/src/gnutls/lib/accelerated/x86/sha-x86-ssse3.c
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1  |  | /*  | 
2  |  |  * Copyright (C) 2011-2012 Free Software Foundation, Inc.  | 
3  |  |  *  | 
4  |  |  * Author: Nikos Mavrogiannopoulos  | 
5  |  |  *  | 
6  |  |  * This file is part of GnuTLS.  | 
7  |  |  *  | 
8  |  |  * The GnuTLS is free software; you can redistribute it and/or  | 
9  |  |  * modify it under the terms of the GNU Lesser General Public License  | 
10  |  |  * as published by the Free Software Foundation; either version 2.1 of  | 
11  |  |  * the License, or (at your option) any later version.  | 
12  |  |  *  | 
13  |  |  * This library is distributed in the hope that it will be useful, but  | 
14  |  |  * WITHOUT ANY WARRANTY; without even the implied warranty of  | 
15  |  |  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU  | 
16  |  |  * Lesser General Public License for more details.  | 
17  |  |  *  | 
18  |  |  * You should have received a copy of the GNU Lesser General Public License  | 
19  |  |  * along with this program.  If not, see <https://www.gnu.org/licenses/>  | 
20  |  |  *  | 
21  |  |  */  | 
22  |  |  | 
23  |  | #include "errors.h"  | 
24  |  | #include "gnutls_int.h"  | 
25  |  | #include <gnutls/crypto.h>  | 
26  |  | #include "errors.h"  | 
27  |  | #include "aes-x86.h"  | 
28  |  | #include <nettle/sha.h>  | 
29  |  | #include <nettle/macros.h>  | 
30  |  | #include <nettle/nettle-meta.h>  | 
31  |  | #include "sha-x86.h"  | 
32  |  | #include "x86-common.h"  | 
33  |  |  | 
34  |  | void sha1_block_data_order(void *c, const void *p, size_t len);  | 
35  |  | void sha256_block_data_order(void *c, const void *p, size_t len);  | 
36  |  | void sha512_block_data_order(void *c, const void *p, size_t len);  | 
37  |  |  | 
38  |  | typedef void (*update_func)(void *, size_t, const uint8_t *);  | 
39  |  | typedef void (*digest_func)(void *, size_t, uint8_t *);  | 
40  |  | typedef void (*set_key_func)(void *, size_t, const uint8_t *);  | 
41  |  | typedef void (*init_func)(void *);  | 
42  |  |  | 
43  |  | struct x86_hash_ctx { | 
44  |  |   union { | 
45  |  |     struct sha1_ctx sha1;  | 
46  |  |     struct sha224_ctx sha224;  | 
47  |  |     struct sha256_ctx sha256;  | 
48  |  |     struct sha384_ctx sha384;  | 
49  |  |     struct sha512_ctx sha512;  | 
50  |  |   } ctx;  | 
51  |  |   void *ctx_ptr;  | 
52  |  |   gnutls_digest_algorithm_t algo;  | 
53  |  |   size_t length;  | 
54  |  |   update_func update;  | 
55  |  |   digest_func digest;  | 
56  |  |   init_func init;  | 
57  |  | };  | 
58  |  |  | 
59  |  | static int wrap_x86_hash_update(void *_ctx, const void *text, size_t textsize)  | 
60  | 0  | { | 
61  | 0  |   struct x86_hash_ctx *ctx = _ctx;  | 
62  |  | 
  | 
63  | 0  |   ctx->update(ctx->ctx_ptr, textsize, text);  | 
64  |  | 
  | 
65  | 0  |   return GNUTLS_E_SUCCESS;  | 
66  | 0  | }  | 
67  |  |  | 
68  |  | static void wrap_x86_hash_deinit(void *hd)  | 
69  | 0  | { | 
70  | 0  |   gnutls_free(hd);  | 
71  | 0  | }  | 
72  |  |  | 
73  |  | void x86_sha1_update(struct sha1_ctx *ctx, size_t length, const uint8_t *data)  | 
74  | 0  | { | 
75  | 0  |   struct { | 
76  | 0  |     uint32_t h0, h1, h2, h3, h4;  | 
77  | 0  |     uint32_t Nl, Nh;  | 
78  | 0  |     uint32_t data[16];  | 
79  | 0  |     unsigned int num;  | 
80  | 0  |   } octx;  | 
81  | 0  |   size_t res;  | 
82  | 0  |   unsigned t2, i;  | 
83  |  | 
  | 
84  | 0  |   if ((res = ctx->index)) { | 
85  | 0  |     res = SHA1_DATA_SIZE - res;  | 
86  | 0  |     if (length < res)  | 
87  | 0  |       res = length;  | 
88  | 0  |     sha1_update(ctx, res, data);  | 
89  | 0  |     data += res;  | 
90  | 0  |     length -= res;  | 
91  | 0  |   }  | 
92  |  | 
  | 
93  | 0  |   octx.h0 = ctx->state[0];  | 
94  | 0  |   octx.h1 = ctx->state[1];  | 
95  | 0  |   octx.h2 = ctx->state[2];  | 
96  | 0  |   octx.h3 = ctx->state[3];  | 
97  | 0  |   octx.h4 = ctx->state[4];  | 
98  |  | 
  | 
99  | 0  |   memcpy(octx.data, ctx->block, SHA1_DATA_SIZE);  | 
100  | 0  |   octx.num = ctx->index;  | 
101  |  | 
  | 
102  | 0  |   res = length % SHA1_DATA_SIZE;  | 
103  | 0  |   length -= res;  | 
104  |  | 
  | 
105  | 0  |   if (length > 0) { | 
106  | 0  |     t2 = length / SHA1_DATA_SIZE;  | 
107  |  | 
  | 
108  | 0  |     sha1_block_data_order(&octx, data, t2);  | 
109  |  | 
  | 
110  | 0  |     for (i = 0; i < t2; i++)  | 
111  | 0  |       ctx->count++;  | 
112  | 0  |     data += length;  | 
113  | 0  |   }  | 
114  |  | 
  | 
115  | 0  |   ctx->state[0] = octx.h0;  | 
116  | 0  |   ctx->state[1] = octx.h1;  | 
117  | 0  |   ctx->state[2] = octx.h2;  | 
118  | 0  |   ctx->state[3] = octx.h3;  | 
119  | 0  |   ctx->state[4] = octx.h4;  | 
120  |  | 
  | 
121  | 0  |   memcpy(ctx->block, octx.data, octx.num);  | 
122  | 0  |   ctx->index = octx.num;  | 
123  |  | 
  | 
124  | 0  |   if (res > 0) { | 
125  | 0  |     sha1_update(ctx, res, data);  | 
126  | 0  |   }  | 
127  | 0  | }  | 
128  |  |  | 
129  |  | void x86_sha256_update(struct sha256_ctx *ctx, size_t length,  | 
130  |  |            const uint8_t *data)  | 
131  | 0  | { | 
132  | 0  |   struct { | 
133  | 0  |     uint32_t h[8];  | 
134  | 0  |     uint32_t Nl, Nh;  | 
135  | 0  |     uint32_t data[16];  | 
136  | 0  |     unsigned int num;  | 
137  | 0  |     unsigned md_len;  | 
138  | 0  |   } octx;  | 
139  | 0  |   size_t res;  | 
140  | 0  |   unsigned t2, i;  | 
141  |  | 
  | 
142  | 0  |   if ((res = ctx->index)) { | 
143  | 0  |     res = SHA256_DATA_SIZE - res;  | 
144  | 0  |     if (length < res)  | 
145  | 0  |       res = length;  | 
146  | 0  |     sha256_update(ctx, res, data);  | 
147  | 0  |     data += res;  | 
148  | 0  |     length -= res;  | 
149  | 0  |   }  | 
150  |  | 
  | 
151  | 0  |   memcpy(octx.h, ctx->state, sizeof(octx.h));  | 
152  | 0  |   memcpy(octx.data, ctx->block, SHA256_DATA_SIZE);  | 
153  | 0  |   octx.num = ctx->index;  | 
154  |  | 
  | 
155  | 0  |   res = length % SHA256_DATA_SIZE;  | 
156  | 0  |   length -= res;  | 
157  |  | 
  | 
158  | 0  |   if (length > 0) { | 
159  | 0  |     t2 = length / SHA1_DATA_SIZE;  | 
160  | 0  |     sha256_block_data_order(&octx, data, t2);  | 
161  |  | 
  | 
162  | 0  |     for (i = 0; i < t2; i++)  | 
163  | 0  |       ctx->count++;  | 
164  | 0  |     data += length;  | 
165  | 0  |   }  | 
166  |  | 
  | 
167  | 0  |   memcpy(ctx->state, octx.h, sizeof(octx.h));  | 
168  |  | 
  | 
169  | 0  |   memcpy(ctx->block, octx.data, octx.num);  | 
170  | 0  |   ctx->index = octx.num;  | 
171  |  | 
  | 
172  | 0  |   if (res > 0) { | 
173  | 0  |     sha256_update(ctx, res, data);  | 
174  | 0  |   }  | 
175  | 0  | }  | 
176  |  |  | 
177  |  | void x86_sha512_update(struct sha512_ctx *ctx, size_t length,  | 
178  |  |            const uint8_t *data)  | 
179  | 0  | { | 
180  | 0  |   struct { | 
181  | 0  |     uint64_t h[8];  | 
182  | 0  |     uint64_t Nl, Nh;  | 
183  | 0  |     union { | 
184  | 0  |       uint64_t d[16];  | 
185  | 0  |       uint8_t p[16 * 8];  | 
186  | 0  |     } u;  | 
187  | 0  |     unsigned int num;  | 
188  | 0  |     unsigned md_len;  | 
189  | 0  |   } octx;  | 
190  | 0  |   size_t res;  | 
191  | 0  |   unsigned t2, i;  | 
192  |  | 
  | 
193  | 0  |   if ((res = ctx->index)) { | 
194  | 0  |     res = SHA512_DATA_SIZE - res;  | 
195  | 0  |     if (length < res)  | 
196  | 0  |       res = length;  | 
197  | 0  |     sha512_update(ctx, res, data);  | 
198  | 0  |     data += res;  | 
199  | 0  |     length -= res;  | 
200  | 0  |   }  | 
201  |  | 
  | 
202  | 0  |   memcpy(octx.h, ctx->state, sizeof(octx.h));  | 
203  | 0  |   memcpy(octx.u.p, ctx->block, SHA512_DATA_SIZE);  | 
204  | 0  |   octx.num = ctx->index;  | 
205  |  | 
  | 
206  | 0  |   res = length % SHA512_DATA_SIZE;  | 
207  | 0  |   length -= res;  | 
208  |  | 
  | 
209  | 0  |   if (length > 0) { | 
210  | 0  |     t2 = length / SHA512_DATA_SIZE;  | 
211  | 0  |     sha512_block_data_order(&octx, data, t2);  | 
212  |  | 
  | 
213  | 0  |     for (i = 0; i < t2; i++)  | 
214  | 0  |       MD_INCR(ctx);  | 
215  | 0  |     data += length;  | 
216  | 0  |   }  | 
217  |  | 
  | 
218  | 0  |   memcpy(ctx->state, octx.h, sizeof(octx.h));  | 
219  |  | 
  | 
220  | 0  |   memcpy(ctx->block, octx.u.p, octx.num);  | 
221  | 0  |   ctx->index = octx.num;  | 
222  |  | 
  | 
223  | 0  |   if (res > 0) { | 
224  | 0  |     sha512_update(ctx, res, data);  | 
225  | 0  |   }  | 
226  | 0  | }  | 
227  |  |  | 
228  |  | static int _ctx_init(gnutls_digest_algorithm_t algo, struct x86_hash_ctx *ctx)  | 
229  | 0  | { | 
230  | 0  |   switch (algo) { | 
231  | 0  |   case GNUTLS_DIG_SHA1:  | 
232  | 0  |     sha1_init(&ctx->ctx.sha1);  | 
233  | 0  |     ctx->update = (update_func)x86_sha1_update;  | 
234  | 0  |     ctx->digest = (digest_func)sha1_digest;  | 
235  | 0  |     ctx->init = (init_func)sha1_init;  | 
236  | 0  |     ctx->ctx_ptr = &ctx->ctx.sha1;  | 
237  | 0  |     ctx->length = SHA1_DIGEST_SIZE;  | 
238  | 0  |     break;  | 
239  | 0  |   case GNUTLS_DIG_SHA224:  | 
240  | 0  |     sha224_init(&ctx->ctx.sha224);  | 
241  | 0  |     ctx->update = (update_func)x86_sha256_update;  | 
242  | 0  |     ctx->digest = (digest_func)sha224_digest;  | 
243  | 0  |     ctx->init = (init_func)sha224_init;  | 
244  | 0  |     ctx->ctx_ptr = &ctx->ctx.sha224;  | 
245  | 0  |     ctx->length = SHA224_DIGEST_SIZE;  | 
246  | 0  |     break;  | 
247  | 0  |   case GNUTLS_DIG_SHA256:  | 
248  | 0  |     sha256_init(&ctx->ctx.sha256);  | 
249  | 0  |     ctx->update = (update_func)x86_sha256_update;  | 
250  | 0  |     ctx->digest = (digest_func)sha256_digest;  | 
251  | 0  |     ctx->init = (init_func)sha256_init;  | 
252  | 0  |     ctx->ctx_ptr = &ctx->ctx.sha256;  | 
253  | 0  |     ctx->length = SHA256_DIGEST_SIZE;  | 
254  | 0  |     break;  | 
255  | 0  |   case GNUTLS_DIG_SHA384:  | 
256  | 0  |     sha384_init(&ctx->ctx.sha384);  | 
257  | 0  |     ctx->update = (update_func)x86_sha512_update;  | 
258  | 0  |     ctx->digest = (digest_func)sha384_digest;  | 
259  | 0  |     ctx->init = (init_func)sha384_init;  | 
260  | 0  |     ctx->ctx_ptr = &ctx->ctx.sha384;  | 
261  | 0  |     ctx->length = SHA384_DIGEST_SIZE;  | 
262  | 0  |     break;  | 
263  | 0  |   case GNUTLS_DIG_SHA512:  | 
264  | 0  |     sha512_init(&ctx->ctx.sha512);  | 
265  | 0  |     ctx->update = (update_func)x86_sha512_update;  | 
266  | 0  |     ctx->digest = (digest_func)sha512_digest;  | 
267  | 0  |     ctx->init = (init_func)sha512_init;  | 
268  | 0  |     ctx->ctx_ptr = &ctx->ctx.sha512;  | 
269  | 0  |     ctx->length = SHA512_DIGEST_SIZE;  | 
270  | 0  |     break;  | 
271  | 0  |   default:  | 
272  | 0  |     gnutls_assert();  | 
273  | 0  |     return GNUTLS_E_INVALID_REQUEST;  | 
274  | 0  |   }  | 
275  |  |  | 
276  | 0  |   return 0;  | 
277  | 0  | }  | 
278  |  |  | 
279  |  | static int wrap_x86_hash_init(gnutls_digest_algorithm_t algo, void **_ctx)  | 
280  | 0  | { | 
281  | 0  |   struct x86_hash_ctx *ctx;  | 
282  | 0  |   int ret;  | 
283  |  | 
  | 
284  | 0  |   ctx = gnutls_malloc(sizeof(struct x86_hash_ctx));  | 
285  | 0  |   if (ctx == NULL) { | 
286  | 0  |     gnutls_assert();  | 
287  | 0  |     return GNUTLS_E_MEMORY_ERROR;  | 
288  | 0  |   }  | 
289  |  |  | 
290  | 0  |   ctx->algo = algo;  | 
291  |  | 
  | 
292  | 0  |   if ((ret = _ctx_init(algo, ctx)) < 0) { | 
293  | 0  |     gnutls_assert();  | 
294  | 0  |     return ret;  | 
295  | 0  |   }  | 
296  |  |  | 
297  | 0  |   *_ctx = ctx;  | 
298  |  | 
  | 
299  | 0  |   return 0;  | 
300  | 0  | }  | 
301  |  |  | 
302  |  | static void *wrap_x86_hash_copy(const void *_ctx)  | 
303  | 0  | { | 
304  | 0  |   struct x86_hash_ctx *new_ctx;  | 
305  | 0  |   const struct x86_hash_ctx *ctx = _ctx;  | 
306  | 0  |   ptrdiff_t off = (uint8_t *)ctx->ctx_ptr - (uint8_t *)(&ctx->ctx);  | 
307  |  | 
  | 
308  | 0  |   new_ctx = gnutls_malloc(sizeof(struct x86_hash_ctx));  | 
309  | 0  |   if (new_ctx == NULL) { | 
310  | 0  |     gnutls_assert();  | 
311  | 0  |     return NULL;  | 
312  | 0  |   }  | 
313  |  |  | 
314  | 0  |   memcpy(new_ctx, ctx, sizeof(*new_ctx));  | 
315  | 0  |   new_ctx->ctx_ptr = (uint8_t *)&new_ctx->ctx + off;  | 
316  |  | 
  | 
317  | 0  |   return new_ctx;  | 
318  | 0  | }  | 
319  |  |  | 
320  |  | static int wrap_x86_hash_output(void *src_ctx, void *digest, size_t digestsize)  | 
321  | 0  | { | 
322  | 0  |   struct x86_hash_ctx *ctx;  | 
323  | 0  |   ctx = src_ctx;  | 
324  |  | 
  | 
325  | 0  |   if (digestsize < ctx->length)  | 
326  | 0  |     return gnutls_assert_val(GNUTLS_E_SHORT_MEMORY_BUFFER);  | 
327  |  |  | 
328  | 0  |   ctx->digest(ctx->ctx_ptr, digestsize, digest);  | 
329  |  | 
  | 
330  | 0  |   return 0;  | 
331  | 0  | }  | 
332  |  |  | 
333  |  | static int wrap_x86_hash_fast(gnutls_digest_algorithm_t algo, const void *text,  | 
334  |  |             size_t text_size, void *digest)  | 
335  | 0  | { | 
336  | 0  |   struct x86_hash_ctx ctx;  | 
337  | 0  |   int ret;  | 
338  |  | 
  | 
339  | 0  |   ret = _ctx_init(algo, &ctx);  | 
340  | 0  |   if (ret < 0)  | 
341  | 0  |     return gnutls_assert_val(ret);  | 
342  |  |  | 
343  | 0  |   ctx.update(&ctx, text_size, text);  | 
344  | 0  |   ctx.digest(&ctx, ctx.length, digest);  | 
345  |  | 
  | 
346  | 0  |   return 0;  | 
347  | 0  | }  | 
348  |  |  | 
349  |  | const struct nettle_hash x86_sha1 =  | 
350  |  |   NN_HASH(sha1, x86_sha1_update, sha1_digest, SHA1);  | 
351  |  | const struct nettle_hash x86_sha224 =  | 
352  |  |   NN_HASH(sha224, x86_sha256_update, sha224_digest, SHA224);  | 
353  |  | const struct nettle_hash x86_sha256 =  | 
354  |  |   NN_HASH(sha256, x86_sha256_update, sha256_digest, SHA256);  | 
355  |  |  | 
356  |  | const struct nettle_hash x86_sha384 =  | 
357  |  |   NN_HASH(sha384, x86_sha512_update, sha384_digest, SHA384);  | 
358  |  | const struct nettle_hash x86_sha512 =  | 
359  |  |   NN_HASH(sha512, x86_sha512_update, sha512_digest, SHA512);  | 
360  |  |  | 
361  |  | const gnutls_crypto_digest_st _gnutls_sha_x86_ssse3 = { | 
362  |  |   .init = wrap_x86_hash_init,  | 
363  |  |   .hash = wrap_x86_hash_update,  | 
364  |  |   .output = wrap_x86_hash_output,  | 
365  |  |   .copy = wrap_x86_hash_copy,  | 
366  |  |   .deinit = wrap_x86_hash_deinit,  | 
367  |  |   .fast = wrap_x86_hash_fast,  | 
368  |  | };  |