naev 0.12.6
md5.c
1/*
2 Copyright (C) 1999, 2000, 2002 Aladdin Enterprises. All rights reserved.
3
4 This software is provided 'as-is', without any express or implied
5 warranty. In no event will the authors be held liable for any damages
6 arising from the use of this software.
7
8 Permission is granted to anyone to use this software for any purpose,
9 including commercial applications, and to alter it and redistribute it
10 freely, subject to the following restrictions:
11
12 1. The origin of this software must not be misrepresented; you must not
13 claim that you wrote the original software. If you use this software
14 in a product, an acknowledgment in the product documentation would be
15 appreciated but is not required.
16 2. Altered source versions must be plainly marked as such, and must not be
17 misrepresented as being the original software.
18 3. This notice may not be removed or altered from any source distribution.
19
20 L. Peter Deutsch
21 ghost@aladdin.com
22
23 */
24/* $Id: md5.c,v 1.6 2002/04/13 19:20:28 lpd Exp $ */
25/*
26 Independent implementation of MD5 (RFC 1321).
27
28 This code implements the MD5 Algorithm defined in RFC 1321, whose
29 text is available at
30 http://www.ietf.org/rfc/rfc1321.txt
31 The code is derived from the text of the RFC, including the test suite
32 (section A.5) but excluding the rest of Appendix A. It does not include
33 any code or documentation that is identified in the RFC as being
34 copyrighted.
35
36 The original and principal author of md5.c is L. Peter Deutsch
37 <ghost@aladdin.com>. Other authors are noted in the change history
38 that follows (in reverse chronological order):
39
40 2002-04-13 lpd Clarified derivation from RFC 1321; now handles byte order
41 either statically or dynamically; added missing #include "nstring.h"
42 in library.
43 2002-03-11 lpd Corrected argument list for main(), and added int return
44 type, in test program and T value program.
45 2002-02-21 lpd Added missing #include <stdio.h> in test program.
46 2000-07-03 lpd Patched to eliminate warnings about "constant is
47 unsigned in ANSI C, signed in traditional"; made test program
48 self-checking.
49 1999-11-04 lpd Edited comments slightly for automatic TOC extraction.
50 1999-10-18 lpd Fixed typo in header comment (ansi2knr rather than md5).
51 1999-05-03 lpd Original version.
52 */
53
55#include "SDL.h"
57
58#include "md5.h"
59#include "nstring.h"
60#define ARCH_IS_BIG_ENDIAN ( SDL_BYTEORDER == SDL_BIG_ENDIAN )
61
62#undef BYTE_ORDER /* 1 = big-endian, -1 = little-endian, 0 = unknown */
63#ifdef ARCH_IS_BIG_ENDIAN
64#define BYTE_ORDER ( ARCH_IS_BIG_ENDIAN ? 1 : -1 )
65#else
66#define BYTE_ORDER 0
67#endif
68
69#define T_MASK ( (md5_word_t)~0 )
70#define T1 /* 0xd76aa478 */ ( T_MASK ^ 0x28955b87 )
71#define T2 /* 0xe8c7b756 */ ( T_MASK ^ 0x173848a9 )
72#define T3 0x242070db
73#define T4 /* 0xc1bdceee */ ( T_MASK ^ 0x3e423111 )
74#define T5 /* 0xf57c0faf */ ( T_MASK ^ 0x0a83f050 )
75#define T6 0x4787c62a
76#define T7 /* 0xa8304613 */ ( T_MASK ^ 0x57cfb9ec )
77#define T8 /* 0xfd469501 */ ( T_MASK ^ 0x02b96afe )
78#define T9 0x698098d8
79#define T10 /* 0x8b44f7af */ ( T_MASK ^ 0x74bb0850 )
80#define T11 /* 0xffff5bb1 */ ( T_MASK ^ 0x0000a44e )
81#define T12 /* 0x895cd7be */ ( T_MASK ^ 0x76a32841 )
82#define T13 0x6b901122
83#define T14 /* 0xfd987193 */ ( T_MASK ^ 0x02678e6c )
84#define T15 /* 0xa679438e */ ( T_MASK ^ 0x5986bc71 )
85#define T16 0x49b40821
86#define T17 /* 0xf61e2562 */ ( T_MASK ^ 0x09e1da9d )
87#define T18 /* 0xc040b340 */ ( T_MASK ^ 0x3fbf4cbf )
88#define T19 0x265e5a51
89#define T20 /* 0xe9b6c7aa */ ( T_MASK ^ 0x16493855 )
90#define T21 /* 0xd62f105d */ ( T_MASK ^ 0x29d0efa2 )
91#define T22 0x02441453
92#define T23 /* 0xd8a1e681 */ ( T_MASK ^ 0x275e197e )
93#define T24 /* 0xe7d3fbc8 */ ( T_MASK ^ 0x182c0437 )
94#define T25 0x21e1cde6
95#define T26 /* 0xc33707d6 */ ( T_MASK ^ 0x3cc8f829 )
96#define T27 /* 0xf4d50d87 */ ( T_MASK ^ 0x0b2af278 )
97#define T28 0x455a14ed
98#define T29 /* 0xa9e3e905 */ ( T_MASK ^ 0x561c16fa )
99#define T30 /* 0xfcefa3f8 */ ( T_MASK ^ 0x03105c07 )
100#define T31 0x676f02d9
101#define T32 /* 0x8d2a4c8a */ ( T_MASK ^ 0x72d5b375 )
102#define T33 /* 0xfffa3942 */ ( T_MASK ^ 0x0005c6bd )
103#define T34 /* 0x8771f681 */ ( T_MASK ^ 0x788e097e )
104#define T35 0x6d9d6122
105#define T36 /* 0xfde5380c */ ( T_MASK ^ 0x021ac7f3 )
106#define T37 /* 0xa4beea44 */ ( T_MASK ^ 0x5b4115bb )
107#define T38 0x4bdecfa9
108#define T39 /* 0xf6bb4b60 */ ( T_MASK ^ 0x0944b49f )
109#define T40 /* 0xbebfbc70 */ ( T_MASK ^ 0x4140438f )
110#define T41 0x289b7ec6
111#define T42 /* 0xeaa127fa */ ( T_MASK ^ 0x155ed805 )
112#define T43 /* 0xd4ef3085 */ ( T_MASK ^ 0x2b10cf7a )
113#define T44 0x04881d05
114#define T45 /* 0xd9d4d039 */ ( T_MASK ^ 0x262b2fc6 )
115#define T46 /* 0xe6db99e5 */ ( T_MASK ^ 0x1924661a )
116#define T47 0x1fa27cf8
117#define T48 /* 0xc4ac5665 */ ( T_MASK ^ 0x3b53a99a )
118#define T49 /* 0xf4292244 */ ( T_MASK ^ 0x0bd6ddbb )
119#define T50 0x432aff97
120#define T51 /* 0xab9423a7 */ ( T_MASK ^ 0x546bdc58 )
121#define T52 /* 0xfc93a039 */ ( T_MASK ^ 0x036c5fc6 )
122#define T53 0x655b59c3
123#define T54 /* 0x8f0ccc92 */ ( T_MASK ^ 0x70f3336d )
124#define T55 /* 0xffeff47d */ ( T_MASK ^ 0x00100b82 )
125#define T56 /* 0x85845dd1 */ ( T_MASK ^ 0x7a7ba22e )
126#define T57 0x6fa87e4f
127#define T58 /* 0xfe2ce6e0 */ ( T_MASK ^ 0x01d3191f )
128#define T59 /* 0xa3014314 */ ( T_MASK ^ 0x5cfebceb )
129#define T60 0x4e0811a1
130#define T61 /* 0xf7537e82 */ ( T_MASK ^ 0x08ac817d )
131#define T62 /* 0xbd3af235 */ ( T_MASK ^ 0x42c50dca )
132#define T63 0x2ad7d2bb
133#define T64 /* 0xeb86d391 */ ( T_MASK ^ 0x14792c6e )
134
135static void md5_process( md5_state_t *pms, const md5_byte_t *data /*[64]*/ )
136{
137 md5_word_t a = pms->abcd[0], b = pms->abcd[1], c = pms->abcd[2],
138 d = pms->abcd[3];
139 md5_word_t t;
140#if BYTE_ORDER > 0
141 /* Define storage only for big-endian CPUs. */
142 md5_word_t X[16];
143#else
144 /* Define storage for little-endian or both types of CPUs. */
145 md5_word_t xbuf[16];
146 const md5_word_t *X;
147#endif
148
149 {
150#if BYTE_ORDER == 0
151 /*
152 * Determine dynamically whether this is a big-endian or
153 * little-endian machine, since we can use a more efficient
154 * algorithm on the latter.
155 */
156 static const int w = 1;
157
158 if ( *( (const md5_byte_t *)&w ) ) /* dynamic little-endian */
159#endif
160#if BYTE_ORDER <= 0 /* little-endian */
161 {
162 /*
163 * On little-endian machines, we can process properly aligned
164 * data without copying it.
165 */
166 if ( !( ( (uintptr_t)data ) & 3 ) ) {
167 /* data are properly aligned */
168 memcpy( &X, &data, sizeof( md5_word_t * ) );
169 } else {
170 /* not aligned */
171 memcpy( xbuf, data, 64 );
172 X = xbuf;
173 }
174 }
175#endif
176#if BYTE_ORDER == 0
177 else /* dynamic big-endian */
178#endif
179#if BYTE_ORDER >= 0 /* big-endian */
180 {
181 /*
182 * On big-endian machines, we must arrange the bytes in the
183 * right order.
184 */
185 const md5_byte_t *xp = data;
186 int i;
187
188#if BYTE_ORDER == 0
189 X = xbuf; /* (dynamic only) */
190#else
191#define xbuf X /* (static only) */
192#endif
193 for ( i = 0; i < 16; ++i, xp += 4 )
194 xbuf[i] =
195 xp[0] + ( xp[1] << 8 ) + ( xp[2] << 16 ) + ( xp[3] << 24 );
196 }
197#endif
198 }
199
200#define ROTATE_LEFT( x, n ) ( ( ( x ) << ( n ) ) | ( ( x ) >> ( 32 - ( n ) ) ) )
201
202 /* Round 1. */
203 /* Let [abcd k s i] denote the operation
204 a = b + ((a + F(b,c,d) + X[k] + T[i]) <<< s). */
205#define F( x, y, z ) ( ( ( x ) & ( y ) ) | ( ~( x ) & ( z ) ) )
206#define SET( a, b, c, d, k, s, Ti ) \
207 t = a + F( b, c, d ) + X[k] + Ti; \
208 a = ROTATE_LEFT( t, s ) + b
209 /* Do the following 16 operations. */
210 SET( a, b, c, d, 0, 7, T1 );
211 SET( d, a, b, c, 1, 12, T2 );
212 SET( c, d, a, b, 2, 17, T3 );
213 SET( b, c, d, a, 3, 22, T4 );
214 SET( a, b, c, d, 4, 7, T5 );
215 SET( d, a, b, c, 5, 12, T6 );
216 SET( c, d, a, b, 6, 17, T7 );
217 SET( b, c, d, a, 7, 22, T8 );
218 SET( a, b, c, d, 8, 7, T9 );
219 SET( d, a, b, c, 9, 12, T10 );
220 SET( c, d, a, b, 10, 17, T11 );
221 SET( b, c, d, a, 11, 22, T12 );
222 SET( a, b, c, d, 12, 7, T13 );
223 SET( d, a, b, c, 13, 12, T14 );
224 SET( c, d, a, b, 14, 17, T15 );
225#undef SET
226
227 /* Round 2. */
228 /* Let [abcd k s i] denote the operation
229 a = b + ((a + G(b,c,d) + X[k] + T[i]) <<< s). */
230#define G( x, y, z ) ( ( ( x ) & ( z ) ) | ( ( y ) & ~( z ) ) )
231#define SET( a, b, c, d, k, s, Ti ) \
232 t = a + G( b, c, d ) + X[k] + Ti; \
233 a = ROTATE_LEFT( t, s ) + b
234 /* Do the following 16 operations. */
235 SET( a, b, c, d, 1, 5, T17 );
236 SET( d, a, b, c, 6, 9, T18 );
237 SET( c, d, a, b, 11, 14, T19 );
238 SET( b, c, d, a, 0, 20, T20 );
239 SET( a, b, c, d, 5, 5, T21 );
240 SET( d, a, b, c, 10, 9, T22 );
241 SET( c, d, a, b, 15, 14, T23 );
242 SET( b, c, d, a, 4, 20, T24 );
243 SET( a, b, c, d, 9, 5, T25 );
244 SET( d, a, b, c, 14, 9, T26 );
245 SET( c, d, a, b, 3, 14, T27 );
246 SET( b, c, d, a, 8, 20, T28 );
247 SET( a, b, c, d, 13, 5, T29 );
248 SET( d, a, b, c, 2, 9, T30 );
249 SET( c, d, a, b, 7, 14, T31 );
250 SET( b, c, d, a, 12, 20, T32 );
251#undef SET
252
253 /* Round 3. */
254 /* Let [abcd k s t] denote the operation
255 a = b + ((a + H(b,c,d) + X[k] + T[i]) <<< s). */
256#define H( x, y, z ) ( ( x ) ^ ( y ) ^ ( z ) )
257#define SET( a, b, c, d, k, s, Ti ) \
258 t = a + H( b, c, d ) + X[k] + Ti; \
259 a = ROTATE_LEFT( t, s ) + b
260 /* Do the following 16 operations. */
261 SET( a, b, c, d, 5, 4, T33 );
262 SET( d, a, b, c, 8, 11, T34 );
263 SET( c, d, a, b, 11, 16, T35 );
264 SET( b, c, d, a, 14, 23, T36 );
265 SET( a, b, c, d, 1, 4, T37 );
266 SET( d, a, b, c, 4, 11, T38 );
267 SET( c, d, a, b, 7, 16, T39 );
268 SET( b, c, d, a, 10, 23, T40 );
269 SET( a, b, c, d, 13, 4, T41 );
270 SET( d, a, b, c, 0, 11, T42 );
271 SET( c, d, a, b, 3, 16, T43 );
272 SET( b, c, d, a, 6, 23, T44 );
273 SET( a, b, c, d, 9, 4, T45 );
274 SET( d, a, b, c, 12, 11, T46 );
275 SET( c, d, a, b, 15, 16, T47 );
276 SET( b, c, d, a, 2, 23, T48 );
277#undef SET
278
279 /* Round 4. */
280 /* Let [abcd k s t] denote the operation
281 a = b + ((a + I(b,c,d) + X[k] + T[i]) <<< s). */
282#define I( x, y, z ) ( ( y ) ^ ( ( x ) | ~( z ) ) )
283#define SET( a, b, c, d, k, s, Ti ) \
284 t = a + I( b, c, d ) + X[k] + Ti; \
285 a = ROTATE_LEFT( t, s ) + b
286 /* Do the following 16 operations. */
287 SET( a, b, c, d, 0, 6, T49 );
288 SET( d, a, b, c, 7, 10, T50 );
289 SET( c, d, a, b, 14, 15, T51 );
290 SET( b, c, d, a, 5, 21, T52 );
291 SET( a, b, c, d, 12, 6, T53 );
292 SET( d, a, b, c, 3, 10, T54 );
293 SET( c, d, a, b, 10, 15, T55 );
294 SET( b, c, d, a, 1, 21, T56 );
295 SET( a, b, c, d, 8, 6, T57 );
296 SET( d, a, b, c, 15, 10, T58 );
297 SET( c, d, a, b, 6, 15, T59 );
298 SET( b, c, d, a, 13, 21, T60 );
299 SET( a, b, c, d, 4, 6, T61 );
300 SET( d, a, b, c, 11, 10, T62 );
301 SET( c, d, a, b, 2, 15, T63 );
302 SET( b, c, d, a, 9, 21, T64 );
303#undef SET
304
305 /* Then perform the following additions. (That is increment each
306 of the four registers by the value it had before this block
307 was started.) */
308 pms->abcd[0] += a;
309 pms->abcd[1] += b;
310 pms->abcd[2] += c;
311 pms->abcd[3] += d;
312}
313
314void md5_init( md5_state_t *pms )
315{
316 pms->count[0] = pms->count[1] = 0;
317 pms->abcd[0] = 0x67452301;
318 pms->abcd[1] = /*0xefcdab89*/ T_MASK ^ 0x10325476;
319 pms->abcd[2] = /*0x98badcfe*/ T_MASK ^ 0x67452301;
320 pms->abcd[3] = 0x10325476;
321}
322
323void md5_append( md5_state_t *pms, const md5_byte_t *data, int nbytes )
324{
325 const md5_byte_t *p = data;
326 int left = nbytes;
327 int offset = ( pms->count[0] >> 3 ) & 63;
328 md5_word_t nbits = (md5_word_t)( nbytes << 3 );
329
330 if ( nbytes <= 0 )
331 return;
332
333 /* Update the message length. */
334 pms->count[1] += nbytes >> 29;
335 pms->count[0] += nbits;
336 if ( pms->count[0] < nbits )
337 pms->count[1]++;
338
339 /* Process an initial partial block. */
340 if ( offset ) {
341 int copy = ( offset + nbytes > 64 ? 64 - offset : nbytes );
342
343 memcpy( pms->buf + offset, p, copy );
344 if ( offset + copy < 64 )
345 return;
346 p += copy;
347 left -= copy;
348 md5_process( pms, pms->buf );
349 }
350
351 /* Process full blocks. */
352 for ( ; left >= 64; p += 64, left -= 64 )
353 md5_process( pms, p );
354
355 /* Process a final partial block. */
356 if ( left )
357 memcpy( pms->buf, p, left );
358}
359
360void md5_finish( md5_state_t *pms, md5_byte_t digest[16] )
361{
362 static const md5_byte_t pad[64] = {
363 0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
364 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
365 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };
366 md5_byte_t data[8];
367 int i;
368
369 /* Save the length before padding. */
370 for ( i = 0; i < 8; ++i )
371 data[i] = (md5_byte_t)( pms->count[i >> 2] >> ( ( i & 3 ) << 3 ) );
372 /* Pad to 56 bytes mod 64. */
373 md5_append( pms, pad, ( ( 55 - ( pms->count[0] >> 3 ) ) & 63 ) + 1 );
374 /* Append the length. */
375 md5_append( pms, data, 8 );
376 for ( i = 0; i < 16; ++i )
377 digest[i] = (md5_byte_t)( pms->abcd[i >> 2] >> ( ( i & 3 ) << 3 ) );
378}
static const double c[]
Definition rng.c:256
static const double d[]
Definition rng.c:263
Define the state of the MD5 Algorithm.
Definition md5.h:73
md5_byte_t buf[64]
Definition md5.h:76
md5_word_t abcd[4]
Definition md5.h:75
md5_word_t count[2]
Definition md5.h:74