/src/nettle/ecc-mod-arith.c
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1  |  | /* ecc-mod-arith.c  | 
2  |  |  | 
3  |  |    Copyright (C) 2013, 2014 Niels Möller  | 
4  |  |  | 
5  |  |    This file is part of GNU Nettle.  | 
6  |  |  | 
7  |  |    GNU Nettle is free software: you can redistribute it and/or  | 
8  |  |    modify it under the terms of either:  | 
9  |  |  | 
10  |  |      * the GNU Lesser General Public License as published by the Free  | 
11  |  |        Software Foundation; either version 3 of the License, or (at your  | 
12  |  |        option) any later version.  | 
13  |  |  | 
14  |  |    or  | 
15  |  |  | 
16  |  |      * the GNU General Public License as published by the Free  | 
17  |  |        Software Foundation; either version 2 of the License, or (at your  | 
18  |  |        option) any later version.  | 
19  |  |  | 
20  |  |    or both in parallel, as here.  | 
21  |  |  | 
22  |  |    GNU Nettle is distributed in the hope that it will be useful,  | 
23  |  |    but WITHOUT ANY WARRANTY; without even the implied warranty of  | 
24  |  |    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU  | 
25  |  |    General Public License for more details.  | 
26  |  |  | 
27  |  |    You should have received copies of the GNU General Public License and  | 
28  |  |    the GNU Lesser General Public License along with this program.  If  | 
29  |  |    not, see http://www.gnu.org/licenses/.  | 
30  |  | */  | 
31  |  |  | 
32  |  | /* Development of Nettle's ECC support was funded by the .SE Internet Fund. */  | 
33  |  |  | 
34  |  | #if HAVE_CONFIG_H  | 
35  |  | # include "config.h"  | 
36  |  | #endif  | 
37  |  |  | 
38  |  | #include <assert.h>  | 
39  |  |  | 
40  |  | #include "ecc-internal.h"  | 
41  |  |  | 
42  |  | /* Routines for modp arithmetic. All values are ecc->size limbs, but  | 
43  |  |    not necessarily < p. */  | 
44  |  |  | 
45  |  | int  | 
46  |  | ecc_mod_zero_p (const struct ecc_modulo *m, const mp_limb_t *xp_in)  | 
47  | 0  | { | 
48  | 0  |   volatile mp_limb_t is_non_zero, is_not_p;  | 
49  | 0  |   const volatile mp_limb_t *xp;  | 
50  | 0  |   mp_size_t i;  | 
51  |  | 
  | 
52  | 0  |   for (xp = xp_in, i = 0, is_non_zero = is_not_p = 0; i < m->size; i++)  | 
53  | 0  |     { | 
54  | 0  |       is_non_zero |= xp[i];  | 
55  | 0  |       is_not_p |= (xp[i] ^ m->m[i]);  | 
56  | 0  |     }  | 
57  |  | 
  | 
58  | 0  |   return is_zero_limb (is_non_zero) | is_zero_limb (is_not_p);  | 
59  | 0  | }  | 
60  |  |  | 
61  |  | int  | 
62  |  | ecc_mod_equal_p (const struct ecc_modulo *m, const mp_limb_t *a,  | 
63  |  |      const mp_limb_t *ref, mp_limb_t *scratch)  | 
64  | 0  | { | 
65  | 0  |   mp_limb_t cy;  | 
66  | 0  |   cy = mpn_sub_n (scratch, a, ref, m->size);  | 
67  |  |   /* If cy > 0, i.e., a < ref, then they can't be equal mod m. */  | 
68  | 0  |   return (1 - cy) & ecc_mod_zero_p (m, scratch);  | 
69  | 0  | }  | 
70  |  |  | 
71  |  | void  | 
72  |  | ecc_mod_add (const struct ecc_modulo *m, mp_limb_t *rp,  | 
73  |  |        const mp_limb_t *ap, const mp_limb_t *bp)  | 
74  | 0  | { | 
75  | 0  |   mp_limb_t cy;  | 
76  | 0  |   cy = mpn_add_n (rp, ap, bp, m->size);  | 
77  | 0  |   cy = mpn_cnd_add_n (cy, rp, rp, m->B, m->size);  | 
78  | 0  |   cy = mpn_cnd_add_n (cy, rp, rp, m->B, m->size);  | 
79  | 0  |   assert_maybe (cy == 0);  | 
80  | 0  | }  | 
81  |  |  | 
82  |  | void  | 
83  |  | ecc_mod_sub (const struct ecc_modulo *m, mp_limb_t *rp,  | 
84  |  |        const mp_limb_t *ap, const mp_limb_t *bp)  | 
85  | 0  | { | 
86  | 0  |   mp_limb_t cy;  | 
87  | 0  |   cy = mpn_sub_n (rp, ap, bp, m->size);  | 
88  |  |   /* The adjustments for this function work differently depending on  | 
89  |  |      the value of the most significant bit of m.  | 
90  |  |  | 
91  |  |      If m has a most significant bit of zero, then the first  | 
92  |  |      adjustment step conditionally adds 2m. If in addition, inputs are  | 
93  |  |      in the 0 <= a,b < 2m range, then the first adjustment guarantees  | 
94  |  |      that result is in that same range. The second adjustment step is  | 
95  |  |      needed only if b > 2m, it then ensures output is correct modulo  | 
96  |  |      m, but nothing more.  | 
97  |  |  | 
98  |  |      If m has a most significant bit of one, Bm2m and B are the same,  | 
99  |  |      and this function works analogously to ecc_mod_add.  | 
100  |  |    */  | 
101  | 0  |   cy = mpn_cnd_sub_n (cy, rp, rp, m->Bm2m, m->size);  | 
102  | 0  |   cy = mpn_cnd_sub_n (cy, rp, rp, m->B, m->size);  | 
103  | 0  |   assert_maybe (cy == 0);  | 
104  | 0  | }  | 
105  |  |  | 
106  |  | void  | 
107  |  | ecc_mod_mul_1 (const struct ecc_modulo *m, mp_limb_t *rp,  | 
108  |  |          const mp_limb_t *ap, mp_limb_t b)  | 
109  | 0  | { | 
110  | 0  |   mp_limb_t hi;  | 
111  |  | 
  | 
112  | 0  |   assert (b <= 0xffffffff);  | 
113  | 0  |   hi = mpn_mul_1 (rp, ap, m->size, b);  | 
114  | 0  |   hi = mpn_addmul_1 (rp, m->B, m->size, hi);  | 
115  | 0  |   assert_maybe (hi <= 1);  | 
116  | 0  |   hi = mpn_cnd_add_n (hi, rp, rp, m->B, m->size);  | 
117  |  |   /* Sufficient if b < B^size / p */  | 
118  | 0  |   assert_maybe (hi == 0);  | 
119  | 0  | }  | 
120  |  |  | 
121  |  | void  | 
122  |  | ecc_mod_addmul_1 (const struct ecc_modulo *m, mp_limb_t *rp,  | 
123  |  |       const mp_limb_t *ap, mp_limb_t b)  | 
124  | 0  | { | 
125  | 0  |   mp_limb_t hi;  | 
126  |  | 
  | 
127  | 0  |   assert (b <= 0xffffffff);  | 
128  | 0  |   hi = mpn_addmul_1 (rp, ap, m->size, b);  | 
129  | 0  |   hi = mpn_addmul_1 (rp, m->B, m->size, hi);  | 
130  | 0  |   assert_maybe (hi <= 1);  | 
131  | 0  |   hi = mpn_cnd_add_n (hi, rp, rp, m->B, m->size);  | 
132  |  |   /* Sufficient roughly if b < B^size / p */  | 
133  | 0  |   assert_maybe (hi == 0);  | 
134  | 0  | }  | 
135  |  |     | 
136  |  | void  | 
137  |  | ecc_mod_submul_1 (const struct ecc_modulo *m, mp_limb_t *rp,  | 
138  |  |       const mp_limb_t *ap, mp_limb_t b)  | 
139  | 0  | { | 
140  | 0  |   mp_limb_t hi;  | 
141  |  | 
  | 
142  | 0  |   assert (b <= 0xffffffff);  | 
143  | 0  |   hi = mpn_submul_1 (rp, ap, m->size, b);  | 
144  | 0  |   hi = mpn_submul_1 (rp, m->B, m->size, hi);  | 
145  | 0  |   assert_maybe (hi <= 1);  | 
146  | 0  |   hi = mpn_cnd_sub_n (hi, rp, rp, m->B, m->size);  | 
147  |  |   /* Sufficient roughly if b < B^size / p */  | 
148  | 0  |   assert_maybe (hi == 0);  | 
149  | 0  | }  | 
150  |  |  | 
151  |  | void  | 
152  |  | ecc_mod_mul (const struct ecc_modulo *m, mp_limb_t *rp,  | 
153  |  |        const mp_limb_t *ap, const mp_limb_t *bp, mp_limb_t *tp)  | 
154  | 0  | { | 
155  | 0  |   mpn_mul_n (tp, ap, bp, m->size);  | 
156  | 0  |   m->reduce (m, rp, tp);  | 
157  | 0  | }  | 
158  |  |  | 
159  |  | void  | 
160  |  | ecc_mod_sqr (const struct ecc_modulo *m, mp_limb_t *rp,  | 
161  |  |        const mp_limb_t *ap, mp_limb_t *tp)  | 
162  | 0  | { | 
163  | 0  |   mpn_sqr (tp, ap, m->size);  | 
164  | 0  |   m->reduce (m, rp, tp);  | 
165  | 0  | }  | 
166  |  |  | 
167  |  | void  | 
168  |  | ecc_mod_mul_canonical (const struct ecc_modulo *m, mp_limb_t *rp,  | 
169  |  |            const mp_limb_t *ap, const mp_limb_t *bp, mp_limb_t *tp)  | 
170  | 0  | { | 
171  | 0  |   mp_limb_t cy;  | 
172  | 0  |   mpn_mul_n (tp, ap, bp, m->size);  | 
173  | 0  |   m->reduce (m, tp + m->size, tp);  | 
174  |  | 
  | 
175  | 0  |   cy = mpn_sub_n (rp, tp + m->size, m->m, m->size);  | 
176  | 0  |   cnd_copy (cy, rp, tp + m->size, m->size);  | 
177  | 0  | }  | 
178  |  |  | 
179  |  | void  | 
180  |  | ecc_mod_sqr_canonical (const struct ecc_modulo *m, mp_limb_t *rp,  | 
181  |  |            const mp_limb_t *ap, mp_limb_t *tp)  | 
182  | 0  | { | 
183  | 0  |   mp_limb_t cy;  | 
184  | 0  |   mpn_sqr (tp, ap, m->size);  | 
185  | 0  |   m->reduce (m, tp + m->size, tp);  | 
186  |  | 
  | 
187  | 0  |   cy = mpn_sub_n (rp, tp + m->size, m->m, m->size);  | 
188  | 0  |   cnd_copy (cy, rp, tp + m->size, m->size);  | 
189  | 0  | }  | 
190  |  |  | 
191  |  | void  | 
192  |  | ecc_mod_pow_2k (const struct ecc_modulo *m,  | 
193  |  |     mp_limb_t *rp, const mp_limb_t *xp,  | 
194  |  |     unsigned k, mp_limb_t *tp)  | 
195  | 0  | { | 
196  | 0  |   ecc_mod_sqr (m, rp, xp, tp);  | 
197  | 0  |   while (--k > 0)  | 
198  | 0  |     ecc_mod_sqr (m, rp, rp, tp);  | 
199  | 0  | }  | 
200  |  |  | 
201  |  | void  | 
202  |  | ecc_mod_pow_2k_mul (const struct ecc_modulo *m,  | 
203  |  |         mp_limb_t *rp, const mp_limb_t *xp,  | 
204  |  |         unsigned k, const mp_limb_t *yp,  | 
205  |  |         mp_limb_t *tp)  | 
206  | 0  | { | 
207  | 0  |   ecc_mod_pow_2k (m, rp, xp, k, tp);  | 
208  | 0  |   ecc_mod_mul (m, rp, rp, yp, tp);  | 
209  | 0  | }  |