md5crypt.c revision 1.8 1 1.8 sjg /* $NetBSD: md5crypt.c,v 1.8 2004/07/02 00:05:23 sjg Exp $ */
2 1.1 ad
3 1.1 ad /*
4 1.1 ad * ----------------------------------------------------------------------------
5 1.1 ad * "THE BEER-WARE LICENSE" (Revision 42):
6 1.1 ad * <phk (at) login.dknet.dk> wrote this file. As long as you retain this notice you
7 1.1 ad * can do whatever you want with this stuff. If we meet some day, and you think
8 1.1 ad * this stuff is worth it, you can buy me a beer in return. Poul-Henning Kamp
9 1.1 ad * ----------------------------------------------------------------------------
10 1.1 ad *
11 1.1 ad * from FreeBSD: crypt.c,v 1.5 1996/10/14 08:34:02 phk Exp
12 1.1 ad * via OpenBSD: md5crypt.c,v 1.9 1997/07/23 20:58:27 kstailey Exp
13 1.1 ad *
14 1.1 ad */
15 1.1 ad
16 1.1 ad #include <sys/cdefs.h>
17 1.1 ad #if !defined(lint)
18 1.8 sjg __RCSID("$NetBSD: md5crypt.c,v 1.8 2004/07/02 00:05:23 sjg Exp $");
19 1.1 ad #endif /* not lint */
20 1.1 ad
21 1.5 thorpej /*
22 1.5 thorpej * NOTE: We are also built for inclusion in libcrypto; when built for that
23 1.5 thorpej * environment, use the libcrypto versions of the MD5 routines, so save
24 1.5 thorpej * having to pull two versions into the same program.
25 1.5 thorpej */
26 1.5 thorpej
27 1.1 ad #include <unistd.h>
28 1.1 ad #include <stdio.h>
29 1.1 ad #include <string.h>
30 1.5 thorpej #ifdef libcrypto
31 1.5 thorpej #include <openssl/md5.h>
32 1.5 thorpej #else
33 1.1 ad #include <md5.h>
34 1.5 thorpej #endif
35 1.1 ad #include <string.h>
36 1.1 ad
37 1.8 sjg #include "crypt.h"
38 1.8 sjg
39 1.1 ad #define MD5_MAGIC "$1$"
40 1.1 ad #define MD5_MAGIC_LEN 3
41 1.1 ad
42 1.5 thorpej #ifdef libcrypto
43 1.5 thorpej #define INIT(x) MD5_Init((x))
44 1.5 thorpej #define UPDATE(x, b, l) MD5_Update((x), (b), (l))
45 1.5 thorpej #define FINAL(v, x) MD5_Final((v), (x))
46 1.5 thorpej #else
47 1.5 thorpej #define INIT(x) MD5Init((x))
48 1.5 thorpej #define UPDATE(x, b, l) MD5Update((x), (b), (l))
49 1.5 thorpej #define FINAL(v, x) MD5Final((v), (x))
50 1.5 thorpej #endif
51 1.1 ad
52 1.1 ad
53 1.1 ad /*
54 1.1 ad * MD5 password encryption.
55 1.1 ad */
56 1.1 ad char *
57 1.1 ad __md5crypt(const char *pw, const char *salt)
58 1.1 ad {
59 1.1 ad static char passwd[120], *p;
60 1.1 ad const char *sp, *ep;
61 1.1 ad unsigned char final[16];
62 1.1 ad unsigned int i, sl, pwl;
63 1.1 ad MD5_CTX ctx, ctx1;
64 1.1 ad u_int32_t l;
65 1.1 ad int pl;
66 1.1 ad
67 1.1 ad pwl = strlen(pw);
68 1.1 ad
69 1.1 ad /* Refine the salt first */
70 1.1 ad sp = salt;
71 1.1 ad
72 1.1 ad /* If it starts with the magic string, then skip that */
73 1.2 ad if (strncmp(sp, MD5_MAGIC, MD5_MAGIC_LEN) == 0)
74 1.1 ad sp += MD5_MAGIC_LEN;
75 1.1 ad
76 1.1 ad /* It stops at the first '$', max 8 chars */
77 1.2 ad for (ep = sp; *ep != '\0' && *ep != '$' && ep < (sp + 8); ep++)
78 1.1 ad continue;
79 1.1 ad
80 1.1 ad /* get the length of the true salt */
81 1.1 ad sl = ep - sp;
82 1.1 ad
83 1.5 thorpej INIT(&ctx);
84 1.1 ad
85 1.1 ad /* The password first, since that is what is most unknown */
86 1.5 thorpej UPDATE(&ctx, (const unsigned char *)pw, pwl);
87 1.1 ad
88 1.1 ad /* Then our magic string */
89 1.5 thorpej UPDATE(&ctx, (const unsigned char *)MD5_MAGIC, MD5_MAGIC_LEN);
90 1.1 ad
91 1.1 ad /* Then the raw salt */
92 1.5 thorpej UPDATE(&ctx, (const unsigned char *)sp, sl);
93 1.1 ad
94 1.1 ad /* Then just as many characters of the MD5(pw,salt,pw) */
95 1.5 thorpej INIT(&ctx1);
96 1.5 thorpej UPDATE(&ctx1, (const unsigned char *)pw, pwl);
97 1.5 thorpej UPDATE(&ctx1, (const unsigned char *)sp, sl);
98 1.5 thorpej UPDATE(&ctx1, (const unsigned char *)pw, pwl);
99 1.5 thorpej FINAL(final, &ctx1);
100 1.1 ad
101 1.2 ad for (pl = pwl; pl > 0; pl -= 16)
102 1.5 thorpej UPDATE(&ctx, final, (unsigned int)(pl > 16 ? 16 : pl));
103 1.1 ad
104 1.1 ad /* Don't leave anything around in vm they could use. */
105 1.1 ad memset(final, 0, sizeof(final));
106 1.1 ad
107 1.1 ad /* Then something really weird... */
108 1.1 ad for (i = pwl; i != 0; i >>= 1)
109 1.2 ad if ((i & 1) != 0)
110 1.5 thorpej UPDATE(&ctx, final, 1);
111 1.1 ad else
112 1.5 thorpej UPDATE(&ctx, (const unsigned char *)pw, 1);
113 1.1 ad
114 1.1 ad /* Now make the output string */
115 1.1 ad memcpy(passwd, MD5_MAGIC, MD5_MAGIC_LEN);
116 1.4 ad strlcpy(passwd + MD5_MAGIC_LEN, sp, sl + 1);
117 1.6 itojun strlcat(passwd, "$", sizeof(passwd));
118 1.1 ad
119 1.5 thorpej FINAL(final, &ctx);
120 1.1 ad
121 1.1 ad /*
122 1.1 ad * And now, just to make sure things don't run too fast. On a 60 MHz
123 1.1 ad * Pentium this takes 34 msec, so you would need 30 seconds to build
124 1.1 ad * a 1000 entry dictionary...
125 1.1 ad */
126 1.2 ad for (i = 0; i < 1000; i++) {
127 1.5 thorpej INIT(&ctx1);
128 1.1 ad
129 1.2 ad if ((i & 1) != 0)
130 1.5 thorpej UPDATE(&ctx1, (const unsigned char *)pw, pwl);
131 1.1 ad else
132 1.5 thorpej UPDATE(&ctx1, final, 16);
133 1.1 ad
134 1.2 ad if ((i % 3) != 0)
135 1.5 thorpej UPDATE(&ctx1, (const unsigned char *)sp, sl);
136 1.1 ad
137 1.2 ad if ((i % 7) != 0)
138 1.5 thorpej UPDATE(&ctx1, (const unsigned char *)pw, pwl);
139 1.1 ad
140 1.2 ad if ((i & 1) != 0)
141 1.5 thorpej UPDATE(&ctx1, final, 16);
142 1.1 ad else
143 1.5 thorpej UPDATE(&ctx1, (const unsigned char *)pw, pwl);
144 1.1 ad
145 1.5 thorpej FINAL(final, &ctx1);
146 1.1 ad }
147 1.1 ad
148 1.1 ad p = passwd + sl + MD5_MAGIC_LEN + 1;
149 1.1 ad
150 1.8 sjg l = (final[ 0]<<16) | (final[ 6]<<8) | final[12]; __crypt_to64(p,l,4); p += 4;
151 1.8 sjg l = (final[ 1]<<16) | (final[ 7]<<8) | final[13]; __crypt_to64(p,l,4); p += 4;
152 1.8 sjg l = (final[ 2]<<16) | (final[ 8]<<8) | final[14]; __crypt_to64(p,l,4); p += 4;
153 1.8 sjg l = (final[ 3]<<16) | (final[ 9]<<8) | final[15]; __crypt_to64(p,l,4); p += 4;
154 1.8 sjg l = (final[ 4]<<16) | (final[10]<<8) | final[ 5]; __crypt_to64(p,l,4); p += 4;
155 1.8 sjg l = final[11] ; __crypt_to64(p,l,2); p += 2;
156 1.1 ad *p = '\0';
157 1.1 ad
158 1.1 ad /* Don't leave anything around in vm they could use. */
159 1.1 ad memset(final, 0, sizeof(final));
160 1.1 ad return (passwd);
161 1.1 ad }
162