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322 lines
7.8 KiB
322 lines
7.8 KiB
/*
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This file is part of cpp-ethereum.
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cpp-ethereum is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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cpp-ethereum is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with cpp-ethereum. If not, see <http://www.gnu.org/licenses/>.
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*/
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/** @file Common.cpp
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* @author Alex Leverington <nessence@gmail.com>
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* @author Gav Wood <i@gavwood.com>
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* @date 2014
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*/
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#include "Common.h"
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#include <cstdint>
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#include <chrono>
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#include <thread>
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#include <mutex>
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#include <libscrypt/libscrypt.h>
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#include <libdevcore/Guards.h>
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#include <libdevcore/SHA3.h>
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#include <libdevcore/RLP.h>
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#if ETH_HAVE_SECP256K1
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#include <secp256k1/include/secp256k1.h>
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#endif
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#include "AES.h"
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#include "CryptoPP.h"
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#include "Exceptions.h"
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using namespace std;
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using namespace dev;
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using namespace dev::crypto;
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#ifdef ETH_HAVE_SECP256K1
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struct Secp256k1Context
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{
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Secp256k1Context() { ctx = secp256k1_context_create(SECP256K1_CONTEXT_SIGN | SECP256K1_CONTEXT_VERIFY); }
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~Secp256k1Context() { secp256k1_context_destroy(ctx); }
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secp256k1_context_t* ctx;
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operator secp256k1_context_t const*() const { return ctx; }
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};
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static Secp256k1Context s_secp256k1;
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#endif
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static Secp256k1PP s_secp256k1pp;
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bool dev::SignatureStruct::isValid() const noexcept
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{
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if (v > 1 ||
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r >= h256("0xfffffffffffffffffffffffffffffffebaaedce6af48a03bbfd25e8cd0364141") ||
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s >= h256("0xfffffffffffffffffffffffffffffffebaaedce6af48a03bbfd25e8cd0364141") ||
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s < h256(1) ||
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r < h256(1))
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return false;
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return true;
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}
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Public SignatureStruct::recover(h256 const& _hash) const
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{
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return dev::recover((Signature)*this, _hash);
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}
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Address dev::ZeroAddress = Address();
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Public dev::toPublic(Secret const& _secret)
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{
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#ifdef ETH_HAVE_SECP256K1
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bytes o(65);
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int pubkeylen;
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if (!secp256k1_ec_pubkey_create(s_secp256k1, o.data(), &pubkeylen, _secret.data(), false))
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return Public();
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return FixedHash<64>(o.data()+1, Public::ConstructFromPointer);
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#else
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Public p;
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s_secp256k1pp.toPublic(_secret, p);
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return p;
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#endif
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}
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Address dev::toAddress(Public const& _public)
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{
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return right160(sha3(_public.ref()));
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}
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Address dev::toAddress(Secret const& _secret)
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{
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Public p;
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s_secp256k1pp.toPublic(_secret, p);
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return toAddress(p);
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}
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Address dev::toAddress(Address const& _from, u256 const& _nonce)
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{
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return right160(sha3(rlpList(_from, _nonce)));
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}
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void dev::encrypt(Public const& _k, bytesConstRef _plain, bytes& o_cipher)
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{
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bytes io = _plain.toBytes();
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s_secp256k1pp.encrypt(_k, io);
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o_cipher = std::move(io);
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}
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bool dev::decrypt(Secret const& _k, bytesConstRef _cipher, bytes& o_plaintext)
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{
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bytes io = _cipher.toBytes();
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s_secp256k1pp.decrypt(_k, io);
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if (io.empty())
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return false;
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o_plaintext = std::move(io);
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return true;
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}
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void dev::encryptECIES(Public const& _k, bytesConstRef _plain, bytes& o_cipher)
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{
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bytes io = _plain.toBytes();
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s_secp256k1pp.encryptECIES(_k, io);
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o_cipher = std::move(io);
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}
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bool dev::decryptECIES(Secret const& _k, bytesConstRef _cipher, bytes& o_plaintext)
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{
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bytes io = _cipher.toBytes();
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if (!s_secp256k1pp.decryptECIES(_k, io))
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return false;
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o_plaintext = std::move(io);
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return true;
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}
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void dev::encryptSym(Secret const& _k, bytesConstRef _plain, bytes& o_cipher)
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{
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// TOOD: @alex @subtly do this properly.
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encrypt(KeyPair(_k).pub(), _plain, o_cipher);
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}
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bool dev::decryptSym(Secret const& _k, bytesConstRef _cipher, bytes& o_plain)
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{
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// TODO: @alex @subtly do this properly.
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return decrypt(_k, _cipher, o_plain);
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}
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std::pair<bytes, h128> dev::encryptSymNoAuth(SecureFixedHash<16> const& _k, bytesConstRef _plain)
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{
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h128 iv(Nonce::get().makeInsecure());
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return make_pair(encryptSymNoAuth(_k, iv, _plain), iv);
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}
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bytes dev::encryptAES128CTR(bytesConstRef _k, h128 const& _iv, bytesConstRef _plain)
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{
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if (_k.size() != 16 && _k.size() != 24 && _k.size() != 32)
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return bytes();
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SecByteBlock key(_k.data(), _k.size());
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try
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{
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CTR_Mode<AES>::Encryption e;
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e.SetKeyWithIV(key, key.size(), _iv.data());
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bytes ret(_plain.size());
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e.ProcessData(ret.data(), _plain.data(), _plain.size());
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return ret;
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}
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catch (CryptoPP::Exception& _e)
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{
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cerr << _e.what() << endl;
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return bytes();
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}
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}
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bytesSec dev::decryptAES128CTR(bytesConstRef _k, h128 const& _iv, bytesConstRef _cipher)
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{
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if (_k.size() != 16 && _k.size() != 24 && _k.size() != 32)
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return bytesSec();
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SecByteBlock key(_k.data(), _k.size());
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try
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{
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CTR_Mode<AES>::Decryption d;
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d.SetKeyWithIV(key, key.size(), _iv.data());
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bytesSec ret(_cipher.size());
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d.ProcessData(ret.writable().data(), _cipher.data(), _cipher.size());
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return ret;
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}
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catch (CryptoPP::Exception& _e)
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{
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cerr << _e.what() << endl;
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return bytesSec();
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}
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}
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static const Public c_zeroKey("3f17f1962b36e491b30a40b2405849e597ba5fb5");
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Public dev::recover(Signature const& _sig, h256 const& _message)
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{
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Public ret;
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#ifdef ETH_HAVE_SECP256K1
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bytes o(65);
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int pubkeylen;
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if (!secp256k1_ecdsa_recover_compact(s_secp256k1, _message.data(), _sig.data(), o.data(), &pubkeylen, false, _sig[64]))
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return Public();
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ret = FixedHash<64>(o.data() + 1, Public::ConstructFromPointer);
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#else
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ret = s_secp256k1pp.recover(_sig, _message.ref());
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#endif
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if (ret == c_zeroKey)
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return Public();
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return ret;
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}
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Signature dev::sign(Secret const& _k, h256 const& _hash)
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{
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#ifdef ETH_HAVE_SECP256K1
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Signature s;
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int v;
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if (!secp256k1_ecdsa_sign_compact(s_secp256k1, _hash.data(), s.data(), _k.data(), NULL, NULL, &v))
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return Signature();
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s[64] = v;
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return s;
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#else
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return s_secp256k1pp.sign(_k, _hash);
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#endif
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}
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bool dev::verify(Public const& _p, Signature const& _s, h256 const& _hash)
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{
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if (!_p)
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return false;
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#ifdef ETH_HAVE_SECP256K1
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return _p == recover(_s, _hash);
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#else
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return s_secp256k1pp.verify(_p, _s, _hash.ref(), true);
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#endif
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}
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bytesSec dev::pbkdf2(string const& _pass, bytes const& _salt, unsigned _iterations, unsigned _dkLen)
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{
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bytesSec ret(_dkLen);
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if (PKCS5_PBKDF2_HMAC<SHA256>().DeriveKey(
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ret.writable().data(),
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_dkLen,
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0,
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reinterpret_cast<byte const*>(_pass.data()),
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_pass.size(),
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_salt.data(),
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_salt.size(),
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_iterations
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) != _iterations)
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BOOST_THROW_EXCEPTION(CryptoException() << errinfo_comment("Key derivation failed."));
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return ret;
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}
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bytesSec dev::scrypt(std::string const& _pass, bytes const& _salt, uint64_t _n, uint32_t _r, uint32_t _p, unsigned _dkLen)
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{
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bytesSec ret(_dkLen);
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if (libscrypt_scrypt(
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reinterpret_cast<uint8_t const*>(_pass.data()),
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_pass.size(),
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_salt.data(),
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_salt.size(),
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_n,
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_r,
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_p,
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ret.writable().data(),
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_dkLen
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) != 0)
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BOOST_THROW_EXCEPTION(CryptoException() << errinfo_comment("Key derivation failed."));
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return ret;
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}
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void KeyPair::populateFromSecret(Secret const& _sec)
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{
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m_secret = _sec;
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if (s_secp256k1pp.verifySecret(m_secret, m_public))
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m_address = toAddress(m_public);
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}
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KeyPair KeyPair::create()
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{
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for (int i = 0; i < 100; ++i)
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{
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KeyPair ret(Secret::random());
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if (ret.address())
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return ret;
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}
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return KeyPair();
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}
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KeyPair KeyPair::fromEncryptedSeed(bytesConstRef _seed, std::string const& _password)
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{
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return KeyPair(Secret(sha3(aesDecrypt(_seed, _password))));
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}
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h256 crypto::kdf(Secret const& _priv, h256 const& _hash)
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{
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// H(H(r||k)^h)
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h256 s;
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sha3mac(Secret::random().ref(), _priv.ref(), s.ref());
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s ^= _hash;
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sha3(s.ref(), s.ref());
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if (!s || !_hash || !_priv)
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BOOST_THROW_EXCEPTION(InvalidState());
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return s;
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}
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Secret Nonce::next()
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{
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Guard l(x_value);
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if (!m_value)
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{
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m_value = Secret::random();
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if (!m_value)
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BOOST_THROW_EXCEPTION(InvalidState());
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}
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m_value = sha3Secure(m_value.ref());
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return sha3(~m_value);
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}
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