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P2P Digital Currency
sph_sha512.c
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1 /* $Id: sha2big.c 216 2010-06-08 09:46:57Z tp $ */
2 /*
3  * SHA-384 / SHA-512 implementation.
4  *
5  * ==========================(LICENSE BEGIN)============================
6  *
7  * Copyright (c) 2007-2010 Projet RNRT SAPHIR
8  *
9  * Permission is hereby granted, free of charge, to any person obtaining
10  * a copy of this software and associated documentation files (the
11  * "Software"), to deal in the Software without restriction, including
12  * without limitation the rights to use, copy, modify, merge, publish,
13  * distribute, sublicense, and/or sell copies of the Software, and to
14  * permit persons to whom the Software is furnished to do so, subject to
15  * the following conditions:
16  *
17  * The above copyright notice and this permission notice shall be
18  * included in all copies or substantial portions of the Software.
19  *
20  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
21  * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
22  * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.
23  * IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY
24  * CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT,
25  * TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE
26  * SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
27  *
28  * ===========================(LICENSE END)=============================
29  *
30  * @author Thomas Pornin <thomas.pornin@cryptolog.com>
31  */
32 
33 #include <stddef.h>
34 #include <string.h>
35 
36 #include "sph_sha2.h"
37 
38 #if SPH_64
39 
40 #define CH(X, Y, Z) ((((Y) ^ (Z)) & (X)) ^ (Z))
41 #define MAJ(X, Y, Z) (((X) & (Y)) | (((X) | (Y)) & (Z)))
42 
43 #define ROTR64 SPH_ROTR64
44 
45 #define BSG5_0(x) (ROTR64(x, 28) ^ ROTR64(x, 34) ^ ROTR64(x, 39))
46 #define BSG5_1(x) (ROTR64(x, 14) ^ ROTR64(x, 18) ^ ROTR64(x, 41))
47 #define SSG5_0(x) (ROTR64(x, 1) ^ ROTR64(x, 8) ^ SPH_T64((x) >> 7))
48 #define SSG5_1(x) (ROTR64(x, 19) ^ ROTR64(x, 61) ^ SPH_T64((x) >> 6))
49 
50 static const sph_u64 K512[80] = {
51  SPH_C64(0x428A2F98D728AE22), SPH_C64(0x7137449123EF65CD),
52  SPH_C64(0xB5C0FBCFEC4D3B2F), SPH_C64(0xE9B5DBA58189DBBC),
53  SPH_C64(0x3956C25BF348B538), SPH_C64(0x59F111F1B605D019),
54  SPH_C64(0x923F82A4AF194F9B), SPH_C64(0xAB1C5ED5DA6D8118),
55  SPH_C64(0xD807AA98A3030242), SPH_C64(0x12835B0145706FBE),
56  SPH_C64(0x243185BE4EE4B28C), SPH_C64(0x550C7DC3D5FFB4E2),
57  SPH_C64(0x72BE5D74F27B896F), SPH_C64(0x80DEB1FE3B1696B1),
58  SPH_C64(0x9BDC06A725C71235), SPH_C64(0xC19BF174CF692694),
59  SPH_C64(0xE49B69C19EF14AD2), SPH_C64(0xEFBE4786384F25E3),
60  SPH_C64(0x0FC19DC68B8CD5B5), SPH_C64(0x240CA1CC77AC9C65),
61  SPH_C64(0x2DE92C6F592B0275), SPH_C64(0x4A7484AA6EA6E483),
62  SPH_C64(0x5CB0A9DCBD41FBD4), SPH_C64(0x76F988DA831153B5),
63  SPH_C64(0x983E5152EE66DFAB), SPH_C64(0xA831C66D2DB43210),
64  SPH_C64(0xB00327C898FB213F), SPH_C64(0xBF597FC7BEEF0EE4),
65  SPH_C64(0xC6E00BF33DA88FC2), SPH_C64(0xD5A79147930AA725),
66  SPH_C64(0x06CA6351E003826F), SPH_C64(0x142929670A0E6E70),
67  SPH_C64(0x27B70A8546D22FFC), SPH_C64(0x2E1B21385C26C926),
68  SPH_C64(0x4D2C6DFC5AC42AED), SPH_C64(0x53380D139D95B3DF),
69  SPH_C64(0x650A73548BAF63DE), SPH_C64(0x766A0ABB3C77B2A8),
70  SPH_C64(0x81C2C92E47EDAEE6), SPH_C64(0x92722C851482353B),
71  SPH_C64(0xA2BFE8A14CF10364), SPH_C64(0xA81A664BBC423001),
72  SPH_C64(0xC24B8B70D0F89791), SPH_C64(0xC76C51A30654BE30),
73  SPH_C64(0xD192E819D6EF5218), SPH_C64(0xD69906245565A910),
74  SPH_C64(0xF40E35855771202A), SPH_C64(0x106AA07032BBD1B8),
75  SPH_C64(0x19A4C116B8D2D0C8), SPH_C64(0x1E376C085141AB53),
76  SPH_C64(0x2748774CDF8EEB99), SPH_C64(0x34B0BCB5E19B48A8),
77  SPH_C64(0x391C0CB3C5C95A63), SPH_C64(0x4ED8AA4AE3418ACB),
78  SPH_C64(0x5B9CCA4F7763E373), SPH_C64(0x682E6FF3D6B2B8A3),
79  SPH_C64(0x748F82EE5DEFB2FC), SPH_C64(0x78A5636F43172F60),
80  SPH_C64(0x84C87814A1F0AB72), SPH_C64(0x8CC702081A6439EC),
81  SPH_C64(0x90BEFFFA23631E28), SPH_C64(0xA4506CEBDE82BDE9),
82  SPH_C64(0xBEF9A3F7B2C67915), SPH_C64(0xC67178F2E372532B),
83  SPH_C64(0xCA273ECEEA26619C), SPH_C64(0xD186B8C721C0C207),
84  SPH_C64(0xEADA7DD6CDE0EB1E), SPH_C64(0xF57D4F7FEE6ED178),
85  SPH_C64(0x06F067AA72176FBA), SPH_C64(0x0A637DC5A2C898A6),
86  SPH_C64(0x113F9804BEF90DAE), SPH_C64(0x1B710B35131C471B),
87  SPH_C64(0x28DB77F523047D84), SPH_C64(0x32CAAB7B40C72493),
88  SPH_C64(0x3C9EBE0A15C9BEBC), SPH_C64(0x431D67C49C100D4C),
89  SPH_C64(0x4CC5D4BECB3E42B6), SPH_C64(0x597F299CFC657E2A),
90  SPH_C64(0x5FCB6FAB3AD6FAEC), SPH_C64(0x6C44198C4A475817)
91 };
92 
93 static const sph_u64 H384[8] = {
94  SPH_C64(0xCBBB9D5DC1059ED8), SPH_C64(0x629A292A367CD507),
95  SPH_C64(0x9159015A3070DD17), SPH_C64(0x152FECD8F70E5939),
96  SPH_C64(0x67332667FFC00B31), SPH_C64(0x8EB44A8768581511),
97  SPH_C64(0xDB0C2E0D64F98FA7), SPH_C64(0x47B5481DBEFA4FA4)
98 };
99 
100 static const sph_u64 H512[8] = {
101  SPH_C64(0x6A09E667F3BCC908), SPH_C64(0xBB67AE8584CAA73B),
102  SPH_C64(0x3C6EF372FE94F82B), SPH_C64(0xA54FF53A5F1D36F1),
103  SPH_C64(0x510E527FADE682D1), SPH_C64(0x9B05688C2B3E6C1F),
104  SPH_C64(0x1F83D9ABFB41BD6B), SPH_C64(0x5BE0CD19137E2179)
105 };
106 
107 /*
108  * This macro defines the body for a SHA-384 / SHA-512 compression function
109  * implementation. The "in" parameter should evaluate, when applied to a
110  * numerical input parameter from 0 to 15, to an expression which yields
111  * the corresponding input block. The "r" parameter should evaluate to
112  * an array or pointer expression designating the array of 8 words which
113  * contains the input and output of the compression function.
114  *
115  * SHA-512 is hard for the compiler. If the loop is completely unrolled,
116  * then the code will be quite huge (possibly more than 100 kB), and the
117  * performance will be degraded due to cache misses on the code. We
118  * unroll only eight steps, which avoids all needless copies when
119  * 64-bit registers are swapped.
120  */
121 
122 #define SHA3_STEP(A, B, C, D, E, F, G, H, i) do { \
123  sph_u64 T1, T2; \
124  T1 = SPH_T64(H + BSG5_1(E) + CH(E, F, G) + K512[i] + W[i]); \
125  T2 = SPH_T64(BSG5_0(A) + MAJ(A, B, C)); \
126  D = SPH_T64(D + T1); \
127  H = SPH_T64(T1 + T2); \
128  } while (0)
129 
130 #define SHA3_ROUND_BODY(in, r) do { \
131  int i; \
132  sph_u64 A, B, C, D, E, F, G, H; \
133  sph_u64 W[80]; \
134  \
135  for (i = 0; i < 16; i ++) \
136  W[i] = in(i); \
137  for (i = 16; i < 80; i ++) \
138  W[i] = SPH_T64(SSG5_1(W[i - 2]) + W[i - 7] \
139  + SSG5_0(W[i - 15]) + W[i - 16]); \
140  A = (r)[0]; \
141  B = (r)[1]; \
142  C = (r)[2]; \
143  D = (r)[3]; \
144  E = (r)[4]; \
145  F = (r)[5]; \
146  G = (r)[6]; \
147  H = (r)[7]; \
148  for (i = 0; i < 80; i += 8) { \
149  SHA3_STEP(A, B, C, D, E, F, G, H, i + 0); \
150  SHA3_STEP(H, A, B, C, D, E, F, G, i + 1); \
151  SHA3_STEP(G, H, A, B, C, D, E, F, i + 2); \
152  SHA3_STEP(F, G, H, A, B, C, D, E, i + 3); \
153  SHA3_STEP(E, F, G, H, A, B, C, D, i + 4); \
154  SHA3_STEP(D, E, F, G, H, A, B, C, i + 5); \
155  SHA3_STEP(C, D, E, F, G, H, A, B, i + 6); \
156  SHA3_STEP(B, C, D, E, F, G, H, A, i + 7); \
157  } \
158  (r)[0] = SPH_T64((r)[0] + A); \
159  (r)[1] = SPH_T64((r)[1] + B); \
160  (r)[2] = SPH_T64((r)[2] + C); \
161  (r)[3] = SPH_T64((r)[3] + D); \
162  (r)[4] = SPH_T64((r)[4] + E); \
163  (r)[5] = SPH_T64((r)[5] + F); \
164  (r)[6] = SPH_T64((r)[6] + G); \
165  (r)[7] = SPH_T64((r)[7] + H); \
166  } while (0)
167 
168 /*
169  * One round of SHA-384 / SHA-512. The data must be aligned for 64-bit access.
170  */
171 static void
172 sha3_round(const unsigned char *data, sph_u64 r[8])
173 {
174 #define SHA3_IN(x) sph_dec64be_aligned(data + (8 * (x)))
175  SHA3_ROUND_BODY(SHA3_IN, r);
176 #undef SHA3_IN
177 }
178 
179 /* see sph_sha3.h */
180 void
181 sph_sha384_init(void *cc)
182 {
183  sph_sha384_context *sc;
184 
185  sc = cc;
186  memcpy(sc->val, H384, sizeof H384);
187  sc->count = 0;
188 }
189 
190 /* see sph_sha3.h */
191 void
192 sph_sha512_init(void *cc)
193 {
194  sph_sha512_context *sc;
195 
196  sc = cc;
197  memcpy(sc->val, H512, sizeof H512);
198  sc->count = 0;
199 }
200 
201 #define RFUN sha3_round
202 #define HASH sha384
203 #define BE64 1
204 #include "md_helper.c"
205 
206 /* see sph_sha3.h */
207 void
208 sph_sha384_close(void *cc, void *dst)
209 {
210  sha384_close(cc, dst, 6);
211  sph_sha384_init(cc);
212 }
213 
214 /* see sph_sha3.h */
215 void
216 sph_sha384_addbits_and_close(void *cc, unsigned ub, unsigned n, void *dst)
217 {
218  sha384_addbits_and_close(cc, ub, n, dst, 6);
219  sph_sha384_init(cc);
220 }
221 
222 /* see sph_sha3.h */
223 void
224 sph_sha512_close(void *cc, void *dst)
225 {
226  sha384_close(cc, dst, 8);
227  sph_sha512_init(cc);
228 }
229 
230 /* see sph_sha3.h */
231 void
232 sph_sha512_addbits_and_close(void *cc, unsigned ub, unsigned n, void *dst)
233 {
234  sha384_addbits_and_close(cc, ub, n, dst, 8);
235  sph_sha512_init(cc);
236 }
237 
238 /* see sph_sha3.h */
239 void
240 sph_sha384_comp(const sph_u64 msg[16], sph_u64 val[8])
241 {
242 #define SHA3_IN(x) msg[x]
243  SHA3_ROUND_BODY(SHA3_IN, val);
244 #undef SHA3_IN
245 }
246 
247 #endif
SHA-224, SHA-256, SHA-384 and SHA-512 interface.
void * memcpy(void *a, const void *b, size_t c)