/src/openssl/crypto/bn/bn_lib.c
Line  | Count  | Source  | 
1  |  | /*  | 
2  |  |  * Copyright 1995-2025 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  |  | #include <assert.h>  | 
11  |  | #include <limits.h>  | 
12  |  | #include "internal/cryptlib.h"  | 
13  |  | #include "internal/endian.h"  | 
14  |  | #include "bn_local.h"  | 
15  |  | #include <openssl/opensslconf.h>  | 
16  |  | #include "internal/constant_time.h"  | 
17  |  |  | 
18  |  | /* This stuff appears to be completely unused, so is deprecated */  | 
19  |  | #ifndef OPENSSL_NO_DEPRECATED_0_9_8  | 
20  |  | /*-  | 
21  |  |  * For a 32 bit machine  | 
22  |  |  * 2 -   4 ==  128  | 
23  |  |  * 3 -   8 ==  256  | 
24  |  |  * 4 -  16 ==  512  | 
25  |  |  * 5 -  32 == 1024  | 
26  |  |  * 6 -  64 == 2048  | 
27  |  |  * 7 - 128 == 4096  | 
28  |  |  * 8 - 256 == 8192  | 
29  |  |  */  | 
30  |  | static int bn_limit_bits = 0;  | 
31  |  | static int bn_limit_num = 8;    /* (1<<bn_limit_bits) */  | 
32  |  | static int bn_limit_bits_low = 0;  | 
33  |  | static int bn_limit_num_low = 8; /* (1<<bn_limit_bits_low) */  | 
34  |  | static int bn_limit_bits_high = 0;  | 
35  |  | static int bn_limit_num_high = 8; /* (1<<bn_limit_bits_high) */  | 
36  |  | static int bn_limit_bits_mont = 0;  | 
37  |  | static int bn_limit_num_mont = 8; /* (1<<bn_limit_bits_mont) */  | 
38  |  |  | 
39  |  | void BN_set_params(int mult, int high, int low, int mont)  | 
40  | 0  | { | 
41  | 0  |     if (mult >= 0) { | 
42  | 0  |         if (mult > (int)(sizeof(int) * 8) - 1)  | 
43  | 0  |             mult = sizeof(int) * 8 - 1;  | 
44  | 0  |         bn_limit_bits = mult;  | 
45  | 0  |         bn_limit_num = 1 << mult;  | 
46  | 0  |     }  | 
47  | 0  |     if (high >= 0) { | 
48  | 0  |         if (high > (int)(sizeof(int) * 8) - 1)  | 
49  | 0  |             high = sizeof(int) * 8 - 1;  | 
50  | 0  |         bn_limit_bits_high = high;  | 
51  | 0  |         bn_limit_num_high = 1 << high;  | 
52  | 0  |     }  | 
53  | 0  |     if (low >= 0) { | 
54  | 0  |         if (low > (int)(sizeof(int) * 8) - 1)  | 
55  | 0  |             low = sizeof(int) * 8 - 1;  | 
56  | 0  |         bn_limit_bits_low = low;  | 
57  | 0  |         bn_limit_num_low = 1 << low;  | 
58  | 0  |     }  | 
59  | 0  |     if (mont >= 0) { | 
60  | 0  |         if (mont > (int)(sizeof(int) * 8) - 1)  | 
61  | 0  |             mont = sizeof(int) * 8 - 1;  | 
62  | 0  |         bn_limit_bits_mont = mont;  | 
63  | 0  |         bn_limit_num_mont = 1 << mont;  | 
64  | 0  |     }  | 
65  | 0  | }  | 
66  |  |  | 
67  |  | int BN_get_params(int which)  | 
68  | 0  | { | 
69  | 0  |     if (which == 0)  | 
70  | 0  |         return bn_limit_bits;  | 
71  | 0  |     else if (which == 1)  | 
72  | 0  |         return bn_limit_bits_high;  | 
73  | 0  |     else if (which == 2)  | 
74  | 0  |         return bn_limit_bits_low;  | 
75  | 0  |     else if (which == 3)  | 
76  | 0  |         return bn_limit_bits_mont;  | 
77  | 0  |     else  | 
78  | 0  |         return 0;  | 
79  | 0  | }  | 
80  |  | #endif  | 
81  |  |  | 
82  |  | const BIGNUM *BN_value_one(void)  | 
83  | 0  | { | 
84  | 0  |     static const BN_ULONG data_one = 1L;  | 
85  | 0  |     static const BIGNUM const_one = { | 
86  | 0  |         (BN_ULONG *)&data_one, 1, 1, 0, BN_FLG_STATIC_DATA  | 
87  | 0  |     };  | 
88  |  | 
  | 
89  | 0  |     return &const_one;  | 
90  | 0  | }  | 
91  |  |  | 
92  |  | /*  | 
93  |  |  * Old Visual Studio ARM compiler miscompiles BN_num_bits_word()  | 
94  |  |  * https://mta.openssl.org/pipermail/openssl-users/2018-August/008465.html  | 
95  |  |  */  | 
96  |  | #if defined(_MSC_VER) && defined(_ARM_) && defined(_WIN32_WCE) \  | 
97  |  |     && _MSC_VER>=1400 && _MSC_VER<1501  | 
98  |  | # define MS_BROKEN_BN_num_bits_word  | 
99  |  | # pragma optimize("", off) | 
100  |  | #endif  | 
101  |  | int BN_num_bits_word(BN_ULONG l)  | 
102  | 118k  | { | 
103  | 118k  |     BN_ULONG x, mask;  | 
104  | 118k  |     int bits = (l != 0);  | 
105  |  |  | 
106  | 118k  | #if BN_BITS2 > 32  | 
107  | 118k  |     x = l >> 32;  | 
108  | 118k  |     mask = (0 - x) & BN_MASK2;  | 
109  | 118k  |     mask = (0 - (mask >> (BN_BITS2 - 1)));  | 
110  | 118k  |     bits += 32 & mask;  | 
111  | 118k  |     l ^= (x ^ l) & mask;  | 
112  | 118k  | #endif  | 
113  |  |  | 
114  | 118k  |     x = l >> 16;  | 
115  | 118k  |     mask = (0 - x) & BN_MASK2;  | 
116  | 118k  |     mask = (0 - (mask >> (BN_BITS2 - 1)));  | 
117  | 118k  |     bits += 16 & mask;  | 
118  | 118k  |     l ^= (x ^ l) & mask;  | 
119  |  |  | 
120  | 118k  |     x = l >> 8;  | 
121  | 118k  |     mask = (0 - x) & BN_MASK2;  | 
122  | 118k  |     mask = (0 - (mask >> (BN_BITS2 - 1)));  | 
123  | 118k  |     bits += 8 & mask;  | 
124  | 118k  |     l ^= (x ^ l) & mask;  | 
125  |  |  | 
126  | 118k  |     x = l >> 4;  | 
127  | 118k  |     mask = (0 - x) & BN_MASK2;  | 
128  | 118k  |     mask = (0 - (mask >> (BN_BITS2 - 1)));  | 
129  | 118k  |     bits += 4 & mask;  | 
130  | 118k  |     l ^= (x ^ l) & mask;  | 
131  |  |  | 
132  | 118k  |     x = l >> 2;  | 
133  | 118k  |     mask = (0 - x) & BN_MASK2;  | 
134  | 118k  |     mask = (0 - (mask >> (BN_BITS2 - 1)));  | 
135  | 118k  |     bits += 2 & mask;  | 
136  | 118k  |     l ^= (x ^ l) & mask;  | 
137  |  |  | 
138  | 118k  |     x = l >> 1;  | 
139  | 118k  |     mask = (0 - x) & BN_MASK2;  | 
140  | 118k  |     mask = (0 - (mask >> (BN_BITS2 - 1)));  | 
141  | 118k  |     bits += 1 & mask;  | 
142  |  |  | 
143  | 118k  |     return bits;  | 
144  | 118k  | }  | 
145  |  | #ifdef MS_BROKEN_BN_num_bits_word  | 
146  |  | # pragma optimize("", on) | 
147  |  | #endif  | 
148  |  |  | 
149  |  | /*  | 
150  |  |  * This function still leaks `a->dmax`: it's caller's responsibility to  | 
151  |  |  * expand the input `a` in advance to a public length.  | 
152  |  |  */  | 
153  |  | static ossl_inline  | 
154  |  | int bn_num_bits_consttime(const BIGNUM *a)  | 
155  | 0  | { | 
156  | 0  |     int j, ret;  | 
157  | 0  |     unsigned int mask, past_i;  | 
158  | 0  |     int i = a->top - 1;  | 
159  | 0  |     bn_check_top(a);  | 
160  |  | 
  | 
161  | 0  |     for (j = 0, past_i = 0, ret = 0; j < a->dmax; j++) { | 
162  | 0  |         mask = constant_time_eq_int(i, j); /* 0xff..ff if i==j, 0x0 otherwise */  | 
163  |  | 
  | 
164  | 0  |         ret += BN_BITS2 & (~mask & ~past_i);  | 
165  | 0  |         ret += BN_num_bits_word(a->d[j]) & mask;  | 
166  |  | 
  | 
167  | 0  |         past_i |= mask; /* past_i will become 0xff..ff after i==j */  | 
168  | 0  |     }  | 
169  |  |  | 
170  |  |     /*  | 
171  |  |      * if BN_is_zero(a) => i is -1 and ret contains garbage, so we mask the  | 
172  |  |      * final result.  | 
173  |  |      */  | 
174  | 0  |     mask = ~(constant_time_eq_int(i, ((int)-1)));  | 
175  |  | 
  | 
176  | 0  |     return ret & mask;  | 
177  | 0  | }  | 
178  |  |  | 
179  |  | int BN_num_bits(const BIGNUM *a)  | 
180  | 127k  | { | 
181  | 127k  |     int i = a->top - 1;  | 
182  | 127k  |     bn_check_top(a);  | 
183  |  |  | 
184  | 127k  |     if (a->flags & BN_FLG_CONSTTIME) { | 
185  |  |         /*  | 
186  |  |          * We assume that BIGNUMs flagged as CONSTTIME have also been expanded  | 
187  |  |          * so that a->dmax is not leaking secret information.  | 
188  |  |          *  | 
189  |  |          * In other words, it's the caller's responsibility to ensure `a` has  | 
190  |  |          * been preallocated in advance to a public length if we hit this  | 
191  |  |          * branch.  | 
192  |  |          *  | 
193  |  |          */  | 
194  | 0  |         return bn_num_bits_consttime(a);  | 
195  | 0  |     }  | 
196  |  |  | 
197  | 127k  |     if (ossl_unlikely(BN_is_zero(a)))  | 
198  | 9.16k  |         return 0;  | 
199  |  |  | 
200  | 118k  |     return ((i * BN_BITS2) + BN_num_bits_word(a->d[i]));  | 
201  | 127k  | }  | 
202  |  |  | 
203  |  | static void bn_free_d(BIGNUM *a, int clear)  | 
204  | 104k  | { | 
205  | 104k  |     if (BN_get_flags(a, BN_FLG_SECURE))  | 
206  | 0  |         OPENSSL_secure_clear_free(a->d, a->dmax * sizeof(a->d[0]));  | 
207  | 104k  |     else if (clear != 0)  | 
208  | 0  |         OPENSSL_clear_free(a->d, a->dmax * sizeof(a->d[0]));  | 
209  | 104k  |     else  | 
210  | 104k  |         OPENSSL_free(a->d);  | 
211  | 104k  | }  | 
212  |  |  | 
213  |  |  | 
214  |  | void BN_clear_free(BIGNUM *a)  | 
215  | 352k  | { | 
216  | 352k  |     if (a == NULL)  | 
217  | 352k  |         return;  | 
218  | 0  |     if (a->d != NULL && !BN_get_flags(a, BN_FLG_STATIC_DATA))  | 
219  | 0  |         bn_free_d(a, 1);  | 
220  | 0  |     if (BN_get_flags(a, BN_FLG_MALLOCED)) { | 
221  | 0  |         OPENSSL_cleanse(a, sizeof(*a));  | 
222  | 0  |         OPENSSL_free(a);  | 
223  | 0  |     }  | 
224  | 0  | }  | 
225  |  |  | 
226  |  | void BN_free(BIGNUM *a)  | 
227  | 120k  | { | 
228  | 120k  |     if (a == NULL)  | 
229  | 16.4k  |         return;  | 
230  | 104k  |     if (!BN_get_flags(a, BN_FLG_STATIC_DATA))  | 
231  | 104k  |         bn_free_d(a, 0);  | 
232  | 104k  |     if (a->flags & BN_FLG_MALLOCED)  | 
233  | 104k  |         OPENSSL_free(a);  | 
234  | 104k  | }  | 
235  |  |  | 
236  |  | void bn_init(BIGNUM *a)  | 
237  | 0  | { | 
238  | 0  |     static BIGNUM nilbn;  | 
239  |  | 
  | 
240  | 0  |     *a = nilbn;  | 
241  | 0  |     bn_check_top(a);  | 
242  | 0  | }  | 
243  |  |  | 
244  |  | BIGNUM *BN_new(void)  | 
245  | 104k  | { | 
246  | 104k  |     BIGNUM *ret;  | 
247  |  |  | 
248  | 104k  |     if ((ret = OPENSSL_zalloc(sizeof(*ret))) == NULL)  | 
249  | 0  |         return NULL;  | 
250  | 104k  |     ret->flags = BN_FLG_MALLOCED;  | 
251  | 104k  |     bn_check_top(ret);  | 
252  | 104k  |     return ret;  | 
253  | 104k  | }  | 
254  |  |  | 
255  |  | BIGNUM *BN_secure_new(void)  | 
256  | 0  | { | 
257  | 0  |     BIGNUM *ret = BN_new();  | 
258  |  | 
  | 
259  | 0  |     if (ret != NULL)  | 
260  | 0  |         ret->flags |= BN_FLG_SECURE;  | 
261  | 0  |     return ret;  | 
262  | 0  | }  | 
263  |  |  | 
264  |  | /* This is used by bn_expand2() */  | 
265  |  | /* The caller MUST check that words > b->dmax before calling this */  | 
266  |  | static BN_ULONG *bn_expand_internal(const BIGNUM *b, int words)  | 
267  | 34.3k  | { | 
268  | 34.3k  |     BN_ULONG *a = NULL;  | 
269  |  |  | 
270  | 34.3k  |     if (ossl_unlikely(words > (INT_MAX / (4 * BN_BITS2)))) { | 
271  | 0  |         ERR_raise(ERR_LIB_BN, BN_R_BIGNUM_TOO_LONG);  | 
272  | 0  |         return NULL;  | 
273  | 0  |     }  | 
274  | 34.3k  |     if (ossl_unlikely(BN_get_flags(b, BN_FLG_STATIC_DATA))) { | 
275  | 0  |         ERR_raise(ERR_LIB_BN, BN_R_EXPAND_ON_STATIC_BIGNUM_DATA);  | 
276  | 0  |         return NULL;  | 
277  | 0  |     }  | 
278  | 34.3k  |     if (BN_get_flags(b, BN_FLG_SECURE))  | 
279  | 0  |         a = OPENSSL_secure_calloc(words, sizeof(*a));  | 
280  | 34.3k  |     else  | 
281  | 34.3k  |         a = OPENSSL_calloc(words, sizeof(*a));  | 
282  | 34.3k  |     if (ossl_unlikely(a == NULL))  | 
283  | 0  |         return NULL;  | 
284  |  |  | 
285  | 34.3k  |     assert(b->top <= words);  | 
286  | 34.3k  |     if (b->top > 0)  | 
287  | 0  |         memcpy(a, b->d, sizeof(*a) * b->top);  | 
288  |  |  | 
289  | 34.3k  |     return a;  | 
290  | 34.3k  | }  | 
291  |  |  | 
292  |  | /*  | 
293  |  |  * This is an internal function that should not be used in applications. It  | 
294  |  |  * ensures that 'b' has enough room for a 'words' word number and initialises  | 
295  |  |  * any unused part of b->d with leading zeros. It is mostly used by the  | 
296  |  |  * various BIGNUM routines. If there is an error, NULL is returned. If not,  | 
297  |  |  * 'b' is returned.  | 
298  |  |  */  | 
299  |  |  | 
300  |  | BIGNUM *bn_expand2(BIGNUM *b, int words)  | 
301  | 34.3k  | { | 
302  | 34.3k  |     if (ossl_likely(words > b->dmax)) { | 
303  | 34.3k  |         BN_ULONG *a = bn_expand_internal(b, words);  | 
304  |  |  | 
305  | 34.3k  |         if (ossl_unlikely(!a))  | 
306  | 0  |             return NULL;  | 
307  | 34.3k  |         if (b->d != NULL)  | 
308  | 0  |             bn_free_d(b, 1);  | 
309  | 34.3k  |         b->d = a;  | 
310  | 34.3k  |         b->dmax = words;  | 
311  | 34.3k  |     }  | 
312  |  |  | 
313  | 34.3k  |     return b;  | 
314  | 34.3k  | }  | 
315  |  |  | 
316  |  | BIGNUM *BN_dup(const BIGNUM *a)  | 
317  | 0  | { | 
318  | 0  |     BIGNUM *t;  | 
319  |  | 
  | 
320  | 0  |     if (a == NULL)  | 
321  | 0  |         return NULL;  | 
322  | 0  |     bn_check_top(a);  | 
323  |  | 
  | 
324  | 0  |     t = BN_get_flags(a, BN_FLG_SECURE) ? BN_secure_new() : BN_new();  | 
325  | 0  |     if (t == NULL)  | 
326  | 0  |         return NULL;  | 
327  | 0  |     if (!BN_copy(t, a)) { | 
328  | 0  |         BN_free(t);  | 
329  | 0  |         return NULL;  | 
330  | 0  |     }  | 
331  | 0  |     bn_check_top(t);  | 
332  | 0  |     return t;  | 
333  | 0  | }  | 
334  |  |  | 
335  |  | BIGNUM *BN_copy(BIGNUM *a, const BIGNUM *b)  | 
336  | 0  | { | 
337  | 0  |     int bn_words;  | 
338  |  | 
  | 
339  | 0  |     bn_check_top(b);  | 
340  |  | 
  | 
341  | 0  |     bn_words = BN_get_flags(b, BN_FLG_CONSTTIME) ? b->dmax : b->top;  | 
342  |  | 
  | 
343  | 0  |     if (ossl_unlikely(a == b))  | 
344  | 0  |         return a;  | 
345  | 0  |     if (ossl_unlikely(bn_wexpand(a, bn_words) == NULL))  | 
346  | 0  |         return NULL;  | 
347  |  |  | 
348  | 0  |     if (ossl_likely(b->top > 0))  | 
349  | 0  |         memcpy(a->d, b->d, sizeof(b->d[0]) * bn_words);  | 
350  |  | 
  | 
351  | 0  |     a->neg = b->neg;  | 
352  | 0  |     a->top = b->top;  | 
353  | 0  |     a->flags |= b->flags & BN_FLG_FIXED_TOP;  | 
354  | 0  |     bn_check_top(a);  | 
355  | 0  |     return a;  | 
356  | 0  | }  | 
357  |  |  | 
358  | 0  | #define FLAGS_DATA(flags) ((flags) & (BN_FLG_STATIC_DATA \  | 
359  | 0  |                                     | BN_FLG_CONSTTIME   \  | 
360  | 0  |                                     | BN_FLG_SECURE      \  | 
361  | 0  |                                     | BN_FLG_FIXED_TOP))  | 
362  | 0  | #define FLAGS_STRUCT(flags) ((flags) & (BN_FLG_MALLOCED))  | 
363  |  |  | 
364  |  | void BN_swap(BIGNUM *a, BIGNUM *b)  | 
365  | 0  | { | 
366  | 0  |     int flags_old_a, flags_old_b;  | 
367  | 0  |     BN_ULONG *tmp_d;  | 
368  | 0  |     int tmp_top, tmp_dmax, tmp_neg;  | 
369  |  | 
  | 
370  | 0  |     bn_check_top(a);  | 
371  | 0  |     bn_check_top(b);  | 
372  |  | 
  | 
373  | 0  |     flags_old_a = a->flags;  | 
374  | 0  |     flags_old_b = b->flags;  | 
375  |  | 
  | 
376  | 0  |     tmp_d = a->d;  | 
377  | 0  |     tmp_top = a->top;  | 
378  | 0  |     tmp_dmax = a->dmax;  | 
379  | 0  |     tmp_neg = a->neg;  | 
380  |  | 
  | 
381  | 0  |     a->d = b->d;  | 
382  | 0  |     a->top = b->top;  | 
383  | 0  |     a->dmax = b->dmax;  | 
384  | 0  |     a->neg = b->neg;  | 
385  |  | 
  | 
386  | 0  |     b->d = tmp_d;  | 
387  | 0  |     b->top = tmp_top;  | 
388  | 0  |     b->dmax = tmp_dmax;  | 
389  | 0  |     b->neg = tmp_neg;  | 
390  |  | 
  | 
391  | 0  |     a->flags = FLAGS_STRUCT(flags_old_a) | FLAGS_DATA(flags_old_b);  | 
392  | 0  |     b->flags = FLAGS_STRUCT(flags_old_b) | FLAGS_DATA(flags_old_a);  | 
393  | 0  |     bn_check_top(a);  | 
394  | 0  |     bn_check_top(b);  | 
395  | 0  | }  | 
396  |  |  | 
397  |  | void BN_clear(BIGNUM *a)  | 
398  | 65.1k  | { | 
399  | 65.1k  |     if (a == NULL)  | 
400  | 0  |         return;  | 
401  | 65.1k  |     bn_check_top(a);  | 
402  | 65.1k  |     if (a->d != NULL)  | 
403  | 0  |         OPENSSL_cleanse(a->d, sizeof(*a->d) * a->dmax);  | 
404  | 65.1k  |     a->neg = 0;  | 
405  | 65.1k  |     a->top = 0;  | 
406  | 65.1k  |     a->flags &= ~BN_FLG_FIXED_TOP;  | 
407  | 65.1k  | }  | 
408  |  |  | 
409  |  | BN_ULONG BN_get_word(const BIGNUM *a)  | 
410  | 0  | { | 
411  | 0  |     if (a->top > 1)  | 
412  | 0  |         return BN_MASK2;  | 
413  | 0  |     else if (a->top == 1)  | 
414  | 0  |         return a->d[0];  | 
415  |  |     /* a->top == 0 */  | 
416  | 0  |     return 0;  | 
417  | 0  | }  | 
418  |  |  | 
419  |  | int BN_set_word(BIGNUM *a, BN_ULONG w)  | 
420  | 16  | { | 
421  | 16  |     bn_check_top(a);  | 
422  | 16  |     if (bn_expand(a, (int)sizeof(BN_ULONG) * 8) == NULL)  | 
423  | 0  |         return 0;  | 
424  | 16  |     a->neg = 0;  | 
425  | 16  |     a->d[0] = w;  | 
426  | 16  |     a->top = (w ? 1 : 0);  | 
427  | 16  |     a->flags &= ~BN_FLG_FIXED_TOP;  | 
428  | 16  |     bn_check_top(a);  | 
429  | 16  |     return 1;  | 
430  | 16  | }  | 
431  |  |  | 
432  |  | typedef enum {BIG, LITTLE} endianness_t; | 
433  |  | typedef enum {SIGNED, UNSIGNED} signedness_t; | 
434  |  |  | 
435  |  | static BIGNUM *bin2bn(const unsigned char *s, int len, BIGNUM *ret,  | 
436  |  |                       endianness_t endianness, signedness_t signedness)  | 
437  | 104k  | { | 
438  | 104k  |     int inc;  | 
439  | 104k  |     const unsigned char *s2;  | 
440  | 104k  |     int inc2;  | 
441  | 104k  |     int neg = 0, xor = 0, carry = 0;  | 
442  | 104k  |     unsigned int i;  | 
443  | 104k  |     unsigned int n;  | 
444  | 104k  |     BIGNUM *bn = NULL;  | 
445  |  |  | 
446  |  |     /* Negative length is not acceptable */  | 
447  | 104k  |     if (len < 0)  | 
448  | 0  |         return NULL;  | 
449  |  |  | 
450  | 104k  |     if (ret == NULL)  | 
451  | 0  |         ret = bn = BN_new();  | 
452  | 104k  |     if (ret == NULL)  | 
453  | 0  |         return NULL;  | 
454  | 104k  |     bn_check_top(ret);  | 
455  |  |  | 
456  |  |     /*  | 
457  |  |      * If the input has no bits, the number is considered zero.  | 
458  |  |      * This makes calls with s==NULL and len==0 safe.  | 
459  |  |      */  | 
460  | 104k  |     if (len == 0) { | 
461  | 65.1k  |         BN_clear(ret);  | 
462  | 65.1k  |         return ret;  | 
463  | 65.1k  |     }  | 
464  |  |  | 
465  |  |     /*  | 
466  |  |      * The loop that does the work iterates from least to most  | 
467  |  |      * significant BIGNUM chunk, so we adapt parameters to transfer  | 
468  |  |      * input bytes accordingly.  | 
469  |  |      */  | 
470  | 39.2k  |     if (endianness == LITTLE) { | 
471  | 0  |         s2 = s + len - 1;  | 
472  | 0  |         inc2 = -1;  | 
473  | 0  |         inc = 1;  | 
474  | 39.2k  |     } else { | 
475  | 39.2k  |         s2 = s;  | 
476  | 39.2k  |         inc2 = 1;  | 
477  | 39.2k  |         inc = -1;  | 
478  | 39.2k  |         s += len - 1;  | 
479  | 39.2k  |     }  | 
480  |  |  | 
481  |  |     /* Take note of the signedness of the input bytes*/  | 
482  | 39.2k  |     if (signedness == SIGNED) { | 
483  | 0  |         neg = !!(*s2 & 0x80);  | 
484  | 0  |         xor = neg ? 0xff : 0x00;  | 
485  | 0  |         carry = neg;  | 
486  | 0  |     }  | 
487  |  |  | 
488  |  |     /*  | 
489  |  |      * Skip leading sign extensions (the value of |xor|).  | 
490  |  |      * This is the only spot where |s2| and |inc2| are used.  | 
491  |  |      */  | 
492  | 62.6k  |     for ( ; len > 0 && *s2 == xor; s2 += inc2, len--)  | 
493  | 23.3k  |         continue;  | 
494  |  |  | 
495  |  |     /*  | 
496  |  |      * If there was a set of 0xff, we backtrack one byte unless the next  | 
497  |  |      * one has a sign bit, as the last 0xff is then part of the actual  | 
498  |  |      * number, rather then a mere sign extension.  | 
499  |  |      */  | 
500  | 39.2k  |     if (xor == 0xff) { | 
501  | 0  |         if (len == 0 || !(*s2 & 0x80))  | 
502  | 0  |             len++;  | 
503  | 0  |     }  | 
504  |  |     /* If it was all zeros, we're done */  | 
505  | 39.2k  |     if (len == 0) { | 
506  | 4.95k  |         ret->top = 0;  | 
507  | 4.95k  |         return ret;  | 
508  | 4.95k  |     }  | 
509  | 34.3k  |     n = ((len - 1) / BN_BYTES) + 1; /* Number of resulting bignum chunks */  | 
510  | 34.3k  |     if (bn_wexpand(ret, (int)n) == NULL) { | 
511  | 0  |         BN_free(bn);  | 
512  | 0  |         return NULL;  | 
513  | 0  |     }  | 
514  | 34.3k  |     ret->top = n;  | 
515  | 34.3k  |     ret->neg = neg;  | 
516  | 969k  |     for (i = 0; n-- > 0; i++) { | 
517  | 935k  |         BN_ULONG l = 0;        /* Accumulator */  | 
518  | 935k  |         unsigned int m = 0;    /* Offset in a bignum chunk, in bits */  | 
519  |  |  | 
520  | 8.29M  |         for (; len > 0 && m < BN_BYTES * 8; len--, s += inc, m += 8) { | 
521  | 7.35M  |             BN_ULONG byte_xored = *s ^ xor;  | 
522  | 7.35M  |             BN_ULONG byte = (byte_xored + carry) & 0xff;  | 
523  |  |  | 
524  | 7.35M  |             carry = byte_xored > byte; /* Implicit 1 or 0 */  | 
525  | 7.35M  |             l |= (byte << m);  | 
526  | 7.35M  |         }  | 
527  | 935k  |         ret->d[i] = l;  | 
528  | 935k  |     }  | 
529  |  |     /*  | 
530  |  |      * need to call this due to clear byte at top if avoiding having the top  | 
531  |  |      * bit set (-ve number)  | 
532  |  |      */  | 
533  | 34.3k  |     bn_correct_top(ret);  | 
534  | 34.3k  |     return ret;  | 
535  | 34.3k  | }  | 
536  |  |  | 
537  |  | BIGNUM *BN_bin2bn(const unsigned char *s, int len, BIGNUM *ret)  | 
538  | 104k  | { | 
539  | 104k  |     return bin2bn(s, len, ret, BIG, UNSIGNED);  | 
540  | 104k  | }  | 
541  |  |  | 
542  |  | BIGNUM *BN_signed_bin2bn(const unsigned char *s, int len, BIGNUM *ret)  | 
543  | 0  | { | 
544  | 0  |     return bin2bn(s, len, ret, BIG, SIGNED);  | 
545  | 0  | }  | 
546  |  |  | 
547  |  | static int bn2binpad(const BIGNUM *a, unsigned char *to, int tolen,  | 
548  |  |                      endianness_t endianness, signedness_t signedness)  | 
549  | 11.7k  | { | 
550  | 11.7k  |     int inc;  | 
551  | 11.7k  |     int n, n8;  | 
552  | 11.7k  |     int xor = 0, carry = 0, ext = 0;  | 
553  | 11.7k  |     size_t i, lasti, j, atop, mask;  | 
554  | 11.7k  |     BN_ULONG l;  | 
555  |  |  | 
556  |  |     /*  | 
557  |  |      * In case |a| is fixed-top, BN_num_bits can return bogus length,  | 
558  |  |      * but it's assumed that fixed-top inputs ought to be "nominated"  | 
559  |  |      * even for padded output, so it works out...  | 
560  |  |      */  | 
561  | 11.7k  |     n8 = BN_num_bits(a);  | 
562  | 11.7k  |     n = (n8 + 7) / 8;           /* This is what BN_num_bytes() does */  | 
563  |  |  | 
564  |  |     /* Take note of the signedness of the bignum */  | 
565  | 11.7k  |     if (signedness == SIGNED) { | 
566  | 0  |         xor = a->neg ? 0xff : 0x00;  | 
567  | 0  |         carry = a->neg;  | 
568  |  |  | 
569  |  |         /*  | 
570  |  |          * if |n * 8 == n|, then the MSbit is set, otherwise unset.  | 
571  |  |          * We must compensate with one extra byte if that doesn't  | 
572  |  |          * correspond to the signedness of the bignum with regards  | 
573  |  |          * to 2's complement.  | 
574  |  |          */  | 
575  | 0  |         ext = (n * 8 == n8)  | 
576  | 0  |             ? !a->neg            /* MSbit set on nonnegative bignum */  | 
577  | 0  |             : a->neg;            /* MSbit unset on negative bignum */  | 
578  | 0  |     }  | 
579  |  |  | 
580  | 11.7k  |     if (tolen == -1) { | 
581  | 11.7k  |         tolen = n + ext;  | 
582  | 11.7k  |     } else if (tolen < n + ext) { /* uncommon/unlike case */ | 
583  | 0  |         BIGNUM temp = *a;  | 
584  |  | 
  | 
585  | 0  |         bn_correct_top(&temp);  | 
586  | 0  |         n8 = BN_num_bits(&temp);  | 
587  | 0  |         n = (n8 + 7) / 8;       /* This is what BN_num_bytes() does */  | 
588  | 0  |         if (tolen < n + ext)  | 
589  | 0  |             return -1;  | 
590  | 0  |     }  | 
591  |  |  | 
592  |  |     /* Swipe through whole available data and don't give away padded zero. */  | 
593  | 11.7k  |     atop = a->dmax * BN_BYTES;  | 
594  | 11.7k  |     if (atop == 0) { | 
595  | 894  |         if (tolen != 0)  | 
596  | 0  |             memset(to, '\0', tolen);  | 
597  | 894  |         return tolen;  | 
598  | 894  |     }  | 
599  |  |  | 
600  |  |     /*  | 
601  |  |      * The loop that does the work iterates from least significant  | 
602  |  |      * to most significant BIGNUM limb, so we adapt parameters to  | 
603  |  |      * transfer output bytes accordingly.  | 
604  |  |      */  | 
605  | 10.8k  |     if (endianness == LITTLE) { | 
606  | 0  |         inc = 1;  | 
607  | 10.8k  |     } else { | 
608  | 10.8k  |         inc = -1;  | 
609  | 10.8k  |         to += tolen - 1;         /* Move to the last byte, not beyond */  | 
610  | 10.8k  |     }  | 
611  |  |  | 
612  | 10.8k  |     lasti = atop - 1;  | 
613  | 10.8k  |     atop = a->top * BN_BYTES;  | 
614  | 980k  |     for (i = 0, j = 0; j < (size_t)tolen; j++) { | 
615  | 969k  |         unsigned char byte, byte_xored;  | 
616  |  |  | 
617  | 969k  |         l = a->d[i / BN_BYTES];  | 
618  | 969k  |         mask = 0 - ((j - atop) >> (8 * sizeof(i) - 1));  | 
619  | 969k  |         byte = (unsigned char)(l >> (8 * (i % BN_BYTES)) & mask);  | 
620  | 969k  |         byte_xored = byte ^ xor;  | 
621  | 969k  |         *to = (unsigned char)(byte_xored + carry);  | 
622  | 969k  |         carry = byte_xored > *to; /* Implicit 1 or 0 */  | 
623  | 969k  |         to += inc;  | 
624  | 969k  |         i += (i - lasti) >> (8 * sizeof(i) - 1); /* stay on last limb */  | 
625  | 969k  |     }  | 
626  |  |  | 
627  | 10.8k  |     return tolen;  | 
628  | 11.7k  | }  | 
629  |  |  | 
630  |  | int BN_bn2binpad(const BIGNUM *a, unsigned char *to, int tolen)  | 
631  | 0  | { | 
632  | 0  |     if (tolen < 0)  | 
633  | 0  |         return -1;  | 
634  | 0  |     return bn2binpad(a, to, tolen, BIG, UNSIGNED);  | 
635  | 0  | }  | 
636  |  |  | 
637  |  | int BN_signed_bn2bin(const BIGNUM *a, unsigned char *to, int tolen)  | 
638  | 0  | { | 
639  | 0  |     if (tolen < 0)  | 
640  | 0  |         return -1;  | 
641  | 0  |     return bn2binpad(a, to, tolen, BIG, SIGNED);  | 
642  | 0  | }  | 
643  |  |  | 
644  |  | int BN_bn2bin(const BIGNUM *a, unsigned char *to)  | 
645  | 11.7k  | { | 
646  | 11.7k  |     return bn2binpad(a, to, -1, BIG, UNSIGNED);  | 
647  | 11.7k  | }  | 
648  |  |  | 
649  |  | BIGNUM *BN_lebin2bn(const unsigned char *s, int len, BIGNUM *ret)  | 
650  | 0  | { | 
651  | 0  |     return bin2bn(s, len, ret, LITTLE, UNSIGNED);  | 
652  | 0  | }  | 
653  |  |  | 
654  |  | BIGNUM *BN_signed_lebin2bn(const unsigned char *s, int len, BIGNUM *ret)  | 
655  | 0  | { | 
656  | 0  |     return bin2bn(s, len, ret, LITTLE, SIGNED);  | 
657  | 0  | }  | 
658  |  |  | 
659  |  | int BN_bn2lebinpad(const BIGNUM *a, unsigned char *to, int tolen)  | 
660  | 0  | { | 
661  | 0  |     if (tolen < 0)  | 
662  | 0  |         return -1;  | 
663  | 0  |     return bn2binpad(a, to, tolen, LITTLE, UNSIGNED);  | 
664  | 0  | }  | 
665  |  |  | 
666  |  | int BN_signed_bn2lebin(const BIGNUM *a, unsigned char *to, int tolen)  | 
667  | 0  | { | 
668  | 0  |     if (tolen < 0)  | 
669  | 0  |         return -1;  | 
670  | 0  |     return bn2binpad(a, to, tolen, LITTLE, SIGNED);  | 
671  | 0  | }  | 
672  |  |  | 
673  |  | BIGNUM *BN_native2bn(const unsigned char *s, int len, BIGNUM *ret)  | 
674  | 0  | { | 
675  | 0  |     DECLARE_IS_ENDIAN;  | 
676  |  | 
  | 
677  | 0  |     if (IS_LITTLE_ENDIAN)  | 
678  | 0  |         return BN_lebin2bn(s, len, ret);  | 
679  | 0  |     return BN_bin2bn(s, len, ret);  | 
680  | 0  | }  | 
681  |  |  | 
682  |  | BIGNUM *BN_signed_native2bn(const unsigned char *s, int len, BIGNUM *ret)  | 
683  | 0  | { | 
684  | 0  |     DECLARE_IS_ENDIAN;  | 
685  |  | 
  | 
686  | 0  |     if (IS_LITTLE_ENDIAN)  | 
687  | 0  |         return BN_signed_lebin2bn(s, len, ret);  | 
688  | 0  |     return BN_signed_bin2bn(s, len, ret);  | 
689  | 0  | }  | 
690  |  |  | 
691  |  | int BN_bn2nativepad(const BIGNUM *a, unsigned char *to, int tolen)  | 
692  | 0  | { | 
693  | 0  |     DECLARE_IS_ENDIAN;  | 
694  |  | 
  | 
695  | 0  |     if (IS_LITTLE_ENDIAN)  | 
696  | 0  |         return BN_bn2lebinpad(a, to, tolen);  | 
697  | 0  |     return BN_bn2binpad(a, to, tolen);  | 
698  | 0  | }  | 
699  |  |  | 
700  |  | int BN_signed_bn2native(const BIGNUM *a, unsigned char *to, int tolen)  | 
701  | 0  | { | 
702  | 0  |     DECLARE_IS_ENDIAN;  | 
703  |  | 
  | 
704  | 0  |     if (IS_LITTLE_ENDIAN)  | 
705  | 0  |         return BN_signed_bn2lebin(a, to, tolen);  | 
706  | 0  |     return BN_signed_bn2bin(a, to, tolen);  | 
707  | 0  | }  | 
708  |  |  | 
709  |  | int BN_ucmp(const BIGNUM *a, const BIGNUM *b)  | 
710  | 0  | { | 
711  | 0  |     int i;  | 
712  | 0  |     BN_ULONG t1, t2, *ap, *bp;  | 
713  |  | 
  | 
714  | 0  |     ap = a->d;  | 
715  | 0  |     bp = b->d;  | 
716  |  | 
  | 
717  | 0  |     if (BN_get_flags(a, BN_FLG_CONSTTIME)  | 
718  | 0  |             && a->top == b->top) { | 
719  | 0  |         int res = 0;  | 
720  |  | 
  | 
721  | 0  |         for (i = 0; i < b->top; i++) { | 
722  | 0  |             res = constant_time_select_int((int)constant_time_lt_bn(ap[i], bp[i]),  | 
723  | 0  |                                            -1, res);  | 
724  | 0  |             res = constant_time_select_int((int)constant_time_lt_bn(bp[i], ap[i]),  | 
725  | 0  |                                            1, res);  | 
726  | 0  |         }  | 
727  | 0  |         return res;  | 
728  | 0  |     }  | 
729  |  |  | 
730  | 0  |     bn_check_top(a);  | 
731  | 0  |     bn_check_top(b);  | 
732  |  | 
  | 
733  | 0  |     i = a->top - b->top;  | 
734  | 0  |     if (i != 0)  | 
735  | 0  |         return i;  | 
736  |  |  | 
737  | 0  |     for (i = a->top - 1; i >= 0; i--) { | 
738  | 0  |         t1 = ap[i];  | 
739  | 0  |         t2 = bp[i];  | 
740  | 0  |         if (t1 != t2)  | 
741  | 0  |             return ((t1 > t2) ? 1 : -1);  | 
742  | 0  |     }  | 
743  | 0  |     return 0;  | 
744  | 0  | }  | 
745  |  |  | 
746  |  | int BN_cmp(const BIGNUM *a, const BIGNUM *b)  | 
747  | 0  | { | 
748  | 0  |     int i;  | 
749  | 0  |     int gt, lt;  | 
750  | 0  |     BN_ULONG t1, t2;  | 
751  |  | 
  | 
752  | 0  |     if ((a == NULL) || (b == NULL)) { | 
753  | 0  |         if (a != NULL)  | 
754  | 0  |             return -1;  | 
755  | 0  |         else if (b != NULL)  | 
756  | 0  |             return 1;  | 
757  | 0  |         else  | 
758  | 0  |             return 0;  | 
759  | 0  |     }  | 
760  |  |  | 
761  | 0  |     bn_check_top(a);  | 
762  | 0  |     bn_check_top(b);  | 
763  |  | 
  | 
764  | 0  |     if (a->neg != b->neg) { | 
765  | 0  |         if (a->neg)  | 
766  | 0  |             return -1;  | 
767  | 0  |         else  | 
768  | 0  |             return 1;  | 
769  | 0  |     }  | 
770  | 0  |     if (a->neg == 0) { | 
771  | 0  |         gt = 1;  | 
772  | 0  |         lt = -1;  | 
773  | 0  |     } else { | 
774  | 0  |         gt = -1;  | 
775  | 0  |         lt = 1;  | 
776  | 0  |     }  | 
777  |  | 
  | 
778  | 0  |     if (a->top > b->top)  | 
779  | 0  |         return gt;  | 
780  | 0  |     if (a->top < b->top)  | 
781  | 0  |         return lt;  | 
782  | 0  |     for (i = a->top - 1; i >= 0; i--) { | 
783  | 0  |         t1 = a->d[i];  | 
784  | 0  |         t2 = b->d[i];  | 
785  | 0  |         if (t1 > t2)  | 
786  | 0  |             return gt;  | 
787  | 0  |         if (t1 < t2)  | 
788  | 0  |             return lt;  | 
789  | 0  |     }  | 
790  | 0  |     return 0;  | 
791  | 0  | }  | 
792  |  |  | 
793  |  | int BN_set_bit(BIGNUM *a, int n)  | 
794  | 0  | { | 
795  | 0  |     int i, j, k;  | 
796  |  | 
  | 
797  | 0  |     if (n < 0)  | 
798  | 0  |         return 0;  | 
799  |  |  | 
800  | 0  |     i = n / BN_BITS2;  | 
801  | 0  |     j = n % BN_BITS2;  | 
802  | 0  |     if (a->top <= i) { | 
803  | 0  |         if (bn_wexpand(a, i + 1) == NULL)  | 
804  | 0  |             return 0;  | 
805  | 0  |         for (k = a->top; k < i + 1; k++)  | 
806  | 0  |             a->d[k] = 0;  | 
807  | 0  |         a->top = i + 1;  | 
808  | 0  |         a->flags &= ~BN_FLG_FIXED_TOP;  | 
809  | 0  |     }  | 
810  |  |  | 
811  | 0  |     a->d[i] |= (((BN_ULONG)1) << j);  | 
812  | 0  |     bn_check_top(a);  | 
813  | 0  |     return 1;  | 
814  | 0  | }  | 
815  |  |  | 
816  |  | int BN_clear_bit(BIGNUM *a, int n)  | 
817  | 0  | { | 
818  | 0  |     int i, j;  | 
819  |  | 
  | 
820  | 0  |     bn_check_top(a);  | 
821  | 0  |     if (n < 0)  | 
822  | 0  |         return 0;  | 
823  |  |  | 
824  | 0  |     i = n / BN_BITS2;  | 
825  | 0  |     j = n % BN_BITS2;  | 
826  | 0  |     if (a->top <= i)  | 
827  | 0  |         return 0;  | 
828  |  |  | 
829  | 0  |     a->d[i] &= (~(((BN_ULONG)1) << j));  | 
830  | 0  |     bn_correct_top(a);  | 
831  | 0  |     return 1;  | 
832  | 0  | }  | 
833  |  |  | 
834  |  | int BN_is_bit_set(const BIGNUM *a, int n)  | 
835  | 0  | { | 
836  | 0  |     int i, j;  | 
837  |  | 
  | 
838  | 0  |     bn_check_top(a);  | 
839  | 0  |     if (ossl_unlikely(n < 0))  | 
840  | 0  |         return 0;  | 
841  | 0  |     i = n / BN_BITS2;  | 
842  | 0  |     j = n % BN_BITS2;  | 
843  | 0  |     if (ossl_unlikely(a->top <= i))  | 
844  | 0  |         return 0;  | 
845  | 0  |     return (int)(((a->d[i]) >> j) & ((BN_ULONG)1));  | 
846  | 0  | }  | 
847  |  |  | 
848  |  | int ossl_bn_mask_bits_fixed_top(BIGNUM *a, int n)  | 
849  | 0  | { | 
850  | 0  |     int b, w;  | 
851  |  | 
  | 
852  | 0  |     if (n < 0)  | 
853  | 0  |         return 0;  | 
854  |  |  | 
855  | 0  |     w = n / BN_BITS2;  | 
856  | 0  |     b = n % BN_BITS2;  | 
857  | 0  |     if (w >= a->top)  | 
858  | 0  |         return 0;  | 
859  | 0  |     if (b == 0)  | 
860  | 0  |         a->top = w;  | 
861  | 0  |     else { | 
862  | 0  |         a->top = w + 1;  | 
863  | 0  |         a->d[w] &= ~(BN_MASK2 << b);  | 
864  | 0  |     }  | 
865  | 0  |     a->flags |= BN_FLG_FIXED_TOP;  | 
866  | 0  |     return 1;  | 
867  | 0  | }  | 
868  |  |  | 
869  |  | int BN_mask_bits(BIGNUM *a, int n)  | 
870  | 0  | { | 
871  | 0  |     int ret;  | 
872  |  | 
  | 
873  | 0  |     bn_check_top(a);  | 
874  | 0  |     ret = ossl_bn_mask_bits_fixed_top(a, n);  | 
875  | 0  |     if (ret)  | 
876  | 0  |         bn_correct_top(a);  | 
877  | 0  |     return ret;  | 
878  | 0  | }  | 
879  |  |  | 
880  |  | void BN_set_negative(BIGNUM *a, int b)  | 
881  | 0  | { | 
882  | 0  |     if (b && !BN_is_zero(a))  | 
883  | 0  |         a->neg = 1;  | 
884  | 0  |     else  | 
885  | 0  |         a->neg = 0;  | 
886  | 0  | }  | 
887  |  |  | 
888  |  | int bn_cmp_words(const BN_ULONG *a, const BN_ULONG *b, int n)  | 
889  | 0  | { | 
890  | 0  |     int i;  | 
891  | 0  |     BN_ULONG aa, bb;  | 
892  |  | 
  | 
893  | 0  |     if (ossl_unlikely(n == 0))  | 
894  | 0  |         return 0;  | 
895  |  |  | 
896  | 0  |     aa = a[n - 1];  | 
897  | 0  |     bb = b[n - 1];  | 
898  | 0  |     if (ossl_likely(aa != bb))  | 
899  | 0  |         return ((aa > bb) ? 1 : -1);  | 
900  | 0  |     for (i = n - 2; i >= 0; i--) { | 
901  | 0  |         aa = a[i];  | 
902  | 0  |         bb = b[i];  | 
903  | 0  |         if (aa != bb)  | 
904  | 0  |             return ((aa > bb) ? 1 : -1);  | 
905  | 0  |     }  | 
906  | 0  |     return 0;  | 
907  | 0  | }  | 
908  |  |  | 
909  |  | /*  | 
910  |  |  * Here follows a specialised variants of bn_cmp_words().  It has the  | 
911  |  |  * capability of performing the operation on arrays of different sizes. The  | 
912  |  |  * sizes of those arrays is expressed through cl, which is the common length  | 
913  |  |  * ( basically, min(len(a),len(b)) ), and dl, which is the delta between the  | 
914  |  |  * two lengths, calculated as len(a)-len(b). All lengths are the number of  | 
915  |  |  * BN_ULONGs...  | 
916  |  |  */  | 
917  |  |  | 
918  |  | int bn_cmp_part_words(const BN_ULONG *a, const BN_ULONG *b, int cl, int dl)  | 
919  | 0  | { | 
920  | 0  |     int n, i;  | 
921  | 0  |     n = cl - 1;  | 
922  |  | 
  | 
923  | 0  |     if (dl < 0) { | 
924  | 0  |         for (i = dl; i < 0; i++) { | 
925  | 0  |             if (b[n - i] != 0)  | 
926  | 0  |                 return -1;      /* a < b */  | 
927  | 0  |         }  | 
928  | 0  |     }  | 
929  | 0  |     if (dl > 0) { | 
930  | 0  |         for (i = dl; i > 0; i--) { | 
931  | 0  |             if (a[n + i] != 0)  | 
932  | 0  |                 return 1;       /* a > b */  | 
933  | 0  |         }  | 
934  | 0  |     }  | 
935  | 0  |     return bn_cmp_words(a, b, cl);  | 
936  | 0  | }  | 
937  |  |  | 
938  |  | /*-  | 
939  |  |  * Constant-time conditional swap of a and b.  | 
940  |  |  * a and b are swapped if condition is not 0.  | 
941  |  |  * nwords is the number of words to swap.  | 
942  |  |  * Assumes that at least nwords are allocated in both a and b.  | 
943  |  |  * Assumes that no more than nwords are used by either a or b.  | 
944  |  |  */  | 
945  |  | void BN_consttime_swap(BN_ULONG condition, BIGNUM *a, BIGNUM *b, int nwords)  | 
946  | 0  | { | 
947  | 0  |     BN_ULONG t;  | 
948  | 0  |     int i;  | 
949  |  | 
  | 
950  | 0  |     bn_wcheck_size(a, nwords);  | 
951  | 0  |     bn_wcheck_size(b, nwords);  | 
952  |  | 
  | 
953  | 0  |     condition = ((~condition & ((condition - 1))) >> (BN_BITS2 - 1)) - 1;  | 
954  |  | 
  | 
955  | 0  |     t = (a->top ^ b->top) & condition;  | 
956  | 0  |     a->top ^= t;  | 
957  | 0  |     b->top ^= t;  | 
958  |  | 
  | 
959  | 0  |     t = (a->neg ^ b->neg) & condition;  | 
960  | 0  |     a->neg ^= t;  | 
961  | 0  |     b->neg ^= t;  | 
962  |  |  | 
963  |  |     /*-  | 
964  |  |      * BN_FLG_STATIC_DATA: indicates that data may not be written to. Intention  | 
965  |  |      * is actually to treat it as it's read-only data, and some (if not most)  | 
966  |  |      * of it does reside in read-only segment. In other words observation of  | 
967  |  |      * BN_FLG_STATIC_DATA in BN_consttime_swap should be treated as fatal  | 
968  |  |      * condition. It would either cause SEGV or effectively cause data  | 
969  |  |      * corruption.  | 
970  |  |      *  | 
971  |  |      * BN_FLG_MALLOCED: refers to BN structure itself, and hence must be  | 
972  |  |      * preserved.  | 
973  |  |      *  | 
974  |  |      * BN_FLG_SECURE: must be preserved, because it determines how x->d was  | 
975  |  |      * allocated and hence how to free it.  | 
976  |  |      *  | 
977  |  |      * BN_FLG_CONSTTIME: sufficient to mask and swap  | 
978  |  |      *  | 
979  |  |      * BN_FLG_FIXED_TOP: indicates that we haven't called bn_correct_top() on  | 
980  |  |      * the data, so the d array may be padded with additional 0 values (i.e.  | 
981  |  |      * top could be greater than the minimal value that it could be). We should  | 
982  |  |      * be swapping it  | 
983  |  |      */  | 
984  |  | 
  | 
985  | 0  | #define BN_CONSTTIME_SWAP_FLAGS (BN_FLG_CONSTTIME | BN_FLG_FIXED_TOP)  | 
986  |  | 
  | 
987  | 0  |     t = ((a->flags ^ b->flags) & BN_CONSTTIME_SWAP_FLAGS) & condition;  | 
988  | 0  |     a->flags ^= t;  | 
989  | 0  |     b->flags ^= t;  | 
990  |  |  | 
991  |  |     /* conditionally swap the data */  | 
992  | 0  |     for (i = 0; i < nwords; i++) { | 
993  | 0  |         t = (a->d[i] ^ b->d[i]) & condition;  | 
994  | 0  |         a->d[i] ^= t;  | 
995  | 0  |         b->d[i] ^= t;  | 
996  | 0  |     }  | 
997  | 0  | }  | 
998  |  |  | 
999  |  | #undef BN_CONSTTIME_SWAP_FLAGS  | 
1000  |  |  | 
1001  |  | /* Bits of security, see SP800-57 */  | 
1002  |  |  | 
1003  |  | int BN_security_bits(int L, int N)  | 
1004  | 0  | { | 
1005  | 0  |     int secbits, bits;  | 
1006  | 0  |     if (L >= 15360)  | 
1007  | 0  |         secbits = 256;  | 
1008  | 0  |     else if (L >= 7680)  | 
1009  | 0  |         secbits = 192;  | 
1010  | 0  |     else if (L >= 3072)  | 
1011  | 0  |         secbits = 128;  | 
1012  | 0  |     else if (L >= 2048)  | 
1013  | 0  |         secbits = 112;  | 
1014  | 0  |     else if (L >= 1024)  | 
1015  | 0  |         secbits = 80;  | 
1016  | 0  |     else  | 
1017  | 0  |         return 0;  | 
1018  | 0  |     if (N == -1)  | 
1019  | 0  |         return secbits;  | 
1020  | 0  |     bits = N / 2;  | 
1021  | 0  |     if (bits < 80)  | 
1022  | 0  |         return 0;  | 
1023  | 0  |     return bits >= secbits ? secbits : bits;  | 
1024  | 0  | }  | 
1025  |  |  | 
1026  |  | void BN_zero_ex(BIGNUM *a)  | 
1027  | 32  | { | 
1028  | 32  |     a->neg = 0;  | 
1029  | 32  |     a->top = 0;  | 
1030  | 32  |     a->flags &= ~BN_FLG_FIXED_TOP;  | 
1031  | 32  | }  | 
1032  |  |  | 
1033  |  | int BN_abs_is_word(const BIGNUM *a, const BN_ULONG w)  | 
1034  | 810  | { | 
1035  | 810  |     return ((a->top == 1) && (a->d[0] == w)) || ((w == 0) && (a->top == 0));  | 
1036  | 810  | }  | 
1037  |  |  | 
1038  |  | int BN_is_zero(const BIGNUM *a)  | 
1039  | 127k  | { | 
1040  | 127k  |     return a->top == 0;  | 
1041  | 127k  | }  | 
1042  |  |  | 
1043  |  | int BN_is_one(const BIGNUM *a)  | 
1044  | 0  | { | 
1045  | 0  |     return BN_abs_is_word(a, 1) && !a->neg;  | 
1046  | 0  | }  | 
1047  |  |  | 
1048  |  | int BN_is_word(const BIGNUM *a, const BN_ULONG w)  | 
1049  | 810  | { | 
1050  | 810  |     return BN_abs_is_word(a, w) && (!w || !a->neg);  | 
1051  | 810  | }  | 
1052  |  |  | 
1053  |  | int ossl_bn_is_word_fixed_top(const BIGNUM *a, const BN_ULONG w)  | 
1054  | 0  | { | 
1055  | 0  |     int res, i;  | 
1056  | 0  |     const BN_ULONG *ap = a->d;  | 
1057  |  | 
  | 
1058  | 0  |     if (a->neg || a->top == 0)  | 
1059  | 0  |         return 0;  | 
1060  |  |  | 
1061  | 0  |     res = constant_time_select_int((int)constant_time_eq_bn(ap[0], w), 1, 0);  | 
1062  |  | 
  | 
1063  | 0  |     for (i = 1; i < a->top; i++)  | 
1064  | 0  |         res = constant_time_select_int((int)constant_time_is_zero_bn(ap[i]),  | 
1065  | 0  |                                        res, 0);  | 
1066  | 0  |     return res;  | 
1067  | 0  | }  | 
1068  |  |  | 
1069  |  | int BN_is_odd(const BIGNUM *a)  | 
1070  | 0  | { | 
1071  | 0  |     return (a->top > 0) && (a->d[0] & 1);  | 
1072  | 0  | }  | 
1073  |  |  | 
1074  |  | int BN_is_negative(const BIGNUM *a)  | 
1075  | 0  | { | 
1076  | 0  |     return (a->neg != 0);  | 
1077  | 0  | }  | 
1078  |  |  | 
1079  |  | int BN_to_montgomery(BIGNUM *r, const BIGNUM *a, BN_MONT_CTX *mont,  | 
1080  |  |                      BN_CTX *ctx)  | 
1081  | 0  | { | 
1082  | 0  |     return BN_mod_mul_montgomery(r, a, &(mont->RR), mont, ctx);  | 
1083  | 0  | }  | 
1084  |  |  | 
1085  |  | void BN_with_flags(BIGNUM *dest, const BIGNUM *b, int flags)  | 
1086  | 0  | { | 
1087  | 0  |     dest->d = b->d;  | 
1088  | 0  |     dest->top = b->top;  | 
1089  | 0  |     dest->dmax = b->dmax;  | 
1090  | 0  |     dest->neg = b->neg;  | 
1091  | 0  |     dest->flags = ((dest->flags & BN_FLG_MALLOCED)  | 
1092  | 0  |                    | (b->flags & ~BN_FLG_MALLOCED)  | 
1093  | 0  |                    | BN_FLG_STATIC_DATA | flags);  | 
1094  | 0  | }  | 
1095  |  |  | 
1096  |  | BN_GENCB *BN_GENCB_new(void)  | 
1097  | 0  | { | 
1098  | 0  |     BN_GENCB *ret;  | 
1099  |  | 
  | 
1100  | 0  |     if ((ret = OPENSSL_malloc(sizeof(*ret))) == NULL)  | 
1101  | 0  |         return NULL;  | 
1102  |  |  | 
1103  | 0  |     return ret;  | 
1104  | 0  | }  | 
1105  |  |  | 
1106  |  | void BN_GENCB_free(BN_GENCB *cb)  | 
1107  | 0  | { | 
1108  | 0  |     if (cb == NULL)  | 
1109  | 0  |         return;  | 
1110  | 0  |     OPENSSL_free(cb);  | 
1111  | 0  | }  | 
1112  |  |  | 
1113  |  | void BN_set_flags(BIGNUM *b, int n)  | 
1114  | 0  | { | 
1115  | 0  |     b->flags |= n;  | 
1116  | 0  | }  | 
1117  |  |  | 
1118  |  | int BN_get_flags(const BIGNUM *b, int n)  | 
1119  | 277k  | { | 
1120  | 277k  |     return b->flags & n;  | 
1121  | 277k  | }  | 
1122  |  |  | 
1123  |  | /* Populate a BN_GENCB structure with an "old"-style callback */  | 
1124  |  | void BN_GENCB_set_old(BN_GENCB *gencb, void (*callback) (int, int, void *),  | 
1125  |  |                       void *cb_arg)  | 
1126  | 0  | { | 
1127  | 0  |     BN_GENCB *tmp_gencb = gencb;  | 
1128  | 0  |     tmp_gencb->ver = 1;  | 
1129  | 0  |     tmp_gencb->arg = cb_arg;  | 
1130  | 0  |     tmp_gencb->cb.cb_1 = callback;  | 
1131  | 0  | }  | 
1132  |  |  | 
1133  |  | /* Populate a BN_GENCB structure with a "new"-style callback */  | 
1134  |  | void BN_GENCB_set(BN_GENCB *gencb, int (*callback) (int, int, BN_GENCB *),  | 
1135  |  |                   void *cb_arg)  | 
1136  | 0  | { | 
1137  | 0  |     BN_GENCB *tmp_gencb = gencb;  | 
1138  | 0  |     tmp_gencb->ver = 2;  | 
1139  | 0  |     tmp_gencb->arg = cb_arg;  | 
1140  | 0  |     tmp_gencb->cb.cb_2 = callback;  | 
1141  | 0  | }  | 
1142  |  |  | 
1143  |  | void *BN_GENCB_get_arg(BN_GENCB *cb)  | 
1144  | 0  | { | 
1145  | 0  |     return cb->arg;  | 
1146  | 0  | }  | 
1147  |  |  | 
1148  |  | BIGNUM *bn_wexpand(BIGNUM *a, int words)  | 
1149  | 34.3k  | { | 
1150  | 34.3k  |     return (words <= a->dmax) ? a : bn_expand2(a, words);  | 
1151  | 34.3k  | }  | 
1152  |  |  | 
1153  |  | void bn_correct_top_consttime(BIGNUM *a)  | 
1154  | 0  | { | 
1155  | 0  |     int j, atop;  | 
1156  | 0  |     BN_ULONG limb;  | 
1157  | 0  |     unsigned int mask;  | 
1158  |  | 
  | 
1159  | 0  |     for (j = 0, atop = 0; j < a->dmax; j++) { | 
1160  | 0  |         limb = a->d[j];  | 
1161  | 0  |         limb |= 0 - limb;  | 
1162  | 0  |         limb >>= BN_BITS2 - 1;  | 
1163  | 0  |         limb = 0 - limb;  | 
1164  | 0  |         mask = (unsigned int)limb;  | 
1165  | 0  |         mask &= constant_time_msb(j - a->top);  | 
1166  | 0  |         atop = constant_time_select_int(mask, j + 1, atop);  | 
1167  | 0  |     }  | 
1168  |  | 
  | 
1169  | 0  |     mask = constant_time_eq_int(atop, 0);  | 
1170  | 0  |     a->top = atop;  | 
1171  | 0  |     a->neg = constant_time_select_int(mask, 0, a->neg);  | 
1172  | 0  |     a->flags &= ~BN_FLG_FIXED_TOP;  | 
1173  | 0  | }  | 
1174  |  |  | 
1175  |  | void bn_correct_top(BIGNUM *a)  | 
1176  | 34.3k  | { | 
1177  | 34.3k  |     BN_ULONG *ftl;  | 
1178  | 34.3k  |     int tmp_top = a->top;  | 
1179  |  |  | 
1180  | 34.3k  |     if (ossl_likely(tmp_top > 0)) { | 
1181  | 34.3k  |         for (ftl = &(a->d[tmp_top]); tmp_top > 0; tmp_top--) { | 
1182  | 34.3k  |             ftl--;  | 
1183  | 34.3k  |             if (*ftl != 0)  | 
1184  | 34.3k  |                 break;  | 
1185  | 34.3k  |         }  | 
1186  | 34.3k  |         a->top = tmp_top;  | 
1187  | 34.3k  |     }  | 
1188  | 34.3k  |     if (a->top == 0)  | 
1189  | 0  |         a->neg = 0;  | 
1190  | 34.3k  |     a->flags &= ~BN_FLG_FIXED_TOP;  | 
1191  | 34.3k  |     bn_pollute(a);  | 
1192  | 34.3k  | }  |