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169 lines
5.1 KiB
169 lines
5.1 KiB
/* |
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* Copyright (C) 2016 The Android Open Source Project |
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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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* http://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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*/ |
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#include <crypto_utils/android_pubkey.h> |
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#include <assert.h> |
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#include <stdlib.h> |
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#include <string.h> |
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#include <openssl/bn.h> |
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// Better safe than sorry. |
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#if (ANDROID_PUBKEY_MODULUS_SIZE % 4) != 0 |
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#error RSA modulus size must be multiple of the word size! |
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#endif |
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// Size of the RSA modulus in words. |
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#define ANDROID_PUBKEY_MODULUS_SIZE_WORDS (ANDROID_PUBKEY_MODULUS_SIZE / 4) |
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// This file implements encoding and decoding logic for Android's custom RSA |
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// public key binary format. Public keys are stored as a sequence of |
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// little-endian 32 bit words. Note that Android only supports little-endian |
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// processors, so we don't do any byte order conversions when parsing the binary |
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// struct. |
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typedef struct RSAPublicKey { |
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// Modulus length. This must be ANDROID_PUBKEY_MODULUS_SIZE. |
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uint32_t modulus_size_words; |
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// Precomputed montgomery parameter: -1 / n[0] mod 2^32 |
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uint32_t n0inv; |
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// RSA modulus as a little-endian array. |
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uint8_t modulus[ANDROID_PUBKEY_MODULUS_SIZE]; |
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// Montgomery parameter R^2 as a little-endian array of little-endian words. |
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uint8_t rr[ANDROID_PUBKEY_MODULUS_SIZE]; |
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// RSA modulus: 3 or 65537 |
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uint32_t exponent; |
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} RSAPublicKey; |
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// Reverses byte order in |buffer|. |
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static void reverse_bytes(uint8_t* buffer, size_t size) { |
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for (size_t i = 0; i < (size + 1) / 2; ++i) { |
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uint8_t tmp = buffer[i]; |
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buffer[i] = buffer[size - i - 1]; |
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buffer[size - i - 1] = tmp; |
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} |
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} |
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bool android_pubkey_decode(const uint8_t* key_buffer, size_t size, RSA** key) { |
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const RSAPublicKey* key_struct = (RSAPublicKey*)key_buffer; |
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bool ret = false; |
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uint8_t modulus_buffer[ANDROID_PUBKEY_MODULUS_SIZE]; |
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RSA* new_key = RSA_new(); |
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if (!new_key) { |
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goto cleanup; |
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} |
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// Check |size| is large enough and the modulus size is correct. |
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if (size < sizeof(RSAPublicKey)) { |
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goto cleanup; |
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} |
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if (key_struct->modulus_size_words != ANDROID_PUBKEY_MODULUS_SIZE_WORDS) { |
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goto cleanup; |
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} |
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// Convert the modulus to big-endian byte order as expected by BN_bin2bn. |
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memcpy(modulus_buffer, key_struct->modulus, sizeof(modulus_buffer)); |
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reverse_bytes(modulus_buffer, sizeof(modulus_buffer)); |
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new_key->n = BN_bin2bn(modulus_buffer, sizeof(modulus_buffer), NULL); |
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if (!new_key->n) { |
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goto cleanup; |
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} |
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// Read the exponent. |
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new_key->e = BN_new(); |
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if (!new_key->e || !BN_set_word(new_key->e, key_struct->exponent)) { |
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goto cleanup; |
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} |
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// Note that we don't extract the montgomery parameters n0inv and rr from |
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// the RSAPublicKey structure. They assume a word size of 32 bits, but |
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// BoringSSL may use a word size of 64 bits internally, so we're lacking the |
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// top 32 bits of n0inv in general. For now, we just ignore the parameters |
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// and have BoringSSL recompute them internally. More sophisticated logic can |
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// be added here if/when we want the additional speedup from using the |
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// pre-computed montgomery parameters. |
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*key = new_key; |
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ret = true; |
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cleanup: |
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if (!ret && new_key) { |
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RSA_free(new_key); |
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} |
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return ret; |
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} |
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static bool android_pubkey_encode_bignum(const BIGNUM* num, uint8_t* buffer) { |
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if (!BN_bn2bin_padded(buffer, ANDROID_PUBKEY_MODULUS_SIZE, num)) { |
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return false; |
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} |
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reverse_bytes(buffer, ANDROID_PUBKEY_MODULUS_SIZE); |
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return true; |
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} |
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bool android_pubkey_encode(const RSA* key, uint8_t* key_buffer, size_t size) { |
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RSAPublicKey* key_struct = (RSAPublicKey*)key_buffer; |
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bool ret = false; |
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BN_CTX* ctx = BN_CTX_new(); |
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BIGNUM* r32 = BN_new(); |
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BIGNUM* n0inv = BN_new(); |
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BIGNUM* rr = BN_new(); |
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if (sizeof(RSAPublicKey) > size || |
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RSA_size(key) != ANDROID_PUBKEY_MODULUS_SIZE) { |
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goto cleanup; |
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} |
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// Store the modulus size. |
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key_struct->modulus_size_words = ANDROID_PUBKEY_MODULUS_SIZE_WORDS; |
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// Compute and store n0inv = -1 / N[0] mod 2^32. |
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if (!ctx || !r32 || !n0inv || !BN_set_bit(r32, 32) || |
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!BN_mod(n0inv, key->n, r32, ctx) || |
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!BN_mod_inverse(n0inv, n0inv, r32, ctx) || !BN_sub(n0inv, r32, n0inv)) { |
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goto cleanup; |
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} |
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key_struct->n0inv = (uint32_t)BN_get_word(n0inv); |
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// Store the modulus. |
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if (!android_pubkey_encode_bignum(key->n, key_struct->modulus)) { |
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goto cleanup; |
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} |
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// Compute and store rr = (2^(rsa_size)) ^ 2 mod N. |
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if (!ctx || !rr || !BN_set_bit(rr, ANDROID_PUBKEY_MODULUS_SIZE * 8) || |
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!BN_mod_sqr(rr, rr, key->n, ctx) || |
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!android_pubkey_encode_bignum(rr, key_struct->rr)) { |
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goto cleanup; |
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} |
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// Store the exponent. |
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key_struct->exponent = (uint32_t)BN_get_word(key->e); |
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ret = true; |
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cleanup: |
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BN_free(rr); |
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BN_free(n0inv); |
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BN_free(r32); |
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BN_CTX_free(ctx); |
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return ret; |
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}
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