ecp_nistz256.c 49.8 KB
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/******************************************************************************
 *                                                                            *
 * Copyright 2014 Intel Corporation                                           *
 *                                                                            *
 * Licensed under the Apache License, Version 2.0 (the "License");            *
 * you may not use this file except in compliance with the License.           *
 * You may obtain a copy of the License at                                    *
 *                                                                            *
 *    http://www.apache.org/licenses/LICENSE-2.0                              *
 *                                                                            *
 * Unless required by applicable law or agreed to in writing, software        *
 * distributed under the License is distributed on an "AS IS" BASIS,          *
 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.   *
 * See the License for the specific language governing permissions and        *
 * limitations under the License.                                             *
 *                                                                            *
 ******************************************************************************
 *                                                                            *
 * Developers and authors:                                                    *
 * Shay Gueron (1, 2), and Vlad Krasnov (1)                                   *
 * (1) Intel Corporation, Israel Development Center                           *
 * (2) University of Haifa                                                    *
 * Reference:                                                                 *
 * S.Gueron and V.Krasnov, "Fast Prime Field Elliptic Curve Cryptography with *
 *                          256 Bit Primes"                                   *
 *                                                                            *
 ******************************************************************************/

#include <string.h>

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#include "internal/cryptlib.h"
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#include "internal/bn_int.h"
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#include "ec_lcl.h"

#if BN_BITS2 != 64
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# define TOBN(hi,lo)    lo,hi
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#else
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# define TOBN(hi,lo)    ((BN_ULONG)hi<<32|lo)
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#endif

#if defined(__GNUC__)
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# define ALIGN32        __attribute((aligned(32)))
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#elif defined(_MSC_VER)
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# define ALIGN32        __declspec(align(32))
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#else
# define ALIGN32
#endif

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#define ALIGNPTR(p,N)   ((unsigned char *)p+N-(size_t)p%N)
#define P256_LIMBS      (256/BN_BITS2)
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typedef unsigned short u16;

typedef struct {
    BN_ULONG X[P256_LIMBS];
    BN_ULONG Y[P256_LIMBS];
    BN_ULONG Z[P256_LIMBS];
} P256_POINT;

typedef struct {
    BN_ULONG X[P256_LIMBS];
    BN_ULONG Y[P256_LIMBS];
} P256_POINT_AFFINE;

typedef P256_POINT_AFFINE PRECOMP256_ROW[64];

/* structure for precomputed multiples of the generator */
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struct nistz256_pre_comp_st {
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    const EC_GROUP *group;      /* Parent EC_GROUP object */
    size_t w;                   /* Window size */
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    /*
     * Constant time access to the X and Y coordinates of the pre-computed,
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     * generator multiplies, in the Montgomery domain. Pre-calculated
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     * multiplies are stored in affine form.
     */
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    PRECOMP256_ROW *precomp;
    void *precomp_storage;
    int references;
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};
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/* Functions implemented in assembly */
/* Modular mul by 2: res = 2*a mod P */
void ecp_nistz256_mul_by_2(BN_ULONG res[P256_LIMBS],
                           const BN_ULONG a[P256_LIMBS]);
/* Modular div by 2: res = a/2 mod P */
void ecp_nistz256_div_by_2(BN_ULONG res[P256_LIMBS],
                           const BN_ULONG a[P256_LIMBS]);
/* Modular mul by 3: res = 3*a mod P */
void ecp_nistz256_mul_by_3(BN_ULONG res[P256_LIMBS],
                           const BN_ULONG a[P256_LIMBS]);
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/* Modular add: res = a+b mod P   */
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void ecp_nistz256_add(BN_ULONG res[P256_LIMBS],
                      const BN_ULONG a[P256_LIMBS],
                      const BN_ULONG b[P256_LIMBS]);
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/* Modular sub: res = a-b mod P   */
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void ecp_nistz256_sub(BN_ULONG res[P256_LIMBS],
                      const BN_ULONG a[P256_LIMBS],
                      const BN_ULONG b[P256_LIMBS]);
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/* Modular neg: res = -a mod P    */
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void ecp_nistz256_neg(BN_ULONG res[P256_LIMBS], const BN_ULONG a[P256_LIMBS]);
/* Montgomery mul: res = a*b*2^-256 mod P */
void ecp_nistz256_mul_mont(BN_ULONG res[P256_LIMBS],
                           const BN_ULONG a[P256_LIMBS],
                           const BN_ULONG b[P256_LIMBS]);
/* Montgomery sqr: res = a*a*2^-256 mod P */
void ecp_nistz256_sqr_mont(BN_ULONG res[P256_LIMBS],
                           const BN_ULONG a[P256_LIMBS]);
/* Convert a number from Montgomery domain, by multiplying with 1 */
void ecp_nistz256_from_mont(BN_ULONG res[P256_LIMBS],
                            const BN_ULONG in[P256_LIMBS]);
/* Convert a number to Montgomery domain, by multiplying with 2^512 mod P*/
void ecp_nistz256_to_mont(BN_ULONG res[P256_LIMBS],
                          const BN_ULONG in[P256_LIMBS]);
/* Functions that perform constant time access to the precomputed tables */
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void ecp_nistz256_scatter_w5(P256_POINT *val,
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                             const P256_POINT *in_t, int idx);
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void ecp_nistz256_gather_w5(P256_POINT *val,
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                            const P256_POINT *in_t, int idx);
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void ecp_nistz256_scatter_w7(P256_POINT_AFFINE *val,
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                             const P256_POINT_AFFINE *in_t, int idx);
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void ecp_nistz256_gather_w7(P256_POINT_AFFINE *val,
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                            const P256_POINT_AFFINE *in_t, int idx);
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/* One converted into the Montgomery domain */
static const BN_ULONG ONE[P256_LIMBS] = {
    TOBN(0x00000000, 0x00000001), TOBN(0xffffffff, 0x00000000),
    TOBN(0xffffffff, 0xffffffff), TOBN(0x00000000, 0xfffffffe)
};

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static NISTZ256_PRE_COMP *ecp_nistz256_pre_comp_new(const EC_GROUP *group);
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/* Precomputed tables for the default generator */
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Andy Polyakov 已提交
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extern const PRECOMP256_ROW ecp_nistz256_precomputed[37];
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/* Recode window to a signed digit, see ecp_nistputil.c for details */
static unsigned int _booth_recode_w5(unsigned int in)
{
    unsigned int s, d;

    s = ~((in >> 5) - 1);
    d = (1 << 6) - in - 1;
    d = (d & s) | (in & ~s);
    d = (d >> 1) + (d & 1);

    return (d << 1) + (s & 1);
}

static unsigned int _booth_recode_w7(unsigned int in)
{
    unsigned int s, d;

    s = ~((in >> 7) - 1);
    d = (1 << 8) - in - 1;
    d = (d & s) | (in & ~s);
    d = (d >> 1) + (d & 1);

    return (d << 1) + (s & 1);
}

static void copy_conditional(BN_ULONG dst[P256_LIMBS],
                             const BN_ULONG src[P256_LIMBS], BN_ULONG move)
{
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    BN_ULONG mask1 = 0-move;
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    BN_ULONG mask2 = ~mask1;

    dst[0] = (src[0] & mask1) ^ (dst[0] & mask2);
    dst[1] = (src[1] & mask1) ^ (dst[1] & mask2);
    dst[2] = (src[2] & mask1) ^ (dst[2] & mask2);
    dst[3] = (src[3] & mask1) ^ (dst[3] & mask2);
    if (P256_LIMBS == 8) {
        dst[4] = (src[4] & mask1) ^ (dst[4] & mask2);
        dst[5] = (src[5] & mask1) ^ (dst[5] & mask2);
        dst[6] = (src[6] & mask1) ^ (dst[6] & mask2);
        dst[7] = (src[7] & mask1) ^ (dst[7] & mask2);
    }
}

static BN_ULONG is_zero(BN_ULONG in)
{
    in |= (0 - in);
    in = ~in;
    in >>= BN_BITS2 - 1;
    return in;
}

static BN_ULONG is_equal(const BN_ULONG a[P256_LIMBS],
                         const BN_ULONG b[P256_LIMBS])
{
    BN_ULONG res;

    res = a[0] ^ b[0];
    res |= a[1] ^ b[1];
    res |= a[2] ^ b[2];
    res |= a[3] ^ b[3];
    if (P256_LIMBS == 8) {
        res |= a[4] ^ b[4];
        res |= a[5] ^ b[5];
        res |= a[6] ^ b[6];
        res |= a[7] ^ b[7];
    }

    return is_zero(res);
}

static BN_ULONG is_one(const BN_ULONG a[P256_LIMBS])
{
    BN_ULONG res;

    res = a[0] ^ ONE[0];
    res |= a[1] ^ ONE[1];
    res |= a[2] ^ ONE[2];
    res |= a[3] ^ ONE[3];
    if (P256_LIMBS == 8) {
        res |= a[4] ^ ONE[4];
        res |= a[5] ^ ONE[5];
        res |= a[6] ^ ONE[6];
    }

    return is_zero(res);
}

#ifndef ECP_NISTZ256_REFERENCE_IMPLEMENTATION
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void ecp_nistz256_point_double(P256_POINT *r, const P256_POINT *a);
void ecp_nistz256_point_add(P256_POINT *r,
                            const P256_POINT *a, const P256_POINT *b);
void ecp_nistz256_point_add_affine(P256_POINT *r,
                                   const P256_POINT *a,
                                   const P256_POINT_AFFINE *b);
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#else
/* Point double: r = 2*a */
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static void ecp_nistz256_point_double(P256_POINT *r, const P256_POINT *a)
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{
    BN_ULONG S[P256_LIMBS];
    BN_ULONG M[P256_LIMBS];
    BN_ULONG Zsqr[P256_LIMBS];
    BN_ULONG tmp0[P256_LIMBS];

    const BN_ULONG *in_x = a->X;
    const BN_ULONG *in_y = a->Y;
    const BN_ULONG *in_z = a->Z;

    BN_ULONG *res_x = r->X;
    BN_ULONG *res_y = r->Y;
    BN_ULONG *res_z = r->Z;

    ecp_nistz256_mul_by_2(S, in_y);

    ecp_nistz256_sqr_mont(Zsqr, in_z);

    ecp_nistz256_sqr_mont(S, S);

    ecp_nistz256_mul_mont(res_z, in_z, in_y);
    ecp_nistz256_mul_by_2(res_z, res_z);

    ecp_nistz256_add(M, in_x, Zsqr);
    ecp_nistz256_sub(Zsqr, in_x, Zsqr);

    ecp_nistz256_sqr_mont(res_y, S);
    ecp_nistz256_div_by_2(res_y, res_y);

    ecp_nistz256_mul_mont(M, M, Zsqr);
    ecp_nistz256_mul_by_3(M, M);

    ecp_nistz256_mul_mont(S, S, in_x);
    ecp_nistz256_mul_by_2(tmp0, S);

    ecp_nistz256_sqr_mont(res_x, M);

    ecp_nistz256_sub(res_x, res_x, tmp0);
    ecp_nistz256_sub(S, S, res_x);

    ecp_nistz256_mul_mont(S, S, M);
    ecp_nistz256_sub(res_y, S, res_y);
}

/* Point addition: r = a+b */
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static void ecp_nistz256_point_add(P256_POINT *r,
                                   const P256_POINT *a, const P256_POINT *b)
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{
    BN_ULONG U2[P256_LIMBS], S2[P256_LIMBS];
    BN_ULONG U1[P256_LIMBS], S1[P256_LIMBS];
    BN_ULONG Z1sqr[P256_LIMBS];
    BN_ULONG Z2sqr[P256_LIMBS];
    BN_ULONG H[P256_LIMBS], R[P256_LIMBS];
    BN_ULONG Hsqr[P256_LIMBS];
    BN_ULONG Rsqr[P256_LIMBS];
    BN_ULONG Hcub[P256_LIMBS];

    BN_ULONG res_x[P256_LIMBS];
    BN_ULONG res_y[P256_LIMBS];
    BN_ULONG res_z[P256_LIMBS];

    BN_ULONG in1infty, in2infty;

    const BN_ULONG *in1_x = a->X;
    const BN_ULONG *in1_y = a->Y;
    const BN_ULONG *in1_z = a->Z;

    const BN_ULONG *in2_x = b->X;
    const BN_ULONG *in2_y = b->Y;
    const BN_ULONG *in2_z = b->Z;

    /* We encode infinity as (0,0), which is not on the curve,
     * so it is OK. */
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    in1infty = (in1_x[0] | in1_x[1] | in1_x[2] | in1_x[3] |
                in1_y[0] | in1_y[1] | in1_y[2] | in1_y[3]);
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    if (P256_LIMBS == 8)
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        in1infty |= (in1_x[4] | in1_x[5] | in1_x[6] | in1_x[7] |
                     in1_y[4] | in1_y[5] | in1_y[6] | in1_y[7]);
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    in2infty = (in2_x[0] | in2_x[1] | in2_x[2] | in2_x[3] |
                in2_y[0] | in2_y[1] | in2_y[2] | in2_y[3]);
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    if (P256_LIMBS == 8)
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        in2infty |= (in2_x[4] | in2_x[5] | in2_x[6] | in2_x[7] |
                     in2_y[4] | in2_y[5] | in2_y[6] | in2_y[7]);
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    in1infty = is_zero(in1infty);
    in2infty = is_zero(in2infty);

    ecp_nistz256_sqr_mont(Z2sqr, in2_z);        /* Z2^2 */
    ecp_nistz256_sqr_mont(Z1sqr, in1_z);        /* Z1^2 */

    ecp_nistz256_mul_mont(S1, Z2sqr, in2_z);    /* S1 = Z2^3 */
    ecp_nistz256_mul_mont(S2, Z1sqr, in1_z);    /* S2 = Z1^3 */

    ecp_nistz256_mul_mont(S1, S1, in1_y);       /* S1 = Y1*Z2^3 */
    ecp_nistz256_mul_mont(S2, S2, in2_y);       /* S2 = Y2*Z1^3 */
    ecp_nistz256_sub(R, S2, S1);                /* R = S2 - S1 */

    ecp_nistz256_mul_mont(U1, in1_x, Z2sqr);    /* U1 = X1*Z2^2 */
    ecp_nistz256_mul_mont(U2, in2_x, Z1sqr);    /* U2 = X2*Z1^2 */
    ecp_nistz256_sub(H, U2, U1);                /* H = U2 - U1 */

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    /*
     * This should not happen during sign/ecdh, so no constant time violation
     */
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    if (is_equal(U1, U2) && !in1infty && !in2infty) {
        if (is_equal(S1, S2)) {
            ecp_nistz256_point_double(r, a);
            return;
        } else {
            memset(r, 0, sizeof(*r));
            return;
        }
    }

    ecp_nistz256_sqr_mont(Rsqr, R);             /* R^2 */
    ecp_nistz256_mul_mont(res_z, H, in1_z);     /* Z3 = H*Z1*Z2 */
    ecp_nistz256_sqr_mont(Hsqr, H);             /* H^2 */
    ecp_nistz256_mul_mont(res_z, res_z, in2_z); /* Z3 = H*Z1*Z2 */
    ecp_nistz256_mul_mont(Hcub, Hsqr, H);       /* H^3 */

    ecp_nistz256_mul_mont(U2, U1, Hsqr);        /* U1*H^2 */
    ecp_nistz256_mul_by_2(Hsqr, U2);            /* 2*U1*H^2 */

    ecp_nistz256_sub(res_x, Rsqr, Hsqr);
    ecp_nistz256_sub(res_x, res_x, Hcub);

    ecp_nistz256_sub(res_y, U2, res_x);

    ecp_nistz256_mul_mont(S2, S1, Hcub);
    ecp_nistz256_mul_mont(res_y, R, res_y);
    ecp_nistz256_sub(res_y, res_y, S2);

    copy_conditional(res_x, in2_x, in1infty);
    copy_conditional(res_y, in2_y, in1infty);
    copy_conditional(res_z, in2_z, in1infty);

    copy_conditional(res_x, in1_x, in2infty);
    copy_conditional(res_y, in1_y, in2infty);
    copy_conditional(res_z, in1_z, in2infty);

    memcpy(r->X, res_x, sizeof(res_x));
    memcpy(r->Y, res_y, sizeof(res_y));
    memcpy(r->Z, res_z, sizeof(res_z));
}

/* Point addition when b is known to be affine: r = a+b */
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static void ecp_nistz256_point_add_affine(P256_POINT *r,
                                          const P256_POINT *a,
                                          const P256_POINT_AFFINE *b)
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{
    BN_ULONG U2[P256_LIMBS], S2[P256_LIMBS];
    BN_ULONG Z1sqr[P256_LIMBS];
    BN_ULONG H[P256_LIMBS], R[P256_LIMBS];
    BN_ULONG Hsqr[P256_LIMBS];
    BN_ULONG Rsqr[P256_LIMBS];
    BN_ULONG Hcub[P256_LIMBS];

    BN_ULONG res_x[P256_LIMBS];
    BN_ULONG res_y[P256_LIMBS];
    BN_ULONG res_z[P256_LIMBS];

    BN_ULONG in1infty, in2infty;

    const BN_ULONG *in1_x = a->X;
    const BN_ULONG *in1_y = a->Y;
    const BN_ULONG *in1_z = a->Z;

    const BN_ULONG *in2_x = b->X;
    const BN_ULONG *in2_y = b->Y;

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    /*
     * In affine representation we encode infty as (0,0), which is not on the
     * curve, so it is OK
     */
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    in1infty = (in1_x[0] | in1_x[1] | in1_x[2] | in1_x[3] |
                in1_y[0] | in1_y[1] | in1_y[2] | in1_y[3]);
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    if (P256_LIMBS == 8)
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        in1infty |= (in1_x[4] | in1_x[5] | in1_x[6] | in1_x[7] |
                     in1_y[4] | in1_y[5] | in1_y[6] | in1_y[7]);
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    in2infty = (in2_x[0] | in2_x[1] | in2_x[2] | in2_x[3] |
                in2_y[0] | in2_y[1] | in2_y[2] | in2_y[3]);
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    if (P256_LIMBS == 8)
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        in2infty |= (in2_x[4] | in2_x[5] | in2_x[6] | in2_x[7] |
                     in2_y[4] | in2_y[5] | in2_y[6] | in2_y[7]);
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    in1infty = is_zero(in1infty);
    in2infty = is_zero(in2infty);

    ecp_nistz256_sqr_mont(Z1sqr, in1_z);        /* Z1^2 */

    ecp_nistz256_mul_mont(U2, in2_x, Z1sqr);    /* U2 = X2*Z1^2 */
    ecp_nistz256_sub(H, U2, in1_x);             /* H = U2 - U1 */

    ecp_nistz256_mul_mont(S2, Z1sqr, in1_z);    /* S2 = Z1^3 */

    ecp_nistz256_mul_mont(res_z, H, in1_z);     /* Z3 = H*Z1*Z2 */

    ecp_nistz256_mul_mont(S2, S2, in2_y);       /* S2 = Y2*Z1^3 */
    ecp_nistz256_sub(R, S2, in1_y);             /* R = S2 - S1 */

    ecp_nistz256_sqr_mont(Hsqr, H);             /* H^2 */
    ecp_nistz256_sqr_mont(Rsqr, R);             /* R^2 */
    ecp_nistz256_mul_mont(Hcub, Hsqr, H);       /* H^3 */

    ecp_nistz256_mul_mont(U2, in1_x, Hsqr);     /* U1*H^2 */
    ecp_nistz256_mul_by_2(Hsqr, U2);            /* 2*U1*H^2 */

    ecp_nistz256_sub(res_x, Rsqr, Hsqr);
    ecp_nistz256_sub(res_x, res_x, Hcub);
    ecp_nistz256_sub(H, U2, res_x);

    ecp_nistz256_mul_mont(S2, in1_y, Hcub);
    ecp_nistz256_mul_mont(H, H, R);
    ecp_nistz256_sub(res_y, H, S2);

    copy_conditional(res_x, in2_x, in1infty);
    copy_conditional(res_x, in1_x, in2infty);

    copy_conditional(res_y, in2_y, in1infty);
    copy_conditional(res_y, in1_y, in2infty);

    copy_conditional(res_z, ONE, in1infty);
    copy_conditional(res_z, in1_z, in2infty);

    memcpy(r->X, res_x, sizeof(res_x));
    memcpy(r->Y, res_y, sizeof(res_y));
    memcpy(r->Z, res_z, sizeof(res_z));
}
#endif

/* r = in^-1 mod p */
static void ecp_nistz256_mod_inverse(BN_ULONG r[P256_LIMBS],
                                     const BN_ULONG in[P256_LIMBS])
{
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    /*
     * The poly is ffffffff 00000001 00000000 00000000 00000000 ffffffff
     * ffffffff ffffffff We use FLT and used poly-2 as exponent
     */
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    BN_ULONG p2[P256_LIMBS];
    BN_ULONG p4[P256_LIMBS];
    BN_ULONG p8[P256_LIMBS];
    BN_ULONG p16[P256_LIMBS];
    BN_ULONG p32[P256_LIMBS];
    BN_ULONG res[P256_LIMBS];
    int i;

    ecp_nistz256_sqr_mont(res, in);
    ecp_nistz256_mul_mont(p2, res, in);         /* 3*p */

    ecp_nistz256_sqr_mont(res, p2);
    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(p4, res, p2);         /* f*p */

    ecp_nistz256_sqr_mont(res, p4);
    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(p8, res, p4);         /* ff*p */

    ecp_nistz256_sqr_mont(res, p8);
    for (i = 0; i < 7; i++)
        ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(p16, res, p8);        /* ffff*p */

    ecp_nistz256_sqr_mont(res, p16);
    for (i = 0; i < 15; i++)
        ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(p32, res, p16);       /* ffffffff*p */

    ecp_nistz256_sqr_mont(res, p32);
    for (i = 0; i < 31; i++)
        ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(res, res, in);

    for (i = 0; i < 32 * 4; i++)
        ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(res, res, p32);

    for (i = 0; i < 32; i++)
        ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(res, res, p32);

    for (i = 0; i < 16; i++)
        ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(res, res, p16);

    for (i = 0; i < 8; i++)
        ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(res, res, p8);

    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(res, res, p4);

    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(res, res, p2);

    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_sqr_mont(res, res);
    ecp_nistz256_mul_mont(res, res, in);

    memcpy(r, res, sizeof(res));
}

541 542 543 544
/*
 * ecp_nistz256_bignum_to_field_elem copies the contents of |in| to |out| and
 * returns one if it fits. Otherwise it returns zero.
 */
E
Emilia Kasper 已提交
545 546
__owur static int ecp_nistz256_bignum_to_field_elem(BN_ULONG out[P256_LIMBS],
                                                    const BIGNUM *in)
547
{
548
    return bn_copy_words(out, in, P256_LIMBS);
549 550 551
}

/* r = sum(scalar[i]*point[i]) */
E
Emilia Kasper 已提交
552 553 554 555 556
__owur static int ecp_nistz256_windowed_mul(const EC_GROUP *group,
                                            P256_POINT *r,
                                            const BIGNUM **scalar,
                                            const EC_POINT **point,
                                            size_t num, BN_CTX *ctx)
557
{
558
    size_t i;
559
    int j, ret = 0;
560
    unsigned int idx;
561 562 563 564
    unsigned char (*p_str)[33] = NULL;
    const unsigned int window_size = 5;
    const unsigned int mask = (1 << (window_size + 1)) - 1;
    unsigned int wvalue;
565
    P256_POINT *temp;           /* place for 5 temporary points */
566
    const BIGNUM **scalars = NULL;
567
    P256_POINT (*table)[16] = NULL;
568 569
    void *table_storage = NULL;

570 571 572
    if ((num * 16 + 6) > OPENSSL_MALLOC_MAX_NELEMS(P256_POINT)
        || (table_storage =
            OPENSSL_malloc((num * 16 + 5) * sizeof(P256_POINT) + 64)) == NULL
573 574 575
        || (p_str =
            OPENSSL_malloc(num * 33 * sizeof(unsigned char))) == NULL
        || (scalars = OPENSSL_malloc(num * sizeof(BIGNUM *))) == NULL) {
576
        ECerr(EC_F_ECP_NISTZ256_WINDOWED_MUL, ERR_R_MALLOC_FAILURE);
577 578 579
        goto err;
    }

A
Andy Polyakov 已提交
580
    table = (void *)ALIGNPTR(table_storage, 64);
581
    temp = (P256_POINT *)(table + num);
A
Andy Polyakov 已提交
582

583 584 585
    for (i = 0; i < num; i++) {
        P256_POINT *row = table[i];

586
        /* This is an unusual input, we don't guarantee constant-timeness. */
587 588 589 590 591
        if ((BN_num_bits(scalar[i]) > 256) || BN_is_negative(scalar[i])) {
            BIGNUM *mod;

            if ((mod = BN_CTX_get(ctx)) == NULL)
                goto err;
592
            if (!BN_nnmod(mod, scalar[i], group->order, ctx)) {
593
                ECerr(EC_F_ECP_NISTZ256_WINDOWED_MUL, ERR_R_BN_LIB);
594 595 596 597 598 599
                goto err;
            }
            scalars[i] = mod;
        } else
            scalars[i] = scalar[i];

600 601
        for (j = 0; j < bn_get_top(scalars[i]) * BN_BYTES; j += BN_BYTES) {
            BN_ULONG d = bn_get_words(scalars[i])[j / BN_BYTES];
602

603 604 605 606
            p_str[i][j + 0] = (unsigned char)d;
            p_str[i][j + 1] = (unsigned char)(d >> 8);
            p_str[i][j + 2] = (unsigned char)(d >> 16);
            p_str[i][j + 3] = (unsigned char)(d >>= 24);
607 608
            if (BN_BYTES == 8) {
                d >>= 8;
609 610 611 612
                p_str[i][j + 4] = (unsigned char)d;
                p_str[i][j + 5] = (unsigned char)(d >> 8);
                p_str[i][j + 6] = (unsigned char)(d >> 16);
                p_str[i][j + 7] = (unsigned char)(d >> 24);
613 614 615 616 617
            }
        }
        for (; j < 33; j++)
            p_str[i][j] = 0;

618 619 620
        if (!ecp_nistz256_bignum_to_field_elem(temp[0].X, point[i]->X)
            || !ecp_nistz256_bignum_to_field_elem(temp[0].Y, point[i]->Y)
            || !ecp_nistz256_bignum_to_field_elem(temp[0].Z, point[i]->Z)) {
621 622
            ECerr(EC_F_ECP_NISTZ256_WINDOWED_MUL,
                  EC_R_COORDINATES_OUT_OF_RANGE);
623 624 625
            goto err;
        }

626 627 628 629
        /*
	 * row[0] is implicitly (0,0,0) (the point at infinity), therefore it
	 * is not stored. All other values are actually stored with an offset
	 * of -1 in table.
A
Andy Polyakov 已提交
630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662
         */

        ecp_nistz256_scatter_w5  (row, &temp[0], 1);
        ecp_nistz256_point_double(&temp[1], &temp[0]);              /*1+1=2  */
        ecp_nistz256_scatter_w5  (row, &temp[1], 2);
        ecp_nistz256_point_add   (&temp[2], &temp[1], &temp[0]);    /*2+1=3  */
        ecp_nistz256_scatter_w5  (row, &temp[2], 3);
        ecp_nistz256_point_double(&temp[1], &temp[1]);              /*2*2=4  */
        ecp_nistz256_scatter_w5  (row, &temp[1], 4);
        ecp_nistz256_point_double(&temp[2], &temp[2]);              /*2*3=6  */
        ecp_nistz256_scatter_w5  (row, &temp[2], 6);
        ecp_nistz256_point_add   (&temp[3], &temp[1], &temp[0]);    /*4+1=5  */
        ecp_nistz256_scatter_w5  (row, &temp[3], 5);
        ecp_nistz256_point_add   (&temp[4], &temp[2], &temp[0]);    /*6+1=7  */
        ecp_nistz256_scatter_w5  (row, &temp[4], 7);
        ecp_nistz256_point_double(&temp[1], &temp[1]);              /*2*4=8  */
        ecp_nistz256_scatter_w5  (row, &temp[1], 8);
        ecp_nistz256_point_double(&temp[2], &temp[2]);              /*2*6=12 */
        ecp_nistz256_scatter_w5  (row, &temp[2], 12);
        ecp_nistz256_point_double(&temp[3], &temp[3]);              /*2*5=10 */
        ecp_nistz256_scatter_w5  (row, &temp[3], 10);
        ecp_nistz256_point_double(&temp[4], &temp[4]);              /*2*7=14 */
        ecp_nistz256_scatter_w5  (row, &temp[4], 14);
        ecp_nistz256_point_add   (&temp[2], &temp[2], &temp[0]);    /*12+1=13*/
        ecp_nistz256_scatter_w5  (row, &temp[2], 13);
        ecp_nistz256_point_add   (&temp[3], &temp[3], &temp[0]);    /*10+1=11*/
        ecp_nistz256_scatter_w5  (row, &temp[3], 11);
        ecp_nistz256_point_add   (&temp[4], &temp[4], &temp[0]);    /*14+1=15*/
        ecp_nistz256_scatter_w5  (row, &temp[4], 15);
        ecp_nistz256_point_add   (&temp[2], &temp[1], &temp[0]);    /*8+1=9  */
        ecp_nistz256_scatter_w5  (row, &temp[2], 9);
        ecp_nistz256_point_double(&temp[1], &temp[1]);              /*2*8=16 */
        ecp_nistz256_scatter_w5  (row, &temp[1], 16);
663 664
    }

665
    idx = 255;
666

667 668
    wvalue = p_str[0][(idx - 1) / 8];
    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
669

A
Andy Polyakov 已提交
670 671 672 673 674 675
    /*
     * We gather to temp[0], because we know it's position relative
     * to table
     */
    ecp_nistz256_gather_w5(&temp[0], table[0], _booth_recode_w5(wvalue) >> 1);
    memcpy(r, &temp[0], sizeof(temp[0]));
676

677 678 679
    while (idx >= 5) {
        for (i = (idx == 255 ? 1 : 0); i < num; i++) {
            unsigned int off = (idx - 1) / 8;
680 681

            wvalue = p_str[i][off] | p_str[i][off + 1] << 8;
682
            wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
683 684 685

            wvalue = _booth_recode_w5(wvalue);

A
Andy Polyakov 已提交
686
            ecp_nistz256_gather_w5(&temp[0], table[i], wvalue >> 1);
687

A
Andy Polyakov 已提交
688 689
            ecp_nistz256_neg(temp[1].Y, temp[0].Y);
            copy_conditional(temp[0].Y, temp[1].Y, (wvalue & 1));
690

A
Andy Polyakov 已提交
691
            ecp_nistz256_point_add(r, r, &temp[0]);
692 693
        }

694
        idx -= window_size;
695 696 697 698 699 700 701 702 703 704 705 706 707 708 709

        ecp_nistz256_point_double(r, r);
        ecp_nistz256_point_double(r, r);
        ecp_nistz256_point_double(r, r);
        ecp_nistz256_point_double(r, r);
        ecp_nistz256_point_double(r, r);
    }

    /* Final window */
    for (i = 0; i < num; i++) {
        wvalue = p_str[i][0];
        wvalue = (wvalue << 1) & mask;

        wvalue = _booth_recode_w5(wvalue);

A
Andy Polyakov 已提交
710
        ecp_nistz256_gather_w5(&temp[0], table[i], wvalue >> 1);
711

A
Andy Polyakov 已提交
712 713
        ecp_nistz256_neg(temp[1].Y, temp[0].Y);
        copy_conditional(temp[0].Y, temp[1].Y, wvalue & 1);
714

A
Andy Polyakov 已提交
715
        ecp_nistz256_point_add(r, r, &temp[0]);
716 717
    }

718
    ret = 1;
719
 err:
R
Rich Salz 已提交
720 721 722
    OPENSSL_free(table_storage);
    OPENSSL_free(p_str);
    OPENSSL_free(scalars);
723
    return ret;
724 725 726 727 728 729 730 731 732 733 734 735 736
}

/* Coordinates of G, for which we have precomputed tables */
const static BN_ULONG def_xG[P256_LIMBS] = {
    TOBN(0x79e730d4, 0x18a9143c), TOBN(0x75ba95fc, 0x5fedb601),
    TOBN(0x79fb732b, 0x77622510), TOBN(0x18905f76, 0xa53755c6)
};

const static BN_ULONG def_yG[P256_LIMBS] = {
    TOBN(0xddf25357, 0xce95560a), TOBN(0x8b4ab8e4, 0xba19e45c),
    TOBN(0xd2e88688, 0xdd21f325), TOBN(0x8571ff18, 0x25885d85)
};

737 738 739 740
/*
 * ecp_nistz256_is_affine_G returns one if |generator| is the standard, P-256
 * generator.
 */
741
static int ecp_nistz256_is_affine_G(const EC_POINT *generator)
742
{
743 744 745 746 747 748
    return (bn_get_top(generator->X) == P256_LIMBS) &&
        (bn_get_top(generator->Y) == P256_LIMBS) &&
        (bn_get_top(generator->Z) == (P256_LIMBS - P256_LIMBS / 8)) &&
        is_equal(bn_get_words(generator->X), def_xG) &&
        is_equal(bn_get_words(generator->Y), def_yG) &&
        is_one(bn_get_words(generator->Z));
749 750
}

E
Emilia Kasper 已提交
751
__owur static int ecp_nistz256_mult_precompute(EC_GROUP *group, BN_CTX *ctx)
752
{
753 754
    /*
     * We precompute a table for a Booth encoded exponent (wNAF) based
755
     * computation. Each table holds 64 values for safe access, with an
756 757 758
     * implicit value of infinity at index zero. We use window of size 7, and
     * therefore require ceil(256/7) = 37 tables.
     */
759
    const BIGNUM *order;
760 761
    EC_POINT *P = NULL, *T = NULL;
    const EC_POINT *generator;
762
    NISTZ256_PRE_COMP *pre_comp;
763
    BN_CTX *new_ctx = NULL;
764 765 766 767 768 769
    int i, j, k, ret = 0;
    size_t w;

    PRECOMP256_ROW *preComputedTable = NULL;
    unsigned char *precomp_storage = NULL;

770
    /* if there is an old NISTZ256_PRE_COMP object, throw it away */
771
    EC_pre_comp_free(group);
772 773
    generator = EC_GROUP_get0_generator(group);
    if (generator == NULL) {
774
        ECerr(EC_F_ECP_NISTZ256_MULT_PRECOMPUTE, EC_R_UNDEFINED_GENERATOR);
775 776 777 778
        return 0;
    }

    if (ecp_nistz256_is_affine_G(generator)) {
779 780 781 782
        /*
         * No need to calculate tables for the standard generator because we
         * have them statically.
         */
783 784 785
        return 1;
    }

786
    if ((pre_comp = ecp_nistz256_pre_comp_new(group)) == NULL)
787 788 789
        return 0;

    if (ctx == NULL) {
790
        ctx = new_ctx = BN_CTX_new();
791 792 793 794 795 796
        if (ctx == NULL)
            goto err;
    }

    BN_CTX_start(ctx);

797
    order = EC_GROUP_get0_order(group);
798 799 800 801
    if (order == NULL)
        goto err;

    if (BN_is_zero(order)) {
802
        ECerr(EC_F_ECP_NISTZ256_MULT_PRECOMPUTE, EC_R_UNKNOWN_ORDER);
803 804 805 806 807 808 809
        goto err;
    }

    w = 7;

    if ((precomp_storage =
         OPENSSL_malloc(37 * 64 * sizeof(P256_POINT_AFFINE) + 64)) == NULL) {
810
        ECerr(EC_F_ECP_NISTZ256_MULT_PRECOMPUTE, ERR_R_MALLOC_FAILURE);
811 812 813
        goto err;
    }

A
Andy Polyakov 已提交
814 815
    preComputedTable = (void *)ALIGNPTR(precomp_storage, 64);

816 817
    P = EC_POINT_new(group);
    T = EC_POINT_new(group);
818 819
    if (P == NULL || T == NULL)
        goto err;
820

821 822 823 824
    /*
     * The zero entry is implicitly infinity, and we skip it, storing other
     * values with -1 offset.
     */
825 826
    if (!EC_POINT_copy(T, generator))
        goto err;
827 828

    for (k = 0; k < 64; k++) {
829 830
        if (!EC_POINT_copy(P, T))
            goto err;
831
        for (j = 0; j < 37; j++) {
A
Andy Polyakov 已提交
832
            P256_POINT_AFFINE temp;
833
            /*
834
             * It would be faster to use EC_POINTs_make_affine and
835 836
             * make multiple points affine at the same time.
             */
837 838 839 840 841 842 843 844
            if (!EC_POINT_make_affine(group, P, ctx))
                goto err;
            if (!ecp_nistz256_bignum_to_field_elem(temp.X, P->X) ||
                !ecp_nistz256_bignum_to_field_elem(temp.Y, P->Y)) {
                ECerr(EC_F_ECP_NISTZ256_MULT_PRECOMPUTE,
                      EC_R_COORDINATES_OUT_OF_RANGE);
                goto err;
            }
A
Andy Polyakov 已提交
845
            ecp_nistz256_scatter_w7(preComputedTable[j], &temp, k);
846 847 848 849
            for (i = 0; i < 7; i++) {
                if (!EC_POINT_dbl(group, P, P, ctx))
                    goto err;
            }
850
        }
851 852
        if (!EC_POINT_add(group, T, T, generator, ctx))
            goto err;
853 854 855 856 857 858 859
    }

    pre_comp->group = group;
    pre_comp->w = w;
    pre_comp->precomp = preComputedTable;
    pre_comp->precomp_storage = precomp_storage;
    precomp_storage = NULL;
860
    SETPRECOMP(group, nistz256, pre_comp);
861 862 863
    pre_comp = NULL;
    ret = 1;

864
 err:
865 866
    if (ctx != NULL)
        BN_CTX_end(ctx);
867 868
    BN_CTX_free(new_ctx);

869
    EC_nistz256_pre_comp_free(pre_comp);
R
Rich Salz 已提交
870
    OPENSSL_free(precomp_storage);
R
Rich Salz 已提交
871 872
    EC_POINT_free(P);
    EC_POINT_free(T);
873 874 875 876 877 878 879 880 881 882 883 884 885
    return ret;
}

/*
 * Note that by default ECP_NISTZ256_AVX2 is undefined. While it's great
 * code processing 4 points in parallel, corresponding serial operation
 * is several times slower, because it uses 29x29=58-bit multiplication
 * as opposite to 64x64=128-bit in integer-only scalar case. As result
 * it doesn't provide *significant* performance improvement. Note that
 * just defining ECP_NISTZ256_AVX2 is not sufficient to make it work,
 * you'd need to compile even asm/ecp_nistz256-avx.pl module.
 */
#if defined(ECP_NISTZ256_AVX2)
A
Andy Polyakov 已提交
886
# if !(defined(__x86_64) || defined(__x86_64__) || \
887 888 889 890 891
       defined(_M_AMD64) || defined(_MX64)) || \
     !(defined(__GNUC__) || defined(_MSC_VER)) /* this is for ALIGN32 */
#  undef ECP_NISTZ256_AVX2
# else
/* Constant time access, loading four values, from four consecutive tables */
892 893 894
void ecp_nistz256_avx2_multi_gather_w7(void *result, const void *in,
                                       int index0, int index1, int index2,
                                       int index3);
895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919
void ecp_nistz256_avx2_transpose_convert(void *RESULTx4, const void *in);
void ecp_nistz256_avx2_convert_transpose_back(void *result, const void *Ax4);
void ecp_nistz256_avx2_point_add_affine_x4(void *RESULTx4, const void *Ax4,
                                           const void *Bx4);
void ecp_nistz256_avx2_point_add_affines_x4(void *RESULTx4, const void *Ax4,
                                            const void *Bx4);
void ecp_nistz256_avx2_to_mont(void *RESULTx4, const void *Ax4);
void ecp_nistz256_avx2_from_mont(void *RESULTx4, const void *Ax4);
void ecp_nistz256_avx2_set1(void *RESULTx4);
int ecp_nistz_avx2_eligible(void);

static void booth_recode_w7(unsigned char *sign,
                            unsigned char *digit, unsigned char in)
{
    unsigned char s, d;

    s = ~((in >> 7) - 1);
    d = (1 << 8) - in - 1;
    d = (d & s) | (in & ~s);
    d = (d >> 1) + (d & 1);

    *sign = s & 1;
    *digit = d;
}

920 921
/*
 * ecp_nistz256_avx2_mul_g performs multiplication by G, using only the
922
 * precomputed table. It does 4 affine point additions in parallel,
923 924
 * significantly speeding up point multiplication for a fixed value.
 */
925
static void ecp_nistz256_avx2_mul_g(P256_POINT *r,
926
                                    unsigned char p_str[33],
927
                                    const P256_POINT_AFFINE(*preComputedTable)[64])
928 929 930 931 932 933 934 935 936
{
    const unsigned int window_size = 7;
    const unsigned int mask = (1 << (window_size + 1)) - 1;
    unsigned int wvalue;
    /* Using 4 windows at a time */
    unsigned char sign0, digit0;
    unsigned char sign1, digit1;
    unsigned char sign2, digit2;
    unsigned char sign3, digit3;
937
    unsigned int idx = 0;
938 939 940 941 942
    BN_ULONG tmp[P256_LIMBS];
    int i;

    ALIGN32 BN_ULONG aX4[4 * 9 * 3] = { 0 };
    ALIGN32 BN_ULONG bX4[4 * 9 * 2] = { 0 };
A
Andy Polyakov 已提交
943 944
    ALIGN32 P256_POINT_AFFINE point_arr[4];
    ALIGN32 P256_POINT res_point_arr[4];
945 946 947 948

    /* Initial four windows */
    wvalue = *((u16 *) & p_str[0]);
    wvalue = (wvalue << 1) & mask;
949
    idx += window_size;
950
    booth_recode_w7(&sign0, &digit0, wvalue);
951 952 953
    wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
    idx += window_size;
954
    booth_recode_w7(&sign1, &digit1, wvalue);
955 956 957
    wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
    idx += window_size;
958
    booth_recode_w7(&sign2, &digit2, wvalue);
959 960 961
    wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
    idx += window_size;
962 963
    booth_recode_w7(&sign3, &digit3, wvalue);

A
Andy Polyakov 已提交
964
    ecp_nistz256_avx2_multi_gather_w7(point_arr, preComputedTable[0],
965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980
                                      digit0, digit1, digit2, digit3);

    ecp_nistz256_neg(tmp, point_arr[0].Y);
    copy_conditional(point_arr[0].Y, tmp, sign0);
    ecp_nistz256_neg(tmp, point_arr[1].Y);
    copy_conditional(point_arr[1].Y, tmp, sign1);
    ecp_nistz256_neg(tmp, point_arr[2].Y);
    copy_conditional(point_arr[2].Y, tmp, sign2);
    ecp_nistz256_neg(tmp, point_arr[3].Y);
    copy_conditional(point_arr[3].Y, tmp, sign3);

    ecp_nistz256_avx2_transpose_convert(aX4, point_arr);
    ecp_nistz256_avx2_to_mont(aX4, aX4);
    ecp_nistz256_avx2_to_mont(&aX4[4 * 9], &aX4[4 * 9]);
    ecp_nistz256_avx2_set1(&aX4[4 * 9 * 2]);

981 982 983
    wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
    idx += window_size;
984
    booth_recode_w7(&sign0, &digit0, wvalue);
985 986 987
    wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
    idx += window_size;
988
    booth_recode_w7(&sign1, &digit1, wvalue);
989 990 991
    wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
    idx += window_size;
992
    booth_recode_w7(&sign2, &digit2, wvalue);
993 994 995
    wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
    idx += window_size;
996 997
    booth_recode_w7(&sign3, &digit3, wvalue);

A
Andy Polyakov 已提交
998
    ecp_nistz256_avx2_multi_gather_w7(point_arr, preComputedTable[4 * 1],
999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016
                                      digit0, digit1, digit2, digit3);

    ecp_nistz256_neg(tmp, point_arr[0].Y);
    copy_conditional(point_arr[0].Y, tmp, sign0);
    ecp_nistz256_neg(tmp, point_arr[1].Y);
    copy_conditional(point_arr[1].Y, tmp, sign1);
    ecp_nistz256_neg(tmp, point_arr[2].Y);
    copy_conditional(point_arr[2].Y, tmp, sign2);
    ecp_nistz256_neg(tmp, point_arr[3].Y);
    copy_conditional(point_arr[3].Y, tmp, sign3);

    ecp_nistz256_avx2_transpose_convert(bX4, point_arr);
    ecp_nistz256_avx2_to_mont(bX4, bX4);
    ecp_nistz256_avx2_to_mont(&bX4[4 * 9], &bX4[4 * 9]);
    /* Optimized when both inputs are affine */
    ecp_nistz256_avx2_point_add_affines_x4(aX4, aX4, bX4);

    for (i = 2; i < 9; i++) {
1017 1018 1019
        wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
        wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
        idx += window_size;
1020
        booth_recode_w7(&sign0, &digit0, wvalue);
1021 1022 1023
        wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
        wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
        idx += window_size;
1024
        booth_recode_w7(&sign1, &digit1, wvalue);
1025 1026 1027
        wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
        wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
        idx += window_size;
1028
        booth_recode_w7(&sign2, &digit2, wvalue);
1029 1030 1031
        wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
        wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
        idx += window_size;
1032 1033
        booth_recode_w7(&sign3, &digit3, wvalue);

A
Andy Polyakov 已提交
1034
        ecp_nistz256_avx2_multi_gather_w7(point_arr,
1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059
                                          preComputedTable[4 * i],
                                          digit0, digit1, digit2, digit3);

        ecp_nistz256_neg(tmp, point_arr[0].Y);
        copy_conditional(point_arr[0].Y, tmp, sign0);
        ecp_nistz256_neg(tmp, point_arr[1].Y);
        copy_conditional(point_arr[1].Y, tmp, sign1);
        ecp_nistz256_neg(tmp, point_arr[2].Y);
        copy_conditional(point_arr[2].Y, tmp, sign2);
        ecp_nistz256_neg(tmp, point_arr[3].Y);
        copy_conditional(point_arr[3].Y, tmp, sign3);

        ecp_nistz256_avx2_transpose_convert(bX4, point_arr);
        ecp_nistz256_avx2_to_mont(bX4, bX4);
        ecp_nistz256_avx2_to_mont(&bX4[4 * 9], &bX4[4 * 9]);

        ecp_nistz256_avx2_point_add_affine_x4(aX4, aX4, bX4);
    }

    ecp_nistz256_avx2_from_mont(&aX4[4 * 9 * 0], &aX4[4 * 9 * 0]);
    ecp_nistz256_avx2_from_mont(&aX4[4 * 9 * 1], &aX4[4 * 9 * 1]);
    ecp_nistz256_avx2_from_mont(&aX4[4 * 9 * 2], &aX4[4 * 9 * 2]);

    ecp_nistz256_avx2_convert_transpose_back(res_point_arr, aX4);
    /* Last window is performed serially */
1060 1061
    wvalue = *((u16 *) & p_str[(idx - 1) / 8]);
    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
1062
    booth_recode_w7(&sign0, &digit0, wvalue);
1063 1064
    ecp_nistz256_gather_w7((P256_POINT_AFFINE *)r,
                           preComputedTable[36], digit0);
1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076
    ecp_nistz256_neg(tmp, r->Y);
    copy_conditional(r->Y, tmp, sign0);
    memcpy(r->Z, ONE, sizeof(ONE));
    /* Sum the four windows */
    ecp_nistz256_point_add(r, r, &res_point_arr[0]);
    ecp_nistz256_point_add(r, r, &res_point_arr[1]);
    ecp_nistz256_point_add(r, r, &res_point_arr[2]);
    ecp_nistz256_point_add(r, r, &res_point_arr[3]);
}
# endif
#endif

E
Emilia Kasper 已提交
1077 1078 1079
__owur static int ecp_nistz256_set_from_affine(EC_POINT *out, const EC_GROUP *group,
                                               const P256_POINT_AFFINE *in,
                                               BN_CTX *ctx)
1080
{
1081
    BIGNUM *x, *y;
1082 1083 1084
    BN_ULONG d_x[P256_LIMBS], d_y[P256_LIMBS];
    int ret = 0;

1085
    x = BN_new();
1086
    if (x == NULL)
1087 1088
        return 0;
    y = BN_new();
1089
    if (y == NULL) {
1090 1091 1092
        BN_free(x);
        return 0;
    }
1093
    memcpy(d_x, in->X, sizeof(d_x));
1094
    bn_set_static_words(x, d_x, P256_LIMBS);
1095 1096

    memcpy(d_y, in->Y, sizeof(d_y));
1097 1098 1099
    bn_set_static_words(y, d_y, P256_LIMBS);

    ret = EC_POINT_set_affine_coordinates_GFp(group, out, x, y, ctx);
1100

R
Rich Salz 已提交
1101 1102
    BN_free(x);
    BN_free(y);
1103 1104 1105 1106 1107

    return ret;
}

/* r = scalar*G + sum(scalars[i]*points[i]) */
E
Emilia Kasper 已提交
1108 1109 1110 1111 1112 1113
__owur static int ecp_nistz256_points_mul(const EC_GROUP *group,
                                          EC_POINT *r,
                                          const BIGNUM *scalar,
                                          size_t num,
                                          const EC_POINT *points[],
                                          const BIGNUM *scalars[], BN_CTX *ctx)
1114 1115
{
    int i = 0, ret = 0, no_precomp_for_generator = 0, p_is_infinity = 0;
D
Dr. Stephen Henson 已提交
1116
    size_t j;
1117 1118
    unsigned char p_str[33] = { 0 };
    const PRECOMP256_ROW *preComputedTable = NULL;
1119
    const NISTZ256_PRE_COMP *pre_comp = NULL;
1120
    const EC_POINT *generator = NULL;
1121
    BN_CTX *new_ctx = NULL;
1122 1123
    const BIGNUM **new_scalars = NULL;
    const EC_POINT **new_points = NULL;
1124
    unsigned int idx = 0;
1125 1126 1127 1128 1129 1130 1131 1132 1133
    const unsigned int window_size = 7;
    const unsigned int mask = (1 << (window_size + 1)) - 1;
    unsigned int wvalue;
    ALIGN32 union {
        P256_POINT p;
        P256_POINT_AFFINE a;
    } t, p;
    BIGNUM *tmp_scalar;

1134
    if ((num + 1) == 0 || (num + 1) > OPENSSL_MALLOC_MAX_NELEMS(void *)) {
A
Andy Polyakov 已提交
1135 1136 1137 1138
        ECerr(EC_F_ECP_NISTZ256_POINTS_MUL, ERR_R_MALLOC_FAILURE);
        return 0;
    }

1139
    if (group->meth != r->meth) {
1140
        ECerr(EC_F_ECP_NISTZ256_POINTS_MUL, EC_R_INCOMPATIBLE_OBJECTS);
1141 1142
        return 0;
    }
1143

1144 1145 1146
    if ((scalar == NULL) && (num == 0))
        return EC_POINT_set_to_infinity(group, r);

D
Dr. Stephen Henson 已提交
1147 1148
    for (j = 0; j < num; j++) {
        if (group->meth != points[j]->meth) {
1149
            ECerr(EC_F_ECP_NISTZ256_POINTS_MUL, EC_R_INCOMPATIBLE_OBJECTS);
1150 1151 1152 1153
            return 0;
        }
    }

1154 1155 1156 1157 1158 1159 1160
    if (ctx == NULL) {
        ctx = new_ctx = BN_CTX_new();
        if (ctx == NULL)
            goto err;
    }

    BN_CTX_start(ctx);
1161 1162 1163 1164

    if (scalar) {
        generator = EC_GROUP_get0_generator(group);
        if (generator == NULL) {
1165
            ECerr(EC_F_ECP_NISTZ256_POINTS_MUL, EC_R_UNDEFINED_GENERATOR);
1166 1167 1168 1169
            goto err;
        }

        /* look if we can use precomputed multiples of generator */
1170
        pre_comp = group->pre_comp.nistz256;
1171 1172

        if (pre_comp) {
1173 1174 1175 1176
            /*
             * If there is a precomputed table for the generator, check that
             * it was generated with the same generator.
             */
1177 1178 1179 1180
            EC_POINT *pre_comp_generator = EC_POINT_new(group);
            if (pre_comp_generator == NULL)
                goto err;

A
Andy Polyakov 已提交
1181 1182
            if (!ecp_nistz256_set_from_affine(pre_comp_generator,
                                              group, pre_comp->precomp[0],
1183 1184
                                              ctx)) {
                EC_POINT_free(pre_comp_generator);
1185
                goto err;
1186
            }
1187 1188 1189 1190 1191 1192 1193 1194

            if (0 == EC_POINT_cmp(group, generator, pre_comp_generator, ctx))
                preComputedTable = (const PRECOMP256_ROW *)pre_comp->precomp;

            EC_POINT_free(pre_comp_generator);
        }

        if (preComputedTable == NULL && ecp_nistz256_is_affine_G(generator)) {
1195 1196 1197 1198 1199 1200
            /*
             * If there is no precomputed data, but the generator is the
             * default, a hardcoded table of precomputed data is used. This
             * is because applications, such as Apache, do not use
             * EC_KEY_precompute_mult.
             */
A
Andy Polyakov 已提交
1201
            preComputedTable = ecp_nistz256_precomputed;
1202 1203 1204 1205 1206 1207 1208 1209
        }

        if (preComputedTable) {
            if ((BN_num_bits(scalar) > 256)
                || BN_is_negative(scalar)) {
                if ((tmp_scalar = BN_CTX_get(ctx)) == NULL)
                    goto err;

1210
                if (!BN_nnmod(tmp_scalar, scalar, group->order, ctx)) {
1211
                    ECerr(EC_F_ECP_NISTZ256_POINTS_MUL, ERR_R_BN_LIB);
1212 1213 1214 1215 1216
                    goto err;
                }
                scalar = tmp_scalar;
            }

1217 1218
            for (i = 0; i < bn_get_top(scalar) * BN_BYTES; i += BN_BYTES) {
                BN_ULONG d = bn_get_words(scalar)[i / BN_BYTES];
1219

1220 1221 1222 1223
                p_str[i + 0] = (unsigned char)d;
                p_str[i + 1] = (unsigned char)(d >> 8);
                p_str[i + 2] = (unsigned char)(d >> 16);
                p_str[i + 3] = (unsigned char)(d >>= 24);
1224 1225
                if (BN_BYTES == 8) {
                    d >>= 8;
1226 1227 1228 1229
                    p_str[i + 4] = (unsigned char)d;
                    p_str[i + 5] = (unsigned char)(d >> 8);
                    p_str[i + 6] = (unsigned char)(d >> 16);
                    p_str[i + 7] = (unsigned char)(d >> 24);
1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243
                }
            }

            for (; i < 33; i++)
                p_str[i] = 0;

#if defined(ECP_NISTZ256_AVX2)
            if (ecp_nistz_avx2_eligible()) {
                ecp_nistz256_avx2_mul_g(&p.p, p_str, preComputedTable);
            } else
#endif
            {
                /* First window */
                wvalue = (p_str[0] << 1) & mask;
1244
                idx += window_size;
1245 1246 1247

                wvalue = _booth_recode_w7(wvalue);

1248 1249
                ecp_nistz256_gather_w7(&p.a, preComputedTable[0],
                                       wvalue >> 1);
1250 1251 1252 1253 1254 1255 1256

                ecp_nistz256_neg(p.p.Z, p.p.Y);
                copy_conditional(p.p.Y, p.p.Z, wvalue & 1);

                memcpy(p.p.Z, ONE, sizeof(ONE));

                for (i = 1; i < 37; i++) {
1257
                    unsigned int off = (idx - 1) / 8;
1258
                    wvalue = p_str[off] | p_str[off + 1] << 8;
1259 1260
                    wvalue = (wvalue >> ((idx - 1) % 8)) & mask;
                    idx += window_size;
1261 1262 1263

                    wvalue = _booth_recode_w7(wvalue);

A
Andy Polyakov 已提交
1264
                    ecp_nistz256_gather_w7(&t.a,
1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280
                                           preComputedTable[i], wvalue >> 1);

                    ecp_nistz256_neg(t.p.Z, t.a.Y);
                    copy_conditional(t.a.Y, t.p.Z, wvalue & 1);

                    ecp_nistz256_point_add_affine(&p.p, &p.p, &t.a);
                }
            }
        } else {
            p_is_infinity = 1;
            no_precomp_for_generator = 1;
        }
    } else
        p_is_infinity = 1;

    if (no_precomp_for_generator) {
1281 1282 1283 1284
        /*
         * Without a precomputed table for the generator, it has to be
         * handled like a normal point.
         */
1285
        new_scalars = OPENSSL_malloc((num + 1) * sizeof(BIGNUM *));
1286
        if (new_scalars == NULL) {
1287
            ECerr(EC_F_ECP_NISTZ256_POINTS_MUL, ERR_R_MALLOC_FAILURE);
1288
            goto err;
1289 1290 1291
        }

        new_points = OPENSSL_malloc((num + 1) * sizeof(EC_POINT *));
1292
        if (new_points == NULL) {
1293
            ECerr(EC_F_ECP_NISTZ256_POINTS_MUL, ERR_R_MALLOC_FAILURE);
1294
            goto err;
1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311
        }

        memcpy(new_scalars, scalars, num * sizeof(BIGNUM *));
        new_scalars[num] = scalar;
        memcpy(new_points, points, num * sizeof(EC_POINT *));
        new_points[num] = generator;

        scalars = new_scalars;
        points = new_points;
        num++;
    }

    if (num) {
        P256_POINT *out = &t.p;
        if (p_is_infinity)
            out = &p.p;

1312 1313
        if (!ecp_nistz256_windowed_mul(group, out, scalars, points, num, ctx))
            goto err;
1314 1315 1316 1317 1318

        if (!p_is_infinity)
            ecp_nistz256_point_add(&p.p, &p.p, out);
    }

1319
    /* Not constant-time, but we're only operating on the public output. */
1320 1321 1322 1323 1324
    if (!bn_set_words(r->X, p.p.X, P256_LIMBS) ||
        !bn_set_words(r->Y, p.p.Y, P256_LIMBS) ||
        !bn_set_words(r->Z, p.p.Z, P256_LIMBS)) {
        goto err;
    }
1325
    r->Z_is_one = is_one(p.p.Z) & 1;
1326 1327 1328

    ret = 1;

1329 1330 1331 1332
err:
    if (ctx)
        BN_CTX_end(ctx);
    BN_CTX_free(new_ctx);
R
Rich Salz 已提交
1333 1334
    OPENSSL_free(new_points);
    OPENSSL_free(new_scalars);
1335 1336 1337
    return ret;
}

E
Emilia Kasper 已提交
1338 1339 1340
__owur static int ecp_nistz256_get_affine(const EC_GROUP *group,
                                          const EC_POINT *point,
                                          BIGNUM *x, BIGNUM *y, BN_CTX *ctx)
1341 1342 1343 1344 1345 1346
{
    BN_ULONG z_inv2[P256_LIMBS];
    BN_ULONG z_inv3[P256_LIMBS];
    BN_ULONG x_aff[P256_LIMBS];
    BN_ULONG y_aff[P256_LIMBS];
    BN_ULONG point_x[P256_LIMBS], point_y[P256_LIMBS], point_z[P256_LIMBS];
1347
    BN_ULONG x_ret[P256_LIMBS], y_ret[P256_LIMBS];
1348 1349

    if (EC_POINT_is_at_infinity(group, point)) {
1350
        ECerr(EC_F_ECP_NISTZ256_GET_AFFINE, EC_R_POINT_AT_INFINITY);
1351 1352 1353
        return 0;
    }

1354 1355 1356
    if (!ecp_nistz256_bignum_to_field_elem(point_x, point->X) ||
        !ecp_nistz256_bignum_to_field_elem(point_y, point->Y) ||
        !ecp_nistz256_bignum_to_field_elem(point_z, point->Z)) {
1357
        ECerr(EC_F_ECP_NISTZ256_GET_AFFINE, EC_R_COORDINATES_OUT_OF_RANGE);
1358 1359 1360 1361 1362 1363 1364 1365
        return 0;
    }

    ecp_nistz256_mod_inverse(z_inv3, point_z);
    ecp_nistz256_sqr_mont(z_inv2, z_inv3);
    ecp_nistz256_mul_mont(x_aff, z_inv2, point_x);

    if (x != NULL) {
1366 1367 1368
        ecp_nistz256_from_mont(x_ret, x_aff);
        if (!bn_set_words(x, x_ret, P256_LIMBS))
            return 0;
1369 1370 1371 1372 1373
    }

    if (y != NULL) {
        ecp_nistz256_mul_mont(z_inv3, z_inv3, z_inv2);
        ecp_nistz256_mul_mont(y_aff, z_inv3, point_y);
1374 1375 1376
        ecp_nistz256_from_mont(y_ret, y_aff);
        if (!bn_set_words(y, y_ret, P256_LIMBS))
            return 0;
1377 1378 1379 1380 1381
    }

    return 1;
}

1382
static NISTZ256_PRE_COMP *ecp_nistz256_pre_comp_new(const EC_GROUP *group)
1383
{
1384
    NISTZ256_PRE_COMP *ret = NULL;
1385 1386 1387 1388

    if (!group)
        return NULL;

1389
    ret = OPENSSL_zalloc(sizeof(*ret));
1390

1391
    if (ret == NULL) {
1392
        ECerr(EC_F_ECP_NISTZ256_PRE_COMP_NEW, ERR_R_MALLOC_FAILURE);
1393 1394 1395 1396 1397 1398 1399 1400 1401
        return ret;
    }

    ret->group = group;
    ret->w = 6;                 /* default */
    ret->references = 1;
    return ret;
}

1402
NISTZ256_PRE_COMP *EC_nistz256_pre_comp_dup(NISTZ256_PRE_COMP *p)
1403
{
1404 1405 1406
    if (p != NULL)
        CRYPTO_add(&p->references, 1, CRYPTO_LOCK_EC_PRE_COMP);
    return p;
1407 1408
}

1409
void EC_nistz256_pre_comp_free(NISTZ256_PRE_COMP *pre)
1410
{
1411 1412
    if (pre == NULL
            || CRYPTO_add(&pre->references, -1, CRYPTO_LOCK_EC_PRE_COMP) > 0)
1413
        return;
R
Rich Salz 已提交
1414
    OPENSSL_free(pre->precomp_storage);
1415 1416 1417 1418
    OPENSSL_free(pre);
}


1419
static int ecp_nistz256_window_have_precompute_mult(const EC_GROUP *group)
1420 1421 1422
{
    /* There is a hard-coded table for the default generator. */
    const EC_POINT *generator = EC_GROUP_get0_generator(group);
1423

1424 1425 1426 1427 1428
    if (generator != NULL && ecp_nistz256_is_affine_G(generator)) {
        /* There is a hard-coded table for the default generator. */
        return 1;
    }

1429
    return HAVEPRECOMP(group, nistz256);
1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443
}

const EC_METHOD *EC_GFp_nistz256_method(void)
{
    static const EC_METHOD ret = {
        EC_FLAGS_DEFAULT_OCT,
        NID_X9_62_prime_field,
        ec_GFp_mont_group_init,
        ec_GFp_mont_group_finish,
        ec_GFp_mont_group_clear_finish,
        ec_GFp_mont_group_copy,
        ec_GFp_mont_group_set_curve,
        ec_GFp_simple_group_get_curve,
        ec_GFp_simple_group_get_degree,
1444
        0, /* group_order_bits */
1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476
        ec_GFp_simple_group_check_discriminant,
        ec_GFp_simple_point_init,
        ec_GFp_simple_point_finish,
        ec_GFp_simple_point_clear_finish,
        ec_GFp_simple_point_copy,
        ec_GFp_simple_point_set_to_infinity,
        ec_GFp_simple_set_Jprojective_coordinates_GFp,
        ec_GFp_simple_get_Jprojective_coordinates_GFp,
        ec_GFp_simple_point_set_affine_coordinates,
        ecp_nistz256_get_affine,
        0, 0, 0,
        ec_GFp_simple_add,
        ec_GFp_simple_dbl,
        ec_GFp_simple_invert,
        ec_GFp_simple_is_at_infinity,
        ec_GFp_simple_is_on_curve,
        ec_GFp_simple_cmp,
        ec_GFp_simple_make_affine,
        ec_GFp_simple_points_make_affine,
        ecp_nistz256_points_mul,                    /* mul */
        ecp_nistz256_mult_precompute,               /* precompute_mult */
        ecp_nistz256_window_have_precompute_mult,   /* have_precompute_mult */
        ec_GFp_mont_field_mul,
        ec_GFp_mont_field_sqr,
        0,                                          /* field_div */
        ec_GFp_mont_field_encode,
        ec_GFp_mont_field_decode,
        ec_GFp_mont_field_set_to_one
    };

    return &ret;
}