Based on Nekogram. Key additions: - Rebrand to FoxiGram (app name, APK name, applicationId com.foxigram.app) - Embedded Xray (VLESS+Reality) proxy client via JNI libxray.so - Bundled hidden one-tap proxies (LTE + WiFi), read-only in UI - Auto-restore proxy on restart, rebind to active network (LTE/WiFi) - Server credentials externalized to git-ignored XrayServers.java (+ template) - libxray Go source included; compiled .so, keystore, google-services.json ignored
278 lines
9.5 KiB
C++
278 lines
9.5 KiB
C++
// Copyright 2002-2016 The OpenSSL Project Authors. All Rights Reserved.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// https://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#include <openssl/ecdsa.h>
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#include <assert.h>
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#include <string.h>
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#include <openssl/bn.h>
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#include <openssl/err.h>
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#include <openssl/mem.h>
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#include "../../internal.h"
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#include "../bn/internal.h"
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#include "../ec/internal.h"
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#include "../service_indicator/internal.h"
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#include "internal.h"
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// digest_to_scalar interprets |digest_len| bytes from |digest| as a scalar for
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// ECDSA.
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static void digest_to_scalar(const EC_GROUP *group, EC_SCALAR *out,
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const uint8_t *digest, size_t digest_len) {
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const BIGNUM *order = EC_GROUP_get0_order(group);
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size_t num_bits = BN_num_bits(order);
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// Need to truncate digest if it is too long: first truncate whole bytes.
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size_t num_bytes = (num_bits + 7) / 8;
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if (digest_len > num_bytes) {
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digest_len = num_bytes;
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}
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bn_big_endian_to_words(out->words, order->width, digest, digest_len);
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// If it is still too long, truncate remaining bits with a shift.
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if (8 * digest_len > num_bits) {
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bn_rshift_words(out->words, out->words, 8 - (num_bits & 0x7), order->width);
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}
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// |out| now has the same bit width as |order|, but this only bounds by
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// 2*|order|. Subtract the order if out of range.
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//
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// Montgomery multiplication accepts the looser bounds, so this isn't strictly
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// necessary, but it is a cleaner abstraction and has no performance impact.
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BN_ULONG tmp[EC_MAX_WORDS];
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bn_reduce_once_in_place(out->words, 0 /* no carry */, order->d, tmp,
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order->width);
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}
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int ecdsa_verify_fixed_no_self_test(const uint8_t *digest, size_t digest_len,
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const uint8_t *sig, size_t sig_len,
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const EC_KEY *eckey) {
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const EC_GROUP *group = EC_KEY_get0_group(eckey);
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const EC_POINT *pub_key = EC_KEY_get0_public_key(eckey);
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if (group == NULL || pub_key == NULL || sig == NULL) {
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OPENSSL_PUT_ERROR(ECDSA, ECDSA_R_MISSING_PARAMETERS);
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return 0;
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}
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size_t scalar_len = BN_num_bytes(EC_GROUP_get0_order(group));
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EC_SCALAR r, s, u1, u2, s_inv_mont, m;
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if (sig_len != 2 * scalar_len ||
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!ec_scalar_from_bytes(group, &r, sig, scalar_len) ||
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ec_scalar_is_zero(group, &r) ||
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!ec_scalar_from_bytes(group, &s, sig + scalar_len, scalar_len) ||
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ec_scalar_is_zero(group, &s)) {
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OPENSSL_PUT_ERROR(ECDSA, ECDSA_R_BAD_SIGNATURE);
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return 0;
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}
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// s_inv_mont = s^-1 in the Montgomery domain.
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if (!ec_scalar_to_montgomery_inv_vartime(group, &s_inv_mont, &s)) {
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OPENSSL_PUT_ERROR(ECDSA, ERR_R_INTERNAL_ERROR);
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return 0;
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}
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// u1 = m * s^-1 mod order
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// u2 = r * s^-1 mod order
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//
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// |s_inv_mont| is in Montgomery form while |m| and |r| are not, so |u1| and
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// |u2| will be taken out of Montgomery form, as desired.
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digest_to_scalar(group, &m, digest, digest_len);
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ec_scalar_mul_montgomery(group, &u1, &m, &s_inv_mont);
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ec_scalar_mul_montgomery(group, &u2, &r, &s_inv_mont);
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EC_JACOBIAN point;
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if (!ec_point_mul_scalar_public(group, &point, &u1, &pub_key->raw, &u2)) {
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OPENSSL_PUT_ERROR(ECDSA, ERR_R_EC_LIB);
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return 0;
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}
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if (!ec_cmp_x_coordinate(group, &point, &r)) {
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OPENSSL_PUT_ERROR(ECDSA, ECDSA_R_BAD_SIGNATURE);
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return 0;
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}
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return 1;
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}
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int ecdsa_verify_fixed(const uint8_t *digest, size_t digest_len,
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const uint8_t *sig, size_t sig_len, const EC_KEY *key) {
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boringssl_ensure_ecc_self_test();
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return ecdsa_verify_fixed_no_self_test(digest, digest_len, sig, sig_len, key);
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}
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static int ecdsa_sign_impl(const EC_GROUP *group, int *out_retry, uint8_t *sig,
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size_t *out_sig_len, size_t max_sig_len,
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const EC_SCALAR *priv_key, const EC_SCALAR *k,
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const uint8_t *digest, size_t digest_len) {
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*out_retry = 0;
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// Check that the size of the group order is FIPS compliant (FIPS 186-4
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// B.5.2).
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const BIGNUM *order = EC_GROUP_get0_order(group);
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if (BN_num_bits(order) < 160) {
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OPENSSL_PUT_ERROR(EC, EC_R_INVALID_GROUP_ORDER);
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return 0;
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}
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size_t sig_len = 2 * BN_num_bytes(order);
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if (sig_len > max_sig_len) {
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OPENSSL_PUT_ERROR(EC, EC_R_BUFFER_TOO_SMALL);
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return 0;
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}
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// Compute r, the x-coordinate of k * generator.
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EC_JACOBIAN tmp_point;
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EC_SCALAR r;
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if (!ec_point_mul_scalar_base(group, &tmp_point, k) ||
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!ec_get_x_coordinate_as_scalar(group, &r, &tmp_point)) {
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return 0;
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}
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if (constant_time_declassify_int(ec_scalar_is_zero(group, &r))) {
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*out_retry = 1;
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return 0;
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}
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// s = priv_key * r. Note if only one parameter is in the Montgomery domain,
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// |ec_scalar_mod_mul_montgomery| will compute the answer in the normal
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// domain.
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EC_SCALAR s;
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ec_scalar_to_montgomery(group, &s, &r);
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ec_scalar_mul_montgomery(group, &s, priv_key, &s);
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// s = m + priv_key * r.
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EC_SCALAR tmp;
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digest_to_scalar(group, &tmp, digest, digest_len);
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ec_scalar_add(group, &s, &s, &tmp);
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// s = k^-1 * (m + priv_key * r). First, we compute k^-1 in the Montgomery
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// domain. This is |ec_scalar_to_montgomery| followed by
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// |ec_scalar_inv0_montgomery|, but |ec_scalar_inv0_montgomery| followed by
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// |ec_scalar_from_montgomery| is equivalent and slightly more efficient.
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// Then, as above, only one parameter is in the Montgomery domain, so the
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// result is in the normal domain. Finally, note k is non-zero (or computing r
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// would fail), so the inverse must exist.
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ec_scalar_inv0_montgomery(group, &tmp, k); // tmp = k^-1 R^2
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ec_scalar_from_montgomery(group, &tmp, &tmp); // tmp = k^-1 R
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ec_scalar_mul_montgomery(group, &s, &s, &tmp);
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if (constant_time_declassify_int(ec_scalar_is_zero(group, &s))) {
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*out_retry = 1;
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return 0;
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}
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CONSTTIME_DECLASSIFY(r.words, sizeof(r.words));
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CONSTTIME_DECLASSIFY(s.words, sizeof(r.words));
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size_t len;
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ec_scalar_to_bytes(group, sig, &len, &r);
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assert(len == sig_len / 2);
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ec_scalar_to_bytes(group, sig + len, &len, &s);
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assert(len == sig_len / 2);
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*out_sig_len = sig_len;
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return 1;
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}
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int ecdsa_sign_fixed_with_nonce_for_known_answer_test(
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const uint8_t *digest, size_t digest_len, uint8_t *sig, size_t *out_sig_len,
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size_t max_sig_len, const EC_KEY *eckey, const uint8_t *nonce,
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size_t nonce_len) {
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if (eckey->ecdsa_meth && eckey->ecdsa_meth->sign) {
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OPENSSL_PUT_ERROR(ECDSA, ECDSA_R_NOT_IMPLEMENTED);
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return 0;
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}
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const EC_GROUP *group = EC_KEY_get0_group(eckey);
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if (group == NULL || eckey->priv_key == NULL) {
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OPENSSL_PUT_ERROR(ECDSA, ERR_R_PASSED_NULL_PARAMETER);
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return 0;
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}
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const EC_SCALAR *priv_key = &eckey->priv_key->scalar;
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EC_SCALAR k;
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if (!ec_scalar_from_bytes(group, &k, nonce, nonce_len)) {
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return 0;
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}
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int retry_ignored;
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return ecdsa_sign_impl(group, &retry_ignored, sig, out_sig_len, max_sig_len,
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priv_key, &k, digest, digest_len);
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}
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int ecdsa_sign_fixed(const uint8_t *digest, size_t digest_len, uint8_t *sig,
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size_t *out_sig_len, size_t max_sig_len,
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const EC_KEY *eckey) {
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boringssl_ensure_ecc_self_test();
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if (eckey->ecdsa_meth && eckey->ecdsa_meth->sign) {
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OPENSSL_PUT_ERROR(ECDSA, ECDSA_R_NOT_IMPLEMENTED);
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return 0;
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}
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const EC_GROUP *group = EC_KEY_get0_group(eckey);
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if (group == NULL || eckey->priv_key == NULL) {
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OPENSSL_PUT_ERROR(ECDSA, ERR_R_PASSED_NULL_PARAMETER);
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return 0;
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}
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const BIGNUM *order = EC_GROUP_get0_order(group);
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const EC_SCALAR *priv_key = &eckey->priv_key->scalar;
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// Pass a SHA512 hash of the private key and digest as additional data
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// into the RBG. This is a hardening measure against entropy failure.
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static_assert(BCM_SHA512_DIGEST_LENGTH >= 32,
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"additional_data is too large for SHA-512");
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FIPS_service_indicator_lock_state();
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SHA512_CTX sha;
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uint8_t additional_data[BCM_SHA512_DIGEST_LENGTH];
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BCM_sha512_init(&sha);
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BCM_sha512_update(&sha, priv_key->words, order->width * sizeof(BN_ULONG));
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BCM_sha512_update(&sha, digest, digest_len);
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BCM_sha512_final(additional_data, &sha);
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// Cap iterations so callers who supply invalid values as custom groups do not
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// infinite loop. This does not impact valid parameters (e.g. those covered by
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// FIPS) because the probability of requiring even one retry is negligible,
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// let alone 32.
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static const int kMaxIterations = 32;
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int ret = 0;
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int iters = 0;
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for (;;) {
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EC_SCALAR k;
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if (!ec_random_nonzero_scalar(group, &k, additional_data)) {
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goto out;
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}
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// TODO(davidben): Move this inside |ec_random_nonzero_scalar| or lower, so
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// that all scalars we generate are, by default, secret.
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CONSTTIME_SECRET(k.words, sizeof(k.words));
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int retry;
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ret = ecdsa_sign_impl(group, &retry, sig, out_sig_len, max_sig_len,
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priv_key, &k, digest, digest_len);
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if (ret || !retry) {
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goto out;
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}
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iters++;
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if (iters > kMaxIterations) {
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OPENSSL_PUT_ERROR(ECDSA, ECDSA_R_TOO_MANY_ITERATIONS);
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goto out;
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}
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}
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out:
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FIPS_service_indicator_unlock_state();
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return ret;
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}
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