1 | 1 |
new file mode 100644 |
... | ... |
@@ -0,0 +1,328 @@ |
1 |
+/* ------------------------------------------------------------------------- |
|
2 |
+ * Works when compiled for either 32-bit or 64-bit targets, optimized for |
|
3 |
+ * 64 bit. |
|
4 |
+ * |
|
5 |
+ * Canonical implementation of Init/Update/Finalize for SHA-3 byte input. |
|
6 |
+ * |
|
7 |
+ * SHA3-256, SHA3-384, SHA-512 are implemented. SHA-224 can easily be added. |
|
8 |
+ * |
|
9 |
+ * Based on code from http://keccak.noekeon.org/ . |
|
10 |
+ * |
|
11 |
+ * I place the code that I wrote into public domain, free to use. |
|
12 |
+ * |
|
13 |
+ * I would appreciate if you give credits to this work if you used it to |
|
14 |
+ * write or test * your code. |
|
15 |
+ * |
|
16 |
+ * Aug 2015. Andrey Jivsov. crypto@brainhub.org |
|
17 |
+ * ---------------------------------------------------------------------- */ |
|
18 |
+ |
|
19 |
+#include <stdio.h> |
|
20 |
+#include <stdint.h> |
|
21 |
+#include <string.h> |
|
22 |
+ |
|
23 |
+#include "sha3.h" |
|
24 |
+ |
|
25 |
+#define SHA3_ASSERT( x ) |
|
26 |
+#if defined(_MSC_VER) |
|
27 |
+#define SHA3_TRACE( format, ...) |
|
28 |
+#define SHA3_TRACE_BUF( format, buf, l, ...) |
|
29 |
+#else |
|
30 |
+#define SHA3_TRACE(format, args...) |
|
31 |
+#define SHA3_TRACE_BUF(format, buf, l, args...) |
|
32 |
+#endif |
|
33 |
+ |
|
34 |
+/* |
|
35 |
+ * This flag is used to configure "pure" Keccak, as opposed to NIST SHA3. |
|
36 |
+ */ |
|
37 |
+#define SHA3_USE_KECCAK_FLAG 0x80000000 |
|
38 |
+#define SHA3_CW(x) ((x) & (~SHA3_USE_KECCAK_FLAG)) |
|
39 |
+ |
|
40 |
+ |
|
41 |
+#if defined(_MSC_VER) |
|
42 |
+#define SHA3_CONST(x) x |
|
43 |
+#else |
|
44 |
+#define SHA3_CONST(x) x##L |
|
45 |
+#endif |
|
46 |
+ |
|
47 |
+#ifndef SHA3_ROTL64 |
|
48 |
+#define SHA3_ROTL64(x, y) \ |
|
49 |
+ (((x) << (y)) | ((x) >> ((sizeof(uint64_t)*8) - (y)))) |
|
50 |
+#endif |
|
51 |
+ |
|
52 |
+static const uint64_t keccakf_rndc[24] = { |
|
53 |
+ SHA3_CONST(0x0000000000000001UL), SHA3_CONST(0x0000000000008082UL), |
|
54 |
+ SHA3_CONST(0x800000000000808aUL), SHA3_CONST(0x8000000080008000UL), |
|
55 |
+ SHA3_CONST(0x000000000000808bUL), SHA3_CONST(0x0000000080000001UL), |
|
56 |
+ SHA3_CONST(0x8000000080008081UL), SHA3_CONST(0x8000000000008009UL), |
|
57 |
+ SHA3_CONST(0x000000000000008aUL), SHA3_CONST(0x0000000000000088UL), |
|
58 |
+ SHA3_CONST(0x0000000080008009UL), SHA3_CONST(0x000000008000000aUL), |
|
59 |
+ SHA3_CONST(0x000000008000808bUL), SHA3_CONST(0x800000000000008bUL), |
|
60 |
+ SHA3_CONST(0x8000000000008089UL), SHA3_CONST(0x8000000000008003UL), |
|
61 |
+ SHA3_CONST(0x8000000000008002UL), SHA3_CONST(0x8000000000000080UL), |
|
62 |
+ SHA3_CONST(0x000000000000800aUL), SHA3_CONST(0x800000008000000aUL), |
|
63 |
+ SHA3_CONST(0x8000000080008081UL), SHA3_CONST(0x8000000000008080UL), |
|
64 |
+ SHA3_CONST(0x0000000080000001UL), SHA3_CONST(0x8000000080008008UL) |
|
65 |
+}; |
|
66 |
+ |
|
67 |
+static const unsigned keccakf_rotc[24] = { |
|
68 |
+ 1, 3, 6, 10, 15, 21, 28, 36, 45, 55, 2, 14, 27, 41, 56, 8, 25, 43, 62, |
|
69 |
+ 18, 39, 61, 20, 44 |
|
70 |
+}; |
|
71 |
+ |
|
72 |
+static const unsigned keccakf_piln[24] = { |
|
73 |
+ 10, 7, 11, 17, 18, 3, 5, 16, 8, 21, 24, 4, 15, 23, 19, 13, 12, 2, 20, |
|
74 |
+ 14, 22, 9, 6, 1 |
|
75 |
+}; |
|
76 |
+ |
|
77 |
+/* generally called after SHA3_KECCAK_SPONGE_WORDS-ctx->capacityWords words |
|
78 |
+ * are XORed into the state s |
|
79 |
+ */ |
|
80 |
+static void |
|
81 |
+keccakf(uint64_t s[25]) |
|
82 |
+{ |
|
83 |
+ int i, j, round; |
|
84 |
+ uint64_t t, bc[5]; |
|
85 |
+#define KECCAK_ROUNDS 24 |
|
86 |
+ |
|
87 |
+ for(round = 0; round < KECCAK_ROUNDS; round++) { |
|
88 |
+ |
|
89 |
+ /* Theta */ |
|
90 |
+ for(i = 0; i < 5; i++) |
|
91 |
+ bc[i] = s[i] ^ s[i + 5] ^ s[i + 10] ^ s[i + 15] ^ s[i + 20]; |
|
92 |
+ |
|
93 |
+ for(i = 0; i < 5; i++) { |
|
94 |
+ t = bc[(i + 4) % 5] ^ SHA3_ROTL64(bc[(i + 1) % 5], 1); |
|
95 |
+ for(j = 0; j < 25; j += 5) |
|
96 |
+ s[j + i] ^= t; |
|
97 |
+ } |
|
98 |
+ |
|
99 |
+ /* Rho Pi */ |
|
100 |
+ t = s[1]; |
|
101 |
+ for(i = 0; i < 24; i++) { |
|
102 |
+ j = keccakf_piln[i]; |
|
103 |
+ bc[0] = s[j]; |
|
104 |
+ s[j] = SHA3_ROTL64(t, keccakf_rotc[i]); |
|
105 |
+ t = bc[0]; |
|
106 |
+ } |
|
107 |
+ |
|
108 |
+ /* Chi */ |
|
109 |
+ for(j = 0; j < 25; j += 5) { |
|
110 |
+ for(i = 0; i < 5; i++) |
|
111 |
+ bc[i] = s[j + i]; |
|
112 |
+ for(i = 0; i < 5; i++) |
|
113 |
+ s[j + i] ^= (~bc[(i + 1) % 5]) & bc[(i + 2) % 5]; |
|
114 |
+ } |
|
115 |
+ |
|
116 |
+ /* Iota */ |
|
117 |
+ s[0] ^= keccakf_rndc[round]; |
|
118 |
+ } |
|
119 |
+} |
|
120 |
+ |
|
121 |
+/* *************************** Public Inteface ************************ */ |
|
122 |
+ |
|
123 |
+/* For Init or Reset call these: */ |
|
124 |
+sha3_return_t |
|
125 |
+sha3_Init(void *priv, unsigned bitSize) { |
|
126 |
+ sha3_context *ctx = (sha3_context *) priv; |
|
127 |
+ if( bitSize != 256 && bitSize != 384 && bitSize != 512 ) |
|
128 |
+ return SHA3_RETURN_BAD_PARAMS; |
|
129 |
+ memset(ctx, 0, sizeof(*ctx)); |
|
130 |
+ ctx->capacityWords = 2 * bitSize / (8 * sizeof(uint64_t)); |
|
131 |
+ return SHA3_RETURN_OK; |
|
132 |
+} |
|
133 |
+ |
|
134 |
+void |
|
135 |
+sha3_Init256(void *priv) |
|
136 |
+{ |
|
137 |
+ sha3_Init(priv, 256); |
|
138 |
+} |
|
139 |
+ |
|
140 |
+void |
|
141 |
+sha3_Init384(void *priv) |
|
142 |
+{ |
|
143 |
+ sha3_Init(priv, 384); |
|
144 |
+} |
|
145 |
+ |
|
146 |
+void |
|
147 |
+sha3_Init512(void *priv) |
|
148 |
+{ |
|
149 |
+ sha3_Init(priv, 512); |
|
150 |
+} |
|
151 |
+ |
|
152 |
+enum SHA3_FLAGS |
|
153 |
+sha3_SetFlags(void *priv, enum SHA3_FLAGS flags) |
|
154 |
+{ |
|
155 |
+ sha3_context *ctx = (sha3_context *) priv; |
|
156 |
+ flags &= SHA3_FLAGS_KECCAK; |
|
157 |
+ ctx->capacityWords |= (flags == SHA3_FLAGS_KECCAK ? SHA3_USE_KECCAK_FLAG : 0); |
|
158 |
+ return flags; |
|
159 |
+} |
|
160 |
+ |
|
161 |
+ |
|
162 |
+void |
|
163 |
+sha3_Update(void *priv, void const *bufIn, size_t len) |
|
164 |
+{ |
|
165 |
+ sha3_context *ctx = (sha3_context *) priv; |
|
166 |
+ |
|
167 |
+ /* 0...7 -- how much is needed to have a word */ |
|
168 |
+ unsigned old_tail = (8 - ctx->byteIndex) & 7; |
|
169 |
+ |
|
170 |
+ size_t words; |
|
171 |
+ unsigned tail; |
|
172 |
+ size_t i; |
|
173 |
+ |
|
174 |
+ const uint8_t *buf = bufIn; |
|
175 |
+ |
|
176 |
+ SHA3_TRACE_BUF("called to update with:", buf, len); |
|
177 |
+ |
|
178 |
+ SHA3_ASSERT(ctx->byteIndex < 8); |
|
179 |
+ SHA3_ASSERT(ctx->wordIndex < sizeof(ctx->s) / sizeof(ctx->s[0])); |
|
180 |
+ |
|
181 |
+ if(len < old_tail) { /* have no complete word or haven't started |
|
182 |
+ * the word yet */ |
|
183 |
+ SHA3_TRACE("because %d<%d, store it and return", (unsigned)len, |
|
184 |
+ (unsigned)old_tail); |
|
185 |
+ /* endian-independent code follows: */ |
|
186 |
+ while (len--) |
|
187 |
+ ctx->saved |= (uint64_t) (*(buf++)) << ((ctx->byteIndex++) * 8); |
|
188 |
+ SHA3_ASSERT(ctx->byteIndex < 8); |
|
189 |
+ return; |
|
190 |
+ } |
|
191 |
+ |
|
192 |
+ if(old_tail) { /* will have one word to process */ |
|
193 |
+ SHA3_TRACE("completing one word with %d bytes", (unsigned)old_tail); |
|
194 |
+ /* endian-independent code follows: */ |
|
195 |
+ len -= old_tail; |
|
196 |
+ while (old_tail--) |
|
197 |
+ ctx->saved |= (uint64_t) (*(buf++)) << ((ctx->byteIndex++) * 8); |
|
198 |
+ |
|
199 |
+ /* now ready to add saved to the sponge */ |
|
200 |
+ ctx->s[ctx->wordIndex] ^= ctx->saved; |
|
201 |
+ SHA3_ASSERT(ctx->byteIndex == 8); |
|
202 |
+ ctx->byteIndex = 0; |
|
203 |
+ ctx->saved = 0; |
|
204 |
+ if(++ctx->wordIndex == |
|
205 |
+ (SHA3_KECCAK_SPONGE_WORDS - SHA3_CW(ctx->capacityWords))) { |
|
206 |
+ keccakf(ctx->s); |
|
207 |
+ ctx->wordIndex = 0; |
|
208 |
+ } |
|
209 |
+ } |
|
210 |
+ |
|
211 |
+ /* now work in full words directly from input */ |
|
212 |
+ |
|
213 |
+ SHA3_ASSERT(ctx->byteIndex == 0); |
|
214 |
+ |
|
215 |
+ words = len / sizeof(uint64_t); |
|
216 |
+ tail = len - words * sizeof(uint64_t); |
|
217 |
+ |
|
218 |
+ SHA3_TRACE("have %d full words to process", (unsigned)words); |
|
219 |
+ |
|
220 |
+ for(i = 0; i < words; i++, buf += sizeof(uint64_t)) { |
|
221 |
+ const uint64_t t = (uint64_t) (buf[0]) | |
|
222 |
+ ((uint64_t) (buf[1]) << 8 * 1) | |
|
223 |
+ ((uint64_t) (buf[2]) << 8 * 2) | |
|
224 |
+ ((uint64_t) (buf[3]) << 8 * 3) | |
|
225 |
+ ((uint64_t) (buf[4]) << 8 * 4) | |
|
226 |
+ ((uint64_t) (buf[5]) << 8 * 5) | |
|
227 |
+ ((uint64_t) (buf[6]) << 8 * 6) | |
|
228 |
+ ((uint64_t) (buf[7]) << 8 * 7); |
|
229 |
+#if defined(__x86_64__ ) || defined(__i386__) |
|
230 |
+ SHA3_ASSERT(memcmp(&t, buf, 8) == 0); |
|
231 |
+#endif |
|
232 |
+ ctx->s[ctx->wordIndex] ^= t; |
|
233 |
+ if(++ctx->wordIndex == |
|
234 |
+ (SHA3_KECCAK_SPONGE_WORDS - SHA3_CW(ctx->capacityWords))) { |
|
235 |
+ keccakf(ctx->s); |
|
236 |
+ ctx->wordIndex = 0; |
|
237 |
+ } |
|
238 |
+ } |
|
239 |
+ |
|
240 |
+ SHA3_TRACE("have %d bytes left to process, save them", (unsigned)tail); |
|
241 |
+ |
|
242 |
+ /* finally, save the partial word */ |
|
243 |
+ SHA3_ASSERT(ctx->byteIndex == 0 && tail < 8); |
|
244 |
+ while (tail--) { |
|
245 |
+ SHA3_TRACE("Store byte %02x '%c'", *buf, *buf); |
|
246 |
+ ctx->saved |= (uint64_t) (*(buf++)) << ((ctx->byteIndex++) * 8); |
|
247 |
+ } |
|
248 |
+ SHA3_ASSERT(ctx->byteIndex < 8); |
|
249 |
+ SHA3_TRACE("Have saved=0x%016" PRIx64 " at the end", ctx->saved); |
|
250 |
+} |
|
251 |
+ |
|
252 |
+/* This is simply the 'update' with the padding block. |
|
253 |
+ * The padding block is 0x01 || 0x00* || 0x80. First 0x01 and last 0x80 |
|
254 |
+ * bytes are always present, but they can be the same byte. |
|
255 |
+ */ |
|
256 |
+void const * |
|
257 |
+sha3_Finalize(void *priv) |
|
258 |
+{ |
|
259 |
+ sha3_context *ctx = (sha3_context *) priv; |
|
260 |
+ |
|
261 |
+ SHA3_TRACE("called with %d bytes in the buffer", ctx->byteIndex); |
|
262 |
+ |
|
263 |
+ /* Append 2-bit suffix 01, per SHA-3 spec. Instead of 1 for padding we |
|
264 |
+ * use 1<<2 below. The 0x02 below corresponds to the suffix 01. |
|
265 |
+ * Overall, we feed 0, then 1, and finally 1 to start padding. Without |
|
266 |
+ * M || 01, we would simply use 1 to start padding. */ |
|
267 |
+ |
|
268 |
+ uint64_t t; |
|
269 |
+ |
|
270 |
+ if( ctx->capacityWords & SHA3_USE_KECCAK_FLAG ) { |
|
271 |
+ /* Keccak version */ |
|
272 |
+ t = (uint64_t)(((uint64_t) 1) << (ctx->byteIndex * 8)); |
|
273 |
+ } |
|
274 |
+ else { |
|
275 |
+ /* SHA3 version */ |
|
276 |
+ t = (uint64_t)(((uint64_t)(0x02 | (1 << 2))) << ((ctx->byteIndex) * 8)); |
|
277 |
+ } |
|
278 |
+ |
|
279 |
+ ctx->s[ctx->wordIndex] ^= ctx->saved ^ t; |
|
280 |
+ |
|
281 |
+ ctx->s[SHA3_KECCAK_SPONGE_WORDS - SHA3_CW(ctx->capacityWords) - 1] ^= |
|
282 |
+ SHA3_CONST(0x8000000000000000UL); |
|
283 |
+ keccakf(ctx->s); |
|
284 |
+ |
|
285 |
+ /* Return first bytes of the ctx->s. This conversion is not needed for |
|
286 |
+ * little-endian platforms e.g. wrap with #if !defined(__BYTE_ORDER__) |
|
287 |
+ * || !defined(__ORDER_LITTLE_ENDIAN__) || __BYTE_ORDER__!=__ORDER_LITTLE_ENDIAN__ |
|
288 |
+ * ... the conversion below ... |
|
289 |
+ * #endif */ |
|
290 |
+ { |
|
291 |
+ unsigned i; |
|
292 |
+ for(i = 0; i < SHA3_KECCAK_SPONGE_WORDS; i++) { |
|
293 |
+ const unsigned t1 = (uint32_t) ctx->s[i]; |
|
294 |
+ const unsigned t2 = (uint32_t) ((ctx->s[i] >> 16) >> 16); |
|
295 |
+ ctx->sb[i * 8 + 0] = (uint8_t) (t1); |
|
296 |
+ ctx->sb[i * 8 + 1] = (uint8_t) (t1 >> 8); |
|
297 |
+ ctx->sb[i * 8 + 2] = (uint8_t) (t1 >> 16); |
|
298 |
+ ctx->sb[i * 8 + 3] = (uint8_t) (t1 >> 24); |
|
299 |
+ ctx->sb[i * 8 + 4] = (uint8_t) (t2); |
|
300 |
+ ctx->sb[i * 8 + 5] = (uint8_t) (t2 >> 8); |
|
301 |
+ ctx->sb[i * 8 + 6] = (uint8_t) (t2 >> 16); |
|
302 |
+ ctx->sb[i * 8 + 7] = (uint8_t) (t2 >> 24); |
|
303 |
+ } |
|
304 |
+ } |
|
305 |
+ |
|
306 |
+ SHA3_TRACE_BUF("Hash: (first 32 bytes)", ctx->sb, 256 / 8); |
|
307 |
+ |
|
308 |
+ return (ctx->sb); |
|
309 |
+} |
|
310 |
+ |
|
311 |
+sha3_return_t sha3_HashBuffer( unsigned bitSize, enum SHA3_FLAGS flags, const void *in, unsigned inBytes, void *out, unsigned outBytes ) { |
|
312 |
+ sha3_return_t err; |
|
313 |
+ sha3_context c; |
|
314 |
+ |
|
315 |
+ err = sha3_Init(&c, bitSize); |
|
316 |
+ if( err != SHA3_RETURN_OK ) |
|
317 |
+ return err; |
|
318 |
+ if( sha3_SetFlags(&c, flags) != flags ) { |
|
319 |
+ return SHA3_RETURN_BAD_PARAMS; |
|
320 |
+ } |
|
321 |
+ sha3_Update(&c, in, inBytes); |
|
322 |
+ const void *h = sha3_Finalize(&c); |
|
323 |
+ |
|
324 |
+ if(outBytes > bitSize/8) |
|
325 |
+ outBytes = bitSize/8; |
|
326 |
+ memcpy(out, h, outBytes); |
|
327 |
+ return SHA3_RETURN_OK; |
|
328 |
+} |