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ffs_bswap.c revision 1.35.14.3
      1  1.35.14.2       tls /*	$NetBSD: ffs_bswap.c,v 1.35.14.3 2017/12/03 11:39:21 jdolecek Exp $	*/
      2        1.1    bouyer 
      3        1.1    bouyer /*
      4        1.1    bouyer  * Copyright (c) 1998 Manuel Bouyer.
      5        1.1    bouyer  *
      6        1.1    bouyer  * Redistribution and use in source and binary forms, with or without
      7        1.1    bouyer  * modification, are permitted provided that the following conditions
      8        1.1    bouyer  * are met:
      9        1.1    bouyer  * 1. Redistributions of source code must retain the above copyright
     10        1.1    bouyer  *    notice, this list of conditions and the following disclaimer.
     11        1.1    bouyer  * 2. Redistributions in binary form must reproduce the above copyright
     12        1.1    bouyer  *    notice, this list of conditions and the following disclaimer in the
     13        1.1    bouyer  *    documentation and/or other materials provided with the distribution.
     14        1.1    bouyer  *
     15        1.8    bouyer  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     16        1.8    bouyer  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     17        1.8    bouyer  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     18        1.8    bouyer  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     19        1.8    bouyer  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     20        1.8    bouyer  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     21        1.8    bouyer  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     22        1.8    bouyer  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     23        1.8    bouyer  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     24        1.8    bouyer  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     25        1.1    bouyer  *
     26        1.1    bouyer  */
     27       1.15     lukem 
     28       1.22     lukem #if HAVE_NBTOOL_CONFIG_H
     29       1.22     lukem #include "nbtool_config.h"
     30       1.17        tv #endif
     31       1.17        tv 
     32       1.22     lukem #include <sys/cdefs.h>
     33  1.35.14.2       tls __KERNEL_RCSID(0, "$NetBSD: ffs_bswap.c,v 1.35.14.3 2017/12/03 11:39:21 jdolecek Exp $");
     34        1.1    bouyer 
     35        1.2     ragge #include <sys/param.h>
     36       1.11     lukem #if defined(_KERNEL)
     37        1.1    bouyer #include <sys/systm.h>
     38       1.11     lukem #endif
     39        1.9     enami 
     40        1.1    bouyer #include <ufs/ufs/dinode.h>
     41       1.35    bouyer #include <ufs/ufs/quota.h>
     42        1.1    bouyer #include <ufs/ufs/ufs_bswap.h>
     43        1.1    bouyer #include <ufs/ffs/fs.h>
     44        1.1    bouyer #include <ufs/ffs/ffs_extern.h>
     45        1.6   thorpej 
     46        1.6   thorpej #if !defined(_KERNEL)
     47       1.14     lukem #include <stddef.h>
     48       1.11     lukem #include <stdio.h>
     49       1.11     lukem #include <stdlib.h>
     50        1.6   thorpej #include <string.h>
     51       1.11     lukem #define panic(x)	printf("%s\n", (x)), abort()
     52        1.6   thorpej #endif
     53        1.1    bouyer 
     54        1.1    bouyer void
     55  1.35.14.3  jdolecek ffs_sb_swap(const struct fs *o, struct fs *n)
     56        1.1    bouyer {
     57       1.33     lukem 	size_t i;
     58  1.35.14.3  jdolecek 	const u_int32_t *o32;
     59  1.35.14.3  jdolecek 	u_int32_t *n32;
     60       1.11     lukem 
     61        1.9     enami 	/*
     62       1.14     lukem 	 * In order to avoid a lot of lines, as the first N fields (52)
     63       1.14     lukem 	 * of the superblock up to fs_fmod are u_int32_t, we just loop
     64       1.14     lukem 	 * here to convert them.
     65        1.1    bouyer 	 */
     66  1.35.14.3  jdolecek 	o32 = (const u_int32_t *)o;
     67        1.1    bouyer 	n32 = (u_int32_t *)n;
     68       1.14     lukem 	for (i = 0; i < offsetof(struct fs, fs_fmod) / sizeof(u_int32_t); i++)
     69        1.1    bouyer 		n32[i] = bswap32(o32[i]);
     70        1.9     enami 
     71       1.18      fvdl 	n->fs_swuid = bswap64(o->fs_swuid);
     72       1.23       dbj 	n->fs_cgrotor = bswap32(o->fs_cgrotor); /* Unused */
     73       1.18      fvdl 	n->fs_old_cpc = bswap32(o->fs_old_cpc);
     74       1.25       dbj 
     75       1.25       dbj 	/* These fields overlap with a possible location for the
     76       1.25       dbj 	 * historic FS_DYNAMICPOSTBLFMT postbl table, and with the
     77       1.25       dbj 	 * first half of the historic FS_42POSTBLFMT postbl table.
     78       1.25       dbj 	 */
     79       1.18      fvdl 	n->fs_maxbsize = bswap32(o->fs_maxbsize);
     80       1.35    bouyer 	/* XXX journal */
     81       1.35    bouyer 	n->fs_quota_magic = bswap32(o->fs_quota_magic);
     82       1.35    bouyer 	for (i = 0; i < MAXQUOTAS; i++)
     83       1.35    bouyer 		n->fs_quotafile[i] = bswap64(o->fs_quotafile[i]);
     84       1.18      fvdl 	n->fs_sblockloc = bswap64(o->fs_sblockloc);
     85       1.18      fvdl 	ffs_csumtotal_swap(&o->fs_cstotal, &n->fs_cstotal);
     86       1.18      fvdl 	n->fs_time = bswap64(o->fs_time);
     87       1.18      fvdl 	n->fs_size = bswap64(o->fs_size);
     88       1.18      fvdl 	n->fs_dsize = bswap64(o->fs_dsize);
     89       1.18      fvdl 	n->fs_csaddr = bswap64(o->fs_csaddr);
     90       1.25       dbj 	n->fs_pendingblocks = bswap64(o->fs_pendingblocks);
     91       1.25       dbj 	n->fs_pendinginodes = bswap32(o->fs_pendinginodes);
     92       1.29     perry 
     93       1.25       dbj 	/* These fields overlap with the second half of the
     94       1.25       dbj 	 * historic FS_42POSTBLFMT postbl table
     95       1.25       dbj 	 */
     96       1.28   hannken 	for (i = 0; i < FSMAXSNAP; i++)
     97       1.28   hannken 		n->fs_snapinum[i] = bswap32(o->fs_snapinum[i]);
     98       1.13     lukem 	n->fs_avgfilesize = bswap32(o->fs_avgfilesize);
     99       1.13     lukem 	n->fs_avgfpdir = bswap32(o->fs_avgfpdir);
    100       1.25       dbj 	/* fs_sparecon[28] - ignore for now */
    101       1.24       dbj 	n->fs_flags = bswap32(o->fs_flags);
    102        1.1    bouyer 	n->fs_contigsumsize = bswap32(o->fs_contigsumsize);
    103        1.1    bouyer 	n->fs_maxsymlinklen = bswap32(o->fs_maxsymlinklen);
    104       1.18      fvdl 	n->fs_old_inodefmt = bswap32(o->fs_old_inodefmt);
    105        1.1    bouyer 	n->fs_maxfilesize = bswap64(o->fs_maxfilesize);
    106        1.1    bouyer 	n->fs_qbmask = bswap64(o->fs_qbmask);
    107        1.1    bouyer 	n->fs_qfmask = bswap64(o->fs_qfmask);
    108        1.1    bouyer 	n->fs_state = bswap32(o->fs_state);
    109       1.18      fvdl 	n->fs_old_postblformat = bswap32(o->fs_old_postblformat);
    110       1.18      fvdl 	n->fs_old_nrpos = bswap32(o->fs_old_nrpos);
    111       1.18      fvdl 	n->fs_old_postbloff = bswap32(o->fs_old_postbloff);
    112       1.18      fvdl 	n->fs_old_rotbloff = bswap32(o->fs_old_rotbloff);
    113       1.25       dbj 
    114        1.1    bouyer 	n->fs_magic = bswap32(o->fs_magic);
    115        1.1    bouyer }
    116        1.1    bouyer 
    117        1.1    bouyer void
    118       1.18      fvdl ffs_dinode1_swap(struct ufs1_dinode *o, struct ufs1_dinode *n)
    119        1.1    bouyer {
    120        1.9     enami 
    121        1.1    bouyer 	n->di_mode = bswap16(o->di_mode);
    122        1.1    bouyer 	n->di_nlink = bswap16(o->di_nlink);
    123  1.35.14.2       tls 	n->di_oldids[0] = bswap16(o->di_oldids[0]);
    124  1.35.14.2       tls 	n->di_oldids[1] = bswap16(o->di_oldids[1]);
    125        1.1    bouyer 	n->di_size = bswap64(o->di_size);
    126        1.1    bouyer 	n->di_atime = bswap32(o->di_atime);
    127        1.1    bouyer 	n->di_atimensec = bswap32(o->di_atimensec);
    128        1.1    bouyer 	n->di_mtime = bswap32(o->di_mtime);
    129        1.1    bouyer 	n->di_mtimensec = bswap32(o->di_mtimensec);
    130        1.1    bouyer 	n->di_ctime = bswap32(o->di_ctime);
    131        1.1    bouyer 	n->di_ctimensec = bswap32(o->di_ctimensec);
    132  1.35.14.3  jdolecek 	memcpy(n->di_db, o->di_db, sizeof(n->di_db));
    133  1.35.14.3  jdolecek 	memcpy(n->di_ib, o->di_ib, sizeof(n->di_ib));
    134        1.1    bouyer 	n->di_flags = bswap32(o->di_flags);
    135        1.1    bouyer 	n->di_blocks = bswap32(o->di_blocks);
    136        1.1    bouyer 	n->di_gen = bswap32(o->di_gen);
    137        1.1    bouyer 	n->di_uid = bswap32(o->di_uid);
    138        1.1    bouyer 	n->di_gid = bswap32(o->di_gid);
    139        1.1    bouyer }
    140        1.1    bouyer 
    141        1.1    bouyer void
    142       1.18      fvdl ffs_dinode2_swap(struct ufs2_dinode *o, struct ufs2_dinode *n)
    143       1.18      fvdl {
    144       1.18      fvdl 	n->di_mode = bswap16(o->di_mode);
    145       1.18      fvdl 	n->di_nlink = bswap16(o->di_nlink);
    146       1.18      fvdl 	n->di_uid = bswap32(o->di_uid);
    147       1.18      fvdl 	n->di_gid = bswap32(o->di_gid);
    148       1.18      fvdl 	n->di_blksize = bswap32(o->di_blksize);
    149       1.18      fvdl 	n->di_size = bswap64(o->di_size);
    150       1.18      fvdl 	n->di_blocks = bswap64(o->di_blocks);
    151       1.18      fvdl 	n->di_atime = bswap64(o->di_atime);
    152       1.18      fvdl 	n->di_atimensec = bswap32(o->di_atimensec);
    153       1.18      fvdl 	n->di_mtime = bswap64(o->di_mtime);
    154       1.18      fvdl 	n->di_mtimensec = bswap32(o->di_mtimensec);
    155       1.18      fvdl 	n->di_ctime = bswap64(o->di_ctime);
    156       1.18      fvdl 	n->di_ctimensec = bswap32(o->di_ctimensec);
    157       1.30        is 	n->di_birthtime = bswap64(o->di_birthtime);
    158       1.30        is 	n->di_birthnsec = bswap32(o->di_birthnsec);
    159       1.18      fvdl 	n->di_gen = bswap32(o->di_gen);
    160       1.18      fvdl 	n->di_kernflags = bswap32(o->di_kernflags);
    161       1.18      fvdl 	n->di_flags = bswap32(o->di_flags);
    162       1.18      fvdl 	n->di_extsize = bswap32(o->di_extsize);
    163  1.35.14.3  jdolecek 	memcpy(n->di_extb, o->di_extb, sizeof(n->di_extb));
    164  1.35.14.3  jdolecek 	memcpy(n->di_db, o->di_db, sizeof(n->di_db));
    165  1.35.14.3  jdolecek 	memcpy(n->di_ib, o->di_ib, sizeof(n->di_ib));
    166       1.18      fvdl }
    167       1.18      fvdl 
    168       1.18      fvdl void
    169       1.11     lukem ffs_csum_swap(struct csum *o, struct csum *n, int size)
    170        1.1    bouyer {
    171       1.33     lukem 	size_t i;
    172        1.1    bouyer 	u_int32_t *oint, *nint;
    173       1.29     perry 
    174        1.1    bouyer 	oint = (u_int32_t*)o;
    175        1.1    bouyer 	nint = (u_int32_t*)n;
    176        1.1    bouyer 
    177        1.1    bouyer 	for (i = 0; i < size / sizeof(u_int32_t); i++)
    178        1.1    bouyer 		nint[i] = bswap32(oint[i]);
    179       1.18      fvdl }
    180       1.18      fvdl 
    181       1.18      fvdl void
    182  1.35.14.3  jdolecek ffs_csumtotal_swap(const struct csum_total *o, struct csum_total *n)
    183       1.18      fvdl {
    184       1.18      fvdl 	n->cs_ndir = bswap64(o->cs_ndir);
    185       1.18      fvdl 	n->cs_nbfree = bswap64(o->cs_nbfree);
    186       1.18      fvdl 	n->cs_nifree = bswap64(o->cs_nifree);
    187       1.18      fvdl 	n->cs_nffree = bswap64(o->cs_nffree);
    188       1.18      fvdl }
    189       1.18      fvdl 
    190       1.19     enami /*
    191       1.19     enami  * Note that ffs_cg_swap may be called with o == n.
    192       1.19     enami  */
    193       1.18      fvdl void
    194       1.18      fvdl ffs_cg_swap(struct cg *o, struct cg *n, struct fs *fs)
    195       1.18      fvdl {
    196       1.18      fvdl 	int i;
    197       1.18      fvdl 	u_int32_t *n32, *o32;
    198       1.18      fvdl 	u_int16_t *n16, *o16;
    199       1.19     enami 	int32_t btotoff, boff, clustersumoff;
    200       1.18      fvdl 
    201       1.18      fvdl 	n->cg_firstfield = bswap32(o->cg_firstfield);
    202       1.18      fvdl 	n->cg_magic = bswap32(o->cg_magic);
    203       1.18      fvdl 	n->cg_old_time = bswap32(o->cg_old_time);
    204       1.18      fvdl 	n->cg_cgx = bswap32(o->cg_cgx);
    205       1.18      fvdl 	n->cg_old_ncyl = bswap16(o->cg_old_ncyl);
    206       1.18      fvdl 	n->cg_old_niblk = bswap16(o->cg_old_niblk);
    207       1.18      fvdl 	n->cg_ndblk = bswap32(o->cg_ndblk);
    208       1.18      fvdl 	n->cg_cs.cs_ndir = bswap32(o->cg_cs.cs_ndir);
    209       1.18      fvdl 	n->cg_cs.cs_nbfree = bswap32(o->cg_cs.cs_nbfree);
    210       1.18      fvdl 	n->cg_cs.cs_nifree = bswap32(o->cg_cs.cs_nifree);
    211       1.18      fvdl 	n->cg_cs.cs_nffree = bswap32(o->cg_cs.cs_nffree);
    212       1.18      fvdl 	n->cg_rotor = bswap32(o->cg_rotor);
    213       1.18      fvdl 	n->cg_frotor = bswap32(o->cg_frotor);
    214       1.18      fvdl 	n->cg_irotor = bswap32(o->cg_irotor);
    215       1.19     enami 	for (i = 0; i < MAXFRAG; i++)
    216       1.18      fvdl 		n->cg_frsum[i] = bswap32(o->cg_frsum[i]);
    217       1.29     perry 
    218       1.23       dbj 	if ((fs->fs_magic != FS_UFS2_MAGIC) &&
    219       1.23       dbj 			(fs->fs_old_postblformat == FS_42POSTBLFMT)) { /* old format */
    220       1.18      fvdl 		struct ocg *on, *oo;
    221       1.18      fvdl 		int j;
    222       1.18      fvdl 		on = (struct ocg *)n;
    223       1.18      fvdl 		oo = (struct ocg *)o;
    224       1.23       dbj 
    225       1.23       dbj 		for (i = 0; i < 32; i++) {
    226       1.18      fvdl 			on->cg_btot[i] = bswap32(oo->cg_btot[i]);
    227       1.18      fvdl 			for (j = 0; j < 8; j++)
    228       1.18      fvdl 				on->cg_b[i][j] = bswap16(oo->cg_b[i][j]);
    229       1.18      fvdl 		}
    230       1.18      fvdl 		memmove(on->cg_iused, oo->cg_iused, 256);
    231       1.18      fvdl 		on->cg_magic = bswap32(oo->cg_magic);
    232       1.18      fvdl 	} else {  /* new format */
    233       1.23       dbj 
    234       1.23       dbj 		n->cg_old_btotoff = bswap32(o->cg_old_btotoff);
    235       1.23       dbj 		n->cg_old_boff = bswap32(o->cg_old_boff);
    236       1.23       dbj 		n->cg_iusedoff = bswap32(o->cg_iusedoff);
    237       1.23       dbj 		n->cg_freeoff = bswap32(o->cg_freeoff);
    238       1.23       dbj 		n->cg_nextfreeoff = bswap32(o->cg_nextfreeoff);
    239       1.23       dbj 		n->cg_clustersumoff = bswap32(o->cg_clustersumoff);
    240       1.23       dbj 		n->cg_clusteroff = bswap32(o->cg_clusteroff);
    241       1.23       dbj 		n->cg_nclusterblks = bswap32(o->cg_nclusterblks);
    242       1.23       dbj 		n->cg_niblk = bswap32(o->cg_niblk);
    243       1.23       dbj 		n->cg_initediblk = bswap32(o->cg_initediblk);
    244       1.23       dbj 		n->cg_time = bswap64(o->cg_time);
    245       1.23       dbj 
    246       1.18      fvdl 		if (n->cg_magic == CG_MAGIC) {
    247       1.19     enami 			btotoff = n->cg_old_btotoff;
    248       1.19     enami 			boff = n->cg_old_boff;
    249       1.19     enami 			clustersumoff = n->cg_clustersumoff;
    250       1.18      fvdl 		} else {
    251       1.19     enami 			btotoff = bswap32(n->cg_old_btotoff);
    252       1.19     enami 			boff = bswap32(n->cg_old_boff);
    253       1.19     enami 			clustersumoff = bswap32(n->cg_clustersumoff);
    254       1.18      fvdl 		}
    255       1.31       dbj 
    256       1.31       dbj 		n32 = (u_int32_t *)((u_int8_t *)n + clustersumoff);
    257       1.31       dbj 		o32 = (u_int32_t *)((u_int8_t *)o + clustersumoff);
    258       1.31       dbj 		for (i = 1; i < fs->fs_contigsumsize + 1; i++)
    259       1.31       dbj 			n32[i] = bswap32(o32[i]);
    260       1.31       dbj 
    261       1.31       dbj 		if (fs->fs_magic == FS_UFS2_MAGIC)
    262       1.31       dbj 			return;
    263       1.31       dbj 
    264       1.19     enami 		n32 = (u_int32_t *)((u_int8_t *)n + btotoff);
    265       1.19     enami 		o32 = (u_int32_t *)((u_int8_t *)o + btotoff);
    266       1.19     enami 		n16 = (u_int16_t *)((u_int8_t *)n + boff);
    267       1.19     enami 		o16 = (u_int16_t *)((u_int8_t *)o + boff);
    268       1.19     enami 
    269       1.19     enami 		for (i = 0; i < fs->fs_old_cpg; i++)
    270       1.18      fvdl 			n32[i] = bswap32(o32[i]);
    271       1.29     perry 
    272       1.19     enami 		for (i = 0; i < fs->fs_old_cpg * fs->fs_old_nrpos; i++)
    273       1.18      fvdl 			n16[i] = bswap16(o16[i]);
    274       1.18      fvdl 	}
    275        1.1    bouyer }
    276