Coverage Report

Created: 2026-07-23 06:28

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/openssl35/crypto/sha/sha512.c
Line
Count
Source
1
/*
2
 * Copyright 2004-2024 The OpenSSL Project Authors. All Rights Reserved.
3
 *
4
 * Licensed under the Apache License 2.0 (the "License").  You may not use
5
 * this file except in compliance with the License.  You can obtain a copy
6
 * in the file LICENSE in the source distribution or at
7
 * https://www.openssl.org/source/license.html
8
 */
9
10
/*
11
 * SHA512 low level APIs are deprecated for public use, but still ok for
12
 * internal use.
13
 */
14
#include "internal/deprecated.h"
15
16
#include <stdio.h>
17
#include <openssl/opensslconf.h>
18
/*-
19
 * IMPLEMENTATION NOTES.
20
 *
21
 * As you might have noticed, 32-bit hash algorithms:
22
 *
23
 * - permit SHA_LONG to be wider than 32-bit
24
 * - optimized versions implement two transform functions: one operating
25
 *   on [aligned] data in host byte order, and one operating on data in input
26
 *   stream byte order;
27
 * - share common byte-order neutral collector and padding function
28
 *   implementations, crypto/md32_common.h;
29
 *
30
 * Neither of the above applies to this SHA-512 implementation. Reasons
31
 * [in reverse order] are:
32
 *
33
 * - it's the only 64-bit hash algorithm for the moment of this writing,
34
 *   there is no need for common collector/padding implementation [yet];
35
 * - by supporting only one transform function [which operates on
36
 *   *aligned* data in input stream byte order, big-endian in this case]
37
 *   we minimize burden of maintenance in two ways: a) collector/padding
38
 *   function is simpler; b) only one transform function to stare at;
39
 * - SHA_LONG64 is required to be exactly 64-bit in order to be able to
40
 *   apply a number of optimizations to mitigate potential performance
41
 *   penalties caused by previous design decision;
42
 *
43
 * Caveat lector.
44
 *
45
 * Implementation relies on the fact that "long long" is 64-bit on
46
 * both 32- and 64-bit platforms. If some compiler vendor comes up
47
 * with 128-bit long long, adjustment to sha.h would be required.
48
 * As this implementation relies on 64-bit integer type, it's totally
49
 * inappropriate for platforms which don't support it, most notably
50
 * 16-bit platforms.
51
 */
52
#include <stdlib.h>
53
#include <string.h>
54
55
#include <openssl/crypto.h>
56
#include <openssl/sha.h>
57
#include <openssl/opensslv.h>
58
59
#include "internal/cryptlib.h"
60
#include "crypto/sha.h"
61
62
#if defined(__i386) || defined(__i386__) || defined(_M_IX86) || defined(__x86_64) || defined(_M_AMD64) || defined(_M_X64) || defined(__s390__) || defined(__s390x__) || defined(__aarch64__) || defined(SHA512_ASM)
63
#define SHA512_BLOCK_CAN_MANAGE_UNALIGNED_DATA
64
#endif
65
66
#if (defined(_WIN32) || defined(_WIN64)) && !defined(__MINGW32__)
67
#define U64(C) C##UI64
68
#elif defined(__arch64__)
69
#define U64(C) C##UL
70
#else
71
244M
#define U64(C) C##ULL
72
#endif
73
74
int sha512_224_init(SHA512_CTX *c)
75
201k
{
76
201k
    c->h[0] = U64(0x8c3d37c819544da2);
77
201k
    c->h[1] = U64(0x73e1996689dcd4d6);
78
201k
    c->h[2] = U64(0x1dfab7ae32ff9c82);
79
201k
    c->h[3] = U64(0x679dd514582f9fcf);
80
201k
    c->h[4] = U64(0x0f6d2b697bd44da8);
81
201k
    c->h[5] = U64(0x77e36f7304c48942);
82
201k
    c->h[6] = U64(0x3f9d85a86a1d36c8);
83
201k
    c->h[7] = U64(0x1112e6ad91d692a1);
84
85
201k
    c->Nl = 0;
86
201k
    c->Nh = 0;
87
201k
    c->num = 0;
88
201k
    c->md_len = SHA224_DIGEST_LENGTH;
89
201k
    return 1;
90
201k
}
91
92
int sha512_256_init(SHA512_CTX *c)
93
163k
{
94
163k
    c->h[0] = U64(0x22312194fc2bf72c);
95
163k
    c->h[1] = U64(0x9f555fa3c84c64c2);
96
163k
    c->h[2] = U64(0x2393b86b6f53b151);
97
163k
    c->h[3] = U64(0x963877195940eabd);
98
163k
    c->h[4] = U64(0x96283ee2a88effe3);
99
163k
    c->h[5] = U64(0xbe5e1e2553863992);
100
163k
    c->h[6] = U64(0x2b0199fc2c85b8aa);
101
163k
    c->h[7] = U64(0x0eb72ddc81c52ca2);
102
103
163k
    c->Nl = 0;
104
163k
    c->Nh = 0;
105
163k
    c->num = 0;
106
163k
    c->md_len = SHA256_DIGEST_LENGTH;
107
163k
    return 1;
108
163k
}
109
110
int SHA384_Init(SHA512_CTX *c)
111
2.09M
{
112
2.09M
    c->h[0] = U64(0xcbbb9d5dc1059ed8);
113
2.09M
    c->h[1] = U64(0x629a292a367cd507);
114
2.09M
    c->h[2] = U64(0x9159015a3070dd17);
115
2.09M
    c->h[3] = U64(0x152fecd8f70e5939);
116
2.09M
    c->h[4] = U64(0x67332667ffc00b31);
117
2.09M
    c->h[5] = U64(0x8eb44a8768581511);
118
2.09M
    c->h[6] = U64(0xdb0c2e0d64f98fa7);
119
2.09M
    c->h[7] = U64(0x47b5481dbefa4fa4);
120
121
2.09M
    c->Nl = 0;
122
2.09M
    c->Nh = 0;
123
2.09M
    c->num = 0;
124
2.09M
    c->md_len = SHA384_DIGEST_LENGTH;
125
2.09M
    return 1;
126
2.09M
}
127
128
int SHA512_Init(SHA512_CTX *c)
129
18.4M
{
130
18.4M
    c->h[0] = U64(0x6a09e667f3bcc908);
131
18.4M
    c->h[1] = U64(0xbb67ae8584caa73b);
132
18.4M
    c->h[2] = U64(0x3c6ef372fe94f82b);
133
18.4M
    c->h[3] = U64(0xa54ff53a5f1d36f1);
134
18.4M
    c->h[4] = U64(0x510e527fade682d1);
135
18.4M
    c->h[5] = U64(0x9b05688c2b3e6c1f);
136
18.4M
    c->h[6] = U64(0x1f83d9abfb41bd6b);
137
18.4M
    c->h[7] = U64(0x5be0cd19137e2179);
138
139
18.4M
    c->Nl = 0;
140
18.4M
    c->Nh = 0;
141
18.4M
    c->num = 0;
142
18.4M
    c->md_len = SHA512_DIGEST_LENGTH;
143
18.4M
    return 1;
144
18.4M
}
145
146
#ifndef SHA512_ASM
147
static
148
#else
149
#ifdef INCLUDE_C_SHA512
150
void sha512_block_data_order_c(SHA512_CTX *ctx, const void *in, size_t num);
151
#endif
152
#endif
153
    void sha512_block_data_order(SHA512_CTX *ctx, const void *in, size_t num);
154
155
int SHA512_Final(unsigned char *md, SHA512_CTX *c)
156
20.6M
{
157
20.6M
    unsigned char *p = (unsigned char *)c->u.p;
158
20.6M
    size_t n = c->num;
159
160
20.6M
    p[n] = 0x80; /* There always is a room for one */
161
20.6M
    n++;
162
20.6M
    if (n > (sizeof(c->u) - 16)) {
163
143k
        memset(p + n, 0, sizeof(c->u) - n);
164
143k
        n = 0;
165
143k
        sha512_block_data_order(c, p, 1);
166
143k
    }
167
168
20.6M
    memset(p + n, 0, sizeof(c->u) - 16 - n);
169
#ifdef B_ENDIAN
170
    c->u.d[SHA_LBLOCK - 2] = c->Nh;
171
    c->u.d[SHA_LBLOCK - 1] = c->Nl;
172
#else
173
20.6M
    p[sizeof(c->u) - 1] = (unsigned char)(c->Nl);
174
20.6M
    p[sizeof(c->u) - 2] = (unsigned char)(c->Nl >> 8);
175
20.6M
    p[sizeof(c->u) - 3] = (unsigned char)(c->Nl >> 16);
176
20.6M
    p[sizeof(c->u) - 4] = (unsigned char)(c->Nl >> 24);
177
20.6M
    p[sizeof(c->u) - 5] = (unsigned char)(c->Nl >> 32);
178
20.6M
    p[sizeof(c->u) - 6] = (unsigned char)(c->Nl >> 40);
179
20.6M
    p[sizeof(c->u) - 7] = (unsigned char)(c->Nl >> 48);
180
20.6M
    p[sizeof(c->u) - 8] = (unsigned char)(c->Nl >> 56);
181
20.6M
    p[sizeof(c->u) - 9] = (unsigned char)(c->Nh);
182
20.6M
    p[sizeof(c->u) - 10] = (unsigned char)(c->Nh >> 8);
183
20.6M
    p[sizeof(c->u) - 11] = (unsigned char)(c->Nh >> 16);
184
20.6M
    p[sizeof(c->u) - 12] = (unsigned char)(c->Nh >> 24);
185
20.6M
    p[sizeof(c->u) - 13] = (unsigned char)(c->Nh >> 32);
186
20.6M
    p[sizeof(c->u) - 14] = (unsigned char)(c->Nh >> 40);
187
20.6M
    p[sizeof(c->u) - 15] = (unsigned char)(c->Nh >> 48);
188
20.6M
    p[sizeof(c->u) - 16] = (unsigned char)(c->Nh >> 56);
189
20.6M
#endif
190
191
20.6M
    sha512_block_data_order(c, p, 1);
192
193
20.6M
    if (md == 0)
194
0
        return 0;
195
196
20.6M
    switch (c->md_len) {
197
    /* Let compiler decide if it's appropriate to unroll... */
198
198k
    case SHA224_DIGEST_LENGTH:
199
792k
        for (n = 0; n < SHA224_DIGEST_LENGTH / 8; n++) {
200
594k
            SHA_LONG64 t = c->h[n];
201
202
594k
            *(md++) = (unsigned char)(t >> 56);
203
594k
            *(md++) = (unsigned char)(t >> 48);
204
594k
            *(md++) = (unsigned char)(t >> 40);
205
594k
            *(md++) = (unsigned char)(t >> 32);
206
594k
            *(md++) = (unsigned char)(t >> 24);
207
594k
            *(md++) = (unsigned char)(t >> 16);
208
594k
            *(md++) = (unsigned char)(t >> 8);
209
594k
            *(md++) = (unsigned char)(t);
210
594k
        }
211
        /*
212
         * For 224 bits, there are four bytes left over that have to be
213
         * processed separately.
214
         */
215
198k
        {
216
198k
            SHA_LONG64 t = c->h[SHA224_DIGEST_LENGTH / 8];
217
218
198k
            *(md++) = (unsigned char)(t >> 56);
219
198k
            *(md++) = (unsigned char)(t >> 48);
220
198k
            *(md++) = (unsigned char)(t >> 40);
221
198k
            *(md++) = (unsigned char)(t >> 32);
222
198k
        }
223
198k
        break;
224
159k
    case SHA256_DIGEST_LENGTH:
225
798k
        for (n = 0; n < SHA256_DIGEST_LENGTH / 8; n++) {
226
639k
            SHA_LONG64 t = c->h[n];
227
228
639k
            *(md++) = (unsigned char)(t >> 56);
229
639k
            *(md++) = (unsigned char)(t >> 48);
230
639k
            *(md++) = (unsigned char)(t >> 40);
231
639k
            *(md++) = (unsigned char)(t >> 32);
232
639k
            *(md++) = (unsigned char)(t >> 24);
233
639k
            *(md++) = (unsigned char)(t >> 16);
234
639k
            *(md++) = (unsigned char)(t >> 8);
235
639k
            *(md++) = (unsigned char)(t);
236
639k
        }
237
159k
        break;
238
1.89M
    case SHA384_DIGEST_LENGTH:
239
13.2M
        for (n = 0; n < SHA384_DIGEST_LENGTH / 8; n++) {
240
11.3M
            SHA_LONG64 t = c->h[n];
241
242
11.3M
            *(md++) = (unsigned char)(t >> 56);
243
11.3M
            *(md++) = (unsigned char)(t >> 48);
244
11.3M
            *(md++) = (unsigned char)(t >> 40);
245
11.3M
            *(md++) = (unsigned char)(t >> 32);
246
11.3M
            *(md++) = (unsigned char)(t >> 24);
247
11.3M
            *(md++) = (unsigned char)(t >> 16);
248
11.3M
            *(md++) = (unsigned char)(t >> 8);
249
11.3M
            *(md++) = (unsigned char)(t);
250
11.3M
        }
251
1.89M
        break;
252
18.4M
    case SHA512_DIGEST_LENGTH:
253
165M
        for (n = 0; n < SHA512_DIGEST_LENGTH / 8; n++) {
254
147M
            SHA_LONG64 t = c->h[n];
255
256
147M
            *(md++) = (unsigned char)(t >> 56);
257
147M
            *(md++) = (unsigned char)(t >> 48);
258
147M
            *(md++) = (unsigned char)(t >> 40);
259
147M
            *(md++) = (unsigned char)(t >> 32);
260
147M
            *(md++) = (unsigned char)(t >> 24);
261
147M
            *(md++) = (unsigned char)(t >> 16);
262
147M
            *(md++) = (unsigned char)(t >> 8);
263
147M
            *(md++) = (unsigned char)(t);
264
147M
        }
265
18.4M
        break;
266
    /* ... as well as make sure md_len is not abused. */
267
0
    default:
268
0
        return 0;
269
20.6M
    }
270
271
20.6M
    return 1;
272
20.6M
}
273
274
int SHA384_Final(unsigned char *md, SHA512_CTX *c)
275
2.36M
{
276
2.36M
    return SHA512_Final(md, c);
277
2.36M
}
278
279
int SHA512_Update(SHA512_CTX *c, const void *_data, size_t len)
280
76.8M
{
281
76.8M
    SHA_LONG64 l;
282
76.8M
    unsigned char *p = c->u.p;
283
76.8M
    const unsigned char *data = (const unsigned char *)_data;
284
285
76.8M
    if (len == 0)
286
0
        return 1;
287
288
76.8M
    l = (c->Nl + (((SHA_LONG64)len) << 3)) & U64(0xffffffffffffffff);
289
76.8M
    if (l < c->Nl)
290
0
        c->Nh++;
291
76.8M
    if (sizeof(len) >= 8)
292
76.8M
        c->Nh += (((SHA_LONG64)len) >> 61);
293
76.8M
    c->Nl = l;
294
295
76.8M
    if (c->num != 0) {
296
36.7M
        size_t n = sizeof(c->u) - c->num;
297
298
36.7M
        if (len < n) {
299
18.5M
            memcpy(p + c->num, data, len), c->num += (unsigned int)len;
300
18.5M
            return 1;
301
18.5M
        } else {
302
18.2M
            memcpy(p + c->num, data, n), c->num = 0;
303
18.2M
            len -= n, data += n;
304
18.2M
            sha512_block_data_order(c, p, 1);
305
18.2M
        }
306
36.7M
    }
307
308
58.2M
    if (len >= sizeof(c->u)) {
309
#ifndef SHA512_BLOCK_CAN_MANAGE_UNALIGNED_DATA
310
        if ((size_t)data % sizeof(c->u.d[0]) != 0)
311
            while (len >= sizeof(c->u))
312
                memcpy(p, data, sizeof(c->u)),
313
                    sha512_block_data_order(c, p, 1),
314
                    len -= sizeof(c->u), data += sizeof(c->u);
315
        else
316
#endif
317
1.66M
            sha512_block_data_order(c, data, len / sizeof(c->u)),
318
1.66M
                data += len, len %= sizeof(c->u), data -= len;
319
1.66M
    }
320
321
58.2M
    if (len != 0)
322
38.8M
        memcpy(p, data, len), c->num = (int)len;
323
324
58.2M
    return 1;
325
76.8M
}
326
327
int SHA384_Update(SHA512_CTX *c, const void *data, size_t len)
328
3.91M
{
329
3.91M
    return SHA512_Update(c, data, len);
330
3.91M
}
331
332
void SHA512_Transform(SHA512_CTX *c, const unsigned char *data)
333
111k
{
334
#ifndef SHA512_BLOCK_CAN_MANAGE_UNALIGNED_DATA
335
    if ((size_t)data % sizeof(c->u.d[0]) != 0)
336
        memcpy(c->u.p, data, sizeof(c->u.p)), data = c->u.p;
337
#endif
338
111k
    sha512_block_data_order(c, data, 1);
339
111k
}
340
341
#if !defined(SHA512_ASM) || defined(INCLUDE_C_SHA512)
342
static const SHA_LONG64 K512[80] = {
343
    U64(0x428a2f98d728ae22), U64(0x7137449123ef65cd),
344
    U64(0xb5c0fbcfec4d3b2f), U64(0xe9b5dba58189dbbc),
345
    U64(0x3956c25bf348b538), U64(0x59f111f1b605d019),
346
    U64(0x923f82a4af194f9b), U64(0xab1c5ed5da6d8118),
347
    U64(0xd807aa98a3030242), U64(0x12835b0145706fbe),
348
    U64(0x243185be4ee4b28c), U64(0x550c7dc3d5ffb4e2),
349
    U64(0x72be5d74f27b896f), U64(0x80deb1fe3b1696b1),
350
    U64(0x9bdc06a725c71235), U64(0xc19bf174cf692694),
351
    U64(0xe49b69c19ef14ad2), U64(0xefbe4786384f25e3),
352
    U64(0x0fc19dc68b8cd5b5), U64(0x240ca1cc77ac9c65),
353
    U64(0x2de92c6f592b0275), U64(0x4a7484aa6ea6e483),
354
    U64(0x5cb0a9dcbd41fbd4), U64(0x76f988da831153b5),
355
    U64(0x983e5152ee66dfab), U64(0xa831c66d2db43210),
356
    U64(0xb00327c898fb213f), U64(0xbf597fc7beef0ee4),
357
    U64(0xc6e00bf33da88fc2), U64(0xd5a79147930aa725),
358
    U64(0x06ca6351e003826f), U64(0x142929670a0e6e70),
359
    U64(0x27b70a8546d22ffc), U64(0x2e1b21385c26c926),
360
    U64(0x4d2c6dfc5ac42aed), U64(0x53380d139d95b3df),
361
    U64(0x650a73548baf63de), U64(0x766a0abb3c77b2a8),
362
    U64(0x81c2c92e47edaee6), U64(0x92722c851482353b),
363
    U64(0xa2bfe8a14cf10364), U64(0xa81a664bbc423001),
364
    U64(0xc24b8b70d0f89791), U64(0xc76c51a30654be30),
365
    U64(0xd192e819d6ef5218), U64(0xd69906245565a910),
366
    U64(0xf40e35855771202a), U64(0x106aa07032bbd1b8),
367
    U64(0x19a4c116b8d2d0c8), U64(0x1e376c085141ab53),
368
    U64(0x2748774cdf8eeb99), U64(0x34b0bcb5e19b48a8),
369
    U64(0x391c0cb3c5c95a63), U64(0x4ed8aa4ae3418acb),
370
    U64(0x5b9cca4f7763e373), U64(0x682e6ff3d6b2b8a3),
371
    U64(0x748f82ee5defb2fc), U64(0x78a5636f43172f60),
372
    U64(0x84c87814a1f0ab72), U64(0x8cc702081a6439ec),
373
    U64(0x90befffa23631e28), U64(0xa4506cebde82bde9),
374
    U64(0xbef9a3f7b2c67915), U64(0xc67178f2e372532b),
375
    U64(0xca273eceea26619c), U64(0xd186b8c721c0c207),
376
    U64(0xeada7dd6cde0eb1e), U64(0xf57d4f7fee6ed178),
377
    U64(0x06f067aa72176fba), U64(0x0a637dc5a2c898a6),
378
    U64(0x113f9804bef90dae), U64(0x1b710b35131c471b),
379
    U64(0x28db77f523047d84), U64(0x32caab7b40c72493),
380
    U64(0x3c9ebe0a15c9bebc), U64(0x431d67c49c100d4c),
381
    U64(0x4cc5d4becb3e42b6), U64(0x597f299cfc657e2a),
382
    U64(0x5fcb6fab3ad6faec), U64(0x6c44198c4a475817)
383
};
384
385
#ifndef PEDANTIC
386
#if defined(__GNUC__) && __GNUC__ >= 2 && !defined(OPENSSL_NO_ASM) && !defined(OPENSSL_NO_INLINE_ASM)
387
#if defined(__x86_64) || defined(__x86_64__)
388
#define ROTR(a, n) ({ SHA_LONG64 ret;             \
389
                                asm ("rorq %1,%0"       \
390
                                : "=r"(ret)             \
391
                                : "J"(n),"0"(a)         \
392
                                : "cc"); ret; })
393
#if !defined(B_ENDIAN)
394
#define PULL64(x) ({ SHA_LONG64 ret=*((const SHA_LONG64 *)(&(x)));  \
395
                                asm ("bswapq    %0"             \
396
                                : "=r"(ret)                     \
397
                                : "0"(ret)); ret; })
398
#endif
399
#elif (defined(__i386) || defined(__i386__)) && !defined(B_ENDIAN)
400
#if defined(I386_ONLY)
401
#define PULL64(x) ({ const unsigned int *p=(const unsigned int *)(&(x));\
402
                          unsigned int hi=p[0],lo=p[1];          \
403
                                asm("xchgb %%ah,%%al;xchgb %%dh,%%dl;"\
404
                                    "roll $16,%%eax; roll $16,%%edx; "\
405
                                    "xchgb %%ah,%%al;xchgb %%dh,%%dl;"\
406
                                : "=a"(lo),"=d"(hi)             \
407
                                : "0"(lo),"1"(hi) : "cc");      \
408
                                ((SHA_LONG64)hi)<<32|lo; })
409
#else
410
#define PULL64(x) ({ const unsigned int *p=(const unsigned int *)(&(x));\
411
                          unsigned int hi=p[0],lo=p[1];         \
412
                                asm ("bswapl %0; bswapl %1;"    \
413
                                : "=r"(lo),"=r"(hi)             \
414
                                : "0"(lo),"1"(hi));             \
415
                                ((SHA_LONG64)hi)<<32|lo; })
416
#endif
417
#elif (defined(_ARCH_PPC) && defined(__64BIT__)) || defined(_ARCH_PPC64)
418
#define ROTR(a, n) ({ SHA_LONG64 ret;             \
419
                                asm ("rotrdi %0,%1,%2"  \
420
                                : "=r"(ret)             \
421
                                : "r"(a),"K"(n)); ret; })
422
#elif defined(__aarch64__)
423
#define ROTR(a, n) ({ SHA_LONG64 ret;             \
424
                                asm ("ror %0,%1,%2"     \
425
                                : "=r"(ret)             \
426
                                : "r"(a),"I"(n)); ret; })
427
#if defined(__BYTE_ORDER__) && defined(__ORDER_LITTLE_ENDIAN__) && __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
428
#define PULL64(x) ({ SHA_LONG64 ret;                     \
429
                                asm ("rev       %0,%1"          \
430
                                : "=r"(ret)                     \
431
                                : "r"(*((const SHA_LONG64 *)(&(x))))); ret; })
432
#endif
433
#elif (defined(__riscv_zbkb) || defined(__riscv_zbb)) && __riscv_xlen == 32
434
#define PULL64(x) ({ SHA_LONG64 ret;                                        \
435
                        unsigned int *r = (unsigned int *)(&(ret));             \
436
                        const unsigned int *p = (const unsigned int *)(&(x));   \
437
                        asm ("rev8 %0, %1"                                      \
438
                        : "=r"(r[0])                                            \
439
                        : "r" (p[1]));                                          \
440
                        asm ("rev8 %0, %1"                                      \
441
                        : "=r"(r[1])                                            \
442
                        : "r" (p[0])); ret; })
443
#elif (defined(__riscv_zbkb) || defined(__riscv_zbb)) && __riscv_xlen == 64
444
#define PULL64(x) ({ SHA_LONG64 ret;    \
445
                        asm ("rev8 %0, %1"  \
446
                        : "=r"(ret)         \
447
                        : "r"(x)); ret; })
448
#endif
449
#if defined(__riscv_zknh) && __riscv_xlen == 32
450
#define Sigma0(x) ({ SHA_LONG64 ret; unsigned int *r = (unsigned int *)(&(ret));    \
451
                        const unsigned int *p = (const unsigned int *)(&(x));           \
452
                        asm ("sha512sum0r %0, %1, %2"                                   \
453
                        : "=r"(r[0])                                                    \
454
                        : "r" (p[0]), "r" (p[1]));                                      \
455
                        asm ("sha512sum0r %0, %2, %1"                                   \
456
                        : "=r"(r[1])                                                    \
457
                        : "r" (p[0]), "r" (p[1])); ret; })
458
#define Sigma1(x) ({ SHA_LONG64 ret; unsigned int *r = (unsigned int *)(&(ret));    \
459
                        const unsigned int *p = (const unsigned int *)(&(x));           \
460
                        asm ("sha512sum1r %0, %1, %2"                                   \
461
                        : "=r"(r[0])                                                    \
462
                        : "r" (p[0]), "r" (p[1]));                                      \
463
                        asm ("sha512sum1r %0, %2, %1"                                   \
464
                        : "=r"(r[1])                                                    \
465
                        : "r" (p[0]), "r" (p[1])); ret; })
466
#define sigma0(x) ({ SHA_LONG64 ret; unsigned int *r = (unsigned int *)(&(ret));    \
467
                        const unsigned int *p = (const unsigned int *)(&(x));           \
468
                        asm ("sha512sig0l %0, %1, %2"                                   \
469
                        : "=r"(r[0])                                                    \
470
                        : "r" (p[0]), "r" (p[1]));                                      \
471
                        asm ("sha512sig0h %0, %2, %1"                                   \
472
                        : "=r"(r[1])                                                    \
473
                        : "r" (p[0]), "r" (p[1])); ret; })
474
#define sigma1(x) ({ SHA_LONG64 ret; unsigned int *r = (unsigned int *)(&(ret));    \
475
                        const unsigned int *p = (const unsigned int *)(&(x));           \
476
                        asm ("sha512sig1l %0, %1, %2"                                   \
477
                        : "=r"(r[0])                                                    \
478
                        : "r" (p[0]), "r" (p[1]));                                      \
479
                        asm ("sha512sig1h %0, %2, %1"                                   \
480
                        : "=r"(r[1])                                                    \
481
                        : "r" (p[0]), "r" (p[1])); ret; })
482
#elif defined(__riscv_zknh) && __riscv_xlen == 64
483
#define Sigma0(x) ({ SHA_LONG64 ret;            \
484
                        asm ("sha512sum0 %0, %1"    \
485
                        : "=r"(ret)                 \
486
                        : "r"(x)); ret; })
487
#define Sigma1(x) ({ SHA_LONG64 ret;            \
488
                        asm ("sha512sum1 %0, %1"    \
489
                        : "=r"(ret)                 \
490
                        : "r"(x)); ret; })
491
#define sigma0(x) ({ SHA_LONG64 ret;            \
492
                        asm ("sha512sig0 %0, %1"    \
493
                        : "=r"(ret)                 \
494
                        : "r"(x)); ret; })
495
#define sigma1(x) ({ SHA_LONG64 ret;            \
496
                        asm ("sha512sig1 %0, %1"    \
497
                        : "=r"(ret)                 \
498
                        : "r"(x)); ret; })
499
#endif
500
#if (defined(__riscv_zbt) || defined(__riscv_zpn)) && __riscv_xlen == 32
501
#define Ch(x, y, z) ({  SHA_LONG64 ret; unsigned int *r = (unsigned int *)(&(ret));   \
502
                        const unsigned int *xp = (const unsigned int *)(&(x));          \
503
                        const unsigned int *yp = (const unsigned int *)(&(y));          \
504
                        const unsigned int *zp = (const unsigned int *)(&(z));          \
505
                        asm (".insn r4 0x33, 1, 0x3, %0, %2, %1, %3\n\t"                \
506
                        : "=r"(r[0])                                                    \
507
                        : "r"(xp[0]), "r"(yp[0]), "r"(zp[0]));                          \
508
                        asm (".insn r4 0x33, 1, 0x3, %0, %2, %1, %3\n\t"                \
509
                        : "=r"(r[1])                                                    \
510
                        : "r"(xp[1]), "r"(yp[1]), "r"(zp[1])); ret; })
511
#define Maj(x, y, z) ({ SHA_LONG64 ret; unsigned int *r = (unsigned int *)(&(ret));   \
512
                        const unsigned int *xp = (const unsigned int *)(&(x));          \
513
                        const unsigned int *yp = (const unsigned int *)(&(y));          \
514
                        const unsigned int *zp = (const unsigned int *)(&(z));          \
515
                        asm (".insn r4 0x33, 1, 0x3, %0, %2, %1, %3\n\t"                \
516
                        : "=r"(r[0])                                                    \
517
                        : "r"(xp[0]^zp[0]), "r"(yp[0]), "r"(zp[0]));                    \
518
                        asm (".insn r4 0x33, 1, 0x3, %0, %2, %1, %3\n\t"                \
519
                        : "=r"(r[1])                                                    \
520
                        : "r"(xp[1]^zp[1]), "r"(yp[1]), "r"(zp[1])); ret; })
521
#elif (defined(__riscv_zbt) || defined(__riscv_zpn)) && __riscv_xlen == 64
522
#define Ch(x, y, z) ({  SHA_LONG64 ret;                           \
523
                        asm (".insn r4 0x33, 1, 0x3, %0, %2, %1, %3"\
524
                        : "=r"(ret)                                 \
525
                        : "r"(x), "r"(y), "r"(z)); ret; })
526
#define Maj(x, y, z) ({ SHA_LONG64 ret;                           \
527
                        asm (".insn r4 0x33, 1, 0x3, %0, %2, %1, %3"\
528
                        : "=r"(ret)                                 \
529
                        : "r"(x^z), "r"(y), "r"(x)); ret; })
530
#endif
531
#elif defined(_MSC_VER)
532
#if defined(_WIN64) /* applies to both IA-64 and AMD64 */
533
#pragma intrinsic(_rotr64)
534
#define ROTR(a, n) _rotr64((a), n)
535
#endif
536
#if defined(_M_IX86) && !defined(OPENSSL_NO_ASM) && !defined(OPENSSL_NO_INLINE_ASM)
537
#if defined(I386_ONLY)
538
static SHA_LONG64 __fastcall __pull64be(const void *x)
539
{
540
    _asm mov edx, [ecx + 0] _asm mov eax, [ecx + 4] _asm xchg dh, dl _asm xchg ah, al _asm rol edx, 16 _asm rol eax, 16 _asm xchg dh, dl _asm xchg ah, al
541
}
542
#else
543
static SHA_LONG64 __fastcall __pull64be(const void *x) {
544
    _asm mov edx, [ecx + 0] _asm mov eax, [ecx + 4] _asm bswap edx _asm bswap eax
545
}
546
#endif
547
#define PULL64(x) __pull64be(&(x))
548
#endif
549
#endif
550
#endif
551
#ifndef PULL64
552
#define B(x, j) (((SHA_LONG64)(*(((const unsigned char *)(&x)) + j))) << ((7 - j) * 8))
553
#define PULL64(x) (B(x, 0) | B(x, 1) | B(x, 2) | B(x, 3) | B(x, 4) | B(x, 5) | B(x, 6) | B(x, 7))
554
#endif
555
#ifndef ROTR
556
#define ROTR(x, s) (((x) >> s) | (x) << (64 - s))
557
#endif
558
#ifndef Sigma0
559
#define Sigma0(x) (ROTR((x), 28) ^ ROTR((x), 34) ^ ROTR((x), 39))
560
#endif
561
#ifndef Sigma1
562
#define Sigma1(x) (ROTR((x), 14) ^ ROTR((x), 18) ^ ROTR((x), 41))
563
#endif
564
#ifndef sigma0
565
#define sigma0(x) (ROTR((x), 1) ^ ROTR((x), 8) ^ ((x) >> 7))
566
#endif
567
#ifndef sigma1
568
#define sigma1(x) (ROTR((x), 19) ^ ROTR((x), 61) ^ ((x) >> 6))
569
#endif
570
#ifndef Ch
571
#define Ch(x, y, z) (((x) & (y)) ^ ((~(x)) & (z)))
572
#endif
573
#ifndef Maj
574
#define Maj(x, y, z) (((x) & (y)) ^ ((x) & (z)) ^ ((y) & (z)))
575
#endif
576
577
#if defined(__i386) || defined(__i386__) || defined(_M_IX86)
578
/*
579
 * This code should give better results on 32-bit CPU with less than
580
 * ~24 registers, both size and performance wise...
581
 */
582
583
static void sha512_block_data_order(SHA512_CTX *ctx, const void *in,
584
    size_t num)
585
{
586
    const SHA_LONG64 *W = in;
587
    SHA_LONG64 A, E, T;
588
    SHA_LONG64 X[9 + 80], *F;
589
    int i;
590
591
    while (num--) {
592
593
        F = X + 80;
594
        A = ctx->h[0];
595
        F[1] = ctx->h[1];
596
        F[2] = ctx->h[2];
597
        F[3] = ctx->h[3];
598
        E = ctx->h[4];
599
        F[5] = ctx->h[5];
600
        F[6] = ctx->h[6];
601
        F[7] = ctx->h[7];
602
603
        for (i = 0; i < 16; i++, F--) {
604
#ifdef B_ENDIAN
605
            T = W[i];
606
#else
607
            T = PULL64(W[i]);
608
#endif
609
            F[0] = A;
610
            F[4] = E;
611
            F[8] = T;
612
            T += F[7] + Sigma1(E) + Ch(E, F[5], F[6]) + K512[i];
613
            E = F[3] + T;
614
            A = T + Sigma0(A) + Maj(A, F[1], F[2]);
615
        }
616
617
        for (; i < 80; i++, F--) {
618
            T = sigma0(F[8 + 16 - 1]);
619
            T += sigma1(F[8 + 16 - 14]);
620
            T += F[8 + 16] + F[8 + 16 - 9];
621
622
            F[0] = A;
623
            F[4] = E;
624
            F[8] = T;
625
            T += F[7] + Sigma1(E) + Ch(E, F[5], F[6]) + K512[i];
626
            E = F[3] + T;
627
            A = T + Sigma0(A) + Maj(A, F[1], F[2]);
628
        }
629
630
        ctx->h[0] += A;
631
        ctx->h[1] += F[1];
632
        ctx->h[2] += F[2];
633
        ctx->h[3] += F[3];
634
        ctx->h[4] += E;
635
        ctx->h[5] += F[5];
636
        ctx->h[6] += F[6];
637
        ctx->h[7] += F[7];
638
639
        W += SHA_LBLOCK;
640
    }
641
}
642
643
#elif defined(OPENSSL_SMALL_FOOTPRINT)
644
645
static void sha512_block_data_order(SHA512_CTX *ctx, const void *in,
646
    size_t num)
647
{
648
    const SHA_LONG64 *W = in;
649
    SHA_LONG64 a, b, c, d, e, f, g, h, s0, s1, T1, T2;
650
    SHA_LONG64 X[16];
651
    int i;
652
653
    while (num--) {
654
655
        a = ctx->h[0];
656
        b = ctx->h[1];
657
        c = ctx->h[2];
658
        d = ctx->h[3];
659
        e = ctx->h[4];
660
        f = ctx->h[5];
661
        g = ctx->h[6];
662
        h = ctx->h[7];
663
664
        for (i = 0; i < 16; i++) {
665
#ifdef B_ENDIAN
666
            T1 = X[i] = W[i];
667
#else
668
            T1 = X[i] = PULL64(W[i]);
669
#endif
670
            T1 += h + Sigma1(e) + Ch(e, f, g) + K512[i];
671
            T2 = Sigma0(a) + Maj(a, b, c);
672
            h = g;
673
            g = f;
674
            f = e;
675
            e = d + T1;
676
            d = c;
677
            c = b;
678
            b = a;
679
            a = T1 + T2;
680
        }
681
682
        for (; i < 80; i++) {
683
            s0 = X[(i + 1) & 0x0f];
684
            s0 = sigma0(s0);
685
            s1 = X[(i + 14) & 0x0f];
686
            s1 = sigma1(s1);
687
688
            T1 = X[i & 0xf] += s0 + s1 + X[(i + 9) & 0xf];
689
            T1 += h + Sigma1(e) + Ch(e, f, g) + K512[i];
690
            T2 = Sigma0(a) + Maj(a, b, c);
691
            h = g;
692
            g = f;
693
            f = e;
694
            e = d + T1;
695
            d = c;
696
            c = b;
697
            b = a;
698
            a = T1 + T2;
699
        }
700
701
        ctx->h[0] += a;
702
        ctx->h[1] += b;
703
        ctx->h[2] += c;
704
        ctx->h[3] += d;
705
        ctx->h[4] += e;
706
        ctx->h[5] += f;
707
        ctx->h[6] += g;
708
        ctx->h[7] += h;
709
710
        W += SHA_LBLOCK;
711
    }
712
}
713
714
#else
715
#define ROUND_00_15(i, a, b, c, d, e, f, g, h)       \
716
    do {                                             \
717
        T1 += h + Sigma1(e) + Ch(e, f, g) + K512[i]; \
718
        h = Sigma0(a) + Maj(a, b, c);                \
719
        d += T1;                                     \
720
        h += T1;                                     \
721
    } while (0)
722
723
#define ROUND_16_80(i, j, a, b, c, d, e, f, g, h, X)       \
724
    do {                                                   \
725
        s0 = X[(j + 1) & 0x0f];                            \
726
        s0 = sigma0(s0);                                   \
727
        s1 = X[(j + 14) & 0x0f];                           \
728
        s1 = sigma1(s1);                                   \
729
        T1 = X[(j) & 0x0f] += s0 + s1 + X[(j + 9) & 0x0f]; \
730
        ROUND_00_15(i + j, a, b, c, d, e, f, g, h);        \
731
    } while (0)
732
733
#ifdef INCLUDE_C_SHA512
734
void sha512_block_data_order_c(SHA512_CTX *ctx, const void *in, size_t num)
735
#else
736
static void sha512_block_data_order(SHA512_CTX *ctx, const void *in,
737
    size_t num)
738
#endif
739
{
740
    const SHA_LONG64 *W = in;
741
    SHA_LONG64 a, b, c, d, e, f, g, h, s0, s1, T1;
742
    SHA_LONG64 X[16];
743
    int i;
744
745
    while (num--) {
746
747
        a = ctx->h[0];
748
        b = ctx->h[1];
749
        c = ctx->h[2];
750
        d = ctx->h[3];
751
        e = ctx->h[4];
752
        f = ctx->h[5];
753
        g = ctx->h[6];
754
        h = ctx->h[7];
755
756
#ifdef B_ENDIAN
757
        T1 = X[0] = W[0];
758
        ROUND_00_15(0, a, b, c, d, e, f, g, h);
759
        T1 = X[1] = W[1];
760
        ROUND_00_15(1, h, a, b, c, d, e, f, g);
761
        T1 = X[2] = W[2];
762
        ROUND_00_15(2, g, h, a, b, c, d, e, f);
763
        T1 = X[3] = W[3];
764
        ROUND_00_15(3, f, g, h, a, b, c, d, e);
765
        T1 = X[4] = W[4];
766
        ROUND_00_15(4, e, f, g, h, a, b, c, d);
767
        T1 = X[5] = W[5];
768
        ROUND_00_15(5, d, e, f, g, h, a, b, c);
769
        T1 = X[6] = W[6];
770
        ROUND_00_15(6, c, d, e, f, g, h, a, b);
771
        T1 = X[7] = W[7];
772
        ROUND_00_15(7, b, c, d, e, f, g, h, a);
773
        T1 = X[8] = W[8];
774
        ROUND_00_15(8, a, b, c, d, e, f, g, h);
775
        T1 = X[9] = W[9];
776
        ROUND_00_15(9, h, a, b, c, d, e, f, g);
777
        T1 = X[10] = W[10];
778
        ROUND_00_15(10, g, h, a, b, c, d, e, f);
779
        T1 = X[11] = W[11];
780
        ROUND_00_15(11, f, g, h, a, b, c, d, e);
781
        T1 = X[12] = W[12];
782
        ROUND_00_15(12, e, f, g, h, a, b, c, d);
783
        T1 = X[13] = W[13];
784
        ROUND_00_15(13, d, e, f, g, h, a, b, c);
785
        T1 = X[14] = W[14];
786
        ROUND_00_15(14, c, d, e, f, g, h, a, b);
787
        T1 = X[15] = W[15];
788
        ROUND_00_15(15, b, c, d, e, f, g, h, a);
789
#else
790
        T1 = X[0] = PULL64(W[0]);
791
        ROUND_00_15(0, a, b, c, d, e, f, g, h);
792
        T1 = X[1] = PULL64(W[1]);
793
        ROUND_00_15(1, h, a, b, c, d, e, f, g);
794
        T1 = X[2] = PULL64(W[2]);
795
        ROUND_00_15(2, g, h, a, b, c, d, e, f);
796
        T1 = X[3] = PULL64(W[3]);
797
        ROUND_00_15(3, f, g, h, a, b, c, d, e);
798
        T1 = X[4] = PULL64(W[4]);
799
        ROUND_00_15(4, e, f, g, h, a, b, c, d);
800
        T1 = X[5] = PULL64(W[5]);
801
        ROUND_00_15(5, d, e, f, g, h, a, b, c);
802
        T1 = X[6] = PULL64(W[6]);
803
        ROUND_00_15(6, c, d, e, f, g, h, a, b);
804
        T1 = X[7] = PULL64(W[7]);
805
        ROUND_00_15(7, b, c, d, e, f, g, h, a);
806
        T1 = X[8] = PULL64(W[8]);
807
        ROUND_00_15(8, a, b, c, d, e, f, g, h);
808
        T1 = X[9] = PULL64(W[9]);
809
        ROUND_00_15(9, h, a, b, c, d, e, f, g);
810
        T1 = X[10] = PULL64(W[10]);
811
        ROUND_00_15(10, g, h, a, b, c, d, e, f);
812
        T1 = X[11] = PULL64(W[11]);
813
        ROUND_00_15(11, f, g, h, a, b, c, d, e);
814
        T1 = X[12] = PULL64(W[12]);
815
        ROUND_00_15(12, e, f, g, h, a, b, c, d);
816
        T1 = X[13] = PULL64(W[13]);
817
        ROUND_00_15(13, d, e, f, g, h, a, b, c);
818
        T1 = X[14] = PULL64(W[14]);
819
        ROUND_00_15(14, c, d, e, f, g, h, a, b);
820
        T1 = X[15] = PULL64(W[15]);
821
        ROUND_00_15(15, b, c, d, e, f, g, h, a);
822
#endif
823
824
        for (i = 16; i < 80; i += 16) {
825
            ROUND_16_80(i, 0, a, b, c, d, e, f, g, h, X);
826
            ROUND_16_80(i, 1, h, a, b, c, d, e, f, g, X);
827
            ROUND_16_80(i, 2, g, h, a, b, c, d, e, f, X);
828
            ROUND_16_80(i, 3, f, g, h, a, b, c, d, e, X);
829
            ROUND_16_80(i, 4, e, f, g, h, a, b, c, d, X);
830
            ROUND_16_80(i, 5, d, e, f, g, h, a, b, c, X);
831
            ROUND_16_80(i, 6, c, d, e, f, g, h, a, b, X);
832
            ROUND_16_80(i, 7, b, c, d, e, f, g, h, a, X);
833
            ROUND_16_80(i, 8, a, b, c, d, e, f, g, h, X);
834
            ROUND_16_80(i, 9, h, a, b, c, d, e, f, g, X);
835
            ROUND_16_80(i, 10, g, h, a, b, c, d, e, f, X);
836
            ROUND_16_80(i, 11, f, g, h, a, b, c, d, e, X);
837
            ROUND_16_80(i, 12, e, f, g, h, a, b, c, d, X);
838
            ROUND_16_80(i, 13, d, e, f, g, h, a, b, c, X);
839
            ROUND_16_80(i, 14, c, d, e, f, g, h, a, b, X);
840
            ROUND_16_80(i, 15, b, c, d, e, f, g, h, a, X);
841
        }
842
843
        ctx->h[0] += a;
844
        ctx->h[1] += b;
845
        ctx->h[2] += c;
846
        ctx->h[3] += d;
847
        ctx->h[4] += e;
848
        ctx->h[5] += f;
849
        ctx->h[6] += g;
850
        ctx->h[7] += h;
851
852
        W += SHA_LBLOCK;
853
    }
854
}
855
856
#endif
857
858
#endif /* SHA512_ASM */