373 lines
8.1 KiB
C
373 lines
8.1 KiB
C
/*
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* Copyright (C) 2018 Tobias Brunner
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* Copyright (C) 2016 Andreas Steffen
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*
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* Copyright (C) secunet Security Networks AG
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*
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* This program is free software; you can redistribute it and/or modify it
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* under the terms of the GNU General Public License as published by the
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* Free Software Foundation; either version 2 of the License, or (at your
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* option) any later version. See <http://www.fsf.org/copyleft/gpl.txt>.
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*
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* This program is distributed in the hope that it will be useful, but
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* WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
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* or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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* for more details.
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*/
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#include "curve25519_public_key.h"
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#include "ref10/ref10.h"
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#include <asn1/asn1.h>
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#include <asn1/asn1_parser.h>
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#include <asn1/oid.h>
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typedef struct private_curve25519_public_key_t private_curve25519_public_key_t;
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/**
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* Private data structure with signing context.
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*/
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struct private_curve25519_public_key_t {
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/**
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* Public interface for this signer.
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*/
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curve25519_public_key_t public;
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/**
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* Ed25519 public key
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*/
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chunk_t pubkey;
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/**
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* Reference counter
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*/
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refcount_t ref;
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};
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METHOD(public_key_t, get_type, key_type_t,
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private_curve25519_public_key_t *this)
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{
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return KEY_ED25519;
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}
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/* L = 2^252+27742317777372353535851937790883648493 in little-endian form */
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static chunk_t curve25519_order = chunk_from_chars(
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0xed, 0xd3, 0xf5, 0x5c, 0x1a, 0x63, 0x12, 0x58,
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0xd6, 0x9c, 0xf7, 0xa2, 0xde, 0xf9, 0xde, 0x14,
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0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
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0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x10);
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METHOD(public_key_t, verify, bool,
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private_curve25519_public_key_t *this, signature_scheme_t scheme,
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void *params, chunk_t data, chunk_t signature)
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{
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hasher_t *hasher;
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uint8_t d = 0, k[HASH_SIZE_SHA512], r[32], *sig;
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int i;
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ge_p3 A;
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ge_p2 R;
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if (scheme != SIGN_ED25519)
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{
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DBG1(DBG_LIB, "signature scheme %N not supported by Ed25519",
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signature_scheme_names, scheme);
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return FALSE;
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}
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if (signature.len != 64)
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{
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DBG1(DBG_LIB, "size of Ed25519 signature is not 64 bytes");
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return FALSE;
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}
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sig = signature.ptr;
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if (sig[63] & 0xe0)
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{
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DBG1(DBG_LIB, "the three most significant bits of Ed25519 signature "
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"are not zero");
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return FALSE;
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}
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if (ge_frombytes_negate_vartime(&A, this->pubkey.ptr) != 0)
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{
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return FALSE;
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}
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/* check for all-zeroes public key */
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for (i = 0; i < 32; i++)
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{
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d |= this->pubkey.ptr[i];
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}
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if (!d)
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{
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return FALSE;
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}
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/* make sure 0 <= s < L, as per RFC 8032, section 5.1.7 to prevent signature
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* malleability. Due to the three-bit check above (forces s < 2^253) there
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* is not that much room, but adding L once works with most signatures */
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for (i = 31; ; i--)
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{
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if (sig[i+32] < curve25519_order.ptr[i])
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{
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break;
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}
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else if (sig[i+32] > curve25519_order.ptr[i] || i == 0)
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{
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return FALSE;
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}
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}
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hasher = lib->crypto->create_hasher(lib->crypto, HASH_SHA512);
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if (!hasher)
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{
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return FALSE;
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}
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if (!hasher->get_hash(hasher, chunk_create(sig, 32), NULL) ||
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!hasher->get_hash(hasher, this->pubkey, NULL) ||
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!hasher->get_hash(hasher, data, k))
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{
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hasher->destroy(hasher);
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return FALSE;
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}
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hasher->destroy(hasher);
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sc_reduce(k);
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ge_double_scalarmult_vartime(&R, k, &A, sig + 32);
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ge_tobytes(r, &R);
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return memeq_const(sig, r, 32);
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}
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METHOD(public_key_t, encrypt_, bool,
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private_curve25519_public_key_t *this, encryption_scheme_t scheme,
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void *params, chunk_t plain, chunk_t *crypto)
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{
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DBG1(DBG_LIB, "encryption scheme %N not supported", encryption_scheme_names,
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scheme);
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return FALSE;
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}
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METHOD(public_key_t, get_keysize, int,
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private_curve25519_public_key_t *this)
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{
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return 8 * ED25519_KEY_LEN;
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}
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METHOD(public_key_t, get_encoding, bool,
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private_curve25519_public_key_t *this, cred_encoding_type_t type,
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chunk_t *encoding)
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{
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bool success = TRUE;
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*encoding = curve25519_public_key_info_encode(this->pubkey);
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if (type != PUBKEY_SPKI_ASN1_DER)
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{
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chunk_t asn1_encoding = *encoding;
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success = lib->encoding->encode(lib->encoding, type,
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NULL, encoding, CRED_PART_EDDSA_PUB_ASN1_DER,
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asn1_encoding, CRED_PART_END);
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chunk_clear(&asn1_encoding);
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}
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return success;
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}
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METHOD(public_key_t, get_fingerprint, bool,
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private_curve25519_public_key_t *this, cred_encoding_type_t type,
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chunk_t *fp)
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{
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bool success;
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if (lib->encoding->get_cache(lib->encoding, type, this, fp))
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{
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return TRUE;
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}
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success = curve25519_public_key_fingerprint(this->pubkey, type, fp);
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if (success)
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{
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lib->encoding->cache(lib->encoding, type, this, *fp);
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}
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return success;
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}
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METHOD(public_key_t, get_ref, public_key_t*,
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private_curve25519_public_key_t *this)
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{
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ref_get(&this->ref);
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return &this->public.key;
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}
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METHOD(public_key_t, destroy, void,
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private_curve25519_public_key_t *this)
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{
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if (ref_put(&this->ref))
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{
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lib->encoding->clear_cache(lib->encoding, this);
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free(this->pubkey.ptr);
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free(this);
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}
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}
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/**
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* ASN.1 definition of an Ed25519 public key
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*/
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static const asn1Object_t pubkeyObjects[] = {
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{ 0, "subjectPublicKeyInfo",ASN1_SEQUENCE, ASN1_NONE }, /* 0 */
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{ 1, "algorithm", ASN1_EOC, ASN1_RAW }, /* 1 */
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{ 1, "subjectPublicKey", ASN1_BIT_STRING, ASN1_BODY }, /* 2 */
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{ 0, "exit", ASN1_EOC, ASN1_EXIT }
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};
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#define ED25519_SUBJECT_PUBLIC_KEY_ALGORITHM 1
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#define ED25519_SUBJECT_PUBLIC_KEY 2
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/**
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* Parse the ASN.1-encoded subjectPublicKeyInfo
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*/
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static bool parse_public_key_info(private_curve25519_public_key_t *this,
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chunk_t blob)
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{
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asn1_parser_t *parser;
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chunk_t object;
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bool success = FALSE;
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int objectID, oid;
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parser = asn1_parser_create(pubkeyObjects, blob);
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while (parser->iterate(parser, &objectID, &object))
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{
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switch (objectID)
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{
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case ED25519_SUBJECT_PUBLIC_KEY_ALGORITHM:
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{
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oid = asn1_parse_algorithmIdentifier(object,
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parser->get_level(parser) + 1, NULL);
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if (oid != OID_ED25519)
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{
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goto end;
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}
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break;
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}
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case ED25519_SUBJECT_PUBLIC_KEY:
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{
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/* encoded as an ASN1 BIT STRING */
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if (object.len != 1 + ED25519_KEY_LEN)
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{
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goto end;
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}
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this->pubkey = chunk_clone(chunk_skip(object, 1));
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break;
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}
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}
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}
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success = parser->success(parser);
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end:
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parser->destroy(parser);
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return success;
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}
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/**
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* See header.
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*/
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curve25519_public_key_t *curve25519_public_key_load(key_type_t type,
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va_list args)
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{
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private_curve25519_public_key_t *this;
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chunk_t asn1 = chunk_empty, blob = chunk_empty;
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while (TRUE)
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{
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switch (va_arg(args, builder_part_t))
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{
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case BUILD_BLOB_ASN1_DER:
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asn1 = va_arg(args, chunk_t);
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continue;
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case BUILD_EDDSA_PUB:
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blob = va_arg(args, chunk_t);
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continue;
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case BUILD_END:
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break;
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default:
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return NULL;
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}
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break;
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}
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INIT(this,
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.public = {
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.key = {
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.get_type = _get_type,
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.verify = _verify,
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.encrypt = _encrypt_,
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.equals = public_key_equals,
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.get_keysize = _get_keysize,
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.get_fingerprint = _get_fingerprint,
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.has_fingerprint = public_key_has_fingerprint,
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.get_encoding = _get_encoding,
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.get_ref = _get_ref,
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.destroy = _destroy,
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},
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},
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.ref = 1,
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);
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if (blob.len == ED25519_KEY_LEN)
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{
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this->pubkey = chunk_clone(blob);
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}
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else if (!asn1.len || !parse_public_key_info(this, asn1))
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{
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destroy(this);
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return NULL;
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}
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return &this->public;
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}
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/**
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* See header.
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*/
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chunk_t curve25519_public_key_info_encode(chunk_t pubkey)
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{
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return asn1_wrap(ASN1_SEQUENCE, "mm",
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asn1_wrap(ASN1_SEQUENCE, "m",
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asn1_build_known_oid(OID_ED25519)),
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asn1_bitstring("c", pubkey));
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}
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/**
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* See header.
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*/
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bool curve25519_public_key_fingerprint(chunk_t pubkey,
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cred_encoding_type_t type, chunk_t *fp)
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{
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hasher_t *hasher;
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chunk_t key;
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switch (type)
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{
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case KEYID_PUBKEY_SHA1:
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key = chunk_clone(pubkey);
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break;
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case KEYID_PUBKEY_INFO_SHA1:
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key = curve25519_public_key_info_encode(pubkey);
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break;
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default:
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return FALSE;
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}
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hasher = lib->crypto->create_hasher(lib->crypto, HASH_SHA1);
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if (!hasher || !hasher->allocate_hash(hasher, key, fp))
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{
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DBG1(DBG_LIB, "SHA1 hash algorithm not supported, "
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"fingerprinting failed");
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DESTROY_IF(hasher);
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free(key.ptr);
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return FALSE;
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}
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hasher->destroy(hasher);
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free(key.ptr);
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return TRUE;
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}
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