7 #ifndef SECP256K1_ECMULT_CONST_IMPL_H
8 #define SECP256K1_ECMULT_CONST_IMPL_H
16 #define ECMULT_CONST_TABLE_GET_GE(r,pre,n,w) do { \
18 int abs_n = (n) * (((n) > 0) * 2 - 1); \
19 int idx_n = abs_n / 2; \
21 VERIFY_CHECK(((n) & 1) == 1); \
22 VERIFY_CHECK((n) >= -((1 << ((w)-1)) - 1)); \
23 VERIFY_CHECK((n) <= ((1 << ((w)-1)) - 1)); \
24 VERIFY_SETUP(secp256k1_fe_clear(&(r)->x)); \
25 VERIFY_SETUP(secp256k1_fe_clear(&(r)->y)); \
26 for (m = 0; m < ECMULT_TABLE_SIZE(w); m++) { \
29 secp256k1_fe_cmov(&(r)->x, &(pre)[m].x, m == idx_n); \
30 secp256k1_fe_cmov(&(r)->y, &(pre)[m].y, m == idx_n); \
33 secp256k1_fe_negate(&neg_y, &(r)->y, 1); \
34 secp256k1_fe_cmov(&(r)->y, &neg_y, (n) != abs_n); \
51 static int secp256k1_wnaf_const(
int *wnaf,
secp256k1_scalar s,
int w,
int size) {
78 flip = secp256k1_scalar_is_high(&s);
80 bit = flip ^ !secp256k1_scalar_is_even(&s);
82 secp256k1_scalar_negate(&neg_s, &s);
83 not_neg_one = !secp256k1_scalar_is_one(&neg_s);
84 secp256k1_scalar_cadd_bit(&s, bit, not_neg_one);
90 global_sign = secp256k1_scalar_cond_negate(&s, flip);
91 global_sign *= not_neg_one * 2 - 1;
95 u_last = secp256k1_scalar_shr_int(&s, w);
96 while (word * w < size) {
101 u = secp256k1_scalar_shr_int(&s, w);
103 even = ((u & 1) == 0);
104 sign = 2 * (u_last > 0) - 1;
106 u_last -= sign * even * (1 << w);
109 wnaf[word++] = u_last * global_sign;
113 wnaf[word] = u * global_sign;
126 #ifdef USE_ENDOMORPHISM
139 #ifdef USE_ENDOMORPHISM
143 secp256k1_scalar_split_lambda(&q_1, &q_lam, &sc);
144 skew_1 = secp256k1_wnaf_const(wnaf_1, q_1,
WINDOW_A - 1, 128);
145 skew_lam = secp256k1_wnaf_const(wnaf_lam, q_lam,
WINDOW_A - 1, 128);
149 skew_1 = secp256k1_wnaf_const(wnaf_1, sc,
WINDOW_A - 1, size);
150 #ifdef USE_ENDOMORPHISM
161 secp256k1_gej_set_ge(r, a);
162 secp256k1_ecmult_odd_multiples_table_globalz_windowa(pre_a, &Z, r);
164 secp256k1_fe_normalize_weak(&pre_a[i].y);
166 #ifdef USE_ENDOMORPHISM
169 secp256k1_ge_mul_lambda(&pre_a_lam[i], &pre_a[i]);
180 secp256k1_gej_set_ge(r, &tmpa);
181 #ifdef USE_ENDOMORPHISM
186 secp256k1_gej_add_ge(r, r, &tmpa);
193 for (j = 0; j <
WINDOW_A - 1; ++j) {
194 secp256k1_gej_double_nonzero(r, r, NULL);
200 secp256k1_gej_add_ge(r, r, &tmpa);
201 #ifdef USE_ENDOMORPHISM
206 secp256k1_gej_add_ge(r, r, &tmpa);
211 secp256k1_fe_mul(&r->
z, &r->
z, &Z);
217 #ifdef USE_ENDOMORPHISM
222 secp256k1_gej_set_ge(&tmpj, &correction);
223 secp256k1_gej_double_var(&tmpj, &tmpj, NULL);
224 secp256k1_ge_set_gej(&correction, &tmpj);
225 secp256k1_ge_to_storage(&correction_1_stor, a);
226 #ifdef USE_ENDOMORPHISM
228 secp256k1_ge_to_storage(&correction_lam_stor, a);
231 secp256k1_ge_to_storage(&a2_stor, &correction);
234 secp256k1_ge_storage_cmov(&correction_1_stor, &a2_stor, skew_1 == 2);
235 #ifdef USE_ENDOMORPHISM
237 secp256k1_ge_storage_cmov(&correction_lam_stor, &a2_stor, skew_lam == 2);
242 secp256k1_ge_from_storage(&correction, &correction_1_stor);
243 secp256k1_ge_neg(&correction, &correction);
244 secp256k1_gej_add_ge(r, r, &correction);
246 #ifdef USE_ENDOMORPHISM
248 secp256k1_ge_from_storage(&correction, &correction_lam_stor);
249 secp256k1_ge_neg(&correction, &correction);
250 secp256k1_ge_mul_lambda(&correction, &correction);
251 secp256k1_gej_add_ge(r, r, &correction);
#define ECMULT_CONST_TABLE_GET_GE(r, pre, n, w)
#define ECMULT_TABLE_SIZE(w)
The number of entries a table with precomputed multiples needs to have.
#define WNAF_SIZE_BITS(bits, w)
A group element of the secp256k1 curve, in affine coordinates.
A group element of the secp256k1 curve, in jacobian coordinates.
A scalar modulo the group order of the secp256k1 curve.
#define VERIFY_CHECK(cond)