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			325 lines
		
	
	
		
			9.3 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			325 lines
		
	
	
		
			9.3 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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// SPDX-License-Identifier: GPL-3.0
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#include <libsmtutil/SMTLib2Interface.h>
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#include <libsolutil/Keccak256.h>
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#include <boost/algorithm/string/join.hpp>
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#include <boost/algorithm/string/predicate.hpp>
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#include <range/v3/algorithm/find_if.hpp>
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#include <array>
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#include <fstream>
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#include <iostream>
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#include <memory>
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#include <stdexcept>
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#include <string>
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#include <utility>
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using namespace std;
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using namespace solidity;
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using namespace solidity::util;
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using namespace solidity::frontend;
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using namespace solidity::smtutil;
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SMTLib2Interface::SMTLib2Interface(
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	map<h256, string> _queryResponses,
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	ReadCallback::Callback _smtCallback,
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	optional<unsigned> _queryTimeout
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):
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	SolverInterface(_queryTimeout),
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	m_queryResponses(move(_queryResponses)),
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	m_smtCallback(move(_smtCallback))
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{
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	reset();
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}
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void SMTLib2Interface::reset()
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{
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	m_accumulatedOutput.clear();
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	m_accumulatedOutput.emplace_back();
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	m_variables.clear();
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	m_userSorts.clear();
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	write("(set-option :produce-models true)");
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	if (m_queryTimeout)
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		write("(set-option :timeout " + to_string(*m_queryTimeout) + ")");
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	write("(set-logic ALL)");
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}
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void SMTLib2Interface::push()
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{
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	m_accumulatedOutput.emplace_back();
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}
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void SMTLib2Interface::pop()
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{
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	smtAssert(!m_accumulatedOutput.empty(), "");
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	m_accumulatedOutput.pop_back();
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}
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void SMTLib2Interface::declareVariable(string const& _name, SortPointer const& _sort)
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{
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	smtAssert(_sort, "");
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	if (_sort->kind == Kind::Function)
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		declareFunction(_name, _sort);
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	else if (!m_variables.count(_name))
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	{
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		m_variables.emplace(_name, _sort);
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		write("(declare-fun |" + _name + "| () " + toSmtLibSort(*_sort) + ')');
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	}
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}
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void SMTLib2Interface::declareFunction(string const& _name, SortPointer const& _sort)
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{
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	smtAssert(_sort, "");
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	smtAssert(_sort->kind == Kind::Function, "");
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	// TODO Use domain and codomain as key as well
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	if (!m_variables.count(_name))
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	{
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		auto const& fSort = dynamic_pointer_cast<FunctionSort>(_sort);
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		string domain = toSmtLibSort(fSort->domain);
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		string codomain = toSmtLibSort(*fSort->codomain);
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		m_variables.emplace(_name, _sort);
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		write(
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			"(declare-fun |" +
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			_name +
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			"| " +
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			domain +
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			" " +
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			codomain +
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			")"
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		);
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	}
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}
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void SMTLib2Interface::addAssertion(Expression const& _expr)
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{
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	write("(assert " + toSExpr(_expr) + ")");
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}
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pair<CheckResult, vector<string>> SMTLib2Interface::check(vector<Expression> const& _expressionsToEvaluate)
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{
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	string response = querySolver(
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		boost::algorithm::join(m_accumulatedOutput, "\n") +
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		checkSatAndGetValuesCommand(_expressionsToEvaluate)
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	);
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	CheckResult result;
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	// TODO proper parsing
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	if (boost::starts_with(response, "sat\n"))
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		result = CheckResult::SATISFIABLE;
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	else if (boost::starts_with(response, "unsat\n"))
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		result = CheckResult::UNSATISFIABLE;
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	else if (boost::starts_with(response, "unknown\n"))
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		result = CheckResult::UNKNOWN;
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	else
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		result = CheckResult::ERROR;
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	vector<string> values;
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	if (result == CheckResult::SATISFIABLE && !_expressionsToEvaluate.empty())
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		values = parseValues(find(response.cbegin(), response.cend(), '\n'), response.cend());
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	return make_pair(result, values);
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}
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string SMTLib2Interface::toSExpr(Expression const& _expr)
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{
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	if (_expr.arguments.empty())
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		return _expr.name;
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	std::string sexpr = "(";
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	if (_expr.name == "int2bv")
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	{
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		size_t size = std::stoul(_expr.arguments[1].name);
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		auto arg = toSExpr(_expr.arguments.front());
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		auto int2bv = "(_ int2bv " + to_string(size) + ")";
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		// Some solvers treat all BVs as unsigned, so we need to manually apply 2's complement if needed.
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		sexpr += string("ite ") +
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			"(>= " + arg + " 0) " +
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			"(" + int2bv + " " + arg + ") " +
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			"(bvneg (" + int2bv + " (- " + arg + ")))";
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	}
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	else if (_expr.name == "bv2int")
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	{
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		auto intSort = dynamic_pointer_cast<IntSort>(_expr.sort);
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		smtAssert(intSort, "");
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		auto arg = toSExpr(_expr.arguments.front());
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		auto nat = "(bv2nat " + arg + ")";
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		if (!intSort->isSigned)
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			return nat;
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		auto bvSort = dynamic_pointer_cast<BitVectorSort>(_expr.arguments.front().sort);
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		smtAssert(bvSort, "");
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		auto size = to_string(bvSort->size);
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		auto pos = to_string(bvSort->size - 1);
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		// Some solvers treat all BVs as unsigned, so we need to manually apply 2's complement if needed.
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		sexpr += string("ite ") +
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			"(= ((_ extract " + pos + " " + pos + ")" + arg + ") #b0) " +
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			nat + " " +
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			"(- (bv2nat (bvneg " + arg + ")))";
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	}
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	else if (_expr.name == "const_array")
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	{
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		smtAssert(_expr.arguments.size() == 2, "");
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		auto sortSort = std::dynamic_pointer_cast<SortSort>(_expr.arguments.at(0).sort);
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		smtAssert(sortSort, "");
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		auto arraySort = dynamic_pointer_cast<ArraySort>(sortSort->inner);
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		smtAssert(arraySort, "");
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		sexpr += "(as const " + toSmtLibSort(*arraySort) + ") ";
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		sexpr += toSExpr(_expr.arguments.at(1));
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	}
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	else if (_expr.name == "tuple_get")
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	{
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		smtAssert(_expr.arguments.size() == 2, "");
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		auto tupleSort = dynamic_pointer_cast<TupleSort>(_expr.arguments.at(0).sort);
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		size_t index = std::stoul(_expr.arguments.at(1).name);
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		smtAssert(index < tupleSort->members.size(), "");
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		sexpr += "|" + tupleSort->members.at(index) + "| " + toSExpr(_expr.arguments.at(0));
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	}
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	else if (_expr.name == "tuple_constructor")
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	{
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		auto tupleSort = dynamic_pointer_cast<TupleSort>(_expr.sort);
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		smtAssert(tupleSort, "");
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		sexpr += "|" + tupleSort->name + "|";
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		for (auto const& arg: _expr.arguments)
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			sexpr += " " + toSExpr(arg);
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	}
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	else
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	{
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		sexpr += _expr.name;
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		for (auto const& arg: _expr.arguments)
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			sexpr += " " + toSExpr(arg);
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	}
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	sexpr += ")";
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	return sexpr;
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}
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string SMTLib2Interface::toSmtLibSort(Sort const& _sort)
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{
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	switch (_sort.kind)
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	{
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	case Kind::Int:
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		return "Int";
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	case Kind::Bool:
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		return "Bool";
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	case Kind::BitVector:
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		return "(_ BitVec " + to_string(dynamic_cast<BitVectorSort const&>(_sort).size) + ")";
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	case Kind::Array:
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	{
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		auto const& arraySort = dynamic_cast<ArraySort const&>(_sort);
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		smtAssert(arraySort.domain && arraySort.range, "");
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		return "(Array " + toSmtLibSort(*arraySort.domain) + ' ' + toSmtLibSort(*arraySort.range) + ')';
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	}
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	case Kind::Tuple:
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	{
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		auto const& tupleSort = dynamic_cast<TupleSort const&>(_sort);
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		string tupleName = "|" + tupleSort.name + "|";
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		auto isName = [&](auto entry) { return entry.first == tupleName; };
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		if (ranges::find_if(m_userSorts, isName) == m_userSorts.end())
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		{
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			string decl("(declare-datatypes ((" + tupleName + " 0)) (((" + tupleName);
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			smtAssert(tupleSort.members.size() == tupleSort.components.size(), "");
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			for (unsigned i = 0; i < tupleSort.members.size(); ++i)
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				decl += " (|" + tupleSort.members.at(i) + "| " + toSmtLibSort(*tupleSort.components.at(i)) + ")";
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			decl += "))))";
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			m_userSorts.emplace_back(tupleName, decl);
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			write(decl);
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		}
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		return tupleName;
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	}
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	default:
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		smtAssert(false, "Invalid SMT sort");
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	}
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}
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string SMTLib2Interface::toSmtLibSort(vector<SortPointer> const& _sorts)
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{
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	string ssort("(");
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	for (auto const& sort: _sorts)
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		ssort += toSmtLibSort(*sort) + " ";
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	ssort += ")";
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	return ssort;
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}
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void SMTLib2Interface::write(string _data)
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{
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	smtAssert(!m_accumulatedOutput.empty(), "");
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	m_accumulatedOutput.back() += move(_data) + "\n";
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}
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string SMTLib2Interface::checkSatAndGetValuesCommand(vector<Expression> const& _expressionsToEvaluate)
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{
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	string command;
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	if (_expressionsToEvaluate.empty())
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		command = "(check-sat)\n";
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	else
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	{
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		// TODO make sure these are unique
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		for (size_t i = 0; i < _expressionsToEvaluate.size(); i++)
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		{
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			auto const& e = _expressionsToEvaluate.at(i);
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			smtAssert(e.sort->kind == Kind::Int || e.sort->kind == Kind::Bool, "Invalid sort for expression to evaluate.");
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			command += "(declare-const |EVALEXPR_" + to_string(i) + "| " + (e.sort->kind == Kind::Int ? "Int" : "Bool") + ")\n";
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			command += "(assert (= |EVALEXPR_" + to_string(i) + "| " + toSExpr(e) + "))\n";
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		}
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		command += "(check-sat)\n";
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		command += "(get-value (";
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		for (size_t i = 0; i < _expressionsToEvaluate.size(); i++)
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			command += "|EVALEXPR_" + to_string(i) + "| ";
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		command += "))\n";
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	}
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	return command;
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}
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vector<string> SMTLib2Interface::parseValues(string::const_iterator _start, string::const_iterator _end)
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{
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	vector<string> values;
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	while (_start < _end)
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	{
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		auto valStart = find(_start, _end, ' ');
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		if (valStart < _end)
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			++valStart;
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		auto valEnd = find(valStart, _end, ')');
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		values.emplace_back(valStart, valEnd);
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		_start = find(valEnd, _end, '(');
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	}
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	return values;
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}
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string SMTLib2Interface::querySolver(string const& _input)
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{
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	h256 inputHash = keccak256(_input);
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	if (m_queryResponses.count(inputHash))
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		return m_queryResponses.at(inputHash);
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	if (m_smtCallback)
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	{
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		auto result = m_smtCallback(ReadCallback::kindString(ReadCallback::Kind::SMTQuery), _input);
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		if (result.success)
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			return result.responseOrErrorMessage;
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	}
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	m_unhandledQueries.push_back(_input);
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	return "unknown\n";
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}
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