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ffs_alloc.c revision 1.87.2.2
      1  1.87.2.2      yamt /*	$NetBSD: ffs_alloc.c,v 1.87.2.2 2005/10/29 17:21:11 yamt Exp $	*/
      2       1.2       cgd 
      3       1.1   mycroft /*
      4      1.60      fvdl  * Copyright (c) 2002 Networks Associates Technology, Inc.
      5      1.60      fvdl  * All rights reserved.
      6      1.60      fvdl  *
      7      1.60      fvdl  * This software was developed for the FreeBSD Project by Marshall
      8      1.60      fvdl  * Kirk McKusick and Network Associates Laboratories, the Security
      9      1.60      fvdl  * Research Division of Network Associates, Inc. under DARPA/SPAWAR
     10      1.60      fvdl  * contract N66001-01-C-8035 ("CBOSS"), as part of the DARPA CHATS
     11      1.60      fvdl  * research program
     12      1.60      fvdl  *
     13       1.1   mycroft  * Copyright (c) 1982, 1986, 1989, 1993
     14       1.1   mycroft  *	The Regents of the University of California.  All rights reserved.
     15       1.1   mycroft  *
     16       1.1   mycroft  * Redistribution and use in source and binary forms, with or without
     17       1.1   mycroft  * modification, are permitted provided that the following conditions
     18       1.1   mycroft  * are met:
     19       1.1   mycroft  * 1. Redistributions of source code must retain the above copyright
     20       1.1   mycroft  *    notice, this list of conditions and the following disclaimer.
     21       1.1   mycroft  * 2. Redistributions in binary form must reproduce the above copyright
     22       1.1   mycroft  *    notice, this list of conditions and the following disclaimer in the
     23       1.1   mycroft  *    documentation and/or other materials provided with the distribution.
     24      1.69       agc  * 3. Neither the name of the University nor the names of its contributors
     25       1.1   mycroft  *    may be used to endorse or promote products derived from this software
     26       1.1   mycroft  *    without specific prior written permission.
     27       1.1   mycroft  *
     28       1.1   mycroft  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     29       1.1   mycroft  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     30       1.1   mycroft  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     31       1.1   mycroft  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     32       1.1   mycroft  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     33       1.1   mycroft  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     34       1.1   mycroft  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     35       1.1   mycroft  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     36       1.1   mycroft  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     37       1.1   mycroft  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     38       1.1   mycroft  * SUCH DAMAGE.
     39       1.1   mycroft  *
     40      1.18      fvdl  *	@(#)ffs_alloc.c	8.19 (Berkeley) 7/13/95
     41       1.1   mycroft  */
     42      1.53     lukem 
     43      1.53     lukem #include <sys/cdefs.h>
     44  1.87.2.2      yamt __KERNEL_RCSID(0, "$NetBSD: ffs_alloc.c,v 1.87.2.2 2005/10/29 17:21:11 yamt Exp $");
     45      1.17       mrg 
     46      1.43       mrg #if defined(_KERNEL_OPT)
     47      1.27   thorpej #include "opt_ffs.h"
     48      1.21    scottr #include "opt_quota.h"
     49      1.22    scottr #endif
     50       1.1   mycroft 
     51       1.1   mycroft #include <sys/param.h>
     52       1.1   mycroft #include <sys/systm.h>
     53       1.1   mycroft #include <sys/buf.h>
     54       1.1   mycroft #include <sys/proc.h>
     55       1.1   mycroft #include <sys/vnode.h>
     56       1.1   mycroft #include <sys/mount.h>
     57       1.1   mycroft #include <sys/kernel.h>
     58       1.1   mycroft #include <sys/syslog.h>
     59      1.29       mrg 
     60      1.76   hannken #include <miscfs/specfs/specdev.h>
     61       1.1   mycroft #include <ufs/ufs/quota.h>
     62      1.19    bouyer #include <ufs/ufs/ufsmount.h>
     63       1.1   mycroft #include <ufs/ufs/inode.h>
     64       1.9  christos #include <ufs/ufs/ufs_extern.h>
     65      1.19    bouyer #include <ufs/ufs/ufs_bswap.h>
     66       1.1   mycroft 
     67       1.1   mycroft #include <ufs/ffs/fs.h>
     68       1.1   mycroft #include <ufs/ffs/ffs_extern.h>
     69       1.1   mycroft 
     70      1.85   thorpej static daddr_t ffs_alloccg(struct inode *, int, daddr_t, int);
     71      1.85   thorpej static daddr_t ffs_alloccgblk(struct inode *, struct buf *, daddr_t);
     72      1.55      matt #ifdef XXXUBC
     73      1.85   thorpej static daddr_t ffs_clusteralloc(struct inode *, int, daddr_t, int);
     74      1.55      matt #endif
     75      1.85   thorpej static ino_t ffs_dirpref(struct inode *);
     76      1.85   thorpej static daddr_t ffs_fragextend(struct inode *, int, daddr_t, int, int);
     77      1.85   thorpej static void ffs_fserr(struct fs *, u_int, const char *);
     78      1.85   thorpej static daddr_t ffs_hashalloc(struct inode *, int, daddr_t, int,
     79      1.85   thorpej     daddr_t (*)(struct inode *, int, daddr_t, int));
     80      1.85   thorpej static daddr_t ffs_nodealloccg(struct inode *, int, daddr_t, int);
     81      1.85   thorpej static int32_t ffs_mapsearch(struct fs *, struct cg *,
     82      1.85   thorpej 				      daddr_t, int);
     83      1.18      fvdl #if defined(DIAGNOSTIC) || defined(DEBUG)
     84      1.55      matt #ifdef XXXUBC
     85      1.85   thorpej static int ffs_checkblk(struct inode *, daddr_t, long size);
     86      1.18      fvdl #endif
     87      1.55      matt #endif
     88      1.23  drochner 
     89      1.34  jdolecek /* if 1, changes in optimalization strategy are logged */
     90      1.34  jdolecek int ffs_log_changeopt = 0;
     91      1.34  jdolecek 
     92      1.23  drochner /* in ffs_tables.c */
     93      1.40  jdolecek extern const int inside[], around[];
     94      1.40  jdolecek extern const u_char * const fragtbl[];
     95       1.1   mycroft 
     96       1.1   mycroft /*
     97       1.1   mycroft  * Allocate a block in the file system.
     98      1.81     perry  *
     99       1.1   mycroft  * The size of the requested block is given, which must be some
    100       1.1   mycroft  * multiple of fs_fsize and <= fs_bsize.
    101       1.1   mycroft  * A preference may be optionally specified. If a preference is given
    102       1.1   mycroft  * the following hierarchy is used to allocate a block:
    103       1.1   mycroft  *   1) allocate the requested block.
    104       1.1   mycroft  *   2) allocate a rotationally optimal block in the same cylinder.
    105       1.1   mycroft  *   3) allocate a block in the same cylinder group.
    106       1.1   mycroft  *   4) quadradically rehash into other cylinder groups, until an
    107       1.1   mycroft  *      available block is located.
    108      1.47       wiz  * If no block preference is given the following hierarchy is used
    109       1.1   mycroft  * to allocate a block:
    110       1.1   mycroft  *   1) allocate a block in the cylinder group that contains the
    111       1.1   mycroft  *      inode for the file.
    112       1.1   mycroft  *   2) quadradically rehash into other cylinder groups, until an
    113       1.1   mycroft  *      available block is located.
    114       1.1   mycroft  */
    115       1.9  christos int
    116      1.85   thorpej ffs_alloc(struct inode *ip, daddr_t lbn, daddr_t bpref, int size,
    117      1.85   thorpej     struct ucred *cred, daddr_t *bnp)
    118       1.1   mycroft {
    119      1.62      fvdl 	struct fs *fs;
    120      1.58      fvdl 	daddr_t bno;
    121       1.9  christos 	int cg;
    122       1.9  christos #ifdef QUOTA
    123       1.9  christos 	int error;
    124       1.9  christos #endif
    125      1.81     perry 
    126      1.62      fvdl 	fs = ip->i_fs;
    127      1.62      fvdl 
    128      1.37       chs #ifdef UVM_PAGE_TRKOWN
    129      1.51       chs 	if (ITOV(ip)->v_type == VREG &&
    130      1.51       chs 	    lblktosize(fs, (voff_t)lbn) < round_page(ITOV(ip)->v_size)) {
    131      1.37       chs 		struct vm_page *pg;
    132      1.51       chs 		struct uvm_object *uobj = &ITOV(ip)->v_uobj;
    133      1.49     lukem 		voff_t off = trunc_page(lblktosize(fs, lbn));
    134      1.49     lukem 		voff_t endoff = round_page(lblktosize(fs, lbn) + size);
    135      1.37       chs 
    136      1.37       chs 		simple_lock(&uobj->vmobjlock);
    137      1.37       chs 		while (off < endoff) {
    138      1.37       chs 			pg = uvm_pagelookup(uobj, off);
    139      1.37       chs 			KASSERT(pg != NULL);
    140      1.37       chs 			KASSERT(pg->owner == curproc->p_pid);
    141      1.37       chs 			KASSERT((pg->flags & PG_CLEAN) == 0);
    142      1.37       chs 			off += PAGE_SIZE;
    143      1.37       chs 		}
    144      1.37       chs 		simple_unlock(&uobj->vmobjlock);
    145      1.37       chs 	}
    146      1.37       chs #endif
    147      1.37       chs 
    148       1.1   mycroft 	*bnp = 0;
    149       1.1   mycroft #ifdef DIAGNOSTIC
    150       1.1   mycroft 	if ((u_int)size > fs->fs_bsize || fragoff(fs, size) != 0) {
    151      1.13  christos 		printf("dev = 0x%x, bsize = %d, size = %d, fs = %s\n",
    152       1.1   mycroft 		    ip->i_dev, fs->fs_bsize, size, fs->fs_fsmnt);
    153       1.1   mycroft 		panic("ffs_alloc: bad size");
    154       1.1   mycroft 	}
    155       1.1   mycroft 	if (cred == NOCRED)
    156      1.56    provos 		panic("ffs_alloc: missing credential");
    157       1.1   mycroft #endif /* DIAGNOSTIC */
    158       1.1   mycroft 	if (size == fs->fs_bsize && fs->fs_cstotal.cs_nbfree == 0)
    159       1.1   mycroft 		goto nospace;
    160       1.1   mycroft 	if (cred->cr_uid != 0 && freespace(fs, fs->fs_minfree) <= 0)
    161       1.1   mycroft 		goto nospace;
    162       1.1   mycroft #ifdef QUOTA
    163      1.60      fvdl 	if ((error = chkdq(ip, btodb(size), cred, 0)) != 0)
    164       1.1   mycroft 		return (error);
    165       1.1   mycroft #endif
    166       1.1   mycroft 	if (bpref >= fs->fs_size)
    167       1.1   mycroft 		bpref = 0;
    168       1.1   mycroft 	if (bpref == 0)
    169       1.1   mycroft 		cg = ino_to_cg(fs, ip->i_number);
    170       1.1   mycroft 	else
    171       1.1   mycroft 		cg = dtog(fs, bpref);
    172      1.84       dbj 	bno = ffs_hashalloc(ip, cg, bpref, size, ffs_alloccg);
    173       1.1   mycroft 	if (bno > 0) {
    174      1.65  kristerw 		DIP_ADD(ip, blocks, btodb(size));
    175       1.1   mycroft 		ip->i_flag |= IN_CHANGE | IN_UPDATE;
    176       1.1   mycroft 		*bnp = bno;
    177       1.1   mycroft 		return (0);
    178       1.1   mycroft 	}
    179       1.1   mycroft #ifdef QUOTA
    180       1.1   mycroft 	/*
    181       1.1   mycroft 	 * Restore user's disk quota because allocation failed.
    182       1.1   mycroft 	 */
    183      1.60      fvdl 	(void) chkdq(ip, -btodb(size), cred, FORCE);
    184       1.1   mycroft #endif
    185       1.1   mycroft nospace:
    186       1.1   mycroft 	ffs_fserr(fs, cred->cr_uid, "file system full");
    187       1.1   mycroft 	uprintf("\n%s: write failed, file system is full\n", fs->fs_fsmnt);
    188       1.1   mycroft 	return (ENOSPC);
    189       1.1   mycroft }
    190       1.1   mycroft 
    191       1.1   mycroft /*
    192       1.1   mycroft  * Reallocate a fragment to a bigger size
    193       1.1   mycroft  *
    194       1.1   mycroft  * The number and size of the old block is given, and a preference
    195       1.1   mycroft  * and new size is also specified. The allocator attempts to extend
    196       1.1   mycroft  * the original block. Failing that, the regular block allocator is
    197       1.1   mycroft  * invoked to get an appropriate block.
    198       1.1   mycroft  */
    199       1.9  christos int
    200      1.85   thorpej ffs_realloccg(struct inode *ip, daddr_t lbprev, daddr_t bpref, int osize,
    201      1.85   thorpej     int nsize, struct ucred *cred, struct buf **bpp, daddr_t *blknop)
    202       1.1   mycroft {
    203      1.62      fvdl 	struct fs *fs;
    204       1.1   mycroft 	struct buf *bp;
    205       1.1   mycroft 	int cg, request, error;
    206      1.58      fvdl 	daddr_t bprev, bno;
    207      1.25   thorpej 
    208      1.62      fvdl 	fs = ip->i_fs;
    209      1.37       chs #ifdef UVM_PAGE_TRKOWN
    210      1.37       chs 	if (ITOV(ip)->v_type == VREG) {
    211      1.37       chs 		struct vm_page *pg;
    212      1.51       chs 		struct uvm_object *uobj = &ITOV(ip)->v_uobj;
    213      1.49     lukem 		voff_t off = trunc_page(lblktosize(fs, lbprev));
    214      1.49     lukem 		voff_t endoff = round_page(lblktosize(fs, lbprev) + osize);
    215      1.37       chs 
    216      1.37       chs 		simple_lock(&uobj->vmobjlock);
    217      1.37       chs 		while (off < endoff) {
    218      1.37       chs 			pg = uvm_pagelookup(uobj, off);
    219      1.37       chs 			KASSERT(pg != NULL);
    220      1.37       chs 			KASSERT(pg->owner == curproc->p_pid);
    221      1.37       chs 			KASSERT((pg->flags & PG_CLEAN) == 0);
    222      1.37       chs 			off += PAGE_SIZE;
    223      1.37       chs 		}
    224      1.37       chs 		simple_unlock(&uobj->vmobjlock);
    225      1.37       chs 	}
    226      1.37       chs #endif
    227      1.37       chs 
    228       1.1   mycroft #ifdef DIAGNOSTIC
    229       1.1   mycroft 	if ((u_int)osize > fs->fs_bsize || fragoff(fs, osize) != 0 ||
    230       1.1   mycroft 	    (u_int)nsize > fs->fs_bsize || fragoff(fs, nsize) != 0) {
    231      1.13  christos 		printf(
    232       1.1   mycroft 		    "dev = 0x%x, bsize = %d, osize = %d, nsize = %d, fs = %s\n",
    233       1.1   mycroft 		    ip->i_dev, fs->fs_bsize, osize, nsize, fs->fs_fsmnt);
    234       1.1   mycroft 		panic("ffs_realloccg: bad size");
    235       1.1   mycroft 	}
    236       1.1   mycroft 	if (cred == NOCRED)
    237      1.56    provos 		panic("ffs_realloccg: missing credential");
    238       1.1   mycroft #endif /* DIAGNOSTIC */
    239       1.1   mycroft 	if (cred->cr_uid != 0 && freespace(fs, fs->fs_minfree) <= 0)
    240       1.1   mycroft 		goto nospace;
    241      1.60      fvdl 	if (fs->fs_magic == FS_UFS2_MAGIC)
    242      1.60      fvdl 		bprev = ufs_rw64(ip->i_ffs2_db[lbprev], UFS_FSNEEDSWAP(fs));
    243      1.60      fvdl 	else
    244      1.60      fvdl 		bprev = ufs_rw32(ip->i_ffs1_db[lbprev], UFS_FSNEEDSWAP(fs));
    245      1.60      fvdl 
    246      1.60      fvdl 	if (bprev == 0) {
    247      1.59   tsutsui 		printf("dev = 0x%x, bsize = %d, bprev = %" PRId64 ", fs = %s\n",
    248      1.59   tsutsui 		    ip->i_dev, fs->fs_bsize, bprev, fs->fs_fsmnt);
    249       1.1   mycroft 		panic("ffs_realloccg: bad bprev");
    250       1.1   mycroft 	}
    251       1.1   mycroft 	/*
    252       1.1   mycroft 	 * Allocate the extra space in the buffer.
    253       1.1   mycroft 	 */
    254      1.37       chs 	if (bpp != NULL &&
    255      1.37       chs 	    (error = bread(ITOV(ip), lbprev, osize, NOCRED, &bp)) != 0) {
    256       1.1   mycroft 		brelse(bp);
    257       1.1   mycroft 		return (error);
    258       1.1   mycroft 	}
    259       1.1   mycroft #ifdef QUOTA
    260      1.60      fvdl 	if ((error = chkdq(ip, btodb(nsize - osize), cred, 0)) != 0) {
    261      1.44       chs 		if (bpp != NULL) {
    262      1.44       chs 			brelse(bp);
    263      1.44       chs 		}
    264       1.1   mycroft 		return (error);
    265       1.1   mycroft 	}
    266       1.1   mycroft #endif
    267       1.1   mycroft 	/*
    268       1.1   mycroft 	 * Check for extension in the existing location.
    269       1.1   mycroft 	 */
    270       1.1   mycroft 	cg = dtog(fs, bprev);
    271      1.60      fvdl 	if ((bno = ffs_fragextend(ip, cg, bprev, osize, nsize)) != 0) {
    272      1.65  kristerw 		DIP_ADD(ip, blocks, btodb(nsize - osize));
    273       1.1   mycroft 		ip->i_flag |= IN_CHANGE | IN_UPDATE;
    274      1.37       chs 
    275      1.37       chs 		if (bpp != NULL) {
    276      1.37       chs 			if (bp->b_blkno != fsbtodb(fs, bno))
    277      1.37       chs 				panic("bad blockno");
    278      1.72        pk 			allocbuf(bp, nsize, 1);
    279      1.37       chs 			bp->b_flags |= B_DONE;
    280      1.37       chs 			memset(bp->b_data + osize, 0, nsize - osize);
    281      1.37       chs 			*bpp = bp;
    282      1.37       chs 		}
    283      1.37       chs 		if (blknop != NULL) {
    284      1.37       chs 			*blknop = bno;
    285      1.37       chs 		}
    286       1.1   mycroft 		return (0);
    287       1.1   mycroft 	}
    288       1.1   mycroft 	/*
    289       1.1   mycroft 	 * Allocate a new disk location.
    290       1.1   mycroft 	 */
    291       1.1   mycroft 	if (bpref >= fs->fs_size)
    292       1.1   mycroft 		bpref = 0;
    293       1.1   mycroft 	switch ((int)fs->fs_optim) {
    294       1.1   mycroft 	case FS_OPTSPACE:
    295       1.1   mycroft 		/*
    296      1.81     perry 		 * Allocate an exact sized fragment. Although this makes
    297      1.81     perry 		 * best use of space, we will waste time relocating it if
    298       1.1   mycroft 		 * the file continues to grow. If the fragmentation is
    299       1.1   mycroft 		 * less than half of the minimum free reserve, we choose
    300       1.1   mycroft 		 * to begin optimizing for time.
    301       1.1   mycroft 		 */
    302       1.1   mycroft 		request = nsize;
    303       1.1   mycroft 		if (fs->fs_minfree < 5 ||
    304       1.1   mycroft 		    fs->fs_cstotal.cs_nffree >
    305       1.1   mycroft 		    fs->fs_dsize * fs->fs_minfree / (2 * 100))
    306       1.1   mycroft 			break;
    307      1.34  jdolecek 
    308      1.34  jdolecek 		if (ffs_log_changeopt) {
    309      1.34  jdolecek 			log(LOG_NOTICE,
    310      1.34  jdolecek 				"%s: optimization changed from SPACE to TIME\n",
    311      1.34  jdolecek 				fs->fs_fsmnt);
    312      1.34  jdolecek 		}
    313      1.34  jdolecek 
    314       1.1   mycroft 		fs->fs_optim = FS_OPTTIME;
    315       1.1   mycroft 		break;
    316       1.1   mycroft 	case FS_OPTTIME:
    317       1.1   mycroft 		/*
    318       1.1   mycroft 		 * At this point we have discovered a file that is trying to
    319       1.1   mycroft 		 * grow a small fragment to a larger fragment. To save time,
    320       1.1   mycroft 		 * we allocate a full sized block, then free the unused portion.
    321       1.1   mycroft 		 * If the file continues to grow, the `ffs_fragextend' call
    322       1.1   mycroft 		 * above will be able to grow it in place without further
    323       1.1   mycroft 		 * copying. If aberrant programs cause disk fragmentation to
    324       1.1   mycroft 		 * grow within 2% of the free reserve, we choose to begin
    325       1.1   mycroft 		 * optimizing for space.
    326       1.1   mycroft 		 */
    327       1.1   mycroft 		request = fs->fs_bsize;
    328       1.1   mycroft 		if (fs->fs_cstotal.cs_nffree <
    329       1.1   mycroft 		    fs->fs_dsize * (fs->fs_minfree - 2) / 100)
    330       1.1   mycroft 			break;
    331      1.34  jdolecek 
    332      1.34  jdolecek 		if (ffs_log_changeopt) {
    333      1.34  jdolecek 			log(LOG_NOTICE,
    334      1.34  jdolecek 				"%s: optimization changed from TIME to SPACE\n",
    335      1.34  jdolecek 				fs->fs_fsmnt);
    336      1.34  jdolecek 		}
    337      1.34  jdolecek 
    338       1.1   mycroft 		fs->fs_optim = FS_OPTSPACE;
    339       1.1   mycroft 		break;
    340       1.1   mycroft 	default:
    341      1.13  christos 		printf("dev = 0x%x, optim = %d, fs = %s\n",
    342       1.1   mycroft 		    ip->i_dev, fs->fs_optim, fs->fs_fsmnt);
    343       1.1   mycroft 		panic("ffs_realloccg: bad optim");
    344       1.1   mycroft 		/* NOTREACHED */
    345       1.1   mycroft 	}
    346      1.58      fvdl 	bno = ffs_hashalloc(ip, cg, bpref, request, ffs_alloccg);
    347       1.1   mycroft 	if (bno > 0) {
    348      1.30      fvdl 		if (!DOINGSOFTDEP(ITOV(ip)))
    349      1.76   hannken 			ffs_blkfree(fs, ip->i_devvp, bprev, (long)osize,
    350      1.76   hannken 			    ip->i_number);
    351       1.1   mycroft 		if (nsize < request)
    352      1.76   hannken 			ffs_blkfree(fs, ip->i_devvp, bno + numfrags(fs, nsize),
    353      1.76   hannken 			    (long)(request - nsize), ip->i_number);
    354      1.65  kristerw 		DIP_ADD(ip, blocks, btodb(nsize - osize));
    355       1.1   mycroft 		ip->i_flag |= IN_CHANGE | IN_UPDATE;
    356      1.37       chs 		if (bpp != NULL) {
    357      1.37       chs 			bp->b_blkno = fsbtodb(fs, bno);
    358      1.72        pk 			allocbuf(bp, nsize, 1);
    359      1.37       chs 			bp->b_flags |= B_DONE;
    360      1.37       chs 			memset(bp->b_data + osize, 0, (u_int)nsize - osize);
    361      1.37       chs 			*bpp = bp;
    362      1.37       chs 		}
    363      1.37       chs 		if (blknop != NULL) {
    364      1.37       chs 			*blknop = bno;
    365      1.37       chs 		}
    366       1.1   mycroft 		return (0);
    367       1.1   mycroft 	}
    368       1.1   mycroft #ifdef QUOTA
    369       1.1   mycroft 	/*
    370       1.1   mycroft 	 * Restore user's disk quota because allocation failed.
    371       1.1   mycroft 	 */
    372      1.60      fvdl 	(void) chkdq(ip, -btodb(nsize - osize), cred, FORCE);
    373       1.1   mycroft #endif
    374      1.37       chs 	if (bpp != NULL) {
    375      1.37       chs 		brelse(bp);
    376      1.37       chs 	}
    377      1.37       chs 
    378       1.1   mycroft nospace:
    379       1.1   mycroft 	/*
    380       1.1   mycroft 	 * no space available
    381       1.1   mycroft 	 */
    382       1.1   mycroft 	ffs_fserr(fs, cred->cr_uid, "file system full");
    383       1.1   mycroft 	uprintf("\n%s: write failed, file system is full\n", fs->fs_fsmnt);
    384       1.1   mycroft 	return (ENOSPC);
    385       1.1   mycroft }
    386       1.1   mycroft 
    387  1.87.2.1      yamt #if 0
    388       1.1   mycroft /*
    389       1.1   mycroft  * Reallocate a sequence of blocks into a contiguous sequence of blocks.
    390       1.1   mycroft  *
    391       1.1   mycroft  * The vnode and an array of buffer pointers for a range of sequential
    392       1.1   mycroft  * logical blocks to be made contiguous is given. The allocator attempts
    393      1.60      fvdl  * to find a range of sequential blocks starting as close as possible
    394      1.60      fvdl  * from the end of the allocation for the logical block immediately
    395      1.60      fvdl  * preceding the current range. If successful, the physical block numbers
    396      1.60      fvdl  * in the buffer pointers and in the inode are changed to reflect the new
    397      1.60      fvdl  * allocation. If unsuccessful, the allocation is left unchanged. The
    398      1.60      fvdl  * success in doing the reallocation is returned. Note that the error
    399      1.60      fvdl  * return is not reflected back to the user. Rather the previous block
    400      1.60      fvdl  * allocation will be used.
    401      1.60      fvdl 
    402       1.1   mycroft  */
    403      1.55      matt #ifdef XXXUBC
    404       1.3   mycroft #ifdef DEBUG
    405       1.1   mycroft #include <sys/sysctl.h>
    406       1.5   mycroft int prtrealloc = 0;
    407       1.5   mycroft struct ctldebug debug15 = { "prtrealloc", &prtrealloc };
    408       1.1   mycroft #endif
    409      1.55      matt #endif
    410       1.1   mycroft 
    411      1.60      fvdl /*
    412      1.60      fvdl  * NOTE: when re-enabling this, it must be updated for UFS2.
    413      1.60      fvdl  */
    414      1.60      fvdl 
    415      1.18      fvdl int doasyncfree = 1;
    416      1.18      fvdl 
    417       1.1   mycroft int
    418      1.85   thorpej ffs_reallocblks(void *v)
    419       1.9  christos {
    420      1.55      matt #ifdef XXXUBC
    421       1.1   mycroft 	struct vop_reallocblks_args /* {
    422       1.1   mycroft 		struct vnode *a_vp;
    423       1.1   mycroft 		struct cluster_save *a_buflist;
    424       1.9  christos 	} */ *ap = v;
    425       1.1   mycroft 	struct fs *fs;
    426       1.1   mycroft 	struct inode *ip;
    427       1.1   mycroft 	struct vnode *vp;
    428       1.1   mycroft 	struct buf *sbp, *ebp;
    429      1.58      fvdl 	int32_t *bap, *ebap = NULL, *sbap;	/* XXX ondisk32 */
    430       1.1   mycroft 	struct cluster_save *buflist;
    431      1.58      fvdl 	daddr_t start_lbn, end_lbn, soff, newblk, blkno;
    432       1.1   mycroft 	struct indir start_ap[NIADDR + 1], end_ap[NIADDR + 1], *idp;
    433       1.1   mycroft 	int i, len, start_lvl, end_lvl, pref, ssize;
    434      1.55      matt #endif /* XXXUBC */
    435       1.1   mycroft 
    436      1.37       chs 	/* XXXUBC don't reallocblks for now */
    437      1.37       chs 	return ENOSPC;
    438      1.37       chs 
    439      1.55      matt #ifdef XXXUBC
    440       1.1   mycroft 	vp = ap->a_vp;
    441       1.1   mycroft 	ip = VTOI(vp);
    442       1.1   mycroft 	fs = ip->i_fs;
    443       1.1   mycroft 	if (fs->fs_contigsumsize <= 0)
    444       1.1   mycroft 		return (ENOSPC);
    445       1.1   mycroft 	buflist = ap->a_buflist;
    446       1.1   mycroft 	len = buflist->bs_nchildren;
    447       1.1   mycroft 	start_lbn = buflist->bs_children[0]->b_lblkno;
    448       1.1   mycroft 	end_lbn = start_lbn + len - 1;
    449       1.1   mycroft #ifdef DIAGNOSTIC
    450      1.18      fvdl 	for (i = 0; i < len; i++)
    451      1.18      fvdl 		if (!ffs_checkblk(ip,
    452      1.18      fvdl 		   dbtofsb(fs, buflist->bs_children[i]->b_blkno), fs->fs_bsize))
    453      1.18      fvdl 			panic("ffs_reallocblks: unallocated block 1");
    454       1.1   mycroft 	for (i = 1; i < len; i++)
    455       1.1   mycroft 		if (buflist->bs_children[i]->b_lblkno != start_lbn + i)
    456      1.18      fvdl 			panic("ffs_reallocblks: non-logical cluster");
    457      1.18      fvdl 	blkno = buflist->bs_children[0]->b_blkno;
    458      1.18      fvdl 	ssize = fsbtodb(fs, fs->fs_frag);
    459      1.18      fvdl 	for (i = 1; i < len - 1; i++)
    460      1.18      fvdl 		if (buflist->bs_children[i]->b_blkno != blkno + (i * ssize))
    461      1.18      fvdl 			panic("ffs_reallocblks: non-physical cluster %d", i);
    462       1.1   mycroft #endif
    463       1.1   mycroft 	/*
    464       1.1   mycroft 	 * If the latest allocation is in a new cylinder group, assume that
    465       1.1   mycroft 	 * the filesystem has decided to move and do not force it back to
    466       1.1   mycroft 	 * the previous cylinder group.
    467       1.1   mycroft 	 */
    468       1.1   mycroft 	if (dtog(fs, dbtofsb(fs, buflist->bs_children[0]->b_blkno)) !=
    469       1.1   mycroft 	    dtog(fs, dbtofsb(fs, buflist->bs_children[len - 1]->b_blkno)))
    470       1.1   mycroft 		return (ENOSPC);
    471       1.1   mycroft 	if (ufs_getlbns(vp, start_lbn, start_ap, &start_lvl) ||
    472       1.1   mycroft 	    ufs_getlbns(vp, end_lbn, end_ap, &end_lvl))
    473       1.1   mycroft 		return (ENOSPC);
    474       1.1   mycroft 	/*
    475       1.1   mycroft 	 * Get the starting offset and block map for the first block.
    476       1.1   mycroft 	 */
    477       1.1   mycroft 	if (start_lvl == 0) {
    478      1.60      fvdl 		sbap = &ip->i_ffs1_db[0];
    479       1.1   mycroft 		soff = start_lbn;
    480       1.1   mycroft 	} else {
    481       1.1   mycroft 		idp = &start_ap[start_lvl - 1];
    482       1.1   mycroft 		if (bread(vp, idp->in_lbn, (int)fs->fs_bsize, NOCRED, &sbp)) {
    483       1.1   mycroft 			brelse(sbp);
    484       1.1   mycroft 			return (ENOSPC);
    485       1.1   mycroft 		}
    486      1.60      fvdl 		sbap = (int32_t *)sbp->b_data;
    487       1.1   mycroft 		soff = idp->in_off;
    488       1.1   mycroft 	}
    489       1.1   mycroft 	/*
    490       1.1   mycroft 	 * Find the preferred location for the cluster.
    491       1.1   mycroft 	 */
    492       1.1   mycroft 	pref = ffs_blkpref(ip, start_lbn, soff, sbap);
    493       1.1   mycroft 	/*
    494       1.1   mycroft 	 * If the block range spans two block maps, get the second map.
    495       1.1   mycroft 	 */
    496       1.1   mycroft 	if (end_lvl == 0 || (idp = &end_ap[end_lvl - 1])->in_off + 1 >= len) {
    497       1.1   mycroft 		ssize = len;
    498       1.1   mycroft 	} else {
    499       1.1   mycroft #ifdef DIAGNOSTIC
    500       1.1   mycroft 		if (start_ap[start_lvl-1].in_lbn == idp->in_lbn)
    501       1.1   mycroft 			panic("ffs_reallocblk: start == end");
    502       1.1   mycroft #endif
    503       1.1   mycroft 		ssize = len - (idp->in_off + 1);
    504       1.1   mycroft 		if (bread(vp, idp->in_lbn, (int)fs->fs_bsize, NOCRED, &ebp))
    505       1.1   mycroft 			goto fail;
    506      1.58      fvdl 		ebap = (int32_t *)ebp->b_data;	/* XXX ondisk32 */
    507       1.1   mycroft 	}
    508       1.1   mycroft 	/*
    509       1.1   mycroft 	 * Search the block map looking for an allocation of the desired size.
    510       1.1   mycroft 	 */
    511      1.58      fvdl 	if ((newblk = (daddr_t)ffs_hashalloc(ip, dtog(fs, pref), (long)pref,
    512       1.9  christos 	    len, ffs_clusteralloc)) == 0)
    513       1.1   mycroft 		goto fail;
    514       1.1   mycroft 	/*
    515       1.1   mycroft 	 * We have found a new contiguous block.
    516       1.1   mycroft 	 *
    517       1.1   mycroft 	 * First we have to replace the old block pointers with the new
    518       1.1   mycroft 	 * block pointers in the inode and indirect blocks associated
    519       1.1   mycroft 	 * with the file.
    520       1.1   mycroft 	 */
    521       1.5   mycroft #ifdef DEBUG
    522       1.5   mycroft 	if (prtrealloc)
    523      1.13  christos 		printf("realloc: ino %d, lbns %d-%d\n\told:", ip->i_number,
    524       1.5   mycroft 		    start_lbn, end_lbn);
    525       1.5   mycroft #endif
    526       1.1   mycroft 	blkno = newblk;
    527       1.1   mycroft 	for (bap = &sbap[soff], i = 0; i < len; i++, blkno += fs->fs_frag) {
    528      1.58      fvdl 		daddr_t ba;
    529      1.30      fvdl 
    530      1.30      fvdl 		if (i == ssize) {
    531       1.1   mycroft 			bap = ebap;
    532      1.30      fvdl 			soff = -i;
    533      1.30      fvdl 		}
    534      1.58      fvdl 		/* XXX ondisk32 */
    535      1.30      fvdl 		ba = ufs_rw32(*bap, UFS_FSNEEDSWAP(fs));
    536       1.1   mycroft #ifdef DIAGNOSTIC
    537      1.18      fvdl 		if (!ffs_checkblk(ip,
    538      1.18      fvdl 		   dbtofsb(fs, buflist->bs_children[i]->b_blkno), fs->fs_bsize))
    539      1.18      fvdl 			panic("ffs_reallocblks: unallocated block 2");
    540      1.30      fvdl 		if (dbtofsb(fs, buflist->bs_children[i]->b_blkno) != ba)
    541       1.1   mycroft 			panic("ffs_reallocblks: alloc mismatch");
    542       1.1   mycroft #endif
    543       1.5   mycroft #ifdef DEBUG
    544       1.5   mycroft 		if (prtrealloc)
    545      1.30      fvdl 			printf(" %d,", ba);
    546       1.5   mycroft #endif
    547      1.30      fvdl  		if (DOINGSOFTDEP(vp)) {
    548      1.60      fvdl  			if (sbap == &ip->i_ffs1_db[0] && i < ssize)
    549      1.30      fvdl  				softdep_setup_allocdirect(ip, start_lbn + i,
    550      1.30      fvdl  				    blkno, ba, fs->fs_bsize, fs->fs_bsize,
    551      1.30      fvdl  				    buflist->bs_children[i]);
    552      1.30      fvdl  			else
    553      1.30      fvdl  				softdep_setup_allocindir_page(ip, start_lbn + i,
    554      1.30      fvdl  				    i < ssize ? sbp : ebp, soff + i, blkno,
    555      1.30      fvdl  				    ba, buflist->bs_children[i]);
    556      1.30      fvdl  		}
    557      1.58      fvdl 		/* XXX ondisk32 */
    558      1.80   mycroft 		*bap++ = ufs_rw32((u_int32_t)blkno, UFS_FSNEEDSWAP(fs));
    559       1.1   mycroft 	}
    560       1.1   mycroft 	/*
    561       1.1   mycroft 	 * Next we must write out the modified inode and indirect blocks.
    562       1.1   mycroft 	 * For strict correctness, the writes should be synchronous since
    563       1.1   mycroft 	 * the old block values may have been written to disk. In practise
    564      1.81     perry 	 * they are almost never written, but if we are concerned about
    565       1.1   mycroft 	 * strict correctness, the `doasyncfree' flag should be set to zero.
    566       1.1   mycroft 	 *
    567       1.1   mycroft 	 * The test on `doasyncfree' should be changed to test a flag
    568       1.1   mycroft 	 * that shows whether the associated buffers and inodes have
    569       1.1   mycroft 	 * been written. The flag should be set when the cluster is
    570       1.1   mycroft 	 * started and cleared whenever the buffer or inode is flushed.
    571       1.1   mycroft 	 * We can then check below to see if it is set, and do the
    572       1.1   mycroft 	 * synchronous write only when it has been cleared.
    573       1.1   mycroft 	 */
    574      1.60      fvdl 	if (sbap != &ip->i_ffs1_db[0]) {
    575       1.1   mycroft 		if (doasyncfree)
    576       1.1   mycroft 			bdwrite(sbp);
    577       1.1   mycroft 		else
    578       1.1   mycroft 			bwrite(sbp);
    579       1.1   mycroft 	} else {
    580       1.1   mycroft 		ip->i_flag |= IN_CHANGE | IN_UPDATE;
    581      1.28   mycroft 		if (!doasyncfree)
    582  1.87.2.2      yamt 			ffs_update(vp, NULL, NULL, 1);
    583       1.1   mycroft 	}
    584      1.25   thorpej 	if (ssize < len) {
    585       1.1   mycroft 		if (doasyncfree)
    586       1.1   mycroft 			bdwrite(ebp);
    587       1.1   mycroft 		else
    588       1.1   mycroft 			bwrite(ebp);
    589      1.25   thorpej 	}
    590       1.1   mycroft 	/*
    591       1.1   mycroft 	 * Last, free the old blocks and assign the new blocks to the buffers.
    592       1.1   mycroft 	 */
    593       1.5   mycroft #ifdef DEBUG
    594       1.5   mycroft 	if (prtrealloc)
    595      1.13  christos 		printf("\n\tnew:");
    596       1.5   mycroft #endif
    597       1.1   mycroft 	for (blkno = newblk, i = 0; i < len; i++, blkno += fs->fs_frag) {
    598      1.30      fvdl 		if (!DOINGSOFTDEP(vp))
    599      1.76   hannken 			ffs_blkfree(fs, ip->i_devvp,
    600      1.30      fvdl 			    dbtofsb(fs, buflist->bs_children[i]->b_blkno),
    601      1.76   hannken 			    fs->fs_bsize, ip->i_number);
    602       1.1   mycroft 		buflist->bs_children[i]->b_blkno = fsbtodb(fs, blkno);
    603       1.5   mycroft #ifdef DEBUG
    604      1.18      fvdl 		if (!ffs_checkblk(ip,
    605      1.18      fvdl 		   dbtofsb(fs, buflist->bs_children[i]->b_blkno), fs->fs_bsize))
    606      1.18      fvdl 			panic("ffs_reallocblks: unallocated block 3");
    607       1.5   mycroft 		if (prtrealloc)
    608      1.13  christos 			printf(" %d,", blkno);
    609       1.5   mycroft #endif
    610       1.5   mycroft 	}
    611       1.5   mycroft #ifdef DEBUG
    612       1.5   mycroft 	if (prtrealloc) {
    613       1.5   mycroft 		prtrealloc--;
    614      1.13  christos 		printf("\n");
    615       1.1   mycroft 	}
    616       1.5   mycroft #endif
    617       1.1   mycroft 	return (0);
    618       1.1   mycroft 
    619       1.1   mycroft fail:
    620       1.1   mycroft 	if (ssize < len)
    621       1.1   mycroft 		brelse(ebp);
    622      1.60      fvdl 	if (sbap != &ip->i_ffs1_db[0])
    623       1.1   mycroft 		brelse(sbp);
    624       1.1   mycroft 	return (ENOSPC);
    625      1.55      matt #endif /* XXXUBC */
    626       1.1   mycroft }
    627  1.87.2.1      yamt #endif /* 0 */
    628       1.1   mycroft 
    629       1.1   mycroft /*
    630       1.1   mycroft  * Allocate an inode in the file system.
    631      1.81     perry  *
    632       1.1   mycroft  * If allocating a directory, use ffs_dirpref to select the inode.
    633       1.1   mycroft  * If allocating in a directory, the following hierarchy is followed:
    634       1.1   mycroft  *   1) allocate the preferred inode.
    635       1.1   mycroft  *   2) allocate an inode in the same cylinder group.
    636       1.1   mycroft  *   3) quadradically rehash into other cylinder groups, until an
    637       1.1   mycroft  *      available inode is located.
    638      1.47       wiz  * If no inode preference is given the following hierarchy is used
    639       1.1   mycroft  * to allocate an inode:
    640       1.1   mycroft  *   1) allocate an inode in cylinder group 0.
    641       1.1   mycroft  *   2) quadradically rehash into other cylinder groups, until an
    642       1.1   mycroft  *      available inode is located.
    643       1.1   mycroft  */
    644       1.9  christos int
    645  1.87.2.1      yamt ffs_valloc(struct vnode *pvp, int mode, struct ucred *cred,
    646  1.87.2.1      yamt     struct vnode **vpp)
    647       1.9  christos {
    648      1.33  augustss 	struct inode *pip;
    649      1.33  augustss 	struct fs *fs;
    650      1.33  augustss 	struct inode *ip;
    651      1.60      fvdl 	struct timespec ts;
    652       1.1   mycroft 	ino_t ino, ipref;
    653       1.1   mycroft 	int cg, error;
    654      1.81     perry 
    655  1.87.2.1      yamt 	*vpp = NULL;
    656       1.1   mycroft 	pip = VTOI(pvp);
    657       1.1   mycroft 	fs = pip->i_fs;
    658       1.1   mycroft 	if (fs->fs_cstotal.cs_nifree == 0)
    659       1.1   mycroft 		goto noinodes;
    660       1.1   mycroft 
    661       1.1   mycroft 	if ((mode & IFMT) == IFDIR)
    662      1.50     lukem 		ipref = ffs_dirpref(pip);
    663      1.50     lukem 	else
    664      1.50     lukem 		ipref = pip->i_number;
    665       1.1   mycroft 	if (ipref >= fs->fs_ncg * fs->fs_ipg)
    666       1.1   mycroft 		ipref = 0;
    667       1.1   mycroft 	cg = ino_to_cg(fs, ipref);
    668      1.50     lukem 	/*
    669      1.50     lukem 	 * Track number of dirs created one after another
    670      1.50     lukem 	 * in a same cg without intervening by files.
    671      1.50     lukem 	 */
    672      1.50     lukem 	if ((mode & IFMT) == IFDIR) {
    673      1.63      fvdl 		if (fs->fs_contigdirs[cg] < 255)
    674      1.50     lukem 			fs->fs_contigdirs[cg]++;
    675      1.50     lukem 	} else {
    676      1.50     lukem 		if (fs->fs_contigdirs[cg] > 0)
    677      1.50     lukem 			fs->fs_contigdirs[cg]--;
    678      1.50     lukem 	}
    679      1.60      fvdl 	ino = (ino_t)ffs_hashalloc(pip, cg, ipref, mode, ffs_nodealloccg);
    680       1.1   mycroft 	if (ino == 0)
    681       1.1   mycroft 		goto noinodes;
    682  1.87.2.1      yamt 	error = VFS_VGET(pvp->v_mount, ino, vpp);
    683       1.1   mycroft 	if (error) {
    684  1.87.2.2      yamt 		ffs_vfree(pvp, ino, mode);
    685       1.1   mycroft 		return (error);
    686       1.1   mycroft 	}
    687  1.87.2.1      yamt 	ip = VTOI(*vpp);
    688      1.60      fvdl 	if (ip->i_mode) {
    689      1.60      fvdl #if 0
    690      1.13  christos 		printf("mode = 0%o, inum = %d, fs = %s\n",
    691      1.60      fvdl 		    ip->i_mode, ip->i_number, fs->fs_fsmnt);
    692      1.60      fvdl #else
    693      1.60      fvdl 		printf("dmode %x mode %x dgen %x gen %x\n",
    694      1.60      fvdl 		    DIP(ip, mode), ip->i_mode,
    695      1.60      fvdl 		    DIP(ip, gen), ip->i_gen);
    696      1.60      fvdl 		printf("size %llx blocks %llx\n",
    697      1.60      fvdl 		    (long long)DIP(ip, size), (long long)DIP(ip, blocks));
    698      1.86  christos 		printf("ino %llu ipref %llu\n", (unsigned long long)ino,
    699      1.86  christos 		    (unsigned long long)ipref);
    700      1.60      fvdl #if 0
    701      1.60      fvdl 		error = bread(ump->um_devvp, fsbtodb(fs, ino_to_fsba(fs, ino)),
    702      1.60      fvdl 		    (int)fs->fs_bsize, NOCRED, &bp);
    703      1.60      fvdl #endif
    704      1.60      fvdl 
    705      1.60      fvdl #endif
    706       1.1   mycroft 		panic("ffs_valloc: dup alloc");
    707       1.1   mycroft 	}
    708      1.60      fvdl 	if (DIP(ip, blocks)) {				/* XXX */
    709      1.86  christos 		printf("free inode %s/%llu had %" PRId64 " blocks\n",
    710      1.86  christos 		    fs->fs_fsmnt, (unsigned long long)ino, DIP(ip, blocks));
    711      1.65  kristerw 		DIP_ASSIGN(ip, blocks, 0);
    712       1.1   mycroft 	}
    713      1.57   hannken 	ip->i_flag &= ~IN_SPACECOUNTED;
    714      1.61      fvdl 	ip->i_flags = 0;
    715      1.65  kristerw 	DIP_ASSIGN(ip, flags, 0);
    716       1.1   mycroft 	/*
    717       1.1   mycroft 	 * Set up a new generation number for this inode.
    718       1.1   mycroft 	 */
    719      1.60      fvdl 	ip->i_gen++;
    720      1.65  kristerw 	DIP_ASSIGN(ip, gen, ip->i_gen);
    721      1.60      fvdl 	if (fs->fs_magic == FS_UFS2_MAGIC) {
    722      1.87      yamt 		nanotime(&ts);
    723      1.60      fvdl 		ip->i_ffs2_birthtime = ts.tv_sec;
    724      1.60      fvdl 		ip->i_ffs2_birthnsec = ts.tv_nsec;
    725      1.60      fvdl 	}
    726       1.1   mycroft 	return (0);
    727       1.1   mycroft noinodes:
    728  1.87.2.1      yamt 	ffs_fserr(fs, cred->cr_uid, "out of inodes");
    729       1.1   mycroft 	uprintf("\n%s: create/symlink failed, no inodes free\n", fs->fs_fsmnt);
    730       1.1   mycroft 	return (ENOSPC);
    731       1.1   mycroft }
    732       1.1   mycroft 
    733       1.1   mycroft /*
    734      1.50     lukem  * Find a cylinder group in which to place a directory.
    735      1.42  sommerfe  *
    736      1.50     lukem  * The policy implemented by this algorithm is to allocate a
    737      1.50     lukem  * directory inode in the same cylinder group as its parent
    738      1.50     lukem  * directory, but also to reserve space for its files inodes
    739      1.50     lukem  * and data. Restrict the number of directories which may be
    740      1.50     lukem  * allocated one after another in the same cylinder group
    741      1.50     lukem  * without intervening allocation of files.
    742      1.42  sommerfe  *
    743      1.50     lukem  * If we allocate a first level directory then force allocation
    744      1.50     lukem  * in another cylinder group.
    745       1.1   mycroft  */
    746       1.1   mycroft static ino_t
    747      1.85   thorpej ffs_dirpref(struct inode *pip)
    748       1.1   mycroft {
    749      1.50     lukem 	register struct fs *fs;
    750      1.74     soren 	int cg, prefcg;
    751      1.74     soren 	int64_t dirsize, cgsize;
    752      1.50     lukem 	int avgifree, avgbfree, avgndir, curdirsize;
    753      1.50     lukem 	int minifree, minbfree, maxndir;
    754      1.50     lukem 	int mincg, minndir;
    755      1.50     lukem 	int maxcontigdirs;
    756      1.50     lukem 
    757      1.50     lukem 	fs = pip->i_fs;
    758       1.1   mycroft 
    759       1.1   mycroft 	avgifree = fs->fs_cstotal.cs_nifree / fs->fs_ncg;
    760      1.50     lukem 	avgbfree = fs->fs_cstotal.cs_nbfree / fs->fs_ncg;
    761      1.50     lukem 	avgndir = fs->fs_cstotal.cs_ndir / fs->fs_ncg;
    762      1.50     lukem 
    763      1.50     lukem 	/*
    764      1.50     lukem 	 * Force allocation in another cg if creating a first level dir.
    765      1.50     lukem 	 */
    766      1.50     lukem 	if (ITOV(pip)->v_flag & VROOT) {
    767      1.71   mycroft 		prefcg = random() % fs->fs_ncg;
    768      1.50     lukem 		mincg = prefcg;
    769      1.50     lukem 		minndir = fs->fs_ipg;
    770      1.50     lukem 		for (cg = prefcg; cg < fs->fs_ncg; cg++)
    771      1.50     lukem 			if (fs->fs_cs(fs, cg).cs_ndir < minndir &&
    772      1.50     lukem 			    fs->fs_cs(fs, cg).cs_nifree >= avgifree &&
    773      1.50     lukem 			    fs->fs_cs(fs, cg).cs_nbfree >= avgbfree) {
    774      1.42  sommerfe 				mincg = cg;
    775      1.50     lukem 				minndir = fs->fs_cs(fs, cg).cs_ndir;
    776      1.42  sommerfe 			}
    777      1.50     lukem 		for (cg = 0; cg < prefcg; cg++)
    778      1.50     lukem 			if (fs->fs_cs(fs, cg).cs_ndir < minndir &&
    779      1.50     lukem 			    fs->fs_cs(fs, cg).cs_nifree >= avgifree &&
    780      1.50     lukem 			    fs->fs_cs(fs, cg).cs_nbfree >= avgbfree) {
    781      1.50     lukem 				mincg = cg;
    782      1.50     lukem 				minndir = fs->fs_cs(fs, cg).cs_ndir;
    783      1.42  sommerfe 			}
    784      1.50     lukem 		return ((ino_t)(fs->fs_ipg * mincg));
    785      1.42  sommerfe 	}
    786      1.50     lukem 
    787      1.50     lukem 	/*
    788      1.50     lukem 	 * Count various limits which used for
    789      1.50     lukem 	 * optimal allocation of a directory inode.
    790      1.50     lukem 	 */
    791      1.50     lukem 	maxndir = min(avgndir + fs->fs_ipg / 16, fs->fs_ipg);
    792      1.50     lukem 	minifree = avgifree - fs->fs_ipg / 4;
    793      1.50     lukem 	if (minifree < 0)
    794      1.50     lukem 		minifree = 0;
    795      1.54   mycroft 	minbfree = avgbfree - fragstoblks(fs, fs->fs_fpg) / 4;
    796      1.50     lukem 	if (minbfree < 0)
    797      1.50     lukem 		minbfree = 0;
    798      1.50     lukem 	cgsize = fs->fs_fsize * fs->fs_fpg;
    799      1.50     lukem 	dirsize = fs->fs_avgfilesize * fs->fs_avgfpdir;
    800      1.50     lukem 	curdirsize = avgndir ? (cgsize - avgbfree * fs->fs_bsize) / avgndir : 0;
    801      1.50     lukem 	if (dirsize < curdirsize)
    802      1.50     lukem 		dirsize = curdirsize;
    803      1.50     lukem 	maxcontigdirs = min(cgsize / dirsize, 255);
    804      1.50     lukem 	if (fs->fs_avgfpdir > 0)
    805      1.50     lukem 		maxcontigdirs = min(maxcontigdirs,
    806      1.50     lukem 				    fs->fs_ipg / fs->fs_avgfpdir);
    807      1.50     lukem 	if (maxcontigdirs == 0)
    808      1.50     lukem 		maxcontigdirs = 1;
    809      1.50     lukem 
    810      1.50     lukem 	/*
    811      1.81     perry 	 * Limit number of dirs in one cg and reserve space for
    812      1.50     lukem 	 * regular files, but only if we have no deficit in
    813      1.50     lukem 	 * inodes or space.
    814      1.50     lukem 	 */
    815      1.50     lukem 	prefcg = ino_to_cg(fs, pip->i_number);
    816      1.50     lukem 	for (cg = prefcg; cg < fs->fs_ncg; cg++)
    817      1.50     lukem 		if (fs->fs_cs(fs, cg).cs_ndir < maxndir &&
    818      1.50     lukem 		    fs->fs_cs(fs, cg).cs_nifree >= minifree &&
    819      1.50     lukem 	    	    fs->fs_cs(fs, cg).cs_nbfree >= minbfree) {
    820      1.50     lukem 			if (fs->fs_contigdirs[cg] < maxcontigdirs)
    821      1.50     lukem 				return ((ino_t)(fs->fs_ipg * cg));
    822      1.50     lukem 		}
    823      1.50     lukem 	for (cg = 0; cg < prefcg; cg++)
    824      1.50     lukem 		if (fs->fs_cs(fs, cg).cs_ndir < maxndir &&
    825      1.50     lukem 		    fs->fs_cs(fs, cg).cs_nifree >= minifree &&
    826      1.50     lukem 	    	    fs->fs_cs(fs, cg).cs_nbfree >= minbfree) {
    827      1.50     lukem 			if (fs->fs_contigdirs[cg] < maxcontigdirs)
    828      1.50     lukem 				return ((ino_t)(fs->fs_ipg * cg));
    829      1.50     lukem 		}
    830      1.50     lukem 	/*
    831      1.50     lukem 	 * This is a backstop when we are deficient in space.
    832      1.50     lukem 	 */
    833      1.50     lukem 	for (cg = prefcg; cg < fs->fs_ncg; cg++)
    834      1.50     lukem 		if (fs->fs_cs(fs, cg).cs_nifree >= avgifree)
    835      1.50     lukem 			return ((ino_t)(fs->fs_ipg * cg));
    836      1.50     lukem 	for (cg = 0; cg < prefcg; cg++)
    837      1.50     lukem 		if (fs->fs_cs(fs, cg).cs_nifree >= avgifree)
    838      1.50     lukem 			break;
    839      1.50     lukem 	return ((ino_t)(fs->fs_ipg * cg));
    840       1.1   mycroft }
    841       1.1   mycroft 
    842       1.1   mycroft /*
    843       1.1   mycroft  * Select the desired position for the next block in a file.  The file is
    844       1.1   mycroft  * logically divided into sections. The first section is composed of the
    845       1.1   mycroft  * direct blocks. Each additional section contains fs_maxbpg blocks.
    846      1.81     perry  *
    847       1.1   mycroft  * If no blocks have been allocated in the first section, the policy is to
    848       1.1   mycroft  * request a block in the same cylinder group as the inode that describes
    849       1.1   mycroft  * the file. If no blocks have been allocated in any other section, the
    850       1.1   mycroft  * policy is to place the section in a cylinder group with a greater than
    851       1.1   mycroft  * average number of free blocks.  An appropriate cylinder group is found
    852       1.1   mycroft  * by using a rotor that sweeps the cylinder groups. When a new group of
    853       1.1   mycroft  * blocks is needed, the sweep begins in the cylinder group following the
    854       1.1   mycroft  * cylinder group from which the previous allocation was made. The sweep
    855       1.1   mycroft  * continues until a cylinder group with greater than the average number
    856       1.1   mycroft  * of free blocks is found. If the allocation is for the first block in an
    857       1.1   mycroft  * indirect block, the information on the previous allocation is unavailable;
    858       1.1   mycroft  * here a best guess is made based upon the logical block number being
    859       1.1   mycroft  * allocated.
    860      1.81     perry  *
    861       1.1   mycroft  * If a section is already partially allocated, the policy is to
    862       1.1   mycroft  * contiguously allocate fs_maxcontig blocks.  The end of one of these
    863      1.60      fvdl  * contiguous blocks and the beginning of the next is laid out
    864      1.60      fvdl  * contigously if possible.
    865       1.1   mycroft  */
    866      1.58      fvdl daddr_t
    867      1.85   thorpej ffs_blkpref_ufs1(struct inode *ip, daddr_t lbn, int indx,
    868      1.85   thorpej     int32_t *bap /* XXX ondisk32 */)
    869       1.1   mycroft {
    870      1.33  augustss 	struct fs *fs;
    871      1.33  augustss 	int cg;
    872       1.1   mycroft 	int avgbfree, startcg;
    873       1.1   mycroft 
    874       1.1   mycroft 	fs = ip->i_fs;
    875       1.1   mycroft 	if (indx % fs->fs_maxbpg == 0 || bap[indx - 1] == 0) {
    876      1.31      fvdl 		if (lbn < NDADDR + NINDIR(fs)) {
    877       1.1   mycroft 			cg = ino_to_cg(fs, ip->i_number);
    878       1.1   mycroft 			return (fs->fs_fpg * cg + fs->fs_frag);
    879       1.1   mycroft 		}
    880       1.1   mycroft 		/*
    881       1.1   mycroft 		 * Find a cylinder with greater than average number of
    882       1.1   mycroft 		 * unused data blocks.
    883       1.1   mycroft 		 */
    884       1.1   mycroft 		if (indx == 0 || bap[indx - 1] == 0)
    885       1.1   mycroft 			startcg =
    886       1.1   mycroft 			    ino_to_cg(fs, ip->i_number) + lbn / fs->fs_maxbpg;
    887       1.1   mycroft 		else
    888      1.19    bouyer 			startcg = dtog(fs,
    889      1.30      fvdl 				ufs_rw32(bap[indx - 1], UFS_FSNEEDSWAP(fs)) + 1);
    890       1.1   mycroft 		startcg %= fs->fs_ncg;
    891       1.1   mycroft 		avgbfree = fs->fs_cstotal.cs_nbfree / fs->fs_ncg;
    892       1.1   mycroft 		for (cg = startcg; cg < fs->fs_ncg; cg++)
    893       1.1   mycroft 			if (fs->fs_cs(fs, cg).cs_nbfree >= avgbfree) {
    894       1.1   mycroft 				return (fs->fs_fpg * cg + fs->fs_frag);
    895       1.1   mycroft 			}
    896      1.52     lukem 		for (cg = 0; cg < startcg; cg++)
    897       1.1   mycroft 			if (fs->fs_cs(fs, cg).cs_nbfree >= avgbfree) {
    898       1.1   mycroft 				return (fs->fs_fpg * cg + fs->fs_frag);
    899       1.1   mycroft 			}
    900      1.35   thorpej 		return (0);
    901       1.1   mycroft 	}
    902       1.1   mycroft 	/*
    903      1.60      fvdl 	 * We just always try to lay things out contiguously.
    904      1.60      fvdl 	 */
    905      1.60      fvdl 	return ufs_rw32(bap[indx - 1], UFS_FSNEEDSWAP(fs)) + fs->fs_frag;
    906      1.60      fvdl }
    907      1.60      fvdl 
    908      1.60      fvdl daddr_t
    909      1.85   thorpej ffs_blkpref_ufs2(struct inode *ip, daddr_t lbn, int indx, int64_t *bap)
    910      1.60      fvdl {
    911      1.60      fvdl 	struct fs *fs;
    912      1.60      fvdl 	int cg;
    913      1.60      fvdl 	int avgbfree, startcg;
    914      1.60      fvdl 
    915      1.60      fvdl 	fs = ip->i_fs;
    916      1.60      fvdl 	if (indx % fs->fs_maxbpg == 0 || bap[indx - 1] == 0) {
    917      1.60      fvdl 		if (lbn < NDADDR + NINDIR(fs)) {
    918      1.60      fvdl 			cg = ino_to_cg(fs, ip->i_number);
    919      1.60      fvdl 			return (fs->fs_fpg * cg + fs->fs_frag);
    920      1.60      fvdl 		}
    921       1.1   mycroft 		/*
    922      1.60      fvdl 		 * Find a cylinder with greater than average number of
    923      1.60      fvdl 		 * unused data blocks.
    924       1.1   mycroft 		 */
    925      1.60      fvdl 		if (indx == 0 || bap[indx - 1] == 0)
    926      1.60      fvdl 			startcg =
    927      1.60      fvdl 			    ino_to_cg(fs, ip->i_number) + lbn / fs->fs_maxbpg;
    928      1.60      fvdl 		else
    929      1.60      fvdl 			startcg = dtog(fs,
    930      1.60      fvdl 				ufs_rw64(bap[indx - 1], UFS_FSNEEDSWAP(fs)) + 1);
    931      1.60      fvdl 		startcg %= fs->fs_ncg;
    932      1.60      fvdl 		avgbfree = fs->fs_cstotal.cs_nbfree / fs->fs_ncg;
    933      1.60      fvdl 		for (cg = startcg; cg < fs->fs_ncg; cg++)
    934      1.60      fvdl 			if (fs->fs_cs(fs, cg).cs_nbfree >= avgbfree) {
    935      1.60      fvdl 				return (fs->fs_fpg * cg + fs->fs_frag);
    936      1.60      fvdl 			}
    937      1.60      fvdl 		for (cg = 0; cg < startcg; cg++)
    938      1.60      fvdl 			if (fs->fs_cs(fs, cg).cs_nbfree >= avgbfree) {
    939      1.60      fvdl 				return (fs->fs_fpg * cg + fs->fs_frag);
    940      1.60      fvdl 			}
    941      1.60      fvdl 		return (0);
    942      1.60      fvdl 	}
    943      1.60      fvdl 	/*
    944      1.60      fvdl 	 * We just always try to lay things out contiguously.
    945      1.60      fvdl 	 */
    946      1.60      fvdl 	return ufs_rw64(bap[indx - 1], UFS_FSNEEDSWAP(fs)) + fs->fs_frag;
    947       1.1   mycroft }
    948       1.1   mycroft 
    949      1.60      fvdl 
    950       1.1   mycroft /*
    951       1.1   mycroft  * Implement the cylinder overflow algorithm.
    952       1.1   mycroft  *
    953       1.1   mycroft  * The policy implemented by this algorithm is:
    954       1.1   mycroft  *   1) allocate the block in its requested cylinder group.
    955       1.1   mycroft  *   2) quadradically rehash on the cylinder group number.
    956       1.1   mycroft  *   3) brute force search for a free block.
    957       1.1   mycroft  */
    958       1.1   mycroft /*VARARGS5*/
    959      1.58      fvdl static daddr_t
    960      1.85   thorpej ffs_hashalloc(struct inode *ip, int cg, daddr_t pref,
    961      1.85   thorpej     int size /* size for data blocks, mode for inodes */,
    962      1.85   thorpej     daddr_t (*allocator)(struct inode *, int, daddr_t, int))
    963       1.1   mycroft {
    964      1.33  augustss 	struct fs *fs;
    965      1.58      fvdl 	daddr_t result;
    966       1.1   mycroft 	int i, icg = cg;
    967       1.1   mycroft 
    968       1.1   mycroft 	fs = ip->i_fs;
    969       1.1   mycroft 	/*
    970       1.1   mycroft 	 * 1: preferred cylinder group
    971       1.1   mycroft 	 */
    972       1.1   mycroft 	result = (*allocator)(ip, cg, pref, size);
    973       1.1   mycroft 	if (result)
    974       1.1   mycroft 		return (result);
    975       1.1   mycroft 	/*
    976       1.1   mycroft 	 * 2: quadratic rehash
    977       1.1   mycroft 	 */
    978       1.1   mycroft 	for (i = 1; i < fs->fs_ncg; i *= 2) {
    979       1.1   mycroft 		cg += i;
    980       1.1   mycroft 		if (cg >= fs->fs_ncg)
    981       1.1   mycroft 			cg -= fs->fs_ncg;
    982       1.1   mycroft 		result = (*allocator)(ip, cg, 0, size);
    983       1.1   mycroft 		if (result)
    984       1.1   mycroft 			return (result);
    985       1.1   mycroft 	}
    986       1.1   mycroft 	/*
    987       1.1   mycroft 	 * 3: brute force search
    988       1.1   mycroft 	 * Note that we start at i == 2, since 0 was checked initially,
    989       1.1   mycroft 	 * and 1 is always checked in the quadratic rehash.
    990       1.1   mycroft 	 */
    991       1.1   mycroft 	cg = (icg + 2) % fs->fs_ncg;
    992       1.1   mycroft 	for (i = 2; i < fs->fs_ncg; i++) {
    993       1.1   mycroft 		result = (*allocator)(ip, cg, 0, size);
    994       1.1   mycroft 		if (result)
    995       1.1   mycroft 			return (result);
    996       1.1   mycroft 		cg++;
    997       1.1   mycroft 		if (cg == fs->fs_ncg)
    998       1.1   mycroft 			cg = 0;
    999       1.1   mycroft 	}
   1000      1.35   thorpej 	return (0);
   1001       1.1   mycroft }
   1002       1.1   mycroft 
   1003       1.1   mycroft /*
   1004       1.1   mycroft  * Determine whether a fragment can be extended.
   1005       1.1   mycroft  *
   1006      1.81     perry  * Check to see if the necessary fragments are available, and
   1007       1.1   mycroft  * if they are, allocate them.
   1008       1.1   mycroft  */
   1009      1.58      fvdl static daddr_t
   1010      1.85   thorpej ffs_fragextend(struct inode *ip, int cg, daddr_t bprev, int osize, int nsize)
   1011       1.1   mycroft {
   1012      1.33  augustss 	struct fs *fs;
   1013      1.33  augustss 	struct cg *cgp;
   1014       1.1   mycroft 	struct buf *bp;
   1015      1.58      fvdl 	daddr_t bno;
   1016       1.1   mycroft 	int frags, bbase;
   1017       1.1   mycroft 	int i, error;
   1018      1.62      fvdl 	u_int8_t *blksfree;
   1019       1.1   mycroft 
   1020       1.1   mycroft 	fs = ip->i_fs;
   1021       1.1   mycroft 	if (fs->fs_cs(fs, cg).cs_nffree < numfrags(fs, nsize - osize))
   1022      1.35   thorpej 		return (0);
   1023       1.1   mycroft 	frags = numfrags(fs, nsize);
   1024       1.1   mycroft 	bbase = fragnum(fs, bprev);
   1025       1.1   mycroft 	if (bbase > fragnum(fs, (bprev + frags - 1))) {
   1026       1.1   mycroft 		/* cannot extend across a block boundary */
   1027      1.35   thorpej 		return (0);
   1028       1.1   mycroft 	}
   1029       1.1   mycroft 	error = bread(ip->i_devvp, fsbtodb(fs, cgtod(fs, cg)),
   1030       1.1   mycroft 		(int)fs->fs_cgsize, NOCRED, &bp);
   1031       1.1   mycroft 	if (error) {
   1032       1.1   mycroft 		brelse(bp);
   1033      1.35   thorpej 		return (0);
   1034       1.1   mycroft 	}
   1035       1.1   mycroft 	cgp = (struct cg *)bp->b_data;
   1036      1.30      fvdl 	if (!cg_chkmagic(cgp, UFS_FSNEEDSWAP(fs))) {
   1037       1.1   mycroft 		brelse(bp);
   1038      1.35   thorpej 		return (0);
   1039       1.1   mycroft 	}
   1040      1.62      fvdl 	cgp->cg_old_time = ufs_rw32(time.tv_sec, UFS_FSNEEDSWAP(fs));
   1041      1.73       dbj 	if ((fs->fs_magic != FS_UFS1_MAGIC) ||
   1042      1.73       dbj 	    (fs->fs_old_flags & FS_FLAGS_UPDATED))
   1043      1.73       dbj 		cgp->cg_time = ufs_rw64(time.tv_sec, UFS_FSNEEDSWAP(fs));
   1044       1.1   mycroft 	bno = dtogd(fs, bprev);
   1045      1.62      fvdl 	blksfree = cg_blksfree(cgp, UFS_FSNEEDSWAP(fs));
   1046       1.1   mycroft 	for (i = numfrags(fs, osize); i < frags; i++)
   1047      1.62      fvdl 		if (isclr(blksfree, bno + i)) {
   1048       1.1   mycroft 			brelse(bp);
   1049      1.35   thorpej 			return (0);
   1050       1.1   mycroft 		}
   1051       1.1   mycroft 	/*
   1052       1.1   mycroft 	 * the current fragment can be extended
   1053       1.1   mycroft 	 * deduct the count on fragment being extended into
   1054       1.1   mycroft 	 * increase the count on the remaining fragment (if any)
   1055       1.1   mycroft 	 * allocate the extended piece
   1056       1.1   mycroft 	 */
   1057       1.1   mycroft 	for (i = frags; i < fs->fs_frag - bbase; i++)
   1058      1.62      fvdl 		if (isclr(blksfree, bno + i))
   1059       1.1   mycroft 			break;
   1060      1.30      fvdl 	ufs_add32(cgp->cg_frsum[i - numfrags(fs, osize)], -1, UFS_FSNEEDSWAP(fs));
   1061       1.1   mycroft 	if (i != frags)
   1062      1.30      fvdl 		ufs_add32(cgp->cg_frsum[i - frags], 1, UFS_FSNEEDSWAP(fs));
   1063       1.1   mycroft 	for (i = numfrags(fs, osize); i < frags; i++) {
   1064      1.62      fvdl 		clrbit(blksfree, bno + i);
   1065      1.30      fvdl 		ufs_add32(cgp->cg_cs.cs_nffree, -1, UFS_FSNEEDSWAP(fs));
   1066       1.1   mycroft 		fs->fs_cstotal.cs_nffree--;
   1067       1.1   mycroft 		fs->fs_cs(fs, cg).cs_nffree--;
   1068       1.1   mycroft 	}
   1069       1.1   mycroft 	fs->fs_fmod = 1;
   1070      1.30      fvdl 	if (DOINGSOFTDEP(ITOV(ip)))
   1071      1.30      fvdl 		softdep_setup_blkmapdep(bp, fs, bprev);
   1072      1.76   hannken 	ACTIVECG_CLR(fs, cg);
   1073       1.1   mycroft 	bdwrite(bp);
   1074       1.1   mycroft 	return (bprev);
   1075       1.1   mycroft }
   1076       1.1   mycroft 
   1077       1.1   mycroft /*
   1078       1.1   mycroft  * Determine whether a block can be allocated.
   1079       1.1   mycroft  *
   1080       1.1   mycroft  * Check to see if a block of the appropriate size is available,
   1081       1.1   mycroft  * and if it is, allocate it.
   1082       1.1   mycroft  */
   1083      1.58      fvdl static daddr_t
   1084      1.85   thorpej ffs_alloccg(struct inode *ip, int cg, daddr_t bpref, int size)
   1085       1.1   mycroft {
   1086      1.62      fvdl 	struct fs *fs = ip->i_fs;
   1087      1.30      fvdl 	struct cg *cgp;
   1088       1.1   mycroft 	struct buf *bp;
   1089      1.60      fvdl 	int32_t bno;
   1090      1.60      fvdl 	daddr_t blkno;
   1091      1.30      fvdl 	int error, frags, allocsiz, i;
   1092      1.62      fvdl 	u_int8_t *blksfree;
   1093      1.30      fvdl #ifdef FFS_EI
   1094      1.30      fvdl 	const int needswap = UFS_FSNEEDSWAP(fs);
   1095      1.30      fvdl #endif
   1096       1.1   mycroft 
   1097       1.1   mycroft 	if (fs->fs_cs(fs, cg).cs_nbfree == 0 && size == fs->fs_bsize)
   1098      1.35   thorpej 		return (0);
   1099       1.1   mycroft 	error = bread(ip->i_devvp, fsbtodb(fs, cgtod(fs, cg)),
   1100       1.1   mycroft 		(int)fs->fs_cgsize, NOCRED, &bp);
   1101       1.1   mycroft 	if (error) {
   1102       1.1   mycroft 		brelse(bp);
   1103      1.35   thorpej 		return (0);
   1104       1.1   mycroft 	}
   1105       1.1   mycroft 	cgp = (struct cg *)bp->b_data;
   1106      1.19    bouyer 	if (!cg_chkmagic(cgp, needswap) ||
   1107       1.1   mycroft 	    (cgp->cg_cs.cs_nbfree == 0 && size == fs->fs_bsize)) {
   1108       1.1   mycroft 		brelse(bp);
   1109      1.35   thorpej 		return (0);
   1110       1.1   mycroft 	}
   1111      1.62      fvdl 	cgp->cg_old_time = ufs_rw32(time.tv_sec, needswap);
   1112      1.73       dbj 	if ((fs->fs_magic != FS_UFS1_MAGIC) ||
   1113      1.73       dbj 	    (fs->fs_old_flags & FS_FLAGS_UPDATED))
   1114      1.73       dbj 		cgp->cg_time = ufs_rw64(time.tv_sec, needswap);
   1115       1.1   mycroft 	if (size == fs->fs_bsize) {
   1116      1.60      fvdl 		blkno = ffs_alloccgblk(ip, bp, bpref);
   1117      1.76   hannken 		ACTIVECG_CLR(fs, cg);
   1118       1.1   mycroft 		bdwrite(bp);
   1119      1.60      fvdl 		return (blkno);
   1120       1.1   mycroft 	}
   1121       1.1   mycroft 	/*
   1122       1.1   mycroft 	 * check to see if any fragments are already available
   1123       1.1   mycroft 	 * allocsiz is the size which will be allocated, hacking
   1124       1.1   mycroft 	 * it down to a smaller size if necessary
   1125       1.1   mycroft 	 */
   1126      1.62      fvdl 	blksfree = cg_blksfree(cgp, needswap);
   1127       1.1   mycroft 	frags = numfrags(fs, size);
   1128       1.1   mycroft 	for (allocsiz = frags; allocsiz < fs->fs_frag; allocsiz++)
   1129       1.1   mycroft 		if (cgp->cg_frsum[allocsiz] != 0)
   1130       1.1   mycroft 			break;
   1131       1.1   mycroft 	if (allocsiz == fs->fs_frag) {
   1132       1.1   mycroft 		/*
   1133      1.81     perry 		 * no fragments were available, so a block will be
   1134       1.1   mycroft 		 * allocated, and hacked up
   1135       1.1   mycroft 		 */
   1136       1.1   mycroft 		if (cgp->cg_cs.cs_nbfree == 0) {
   1137       1.1   mycroft 			brelse(bp);
   1138      1.35   thorpej 			return (0);
   1139       1.1   mycroft 		}
   1140      1.60      fvdl 		blkno = ffs_alloccgblk(ip, bp, bpref);
   1141      1.60      fvdl 		bno = dtogd(fs, blkno);
   1142       1.1   mycroft 		for (i = frags; i < fs->fs_frag; i++)
   1143      1.62      fvdl 			setbit(blksfree, bno + i);
   1144       1.1   mycroft 		i = fs->fs_frag - frags;
   1145      1.19    bouyer 		ufs_add32(cgp->cg_cs.cs_nffree, i, needswap);
   1146       1.1   mycroft 		fs->fs_cstotal.cs_nffree += i;
   1147      1.30      fvdl 		fs->fs_cs(fs, cg).cs_nffree += i;
   1148       1.1   mycroft 		fs->fs_fmod = 1;
   1149      1.19    bouyer 		ufs_add32(cgp->cg_frsum[i], 1, needswap);
   1150      1.76   hannken 		ACTIVECG_CLR(fs, cg);
   1151       1.1   mycroft 		bdwrite(bp);
   1152      1.60      fvdl 		return (blkno);
   1153       1.1   mycroft 	}
   1154      1.30      fvdl 	bno = ffs_mapsearch(fs, cgp, bpref, allocsiz);
   1155      1.30      fvdl #if 0
   1156      1.30      fvdl 	/*
   1157      1.30      fvdl 	 * XXX fvdl mapsearch will panic, and never return -1
   1158      1.58      fvdl 	 *          also: returning NULL as daddr_t ?
   1159      1.30      fvdl 	 */
   1160       1.1   mycroft 	if (bno < 0) {
   1161       1.1   mycroft 		brelse(bp);
   1162      1.35   thorpej 		return (0);
   1163       1.1   mycroft 	}
   1164      1.30      fvdl #endif
   1165       1.1   mycroft 	for (i = 0; i < frags; i++)
   1166      1.62      fvdl 		clrbit(blksfree, bno + i);
   1167      1.19    bouyer 	ufs_add32(cgp->cg_cs.cs_nffree, -frags, needswap);
   1168       1.1   mycroft 	fs->fs_cstotal.cs_nffree -= frags;
   1169       1.1   mycroft 	fs->fs_cs(fs, cg).cs_nffree -= frags;
   1170       1.1   mycroft 	fs->fs_fmod = 1;
   1171      1.19    bouyer 	ufs_add32(cgp->cg_frsum[allocsiz], -1, needswap);
   1172       1.1   mycroft 	if (frags != allocsiz)
   1173      1.19    bouyer 		ufs_add32(cgp->cg_frsum[allocsiz - frags], 1, needswap);
   1174      1.30      fvdl 	blkno = cg * fs->fs_fpg + bno;
   1175      1.30      fvdl 	if (DOINGSOFTDEP(ITOV(ip)))
   1176      1.30      fvdl 		softdep_setup_blkmapdep(bp, fs, blkno);
   1177      1.76   hannken 	ACTIVECG_CLR(fs, cg);
   1178       1.1   mycroft 	bdwrite(bp);
   1179      1.30      fvdl 	return blkno;
   1180       1.1   mycroft }
   1181       1.1   mycroft 
   1182       1.1   mycroft /*
   1183       1.1   mycroft  * Allocate a block in a cylinder group.
   1184       1.1   mycroft  *
   1185       1.1   mycroft  * This algorithm implements the following policy:
   1186       1.1   mycroft  *   1) allocate the requested block.
   1187       1.1   mycroft  *   2) allocate a rotationally optimal block in the same cylinder.
   1188       1.1   mycroft  *   3) allocate the next available block on the block rotor for the
   1189       1.1   mycroft  *      specified cylinder group.
   1190       1.1   mycroft  * Note that this routine only allocates fs_bsize blocks; these
   1191       1.1   mycroft  * blocks may be fragmented by the routine that allocates them.
   1192       1.1   mycroft  */
   1193      1.58      fvdl static daddr_t
   1194      1.85   thorpej ffs_alloccgblk(struct inode *ip, struct buf *bp, daddr_t bpref)
   1195       1.1   mycroft {
   1196      1.62      fvdl 	struct fs *fs = ip->i_fs;
   1197      1.30      fvdl 	struct cg *cgp;
   1198      1.60      fvdl 	daddr_t blkno;
   1199      1.60      fvdl 	int32_t bno;
   1200      1.60      fvdl 	u_int8_t *blksfree;
   1201      1.30      fvdl #ifdef FFS_EI
   1202      1.30      fvdl 	const int needswap = UFS_FSNEEDSWAP(fs);
   1203      1.30      fvdl #endif
   1204       1.1   mycroft 
   1205      1.30      fvdl 	cgp = (struct cg *)bp->b_data;
   1206      1.60      fvdl 	blksfree = cg_blksfree(cgp, needswap);
   1207      1.30      fvdl 	if (bpref == 0 || dtog(fs, bpref) != ufs_rw32(cgp->cg_cgx, needswap)) {
   1208      1.19    bouyer 		bpref = ufs_rw32(cgp->cg_rotor, needswap);
   1209      1.60      fvdl 	} else {
   1210      1.60      fvdl 		bpref = blknum(fs, bpref);
   1211      1.60      fvdl 		bno = dtogd(fs, bpref);
   1212       1.1   mycroft 		/*
   1213      1.60      fvdl 		 * if the requested block is available, use it
   1214       1.1   mycroft 		 */
   1215      1.60      fvdl 		if (ffs_isblock(fs, blksfree, fragstoblks(fs, bno)))
   1216      1.60      fvdl 			goto gotit;
   1217       1.1   mycroft 	}
   1218       1.1   mycroft 	/*
   1219      1.60      fvdl 	 * Take the next available block in this cylinder group.
   1220       1.1   mycroft 	 */
   1221      1.30      fvdl 	bno = ffs_mapsearch(fs, cgp, bpref, (int)fs->fs_frag);
   1222       1.1   mycroft 	if (bno < 0)
   1223      1.35   thorpej 		return (0);
   1224      1.60      fvdl 	cgp->cg_rotor = ufs_rw32(bno, needswap);
   1225       1.1   mycroft gotit:
   1226       1.1   mycroft 	blkno = fragstoblks(fs, bno);
   1227      1.60      fvdl 	ffs_clrblock(fs, blksfree, blkno);
   1228      1.30      fvdl 	ffs_clusteracct(fs, cgp, blkno, -1);
   1229      1.19    bouyer 	ufs_add32(cgp->cg_cs.cs_nbfree, -1, needswap);
   1230       1.1   mycroft 	fs->fs_cstotal.cs_nbfree--;
   1231      1.19    bouyer 	fs->fs_cs(fs, ufs_rw32(cgp->cg_cgx, needswap)).cs_nbfree--;
   1232      1.73       dbj 	if ((fs->fs_magic == FS_UFS1_MAGIC) &&
   1233      1.73       dbj 	    ((fs->fs_old_flags & FS_FLAGS_UPDATED) == 0)) {
   1234      1.73       dbj 		int cylno;
   1235      1.73       dbj 		cylno = old_cbtocylno(fs, bno);
   1236      1.75       dbj 		KASSERT(cylno >= 0);
   1237      1.75       dbj 		KASSERT(cylno < fs->fs_old_ncyl);
   1238      1.75       dbj 		KASSERT(old_cbtorpos(fs, bno) >= 0);
   1239      1.75       dbj 		KASSERT(fs->fs_old_nrpos == 0 || old_cbtorpos(fs, bno) < fs->fs_old_nrpos);
   1240      1.73       dbj 		ufs_add16(old_cg_blks(fs, cgp, cylno, needswap)[old_cbtorpos(fs, bno)], -1,
   1241      1.73       dbj 		    needswap);
   1242      1.73       dbj 		ufs_add32(old_cg_blktot(cgp, needswap)[cylno], -1, needswap);
   1243      1.73       dbj 	}
   1244       1.1   mycroft 	fs->fs_fmod = 1;
   1245      1.30      fvdl 	blkno = ufs_rw32(cgp->cg_cgx, needswap) * fs->fs_fpg + bno;
   1246      1.30      fvdl 	if (DOINGSOFTDEP(ITOV(ip)))
   1247      1.30      fvdl 		softdep_setup_blkmapdep(bp, fs, blkno);
   1248      1.30      fvdl 	return (blkno);
   1249       1.1   mycroft }
   1250       1.1   mycroft 
   1251      1.55      matt #ifdef XXXUBC
   1252       1.1   mycroft /*
   1253       1.1   mycroft  * Determine whether a cluster can be allocated.
   1254       1.1   mycroft  *
   1255       1.1   mycroft  * We do not currently check for optimal rotational layout if there
   1256       1.1   mycroft  * are multiple choices in the same cylinder group. Instead we just
   1257       1.1   mycroft  * take the first one that we find following bpref.
   1258       1.1   mycroft  */
   1259      1.60      fvdl 
   1260      1.60      fvdl /*
   1261      1.60      fvdl  * This function must be fixed for UFS2 if re-enabled.
   1262      1.60      fvdl  */
   1263      1.58      fvdl static daddr_t
   1264      1.85   thorpej ffs_clusteralloc(struct inode *ip, int cg, daddr_t bpref, int len)
   1265       1.1   mycroft {
   1266      1.33  augustss 	struct fs *fs;
   1267      1.33  augustss 	struct cg *cgp;
   1268       1.1   mycroft 	struct buf *bp;
   1269      1.18      fvdl 	int i, got, run, bno, bit, map;
   1270       1.1   mycroft 	u_char *mapp;
   1271       1.5   mycroft 	int32_t *lp;
   1272       1.1   mycroft 
   1273       1.1   mycroft 	fs = ip->i_fs;
   1274       1.5   mycroft 	if (fs->fs_maxcluster[cg] < len)
   1275      1.35   thorpej 		return (0);
   1276       1.1   mycroft 	if (bread(ip->i_devvp, fsbtodb(fs, cgtod(fs, cg)), (int)fs->fs_cgsize,
   1277       1.1   mycroft 	    NOCRED, &bp))
   1278       1.1   mycroft 		goto fail;
   1279       1.1   mycroft 	cgp = (struct cg *)bp->b_data;
   1280      1.30      fvdl 	if (!cg_chkmagic(cgp, UFS_FSNEEDSWAP(fs)))
   1281       1.1   mycroft 		goto fail;
   1282       1.1   mycroft 	/*
   1283       1.1   mycroft 	 * Check to see if a cluster of the needed size (or bigger) is
   1284       1.1   mycroft 	 * available in this cylinder group.
   1285       1.1   mycroft 	 */
   1286      1.30      fvdl 	lp = &cg_clustersum(cgp, UFS_FSNEEDSWAP(fs))[len];
   1287       1.1   mycroft 	for (i = len; i <= fs->fs_contigsumsize; i++)
   1288      1.30      fvdl 		if (ufs_rw32(*lp++, UFS_FSNEEDSWAP(fs)) > 0)
   1289       1.1   mycroft 			break;
   1290       1.5   mycroft 	if (i > fs->fs_contigsumsize) {
   1291       1.5   mycroft 		/*
   1292       1.5   mycroft 		 * This is the first time looking for a cluster in this
   1293       1.5   mycroft 		 * cylinder group. Update the cluster summary information
   1294       1.5   mycroft 		 * to reflect the true maximum sized cluster so that
   1295       1.5   mycroft 		 * future cluster allocation requests can avoid reading
   1296       1.5   mycroft 		 * the cylinder group map only to find no clusters.
   1297       1.5   mycroft 		 */
   1298      1.30      fvdl 		lp = &cg_clustersum(cgp, UFS_FSNEEDSWAP(fs))[len - 1];
   1299       1.5   mycroft 		for (i = len - 1; i > 0; i--)
   1300      1.30      fvdl 			if (ufs_rw32(*lp--, UFS_FSNEEDSWAP(fs)) > 0)
   1301       1.5   mycroft 				break;
   1302       1.5   mycroft 		fs->fs_maxcluster[cg] = i;
   1303       1.1   mycroft 		goto fail;
   1304       1.5   mycroft 	}
   1305       1.1   mycroft 	/*
   1306       1.1   mycroft 	 * Search the cluster map to find a big enough cluster.
   1307       1.1   mycroft 	 * We take the first one that we find, even if it is larger
   1308       1.1   mycroft 	 * than we need as we prefer to get one close to the previous
   1309       1.1   mycroft 	 * block allocation. We do not search before the current
   1310       1.1   mycroft 	 * preference point as we do not want to allocate a block
   1311       1.1   mycroft 	 * that is allocated before the previous one (as we will
   1312       1.1   mycroft 	 * then have to wait for another pass of the elevator
   1313       1.1   mycroft 	 * algorithm before it will be read). We prefer to fail and
   1314       1.1   mycroft 	 * be recalled to try an allocation in the next cylinder group.
   1315       1.1   mycroft 	 */
   1316       1.1   mycroft 	if (dtog(fs, bpref) != cg)
   1317       1.1   mycroft 		bpref = 0;
   1318       1.1   mycroft 	else
   1319       1.1   mycroft 		bpref = fragstoblks(fs, dtogd(fs, blknum(fs, bpref)));
   1320      1.30      fvdl 	mapp = &cg_clustersfree(cgp, UFS_FSNEEDSWAP(fs))[bpref / NBBY];
   1321       1.1   mycroft 	map = *mapp++;
   1322       1.1   mycroft 	bit = 1 << (bpref % NBBY);
   1323      1.19    bouyer 	for (run = 0, got = bpref;
   1324      1.30      fvdl 		got < ufs_rw32(cgp->cg_nclusterblks, UFS_FSNEEDSWAP(fs)); got++) {
   1325       1.1   mycroft 		if ((map & bit) == 0) {
   1326       1.1   mycroft 			run = 0;
   1327       1.1   mycroft 		} else {
   1328       1.1   mycroft 			run++;
   1329       1.1   mycroft 			if (run == len)
   1330       1.1   mycroft 				break;
   1331       1.1   mycroft 		}
   1332      1.18      fvdl 		if ((got & (NBBY - 1)) != (NBBY - 1)) {
   1333       1.1   mycroft 			bit <<= 1;
   1334       1.1   mycroft 		} else {
   1335       1.1   mycroft 			map = *mapp++;
   1336       1.1   mycroft 			bit = 1;
   1337       1.1   mycroft 		}
   1338       1.1   mycroft 	}
   1339      1.30      fvdl 	if (got == ufs_rw32(cgp->cg_nclusterblks, UFS_FSNEEDSWAP(fs)))
   1340       1.1   mycroft 		goto fail;
   1341       1.1   mycroft 	/*
   1342       1.1   mycroft 	 * Allocate the cluster that we have found.
   1343       1.1   mycroft 	 */
   1344      1.30      fvdl #ifdef DIAGNOSTIC
   1345      1.18      fvdl 	for (i = 1; i <= len; i++)
   1346      1.30      fvdl 		if (!ffs_isblock(fs, cg_blksfree(cgp, UFS_FSNEEDSWAP(fs)),
   1347      1.30      fvdl 		    got - run + i))
   1348      1.18      fvdl 			panic("ffs_clusteralloc: map mismatch");
   1349      1.30      fvdl #endif
   1350      1.18      fvdl 	bno = cg * fs->fs_fpg + blkstofrags(fs, got - run + 1);
   1351      1.18      fvdl 	if (dtog(fs, bno) != cg)
   1352      1.18      fvdl 		panic("ffs_clusteralloc: allocated out of group");
   1353       1.1   mycroft 	len = blkstofrags(fs, len);
   1354       1.1   mycroft 	for (i = 0; i < len; i += fs->fs_frag)
   1355      1.30      fvdl 		if ((got = ffs_alloccgblk(ip, bp, bno + i)) != bno + i)
   1356       1.1   mycroft 			panic("ffs_clusteralloc: lost block");
   1357      1.76   hannken 	ACTIVECG_CLR(fs, cg);
   1358       1.8       cgd 	bdwrite(bp);
   1359       1.1   mycroft 	return (bno);
   1360       1.1   mycroft 
   1361       1.1   mycroft fail:
   1362       1.1   mycroft 	brelse(bp);
   1363       1.1   mycroft 	return (0);
   1364       1.1   mycroft }
   1365      1.55      matt #endif /* XXXUBC */
   1366       1.1   mycroft 
   1367       1.1   mycroft /*
   1368       1.1   mycroft  * Determine whether an inode can be allocated.
   1369       1.1   mycroft  *
   1370       1.1   mycroft  * Check to see if an inode is available, and if it is,
   1371       1.1   mycroft  * allocate it using the following policy:
   1372       1.1   mycroft  *   1) allocate the requested inode.
   1373       1.1   mycroft  *   2) allocate the next available inode after the requested
   1374       1.1   mycroft  *      inode in the specified cylinder group.
   1375       1.1   mycroft  */
   1376      1.58      fvdl static daddr_t
   1377      1.85   thorpej ffs_nodealloccg(struct inode *ip, int cg, daddr_t ipref, int mode)
   1378       1.1   mycroft {
   1379      1.62      fvdl 	struct fs *fs = ip->i_fs;
   1380      1.33  augustss 	struct cg *cgp;
   1381      1.60      fvdl 	struct buf *bp, *ibp;
   1382      1.60      fvdl 	u_int8_t *inosused;
   1383       1.1   mycroft 	int error, start, len, loc, map, i;
   1384      1.60      fvdl 	int32_t initediblk;
   1385      1.60      fvdl 	struct ufs2_dinode *dp2;
   1386      1.19    bouyer #ifdef FFS_EI
   1387      1.30      fvdl 	const int needswap = UFS_FSNEEDSWAP(fs);
   1388      1.19    bouyer #endif
   1389       1.1   mycroft 
   1390       1.1   mycroft 	if (fs->fs_cs(fs, cg).cs_nifree == 0)
   1391      1.35   thorpej 		return (0);
   1392       1.1   mycroft 	error = bread(ip->i_devvp, fsbtodb(fs, cgtod(fs, cg)),
   1393       1.1   mycroft 		(int)fs->fs_cgsize, NOCRED, &bp);
   1394       1.1   mycroft 	if (error) {
   1395       1.1   mycroft 		brelse(bp);
   1396      1.35   thorpej 		return (0);
   1397       1.1   mycroft 	}
   1398       1.1   mycroft 	cgp = (struct cg *)bp->b_data;
   1399      1.19    bouyer 	if (!cg_chkmagic(cgp, needswap) || cgp->cg_cs.cs_nifree == 0) {
   1400       1.1   mycroft 		brelse(bp);
   1401      1.35   thorpej 		return (0);
   1402       1.1   mycroft 	}
   1403      1.62      fvdl 	cgp->cg_old_time = ufs_rw32(time.tv_sec, needswap);
   1404      1.73       dbj 	if ((fs->fs_magic != FS_UFS1_MAGIC) ||
   1405      1.73       dbj 	    (fs->fs_old_flags & FS_FLAGS_UPDATED))
   1406      1.73       dbj 		cgp->cg_time = ufs_rw64(time.tv_sec, needswap);
   1407      1.60      fvdl 	inosused = cg_inosused(cgp, needswap);
   1408       1.1   mycroft 	if (ipref) {
   1409       1.1   mycroft 		ipref %= fs->fs_ipg;
   1410      1.60      fvdl 		if (isclr(inosused, ipref))
   1411       1.1   mycroft 			goto gotit;
   1412       1.1   mycroft 	}
   1413      1.19    bouyer 	start = ufs_rw32(cgp->cg_irotor, needswap) / NBBY;
   1414      1.19    bouyer 	len = howmany(fs->fs_ipg - ufs_rw32(cgp->cg_irotor, needswap),
   1415      1.19    bouyer 		NBBY);
   1416      1.60      fvdl 	loc = skpc(0xff, len, &inosused[start]);
   1417       1.1   mycroft 	if (loc == 0) {
   1418       1.1   mycroft 		len = start + 1;
   1419       1.1   mycroft 		start = 0;
   1420      1.60      fvdl 		loc = skpc(0xff, len, &inosused[0]);
   1421       1.1   mycroft 		if (loc == 0) {
   1422      1.13  christos 			printf("cg = %d, irotor = %d, fs = %s\n",
   1423      1.19    bouyer 			    cg, ufs_rw32(cgp->cg_irotor, needswap),
   1424      1.19    bouyer 				fs->fs_fsmnt);
   1425       1.1   mycroft 			panic("ffs_nodealloccg: map corrupted");
   1426       1.1   mycroft 			/* NOTREACHED */
   1427       1.1   mycroft 		}
   1428       1.1   mycroft 	}
   1429       1.1   mycroft 	i = start + len - loc;
   1430      1.60      fvdl 	map = inosused[i];
   1431       1.1   mycroft 	ipref = i * NBBY;
   1432       1.1   mycroft 	for (i = 1; i < (1 << NBBY); i <<= 1, ipref++) {
   1433       1.1   mycroft 		if ((map & i) == 0) {
   1434      1.19    bouyer 			cgp->cg_irotor = ufs_rw32(ipref, needswap);
   1435       1.1   mycroft 			goto gotit;
   1436       1.1   mycroft 		}
   1437       1.1   mycroft 	}
   1438      1.13  christos 	printf("fs = %s\n", fs->fs_fsmnt);
   1439       1.1   mycroft 	panic("ffs_nodealloccg: block not in map");
   1440       1.1   mycroft 	/* NOTREACHED */
   1441       1.1   mycroft gotit:
   1442      1.30      fvdl 	if (DOINGSOFTDEP(ITOV(ip)))
   1443      1.30      fvdl 		softdep_setup_inomapdep(bp, ip, cg * fs->fs_ipg + ipref);
   1444      1.60      fvdl 	setbit(inosused, ipref);
   1445      1.19    bouyer 	ufs_add32(cgp->cg_cs.cs_nifree, -1, needswap);
   1446       1.1   mycroft 	fs->fs_cstotal.cs_nifree--;
   1447      1.30      fvdl 	fs->fs_cs(fs, cg).cs_nifree--;
   1448       1.1   mycroft 	fs->fs_fmod = 1;
   1449       1.1   mycroft 	if ((mode & IFMT) == IFDIR) {
   1450      1.19    bouyer 		ufs_add32(cgp->cg_cs.cs_ndir, 1, needswap);
   1451       1.1   mycroft 		fs->fs_cstotal.cs_ndir++;
   1452       1.1   mycroft 		fs->fs_cs(fs, cg).cs_ndir++;
   1453       1.1   mycroft 	}
   1454      1.60      fvdl 	/*
   1455      1.60      fvdl 	 * Check to see if we need to initialize more inodes.
   1456      1.60      fvdl 	 */
   1457      1.60      fvdl 	initediblk = ufs_rw32(cgp->cg_initediblk, needswap);
   1458      1.60      fvdl 	if (fs->fs_magic == FS_UFS2_MAGIC &&
   1459      1.60      fvdl 	    ipref + INOPB(fs) > initediblk &&
   1460      1.60      fvdl 	    initediblk < ufs_rw32(cgp->cg_niblk, needswap)) {
   1461      1.60      fvdl 		ibp = getblk(ip->i_devvp, fsbtodb(fs,
   1462      1.60      fvdl 		    ino_to_fsba(fs, cg * fs->fs_ipg + initediblk)),
   1463      1.60      fvdl 		    (int)fs->fs_bsize, 0, 0);
   1464      1.60      fvdl 		    memset(ibp->b_data, 0, fs->fs_bsize);
   1465      1.60      fvdl 		    dp2 = (struct ufs2_dinode *)(ibp->b_data);
   1466      1.60      fvdl 		    for (i = 0; i < INOPB(fs); i++) {
   1467      1.60      fvdl 			/*
   1468      1.60      fvdl 			 * Don't bother to swap, it's supposed to be
   1469      1.60      fvdl 			 * random, after all.
   1470      1.60      fvdl 			 */
   1471      1.70    itojun 			dp2->di_gen = (arc4random() & INT32_MAX) / 2 + 1;
   1472      1.60      fvdl 			dp2++;
   1473      1.60      fvdl 		}
   1474      1.60      fvdl 		bawrite(ibp);
   1475      1.60      fvdl 		initediblk += INOPB(fs);
   1476      1.60      fvdl 		cgp->cg_initediblk = ufs_rw32(initediblk, needswap);
   1477      1.60      fvdl 	}
   1478      1.60      fvdl 
   1479      1.76   hannken 	ACTIVECG_CLR(fs, cg);
   1480       1.1   mycroft 	bdwrite(bp);
   1481       1.1   mycroft 	return (cg * fs->fs_ipg + ipref);
   1482       1.1   mycroft }
   1483       1.1   mycroft 
   1484       1.1   mycroft /*
   1485       1.1   mycroft  * Free a block or fragment.
   1486       1.1   mycroft  *
   1487       1.1   mycroft  * The specified block or fragment is placed back in the
   1488      1.81     perry  * free map. If a fragment is deallocated, a possible
   1489       1.1   mycroft  * block reassembly is checked.
   1490       1.1   mycroft  */
   1491       1.9  christos void
   1492      1.85   thorpej ffs_blkfree(struct fs *fs, struct vnode *devvp, daddr_t bno, long size,
   1493      1.85   thorpej     ino_t inum)
   1494       1.1   mycroft {
   1495      1.33  augustss 	struct cg *cgp;
   1496       1.1   mycroft 	struct buf *bp;
   1497      1.76   hannken 	struct ufsmount *ump;
   1498      1.60      fvdl 	int32_t fragno, cgbno;
   1499      1.76   hannken 	daddr_t cgblkno;
   1500       1.1   mycroft 	int i, error, cg, blk, frags, bbase;
   1501      1.62      fvdl 	u_int8_t *blksfree;
   1502      1.76   hannken 	dev_t dev;
   1503      1.30      fvdl 	const int needswap = UFS_FSNEEDSWAP(fs);
   1504       1.1   mycroft 
   1505      1.76   hannken 	cg = dtog(fs, bno);
   1506      1.77   hannken 	if (devvp->v_type != VBLK) {
   1507      1.77   hannken 		/* devvp is a snapshot */
   1508      1.76   hannken 		dev = VTOI(devvp)->i_devvp->v_rdev;
   1509      1.76   hannken 		cgblkno = fragstoblks(fs, cgtod(fs, cg));
   1510      1.76   hannken 	} else {
   1511      1.76   hannken 		dev = devvp->v_rdev;
   1512      1.76   hannken 		ump = VFSTOUFS(devvp->v_specmountpoint);
   1513      1.76   hannken 		cgblkno = fsbtodb(fs, cgtod(fs, cg));
   1514      1.76   hannken 		if (TAILQ_FIRST(&ump->um_snapshots) != NULL &&
   1515      1.76   hannken 		    ffs_snapblkfree(fs, devvp, bno, size, inum))
   1516      1.76   hannken 			return;
   1517      1.76   hannken 	}
   1518      1.30      fvdl 	if ((u_int)size > fs->fs_bsize || fragoff(fs, size) != 0 ||
   1519      1.30      fvdl 	    fragnum(fs, bno) + numfrags(fs, size) > fs->fs_frag) {
   1520      1.59   tsutsui 		printf("dev = 0x%x, bno = %" PRId64 " bsize = %d, "
   1521      1.58      fvdl 		       "size = %ld, fs = %s\n",
   1522      1.76   hannken 		    dev, bno, fs->fs_bsize, size, fs->fs_fsmnt);
   1523       1.1   mycroft 		panic("blkfree: bad size");
   1524       1.1   mycroft 	}
   1525      1.76   hannken 
   1526      1.60      fvdl 	if (bno >= fs->fs_size) {
   1527      1.86  christos 		printf("bad block %" PRId64 ", ino %llu\n", bno,
   1528      1.86  christos 		    (unsigned long long)inum);
   1529      1.76   hannken 		ffs_fserr(fs, inum, "bad block");
   1530       1.1   mycroft 		return;
   1531       1.1   mycroft 	}
   1532      1.76   hannken 	error = bread(devvp, cgblkno, (int)fs->fs_cgsize, NOCRED, &bp);
   1533       1.1   mycroft 	if (error) {
   1534       1.1   mycroft 		brelse(bp);
   1535       1.1   mycroft 		return;
   1536       1.1   mycroft 	}
   1537       1.1   mycroft 	cgp = (struct cg *)bp->b_data;
   1538      1.19    bouyer 	if (!cg_chkmagic(cgp, needswap)) {
   1539       1.1   mycroft 		brelse(bp);
   1540       1.1   mycroft 		return;
   1541       1.1   mycroft 	}
   1542      1.62      fvdl 	cgp->cg_old_time = ufs_rw32(time.tv_sec, needswap);
   1543      1.73       dbj 	if ((fs->fs_magic != FS_UFS1_MAGIC) ||
   1544      1.73       dbj 	    (fs->fs_old_flags & FS_FLAGS_UPDATED))
   1545      1.73       dbj 		cgp->cg_time = ufs_rw64(time.tv_sec, needswap);
   1546      1.60      fvdl 	cgbno = dtogd(fs, bno);
   1547      1.62      fvdl 	blksfree = cg_blksfree(cgp, needswap);
   1548       1.1   mycroft 	if (size == fs->fs_bsize) {
   1549      1.60      fvdl 		fragno = fragstoblks(fs, cgbno);
   1550      1.62      fvdl 		if (!ffs_isfreeblock(fs, blksfree, fragno)) {
   1551      1.77   hannken 			if (devvp->v_type != VBLK) {
   1552      1.77   hannken 				/* devvp is a snapshot */
   1553      1.76   hannken 				brelse(bp);
   1554      1.76   hannken 				return;
   1555      1.76   hannken 			}
   1556      1.59   tsutsui 			printf("dev = 0x%x, block = %" PRId64 ", fs = %s\n",
   1557      1.76   hannken 			    dev, bno, fs->fs_fsmnt);
   1558       1.1   mycroft 			panic("blkfree: freeing free block");
   1559       1.1   mycroft 		}
   1560      1.62      fvdl 		ffs_setblock(fs, blksfree, fragno);
   1561      1.60      fvdl 		ffs_clusteracct(fs, cgp, fragno, 1);
   1562      1.19    bouyer 		ufs_add32(cgp->cg_cs.cs_nbfree, 1, needswap);
   1563       1.1   mycroft 		fs->fs_cstotal.cs_nbfree++;
   1564       1.1   mycroft 		fs->fs_cs(fs, cg).cs_nbfree++;
   1565      1.73       dbj 		if ((fs->fs_magic == FS_UFS1_MAGIC) &&
   1566      1.73       dbj 		    ((fs->fs_old_flags & FS_FLAGS_UPDATED) == 0)) {
   1567      1.73       dbj 			i = old_cbtocylno(fs, cgbno);
   1568      1.75       dbj 			KASSERT(i >= 0);
   1569      1.75       dbj 			KASSERT(i < fs->fs_old_ncyl);
   1570      1.75       dbj 			KASSERT(old_cbtorpos(fs, cgbno) >= 0);
   1571      1.75       dbj 			KASSERT(fs->fs_old_nrpos == 0 || old_cbtorpos(fs, cgbno) < fs->fs_old_nrpos);
   1572      1.73       dbj 			ufs_add16(old_cg_blks(fs, cgp, i, needswap)[old_cbtorpos(fs, cgbno)], 1,
   1573      1.73       dbj 			    needswap);
   1574      1.73       dbj 			ufs_add32(old_cg_blktot(cgp, needswap)[i], 1, needswap);
   1575      1.73       dbj 		}
   1576       1.1   mycroft 	} else {
   1577      1.60      fvdl 		bbase = cgbno - fragnum(fs, cgbno);
   1578       1.1   mycroft 		/*
   1579       1.1   mycroft 		 * decrement the counts associated with the old frags
   1580       1.1   mycroft 		 */
   1581      1.62      fvdl 		blk = blkmap(fs, blksfree, bbase);
   1582      1.19    bouyer 		ffs_fragacct(fs, blk, cgp->cg_frsum, -1, needswap);
   1583       1.1   mycroft 		/*
   1584       1.1   mycroft 		 * deallocate the fragment
   1585       1.1   mycroft 		 */
   1586       1.1   mycroft 		frags = numfrags(fs, size);
   1587       1.1   mycroft 		for (i = 0; i < frags; i++) {
   1588      1.62      fvdl 			if (isset(blksfree, cgbno + i)) {
   1589      1.59   tsutsui 				printf("dev = 0x%x, block = %" PRId64
   1590      1.59   tsutsui 				       ", fs = %s\n",
   1591      1.76   hannken 				    dev, bno + i, fs->fs_fsmnt);
   1592       1.1   mycroft 				panic("blkfree: freeing free frag");
   1593       1.1   mycroft 			}
   1594      1.62      fvdl 			setbit(blksfree, cgbno + i);
   1595       1.1   mycroft 		}
   1596      1.19    bouyer 		ufs_add32(cgp->cg_cs.cs_nffree, i, needswap);
   1597       1.1   mycroft 		fs->fs_cstotal.cs_nffree += i;
   1598      1.30      fvdl 		fs->fs_cs(fs, cg).cs_nffree += i;
   1599       1.1   mycroft 		/*
   1600       1.1   mycroft 		 * add back in counts associated with the new frags
   1601       1.1   mycroft 		 */
   1602      1.62      fvdl 		blk = blkmap(fs, blksfree, bbase);
   1603      1.19    bouyer 		ffs_fragacct(fs, blk, cgp->cg_frsum, 1, needswap);
   1604       1.1   mycroft 		/*
   1605       1.1   mycroft 		 * if a complete block has been reassembled, account for it
   1606       1.1   mycroft 		 */
   1607      1.60      fvdl 		fragno = fragstoblks(fs, bbase);
   1608      1.62      fvdl 		if (ffs_isblock(fs, blksfree, fragno)) {
   1609      1.19    bouyer 			ufs_add32(cgp->cg_cs.cs_nffree, -fs->fs_frag, needswap);
   1610       1.1   mycroft 			fs->fs_cstotal.cs_nffree -= fs->fs_frag;
   1611       1.1   mycroft 			fs->fs_cs(fs, cg).cs_nffree -= fs->fs_frag;
   1612      1.60      fvdl 			ffs_clusteracct(fs, cgp, fragno, 1);
   1613      1.19    bouyer 			ufs_add32(cgp->cg_cs.cs_nbfree, 1, needswap);
   1614       1.1   mycroft 			fs->fs_cstotal.cs_nbfree++;
   1615       1.1   mycroft 			fs->fs_cs(fs, cg).cs_nbfree++;
   1616      1.73       dbj 			if ((fs->fs_magic == FS_UFS1_MAGIC) &&
   1617      1.73       dbj 			    ((fs->fs_old_flags & FS_FLAGS_UPDATED) == 0)) {
   1618      1.73       dbj 				i = old_cbtocylno(fs, bbase);
   1619      1.75       dbj 				KASSERT(i >= 0);
   1620      1.75       dbj 				KASSERT(i < fs->fs_old_ncyl);
   1621      1.75       dbj 				KASSERT(old_cbtorpos(fs, bbase) >= 0);
   1622      1.75       dbj 				KASSERT(fs->fs_old_nrpos == 0 || old_cbtorpos(fs, bbase) < fs->fs_old_nrpos);
   1623      1.73       dbj 				ufs_add16(old_cg_blks(fs, cgp, i, needswap)[old_cbtorpos(fs,
   1624      1.73       dbj 				    bbase)], 1, needswap);
   1625      1.73       dbj 				ufs_add32(old_cg_blktot(cgp, needswap)[i], 1, needswap);
   1626      1.73       dbj 			}
   1627       1.1   mycroft 		}
   1628       1.1   mycroft 	}
   1629       1.1   mycroft 	fs->fs_fmod = 1;
   1630      1.76   hannken 	ACTIVECG_CLR(fs, cg);
   1631       1.1   mycroft 	bdwrite(bp);
   1632       1.1   mycroft }
   1633       1.1   mycroft 
   1634      1.18      fvdl #if defined(DIAGNOSTIC) || defined(DEBUG)
   1635      1.55      matt #ifdef XXXUBC
   1636      1.18      fvdl /*
   1637      1.18      fvdl  * Verify allocation of a block or fragment. Returns true if block or
   1638      1.18      fvdl  * fragment is allocated, false if it is free.
   1639      1.18      fvdl  */
   1640      1.18      fvdl static int
   1641      1.85   thorpej ffs_checkblk(struct inode *ip, daddr_t bno, long size)
   1642      1.18      fvdl {
   1643      1.18      fvdl 	struct fs *fs;
   1644      1.18      fvdl 	struct cg *cgp;
   1645      1.18      fvdl 	struct buf *bp;
   1646      1.18      fvdl 	int i, error, frags, free;
   1647      1.18      fvdl 
   1648      1.18      fvdl 	fs = ip->i_fs;
   1649      1.18      fvdl 	if ((u_int)size > fs->fs_bsize || fragoff(fs, size) != 0) {
   1650      1.18      fvdl 		printf("bsize = %d, size = %ld, fs = %s\n",
   1651      1.18      fvdl 		    fs->fs_bsize, size, fs->fs_fsmnt);
   1652      1.18      fvdl 		panic("checkblk: bad size");
   1653      1.18      fvdl 	}
   1654      1.60      fvdl 	if (bno >= fs->fs_size)
   1655      1.18      fvdl 		panic("checkblk: bad block %d", bno);
   1656      1.18      fvdl 	error = bread(ip->i_devvp, fsbtodb(fs, cgtod(fs, dtog(fs, bno))),
   1657      1.18      fvdl 		(int)fs->fs_cgsize, NOCRED, &bp);
   1658      1.18      fvdl 	if (error) {
   1659      1.18      fvdl 		brelse(bp);
   1660      1.18      fvdl 		return 0;
   1661      1.18      fvdl 	}
   1662      1.18      fvdl 	cgp = (struct cg *)bp->b_data;
   1663      1.30      fvdl 	if (!cg_chkmagic(cgp, UFS_FSNEEDSWAP(fs))) {
   1664      1.18      fvdl 		brelse(bp);
   1665      1.18      fvdl 		return 0;
   1666      1.18      fvdl 	}
   1667      1.18      fvdl 	bno = dtogd(fs, bno);
   1668      1.18      fvdl 	if (size == fs->fs_bsize) {
   1669      1.30      fvdl 		free = ffs_isblock(fs, cg_blksfree(cgp, UFS_FSNEEDSWAP(fs)),
   1670      1.19    bouyer 			fragstoblks(fs, bno));
   1671      1.18      fvdl 	} else {
   1672      1.18      fvdl 		frags = numfrags(fs, size);
   1673      1.18      fvdl 		for (free = 0, i = 0; i < frags; i++)
   1674      1.30      fvdl 			if (isset(cg_blksfree(cgp, UFS_FSNEEDSWAP(fs)), bno + i))
   1675      1.18      fvdl 				free++;
   1676      1.18      fvdl 		if (free != 0 && free != frags)
   1677      1.18      fvdl 			panic("checkblk: partially free fragment");
   1678      1.18      fvdl 	}
   1679      1.18      fvdl 	brelse(bp);
   1680      1.18      fvdl 	return (!free);
   1681      1.18      fvdl }
   1682      1.55      matt #endif /* XXXUBC */
   1683      1.18      fvdl #endif /* DIAGNOSTIC */
   1684      1.18      fvdl 
   1685       1.1   mycroft /*
   1686       1.1   mycroft  * Free an inode.
   1687      1.30      fvdl  */
   1688      1.30      fvdl int
   1689  1.87.2.1      yamt ffs_vfree(struct vnode *vp, ino_t ino, int mode)
   1690      1.30      fvdl {
   1691      1.30      fvdl 
   1692  1.87.2.1      yamt 	if (DOINGSOFTDEP(vp)) {
   1693  1.87.2.1      yamt 		softdep_freefile(vp, ino, mode);
   1694      1.30      fvdl 		return (0);
   1695      1.30      fvdl 	}
   1696  1.87.2.1      yamt 	return ffs_freefile(VTOI(vp)->i_fs, VTOI(vp)->i_devvp, ino, mode);
   1697      1.30      fvdl }
   1698      1.30      fvdl 
   1699      1.30      fvdl /*
   1700      1.30      fvdl  * Do the actual free operation.
   1701       1.1   mycroft  * The specified inode is placed back in the free map.
   1702       1.1   mycroft  */
   1703       1.1   mycroft int
   1704      1.85   thorpej ffs_freefile(struct fs *fs, struct vnode *devvp, ino_t ino, int mode)
   1705       1.9  christos {
   1706      1.33  augustss 	struct cg *cgp;
   1707       1.1   mycroft 	struct buf *bp;
   1708       1.1   mycroft 	int error, cg;
   1709      1.76   hannken 	daddr_t cgbno;
   1710      1.62      fvdl 	u_int8_t *inosused;
   1711      1.78   hannken 	dev_t dev;
   1712      1.19    bouyer #ifdef FFS_EI
   1713      1.30      fvdl 	const int needswap = UFS_FSNEEDSWAP(fs);
   1714      1.19    bouyer #endif
   1715       1.1   mycroft 
   1716      1.76   hannken 	cg = ino_to_cg(fs, ino);
   1717      1.78   hannken 	if (devvp->v_type != VBLK) {
   1718      1.78   hannken 		/* devvp is a snapshot */
   1719      1.78   hannken 		dev = VTOI(devvp)->i_devvp->v_rdev;
   1720      1.76   hannken 		cgbno = fragstoblks(fs, cgtod(fs, cg));
   1721      1.76   hannken 	} else {
   1722      1.78   hannken 		dev = devvp->v_rdev;
   1723      1.76   hannken 		cgbno = fsbtodb(fs, cgtod(fs, cg));
   1724      1.76   hannken 	}
   1725       1.1   mycroft 	if ((u_int)ino >= fs->fs_ipg * fs->fs_ncg)
   1726      1.86  christos 		panic("ifree: range: dev = 0x%x, ino = %llu, fs = %s",
   1727      1.86  christos 		    dev, (unsigned long long)ino, fs->fs_fsmnt);
   1728      1.78   hannken 	error = bread(devvp, cgbno, (int)fs->fs_cgsize, NOCRED, &bp);
   1729       1.1   mycroft 	if (error) {
   1730       1.1   mycroft 		brelse(bp);
   1731      1.30      fvdl 		return (error);
   1732       1.1   mycroft 	}
   1733       1.1   mycroft 	cgp = (struct cg *)bp->b_data;
   1734      1.19    bouyer 	if (!cg_chkmagic(cgp, needswap)) {
   1735       1.1   mycroft 		brelse(bp);
   1736       1.1   mycroft 		return (0);
   1737       1.1   mycroft 	}
   1738      1.62      fvdl 	cgp->cg_old_time = ufs_rw32(time.tv_sec, needswap);
   1739      1.73       dbj 	if ((fs->fs_magic != FS_UFS1_MAGIC) ||
   1740      1.73       dbj 	    (fs->fs_old_flags & FS_FLAGS_UPDATED))
   1741      1.73       dbj 		cgp->cg_time = ufs_rw64(time.tv_sec, needswap);
   1742      1.62      fvdl 	inosused = cg_inosused(cgp, needswap);
   1743       1.1   mycroft 	ino %= fs->fs_ipg;
   1744      1.62      fvdl 	if (isclr(inosused, ino)) {
   1745      1.86  christos 		printf("ifree: dev = 0x%x, ino = %llu, fs = %s\n",
   1746      1.86  christos 		    dev, (unsigned long long)ino + cg * fs->fs_ipg,
   1747      1.86  christos 		    fs->fs_fsmnt);
   1748       1.1   mycroft 		if (fs->fs_ronly == 0)
   1749       1.1   mycroft 			panic("ifree: freeing free inode");
   1750       1.1   mycroft 	}
   1751      1.62      fvdl 	clrbit(inosused, ino);
   1752      1.19    bouyer 	if (ino < ufs_rw32(cgp->cg_irotor, needswap))
   1753      1.19    bouyer 		cgp->cg_irotor = ufs_rw32(ino, needswap);
   1754      1.19    bouyer 	ufs_add32(cgp->cg_cs.cs_nifree, 1, needswap);
   1755       1.1   mycroft 	fs->fs_cstotal.cs_nifree++;
   1756       1.1   mycroft 	fs->fs_cs(fs, cg).cs_nifree++;
   1757      1.78   hannken 	if ((mode & IFMT) == IFDIR) {
   1758      1.19    bouyer 		ufs_add32(cgp->cg_cs.cs_ndir, -1, needswap);
   1759       1.1   mycroft 		fs->fs_cstotal.cs_ndir--;
   1760       1.1   mycroft 		fs->fs_cs(fs, cg).cs_ndir--;
   1761       1.1   mycroft 	}
   1762       1.1   mycroft 	fs->fs_fmod = 1;
   1763      1.82   hannken 	ACTIVECG_CLR(fs, cg);
   1764       1.1   mycroft 	bdwrite(bp);
   1765       1.1   mycroft 	return (0);
   1766       1.1   mycroft }
   1767       1.1   mycroft 
   1768       1.1   mycroft /*
   1769      1.76   hannken  * Check to see if a file is free.
   1770      1.76   hannken  */
   1771      1.76   hannken int
   1772      1.85   thorpej ffs_checkfreefile(struct fs *fs, struct vnode *devvp, ino_t ino)
   1773      1.76   hannken {
   1774      1.76   hannken 	struct cg *cgp;
   1775      1.76   hannken 	struct buf *bp;
   1776      1.76   hannken 	daddr_t cgbno;
   1777      1.76   hannken 	int ret, cg;
   1778      1.76   hannken 	u_int8_t *inosused;
   1779      1.76   hannken 
   1780      1.76   hannken 	cg = ino_to_cg(fs, ino);
   1781      1.77   hannken 	if (devvp->v_type != VBLK) {
   1782      1.77   hannken 		/* devvp is a snapshot */
   1783      1.76   hannken 		cgbno = fragstoblks(fs, cgtod(fs, cg));
   1784      1.77   hannken 	} else
   1785      1.76   hannken 		cgbno = fsbtodb(fs, cgtod(fs, cg));
   1786      1.76   hannken 	if ((u_int)ino >= fs->fs_ipg * fs->fs_ncg)
   1787      1.76   hannken 		return 1;
   1788      1.76   hannken 	if (bread(devvp, cgbno, (int)fs->fs_cgsize, NOCRED, &bp)) {
   1789      1.76   hannken 		brelse(bp);
   1790      1.76   hannken 		return 1;
   1791      1.76   hannken 	}
   1792      1.76   hannken 	cgp = (struct cg *)bp->b_data;
   1793      1.76   hannken 	if (!cg_chkmagic(cgp, UFS_FSNEEDSWAP(fs))) {
   1794      1.76   hannken 		brelse(bp);
   1795      1.76   hannken 		return 1;
   1796      1.76   hannken 	}
   1797      1.76   hannken 	inosused = cg_inosused(cgp, UFS_FSNEEDSWAP(fs));
   1798      1.76   hannken 	ino %= fs->fs_ipg;
   1799      1.76   hannken 	ret = isclr(inosused, ino);
   1800      1.76   hannken 	brelse(bp);
   1801      1.76   hannken 	return ret;
   1802      1.76   hannken }
   1803      1.76   hannken 
   1804      1.76   hannken /*
   1805       1.1   mycroft  * Find a block of the specified size in the specified cylinder group.
   1806       1.1   mycroft  *
   1807       1.1   mycroft  * It is a panic if a request is made to find a block if none are
   1808       1.1   mycroft  * available.
   1809       1.1   mycroft  */
   1810      1.60      fvdl static int32_t
   1811      1.85   thorpej ffs_mapsearch(struct fs *fs, struct cg *cgp, daddr_t bpref, int allocsiz)
   1812       1.1   mycroft {
   1813      1.60      fvdl 	int32_t bno;
   1814       1.1   mycroft 	int start, len, loc, i;
   1815       1.1   mycroft 	int blk, field, subfield, pos;
   1816      1.19    bouyer 	int ostart, olen;
   1817      1.62      fvdl 	u_int8_t *blksfree;
   1818      1.30      fvdl #ifdef FFS_EI
   1819      1.30      fvdl 	const int needswap = UFS_FSNEEDSWAP(fs);
   1820      1.30      fvdl #endif
   1821       1.1   mycroft 
   1822       1.1   mycroft 	/*
   1823       1.1   mycroft 	 * find the fragment by searching through the free block
   1824       1.1   mycroft 	 * map for an appropriate bit pattern
   1825       1.1   mycroft 	 */
   1826       1.1   mycroft 	if (bpref)
   1827       1.1   mycroft 		start = dtogd(fs, bpref) / NBBY;
   1828       1.1   mycroft 	else
   1829      1.19    bouyer 		start = ufs_rw32(cgp->cg_frotor, needswap) / NBBY;
   1830      1.62      fvdl 	blksfree = cg_blksfree(cgp, needswap);
   1831       1.1   mycroft 	len = howmany(fs->fs_fpg, NBBY) - start;
   1832      1.19    bouyer 	ostart = start;
   1833      1.19    bouyer 	olen = len;
   1834      1.45     lukem 	loc = scanc((u_int)len,
   1835      1.62      fvdl 		(const u_char *)&blksfree[start],
   1836      1.45     lukem 		(const u_char *)fragtbl[fs->fs_frag],
   1837      1.54   mycroft 		(1 << (allocsiz - 1 + (fs->fs_frag & (NBBY - 1)))));
   1838       1.1   mycroft 	if (loc == 0) {
   1839       1.1   mycroft 		len = start + 1;
   1840       1.1   mycroft 		start = 0;
   1841      1.45     lukem 		loc = scanc((u_int)len,
   1842      1.62      fvdl 			(const u_char *)&blksfree[0],
   1843      1.45     lukem 			(const u_char *)fragtbl[fs->fs_frag],
   1844      1.54   mycroft 			(1 << (allocsiz - 1 + (fs->fs_frag & (NBBY - 1)))));
   1845       1.1   mycroft 		if (loc == 0) {
   1846      1.13  christos 			printf("start = %d, len = %d, fs = %s\n",
   1847      1.19    bouyer 			    ostart, olen, fs->fs_fsmnt);
   1848      1.20      ross 			printf("offset=%d %ld\n",
   1849      1.19    bouyer 				ufs_rw32(cgp->cg_freeoff, needswap),
   1850      1.62      fvdl 				(long)blksfree - (long)cgp);
   1851      1.62      fvdl 			printf("cg %d\n", cgp->cg_cgx);
   1852       1.1   mycroft 			panic("ffs_alloccg: map corrupted");
   1853       1.1   mycroft 			/* NOTREACHED */
   1854       1.1   mycroft 		}
   1855       1.1   mycroft 	}
   1856       1.1   mycroft 	bno = (start + len - loc) * NBBY;
   1857      1.19    bouyer 	cgp->cg_frotor = ufs_rw32(bno, needswap);
   1858       1.1   mycroft 	/*
   1859       1.1   mycroft 	 * found the byte in the map
   1860       1.1   mycroft 	 * sift through the bits to find the selected frag
   1861       1.1   mycroft 	 */
   1862       1.1   mycroft 	for (i = bno + NBBY; bno < i; bno += fs->fs_frag) {
   1863      1.62      fvdl 		blk = blkmap(fs, blksfree, bno);
   1864       1.1   mycroft 		blk <<= 1;
   1865       1.1   mycroft 		field = around[allocsiz];
   1866       1.1   mycroft 		subfield = inside[allocsiz];
   1867       1.1   mycroft 		for (pos = 0; pos <= fs->fs_frag - allocsiz; pos++) {
   1868       1.1   mycroft 			if ((blk & field) == subfield)
   1869       1.1   mycroft 				return (bno + pos);
   1870       1.1   mycroft 			field <<= 1;
   1871       1.1   mycroft 			subfield <<= 1;
   1872       1.1   mycroft 		}
   1873       1.1   mycroft 	}
   1874      1.60      fvdl 	printf("bno = %d, fs = %s\n", bno, fs->fs_fsmnt);
   1875       1.1   mycroft 	panic("ffs_alloccg: block not in map");
   1876      1.58      fvdl 	/* return (-1); */
   1877       1.1   mycroft }
   1878       1.1   mycroft 
   1879       1.1   mycroft /*
   1880       1.1   mycroft  * Update the cluster map because of an allocation or free.
   1881       1.1   mycroft  *
   1882       1.1   mycroft  * Cnt == 1 means free; cnt == -1 means allocating.
   1883       1.1   mycroft  */
   1884       1.9  christos void
   1885      1.85   thorpej ffs_clusteracct(struct fs *fs, struct cg *cgp, int32_t blkno, int cnt)
   1886       1.1   mycroft {
   1887       1.4       cgd 	int32_t *sump;
   1888       1.5   mycroft 	int32_t *lp;
   1889       1.1   mycroft 	u_char *freemapp, *mapp;
   1890       1.1   mycroft 	int i, start, end, forw, back, map, bit;
   1891      1.30      fvdl #ifdef FFS_EI
   1892      1.30      fvdl 	const int needswap = UFS_FSNEEDSWAP(fs);
   1893      1.30      fvdl #endif
   1894       1.1   mycroft 
   1895       1.1   mycroft 	if (fs->fs_contigsumsize <= 0)
   1896       1.1   mycroft 		return;
   1897      1.19    bouyer 	freemapp = cg_clustersfree(cgp, needswap);
   1898      1.19    bouyer 	sump = cg_clustersum(cgp, needswap);
   1899       1.1   mycroft 	/*
   1900       1.1   mycroft 	 * Allocate or clear the actual block.
   1901       1.1   mycroft 	 */
   1902       1.1   mycroft 	if (cnt > 0)
   1903       1.1   mycroft 		setbit(freemapp, blkno);
   1904       1.1   mycroft 	else
   1905       1.1   mycroft 		clrbit(freemapp, blkno);
   1906       1.1   mycroft 	/*
   1907       1.1   mycroft 	 * Find the size of the cluster going forward.
   1908       1.1   mycroft 	 */
   1909       1.1   mycroft 	start = blkno + 1;
   1910       1.1   mycroft 	end = start + fs->fs_contigsumsize;
   1911      1.19    bouyer 	if (end >= ufs_rw32(cgp->cg_nclusterblks, needswap))
   1912      1.19    bouyer 		end = ufs_rw32(cgp->cg_nclusterblks, needswap);
   1913       1.1   mycroft 	mapp = &freemapp[start / NBBY];
   1914       1.1   mycroft 	map = *mapp++;
   1915       1.1   mycroft 	bit = 1 << (start % NBBY);
   1916       1.1   mycroft 	for (i = start; i < end; i++) {
   1917       1.1   mycroft 		if ((map & bit) == 0)
   1918       1.1   mycroft 			break;
   1919       1.1   mycroft 		if ((i & (NBBY - 1)) != (NBBY - 1)) {
   1920       1.1   mycroft 			bit <<= 1;
   1921       1.1   mycroft 		} else {
   1922       1.1   mycroft 			map = *mapp++;
   1923       1.1   mycroft 			bit = 1;
   1924       1.1   mycroft 		}
   1925       1.1   mycroft 	}
   1926       1.1   mycroft 	forw = i - start;
   1927       1.1   mycroft 	/*
   1928       1.1   mycroft 	 * Find the size of the cluster going backward.
   1929       1.1   mycroft 	 */
   1930       1.1   mycroft 	start = blkno - 1;
   1931       1.1   mycroft 	end = start - fs->fs_contigsumsize;
   1932       1.1   mycroft 	if (end < 0)
   1933       1.1   mycroft 		end = -1;
   1934       1.1   mycroft 	mapp = &freemapp[start / NBBY];
   1935       1.1   mycroft 	map = *mapp--;
   1936       1.1   mycroft 	bit = 1 << (start % NBBY);
   1937       1.1   mycroft 	for (i = start; i > end; i--) {
   1938       1.1   mycroft 		if ((map & bit) == 0)
   1939       1.1   mycroft 			break;
   1940       1.1   mycroft 		if ((i & (NBBY - 1)) != 0) {
   1941       1.1   mycroft 			bit >>= 1;
   1942       1.1   mycroft 		} else {
   1943       1.1   mycroft 			map = *mapp--;
   1944       1.1   mycroft 			bit = 1 << (NBBY - 1);
   1945       1.1   mycroft 		}
   1946       1.1   mycroft 	}
   1947       1.1   mycroft 	back = start - i;
   1948       1.1   mycroft 	/*
   1949       1.1   mycroft 	 * Account for old cluster and the possibly new forward and
   1950       1.1   mycroft 	 * back clusters.
   1951       1.1   mycroft 	 */
   1952       1.1   mycroft 	i = back + forw + 1;
   1953       1.1   mycroft 	if (i > fs->fs_contigsumsize)
   1954       1.1   mycroft 		i = fs->fs_contigsumsize;
   1955      1.19    bouyer 	ufs_add32(sump[i], cnt, needswap);
   1956       1.1   mycroft 	if (back > 0)
   1957      1.19    bouyer 		ufs_add32(sump[back], -cnt, needswap);
   1958       1.1   mycroft 	if (forw > 0)
   1959      1.19    bouyer 		ufs_add32(sump[forw], -cnt, needswap);
   1960      1.19    bouyer 
   1961       1.5   mycroft 	/*
   1962       1.5   mycroft 	 * Update cluster summary information.
   1963       1.5   mycroft 	 */
   1964       1.5   mycroft 	lp = &sump[fs->fs_contigsumsize];
   1965       1.5   mycroft 	for (i = fs->fs_contigsumsize; i > 0; i--)
   1966      1.19    bouyer 		if (ufs_rw32(*lp--, needswap) > 0)
   1967       1.5   mycroft 			break;
   1968      1.19    bouyer 	fs->fs_maxcluster[ufs_rw32(cgp->cg_cgx, needswap)] = i;
   1969       1.1   mycroft }
   1970       1.1   mycroft 
   1971       1.1   mycroft /*
   1972       1.1   mycroft  * Fserr prints the name of a file system with an error diagnostic.
   1973      1.81     perry  *
   1974       1.1   mycroft  * The form of the error message is:
   1975       1.1   mycroft  *	fs: error message
   1976       1.1   mycroft  */
   1977       1.1   mycroft static void
   1978      1.85   thorpej ffs_fserr(struct fs *fs, u_int uid, const char *cp)
   1979       1.1   mycroft {
   1980       1.1   mycroft 
   1981      1.64  gmcgarry 	log(LOG_ERR, "uid %d, pid %d, command %s, on %s: %s\n",
   1982      1.64  gmcgarry 	    uid, curproc->p_pid, curproc->p_comm, fs->fs_fsmnt, cp);
   1983       1.1   mycroft }
   1984