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			377 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			377 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
/*
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	This file is part of solidity.
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	solidity 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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	solidity 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 solidity.  If not, see <http://www.gnu.org/licenses/>.
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*/
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/**
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 * Yul interpreter module that evaluates EWasm builtins.
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 */
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#include <test/tools/yulInterpreter/EWasmBuiltinInterpreter.h>
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#include <test/tools/yulInterpreter/Interpreter.h>
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#include <libyul/backends/evm/EVMDialect.h>
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#include <libyul/AsmData.h>
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#include <libevmasm/Instruction.h>
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#include <libdevcore/Keccak256.h>
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using namespace std;
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using namespace dev;
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using namespace yul;
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using namespace yul::test;
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namespace
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{
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/// Copy @a _size bytes of @a _source at offset @a _sourceOffset to
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/// @a _target at offset @a _targetOffset. Behaves as if @a _source would
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/// continue with an infinite sequence of zero bytes beyond its end.
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void copyZeroExtended(
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	map<u256, uint8_t>& _target, bytes const& _source,
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	size_t _targetOffset, size_t _sourceOffset, size_t _size
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)
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{
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	for (size_t i = 0; i < _size; ++i)
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		_target[_targetOffset + i] = _sourceOffset + i < _source.size() ? _source[_sourceOffset + i] : 0;
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}
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}
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using u512 = boost::multiprecision::number<boost::multiprecision::cpp_int_backend<512, 256, boost::multiprecision::unsigned_magnitude, boost::multiprecision::unchecked, void>>;
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u256 EWasmBuiltinInterpreter::evalBuiltin(YulString _fun, vector<u256> const& _arguments)
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{
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	vector<uint64_t> arg;
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	for (u256 const& a: _arguments)
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		arg.emplace_back(uint64_t(a & uint64_t(-1)));
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	if (_fun == "datasize"_yulstring)
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		return u256(keccak256(h256(_arguments.at(0)))) & 0xfff;
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	else if (_fun == "dataoffset"_yulstring)
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		return u256(keccak256(h256(_arguments.at(0) + 2))) & 0xfff;
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	else if (_fun == "datacopy"_yulstring)
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	{
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		// This is identical to codecopy.
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		if (accessMemory(_arguments.at(0), _arguments.at(2)))
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			copyZeroExtended(
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				m_state.memory,
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				m_state.code,
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				size_t(_arguments.at(0)),
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				size_t(_arguments.at(1) & size_t(-1)),
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				size_t(_arguments.at(2))
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			);
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		return 0;
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	}
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	else if (_fun == "drop"_yulstring)
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		return {};
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	else if (_fun == "unreachable"_yulstring)
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		throw ExplicitlyTerminated();
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	else if (_fun == "i64.add"_yulstring)
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		return arg[0] + arg[1];
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	else if (_fun == "i64.sub"_yulstring)
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		return arg[0] - arg[1];
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	else if (_fun == "i64.mul"_yulstring)
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		return arg[0] * arg[1];
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	else if (_fun == "i64.div_u"_yulstring)
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	{
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		if (arg[1] == 0)
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			throw ExplicitlyTerminated();
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		else
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			return arg[0] / arg[1];
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	}
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	else if (_fun == "i64.rem_u"_yulstring)
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	{
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		if (arg[1] == 0)
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			throw ExplicitlyTerminated();
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		else
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			return arg[0] % arg[1];
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	}
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	else if (_fun == "i64.and"_yulstring)
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		return arg[0] & arg[1];
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	else if (_fun == "i64.or"_yulstring)
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		return arg[0] | arg[1];
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	else if (_fun == "i64.xor"_yulstring)
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		return arg[0] ^ arg[1];
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	else if (_fun == "i64.shl"_yulstring)
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		return arg[0] << arg[1];
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	else if (_fun == "i64.shr_u"_yulstring)
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		return arg[0] >> arg[1];
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	else if (_fun == "i64.eq"_yulstring)
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		return arg[0] == arg[1] ? 1 : 0;
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	else if (_fun == "i64.ne"_yulstring)
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		return arg[0] != arg[1] ? 1 : 0;
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	else if (_fun == "i64.eqz"_yulstring)
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		return arg[0] == 0 ? 1 : 0;
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	else if (_fun == "i64.lt_u"_yulstring)
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		return arg[0] < arg[1] ? 1 : 0;
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	else if (_fun == "i64.gt_u"_yulstring)
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		return arg[0] > arg[1] ? 1 : 0;
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	else if (_fun == "i64.le_u"_yulstring)
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		return arg[0] <= arg[1] ? 1 : 0;
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	else if (_fun == "i64.ge_u"_yulstring)
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		return arg[0] >= arg[1] ? 1 : 0;
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	else if (_fun == "i64.store"_yulstring)
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	{
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		accessMemory(arg[0], 8);
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		writeMemoryWord(arg[0], arg[1]);
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		return 0;
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	}
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	else if (_fun == "i64.load"_yulstring)
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	{
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		accessMemory(arg[0], 8);
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		return readMemoryWord(arg[0]);
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	}
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	else if (_fun == "eth.getAddress"_yulstring)
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		return writeAddress(arg[0], m_state.address);
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	else if (_fun == "eth.getExternalBalance"_yulstring)
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		// TODO this does not read the address, but is consistent with
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		// EVM interpreter implementation.
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		// If we take the address into account, this needs to use readAddress.
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		return writeU128(arg[0], m_state.balance);
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	else if (_fun == "eth.getBlockHash"_yulstring)
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	{
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		if (arg[0] >= m_state.blockNumber || arg[0] + 256 < m_state.blockNumber)
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			return 1;
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		else
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			return writeU256(arg[1], 0xaaaaaaaa + u256(arg[0] - m_state.blockNumber - 256));
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	}
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	else if (_fun == "eth.call"_yulstring)
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	{
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		// TODO read args from memory
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		// TODO use readAddress to read address.
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		logTrace(eth::Instruction::CALL, {});
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		return arg[0] & 1;
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	}
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	else if (_fun == "eth.callDataCopy"_yulstring)
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	{
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		if (arg[1] + arg[2] < arg[1] || arg[1] + arg[2] > m_state.calldata.size())
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			throw ExplicitlyTerminated();
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		if (accessMemory(arg[0], arg[2]))
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			copyZeroExtended(
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				m_state.memory, m_state.calldata,
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				size_t(arg[0]), size_t(arg[1]), size_t(arg[2])
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			);
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		return {};
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	}
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	else if (_fun == "eth.getCallDataSize"_yulstring)
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		return m_state.calldata.size();
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	else if (_fun == "eth.callCode"_yulstring)
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	{
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		// TODO read args from memory
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		// TODO use readAddress to read address.
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		logTrace(eth::Instruction::CALLCODE, {});
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		return arg[0] & 1;
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	}
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	else if (_fun == "eth.callDelegate"_yulstring)
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	{
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		// TODO read args from memory
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		// TODO use readAddress to read address.
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		logTrace(eth::Instruction::DELEGATECALL, {});
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		return arg[0] & 1;
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	}
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	else if (_fun == "eth.callStatic"_yulstring)
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	{
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		// TODO read args from memory
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		// TODO use readAddress to read address.
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		logTrace(eth::Instruction::STATICCALL, {});
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		return arg[0] & 1;
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	}
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	else if (_fun == "eth.storageStore"_yulstring)
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	{
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		m_state.storage[h256(readU256(arg[0]))] = readU256((arg[1]));
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		return 0;
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	}
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	else if (_fun == "eth.storageLoad"_yulstring)
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		return writeU256(arg[1], m_state.storage[h256(readU256(arg[0]))]);
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	else if (_fun == "eth.getCaller"_yulstring)
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		// TODO should this only write 20 bytes?
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		return writeAddress(arg[0], m_state.caller);
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	else if (_fun == "eth.getCallValue"_yulstring)
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		return writeU128(arg[0], m_state.callvalue);
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	else if (_fun == "eth.codeCopy"_yulstring)
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	{
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		if (accessMemory(arg[0], arg[2]))
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			copyZeroExtended(
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				m_state.memory, m_state.code,
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				size_t(arg[0]), size_t(arg[1]), size_t(arg[2])
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			);
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		return 0;
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	}
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	else if (_fun == "eth.getCodeSize"_yulstring)
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		return writeU256(arg[0], m_state.code.size());
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	else if (_fun == "eth.getBlockCoinbase"_yulstring)
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		return writeAddress(arg[0], m_state.coinbase);
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	else if (_fun == "eth.create"_yulstring)
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	{
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		// TODO access memory
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		// TODO use writeAddress to store resulting address
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		logTrace(eth::Instruction::CREATE, {});
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		return 0xcccccc + arg[1];
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	}
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	else if (_fun == "eth.getBlockDifficulty"_yulstring)
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		return writeU256(arg[0], m_state.difficulty);
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	else if (_fun == "eth.externalCodeCopy"_yulstring)
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	{
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		// TODO use readAddress to read address.
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		if (accessMemory(arg[1], arg[3]))
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			// TODO this way extcodecopy and codecopy do the same thing.
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			copyZeroExtended(
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				m_state.memory, m_state.code,
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				size_t(arg[1]), size_t(arg[2]), size_t(arg[3])
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			);
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		return 0;
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	}
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	else if (_fun == "eth.getExternalCodeSize"_yulstring)
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		return u256(keccak256(h256(readAddress(arg[0])))) & 0xffffff;
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	else if (_fun == "eth.getGasLeft"_yulstring)
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		return 0x99;
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	else if (_fun == "eth.getBlockGasLimit"_yulstring)
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		return uint64_t(m_state.gaslimit);
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	else if (_fun == "eth.getTxGasPrice"_yulstring)
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		return writeU128(arg[0], m_state.gasprice);
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	else if (_fun == "eth.log"_yulstring)
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	{
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		logTrace(eth::Instruction::LOG0, {});
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		return 0;
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	}
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	else if (_fun == "eth.getBlockNumber"_yulstring)
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		return m_state.blockNumber;
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	else if (_fun == "eth.getTxOrigin"_yulstring)
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		return writeAddress(arg[0], m_state.origin);
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	else if (_fun == "eth.finish"_yulstring)
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	{
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		bytes data;
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		if (accessMemory(arg[0], arg[1]))
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			data = readMemory(arg[0], arg[1]);
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		logTrace(eth::Instruction::RETURN, {}, data);
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		throw ExplicitlyTerminated();
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	}
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	else if (_fun == "eth.revert"_yulstring)
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	{
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		bytes data;
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		if (accessMemory(arg[0], arg[1]))
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			data = readMemory(arg[0], arg[1]);
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		logTrace(eth::Instruction::REVERT, {}, data);
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		throw ExplicitlyTerminated();
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	}
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	else if (_fun == "eth.getReturnDataSize"_yulstring)
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		return m_state.returndata.size();
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	else if (_fun == "eth.returnDataCopy"_yulstring)
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	{
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		if (arg[1] + arg[2] < arg[1] || arg[1] + arg[2] > m_state.returndata.size())
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			throw ExplicitlyTerminated();
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		if (accessMemory(arg[0], arg[2]))
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			copyZeroExtended(
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				m_state.memory, m_state.calldata,
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				size_t(arg[0]), size_t(arg[1]), size_t(arg[2])
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			);
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		return {};
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	}
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	else if (_fun == "eth.selfDestruct"_yulstring)
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	{
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		// TODO use readAddress to read address.
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		logTrace(eth::Instruction::SELFDESTRUCT, {});
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		throw ExplicitlyTerminated();
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	}
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	else if (_fun == "eth.getBlockTimestamp"_yulstring)
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		return m_state.timestamp;
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	yulAssert(false, "Unknown builtin: " + _fun.str() + " (or implementation did not return)");
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	return 0;
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}
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bool EWasmBuiltinInterpreter::accessMemory(u256 const& _offset, u256 const& _size)
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{
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	if (((_offset + _size) >= _offset) && ((_offset + _size + 0x1f) >= (_offset + _size)))
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	{
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		u256 newSize = (_offset + _size + 0x1f) & ~u256(0x1f);
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		m_state.msize = max(m_state.msize, newSize);
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		return _size <= 0xffff;
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	}
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	else
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		m_state.msize = u256(-1);
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	return false;
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}
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bytes EWasmBuiltinInterpreter::readMemory(uint64_t _offset, uint64_t _size)
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{
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	yulAssert(_size <= 0xffff, "Too large read.");
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	bytes data(size_t(_size), uint8_t(0));
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	for (size_t i = 0; i < data.size(); ++i)
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		data[i] = m_state.memory[_offset + i];
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	return data;
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}
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uint64_t EWasmBuiltinInterpreter::readMemoryWord(uint64_t _offset)
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{
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	uint64_t r = 0;
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	for (size_t i = 0; i < 8; i++)
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		r |= uint64_t(m_state.memory[_offset + i]) << (i * 8);
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	return r;
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}
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void EWasmBuiltinInterpreter::writeMemoryWord(uint64_t _offset, uint64_t _value)
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{
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	for (size_t i = 0; i < 8; i++)
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		m_state.memory[_offset + i] = uint8_t((_value >> (i * 8)) & 0xff);
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}
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u256 EWasmBuiltinInterpreter::writeU256(uint64_t _offset, u256 _value, size_t _croppedTo)
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{
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	accessMemory(_offset, _croppedTo);
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	for (size_t i = 0; i < _croppedTo; i++)
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	{
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		m_state.memory[_offset + _croppedTo - 1 - i] = uint8_t(_value & 0xff);
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		_value >>= 8;
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	}
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	return {};
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}
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u256 EWasmBuiltinInterpreter::readU256(uint64_t _offset, size_t _croppedTo)
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{
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	accessMemory(_offset, _croppedTo);
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	u256 value;
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	for (size_t i = 0; i < _croppedTo; i++)
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		value = (value << 8) | m_state.memory[_offset + i];
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	return value;
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}
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void EWasmBuiltinInterpreter::logTrace(dev::eth::Instruction _instruction, std::vector<u256> const& _arguments, bytes const& _data)
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{
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	logTrace(dev::eth::instructionInfo(_instruction).name, _arguments, _data);
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}
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void EWasmBuiltinInterpreter::logTrace(std::string const& _pseudoInstruction, std::vector<u256> const& _arguments, bytes const& _data)
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{
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	string message = _pseudoInstruction + "(";
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	for (size_t i = 0; i < _arguments.size(); ++i)
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		message += (i > 0 ? ", " : "") + formatNumber(_arguments[i]);
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	message += ")";
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	if (!_data.empty())
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		message += " [" + toHex(_data) + "]";
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	m_state.trace.emplace_back(std::move(message));
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	if (m_state.maxTraceSize > 0 && m_state.trace.size() >= m_state.maxTraceSize)
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	{
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		m_state.trace.emplace_back("Trace size limit reached.");
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		throw TraceLimitReached();
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	}
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}
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