizes
    172 	 */
    173 	sblock.fs_bsize = bsize;
    174 	sblock.fs_fsize = fsize;
    175 	if (!POWEROF2(sblock.fs_bsize)) {
    176 		printf("block size must be a power of 2, not %d\n",
    177 		    sblock.fs_bsize);
    178 		exit(16);
    179 	}
    180 	if (!POWEROF2(sblock.fs_fsize)) {
    181 		printf("fragment size must be a power of 2, not %d\n",
    182 		    sblock.fs_fsize);
    183 		exit(17);
    184 	}
    185 	if (sblock.fs_fsize < sectorsize) {
    186 		printf("fragment size %d is too small, minimum is %d\n",
    187 		    sblock.fs_fsize, sectorsize);
    188 		exit(18);
    189 	}
    190 	if (sblock.fs_bsize < MINBSIZE) {
    191 		printf("block size %d is too small, minimum is %d\n",
    192 		    sblock.fs_bsize, MINBSIZE);
    193 		exit(19);
    194 	}
    195 	if (sblock.fs_bsize < sblock.fs_fsize) {
    196 		printf("block size (%d) cannot be smaller than fragment size (%d)\n",
    197 		    sblock.fs_bsize, sblock.fs_fsize);
    198 		exit(20);
    199 	}
    200 	sblock.fs_bmask = ~(sblock.fs_bsize - 1);
    201 	sblock.fs_fmask = ~(sblock.fs_fsize - 1);
    202 	sblock.fs_qbmask = ~sblock.fs_bmask;
    203 	sblock.fs_qfmask = ~sblock.fs_fmask;
    204 	for (sblock.fs_bshift = 0, i = sblock.fs_bsize; i > 1; i >>= 1)
    205 		sblock.fs_bshift++;
    206 	for (sblock.fs_fshift = 0, i = sblock.fs_fsize; i > 1; i >>= 1)
    207 		sblock.fs_fshift++;
    208 	sblock.fs_frag = numfrags(&sblock, sblock.fs_bsize);
    209 	for (sblock.fs_fragshift = 0, i = sblock.fs_frag; i > 1; i >>= 1)
    210 		sblock.fs_fragshift++;
    211 	if (sblock.fs_frag > MAXFRAG) {
    212 		printf("fragment size %d is too small, "
    213 			"minimum with block size %d is %d\n",
    214 		    sblock.fs_fsize, sblock.fs_bsize,
    215 		    sblock.fs_bsize / MAXFRAG);
    216 		exit(21);
    217 	}
    218 	sblock.fs_nrpos = nrpos;
    219 	sblock.fs_nindir = sblock.fs_bsize / sizeof(daddr_t);
    220 	sblock.fs_inopb = sblock.fs_bsize / DINODE_SIZE;
    221 	sblock.fs_nspf = sblock.fs_fsize / sectorsize;
    222 	for (sblock.fs_fsbtodb = 0, i = NSPF(&sblock); i > 1; i >>= 1)
    223 		sblock.fs_fsbtodb++;
    224 	sblock.fs_sblkno =
    225 	    roundup(howmany(bbsize + sbsize, sblock.fs_fsize), sblock.fs_frag);
    226 	sblock.fs_cblkno = (daddr_t)(sblock.fs_sblkno +
    227 	    roundup(howmany(sbsize, sblock.fs_fsize), sblock.fs_frag));
    228 	sblock.fs_iblkno = sblock.fs_cblkno + sblock.fs_frag;
    229 	sblock.fs_cgoffset = roundup(
    230 	    howmany(sblock.fs_nsect, NSPF(&sblock)), sblock.fs_frag);
    231 	for (sblock.fs_cgmask = 0xffffffff, i = sblock.fs_ntrak; i > 1; i >>= 1)
    232 		sblock.fs_cgmask <<= 1;
    233 	if (!POWEROF2(sblock.fs_ntrak))
    234 		sblock.fs_cgmask <<= 1;
    235 	sblock.fs_maxfilesize = sblock.fs_bsize * NDADDR - 1;
    236 	for (sizepb = sblock.fs_bsize, i = 0; i < NIADDR; i++) {
    237 		sizepb *= NINDIR(&sblock);
    238 		sblock.fs_maxfilesize += sizepb;
    239 	}
    240 	/*
    241 	 * Validate specified/determined secpercyl
    242 	 * and calculate minimum cylinders per group.
    243 	 */
    244 	sblock.fs_spc = secpercyl;
    245 	for (sblock.fs_cpc = NSPB(&sblock), i = sblock.fs_spc;
    246 	     sblock.fs_cpc > 1 && (i & 1) == 0;
    247 	     sblock.fs_cpc >>= 1, i >>= 1)
    248 		/* void */;
    249 	mincpc = sblock.fs_cpc;
    250 	bpcg = sblock.fs_spc * sectorsize;
    251 	inospercg = roundup(bpcg / DINODE_SIZE, INOPB(&sblock));
    252 	if (inospercg > MAXIPG(&sblock))
    253 		inospercg = MAXIPG(&sblock);
    254 	used = (sblock.fs_iblkno + inospercg / INOPF(&sblock)) * NSPF(&sblock);
    255 	mincpgcnt = howmany(sblock.fs_cgoffset * (~sblock.fs_cgmask) + used,
    256 	    sblock.fs_spc);
    257 	mincpg = roundup(mincpgcnt, mincpc);
    258 	/*
    259 	 * Ensure that cylinder group with mincpg has enough space
    260 	 * for block maps.
    261 	 */
    262 	sblock.fs_cpg = mincpg;
    263 	sblock.fs_ipg = inospercg;
    264 	if (maxcontig > 1)
    265 		sblock.fs_contigsumsize = MIN(maxcontig, FS_MAXCONTIG);
    266 	mapcramped = 0;
    267 	while (CGSIZE(&sblock) > sblock.fs_bsize) {
    268 		mapcramped = 1;
    269 		if (sblock.fs_bsize < MAXBSIZE) {
    270 			sblock.fs_bsize <<= 1;
    271 			if ((i & 1) == 0) {
    272 				i >>= 1;
    273 			} else {
    274 				sblock.fs_cpc <<= 1;
    275 				mincpc <<= 1;
    276 				mincpg = roundup(mincpgcnt, mincpc);
    277 				sblock.fs_cpg = mincpg;
    278 			}
    279 			sblock.fs_frag <<= 1;
    280 			sblock.fs_fragshift += 1;
    281 			if (sblock.fs_frag <= MAXFRAG)
    282 				continue;
    283 		}
    284 		if (sblock.fs_fsize == sblock.fs_bsize) {
    285 			printf("There is no block size that");
    286 			printf(" can support this disk\n");
    287 			exit(22);
    288 		}
    289 		sblock.fs_frag >>= 1;
    290 		sblock.fs_fragshift -= 1;
    291 		sblock.fs_fsize <<= 1;
    292 		sblock.fs_nspf <<= 1;
    293 	}
    294 	/*
    295 	 * Ensure that cylinder group with mincpg has enough space for inodes.
    296 	 */
    297 	inodecramped = 0;
    298 	inospercg = calcipg(mincpg, bpcg, &usedb);
    299 	sblock.fs_ipg = inospercg;
    300 	while (inospercg > MAXIPG(&sblock)) {
    301 		inodecramped = 1;
    302 		if (mincpc == 1 || sblock.fs_frag == 1 ||
    303 		    sblock.fs_bsize == MINBSIZE)
    304 			break;
    305 		printf("With a block size of %d %s %d\n", sblock.fs_bsize,
    306 		       "minimum bytes per inode is",
    307 		       (int)((mincpg * (off_t)bpcg - usedb)
    308 			     / MAXIPG(&sblock) + 1));
    309 		sblock.fs_bsize >>= 1;
    310 		sblock.fs_frag >>= 1;
    311 		sblock.fs_fragshift -= 1;
    312 		mincpc >>= 1;
    313 		sblock.fs_cpg = roundup(mincpgcnt, mincpc);
    314 		if (CGSIZE(&sblock) > sblock.fs_bsize) {
    315 			sblock.fs_bsize <<= 1;
    316 			break;
    317 		}
    318 		mincpg = sblock.fs_cpg;
    319 		inospercg = calcipg(mincpg, bpcg, &usedb);
    320 		sblock.fs_ipg = inospercg;
    321 	}
    322 	if (inodecramped) {
    323 		if (inospercg > MAXIPG(&sblock)) {
    324 			printf("Minimum bytes per inode is %d\n",
    325 			       (int)((mincpg * (off_t)bpcg - usedb)
    326 				     / MAXIPG(&sblock) + 1));
    327 		} else if (!mapcramped) {
    328 			printf("With %d bytes per inode, ", density);
    329 			printf("minimum cylinders per group is %d\n", mincpg);
    330 		}
    331 	}
    332 	if (mapcramped) {
    333 		printf("With %d sectors per cylinder, ", sblock.fs_spc);
    334 		printf("minimum cylinders per group is %d\n", mincpg);
    335 	}
    336 	if (inodecramped || mapcramped) {
    337 		if (sblock.fs_bsize != bsize)
    338 			printf("%s to be changed from %d to %d\n",
    339 			    "This requires the block size",
    340 			    bsize, sblock.fs_bsize);
    341 		if (sblock.fs_fsize != fsize)
    342 			printf("\t%s to be changed from %d to %d\n",
    343 			    "and the fragment size",
    344 			    fsize, sblock.fs_fsize);
    345 		exit(23);
    346 	}
    347 	/*
    348 	 * Calculate the number of cylinders per group
    349 	 */
    350 	sblock.fs_cpg = cpg;
    351 	if (sblock.fs_cpg % mincpc != 0) {
    352 		printf("%s groups must have a multiple of %d cylinders\n",
    353 			cpgflg ? "Cylinder" : "Warning: cylinder", mincpc);
    354 		sblock.fs_cpg = roundup(sblock.fs_cpg, mincpc);
    355 		if (!cpgflg)
    356 			cpg = sblock.fs_cpg;
    357 	}
    358 	/*
    359 	 * Must ensure there is enough space for inodes.
    360 	 */
    361 	sblock.fs_ipg = calcipg(sblock.fs_cpg, bpcg, &usedb);
    362 	while (sblock.fs_ipg > MAXIPG(&sblock)) {
    363 		inodecramped = 1;
    364 		sblock.fs_cpg -= mincpc;
    365 		sblock.fs_ipg = calcipg(sblock.fs_cpg, bpcg, &usedb);
    366 	}
    367 	/*
    368 	 * Must ensure there is enough space to hold block map.
    369 	 */
    370 	while (CGSIZE(&sblock) > sblock.fs_bsize) {
    371 		mapcramped = 1;
    372 		sblock.fs_cpg -= mincpc;
    373 		sblock.fs_ipg = calcipg(sblock.fs_cpg, bpcg, &usedb);
    374 	}
    375 	sblock.fs_fpg = (sblock.fs_cpg * sblock.fs_spc) / NSPF(&sblock);
    376 	if ((sblock.fs_cpg * sblock.fs_spc) % NSPB(&sblock) != 0) {
    377 		printf("panic (fs_cpg * fs_spc) %% NSPF != 0");
    378 		exit(24);
    379 	}
    380 	if (sblock.fs_cpg < mincpg) {
    381 		printf("cylinder groups must have at least %d cylinders\n",
    382 			mincpg);
    383 		exit(25);
    384 	} else if (sblock.fs_cpg != cpg) {
    385 		if (!cpgflg)
    386 			printf("Warning: ");
    387 		else if (!mapcramped && !inodecramped)
    388 			exit(26);
    389 		if (mapcramped && inodecramped)
    390 			printf("Block size and bytes per inode restrict");
    391 		else if (mapcramped)
    392 			printf("Block size restricts");
    393 		else
    394 			printf("Bytes per inode restrict");
    395 		printf(" cylinders per group to %d.\n", sblock.fs_cpg);
    396 		if (cpgflg)
    397 			exit(27);
    398 	}
    399 	sblock.fs_cgsize = fragroundup(&sblock, CGSIZE(&sblock));
    400 	/*
    401 	 * Now have size for file system and nsect and ntrak.
    402 	 * Determine number of cylinders and blocks in the file system.
    403 	 */
    404 	sblock.fs_size = fssize = dbtofsb(&sblock, fssize);
    405 	sblock.fs_ncyl = fssize * NSPF(&sblock) / sblock.fs_spc;
    406 	if (fssize * NSPF(&sblock) > sblock.fs_ncyl * sblock.fs_spc) {
    407 		sblock.fs_ncyl++;
    408 		warn = 1;
    409 	}
    410 	if (sblock.fs_ncyl < 1) {
    411 		printf("file systems must have at least one cylinder\n");
    412 		exit(28);
    413 	}
    414 	/*
    415 	 * Determine feasability/values of rotational layout tables.
    416 	 *
    417 	 * The size of the rotational layout tables is limited by the
    418 	 * size of the superblock, SBSIZE. The amount of space available
    419 	 * for tables is calculated as (SBSIZE - sizeof (struct fs)).
    420 	 * The size of these tables is inversely proportional to the block
    421 	 * size of the file system. The size increases if sectors per track
    422 	 * are not powers of two, because more cylinders must be described
    423 	 * by the tables before the rotational pattern repeats (fs_cpc).
    424 	 */
    425 	sblock.fs_interleave = interleave;
    426 	sblock.fs_trackskew = trackskew;
    427 	sblock.fs_npsect = nphyssectors;
    428 	sblock.fs_postblformat = FS_DYNAMICPOSTBLFMT;
    429 	sblock.fs_sbsize = fragroundup(&sblock, sizeof(struct fs));
    430 	if (sblock.fs_ntrak == 1) {
    431 		sblock.fs_cpc = 0;
    432 		goto next;
    433 	}
    434 	postblsize = sblock.fs_nrpos * sblock.fs_cpc * sizeof(int16_t);
    435 	rotblsize = sblock.fs_cpc * sblock.fs_spc / NSPB(&sblock);
    436 	totalsbsize = sizeof(struct fs) + rotblsize;
    437 	if (sblock.fs_nrpos == 8 && sblock.fs_cpc <= 16) {
    438 		/* use old static table space */
    439 		sblock.fs_postbloff = (char *)(&sblock.fs_opostbl[0][0]) -
    440 		    (char *)(&sblock.fs_firstfield);
    441 		sblock.fs_rotbloff = &sblock.fs_space[0] -
    442 		    (u_char *)(&sblock.fs_firstfield);
    443 	} else {
    444 		/* use dynamic table space */
    445 		sblock.fs_postbloff = &sblock.fs_space[0] -
    446 		    (u_char *)(&sblock.fs_firstfield);
    447 		sblock.fs_rotbloff = sblock.fs_postbloff + postblsize;
    448 		totalsbsize += postblsize;
    449 	}
    450 	if (totalsbsize > SBSIZE ||
    451 	    sblock.fs_nsect > (1 << NBBY) * NSPB(&sblock)) {
    452 		printf("%s %s %d %s %d.%s",
    453 		    "Warning: insufficient space in super block for\n",
    454 		    "rotational layout tables with nsect", sblock.fs_nsect,
    455 		    "and ntrak", sblock.fs_ntrak,
    456 		    "\nFile system performance may be impaired.\n");
    457 		sblock.fs_cpc = 0;
    458 		goto next;
    459 	}
    460 	sblock.fs_sbsize = fragroundup(&sblock, totalsbsize);
    461 	/*
    462 	 * calculate the available blocks for each rotational position
    463 	 */
    464 	for (cylno = 0; cylno < sblock.fs_cpc; cylno++)
    465 		for (rpos = 0; rpos < sblock.fs_nrpos; rpos++)
    466 			fs_postbl(&sblock, cylno)[rpos] = -1;
    467 	for (i = (rotblsize - 1) * sblock.fs_frag;
    468 	     i >= 0; i -= sblock.fs_frag) {
    469 		cylno = cbtocylno(&sblock, i);
    470 		rpos = cbtorpos(&sblock, i);
    471 		blk = fragstoblks(&sblock, i);
    472 		if (fs_postbl(&sblock, cylno)[rpos] == -1)
    473 			fs_rotbl(&sblock)[blk] = 0;
    474 		else
    475 			fs_rotbl(&sblock)[blk] = fs_postbl(&sblock, cylno)[rpos] - blk;
    476 		fs_postbl(&sblock, cylno)[rpos] = blk;
    477 	}
    478 next:
    479 	/*
    480 	 * Compute/validate number of cylinder groups.
    481 	 */
    482 	sblock.fs_ncg = sblock.fs_ncyl / sblock.fs_cpg;
    483 	if (sblock.fs_ncyl % sblock.fs_cpg)
    484 		sblock.fs_ncg++;
    485 	sblock.fs_dblkno = sblock.fs_iblkno + sblock.fs_ipg / INOPF(&sblock);
    486 	i = MIN(~sblock.fs_cgmask, sblock.fs_ncg - 1);
    487 	if (cgdmin(&sblock, i) - cgbase(&sblock, i) >= sblock.fs_fpg) {
    488 		printf("inode blocks/cyl group (%d) >= data blocks (%d)\n",
    489 		    cgdmin(&sblock, i) - cgbase(&sblock, i) / sblock.fs_frag,
    490 		    sblock.fs_fpg / sblock.fs_frag);
    491 		printf("number of cylinders per cylinder group (%d) %s.\n",
    492 		    sblock.fs_cpg, "must be increased");
    493 		exit(29);
    494 	}
    495 	j = sblock.fs_ncg - 1;
    496 	if ((i = fssize - j * sblock.fs_fpg) < sblock.fs_fpg &&
    497 	    cgdmin(&sblock, j) - cgbase(&sblock, j) > i) {
    498 		if (j == 0) {
    499 			printf("File system must have at least %d sectors\n",
    500 			    NSPF(&sblock) *
    501 			    (cgdmin(&sblock, 0) + 3 * sblock.fs_frag));
    502 			exit(30);
    503 		}
    504 		printf("Warning: inode blocks/cyl group (%d) >= "
    505 			"data blocks (%d) in last\n",
    506 		    (cgdmin(&sblock, j) - cgbase(&sblock, j)) / sblock.fs_frag,
    507 		    i / sblock.fs_frag);
    508 		printf("    cylinder group. This implies %d sector(s) "
    509 			"cannot be allocated.\n",
    510 		    i * NSPF(&sblock));
    511 		sblock.fs_ncg--;
    512 		sblock.fs_ncyl -= sblock.fs_ncyl % sblock.fs_cpg;
    513 		sblock.fs_size = fssize = sblock.fs_ncyl * sblock.fs_spc /
    514 		    NSPF(&sblock);
    515 		warn = 0;
    516 	}
    517 	if (warn && !mfs) {
    518 		printf("Warning: %d sector(s) in last cylinder unallocated\n",
    519 		    sblock.fs_spc -
    520 		    (fssize * NSPF(&sblock) - (sblock.fs_ncyl - 1)
    521 		    * sblock.fs_spc));
    522 	}
    523 	/*
    524 	 * fill in remaining fields of the super block
    525 	 */
    526 	sblock.fs_csaddr = cgdmin(&sblock, 0);
    527 	sblock.fs_cssize =
    528 	    fragroundup(&sblock, sblock.fs_ncg * sizeof(struct csum));
    529 	if (sblock.fs_cssize / sblock.fs_bsize > MAXCSBUFS) {
    530 		printf("With %d cylinder groups, "
    531 		    "%d cylinder group summary areas are needed.\n",
    532 		    sblock.fs_ncg, sblock.fs_cssize / sblock.fs_bsize);
    533 		printf("Only %ld are available. Reduce the number of cylinder "
    534 		    "groups.\n", (long)MAXCSBUFS);
    535 		exit(38);
    536 	}
    537 	i = sblock.fs_bsize / sizeof(struct csum);
    538 	sblock.fs_csmask = ~(i - 1);
    539 	for (sblock.fs_csshift = 0; i > 1; i >>= 1)
    540 		sblock.fs_csshift++;
    541 	fscs = (struct csum *)Calloc(1, sblock.fs_cssize);
    542 	if (fscs == NULL)
    543 		exit(39);
    544 	sblock.fs_magic = FS_MAGIC;
    545 	sblock.fs_rotdelay = rotdelay;
    546 	sblock.fs_minfree = minfree;
    547 	sblock.fs_maxcontig = maxcontig;
    548 	sblock.fs_headswitch = headswitch;
    549 	sblock.fs_trkseek = trackseek;
    550 	sblock.fs_maxbpg = maxbpg;
    551 	sblock.fs_rps = rpm / 60;
    552 	sblock.fs_optim = opt;
    553 	sblock.fs_cgrotor = 0;
    554 	sblock.fs_cstotal.cs_ndir = 0;
    555 	sblock.fs_cstotal.cs_nbfree = 0;
    556 	sblock.fs_cstotal.cs_nifree = 0;
    557 	sblock.fs_cstotal.cs_nffree = 0;
    558 	sblock.fs_fmod = 0;
    559 	sblock.fs_clean = FS_ISCLEAN;
    560 	sblock.fs_ronly = 0;
    561 	/*
    562 	 * Dump out summary information about file system.
    563 	 */
    564 	if (!mfs) {
    565 		printf("%s:\t%d sectors in %d %s of %d tracks, %d sectors\n",
    566 		    fsys, sblock.fs_size * NSPF(&sblock), sblock.fs_ncyl,
    567 		    "cylinders", sblock.fs_ntrak, sblock.fs_nsect);
    568 #define B2MBFACTOR (1 / (1024.0 * 1024.0))
    569 		printf("\t%.1fMB in %d cyl groups (%d c/g, %.2fMB/g, %d i/g)\n",
    570 		    (float)sblock.fs_size * sblock.fs_fsize * B2MBFACTOR,
    571 		    sblock.fs_ncg, sblock.fs_cpg,
    572 		    (float)sblock.fs_fpg * sblock.fs_fsize * B2MBFACTOR,
    573 		    sblock.fs_ipg);
    574 #undef B2MBFACTOR
    575 	}
    576 	/*
    577 	 * Now determine how wide each column will be, and calculate how
    578 	 * many columns will fit in a 76 char line. 76 is the width of the
    579 	 * subwindows in sysinst.
    580 	 */
    581 	printcolwidth = count_digits(
    582 			fsbtodb(&sblock, cgsblock(&sblock, sblock.fs_ncg -1)));
    583 	nprintcols = 76 / (printcolwidth + 2);
    584 	/*
    585 	 * Now build the cylinders group blocks and
    586 	 * then print out indices of cylinder groups.
    587 	 */
    588 	if (!mfs)
    589 		printf("super-block backups (for fsck -b #) at:");
    590 	for (cylno = 0; cylno < sblock.fs_ncg; cylno++) {
    591 		initcg(cylno, utime);
    592 		if (mfs)
    593 			continue;
    594 		if (cylno % nprintcols == 0)
    595 			printf("\n");
    596 		printf(" %*d,", printcolwidth,
    597 				fsbtodb(&sblock, cgsblock(&sblock, cylno)));
    598 		fflush(stdout);
    599 	}
    600 	if (!mfs)
    601 		printf("\n");
    602 	if (Nflag && !mfs)
    603 		exit(0);
    604 	/*
    605 	 * Now construct the initial file system,
    606 	 * then write out the super-block.
    607 	 */
    608 	fsinit(utime);
    609 	sblock.fs_time = utime;
    610 	memcpy(writebuf, &sblock, sbsize);
    611 	if (needswap)
    612 		ffs_sb_swap(&sblock, (struct fs*)writebuf, 1);
    613 	wtfs((int)SBOFF / sectorsize, sbsize, writebuf);
    614 	/*
    615 	 * Write out the duplicate super blocks
    616 	 */
    617 	for (cylno = 0; cylno < sblock.fs_ncg; cylno++)
    618 		wtfs(fsbtodb(&sblock, cgsblock(&sblock, cylno)),
    619 		    sbsize, writebuf);
    620 
    621 	/*
    622 	 * if we need to swap, create a buffer for the cylinder summaries
    623 	 * to get swapped to.
    624 	 */
    625 	if (needswap) {
    626 		if ((writebuf2=Malloc(sblock.fs_cssize)) == NULL)
    627 			exit(12);
    628 		ffs_csum_swap(fscs, (struct csum*)writebuf2, sblock.fs_cssize);
    629 	} else
    630 		writebuf2 = (char *)fscs;
    631 
    632 	for (i = 0; i < sblock.fs_cssize; i += sblock.fs_bsize)
    633 		wtfs(fsbtodb(&sblock, sblock.fs_csaddr + numfrags(&sblock, i)),
    634 			sblock.fs_cssize - i < sblock.fs_bsize ?
    635 			    sblock.fs_cssize - i : sblock.fs_bsize,
    636 			((char *)writebuf2) + i);
    637 	if (writebuf2 != (char *)fscs)
    638 		Free(writebuf2);
    639 
    640 	/*
    641 	 * Update information about this partion in pack
    642 	 * label, to that it may be updated on disk.
    643 	 */
    644 	pp->p_fstype = FS_BSDFFS;
    645 	pp->p_fsize = sblock.fs_fsize;
    646 	pp->p_frag = sblock.fs_frag;
    647 	pp->p_cpg = sblock.fs_cpg;
    648 }
    649 
    650 /*
    651  * Initialize a cylinder group.
    652  */
    653 void
    654 initcg(int cylno, time_t utime)
    655 {
    656 	daddr_t cbase, d, dlower, dupper, dmax, blkno;
    657 	int32_t i;
    658 	struct csum *cs;
    659 
    660 	/*
    661 	 * Determine block bounds for cylinder group.
    662 	 * Allow space for super block summary information in first
    663 	 * cylinder group.
    664 	 */
    665 	cbase = cgbase(&sblock, cylno);
    666 	dmax = cbase + sblock.fs_fpg;
    667 	if (dmax > sblock.fs_size)
    668 		dmax = sblock.fs_size;
    669 	dlower = cgsblock(&sblock, cylno) - cbase;
    670 	dupper = cgdmin(&sblock, cylno) - cbase;
    671 	if (cylno == 0)
    672 		dupper += howmany(sblock.fs_cssize, sblock.fs_fsize);
    673 	cs = fscs + cylno;
    674 	memset(&acg, 0, sblock.fs_cgsize);
    675 	acg.cg_time = utime;
    676 	acg.cg_magic = CG_MAGIC;
    677 	acg.cg_cgx = cylno;
    678 	if (cylno == sblock.fs_ncg - 1)
    679 		acg.cg_ncyl = sblock.fs_ncyl % sblock.fs_cpg;
    680 	else
    681 		acg.cg_ncyl = sblock.fs_cpg;
    682 	acg.cg_niblk = sblock.fs_ipg;
    683 	acg.cg_ndblk = dmax - cbase;
    684 	if (sblock.fs_contigsumsize > 0)
    685 		acg.cg_nclusterblks = acg.cg_ndblk / sblock.fs_frag;
    686 	acg.cg_btotoff = &acg.cg_space[0] - (u_char *)(&acg.cg_firstfield);
    687 	acg.cg_boff = acg.cg_btotoff + sblock.fs_cpg * sizeof(int32_t);
    688 	acg.cg_iusedoff = acg.cg_boff +
    689 		sblock.fs_cpg * sblock.fs_nrpos * sizeof(int16_t);
    690 	acg.cg_freeoff = acg.cg_iusedoff + howmany(sblock.fs_ipg, NBBY);
    691 	if (sblock.fs_contigsumsize <= 0) {
    692 		acg.cg_nextfreeoff = acg.cg_freeoff +
    693 		   howmany(sblock.fs_cpg * sblock.fs_spc / NSPF(&sblock), NBBY);
    694 	} else {
    695 		acg.cg_clustersumoff = acg.cg_freeoff + howmany
    696 		    (sblock.fs_cpg * sblock.fs_spc / NSPF(&sblock), NBBY) -
    697 		    sizeof(int32_t);
    698 		acg.cg_clustersumoff =
    699 		    roundup(acg.cg_clustersumoff, sizeof(int32_t));
    700 		acg.cg_clusteroff = acg.cg_clustersumoff +
    701 		    (sblock.fs_contigsumsize + 1) * sizeof(int32_t);
    702 		acg.cg_nextfreeoff = acg.cg_clusteroff + howmany
    703 		    (sblock.fs_cpg * sblock.fs_spc / NSPB(&sblock), NBBY);
    704 	}
    705 	if (acg.cg_nextfreeoff > sblock.fs_cgsize) {
    706 		printf("Panic: cylinder group too big\n");
    707 		exit(37);
    708 	}
    709 	acg.cg_cs.cs_nifree += sblock.fs_ipg;
    710 	if (cylno == 0)
    711 		for (i = 0; i < ROOTINO; i++) {
    712 			setbit(cg_inosused(&acg, 0), i);
    713 			acg.cg_cs.cs_nifree--;
    714 		}
    715 	for (i = 0; i < sblock.fs_ipg / INOPF(&sblock); i += sblock.fs_frag)
    716 		wtfs(fsbtodb(&sblock, cgimin(&sblock, cylno) + i),
    717 		    sblock.fs_bsize, (char *)zino);
    718 	if (cylno > 0) {
    719 		/*
    720 		 * In cylno 0, beginning space is reserved
    721 		 * for boot and super blocks.
    722 		 */
    723 		for (d = 0; d < dlower; d += sblock.fs_frag) {
    724 			blkno = d / sblock.fs_frag;
    725 			setblock(&sblock, cg_blksfree(&acg, 0), blkno);
    726 			if (sblock.fs_contigsumsize > 0)
    727 				setbit(cg_clustersfree(&acg, 0), blkno);
    728 			acg.cg_cs.cs_nbfree++;
    729 			cg_blktot(&acg, 0)[cbtocylno(&sblock, d)]++;
    730 			cg_blks(&sblock, &acg, cbtocylno(&sblock, d), 0)
    731 			    [cbtorpos(&sblock, d)]++;
    732 		}
    733 		sblock.fs_dsize += dlower;
    734 	}
    735 	sblock.fs_dsize += acg.cg_ndblk - dupper;
    736 	if ((i = (dupper % sblock.fs_frag)) != 0) {
    737 		acg.cg_frsum[sblock.fs_frag - i]++;
    738 		for (d = dupper + sblock.fs_frag - i; dupper < d; dupper++) {
    739 			setbit(cg_blksfree(&acg, 0), dupper);
    740 			acg.cg_cs.cs_nffree++;
    741 		}
    742 	}
    743 	for (d = dupper; d + sblock.fs_frag <= dmax - cbase; ) {
    744 		blkno = d / sblock.fs_frag;
    745 		setblock(&sblock, cg_blksfree(&acg, 0), blkno);
    746 		if (sblock.fs_contigsumsize > 0)
    747 			setbit(cg_clustersfree(&acg, 0), blkno);
    748 		acg.cg_cs.cs_nbfree++;
    749 		cg_blktot(&acg, 0)[cbtocylno(&sblock, d)]++;
    750 		cg_blks(&sblock, &acg, cbtocylno(&sblock, d), 0)
    751 		    [cbtorpos(&sblock, d)]++;
    752 		d += sblock.fs_frag;
    753 	}
    754 	if (d < dmax - cbase) {
    755 		acg.cg_frsum[dmax - cbase - d]++;
    756 		for (; d < dmax - cbase; d++) {
    757 			setbit(cg_blksfree(&acg, 0), d);
    758 			acg.cg_cs.cs_nffree++;
    759 		}
    760 	}
    761 	if (sblock.fs_contigsumsize > 0) {
    762 		int32_t *sump = cg_clustersum(&acg, 0);
    763 		u_char *mapp = cg_clustersfree(&acg, 0);
    764 		int map = *mapp++;
    765 		int bit = 1;
    766 		int run = 0;
    767 
    768 		for (i = 0; i < acg.cg_nclusterblks; i++) {
    769 			if ((map & bit) != 0) {
    770 				run++;
    771 			} else if (run != 0) {
    772 				if (run > sblock.fs_contigsumsize)
    773 					run = sblock.fs_contigsumsize;
    774 				sump[run]++;
    775 				run = 0;
    776 			}
    777 			if ((i & (NBBY - 1)) != (NBBY - 1)) {
    778 				bit <<= 1;
    779 			} else {
    780 				map = *mapp++;
    781 				bit = 1;
    782 			}
    783 		}
    784 		if (run != 0) {
    785 			if (run > sblock.fs_contigsumsize)
    786 				run = sblock.fs_contigsumsize;
    787 			sump[run]++;
    788 		}
    789 	}
    790 	sblock.fs_cstotal.cs_ndir += acg.cg_cs.cs_ndir;
    791 	sblock.fs_cstotal.cs_nffree += acg.cg_cs.cs_nffree;
    792 	sblock.fs_cstotal.cs_nbfree += acg.cg_cs.cs_nbfree;
    793 	sblock.fs_cstotal.cs_nifree += acg.cg_cs.cs_nifree;
    794 	*cs = acg.cg_cs;
    795 	memcpy(writebuf, &acg, sblock.fs_bsize);
    796 	if (needswap)
    797 		swap_cg(&acg, (struct cg*)writebuf);
    798 	wtfs(fsbtodb(&sblock, cgtod(&sblock, cylno)),
    799 		sblock.fs_bsize, writebuf);
    800 }
    801 
    802 /*
    803  * initialize the file system
    804  */
    805 struct dinode node;
    806 
    807 #ifdef LOSTDIR
    808 #define PREDEFDIR 3
    809 #else
    810 #define PREDEFDIR 2
    811 #endif
    812 
    813 struct direct root_dir[] = {
    814 	{ ROOTINO, sizeof(struct direct), DT_DIR, 1, "." },
    815 	{ ROOTINO, sizeof(struct direct), DT_DIR, 2, ".." },
    816 #ifdef LOSTDIR
    817 	{ LOSTFOUNDINO, sizeof(struct direct), DT_DIR, 10, "lost+found" },
    818 #endif
    819 };
    820 struct odirect {
    821 	u_int32_t d_ino;
    822 	u_int16_t d_reclen;
    823 	u_int16_t d_namlen;
    824 	u_char	d_name[MAXNAMLEN + 1];
    825 } oroot_dir[] = {
    826 	{ ROOTINO, sizeof(struct direct), 1, "." },
    827 	{ ROOTINO, sizeof(struct direct), 2, ".." },
    828 #ifdef LOSTDIR
    829 	{ LOSTFOUNDINO, sizeof(struct direct), 10, "lost+found" },
    830 #endif
    831 };
    832 #ifdef LOSTDIR
    833 struct direct lost_found_dir[] = {
    834 	{ LOSTFOUNDINO, sizeof(struct direct), DT_DIR, 1, "." },
    835 	{ ROOTINO, sizeof(struct direct), DT_DIR, 2, ".." },
    836 	{ 0, DIRBLKSIZ, 0, 0, 0 },
    837 };
    838 struct odirect olost_found_dir[] = {
    839 	{ LOSTFOUNDINO, sizeof(struct direct), 1, "." },
    840 	{ ROOTINO, sizeof(struct direct), 2, ".." },
    841 	{ 0, DIRBLKSIZ, 0, 0 },
    842 };
    843 #endif
    844 char buf[MAXBSIZE];
    845 static void copy_dir(struct direct *, struct direct *);
    846 
    847 void
    848 fsinit(time_t utime)
    849 {
    850 #ifdef LOSTDIR
    851 	int i;
    852 #endif
    853 
    854 	/*
    855 	 * initialize the node
    856 	 */
    857 	memset(&node, 0, sizeof(node));
    858 	node.di_atime = utime;
    859 	node.di_mtime = utime;
    860 	node.di_ctime = utime;
    861 
    862 #ifdef LOSTDIR
    863 	/*
    864 	 * create the lost+found directory
    865 	 */
    866 	if (Oflag) {
    867 		(void)makedir((struct direct *)olost_found_dir, 2);
    868 		for (i = DIRBLKSIZ; i < sblock.fs_bsize; i += DIRBLKSIZ)
    869 			copy_dir((struct direct*)&olost_found_dir[2],
    870 				(struct direct*)&buf[i]);
    871 	} else {
    872 		(void)makedir(lost_found_dir, 2);
    873 		for (i = DIRBLKSIZ; i < sblock.fs_bsize; i += DIRBLKSIZ)
    874 			copy_dir(&lost_found_dir[2], (struct direct*)&buf[i]);
    875 	}
    876 	node.di_mode = IFDIR | UMASK;
    877 	node.di_nlink = 2;
    878 	node.di_size = sblock.fs_bsize;
    879 	node.di_db[0] = alloc(node.di_size, node.di_mode);
    880 	node.di_blocks = btodb(fragroundup(&sblock, node.di_size));
    881 	node.di_uid = geteuid();
    882 	node.di_gid = getegid();
    883 	wtfs(fsbtodb(&sblock, node.di_db[0]), node.di_size, buf);
    884 	iput(&node, LOSTFOUNDINO);
    885 #endif
    886 	/*
    887 	 * create the root directory
    888 	 */
    889 	if (mfs)
    890 		node.di_mode = IFDIR | 01777;
    891 	else
    892 		node.di_mode = IFDIR | UMASK;
    893 	node.di_nlink = PREDEFDIR;
    894 	if (Oflag)
    895 		node.di_size = makedir((struct direct *)oroot_dir, PREDEFDIR);
    896 	else
    897 		node.di_size = makedir(root_dir, PREDEFDIR);
    898 	node.di_db[0] = alloc(sblock.fs_fsize, node.di_mode);
    899 	node.di_blocks = btodb(fragroundup(&sblock, node.di_size));
    900 	node.di_uid = geteuid();
    901 	node.di_gid = getegid();
    902 	wtfs(fsbtodb(&sblock, node.di_db[0]), sblock.fs_fsize, buf);
    903 	iput(&node, ROOTINO);
    904 }
    905 
    906 /*
    907  * construct a set of directory entries in "buf".
    908  * return size of directory.
    909  */
    910 int
    911 makedir(struct direct *protodir, int entries)
    912 {
    913 	char *cp;
    914 	int i, spcleft;
    915 
    916 	spcleft = DIRBLKSIZ;
    917 	for (cp = buf, i = 0; i < entries - 1; i++) {
    918 		protodir[i].d_reclen = DIRSIZ(Oflag, &protodir[i], 0);
    919 		copy_dir(&protodir[i], (struct direct*)cp);
    920 		cp += protodir[i].d_reclen;
    921 		spcleft -= protodir[i].d_reclen;
    922 	}
    923 	protodir[i].d_reclen = spcleft;
    924 	copy_dir(&protodir[i], (struct direct*)cp);
    925 	return (DIRBLKSIZ);
    926 }
    927 
    928 /*
    929  * allocate a block or frag
    930  */
    931 daddr_t
    932 alloc(int size, int mode)
    933 {
    934 	int i, frag;
    935 	daddr_t d, blkno;
    936 
    937 	rdfs(fsbtodb(&sblock, cgtod(&sblock, 0)), sblock.fs_cgsize, &acg);
    938 	/* fs -> host byte order */
    939 	if (needswap)
    940 		swap_cg(&acg, &acg);
    941 	if (acg.cg_magic != CG_MAGIC) {
    942 		printf("cg 0: bad magic number\n");
    943 		return (0);
    944 	}
    945 	if (acg.cg_cs.cs_nbfree == 0) {
    946 		printf("first cylinder group ran out of space\n");
    947 		return (0);
    948 	}
    949 	for (d = 0; d < acg.cg_ndblk; d += sblock.fs_frag)
    950 		if (isblock(&sblock, cg_blksfree(&acg, 0), d / sblock.fs_frag))
    951 			goto goth;
    952 	printf("internal error: can't find block in cyl 0\n");
    953 	return (0);
    954 goth:
    955 	blkno = fragstoblks(&sblock, d);
    956 	clrblock(&sblock, cg_blksfree(&acg, 0), blkno);
    957 	if (sblock.fs_contigsumsize > 0)
    958 		clrbit(cg_clustersfree(&acg, 0), blkno);
    959 	acg.cg_cs.cs_nbfree--;
    960 	sblock.fs_cstotal.cs_nbfree--;
    961 	fscs[0].cs_nbfree--;
    962 	if (mode & IFDIR) {
    963 		acg.cg_cs.cs_ndir++;
    964 		sblock.fs_cstotal.cs_ndir++;
    965 		fscs[0].cs_ndir++;
    966 	}
    967 	cg_blktot(&acg, 0)[cbtocylno(&sblock, d)]--;
    968 	cg_blks(&sblock, &acg, cbtocylno(&sblock, d), 0)[cbtorpos(&sblock, d)]--;
    969 	if (size != sblock.fs_bsize) {
    970 		frag = howmany(size, sblock.fs_fsize);
    971 		fscs[0].cs_nffree += sblock.fs_frag - frag;
    972 		sblock.fs_cstotal.cs_nffree += sblock.fs_frag - frag;
    973 		acg.cg_cs.cs_nffree += sblock.fs_frag - frag;
    974 		acg.cg_frsum[sblock.fs_frag - frag]++;
    975 		for (i = frag; i < sblock.fs_frag; i++)
    976 			setbit(cg_blksfree(&acg, 0), d + i);
    977 	}
    978 	/* host -> fs byte order */
    979 	if (needswap)
    980 		swap_cg(&acg, &acg);
    981 	wtfs(fsbtodb(&sblock, cgtod(&sblock, 0)), sblock.fs_cgsize,
    982 	    (char *)&acg);
    983 	return (d);
    984 }
    985 
    986 /*
    987  * Calculate number of inodes per group.
    988  */
    989 int32_t
    990 calcipg(int32_t cylpg, int32_t bpcg, off_t *usedbp)
    991 {
    992 	int i;
    993 	int32_t ipg, new_ipg, ncg, ncyl;
    994 	off_t usedb;
    995 #if __GNUC__ /* XXX work around gcc 2.7.2 initialization bug */
    996 	(void)&usedb;
    997 #endif
    998 
    999 	/*
   1000 	 * Prepare to scale by fssize / (number of sectors in cylinder groups).
   1001 	 * Note that fssize is still in sectors, not file system blocks.
   1002 	 */
   1003 	ncyl = howmany(fssize, secpercyl);
   1004 	ncg = howmany(ncyl, cylpg);
   1005 	/*
   1006 	 * Iterate a few times to allow for ipg depending on itself.
   1007 	 */
   1008 	ipg = 0;
   1009 	for (i = 0; i < 10; i++) {
   1010 		usedb = (sblock.fs_iblkno + ipg / INOPF(&sblock))
   1011 			* NSPF(&sblock) * (off_t)sectorsize;
   1012 		new_ipg = (cylpg * (quad_t)bpcg - usedb) / density * fssize
   1013 			  / ncg / secpercyl / cylpg;
   1014 		new_ipg = roundup(new_ipg, INOPB(&sblock));
   1015 		if (new_ipg == ipg)
   1016 			break;
   1017 		ipg = new_ipg;
   1018 	}
   1019 	*usedbp = usedb;
   1020 	return (ipg);
   1021 }
   1022 
   1023 /*
   1024  * Allocate an inode on the disk
   1025  */
   1026 static void
   1027 iput(struct dinode *ip, ino_t ino)
   1028 {
   1029 	struct dinode ibuf[MAXINOPB];
   1030 	daddr_t d;
   1031 	int c, i;
   1032 
   1033 	c = ino_to_cg(&sblock, ino);
   1034 	rdfs(fsbtodb(&sblock, cgtod(&sblock, 0)), sblock.fs_cgsize, &acg);
   1035 	/* fs -> host byte order */
   1036 	if (needswap)
   1037 		swap_cg(&acg, &acg);
   1038 	if (acg.cg_magic != CG_MAGIC) {
   1039 		printf("cg 0: bad magic number\n");
   1040 		exit(31);
   1041 	}
   1042 	acg.cg_cs.cs_nifree--;
   1043 	setbit(cg_inosused(&acg, 0), ino);
   1044 	/* host -> fs byte order */
   1045 	if (needswap)
   1046 		swap_cg(&acg, &acg);
   1047 	wtfs(fsbtodb(&sblock, cgtod(&sblock, 0)), sblock.fs_cgsize,
   1048 	    (char *)&acg);
   1049 	sblock.fs_cstotal.cs_nifree--;
   1050 	fscs[0].cs_nifree--;
   1051 	if (ino >= sblock.fs_ipg * sblock.fs_ncg) {
   1052 		printf("fsinit: inode value out of range (%d).\n", ino);
   1053 		exit(32);
   1054 	}
   1055 	d = fsbtodb(&sblock, ino_to_fsba(&sblock, ino));
   1056 	rdfs(d, sblock.fs_bsize, ibuf);
   1057 	if (needswap) {
   1058 		ffs_dinode_swap(ip, &ibuf[ino_to_fsbo(&sblock, ino)]);
   1059 		/* ffs_dinode_swap() doesn't swap blocks addrs */
   1060 		for (i=0; i<NDADDR + NIADDR; i++)
   1061 			(&ibuf[ino_to_fsbo(&sblock, ino)])->di_db[i] =
   1062 				bswap32(ip->di_db[i]);
   1063 	} else
   1064 		ibuf[ino_to_fsbo(&sblock, ino)] = *ip;
   1065 	wtfs(d, sblock.fs_bsize, ibuf);
   1066 }
   1067 
   1068 /*
   1069  * Replace libc function with one suited to our needs.
   1070  */
   1071 static void *
   1072 Malloc(size_t size)
   1073 {
   1074 	void *p;
   1075 	char *base, *i;
   1076 	static u_long pgsz;
   1077 	struct rlimit rlp;
   1078 
   1079 	if (pgsz == 0) {
   1080 		base = sbrk(0);
   1081 		pgsz = getpagesize() - 1;
   1082 		i = (char *)((u_long)(base + pgsz) &~ pgsz);
   1083 		base = sbrk(i - base);
   1084 		if (getrlimit(RLIMIT_DATA, &rlp) < 0)
   1085 			perror("getrlimit");
   1086 		rlp.rlim_cur = rlp.rlim_max;
   1087 		if (setrlimit(RLIMIT_DATA, &rlp) < 0)
   1088 			perror("setrlimit");
   1089 		memleft = rlp.rlim_max - (u_long)base;
   1090 	}
   1091 	size = (size + pgsz) &~ pgsz;
   1092 	if (size > memleft)
   1093 		size = memleft;
   1094 	memleft -= size;
   1095 	if (size == 0)
   1096 		return (NULL);
   1097 	p = sbrk(size);
   1098 	if (p == (void *)-1)
   1099 		p = NULL;
   1100 	return (p);
   1101 }
   1102 
   1103 #if 0
   1104 /*
   1105  * Replace libc function with one suited to our needs.
   1106  */
   1107 static void *
   1108 Realloc(void *ptr, size_t size)
   1109 {
   1110 	void *p;
   1111 
   1112 	if ((p = Malloc(size)) == NULL)
   1113 		return (NULL);
   1114 	memmove(p, ptr, size);
   1115 	Free(ptr);
   1116 	return (p);
   1117 }
   1118 #endif
   1119 
   1120 /*
   1121  * Replace libc function with one suited to our needs.
   1122  */
   1123 static void *
   1124 Calloc(size_t size, size_t numelm)
   1125 {
   1126 	void *base;
   1127 
   1128 	size *= numelm;
   1129 	base = Malloc(size);
   1130 	if (base == NULL)
   1131 		return (NULL);
   1132 	memset(base, 0, size);
   1133 	return (base);
   1134 }
   1135 
   1136 /*
   1137  * Replace libc function with one suited to our needs.
   1138  */
   1139 static void
   1140 Free(void *ptr)
   1141 {
   1142 
   1143 	/* do not worry about it for now */
   1144 }
   1145 
   1146 /*
   1147  * read a block from the file system
   1148  */
   1149 void
   1150 rdfs(daddr_t bno, int size, void *bf)
   1151 {
   1152 	int n;
   1153 	off_t offset;
   1154 
   1155 	if (mfs) {
   1156 		memmove(bf, membase + bno * sectorsize, size);
   1157 		return;
   1158 	}
   1159 	offset = bno;
   1160 	offset *= sectorsize;
   1161 	if (lseek(fsi, offset, SEEK_SET) < 0) {
   1162 		printf("seek error: %d\n", bno);
   1163 		perror("rdfs");
   1164 		exit(33);
   1165 	}
   1166 	n = read(fsi, bf, size);
   1167 	if (n != size) {
   1168 		printf("read error: %d\n", bno);
   1169 		perror("rdfs");
   1170 		exit(34);
   1171 	}
   1172 }
   1173 
   1174 /*
   1175  * write a block to the file system
   1176  */
   1177 void
   1178 wtfs(daddr_t bno, int size, void *bf)
   1179 {
   1180 	int n;
   1181 	off_t offset;
   1182 
   1183 	if (mfs) {
   1184 		memmove(membase + bno * sectorsize, bf, size);
   1185 		return;
   1186 	}
   1187 	if (Nflag)
   1188 		return;
   1189 	offset = bno;
   1190 	offset *= sectorsize;
   1191 	if (lseek(fso, offset, SEEK_SET) < 0) {
   1192 		printf("seek error: %d\n", bno);
   1193 		perror("wtfs");
   1194 		exit(35);
   1195 	}
   1196 	n = write(fso, bf, size);
   1197 	if (n != size) {
   1198 		printf("write error: %d\n", bno);
   1199 		perror("wtfs");
   1200 		exit(36);
   1201 	}
   1202 }
   1203 
   1204 /*
   1205  * check if a block is available
   1206  */
   1207 int
   1208 isblock(struct fs *fs, unsigned char *cp, int h)
   1209 {
   1210 	unsigned char mask;
   1211 
   1212 	switch (fs->fs_frag) {
   1213 	case 8:
   1214 		return (cp[h] == 0xff);
   1215 	case 4:
   1216 		mask = 0x0f << ((h & 0x1) << 2);
   1217 		return ((cp[h >> 1] & mask) == mask);
   1218 	case 2:
   1219 		mask = 0x03 << ((h & 0x3) << 1);
   1220 		return ((cp[h >> 2] & mask) == mask);
   1221 	case 1:
   1222 		mask = 0x01 << (h & 0x7);
   1223 		return ((cp[h >> 3] & mask) == mask);
   1224 	default:
   1225 #ifdef STANDALONE
   1226 		printf("isblock bad fs_frag %d\n", fs->fs_frag);
   1227 #else
   1228 		fprintf(stderr, "isblock bad fs_frag %d\n", fs->fs_frag);
   1229 #endif
   1230 		return (0);
   1231 	}
   1232 }
   1233 
   1234 /*
   1235  * take a block out of the map
   1236  */
   1237 void
   1238 clrblock(struct fs *fs, unsigned char *cp, int h)
   1239 {
   1240 	switch ((fs)->fs_frag) {
   1241 	case 8:
   1242 		cp[h] = 0;
   1243 		return;
   1244 	case 4:
   1245 		cp[h >> 1] &= ~(0x0f << ((h & 0x1) << 2));
   1246 		return;
   1247 	case 2:
   1248 		cp[h >> 2] &= ~(0x03 << ((h & 0x3) << 1));
   1249 		return;
   1250 	case 1:
   1251 		cp[h >> 3] &= ~(0x01 << (h & 0x7));
   1252 		return;
   1253 	default:
   1254 #ifdef STANDALONE
   1255 		printf("clrblock bad fs_frag %d\n", fs->fs_frag);
   1256 #else
   1257 		fprintf(stderr, "clrblock bad fs_frag %d\n", fs->fs_frag);
   1258 #endif
   1259 		return;
   1260 	}
   1261 }
   1262 
   1263 /*
   1264  * put a block into the map
   1265  */
   1266 void
   1267 setblock(struct fs *fs, unsigned char *cp, int h)
   1268 {
   1269 	switch (fs->fs_frag) {
   1270 	case 8:
   1271 		cp[h] = 0xff;
   1272 		return;
   1273 	case 4:
   1274 		cp[h >> 1] |= (0x0f << ((h & 0x1) << 2));
   1275 		return;
   1276 	case 2:
   1277 		cp[h >> 2] |= (0x03 << ((h & 0x3) << 1));
   1278 		return;
   1279 	case 1:
   1280 		cp[h >> 3] |= (0x01 << (h & 0x7));
   1281 		return;
   1282 	default:
   1283 #ifdef STANDALONE
   1284 		printf("setblock bad fs_frag %d\n", fs->fs_frag);
   1285 #else
   1286 		fprintf(stderr, "setblock bad fs_frag %d\n", fs->fs_frag);
   1287 #endif
   1288 		return;
   1289 	}
   1290 }
   1291 
   1292 /* swap byte order of cylinder group */
   1293 static void
   1294 swap_cg(struct cg *o, struct cg *n)
   1295 {
   1296 	int i, btotsize, fbsize;
   1297 	u_int32_t *n32, *o32;
   1298 	u_int16_t *n16, *o16;
   1299 
   1300 	n->cg_firstfield = bswap32(o->cg_firstfield);
   1301 	n->cg_magic = bswap32(o->cg_magic);
   1302 	n->cg_time = bswap32(o->cg_time);
   1303 	n->cg_cgx = bswap32(o->cg_cgx);
   1304 	n->cg_ncyl = bswap16(o->cg_ncyl);
   1305 	n->cg_niblk = bswap16(o->cg_niblk);
   1306 	n->cg_ndblk = bswap32(o->cg_ndblk);
   1307 	n->cg_cs.cs_ndir = bswap32(o->cg_cs.cs_ndir);
   1308 	n->cg_cs.cs_nbfree = bswap32(o->cg_cs.cs_nbfree);
   1309 	n->cg_cs.cs_nifree = bswap32(o->cg_cs.cs_nifree);
   1310 	n->cg_cs.cs_nffree = bswap32(o->cg_cs.cs_nffree);
   1311 	n->cg_rotor = bswap32(o->cg_rotor);
   1312 	n->cg_frotor = bswap32(o->cg_frotor);
   1313 	n->cg_irotor = bswap32(o->cg_irotor);
   1314 	n->cg_btotoff = bswap32(o->cg_btotoff);
   1315 	n->cg_boff = bswap32(o->cg_boff);
   1316 	n->cg_iusedoff = bswap32(o->cg_iusedoff);
   1317 	n->cg_freeoff = bswap32(o->cg_freeoff);
   1318 	n->cg_nextfreeoff = bswap32(o->cg_nextfreeoff);
   1319 	n->cg_clustersumoff = bswap32(o->cg_clustersumoff);
   1320 	n->cg_clusteroff = bswap32(o->cg_clusteroff);
   1321 	n->cg_nclusterblks = bswap32(o->cg_nclusterblks);
   1322 	for (i=0; i < MAXFRAG; i++)
   1323 		n->cg_frsum[i] = bswap32(o->cg_frsum[i]);
   1324 
   1325 	/* alays new format */
   1326 	if (n->cg_magic == CG_MAGIC) {
   1327 		btotsize = n->cg_boff - n->cg_btotoff;
   1328 		fbsize = n->cg_iusedoff - n->cg_boff;
   1329 		n32 = (u_int32_t*)((u_int8_t*)n + n->cg_btotoff);
   1330 		o32 = (u_int32_t*)((u_int8_t*)o + n->cg_btotoff);
   1331 		n16 = (u_int16_t*)((u_int8_t*)n + n->cg_boff);
   1332 		o16 = (u_int16_t*)((u_int8_t*)o + n->cg_boff);
   1333 	} else {
   1334 		btotsize = bswap32(n->cg_boff) - bswap32(n->cg_btotoff);
   1335 		fbsize = bswap32(n->cg_iusedoff) - bswap32(n->cg_boff);
   1336 		n32 = (u_int32_t*)((u_int8_t*)n + bswap32(n->cg_btotoff));
   1337 		o32 = (u_int32_t*)((u_int8_t*)o + bswap32(n->cg_btotoff));
   1338 		n16 = (u_int16_t*)((u_int8_t*)n + bswap32(n->cg_boff));
   1339 		o16 = (u_int16_t*)((u_int8_t*)o + bswap32(n->cg_boff));
   1340 	}
   1341 	for (i=0; i < btotsize / sizeof(u_int32_t); i++)
   1342 		n32[i] = bswap32(o32[i]);
   1343 
   1344 	for (i=0; i < fbsize/sizeof(u_int16_t); i++)
   1345 		n16[i] = bswap16(o16[i]);
   1346 
   1347 	if (n->cg_magic == CG_MAGIC) {
   1348 		n32 = (u_int32_t*)((u_int8_t*)n + n->cg_clustersumoff);
   1349 		o32 = (u_int32_t*)((u_int8_t*)o + n->cg_clustersumoff);
   1350 	} else {
   1351 		n32 = (u_int32_t*)((u_int8_t*)n + bswap32(n->cg_clustersumoff));
   1352 		o32 = (u_int32_t*)((u_int8_t*)o + bswap32(n->cg_clustersumoff));
   1353 	}
   1354 	for (i = 1; i < sblock.fs_contigsumsize + 1; i++)
   1355 		n32[i] = bswap32(o32[i]);
   1356 }
   1357 
   1358 /* copy a direntry to a buffer, in fs byte order */
   1359 static void
   1360 copy_dir(struct direct *dir, struct direct *dbuf)
   1361 {
   1362 	memcpy(dbuf, dir, DIRSIZ(Oflag, dir, 0));
   1363 	if (needswap) {
   1364 		dbuf->d_ino = bswap32(dir->d_ino);
   1365 		dbuf->d_reclen = bswap16(dir->d_reclen);
   1366 		if (Oflag)
   1367 			((struct odirect*)dbuf)->d_namlen =
   1368 				bswap16(((struct odirect*)dir)->d_namlen);
   1369 	}
   1370 }
   1371 
   1372 /* Determine how many digits are needed to print a given integer */
   1373 static int
   1374 count_digits(int num)
   1375 {
   1376 	int ndig;
   1377 
   1378 	for(ndig = 1; num > 9; num /=10, ndig++);
   1379 
   1380 	return (ndig);
   1381 }
   1382