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cgd.c revision 1.131
      1  1.131  riastrad /* $NetBSD: cgd.c,v 1.131 2020/06/13 18:42:22 riastradh Exp $ */
      2    1.1     elric 
      3    1.1     elric /*-
      4    1.1     elric  * Copyright (c) 2002 The NetBSD Foundation, Inc.
      5    1.1     elric  * All rights reserved.
      6    1.1     elric  *
      7    1.1     elric  * This code is derived from software contributed to The NetBSD Foundation
      8    1.1     elric  * by Roland C. Dowdeswell.
      9    1.1     elric  *
     10    1.1     elric  * Redistribution and use in source and binary forms, with or without
     11    1.1     elric  * modification, are permitted provided that the following conditions
     12    1.1     elric  * are met:
     13    1.1     elric  * 1. Redistributions of source code must retain the above copyright
     14    1.1     elric  *    notice, this list of conditions and the following disclaimer.
     15    1.1     elric  * 2. Redistributions in binary form must reproduce the above copyright
     16    1.1     elric  *    notice, this list of conditions and the following disclaimer in the
     17    1.1     elric  *    documentation and/or other materials provided with the distribution.
     18    1.1     elric  *
     19    1.1     elric  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20    1.1     elric  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21    1.1     elric  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22    1.1     elric  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23    1.1     elric  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24    1.1     elric  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25    1.1     elric  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26    1.1     elric  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27    1.1     elric  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28    1.1     elric  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29    1.1     elric  * POSSIBILITY OF SUCH DAMAGE.
     30    1.1     elric  */
     31    1.1     elric 
     32    1.1     elric #include <sys/cdefs.h>
     33  1.131  riastrad __KERNEL_RCSID(0, "$NetBSD: cgd.c,v 1.131 2020/06/13 18:42:22 riastradh Exp $");
     34    1.1     elric 
     35    1.1     elric #include <sys/types.h>
     36    1.1     elric #include <sys/param.h>
     37    1.1     elric #include <sys/buf.h>
     38   1.21      yamt #include <sys/bufq.h>
     39  1.129  riastrad #include <sys/conf.h>
     40  1.129  riastrad #include <sys/cpu.h>
     41    1.1     elric #include <sys/device.h>
     42    1.1     elric #include <sys/disk.h>
     43    1.1     elric #include <sys/disklabel.h>
     44  1.129  riastrad #include <sys/errno.h>
     45    1.1     elric #include <sys/fcntl.h>
     46  1.129  riastrad #include <sys/ioctl.h>
     47  1.129  riastrad #include <sys/kmem.h>
     48  1.129  riastrad #include <sys/module.h>
     49   1.71  dholland #include <sys/namei.h> /* for pathbuf */
     50  1.129  riastrad #include <sys/pool.h>
     51  1.129  riastrad #include <sys/proc.h>
     52  1.129  riastrad #include <sys/syslog.h>
     53  1.129  riastrad #include <sys/systm.h>
     54    1.1     elric #include <sys/vnode.h>
     55  1.122   mlelstv #include <sys/workqueue.h>
     56    1.1     elric 
     57  1.129  riastrad #include <dev/cgd_crypto.h>
     58  1.129  riastrad #include <dev/cgdvar.h>
     59    1.1     elric #include <dev/dkvar.h>
     60    1.1     elric 
     61   1.88   hannken #include <miscfs/specfs/specdev.h> /* for v_rdev */
     62   1.88   hannken 
     63  1.102  christos #include "ioconf.h"
     64  1.102  christos 
     65  1.112     alnsn struct selftest_params {
     66  1.112     alnsn 	const char *alg;
     67  1.112     alnsn 	int blocksize;	/* number of bytes */
     68  1.112     alnsn 	int secsize;
     69  1.112     alnsn 	daddr_t blkno;
     70  1.112     alnsn 	int keylen;	/* number of bits */
     71  1.112     alnsn 	int txtlen;	/* number of bytes */
     72  1.112     alnsn 	const uint8_t *key;
     73  1.112     alnsn 	const uint8_t *ptxt;
     74  1.112     alnsn 	const uint8_t *ctxt;
     75  1.112     alnsn };
     76  1.112     alnsn 
     77    1.1     elric /* Entry Point Functions */
     78    1.1     elric 
     79   1.18   thorpej static dev_type_open(cgdopen);
     80   1.18   thorpej static dev_type_close(cgdclose);
     81   1.18   thorpej static dev_type_read(cgdread);
     82   1.18   thorpej static dev_type_write(cgdwrite);
     83   1.18   thorpej static dev_type_ioctl(cgdioctl);
     84   1.18   thorpej static dev_type_strategy(cgdstrategy);
     85   1.18   thorpej static dev_type_dump(cgddump);
     86   1.18   thorpej static dev_type_size(cgdsize);
     87    1.1     elric 
     88    1.1     elric const struct bdevsw cgd_bdevsw = {
     89   1.84  dholland 	.d_open = cgdopen,
     90   1.84  dholland 	.d_close = cgdclose,
     91   1.84  dholland 	.d_strategy = cgdstrategy,
     92   1.84  dholland 	.d_ioctl = cgdioctl,
     93   1.84  dholland 	.d_dump = cgddump,
     94   1.84  dholland 	.d_psize = cgdsize,
     95   1.89  dholland 	.d_discard = nodiscard,
     96  1.122   mlelstv 	.d_flag = D_DISK | D_MPSAFE
     97    1.1     elric };
     98    1.1     elric 
     99    1.1     elric const struct cdevsw cgd_cdevsw = {
    100   1.84  dholland 	.d_open = cgdopen,
    101   1.84  dholland 	.d_close = cgdclose,
    102   1.84  dholland 	.d_read = cgdread,
    103   1.84  dholland 	.d_write = cgdwrite,
    104   1.84  dholland 	.d_ioctl = cgdioctl,
    105   1.84  dholland 	.d_stop = nostop,
    106   1.84  dholland 	.d_tty = notty,
    107   1.84  dholland 	.d_poll = nopoll,
    108   1.84  dholland 	.d_mmap = nommap,
    109   1.84  dholland 	.d_kqfilter = nokqfilter,
    110   1.90  dholland 	.d_discard = nodiscard,
    111  1.122   mlelstv 	.d_flag = D_DISK | D_MPSAFE
    112    1.1     elric };
    113    1.1     elric 
    114  1.112     alnsn /*
    115  1.112     alnsn  * Vector 5 from IEEE 1619/D16 truncated to 64 bytes, blkno 1.
    116  1.112     alnsn  */
    117  1.112     alnsn static const uint8_t selftest_aes_xts_256_ptxt[64] = {
    118  1.112     alnsn 	0x27, 0xa7, 0x47, 0x9b, 0xef, 0xa1, 0xd4, 0x76,
    119  1.112     alnsn 	0x48, 0x9f, 0x30, 0x8c, 0xd4, 0xcf, 0xa6, 0xe2,
    120  1.112     alnsn 	0xa9, 0x6e, 0x4b, 0xbe, 0x32, 0x08, 0xff, 0x25,
    121  1.112     alnsn 	0x28, 0x7d, 0xd3, 0x81, 0x96, 0x16, 0xe8, 0x9c,
    122  1.112     alnsn 	0xc7, 0x8c, 0xf7, 0xf5, 0xe5, 0x43, 0x44, 0x5f,
    123  1.112     alnsn 	0x83, 0x33, 0xd8, 0xfa, 0x7f, 0x56, 0x00, 0x00,
    124  1.112     alnsn 	0x05, 0x27, 0x9f, 0xa5, 0xd8, 0xb5, 0xe4, 0xad,
    125  1.112     alnsn 	0x40, 0xe7, 0x36, 0xdd, 0xb4, 0xd3, 0x54, 0x12,
    126  1.112     alnsn };
    127  1.112     alnsn 
    128  1.112     alnsn static const uint8_t selftest_aes_xts_256_ctxt[512] = {
    129  1.112     alnsn 	0x26, 0x4d, 0x3c, 0xa8, 0x51, 0x21, 0x94, 0xfe,
    130  1.112     alnsn 	0xc3, 0x12, 0xc8, 0xc9, 0x89, 0x1f, 0x27, 0x9f,
    131  1.112     alnsn 	0xef, 0xdd, 0x60, 0x8d, 0x0c, 0x02, 0x7b, 0x60,
    132  1.112     alnsn 	0x48, 0x3a, 0x3f, 0xa8, 0x11, 0xd6, 0x5e, 0xe5,
    133  1.112     alnsn 	0x9d, 0x52, 0xd9, 0xe4, 0x0e, 0xc5, 0x67, 0x2d,
    134  1.112     alnsn 	0x81, 0x53, 0x2b, 0x38, 0xb6, 0xb0, 0x89, 0xce,
    135  1.112     alnsn 	0x95, 0x1f, 0x0f, 0x9c, 0x35, 0x59, 0x0b, 0x8b,
    136  1.112     alnsn 	0x97, 0x8d, 0x17, 0x52, 0x13, 0xf3, 0x29, 0xbb,
    137  1.112     alnsn };
    138  1.112     alnsn 
    139  1.112     alnsn static const uint8_t selftest_aes_xts_256_key[33] = {
    140  1.112     alnsn 	0x27, 0x18, 0x28, 0x18, 0x28, 0x45, 0x90, 0x45,
    141  1.112     alnsn 	0x23, 0x53, 0x60, 0x28, 0x74, 0x71, 0x35, 0x26,
    142  1.112     alnsn 	0x31, 0x41, 0x59, 0x26, 0x53, 0x58, 0x97, 0x93,
    143  1.112     alnsn 	0x23, 0x84, 0x62, 0x64, 0x33, 0x83, 0x27, 0x95,
    144  1.112     alnsn 	0
    145  1.112     alnsn };
    146  1.112     alnsn 
    147  1.112     alnsn /*
    148  1.112     alnsn  * Vector 11 from IEEE 1619/D16 truncated to 64 bytes, blkno 0xffff.
    149  1.112     alnsn  */
    150  1.112     alnsn static const uint8_t selftest_aes_xts_512_ptxt[64] = {
    151  1.112     alnsn 	0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
    152  1.112     alnsn 	0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f,
    153  1.112     alnsn 	0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17,
    154  1.112     alnsn 	0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f,
    155  1.112     alnsn 	0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27,
    156  1.112     alnsn 	0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f,
    157  1.112     alnsn 	0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37,
    158  1.112     alnsn 	0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x3e, 0x3f,
    159  1.112     alnsn };
    160  1.112     alnsn 
    161  1.112     alnsn static const uint8_t selftest_aes_xts_512_ctxt[64] = {
    162  1.112     alnsn 	0x77, 0xa3, 0x12, 0x51, 0x61, 0x8a, 0x15, 0xe6,
    163  1.112     alnsn 	0xb9, 0x2d, 0x1d, 0x66, 0xdf, 0xfe, 0x7b, 0x50,
    164  1.112     alnsn 	0xb5, 0x0b, 0xad, 0x55, 0x23, 0x05, 0xba, 0x02,
    165  1.112     alnsn 	0x17, 0xa6, 0x10, 0x68, 0x8e, 0xff, 0x7e, 0x11,
    166  1.112     alnsn 	0xe1, 0xd0, 0x22, 0x54, 0x38, 0xe0, 0x93, 0x24,
    167  1.112     alnsn 	0x2d, 0x6d, 0xb2, 0x74, 0xfd, 0xe8, 0x01, 0xd4,
    168  1.112     alnsn 	0xca, 0xe0, 0x6f, 0x20, 0x92, 0xc7, 0x28, 0xb2,
    169  1.112     alnsn 	0x47, 0x85, 0x59, 0xdf, 0x58, 0xe8, 0x37, 0xc2,
    170  1.112     alnsn };
    171  1.112     alnsn 
    172  1.112     alnsn static const uint8_t selftest_aes_xts_512_key[65] = {
    173  1.112     alnsn 	0x27, 0x18, 0x28, 0x18, 0x28, 0x45, 0x90, 0x45,
    174  1.112     alnsn 	0x23, 0x53, 0x60, 0x28, 0x74, 0x71, 0x35, 0x26,
    175  1.112     alnsn 	0x62, 0x49, 0x77, 0x57, 0x24, 0x70, 0x93, 0x69,
    176  1.112     alnsn 	0x99, 0x59, 0x57, 0x49, 0x66, 0x96, 0x76, 0x27,
    177  1.112     alnsn 	0x31, 0x41, 0x59, 0x26, 0x53, 0x58, 0x97, 0x93,
    178  1.112     alnsn 	0x23, 0x84, 0x62, 0x64, 0x33, 0x83, 0x27, 0x95,
    179  1.112     alnsn 	0x02, 0x88, 0x41, 0x97, 0x16, 0x93, 0x99, 0x37,
    180  1.112     alnsn 	0x51, 0x05, 0x82, 0x09, 0x74, 0x94, 0x45, 0x92,
    181  1.112     alnsn 	0
    182  1.112     alnsn };
    183  1.112     alnsn 
    184  1.126  riastrad static const uint8_t selftest_aes_cbc_key[32] = {
    185  1.126  riastrad 	0x27, 0x18, 0x28, 0x18, 0x28, 0x45, 0x90, 0x45,
    186  1.126  riastrad 	0x23, 0x53, 0x60, 0x28, 0x74, 0x71, 0x35, 0x26,
    187  1.126  riastrad 	0x62, 0x49, 0x77, 0x57, 0x24, 0x70, 0x93, 0x69,
    188  1.126  riastrad 	0x99, 0x59, 0x57, 0x49, 0x66, 0x96, 0x76, 0x27,
    189  1.126  riastrad };
    190  1.126  riastrad 
    191  1.126  riastrad static const uint8_t selftest_aes_cbc_128_ptxt[64] = {
    192  1.126  riastrad 	0x27, 0xa7, 0x47, 0x9b, 0xef, 0xa1, 0xd4, 0x76,
    193  1.126  riastrad 	0x48, 0x9f, 0x30, 0x8c, 0xd4, 0xcf, 0xa6, 0xe2,
    194  1.126  riastrad 	0xa9, 0x6e, 0x4b, 0xbe, 0x32, 0x08, 0xff, 0x25,
    195  1.126  riastrad 	0x28, 0x7d, 0xd3, 0x81, 0x96, 0x16, 0xe8, 0x9c,
    196  1.126  riastrad 	0xc7, 0x8c, 0xf7, 0xf5, 0xe5, 0x43, 0x44, 0x5f,
    197  1.126  riastrad 	0x83, 0x33, 0xd8, 0xfa, 0x7f, 0x56, 0x00, 0x00,
    198  1.126  riastrad 	0x05, 0x27, 0x9f, 0xa5, 0xd8, 0xb5, 0xe4, 0xad,
    199  1.126  riastrad 	0x40, 0xe7, 0x36, 0xdd, 0xb4, 0xd3, 0x54, 0x12,
    200  1.126  riastrad };
    201  1.126  riastrad 
    202  1.126  riastrad static const uint8_t selftest_aes_cbc_128_ctxt[64] = { /* blkno=1 */
    203  1.126  riastrad 	0x93, 0x94, 0x56, 0x36, 0x83, 0xbc, 0xff, 0xa4,
    204  1.126  riastrad 	0xe0, 0x24, 0x34, 0x12, 0xbe, 0xfa, 0xb0, 0x7d,
    205  1.126  riastrad 	0x88, 0x1e, 0xc5, 0x57, 0x55, 0x23, 0x05, 0x0c,
    206  1.126  riastrad 	0x69, 0xa5, 0xc1, 0xda, 0x64, 0xee, 0x74, 0x10,
    207  1.126  riastrad 	0xc2, 0xc5, 0xe6, 0x66, 0xd6, 0xa7, 0x49, 0x1c,
    208  1.126  riastrad 	0x9d, 0x40, 0xb5, 0x0c, 0x9b, 0x6e, 0x1c, 0xe6,
    209  1.126  riastrad 	0xb1, 0x7a, 0x1c, 0xe7, 0x5a, 0xfe, 0xf9, 0x2a,
    210  1.126  riastrad 	0x78, 0xfa, 0xb7, 0x7b, 0x08, 0xdf, 0x8e, 0x51,
    211  1.126  riastrad };
    212  1.126  riastrad 
    213  1.126  riastrad static const uint8_t selftest_aes_cbc_256_ptxt[64] = {
    214  1.126  riastrad 	0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
    215  1.126  riastrad 	0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f,
    216  1.126  riastrad 	0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17,
    217  1.126  riastrad 	0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f,
    218  1.126  riastrad 	0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27,
    219  1.126  riastrad 	0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f,
    220  1.126  riastrad 	0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37,
    221  1.126  riastrad 	0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x3e, 0x3f,
    222  1.126  riastrad };
    223  1.126  riastrad 
    224  1.126  riastrad static const uint8_t selftest_aes_cbc_256_ctxt[64] = { /* blkno=0xffff */
    225  1.126  riastrad 	0x6c, 0xa3, 0x15, 0x17, 0x51, 0x90, 0xe9, 0x69,
    226  1.126  riastrad 	0x08, 0x36, 0x7b, 0xa6, 0xbb, 0xd1, 0x0b, 0x9e,
    227  1.126  riastrad 	0xcd, 0x6b, 0x1e, 0xaf, 0xb6, 0x2e, 0x62, 0x7d,
    228  1.126  riastrad 	0x8e, 0xde, 0xf0, 0xed, 0x0d, 0x44, 0xe7, 0x31,
    229  1.126  riastrad 	0x26, 0xcf, 0xd5, 0x0b, 0x3e, 0x95, 0x59, 0x89,
    230  1.126  riastrad 	0xdf, 0x5d, 0xd6, 0x9a, 0x00, 0x66, 0xcc, 0x7f,
    231  1.126  riastrad 	0x45, 0xd3, 0x06, 0x58, 0xed, 0xef, 0x49, 0x47,
    232  1.126  riastrad 	0x87, 0x89, 0x17, 0x7d, 0x08, 0x56, 0x50, 0xe1,
    233  1.126  riastrad };
    234  1.126  riastrad 
    235  1.126  riastrad static const uint8_t selftest_3des_cbc_key[24] = {
    236  1.126  riastrad 	0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
    237  1.126  riastrad 	0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f,
    238  1.126  riastrad 	0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17,
    239  1.126  riastrad };
    240  1.126  riastrad 
    241  1.126  riastrad static const uint8_t selftest_3des_cbc_ptxt[64] = {
    242  1.126  riastrad 	0x27, 0xa7, 0x47, 0x9b, 0xef, 0xa1, 0xd4, 0x76,
    243  1.126  riastrad 	0x48, 0x9f, 0x30, 0x8c, 0xd4, 0xcf, 0xa6, 0xe2,
    244  1.126  riastrad 	0xa9, 0x6e, 0x4b, 0xbe, 0x32, 0x08, 0xff, 0x25,
    245  1.126  riastrad 	0x28, 0x7d, 0xd3, 0x81, 0x96, 0x16, 0xe8, 0x9c,
    246  1.126  riastrad 	0xc7, 0x8c, 0xf7, 0xf5, 0xe5, 0x43, 0x44, 0x5f,
    247  1.126  riastrad 	0x83, 0x33, 0xd8, 0xfa, 0x7f, 0x56, 0x00, 0x00,
    248  1.126  riastrad 	0x05, 0x27, 0x9f, 0xa5, 0xd8, 0xb5, 0xe4, 0xad,
    249  1.126  riastrad 	0x40, 0xe7, 0x36, 0xdd, 0xb4, 0xd3, 0x54, 0x12,
    250  1.126  riastrad };
    251  1.126  riastrad 
    252  1.126  riastrad static const uint8_t selftest_3des_cbc_ctxt[64] = {
    253  1.126  riastrad 	0xa2, 0xfe, 0x81, 0xaa, 0x10, 0x6c, 0xea, 0xb9,
    254  1.126  riastrad 	0x11, 0x58, 0x1f, 0x29, 0xb5, 0x86, 0x71, 0x56,
    255  1.126  riastrad 	0xe9, 0x25, 0x1d, 0x07, 0xb1, 0x69, 0x59, 0x6c,
    256  1.126  riastrad 	0x96, 0x80, 0xf7, 0x54, 0x38, 0xaa, 0xa7, 0xe4,
    257  1.126  riastrad 	0xe8, 0x81, 0xf5, 0x00, 0xbb, 0x1c, 0x00, 0x3c,
    258  1.126  riastrad 	0xba, 0x38, 0x45, 0x97, 0x4c, 0xcf, 0x84, 0x14,
    259  1.126  riastrad 	0x46, 0x86, 0xd9, 0xf4, 0xc5, 0xe2, 0xf0, 0x54,
    260  1.126  riastrad 	0xde, 0x41, 0xf6, 0xa1, 0xef, 0x1b, 0x0a, 0xea,
    261  1.126  riastrad };
    262  1.126  riastrad 
    263  1.126  riastrad static const uint8_t selftest_bf_cbc_key[56] = {
    264  1.126  riastrad 	0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
    265  1.126  riastrad 	0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f,
    266  1.126  riastrad 	0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17,
    267  1.126  riastrad 	0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f,
    268  1.126  riastrad 	0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27,
    269  1.126  riastrad 	0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f,
    270  1.126  riastrad 	0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37,
    271  1.126  riastrad };
    272  1.126  riastrad 
    273  1.126  riastrad static const uint8_t selftest_bf_cbc_ptxt[64] = {
    274  1.126  riastrad 	0x27, 0xa7, 0x47, 0x9b, 0xef, 0xa1, 0xd4, 0x76,
    275  1.126  riastrad 	0x48, 0x9f, 0x30, 0x8c, 0xd4, 0xcf, 0xa6, 0xe2,
    276  1.126  riastrad 	0xa9, 0x6e, 0x4b, 0xbe, 0x32, 0x08, 0xff, 0x25,
    277  1.126  riastrad 	0x28, 0x7d, 0xd3, 0x81, 0x96, 0x16, 0xe8, 0x9c,
    278  1.126  riastrad 	0xc7, 0x8c, 0xf7, 0xf5, 0xe5, 0x43, 0x44, 0x5f,
    279  1.126  riastrad 	0x83, 0x33, 0xd8, 0xfa, 0x7f, 0x56, 0x00, 0x00,
    280  1.126  riastrad 	0x05, 0x27, 0x9f, 0xa5, 0xd8, 0xb5, 0xe4, 0xad,
    281  1.126  riastrad 	0x40, 0xe7, 0x36, 0xdd, 0xb4, 0xd3, 0x54, 0x12,
    282  1.126  riastrad };
    283  1.126  riastrad 
    284  1.126  riastrad static const uint8_t selftest_bf_cbc_ctxt[64] = {
    285  1.126  riastrad 	0xec, 0xa2, 0xc0, 0x0e, 0xa9, 0x7f, 0x04, 0x1e,
    286  1.126  riastrad 	0x2e, 0x4f, 0x64, 0x07, 0x67, 0x3e, 0xf4, 0x58,
    287  1.126  riastrad 	0x61, 0x5f, 0xd3, 0x50, 0x5e, 0xd3, 0x4d, 0x34,
    288  1.126  riastrad 	0xa0, 0x53, 0xbe, 0x47, 0x75, 0x69, 0x3b, 0x1f,
    289  1.126  riastrad 	0x86, 0xf2, 0xae, 0x8b, 0xb7, 0x91, 0xda, 0xd4,
    290  1.126  riastrad 	0x2b, 0xa5, 0x47, 0x9b, 0x7d, 0x13, 0x30, 0xdd,
    291  1.126  riastrad 	0x7b, 0xad, 0x86, 0x57, 0x51, 0x11, 0x74, 0x42,
    292  1.126  riastrad 	0xb8, 0xbf, 0x69, 0x17, 0x20, 0x0a, 0xf7, 0xda,
    293  1.126  riastrad };
    294  1.126  riastrad 
    295  1.112     alnsn const struct selftest_params selftests[] = {
    296  1.112     alnsn 	{
    297  1.112     alnsn 		.alg = "aes-xts",
    298  1.112     alnsn 		.blocksize = 16,
    299  1.112     alnsn 		.secsize = 512,
    300  1.112     alnsn 		.blkno = 1,
    301  1.112     alnsn 		.keylen = 256,
    302  1.112     alnsn 		.txtlen = sizeof(selftest_aes_xts_256_ptxt),
    303  1.112     alnsn 		.key  = selftest_aes_xts_256_key,
    304  1.112     alnsn 		.ptxt = selftest_aes_xts_256_ptxt,
    305  1.112     alnsn 		.ctxt = selftest_aes_xts_256_ctxt
    306  1.112     alnsn 	},
    307  1.112     alnsn 	{
    308  1.112     alnsn 		.alg = "aes-xts",
    309  1.112     alnsn 		.blocksize = 16,
    310  1.112     alnsn 		.secsize = 512,
    311  1.112     alnsn 		.blkno = 0xffff,
    312  1.112     alnsn 		.keylen = 512,
    313  1.112     alnsn 		.txtlen = sizeof(selftest_aes_xts_512_ptxt),
    314  1.112     alnsn 		.key  = selftest_aes_xts_512_key,
    315  1.112     alnsn 		.ptxt = selftest_aes_xts_512_ptxt,
    316  1.112     alnsn 		.ctxt = selftest_aes_xts_512_ctxt
    317  1.126  riastrad 	},
    318  1.126  riastrad 	{
    319  1.126  riastrad 		.alg = "aes-cbc",
    320  1.126  riastrad 		.blocksize = 16,
    321  1.126  riastrad 		.secsize = 512,
    322  1.126  riastrad 		.blkno = 1,
    323  1.126  riastrad 		.keylen = 128,
    324  1.126  riastrad 		.txtlen = sizeof(selftest_aes_cbc_128_ptxt),
    325  1.126  riastrad 		.key  = selftest_aes_cbc_key,
    326  1.126  riastrad 		.ptxt = selftest_aes_cbc_128_ptxt,
    327  1.126  riastrad 		.ctxt = selftest_aes_cbc_128_ctxt,
    328  1.126  riastrad 	},
    329  1.126  riastrad 	{
    330  1.126  riastrad 		.alg = "aes-cbc",
    331  1.126  riastrad 		.blocksize = 16,
    332  1.126  riastrad 		.secsize = 512,
    333  1.126  riastrad 		.blkno = 0xffff,
    334  1.126  riastrad 		.keylen = 256,
    335  1.126  riastrad 		.txtlen = sizeof(selftest_aes_cbc_256_ptxt),
    336  1.126  riastrad 		.key  = selftest_aes_cbc_key,
    337  1.126  riastrad 		.ptxt = selftest_aes_cbc_256_ptxt,
    338  1.126  riastrad 		.ctxt = selftest_aes_cbc_256_ctxt,
    339  1.126  riastrad 	},
    340  1.126  riastrad 	{
    341  1.126  riastrad 		.alg = "3des-cbc",
    342  1.126  riastrad 		.blocksize = 8,
    343  1.126  riastrad 		.secsize = 512,
    344  1.126  riastrad 		.blkno = 1,
    345  1.126  riastrad 		.keylen = 192,	/* 168 + 3*8 parity bits */
    346  1.126  riastrad 		.txtlen = sizeof(selftest_3des_cbc_ptxt),
    347  1.126  riastrad 		.key  = selftest_3des_cbc_key,
    348  1.126  riastrad 		.ptxt = selftest_3des_cbc_ptxt,
    349  1.126  riastrad 		.ctxt = selftest_3des_cbc_ctxt,
    350  1.126  riastrad 	},
    351  1.126  riastrad 	{
    352  1.126  riastrad 		.alg = "blowfish-cbc",
    353  1.126  riastrad 		.blocksize = 8,
    354  1.126  riastrad 		.secsize = 512,
    355  1.126  riastrad 		.blkno = 1,
    356  1.126  riastrad 		.keylen = 448,
    357  1.126  riastrad 		.txtlen = sizeof(selftest_bf_cbc_ptxt),
    358  1.126  riastrad 		.key  = selftest_bf_cbc_key,
    359  1.126  riastrad 		.ptxt = selftest_bf_cbc_ptxt,
    360  1.126  riastrad 		.ctxt = selftest_bf_cbc_ctxt,
    361  1.126  riastrad 	},
    362  1.112     alnsn };
    363  1.112     alnsn 
    364   1.65    dyoung static int cgd_match(device_t, cfdata_t, void *);
    365   1.65    dyoung static void cgd_attach(device_t, device_t, void *);
    366   1.65    dyoung static int cgd_detach(device_t, int);
    367   1.65    dyoung static struct cgd_softc	*cgd_spawn(int);
    368  1.122   mlelstv static struct cgd_worker *cgd_create_one_worker(void);
    369  1.122   mlelstv static void cgd_destroy_one_worker(struct cgd_worker *);
    370  1.122   mlelstv static struct cgd_worker *cgd_create_worker(void);
    371  1.122   mlelstv static void cgd_destroy_worker(struct cgd_worker *);
    372   1.65    dyoung static int cgd_destroy(device_t);
    373   1.65    dyoung 
    374    1.1     elric /* Internal Functions */
    375    1.1     elric 
    376   1.99   mlelstv static int	cgd_diskstart(device_t, struct buf *);
    377  1.122   mlelstv static void	cgd_diskstart2(struct cgd_softc *, struct cgd_xfer *);
    378    1.1     elric static void	cgdiodone(struct buf *);
    379  1.122   mlelstv static void	cgd_iodone2(struct cgd_softc *, struct cgd_xfer *);
    380  1.122   mlelstv static void	cgd_enqueue(struct cgd_softc *, struct cgd_xfer *);
    381  1.122   mlelstv static void	cgd_process(struct work *, void *);
    382  1.108  riastrad static int	cgd_dumpblocks(device_t, void *, daddr_t, int);
    383    1.1     elric 
    384   1.32  christos static int	cgd_ioctl_set(struct cgd_softc *, void *, struct lwp *);
    385   1.65    dyoung static int	cgd_ioctl_clr(struct cgd_softc *, struct lwp *);
    386   1.78  christos static int	cgd_ioctl_get(dev_t, void *, struct lwp *);
    387   1.27  drochner static int	cgdinit(struct cgd_softc *, const char *, struct vnode *,
    388   1.32  christos 			struct lwp *);
    389   1.44  christos static void	cgd_cipher(struct cgd_softc *, void *, void *,
    390    1.1     elric 			   size_t, daddr_t, size_t, int);
    391    1.1     elric 
    392  1.131  riastrad static void	cgd_selftest(void);
    393  1.131  riastrad 
    394  1.125      maxv static const struct dkdriver cgddkdriver = {
    395   1.98   mlelstv         .d_minphys  = minphys,
    396   1.98   mlelstv         .d_open = cgdopen,
    397   1.98   mlelstv         .d_close = cgdclose,
    398   1.98   mlelstv         .d_strategy = cgdstrategy,
    399   1.98   mlelstv         .d_iosize = NULL,
    400   1.99   mlelstv         .d_diskstart = cgd_diskstart,
    401  1.108  riastrad         .d_dumpblocks = cgd_dumpblocks,
    402   1.98   mlelstv         .d_lastclose = NULL
    403   1.29      yamt };
    404   1.29      yamt 
    405   1.65    dyoung CFATTACH_DECL3_NEW(cgd, sizeof(struct cgd_softc),
    406   1.65    dyoung     cgd_match, cgd_attach, cgd_detach, NULL, NULL, NULL, DVF_DETACH_SHUTDOWN);
    407   1.65    dyoung 
    408    1.1     elric /* DIAGNOSTIC and DEBUG definitions */
    409    1.1     elric 
    410    1.1     elric #if defined(CGDDEBUG) && !defined(DEBUG)
    411    1.1     elric #define DEBUG
    412    1.1     elric #endif
    413    1.1     elric 
    414    1.1     elric #ifdef DEBUG
    415    1.1     elric int cgddebug = 0;
    416    1.1     elric 
    417    1.1     elric #define CGDB_FOLLOW	0x1
    418    1.1     elric #define CGDB_IO	0x2
    419    1.1     elric #define CGDB_CRYPTO	0x4
    420    1.1     elric 
    421    1.1     elric #define IFDEBUG(x,y)		if (cgddebug & (x)) y
    422    1.1     elric #define DPRINTF(x,y)		IFDEBUG(x, printf y)
    423    1.1     elric #define DPRINTF_FOLLOW(y)	DPRINTF(CGDB_FOLLOW, y)
    424    1.1     elric 
    425   1.26  drochner static void	hexprint(const char *, void *, int);
    426    1.1     elric 
    427    1.1     elric #else
    428    1.1     elric #define IFDEBUG(x,y)
    429    1.1     elric #define DPRINTF(x,y)
    430    1.1     elric #define DPRINTF_FOLLOW(y)
    431    1.1     elric #endif
    432    1.1     elric 
    433    1.1     elric /* Global variables */
    434    1.1     elric 
    435  1.122   mlelstv static kmutex_t cgd_spawning_mtx;
    436  1.122   mlelstv static kcondvar_t cgd_spawning_cv;
    437  1.122   mlelstv static bool cgd_spawning;
    438  1.122   mlelstv static struct cgd_worker *cgd_worker;
    439  1.122   mlelstv static u_int cgd_refcnt;	/* number of users of cgd_worker */
    440  1.122   mlelstv 
    441    1.1     elric /* Utility Functions */
    442    1.1     elric 
    443    1.1     elric #define CGDUNIT(x)		DISKUNIT(x)
    444    1.1     elric 
    445   1.65    dyoung /* The code */
    446   1.65    dyoung 
    447  1.122   mlelstv static int
    448  1.122   mlelstv cgd_lock(bool intr)
    449  1.122   mlelstv {
    450  1.122   mlelstv 	int error = 0;
    451  1.122   mlelstv 
    452  1.122   mlelstv 	mutex_enter(&cgd_spawning_mtx);
    453  1.122   mlelstv 	while (cgd_spawning) {
    454  1.122   mlelstv 		if (intr)
    455  1.122   mlelstv 			error = cv_wait_sig(&cgd_spawning_cv, &cgd_spawning_mtx);
    456  1.122   mlelstv 		else
    457  1.122   mlelstv 			cv_wait(&cgd_spawning_cv, &cgd_spawning_mtx);
    458  1.122   mlelstv 	}
    459  1.122   mlelstv 	if (error == 0)
    460  1.122   mlelstv 		cgd_spawning = true;
    461  1.122   mlelstv 	mutex_exit(&cgd_spawning_mtx);
    462  1.122   mlelstv 	return error;
    463  1.122   mlelstv }
    464  1.122   mlelstv 
    465  1.122   mlelstv static void
    466  1.122   mlelstv cgd_unlock(void)
    467  1.122   mlelstv {
    468  1.122   mlelstv 	mutex_enter(&cgd_spawning_mtx);
    469  1.122   mlelstv 	cgd_spawning = false;
    470  1.122   mlelstv 	cv_broadcast(&cgd_spawning_cv);
    471  1.122   mlelstv 	mutex_exit(&cgd_spawning_mtx);
    472  1.122   mlelstv }
    473  1.122   mlelstv 
    474    1.1     elric static struct cgd_softc *
    475    1.1     elric getcgd_softc(dev_t dev)
    476    1.1     elric {
    477  1.122   mlelstv 	return device_lookup_private(&cgd_cd, CGDUNIT(dev));
    478    1.1     elric }
    479    1.1     elric 
    480   1.65    dyoung static int
    481   1.65    dyoung cgd_match(device_t self, cfdata_t cfdata, void *aux)
    482   1.65    dyoung {
    483   1.65    dyoung 
    484   1.65    dyoung 	return 1;
    485   1.65    dyoung }
    486    1.1     elric 
    487    1.1     elric static void
    488   1.65    dyoung cgd_attach(device_t parent, device_t self, void *aux)
    489    1.1     elric {
    490   1.65    dyoung 	struct cgd_softc *sc = device_private(self);
    491    1.1     elric 
    492   1.85     skrll 	mutex_init(&sc->sc_lock, MUTEX_DEFAULT, IPL_BIO);
    493  1.122   mlelstv 	cv_init(&sc->sc_cv, "cgdcv");
    494   1.98   mlelstv 	dk_init(&sc->sc_dksc, self, DKTYPE_CGD);
    495   1.65    dyoung 	disk_init(&sc->sc_dksc.sc_dkdev, sc->sc_dksc.sc_xname, &cgddkdriver);
    496   1.70     joerg 
    497   1.98   mlelstv 	if (!pmf_device_register(self, NULL, NULL))
    498  1.107   msaitoh 		aprint_error_dev(self,
    499  1.107   msaitoh 		    "unable to register power management hooks\n");
    500   1.65    dyoung }
    501   1.65    dyoung 
    502   1.65    dyoung 
    503   1.65    dyoung static int
    504   1.65    dyoung cgd_detach(device_t self, int flags)
    505   1.65    dyoung {
    506   1.67    dyoung 	int ret;
    507   1.67    dyoung 	const int pmask = 1 << RAW_PART;
    508   1.65    dyoung 	struct cgd_softc *sc = device_private(self);
    509   1.67    dyoung 	struct dk_softc *dksc = &sc->sc_dksc;
    510   1.67    dyoung 
    511   1.67    dyoung 	if (DK_BUSY(dksc, pmask))
    512   1.67    dyoung 		return EBUSY;
    513   1.65    dyoung 
    514   1.98   mlelstv 	if (DK_ATTACHED(dksc) &&
    515   1.67    dyoung 	    (ret = cgd_ioctl_clr(sc, curlwp)) != 0)
    516   1.67    dyoung 		return ret;
    517   1.65    dyoung 
    518   1.67    dyoung 	disk_destroy(&dksc->sc_dkdev);
    519  1.122   mlelstv 	cv_destroy(&sc->sc_cv);
    520   1.86  christos 	mutex_destroy(&sc->sc_lock);
    521   1.65    dyoung 
    522   1.67    dyoung 	return 0;
    523    1.1     elric }
    524    1.1     elric 
    525    1.1     elric void
    526    1.1     elric cgdattach(int num)
    527    1.1     elric {
    528  1.122   mlelstv #ifndef _MODULE
    529   1.65    dyoung 	int error;
    530   1.65    dyoung 
    531  1.122   mlelstv 	mutex_init(&cgd_spawning_mtx, MUTEX_DEFAULT, IPL_NONE);
    532  1.122   mlelstv 	cv_init(&cgd_spawning_cv, "cgspwn");
    533  1.122   mlelstv 
    534   1.65    dyoung 	error = config_cfattach_attach(cgd_cd.cd_name, &cgd_ca);
    535   1.65    dyoung 	if (error != 0)
    536   1.65    dyoung 		aprint_error("%s: unable to register cfattach\n",
    537   1.65    dyoung 		    cgd_cd.cd_name);
    538  1.122   mlelstv #endif
    539  1.131  riastrad 
    540  1.131  riastrad 	cgd_selftest();
    541   1.65    dyoung }
    542   1.65    dyoung 
    543   1.65    dyoung static struct cgd_softc *
    544   1.65    dyoung cgd_spawn(int unit)
    545   1.65    dyoung {
    546   1.65    dyoung 	cfdata_t cf;
    547  1.122   mlelstv 	struct cgd_worker *cw;
    548  1.122   mlelstv 	struct cgd_softc *sc;
    549   1.65    dyoung 
    550  1.122   mlelstv 	cf = kmem_alloc(sizeof(*cf), KM_SLEEP);
    551   1.65    dyoung 	cf->cf_name = cgd_cd.cd_name;
    552   1.65    dyoung 	cf->cf_atname = cgd_cd.cd_name;
    553   1.65    dyoung 	cf->cf_unit = unit;
    554   1.65    dyoung 	cf->cf_fstate = FSTATE_STAR;
    555   1.65    dyoung 
    556  1.122   mlelstv 	cw = cgd_create_one_worker();
    557  1.122   mlelstv 	if (cw == NULL) {
    558  1.122   mlelstv 		kmem_free(cf, sizeof(*cf));
    559  1.122   mlelstv 		return NULL;
    560  1.122   mlelstv 	}
    561  1.122   mlelstv 
    562  1.122   mlelstv 	sc = device_private(config_attach_pseudo(cf));
    563  1.122   mlelstv 	if (sc == NULL) {
    564  1.122   mlelstv 		cgd_destroy_one_worker(cw);
    565  1.122   mlelstv 		return NULL;
    566  1.122   mlelstv 	}
    567  1.122   mlelstv 
    568  1.122   mlelstv 	sc->sc_worker = cw;
    569  1.122   mlelstv 
    570  1.122   mlelstv 	return sc;
    571   1.65    dyoung }
    572   1.65    dyoung 
    573   1.65    dyoung static int
    574   1.65    dyoung cgd_destroy(device_t dev)
    575   1.65    dyoung {
    576  1.122   mlelstv 	struct cgd_softc *sc = device_private(dev);
    577  1.122   mlelstv 	struct cgd_worker *cw = sc->sc_worker;
    578  1.122   mlelstv 	cfdata_t cf;
    579   1.65    dyoung 	int error;
    580    1.1     elric 
    581   1.65    dyoung 	cf = device_cfdata(dev);
    582   1.65    dyoung 	error = config_detach(dev, DETACH_QUIET);
    583   1.65    dyoung 	if (error)
    584   1.65    dyoung 		return error;
    585  1.122   mlelstv 
    586  1.122   mlelstv 	cgd_destroy_one_worker(cw);
    587  1.122   mlelstv 
    588  1.122   mlelstv 	kmem_free(cf, sizeof(*cf));
    589   1.65    dyoung 	return 0;
    590    1.1     elric }
    591    1.1     elric 
    592  1.122   mlelstv static void
    593  1.122   mlelstv cgd_busy(struct cgd_softc *sc)
    594  1.122   mlelstv {
    595  1.122   mlelstv 
    596  1.122   mlelstv 	mutex_enter(&sc->sc_lock);
    597  1.122   mlelstv 	while (sc->sc_busy)
    598  1.122   mlelstv 		cv_wait(&sc->sc_cv, &sc->sc_lock);
    599  1.122   mlelstv 	sc->sc_busy = true;
    600  1.122   mlelstv 	mutex_exit(&sc->sc_lock);
    601  1.122   mlelstv }
    602  1.122   mlelstv 
    603  1.122   mlelstv static void
    604  1.122   mlelstv cgd_unbusy(struct cgd_softc *sc)
    605  1.122   mlelstv {
    606  1.122   mlelstv 
    607  1.122   mlelstv 	mutex_enter(&sc->sc_lock);
    608  1.122   mlelstv 	sc->sc_busy = false;
    609  1.122   mlelstv 	cv_broadcast(&sc->sc_cv);
    610  1.122   mlelstv 	mutex_exit(&sc->sc_lock);
    611  1.122   mlelstv }
    612  1.122   mlelstv 
    613  1.122   mlelstv static struct cgd_worker *
    614  1.122   mlelstv cgd_create_one_worker(void)
    615  1.122   mlelstv {
    616  1.122   mlelstv 	KASSERT(cgd_spawning);
    617  1.122   mlelstv 
    618  1.122   mlelstv 	if (cgd_refcnt++ == 0) {
    619  1.122   mlelstv 		KASSERT(cgd_worker == NULL);
    620  1.122   mlelstv 		cgd_worker = cgd_create_worker();
    621  1.122   mlelstv 	}
    622  1.122   mlelstv 
    623  1.122   mlelstv 	KASSERT(cgd_worker != NULL);
    624  1.122   mlelstv 	return cgd_worker;
    625  1.122   mlelstv }
    626  1.122   mlelstv 
    627  1.122   mlelstv static void
    628  1.122   mlelstv cgd_destroy_one_worker(struct cgd_worker *cw)
    629  1.122   mlelstv {
    630  1.122   mlelstv 	KASSERT(cgd_spawning);
    631  1.122   mlelstv 	KASSERT(cw == cgd_worker);
    632  1.122   mlelstv 
    633  1.122   mlelstv 	if (--cgd_refcnt == 0) {
    634  1.122   mlelstv 		cgd_destroy_worker(cgd_worker);
    635  1.122   mlelstv 		cgd_worker = NULL;
    636  1.122   mlelstv 	}
    637  1.122   mlelstv }
    638  1.122   mlelstv 
    639  1.122   mlelstv static struct cgd_worker *
    640  1.122   mlelstv cgd_create_worker(void)
    641  1.122   mlelstv {
    642  1.122   mlelstv 	struct cgd_worker *cw;
    643  1.122   mlelstv 	struct workqueue *wq;
    644  1.122   mlelstv 	struct pool *cp;
    645  1.122   mlelstv 	int error;
    646  1.122   mlelstv 
    647  1.122   mlelstv 	cw = kmem_alloc(sizeof(struct cgd_worker), KM_SLEEP);
    648  1.122   mlelstv 	cp = kmem_alloc(sizeof(struct pool), KM_SLEEP);
    649  1.122   mlelstv 
    650  1.122   mlelstv 	error = workqueue_create(&wq, "cgd", cgd_process, NULL,
    651  1.122   mlelstv 	                         PRI_BIO, IPL_BIO, WQ_MPSAFE | WQ_PERCPU);
    652  1.122   mlelstv 	if (error) {
    653  1.122   mlelstv 		kmem_free(cp, sizeof(struct pool));
    654  1.122   mlelstv 		kmem_free(cw, sizeof(struct cgd_worker));
    655  1.122   mlelstv 		return NULL;
    656  1.122   mlelstv 	}
    657  1.122   mlelstv 
    658  1.122   mlelstv 	cw->cw_cpool = cp;
    659  1.122   mlelstv 	cw->cw_wq = wq;
    660  1.122   mlelstv 	pool_init(cw->cw_cpool, sizeof(struct cgd_xfer), 0,
    661  1.122   mlelstv 	    0, 0, "cgdcpl", NULL, IPL_BIO);
    662  1.122   mlelstv 
    663  1.122   mlelstv 	mutex_init(&cw->cw_lock, MUTEX_DEFAULT, IPL_BIO);
    664  1.122   mlelstv 
    665  1.122   mlelstv 	return cw;
    666  1.122   mlelstv }
    667  1.122   mlelstv 
    668  1.122   mlelstv static void
    669  1.122   mlelstv cgd_destroy_worker(struct cgd_worker *cw)
    670  1.122   mlelstv {
    671  1.122   mlelstv 	mutex_destroy(&cw->cw_lock);
    672  1.122   mlelstv 
    673  1.122   mlelstv 	if (cw->cw_cpool) {
    674  1.122   mlelstv 		pool_destroy(cw->cw_cpool);
    675  1.122   mlelstv 		kmem_free(cw->cw_cpool, sizeof(struct pool));
    676  1.122   mlelstv 	}
    677  1.122   mlelstv 	if (cw->cw_wq)
    678  1.122   mlelstv 		workqueue_destroy(cw->cw_wq);
    679  1.122   mlelstv 
    680  1.122   mlelstv 	kmem_free(cw, sizeof(struct cgd_worker));
    681  1.122   mlelstv }
    682  1.122   mlelstv 
    683   1.18   thorpej static int
    684   1.32  christos cgdopen(dev_t dev, int flags, int fmt, struct lwp *l)
    685    1.1     elric {
    686  1.122   mlelstv 	struct	cgd_softc *sc;
    687  1.122   mlelstv 	int error;
    688    1.1     elric 
    689   1.56    cegger 	DPRINTF_FOLLOW(("cgdopen(0x%"PRIx64", %d)\n", dev, flags));
    690  1.122   mlelstv 
    691  1.122   mlelstv 	error = cgd_lock(true);
    692  1.122   mlelstv 	if (error)
    693  1.122   mlelstv 		return error;
    694  1.122   mlelstv 	sc = getcgd_softc(dev);
    695  1.122   mlelstv 	if (sc == NULL)
    696  1.122   mlelstv 		sc = cgd_spawn(CGDUNIT(dev));
    697  1.122   mlelstv 	cgd_unlock();
    698  1.122   mlelstv 	if (sc == NULL)
    699  1.122   mlelstv 		return ENXIO;
    700  1.122   mlelstv 
    701  1.122   mlelstv 	return dk_open(&sc->sc_dksc, dev, flags, fmt, l);
    702    1.1     elric }
    703    1.1     elric 
    704   1.18   thorpej static int
    705   1.32  christos cgdclose(dev_t dev, int flags, int fmt, struct lwp *l)
    706    1.1     elric {
    707  1.122   mlelstv 	struct	cgd_softc *sc;
    708  1.122   mlelstv 	struct	dk_softc *dksc;
    709   1.65    dyoung 	int error;
    710    1.1     elric 
    711   1.56    cegger 	DPRINTF_FOLLOW(("cgdclose(0x%"PRIx64", %d)\n", dev, flags));
    712  1.122   mlelstv 
    713  1.122   mlelstv 	error = cgd_lock(false);
    714  1.122   mlelstv 	if (error)
    715  1.122   mlelstv 		return error;
    716  1.122   mlelstv 	sc = getcgd_softc(dev);
    717  1.122   mlelstv 	if (sc == NULL) {
    718  1.122   mlelstv 		error = ENXIO;
    719  1.122   mlelstv 		goto done;
    720  1.122   mlelstv 	}
    721  1.122   mlelstv 
    722  1.122   mlelstv 	dksc = &sc->sc_dksc;
    723   1.98   mlelstv 	if ((error =  dk_close(dksc, dev, flags, fmt, l)) != 0)
    724  1.122   mlelstv 		goto done;
    725   1.65    dyoung 
    726   1.98   mlelstv 	if (!DK_ATTACHED(dksc)) {
    727  1.122   mlelstv 		if ((error = cgd_destroy(sc->sc_dksc.sc_dev)) != 0) {
    728  1.122   mlelstv 			device_printf(dksc->sc_dev,
    729   1.65    dyoung 			    "unable to detach instance\n");
    730  1.122   mlelstv 			goto done;
    731   1.65    dyoung 		}
    732   1.65    dyoung 	}
    733  1.122   mlelstv 
    734  1.122   mlelstv done:
    735  1.122   mlelstv 	cgd_unlock();
    736  1.122   mlelstv 
    737  1.122   mlelstv 	return error;
    738    1.1     elric }
    739    1.1     elric 
    740   1.18   thorpej static void
    741    1.1     elric cgdstrategy(struct buf *bp)
    742    1.1     elric {
    743  1.122   mlelstv 	struct	cgd_softc *sc = getcgd_softc(bp->b_dev);
    744    1.1     elric 
    745    1.1     elric 	DPRINTF_FOLLOW(("cgdstrategy(%p): b_bcount = %ld\n", bp,
    746    1.1     elric 	    (long)bp->b_bcount));
    747   1.72  riastrad 
    748   1.72  riastrad 	/*
    749  1.111   mlelstv 	 * Reject unaligned writes.
    750   1.72  riastrad 	 */
    751  1.111   mlelstv 	if (((uintptr_t)bp->b_data & 3) != 0) {
    752   1.72  riastrad 		bp->b_error = EINVAL;
    753  1.111   mlelstv 		goto bail;
    754   1.72  riastrad 	}
    755   1.72  riastrad 
    756  1.122   mlelstv 	dk_strategy(&sc->sc_dksc, bp);
    757    1.1     elric 	return;
    758  1.111   mlelstv 
    759  1.111   mlelstv bail:
    760  1.111   mlelstv 	bp->b_resid = bp->b_bcount;
    761  1.111   mlelstv 	biodone(bp);
    762  1.111   mlelstv 	return;
    763    1.1     elric }
    764    1.1     elric 
    765   1.18   thorpej static int
    766    1.1     elric cgdsize(dev_t dev)
    767    1.1     elric {
    768  1.122   mlelstv 	struct cgd_softc *sc = getcgd_softc(dev);
    769    1.1     elric 
    770   1.56    cegger 	DPRINTF_FOLLOW(("cgdsize(0x%"PRIx64")\n", dev));
    771  1.122   mlelstv 	if (!sc)
    772    1.1     elric 		return -1;
    773  1.122   mlelstv 	return dk_size(&sc->sc_dksc, dev);
    774    1.1     elric }
    775    1.1     elric 
    776   1.16     elric /*
    777   1.16     elric  * cgd_{get,put}data are functions that deal with getting a buffer
    778  1.122   mlelstv  * for the new encrypted data.
    779  1.122   mlelstv  * We can no longer have a buffer per device, we need a buffer per
    780  1.122   mlelstv  * work queue...
    781   1.16     elric  */
    782   1.16     elric 
    783   1.16     elric static void *
    784  1.122   mlelstv cgd_getdata(struct cgd_softc *sc, unsigned long size)
    785   1.16     elric {
    786  1.122   mlelstv 	void *data = NULL;
    787   1.16     elric 
    788  1.122   mlelstv 	mutex_enter(&sc->sc_lock);
    789  1.122   mlelstv 	if (!sc->sc_data_used) {
    790  1.122   mlelstv 		sc->sc_data_used = true;
    791  1.122   mlelstv 		data = sc->sc_data;
    792   1.16     elric 	}
    793  1.122   mlelstv 	mutex_exit(&sc->sc_lock);
    794   1.16     elric 
    795   1.16     elric 	if (data)
    796   1.16     elric 		return data;
    797   1.16     elric 
    798  1.124       tnn 	return kmem_intr_alloc(size, KM_NOSLEEP);
    799   1.16     elric }
    800   1.16     elric 
    801    1.1     elric static void
    802  1.124       tnn cgd_putdata(struct cgd_softc *sc, void *data, unsigned long size)
    803   1.16     elric {
    804   1.16     elric 
    805  1.122   mlelstv 	if (data == sc->sc_data) {
    806  1.122   mlelstv 		mutex_enter(&sc->sc_lock);
    807  1.122   mlelstv 		sc->sc_data_used = false;
    808  1.122   mlelstv 		mutex_exit(&sc->sc_lock);
    809  1.122   mlelstv 	} else
    810  1.124       tnn 		kmem_intr_free(data, size);
    811   1.16     elric }
    812   1.16     elric 
    813   1.99   mlelstv static int
    814   1.99   mlelstv cgd_diskstart(device_t dev, struct buf *bp)
    815    1.1     elric {
    816  1.122   mlelstv 	struct	cgd_softc *sc = device_private(dev);
    817  1.122   mlelstv 	struct	cgd_worker *cw = sc->sc_worker;
    818  1.122   mlelstv 	struct	dk_softc *dksc = &sc->sc_dksc;
    819  1.105   mlelstv 	struct	disk_geom *dg = &dksc->sc_dkdev.dk_geom;
    820  1.122   mlelstv 	struct	cgd_xfer *cx;
    821   1.99   mlelstv 	struct	buf *nbp;
    822   1.44  christos 	void *	newaddr;
    823    1.1     elric 	daddr_t	bn;
    824    1.1     elric 
    825   1.99   mlelstv 	DPRINTF_FOLLOW(("cgd_diskstart(%p, %p)\n", dksc, bp));
    826    1.1     elric 
    827   1.99   mlelstv 	bn = bp->b_rawblkno;
    828   1.22     perry 
    829   1.99   mlelstv 	/*
    830   1.99   mlelstv 	 * We attempt to allocate all of our resources up front, so that
    831   1.99   mlelstv 	 * we can fail quickly if they are unavailable.
    832   1.99   mlelstv 	 */
    833  1.122   mlelstv 	nbp = getiobuf(sc->sc_tvn, false);
    834   1.99   mlelstv 	if (nbp == NULL)
    835   1.99   mlelstv 		return EAGAIN;
    836   1.16     elric 
    837  1.122   mlelstv 	cx = pool_get(cw->cw_cpool, PR_NOWAIT);
    838  1.122   mlelstv 	if (cx == NULL) {
    839  1.122   mlelstv 		putiobuf(nbp);
    840  1.122   mlelstv 		return EAGAIN;
    841  1.122   mlelstv 	}
    842  1.122   mlelstv 
    843  1.122   mlelstv 	cx->cx_sc = sc;
    844  1.122   mlelstv 	cx->cx_obp = bp;
    845  1.122   mlelstv 	cx->cx_nbp = nbp;
    846  1.122   mlelstv 	cx->cx_srcv = cx->cx_dstv = bp->b_data;
    847  1.122   mlelstv 	cx->cx_blkno = bn;
    848  1.122   mlelstv 	cx->cx_secsize = dg->dg_secsize;
    849  1.122   mlelstv 
    850   1.99   mlelstv 	/*
    851   1.99   mlelstv 	 * If we are writing, then we need to encrypt the outgoing
    852   1.99   mlelstv 	 * block into a new block of memory.
    853   1.99   mlelstv 	 */
    854   1.99   mlelstv 	if ((bp->b_flags & B_READ) == 0) {
    855  1.122   mlelstv 		newaddr = cgd_getdata(sc, bp->b_bcount);
    856   1.99   mlelstv 		if (!newaddr) {
    857  1.122   mlelstv 			pool_put(cw->cw_cpool, cx);
    858   1.99   mlelstv 			putiobuf(nbp);
    859   1.99   mlelstv 			return EAGAIN;
    860   1.16     elric 		}
    861  1.122   mlelstv 
    862  1.122   mlelstv 		cx->cx_dstv = newaddr;
    863  1.122   mlelstv 		cx->cx_len = bp->b_bcount;
    864  1.122   mlelstv 		cx->cx_dir = CGD_CIPHER_ENCRYPT;
    865  1.122   mlelstv 
    866  1.122   mlelstv 		cgd_enqueue(sc, cx);
    867  1.122   mlelstv 		return 0;
    868   1.99   mlelstv 	}
    869    1.1     elric 
    870  1.122   mlelstv 	cgd_diskstart2(sc, cx);
    871  1.122   mlelstv 	return 0;
    872  1.122   mlelstv }
    873  1.122   mlelstv 
    874  1.122   mlelstv static void
    875  1.122   mlelstv cgd_diskstart2(struct cgd_softc *sc, struct cgd_xfer *cx)
    876  1.122   mlelstv {
    877  1.122   mlelstv 	struct	vnode *vp;
    878  1.122   mlelstv 	struct	buf *bp;
    879  1.122   mlelstv 	struct	buf *nbp;
    880  1.122   mlelstv 
    881  1.122   mlelstv 	bp = cx->cx_obp;
    882  1.122   mlelstv 	nbp = cx->cx_nbp;
    883  1.122   mlelstv 
    884  1.122   mlelstv 	nbp->b_data = cx->cx_dstv;
    885   1.99   mlelstv 	nbp->b_flags = bp->b_flags;
    886   1.99   mlelstv 	nbp->b_oflags = bp->b_oflags;
    887   1.99   mlelstv 	nbp->b_cflags = bp->b_cflags;
    888   1.99   mlelstv 	nbp->b_iodone = cgdiodone;
    889   1.99   mlelstv 	nbp->b_proc = bp->b_proc;
    890  1.122   mlelstv 	nbp->b_blkno = btodb(cx->cx_blkno * cx->cx_secsize);
    891   1.99   mlelstv 	nbp->b_bcount = bp->b_bcount;
    892  1.122   mlelstv 	nbp->b_private = cx;
    893   1.99   mlelstv 
    894   1.99   mlelstv 	BIO_COPYPRIO(nbp, bp);
    895   1.99   mlelstv 
    896   1.99   mlelstv 	if ((nbp->b_flags & B_READ) == 0) {
    897   1.99   mlelstv 		vp = nbp->b_vp;
    898   1.99   mlelstv 		mutex_enter(vp->v_interlock);
    899   1.99   mlelstv 		vp->v_numoutput++;
    900   1.99   mlelstv 		mutex_exit(vp->v_interlock);
    901   1.17       dbj 	}
    902  1.122   mlelstv 	VOP_STRATEGY(sc->sc_tvn, nbp);
    903    1.1     elric }
    904    1.1     elric 
    905   1.18   thorpej static void
    906   1.17       dbj cgdiodone(struct buf *nbp)
    907    1.1     elric {
    908  1.122   mlelstv 	struct	cgd_xfer *cx = nbp->b_private;
    909  1.122   mlelstv 	struct	buf *obp = cx->cx_obp;
    910  1.122   mlelstv 	struct	cgd_softc *sc = getcgd_softc(obp->b_dev);
    911  1.122   mlelstv 	struct	dk_softc *dksc = &sc->sc_dksc;
    912  1.105   mlelstv 	struct	disk_geom *dg = &dksc->sc_dkdev.dk_geom;
    913  1.105   mlelstv 	daddr_t	bn;
    914   1.22     perry 
    915  1.122   mlelstv 	KDASSERT(sc);
    916    1.1     elric 
    917   1.17       dbj 	DPRINTF_FOLLOW(("cgdiodone(%p)\n", nbp));
    918   1.20      yamt 	DPRINTF(CGDB_IO, ("cgdiodone: bp %p bcount %d resid %d\n",
    919    1.1     elric 	    obp, obp->b_bcount, obp->b_resid));
    920  1.107   msaitoh 	DPRINTF(CGDB_IO, (" dev 0x%"PRIx64", nbp %p bn %" PRId64
    921  1.107   msaitoh 	    " addr %p bcnt %d\n", nbp->b_dev, nbp, nbp->b_blkno, nbp->b_data,
    922  1.107   msaitoh 		nbp->b_bcount));
    923   1.46        ad 	if (nbp->b_error != 0) {
    924   1.46        ad 		obp->b_error = nbp->b_error;
    925   1.62  christos 		DPRINTF(CGDB_IO, ("%s: error %d\n", dksc->sc_xname,
    926   1.62  christos 		    obp->b_error));
    927    1.1     elric 	}
    928    1.1     elric 
    929   1.16     elric 	/* Perform the decryption if we are reading.
    930    1.1     elric 	 *
    931    1.1     elric 	 * Note: use the blocknumber from nbp, since it is what
    932    1.1     elric 	 *       we used to encrypt the blocks.
    933    1.1     elric 	 */
    934    1.1     elric 
    935  1.105   mlelstv 	if (nbp->b_flags & B_READ) {
    936  1.105   mlelstv 		bn = dbtob(nbp->b_blkno) / dg->dg_secsize;
    937  1.122   mlelstv 
    938  1.122   mlelstv 		cx->cx_obp     = obp;
    939  1.122   mlelstv 		cx->cx_nbp     = nbp;
    940  1.122   mlelstv 		cx->cx_dstv    = obp->b_data;
    941  1.122   mlelstv 		cx->cx_srcv    = obp->b_data;
    942  1.122   mlelstv 		cx->cx_len     = obp->b_bcount;
    943  1.122   mlelstv 		cx->cx_blkno   = bn;
    944  1.122   mlelstv 		cx->cx_secsize = dg->dg_secsize;
    945  1.122   mlelstv 		cx->cx_dir     = CGD_CIPHER_DECRYPT;
    946  1.122   mlelstv 
    947  1.122   mlelstv 		cgd_enqueue(sc, cx);
    948  1.122   mlelstv 		return;
    949  1.105   mlelstv 	}
    950    1.1     elric 
    951  1.122   mlelstv 	cgd_iodone2(sc, cx);
    952  1.122   mlelstv }
    953  1.122   mlelstv 
    954  1.122   mlelstv static void
    955  1.122   mlelstv cgd_iodone2(struct cgd_softc *sc, struct cgd_xfer *cx)
    956  1.122   mlelstv {
    957  1.122   mlelstv 	struct cgd_worker *cw = sc->sc_worker;
    958  1.122   mlelstv 	struct buf *obp = cx->cx_obp;
    959  1.122   mlelstv 	struct buf *nbp = cx->cx_nbp;
    960  1.122   mlelstv 	struct dk_softc *dksc = &sc->sc_dksc;
    961  1.122   mlelstv 
    962  1.122   mlelstv 	pool_put(cw->cw_cpool, cx);
    963  1.122   mlelstv 
    964   1.16     elric 	/* If we allocated memory, free it now... */
    965    1.1     elric 	if (nbp->b_data != obp->b_data)
    966  1.124       tnn 		cgd_putdata(sc, nbp->b_data, nbp->b_bcount);
    967    1.1     elric 
    968   1.33      yamt 	putiobuf(nbp);
    969    1.1     elric 
    970  1.100   mlelstv 	/* Request is complete for whatever reason */
    971  1.100   mlelstv 	obp->b_resid = 0;
    972  1.100   mlelstv 	if (obp->b_error != 0)
    973  1.100   mlelstv 		obp->b_resid = obp->b_bcount;
    974  1.100   mlelstv 
    975   1.99   mlelstv 	dk_done(dksc, obp);
    976  1.101   mlelstv 	dk_start(dksc, NULL);
    977    1.1     elric }
    978    1.1     elric 
    979  1.108  riastrad static int
    980  1.108  riastrad cgd_dumpblocks(device_t dev, void *va, daddr_t blkno, int nblk)
    981  1.108  riastrad {
    982  1.108  riastrad 	struct cgd_softc *sc = device_private(dev);
    983  1.108  riastrad 	struct dk_softc *dksc = &sc->sc_dksc;
    984  1.108  riastrad 	struct disk_geom *dg = &dksc->sc_dkdev.dk_geom;
    985  1.108  riastrad 	size_t nbytes, blksize;
    986  1.108  riastrad 	void *buf;
    987  1.108  riastrad 	int error;
    988  1.108  riastrad 
    989  1.108  riastrad 	/*
    990  1.108  riastrad 	 * dk_dump gives us units of disklabel sectors.  Everything
    991  1.108  riastrad 	 * else in cgd uses units of diskgeom sectors.  These had
    992  1.108  riastrad 	 * better agree; otherwise we need to figure out how to convert
    993  1.108  riastrad 	 * between them.
    994  1.108  riastrad 	 */
    995  1.108  riastrad 	KASSERTMSG((dg->dg_secsize == dksc->sc_dkdev.dk_label->d_secsize),
    996  1.108  riastrad 	    "diskgeom secsize %"PRIu32" != disklabel secsize %"PRIu32,
    997  1.108  riastrad 	    dg->dg_secsize, dksc->sc_dkdev.dk_label->d_secsize);
    998  1.108  riastrad 	blksize = dg->dg_secsize;
    999  1.108  riastrad 
   1000  1.108  riastrad 	/*
   1001  1.108  riastrad 	 * Compute the number of bytes in this request, which dk_dump
   1002  1.108  riastrad 	 * has `helpfully' converted to a number of blocks for us.
   1003  1.108  riastrad 	 */
   1004  1.108  riastrad 	nbytes = nblk*blksize;
   1005  1.108  riastrad 
   1006  1.108  riastrad 	/* Try to acquire a buffer to store the ciphertext.  */
   1007  1.122   mlelstv 	buf = cgd_getdata(sc, nbytes);
   1008  1.108  riastrad 	if (buf == NULL)
   1009  1.108  riastrad 		/* Out of memory: give up.  */
   1010  1.108  riastrad 		return ENOMEM;
   1011  1.108  riastrad 
   1012  1.108  riastrad 	/* Encrypt the caller's data into the temporary buffer.  */
   1013  1.108  riastrad 	cgd_cipher(sc, buf, va, nbytes, blkno, blksize, CGD_CIPHER_ENCRYPT);
   1014  1.108  riastrad 
   1015  1.108  riastrad 	/* Pass it on to the underlying disk device.  */
   1016  1.108  riastrad 	error = bdev_dump(sc->sc_tdev, blkno, buf, nbytes);
   1017  1.108  riastrad 
   1018  1.108  riastrad 	/* Release the buffer.  */
   1019  1.124       tnn 	cgd_putdata(sc, buf, nbytes);
   1020  1.108  riastrad 
   1021  1.108  riastrad 	/* Return any error from the underlying disk device.  */
   1022  1.108  riastrad 	return error;
   1023  1.108  riastrad }
   1024  1.108  riastrad 
   1025    1.1     elric /* XXX: we should probably put these into dksubr.c, mostly */
   1026   1.18   thorpej static int
   1027   1.40  christos cgdread(dev_t dev, struct uio *uio, int flags)
   1028    1.1     elric {
   1029  1.122   mlelstv 	struct	cgd_softc *sc;
   1030    1.1     elric 	struct	dk_softc *dksc;
   1031    1.1     elric 
   1032   1.56    cegger 	DPRINTF_FOLLOW(("cgdread(0x%llx, %p, %d)\n",
   1033   1.56    cegger 	    (unsigned long long)dev, uio, flags));
   1034  1.122   mlelstv 	sc = getcgd_softc(dev);
   1035  1.122   mlelstv 	if (sc == NULL)
   1036  1.122   mlelstv 		return ENXIO;
   1037  1.122   mlelstv 	dksc = &sc->sc_dksc;
   1038   1.98   mlelstv 	if (!DK_ATTACHED(dksc))
   1039    1.1     elric 		return ENXIO;
   1040    1.1     elric 	return physio(cgdstrategy, NULL, dev, B_READ, minphys, uio);
   1041    1.1     elric }
   1042    1.1     elric 
   1043    1.1     elric /* XXX: we should probably put these into dksubr.c, mostly */
   1044   1.18   thorpej static int
   1045   1.40  christos cgdwrite(dev_t dev, struct uio *uio, int flags)
   1046    1.1     elric {
   1047  1.122   mlelstv 	struct	cgd_softc *sc;
   1048    1.1     elric 	struct	dk_softc *dksc;
   1049    1.1     elric 
   1050   1.56    cegger 	DPRINTF_FOLLOW(("cgdwrite(0x%"PRIx64", %p, %d)\n", dev, uio, flags));
   1051  1.122   mlelstv 	sc = getcgd_softc(dev);
   1052  1.122   mlelstv 	if (sc == NULL)
   1053  1.122   mlelstv 		return ENXIO;
   1054  1.122   mlelstv 	dksc = &sc->sc_dksc;
   1055   1.98   mlelstv 	if (!DK_ATTACHED(dksc))
   1056    1.1     elric 		return ENXIO;
   1057    1.1     elric 	return physio(cgdstrategy, NULL, dev, B_WRITE, minphys, uio);
   1058    1.1     elric }
   1059    1.1     elric 
   1060   1.18   thorpej static int
   1061   1.44  christos cgdioctl(dev_t dev, u_long cmd, void *data, int flag, struct lwp *l)
   1062    1.1     elric {
   1063  1.122   mlelstv 	struct	cgd_softc *sc;
   1064    1.1     elric 	struct	dk_softc *dksc;
   1065    1.1     elric 	int	part = DISKPART(dev);
   1066    1.1     elric 	int	pmask = 1 << part;
   1067  1.122   mlelstv 	int	error;
   1068    1.1     elric 
   1069   1.56    cegger 	DPRINTF_FOLLOW(("cgdioctl(0x%"PRIx64", %ld, %p, %d, %p)\n",
   1070   1.32  christos 	    dev, cmd, data, flag, l));
   1071   1.78  christos 
   1072    1.1     elric 	switch (cmd) {
   1073   1.93  christos 	case CGDIOCGET:
   1074   1.93  christos 		return cgd_ioctl_get(dev, data, l);
   1075    1.1     elric 	case CGDIOCSET:
   1076    1.1     elric 	case CGDIOCCLR:
   1077    1.1     elric 		if ((flag & FWRITE) == 0)
   1078    1.1     elric 			return EBADF;
   1079   1.78  christos 		/* FALLTHROUGH */
   1080   1.78  christos 	default:
   1081  1.122   mlelstv 		sc = getcgd_softc(dev);
   1082  1.122   mlelstv 		if (sc == NULL)
   1083  1.122   mlelstv 			return ENXIO;
   1084  1.122   mlelstv 		dksc = &sc->sc_dksc;
   1085   1.78  christos 		break;
   1086    1.1     elric 	}
   1087    1.1     elric 
   1088    1.1     elric 	switch (cmd) {
   1089    1.1     elric 	case CGDIOCSET:
   1090  1.122   mlelstv 		cgd_busy(sc);
   1091   1.98   mlelstv 		if (DK_ATTACHED(dksc))
   1092  1.122   mlelstv 			error = EBUSY;
   1093  1.122   mlelstv 		else
   1094  1.122   mlelstv 			error = cgd_ioctl_set(sc, data, l);
   1095  1.122   mlelstv 		cgd_unbusy(sc);
   1096  1.122   mlelstv 		break;
   1097    1.1     elric 	case CGDIOCCLR:
   1098  1.122   mlelstv 		cgd_busy(sc);
   1099  1.122   mlelstv 		if (DK_BUSY(&sc->sc_dksc, pmask))
   1100  1.122   mlelstv 			error = EBUSY;
   1101  1.122   mlelstv 		else
   1102  1.122   mlelstv 			error = cgd_ioctl_clr(sc, l);
   1103  1.122   mlelstv 		cgd_unbusy(sc);
   1104  1.122   mlelstv 		break;
   1105  1.114  jdolecek 	case DIOCGCACHE:
   1106   1.57       apb 	case DIOCCACHESYNC:
   1107  1.122   mlelstv 		cgd_busy(sc);
   1108  1.122   mlelstv 		if (!DK_ATTACHED(dksc)) {
   1109  1.122   mlelstv 			cgd_unbusy(sc);
   1110  1.122   mlelstv 			error = ENOENT;
   1111  1.122   mlelstv 			break;
   1112  1.122   mlelstv 		}
   1113   1.57       apb 		/*
   1114   1.57       apb 		 * We pass this call down to the underlying disk.
   1115   1.57       apb 		 */
   1116  1.122   mlelstv 		error = VOP_IOCTL(sc->sc_tvn, cmd, data, flag, l->l_cred);
   1117  1.122   mlelstv 		cgd_unbusy(sc);
   1118  1.122   mlelstv 		break;
   1119  1.121  riastrad 	case DIOCGSECTORALIGN: {
   1120  1.121  riastrad 		struct disk_sectoralign *dsa = data;
   1121  1.121  riastrad 
   1122  1.122   mlelstv 		cgd_busy(sc);
   1123  1.122   mlelstv 		if (!DK_ATTACHED(dksc)) {
   1124  1.122   mlelstv 			cgd_unbusy(sc);
   1125  1.122   mlelstv 			error = ENOENT;
   1126  1.122   mlelstv 			break;
   1127  1.122   mlelstv 		}
   1128  1.121  riastrad 
   1129  1.121  riastrad 		/* Get the underlying disk's sector alignment.  */
   1130  1.122   mlelstv 		error = VOP_IOCTL(sc->sc_tvn, cmd, data, flag, l->l_cred);
   1131  1.122   mlelstv 		if (error) {
   1132  1.122   mlelstv 			cgd_unbusy(sc);
   1133  1.122   mlelstv 			break;
   1134  1.122   mlelstv 		}
   1135  1.121  riastrad 
   1136  1.121  riastrad 		/* Adjust for the disklabel partition if necessary.  */
   1137  1.121  riastrad 		if (part != RAW_PART) {
   1138  1.121  riastrad 			struct disklabel *lp = dksc->sc_dkdev.dk_label;
   1139  1.121  riastrad 			daddr_t offset = lp->d_partitions[part].p_offset;
   1140  1.121  riastrad 			uint32_t r = offset % dsa->dsa_alignment;
   1141  1.121  riastrad 
   1142  1.121  riastrad 			if (r < dsa->dsa_firstaligned)
   1143  1.121  riastrad 				dsa->dsa_firstaligned = dsa->dsa_firstaligned
   1144  1.121  riastrad 				    - r;
   1145  1.121  riastrad 			else
   1146  1.121  riastrad 				dsa->dsa_firstaligned = (dsa->dsa_firstaligned
   1147  1.121  riastrad 				    + dsa->dsa_alignment) - r;
   1148  1.121  riastrad 		}
   1149  1.122   mlelstv 		cgd_unbusy(sc);
   1150  1.122   mlelstv 		break;
   1151  1.121  riastrad 	}
   1152  1.103  christos 	case DIOCGSTRATEGY:
   1153  1.103  christos 	case DIOCSSTRATEGY:
   1154  1.122   mlelstv 		if (!DK_ATTACHED(dksc)) {
   1155  1.122   mlelstv 			error = ENOENT;
   1156  1.122   mlelstv 			break;
   1157  1.122   mlelstv 		}
   1158  1.103  christos 		/*FALLTHROUGH*/
   1159    1.1     elric 	default:
   1160  1.122   mlelstv 		error = dk_ioctl(dksc, dev, cmd, data, flag, l);
   1161  1.122   mlelstv 		break;
   1162   1.93  christos 	case CGDIOCGET:
   1163   1.93  christos 		KASSERT(0);
   1164  1.122   mlelstv 		error = EINVAL;
   1165    1.1     elric 	}
   1166  1.122   mlelstv 
   1167  1.122   mlelstv 	return error;
   1168    1.1     elric }
   1169    1.1     elric 
   1170   1.18   thorpej static int
   1171   1.44  christos cgddump(dev_t dev, daddr_t blkno, void *va, size_t size)
   1172    1.1     elric {
   1173  1.122   mlelstv 	struct	cgd_softc *sc;
   1174    1.1     elric 
   1175   1.56    cegger 	DPRINTF_FOLLOW(("cgddump(0x%"PRIx64", %" PRId64 ", %p, %lu)\n",
   1176   1.56    cegger 	    dev, blkno, va, (unsigned long)size));
   1177  1.122   mlelstv 	sc = getcgd_softc(dev);
   1178  1.122   mlelstv 	if (sc == NULL)
   1179  1.122   mlelstv 		return ENXIO;
   1180  1.122   mlelstv 	return dk_dump(&sc->sc_dksc, dev, blkno, va, size, DK_DUMP_RECURSIVE);
   1181    1.1     elric }
   1182    1.1     elric 
   1183    1.1     elric /*
   1184    1.1     elric  * XXXrcd:
   1185    1.1     elric  *  for now we hardcode the maximum key length.
   1186    1.1     elric  */
   1187    1.1     elric #define MAX_KEYSIZE	1024
   1188    1.1     elric 
   1189   1.53  christos static const struct {
   1190   1.53  christos 	const char *n;
   1191   1.53  christos 	int v;
   1192   1.53  christos 	int d;
   1193   1.53  christos } encblkno[] = {
   1194   1.53  christos 	{ "encblkno",  CGD_CIPHER_CBC_ENCBLKNO8, 1 },
   1195   1.53  christos 	{ "encblkno8", CGD_CIPHER_CBC_ENCBLKNO8, 1 },
   1196   1.53  christos 	{ "encblkno1", CGD_CIPHER_CBC_ENCBLKNO1, 8 },
   1197   1.53  christos };
   1198   1.53  christos 
   1199    1.1     elric /* ARGSUSED */
   1200    1.1     elric static int
   1201  1.122   mlelstv cgd_ioctl_set(struct cgd_softc *sc, void *data, struct lwp *l)
   1202    1.1     elric {
   1203    1.1     elric 	struct	 cgd_ioctl *ci = data;
   1204    1.1     elric 	struct	 vnode *vp;
   1205    1.1     elric 	int	 ret;
   1206   1.53  christos 	size_t	 i;
   1207   1.43    cbiere 	size_t	 keybytes;			/* key length in bytes */
   1208   1.27  drochner 	const char *cp;
   1209   1.71  dholland 	struct pathbuf *pb;
   1210   1.36  christos 	char	 *inbuf;
   1211  1.122   mlelstv 	struct dk_softc *dksc = &sc->sc_dksc;
   1212    1.1     elric 
   1213    1.1     elric 	cp = ci->ci_disk;
   1214   1.71  dholland 
   1215   1.71  dholland 	ret = pathbuf_copyin(ci->ci_disk, &pb);
   1216   1.71  dholland 	if (ret != 0) {
   1217   1.71  dholland 		return ret;
   1218   1.71  dholland 	}
   1219  1.117   mlelstv 	ret = vn_bdev_openpath(pb, &vp, l);
   1220   1.71  dholland 	pathbuf_destroy(pb);
   1221   1.71  dholland 	if (ret != 0) {
   1222    1.1     elric 		return ret;
   1223   1.71  dholland 	}
   1224    1.1     elric 
   1225  1.122   mlelstv 	inbuf = kmem_alloc(MAX_KEYSIZE, KM_SLEEP);
   1226   1.36  christos 
   1227  1.122   mlelstv 	if ((ret = cgdinit(sc, cp, vp, l)) != 0)
   1228    1.1     elric 		goto bail;
   1229    1.1     elric 
   1230   1.36  christos 	(void)memset(inbuf, 0, MAX_KEYSIZE);
   1231    1.1     elric 	ret = copyinstr(ci->ci_alg, inbuf, 256, NULL);
   1232    1.1     elric 	if (ret)
   1233    1.1     elric 		goto bail;
   1234  1.122   mlelstv 	sc->sc_cfuncs = cryptfuncs_find(inbuf);
   1235  1.122   mlelstv 	if (!sc->sc_cfuncs) {
   1236    1.1     elric 		ret = EINVAL;
   1237    1.1     elric 		goto bail;
   1238    1.1     elric 	}
   1239    1.1     elric 
   1240   1.43    cbiere 	(void)memset(inbuf, 0, MAX_KEYSIZE);
   1241   1.36  christos 	ret = copyinstr(ci->ci_ivmethod, inbuf, MAX_KEYSIZE, NULL);
   1242    1.1     elric 	if (ret)
   1243    1.1     elric 		goto bail;
   1244   1.53  christos 
   1245   1.53  christos 	for (i = 0; i < __arraycount(encblkno); i++)
   1246   1.53  christos 		if (strcmp(encblkno[i].n, inbuf) == 0)
   1247   1.53  christos 			break;
   1248   1.53  christos 
   1249   1.53  christos 	if (i == __arraycount(encblkno)) {
   1250    1.1     elric 		ret = EINVAL;
   1251    1.1     elric 		goto bail;
   1252    1.1     elric 	}
   1253    1.1     elric 
   1254   1.15       dan 	keybytes = ci->ci_keylen / 8 + 1;
   1255   1.15       dan 	if (keybytes > MAX_KEYSIZE) {
   1256    1.1     elric 		ret = EINVAL;
   1257    1.1     elric 		goto bail;
   1258    1.1     elric 	}
   1259   1.53  christos 
   1260   1.36  christos 	(void)memset(inbuf, 0, MAX_KEYSIZE);
   1261   1.15       dan 	ret = copyin(ci->ci_key, inbuf, keybytes);
   1262    1.1     elric 	if (ret)
   1263    1.1     elric 		goto bail;
   1264    1.1     elric 
   1265  1.122   mlelstv 	sc->sc_cdata.cf_blocksize = ci->ci_blocksize;
   1266  1.122   mlelstv 	sc->sc_cdata.cf_mode = encblkno[i].v;
   1267  1.122   mlelstv 	sc->sc_cdata.cf_keylen = ci->ci_keylen;
   1268  1.122   mlelstv 	sc->sc_cdata.cf_priv = sc->sc_cfuncs->cf_init(ci->ci_keylen, inbuf,
   1269  1.122   mlelstv 	    &sc->sc_cdata.cf_blocksize);
   1270  1.122   mlelstv 	if (sc->sc_cdata.cf_blocksize > CGD_MAXBLOCKSIZE) {
   1271   1.62  christos 	    log(LOG_WARNING, "cgd: Disallowed cipher with blocksize %zu > %u\n",
   1272  1.122   mlelstv 		sc->sc_cdata.cf_blocksize, CGD_MAXBLOCKSIZE);
   1273  1.122   mlelstv 	    sc->sc_cdata.cf_priv = NULL;
   1274   1.62  christos 	}
   1275   1.78  christos 
   1276   1.53  christos 	/*
   1277   1.53  christos 	 * The blocksize is supposed to be in bytes. Unfortunately originally
   1278   1.53  christos 	 * it was expressed in bits. For compatibility we maintain encblkno
   1279   1.53  christos 	 * and encblkno8.
   1280   1.53  christos 	 */
   1281  1.122   mlelstv 	sc->sc_cdata.cf_blocksize /= encblkno[i].d;
   1282   1.97  riastrad 	(void)explicit_memset(inbuf, 0, MAX_KEYSIZE);
   1283  1.122   mlelstv 	if (!sc->sc_cdata.cf_priv) {
   1284    1.1     elric 		ret = EINVAL;		/* XXX is this the right error? */
   1285    1.1     elric 		goto bail;
   1286    1.1     elric 	}
   1287  1.122   mlelstv 	kmem_free(inbuf, MAX_KEYSIZE);
   1288    1.1     elric 
   1289   1.80  christos 	bufq_alloc(&dksc->sc_bufq, "fcfs", 0);
   1290   1.16     elric 
   1291  1.124       tnn 	sc->sc_data = kmem_alloc(MAXPHYS, KM_SLEEP);
   1292  1.122   mlelstv 	sc->sc_data_used = false;
   1293   1.16     elric 
   1294   1.98   mlelstv 	/* Attach the disk. */
   1295   1.98   mlelstv 	dk_attach(dksc);
   1296   1.98   mlelstv 	disk_attach(&dksc->sc_dkdev);
   1297    1.1     elric 
   1298   1.80  christos 	disk_set_info(dksc->sc_dev, &dksc->sc_dkdev, NULL);
   1299   1.77     elric 
   1300   1.29      yamt 	/* Discover wedges on this disk. */
   1301   1.80  christos 	dkwedge_discover(&dksc->sc_dkdev);
   1302   1.29      yamt 
   1303    1.1     elric 	return 0;
   1304    1.1     elric 
   1305    1.1     elric bail:
   1306  1.122   mlelstv 	kmem_free(inbuf, MAX_KEYSIZE);
   1307   1.51        ad 	(void)vn_close(vp, FREAD|FWRITE, l->l_cred);
   1308    1.1     elric 	return ret;
   1309    1.1     elric }
   1310    1.1     elric 
   1311    1.1     elric /* ARGSUSED */
   1312    1.1     elric static int
   1313  1.122   mlelstv cgd_ioctl_clr(struct cgd_softc *sc, struct lwp *l)
   1314    1.1     elric {
   1315  1.122   mlelstv 	struct	dk_softc *dksc = &sc->sc_dksc;
   1316   1.65    dyoung 
   1317   1.98   mlelstv 	if (!DK_ATTACHED(dksc))
   1318   1.65    dyoung 		return ENXIO;
   1319   1.16     elric 
   1320   1.29      yamt 	/* Delete all of our wedges. */
   1321   1.80  christos 	dkwedge_delall(&dksc->sc_dkdev);
   1322   1.29      yamt 
   1323   1.16     elric 	/* Kill off any queued buffers. */
   1324  1.104   mlelstv 	dk_drain(dksc);
   1325   1.80  christos 	bufq_free(dksc->sc_bufq);
   1326    1.1     elric 
   1327  1.122   mlelstv 	(void)vn_close(sc->sc_tvn, FREAD|FWRITE, l->l_cred);
   1328  1.122   mlelstv 	sc->sc_cfuncs->cf_destroy(sc->sc_cdata.cf_priv);
   1329  1.122   mlelstv 	kmem_free(sc->sc_tpath, sc->sc_tpathlen);
   1330  1.124       tnn 	kmem_free(sc->sc_data, MAXPHYS);
   1331  1.122   mlelstv 	sc->sc_data_used = false;
   1332   1.98   mlelstv 	dk_detach(dksc);
   1333   1.80  christos 	disk_detach(&dksc->sc_dkdev);
   1334    1.1     elric 
   1335    1.1     elric 	return 0;
   1336    1.1     elric }
   1337    1.1     elric 
   1338    1.1     elric static int
   1339   1.78  christos cgd_ioctl_get(dev_t dev, void *data, struct lwp *l)
   1340   1.78  christos {
   1341  1.122   mlelstv 	struct cgd_softc *sc;
   1342   1.78  christos 	struct cgd_user *cgu;
   1343  1.122   mlelstv 	int unit, error;
   1344   1.78  christos 
   1345   1.78  christos 	unit = CGDUNIT(dev);
   1346   1.78  christos 	cgu = (struct cgd_user *)data;
   1347   1.78  christos 
   1348   1.78  christos 	DPRINTF_FOLLOW(("cgd_ioctl_get(0x%"PRIx64", %d, %p, %p)\n",
   1349   1.78  christos 			   dev, unit, data, l));
   1350   1.78  christos 
   1351  1.122   mlelstv 	/* XXX, we always return this units data, so if cgu_unit is
   1352  1.122   mlelstv 	 * not -1, that field doesn't match the rest
   1353  1.122   mlelstv 	 */
   1354   1.78  christos 	if (cgu->cgu_unit == -1)
   1355   1.78  christos 		cgu->cgu_unit = unit;
   1356   1.78  christos 
   1357   1.78  christos 	if (cgu->cgu_unit < 0)
   1358   1.78  christos 		return EINVAL;	/* XXX: should this be ENXIO? */
   1359   1.78  christos 
   1360  1.122   mlelstv 	error = cgd_lock(false);
   1361  1.122   mlelstv 	if (error)
   1362  1.122   mlelstv 		return error;
   1363  1.122   mlelstv 
   1364  1.122   mlelstv 	sc = device_lookup_private(&cgd_cd, unit);
   1365  1.122   mlelstv 	if (sc == NULL || !DK_ATTACHED(&sc->sc_dksc)) {
   1366   1.78  christos 		cgu->cgu_dev = 0;
   1367   1.78  christos 		cgu->cgu_alg[0] = '\0';
   1368   1.78  christos 		cgu->cgu_blocksize = 0;
   1369   1.78  christos 		cgu->cgu_mode = 0;
   1370   1.78  christos 		cgu->cgu_keylen = 0;
   1371   1.78  christos 	}
   1372   1.78  christos 	else {
   1373  1.122   mlelstv 		mutex_enter(&sc->sc_lock);
   1374  1.122   mlelstv 		cgu->cgu_dev = sc->sc_tdev;
   1375  1.122   mlelstv 		strncpy(cgu->cgu_alg, sc->sc_cfuncs->cf_name,
   1376   1.78  christos 		    sizeof(cgu->cgu_alg));
   1377  1.122   mlelstv 		cgu->cgu_blocksize = sc->sc_cdata.cf_blocksize;
   1378  1.122   mlelstv 		cgu->cgu_mode = sc->sc_cdata.cf_mode;
   1379  1.122   mlelstv 		cgu->cgu_keylen = sc->sc_cdata.cf_keylen;
   1380  1.122   mlelstv 		mutex_exit(&sc->sc_lock);
   1381   1.78  christos 	}
   1382  1.122   mlelstv 
   1383  1.122   mlelstv 	cgd_unlock();
   1384   1.78  christos 	return 0;
   1385   1.78  christos }
   1386   1.78  christos 
   1387   1.78  christos static int
   1388  1.122   mlelstv cgdinit(struct cgd_softc *sc, const char *cpath, struct vnode *vp,
   1389   1.32  christos 	struct lwp *l)
   1390    1.1     elric {
   1391   1.80  christos 	struct	disk_geom *dg;
   1392    1.1     elric 	int	ret;
   1393   1.36  christos 	char	*tmppath;
   1394   1.76  christos 	uint64_t psize;
   1395   1.76  christos 	unsigned secsize;
   1396  1.122   mlelstv 	struct dk_softc *dksc = &sc->sc_dksc;
   1397    1.1     elric 
   1398  1.122   mlelstv 	sc->sc_tvn = vp;
   1399  1.122   mlelstv 	sc->sc_tpath = NULL;
   1400    1.1     elric 
   1401  1.122   mlelstv 	tmppath = kmem_alloc(MAXPATHLEN, KM_SLEEP);
   1402  1.122   mlelstv 	ret = copyinstr(cpath, tmppath, MAXPATHLEN, &sc->sc_tpathlen);
   1403    1.1     elric 	if (ret)
   1404    1.1     elric 		goto bail;
   1405  1.122   mlelstv 	sc->sc_tpath = kmem_alloc(sc->sc_tpathlen, KM_SLEEP);
   1406  1.122   mlelstv 	memcpy(sc->sc_tpath, tmppath, sc->sc_tpathlen);
   1407    1.1     elric 
   1408  1.122   mlelstv 	sc->sc_tdev = vp->v_rdev;
   1409    1.1     elric 
   1410   1.76  christos 	if ((ret = getdisksize(vp, &psize, &secsize)) != 0)
   1411    1.1     elric 		goto bail;
   1412    1.1     elric 
   1413   1.76  christos 	if (psize == 0) {
   1414    1.1     elric 		ret = ENODEV;
   1415    1.1     elric 		goto bail;
   1416    1.1     elric 	}
   1417    1.1     elric 
   1418    1.1     elric 	/*
   1419    1.1     elric 	 * XXX here we should probe the underlying device.  If we
   1420    1.1     elric 	 *     are accessing a partition of type RAW_PART, then
   1421    1.1     elric 	 *     we should populate our initial geometry with the
   1422    1.1     elric 	 *     geometry that we discover from the device.
   1423    1.1     elric 	 */
   1424   1.80  christos 	dg = &dksc->sc_dkdev.dk_geom;
   1425   1.80  christos 	memset(dg, 0, sizeof(*dg));
   1426   1.80  christos 	dg->dg_secperunit = psize;
   1427  1.105   mlelstv 	dg->dg_secsize = secsize;
   1428   1.80  christos 	dg->dg_ntracks = 1;
   1429  1.105   mlelstv 	dg->dg_nsectors = 1024 * 1024 / dg->dg_secsize;
   1430   1.80  christos 	dg->dg_ncylinders = dg->dg_secperunit / dg->dg_nsectors;
   1431    1.1     elric 
   1432    1.1     elric bail:
   1433  1.122   mlelstv 	kmem_free(tmppath, MAXPATHLEN);
   1434  1.122   mlelstv 	if (ret && sc->sc_tpath)
   1435  1.122   mlelstv 		kmem_free(sc->sc_tpath, sc->sc_tpathlen);
   1436    1.1     elric 	return ret;
   1437    1.1     elric }
   1438    1.1     elric 
   1439    1.1     elric /*
   1440    1.1     elric  * Our generic cipher entry point.  This takes care of the
   1441    1.1     elric  * IV mode and passes off the work to the specific cipher.
   1442    1.1     elric  * We implement here the IV method ``encrypted block
   1443    1.1     elric  * number''.
   1444   1.22     perry  *
   1445    1.1     elric  * XXXrcd: for now we rely on our own crypto framework defined
   1446    1.1     elric  *         in dev/cgd_crypto.c.  This will change when we
   1447    1.1     elric  *         get a generic kernel crypto framework.
   1448    1.1     elric  */
   1449    1.1     elric 
   1450    1.1     elric static void
   1451   1.25   xtraeme blkno2blkno_buf(char *sbuf, daddr_t blkno)
   1452    1.1     elric {
   1453    1.1     elric 	int	i;
   1454    1.1     elric 
   1455    1.1     elric 	/* Set up the blkno in blkno_buf, here we do not care much
   1456    1.1     elric 	 * about the final layout of the information as long as we
   1457    1.1     elric 	 * can guarantee that each sector will have a different IV
   1458    1.1     elric 	 * and that the endianness of the machine will not affect
   1459    1.1     elric 	 * the representation that we have chosen.
   1460    1.1     elric 	 *
   1461    1.1     elric 	 * We choose this representation, because it does not rely
   1462    1.1     elric 	 * on the size of buf (which is the blocksize of the cipher),
   1463    1.1     elric 	 * but allows daddr_t to grow without breaking existing
   1464    1.1     elric 	 * disks.
   1465    1.1     elric 	 *
   1466    1.1     elric 	 * Note that blkno2blkno_buf does not take a size as input,
   1467    1.1     elric 	 * and hence must be called on a pre-zeroed buffer of length
   1468    1.1     elric 	 * greater than or equal to sizeof(daddr_t).
   1469    1.1     elric 	 */
   1470    1.1     elric 	for (i=0; i < sizeof(daddr_t); i++) {
   1471   1.25   xtraeme 		*sbuf++ = blkno & 0xff;
   1472    1.1     elric 		blkno >>= 8;
   1473    1.1     elric 	}
   1474    1.1     elric }
   1475    1.1     elric 
   1476  1.122   mlelstv static struct cpu_info *
   1477  1.122   mlelstv cgd_cpu(struct cgd_softc *sc)
   1478  1.122   mlelstv {
   1479  1.122   mlelstv 	struct cgd_worker *cw = sc->sc_worker;
   1480  1.122   mlelstv 	struct cpu_info *ci = NULL;
   1481  1.122   mlelstv 	u_int cidx, i;
   1482  1.122   mlelstv 
   1483  1.122   mlelstv 	if (cw->cw_busy == 0) {
   1484  1.122   mlelstv 		cw->cw_last = cpu_index(curcpu());
   1485  1.122   mlelstv 		return NULL;
   1486  1.122   mlelstv 	}
   1487  1.122   mlelstv 
   1488  1.122   mlelstv 	for (i=0, cidx = cw->cw_last+1; i<maxcpus; ++i, ++cidx) {
   1489  1.122   mlelstv 		if (cidx >= maxcpus)
   1490  1.122   mlelstv 			cidx = 0;
   1491  1.122   mlelstv 		ci = cpu_lookup(cidx);
   1492  1.122   mlelstv 		if (ci) {
   1493  1.122   mlelstv 			cw->cw_last = cidx;
   1494  1.122   mlelstv 			break;
   1495  1.122   mlelstv 		}
   1496  1.122   mlelstv 	}
   1497  1.122   mlelstv 
   1498  1.122   mlelstv 	return ci;
   1499  1.122   mlelstv }
   1500  1.122   mlelstv 
   1501  1.122   mlelstv static void
   1502  1.122   mlelstv cgd_enqueue(struct cgd_softc *sc, struct cgd_xfer *cx)
   1503  1.122   mlelstv {
   1504  1.122   mlelstv 	struct cgd_worker *cw = sc->sc_worker;
   1505  1.122   mlelstv 	struct cpu_info *ci;
   1506  1.122   mlelstv 
   1507  1.122   mlelstv 	mutex_enter(&cw->cw_lock);
   1508  1.122   mlelstv 	ci = cgd_cpu(sc);
   1509  1.122   mlelstv 	cw->cw_busy++;
   1510  1.122   mlelstv 	mutex_exit(&cw->cw_lock);
   1511  1.122   mlelstv 
   1512  1.122   mlelstv 	workqueue_enqueue(cw->cw_wq, &cx->cx_work, ci);
   1513  1.122   mlelstv }
   1514  1.122   mlelstv 
   1515  1.122   mlelstv static void
   1516  1.122   mlelstv cgd_process(struct work *wk, void *arg)
   1517  1.122   mlelstv {
   1518  1.122   mlelstv 	struct cgd_xfer *cx = (struct cgd_xfer *)wk;
   1519  1.122   mlelstv 	struct cgd_softc *sc = cx->cx_sc;
   1520  1.122   mlelstv 	struct cgd_worker *cw = sc->sc_worker;
   1521  1.122   mlelstv 
   1522  1.122   mlelstv 	cgd_cipher(sc, cx->cx_dstv, cx->cx_srcv, cx->cx_len,
   1523  1.122   mlelstv 	    cx->cx_blkno, cx->cx_secsize, cx->cx_dir);
   1524  1.122   mlelstv 
   1525  1.122   mlelstv 	if (cx->cx_dir == CGD_CIPHER_ENCRYPT) {
   1526  1.122   mlelstv 		cgd_diskstart2(sc, cx);
   1527  1.122   mlelstv 	} else {
   1528  1.122   mlelstv 		cgd_iodone2(sc, cx);
   1529  1.122   mlelstv 	}
   1530  1.122   mlelstv 
   1531  1.122   mlelstv 	mutex_enter(&cw->cw_lock);
   1532  1.122   mlelstv 	if (cw->cw_busy > 0)
   1533  1.122   mlelstv 		cw->cw_busy--;
   1534  1.122   mlelstv 	mutex_exit(&cw->cw_lock);
   1535  1.122   mlelstv }
   1536  1.122   mlelstv 
   1537    1.1     elric static void
   1538  1.122   mlelstv cgd_cipher(struct cgd_softc *sc, void *dstv, void *srcv,
   1539   1.44  christos     size_t len, daddr_t blkno, size_t secsize, int dir)
   1540    1.1     elric {
   1541   1.44  christos 	char		*dst = dstv;
   1542  1.112     alnsn 	char		*src = srcv;
   1543  1.122   mlelstv 	cfunc_cipher	*cipher = sc->sc_cfuncs->cf_cipher;
   1544    1.1     elric 	struct uio	dstuio;
   1545    1.1     elric 	struct uio	srcuio;
   1546    1.1     elric 	struct iovec	dstiov[2];
   1547    1.1     elric 	struct iovec	srciov[2];
   1548  1.122   mlelstv 	size_t		blocksize = sc->sc_cdata.cf_blocksize;
   1549  1.105   mlelstv 	size_t		todo;
   1550  1.127  riastrad 	char		blkno_buf[CGD_MAXBLOCKSIZE];
   1551    1.1     elric 
   1552    1.1     elric 	DPRINTF_FOLLOW(("cgd_cipher() dir=%d\n", dir));
   1553    1.1     elric 
   1554  1.118  riastrad 	KASSERTMSG(len % blocksize == 0,
   1555  1.118  riastrad 	    "cgd_cipher: len %% blocksize != 0");
   1556    1.1     elric 
   1557    1.1     elric 	/* ensure that sizeof(daddr_t) <= blocksize (for encblkno IVing) */
   1558  1.118  riastrad 	KASSERTMSG(sizeof(daddr_t) <= blocksize,
   1559  1.118  riastrad 	    "cgd_cipher: sizeof(daddr_t) > blocksize");
   1560    1.1     elric 
   1561  1.118  riastrad 	KASSERTMSG(blocksize <= CGD_MAXBLOCKSIZE,
   1562  1.118  riastrad 	    "cgd_cipher: blocksize > CGD_MAXBLOCKSIZE");
   1563    1.1     elric 
   1564    1.1     elric 	dstuio.uio_iov = dstiov;
   1565  1.112     alnsn 	dstuio.uio_iovcnt = 1;
   1566    1.1     elric 
   1567    1.1     elric 	srcuio.uio_iov = srciov;
   1568  1.112     alnsn 	srcuio.uio_iovcnt = 1;
   1569    1.1     elric 
   1570  1.105   mlelstv 	for (; len > 0; len -= todo) {
   1571  1.105   mlelstv 		todo = MIN(len, secsize);
   1572  1.105   mlelstv 
   1573  1.112     alnsn 		dstiov[0].iov_base = dst;
   1574  1.112     alnsn 		srciov[0].iov_base = src;
   1575  1.112     alnsn 		dstiov[0].iov_len  = todo;
   1576  1.112     alnsn 		srciov[0].iov_len  = todo;
   1577    1.1     elric 
   1578   1.64  christos 		memset(blkno_buf, 0x0, blocksize);
   1579    1.1     elric 		blkno2blkno_buf(blkno_buf, blkno);
   1580    1.1     elric 		IFDEBUG(CGDB_CRYPTO, hexprint("step 1: blkno_buf",
   1581   1.64  christos 		    blkno_buf, blocksize));
   1582  1.112     alnsn 
   1583  1.127  riastrad 		cipher(sc->sc_cdata.cf_priv, &dstuio, &srcuio, blkno_buf, dir);
   1584    1.1     elric 
   1585  1.105   mlelstv 		dst += todo;
   1586  1.105   mlelstv 		src += todo;
   1587    1.1     elric 		blkno++;
   1588    1.1     elric 	}
   1589    1.1     elric }
   1590    1.1     elric 
   1591    1.1     elric #ifdef DEBUG
   1592    1.1     elric static void
   1593   1.26  drochner hexprint(const char *start, void *buf, int len)
   1594    1.1     elric {
   1595    1.1     elric 	char	*c = buf;
   1596    1.1     elric 
   1597  1.118  riastrad 	KASSERTMSG(len >= 0, "hexprint: called with len < 0");
   1598    1.1     elric 	printf("%s: len=%06d 0x", start, len);
   1599    1.1     elric 	while (len--)
   1600   1.43    cbiere 		printf("%02x", (unsigned char) *c++);
   1601    1.1     elric }
   1602    1.1     elric #endif
   1603   1.58      haad 
   1604  1.112     alnsn static void
   1605  1.131  riastrad cgd_selftest(void)
   1606  1.112     alnsn {
   1607  1.122   mlelstv 	struct cgd_softc sc;
   1608  1.112     alnsn 	void *buf;
   1609  1.112     alnsn 
   1610  1.112     alnsn 	for (size_t i = 0; i < __arraycount(selftests); i++) {
   1611  1.112     alnsn 		const char *alg = selftests[i].alg;
   1612  1.112     alnsn 		const uint8_t *key = selftests[i].key;
   1613  1.112     alnsn 		int keylen = selftests[i].keylen;
   1614  1.112     alnsn 		int txtlen = selftests[i].txtlen;
   1615  1.112     alnsn 
   1616  1.128  riastrad 		aprint_verbose("cgd: self-test %s-%d\n", alg, keylen);
   1617  1.112     alnsn 
   1618  1.122   mlelstv 		memset(&sc, 0, sizeof(sc));
   1619  1.112     alnsn 
   1620  1.122   mlelstv 		sc.sc_cfuncs = cryptfuncs_find(alg);
   1621  1.122   mlelstv 		if (sc.sc_cfuncs == NULL)
   1622  1.112     alnsn 			panic("%s not implemented", alg);
   1623  1.112     alnsn 
   1624  1.122   mlelstv 		sc.sc_cdata.cf_blocksize = 8 * selftests[i].blocksize;
   1625  1.122   mlelstv 		sc.sc_cdata.cf_mode = CGD_CIPHER_CBC_ENCBLKNO1;
   1626  1.122   mlelstv 		sc.sc_cdata.cf_keylen = keylen;
   1627  1.122   mlelstv 
   1628  1.122   mlelstv 		sc.sc_cdata.cf_priv = sc.sc_cfuncs->cf_init(keylen,
   1629  1.122   mlelstv 		    key, &sc.sc_cdata.cf_blocksize);
   1630  1.122   mlelstv 		if (sc.sc_cdata.cf_priv == NULL)
   1631  1.112     alnsn 			panic("cf_priv is NULL");
   1632  1.122   mlelstv 		if (sc.sc_cdata.cf_blocksize > CGD_MAXBLOCKSIZE)
   1633  1.122   mlelstv 			panic("bad block size %zu", sc.sc_cdata.cf_blocksize);
   1634  1.112     alnsn 
   1635  1.122   mlelstv 		sc.sc_cdata.cf_blocksize /= 8;
   1636  1.112     alnsn 
   1637  1.124       tnn 		buf = kmem_alloc(txtlen, KM_SLEEP);
   1638  1.112     alnsn 		memcpy(buf, selftests[i].ptxt, txtlen);
   1639  1.112     alnsn 
   1640  1.122   mlelstv 		cgd_cipher(&sc, buf, buf, txtlen, selftests[i].blkno,
   1641  1.112     alnsn 				selftests[i].secsize, CGD_CIPHER_ENCRYPT);
   1642  1.130  riastrad 		if (memcmp(buf, selftests[i].ctxt, txtlen) != 0) {
   1643  1.130  riastrad 			hexdump(printf, "was", buf, txtlen);
   1644  1.130  riastrad 			hexdump(printf, "exp", selftests[i].ctxt, txtlen);
   1645  1.130  riastrad 			panic("cgd %s encryption is broken [%zu]",
   1646  1.130  riastrad 			    selftests[i].alg, i);
   1647  1.130  riastrad 		}
   1648  1.112     alnsn 
   1649  1.122   mlelstv 		cgd_cipher(&sc, buf, buf, txtlen, selftests[i].blkno,
   1650  1.112     alnsn 				selftests[i].secsize, CGD_CIPHER_DECRYPT);
   1651  1.130  riastrad 		if (memcmp(buf, selftests[i].ptxt, txtlen) != 0) {
   1652  1.130  riastrad 			hexdump(printf, "was", buf, txtlen);
   1653  1.130  riastrad 			hexdump(printf, "exp", selftests[i].ptxt, txtlen);
   1654  1.130  riastrad 			panic("cgd %s decryption is broken [%zu]",
   1655  1.130  riastrad 			    selftests[i].alg, i);
   1656  1.130  riastrad 		}
   1657  1.112     alnsn 
   1658  1.124       tnn 		kmem_free(buf, txtlen);
   1659  1.122   mlelstv 		sc.sc_cfuncs->cf_destroy(sc.sc_cdata.cf_priv);
   1660  1.112     alnsn 	}
   1661  1.112     alnsn 
   1662  1.128  riastrad 	aprint_verbose("cgd: self-tests passed\n");
   1663  1.112     alnsn }
   1664  1.112     alnsn 
   1665  1.116  pgoyette MODULE(MODULE_CLASS_DRIVER, cgd, "blowfish,des,dk_subr,bufq_fcfs");
   1666   1.74    jruoho 
   1667   1.58      haad #ifdef _MODULE
   1668   1.66    dyoung CFDRIVER_DECL(cgd, DV_DISK, NULL);
   1669  1.109  pgoyette 
   1670  1.109  pgoyette devmajor_t cgd_bmajor = -1, cgd_cmajor = -1;
   1671   1.74    jruoho #endif
   1672   1.58      haad 
   1673   1.58      haad static int
   1674   1.58      haad cgd_modcmd(modcmd_t cmd, void *arg)
   1675   1.58      haad {
   1676   1.82    martin 	int error = 0;
   1677   1.74    jruoho 
   1678   1.58      haad 	switch (cmd) {
   1679   1.58      haad 	case MODULE_CMD_INIT:
   1680   1.74    jruoho #ifdef _MODULE
   1681  1.122   mlelstv 		mutex_init(&cgd_spawning_mtx, MUTEX_DEFAULT, IPL_NONE);
   1682  1.122   mlelstv 		cv_init(&cgd_spawning_cv, "cgspwn");
   1683  1.122   mlelstv 
   1684   1.66    dyoung 		error = config_cfdriver_attach(&cgd_cd);
   1685   1.66    dyoung 		if (error)
   1686   1.66    dyoung 			break;
   1687   1.66    dyoung 
   1688   1.66    dyoung 		error = config_cfattach_attach(cgd_cd.cd_name, &cgd_ca);
   1689   1.66    dyoung 	        if (error) {
   1690   1.66    dyoung 			config_cfdriver_detach(&cgd_cd);
   1691  1.109  pgoyette 			aprint_error("%s: unable to register cfattach for"
   1692  1.109  pgoyette 			    "%s, error %d\n", __func__, cgd_cd.cd_name, error);
   1693   1.66    dyoung 			break;
   1694   1.66    dyoung 		}
   1695  1.109  pgoyette 		/*
   1696  1.109  pgoyette 		 * Attach the {b,c}devsw's
   1697  1.109  pgoyette 		 */
   1698  1.109  pgoyette 		error = devsw_attach("cgd", &cgd_bdevsw, &cgd_bmajor,
   1699  1.109  pgoyette 		    &cgd_cdevsw, &cgd_cmajor);
   1700   1.74    jruoho 
   1701  1.109  pgoyette 		/*
   1702  1.109  pgoyette 		 * If devsw_attach fails, remove from autoconf database
   1703  1.109  pgoyette 		 */
   1704   1.66    dyoung 		if (error) {
   1705   1.66    dyoung 			config_cfattach_detach(cgd_cd.cd_name, &cgd_ca);
   1706   1.66    dyoung 			config_cfdriver_detach(&cgd_cd);
   1707  1.109  pgoyette 			aprint_error("%s: unable to attach %s devsw, "
   1708  1.109  pgoyette 			    "error %d", __func__, cgd_cd.cd_name, error);
   1709   1.66    dyoung 			break;
   1710   1.66    dyoung 		}
   1711   1.74    jruoho #endif
   1712   1.58      haad 		break;
   1713   1.58      haad 
   1714   1.58      haad 	case MODULE_CMD_FINI:
   1715   1.74    jruoho #ifdef _MODULE
   1716  1.109  pgoyette 		/*
   1717  1.109  pgoyette 		 * Remove {b,c}devsw's
   1718  1.109  pgoyette 		 */
   1719  1.109  pgoyette 		devsw_detach(&cgd_bdevsw, &cgd_cdevsw);
   1720  1.109  pgoyette 
   1721  1.109  pgoyette 		/*
   1722  1.109  pgoyette 		 * Now remove device from autoconf database
   1723  1.109  pgoyette 		 */
   1724   1.66    dyoung 		error = config_cfattach_detach(cgd_cd.cd_name, &cgd_ca);
   1725  1.109  pgoyette 		if (error) {
   1726  1.110  pgoyette 			(void)devsw_attach("cgd", &cgd_bdevsw, &cgd_bmajor,
   1727  1.109  pgoyette 			    &cgd_cdevsw, &cgd_cmajor);
   1728  1.109  pgoyette 			aprint_error("%s: failed to detach %s cfattach, "
   1729  1.109  pgoyette 			    "error %d\n", __func__, cgd_cd.cd_name, error);
   1730  1.109  pgoyette  			break;
   1731  1.109  pgoyette 		}
   1732  1.109  pgoyette 		error = config_cfdriver_detach(&cgd_cd);
   1733  1.109  pgoyette 		if (error) {
   1734  1.110  pgoyette 			(void)config_cfattach_attach(cgd_cd.cd_name, &cgd_ca);
   1735  1.110  pgoyette 			(void)devsw_attach("cgd", &cgd_bdevsw, &cgd_bmajor,
   1736  1.109  pgoyette 			    &cgd_cdevsw, &cgd_cmajor);
   1737  1.109  pgoyette 			aprint_error("%s: failed to detach %s cfdriver, "
   1738  1.109  pgoyette 			    "error %d\n", __func__, cgd_cd.cd_name, error);
   1739   1.66    dyoung 			break;
   1740  1.109  pgoyette 		}
   1741  1.122   mlelstv 
   1742  1.122   mlelstv 		cv_destroy(&cgd_spawning_cv);
   1743  1.122   mlelstv 		mutex_destroy(&cgd_spawning_mtx);
   1744   1.74    jruoho #endif
   1745   1.58      haad 		break;
   1746   1.58      haad 
   1747   1.58      haad 	case MODULE_CMD_STAT:
   1748  1.109  pgoyette 		error = ENOTTY;
   1749  1.109  pgoyette 		break;
   1750   1.58      haad 	default:
   1751  1.109  pgoyette 		error = ENOTTY;
   1752  1.109  pgoyette 		break;
   1753   1.58      haad 	}
   1754   1.58      haad 
   1755   1.58      haad 	return error;
   1756   1.58      haad }
   1757